840 changed files with 152052 additions and 45022 deletions
+1 -3
View File
@@ -13,6 +13,4 @@ third-party/concurrentqueue/tests
*.wav
*.orig
examples/csharp/bin
examples/csharp/obj
test/system
.env
examples/csharp/obj
+65 -210
View File
@@ -1,11 +1,9 @@
variables:
DEBIAN_FRONTEND: noninteractive
LIBICSNEO_ICSPB_REPO: https://gitlab-ci-token:${CI_JOB_TOKEN}@${LIBICSNEO_ICSPB_GIT}
stages:
- build
- unit_test
- deploy
- test
#-------------------------------------------------------------------------------
# Windows
@@ -14,49 +12,49 @@ stages:
build windows/x64:
stage: build
script:
- cmd /C ci\build-windows64.bat
- CMD.EXE /C ci\build-windows64.bat
artifacts:
when: always
paths:
- build
expire_in: 3 days
tags:
- libicsneo-win-x64
- icsneo-windows
unit_test windows/x64:
stage: unit_test
test windows/x64:
stage: test
script:
- build\libicsneo-unit-tests.exe
- build\libicsneo-tests.exe
dependencies:
- build windows/x64
needs:
- build windows/x64
tags:
- libicsneo-win-x64
- icsneo-windows
timeout: 5m
build windows/x86:
stage: build
script:
- cmd /C ci\build-windows32.bat
- CMD.EXE /C ci\build-windows32.bat
artifacts:
when: always
paths:
- build
expire_in: 3 days
tags:
- libicsneo-win-x64
- icsneo-windows
unit_test windows/x86:
stage: unit_test
test windows/x86:
stage: test
script:
- build\libicsneo-unit-tests.exe
- build\libicsneo-tests.exe
dependencies:
- build windows/x86
needs:
- build windows/x86
tags:
- libicsneo-win-x64
- icsneo-windows
timeout: 5m
#-------------------------------------------------------------------------------
@@ -68,9 +66,7 @@ unit_test windows/x86:
script:
- apt update -y
- apt upgrade -y
- apt install -y g++ ninja-build cmake libpcap-dev git ca-certificates
- echo "$ICS_IPA_CA_CRT" >/usr/local/share/ca-certificates/ica-ipa-ca.crt
- update-ca-certificates --fresh
- apt install -y g++ ninja-build cmake libusb-1.0-0-dev libpcap-dev
- sh ci/build-posix.sh
artifacts:
when: always
@@ -81,12 +77,12 @@ unit_test windows/x86:
- linux-build
.test_linux_ubuntu_gcc: &test_linux_ubuntu_gcc
stage: unit_test
stage: test
script:
- apt update -y
- apt upgrade -y
- apt install -y libpcap-dev
- build/libicsneo-unit-tests
- apt install -y libusb-1.0-0-dev libpcap-dev
- build/libicsneo-tests
tags:
- linux-build
timeout: 5m
@@ -96,9 +92,7 @@ unit_test windows/x86:
script:
- apt update -y
- apt upgrade -y
- apt install -y clang lld ninja-build cmake libpcap-dev git ca-certificates
- echo "$ICS_IPA_CA_CRT" >/usr/local/share/ca-certificates/ica-ipa-ca.crt
- update-ca-certificates --fresh
- apt install -y clang lld ninja-build cmake libusb-1.0-0-dev libpcap-dev
- CC=clang CXX=clang++ LDFLAGS=-fuse-ld=lld sh ci/build-posix.sh
artifacts:
when: always
@@ -109,63 +103,63 @@ unit_test windows/x86:
- linux-build
.test_linux_ubuntu_clang: &test_linux_ubuntu_clang
stage: unit_test
stage: test
script:
- apt update -y
- apt upgrade -y
- apt install -y libpcap-dev
- build/libicsneo-unit-tests
- apt install -y libusb-1.0-0-dev libpcap-dev
- build/libicsneo-tests
tags:
- linux-build
timeout: 5m
build linux/ubuntu/2404/amd64/gcc:
build linux/ubuntu/2004/amd64/gcc:
<<: *build_linux_ubuntu_gcc
image: ubuntu:24.04
image: ubuntu:20.04
unit_test linux/ubuntu/2404/amd64/gcc:
test linux/ubuntu/2004/amd64/gcc:
<<: *test_linux_ubuntu_gcc
image: ubuntu:24.04
image: ubuntu:20.04
dependencies:
- build linux/ubuntu/2404/amd64/gcc
- build linux/ubuntu/2004/amd64/gcc
needs:
- build linux/ubuntu/2404/amd64/gcc
- build linux/ubuntu/2004/amd64/gcc
build linux/ubuntu/2404/amd64/clang:
build linux/ubuntu/2004/amd64/clang:
<<: *build_linux_ubuntu_clang
image: ubuntu:24.04
image: ubuntu:20.04
unit_test linux/ubuntu/2404/amd64/clang:
test linux/ubuntu/2004/amd64/clang:
<<: *test_linux_ubuntu_clang
image: ubuntu:24.04
image: ubuntu:20.04
dependencies:
- build linux/ubuntu/2404/amd64/clang
- build linux/ubuntu/2004/amd64/clang
needs:
- build linux/ubuntu/2404/amd64/clang
- build linux/ubuntu/2004/amd64/clang
build linux/ubuntu/2604/amd64/gcc:
build linux/ubuntu/2204/amd64/gcc:
<<: *build_linux_ubuntu_gcc
image: ubuntu:26.04
image: ubuntu:22.04
unit_test linux/ubuntu/2604/amd64/gcc:
test linux/ubuntu/2204/amd64/gcc:
<<: *test_linux_ubuntu_gcc
image: ubuntu:26.04
image: ubuntu:22.04
dependencies:
- build linux/ubuntu/2604/amd64/gcc
- build linux/ubuntu/2204/amd64/gcc
needs:
- build linux/ubuntu/2604/amd64/gcc
- build linux/ubuntu/2204/amd64/gcc
build linux/ubuntu/2604/amd64/clang:
build linux/ubuntu/2204/amd64/clang:
<<: *build_linux_ubuntu_clang
image: ubuntu:26.04
image: ubuntu:22.04
unit_test linux/ubuntu/2604/amd64/clang:
test linux/ubuntu/2204/amd64/clang:
<<: *test_linux_ubuntu_clang
image: ubuntu:26.04
image: ubuntu:22.04
dependencies:
- build linux/ubuntu/2604/amd64/clang
- build linux/ubuntu/2204/amd64/clang
needs:
- build linux/ubuntu/2604/amd64/clang
- build linux/ubuntu/2204/amd64/clang
#-------------------------------------------------------------------------------
# Fedora
@@ -177,12 +171,8 @@ unit_test linux/ubuntu/2604/amd64/clang:
paths:
- /var/cache/dnf
script:
- echo max_parallel_downloads=10 >>/etc/dnf/dnf.conf
- echo fastestmirror=True >>/etc/dnf/dnf.conf
- dnf upgrade -y
- dnf install -y g++ libpcap-devel cmake ninja-build git ca-certificates
- echo "$ICS_IPA_CA_CRT" >/etc/pki/ca-trust/source/anchors/ica-ipa-ca.crt
- update-ca-trust
- dnf install -y g++ libpcap-devel cmake ninja-build libusb1-devel
- sh ci/build-posix.sh
artifacts:
when: always
@@ -193,16 +183,14 @@ unit_test linux/ubuntu/2604/amd64/clang:
- linux-build
.test_linux_fedora_gcc: &test_linux_fedora_gcc
stage: unit_test
stage: test
cache:
paths:
- /var/cache/dnf
script:
- echo max_parallel_downloads=10 >>/etc/dnf/dnf.conf
- echo fastestmirror=True >>/etc/dnf/dnf.conf
- dnf upgrade -y
- dnf install -y libpcap-devel
- build/libicsneo-unit-tests
- dnf install -y libpcap-devel libusb1-devel
- build/libicsneo-tests
tags:
- linux-build
timeout: 5m
@@ -213,12 +201,8 @@ unit_test linux/ubuntu/2604/amd64/clang:
paths:
- /var/cache/dnf
script:
- echo max_parallel_downloads=10 >>/etc/dnf/dnf.conf
- echo fastestmirror=True >>/etc/dnf/dnf.conf
- dnf upgrade -y
- dnf install -y clang lld libpcap-devel cmake ninja-build git ca-certificates
- echo "$ICS_IPA_CA_CRT" >/etc/pki/ca-trust/source/anchors/ica-ipa-ca.crt
- update-ca-trust
- dnf install -y clang lld libpcap-devel cmake ninja-build libusb1-devel
- CC=clang CXX=clang++ LDFLAGS=-fuse-ld=lld sh ci/build-posix.sh
artifacts:
when: always
@@ -229,167 +213,38 @@ unit_test linux/ubuntu/2604/amd64/clang:
- linux-build
.test_linux_fedora_clang: &test_linux_fedora_clang
stage: unit_test
stage: test
cache:
paths:
- /var/cache/dnf
script:
- echo max_parallel_downloads=10 >>/etc/dnf/dnf.conf
- echo fastestmirror=True >>/etc/dnf/dnf.conf
- dnf upgrade -y
- dnf install -y libpcap-devel
- build/libicsneo-unit-tests
- dnf install -y libpcap-devel libusb1-devel
- build/libicsneo-tests
tags:
- linux-build
timeout: 5m
build linux/fedora/43/amd64/gcc:
build linux/fedora/37/amd64/gcc:
<<: *build_linux_fedora_gcc
image: fedora:43
image: fedora:37
unit_test linux/fedora/43/amd64/gcc:
test linux/fedora/37/amd64/gcc:
<<: *test_linux_fedora_gcc
image: fedora:43
image: fedora:37
dependencies:
- build linux/fedora/43/amd64/gcc
- build linux/fedora/37/amd64/gcc
needs:
- build linux/fedora/43/amd64/gcc
- build linux/fedora/37/amd64/gcc
build linux/fedora/43/amd64/clang:
build linux/fedora/37/amd64/clang:
<<: *build_linux_fedora_clang
image: fedora:43
image: fedora:37
unit_test linux/fedora/43/amd64/clang:
test linux/fedora/37/amd64/clang:
<<: *test_linux_fedora_clang
image: fedora:43
image: fedora:37
dependencies:
- build linux/fedora/43/amd64/clang
- build linux/fedora/37/amd64/clang
needs:
- build linux/fedora/43/amd64/clang
build linux/fedora/44/amd64/gcc:
<<: *build_linux_fedora_gcc
image: fedora:44
unit_test linux/fedora/44/amd64/gcc:
<<: *test_linux_fedora_gcc
image: fedora:44
dependencies:
- build linux/fedora/44/amd64/gcc
needs:
- build linux/fedora/44/amd64/gcc
build linux/fedora/44/amd64/clang:
<<: *build_linux_fedora_clang
image: fedora:44
unit_test linux/fedora/44/amd64/clang:
<<: *test_linux_fedora_clang
image: fedora:44
dependencies:
- build linux/fedora/44/amd64/clang
needs:
- build linux/fedora/44/amd64/clang
#-------------------------------------------------------------------------------
# Python Module
#-------------------------------------------------------------------------------
build python/linux/amd64:
stage: build
tags:
- linux-native-amd64
variables:
CIBW_BEFORE_ALL: sh ci/bootstrap-cibuildwheel.sh && sh ci/bootstrap-libpcap.sh
CIBW_BUILD: "*manylinux*" # no musl
CIBW_ARCHS: x86_64
CIBW_ENVIRONMENT: CMAKE_PREFIX_PATH=/project/libpcap/install
script:
- sh ci/build-wheel-posix.sh
artifacts:
paths:
- wheelhouse
build python/linux/arm64:
stage: build
tags:
- arm64-linux-build
variables:
CIBW_BEFORE_ALL: sh ci/bootstrap-cibuildwheel.sh && sh ci/bootstrap-libpcap.sh
CIBW_BUILD: "*manylinux*" # no musl
CIBW_ARCHS: aarch64
CIBW_ENVIRONMENT: CMAKE_PREFIX_PATH=/project/libpcap/install
script:
- sh ci/build-wheel-posix.sh
artifacts:
paths:
- wheelhouse
build python/macos:
stage: build
tags:
- macos-arm64
variables:
CIBW_BEFORE_ALL: sh ci/bootstrap-libpcap.sh
CIBW_ARCHS: arm64
CIBW_ENVIRONMENT: CMAKE_PREFIX_PATH=$CI_PROJECT_DIR/libpcap/install
MACOSX_DEPLOYMENT_TARGET: 10.14
script:
- sh ci/build-wheel-posix.sh
artifacts:
paths:
- wheelhouse
build python/windows:
stage: build
tags:
- libicsneo-win-x64
variables:
CIBW_ARCHS: AMD64
CIBW_ENVIRONMENT: CMAKE_GENERATOR=Ninja
script:
- cmd /c ci\build-wheel-windows.bat
artifacts:
paths:
- wheelhouse
deploy python/pypi:
stage: deploy
variables:
TWINE_USERNAME: __token__
TWINE_PASSWORD: $PYPI_TOKEN
tags:
- linux-build
image: python:3.13
rules:
- if: $CI_COMMIT_BRANCH == $CI_DEFAULT_BRANCH
script:
- python3 -m pip install -U twine
- twine upload wheelhouse/*
dependencies:
- build python/linux/amd64
- build python/linux/arm64
- build python/macos
- build python/windows
needs:
- build python/linux/amd64
- build python/linux/arm64
- build python/macos
- build python/windows
push github:
stage: deploy
tags:
- linux-build
image: alpine:latest
rules:
- if: $CI_COMMIT_BRANCH == $CI_DEFAULT_BRANCH
when: delayed
start_in: 10 minutes
dependencies:
- deploy python/pypi
needs:
- deploy python/pypi
script:
- apk add git
- git push https://$LIBICSNEO_GITHUB_USERNAME:$LIBICSNEO_GITHUB_TOKEN@github.com/intrepidcs/libicsneo.git HEAD:master
- build linux/fedora/37/amd64/clang
-15
View File
@@ -1,15 +0,0 @@
version: 2
build:
os: "ubuntu-24.04"
tools:
python: "3.12"
apt_packages:
- doxygen
python:
install:
- requirements: docs/requirements.txt
sphinx:
configuration: docs/conf.py
+21 -5
View File
@@ -3,8 +3,24 @@ SUBSYSTEM=="usb", ATTRS{idVendor}=="093c", GROUP="users", MODE="0666"
KERNEL=="ttyUSB?", ATTRS{idVendor}=="093c", GROUP="users", MODE="0666"
KERNEL=="ttyACM?", ATTRS{idVendor}=="093c", GROUP="users", MODE="0666"
ACTION=="add", SUBSYSTEMS=="usb", ATTRS{idVendor}=="093c", KERNEL=="ttyUSB*", \
RUN+="/bin/sh -c 'echo $id:1.0>/sys/bus/usb/drivers/ftdi_sio/unbind'"
ACTION=="add", SUBSYSTEMS=="usb", ATTRS{idVendor}=="093c", DRIVER=="usbhid", \
RUN+="/bin/sh -c 'echo $id:1.0>/sys/bus/usb/drivers/usbhid/unbind'"
# neoVI ION/PLASMA PIDs are not in the latest ftdi_sio driver so lets make a
# rule to add it when we see a new unclaimed device.
# PLASMA = 0x0801, ION = 0x0901
ACTION=="add", SUBSYSTEM=="usb", ENV{DEVTYPE}=="usb_interface", \
ATTRS{idVendor}=="093c", ATTRS{idProduct}=="0801", \
DRIVER=="", \
RUN+="/sbin/modprobe -b ftdi_sio"
ACTION=="add", SUBSYSTEM=="drivers", \
ENV{DEVPATH}=="/bus/usb-serial/drivers/ftdi_sio", \
ATTR{new_id}="093c 0801"
ACTION=="add", SUBSYSTEM=="usb", ENV{DEVTYPE}=="usb_interface", \
ATTRS{idVendor}=="093c", ATTRS{idProduct}=="0901", \
DRIVER=="", \
RUN+="/sbin/modprobe -b ftdi_sio"
ACTION=="add", SUBSYSTEM=="usb", ENV{DEVTYPE}=="usb_interface", \
ATTRS{idVendor}=="093c", ATTRS{idProduct}=="1000", \
DRIVER=="", \
RUN+="/sbin/modprobe -b ftdi_sio"
ACTION=="add", SUBSYSTEM=="drivers", \
ENV{DEVPATH}=="/bus/usb-serial/drivers/ftdi_sio", \
ATTR{new_id}="093c 0901"
+150 -188
View File
@@ -1,20 +1,14 @@
cmake_minimum_required(VERSION 3.16)
project(libicsneo VERSION 1.0.0)
cmake_minimum_required(VERSION 3.12)
project(libicsneo VERSION 0.3.0)
cmake_policy(SET CMP0074 NEW)
if(POLICY CMP0135)
cmake_policy(SET CMP0135 NEW)
endif()
option(LIBICSNEO_BUILD_UNIT_TESTS "Build unit tests." OFF)
option(LIBICSNEO_BUILD_TESTS "Build all tests." OFF)
option(LIBICSNEO_BUILD_DOCS "Build documentation. Don't use in Visual Studio." OFF)
option(LIBICSNEO_BUILD_EXAMPLES "Build examples." ON)
option(LIBICSNEO_BUILD_ICSNEOC "Build dynamic C library" ON)
option(LIBICSNEO_BUILD_ICSNEOC_STATIC "Build static C library" ON)
option(LIBICSNEO_BUILD_ICSNEOC2 "Build dynamic C2 library" ON)
option(LIBICSNEO_BUILD_ICSNEOC2_STATIC "Build static C2 library" ON)
option(LIBICSNEO_BUILD_ICSNEOLEGACY "Build icsnVC40 compatibility library" ON)
option(LIBICSNEO_BUILD_ICSNEOLEGACY_STATIC "Build static icsnVC40 compatibility library" ON)
set(LIBICSNEO_NPCAP_INCLUDE_DIR "" CACHE STRING "Npcap include directory; set to build with Npcap")
# Device Drivers
@@ -24,13 +18,14 @@ set(LIBICSNEO_NPCAP_INCLUDE_DIR "" CACHE STRING "Npcap include directory; set to
option(LIBICSNEO_ENABLE_FIRMIO "Enable communication between Linux and CoreMini within the same device" OFF)
option(LIBICSNEO_ENABLE_RAW_ETHERNET "Enable devices which communicate over raw ethernet" ON)
option(LIBICSNEO_ENABLE_CDCACM "Enable devices which communicate over USB CDC ACM" ON)
option(LIBICSNEO_ENABLE_ANDROIDUSB "Enable devices which communicate over USB CDC ACM on Android" ON)
option(LIBICSNEO_ENABLE_FTDI "Enable devices which communicate over USB FTDI2XX" ON)
option(LIBICSNEO_ENABLE_TCP "Enable devices which communicate over TCP" OFF)
option(LIBICSNEO_ENABLE_DXX "Enable devices which communicate over D2XX/D3XX via libredxx" ON)
option(LIBICSNEO_ENABLE_FTD3XX "Enable devices which communicate over USB FTD3XX" ON)
option(LIBICSNEO_ENABLE_BINDINGS_PYTHON "Enable Python library" OFF)
set(CMAKE_CXX_STANDARD 17)
set(CMAKE_MSVC_RUNTIME_LIBRARY "MultiThreaded")
if(NOT CMAKE_CXX_STANDARD)
set(CMAKE_CXX_STANDARD 17)
endif()
include(GNUInstallDirs)
@@ -38,17 +33,19 @@ set(CMAKE_MODULE_PATH "${CMAKE_CURRENT_SOURCE_DIR}/cmake")
# Enable Warnings
if(MSVC)
set(LIBICSNEO_COMPILER_WARNINGS /W4)
# Force to always compile with W4
if(CMAKE_CXX_FLAGS MATCHES "/W[0-4]")
string(REGEX REPLACE "/W[0-4]" "/W4" CMAKE_CXX_FLAGS "${CMAKE_CXX_FLAGS}")
else()
set(CMAKE_CXX_FLAGS "${CMAKE_CXX_FLAGS} /W4")
endif()
# http://www.open-std.org/jtc1/sc22/wg21/docs/papers/2017/p0618r0.html
# Still supported until a suitable replacement is standardized
add_definitions(-D_SILENCE_CXX17_CODECVT_HEADER_DEPRECATION_WARNING)
add_definitions(-D_ITERATOR_DEBUG_LEVEL=0)
else() #if(CMAKE_COMPILER_IS_GNUCC OR CMAKE_COMPILER_IS_GNUCXX)
set(LIBICSNEO_COMPILER_WARNINGS -Wall -Wno-switch -Wno-unknown-pragmas)
set(CMAKE_CXX_FLAGS "${CMAKE_CXX_FLAGS} -Wall -Wno-switch -Wno-unknown-pragmas")
endif()
find_package(Threads REQUIRED)
# doxygen
find_package(Doxygen)
if(DOXYGEN_FOUND)
@@ -106,7 +103,6 @@ endif()
if(WIN32)
set(PLATFORM_SRC
platform/windows/strings.cpp
platform/windows/registry.cpp
)
@@ -117,11 +113,17 @@ if(WIN32)
)
endif()
if(LIBICSNEO_ENABLE_CDCACM)
if(LIBICSNEO_ENABLE_CDCACM OR LIBICSNEO_ENABLE_FTDI)
list(APPEND PLATFORM_SRC
platform/windows/cdcacm.cpp
platform/windows/vcp.cpp
)
endif()
elseif(LIBICSNEO_ENABLE_ANDROIDUSB)
list(APPEND PLATFORM_SRC
platform/android/androidusb.cpp
)
else() # Darwin or Linux
set(PLATFORM_SRC)
@@ -137,6 +139,12 @@ else() # Darwin or Linux
)
endif()
if(LIBICSNEO_ENABLE_FTDI)
list(APPEND PLATFORM_SRC
platform/posix/ftdi.cpp
)
endif()
if(LIBICSNEO_ENABLE_CDCACM)
list(APPEND PLATFORM_SRC
platform/posix/cdcacm.cpp
@@ -160,9 +168,52 @@ else() # Darwin or Linux
endif()
endif()
if(LIBICSNEO_ENABLE_DXX)
if(LIBICSNEO_ENABLE_FTD3XX)
if(NOT FTD3XX_ROOT) # allow system override
include(FetchContent)
if(WIN32 AND CMAKE_SIZEOF_VOID_P EQUAL 8)
set(LIBICSNEO_FTD3XX_URL "https://github.com/intrepidcs/libftd3xx-repack/releases/download/23.28.0/libftd3xx-1.3.0.4-win-x64.zip")
set(LIBICSNEO_FTD3XX_URL_HASH "SHA256=ee1289cdd5023de67275aaa1712e8e32e73e825a8392efb0a76f161e357fbdc9")
elseif(WIN32 AND CMAKE_SIZEOF_VOID_P EQUAL 4)
set(LIBICSNEO_FTD3XX_URL "https://github.com/intrepidcs/libftd3xx-repack/releases/download/23.28.0/libftd3xx-1.3.0.4-win-i686.zip")
set(LIBICSNEO_FTD3XX_URL_HASH "SHA256=bcd31f5c3cb39ecb9b09db5ce722bd79de6e0f813130e7b8f2c86879a60d8ff0")
elseif(APPLE AND CMAKE_SIZEOF_VOID_P EQUAL 8)
set(LIBICSNEO_FTD3XX_URL "https://github.com/intrepidcs/libftd3xx-repack/releases/download/23.28.0/libftd3xx-1.0.14-macos-universal2.zip")
set(LIBICSNEO_FTD3XX_URL_HASH "SHA256=74c0d35f04242d0841532c6325eb2932b8f627e3c395382a15d9f39974d27a90")
elseif(UNIX)
if(CMAKE_SYSTEM_PROCESSOR MATCHES "x86_64|amd64|AMD64")
if(CMAKE_SIZEOF_VOID_P EQUAL 8)
set(LIBICSNEO_FTD3XX_URL "https://github.com/intrepidcs/libftd3xx-repack/releases/download/23.28.0/libftd3xx-1.0.14-linux-x64.zip")
set(LIBICSNEO_FTD3XX_URL_HASH "SHA256=a9dc7eb6948c8977fbd79f6700bec6f882d3da5667aea8f2175b8d1f6f08e456")
endif()
elseif(CMAKE_SYSTEM_PROCESSOR MATCHES "arm.*|aarch64")
if(CMAKE_SIZEOF_VOID_P EQUAL 8)
set(LIBICSNEO_FTD3XX_URL "https://github.com/intrepidcs/libftd3xx-repack/releases/download/23.28.0/libftd3xx-1.0.14-linux-aarch64.zip")
set(LIBICSNEO_FTD3XX_URL_HASH "SHA256=da4b90ea1cbb905874cd159ad2ab8c1bdde65cc22b3aa55bf2b5fd85ca6efd22")
elseif(CMAKE_SIZEOF_VOID_P EQUAL 4)
set(LIBICSNEO_FTD3XX_URL "https://github.com/intrepidcs/libftd3xx-repack/releases/download/23.28.0/libftd3xx-1.0.14-linux-armhf.zip")
set(LIBICSNEO_FTD3XX_URL_HASH "SHA256=d813008117422cae958f7c71a065cdac0d31dca3b24809d3ab5e13604a9c3fb1")
endif()
endif()
endif()
if(NOT LIBICSNEO_FTD3XX_URL)
message(FATAL_ERROR "Unsupported platform for FTD3XX driver")
endif()
FetchContent_Declare(
ftdi3xx
URL ${LIBICSNEO_FTD3XX_URL}
URL_HASH ${LIBICSNEO_FTD3XX_URL_HASH}
)
FetchContent_GetProperties(ftdi3xx)
if(NOT ftdi3xx_POPULATED)
FetchContent_Populate(ftdi3xx)
endif()
set(FTD3XX_ROOT "${ftdi3xx_SOURCE_DIR}")
endif()
find_package(FTD3XX REQUIRED)
list(APPEND PLATFORM_SRC
platform/dxx.cpp
platform/ftd3xx.cpp
)
endif()
@@ -172,6 +223,10 @@ if(LIBICSNEO_ENABLE_TCP)
)
endif()
if(LIBICSNEO_BUILD_EXAMPLES)
add_subdirectory(examples)
endif()
# Extensions
set(LIBICSNEO_SOURCE_DIR ${CMAKE_CURRENT_SOURCE_DIR})
foreach(EXT_PATH ${LIBICSNEO_EXTENSION_DIRS})
@@ -183,23 +238,14 @@ endforeach()
set(SRC_FILES
communication/message/flexray/control/flexraycontrolmessage.cpp
communication/message/callback/streamoutput/a2bwavoutput.cpp
communication/message/a2bmessage.cpp
communication/message/apperrormessage.cpp
communication/message/callback/streamoutput/a2bdecoder.cpp
communication/message/neomessage.cpp
communication/message/ethphymessage.cpp
communication/message/linmessage.cpp
communication/message/livedatamessage.cpp
communication/message/logdatamessage.cpp
communication/message/tc10statusmessage.cpp
communication/message/gptpstatusmessage.cpp
communication/message/ethernetstatusmessage.cpp
communication/message/networkmutexmessage.cpp
communication/message/clientidmessage.cpp
communication/message/transmitmessage.cpp
communication/packet/flexraypacket.cpp
communication/packet/canpacket.cpp
communication/packet/a2bpacket.cpp
communication/packet/spipacket.cpp
communication/packet/ethernetpacket.cpp
communication/packet/versionpacket.cpp
communication/packet/iso9141packet.cpp
@@ -214,7 +260,6 @@ set(SRC_FILES
communication/packet/componentversionpacket.cpp
communication/packet/supportedfeaturespacket.cpp
communication/packet/genericbinarystatuspacket.cpp
communication/packet/hardwareinfopacket.cpp
communication/decoder.cpp
communication/encoder.cpp
communication/ethernetpacketizer.cpp
@@ -223,9 +268,6 @@ set(SRC_FILES
communication/communication.cpp
communication/driver.cpp
communication/livedata.cpp
core/ringbuffer.cpp
core/crc32.cpp
core/macseccfg.cpp
device/extensions/flexray/extension.cpp
device/extensions/flexray/controller.cpp
device/idevicesettings.cpp
@@ -239,24 +281,6 @@ set(SRC_FILES
disk/plasiondiskreaddriver.cpp
disk/extextractordiskreaddriver.cpp
disk/fat.cpp
disk/diskdetails.cpp
disk/vsa/vsa.cpp
disk/vsa/vsa02.cpp
disk/vsa/vsa03.cpp
disk/vsa/vsa04.cpp
disk/vsa/vsa05.cpp
disk/vsa/vsa06.cpp
disk/vsa/vsa07.cpp
disk/vsa/vsa08.cpp
disk/vsa/vsa09.cpp
disk/vsa/vsa0b.cpp
disk/vsa/vsa0c.cpp
disk/vsa/vsa0d.cpp
disk/vsa/vsa0e.cpp
disk/vsa/vsa0f.cpp
disk/vsa/vsa6a.cpp
disk/vsa/vsaparser.cpp
platform/servd.cpp
${PLATFORM_SRC}
)
@@ -287,7 +311,6 @@ endif()
configure_file(api/icsneocpp/buildinfo.h.template ${CMAKE_CURRENT_BINARY_DIR}/generated/buildinfo.h)
configure_file(api/icsneoc/version.rc.template ${CMAKE_CURRENT_BINARY_DIR}/generated/icsneoc/version.rc)
configure_file(api/icsneoc2/version.rc.template ${CMAKE_CURRENT_BINARY_DIR}/generated/icsneoc2/version.rc)
foreach(EXTINC ${LIBICSNEO_EXTENSION_INCLUDES})
message("Including " ${EXTINC})
@@ -318,10 +341,8 @@ target_include_directories(icsneocpp
${CMAKE_CURRENT_SOURCE_DIR}/include
${LIBICSNEO_EXTENSION_INCLUDE_PATHS}
)
target_link_libraries(icsneocpp PUBLIC Threads::Threads $<$<BOOL:${WIN32}>:ws2_32 iphlpapi>)
set_property(TARGET icsneocpp PROPERTY POSITION_INDEPENDENT_CODE ON)
target_compile_features(icsneocpp PUBLIC cxx_auto_type cxx_constexpr cxx_lambdas cxx_nullptr cxx_range_for cxx_rvalue_references cxx_sizeof_member cxx_strong_enums)
target_compile_options(icsneocpp PRIVATE ${LIBICSNEO_COMPILER_WARNINGS})
message("Loaded extensions: " ${LIBICSNEO_EXTENSION_TARGETS})
target_link_libraries(icsneocpp PUBLIC ${LIBICSNEO_EXTENSION_TARGETS})
if(LIBICSNEO_ENABLE_FIRMIO)
@@ -332,47 +353,64 @@ if(LIBICSNEO_ENABLE_RAW_ETHERNET)
endif()
if(LIBICSNEO_ENABLE_CDCACM)
target_compile_definitions(icsneocpp PRIVATE ICSNEO_ENABLE_CDCACM)
if(APPLE)
find_library(CORE_FOUNDATION_FRAMEWORK CoreFoundation REQUIRED)
find_library(IO_KIT_FRAMEWORK IOKit REQUIRED)
target_link_libraries(icsneocpp PRIVATE ${CORE_FOUNDATION_FRAMEWORK} ${IO_KIT_FRAMEWORK})
endif()
endif()
if(LIBICSNEO_ENABLE_DXX)
target_compile_definitions(icsneocpp PRIVATE ICSNEO_ENABLE_DXX)
target_link_libraries(icsneocpp PRIVATE libredxx::libredxx)
if(LIBICSNEO_ENABLE_FTDI)
target_compile_definitions(icsneocpp PRIVATE ICSNEO_ENABLE_FTDI)
endif()
if(LIBICSNEO_ENABLE_FTD3XX)
target_compile_definitions(icsneocpp PRIVATE ICSNEO_ENABLE_FTD3XX)
target_link_libraries(icsneocpp PRIVATE FTD3XX::FTD3XX)
endif()
if(LIBICSNEO_ENABLE_TCP)
target_compile_definitions(icsneocpp PRIVATE ICSNEO_ENABLE_TCP)
if(WIN32)
target_link_libraries(icsneocpp PRIVATE ws2_32 iphlpapi)
target_link_libraries(icsneocpp PRIVATE ws2_32)
endif()
endif()
if(LIBICSNEO_ENABLE_ANDROIDUSB)
add_library(libusb SHARED IMPORTED)
set_target_properties(libusb PROPERTIES IMPORTED_LOCATION ${CMAKE_CURRENT_SOURCE_DIR}/third-party/libusb/android/libs/${ANDROID_ABI}/libusb1.0.so)
target_include_directories(icsneocpp PRIVATE third-party/libusb/libusb)
target_compile_definitions(icsneocpp PRIVATE ICSNEO_ENABLE_ANDROIDUSB)
target_link_libraries(icsneocpp PRIVATE android log libusb)
endif()
# fatfs
add_subdirectory(third-party/fatfs)
set_property(TARGET fatfs PROPERTY POSITION_INDEPENDENT_CODE ON)
target_link_libraries(icsneocpp PRIVATE fatfs)
# dxx
if(LIBICSNEO_ENABLE_DXX)
include(FetchContent)
FetchContent_Declare(libredxx
GIT_REPOSITORY https://github.com/Zeranoe/libredxx.git
GIT_TAG e823a96c39a64ab41b7d1632dbe8f86bb854df83
)
set(LIBREDXX_DISABLE_INSTALL ON)
FetchContent_MakeAvailable(libredxx)
endif()
# libftdi
if(LIBICSNEO_ENABLE_FTDI)
if(NOT WIN32)
target_include_directories(icsneocpp PUBLIC third-party/libftdi/src)
set(LIBFTDI_DOCUMENTATION OFF CACHE INTERNAL "")
set(LIBFTDI_BUILD_TESTS OFF CACHE INTERNAL "")
set(LIBFTDI_INSTALL OFF CACHE INTERNAL "")
set(LIBFTDI_PYTHON_BINDINGS OFF CACHE INTERNAL "")
set(LIBFTDI_LINK_PYTHON_LIBRARY OFF CACHE INTERNAL "")
set(FTDIPP OFF CACHE INTERNAL "")
set(FTDI_EEPROM OFF CACHE INTERNAL "")
add_subdirectory(third-party/libftdi)
target_include_directories(icsneocpp PRIVATE ${LIBUSB_INCLUDE_DIR})
find_package(Threads)
set_property(TARGET ftdi1-static PROPERTY POSITION_INDEPENDENT_CODE ON)
target_link_libraries(icsneocpp PUBLIC ftdi1-static)
target_link_libraries(icsneocpp PUBLIC ${CMAKE_THREAD_LIBS_INIT})
endif(NOT WIN32)
endif(LIBICSNEO_ENABLE_FTDI)
# pcap
if(LIBICSNEO_ENABLE_RAW_ETHERNET)
if(WIN32)
if(LIBICSNEO_NPCAP_INCLUDE_DIR STREQUAL "")
target_include_directories(icsneocpp PUBLIC AFTER third-party/winpcap/include)
add_definitions(-DWPCAP -DHAVE_REMOTE)
add_definitions(-DWPCAP -DHAVE_REMOTE -DWIN32_LEAN_AND_MEAN)
else()
target_include_directories(icsneocpp PUBLIC AFTER ${LIBICSNEO_NPCAP_INCLUDE_DIR})
add_definitions(-DNPCAP -DWIN32_LEAN_AND_MEAN)
endif()
else()
find_package(PCAP REQUIRED)
@@ -381,21 +419,6 @@ if(LIBICSNEO_ENABLE_RAW_ETHERNET)
endif(WIN32)
endif(LIBICSNEO_ENABLE_RAW_ETHERNET)
# protobuf
if(DEFINED ENV{LIBICSNEO_ICSPB_REPO})
set(LIBICSNEO_ICSPB_REPO "$ENV{LIBICSNEO_ICSPB_REPO}")
endif()
if(NOT LIBICSNEO_ICSPB_REPO)
set(LIBICSNEO_ICSPB_REPO https://github.com/intrepidcs/icspb.git)
endif()
include(FetchContent)
FetchContent_Declare(icspb
GIT_REPOSITORY ${LIBICSNEO_ICSPB_REPO}
GIT_TAG 3339fa6b83a6b3e7704d41f5c2f2175cfc761a1f
)
FetchContent_MakeAvailable(icspb)
target_link_libraries(icsneocpp PRIVATE icspb::icspb)
if(LIBICSNEO_BUILD_ICSNEOC)
add_library(icsneoc SHARED api/icsneoc/icsneoc.cpp ${CMAKE_CURRENT_BINARY_DIR}/generated/icsneoc/version.rc)
target_include_directories(icsneoc
@@ -407,7 +430,11 @@ if(LIBICSNEO_BUILD_ICSNEOC)
)
target_link_libraries(icsneoc PRIVATE icsneocpp)
target_compile_features(icsneoc PRIVATE cxx_auto_type cxx_constexpr cxx_lambdas cxx_nullptr cxx_range_for cxx_rvalue_references cxx_sizeof_member cxx_strong_enums)
target_compile_options(icsneoc PRIVATE ${LIBICSNEO_COMPILER_WARNINGS})
if(LIBICSNEO_ENABLE_ANDROIDUSB)
target_link_libraries(icsneoc PRIVATE android log)
target_include_directories(icsneoc PRIVATE third-party/libusb/libusb)
target_compile_definitions(icsneoc PRIVATE ICSNEO_ENABLE_ANDROIDUSB)
endif()
endif()
if(LIBICSNEO_BUILD_ICSNEOC_STATIC)
@@ -421,40 +448,6 @@ if(LIBICSNEO_BUILD_ICSNEOC_STATIC)
)
target_link_libraries(icsneoc-static PUBLIC icsneocpp)
target_compile_features(icsneoc-static PUBLIC cxx_auto_type cxx_constexpr cxx_lambdas cxx_nullptr cxx_range_for cxx_rvalue_references cxx_sizeof_member cxx_strong_enums)
target_compile_definitions(icsneoc-static PUBLIC ICSNEOC_BUILD_STATIC)
target_compile_options(icsneoc-static PRIVATE ${LIBICSNEO_COMPILER_WARNINGS})
endif()
if(LIBICSNEO_BUILD_ICSNEOC2)
add_library(icsneoc2 SHARED api/icsneoc2/icsneoc2.cpp api/icsneoc2/icsneoc2settings.cpp api/icsneoc2/icsneoc2messages.cpp ${CMAKE_CURRENT_BINARY_DIR}/generated/icsneoc2/version.rc)
target_include_directories(icsneoc2
PUBLIC
$<BUILD_INTERFACE:${CMAKE_CURRENT_SOURCE_DIR}/include>
$<INSTALL_INTERFACE:>
PRIVATE
${CMAKE_CURRENT_SOURCE_DIR}/include
)
target_link_libraries(icsneoc2 PRIVATE icsneocpp)
target_compile_features(icsneoc2 PRIVATE cxx_auto_type cxx_constexpr cxx_lambdas cxx_nullptr cxx_range_for cxx_rvalue_references cxx_sizeof_member cxx_strong_enums)
target_compile_options(icsneoc2 PRIVATE ${LIBICSNEO_COMPILER_WARNINGS})
if(WIN32)
set_target_properties(icsneoc2 PROPERTIES WINDOWS_EXPORT_ALL_SYMBOLS ON)
endif()
endif()
if(LIBICSNEO_BUILD_ICSNEOC2_STATIC)
add_library(icsneoc2-static STATIC api/icsneoc2/icsneoc2.cpp api/icsneoc2/icsneoc2settings.cpp api/icsneoc2/icsneoc2messages.cpp)
target_include_directories(icsneoc2-static
PUBLIC
$<BUILD_INTERFACE:${CMAKE_CURRENT_SOURCE_DIR}/include>
$<INSTALL_INTERFACE:>
PRIVATE
${CMAKE_CURRENT_SOURCE_DIR}/include
)
target_link_libraries(icsneoc2-static PUBLIC icsneocpp)
target_compile_features(icsneoc2-static PUBLIC cxx_auto_type cxx_constexpr cxx_lambdas cxx_nullptr cxx_range_for cxx_rvalue_references cxx_sizeof_member cxx_strong_enums)
target_compile_definitions(icsneoc2-static PUBLIC ICSNEOC2_BUILD_STATIC)
target_compile_options(icsneoc2-static PRIVATE ${LIBICSNEO_COMPILER_WARNINGS})
endif()
if(LIBICSNEO_BUILD_ICSNEOLEGACY)
@@ -473,76 +466,45 @@ if(LIBICSNEO_BUILD_ICSNEOLEGACY)
)
target_link_libraries(icsneolegacy PRIVATE icsneocpp)
target_compile_features(icsneolegacy PRIVATE cxx_auto_type cxx_constexpr cxx_lambdas cxx_nullptr cxx_range_for cxx_rvalue_references cxx_sizeof_member cxx_strong_enums)
target_compile_options(icsneolegacy PRIVATE ${LIBICSNEO_COMPILER_WARNINGS})
endif()
if(LIBICSNEO_BUILD_ICSNEOLEGACY_STATIC)
add_library(icsneolegacy-static STATIC
api/icsneolegacy/icsneolegacy.cpp
api/icsneolegacy/icsneolegacyextra.cpp
api/icsneoc/icsneoc.cpp
)
target_include_directories(icsneolegacy-static
PUBLIC
$<BUILD_INTERFACE:${CMAKE_CURRENT_SOURCE_DIR}/include>
$<INSTALL_INTERFACE:>
PRIVATE
${CMAKE_CURRENT_SOURCE_DIR}/include
)
target_link_libraries(icsneolegacy-static PUBLIC icsneocpp)
target_compile_features(icsneolegacy-static PUBLIC cxx_auto_type cxx_constexpr cxx_lambdas cxx_nullptr cxx_range_for cxx_rvalue_references cxx_sizeof_member cxx_strong_enums)
target_compile_definitions(icsneolegacy-static PUBLIC ICSNEOC_BUILD_STATIC)
target_compile_options(icsneolegacy-static PRIVATE ${LIBICSNEO_COMPILER_WARNINGS})
endif()
add_subdirectory(bindings)
if(LIBICSNEO_BUILD_EXAMPLES)
add_subdirectory(examples)
endif()
# googletest
if(LIBICSNEO_BUILD_UNIT_TESTS)
include(FetchContent)
FetchContent_Declare(googletest
GIT_REPOSITORY https://github.com/google/googletest.git
GIT_TAG 6986c2b575f77135401a4e1c65a7a42f20e18fef
)
FetchContent_MakeAvailable(googletest)
include(GoogleTest)
if(LIBICSNEO_BUILD_TESTS)
if(WIN32)
set(gtest_force_shared_crt ON CACHE BOOL "" FORCE)
endif()
add_executable(libicsneo-unit-tests
test/unit/main.cpp
test/unit/diskdriverreadtest.cpp
test/unit/diskdriverwritetest.cpp
test/unit/eventmanagertest.cpp
test/unit/ethernetpacketizertest.cpp
test/unit/i2cencoderdecodertest.cpp
test/unit/linencoderdecodertest.cpp
test/unit/a2bencoderdecodertest.cpp
test/unit/mdioencoderdecodertest.cpp
test/unit/livedataencoderdecodertest.cpp
test/unit/ringbuffertest.cpp
test/unit/apperrordecodertest.cpp
test/unit/icsneoc2.cpp
test/unit/windowsstrings.cpp
test/unit/periodictest.cpp
if (NOT TARGET gtest)
add_subdirectory(third-party/googletest-master)
endif()
if (CMAKE_VERSION VERSION_LESS 2.8.11)
include_directories("${gtest_SOURCE_DIR}/include")
endif()
add_executable(libicsneo-tests
test/main.cpp
test/diskdriverreadtest.cpp
test/diskdriverwritetest.cpp
test/eventmanagertest.cpp
test/ethernetpacketizertest.cpp
test/i2cencoderdecodertest.cpp
test/linencoderdecodertest.cpp
test/a2bencoderdecodertest.cpp
test/mdioencoderdecodertest.cpp
test/livedataencoderdecodertest.cpp
)
target_compile_options(libicsneo-unit-tests PRIVATE ${LIBICSNEO_COMPILER_WARNINGS})
target_link_libraries(libicsneo-tests gtest gtest_main)
target_link_libraries(libicsneo-tests icsneocpp)
target_link_libraries(libicsneo-unit-tests gtest gtest_main)
target_link_libraries(libicsneo-unit-tests icsneocpp)
target_link_libraries(libicsneo-unit-tests icsneoc2-static)
target_include_directories(libicsneo-unit-tests PUBLIC ${gtest_SOURCE_DIR}/include ${gtest_SOURCE_DIR})
target_include_directories(libicsneo-tests PUBLIC ${gtest_SOURCE_DIR}/include ${gtest_SOURCE_DIR})
enable_testing()
gtest_discover_tests(libicsneo-unit-tests TEST_PREFIX "unit/" PROPERTIES LABELS "unit")
add_test(NAME libicsneo-test-suite COMMAND libicsneo-tests)
endif()
set(CPACK_PROJECT_NAME ${PROJECT_NAME})
set(CPACK_PROJECT_VERSION ${PROJECT_VERSION})
include(CPack)
include(CPack)
+50
View File
@@ -0,0 +1,50 @@
# Hardware Support
- Connecting over Ethernet
- neoVI FIRE 2
- CAN works
- CAN FD works
- ValueCAN 4-2EL
- CAN works
- CAN FD works
- Ethernet works
- RADGalaxy
- CAN works
- Ethernet works
- RADStar 2
- CAN works
- Ethernet works
- RADA2B
- CAN works
- Ethernet works
- RADComet
- CAN works
- CAN FD works
- Ethernet works
- Connecting over USB
- ValueCAN 4 series
- CAN works
- CAN FD works
- Ethernet works (on 4-2EL)
- neoOBD2 PRO
- CAN works
- neoVI FIRE
- CAN works
- neoVI FIRE 2
- CAN works
- CAN FD works
- Ethernet works
- ValueCAN 3
- CAN works
- RADStar 2
- CAN works
- Ethernet works
- neoVI PLASMA
- CAN works
- neoVI ION
- CAN works
- RADA2B
- CAN works
- Ethernet works
- RADMoon3
+7 -23
View File
@@ -1,29 +1,13 @@
Copyright (c) 2018-2026 Intrepid Control Systems, Inc.
Copyright 2018-2023 Intrepid Control Systems, Inc.
Redistribution and use in source and binary forms, with or without modification,
are permitted provided that the following conditions are met:
Redistribution and use in source and binary forms, with or without modification, are permitted provided that the following conditions are met:
1. Redistributions of source code must retain the above copyright notice, this
list of conditions and the following disclaimer.
1. Redistributions of source code must retain the above copyright notice, this list of conditions and the following disclaimer.
2. Redistributions in binary form must reproduce the above copyright notice,
this list of conditions and the following disclaimer in the documentation
and/or other materials provided with the distribution.
2. Redistributions in binary form must reproduce the above copyright notice, this list of conditions and the following disclaimer in the documentation and/or other materials provided with the distribution.
3. Neither the name of the copyright holder nor the names of its contributors
may be used to endorse or promote products derived from this software without
specific prior written permission.
3. Neither the name of the copyright holder nor the names of its contributors may be used to endorse or promote products derived from this software without specific prior written permission.
4. It is forbidden to use this library or derivatives to interface with vehicle
networking hardware not produced by Intrepid Control Systems, Inc.
4. It is forbidden to use this library or derivatives to interface with vehicle networking hardware not produced by Intrepid Control Systems, Inc.
THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS "AS IS" AND
ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED
WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE
DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT HOLDER OR CONTRIBUTORS BE LIABLE FOR
ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES
(INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES;
LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON
ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
(INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF THIS
SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT HOLDER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
+164 -43
View File
@@ -1,55 +1,176 @@
# libicsneo
### The Intrepid Control Systems Open Source Cross-Platform Device Communication API
libicsneo is the [Intrepid Control Systems](https://intrepidcs.com/) device
communication library. Installation and usage documentation can be found within
each of the respective APIs.
An open source solution to integrate Intrepid Control Systems vehicle networking hardware with your application.
## Installation
[Read the Full Documentation](https://libicsneo.readthedocs.io/)
libicsneo relies on Servd, IntrepidCS's device communication server.
## Getting Started
There are two major ways to write a new application using libicsneo. You can use the C++ interface, which will be compiled with your project and statically linked, or you can use the C interface, which can be either statically or dynamically linked.
### Integration with CMake (Static Linking)
Integrating the library with your current CMake project is extremely easy.
1. Checkout the library (or add as a submodule) into a subdirectory of your project.
2. Within your `CMakeLists.txt` you can add the line `add_subdirectory("third-party/libicsneo")` to bring in the libicsneo targets. Replace `third-party` with any subdirectory you choose.
3. The libicsneo library include paths should automatically be added to your include path.
4. Link the library with your target by adding `target_link_libraries(libicsneocpp-example icsneocpp)` after your target, substituting `libicsneocpp-example` with your target application.
Servd can be installed for all platforms from https://cdn.intrepidcs.net/servd/.
You can now include either the C++ API with `#include <icsneo/icsneocpp.h>` or the C API with `#include <icsneo/icsneoc.h>`
Instructions for installing each API can be found in its respective documentation.
### DLL / SO / DYLIB Releases (Dynamic Linking)
It is also possible to use the precompiled binaries with runtime linking. It is not recommended or supported to attempt to use the C++ interface with dynamic linking due to the complexities of C++ compilers.
1. Add this repository's `/include` to your include path
2. Add `#define ICSNEOC_DYNAMICLOAD` to the top of your source file
2. Add `#import <icsneo/icsneoc.h>` below that line
3. Call `icsneo_init();` to import the library before using any other libicsneo functions.
4. Use the library as normal.
5. Call `icsneo_close();` to unload the library.
## Documentation
## Usage
### Using the C++ API
The C++ API is designed to be modern and easy to use. All library functions and classes are in the namespace `icsneo`. Most applications will start by calling `icsneo::FindAllDevices()`. This will return an `std::vector` of `std::shared_ptr<icsneo::Device>` objects. You will want to keep a copy of the `shared_ptr` to any devices you want to use, as allowing it to go out of scope will automatically close the device and free all memory associated with it.
- [C++](https://libicsneo.readthedocs.io/en/latest/icsneocpp/)
- [Python](https://libicsneo.readthedocs.io/en/latest/icsneopy/)
- [C](https://libicsneo.readthedocs.io/en/latest/icsneoc/) (deprecated, use C2)
- [C2](https://libicsneo.readthedocs.io/en/latest/icsneoc2/)
Any time you get bus traffic from the API, you will receive it as an `std::shared_ptr<icsneo::Message>`. The message will be valid as long as the `shared_ptr` stays in scope. Checking the type of the message allows you to cast it accordingly and access extra data for certain protocols. For instance, casting an `icsneo::Message` to an `icsneo::CANMessage` allows you to access the arbitration ID.
## Hardware Support
A barebones example is provided. For a more complete example, check the included `examples`.
``` c++
std::vector<std::shared_ptr<icsneo::Device>> devices = icsneo::FindAllDevices();
std::cout << devices.size() << " found!" << std::endl;
for(auto& device : devices)
std::cout << "Found " << device->describe() << std::endl; // "Found neoVI FIRE 2 CY2345"
std::shared_ptr<icsneo::Device> myDevice = devices[0];
- EtherBADGE
- neoVI Connect
- neoVI FIRE
- neoVI FIRE 2
- neoVI FIRE 3
- neoVI ION
- neoVI PLASMA
- neoVI RED 2
- RAD-A2B
- RAD-Comet 2
- RAD-Comet 3
- RAD-Epsilon
- RAD-EpsilonXL
- RAD-Galaxy
- RAD-Galaxy 2
- RAD-Gemini
- RAD-Gigastar
- RAD-Gigastar 2
- RAD-Moon 2
- RAD-Moon 3
- RAD-Moon T1S
- RAD-Pluto
- RAD-Star 2
- RAD-SuperMoon
- RADComet
- ValueCAN 3
- ValueCAN 4
if(!myDevice->open()) // Device tried and failed to open, print the last error
std::cout << icsneo::GetLastError() << std::endl;
## License
myDevice->goOnline(); // Start receiving messages
myDevice->enableMessagePolling(); // Allow the use of myDevice->getMessages() later
// Alternatively, assign a callback for new messages
std::this_thread::wait_for(std::chrono::seconds(5));
std::vector<std::shared_ptr<icsneo::Message>> messages = myDevice->getMessages();
std::cout << "We got " << messages.size() << " messages!" << std::endl;
for(auto& msg : messages) {
switch(msg->network.getType()) {
case icsneo::Network::Type::CAN:
case icsneo::Network::Type::SWCAN:
case icsneo::Network::Type::LSFTCAN: {
// A message of type CAN is guaranteed to be a CANMessage, so we can static cast safely
auto canmsg = std::static_pointer_cast<icsneo::CANMessage>(msg);
// canmsg->arbid is valid here
// canmsg->data is an std::vector<uint8_t>, you can check .size() for the DLC of the message
// canmsg->timestamp is the time recorded by the hardware in nanoseconds since (1/1/2007 12:00:00 GMT)
}
default:
// Handle others
}
}
myDevice->close();
```
libicsneo is licensed as BSD-3 with an extra clause, see [LICENSE](LICENSE)
for more details.
### Using the C API
The C API is designed to be a robust and fault tolerant interface which allows easy integration with other languages as well as existing C applications. When calling `icsneo_findAllDevices()` you will provide a buffer of `neodevice_t` structures, which will be written with the found devices. These `neodevice_t` structures can be uses to interface with the API from then on. Once you call `icsneo_close()` with a device, that device and all associated memory will be freed. You will need to run `icsneo_findAllDevices()` again to reconnect.
Messages are passed in the form of `neomessage_t` structures when calling `icsneo_getMessages()`. These structures contain a `uint8_t*` to the payload data, and this pointer will be valid until the next call to `icsneo_getMessages()` or the device is closed.
A barebones example is provided. For a more complete example, check the included `examples`.
``` c
size_t deviceCount = 10; // Pre-set to the size of your buffer before the icsneo_findAllDevices() call
neodevice_t devices[10];
icsneo_findAllDevices(devices, &deviceCount);
printf("We found %ull devices\n", deviceCount);
for(size_t i = 0; i < deviceCount; i++) {
neodevice_t* myDevice = &devices[i];
char desc[ICSNEO_DEVICETYPE_LONGEST_DESCRIPTION];
size_t sz = ICSNEO_DEVICETYPE_LONGEST_DESCRIPTION;
icsneo_describeDevice(myDevice, desc, &sz);
printf("Found %s\n", desc); // "Found neoVI FIRE 2 CY2345"
}
neodevice_t* myDevice = &devices[0];
if(!icsneo_openDevice(myDevice)) {
neoevent_t error;
if(icsneo_getLastError(&error))
printf("Error! %s\n", error.description);
}
icsneo_goOnline(myDevice); // Start receiving messages
icsneo_enableMessagePolling(myDevice); // Allow the use of icsneo_getMessages() later
sleep(5);
neomessage_t messages[50];
size_t messageCount = 50;
icsneo_getMessages(myDevice, messages, &messageCount, 0 /* non-blocking */);
printf("We got %ull messages!\n", messageCount);
for(size_t i = 0; i < messageCount; i++) {
if(messages[i].type == ICSNEO_NETWORK_TYPE_CAN) {
// A message of type CAN should be interperated a neomessage_can_t, so we can cast safely
neomessage_can_t* canmsg = (neomessage_can_t*)&messages[i];
// canmsg->arbid is valid here
// canmsg->data is an uint8_t*, you can check canmsg->length for the length of the payload
// canmsg->timestamp is the time recorded by the hardware in nanoseconds since (1/1/2007 12:00:00 GMT)
}
}
icsneo_closeDevice(myDevice);
```
### Debugging
To enable debug printing set the `LIBICSNEO_PRINT_EVENTS` environmental variable to the desired `APIEvent::Severity` level, all `Event`s greater than or equal to that level will be printed to stderr. For example, to print all warnings and errors: `LIBICSNEO_PRINT_EVENTS=32`.
## Building from Source
### FTD3XX
Some devices require FTD3XX for USB communication so the [FTDI D3XX library](https://ftdichip.com/drivers/d3xx-drivers/) will be automatically downloaded and included. If you would like to use a system copy of D3XX instead you can set `FTD3XX_ROOT` to the path containing `f3d3xx.h` (`-DFTD3XX_ROOT=<path to directory containing ftd3xx.h>`).
### Windows
- Open a terminal and install the following:
```
winget install Microsoft.VisualStudio.2022.Community
winget install Kitware.CMake
winget install Git.Git
winget install Ninja-build.Ninja
```
- Reboot so cmake is in the system path
- Open a developer Powershell for VS2022 and run the following:
```
git clone https://github.com/intrepidcs/libicsneo
cd libicsneo
cmake -S . -B build -G "Ninja"
cmake --build build
# All dlls and libs are now inside the build directory
```
Building will require MSVC 2017 version 15.7 or newer and CMake to be installed.
### macOS
Getting the dependencies is easiest with the Homebrew package manager. You will also need XCode installed. You can then install CMake, an up-to-date version of GCC or Clang, and `libusb-1.0`.
### Linux
#### General Dependencies
- CMake 3.12 or above
- GCC 7 or above
- `libusb-1.0-0-dev`
- `libpcap0.8-dev`
- `build-essential` is recommended
#### Fedora
```
dnf install git @development-tools gcc-c++ libpcap-devel libusb1-devel cmake
```
#### Debian/Ubuntu
```
apt install git build-essential libpcap0.8-dev libusb-1.0-0-dev cmake
```
#### Building
```
git clone https://github.com/intrepidcs/libicsneo
cd libicsneo
cmake -S . -B build
cmake --build build
# Optional: Install globally:
cp *.so /usr/local/lib/
```
#### udev
If you'd like to be able to run programs that use this library without being root, consider using the included udev rules:
```
cp 99-intrepidcs.rules /etc/udev/rules.d/
udevadm control --reload-rules && udevadm trigger
```
+14 -48
View File
@@ -111,11 +111,15 @@ bool icsneo_isValidNeoDevice(const neodevice_t* device) {
}
bool icsneo_openDevice(const neodevice_t* device) {
if(!icsneo_isValidNeoDevice(device))
if(!icsneo_isValidNeoDevice(device)) {
//todo error
return false;
}
if(!device->device->open())
return false;
if(!device->device->open()) {
//todo error
return false;
}
// We connected successfully, move the device to connected devices
std::vector<std::vector<std::shared_ptr<Device>>::iterator> itemsToMove;
@@ -144,17 +148,8 @@ bool icsneo_closeDevice(const neodevice_t* device) {
if((*it).get() == device->device)
itemsToDelete.push_back(it);
}
for(auto it : itemsToDelete) {
// Move it back into connectable devices so we can open it again.
// Without this we will be unable to use/reopen the device due to
// icsneo_isValidNeoDevice / icsneo_openDevice checks against this
// container. Since its closed we are in a connectable state again.
// Notice: When we search again this will be cleaned up by
// icsneo_freeUnconnectedDevices()
connectableFoundDevices.push_back(*it);
// Remove it from the connected devices as we are no longer connected.
for(auto it : itemsToDelete)
connectedDevices.erase(it);
}
return true;
}
@@ -229,7 +224,6 @@ bool icsneo_getMessages(const neodevice_t* device, neomessage_t* messages, size_
return false;
*items = storage.size();
for(size_t i = 0; i < *items; i++) {
// For each message, copy into neomessage_t buffer given
messages[i] = CreateNeoMessage(storage[i]);
@@ -750,40 +744,12 @@ int icsneo_getDeviceStatus(const neodevice_t* device, void* status, size_t* size
return true;
}
#ifdef ICSNEO_ENABLE_ANDROIDUSB
bool icsneo_addSysFileDescriptor(int sysFd) {
return icsneo::ANDROIDUSB::addSystemFD(sysFd);
bool icsneo_isOnlineSupported(const neodevice_t* device) {
if(!icsneo_isValidNeoDevice(device))
return false;
return device->device->isOnlineSupported();
}
bool icsneo_requestTC10Wake(const neodevice_t* device, neonetid_t netid) {
if(!icsneo_isValidNeoDevice(device))
return false;
return device->device->requestTC10Wake((Network::NetID)netid);
bool icsneo_removeSysFileDescriptor(int sysFd) {
return icsneo::ANDROIDUSB::removeSystemFD(sysFd);
}
bool icsneo_requestTC10Sleep(const neodevice_t* device, neonetid_t netid) {
if(!icsneo_isValidNeoDevice(device))
return false;
return device->device->requestTC10Sleep((Network::NetID)netid);
}
bool icsneo_getTC10Status(const neodevice_t* device, neonetid_t netid, neotc10status_t* status) {
if(!icsneo_isValidNeoDevice(device))
return false;
const auto statusMsg = device->device->getTC10Status((Network::NetID)netid);
if(!statusMsg)
return false;
status->wakeStatus = (neotc10wakestatus_t)statusMsg->wakeStatus;
status->sleepStatus = (neotc10sleepstatus_t)statusMsg->sleepStatus;
return true;
}
#endif
+1 -1
View File
@@ -29,7 +29,7 @@ BEGIN
VALUE "FileDescription", "Intrepid Control Systems Open Device Communication C API"
VALUE "FileVersion", VER_FILEVERSION_STR
VALUE "InternalName", "icsneoc.dll"
VALUE "LegalCopyright", "Intrepid Control Systems, Inc. (C) 2018-2026"
VALUE "LegalCopyright", "Intrepid Control Systems, Inc. (C) 2018-2023"
VALUE "OriginalFilename", "icsneoc.dll"
VALUE "ProductName", "libicsneo"
VALUE "ProductVersion", VER_PRODUCTVERSION_STR
File diff suppressed because it is too large Load Diff
-53
View File
@@ -1,53 +0,0 @@
// This header is for internal icsneoc2 use only, it should not be included by users of the API.
#pragma once
#include "icsneo/icsneoc2.h"
#include "icsneo/device/device.h"
#include "icsneo/communication/message/message.h"
#include "icsneo/communication/message/scriptstatusmessage.h"
#include "icsneo/api/event.h"
#include "icsneo/disk/diskdetails.h"
#include <memory>
#include <vector>
using namespace icsneo;
typedef struct icsneoc2_message_t {
std::shared_ptr<Message> message;
} icsneoc2_message_t;
typedef struct icsneoc2_event_t {
APIEvent event;
} icsneoc2_event_t;
typedef struct icsneoc2_device_info_t {
std::shared_ptr<Device> device;
icsneoc2_device_info_t* next;
} icsneoc2_device_info_t;
typedef struct icsneoc2_device_t {
std::shared_ptr<Device> device;
} icsneoc2_device_t;
typedef struct icsneoc2_disk_details_t {
std::shared_ptr<DiskDetails> details;
} icsneoc2_disk_details_t;
typedef struct icsneoc2_script_status_t {
std::shared_ptr<ScriptStatusMessage> status;
} icsneoc2_script_status_t;
/**
* Safely copies a std::string to a char array.
*
* @param dest The buffer to copy the string into
* @param dest_size* The size of the buffer. Will be modified to the length of the string without the null terminator.
* @param src The string to copy
*
* @return true if the string was successfully copied, false otherwise
*
* @note This function always null terminates the buffer, even if the string is too long.
* In the case of truncation, dest_size will reflect the truncated length (not including the null terminator).
*/
bool safe_str_copy(char* dest, size_t* dest_size, std::string_view src);
-617
View File
@@ -1,617 +0,0 @@
#include "icsneo/icsneoc2messages.h" // TODO: Remove this after the complete refactor
#include "icsneo/icsneoc2.h"
#include "icsneoc2_internal.h"
#include "icsneo/icsneocpp.h"
#include "icsneo/communication/message/message.h"
#include "icsneo/communication/message/canmessage.h"
#include "icsneo/communication/message/canerrormessage.h"
#include "icsneo/communication/message/linmessage.h"
#include "icsneo/communication/message/ethernetmessage.h"
#include "icsneo/communication/packet/canpacket.h"
icsneoc2_error_t icsneoc2_message_is_valid(icsneoc2_message_t* message, bool* is_valid) {
if(!message || !is_valid) {
return icsneoc2_error_invalid_parameters;
}
*is_valid = (bool)message->message;
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_message_is_transmit(icsneoc2_message_t* message, bool* value) {
if(!message || !value) {
return icsneoc2_error_invalid_parameters;
}
// We can static cast here because we are relying on the type being correct at this point
auto frame = std::dynamic_pointer_cast<Frame>(message->message);
if(!frame) {
return icsneoc2_error_invalid_type;
}
*value = frame->transmitted;
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_message_is_error(icsneoc2_message_t* message, bool* value) {
if(!message || !value) {
return icsneoc2_error_invalid_parameters;
}
auto frame = std::dynamic_pointer_cast<Frame>(message->message);
if(!frame) {
return icsneoc2_error_invalid_type;
}
*value = frame->error;
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_message_netid_get(icsneoc2_message_t* message, icsneoc2_netid_t* netid) {
if(!message || !netid) {
return icsneoc2_error_invalid_parameters;
}
auto raw = std::dynamic_pointer_cast<RawMessage>(message->message);
if(!raw) {
return icsneoc2_error_invalid_type;
}
*netid = static_cast<icsneoc2_netid_t>(raw->network.getNetID());
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_netid_name_get(icsneoc2_netid_t netid, char* value, size_t* value_length) {
if(!value || !value_length) {
return icsneoc2_error_invalid_parameters;
}
auto netid_str = std::string(Network::GetNetIDString(static_cast<Network::NetID>(netid), true));
// Copy the string into value
return safe_str_copy(value, value_length, netid_str) ? icsneoc2_error_success : icsneoc2_error_string_copy_failed;
}
icsneoc2_error_t icsneoc2_netid_network_type_get(icsneoc2_netid_t netid, icsneoc2_network_type_t* network_type) {
if(!network_type) {
return icsneoc2_error_invalid_parameters;
}
*network_type = static_cast<icsneoc2_network_type_t>(Network::GetTypeOfNetID(static_cast<Network::NetID>(netid), true));
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_message_netid_set(icsneoc2_message_t* message, icsneoc2_netid_t netid) {
if(!message) {
return icsneoc2_error_invalid_parameters;
}
auto raw = std::dynamic_pointer_cast<RawMessage>(message->message);
if(!raw) {
return icsneoc2_error_invalid_type;
}
raw->network = Network(static_cast<neonetid_t>(netid), true);
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_message_data_set(icsneoc2_message_t* message, uint8_t* data, size_t data_length) {
if(!message || !data) {
return icsneoc2_error_invalid_parameters;
}
// Make sure the message has the data field (RawMessage or Frame)
auto raw_message = std::dynamic_pointer_cast<RawMessage>(message->message);
if(!raw_message) {
return icsneoc2_error_invalid_type;
}
raw_message->data.resize(data_length);
std::copy(data, data + data_length, raw_message->data.begin());
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_message_data_get(icsneoc2_message_t* message, uint8_t* data, size_t* data_length) {
if(!message || !data_length) {
return icsneoc2_error_invalid_parameters;
}
// Make sure the message has the data field (RawMessage or Frame)
auto raw_message = std::dynamic_pointer_cast<RawMessage>(message->message);
if(!raw_message) {
return icsneoc2_error_invalid_type;
}
if(!data) {
*data_length = raw_message->data.size();
return icsneoc2_error_success;
}
if(*data_length < raw_message->data.size()) {
return icsneoc2_error_invalid_parameters;
}
std::copy(raw_message->data.begin(), raw_message->data.begin() + raw_message->data.size(), data);
*data_length = raw_message->data.size();
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_message_can_create(icsneoc2_message_t** message) {
if(!message) {
return icsneoc2_error_invalid_parameters;
}
try {
*message = new icsneoc2_message_t;
// Initialize the internal message as a CANMessage so that all icsneoc2_message_can_*_set
// functions work correctly on user-created transmit messages.
(*message)->message = std::make_shared<CANMessage>();
} catch(const std::bad_alloc&) {
return icsneoc2_error_out_of_memory;
}
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_message_free(icsneoc2_message_t* message) {
if(!message) {
return icsneoc2_error_invalid_parameters;
}
delete message;
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_message_can_props_set(icsneoc2_message_t* message, const uint64_t* arb_id, const uint64_t* flags) {
if(!message) {
return icsneoc2_error_invalid_parameters;
}
auto can_msg = std::dynamic_pointer_cast<CANMessage>(message->message);
if(!can_msg) {
return icsneoc2_error_invalid_type;
}
if(arb_id) {
can_msg->arbid = static_cast<uint32_t>(*arb_id);
}
if(flags) {
can_msg->isRemote = (*flags & ICSNEOC2_MESSAGE_CAN_FLAGS_RTR);
can_msg->isExtended = (*flags & ICSNEOC2_MESSAGE_CAN_FLAGS_IDE);
can_msg->isCANFD = (*flags & ICSNEOC2_MESSAGE_CAN_FLAGS_FDF);
can_msg->baudrateSwitch = (*flags & ICSNEOC2_MESSAGE_CAN_FLAGS_BRS);
can_msg->errorStateIndicator = (*flags & ICSNEOC2_MESSAGE_CAN_FLAGS_ESI);
}
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_message_can_props_get(icsneoc2_message_t* message, uint64_t* arb_id, uint64_t* flags) {
if(!message) {
return icsneoc2_error_invalid_parameters;
}
auto can_msg = std::dynamic_pointer_cast<CANMessage>(message->message);
if(!can_msg) {
return icsneoc2_error_invalid_type;
}
if(arb_id) {
*arb_id = can_msg->arbid;
}
if(flags) {
*flags = 0;
if(can_msg->isRemote) {
*flags |= ICSNEOC2_MESSAGE_CAN_FLAGS_RTR;
}
if(can_msg->isExtended) {
*flags |= ICSNEOC2_MESSAGE_CAN_FLAGS_IDE;
}
if(can_msg->isCANFD) {
*flags |= ICSNEOC2_MESSAGE_CAN_FLAGS_FDF;
}
if(can_msg->baudrateSwitch) {
*flags |= ICSNEOC2_MESSAGE_CAN_FLAGS_BRS;
}
if(can_msg->errorStateIndicator) {
*flags |= ICSNEOC2_MESSAGE_CAN_FLAGS_ESI;
}
if(can_msg->txAborted) {
*flags |= ICSNEOC2_MESSAGE_CAN_FLAGS_TX_ABORTED;
}
if(can_msg->txLostArb) {
*flags |= ICSNEOC2_MESSAGE_CAN_FLAGS_TX_LOST_ARB;
}
if(can_msg->txError) {
*flags |= ICSNEOC2_MESSAGE_CAN_FLAGS_TX_ERROR;
}
}
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_message_network_type_get(icsneoc2_message_t* message, icsneoc2_network_type_t* network_type) {
if(!message) {
return icsneoc2_error_invalid_parameters;
}
auto raw = std::dynamic_pointer_cast<RawMessage>(message->message);
if(!raw) {
return icsneoc2_error_invalid_type;
}
*network_type = (icsneoc2_network_type_t)raw->network.getType();
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_message_is_raw(icsneoc2_message_t* message, bool* is_raw) {
if(!message) {
return icsneoc2_error_invalid_parameters;
}
*is_raw = std::dynamic_pointer_cast<RawMessage>(message->message) != nullptr;
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_message_is_frame(icsneoc2_message_t* message, bool* is_frame) {
if(!message) {
return icsneoc2_error_invalid_parameters;
}
*is_frame = std::dynamic_pointer_cast<Frame>(message->message) != nullptr;
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_message_is_can(icsneoc2_message_t* message, bool* is_can) {
if(!message) {
return icsneoc2_error_invalid_parameters;
}
*is_can = std::dynamic_pointer_cast<CANMessage>(message->message) != nullptr;
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_message_is_can_error(icsneoc2_message_t* message, bool* is_can_error) {
if(!message || !is_can_error) {
return icsneoc2_error_invalid_parameters;
}
*is_can_error = std::dynamic_pointer_cast<CANErrorMessage>(message->message) != nullptr;
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_message_can_error_props_get(
icsneoc2_message_t *message, uint8_t *tx_err_count, uint8_t *rx_err_count,
icsneoc2_can_error_code_t *error_code,
icsneoc2_can_error_code_t *data_error_code,
icsneoc2_message_can_error_flags_t *flags) {
if(!message) {
return icsneoc2_error_invalid_parameters;
}
auto can_err = std::dynamic_pointer_cast<CANErrorMessage>(message->message);
if(!can_err) {
return icsneoc2_error_invalid_type;
}
if(tx_err_count) {
*tx_err_count = can_err->transmitErrorCount;
}
if(rx_err_count) {
*rx_err_count = can_err->receiveErrorCount;
}
if(error_code) {
*error_code = static_cast<icsneoc2_can_error_code_t>(can_err->errorCode);
}
if(data_error_code) {
*data_error_code = static_cast<icsneoc2_can_error_code_t>(can_err->dataErrorCode);
}
if(flags) {
*flags = 0;
if(can_err->busOff) {
*flags |= ICSNEOC2_MESSAGE_CAN_ERROR_FLAGS_BUS_OFF;
}
if(can_err->errorPassive) {
*flags |= ICSNEOC2_MESSAGE_CAN_ERROR_FLAGS_ERROR_PASSIVE;
}
if(can_err->errorWarn) {
*flags |= ICSNEOC2_MESSAGE_CAN_ERROR_FLAGS_ERROR_WARN;
}
}
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_message_is_lin(icsneoc2_message_t* message, bool* is_lin) {
if(!message || !is_lin) {
return icsneoc2_error_invalid_parameters;
}
*is_lin = std::dynamic_pointer_cast<LINMessage>(message->message) != nullptr;
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_message_lin_create(icsneoc2_message_t** message, uint8_t id) {
if(!message) {
return icsneoc2_error_invalid_parameters;
}
try {
*message = new icsneoc2_message_t;
(*message)->message = std::make_shared<LINMessage>(id);
} catch(const std::bad_alloc&) {
return icsneoc2_error_out_of_memory;
}
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_message_lin_props_get(const icsneoc2_message_t* message,
uint8_t* id, uint8_t* protected_id, uint8_t* checksum,
icsneoc2_lin_msg_type_t* msg_type, bool* is_enhanced_checksum) {
if(!message) {
return icsneoc2_error_invalid_parameters;
}
auto lin_msg = std::dynamic_pointer_cast<LINMessage>(message->message);
if(!lin_msg) {
return icsneoc2_error_invalid_type;
}
if(id) {
*id = lin_msg->ID;
}
if(protected_id) {
*protected_id = lin_msg->protectedID;
}
if(checksum) {
*checksum = lin_msg->checksum;
}
if(msg_type) {
*msg_type = static_cast<icsneoc2_lin_msg_type_t>(lin_msg->linMsgType);
}
if(is_enhanced_checksum) {
*is_enhanced_checksum = lin_msg->isEnhancedChecksum;
}
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_message_lin_props_set(icsneoc2_message_t* message,
const uint8_t* id, const uint8_t* checksum,
const icsneoc2_lin_msg_type_t* msg_type, const bool* is_enhanced_checksum) {
if(!message) {
return icsneoc2_error_invalid_parameters;
}
auto lin_msg = std::dynamic_pointer_cast<LINMessage>(message->message);
if(!lin_msg) {
return icsneoc2_error_invalid_type;
}
if(id) {
lin_msg->ID = *id & 0x3Fu;
lin_msg->protectedID = lin_msg->calcProtectedID(lin_msg->ID);
}
if(checksum) {
lin_msg->checksum = *checksum;
}
if(msg_type) {
lin_msg->linMsgType = static_cast<LINMessage::Type>(*msg_type);
}
if(is_enhanced_checksum) {
lin_msg->isEnhancedChecksum = *is_enhanced_checksum;
}
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_message_lin_err_flags_get(const icsneoc2_message_t* message, icsneoc2_lin_err_flags_t* err_flags) {
if(!message || !err_flags) {
return icsneoc2_error_invalid_parameters;
}
auto lin_msg = std::dynamic_pointer_cast<LINMessage>(message->message);
if(!lin_msg) {
return icsneoc2_error_invalid_type;
}
*err_flags = 0;
if(lin_msg->errFlags.ErrRxBreakOnly) *err_flags |= ICSNEOC2_LIN_ERR_RX_BREAK_ONLY;
if(lin_msg->errFlags.ErrRxBreakSyncOnly) *err_flags |= ICSNEOC2_LIN_ERR_RX_BREAK_SYNC_ONLY;
if(lin_msg->errFlags.ErrTxRxMismatch) *err_flags |= ICSNEOC2_LIN_ERR_TX_RX_MISMATCH;
if(lin_msg->errFlags.ErrRxBreakNotZero) *err_flags |= ICSNEOC2_LIN_ERR_RX_BREAK_NOT_ZERO;
if(lin_msg->errFlags.ErrRxBreakTooShort) *err_flags |= ICSNEOC2_LIN_ERR_RX_BREAK_TOO_SHORT;
if(lin_msg->errFlags.ErrRxSyncNot55) *err_flags |= ICSNEOC2_LIN_ERR_RX_SYNC_NOT_55;
if(lin_msg->errFlags.ErrRxDataLenOver8) *err_flags |= ICSNEOC2_LIN_ERR_RX_DATA_LEN_OVER_8;
if(lin_msg->errFlags.ErrFrameSync) *err_flags |= ICSNEOC2_LIN_ERR_FRAME_SYNC;
if(lin_msg->errFlags.ErrFrameMessageID) *err_flags |= ICSNEOC2_LIN_ERR_FRAME_MESSAGE_ID;
if(lin_msg->errFlags.ErrFrameResponderData) *err_flags |= ICSNEOC2_LIN_ERR_FRAME_RESPONDER_DATA;
if(lin_msg->errFlags.ErrChecksumMatch) *err_flags |= ICSNEOC2_LIN_ERR_CHECKSUM_MATCH;
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_message_lin_status_flags_get(const icsneoc2_message_t* message, icsneoc2_lin_status_flags_t* status_flags) {
if(!message || !status_flags) {
return icsneoc2_error_invalid_parameters;
}
auto lin_msg = std::dynamic_pointer_cast<LINMessage>(message->message);
if(!lin_msg) {
return icsneoc2_error_invalid_type;
}
*status_flags = 0;
if(lin_msg->statusFlags.TxChecksumEnhanced) *status_flags |= ICSNEOC2_LIN_STATUS_TX_CHECKSUM_ENHANCED;
if(lin_msg->statusFlags.TxCommander) *status_flags |= ICSNEOC2_LIN_STATUS_TX_COMMANDER;
if(lin_msg->statusFlags.TxResponder) *status_flags |= ICSNEOC2_LIN_STATUS_TX_RESPONDER;
if(lin_msg->statusFlags.TxAborted) *status_flags |= ICSNEOC2_LIN_STATUS_TX_ABORTED;
if(lin_msg->statusFlags.UpdateResponderOnce) *status_flags |= ICSNEOC2_LIN_STATUS_UPDATE_RESPONDER_ONCE;
if(lin_msg->statusFlags.HasUpdatedResponderOnce) *status_flags |= ICSNEOC2_LIN_STATUS_HAS_UPDATED_RESPONDER_ONCE;
if(lin_msg->statusFlags.BusRecovered) *status_flags |= ICSNEOC2_LIN_STATUS_BUS_RECOVERED;
if(lin_msg->statusFlags.BreakOnly) *status_flags |= ICSNEOC2_LIN_STATUS_BREAK_ONLY;
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_message_lin_calc_checksum(icsneoc2_message_t* message) {
if(!message) {
return icsneoc2_error_invalid_parameters;
}
auto lin_msg = std::dynamic_pointer_cast<LINMessage>(message->message);
if(!lin_msg) {
return icsneoc2_error_invalid_type;
}
LINMessage::calcChecksum(*lin_msg);
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_message_eth_create(icsneoc2_message_t** message) {
if(!message) {
return icsneoc2_error_invalid_parameters;
}
try {
*message = new icsneoc2_message_t;
(*message)->message = std::make_shared<EthernetMessage>();
} catch(const std::bad_alloc&) {
return icsneoc2_error_out_of_memory;
}
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_message_eth_props_set(icsneoc2_message_t* message, const icsneoc2_message_eth_flags_t* flags, const bool* has_fcs, const uint32_t* fcs) {
if(!message) {
return icsneoc2_error_invalid_parameters;
}
auto eth_msg = std::dynamic_pointer_cast<EthernetMessage>(message->message);
if(!eth_msg) {
return icsneoc2_error_invalid_type;
}
if(flags) {
eth_msg->frameTooShort = (*flags & ICSNEOC2_MESSAGE_ETH_FLAGS_FRAME_TOO_SHORT);
eth_msg->noPadding = (*flags & ICSNEOC2_MESSAGE_ETH_FLAGS_NO_PADDING);
eth_msg->fcsVerified = (*flags & ICSNEOC2_MESSAGE_ETH_FLAGS_FCS_VERIFIED);
eth_msg->txAborted = (*flags & ICSNEOC2_MESSAGE_ETH_FLAGS_TX_ABORTED);
eth_msg->crcError = (*flags & ICSNEOC2_MESSAGE_ETH_FLAGS_CRC_ERROR);
}
if(has_fcs && !*has_fcs) {
eth_msg->fcs = std::nullopt;
} else if(has_fcs && *has_fcs) {
// I'm pretty sure we can leave this alone, setting fcs below will take care of the behavior,
// otherwise we get into a weird state where we have to set fcs to zero if fcs is null but has_fcs is true.
}
if (fcs) {
eth_msg->fcs = *fcs;
}
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_message_eth_props_get(icsneoc2_message_t* message, icsneoc2_message_eth_flags_t* flags, bool* has_fcs, uint32_t* fcs) {
if(!message) {
return icsneoc2_error_invalid_parameters;
}
auto eth_msg = std::dynamic_pointer_cast<EthernetMessage>(message->message);
if(!eth_msg) {
return icsneoc2_error_invalid_type;
}
if(flags) {
*flags = 0;
if(eth_msg->noPadding)
*flags |= ICSNEOC2_MESSAGE_ETH_FLAGS_NO_PADDING;
if(eth_msg->fcsVerified)
*flags |= ICSNEOC2_MESSAGE_ETH_FLAGS_FCS_VERIFIED;
if(eth_msg->txAborted)
*flags |= ICSNEOC2_MESSAGE_ETH_FLAGS_TX_ABORTED;
if(eth_msg->crcError)
*flags |= ICSNEOC2_MESSAGE_ETH_FLAGS_CRC_ERROR;
if(eth_msg->frameTooShort)
*flags |= ICSNEOC2_MESSAGE_ETH_FLAGS_FRAME_TOO_SHORT;
}
if(has_fcs) {
*has_fcs = eth_msg->fcs.has_value();
}
if(fcs) {
if(eth_msg->fcs) {
*fcs = eth_msg->fcs.value();
} else {
*fcs = 0;
}
}
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_message_eth_mac_get(icsneoc2_message_t* message, uint8_t* dst_mac, uint8_t* src_mac) {
if(!message) {
return icsneoc2_error_invalid_parameters;
}
auto eth_msg = std::dynamic_pointer_cast<EthernetMessage>(message->message);
if(!eth_msg) {
return icsneoc2_error_invalid_type;
}
if(dst_mac) {
if(auto mac = eth_msg->getDestinationMAC(); mac.has_value()) {
const auto& mac_value = mac.value();
std::memcpy(dst_mac, mac_value.data(), mac_value.size());
} else {
return icsneoc2_error_invalid_data;
}
}
if(src_mac) {
if(auto mac = eth_msg->getSourceMAC(); mac.has_value()) {
const auto& mac_value = mac.value();
std::memcpy(src_mac, mac_value.data(), mac_value.size());
} else {
return icsneoc2_error_invalid_data;
}
}
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_message_eth_ether_type_get(icsneoc2_message_t* message, uint16_t* ether_type) {
if(!message || !ether_type) {
return icsneoc2_error_invalid_parameters;
}
auto eth_msg = std::dynamic_pointer_cast<EthernetMessage>(message->message);
if(!eth_msg) {
return icsneoc2_error_invalid_type;
}
if (auto et = eth_msg->getEtherType(); et.has_value()) {
*ether_type = et.value();
} else {
return icsneoc2_error_invalid_data;
}
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_message_eth_t1s_props_set(icsneoc2_message_t* message, const icsneoc2_message_eth_t1s_flags_t* flags, const uint8_t* node_id, const uint8_t* burst_count, const uint8_t* symbol_type) {
if(!message) {
return icsneoc2_error_invalid_parameters;
}
auto eth_msg = std::dynamic_pointer_cast<EthernetMessage>(message->message);
if(!eth_msg) {
return icsneoc2_error_invalid_type;
}
// If all parameters are null/zero, clear the T1S state. Otherwise, if any parameters are set and we don't have a T1S state, create it.
if(!flags && !node_id && !burst_count && !symbol_type) {
eth_msg->t1s = std::nullopt;
return icsneoc2_error_success;
}
if((flags || node_id || burst_count || symbol_type) && !eth_msg->t1s.has_value()) {
eth_msg->t1s.emplace();
}
if(flags) {
eth_msg->t1s->isSymbol = (*flags & ICSNEOC2_MESSAGE_ETH_T1S_FLAGS_IS_T1S_SYMBOL);
eth_msg->t1s->isBurst = (*flags & ICSNEOC2_MESSAGE_ETH_T1S_FLAGS_IS_T1S_BURST);
eth_msg->t1s->txCollision = (*flags & ICSNEOC2_MESSAGE_ETH_T1S_FLAGS_TX_COLLISION);
eth_msg->t1s->isWake = (*flags & ICSNEOC2_MESSAGE_ETH_T1S_FLAGS_IS_T1S_WAKE);
}
if(node_id) {
eth_msg->t1s->nodeId = *node_id;
}
if(burst_count) {
eth_msg->t1s->burstCount = *burst_count;
}
if(symbol_type) {
eth_msg->t1s->symbolType = *symbol_type;
}
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_message_eth_t1s_props_get(icsneoc2_message_t* message, icsneoc2_message_eth_t1s_flags_t* flags, uint8_t* node_id, uint8_t* burst_count, uint8_t* symbol_type) {
if(!message) {
return icsneoc2_error_invalid_parameters;
}
auto eth_msg = std::dynamic_pointer_cast<EthernetMessage>(message->message);
if(!eth_msg) {
return icsneoc2_error_invalid_type;
}
if(flags) {
*flags = 0;
if(eth_msg->t1s.has_value()) {
if(eth_msg->t1s->isSymbol)
*flags |= ICSNEOC2_MESSAGE_ETH_T1S_FLAGS_IS_T1S_SYMBOL;
if(eth_msg->t1s->isBurst)
*flags |= ICSNEOC2_MESSAGE_ETH_T1S_FLAGS_IS_T1S_BURST;
if(eth_msg->t1s->txCollision)
*flags |= ICSNEOC2_MESSAGE_ETH_T1S_FLAGS_TX_COLLISION;
if(eth_msg->t1s->isWake)
*flags |= ICSNEOC2_MESSAGE_ETH_T1S_FLAGS_IS_T1S_WAKE;
}
}
if(node_id) {
*node_id = eth_msg->t1s.has_value() ? eth_msg->t1s->nodeId : 0;
}
if(burst_count) {
*burst_count = eth_msg->t1s.has_value() ? eth_msg->t1s->burstCount : 0;
}
if(symbol_type) {
*symbol_type = eth_msg->t1s.has_value() ? eth_msg->t1s->symbolType : 0;
}
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_message_is_ethernet(icsneoc2_message_t* message, bool* is_ethernet) {
if(!message) {
return icsneoc2_error_invalid_parameters;
}
*is_ethernet = std::dynamic_pointer_cast<EthernetMessage>(message->message) != nullptr;
return icsneoc2_error_success;
}
-894
View File
@@ -1,894 +0,0 @@
#include "icsneo/icsneoc2.h"
#include "icsneo/icsneoc2settings.h"
#include "icsneo/device/device.h"
#include "icsneo/device/devicefinder.h"
#include "icsneo/icsneocpp.h"
#include "icsneo/communication/message/message.h"
#include "icsneo/communication/message/canmessage.h"
#include "icsneo/communication/message/linmessage.h"
#include "icsneo/communication/message/ethernetmessage.h"
#include "icsneo/communication/packet/canpacket.h"
#include "icsneo/communication/io.h"
#include <string>
#include <vector>
#include <list>
#include <map>
#include <algorithm>
#include <optional>
#include <sstream>
using namespace icsneo;
#include "icsneoc2_internal.h"
icsneoc2_error_t icsneoc2_settings_apply_defaults(icsneoc2_device_t* device, bool save) {
// Make sure the device is valid
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
if(!device->device->settings->applyDefaults(!save)) {
return icsneoc2_error_set_settings_failure;
}
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_settings_apply(icsneoc2_device_t* device) {
// Make sure the device is valid
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
if(!device->device->settings->apply()) {
return icsneoc2_error_set_settings_failure;
}
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_settings_refresh(icsneoc2_device_t* device) {
// Make sure the device is valid
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
if(!device->device->settings->refresh()) {
return icsneoc2_error_get_settings_failure;
}
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_settings_baudrate_get(icsneoc2_device_t* device, icsneoc2_netid_t netid, int64_t* baudrate) {
if(!baudrate) {
return icsneoc2_error_invalid_parameters;
}
// Make sure the device is valid
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
auto baudrate_value = device->device->settings->getBaudrateFor(Network(netid));
if(baudrate_value < 0) {
*baudrate = 0;
return icsneoc2_error_invalid_type;
}
*baudrate = baudrate_value;
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_settings_baudrate_set(icsneoc2_device_t* device, icsneoc2_netid_t netid, int64_t baudrate) {
// Make sure the device is valid
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
if(!device->device->settings->setBaudrateFor(Network(netid), baudrate)) {
return icsneoc2_error_set_settings_failure;
}
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_settings_canfd_baudrate_get(icsneoc2_device_t* device, icsneoc2_netid_t netid, int64_t* baudrate) {
if(!baudrate) {
return icsneoc2_error_invalid_parameters;
}
// Make sure the device is valid
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
*baudrate = device->device->settings->getFDBaudrateFor(Network(netid));
if(*baudrate < 0) {
*baudrate = 0;
return icsneoc2_error_invalid_type;
}
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_settings_canfd_baudrate_set(icsneoc2_device_t* device, icsneoc2_netid_t netid, int64_t baudrate) {
// Make sure the device is valid
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
if(!device->device->settings->setFDBaudrateFor(Network(netid), baudrate)) {
return icsneoc2_error_set_settings_failure;
}
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_settings_termination_is_supported(icsneoc2_device_t* device, icsneoc2_netid_t netid, bool* supported) {
// Make sure the device is valid
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
if(!supported) {
return icsneoc2_error_invalid_parameters;
}
*supported = device->device->settings->isTerminationSupportedFor(Network(static_cast<Network::NetID>(netid)));
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_settings_termination_can_enable(icsneoc2_device_t* device, icsneoc2_netid_t netid, bool* can_enable) {
// Make sure the device is valid
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
if(!can_enable) {
return icsneoc2_error_invalid_parameters;
}
*can_enable = device->device->settings->canTerminationBeEnabledFor(Network(static_cast<Network::NetID>(netid)));
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_settings_termination_is_enabled(icsneoc2_device_t* device, icsneoc2_netid_t netid, bool* enabled) {
// Make sure the device is valid
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
if(!enabled) {
return icsneoc2_error_invalid_parameters;
}
*enabled = device->device->settings->isTerminationEnabledFor(Network(static_cast<Network::NetID>(netid))).value_or(false);
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_settings_termination_set(icsneoc2_device_t* device, icsneoc2_netid_t netid, bool enable) {
// Make sure the device is valid
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
if(!device->device->settings->setTerminationFor(Network(static_cast<Network::NetID>(netid)), enable)) {
return icsneoc2_error_set_settings_failure;
}
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_settings_commander_resistor_enabled(icsneoc2_device_t* device, icsneoc2_netid_t netid, bool* enabled) {
// Make sure the device is valid
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
if(!enabled) {
return icsneoc2_error_invalid_parameters;
}
*enabled = device->device->settings->isCommanderResistorEnabledFor(Network(static_cast<Network::NetID>(netid))).value_or(false);
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_settings_commander_resistor_set(icsneoc2_device_t* device, icsneoc2_netid_t netid, bool enable) {
// Make sure the device is valid
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
if(!device->device->settings->setCommanderResistorFor(Network(static_cast<Network::NetID>(netid)), enable)) {
return icsneoc2_error_set_settings_failure;
}
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_settings_lin_mode_get(icsneoc2_device_t* device, icsneoc2_netid_t netid, icsneoc2_lin_mode_t* value) {
// Make sure the device is valid
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
if(!value) {
return icsneoc2_error_invalid_parameters;
}
auto network = Network(static_cast<Network::NetID>(netid));
if(auto result = device->device->settings->getLINModeFor(network); result.has_value()) {
*value = static_cast<icsneoc2_lin_mode_t>(result.value());
return icsneoc2_error_success;
} else {
*value = 0;
return icsneoc2_error_get_settings_failure;
}
}
icsneoc2_error_t icsneoc2_settings_lin_mode_set(icsneoc2_device_t* device, icsneoc2_netid_t netid, icsneoc2_lin_mode_t value) {
// Make sure the device is valid
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
auto network = Network(static_cast<Network::NetID>(netid));
if(!device->device->settings->setLINModeFor(network, static_cast<LINMode>(value))) {
return icsneoc2_error_set_settings_failure;
}
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_settings_lin_commander_response_time_get(icsneoc2_device_t* device, icsneoc2_netid_t netid, uint8_t* value) {
// Make sure the device is valid
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
if(!value) {
return icsneoc2_error_invalid_parameters;
}
auto network = Network(static_cast<Network::NetID>(netid));
if(auto result = device->device->settings->getLINCommanderResponseTimeFor(network); result.has_value()) {
*value = result.value();
return icsneoc2_error_success;
} else {
*value = 0;
return icsneoc2_error_get_settings_failure;
}
}
icsneoc2_error_t icsneoc2_settings_lin_commander_response_time_set(icsneoc2_device_t* device, icsneoc2_netid_t netid, uint8_t value) {
// Make sure the device is valid
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
auto network = Network(static_cast<Network::NetID>(netid));
if(!device->device->settings->setLINCommanderResponseTimeFor(network, value)) {
return icsneoc2_error_set_settings_failure;
}
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_settings_phy_enable_get(icsneoc2_device_t* device, uint8_t index, bool* value) {
// Make sure the device is valid
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
if(!value) {
return icsneoc2_error_invalid_parameters;
}
if(auto result = device->device->settings->getPhyEnable(index); result.has_value()) {
*value = result.value();
return icsneoc2_error_success;
} else {
*value = false;
return icsneoc2_error_get_settings_failure;
}
}
icsneoc2_error_t icsneoc2_settings_phy_enable_set(icsneoc2_device_t* device, uint8_t index, bool value) {
// Make sure the device is valid
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
if(!device->device->settings->setPhyEnable(index, value)) {
return icsneoc2_error_set_settings_failure;
}
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_settings_phy_mode_get(icsneoc2_device_t* device, uint8_t index, icsneoc2_ae_link_mode_t* value) {
// Make sure the device is valid
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
if(!value) {
return icsneoc2_error_invalid_parameters;
}
if(auto result = device->device->settings->getPhyMode(index); result.has_value()) {
*value = static_cast<icsneoc2_ae_link_mode_t>(result.value());
return icsneoc2_error_success;
} else {
*value = 0;
return icsneoc2_error_get_settings_failure;
}
}
icsneoc2_error_t icsneoc2_settings_phy_mode_set(icsneoc2_device_t* device, uint8_t index, icsneoc2_ae_link_mode_t value) {
// Make sure the device is valid
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
if(!device->device->settings->setPhyMode(index, static_cast<AELinkMode>(value))) {
return icsneoc2_error_set_settings_failure;
}
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_settings_phy_speed_get(icsneoc2_device_t* device, uint8_t index, icsneoc2_eth_phy_link_mode_t* value) {
// Make sure the device is valid
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
if(!value) {
return icsneoc2_error_invalid_parameters;
}
if(auto result = device->device->settings->getPhySpeed(index); result.has_value()) {
*value = static_cast<icsneoc2_eth_phy_link_mode_t>(result.value());
return icsneoc2_error_success;
} else {
*value = 0;
return icsneoc2_error_get_settings_failure;
}
}
icsneoc2_error_t icsneoc2_settings_phy_speed_set(icsneoc2_device_t* device, uint8_t index, icsneoc2_eth_phy_link_mode_t value) {
// Make sure the device is valid
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
if(!device->device->settings->setPhySpeed(index, static_cast<EthPhyLinkMode>(value))) {
return icsneoc2_error_set_settings_failure;
}
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_settings_phy_role_for_get(icsneoc2_device_t* device, icsneoc2_netid_t netid, icsneoc2_ae_link_mode_t* value) {
// Make sure the device is valid
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
if(!value) {
return icsneoc2_error_invalid_parameters;
}
auto network = Network(static_cast<Network::NetID>(netid));
if(auto result = device->device->settings->getPhyRoleFor(network); result.has_value()) {
*value = static_cast<icsneoc2_ae_link_mode_t>(result.value());
return icsneoc2_error_success;
} else {
*value = 0;
return icsneoc2_error_get_settings_failure;
}
}
icsneoc2_error_t icsneoc2_settings_phy_role_for_set(icsneoc2_device_t* device, icsneoc2_netid_t netid, icsneoc2_ae_link_mode_t value) {
// Make sure the device is valid
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
auto network = Network(static_cast<Network::NetID>(netid));
if(!device->device->settings->setPhyRoleFor(network, static_cast<AELinkMode>(value))) {
return icsneoc2_error_set_settings_failure;
}
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_settings_phy_link_mode_for_get(icsneoc2_device_t* device, icsneoc2_netid_t netid, icsneoc2_eth_phy_link_mode_t* value) {
// Make sure the device is valid
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
if(!value) {
return icsneoc2_error_invalid_parameters;
}
auto network = Network(static_cast<Network::NetID>(netid));
if(auto result = device->device->settings->getPhyLinkModeFor(network); result.has_value()) {
*value = static_cast<icsneoc2_eth_phy_link_mode_t>(result.value());
return icsneoc2_error_success;
} else {
*value = 0;
return icsneoc2_error_get_settings_failure;
}
}
icsneoc2_error_t icsneoc2_settings_phy_link_mode_for_set(icsneoc2_device_t* device, icsneoc2_netid_t netid, icsneoc2_eth_phy_link_mode_t value) {
// Make sure the device is valid
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
auto network = Network(static_cast<Network::NetID>(netid));
if(!device->device->settings->setPhyLinkModeFor(network, static_cast<EthPhyLinkMode>(value))) {
return icsneoc2_error_set_settings_failure;
}
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_settings_phy_enable_for_get(icsneoc2_device_t* device, icsneoc2_netid_t netid, bool* value) {
// Make sure the device is valid
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
if(!value) {
return icsneoc2_error_invalid_parameters;
}
auto network = Network(static_cast<Network::NetID>(netid));
if(auto result = device->device->settings->getPhyEnableFor(network); result.has_value()) {
*value = result.value();
return icsneoc2_error_success;
} else {
*value = false;
return icsneoc2_error_get_settings_failure;
}
}
icsneoc2_error_t icsneoc2_settings_phy_enable_for_set(icsneoc2_device_t* device, icsneoc2_netid_t netid, bool value) {
// Make sure the device is valid
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
auto network = Network(static_cast<Network::NetID>(netid));
if(!device->device->settings->setPhyEnableFor(network, value)) {
return icsneoc2_error_set_settings_failure;
}
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_settings_supported_phy_link_modes_for(icsneoc2_device_t* device, icsneoc2_netid_t netid, icsneoc2_eth_phy_link_mode_t** link_modes, size_t* link_modes_count) {
// Make sure the device is valid
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
if(!link_modes || !link_modes_count) {
return icsneoc2_error_invalid_parameters;
}
auto network = Network(static_cast<Network::NetID>(netid));
auto modes = device->device->settings->getSupportedPhyLinkModesFor(network);
*link_modes_count = std::minmax(modes.size(), *link_modes_count).first;
memcpy(*link_modes, modes.data(), *link_modes_count * sizeof(icsneoc2_eth_phy_link_mode_t));
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_settings_t1s_is_plca_enabled_for(icsneoc2_device_t* device, icsneoc2_netid_t netid, bool* value) {
// Make sure the device is valid
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
if(!value) {
return icsneoc2_error_invalid_parameters;
}
auto network = Network(static_cast<Network::NetID>(netid));
if(auto result = device->device->settings->isT1SPLCAEnabledFor(network); result.has_value()) {
*value = result.value();
return icsneoc2_error_success;
} else {
*value = false;
return icsneoc2_error_get_settings_failure;
}
}
icsneoc2_error_t icsneoc2_settings_t1s_plca_enabled_for_set(icsneoc2_device_t* device, icsneoc2_netid_t netid, bool value) {
// Make sure the device is valid
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
auto network = Network(static_cast<Network::NetID>(netid));
if(!device->device->settings->setT1SPLCAFor(network, value)) {
return icsneoc2_error_set_settings_failure;
}
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_settings_t1s_local_id_get(icsneoc2_device_t* device, icsneoc2_netid_t netid, uint8_t* value){
// Make sure the device is valid
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
if(!value) {
return icsneoc2_error_invalid_parameters;
}
auto network = Network(static_cast<Network::NetID>(netid));
if(auto result = device->device->settings->getT1SLocalIDFor(network); result.has_value()) {
*value = result.value();
return icsneoc2_error_success;
} else {
*value = 0;
return icsneoc2_error_get_settings_failure;
}
}
icsneoc2_error_t icsneoc2_settings_t1s_local_id_set(icsneoc2_device_t* device, icsneoc2_netid_t netid, uint8_t value){
// Make sure the device is valid
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
auto network = Network(static_cast<Network::NetID>(netid));
if(!device->device->settings->setT1SLocalIDFor(network, value)) {
return icsneoc2_error_set_settings_failure;
}
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_settings_t1s_max_nodes_get(icsneoc2_device_t* device, icsneoc2_netid_t netid, uint8_t* value) {
// Make sure the device is valid
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
if(!value) {
return icsneoc2_error_invalid_parameters;
}
auto network = Network(static_cast<Network::NetID>(netid));
if(auto result = device->device->settings->getT1SMaxNodesFor(network); result.has_value()) {
*value = result.value();
return icsneoc2_error_success;
} else {
*value = 0;
return icsneoc2_error_get_settings_failure;
}
}
icsneoc2_error_t icsneoc2_settings_t1s_max_nodes_set(icsneoc2_device_t* device, icsneoc2_netid_t netid, uint8_t value) {
// Make sure the device is valid
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
auto network = Network(static_cast<Network::NetID>(netid));
if(!device->device->settings->setT1SMaxNodesFor(network, value)) {
return icsneoc2_error_set_settings_failure;
}
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_settings_t1s_tx_opp_timer_get(icsneoc2_device_t* device, icsneoc2_netid_t netid, uint8_t* value) {
// Make sure the device is valid
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
if(!value) {
return icsneoc2_error_invalid_parameters;
}
auto network = Network(static_cast<Network::NetID>(netid));
if(auto result = device->device->settings->getT1STxOppTimerFor(network); result.has_value()) {
*value = result.value();
return icsneoc2_error_success;
} else {
*value = 0;
return icsneoc2_error_get_settings_failure;
}
}
icsneoc2_error_t icsneoc2_settings_t1s_tx_opp_timer_set(icsneoc2_device_t* device, icsneoc2_netid_t netid, uint8_t value) {
// Make sure the device is valid
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
auto network = Network(static_cast<Network::NetID>(netid));
if(!device->device->settings->setT1STxOppTimerFor(network, value)) {
return icsneoc2_error_set_settings_failure;
}
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_settings_t1s_burst_timer_get(icsneoc2_device_t* device, icsneoc2_netid_t netid, uint8_t* value) {
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
if(!value) {
return icsneoc2_error_invalid_parameters;
}
auto network = Network(static_cast<Network::NetID>(netid));
if(auto result = device->device->settings->getT1SBurstTimerFor(network); result.has_value()) {
*value = result.value();
return icsneoc2_error_success;
} else {
*value = 0;
return icsneoc2_error_get_settings_failure;
}
}
icsneoc2_error_t icsneoc2_settings_t1s_burst_timer_set(icsneoc2_device_t* device, icsneoc2_netid_t netid, uint8_t value) {
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
auto network = Network(static_cast<Network::NetID>(netid));
if(!device->device->settings->setT1SBurstTimerFor(network, value)) {
return icsneoc2_error_set_settings_failure;
}
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_settings_t1s_max_burst_timer_for_get(icsneoc2_device_t* device, icsneoc2_netid_t netid, uint8_t* value) {
// Make sure the device is valid
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
if(!value) {
return icsneoc2_error_invalid_parameters;
}
auto network = Network(static_cast<Network::NetID>(netid));
if(auto result = device->device->settings->getT1SMaxBurstFor(network); result.has_value()) {
*value = result.value();
return icsneoc2_error_success;
} else {
*value = 0;
return icsneoc2_error_get_settings_failure;
}
}
icsneoc2_error_t icsneoc2_settings_t1s_max_burst_timer_for_set(icsneoc2_device_t* device, icsneoc2_netid_t netid, uint8_t value) {
// Make sure the device is valid
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
auto network = Network(static_cast<Network::NetID>(netid));
if(!device->device->settings->setT1SMaxBurstFor(network, value)) {
return icsneoc2_error_set_settings_failure;
}
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_settings_t1s_local_id_alternate_get(icsneoc2_device_t* device, icsneoc2_netid_t netid, uint8_t* value) {
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
if(!value) {
return icsneoc2_error_invalid_parameters;
}
auto network = Network(static_cast<Network::NetID>(netid));
if(auto result = device->device->settings->getT1SLocalIDAlternateFor(network); result.has_value()) {
*value = result.value();
return icsneoc2_error_success;
} else {
*value = 0;
return icsneoc2_error_get_settings_failure;
}
}
icsneoc2_error_t icsneoc2_settings_t1s_local_id_alternate_set(icsneoc2_device_t* device, icsneoc2_netid_t netid, uint8_t value) {
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
auto network = Network(static_cast<Network::NetID>(netid));
if(!device->device->settings->setT1SLocalIDAlternateFor(network, value)) {
return icsneoc2_error_set_settings_failure;
}
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_settings_t1s_is_termination_enabled_for(icsneoc2_device_t* device, icsneoc2_netid_t netid, bool* value) {
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
if(!value) {
return icsneoc2_error_invalid_parameters;
}
auto network = Network(static_cast<Network::NetID>(netid));
if(auto result = device->device->settings->isT1STerminationEnabledFor(network); result.has_value()) {
*value = result.value();
return icsneoc2_error_success;
} else {
*value = false;
return icsneoc2_error_get_settings_failure;
}
}
icsneoc2_error_t icsneoc2_settings_t1s_termination_for_set(icsneoc2_device_t* device, icsneoc2_netid_t netid, bool value) {
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
auto network = Network(static_cast<Network::NetID>(netid));
if(!device->device->settings->setT1STerminationFor(network, value)) {
return icsneoc2_error_set_settings_failure;
}
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_settings_t1s_is_bus_decoding_beacons_enabled_for(icsneoc2_device_t* device, icsneoc2_netid_t netid, bool* value) {
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
if(!value) {
return icsneoc2_error_invalid_parameters;
}
auto network = Network(static_cast<Network::NetID>(netid));
if(auto result = device->device->settings->isT1SBusDecodingBeaconsEnabledFor(network); result.has_value()) {
*value = result.value();
return icsneoc2_error_success;
} else {
*value = false;
return icsneoc2_error_get_settings_failure;
}
}
icsneoc2_error_t icsneoc2_settings_t1s_bus_decoding_beacons_for_set(icsneoc2_device_t* device, icsneoc2_netid_t netid, bool value) {
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
auto network = Network(static_cast<Network::NetID>(netid));
if(!device->device->settings->setT1SBusDecodingBeaconsFor(network, value)) {
return icsneoc2_error_set_settings_failure;
}
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_settings_t1s_is_bus_decoding_all_enabled_for(icsneoc2_device_t* device, icsneoc2_netid_t netid, bool* value) {
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
if(!value) {
return icsneoc2_error_invalid_parameters;
}
auto network = Network(static_cast<Network::NetID>(netid));
if(auto result = device->device->settings->isT1SBusDecodingAllEnabledFor(network); result.has_value()) {
*value = result.value();
return icsneoc2_error_success;
} else {
*value = false;
return icsneoc2_error_get_settings_failure;
}
}
icsneoc2_error_t icsneoc2_settings_t1s_bus_decoding_all_for_set(icsneoc2_device_t* device, icsneoc2_netid_t netid, bool value) {
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
auto network = Network(static_cast<Network::NetID>(netid));
if(!device->device->settings->setT1SBusDecodingAllFor(network, value)) {
return icsneoc2_error_set_settings_failure;
}
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_settings_t1s_multi_id_enable_mask_get(icsneoc2_device_t* device, icsneoc2_netid_t netid, uint8_t* value) {
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
if(!value) {
return icsneoc2_error_invalid_parameters;
}
auto network = Network(static_cast<Network::NetID>(netid));
if(auto result = device->device->settings->getT1SMultiIDEnableMaskFor(network); result.has_value()) {
*value = result.value();
return icsneoc2_error_success;
} else {
*value = 0;
return icsneoc2_error_get_settings_failure;
}
}
icsneoc2_error_t icsneoc2_settings_t1s_multi_id_enable_mask_set(icsneoc2_device_t* device, icsneoc2_netid_t netid, uint8_t value) {
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
auto network = Network(static_cast<Network::NetID>(netid));
if(!device->device->settings->setT1SMultiIDEnableMaskFor(network, value)) {
return icsneoc2_error_set_settings_failure;
}
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_settings_t1s_multi_id_get(icsneoc2_device_t* device, icsneoc2_netid_t netid, uint8_t index, uint8_t* value) {
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
if(!value) {
return icsneoc2_error_invalid_parameters;
}
auto network = Network(static_cast<Network::NetID>(netid));
if(auto result = device->device->settings->getT1SMultiIDFor(network, index); result.has_value()) {
*value = result.value();
return icsneoc2_error_success;
} else {
*value = 0;
return icsneoc2_error_get_settings_failure;
}
}
icsneoc2_error_t icsneoc2_settings_t1s_multi_id_set(icsneoc2_device_t* device, icsneoc2_netid_t netid, uint8_t index, uint8_t value) {
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
auto network = Network(static_cast<Network::NetID>(netid));
if(!device->device->settings->setT1SMultiIDFor(network, index, value)) {
return icsneoc2_error_set_settings_failure;
}
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_settings_misc_io_analog_output_enabled_set(icsneoc2_device_t* device, uint8_t pin, uint8_t value) {
// Make sure the device is valid
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
if(!device->device->settings->setMiscIOAnalogOutputEnabled(pin, value)) {
return icsneoc2_error_set_settings_failure;
}
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_settings_misc_io_analog_output_set(icsneoc2_device_t* device, uint8_t pin, icsneoc2_misc_io_analog_voltage_t value) {
// Make sure the device is valid
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
if(!device->device->settings->setMiscIOAnalogOutput(pin, static_cast<MiscIOAnalogVoltage>(value))) {
return icsneoc2_error_set_settings_failure;
}
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_settings_disabled_get(icsneoc2_device_t* device, bool* value) {
if(!value) {
return icsneoc2_error_invalid_parameters;
}
// Make sure the device is valid
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
*value = device->device->settings->disabled;
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_settings_readonly_get(icsneoc2_device_t* device, bool* value) {
if(!value) {
return icsneoc2_error_invalid_parameters;
}
// Make sure the device is valid
auto res = icsneoc2_device_is_valid(device);
if(res != icsneoc2_error_success) {
return res;
}
*value = device->device->settings->readonly;
return icsneoc2_error_success;
}
-51
View File
@@ -1,51 +0,0 @@
#define VER_FILEVERSION @PROJECT_VERSION_MAJOR@,@PROJECT_VERSION_MINOR@,@PROJECT_VERSION_PATCH@
#define VER_FILEVERSION_STR "v@PROJECT_VERSION_MAJOR@.@PROJECT_VERSION_MINOR@.@PROJECT_VERSION_PATCH@@BUILD_METADATA_PLUS@ @BUILD_GIT_INFO@"
#define VER_PRODUCTVERSION VER_FILEVERSION
#define VER_PRODUCTVERSION_STR VER_FILEVERSION_STR
#ifndef DEBUG
#define VER_DEBUG 0
#else
#define VER_DEBUG VS_FF_DEBUG
#endif
#include <windows.h>
VS_VERSION_INFO VERSIONINFO
FILEVERSION VER_FILEVERSION
PRODUCTVERSION VER_PRODUCTVERSION
FILEFLAGSMASK (VS_FF_DEBUG)
FILEFLAGS (VER_DEBUG)
FILEOS VOS__WINDOWS32
FILETYPE VFT_DLL
FILESUBTYPE VFT2_UNKNOWN
BEGIN
BLOCK "StringFileInfo"
BEGIN
BLOCK "040904E4"
BEGIN
VALUE "CompanyName", "Intrepid Control Systems, Inc."
VALUE "FileDescription", "Intrepid Control Systems Open Device Communication C API"
VALUE "FileVersion", VER_FILEVERSION_STR
VALUE "InternalName", "icsneoc2.dll"
VALUE "LegalCopyright", "Intrepid Control Systems, Inc. (C) 2018-2026"
VALUE "OriginalFilename", "icsneoc2.dll"
VALUE "ProductName", "libicsneo"
VALUE "ProductVersion", VER_PRODUCTVERSION_STR
END
END
BLOCK "VarFileInfo"
BEGIN
/* The following line should only be modified for localized versions. */
/* It consists of any number of WORD,WORD pairs, with each pair */
/* describing a language,codepage combination supported by the file. */
/* */
/* For example, a file might have values "0x409,1252" indicating that it */
/* supports English language (0x409) in the Windows ANSI codepage (1252). */
VALUE "Translation", 0x409, 1252
END
END
+129 -221
View File
@@ -22,6 +22,29 @@ void APIEvent::init(Type event, APIEvent::Severity severity) {
eventStruct.timestamp = EventClock::to_time_t(timepoint);
}
std::string APIEvent::describe() const noexcept {
std::stringstream ss;
if(device)
ss << *device; // Makes use of device.describe()
else
ss << "API";
Severity severity = getSeverity();
if(severity == Severity::EventInfo) {
ss << " Info: ";
} else if(severity == Severity::EventWarning) {
ss << " Warning: ";
} else if(severity == Severity::Error) {
ss << " Error: ";
} else {
// Should never get here, since Severity::Any should only be used for filtering
ss << " Any: ";
}
ss << getDescription();
return ss.str();
}
void APIEvent::downgradeFromError() noexcept {
eventStruct.severity = (uint8_t) APIEvent::Severity::EventWarning;
}
@@ -49,11 +72,6 @@ static constexpr const char* MESSAGE_MAX_LENGTH_EXCEEDED = "The message was too
static constexpr const char* VALUE_NOT_YET_PRESENT = "The value is not yet present.";
static constexpr const char* TIMEOUT = "The timeout was reached.";
static constexpr const char* WIVI_NOT_SUPPORTED = "Wireless neoVI functions are not supported on this device.";
static constexpr const char* RESTRICTED_ENTRY_FLAG = "Attempted to set a restricted flag in a Root Directory entry.";
static constexpr const char* NOT_SUPPORTED = "The requested feature is not supported.";
static constexpr const char* FIXED_POINT_OVERFLOW = "Value is too large to convert to fixed point.";
static constexpr const char* FIXED_POINT_PRECISION = "Value is too small for fixed point precision.";
static constexpr const char* SYSCALL_ERROR = "Error returned from syscall, check errno/GetLastError().";
// Device Errors
static constexpr const char* POLLING_MESSAGE_OVERFLOW = "Too many messages have been recieved for the polling message buffer, some have been lost!";
@@ -94,28 +112,10 @@ static constexpr const char* ATOMIC_OPERATION_RETRIED = "An operation failed to
static constexpr const char* ATOMIC_OPERATION_COMPLETED_NONATOMICALLY = "An ideally-atomic operation was completed nonatomically.";
static constexpr const char* WIVI_STACK_REFRESH_FAILED = "The Wireless neoVI stack encountered a communication error.";
static constexpr const char* WIVI_UPLOAD_STACK_OVERFLOW = "The Wireless neoVI upload stack has encountered an overflow condition.";
static constexpr const char* A2B_MESSAGE_INCOMPLETE_FRAME = "At least one of the frames of the A2B message does not contain samples for each channel and stream.";
static constexpr const char* I2C_MESSAGE_EXCEED_MAX_LENGTH = "The I2C message was too long.";
static constexpr const char* A2B_MESSAGE_INCOMPLETE_FRAME = "At least one of the frames of the A2B message does not contain samples for each channel and stream.";
static constexpr const char* COREMINI_UPLOAD_VERSION_MISMATCH = "The version of the coremini engine on the device and the script uploaded are not the same.";
static constexpr const char* DISK_NOT_CONNECTED = "The program tried to access a disk that is not connected.";
static constexpr const char* UNEXPECTED_RESPONSE = "Received an unexpected or invalid response from the device.";
static constexpr const char* LIVE_DATA_INVALID_HANDLE = "The live data handle was invalid.";
static constexpr const char* LIVE_DATA_INVALID_COMMAND = "The live data command was invalid.";
static constexpr const char* LIVE_DATA_INVALID_ARGUMENT = "The live data argument was invalid.";
static constexpr const char* LIVE_DATA_VERSION_MISMATCH = "The live data version between libicsneo and firmware are not the same.";
static constexpr const char* LIVE_DATA_NO_DEVICE_RESPONSE = "Expected a response from the device for live data but none were found.";
static constexpr const char* LIVE_DATA_MAX_SIGNALS_REACHED = "The max amound of signals to subscribe to for live data has been reached.";
static constexpr const char* LIVE_DATA_COMMAND_FAILED = "The live data command failed.";
static constexpr const char* LIVE_DATA_ENCODER_ERROR = "Failure to encode live data message.";
static constexpr const char* LIVE_DATA_DECODER_ERROR = "Failure to decode live data message.";
static constexpr const char* LIVE_DATA_NOT_SUPPORTED = "Live data is not supported on this device.";
static constexpr const char* LIN_SETTINGS_NOT_AVAILABLE = "LIN settings are not available for this device.";
static constexpr const char* MODE_NOT_FOUND = "The mode was not found.";
static constexpr const char* APP_ERROR_PARSING_FAILED = "Failure to decode app error message.";
static constexpr const char* GPTP_NOT_SUPPORTED = "GPTP clock synchronization is not supported on this device.";
static constexpr const char* SETTING_NOT_AVAILABLE = "Requested a setting that is not available on this device";
static constexpr const char* DISK_FORMAT_NOT_SUPPORTED = "Disk formatting is not supported on this device.";
static constexpr const char* DISK_FORMAT_INVALID_COUNT = "Disk format config disk count is mismatched with device disk count.";
// Transport Errors
static constexpr const char* FAILED_TO_READ = "A read operation failed.";
@@ -133,54 +133,45 @@ static constexpr const char* FAILED_TO_BIND = "Unable to bind socket.";
static constexpr const char* ERROR_SETTING_SOCKET_OPTION = "A call to setsockopt() failed.";
static constexpr const char* GETIFADDRS_ERROR = "A call to getifaddrs() failed.";
static constexpr const char* SEND_TO_ERROR = "A call to sendto() failed.";
static constexpr const char* MDIO_MESSAGE_EXCEED_MAX_LENGTH = "The MDIO message was too long.";
// VSA
static constexpr const char* VSA_BUFFER_CORRUPTED = "VSA data in record buffer is corrupted.";
static constexpr const char* VSA_TIMESTAMP_NOT_FOUND = "Unable to find a VSA record with a valid timestamp.";
static constexpr const char* VSA_BUFFER_FORMAT_ERROR = "VSA record buffer is formatted incorrectly.";
static constexpr const char* VSA_MAX_READ_ATTEMPTS_REACHED = "Reached max attempts to read VSA records before exit.";
static constexpr const char* VSA_BYTE_PARSE_FAILURE = "Failure to parse record bytes from VSA buffer.";
static constexpr const char* VSA_EXTENDED_MESSAGE_ERROR = "Failure to parse extended message record sequence";
static constexpr const char* VSA_OTHER_ERROR = "Unknown error in VSA read API.";
// FTD3XX
static constexpr const char* FT_OK = "FTD3XX success.";
static constexpr const char* FT_INVALID_HANDLE = "Invalid FTD3XX handle.";
static constexpr const char* FT_DEVICE_NOT_FOUND = "FTD3XX device not found.";
static constexpr const char* FT_DEVICE_NOT_OPENED = "FTD3XX device not opened.";
static constexpr const char* FT_IO_ERROR = "FTD3XX IO error.";
static constexpr const char* FT_INSUFFICIENT_RESOURCES = "Insufficient resources for FTD3XX.";
static constexpr const char* FT_INVALID_PARAMETER = "Invalid FTD3XX parameter.";
static constexpr const char* FT_INVALID_BAUD_RATE = "Invalid FTD3XX baud rate.";
static constexpr const char* FT_DEVICE_NOT_OPENED_FOR_ERASE = "FTD3XX device not opened for erase.";
static constexpr const char* FT_DEVICE_NOT_OPENED_FOR_WRITE = "FTD3XX not opened for write.";
static constexpr const char* FT_FAILED_TO_WRITE_DEVICE = "FTD3XX failed to write device.";
static constexpr const char* FT_EEPROM_READ_FAILED = "FTD3XX EEPROM read failed.";
static constexpr const char* FT_EEPROM_WRITE_FAILED = "FTD3XX EEPROM write failed.";
static constexpr const char* FT_EEPROM_ERASE_FAILED = "FTD3XX EEPROM erase failed.";
static constexpr const char* FT_EEPROM_NOT_PRESENT = "FTD3XX EEPROM not present.";
static constexpr const char* FT_EEPROM_NOT_PROGRAMMED = "FTD3XX EEPROM not programmed.";
static constexpr const char* FT_INVALID_ARGS = "Invalid FTD3XX arguments.";
static constexpr const char* FT_NOT_SUPPORTED = "FTD3XX not supported.";
static constexpr const char* FT_NO_MORE_ITEMS = "No more FTD3XX items.";
static constexpr const char* FT_TIMEOUT = "FTD3XX timeout.";
static constexpr const char* FT_OPERATION_ABORTED = "FTD3XX operation aborted.";
static constexpr const char* FT_RESERVED_PIPE = "Reserved FTD3XX pipe.";
static constexpr const char* FT_INVALID_CONTROL_REQUEST_DIRECTION = "Invalid FTD3XX control request direction.";
static constexpr const char* FT_INVALID_CONTROL_REQUEST_TYPE = "Invalid FTD3XX control request type.";
static constexpr const char* FT_IO_PENDING = "FTD3XX IO pending.";
static constexpr const char* FT_IO_INCOMPLETE = "FTD3XX IO incomplete.";
static constexpr const char* FT_HANDLE_EOF = "Handle FTD3XX EOF.";
static constexpr const char* FT_BUSY = "FTD3XX busy.";
static constexpr const char* FT_NO_SYSTEM_RESOURCES = "No FTD3XX system resources.";
static constexpr const char* FT_DEVICE_LIST_NOT_READY = "FTD3XX device list not ready.";
static constexpr const char* FT_DEVICE_NOT_CONNECTED = "FTD3XX device not connected.";
static constexpr const char* FT_INCORRECT_DEVICE_PATH = "Incorrect FTD3XX device path.";
static constexpr const char* FT_OTHER_ERROR = "Other FTD3XX error.";
// MACSEC
static constexpr const char* MACSEC_SECY_LIMIT = "Attempted to exceed the limit of SecY additions to this port";
static constexpr const char* MACSEC_RULE_LIMIT = "Attempted to exceed the limit of rule additions to this port";
static constexpr const char* MACSEC_SA_LIMIT = "Attempted to exceed the limit of SA additions to this port";
static constexpr const char* MACSEC_INVALID_SECY_INDEX = "Attempted to access an invalid SecY index";
static constexpr const char* MACSEC_INVALID_SA_INDEX = "Attempted to access an invalid SA index";
static constexpr const char* MACSEC_INVALID_RULE_INDEX = "Attempted to access an invalid rule index";
static constexpr const char* MACSEC_REKEY_NOT_ENABLED = "Attempted to set rekey SA when rekey was not enabled";
static constexpr const char* MACSEC_NOT_SUPPORTED = "MACsec is not supported on this device";
static constexpr const char* MACSEC_CONFIG_MISMATCH = "Attempted to configure device with a macsec configuration for a different device";
// Servd
static constexpr const char* SERVD_BIND_ERROR = "Error binding socket for Servd communication";
static constexpr const char* SERVD_NONBLOCK_ERROR = "Error setting non-blocking mode for Servd socket";
static constexpr const char* SERVD_TRANSCEIVE_ERROR = "Error while sending to or receiving from Servd";
static constexpr const char* SERVD_OUTDATED_ERROR = "Servd version is lower than client (libicsneo) version, update Servd";
static constexpr const char* SERVD_INVALID_RESPONSE_ERROR = "Unexpected response from Servd";
static constexpr const char* SERVD_LOCK_ERROR = "Error locking Servd mutex";
static constexpr const char* SERVD_SEND_ERROR = "Error sending to Servd";
static constexpr const char* SERVD_RECV_ERROR = "Error receiving from Servd";
static constexpr const char* SERVD_POLL_ERROR = "Error polling on Servd socket";
static constexpr const char* SERVD_NODATA_ERROR = "No data received from Servd";
static constexpr const char* SERVD_JOIN_MULTICAST_ERROR = "Error joining Servd multicast group";
static constexpr const char* SERVD_NOT_REACHABLE = "Could not reach Servd; ensure it is installed and running";
static constexpr const char* SERVD_NO_DEVICES_FOUND = "Servd is running but no devices found";
// DXX
static constexpr const char* DXX_ERROR_SYS = "System error, check errno/GetLastError()";
static constexpr const char* DXX_ERROR_INT = "DXX interrupt called";
static constexpr const char* DXX_ERROR_OVERFLOW = "Overflow in DXX";
static constexpr const char* DXX_ERROR_IO = "I/O failure in DXX";
static constexpr const char* DXX_ERROR_ARG = "Invalid arg passed to DXX";
static constexpr const char* NO_ERROR_FOUND = "No errors were found.";
static constexpr const char* TOO_MANY_EVENTS = "Too many events have occurred. The list has been truncated.";
static constexpr const char* UNKNOWN = "An unknown internal error occurred.";
static constexpr const char* INVALID = "An invalid internal error occurred.";
const char* APIEvent::DescriptionForType(Type type) {
switch(type) {
// API Errors
@@ -216,16 +207,6 @@ const char* APIEvent::DescriptionForType(Type type) {
return TIMEOUT;
case Type::WiVINotSupported:
return WIVI_NOT_SUPPORTED;
case Type::RestrictedEntryFlag:
return RESTRICTED_ENTRY_FLAG;
case Type::NotSupported:
return NOT_SUPPORTED;
case Type::FixedPointOverflow:
return FIXED_POINT_OVERFLOW;
case Type::FixedPointPrecision:
return FIXED_POINT_PRECISION;
case Type::SyscallError:
return SYSCALL_ERROR;
// Device Errors
case Type::PollingMessageOverflow:
@@ -304,8 +285,6 @@ const char* APIEvent::DescriptionForType(Type type) {
return WIVI_STACK_REFRESH_FAILED;
case Type::WiVIUploadStackOverflow:
return WIVI_UPLOAD_STACK_OVERFLOW;
case Type::I2CMessageExceedsMaxLength:
return I2C_MESSAGE_EXCEED_MAX_LENGTH;
case Type::A2BMessageIncompleteFrame:
return A2B_MESSAGE_INCOMPLETE_FRAME;
case Type::CoreminiUploadVersionMismatch:
@@ -314,34 +293,6 @@ const char* APIEvent::DescriptionForType(Type type) {
return DISK_NOT_CONNECTED;
case Type::UnexpectedResponse:
return UNEXPECTED_RESPONSE;
case Type::LiveDataInvalidHandle:
return LIVE_DATA_INVALID_HANDLE;
case Type::LiveDataInvalidCommand:
return LIVE_DATA_INVALID_COMMAND;
case Type::LiveDataInvalidArgument:
return LIVE_DATA_INVALID_ARGUMENT;
case Type::LiveDataVersionMismatch:
return LIVE_DATA_VERSION_MISMATCH;
case Type::LiveDataNoDeviceResponse:
return LIVE_DATA_NO_DEVICE_RESPONSE;
case Type::LiveDataMaxSignalsReached:
return LIVE_DATA_MAX_SIGNALS_REACHED;
case Type::LiveDataCommandFailed:
return LIVE_DATA_COMMAND_FAILED;
case Type::LiveDataEncoderError:
return LIVE_DATA_ENCODER_ERROR;
case Type::LiveDataDecoderError:
return LIVE_DATA_DECODER_ERROR;
case Type::LiveDataNotSupported:
return LIVE_DATA_NOT_SUPPORTED;
case Type::LINSettingsNotAvailable:
return LIN_SETTINGS_NOT_AVAILABLE;
case Type::ModeNotFound:
return MODE_NOT_FOUND;
case Type::AppErrorParsingFailed:
return APP_ERROR_PARSING_FAILED;
case Type::SettingNotAvaiableDevice:
return SETTING_NOT_AVAILABLE;
// Transport Errors
case Type::FailedToRead:
return FAILED_TO_READ;
@@ -373,132 +324,89 @@ const char* APIEvent::DescriptionForType(Type type) {
return GETIFADDRS_ERROR;
case Type::SendToError:
return SEND_TO_ERROR;
case Type::MDIOMessageExceedsMaxLength:
return MDIO_MESSAGE_EXCEED_MAX_LENGTH;
case Type::GPTPNotSupported:
return GPTP_NOT_SUPPORTED;
case Type::DiskFormatNotSupported:
return DISK_FORMAT_NOT_SUPPORTED;
case Type::DiskFormatInvalidCount:
return DISK_FORMAT_INVALID_COUNT;
// VSA
case Type::VSABufferCorrupted:
return VSA_BUFFER_CORRUPTED;
case Type::VSATimestampNotFound:
return VSA_TIMESTAMP_NOT_FOUND;
case Type::VSABufferFormatError:
return VSA_BUFFER_FORMAT_ERROR;
case Type::VSAMaxReadAttemptsReached:
return VSA_MAX_READ_ATTEMPTS_REACHED;
case Type::VSAByteParseFailure:
return VSA_BYTE_PARSE_FAILURE;
case Type::VSAExtendedMessageError:
return VSA_EXTENDED_MESSAGE_ERROR;
case Type::VSAOtherError:
return VSA_OTHER_ERROR;
// MACSEC
case Type::MACsecSecYLimit:
return MACSEC_SECY_LIMIT;
case Type::MACsecSaLimit:
return MACSEC_SA_LIMIT;
case Type::MACsecRuleLimit:
return MACSEC_RULE_LIMIT;
case Type::MACsecInvalidSecYIndex:
return MACSEC_INVALID_SECY_INDEX;
case Type::MACsecInvalidSaIndex:
return MACSEC_INVALID_SA_INDEX;
case Type::MACsecInvalidRuleIndex:
return MACSEC_INVALID_RULE_INDEX;
case Type::MACsecRekeyNotEnabled:
return MACSEC_REKEY_NOT_ENABLED;
case Type::MACsecNotSupported:
return MACSEC_NOT_SUPPORTED;
case Type::MACsecConfigMismatch:
return MACSEC_CONFIG_MISMATCH;
// Servd
case Type::ServdBindError:
return SERVD_BIND_ERROR;
case Type::ServdNonblockError:
return SERVD_NONBLOCK_ERROR;
case Type::ServdTransceiveError:
return SERVD_TRANSCEIVE_ERROR;
case Type::ServdOutdatedError:
return SERVD_OUTDATED_ERROR;
case Type::ServdInvalidResponseError:
return SERVD_INVALID_RESPONSE_ERROR;
case Type::ServdLockError:
return SERVD_LOCK_ERROR;
case Type::ServdSendError:
return SERVD_SEND_ERROR;
case Type::ServdRecvError:
return SERVD_RECV_ERROR;
case Type::ServdPollError:
return SERVD_POLL_ERROR;
case Type::ServdNoDataError:
return SERVD_NODATA_ERROR;
case Type::ServdJoinMulticastError:
return SERVD_JOIN_MULTICAST_ERROR;
case Type::ServdNotReachable:
return SERVD_NOT_REACHABLE;
case Type::ServdNoDevicesFound:
return SERVD_NO_DEVICES_FOUND;
// DXX
case Type::DXXErrorSys:
return DXX_ERROR_SYS;
case Type::DXXErrorInt:
return DXX_ERROR_INT;
case Type::DXXErrorOverflow:
return DXX_ERROR_OVERFLOW;
case Type::DXXErrorIO:
return DXX_ERROR_IO;
case Type::DXXErrorArg:
return DXX_ERROR_ARG;
// FTD3XX
case Type::FTOK:
return FT_OK;
case Type::FTInvalidHandle:
return FT_INVALID_HANDLE;
case Type::FTDeviceNotFound:
return FT_DEVICE_NOT_FOUND;
case Type::FTDeviceNotOpened:
return FT_DEVICE_NOT_OPENED;
case Type::FTIOError:
return FT_IO_ERROR;
case Type::FTInsufficientResources:
return FT_INSUFFICIENT_RESOURCES;
case Type::FTInvalidParameter:
return FT_INVALID_PARAMETER;
case Type::FTInvalidBaudRate:
return FT_INVALID_BAUD_RATE;
case Type::FTDeviceNotOpenedForErase:
return FT_DEVICE_NOT_OPENED_FOR_ERASE;
case Type::FTDeviceNotOpenedForWrite:
return FT_DEVICE_NOT_OPENED_FOR_WRITE;
case Type::FTFailedToWriteDevice:
return FT_FAILED_TO_WRITE_DEVICE;
case Type::FTEEPROMReadFailed:
return FT_EEPROM_READ_FAILED;
case Type::FTEEPROMWriteFailed:
return FT_EEPROM_WRITE_FAILED;
case Type::FTEEPROMEraseFailed:
return FT_EEPROM_ERASE_FAILED;
case Type::FTEEPROMNotPresent:
return FT_EEPROM_NOT_PRESENT;
case Type::FTEEPROMNotProgrammed:
return FT_EEPROM_NOT_PROGRAMMED;
case Type::FTInvalidArgs:
return FT_INVALID_ARGS;
case Type::FTNotSupported:
return FT_NOT_SUPPORTED;
case Type::FTNoMoreItems:
return FT_NO_MORE_ITEMS;
case Type::FTTimeout:
return FT_TIMEOUT;
case Type::FTOperationAborted:
return FT_OPERATION_ABORTED;
case Type::FTReservedPipe:
return FT_RESERVED_PIPE;
case Type::FTInvalidControlRequestDirection:
return FT_INVALID_CONTROL_REQUEST_DIRECTION;
case Type::FTInvalidControlRequestType:
return FT_INVALID_CONTROL_REQUEST_TYPE;
case Type::FTIOPending:
return FT_IO_PENDING;
case Type::FTIOIncomplete:
return FT_IO_INCOMPLETE;
case Type::FTHandleEOF:
return FT_HANDLE_EOF;
case Type::FTBusy:
return FT_BUSY;
case Type::FTNoSystemResources:
return FT_NO_SYSTEM_RESOURCES;
case Type::FTDeviceListNotReady:
return FT_DEVICE_LIST_NOT_READY;
case Type::FTDeviceNotConnected:
return FT_DEVICE_NOT_CONNECTED;
case Type::FTIncorrectDevicePath:
return FT_INCORRECT_DEVICE_PATH;
case Type::FTOtherError:
return FT_OTHER_ERROR;
// Other Errors
case Type::NoErrorFound:
return NO_ERROR_FOUND;
case Type::TooManyEvents:
return TOO_MANY_EVENTS;
case Type::Unknown:
return UNKNOWN;
default:
return INVALID;
}
return INVALID;
}
std::string APIEvent::describe() const noexcept {
std::stringstream ss;
if(device)
ss << *device; // Makes use of device.describe()
else
ss << "API";
Severity severity = getSeverity();
if(severity == Severity::EventInfo) {
ss << " Info: ";
} else if(severity == Severity::EventWarning) {
ss << " Warning: ";
} else if(severity == Severity::Error) {
ss << " Error: ";
} else {
// Should never get here, since Severity::Any should only be used for filtering
ss << " Any: ";
}
const char* description = DescriptionForType(getType());
if(description == INVALID)
ss << description << " (0x" << std::hex << eventStruct.eventNumber << ")";
else
ss << description;
return ss.str();
}
bool EventFilter::match(const APIEvent& event) const noexcept {
if(type != APIEvent::Type::Any && type != event.getType())
return false;
if(matchOnDevicePtr && !event.isForDevice(device))
return false;
+2 -1
View File
@@ -1,5 +1,6 @@
#include "icsneo/icsneocpp.h"
#include "icsneo/device/devicefinder.h"
#include <jni.h>
using namespace icsneo;
@@ -45,4 +46,4 @@ void icsneo::SetEventLimit(size_t newLimit) {
size_t icsneo::GetEventLimit() {
return EventManager::GetInstance().getEventLimit();
}
}
@@ -3,6 +3,8 @@
#include <Tchar.h>
//Basic Functions
FINDNEODEVICES icsneoFindNeoDevices;
OPENNEODEVICE icsneoOpenNeoDevice;
OPENDEVICE icsneoOpenDevice;
CLOSEPORT icsneoClosePort;
FREEOBJECT icsneoFreeObject;
@@ -132,6 +134,10 @@ bool LoadDLLAPI(HINSTANCE &hAPIDLL)
if((hAPIDLL = LoadLibrary(_T("icsneo40.dll"))) == NULL)
return false;
icsneoFindNeoDevices = (FINDNEODEVICES) GetProcAddress(hAPIDLL, "icsneoFindNeoDevices");
icsneoOpenNeoDevice = (OPENNEODEVICE) GetProcAddress(hAPIDLL, "icsneoOpenNeoDevice");
icsneoOpenDevice = (OPENDEVICE) GetProcAddress(hAPIDLL, "icsneoOpenDevice");
icsneoClosePort = (CLOSEPORT) GetProcAddress(hAPIDLL, "icsneoClosePort");
icsneoFreeObject = (FREEOBJECT) GetProcAddress(hAPIDLL, "icsneoFreeObject");
@@ -200,7 +206,7 @@ bool LoadDLLAPI(HINSTANCE &hAPIDLL)
icsneoEnableDOIPLine = (ENABLEDOIPACTIVATIONLINE)GetProcAddress(hAPIDLL, "icsneoEnableDOIPLine");
if(!icsneoOpenDevice || !icsneoClosePort || !icsneoFreeObject ||
if(!icsneoFindNeoDevices || !icsneoOpenNeoDevice || !icsneoOpenDevice || !icsneoClosePort || !icsneoFreeObject ||
!icsneoTxMessages || !icsneoGetMessages || !icsneoWaitForRxMessagesWithTimeOut ||
!icsneoGetTimeStampForMsg || !icsneoEnableNetworkRXQueue || !icsneoGetISO15765Status || !icsneoTxMessagesEx ||
!icsneoSetISO15765RxParameters || !icsneoGetConfiguration || !icsneoSendConfiguration ||
+2 -2
View File
@@ -1,7 +1,5 @@
//FILE: icsneo40DLLAPI.H
#define WIN32_LEAN_AND_MEAN
#define NOMINMAX
#include <windows.h>
#include "icsneo/icsnVC40.h"
@@ -116,6 +114,8 @@ typedef int (__stdcall *SCRIPTWRITEISO15765TXMESSAGE)(void * hObject, unsigned
//Basic Functions
extern FINDNEODEVICES icsneoFindNeoDevices;
extern OPENNEODEVICE icsneoOpenNeoDevice;
extern OPENDEVICE icsneoOpenDevice;
extern CLOSEPORT icsneoClosePort;
extern FREEOBJECT icsneoFreeObject;
+154 -127
View File
@@ -2,6 +2,8 @@
#error "icsneolegacy.cpp must be compiled with a C++ compiler!"
#endif
#define NOMINMAX
#define ICSNEOC_MAKEDLL
#include "icsneo/icsneolegacy.h"
#include "icsneo/J2534.h"
@@ -12,6 +14,7 @@
#include "icsneo/communication/network.h"
#include <map>
#include <algorithm>
#include <cstring>
#include <climits>
@@ -24,32 +27,43 @@ using namespace icsneo;
typedef uint64_t legacymaphandle_t;
static std::map<legacymaphandle_t, neodevice_t> neodevices;
static std::map<neodevice_t*, NeoDeviceEx*> openneodevices;
static const std::map<size_t, size_t> mp_netIDToVnetOffSet = {
{NETID_DWCAN_01, 1},
{NETID_DWCAN_08, 2},
{NETID_DWCAN_02, 18},
{NETID_DWCAN_03, 19},
{NETID_DWCAN_04, 32},
{NETID_DWCAN_05, 33},
{NETID_DWCAN_06, 47},
{NETID_DWCAN_07, 48},
{NETID_HSCAN, 1},
{NETID_MSCAN, 2},
{NETID_HSCAN2, 18},
{NETID_HSCAN3, 19},
{NETID_HSCAN4, 32},
{NETID_HSCAN5, 33},
{NETID_HSCAN6, 47},
{NETID_HSCAN7, 48},
};
static const std::map<size_t, size_t> mp_HWnetIDToCMnetID = {
{NETID_DWCAN_01, 0},
{NETID_DWCAN_08, 1},
{NETID_DWCAN_02, 5},
{NETID_DWCAN_03, 8},
{NETID_DWCAN_04, 14},
{NETID_DWCAN_05, 15},
{NETID_DWCAN_06, 32},
{NETID_DWCAN_07, 33},
{NETID_HSCAN, 0},
{NETID_MSCAN, 1},
{NETID_HSCAN2, 5},
{NETID_HSCAN3, 8},
{NETID_HSCAN4, 14},
{NETID_HSCAN5, 15},
{NETID_HSCAN6, 32},
{NETID_HSCAN7, 33},
};
static unsigned long vnet_table[] = {0, PLASMA_SLAVE1_OFFSET, PLASMA_SLAVE2_OFFSET};
static NeoDevice OldNeoDeviceFromNew(const neodevice_t* newnd)
{
NeoDevice oldnd = {0};
oldnd.DeviceType = newnd->type;
oldnd.SerialNumber = icsneo_serialStringToNum(newnd->serial);
oldnd.NumberOfClients = 0;
oldnd.MaxAllowedClients = 1;
static_assert(sizeof(neodevice_handle_t) == sizeof(oldnd.Handle),
"neodevice_handle_t size must be sizeof(int) for compatibility reasons");
oldnd.Handle = newnd->handle;
return oldnd;
}
static bool NeoMessageToSpyMessage(const neodevice_t* device, const neomessage_t& newmsg, icsSpyMessage& oldmsg)
{
@@ -90,7 +104,6 @@ static bool NeoMessageToSpyMessage(const neodevice_t* device, const neomessage_t
copyFrameData();
break;
case Network::Type::Ethernet:
case Network::Type::AutomotiveEthernet:
oldmsg.Protocol = SPY_PROTOCOL_ETHERNET;
oldmsg.NumberBytesData = static_cast<uint8_t>(frame.length & 0xFF);
oldmsg.NumberBytesHeader = static_cast<uint8_t>(frame.length >> 8);
@@ -305,81 +318,109 @@ static inline size_t GetVnetAgnosticNetid(size_t fullNetid)
int LegacyDLLExport icsneoFindDevices(NeoDeviceEx* devs, int* devCount, unsigned int* devTypes, unsigned int devTypeCount,
POptionsFindNeoEx* POptionsFindNeoEx, unsigned int* zero)
{
// Match the legacy API maximum, this derives from the maximum COM Port on old windows versions.
constexpr int MAX_NEO_DEVICES = 255;
// Validate arguments
if (!devCount && *devCount < 0) {
if (!devs || !devCount)
return 0;
}
// return the size only if devs is NULL.
if (!devs)
if (*devCount < 0 || *devCount > 255)
return 0;
// Find the devices without filtering by the device type
// We allow this to find more than the requested number,
// as we may filter out some devices.
constexpr const size_t MAX_DEVICES = 255;
NeoDevice foundDevices[MAX_DEVICES];
int NumDevices = MAX_DEVICES;
int filteredDeviceCount = 0;
if (!icsneoFindNeoDevices(0, foundDevices, &NumDevices))
return 0;
for (auto i = 0; i < NumDevices; i++)
{
icsneo_findAllDevices(nullptr, (size_t*)devCount);
return 1;
}
// shrink the number of devices allowed to find
if (*devCount > MAX_NEO_DEVICES) {
*devCount = MAX_NEO_DEVICES;
}
// Find all the neodevice_t devices
std::vector<neodevice_t> neoDevices(*devCount);
auto neoDevicesSize = neoDevices.size();
icsneo_findAllDevices(neoDevices.data(), &neoDevicesSize);
neoDevices.resize(neoDevicesSize);
// Filter out the devices if needed
// No filtering needed
if (devTypes && devTypeCount > 0) {
neoDevices.erase(
std::remove_if(
neoDevices.begin(),
neoDevices.end(),
[&](const auto& iter) {
for (unsigned int i=0; i < devTypeCount; ++i) {
if (iter.type == devTypes[i]) {
return false;
}
}
return true;
// Check if the next device would overrun the user's buffer
// We check this up here since the documentation allows zero
// to be specified.
if (filteredDeviceCount >= *devCount)
break;
if (devTypes && devTypeCount)
{
for (unsigned int j = 0; j < devTypeCount; j++)
{
if (foundDevices[i].DeviceType == devTypes[j])
{
devs[filteredDeviceCount++].neoDevice = foundDevices[i];
break;
}
),
neoDevices.end()
);
}
// Create a NeoDeviceEx From a neodevice_t
auto _createNeoDeviceExFrom = [](const neodevice_t* neoDevice) -> NeoDeviceEx {
NeoDeviceEx nde = {};
nde.neoDevice.DeviceType = neoDevice->type;
nde.neoDevice.SerialNumber = icsneo_serialStringToNum(neoDevice->serial);
nde.neoDevice.NumberOfClients = 0;
nde.neoDevice.MaxAllowedClients = 1;
static_assert(sizeof(neodevice_handle_t) == sizeof(nde.neoDevice.Handle),
"neodevice_handle_t size must be sizeof(int) for compatibility reasons");
nde.neoDevice.Handle = neoDevice->handle;
return nde;
};
// Create the NeoDeviceEx from the neodevice_t
auto i = 0;
for (const auto& neoDevice : neoDevices) {
// Fill the look up table
neodevices[uint64_t(neoDevice.handle) << 32 | icsneo_serialStringToNum(neoDevice.serial)] = neoDevice;
// Create the NeoDeviceEx
devs[i] = _createNeoDeviceExFrom(&neoDevice);
NeoDeviceEx* nde = &devs[i];
++i;
// Lookup the open NeoDeviceEx devices and match the NumberOfClients value if available.
for (auto& [neo_device, open_nde]: openneodevices) {
// SerialNumber should always be unique so lets compare against that.
if (nde->neoDevice.SerialNumber == open_nde->neoDevice.SerialNumber) {
nde->neoDevice.NumberOfClients = open_nde->neoDevice.NumberOfClients;
}
}
else
{
devs[filteredDeviceCount++].neoDevice = foundDevices[i];
}
}
*devCount = (int)neoDevices.size();
*devCount = filteredDeviceCount;
return 1; // If the function succeeds but no devices are found 1 will still be returned and devCount will equal 0
}
int LegacyDLLExport icsneoFindNeoDevices(unsigned long DeviceTypes, NeoDevice* pNeoDevice, int* pNumDevices)
{
constexpr size_t MAX_DEVICES = 255;
size_t count = MAX_DEVICES;
if (pNumDevices == nullptr)
return 0;
if (pNeoDevice == nullptr)
{
icsneo_findAllDevices(nullptr, &count);
*pNumDevices = (int)count;
return 1;
}
size_t bufferSize = (size_t)*pNumDevices;
if (*pNumDevices < 0 || bufferSize > MAX_DEVICES)
return 0;
neodevice_t devices[MAX_DEVICES];
icsneo_findAllDevices(devices, &count);
if (bufferSize < count)
count = bufferSize;
*pNumDevices = (int)count;
for (size_t i = 0; i < count; i++)
{
pNeoDevice[i] = OldNeoDeviceFromNew(&devices[i]); // Write out into user memory
neodevices[uint64_t(devices[i].handle) << 32 | icsneo_serialStringToNum(devices[i].serial)] = devices[i]; // Fill the look up table
}
return 1;
}
int LegacyDLLExport icsneoOpenNeoDevice(NeoDevice* pNeoDevice, void** hObject, unsigned char* bNetworkIDs, int bConfigRead, int bSyncToPC)
{
if (pNeoDevice == nullptr || hObject == nullptr)
return false;
neodevice_t *device;
try
{
device = &neodevices.at(uint64_t(pNeoDevice->Handle) << 32 | pNeoDevice->SerialNumber);
}
catch (const std::out_of_range&)
{
return false;
}
*hObject = device;
if (!icsneo_openDevice(device))
return false;
return icsneo_setPollingMessageLimit(device, 20000) && icsneo_enableMessagePolling(device) && icsneo_goOnline(device);
}
int LegacyDLLExport icsneoOpenDevice(
NeoDeviceEx* pNeoDeviceEx,
void** hObject,
@@ -402,50 +443,19 @@ int LegacyDLLExport icsneoOpenDevice(
return false;
}
if (pNeoDeviceEx->neoDevice.NumberOfClients >= pNeoDeviceEx->neoDevice.MaxAllowedClients) {
return false;
}
*hObject = device;
if(!icsneo_openDevice(device)) {
if(!icsneo_openDevice(device))
return false;
}
if (icsneo_isOnlineSupported(device)) {
if (!icsneo_setPollingMessageLimit(device, 20000)) {
icsneo_closeDevice(device);
return false;
}
if (!icsneo_enableMessagePolling(device)) {
icsneo_closeDevice(device);
return false;
}
if (!icsneo_goOnline(device)) {
icsneo_closeDevice(device);
return false;
}
}
pNeoDeviceEx->neoDevice.NumberOfClients = 1;
// Add the open NeoDevice to the container so we can decrement NumberOfClients on close
openneodevices[device] = pNeoDeviceEx;
return true;
return icsneo_setPollingMessageLimit(device, 20000) && icsneo_enableMessagePolling(device) && icsneo_goOnline(device);
}
int LegacyDLLExport icsneoClosePort(void* hObject, int* pNumberOfErrors)
{
if (!icsneoValidateHObject(hObject))
return false;
if (pNumberOfErrors) {
*pNumberOfErrors = 0;
}
neodevice_t* device = reinterpret_cast<neodevice_t*>(hObject);
if (openneodevices.find(device) != openneodevices.end()) {
openneodevices[device]->neoDevice.NumberOfClients -= 1;
openneodevices.erase(device);
}
return icsneo_closeDevice(device);
}
@@ -981,7 +991,20 @@ int LegacyDLLExport icsneoScriptWriteAppSignal(void* hObject, unsigned int iInde
return false;
}
//Deprecated (but still suppored in the DLL)
int LegacyDLLExport icsneoOpenPortEx(void* lPortNumber, int lPortType, int lDriverType, int lIPAddressMSB,
int lIPAddressLSBOrBaudRate, int bConfigRead, unsigned char* bNetworkID, int* hObject)
{
// TODO Implement
return false;
}
int LegacyDLLExport icsneoOpenPort(int lPortNumber, int lPortType, int lDriverType, unsigned char *bNetworkID,
unsigned char* bSCPIDs, int* hObject)
{
// TODO Implement
return false;
}
int LegacyDLLExport icsneoEnableNetworkCom(void* hObject, int Enable)
{
@@ -995,6 +1018,19 @@ int LegacyDLLExport icsneoEnableNetworkCom(void* hObject, int Enable)
return icsneo_goOffline(device);
}
int LegacyDLLExport icsneoFindAllCOMDevices(int lDriverType, int lGetSerialNumbers, int lStopAtFirst, int lUSBCommOnly,
int* p_lDeviceTypes, int* p_lComPorts, int* p_lSerialNumbers, int* lNumDevices)
{
// TODO Implement
return false;
}
int LegacyDLLExport icsneoOpenNeoDeviceByChannels(NeoDevice* pNeoDevice, void** hObject, unsigned char* uChannels, int iSize,
int bConfigRead, int iOptions)
{
// TODO Implement
return false;
}
int LegacyDLLExport icsneoGetVCAN4Settings(void* hObject, SVCAN4Settings* pSettings, int iNumBytes)
{
@@ -1076,18 +1112,9 @@ int LegacyDLLExport icsneoGetDeviceSettingsType(void* hObject, EPlasmaIonVnetCha
case NEODEVICE_RADMOON3:
*pDeviceSettingsType = DeviceRADMoon3SettingsType;
break;
case NEODEVICE_RADGEMINI:
*pDeviceSettingsType = DeviceRADGeminiSettingsType;
break;
case NEODEVICE_RED2:
*pDeviceSettingsType = DeviceRed2SettingsType;
break;
case NEODEVICE_FIRE3:
*pDeviceSettingsType = DeviceFire3SettingsType;
break;
case NEODEVICE_FIRE3_FLEXRAY:
*pDeviceSettingsType = DeviceFire3FlexraySettingsType;
break;
default:
return 0;
}
-3
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@@ -1,3 +0,0 @@
if(LIBICSNEO_ENABLE_BINDINGS_PYTHON)
add_subdirectory(python)
endif()
-62
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@@ -1,62 +0,0 @@
cmake_minimum_required(VERSION 3.20)
set(PYBIND11_FINDPYTHON ON)
if(PYBIND11_ROOT)
find_package(pybind11 CONFIG REQUIRED)
else()
include(FetchContent)
FetchContent_Declare(
pybind11
GIT_REPOSITORY https://github.com/pybind/pybind11.git
GIT_TAG v3.0.3
)
FetchContent_MakeAvailable(pybind11)
endif()
pybind11_add_module(icsneopy
icsneopy/api/event.cpp
icsneopy/api/eventcallback.cpp
icsneopy/api/eventmanager.cpp
icsneopy/api/version.cpp
icsneopy/device/devicetype.cpp
icsneopy/communication/network.cpp
icsneopy/communication/io.cpp
icsneopy/communication/livedata.cpp
icsneopy/communication/message/message.cpp
icsneopy/communication/message/canmessage.cpp
icsneopy/communication/message/canerrormessage.cpp
icsneopy/communication/message/ethernetmessage.cpp
icsneopy/communication/message/linmessage.cpp
icsneopy/communication/message/tc10statusmessage.cpp
icsneopy/communication/message/mdiomessage.cpp
icsneopy/communication/message/gptpstatusmessage.cpp
icsneopy/communication/message/ethernetstatusmessage.cpp
icsneopy/communication/message/spimessage.cpp
icsneopy/communication/message/scriptstatusmessage.cpp
icsneopy/communication/message/ethphymessage.cpp
icsneopy/communication/message/livedatamessage.cpp
icsneopy/communication/message/callback/messagecallback.cpp
icsneopy/communication/message/filter/messagefilter.cpp
icsneopy/core/macseccfg.cpp
icsneopy/flexray/flexray.cpp
icsneopy/disk/diskdriver.cpp
icsneopy/disk/diskdetails.cpp
icsneopy/device/chipid.cpp
icsneopy/device/versionreport.cpp
icsneopy/device/device.cpp
icsneopy/device/extensions/deviceextension.cpp
icsneopy/device/idevicesettings.cpp
icsneopy/icsneocpp.cpp
)
target_link_libraries(icsneopy PRIVATE icsneocpp)
install(TARGETS icsneopy LIBRARY DESTINATION icsneopy)
find_program(STUBGEN_EXE stubgen)
if(STUBGEN_EXE)
add_custom_command(TARGET icsneopy POST_BUILD COMMAND stubgen -v -p icsneopy -o .)
install(FILES ${CMAKE_CURRENT_BINARY_DIR}/icsneopy.pyi py.typed DESTINATION icsneopy)
endif()
install(FILES __init__.py DESTINATION icsneopy)
-1
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@@ -1 +0,0 @@
from .icsneopy import *
-165
View File
@@ -1,165 +0,0 @@
#include <pybind11/pybind11.h>
#include <pybind11/stl.h>
#include <pybind11/functional.h>
#include <pybind11/native_enum.h>
#include "icsneo/api/event.h"
namespace icsneo {
void init_event(pybind11::module_& m) {
pybind11::classh<APIEvent> apiEvent(m, "APIEvent");
pybind11::native_enum<APIEvent::Type>(apiEvent, "Type", "enum.IntEnum")
.value("Any", APIEvent::Type::Any)
.value("InvalidNeoDevice", APIEvent::Type::InvalidNeoDevice)
.value("RequiredParameterNull", APIEvent::Type::RequiredParameterNull)
.value("BufferInsufficient", APIEvent::Type::BufferInsufficient)
.value("OutputTruncated", APIEvent::Type::OutputTruncated)
.value("ParameterOutOfRange", APIEvent::Type::ParameterOutOfRange)
.value("DeviceCurrentlyOpen", APIEvent::Type::DeviceCurrentlyOpen)
.value("DeviceCurrentlyClosed", APIEvent::Type::DeviceCurrentlyClosed)
.value("DeviceCurrentlyOnline", APIEvent::Type::DeviceCurrentlyOnline)
.value("DeviceCurrentlyOffline", APIEvent::Type::DeviceCurrentlyOffline)
.value("DeviceCurrentlyPolling", APIEvent::Type::DeviceCurrentlyPolling)
.value("DeviceNotCurrentlyPolling", APIEvent::Type::DeviceNotCurrentlyPolling)
.value("UnsupportedTXNetwork", APIEvent::Type::UnsupportedTXNetwork)
.value("MessageMaxLengthExceeded", APIEvent::Type::MessageMaxLengthExceeded)
.value("ValueNotYetPresent", APIEvent::Type::ValueNotYetPresent)
.value("Timeout", APIEvent::Type::Timeout)
.value("WiVINotSupported", APIEvent::Type::WiVINotSupported)
.value("RestrictedEntryFlag", APIEvent::Type::RestrictedEntryFlag)
.value("NotSupported", APIEvent::Type::NotSupported)
.value("FixedPointOverflow", APIEvent::Type::FixedPointOverflow)
.value("FixedPointPrecision", APIEvent::Type::FixedPointPrecision)
.value("SyscallError", APIEvent::Type::SyscallError)
.value("PollingMessageOverflow", APIEvent::Type::PollingMessageOverflow)
.value("NoSerialNumber", APIEvent::Type::NoSerialNumber)
.value("IncorrectSerialNumber", APIEvent::Type::IncorrectSerialNumber)
.value("SettingsReadError", APIEvent::Type::SettingsReadError)
.value("SettingsVersionError", APIEvent::Type::SettingsVersionError)
.value("SettingsLengthError", APIEvent::Type::SettingsLengthError)
.value("SettingsChecksumError", APIEvent::Type::SettingsChecksumError)
.value("SettingsNotAvailable", APIEvent::Type::SettingsNotAvailable)
.value("SettingsReadOnly", APIEvent::Type::SettingsReadOnly)
.value("CANSettingsNotAvailable", APIEvent::Type::CANSettingsNotAvailable)
.value("CANFDSettingsNotAvailable", APIEvent::Type::CANFDSettingsNotAvailable)
.value("LSFTCANSettingsNotAvailable", APIEvent::Type::LSFTCANSettingsNotAvailable)
.value("SWCANSettingsNotAvailable", APIEvent::Type::SWCANSettingsNotAvailable)
.value("BaudrateNotFound", APIEvent::Type::BaudrateNotFound)
.value("UnexpectedNetworkType", APIEvent::Type::UnexpectedNetworkType)
.value("DeviceFirmwareOutOfDate", APIEvent::Type::DeviceFirmwareOutOfDate)
.value("SettingsStructureMismatch", APIEvent::Type::SettingsStructureMismatch)
.value("SettingsStructureTruncated", APIEvent::Type::SettingsStructureTruncated)
.value("NoDeviceResponse", APIEvent::Type::NoDeviceResponse)
.value("MessageFormattingError", APIEvent::Type::MessageFormattingError)
.value("CANFDNotSupported", APIEvent::Type::CANFDNotSupported)
.value("RTRNotSupported", APIEvent::Type::RTRNotSupported)
.value("DeviceDisconnected", APIEvent::Type::DeviceDisconnected)
.value("OnlineNotSupported", APIEvent::Type::OnlineNotSupported)
.value("TerminationNotSupportedDevice", APIEvent::Type::TerminationNotSupportedDevice)
.value("TerminationNotSupportedNetwork", APIEvent::Type::TerminationNotSupportedNetwork)
.value("AnotherInTerminationGroupEnabled", APIEvent::Type::AnotherInTerminationGroupEnabled)
.value("NoSerialNumberFW", APIEvent::Type::NoSerialNumberFW)
.value("NoSerialNumber12V", APIEvent::Type::NoSerialNumber12V)
.value("NoSerialNumberFW12V", APIEvent::Type::NoSerialNumberFW12V)
.value("EthPhyRegisterControlNotAvailable", APIEvent::Type::EthPhyRegisterControlNotAvailable)
.value("DiskNotSupported", APIEvent::Type::DiskNotSupported)
.value("EOFReached", APIEvent::Type::EOFReached)
.value("SettingsDefaultsUsed", APIEvent::Type::SettingsDefaultsUsed)
.value("AtomicOperationRetried", APIEvent::Type::AtomicOperationRetried)
.value("AtomicOperationCompletedNonatomically", APIEvent::Type::AtomicOperationCompletedNonatomically)
.value("WiVIStackRefreshFailed", APIEvent::Type::WiVIStackRefreshFailed)
.value("WiVIUploadStackOverflow", APIEvent::Type::WiVIUploadStackOverflow)
.value("I2CMessageExceedsMaxLength", APIEvent::Type::I2CMessageExceedsMaxLength)
.value("A2BMessageIncompleteFrame", APIEvent::Type::A2BMessageIncompleteFrame)
.value("CoreminiUploadVersionMismatch", APIEvent::Type::CoreminiUploadVersionMismatch)
.value("DiskNotConnected", APIEvent::Type::DiskNotConnected)
.value("UnexpectedResponse", APIEvent::Type::UnexpectedResponse)
.value("LiveDataInvalidHandle", APIEvent::Type::LiveDataInvalidHandle)
.value("LiveDataInvalidCommand", APIEvent::Type::LiveDataInvalidCommand)
.value("LiveDataInvalidArgument", APIEvent::Type::LiveDataInvalidArgument)
.value("LiveDataVersionMismatch", APIEvent::Type::LiveDataVersionMismatch)
.value("LiveDataNoDeviceResponse", APIEvent::Type::LiveDataNoDeviceResponse)
.value("LiveDataMaxSignalsReached", APIEvent::Type::LiveDataMaxSignalsReached)
.value("LiveDataCommandFailed", APIEvent::Type::LiveDataCommandFailed)
.value("LiveDataEncoderError", APIEvent::Type::LiveDataEncoderError)
.value("LiveDataDecoderError", APIEvent::Type::LiveDataDecoderError)
.value("LiveDataNotSupported", APIEvent::Type::LiveDataNotSupported)
.value("LINSettingsNotAvailable", APIEvent::Type::LINSettingsNotAvailable)
.value("ModeNotFound", APIEvent::Type::ModeNotFound)
.value("AppErrorParsingFailed", APIEvent::Type::AppErrorParsingFailed)
.value("GPTPNotSupported", APIEvent::Type::GPTPNotSupported)
.value("SettingNotAvaiableDevice", APIEvent::Type::SettingNotAvaiableDevice)
.value("DiskFormatNotSupported", APIEvent::Type::DiskFormatNotSupported)
.value("DiskFormatInvalidCount", APIEvent::Type::DiskFormatInvalidCount)
.value("FailedToRead", APIEvent::Type::FailedToRead)
.value("FailedToWrite", APIEvent::Type::FailedToWrite)
.value("DriverFailedToOpen", APIEvent::Type::DriverFailedToOpen)
.value("DriverFailedToClose", APIEvent::Type::DriverFailedToClose)
.value("PacketChecksumError", APIEvent::Type::PacketChecksumError)
.value("TransmitBufferFull", APIEvent::Type::TransmitBufferFull)
.value("DeviceInUse", APIEvent::Type::DeviceInUse)
.value("PCAPCouldNotStart", APIEvent::Type::PCAPCouldNotStart)
.value("PCAPCouldNotFindDevices", APIEvent::Type::PCAPCouldNotFindDevices)
.value("PacketDecodingError", APIEvent::Type::PacketDecodingError)
.value("SocketFailedToOpen", APIEvent::Type::SocketFailedToOpen)
.value("FailedToBind", APIEvent::Type::FailedToBind)
.value("ErrorSettingSocketOption", APIEvent::Type::ErrorSettingSocketOption)
.value("GetIfAddrsError", APIEvent::Type::GetIfAddrsError)
.value("SendToError", APIEvent::Type::SendToError)
.value("MDIOMessageExceedsMaxLength", APIEvent::Type::MDIOMessageExceedsMaxLength)
.value("VSABufferCorrupted", APIEvent::Type::VSABufferCorrupted)
.value("VSATimestampNotFound", APIEvent::Type::VSATimestampNotFound)
.value("VSABufferFormatError", APIEvent::Type::VSABufferFormatError)
.value("VSAMaxReadAttemptsReached", APIEvent::Type::VSAMaxReadAttemptsReached)
.value("VSAByteParseFailure", APIEvent::Type::VSAByteParseFailure)
.value("VSAExtendedMessageError", APIEvent::Type::VSAExtendedMessageError)
.value("VSAOtherError", APIEvent::Type::VSAOtherError)
.value("ServdBindError", APIEvent::Type::ServdBindError)
.value("ServdNonblockError", APIEvent::Type::ServdNonblockError)
.value("ServdTransceiveError", APIEvent::Type::ServdTransceiveError)
.value("ServdOutdatedError", APIEvent::Type::ServdOutdatedError)
.value("ServdInvalidResponseError", APIEvent::Type::ServdInvalidResponseError)
.value("ServdLockError", APIEvent::Type::ServdLockError)
.value("ServdSendError", APIEvent::Type::ServdSendError)
.value("ServdRecvError", APIEvent::Type::ServdRecvError)
.value("ServdPollError", APIEvent::Type::ServdPollError)
.value("ServdNoDataError", APIEvent::Type::ServdNoDataError)
.value("ServdJoinMulticastError", APIEvent::Type::ServdJoinMulticastError)
.value("ServdNotReachable", APIEvent::Type::ServdNotReachable)
.value("ServdNoDevicesFound", APIEvent::Type::ServdNoDevicesFound)
.value("DXXErrorSys", APIEvent::Type::DXXErrorSys)
.value("DXXErrorInt", APIEvent::Type::DXXErrorInt)
.value("DXXErrorOverflow", APIEvent::Type::DXXErrorOverflow)
.value("DXXErrorIO", APIEvent::Type::DXXErrorIO)
.value("DXXErrorArg", APIEvent::Type::DXXErrorArg)
.value("NoErrorFound", APIEvent::Type::NoErrorFound)
.value("TooManyEvents", APIEvent::Type::TooManyEvents)
.value("Unknown", APIEvent::Type::Unknown)
.finalize();
pybind11::native_enum<APIEvent::Severity>(apiEvent, "Severity", "enum.IntEnum")
.value("Any", APIEvent::Severity::Any)
.value("EventInfo", APIEvent::Severity::EventInfo)
.value("EventWarning", APIEvent::Severity::EventWarning)
.value("Error", APIEvent::Severity::Error)
.finalize();
apiEvent
.def("get_type", &APIEvent::getType)
.def("get_severity", &APIEvent::getSeverity)
.def("get_description", &APIEvent::getDescription)
.def("describe", &APIEvent::describe)
.def("__repr__", &APIEvent::describe);
pybind11::classh<EventFilter>(m, "EventFilter")
.def(pybind11::init())
.def(pybind11::init<APIEvent::Type>())
.def(pybind11::init<APIEvent::Severity>())
.def_readwrite("type", &EventFilter::type)
.def_readwrite("severity", &EventFilter::severity)
.def_readwrite("serial", &EventFilter::serial);
}
} // namespace icsneo
@@ -1,16 +0,0 @@
#include <pybind11/pybind11.h>
#include <pybind11/stl.h>
#include <pybind11/functional.h>
#include "icsneo/api/eventcallback.h"
namespace icsneo {
void init_eventcallback(pybind11::module_& m) {
pybind11::classh<EventCallback>(m, "EventCallback")
.def(pybind11::init<EventCallback::fn_eventCallback, EventFilter>())
.def(pybind11::init<EventCallback::fn_eventCallback>());
}
} // namespace icsneo
@@ -1,18 +0,0 @@
#include <pybind11/pybind11.h>
#include <pybind11/stl.h>
#include <pybind11/functional.h>
#include "icsneo/api/eventmanager.h"
namespace icsneo {
void init_eventmanager(pybind11::module_& m) {
pybind11::classh<EventManager>(m, "EventManager")
.def_static("get_instance", &EventManager::GetInstance, pybind11::return_value_policy::reference)
.def("add_event_callback", &EventManager::addEventCallback)
.def("remove_event_callback", &EventManager::removeEventCallback)
.def("get_last_error", &EventManager::getLastError);
}
} // namespace icsneo
-28
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@@ -1,28 +0,0 @@
#include <pybind11/pybind11.h>
#include <pybind11/stl.h>
#include <pybind11/functional.h>
#include "icsneo/api/version.h"
#include <sstream>
namespace icsneo {
void init_version(pybind11::module_& m) {
pybind11::classh<neoversion_t>(m, "NeoVersion")
.def_readonly("major", &neoversion_t::major)
.def_readonly("minor", &neoversion_t::minor)
.def_readonly("patch", &neoversion_t::patch)
.def_readonly("metadata", &neoversion_t::metadata)
.def_readonly("buildBranch", &neoversion_t::buildBranch)
.def_readonly("buildTag", &neoversion_t::buildTag)
.def("__repr__", [](const neoversion_t& self) -> std::string {
std::stringstream ss;
ss << self;
return ss.str();
});
m.def("get_version", &GetVersion);
}
} // namespace icsneo
@@ -1,19 +0,0 @@
#include <pybind11/pybind11.h>
#include <pybind11/stl.h>
#include <pybind11/functional.h>
#include "icsneo/communication/io.h"
namespace icsneo {
void init_io(pybind11::module_& m) {
pybind11::enum_<IO>(m, "IO")
.value("EthernetActivation", IO::EthernetActivation)
.value("USBHostPower", IO::USBHostPower)
.value("BackupPowerEnabled", IO::BackupPowerEnabled)
.value("BackupPowerGood", IO::BackupPowerGood)
.value("Misc", IO::Misc)
.value("EMisc", IO::EMisc);
}
} // namespace icsneo
@@ -1,79 +0,0 @@
#include <pybind11/pybind11.h>
#include <pybind11/stl.h>
#include <pybind11/functional.h>
#include <pybind11/native_enum.h>
#include "icsneo/communication/livedata.h"
namespace icsneo {
void init_livedata(pybind11::module_& m) {
// LiveDataValue struct
pybind11::classh<LiveDataValue>(m, "LiveDataValue")
.def(pybind11::init<>())
.def_readwrite("value", &LiveDataValue::value);
// LiveDataArgument struct
pybind11::classh<LiveDataArgument>(m, "LiveDataArgument")
.def(pybind11::init<>())
.def_readwrite("object_type", &LiveDataArgument::objectType)
.def_readwrite("object_index", &LiveDataArgument::objectIndex)
.def_readwrite("signal_index", &LiveDataArgument::signalIndex)
.def_readwrite("value_type", &LiveDataArgument::valueType);
// LiveDataCommand enum
pybind11::native_enum<LiveDataCommand>(m, "LiveDataCommand", "enum.IntEnum")
.value("STATUS", LiveDataCommand::STATUS)
.value("SUBSCRIBE", LiveDataCommand::SUBSCRIBE)
.value("UNSUBSCRIBE", LiveDataCommand::UNSUBSCRIBE)
.value("RESPONSE", LiveDataCommand::RESPONSE)
.value("CLEAR_ALL", LiveDataCommand::CLEAR_ALL)
.value("SET_VALUE", LiveDataCommand::SET_VALUE)
.finalize();
// LiveDataStatus enum
pybind11::native_enum<LiveDataStatus>(m, "LiveDataStatus", "enum.IntEnum")
.value("SUCCESS", LiveDataStatus::SUCCESS)
.value("ERR_UNKNOWN_COMMAND", LiveDataStatus::ERR_UNKNOWN_COMMAND)
.value("ERR_HANDLE", LiveDataStatus::ERR_HANDLE)
.value("ERR_DUPLICATE", LiveDataStatus::ERR_DUPLICATE)
.value("ERR_FULL", LiveDataStatus::ERR_FULL)
.finalize();
// LiveDataObjectType enum
pybind11::enum_<LiveDataObjectType>(m, "LiveDataObjectType")
.value("MISC", LiveDataObjectType::MISC)
.value("SNA", LiveDataObjectType::SNA)
.export_values();
// LiveDataValueType enum
pybind11::native_enum<LiveDataValueType>(m, "LiveDataValueType", "enum.IntEnum")
.value("GPS_LATITUDE", LiveDataValueType::GPS_LATITUDE)
.value("GPS_LONGITUDE", LiveDataValueType::GPS_LONGITUDE)
.value("GPS_ALTITUDE", LiveDataValueType::GPS_ALTITUDE)
.value("GPS_SPEED", LiveDataValueType::GPS_SPEED)
.value("GPS_VALID", LiveDataValueType::GPS_VALID)
.value("GPS_ENABLE", LiveDataValueType::GPS_ENABLE)
.value("MANUAL_TRIGGER", LiveDataValueType::MANUAL_TRIGGER)
.value("TIME_SINCE_MSG", LiveDataValueType::TIME_SINCE_MSG)
.value("GPS_ACCURACY", LiveDataValueType::GPS_ACCURACY)
.value("GPS_BEARING", LiveDataValueType::GPS_BEARING)
.value("GPS_TIME", LiveDataValueType::GPS_TIME)
.value("GPS_TIME_VALID", LiveDataValueType::GPS_TIME_VALID)
.value("DAQ_ENABLE", LiveDataValueType::DAQ_ENABLE)
.finalize();
// LiveDataUtil namespace functions
m.def("get_new_handle", &LiveDataUtil::getNewHandle,
"Generate a new unique LiveData handle");
m.def("livedata_value_to_double", &LiveDataUtil::liveDataValueToDouble,
pybind11::arg("val"),
"Convert LiveDataValue to double (32.32 fixed-point to floating-point)");
m.def("livedata_double_to_value", &LiveDataUtil::liveDataDoubleToValue,
pybind11::arg("d"),
"Convert double to LiveDataValue (32.32 fixed-point format). Returns LiveDataValue or None on failure.");
}
} // namespace icsneo
@@ -1,15 +0,0 @@
#include <pybind11/pybind11.h>
#include <pybind11/stl.h>
#include <pybind11/functional.h>
#include "icsneo/communication/message/callback/messagecallback.h"
namespace icsneo {
void init_messagecallback(pybind11::module_& m) {
pybind11::classh<MessageCallback>(m, "MessageCallback")
.def(pybind11::init<MessageCallback::fn_messageCallback, std::shared_ptr<MessageFilter>>());
}
} // namespace icsneo
@@ -1,40 +0,0 @@
#include <pybind11/pybind11.h>
#include <pybind11/stl.h>
#include <pybind11/functional.h>
#include <pybind11/native_enum.h>
#include "icsneo/communication/message/canerrormessage.h"
namespace icsneo {
void init_errorcodes(pybind11::module_& m) {
pybind11::native_enum<CANErrorCode>(m, "CANErrorCode", "enum.IntEnum")
.value("NoError", CANErrorCode::NoError)
.value("StuffError", CANErrorCode::StuffError)
.value("FormError", CANErrorCode::FormError)
.value("AckError", CANErrorCode::AckError)
.value("Bit1Error", CANErrorCode::Bit1Error)
.value("Bit0Error", CANErrorCode::Bit0Error)
.value("CRCError", CANErrorCode::CRCError)
.value("NoChange", CANErrorCode::NoChange)
.finalize();
}
void init_canerrormessage(pybind11::module_& m) {
init_errorcodes(m);
pybind11::classh<CANErrorMessage, Message>(m, "CANErrorMessage")
.def_readonly("network", &CANErrorMessage::network)
.def_readonly("transmitErrorCount", &CANErrorMessage::transmitErrorCount)
.def_readonly("receiveErrorCount", &CANErrorMessage::receiveErrorCount)
.def_readonly("busOff", &CANErrorMessage::busOff)
.def_readonly("errorPassive", &CANErrorMessage::errorPassive)
.def_readonly("errorWarn", &CANErrorMessage::errorWarn)
.def_readonly("dataErrorCode", &CANErrorMessage::dataErrorCode)
.def_readonly("errorCode", &CANErrorMessage::errorCode);
m.attr("CANErrorCountMessage") = m.attr("CANErrorMessage");
}
} // namespace icsneo
@@ -1,25 +0,0 @@
#include <pybind11/pybind11.h>
#include <pybind11/stl.h>
#include <pybind11/functional.h>
#include "icsneo/communication/message/canmessage.h"
namespace icsneo {
void init_canmessage(pybind11::module_& m) {
pybind11::classh<CANMessage, Frame>(m, "CANMessage")
.def(pybind11::init())
.def_readwrite("arbid", &CANMessage::arbid)
.def_readwrite("dlcOnWire", &CANMessage::dlcOnWire)
.def_readwrite("isRemote", &CANMessage::isRemote)
.def_readwrite("isExtended", &CANMessage::isExtended)
.def_readwrite("isCANFD", &CANMessage::isCANFD)
.def_readwrite("baudrateSwitch", &CANMessage::baudrateSwitch)
.def_readwrite("errorStateIndicator", &CANMessage::errorStateIndicator)
.def_readwrite("txAborted", &CANMessage::txAborted)
.def_readwrite("txLostArb", &CANMessage::txLostArb)
.def_readwrite("txError", &CANMessage::txError);
}
} // namespace icsneo
@@ -1,35 +0,0 @@
#include <pybind11/pybind11.h>
#include <pybind11/stl.h>
#include <pybind11/functional.h>
#include "icsneo/communication/message/ethernetmessage.h"
namespace icsneo {
void init_ethernetmessage(pybind11::module_& m) {
pybind11::classh<EthernetMessage::T1S>(m, "EthernetMessageT1S")
.def(pybind11::init())
.def_readwrite("isSymbol", &EthernetMessage::T1S::isSymbol)
.def_readwrite("isBurst", &EthernetMessage::T1S::isBurst)
.def_readwrite("txCollision", &EthernetMessage::T1S::txCollision)
.def_readwrite("isWake", &EthernetMessage::T1S::isWake)
.def_readwrite("nodeId", &EthernetMessage::T1S::nodeId)
.def_readwrite("burstCount", &EthernetMessage::T1S::burstCount)
.def_readwrite("symbolType", &EthernetMessage::T1S::symbolType);
pybind11::classh<EthernetMessage, Frame>(m, "EthernetMessage")
.def(pybind11::init())
.def_readwrite("fcs", &EthernetMessage::fcs)
.def_readwrite("frameTooShort", &EthernetMessage::frameTooShort)
.def_readwrite("noPadding", &EthernetMessage::noPadding)
.def_readwrite("fcsVerified", &EthernetMessage::fcsVerified)
.def_readwrite("txAborted", &EthernetMessage::txAborted)
.def_readwrite("crcError", &EthernetMessage::crcError)
.def_readwrite("t1s", &EthernetMessage::t1s)
.def_readwrite("preemptionFlags", &EthernetMessage::preemptionFlags)
.def("get_destination_mac", &EthernetMessage::getDestinationMAC)
.def("get_source_mac", &EthernetMessage::getSourceMAC)
.def("get_ether_type", &EthernetMessage::getEtherType);
}
} // namespace icsneo
@@ -1,36 +0,0 @@
#include <pybind11/pybind11.h>
#include <pybind11/stl.h>
#include <pybind11/functional.h>
#include "icsneo/communication/message/ethernetstatusmessage.h"
namespace icsneo {
void init_ethernetstatusmessage(pybind11::module_& m) {
pybind11::classh<EthernetStatusMessage, Message> ethernetStatusMessage(m, "EthernetStatusMessage");
pybind11::enum_<EthernetStatusMessage::LinkSpeed>(ethernetStatusMessage, "LinkSpeed")
.value("LinkSpeedAuto", EthernetStatusMessage::LinkSpeed::LinkSpeedAuto)
.value("LinkSpeed10", EthernetStatusMessage::LinkSpeed::LinkSpeed10)
.value("LinkSpeed100", EthernetStatusMessage::LinkSpeed::LinkSpeed100)
.value("LinkSpeed1000", EthernetStatusMessage::LinkSpeed::LinkSpeed1000)
.value("LinkSpeed2500", EthernetStatusMessage::LinkSpeed::LinkSpeed2500)
.value("LinkSpeed5000", EthernetStatusMessage::LinkSpeed::LinkSpeed5000)
.value("LinkSpeed10000", EthernetStatusMessage::LinkSpeed::LinkSpeed10000);
pybind11::enum_<EthernetStatusMessage::LinkMode>(ethernetStatusMessage, "LinkMode")
.value("LinkModeAuto", EthernetStatusMessage::LinkMode::LinkModeAuto)
.value("LinkModeMaster", EthernetStatusMessage::LinkMode::LinkModeMaster)
.value("LinkModeSlave", EthernetStatusMessage::LinkMode::LinkModeSlave)
.value("LinkModeInvalid", EthernetStatusMessage::LinkMode::LinkModeInvalid)
.value("LinkModeNone", EthernetStatusMessage::LinkMode::LinkModeNone);
ethernetStatusMessage
.def_readonly("network", &EthernetStatusMessage::network)
.def_readonly("state", &EthernetStatusMessage::state)
.def_readonly("speed", &EthernetStatusMessage::speed)
.def_readonly("duplex", &EthernetStatusMessage::duplex)
.def_readonly("mode", &EthernetStatusMessage::mode);
}
} // namespace icsneo
@@ -1,34 +0,0 @@
#include <pybind11/pybind11.h>
#include <pybind11/stl.h>
#include <pybind11/functional.h>
#include "icsneo/communication/message/ethphymessage.h"
namespace icsneo {
void init_ethphymessage(pybind11::module_& m) {
pybind11::classh<Clause22Message>(m, "Clause22Message")
.def_readwrite("phyAddr", &Clause22Message::phyAddr)
.def_readwrite("page", &Clause22Message::page)
.def_readwrite("regAddr", &Clause22Message::regAddr)
.def_readwrite("regVal", &Clause22Message::regVal);
pybind11::classh<Clause45Message>(m, "Clause45Message")
.def_readwrite("port", &Clause45Message::port)
.def_readwrite("device", &Clause45Message::device)
.def_readwrite("regAddr", &Clause45Message::regAddr)
.def_readwrite("regVal", &Clause45Message::regVal);
pybind11::classh<PhyMessage>(m, "PhyMessage")
.def(pybind11::init())
.def_readwrite("Enabled", &PhyMessage::Enabled)
.def_readwrite("WriteEnable", &PhyMessage::WriteEnable)
.def_readwrite("Clause45Enable", &PhyMessage::Clause45Enable)
.def_readwrite("Version", &PhyMessage::Version)
.def_readwrite("BusIndex", &PhyMessage::BusIndex)
.def_readwrite("Clause22", &PhyMessage::Clause22)
.def_readwrite("Clause45", &PhyMessage::Clause45);
pybind11::classh<EthPhyMessage, Message>(m, "EthPhyMessage")
.def(pybind11::init())
.def_readwrite("messages", &EthPhyMessage::messages);
}
} // namespace icsneo
@@ -1,17 +0,0 @@
#include <pybind11/pybind11.h>
#include <pybind11/stl.h>
#include <pybind11/functional.h>
#include "icsneo/communication/message/filter/messagefilter.h"
namespace icsneo {
void init_messagefilter(pybind11::module_& m) {
pybind11::classh<MessageFilter>(m, "MessageFilter")
.def(pybind11::init())
.def(pybind11::init<Message::Type>())
.def(pybind11::init<Network::NetID>());
}
} // namespace icsneo
@@ -1,80 +0,0 @@
#include <pybind11/pybind11.h>
#include <pybind11/stl.h>
#include <pybind11/functional.h>
#include "icsneo/communication/message/gptpstatusmessage.h"
namespace icsneo {
void init_gptpstatusmessage(pybind11::module_& m) {
pybind11::classh<GPTPStatus, Message> gptpStatus(m, "GPTPStatus");
pybind11::classh<GPTPStatus::Timestamp>(gptpStatus, "Timestamp")
.def_readonly("seconds", &GPTPStatus::Timestamp::seconds)
.def_readonly("nanoseconds", &GPTPStatus::Timestamp::nanoseconds)
.def("to_seconds", &GPTPStatus::Timestamp::toSeconds, pybind11::call_guard<pybind11::gil_scoped_release>());
pybind11::classh<GPTPStatus::ScaledNanoSeconds>(gptpStatus, "ScaledNanoSeconds")
.def_readonly("nanoseconds_msb", &GPTPStatus::ScaledNanoSeconds::nanosecondsMSB)
.def_readonly("nanoseconds_lsb", &GPTPStatus::ScaledNanoSeconds::nanosecondsLSB)
.def_readonly("fractional_nanoseconds", &GPTPStatus::ScaledNanoSeconds::fractionalNanoseconds);
pybind11::classh<GPTPStatus::PortID>(gptpStatus, "PortID")
.def_readonly("clock_identity", &GPTPStatus::PortID::clockIdentity)
.def_readonly("port_number", &GPTPStatus::PortID::portNumber);
pybind11::classh<GPTPStatus::ClockQuality>(gptpStatus, "ClockQuality")
.def_readonly("clock_class", &GPTPStatus::ClockQuality::clockClass)
.def_readonly("clock_accuracy", &GPTPStatus::ClockQuality::clockAccuracy)
.def_readonly("offset_scaled_log_variance", &GPTPStatus::ClockQuality::offsetScaledLogVariance);
pybind11::classh<GPTPStatus::SystemID>(gptpStatus, "SystemID")
.def_readonly("priority1", &GPTPStatus::SystemID::priority1)
.def_readonly("clock_quality", &GPTPStatus::SystemID::clockQuality)
.def_readonly("priority2", &GPTPStatus::SystemID::priority2)
.def_readonly("clock_id", &GPTPStatus::SystemID::clockID);
pybind11::classh<GPTPStatus::PriorityVector>(gptpStatus, "PriorityVector")
.def_readonly("sys_id", &GPTPStatus::PriorityVector::sysID)
.def_readonly("steps_removed", &GPTPStatus::PriorityVector::stepsRemoved)
.def_readonly("port_id", &GPTPStatus::PriorityVector::portID)
.def_readonly("port_number", &GPTPStatus::PriorityVector::portNumber);
pybind11::classh<GPTPStatus::ParentDS>(gptpStatus, "ParentDS")
.def_readonly("parent_port_identity", &GPTPStatus::ParentDS::parentPortIdentity)
.def_readonly("cumulative_rate_ratio", &GPTPStatus::ParentDS::cumulativeRateRatio)
.def_readonly("grandmaster_identity", &GPTPStatus::ParentDS::grandmasterIdentity)
.def_readonly("gm_clock_quality_clock_class", &GPTPStatus::ParentDS::gmClockQualityClockClass)
.def_readonly("gm_clock_quality_clock_accuracy", &GPTPStatus::ParentDS::gmClockQualityClockAccuracy)
.def_readonly("gm_clock_quality_offset_scaled_log_variance", &GPTPStatus::ParentDS::gmClockQualityOffsetScaledLogVariance)
.def_readonly("gm_priority1", &GPTPStatus::ParentDS::gmPriority1)
.def_readonly("gm_priority2", &GPTPStatus::ParentDS::gmPriority2);
pybind11::classh<GPTPStatus::CurrentDS>(gptpStatus, "CurrentDS")
.def_readonly("steps_removed", &GPTPStatus::CurrentDS::stepsRemoved)
.def_readonly("offset_from_master", &GPTPStatus::CurrentDS::offsetFromMaster)
.def_readonly("lastgm_phase_change", &GPTPStatus::CurrentDS::lastgmPhaseChange)
.def_readonly("lastgm_freq_change", &GPTPStatus::CurrentDS::lastgmFreqChange)
.def_readonly("gm_time_base_indicator", &GPTPStatus::CurrentDS::gmTimeBaseIndicator)
.def_readonly("gm_change_count", &GPTPStatus::CurrentDS::gmChangeCount)
.def_readonly("time_of_lastgm_change_event", &GPTPStatus::CurrentDS::timeOfLastgmChangeEvent)
.def_readonly("time_of_lastgm_phase_change_event", &GPTPStatus::CurrentDS::timeOfLastgmPhaseChangeEvent)
.def_readonly("time_of_lastgm_freq_change_event", &GPTPStatus::CurrentDS::timeOfLastgmFreqChangeEvent);
gptpStatus.def_readonly("current_time", &GPTPStatus::currentTime)
.def_readonly("gm_priority", &GPTPStatus::gmPriority)
.def_readonly("ms_offset_ns", &GPTPStatus::msOffsetNs)
.def_readonly("is_sync", &GPTPStatus::isSync)
.def_readonly("link_status", &GPTPStatus::linkStatus)
.def_readonly("link_delay_ns", &GPTPStatus::linkDelayNS)
.def_readonly("selected_role", &GPTPStatus::selectedRole)
.def_readonly("as_capable", &GPTPStatus::asCapable)
.def_readonly("is_syntonized", &GPTPStatus::isSyntonized)
.def_readonly("last_rx_sync_ts", &GPTPStatus::lastRXSyncTS)
.def_readonly("current_ds", &GPTPStatus::currentDS)
.def_readonly("parent_ds", &GPTPStatus::parentDS)
.def_readonly("short_format", &GPTPStatus::shortFormat);
}
} // namespace icsneo
@@ -1,59 +0,0 @@
#include <pybind11/pybind11.h>
#include <pybind11/stl.h>
#include <pybind11/functional.h>
#include "icsneo/communication/message/linmessage.h"
namespace icsneo {
void init_linmessage(pybind11::module_& m) {
pybind11::classh<LINErrorFlags>(m, "LINErrorFlags")
.def_readwrite("ErrRxBreakOnly", &LINErrorFlags::ErrRxBreakOnly)
.def_readwrite("ErrRxBreakSyncOnly", &LINErrorFlags::ErrRxBreakSyncOnly)
.def_readwrite("ErrTxRxMismatch", &LINErrorFlags::ErrTxRxMismatch)
.def_readwrite("ErrRxBreakNotZero", &LINErrorFlags::ErrRxBreakNotZero)
.def_readwrite("ErrRxBreakTooShort", &LINErrorFlags::ErrRxBreakTooShort)
.def_readwrite("ErrRxSyncNot55", &LINErrorFlags::ErrRxSyncNot55)
.def_readwrite("ErrRxDataLenOver8", &LINErrorFlags::ErrRxDataLenOver8)
.def_readwrite("ErrFrameSync", &LINErrorFlags::ErrFrameSync)
.def_readwrite("ErrFrameMessageID", &LINErrorFlags::ErrFrameMessageID)
.def_readwrite("ErrFrameResponderData", &LINErrorFlags::ErrFrameResponderData)
.def_readwrite("ErrChecksumMatch", &LINErrorFlags::ErrChecksumMatch);
pybind11::classh<LINStatusFlags>(m, "LINStatusFlags")
.def_readwrite("TxChecksumEnhanced", &LINStatusFlags::TxChecksumEnhanced)
.def_readwrite("TxCommander", &LINStatusFlags::TxCommander)
.def_readwrite("TxResponder", &LINStatusFlags::TxResponder)
.def_readwrite("TxAborted", &LINStatusFlags::TxAborted)
.def_readwrite("UpdateResponderOnce", &LINStatusFlags::UpdateResponderOnce)
.def_readwrite("HasUpdatedResponderOnce", &LINStatusFlags::HasUpdatedResponderOnce)
.def_readwrite("BusRecovered", &LINStatusFlags::BusRecovered)
.def_readwrite("BreakOnly", &LINStatusFlags::BreakOnly);
pybind11::classh<LINMessage, Frame> linMessage(m, "LINMessage");
pybind11::enum_<LINMessage::Type>(linMessage, "Type")
.value("NOT_SET", LINMessage::Type::NOT_SET)
.value("LIN_COMMANDER_MSG", LINMessage::Type::LIN_COMMANDER_MSG)
.value("LIN_HEADER_ONLY", LINMessage::Type::LIN_HEADER_ONLY)
.value("LIN_BREAK_ONLY", LINMessage::Type::LIN_BREAK_ONLY)
.value("LIN_SYNC_ONLY", LINMessage::Type::LIN_SYNC_ONLY)
.value("LIN_UPDATE_RESPONDER", LINMessage::Type::LIN_UPDATE_RESPONDER)
.value("LIN_ERROR", LINMessage::Type::LIN_ERROR);
linMessage
.def(pybind11::init<>())
.def(pybind11::init<uint8_t>())
.def_static("calc_checksum", &LINMessage::calcChecksum)
.def("calc_protected_id", &LINMessage::calcProtectedID)
.def_readwrite("ID", &LINMessage::ID)
.def_readwrite("protectedID", &LINMessage::protectedID)
.def_readwrite("checksum", &LINMessage::checksum)
.def_readwrite("linMsgType", &LINMessage::linMsgType)
.def_readwrite("isEnhancedChecksum", &LINMessage::isEnhancedChecksum)
.def_readwrite("errFlags", &LINMessage::errFlags)
.def_readwrite("statusFlags", &LINMessage::statusFlags);
}
} // namespace icsneo
@@ -1,50 +0,0 @@
#include <pybind11/pybind11.h>
#include <pybind11/stl.h>
#include <pybind11/functional.h>
#include <pybind11/chrono.h>
#include "icsneo/communication/message/livedatamessage.h"
namespace icsneo {
void init_livedatamessage(pybind11::module_& m) {
// LiveDataMessage base class
pybind11::classh<LiveDataMessage, RawMessage>(m, "LiveDataMessage")
.def(pybind11::init<>())
.def_readwrite("handle", &LiveDataMessage::handle)
.def_readwrite("cmd", &LiveDataMessage::cmd);
// LiveDataCommandMessage (for subscribe/unsubscribe)
pybind11::classh<LiveDataCommandMessage, LiveDataMessage>(m, "LiveDataCommandMessage")
.def(pybind11::init<>())
.def_readwrite("update_period", &LiveDataCommandMessage::updatePeriod)
.def_readwrite("expiration_time", &LiveDataCommandMessage::expirationTime)
.def_readwrite("args", &LiveDataCommandMessage::args)
.def("append_signal_arg", &LiveDataCommandMessage::appendSignalArg,
pybind11::arg("value_type"),
"Append a signal argument to the command message");
// LiveDataValueMessage (received values)
pybind11::classh<LiveDataValueMessage, LiveDataMessage>(m, "LiveDataValueMessage")
.def(pybind11::init<>())
.def_readwrite("num_args", &LiveDataValueMessage::numArgs)
.def_readwrite("values", &LiveDataValueMessage::values);
// LiveDataStatusMessage (status responses)
pybind11::classh<LiveDataStatusMessage, LiveDataMessage>(m, "LiveDataStatusMessage")
.def(pybind11::init<>())
.def_readwrite("requested_command", &LiveDataStatusMessage::requestedCommand)
.def_readwrite("status", &LiveDataStatusMessage::status);
// LiveDataSetValueMessage (for setting values)
pybind11::classh<LiveDataSetValueMessage, LiveDataMessage>(m, "LiveDataSetValueMessage")
.def(pybind11::init<>())
.def_readwrite("args", &LiveDataSetValueMessage::args)
.def_readwrite("values", &LiveDataSetValueMessage::values)
.def("append_set_value", &LiveDataSetValueMessage::appendSetValue,
pybind11::arg("value_type"),
pybind11::arg("value"),
"Append a value to set in the message");
}
} // namespace icsneo
@@ -1,35 +0,0 @@
#include <pybind11/pybind11.h>
#include <pybind11/stl.h>
#include <pybind11/functional.h>
#include "icsneo/communication/message/mdiomessage.h"
namespace icsneo {
void init_mdiomessage(pybind11::module_& m) {
pybind11::classh<MDIOMessage, Frame> mdioMessage(m, "MDIOMessage");
pybind11::enum_<MDIOMessage::Clause>(mdioMessage, "Clause")
.value("Clause45", MDIOMessage::Clause::Clause45)
.value("Clause22", MDIOMessage::Clause::Clause22);
pybind11::enum_<MDIOMessage::Direction>(mdioMessage, "Direction")
.value("Write", MDIOMessage::Direction::Write)
.value("Read", MDIOMessage::Direction::Read);
mdioMessage
.def(pybind11::init())
.def_readwrite("isTXMsg", &MDIOMessage::isTXMsg)
.def_readwrite("txTimeout", &MDIOMessage::txTimeout)
.def_readwrite("txAborted", &MDIOMessage::txAborted)
.def_readwrite("txInvalidBus", &MDIOMessage::txInvalidBus)
.def_readwrite("txInvalidPhyAddr", &MDIOMessage::txInvalidPhyAddr)
.def_readwrite("txInvalidRegAddr", &MDIOMessage::txInvalidRegAddr)
.def_readwrite("txInvalidClause", &MDIOMessage::txInvalidClause)
.def_readwrite("txInvalidOpcode", &MDIOMessage::txInvalidOpcode)
.def_readwrite("phyAddress", &MDIOMessage::phyAddress)
.def_readwrite("devAddress", &MDIOMessage::devAddress)
.def_readwrite("regAddress", &MDIOMessage::regAddress)
.def_readwrite("direction", &MDIOMessage::direction)
.def_readwrite("clause", &MDIOMessage::clause);
}
} // namespace icsneo
@@ -1,57 +0,0 @@
#include <pybind11/pybind11.h>
#include <pybind11/stl.h>
#include <pybind11/functional.h>
#include <pybind11/native_enum.h>
#include "icsneo/communication/message/message.h"
namespace icsneo {
void init_message(pybind11::module_& m) {
// Using py::smart_holder for safer lifetime management
pybind11::classh<Message> message(m, "Message");
pybind11::native_enum<Message::Type>(message, "Type", "enum.IntEnum")
.value("Frame", Message::Type::Frame)
.value("CANErrorCount", Message::Type::CANErrorCount)
.value("CANError", Message::Type::CANError)
.value("LINHeaderOnly", Message::Type::LINHeaderOnly)
.value("LINBreak", Message::Type::LINBreak)
.value("Invalid", Message::Type::Invalid)
.value("RawMessage", Message::Type::RawMessage)
.value("ReadSettings", Message::Type::ReadSettings)
.value("ResetStatus", Message::Type::ResetStatus)
.value("DeviceVersion", Message::Type::DeviceVersion)
.value("Main51", Message::Type::Main51)
.value("FlexRayControl", Message::Type::FlexRayControl)
.value("EthernetPhyRegister", Message::Type::EthernetPhyRegister)
.value("LogicalDiskInfo", Message::Type::LogicalDiskInfo)
.value("ExtendedResponse", Message::Type::ExtendedResponse)
.value("WiVICommandResponse", Message::Type::WiVICommandResponse)
.value("ScriptStatus", Message::Type::ScriptStatus)
.value("ComponentVersions", Message::Type::ComponentVersions)
.value("SupportedFeatures", Message::Type::SupportedFeatures)
.value("GenericBinaryStatus", Message::Type::GenericBinaryStatus)
.value("LiveData", Message::Type::LiveData)
.value("HardwareInfo", Message::Type::HardwareInfo)
.value("TC10Status", Message::Type::TC10Status)
.value("AppError", Message::Type::AppError)
.value("GPTPStatus", Message::Type::GPTPStatus)
.value("EthernetStatus", Message::Type::EthernetStatus)
.finalize();
message.def(pybind11::init<Message::Type>());
message.def_readonly("type", &Message::type);
message.def_readwrite("timestamp", &Message::timestamp);
pybind11::classh<RawMessage, Message>(m, "RawMessage")
.def_readwrite("network", &RawMessage::network)
.def_readwrite("data", &RawMessage::data);
pybind11::classh<Frame, RawMessage>(m, "Frame")
.def_readwrite("description", &Frame::description)
.def_readwrite("transmitted", &Frame::transmitted)
.def_readwrite("error", &Frame::error);
}
} // namespace icsneo
@@ -1,30 +0,0 @@
#include <pybind11/pybind11.h>
#include <pybind11/stl.h>
#include <pybind11/functional.h>
#include "icsneo/communication/message/scriptstatusmessage.h"
namespace icsneo {
void init_scriptstatusmessage(pybind11::module_& m) {
pybind11::classh<ScriptStatusMessage, Message>(m, "ScriptStatusMessage")
.def_readonly("isEncrypted", &ScriptStatusMessage::isEncrypted)
.def_readonly("isCoreminiRunning", &ScriptStatusMessage::isCoreminiRunning)
.def_readonly("sectorOverflows", &ScriptStatusMessage::sectorOverflows)
.def_readonly("numRemainingSectorBuffers", &ScriptStatusMessage::numRemainingSectorBuffers)
.def_readonly("lastSector", &ScriptStatusMessage::lastSector)
.def_readonly("readBinSize", &ScriptStatusMessage::readBinSize)
.def_readonly("minSector", &ScriptStatusMessage::minSector)
.def_readonly("maxSector", &ScriptStatusMessage::maxSector)
.def_readonly("currentSector", &ScriptStatusMessage::currentSector)
.def_readonly("coreminiCreateTime", &ScriptStatusMessage::coreminiCreateTime)
.def_readonly("fileChecksum", &ScriptStatusMessage::fileChecksum)
.def_readonly("coreminiVersion", &ScriptStatusMessage::coreminiVersion)
.def_readonly("coreminiHeaderSize", &ScriptStatusMessage::coreminiHeaderSize)
.def_readonly("diagnosticErrorCode", &ScriptStatusMessage::diagnosticErrorCode)
.def_readonly("diagnosticErrorCodeCount", &ScriptStatusMessage::diagnosticErrorCodeCount)
.def_readonly("maxCoreminiSizeKB", &ScriptStatusMessage::maxCoreminiSizeKB);
}
} // namespace icsneo
@@ -1,24 +0,0 @@
#include <pybind11/pybind11.h>
#include <pybind11/stl.h>
#include <pybind11/functional.h>
#include "icsneo/communication/message/spimessage.h"
namespace icsneo {
void init_spimessage(pybind11::module_& m) {
pybind11::classh<SPIMessage, Frame> spiMessage(m, "SPIMessage");
pybind11::enum_<SPIMessage::Direction>(spiMessage, "Direction")
.value("Write", SPIMessage::Direction::Write)
.value("Read", SPIMessage::Direction::Read);
spiMessage
.def(pybind11::init())
.def_readwrite("direction", &SPIMessage::direction)
.def_readwrite("address", &SPIMessage::address)
.def_readwrite("mms", &SPIMessage::mms)
.def_readwrite("stats", &SPIMessage::stats)
.def_readwrite("payload", &SPIMessage::payload);
}
} // namespace icsneo
@@ -1,25 +0,0 @@
#include <pybind11/pybind11.h>
#include <pybind11/stl.h>
#include <pybind11/functional.h>
#include "icsneo/communication/message/tc10statusmessage.h"
namespace icsneo {
void init_tc10statusmessage(pybind11::module_& m) {
pybind11::enum_<TC10WakeStatus>(m, "TC10WakeStatus")
.value("NoWakeReceived", TC10WakeStatus::NoWakeReceived)
.value("WakeReceived", TC10WakeStatus::WakeReceived);
pybind11::enum_<TC10SleepStatus>(m, "TC10SleepStatus")
.value("NoSleepReceived", TC10SleepStatus::NoSleepReceived)
.value("SleepReceived", TC10SleepStatus::SleepReceived)
.value("SleepFailed", TC10SleepStatus::SleepFailed)
.value("SleepAborted", TC10SleepStatus::SleepAborted);
pybind11::classh<TC10StatusMessage, Message>(m, "TC10StatusMessage")
.def_readonly("wakeStatus", &TC10StatusMessage::wakeStatus)
.def_readonly("sleepStatus", &TC10StatusMessage::sleepStatus);
}
} // namespace icsneo
@@ -1,202 +0,0 @@
#include <pybind11/pybind11.h>
#include <pybind11/stl.h>
#include <pybind11/functional.h>
#include <pybind11/native_enum.h>
#include "icsneo/communication/network.h"
namespace icsneo {
void init_network(pybind11::module_& m) {
pybind11::classh<Network> network(m, "Network");
pybind11::native_enum<Network::NetID>(network, "NetID", "enum.IntEnum")
.value("Device", Network::NetID::Device)
.value("DWCAN_01", Network::NetID::DWCAN_01)
.value("DWCAN_08", Network::NetID::DWCAN_08)
.value("SWCAN_01", Network::NetID::SWCAN_01)
.value("LSFTCAN_01", Network::NetID::LSFTCAN_01)
.value("FordSCP", Network::NetID::FordSCP)
.value("J1708", Network::NetID::J1708)
.value("Aux", Network::NetID::Aux)
.value("J1850VPW", Network::NetID::J1850VPW)
.value("ISO9141_01", Network::NetID::ISO9141_01)
.value("DiskData", Network::NetID::DiskData)
.value("Main51", Network::NetID::Main51)
.value("RED", Network::NetID::RED)
.value("SCI", Network::NetID::SCI)
.value("ISO9141_02", Network::NetID::ISO9141_02)
.value("ISO14230", Network::NetID::ISO14230)
.value("LIN_01", Network::NetID::LIN_01)
.value("AE_01", Network::NetID::AE_01)
.value("AE_02", Network::NetID::AE_02)
.value("AE_03", Network::NetID::AE_03)
.value("RED_EXT_MEMORYREAD", Network::NetID::RED_EXT_MEMORYREAD)
.value("RED_INT_MEMORYREAD", Network::NetID::RED_INT_MEMORYREAD)
.value("RED_DFLASH_READ", Network::NetID::RED_DFLASH_READ)
.value("NeoMemorySDRead", Network::NetID::NeoMemorySDRead)
.value("CAN_ERRBITS", Network::NetID::CAN_ERRBITS)
.value("NeoMemoryWriteDone", Network::NetID::NeoMemoryWriteDone)
.value("RED_WAVE_CAN1_LOGICAL", Network::NetID::RED_WAVE_CAN1_LOGICAL)
.value("RED_WAVE_CAN2_LOGICAL", Network::NetID::RED_WAVE_CAN2_LOGICAL)
.value("RED_WAVE_LIN1_LOGICAL", Network::NetID::RED_WAVE_LIN1_LOGICAL)
.value("RED_WAVE_LIN2_LOGICAL", Network::NetID::RED_WAVE_LIN2_LOGICAL)
.value("RED_WAVE_LIN1_ANALOG", Network::NetID::RED_WAVE_LIN1_ANALOG)
.value("RED_WAVE_LIN2_ANALOG", Network::NetID::RED_WAVE_LIN2_ANALOG)
.value("RED_WAVE_MISC_ANALOG", Network::NetID::RED_WAVE_MISC_ANALOG)
.value("RED_WAVE_MISCDIO2_LOGICAL", Network::NetID::RED_WAVE_MISCDIO2_LOGICAL)
.value("RED_NETWORK_COM_ENABLE_EX", Network::NetID::RED_NETWORK_COM_ENABLE_EX)
.value("RED_NEOVI_NETWORK", Network::NetID::RED_NEOVI_NETWORK)
.value("RED_READ_BAUD_SETTINGS", Network::NetID::RED_READ_BAUD_SETTINGS)
.value("RED_OLDFORMAT", Network::NetID::RED_OLDFORMAT)
.value("RED_SCOPE_CAPTURE", Network::NetID::RED_SCOPE_CAPTURE)
.value("RED_HARDWARE_EXCEP", Network::NetID::RED_HARDWARE_EXCEP)
.value("RED_GET_RTC", Network::NetID::RED_GET_RTC)
.value("ISO9141_03", Network::NetID::ISO9141_03)
.value("DWCAN_02", Network::NetID::DWCAN_02)
.value("DWCAN_03", Network::NetID::DWCAN_03)
.value("AE_04", Network::NetID::AE_04)
.value("AE_05", Network::NetID::AE_05)
.value("ISO9141_04", Network::NetID::ISO9141_04)
.value("LIN_02", Network::NetID::LIN_02)
.value("LIN_03", Network::NetID::LIN_03)
.value("LIN_04", Network::NetID::LIN_04)
.value("RED_App_Error", Network::NetID::RED_App_Error)
.value("CGI", Network::NetID::CGI)
.value("Reset_Status", Network::NetID::Reset_Status)
.value("FB_Status", Network::NetID::FB_Status)
.value("App_Signal_Status", Network::NetID::App_Signal_Status)
.value("Read_Datalink_Cm_Tx_Msg", Network::NetID::Read_Datalink_Cm_Tx_Msg)
.value("Read_Datalink_Cm_Rx_Msg", Network::NetID::Read_Datalink_Cm_Rx_Msg)
.value("Logging_Overflow", Network::NetID::Logging_Overflow)
.value("ReadSettings", Network::NetID::ReadSettings)
.value("DWCAN_04", Network::NetID::DWCAN_04)
.value("DWCAN_05", Network::NetID::DWCAN_05)
.value("RS232", Network::NetID::RS232)
.value("UART_01", Network::NetID::UART_01)
.value("UART_02", Network::NetID::UART_02)
.value("UART_03", Network::NetID::UART_03)
.value("UART_04", Network::NetID::UART_04)
.value("SWCAN_02", Network::NetID::SWCAN_02)
.value("ETHERNET_DAQ", Network::NetID::ETHERNET_DAQ)
.value("Data_To_Host", Network::NetID::Data_To_Host)
.value("TextAPI_To_Host", Network::NetID::TextAPI_To_Host)
.value("SPI_01", Network::NetID::SPI_01)
.value("AE_06", Network::NetID::AE_06)
.value("Red_VBat", Network::NetID::Red_VBat)
.value("AE_07", Network::NetID::AE_07)
.value("AE_08", Network::NetID::AE_08)
.value("AE_09", Network::NetID::AE_09)
.value("AE_10", Network::NetID::AE_10)
.value("AE_11", Network::NetID::AE_11)
.value("FLEXRAY_01A", Network::NetID::FLEXRAY_01A)
.value("FLEXRAY_01B", Network::NetID::FLEXRAY_01B)
.value("FLEXRAY_02A", Network::NetID::FLEXRAY_02A)
.value("FLEXRAY_02B", Network::NetID::FLEXRAY_02B)
.value("LIN_05", Network::NetID::LIN_05)
.value("FLEXRAY_01", Network::NetID::FLEXRAY_01)
.value("FLEXRAY_02", Network::NetID::FLEXRAY_02)
.value("AE_12", Network::NetID::AE_12)
.value("I2C_01", Network::NetID::I2C_01)
.value("MOST_25", Network::NetID::MOST_25)
.value("MOST_50", Network::NetID::MOST_50)
.value("MOST_150", Network::NetID::MOST_150)
.value("ETHERNET_01", Network::NetID::ETHERNET_01)
.value("GMFSA", Network::NetID::GMFSA)
.value("TCP", Network::NetID::TCP)
.value("DWCAN_06", Network::NetID::DWCAN_06)
.value("DWCAN_07", Network::NetID::DWCAN_07)
.value("LIN_06", Network::NetID::LIN_06)
.value("LSFTCAN_02", Network::NetID::LSFTCAN_02)
.value("LogicalDiskInfo", Network::NetID::LogicalDiskInfo)
.value("WiVICommand", Network::NetID::WiVICommand)
.value("ScriptStatus", Network::NetID::ScriptStatus)
.value("EthPHYControl", Network::NetID::EthPHYControl)
.value("ExtendedCommand", Network::NetID::ExtendedCommand)
.value("ExtendedData", Network::NetID::ExtendedData)
.value("FlexRayControl", Network::NetID::FlexRayControl)
.value("CoreMiniPreLoad", Network::NetID::CoreMiniPreLoad)
.value("HW_COM_Latency_Test", Network::NetID::HW_COM_Latency_Test)
.value("DeviceStatus", Network::NetID::DeviceStatus)
.value("UDP", Network::NetID::UDP)
.value("ForwardedMessage", Network::NetID::ForwardedMessage)
.value("I2C_02", Network::NetID::I2C_02)
.value("I2C_03", Network::NetID::I2C_03)
.value("I2C_04", Network::NetID::I2C_04)
.value("ETHERNET_02", Network::NetID::ETHERNET_02)
.value("ETHERNET_TX_WRAP", Network::NetID::ETHERNET_TX_WRAP)
.value("A2B_01", Network::NetID::A2B_01)
.value("A2B_02", Network::NetID::A2B_02)
.value("ETHERNET_03", Network::NetID::ETHERNET_03)
.value("WBMS_01", Network::NetID::WBMS_01)
.value("DWCAN_09", Network::NetID::DWCAN_09)
.value("DWCAN_10", Network::NetID::DWCAN_10)
.value("DWCAN_11", Network::NetID::DWCAN_11)
.value("DWCAN_12", Network::NetID::DWCAN_12)
.value("DWCAN_13", Network::NetID::DWCAN_13)
.value("DWCAN_14", Network::NetID::DWCAN_14)
.value("DWCAN_15", Network::NetID::DWCAN_15)
.value("DWCAN_16", Network::NetID::DWCAN_16)
.value("LIN_07", Network::NetID::LIN_07)
.value("LIN_08", Network::NetID::LIN_08)
.value("SPI_02", Network::NetID::SPI_02)
.value("MDIO_01", Network::NetID::MDIO_01)
.value("MDIO_02", Network::NetID::MDIO_02)
.value("MDIO_03", Network::NetID::MDIO_03)
.value("MDIO_04", Network::NetID::MDIO_04)
.value("MDIO_05", Network::NetID::MDIO_05)
.value("MDIO_06", Network::NetID::MDIO_06)
.value("MDIO_07", Network::NetID::MDIO_07)
.value("MDIO_08", Network::NetID::MDIO_08)
.value("AE_13", Network::NetID::AE_13)
.value("AE_14", Network::NetID::AE_14)
.value("AE_15", Network::NetID::AE_15)
.value("AE_16", Network::NetID::AE_16)
.value("SPI_03", Network::NetID::SPI_03)
.value("SPI_04", Network::NetID::SPI_04)
.value("SPI_05", Network::NetID::SPI_05)
.value("SPI_06", Network::NetID::SPI_06)
.value("SPI_07", Network::NetID::SPI_07)
.value("SPI_08", Network::NetID::SPI_08)
.value("LIN_09", Network::NetID::LIN_09)
.value("LIN_10", Network::NetID::LIN_10)
.value("LIN_11", Network::NetID::LIN_11)
.value("LIN_12", Network::NetID::LIN_12)
.value("LIN_13", Network::NetID::LIN_13)
.value("LIN_14", Network::NetID::LIN_14)
.value("LIN_15", Network::NetID::LIN_15)
.value("LIN_16", Network::NetID::LIN_16)
.value("Any", Network::NetID::Any)
.value("Invalid", Network::NetID::Invalid)
.finalize();
pybind11::native_enum<Network::Type>(network, "Type", "enum.Enum")
.value("Invalid", Network::Type::Invalid)
.value("Internal", Network::Type::Internal)
.value("CAN", Network::Type::CAN)
.value("LIN", Network::Type::LIN)
.value("FlexRay", Network::Type::FlexRay)
.value("MOST", Network::Type::MOST)
.value("Ethernet", Network::Type::Ethernet)
.value("LSFTCAN", Network::Type::LSFTCAN)
.value("SWCAN", Network::Type::SWCAN)
.value("ISO9141", Network::Type::ISO9141)
.value("I2C", Network::Type::I2C)
.value("A2B", Network::Type::A2B)
.value("SPI", Network::Type::SPI)
.value("MDIO", Network::Type::MDIO)
.value("AutomotiveEthernet", Network::Type::AutomotiveEthernet)
.value("Any", Network::Type::Any)
.value("Other", Network::Type::Other)
.finalize();
network
.def(pybind11::init<Network::NetID>())
.def("__repr__", [](Network& self) { return Network::GetNetIDString(self.getNetID()); })
.def_static("get_net_id_string", &Network::GetNetIDString, pybind11::arg("netid"), pybind11::arg("expand") = true)
.def("get_net_id", &Network::getNetID)
.def("get_type", &Network::getType);
}
} // namespace icsneo
-166
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@@ -1,166 +0,0 @@
#include <pybind11/pybind11.h>
#include <pybind11/stl.h>
#include <pybind11/functional.h>
#include "icsneo/core/macseccfg.h"
namespace icsneo {
void init_macsecconfig(pybind11::module_ & m)
{
pybind11::enum_<MACsecPacketType>(m, "MACsecPacketType")
.value("DEFAULT", MACsecPacketType::Default)
.value("SINGLE_VLAN", MACsecPacketType::SingleVLAN)
.value("DUAL_VLAN", MACsecPacketType::DualVLAN)
.value("MPLS", MACsecPacketType::MPLS)
.value("SINGLE_VLAN_FOLLOWED_BY_MPLS", MACsecPacketType::SingleVLANFollowedByMPLS)
.value("DUAL_VLAN_FOLLOWED_BY_MPLS", MACsecPacketType::DualVLANFollowedByMPLS)
.value("UNSUPPORTED", MACsecPacketType::Unsupported);
pybind11::enum_<MACsecValidation>(m, "MACsecValidation")
.value("DISABLED", MACsecValidation::Disabled)
.value("CHECK", MACsecValidation::Check)
.value("STRICT", MACsecValidation::Strict)
.value("NA", MACsecValidation::NA);
pybind11::enum_<MACsecStrip>(m, "MACsecStrip")
.value("STRIP_SECTAG_AND_ICV", MACsecStrip::StripSecTagAndIcv)
.value("STRIP_SECTAG_PRESERVE_ICV", MACsecStrip::StripSecTagPreserveICV)
.value("PRESERVE_SECTAG_STRIP_ICV", MACsecStrip::PreserveSecTagStripICV)
.value("NO_STRIP", MACsecStrip::NoStrip);
pybind11::enum_<MACsecCipherSuite>(m, "MACsecCipherSuite")
.value("GCM_AES_128", MACsecCipherSuite::GcmAes128)
.value("GCM_AES_256", MACsecCipherSuite::GcmAes256)
.value("GCM_AES_128_XPN", MACsecCipherSuite::GcmAes128Xpn)
.value("GCM_AES_256_XPN", MACsecCipherSuite::GcmAes256Xpn);
pybind11::classh<MACsecVLANTag>(m, "MACsecVLANTag")
.def(pybind11::init())
.def_readwrite("vid", &MACsecVLANTag::vid)
.def_readwrite("pri_cfi", &MACsecVLANTag::priCfi);
pybind11::classh<MACsecMPLSOuter>(m, "MACsecMPLSOuter")
.def(pybind11::init())
.def_readwrite("mpls_label", &MACsecMPLSOuter::mplsLabel)
.def_readwrite("exp", &MACsecMPLSOuter::exp);
pybind11::classh<MACsecTci>(m, "MACsecTci")
.def(pybind11::init())
.def_readwrite("es", &MACsecTci::es)
.def_readwrite("sc", &MACsecTci::sc)
.def_readwrite("scb", &MACsecTci::scb)
.def_readwrite("e", &MACsecTci::e)
.def_readwrite("c", &MACsecTci::c);
pybind11::classh<MACsecRxRule>(m, "MACsecRxRule")
.def(pybind11::init())
.def_readwrite("key_mac_da", &MACsecRxRule::keyMacDa)
.def_readwrite("mask_mac_da", &MACsecRxRule::maskMacDa)
.def_readwrite("key_mask_sa", &MACsecRxRule::keyMacSa)
.def_readwrite("mask_mac_sa", &MACsecRxRule::maskMacSa)
.def_readwrite("key_ether_type", &MACsecRxRule::keyEthertype)
.def_readwrite("mask_ether_type", &MACsecRxRule::maskEthertype)
.def_readwrite("key_vlan_tag_outer1", &MACsecRxRule::keyVlanTagOuter1)
.def_readwrite("key_mpls_outer1", &MACsecRxRule::keyMplsOuter1)
.def_readwrite("mask_vlan_tag_outer1", &MACsecRxRule::maskVlanTagOuter1)
.def_readwrite("mask_mpls_outer1", &MACsecRxRule::maskMplsOuter1)
.def_readwrite("key_vlan_tag_outer2", &MACsecRxRule::keyVlanTagOuter2)
.def_readwrite("key_mpls_outer2", &MACsecRxRule::keyMplsOuter2)
.def_readwrite("mask_vlan_tag_outer2", &MACsecRxRule::maskVlanTagOuter2)
.def_readwrite("mask_mpls_outer2", &MACsecRxRule::maskMplsOuter2)
.def_readwrite("key_bonus_data", &MACsecRxRule::keyBonusData)
.def_readwrite("mask_bonus_data", &MACsecRxRule::maskBonusData)
.def_readwrite("key_tag_match_bitmap", &MACsecRxRule::keyTagMatchBitmap)
.def_readwrite("mask_tag_match_bitmap", &MACsecRxRule::maskTagMatchBitmap)
.def_readwrite("key_packet_type", &MACsecRxRule::keyPacketType)
.def_readwrite("mask_packet_type", &MACsecRxRule::maskPacketType)
.def_readwrite("key_inner_vlan_type", &MACsecRxRule::keyInnerVlanType)
.def_readwrite("mask_inner_vlan_type", &MACsecRxRule::maskInnerVlanType)
.def_readwrite("key_outer_vlan_type", &MACsecRxRule::keyOuterVlanType)
.def_readwrite("mask_outer_vlan_type", &MACsecRxRule::maskOuterVlanType)
.def_readwrite("key_num_tags", &MACsecRxRule::keyNumTags)
.def_readwrite("mask_num_tags", &MACsecRxRule::maskNumTags)
.def_readwrite("key_express", &MACsecRxRule::keyExpress)
.def_readwrite("mask_express", &MACsecRxRule::maskExpress)
.def_readwrite("is_mpls", &MACsecRxRule::isMpls);
pybind11::classh<MACsecTxSecY>(m, "MACsecTxSecY")
.def(pybind11::init())
.def_readwrite("enable_control_port", &MACsecTxSecY::enableControlPort)
.def_readwrite("cipher", &MACsecTxSecY::cipher)
.def_readwrite("confidentiality_offset", &MACsecTxSecY::confidentialityOffset)
.def_readwrite("icv_includes_da_sa", &MACsecTxSecY::icvIncludesDaSa)
.def_readwrite("protect_frames", &MACsecTxSecY::protectFrames)
.def_readwrite("sec_tag_offset", &MACsecTxSecY::secTagOffset)
.def_readwrite("sec_tag_tci", &MACsecTxSecY::tci)
.def_readwrite("mtu", &MACsecTxSecY::mtu)
.def_readwrite("is_control_packet", &MACsecTxSecY::isControlPacket)
.def_readwrite("auxiliary_policy", &MACsecTxSecY::auxiliaryPolicy)
.def_readwrite("sci", &MACsecTxSecY::sci);
pybind11::classh<MACsecRxSecY>(m, "MACsecRxSecY")
.def(pybind11::init())
.def_readwrite("enable_control_port", &MACsecRxSecY::enableControlPort)
.def_readwrite("frame_validation", &MACsecRxSecY::frameValidation)
.def_readwrite("frame_strip", &MACsecRxSecY::frameStrip)
.def_readwrite("cipher", &MACsecRxSecY::cipher)
.def_readwrite("confidentiality_offset", &MACsecRxSecY::confidentialityOffset)
.def_readwrite("icv_includes_da_sa", &MACsecRxSecY::icvIncludesDaSa)
.def_readwrite("replay_protect", &MACsecRxSecY::replayProtect)
.def_readwrite("replay_window", &MACsecRxSecY::replayWindow)
.def_readwrite("is_control_packet", &MACsecRxSecY::isControlPacket)
.def_readwrite("sci", &MACsecRxSecY::sci);
pybind11::classh<MACsecTxSa>(m, "MACsecTxSa")
.def(pybind11::init())
.def_readwrite("sak", &MACsecTxSa::sak)
.def_readwrite("hash_key", &MACsecTxSa::hashKey)
.def_readwrite("salt", &MACsecTxSa::salt)
.def_readwrite("ssci", &MACsecTxSa::ssci)
.def_readwrite("next_pn", &MACsecTxSa::nextPn)
.def_readwrite("an", &MACsecTxSa::an);
pybind11::classh<MACsecRxSa>(m, "MACsecRxSa")
.def(pybind11::init())
.def_readwrite("sak", &MACsecRxSa::sak)
.def_readwrite("hash_key", &MACsecRxSa::hashKey)
.def_readwrite("salt", &MACsecRxSa::salt)
.def_readwrite("ssci", &MACsecRxSa::ssci)
.def_readwrite("next_pn", &MACsecRxSa::nextPn);
pybind11::classh<MACsecConfig>(m, "MACsecConfig")
.def(pybind11::init<icsneo::DeviceType>())
.def("add_rx_secy", &MACsecConfig::addRxSecY, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("add_tx_secY", &MACsecConfig::addTxSecY, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("add_rx_rule", &MACsecConfig::addRxRule, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("add_rx_sa", &MACsecConfig::addRxSa, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("add_tx_sa", &MACsecConfig::addTxSa, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("get_rx_secy", [](MACsecConfig& cfg, uint8_t index) -> MACsecRxSecY& { return cfg.getRxSecY(index); }, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("get_tx_secy", [](MACsecConfig& cfg, uint8_t index) -> MACsecTxSecY& { return cfg.getTxSecY(index); }, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("get_rx_sa", [](MACsecConfig& cfg, uint8_t index) -> MACsecRxSa& { return cfg.getRxSa(index); }, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("get_tx_sa", [](MACsecConfig& cfg, uint8_t index) -> MACsecTxSa& { return cfg.getTxSa(index); }, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("get_rx_rule", [](MACsecConfig& cfg, uint8_t index) -> MACsecRxRule& { return cfg.getRxRule(index); }, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("set_tx_sa_index", &MACsecConfig::setTxSaIndex, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("enable_tx_rekey", &MACsecConfig::enableTxRekey, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("set_tx_sa_rekey_index", &MACsecConfig::setTxSaRekeyIndex, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("disable_tx_rekey", &MACsecConfig::disableTxRekey, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("set_rx_sa_index", &MACsecConfig::setRxSaIndex, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("enable_rx_rekey", &MACsecConfig::enableRxRekey, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("set_rx_sa_rekey_index", &MACsecConfig::setRxSaRekeyIndex, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("disable_rx_rekey", &MACsecConfig::disableRxRekey, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("set_rx_enable", &MACsecConfig::setRxEnable, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("set_tx_enable", &MACsecConfig::setTxEnable, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("set_storage", &MACsecConfig::setStorage, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("clear", &MACsecConfig::clear, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("serialize", &MACsecConfig::serialize, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("get_bin_index", &MACsecConfig::getBinIndex, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("get_type", &MACsecConfig::getType, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("get_max_num_rule", &MACsecConfig::getMaxNumRule, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("get_max_num_secy", &MACsecConfig::getMaxNumSecY, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("get_max_num_sa", &MACsecConfig::getMaxNumSa, pybind11::call_guard<pybind11::gil_scoped_release>());
}
} // namespace icsneo
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@@ -1,142 +0,0 @@
#include <pybind11/pybind11.h>
#include <pybind11/stl.h>
#include <pybind11/functional.h>
#include <pybind11/native_enum.h>
#include "icsneo/device/chipid.h"
namespace icsneo {
void init_chipid(pybind11::module_& m) {
pybind11::native_enum<ChipID>(m, "ChipID", "enum.IntEnum")
.value("neoVIFIRE_MCHIP", ChipID::neoVIFIRE_MCHIP)
.value("neoVIFIRE_LCHIP", ChipID::neoVIFIRE_LCHIP)
.value("neoVIFIRE_UCHIP", ChipID::neoVIFIRE_UCHIP)
.value("neoVIFIRE_JCHIP", ChipID::neoVIFIRE_JCHIP)
.value("ValueCAN3_MCHIP", ChipID::ValueCAN3_MCHIP)
.value("neoVIECU_MPIC", ChipID::neoVIECU_MPIC)
.value("neoVIIEVB_MPIC", ChipID::neoVIIEVB_MPIC)
.value("neoVIPENDANT_MPIC", ChipID::neoVIPENDANT_MPIC)
.value("neoVIFIRE_VNET_MCHIP", ChipID::neoVIFIRE_VNET_MCHIP)
.value("neoVIFIRE_VNET_LCHIP", ChipID::neoVIFIRE_VNET_LCHIP)
.value("neoVIPLASMA_Core", ChipID::neoVIPLASMA_Core)
.value("neoVIPLASMA_HID", ChipID::neoVIPLASMA_HID)
.value("neoVIANALOG_MPIC", ChipID::neoVIANALOG_MPIC)
.value("neoVIPLASMA_ANALOG_Core", ChipID::neoVIPLASMA_ANALOG_Core)
.value("neoVIPLASMA_FlexRay_Core", ChipID::neoVIPLASMA_FlexRay_Core)
.value("neoVIPLASMA_Core_1_12", ChipID::neoVIPLASMA_Core_1_12)
.value("neoVIFIRE_Slave_VNET_MCHIP", ChipID::neoVIFIRE_Slave_VNET_MCHIP)
.value("neoVIFIRE_Slave_VNET_LCHIP", ChipID::neoVIFIRE_Slave_VNET_LCHIP)
.value("neoVIION_Core", ChipID::neoVIION_Core)
.value("neoVIION_HID", ChipID::neoVIION_HID)
.value("neoVIION_Core_Loader", ChipID::neoVIION_Core_Loader)
.value("neoVIION_HID_Loader", ChipID::neoVIION_HID_Loader)
.value("neoVIION_FPGA_BIT", ChipID::neoVIION_FPGA_BIT)
.value("neoVIFIRE_VNET_EP_MCHIP", ChipID::neoVIFIRE_VNET_EP_MCHIP)
.value("neoVIFIRE_VNET_EP_LCHIP", ChipID::neoVIFIRE_VNET_EP_LCHIP)
.value("neoVIAnalogOut_MCHIP", ChipID::neoVIAnalogOut_MCHIP)
.value("neoVIMOST25_MCHIP", ChipID::neoVIMOST25_MCHIP)
.value("neoVIMOST50_MCHIP", ChipID::neoVIMOST50_MCHIP)
.value("neoVIMOST150_MCHIP", ChipID::neoVIMOST150_MCHIP)
.value("ValueCAN4_4_MCHIP", ChipID::ValueCAN4_4_MCHIP)
.value("ValueCAN4_4_SCHIP", ChipID::ValueCAN4_4_SCHIP)
.value("cmProbe_ZYNQ", ChipID::cmProbe_ZYNQ)
.value("EEVB_STM32", ChipID::EEVB_STM32)
.value("neoVIFIRE_Slave_VNET_EP_MCHIP", ChipID::neoVIFIRE_Slave_VNET_EP_MCHIP)
.value("neoVIFIRE_Slave_VNET_EP_LCHIP", ChipID::neoVIFIRE_Slave_VNET_EP_LCHIP)
.value("RADStar_MCHIP", ChipID::RADStar_MCHIP)
.value("ValueCANrf_MCHIP", ChipID::ValueCANrf_MCHIP)
.value("neoVIFIRE2_MCHIP", ChipID::neoVIFIRE2_MCHIP)
.value("neoVIFIRE2_CCHIP", ChipID::neoVIFIRE2_CCHIP)
.value("neoVIFIRE2_Core", ChipID::neoVIFIRE2_Core)
.value("neoVIFIRE2_BLECHIP", ChipID::neoVIFIRE2_BLECHIP)
.value("neoVIFIRE2_ZYNQ", ChipID::neoVIFIRE2_ZYNQ)
.value("neoVIFIRE2_SECURITYCHIP", ChipID::neoVIFIRE2_SECURITYCHIP)
.value("RADGalaxy_ZYNQ", ChipID::RADGalaxy_ZYNQ)
.value("neoVIFIRE2_VNET_MCHIP", ChipID::neoVIFIRE2_VNET_MCHIP)
.value("neoVIFIRE2_Slave_VNET_A_MCHIP", ChipID::neoVIFIRE2_Slave_VNET_A_MCHIP)
.value("neoVIFIRE2_Slave_VNET_A_CCHIP", ChipID::neoVIFIRE2_Slave_VNET_A_CCHIP)
.value("neoVIFIRE2_VNET_CCHIP", ChipID::neoVIFIRE2_VNET_CCHIP)
.value("neoVIFIRE2_VNET_Core", ChipID::neoVIFIRE2_VNET_Core)
.value("RADStar2_ZYNQ", ChipID::RADStar2_ZYNQ)
.value("VividCAN_MCHIP", ChipID::VividCAN_MCHIP)
.value("neoOBD2SIM_MCHIP", ChipID::neoOBD2SIM_MCHIP)
.value("neoVIFIRE2_VNETZ_MCHIP", ChipID::neoVIFIRE2_VNETZ_MCHIP)
.value("neoVIFIRE2_VNETZ_ZYNQ", ChipID::neoVIFIRE2_VNETZ_ZYNQ)
.value("neoVIFIRE2_Slave_VNETZ_A_MCHIP", ChipID::neoVIFIRE2_Slave_VNETZ_A_MCHIP)
.value("neoVIFIRE2_Slave_VNETZ_A_ZYNQ", ChipID::neoVIFIRE2_Slave_VNETZ_A_ZYNQ)
.value("VividCAN_EXT_FLASH", ChipID::VividCAN_EXT_FLASH)
.value("VividCAN_NRF52", ChipID::VividCAN_NRF52)
.value("cmProbe_ZYNQ_Unused", ChipID::cmProbe_ZYNQ_Unused)
.value("neoOBD2PRO_MCHIP", ChipID::neoOBD2PRO_MCHIP)
.value("ValueCAN4_1_MCHIP", ChipID::ValueCAN4_1_MCHIP)
.value("ValueCAN4_2_MCHIP", ChipID::ValueCAN4_2_MCHIP)
.value("ValueCAN4_4_2EL_Core", ChipID::ValueCAN4_4_2EL_Core)
.value("neoOBD2PRO_SCHIP", ChipID::neoOBD2PRO_SCHIP)
.value("ValueCAN4_2EL_MCHIP", ChipID::ValueCAN4_2EL_MCHIP)
.value("neoECUAVBTSN_MCHIP", ChipID::neoECUAVBTSN_MCHIP)
.value("neoOBD2PRO_Core", ChipID::neoOBD2PRO_Core)
.value("RADSupermoon_ZYNQ", ChipID::RADSupermoon_ZYNQ)
.value("RADMoon2_ZYNQ", ChipID::RADMoon2_ZYNQ)
.value("VividCANPRO_MCHIP", ChipID::VividCANPRO_MCHIP)
.value("VividCANPRO_EXT_FLASH", ChipID::VividCANPRO_EXT_FLASH)
.value("RADPluto_MCHIP", ChipID::RADPluto_MCHIP)
.value("RADMars_ZYNQ", ChipID::RADMars_ZYNQ)
.value("neoECU12_MCHIP", ChipID::neoECU12_MCHIP)
.value("RADIOCANHUB_MCHIP", ChipID::RADIOCANHUB_MCHIP)
.value("FlexRay_VNETZ_ZCHIP", ChipID::FlexRay_VNETZ_ZCHIP)
.value("neoOBD2_LCBADGE_MCHIP", ChipID::neoOBD2_LCBADGE_MCHIP)
.value("neoOBD2_LCBADGE_SCHIP", ChipID::neoOBD2_LCBADGE_SCHIP)
.value("RADMoonDuo_MCHIP", ChipID::RADMoonDuo_MCHIP)
.value("neoVIFIRE3_ZCHIP", ChipID::neoVIFIRE3_ZCHIP)
.value("FlexRay_VNETZ_FCHIP", ChipID::FlexRay_VNETZ_FCHIP)
.value("RADJupiter_MCHIP", ChipID::RADJupiter_MCHIP)
.value("ValueCAN4Industrial_MCHIP", ChipID::ValueCAN4Industrial_MCHIP)
.value("EtherBADGE_MCHIP", ChipID::EtherBADGE_MCHIP)
.value("RADMars_3_ZYNQ", ChipID::RADMars_3_ZYNQ)
.value("RADGigastar_USBZ_ZYNQ", ChipID::RADGigastar_USBZ_ZYNQ)
.value("RADGigastar_ZYNQ", ChipID::RADGigastar_ZYNQ)
.value("RAD4G_MCHIP", ChipID::RAD4G_MCHIP)
.value("neoVIFIRE3_SCHIP", ChipID::neoVIFIRE3_SCHIP)
.value("RADEpsilon_MCHIP", ChipID::RADEpsilon_MCHIP)
.value("RADA2B_ZCHIP", ChipID::RADA2B_ZCHIP)
.value("neoOBD2Dev_MCHIP", ChipID::neoOBD2Dev_MCHIP)
.value("neoOBD2Dev_SCHIP", ChipID::neoOBD2Dev_SCHIP)
.value("neoOBD2SIMDoIP_MCHIP", ChipID::neoOBD2SIMDoIP_MCHIP)
.value("SFPModule_88q2112_MCHIP", ChipID::SFPModule_88q2112_MCHIP)
.value("RADEpsilonT_MCHIP", ChipID::RADEpsilonT_MCHIP)
.value("RADEpsilonExpress_MCHIP", ChipID::RADEpsilonExpress_MCHIP)
.value("RADProxima_MCHIP", ChipID::RADProxima_MCHIP)
.value("NewDevice57_ZCHIP", ChipID::NewDevice57_ZCHIP)
.value("RAD_GALAXY_2_ZMPCHIP_ID", ChipID::RAD_GALAXY_2_ZMPCHIP_ID)
.value("NewDevice59_MCHIP", ChipID::NewDevice59_MCHIP)
.value("RADMoon2_Z7010_ZYNQ", ChipID::RADMoon2_Z7010_ZYNQ)
.value("neoVIFIRE2_Core_SG4", ChipID::neoVIFIRE2_Core_SG4)
.value("RADBMS_MCHIP", ChipID::RADBMS_MCHIP)
.value("RADMoon2_ZL_MCHIP", ChipID::RADMoon2_ZL_MCHIP)
.value("RADGigastar_USBZ_Z7010_ZYNQ", ChipID::RADGigastar_USBZ_Z7010_ZYNQ)
.value("neoVIFIRE3_LINUX", ChipID::neoVIFIRE3_LINUX)
.value("RADGigastar_USBZ_Z7007S_ZYNQ", ChipID::RADGigastar_USBZ_Z7007S_ZYNQ)
.value("VEM_01_8DW_ZCHIP", ChipID::VEM_01_8DW_ZCHIP)
.value("RADGalaxy_FFG_Zynq", ChipID::RADGalaxy_FFG_Zynq)
.value("RADMoon3_MCHIP", ChipID::RADMoon3_MCHIP)
.value("RADComet_ZYNQ", ChipID::RADComet_ZYNQ)
.value("VEM_02_FR_ZCHIP", ChipID::VEM_02_FR_ZCHIP)
.value("RADA2B_REVB_ZCHIP", ChipID::RADA2B_REVB_ZCHIP)
.value("RADGigastar_FFG_ZYNQ", ChipID::RADGigastar_FFG_ZYNQ)
.value("VEM_02_FR_FCHIP", ChipID::VEM_02_FR_FCHIP)
.value("Connect_ZCHIP", ChipID::Connect_ZCHIP)
.value("SFPModule_88q2221_MCHIP", ChipID::SFPModule_88q2221_MCHIP)
.value("RADGALAXY2_SYSMON_CHIP", ChipID::RADGALAXY2_SYSMON_CHIP)
.value("SFPModule_88q3244_MCHIP", ChipID::SFPModule_88q3244_MCHIP)
.value("RADCOMET3_ZCHIP", ChipID::RADCOMET3_ZCHIP)
.value("Connect_LINUX", ChipID::Connect_LINUX)
.value("SFPModule_lan8670_MCHIP", ChipID::SFPModule_lan8670_MCHIP)
.value("RADGigastar2_ZYNQ", ChipID::RADGigastar2_ZYNQ)
.value("SFPModule_ent11100_MCHIP", ChipID::SFPModule_ent11100_MCHIP)
.value("RADGemini_MCHIP", ChipID::RADGemini_MCHIP)
.value("Invalid", ChipID::Invalid)
.finalize();
}
} // namespace icsneo
@@ -1,77 +0,0 @@
#include <pybind11/pybind11.h>
#include <pybind11/stl.h>
#include <pybind11/functional.h>
#include <pybind11/chrono.h>
#include "icsneo/device/device.h"
#include "icsneo/device/extensions/deviceextension.h"
#include "icsneo/disk/diskdetails.h"
#include <fstream>
namespace icsneo {
void init_device(pybind11::module_& m) {
pybind11::classh<Device>(m, "Device")
.def("__repr__", &Device::describe)
.def("add_message_callback", &Device::addMessageCallback, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("clear_script", &Device::clearScript, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("close", &Device::close, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("describe", &Device::describe)
.def("disable_message_polling", &Device::disableMessagePolling, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("enable_message_polling", &Device::enableMessagePolling, pybind11::arg("filter") = std::nullopt, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("get_current_message_count", &Device::getCurrentMessageCount)
.def("get_digital_io", &Device::getDigitalIO, pybind11::arg("type"), pybind11::arg("number"), pybind11::call_guard<pybind11::gil_scoped_release>())
.def("get_extension", static_cast<std::shared_ptr<DeviceExtension>(Device::*)(const std::string&) const>(&Device::getExtension)) // This has to be static_casted rather than overload_casted because DeviceExtension is forward declared in device.h
.def("get_flexray_controllers", &Device::getFlexRayControllers)
.def("get_gptp_status", &Device::getGPTPStatus, pybind11::arg("timeout") = std::chrono::milliseconds(100), pybind11::call_guard<pybind11::gil_scoped_release>())
.def("get_messages", [](Device& device) { return device.getMessages(); }, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("get_polling_message_limit", &Device::getPollingMessageLimit)
.def("get_product_name", &Device::getProductName)
.def("get_rtc", &Device::getRTC, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("get_script_status", &Device::getScriptStatus, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("get_serial_number", &Device::getSerialNumber)
.def("get_serial", &Device::getSerial)
.def("get_pcb_serial", &Device::getPCBSerial, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("get_mac_address", &Device::getMACAddress, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("get_supported_rx_networks", &Device::getSupportedRXNetworks, pybind11::return_value_policy::reference)
.def("get_supported_tx_networks", &Device::getSupportedTXNetworks, pybind11::return_value_policy::reference)
.def("get_tc10_status", &Device::getTC10Status, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("get_type", &Device::getType)
.def("go_offline", &Device::goOffline, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("go_online", &Device::goOnline, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("is_message_polling_enabled", &Device::isMessagePollingEnabled)
.def("is_online_supported", &Device::isOnlineSupported)
.def("is_online", &Device::isOnline)
.def("is_open", &Device::isOpen)
.def("open", [](Device& device) { return device.open(); }, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("prepare_script_load", &Device::prepareScriptLoad, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("remove_message_callback", &Device::removeMessageCallback, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("request_tc10_sleep", &Device::requestTC10Sleep, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("request_tc10_wake", &Device::requestTC10Wake, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("set_digital_io", pybind11::overload_cast<IO, size_t, bool>(&Device::setDigitalIO), pybind11::arg("type"), pybind11::arg("number"), pybind11::arg("value"), pybind11::call_guard<pybind11::gil_scoped_release>())
.def("set_polling_message_limit", &Device::setPollingMessageLimit)
.def("set_rtc", &Device::setRTC, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("start_script", &Device::startScript, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("stop_script", &Device::stopScript, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("supports_tc10", &Device::supportsTC10)
.def("supports_live_data", &Device::supportsLiveData)
.def("subscribe_live_data", &Device::subscribeLiveData, pybind11::arg("message"), pybind11::call_guard<pybind11::gil_scoped_release>())
.def("unsubscribe_live_data", &Device::unsubscribeLiveData, pybind11::arg("handle"), pybind11::call_guard<pybind11::gil_scoped_release>())
.def("clear_all_live_data", &Device::clearAllLiveData, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("set_value_live_data", &Device::setValueLiveData, pybind11::arg("message"), pybind11::call_guard<pybind11::gil_scoped_release>())
.def("transmit", pybind11::overload_cast<std::shared_ptr<Frame>>(&Device::transmit), pybind11::call_guard<pybind11::gil_scoped_release>())
.def("upload_coremini", [](Device& device, std::string& path, Disk::MemoryType memType) { std::ifstream ifs(path, std::ios::binary); return device.uploadCoremini(ifs, memType); }, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("write_macsec_config", &Device::writeMACsecConfig, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("send_eth_phy_msg", &Device::sendEthPhyMsg, pybind11::arg("message"), pybind11::arg("timeout") = std::chrono::milliseconds(50), pybind11::call_guard<pybind11::gil_scoped_release>())
.def("get_chip_versions", &Device::getChipVersions, pybind11::arg("refreshComponents") = true, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("supports_disk_formatting", &Device::supportsDiskFormatting, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("get_disk_count", &Device::getDiskCount, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("get_disk_details", &Device::getDiskDetails, pybind11::arg("timeout") = std::chrono::milliseconds(100), pybind11::call_guard<pybind11::gil_scoped_release>())
.def("force_disk_config_update", &Device::forceDiskConfigUpdate, pybind11::arg("config"), pybind11::call_guard<pybind11::gil_scoped_release>())
.def("format_disk", [](Device& device, const DiskDetails& config) -> bool { return device.formatDisk(config); }, pybind11::arg("config"), pybind11::call_guard<pybind11::gil_scoped_release>())
.def_readonly("settings", &Device::settings);
}
} // namespace icsneo
@@ -1,82 +0,0 @@
#include <pybind11/pybind11.h>
#include <pybind11/stl.h>
#include <pybind11/functional.h>
#include <pybind11/native_enum.h>
#include "icsneo/device/devicetype.h"
namespace icsneo {
void init_devicetype(pybind11::module_& m) {
pybind11::classh<DeviceType> deviceType(m, "DeviceType");
pybind11::native_enum<DeviceType::Enum>(deviceType, "Enum", "enum.IntEnum")
.value("Unknown", DeviceType::Enum::Unknown)
.value("BLUE", DeviceType::Enum::BLUE)
.value("ECU_AVB", DeviceType::Enum::ECU_AVB)
.value("RADSupermoon", DeviceType::Enum::RADSupermoon)
.value("DW_VCAN", DeviceType::Enum::DW_VCAN)
.value("RADMoon2", DeviceType::Enum::RADMoon2)
.value("RADMars", DeviceType::Enum::RADMars)
.value("VCAN4_1", DeviceType::Enum::VCAN4_1)
.value("FIRE", DeviceType::Enum::FIRE)
.value("RADPluto", DeviceType::Enum::RADPluto)
.value("VCAN4_2EL", DeviceType::Enum::VCAN4_2EL)
.value("RADIO_CANHUB", DeviceType::Enum::RADIO_CANHUB)
.value("NEOECU12", DeviceType::Enum::NEOECU12)
.value("OBD2_LCBADGE", DeviceType::Enum::OBD2_LCBADGE)
.value("RADMoonDuo", DeviceType::Enum::RADMoonDuo)
.value("FIRE3", DeviceType::Enum::FIRE3)
.value("VCAN3", DeviceType::Enum::VCAN3)
.value("RADJupiter", DeviceType::Enum::RADJupiter)
.value("VCAN4_IND", DeviceType::Enum::VCAN4_IND)
.value("RADGigastar", DeviceType::Enum::RADGigastar)
.value("RED2", DeviceType::Enum::RED2)
.value("EtherBADGE", DeviceType::Enum::EtherBADGE)
.value("RAD_A2B", DeviceType::Enum::RAD_A2B)
.value("RADEpsilon", DeviceType::Enum::RADEpsilon)
.value("RADEpsilonXL", DeviceType::Enum::RADEpsilonXL)
.value("RADGalaxy2", DeviceType::Enum::RADGalaxy2)
.value("RADMoon3", DeviceType::Enum::RADMoon3)
.value("RADGemini", DeviceType::Enum::RADGemini)
.value("RADComet", DeviceType::Enum::RADComet)
.value("FIRE3_FlexRay", DeviceType::Enum::FIRE3_FlexRay)
.value("FIRE3_T1S_LIN", DeviceType::Enum::FIRE3_T1S_LIN)
.value("FIRE3_T1S_SENT", DeviceType::Enum::FIRE3_T1S_SENT)
.value("Connect", DeviceType::Enum::Connect)
.value("RADComet3", DeviceType::Enum::RADComet3)
.value("RADMoonT1S", DeviceType::Enum::RADMoonT1S)
.value("RADGigastar2", DeviceType::Enum::RADGigastar2)
.value("RED", DeviceType::Enum::RED)
.value("ECU", DeviceType::Enum::ECU)
.value("IEVB", DeviceType::Enum::IEVB)
.value("Pendant", DeviceType::Enum::Pendant)
.value("OBD2_PRO", DeviceType::Enum::OBD2_PRO)
.value("ECUChip_UART", DeviceType::Enum::ECUChip_UART)
.value("PLASMA", DeviceType::Enum::PLASMA)
.value("DONT_REUSE0", DeviceType::Enum::DONT_REUSE0)
.value("NEOAnalog", DeviceType::Enum::NEOAnalog)
.value("CT_OBD", DeviceType::Enum::CT_OBD)
.value("DONT_REUSE1", DeviceType::Enum::DONT_REUSE1)
.value("DONT_REUSE2", DeviceType::Enum::DONT_REUSE2)
.value("ION", DeviceType::Enum::ION)
.value("RADStar", DeviceType::Enum::RADStar)
.value("DONT_REUSE3", DeviceType::Enum::DONT_REUSE3)
.value("VCAN4_4", DeviceType::Enum::VCAN4_4)
.value("VCAN4_2", DeviceType::Enum::VCAN4_2)
.value("CMProbe", DeviceType::Enum::CMProbe)
.value("EEVB", DeviceType::Enum::EEVB)
.value("VCANrf", DeviceType::Enum::VCANrf)
.value("FIRE2", DeviceType::Enum::FIRE2)
.value("Flex", DeviceType::Enum::Flex)
.value("RADGalaxy", DeviceType::Enum::RADGalaxy)
.value("RADStar2", DeviceType::Enum::RADStar2)
.value("VividCAN", DeviceType::Enum::VividCAN)
.value("OBD2_SIM", DeviceType::Enum::OBD2_SIM)
.finalize();
deviceType.def(pybind11::init<DeviceType::Enum>());
deviceType.def("get_device_type", &DeviceType::getDeviceType);
deviceType.def("get_generic_product_name", &DeviceType::getGenericProductName);
}
} // namespace icsneo
@@ -1,14 +0,0 @@
#include <pybind11/pybind11.h>
#include <pybind11/stl.h>
#include <pybind11/functional.h>
#include "icsneo/device/extensions/deviceextension.h"
namespace icsneo {
void init_deviceextension(pybind11::module_& m) {
pybind11::classh<DeviceExtension>(m, "DeviceExtension")
.def("get_name", &DeviceExtension::getName);
}
} // namespace icsneo
@@ -1,129 +0,0 @@
#include <pybind11/pybind11.h>
#include <pybind11/stl.h>
#include <pybind11/stl_bind.h>
#include <pybind11/functional.h>
#include <pybind11/chrono.h>
#include "icsneo/device/idevicesettings.h"
#include <fstream>
namespace icsneo {
struct DeviceSettingsNamespace {
using EthLinkMode = AELinkMode;
};
void init_idevicesettings(pybind11::module_& m) {
pybind11::classh<DeviceSettingsNamespace> settings(m, "Settings");
pybind11::enum_<DeviceSettingsNamespace::EthLinkMode>(settings, "EthernetLinkMode")
.value("Auto", DeviceSettingsNamespace::EthLinkMode::AE_LINK_AUTO)
.value("Slave", DeviceSettingsNamespace::EthLinkMode::AE_LINK_SLAVE)
.value("Master", DeviceSettingsNamespace::EthLinkMode::AE_LINK_MASTER);
pybind11::enum_<EthPhyLinkMode>(settings, "PhyLinkMode")
.value("ETH_LINK_MODE_AUTO_NEGOTIATION", ETH_LINK_MODE_AUTO_NEGOTIATION)
.value("ETH_LINK_MODE_10MBPS_HALFDUPLEX", ETH_LINK_MODE_10MBPS_HALFDUPLEX)
.value("ETH_LINK_MODE_10MBPS_FULLDUPLEX", ETH_LINK_MODE_10MBPS_FULLDUPLEX)
.value("ETH_LINK_MODE_100MBPS_HALFDUPLEX", ETH_LINK_MODE_100MBPS_HALFDUPLEX)
.value("ETH_LINK_MODE_100MBPS_FULLDUPLEX", ETH_LINK_MODE_100MBPS_FULLDUPLEX)
.value("ETH_LINK_MODE_1GBPS_HALFDUPLEX", ETH_LINK_MODE_1GBPS_HALFDUPLEX)
.value("ETH_LINK_MODE_1GBPS_FULLDUPLEX", ETH_LINK_MODE_1GBPS_FULLDUPLEX)
.value("ETH_LINK_MODE_2_5GBPS_FULLDUPLEX", ETH_LINK_MODE_2_5GBPS_FULLDUPLEX)
.value("ETH_LINK_MODE_5GBPS_FULLDUPLEX", ETH_LINK_MODE_5GBPS_FULLDUPLEX)
.value("ETH_LINK_MODE_10GBPS_FULLDUPLEX", ETH_LINK_MODE_10GBPS_FULLDUPLEX);
pybind11::enum_<LINMode>(settings, "LINMode")
.value("Sleep", LINMode::SLEEP_MODE)
.value("Slow", LINMode::SLOW_MODE)
.value("Normal", LINMode::NORMAL_MODE)
.value("Fast", LINMode::FAST_MODE);
pybind11::enum_<MiscIOAnalogVoltage>(settings, "MiscIOAnalogVoltage")
.value("V0", MiscIOAnalogVoltage::V0)
.value("V1", MiscIOAnalogVoltage::V1)
.value("V2", MiscIOAnalogVoltage::V2)
.value("V3", MiscIOAnalogVoltage::V3)
.value("V4", MiscIOAnalogVoltage::V4)
.value("V5", MiscIOAnalogVoltage::V5);
pybind11::classh<IDeviceSettings>(m, "IDeviceSettings")
.def("apply", &IDeviceSettings::apply, pybind11::arg("temporary") = 0, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("apply_defaults", &IDeviceSettings::applyDefaults, pybind11::arg("temporary") = 0, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("refresh", &IDeviceSettings::refresh, pybind11::call_guard<pybind11::gil_scoped_release>())
// Baudrate methods
.def("get_baudrate", &IDeviceSettings::getBaudrateFor, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("set_baudrate", &IDeviceSettings::setBaudrateFor, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("get_fd_baudrate", &IDeviceSettings::getFDBaudrateFor, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("set_fd_baudrate", &IDeviceSettings::setFDBaudrateFor, pybind11::call_guard<pybind11::gil_scoped_release>())
// Termination methods
.def("is_termination_supported", &IDeviceSettings::isTerminationSupportedFor, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("can_termination_be_enabled", &IDeviceSettings::canTerminationBeEnabledFor, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("is_termination_enabled", &IDeviceSettings::isTerminationEnabledFor, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("set_termination", &IDeviceSettings::setTerminationFor, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("get_termination_groups", &IDeviceSettings::getTerminationGroups, pybind11::call_guard<pybind11::gil_scoped_release>())
// LIN methods
.def("is_commander_resistor_enabled", &IDeviceSettings::isCommanderResistorEnabledFor, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("set_commander_resistor", &IDeviceSettings::setCommanderResistorFor, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("get_lin_mode", &IDeviceSettings::getLINModeFor, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("set_lin_mode", &IDeviceSettings::setLINModeFor, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("get_lin_commander_response_time", &IDeviceSettings::getLINCommanderResponseTimeFor, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("set_lin_commander_response_time", &IDeviceSettings::setLINCommanderResponseTimeFor, pybind11::call_guard<pybind11::gil_scoped_release>())
// Ethernet PHY methods (index-based for switch devices)
.def("get_phy_enable", &IDeviceSettings::getPhyEnable, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("get_phy_mode", &IDeviceSettings::getPhyMode, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("get_phy_speed", &IDeviceSettings::getPhySpeed, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("set_phy_enable", &IDeviceSettings::setPhyEnable, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("set_phy_mode", &IDeviceSettings::setPhyMode, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("set_phy_speed", &IDeviceSettings::setPhySpeed, pybind11::call_guard<pybind11::gil_scoped_release>())
// Ethernet PHY methods (network-based for multi-interface devices)
.def("get_phy_enable_for", &IDeviceSettings::getPhyEnableFor, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("get_phy_role_for", &IDeviceSettings::getPhyRoleFor, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("get_phy_link_mode_for", &IDeviceSettings::getPhyLinkModeFor, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("set_phy_enable_for", &IDeviceSettings::setPhyEnableFor, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("set_phy_role_for", &IDeviceSettings::setPhyRoleFor, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("set_phy_link_mode_for", &IDeviceSettings::setPhyLinkModeFor, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("get_supported_phy_link_modes_for", &IDeviceSettings::getSupportedPhyLinkModesFor, pybind11::call_guard<pybind11::gil_scoped_release>())
// 10BASE-T1S methods
.def("is_t1s_plca_enabled", &IDeviceSettings::isT1SPLCAEnabledFor, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("set_t1s_plca", &IDeviceSettings::setT1SPLCAFor, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("get_t1s_local_id", &IDeviceSettings::getT1SLocalIDFor, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("set_t1s_local_id", &IDeviceSettings::setT1SLocalIDFor, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("get_t1s_max_nodes", &IDeviceSettings::getT1SMaxNodesFor, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("set_t1s_max_nodes", &IDeviceSettings::setT1SMaxNodesFor, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("get_t1s_tx_opp_timer", &IDeviceSettings::getT1STxOppTimerFor, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("set_t1s_tx_opp_timer", &IDeviceSettings::setT1STxOppTimerFor, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("get_t1s_max_burst", &IDeviceSettings::getT1SMaxBurstFor, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("set_t1s_max_burst", &IDeviceSettings::setT1SMaxBurstFor, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("get_t1s_burst_timer", &IDeviceSettings::getT1SBurstTimerFor, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("set_t1s_burst_timer", &IDeviceSettings::setT1SBurstTimerFor, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("get_t1s_local_id_alternate", &IDeviceSettings::getT1SLocalIDAlternateFor, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("set_t1s_local_id_alternate", &IDeviceSettings::setT1SLocalIDAlternateFor, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("is_t1s_termination_enabled", &IDeviceSettings::isT1STerminationEnabledFor, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("set_t1s_termination", &IDeviceSettings::setT1STerminationFor, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("is_t1s_bus_decoding_beacons_enabled", &IDeviceSettings::isT1SBusDecodingBeaconsEnabledFor, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("set_t1s_bus_decoding_beacons", &IDeviceSettings::setT1SBusDecodingBeaconsFor, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("is_t1s_bus_decoding_all_enabled", &IDeviceSettings::isT1SBusDecodingAllEnabledFor, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("set_t1s_bus_decoding_all", &IDeviceSettings::setT1SBusDecodingAllFor, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("get_t1s_multi_id_enable_mask", &IDeviceSettings::getT1SMultiIDEnableMaskFor, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("set_t1s_multi_id_enable_mask", &IDeviceSettings::setT1SMultiIDEnableMaskFor, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("get_t1s_multi_id", &IDeviceSettings::getT1SMultiIDFor, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("set_t1s_multi_id", &IDeviceSettings::setT1SMultiIDFor, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("set_misc_io_analog_output_enabled", &IDeviceSettings::setMiscIOAnalogOutputEnabled, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("set_misc_io_analog_output", &IDeviceSettings::setMiscIOAnalogOutput, pybind11::call_guard<pybind11::gil_scoped_release>())
// Status properties
.def_readonly("disabled", &IDeviceSettings::disabled)
.def_readonly("readonly", &IDeviceSettings::readonly);
}
} // namespace icsneo
@@ -1,19 +0,0 @@
#include <pybind11/pybind11.h>
#include <pybind11/stl.h>
#include <pybind11/functional.h>
#include "icsneo/device/versionreport.h"
namespace icsneo {
void init_versionreport(pybind11::module_& m) {
pybind11::classh<VersionReport>(m, "VersionReport")
.def_readonly("id", &VersionReport::id)
.def_readonly("name", &VersionReport::name)
.def_readonly("major", &VersionReport::major)
.def_readonly("minor", &VersionReport::minor)
.def_readonly("maintenance", &VersionReport::maintenance)
.def_readonly("build", &VersionReport::build);
}
} // namespace icsneo
@@ -1,29 +0,0 @@
#include <pybind11/pybind11.h>
#include <pybind11/stl.h>
#include "icsneo/disk/diskdetails.h"
namespace icsneo {
void init_diskdetails(pybind11::module_& m) {
pybind11::enum_<DiskLayout>(m, "DiskLayout")
.value("Spanned", DiskLayout::Spanned)
.value("RAID0", DiskLayout::RAID0);
pybind11::classh<DiskInfo>(m, "DiskInfo")
.def(pybind11::init())
.def_readwrite("present", &DiskInfo::present)
.def_readwrite("initialized", &DiskInfo::initialized)
.def_readwrite("formatted", &DiskInfo::formatted)
.def_readwrite("sectors", &DiskInfo::sectors)
.def_readwrite("bytes_per_sector", &DiskInfo::bytesPerSector)
.def("size", &DiskInfo::size);
pybind11::classh<DiskDetails>(m, "DiskDetails")
.def(pybind11::init())
.def_readwrite("layout", &DiskDetails::layout)
.def_readwrite("full_format", &DiskDetails::fullFormat)
.def_readwrite("disks", &DiskDetails::disks);
}
} // namespace icsneo
@@ -1,26 +0,0 @@
#include <pybind11/pybind11.h>
#include <pybind11/stl.h>
#include <pybind11/functional.h>
#include "icsneo/disk/diskdriver.h"
namespace icsneo {
// binding namespace workaround to avoid submodules
struct DiskNamespace {
using Access = icsneo::Disk::Access;
using MemoryType = icsneo::Disk::MemoryType;
};
void init_diskdriver(pybind11::module_& m) {
pybind11::classh<DiskNamespace> disk(m, "Disk");
pybind11::enum_<Disk::Access>(disk, "Access")
.value("None", Disk::Access::None)
.value("EntireCard", Disk::Access::EntireCard)
.value("VSA", Disk::Access::VSA);
pybind11::enum_<Disk::MemoryType>(disk, "MemoryType")
.value("Flash", Disk::MemoryType::Flash)
.value("SD", Disk::MemoryType::SD);
}
} // namespace icsneo
@@ -1,195 +0,0 @@
#include <pybind11/pybind11.h>
#include <pybind11/stl.h>
#include <pybind11/functional.h>
#include "icsneo/communication/message/flexray/flexraymessage.h"
#include "icsneo/device/extensions/flexray/symbol.h"
#include "icsneo/device/extensions/flexray/channel.h"
#include "icsneo/device/extensions/flexray/crcstatus.h"
#include "icsneo/device/extensions/flexray/controller.h"
namespace icsneo {
struct FlexRayNamespace {
using Symbol = icsneo::FlexRay::Symbol;
using CRCStatus = icsneo::FlexRay::CRCStatus;
using Channel = icsneo::FlexRay::Channel;
};
namespace FlexRay {
struct ClusterNamespace {
using SpeedType = icsneo::FlexRay::Cluster::SpeedType;
using SPPType = icsneo::FlexRay::Cluster::SPPType;
};
void init_extension(pybind11::classh<FlexRayNamespace>& c) {
pybind11::classh<MessageBuffer>(c, "MessageBuffer")
.def(pybind11::init())
.def_readwrite("is_dynamic", &MessageBuffer::isDynamic)
.def_readwrite("is_sync", &MessageBuffer::isSync)
.def_readwrite("is_startup", &MessageBuffer::isStartup)
.def_readwrite("is_network_management_frame", &MessageBuffer::isNetworkManagementFrame)
.def_readwrite("is_transmit", &MessageBuffer::isTransmit)
.def_readwrite("frame_id", &MessageBuffer::frameID)
.def_readwrite("channel_a", &MessageBuffer::channelA)
.def_readwrite("channel_b", &MessageBuffer::channelB)
.def_readwrite("frame_length_bytes", &MessageBuffer::frameLengthBytes)
.def_readwrite("base_cycle", &MessageBuffer::baseCycle)
.def_readwrite("cycle_repetition", &MessageBuffer::cycleRepetition)
.def_readwrite("continuous_mode", &MessageBuffer::continuousMode);
auto controller = pybind11::classh<Controller>(c, "Controller")
.def("get_network", &Controller::getNetwork)
.def("get_configuration", &Controller::getConfiguration)
.def("set_configuration", &Controller::setConfiguration)
.def("get_start_when_going_online", &Controller::getStartWhenGoingOnline)
.def("set_start_when_going_online", &Controller::setStartWhenGoingOnline)
.def("get_allow_coldstart", &Controller::getAllowColdstart)
.def("set_allow_coldstart", &Controller::setAllowColdstart)
.def("get_wakeup_before_start", &Controller::getWakeupBeforeStart)
.def("set_wakeup_before_start", &Controller::setWakeupBeforeStart)
.def("add_message_buffer", &Controller::addMessageBuffer)
.def("clear_message_buffers", &Controller::clearMessageBuffers)
.def("wakeup", &Controller::wakeup)
.def("configure", &Controller::getReady)
.def("start", &Controller::start)
.def("transmit", &Controller::transmit)
.def("halt", &Controller::halt)
.def("freeze", &Controller::freeze)
.def("trigger_mts", &Controller::triggerMTS);
pybind11::classh<Controller::Configuration>(controller, "Configuration")
.def(pybind11::init())
.def_readwrite("accept_startup_range_microticks", &Controller::Configuration::AcceptStartupRangeMicroticks)
.def_readwrite("allow_passive_to_active_cycle_pairs", &Controller::Configuration::AllowPassiveToActiveCyclePairs)
.def_readwrite("cluster_drift_damping", &Controller::Configuration::ClusterDriftDamping)
.def_readwrite("allow_halt_due_to_clock", &Controller::Configuration::AllowHaltDueToClock)
.def_readwrite("channel_a", &Controller::Configuration::ChannelA)
.def_readwrite("channel_b", &Controller::Configuration::ChannelB)
.def_readwrite("decoding_correction_microticks", &Controller::Configuration::DecodingCorrectionMicroticks)
.def_readwrite("delay_compensation_a_microticks", &Controller::Configuration::DelayCompensationAMicroticks)
.def_readwrite("delay_compensation_b_microticks", &Controller::Configuration::DelayCompensationBMicroticks)
.def_readwrite("extern_offset_correction_control", &Controller::Configuration::ExternOffsetCorrectionControl)
.def_readwrite("extern_rate_correction_control", &Controller::Configuration::ExternRateCorrectionControl)
.def_readwrite("extern_offset_correction_microticks", &Controller::Configuration::ExternOffsetCorrectionMicroticks)
.def_readwrite("extern_rate_correction_microticks", &Controller::Configuration::ExternRateCorrectionMicroticks)
.def_readwrite("key_slot_id", &Controller::Configuration::KeySlotID)
.def_readwrite("key_slot_only_enabled", &Controller::Configuration::KeySlotOnlyEnabled)
.def_readwrite("key_slot_used_for_startup", &Controller::Configuration::KeySlotUsedForStartup)
.def_readwrite("key_slot_used_for_sync", &Controller::Configuration::KeySlotUsedForSync)
.def_readwrite("latest_tx_minislot", &Controller::Configuration::LatestTxMinislot)
.def_readwrite("listen_timeout", &Controller::Configuration::ListenTimeout)
.def_readwrite("macro_initial_offset_a", &Controller::Configuration::MacroInitialOffsetA)
.def_readwrite("macro_initial_offset_b", &Controller::Configuration::MacroInitialOffsetB)
.def_readwrite("micro_initial_offset_a", &Controller::Configuration::MicroInitialOffsetA)
.def_readwrite("micro_initial_offset_b", &Controller::Configuration::MicroInitialOffsetB)
.def_readwrite("micro_per_cycle", &Controller::Configuration::MicroPerCycle)
.def_readwrite("mts_on_a", &Controller::Configuration::MTSOnA)
.def_readwrite("mts_on_b", &Controller::Configuration::MTSOnB)
.def_readwrite("offset_correction_out_microticks", &Controller::Configuration::OffsetCorrectionOutMicroticks)
.def_readwrite("rate_correction_out_microticks", &Controller::Configuration::RateCorrectionOutMicroticks)
.def_readwrite("second_key_slot_id", &Controller::Configuration::SecondKeySlotID)
.def_readwrite("two_key_slot_mode", &Controller::Configuration::TwoKeySlotMode)
.def_readwrite("wakeup_pattern", &Controller::Configuration::WakeupPattern)
.def_readwrite("wakeup_on_channel_b", &Controller::Configuration::WakeupOnChannelB);
// Dummy class for cluster namespace
pybind11::classh<ClusterNamespace> cluster(c, "Cluster");
pybind11::enum_<Cluster::SpeedType>(cluster, "SpeedType")
.value("FLEXRAY_BAUDRATE_10M", Cluster::SpeedType::FLEXRAY_BAUDRATE_10M)
.value("FLEXRAY_BAUDRATE_5M", Cluster::SpeedType::FLEXRAY_BAUDRATE_5M)
.value("FLEXRAY_BAUDRATE_2M5", Cluster::SpeedType::FLEXRAY_BAUDRATE_2M5)
.value("FLEXRAY_BAUDRATE_2M5_ALT", Cluster::SpeedType::FLEXRAY_BAUDRATE_2M5_ALT);
pybind11::enum_<Cluster::SPPType>(cluster, "SPPType")
.value("FLEXRAY_SPP_5", Cluster::SPPType::FLEXRAY_SPP_5)
.value("FLEXRAY_SPP_4", Cluster::SPPType::FLEXRAY_SPP_4)
.value("FLEXRAY_SPP_6", Cluster::SPPType::FLEXRAY_SPP_6)
.value("FLEXRAY_SPP_5_ALT", Cluster::SPPType::FLEXRAY_SPP_5_ALT);
pybind11::classh<Cluster::Configuration>(cluster, "Configuration")
.def(pybind11::init())
.def_readwrite("speed", &Cluster::Configuration::Speed)
.def_readwrite("strobe_point_position", &Cluster::Configuration::StrobePointPosition)
.def_readwrite("action_point_offset", &Cluster::Configuration::ActionPointOffset)
.def_readwrite("casr_x_low_max", &Cluster::Configuration::CASRxLowMax)
.def_readwrite("cold_start_attempts", &Cluster::Configuration::ColdStartAttempts)
.def_readwrite("cycle_duration_micro_sec", &Cluster::Configuration::CycleDurationMicroSec)
.def_readwrite("dynamic_slot_idle_phase_minislots", &Cluster::Configuration::DynamicSlotIdlePhaseMinislots)
.def_readwrite("listen_noise_macroticks", &Cluster::Configuration::ListenNoiseMacroticks)
.def_readwrite("macroticks_per_cycle", &Cluster::Configuration::MacroticksPerCycle)
.def_readwrite("macrotick_duration_micro_sec", &Cluster::Configuration::MacrotickDurationMicroSec)
.def_readwrite("max_without_clock_correction_fatal", &Cluster::Configuration::MaxWithoutClockCorrectionFatal)
.def_readwrite("max_without_clock_correction_passive", &Cluster::Configuration::MaxWithoutClockCorrectionPassive)
.def_readwrite("minislot_action_point_offset_macroticks", &Cluster::Configuration::MinislotActionPointOffsetMacroticks)
.def_readwrite("minislot_duration_macroticks", &Cluster::Configuration::MinislotDurationMacroticks)
.def_readwrite("network_idle_time_macroticks", &Cluster::Configuration::NetworkIdleTimeMacroticks)
.def_readwrite("network_management_vector_length_bytes", &Cluster::Configuration::NetworkManagementVectorLengthBytes)
.def_readwrite("number_of_minislots", &Cluster::Configuration::NumberOfMinislots)
.def_readwrite("number_of_static_slots", &Cluster::Configuration::NumberOfStaticSlots)
.def_readwrite("offset_correction_start_macroticks", &Cluster::Configuration::OffsetCorrectionStartMacroticks)
.def_readwrite("payload_length_of_static_slot_in_words", &Cluster::Configuration::PayloadLengthOfStaticSlotInWords)
.def_readwrite("static_slot_macroticks", &Cluster::Configuration::StaticSlotMacroticks)
.def_readwrite("symbol_window_macroticks", &Cluster::Configuration::SymbolWindowMacroticks)
.def_readwrite("symbol_window_action_point_offset_macroticks", &Cluster::Configuration::SymbolWindowActionPointOffsetMacroticks)
.def_readwrite("sync_frame_id_count_max", &Cluster::Configuration::SyncFrameIDCountMax)
.def_readwrite("transmission_start_sequence_duration_bits", &Cluster::Configuration::TransmissionStartSequenceDurationBits)
.def_readwrite("wakeup_rx_idle_bits", &Cluster::Configuration::WakeupRxIdleBits)
.def_readwrite("wakeup_rx_low_bits", &Cluster::Configuration::WakeupRxLowBits)
.def_readwrite("wakeup_rx_window_bits", &Cluster::Configuration::WakeupRxWindowBits)
.def_readwrite("wakeup_tx_active_bits", &Cluster::Configuration::WakeupTxActiveBits)
.def_readwrite("wakeup_tx_idle_bits", &Cluster::Configuration::WakeupTxIdleBits);
}
} // namespace FlexRay
void init_flexraymessage(pybind11::module_& m) {
pybind11::classh<FlexRayMessage, Frame>(m, "FlexRayMessage")
.def(pybind11::init())
.def_readwrite("slotid", &FlexRayMessage::slotid)
.def_readwrite("tsslen", &FlexRayMessage::tsslen)
.def_readwrite("framelen", &FlexRayMessage::framelen)
.def_readwrite("symbol", &FlexRayMessage::symbol)
.def_readwrite("header_crc_status", &FlexRayMessage::headerCRCStatus)
.def_readwrite("header_crc", &FlexRayMessage::headerCRC)
.def_readwrite("frame_crc_status", &FlexRayMessage::crcStatus)
.def_readwrite("frame_crc", &FlexRayMessage::frameCRC)
.def_readwrite("channel", &FlexRayMessage::channel)
.def_readwrite("null_frame", &FlexRayMessage::nullFrame)
.def_readwrite("payload_preamble", &FlexRayMessage::payloadPreamble)
.def_readwrite("sync_frame", &FlexRayMessage::sync)
.def_readwrite("startup_frame", &FlexRayMessage::startup)
.def_readwrite("dynamic_frame", &FlexRayMessage::dynamic)
.def_readwrite("cycle", &FlexRayMessage::cycle)
.def_readwrite("cycle_repetition", &FlexRayMessage::cycleRepetition);
//// TODO: Eliminate FlexRayControlMessage class references in controller class and eliminate getStatus function in bindings
}
void init_flexray(pybind11::module_& m) {
// Dummy class to act as FlexRay namespace
pybind11::classh<FlexRayNamespace> flexray(m, "FlexRay");
pybind11::enum_<FlexRayNamespace::Symbol>(flexray, "Symbol")
.value("None", FlexRayNamespace::Symbol::None)
.value("Unknown", FlexRayNamespace::Symbol::Unknown)
.value("Wakeup", FlexRayNamespace::Symbol::Wakeup)
.value("CAS", FlexRayNamespace::Symbol::CAS);
pybind11::enum_<FlexRayNamespace::CRCStatus>(flexray, "CRCStatus")
.value("OK", FlexRayNamespace::CRCStatus::OK)
.value("Error", FlexRayNamespace::CRCStatus::Error)
.value("NoCRC", FlexRayNamespace::CRCStatus::NoCRC);
pybind11::enum_<FlexRayNamespace::Channel>(flexray, "Channel")
.value("None", FlexRayNamespace::Channel::None)
.value("A", FlexRayNamespace::Channel::A)
.value("B", FlexRayNamespace::Channel::B)
.value("AB", FlexRayNamespace::Channel::AB);
init_flexraymessage(m);
FlexRay::init_extension(flexray);
}
} // namespace icsneo
-85
View File
@@ -1,85 +0,0 @@
#include <pybind11/pybind11.h>
#include <pybind11/stl.h>
#include <pybind11/functional.h>
#include "icsneo/icsneocpp.h"
namespace icsneo {
void init_event(pybind11::module_&);
void init_eventcallback(pybind11::module_&);
void init_eventmanager(pybind11::module_&);
void init_network(pybind11::module_&);
void init_io(pybind11::module_&);
void init_devicetype(pybind11::module_&);
void init_message(pybind11::module_&);
void init_canmessage(pybind11::module_&);
void init_canerrormessage(pybind11::module_&);
void init_ethernetmessage(pybind11::module_&);
void init_linmessage(pybind11::module_&);
void init_tc10statusmessage(pybind11::module_&);
void init_gptpstatusmessage(pybind11::module_&);
void init_mdiomessage(pybind11::module_&);
void init_spimessage(pybind11::module_&);
void init_ethernetstatusmessage(pybind11::module_&);
void init_macsecconfig(pybind11::module_&);
void init_scriptstatusmessage(pybind11::module_&);
void init_diskdriver(pybind11::module_&);
void init_diskdetails(pybind11::module_&);
void init_deviceextension(pybind11::module_&);
void init_chipid(pybind11::module_&);
void init_versionreport(pybind11::module_&);
void init_device(pybind11::module_&);
void init_messagefilter(pybind11::module_&);
void init_messagecallback(pybind11::module_&);
void init_version(pybind11::module_&);
void init_flexray(pybind11::module_& m);
void init_idevicesettings(pybind11::module_&);
void init_ethphymessage(pybind11::module_&);
void init_livedata(pybind11::module_&);
void init_livedatamessage(pybind11::module_&);
PYBIND11_MODULE(icsneopy, m) {
pybind11::options options;
options.disable_enum_members_docstring();
m.doc() = "libicsneo Python module";
init_event(m);
init_eventcallback(m);
init_eventmanager(m);
init_version(m);
init_devicetype(m);
init_network(m);
init_io(m);
init_livedata(m);
init_message(m);
init_canmessage(m);
init_canerrormessage(m);
init_ethernetmessage(m);
init_linmessage(m);
init_tc10statusmessage(m);
init_gptpstatusmessage(m);
init_mdiomessage(m);
init_ethernetstatusmessage(m);
init_macsecconfig(m);
init_scriptstatusmessage(m);
init_spimessage(m);
init_livedatamessage(m);
init_messagefilter(m);
init_messagecallback(m);
init_diskdriver(m);
init_diskdetails(m);
init_flexray(m);
init_ethphymessage(m);
init_chipid(m);
init_versionreport(m);
init_device(m);
init_deviceextension(m);
init_idevicesettings(m);
m.def("find_all_devices", &FindAllDevices);
m.def("get_supported_devices", &GetSupportedDevices);
m.def("get_last_error", &GetLastError);
}
} // namespace icsneo
-7
View File
@@ -1,7 +0,0 @@
#!/bin/sh
yum install -y flex ca-certificates || exit 1
echo "$ICS_IPA_CA_CRT" >/etc/pki/ca-trust/source/anchors/ica-ipa-ca.crt
update-ca-trust || exit 1
-18
View File
@@ -1,18 +0,0 @@
#!/bin/sh
VERSION="1.10.5"
ROOT="$PWD/libpcap"
SOURCE="$ROOT/source"
BUILD="$ROOT/build"
INSTALL="$ROOT/install"
mkdir -p "$ROOT"
cd "$ROOT" || exit 1
curl -LO "https://www.tcpdump.org/release/libpcap-$VERSION.tar.xz" || exit 1
tar -xf "libpcap-$VERSION.tar.xz" || exit 1
mv "libpcap-$VERSION" "$SOURCE" || exit 1
cmake -D CMAKE_POSITION_INDEPENDENT_CODE=ON -D CMAKE_INSTALL_PREFIX="$INSTALL" -D BUILD_SHARED_LIBS=OFF -D BUILD_WITH_LIBNL=OFF -D DISABLE_DBUS=ON -D DISABLE_LINUX_USBMON=ON -D DISABLE_BLUETOOTH=ON -D DISABLE_NETMAP=ON -D DISABLE_DPDK=ON -D DISABLE_RDMA=ON -D DISABLE_DAG=ON -D DISABLE_SEPTEL=ON -D DISABLE_SNF=ON -D DISABLE_TC=ON -B "$BUILD" -S "$SOURCE" || exit 1
cmake --build "$BUILD" || exit 1
cmake --install "$BUILD" || exit 1
+1 -1
View File
@@ -1,7 +1,7 @@
#!/bin/sh
cmake -GNinja -Bbuild -DCMAKE_BUILD_TYPE=Release -DLIBICSNEO_BUILD_EXAMPLES=ON \
-DLIBICSNEO_BUILD_UNIT_TESTS=ON -DLIBICSNEO_ENABLE_TCP=OFF || exit 1
-DLIBICSNEO_BUILD_TESTS=ON -DLIBICSNEO_ENABLE_TCP=ON || exit 1
cmake --build build || exit 1
-7
View File
@@ -1,7 +0,0 @@
#!/bin/sh
python3 -m venv env || exit 1
. env/bin/activate || exit 1
python3 -m pip install cibuildwheel || exit 1
python3 -m cibuildwheel --output-dir wheelhouse || exit 1
-9
View File
@@ -1,9 +0,0 @@
@setlocal
@echo off
call "%VCVARS64_2022%"
python.exe -m venv env || exit /b 1
call env\Scripts\Activate.bat || exit /b 1
python.exe -m pip install cibuildwheel || exit /b 1
python.exe -m cibuildwheel --output-dir wheelhouse --platform windows || exit /b 1
+11 -8
View File
@@ -1,9 +1,12 @@
@setlocal
@echo off
REM clean intermediate directories
rmdir /s /q build
mkdir build
mkdir build >nul 2>&1
cmake -GNinja -Bbuild -DCMAKE_BUILD_TYPE=Release -DLIBICSNEO_BUILD_UNIT_TESTS=ON ^
-DLIBICSNEO_ENABLE_TCP=ON || exit /b 1
cmake --build build || exit /b 1
REM build
cd build
set CFLAGS=/WX
set CXXFLAGS=/WX
cmake -GNinja -DCMAKE_BUILD_TYPE=RelWithDebInfo -DLIBICSNEO_BUILD_TESTS=ON -DLIBICSNEO_ENABLE_TCP=ON ..
if %errorlevel% neq 0 exit /b %errorlevel%
cmake --build .
if %errorlevel% neq 0 exit /b %errorlevel%
+1 -1
View File
@@ -1,2 +1,2 @@
call "%VCVARS32_2022%"
call "%VCVARS32%"
call "ci\build-windows.bat"
+1 -1
View File
@@ -1,2 +1,2 @@
call "%VCVARS64_2022%"
call "%VCVARS64%"
call "ci\build-windows.bat"
+22
View File
@@ -0,0 +1,22 @@
find_path(FTD3XX_INCLUDE_DIR
NAMES ftd3xx.h FTD3XX.h
)
find_library(FTD3XX_LIBRARY
NAMES libftd3xx.a libftd3xx-static.a FTD3XX.lib
PATH_SUFFIXES x64/Static
)
mark_as_advanced(FTD3XX_FOUND FTD3XX_INCLUDE_DIR FTD3XX_LIBRARY)
include(FindPackageHandleStandardArgs)
find_package_handle_standard_args(FTD3XX
REQUIRED_VARS FTD3XX_INCLUDE_DIR FTD3XX_LIBRARY
)
if(FTD3XX_FOUND AND NOT TARGET D3XX::D3XX)
add_library(FTD3XX::FTD3XX INTERFACE IMPORTED)
set_target_properties(FTD3XX::FTD3XX PROPERTIES
INTERFACE_INCLUDE_DIRECTORIES "${FTD3XX_INCLUDE_DIR}"
INTERFACE_LINK_LIBRARIES "${FTD3XX_LIBRARY}"
)
endif()
+51 -82
View File
@@ -14,18 +14,14 @@
#include "icsneo/communication/message/readsettingsmessage.h"
#include "icsneo/communication/message/versionmessage.h"
#include "icsneo/communication/message/componentversionsmessage.h"
#include "icsneo/communication/message/filter/extendedresponsefilter.h"
#include "icsneo/communication/message/clientidmessage.h"
#include "icsneo/communication/icspb.h"
#include <commands/generic/v1/client_id.pb.h>
#include <commands/network/v1/mutex.pb.h>
using namespace icsneo;
int Communication::messageCallbackIDCounter = 1;
Communication::~Communication() {
if(redirectingRead)
clearRedirectRead();
if(isOpen())
close();
}
@@ -43,28 +39,24 @@ bool Communication::open() {
}
void Communication::spawnThreads() {
closing = false;
readTaskThread = std::thread(&Communication::readTask, this);
}
void Communication::joinThreads() {
if(pauseReadTask) {
resumeReads();
}
closing = true;
if(readTaskThread.joinable())
readTaskThread.join();
closing = false;
}
bool Communication::close() {
joinThreads();
if(!isOpen() && !isDisconnected()) {
report(APIEvent::Type::DeviceCurrentlyClosed, APIEvent::Severity::Error);
return false;
}
joinThreads();
return driver->close();
}
@@ -104,6 +96,23 @@ bool Communication::sendCommand(ExtendedCommand cmd, std::vector<uint8_t> argume
return sendCommand(Command::Extended, arguments);
}
bool Communication::redirectRead(std::function<void(std::vector<uint8_t>&&)> redirectTo) {
if(redirectingRead)
return false;
redirectionFn = redirectTo;
redirectingRead = true;
return true;
}
void Communication::clearRedirectRead() {
if(!redirectingRead)
return;
// The mutex is required to clear the redirection, but not to set it
std::lock_guard<std::mutex> lk(redirectingReadMutex);
redirectingRead = false;
redirectionFn = std::function<void(std::vector<uint8_t>&&)>();
}
bool Communication::getSettingsSync(std::vector<uint8_t>& data, std::chrono::milliseconds timeout) {
static const std::shared_ptr<MessageFilter> filter = std::make_shared<MessageFilter>(Network::NetID::ReadSettings);
std::shared_ptr<Message> msg = waitForMessageSync([this]() {
@@ -252,55 +261,44 @@ void Communication::dispatchMessage(const std::shared_ptr<Message>& msg) {
EventManager::GetInstance().downgradeErrorsOnCurrentThread();
}
void Communication::pauseReads() {
std::unique_lock<std::mutex> lk(pauseReadTaskMutex);
pauseReadTask = true;
}
void Communication::resumeReads() {
std::unique_lock<std::mutex> lk(pauseReadTaskMutex);
if(!pauseReadTask) {
return;
}
pauseReadTask = false;
lk.unlock();
pauseReadTaskCv.notify_one();
}
bool Communication::readsArePaused() {
std::unique_lock<std::mutex> lk(pauseReadTaskMutex);
return pauseReadTask;
}
void Communication::readTask() {
std::vector<uint8_t> readBytes;
EventManager::GetInstance().downgradeErrorsOnCurrentThread();
while(!closing) {
if(pauseReadTask) {
std::unique_lock<std::mutex> lk(pauseReadTaskMutex);
pauseReadTaskCv.wait(lk, [this]() { return !pauseReadTask; });
}
if(driver->waitForRx(readTaskWakeLimit, readTaskWakeTimeout)) {
if(pauseReadTask) {
/**
* Reads could have paused while the driver was not available
*/
continue;
}
handleInput(*packetizer);
readBytes.clear();
if(driver->readWait(readBytes)) {
handleInput(*packetizer, readBytes);
}
}
}
void Communication::handleInput(Packetizer& p) {
if(p.input(driver->getReadBuffer())) {
for(const auto& packet : p.output()) {
std::shared_ptr<Message> msg;
if(!decoder->decode(msg, packet))
continue;
void Communication::handleInput(Packetizer& p, std::vector<uint8_t>& readBytes) {
if(redirectingRead) {
// redirectingRead is an atomic so it can be set without acquiring a mutex
// However, we do not clear it without the mutex. The idea is that if another
// thread calls clearRedirectRead(), it will block until the redirectionFn
// finishes, and after that the redirectionFn will not be called again.
std::unique_lock<std::mutex> lk(redirectingReadMutex);
// So after we acquire the mutex, we need to check the atomic again, and
// if it has become cleared, we *can not* run the redirectionFn.
if(redirectingRead) {
redirectionFn(std::move(readBytes));
} else {
// The redirectionFn got cleared while we were acquiring the lock
lk.unlock(); // We don't need the lock anymore
handleInput(p, readBytes); // and we might as well process this input ourselves
}
} else {
if(p.input(readBytes)) {
for(const auto& packet : p.output()) {
std::shared_ptr<Message> msg;
if(!decoder->decode(msg, packet))
continue;
dispatchMessage(msg);
dispatchMessage(msg);
}
}
}
}
@@ -319,32 +317,3 @@ std::optional< std::vector<ComponentVersion> > Communication::getComponentVersio
return std::make_optional< std::vector<ComponentVersion> >(std::move(ver->versions));
}
std::optional<uint32_t> Communication::getClientIDSync() {
constexpr auto timeout = std::chrono::milliseconds(250);
commands::generic::v1::ClientId msg;
msg.Clear();
std::vector<uint8_t> payload = protoapi::getPayload(protoapi::Command::GET, msg);
std::shared_ptr<Message> response = waitForMessageSync(
[this, payload](){
return sendCommand(ExtendedCommand::ProtobufAPI, payload);
},
std::make_shared<MessageFilter>(Message::Type::ClientId),
timeout
);
if(!response) {
report(APIEvent::Type::NoDeviceResponse, APIEvent::Severity::Error);
return std::nullopt;
}
auto clientIdMessage = std::dynamic_pointer_cast<ClientIdMessage>(response);
if(!clientIdMessage) {
report(APIEvent::Type::UnexpectedResponse, APIEvent::Severity::Error);
return std::nullopt;
}
return clientIdMessage->clientId;
}
+22 -142
View File
@@ -3,9 +3,8 @@
#include "icsneo/communication/message/serialnumbermessage.h"
#include "icsneo/communication/message/resetstatusmessage.h"
#include "icsneo/communication/message/readsettingsmessage.h"
#include "icsneo/communication/message/canerrormessage.h"
#include "icsneo/communication/message/canerrorcountmessage.h"
#include "icsneo/communication/message/neoreadmemorysdmessage.h"
#include "icsneo/communication/message/flashmemorymessage.h"
#include "icsneo/communication/message/extendedresponsemessage.h"
#include "icsneo/communication/message/wiviresponsemessage.h"
#include "icsneo/communication/message/scriptstatusmessage.h"
@@ -16,15 +15,7 @@
#include "icsneo/communication/message/mdiomessage.h"
#include "icsneo/communication/message/extendeddatamessage.h"
#include "icsneo/communication/message/livedatamessage.h"
#include "icsneo/communication/message/logdatamessage.h"
#include "icsneo/communication/message/diskdatamessage.h"
#include "icsneo/communication/message/hardwareinfo.h"
#include "icsneo/communication/message/tc10statusmessage.h"
#include "icsneo/communication/message/gptpstatusmessage.h"
#include "icsneo/communication/message/apperrormessage.h"
#include "icsneo/communication/message/ethernetstatusmessage.h"
#include "icsneo/communication/message/networkmutexmessage.h"
#include "icsneo/communication/message/clientidmessage.h"
#include "icsneo/communication/command.h"
#include "icsneo/device/device.h"
#include "icsneo/communication/packet/canpacket.h"
@@ -44,11 +35,6 @@
#include "icsneo/communication/packet/mdiopacket.h"
#include "icsneo/communication/packet/genericbinarystatuspacket.h"
#include "icsneo/communication/packet/livedatapacket.h"
#include "icsneo/communication/packet/hardwareinfopacket.h"
#include "icsneo/communication/packet/spipacket.h"
#include "icsneo/communication/icspb.h"
#include <iostream>
using namespace icsneo;
@@ -62,9 +48,8 @@ uint64_t Decoder::GetUInt64FromLEBytes(const uint8_t* bytes) {
bool Decoder::decode(std::shared_ptr<Message>& result, const std::shared_ptr<Packet>& packet) {
switch(packet->network.getType()) {
case Network::Type::Ethernet:
case Network::Type::AutomotiveEthernet: {
result = HardwareEthernetPacket::DecodeToMessage(packet->data);
case Network::Type::Ethernet: {
result = HardwareEthernetPacket::DecodeToMessage(packet->data, report);
if(!result) {
report(APIEvent::Type::PacketDecodingError, APIEvent::Severity::Error);
return false; // A nullptr was returned, the packet was not long enough to decode
@@ -102,7 +87,7 @@ bool Decoder::decode(std::shared_ptr<Message>& result, const std::shared_ptr<Pac
break;
}
case Message::Type::CANErrorCount: {
CANErrorMessage& can = *static_cast<CANErrorMessage*>(result.get());
CANErrorCountMessage& can = *static_cast<CANErrorCountMessage*>(result.get());
can.network = packet->network;
break;
}
@@ -174,7 +159,6 @@ bool Decoder::decode(std::shared_ptr<Message>& result, const std::shared_ptr<Pac
A2BMessage& msg = *static_cast<A2BMessage*>(result.get());
msg.network = packet->network;
msg.timestamp *= timestampResolution;
return true;
}
case Network::Type::LIN: {
@@ -187,20 +171,6 @@ bool Decoder::decode(std::shared_ptr<Message>& result, const std::shared_ptr<Pac
LINMessage& msg = *static_cast<LINMessage*>(result.get());
msg.network = packet->network;
msg.timestamp *= timestampResolution;
return true;
}
case Network::Type::SPI: {
result = HardwareSPIPacket::DecodeToMessage(packet->data);
if(!result) {
report(APIEvent::Type::PacketDecodingError, APIEvent::Severity::Error);
return false; // A nullptr was returned, the packet was not long enough to decode
}
SPIMessage& msg = *static_cast<SPIMessage*>(result.get());
msg.network = packet->network;
msg.timestamp *= timestampResolution;
return true;
}
case Network::Type::MDIO: {
@@ -259,26 +229,21 @@ bool Decoder::decode(std::shared_ptr<Message>& result, const std::shared_ptr<Pac
return true;
}
const auto can = std::dynamic_pointer_cast<CANMessage>(HardwareCANPacket::DecodeToMessage(packet->data));
if(!can) {
result = HardwareCANPacket::DecodeToMessage(packet->data);
if(!result) {
report(APIEvent::Type::PacketDecodingError, APIEvent::Severity::Error);
return false;
}
if(can->arbid == 0x162) {
result = EthernetStatusMessage::DecodeToMessage(can->data);
if(!result) {
report(APIEvent::Type::PacketDecodingError, APIEvent::Severity::Error);
return false;
}
} else {
// TODO: move more handleNeoVIMessage handling here, the Decoder layer will parse the message and the Device layer can cache the values
can->network = packet->network;
result = can;
return false; // A nullptr was returned, the packet was malformed
}
result->timestamp = can->timestamp * timestampResolution;
// Timestamps are in (resolution) ns increments since 1/1/2007 GMT 00:00:00.0000
// The resolution depends on the device
auto* raw = dynamic_cast<RawMessage*>(result.get());
if(raw == nullptr) {
report(APIEvent::Type::PacketDecodingError, APIEvent::Severity::Error);
return false; // A nullptr was returned, the packet was malformed
}
raw->timestamp *= timestampResolution;
raw->network = packet->network;
return true;
}
case Network::NetID::DeviceStatus: {
@@ -286,18 +251,6 @@ bool Decoder::decode(std::shared_ptr<Message>& result, const std::shared_ptr<Pac
result = std::make_shared<RawMessage>(packet->network, packet->data);
return true;
}
case Network::NetID::RED_INT_MEMORYREAD: {
if(packet->data.size() != 512 + sizeof(uint16_t)) {
report(APIEvent::Type::PacketDecodingError, APIEvent::Severity::Error);
return false; // Should get enough data for a start address and sector
}
const auto msg = std::make_shared<FlashMemoryMessage>();
result = msg;
msg->startAddress = *reinterpret_cast<uint16_t*>(packet->data.data());
msg->data.insert(msg->data.end(), packet->data.begin() + 2, packet->data.end());
return true;
}
case Network::NetID::NeoMemorySDRead: {
if(packet->data.size() != 512 + sizeof(uint32_t)) {
report(APIEvent::Type::PacketDecodingError, APIEvent::Severity::Error);
@@ -312,11 +265,11 @@ bool Decoder::decode(std::shared_ptr<Message>& result, const std::shared_ptr<Pac
}
case Network::NetID::ExtendedCommand: {
if(packet->data.size() < sizeof(ExtendedResponseMessage::ResponseHeader))
if(packet->data.size() < sizeof(ExtendedResponseMessage::PackedGenericResponse))
break; // Handle as a raw message, might not be a generic response
const auto& resp = *reinterpret_cast<ExtendedResponseMessage::ResponseHeader*>(packet->data.data());
switch(resp.command) {
const auto& resp = *reinterpret_cast<ExtendedResponseMessage::PackedGenericResponse*>(packet->data.data());
switch(resp.header.command) {
case ExtendedCommand::GetComponentVersions:
result = ComponentVersionPacket::DecodeToMessage(packet->data);
return true;
@@ -326,57 +279,12 @@ bool Decoder::decode(std::shared_ptr<Message>& result, const std::shared_ptr<Pac
case ExtendedCommand::GenericBinaryInfo:
result = GenericBinaryStatusPacket::DecodeToMessage(packet->data);
return true;
case ExtendedCommand::SoftwareUpdate: {
result = std::make_shared<ExtendedResponseMessage>(ExtendedCommand::SoftwareUpdate, ExtendedResponse::OperationPending, packet->data);
case ExtendedCommand::GenericReturn:
result = std::make_shared<ExtendedResponseMessage>(resp.command, resp.returnCode);
return true;
}
case ExtendedCommand::GenericReturn: {
if(packet->data.size() < sizeof(ExtendedResponseMessage::PackedGenericResponse))
break;
const auto& packedResp = *reinterpret_cast<ExtendedResponseMessage::PackedGenericResponse*>(packet->data.data());
result = std::make_shared<ExtendedResponseMessage>(packedResp.command, packedResp.returnCode, packet->data);
return true;
}
case ExtendedCommand::LiveData:
result = HardwareLiveDataPacket::DecodeToMessage(packet->data, report);
return true;
case ExtendedCommand::GetTC10Status:
result = TC10StatusMessage::DecodeToMessage(packet->data);
return true;
case ExtendedCommand::GetGPTPStatus: {
result = GPTPStatus::DecodeToMessage(packet->data, report);
return true;
}
case ExtendedCommand::ProtobufAPI: {
// get the proto id
std::vector<uint8_t> responseBody(
packet->data.begin() + sizeof(ExtendedResponseMessage::ResponseHeader),
packet->data.end()
);
protoapi::Id protoId = protoapi::getProtoId(responseBody.data(), responseBody.size());
switch(protoId) {
case protoapi::Id::NetworkMutex:
result = NetworkMutexMessage::DecodeToMessage(responseBody);
return true;
case protoapi::Id::ClientId:
result = ClientIdMessage::DecodeToMessage(responseBody);
return true;
default:
report(APIEvent::Type::PacketDecodingError, APIEvent::Severity::Error);
return false;
}
}
case ExtendedCommand::GetDiskDetails:
case ExtendedCommand::DiskFormatProgress: {
std::vector<uint8_t> responseBody(
packet->data.begin() + sizeof(ExtendedResponseMessage::ResponseHeader),
packet->data.end()
);
auto response = std::make_shared<ExtendedResponseMessage>(resp.command);
response->data = std::move(responseBody);
result = response;
return true;
}
default:
// No defined handler, treat this as a RawMessage
break;
@@ -386,6 +294,7 @@ bool Decoder::decode(std::shared_ptr<Message>& result, const std::shared_ptr<Pac
case Network::NetID::ExtendedData: {
if(packet->data.size() < sizeof(ExtendedDataMessage::ExtendedDataHeader))
break;
const auto& header = *reinterpret_cast<ExtendedDataMessage::ExtendedDataHeader*>(packet->data.data());
switch(header.subCommand) {
@@ -397,8 +306,6 @@ bool Decoder::decode(std::shared_ptr<Message>& result, const std::shared_ptr<Pac
extDataMsg->data.resize(numRead);
std::copy(packet->data.begin() + sizeof(header), packet->data.begin() + sizeof(header) + numRead, extDataMsg->data.begin());
extDataMsg->network = Network(static_cast<uint16_t>(Network::NetID::ExtendedData), false);
return true;
}
default:
@@ -449,16 +356,6 @@ bool Decoder::decode(std::shared_ptr<Message>& result, const std::shared_ptr<Pac
return true;
}
case Command::GetHardwareInfo: {
result = HardwareInfoPacket::DecodeToMessage(packet->data);
if(!result) {
report(APIEvent::Type::PacketDecodingError, APIEvent::Severity::Error);
return false;
}
return true;
}
default:
auto msg = std::make_shared<Main51Message>();
msg->command = Command(packet->data[0]);
@@ -482,14 +379,6 @@ bool Decoder::decode(std::shared_ptr<Message>& result, const std::shared_ptr<Pac
packet->data.resize(length);
return decode(result, packet);
}
case Network::NetID::RED_App_Error: {
result = AppErrorMessage::DecodeToMessage(packet->data, report);
if(!result) {
report(APIEvent::Type::PacketDecodingError, APIEvent::Severity::EventWarning);
return false;
}
return true;
}
case Network::NetID::ReadSettings: {
auto msg = std::make_shared<ReadSettingsMessage>();
msg->response = ReadSettingsMessage::Response(packet->data[0]);
@@ -545,16 +434,7 @@ bool Decoder::decode(std::shared_ptr<Message>& result, const std::shared_ptr<Pac
result = std::make_shared<DiskDataMessage>(std::move(packet->data));
return true;
}
case Network::NetID::Data_To_Host: {
result = LogDataMessage::DecodeToMessage(packet->data);
if(!result) {
report(APIEvent::Type::PacketDecodingError, APIEvent::Severity::EventWarning);
return false;
}
return true;
}
default:
break;
}
break;
+23 -34
View File
@@ -8,44 +8,37 @@
using namespace icsneo;
bool Driver::pushRx(const uint8_t* buf, size_t numReceived) {
bool ret = readBuffer.write(buf, numReceived);
bool Driver::read(std::vector<uint8_t>& bytes, size_t limit) {
// A limit of zero indicates no limit
if(limit == 0)
limit = (size_t)-1;
rxWaitCv.notify_all();
if(limit > (readQueue.size_approx() + 4))
limit = (readQueue.size_approx() + 4);
return ret;
}
if(bytes.capacity() < limit)
bytes.resize(limit);
void Driver::clearBuffers()
{
WriteOperation flushop;
size_t actuallyRead = readQueue.try_dequeue_bulk(bytes.data(), limit);
readBuffer.clear();
rxWaitCv.notify_all();
if(bytes.size() > actuallyRead)
bytes.resize(actuallyRead);
while (writeQueue.try_dequeue(flushop)) {}
}
bool Driver::waitForRx(size_t limit, std::chrono::milliseconds timeout) {
return waitForRx([limit, this]() {
return readBuffer.size() >= limit;
}, timeout);
}
bool Driver::waitForRx(std::function<bool()> predicate, std::chrono::milliseconds timeout) {
std::unique_lock<std::mutex> lk(rxWaitMutex);
return rxWaitCv.wait_for(lk, timeout, predicate);
return true;
}
bool Driver::readWait(std::vector<uint8_t>& bytes, std::chrono::milliseconds timeout, size_t limit) {
// wait until we have enough data, or the timeout occurs
waitForRx(limit, timeout);
// A limit of zero indicates no limit
if(limit == 0)
limit = (size_t)-1;
size_t actuallyRead = readBuffer.size();
bytes.resize(actuallyRead);
if(limit > (readQueue.size_approx() + 4))
limit = (readQueue.size_approx() + 4);
bytes.resize(limit);
size_t actuallyRead = readQueue.wait_dequeue_bulk_timed(bytes.data(), limit, timeout);
readBuffer.read(bytes.data(), 0, actuallyRead);
readBuffer.pop(actuallyRead);
bytes.resize(actuallyRead);
#ifdef ICSNEO_DRIVER_DEBUG_PRINTS
@@ -71,12 +64,8 @@ bool Driver::write(const std::vector<uint8_t>& bytes) {
if(writeBlocks) {
if(writeQueueFull()) {
while(writeQueueAlmostFull() && !isDisconnected() && !isClosing()) // Wait until we have some decent amount of space
while(writeQueueAlmostFull()) // Wait until we have some decent amount of space
std::this_thread::sleep_for(std::chrono::milliseconds(10));
if(isDisconnected() || isClosing()) {
return false;
}
}
} else {
if(writeQueueFull()) {
@@ -90,4 +79,4 @@ bool Driver::write(const std::vector<uint8_t>& bytes) {
report(APIEvent::Type::Unknown, APIEvent::Severity::Error);
return ret;
}
}
+5 -31
View File
@@ -13,7 +13,6 @@
#include "icsneo/communication/packet/a2bpacket.h"
#include "icsneo/communication/packet/linpacket.h"
#include "icsneo/communication/packet/mdiopacket.h"
#include "icsneo/communication/packet/spipacket.h"
using namespace icsneo;
@@ -32,31 +31,19 @@ bool Encoder::encode(const Packetizer& packetizer, std::vector<uint8_t>& result,
netid = uint16_t(frame->network.getNetID());
switch(frame->network.getType()) {
case Network::Type::Ethernet:
case Network::Type::AutomotiveEthernet: {
case Network::Type::Ethernet: {
auto ethmsg = std::dynamic_pointer_cast<EthernetMessage>(message);
if(!ethmsg) {
report(APIEvent::Type::MessageFormattingError, APIEvent::Severity::Error);
return false;
return false; // The message was not a properly formed EthernetMessage
}
shortFormat = false; // Ensure long-format RED header is added
netid = static_cast<uint16_t>(Network::NetID::ETHERNET_TX_WRAP);
buffer = &result;
if(!HardwareEthernetPacket::EncodeFromMessage(*ethmsg, result, report)) {
report(APIEvent::Type::MessageFormattingError, APIEvent::Severity::Error);
if(!HardwareEthernetPacket::EncodeFromMessage(*ethmsg, result, report))
return false;
}
if(result.empty()) {
report(APIEvent::Type::MessageFormattingError, APIEvent::Severity::Error);
return false;
}
break;
}
case Network::Type::Internal:
} // End of Network::Type::Ethernet
case Network::Type::CAN:
case Network::Type::SWCAN:
case Network::Type::LSFTCAN: {
@@ -136,17 +123,6 @@ bool Encoder::encode(const Packetizer& packetizer, std::vector<uint8_t>& result,
}
break;
} // End of Network::Type::MDIO
case Network::Type::SPI: {
auto msg = std::dynamic_pointer_cast<SPIMessage>(message);
if(!msg) {
report(APIEvent::Type::MessageFormattingError, APIEvent::Severity::Error);
return false; // The message was not a properly formed LiveDataMessage
}
if(!HardwareSPIPacket::EncodeFromMessage(*msg, result, report))
return false;
result = packetizer.packetWrap(result, false);
return true;
} // End of Network::Type::SPI
default:
report(APIEvent::Type::UnexpectedNetworkType, APIEvent::Severity::Error);
return false;
@@ -254,6 +230,7 @@ bool Encoder::encode(const Packetizer& packetizer, std::vector<uint8_t>& result,
(uint8_t)(netid >> 8)
});
}
result = packetizer.packetWrap(*buffer, shortFormat);
return true;
}
@@ -285,12 +262,9 @@ bool Encoder::encode(const Packetizer& packetizer, std::vector<uint8_t>& result,
case Command::RequestSerialNumber:
case Command::EnableNetworkCommunication:
case Command::EnableNetworkCommunicationEx:
case Command::KeepAlive:
case Command::GetMainVersion:
case Command::GetSecondaryVersions:
case Command::NeoReadMemory:
case Command::ClearCoreMini:
case Command::LoadCoreMini:
// There is a firmware handling idiosyncrasy with these commands
// They must be encoded in the short format
m51msg->forceShortFormat = true;
-58
View File
@@ -1,5 +1,4 @@
#include "icsneo/communication/livedata.h"
#include <cmath>
namespace icsneo {
namespace LiveDataUtil {
@@ -19,62 +18,5 @@ double liveDataValueToDouble(const LiveDataValue& val) {
return val.value * liveDataFixedPointToDouble;
}
std::optional<LiveDataValue> liveDataDoubleToValue(const double& dFloat) {
LiveDataValue value;
union {
struct
{
uint32_t ValueFractionPart;
int32_t ValueInt32;
} parts;
int64_t ValueLarge;
} CminiFixedPt;
constexpr double CM_FIXED_POINT_TO_DOUBLEVALUE = (1.0 / (double)(1ULL << 32)); // 2^-32
constexpr double CM_DOUBLEVALUE_TO_FIXED_POINT = ((double)(1ULL << 32)); // 2^32
// Use const for limits (C++98 compatible)
const double INT32_MAX_DOUBLE =
static_cast<double>(std::numeric_limits<int32_t>::max()) + (1.0 - std::numeric_limits<double>::epsilon());
const double INT32_MIN_DOUBLE = static_cast<double>(std::numeric_limits<int32_t>::min());
const double MIN_FIXED_POINT_DOUBLE = (double)(1ull * CM_FIXED_POINT_TO_DOUBLEVALUE);
// This needs to be assigned separately, otherwise, for dFloat >= 2^31,
// long double dBigFloat = dFloat * CM_DOUBLEVALUE_TO_FIXED_POINT overflows
// long long (value is >= 2^63) and so the assignment ValueLarge = dBigFloat is undefined
int32_t intPart; //creating temp variable due to static analysis warning about writing and reading to different union members
if(dFloat < 0.0)
intPart = (int32_t)std::floor(dFloat);
else
intPart = (int32_t)dFloat;
//using temp varialbes to avoid static analysis warning about read/write to different union members
double frac = dFloat - (double)(intPart);
uint32_t fracPart = (uint32_t)std::floor((frac * CM_DOUBLEVALUE_TO_FIXED_POINT) + 0.5);
//write temp vars back into the union
CminiFixedPt.parts.ValueInt32 = intPart;
CminiFixedPt.parts.ValueFractionPart = fracPart;
value.value = CminiFixedPt.ValueLarge;
if(dFloat == (double)0.0)
return value;
//check if double can be stored as 32.32
// 0x1 0000 0000 0000 0000 * CM_FIXED_POINT_TO_DOUBLEVALUE = 0x1 0000 0000
if(dFloat > INT32_MAX_DOUBLE || dFloat < INT32_MIN_DOUBLE) {
EventManager::GetInstance().add(APIEvent::Type::FixedPointOverflow, APIEvent::Severity::Error);
return std::nullopt;
}
// Use absolute value for minimum fixed point check
double absFloat = (dFloat < 0.0) ? -dFloat : dFloat;
if(absFloat < MIN_FIXED_POINT_DOUBLE) {
EventManager::GetInstance().add(APIEvent::Type::FixedPointPrecision, APIEvent::Severity::Error);
return std::nullopt;
}
return value;
}
} // namespace LiveDataUtil
} // namespace icsneo
-257
View File
@@ -1,257 +0,0 @@
#include "icsneo/communication/message/a2bmessage.h"
#include "icsneo/communication/message/callback/streamoutput/streamoutput.h"
using namespace icsneo;
// Read a 16 bit sample from the audio buffer, which is stored as little endian
#define SAMPLE_FROM_BYTES_16(audioData) (((audioData)[0]) | ((audioData)[1] << 8))
// Read a 32 bit sample from the audio buffer
#define SAMPLE_FROM_BYTES_32(audioData) (((audioData)[0]) | ((audioData)[1] << 8) | ((audioData)[2] << 16) | ((audioData)[3] << 24))
// Read the most significant bytes of a sample stored in a 32 bit unsigned integer into audioData
#define SAMPLE_TO_BYTES_16(audioData, offset, sample) {\
(audioData)[(offset)++] = static_cast<uint8_t>(((sample) & 0x00FF0000u) >> 16);\
(audioData)[(offset)++] = static_cast<uint8_t>(((sample) & 0xFF000000u) >> 24);\
}
// Read little endian a 32 bit unsigned integer into audioData
#define SAMPLE_TO_BYTES_32(audioData, offset, sample) {\
(audioData)[(offset)++] = static_cast<uint8_t>(((sample) & 0x000000FFu));\
(audioData)[(offset)++] = static_cast<uint8_t>(((sample) & 0x0000FF00u) >> 8);\
(audioData)[(offset)++] = static_cast<uint8_t>(((sample) & 0x00FF0000u) >> 16);\
(audioData)[(offset)++] = static_cast<uint8_t>(((sample) & 0xFF000000u) >> 24);\
}
uint8_t A2BMessage::tdmToChannelNum(TDMMode tdm) {
switch(tdm) {
case TDMMode::TDM2:
return 4;
case TDMMode::TDM4:
return 8;
case TDMMode::TDM8:
return 16;
case TDMMode::TDM12:
return 24;
case TDMMode::TDM16:
return 32;
case TDMMode::TDM20:
return 40;
case TDMMode::TDM24:
return 48;
case TDMMode::TDM32:
return 64;
}
return 0;
}
uint8_t A2BMessage::getBytesPerChannel() const {
return channelSize16 ? 2u : 4u;
}
size_t A2BMessage::getFrameSize() const {
return static_cast<size_t>(2 * numChannels * getBytesPerChannel());
}
size_t A2BMessage::getSampleOffset(Direction dir, uint8_t channel, size_t frame) const {
size_t frameSize = getFrameSize();
size_t sampleOffset = static_cast<size_t>(frameSize * frame + 2 * channel * getBytesPerChannel());
if(dir == Direction::Upstream) {
sampleOffset += getBytesPerChannel();
}
return sampleOffset;
}
size_t A2BMessage::getNumFrames() const {
size_t frameSize = getFrameSize();
if(frameSize == 0) {
return 0;
}
return data.size() / frameSize;
}
A2BMessage::A2BMessage(size_t numFrames, TDMMode tdm, bool chSize16) : channelSize16(chSize16) {
numChannels = static_cast<uint8_t>(tdmToChannelNum(tdm) / 2);
size_t frameSize = static_cast<size_t>(2 * numChannels * (chSize16 ? 2u : 4u));
size_t audioBufferSize = frameSize * numFrames;
if(audioBufferSize > maxAudioBufferSize) {
size_t maxNumFrames = maxAudioBufferSize / frameSize;
audioBufferSize = maxNumFrames * frameSize;
}
data.resize(std::min<size_t>(maxAudioBufferSize, audioBufferSize), 0);
}
A2BMessage::A2BMessage(TDMMode tdm, bool chSize16) : channelSize16(chSize16) {
numChannels = static_cast<uint8_t>(tdmToChannelNum(tdm) / 2);
size_t frameSize = static_cast<size_t>(2 * numChannels * (chSize16 ? 2u : 4u));
size_t maxNumFrames = maxAudioBufferSize / frameSize;
size_t audioBufferSize = maxNumFrames * frameSize;
data.resize(audioBufferSize, 0);
}
PCMSample A2BMessage::getChannelSample(Direction dir, uint8_t channel, size_t frame, PCMType pcmType) const {
size_t sampleOffset = getSampleOffset(dir, channel, frame);
const uint8_t* audioData = &data[sampleOffset];
PCMSample result = 0;
// Samples coming from the device will either come from a 16 bit channel or 32 bit channel
if(channelSize16) {
int16_t sample16 = 0;
uint16_t& uSample16 = *reinterpret_cast<uint16_t*>(&sample16);
// Read little endian from the audio buffer
uSample16 = SAMPLE_FROM_BYTES_16(audioData);
// Scale the sample up according to the desired PCM size by
// multiplying using logical shifting
switch(pcmType) {
case PCMType::L16:
result = static_cast<PCMSample>(sample16);
break;
case PCMType::L24:
result = static_cast<PCMSample>(sample16) << 8;
break;
case PCMType::L32:
result = static_cast<PCMSample>(sample16) << 16;
break;
}
} else {
PCMSample sample32 = 0;
uint32_t& uSample32 = *reinterpret_cast<uint32_t*>(&sample32);
// Read little endian
uSample32 = SAMPLE_FROM_BYTES_32(audioData);
// Scale the sample down according to the desired PCM size by dividing using
// logical shifting, if the A2B network was set up with the desired pcmType
// there should be a clean division and no loss in PCM resolution.
switch(pcmType) {
case PCMType::L16:
result = sample32 >> 16;
break;
case PCMType::L24:
result = sample32 >> 8;
break;
case PCMType::L32:
result = sample32;
break;
}
}
return result;
}
void A2BMessage::setChannelSample(Direction dir, uint8_t channel, size_t frame, PCMSample sampleToSet, PCMType pcmType) {
size_t sampleOffset = getSampleOffset(dir, channel, frame);
uint32_t& uSample = *reinterpret_cast<uint32_t*>(&sampleToSet);
// Align the bytes towards the most significant bit by multiplying using
// left shifts
switch(pcmType) {
case PCMType::L16:
sampleToSet = sampleToSet << 16;
break;
case PCMType::L24:
sampleToSet = sampleToSet << 8;
break;
}
if(channelSize16) {
// Read the 2 most significant bytes of the sample
SAMPLE_TO_BYTES_16(data, sampleOffset, uSample)
} else {
// Read the entire sample
SAMPLE_TO_BYTES_32(data, sampleOffset, uSample);
}
}
bool A2BMessage::loadAudioBuffer(IWAVStream& wavStream, const ChannelMap& channelMap) {
if(!wavStream) {
return false;
}
size_t totalMessageChannels = numChannels * 2; // Multiply by two inorder to include both down and upstream channels
size_t bytesPerChannel = static_cast<size_t>(getBytesPerChannel()); // Number of bytes per message channel
size_t frameSize = getFrameSize();
size_t numFrames = getNumFrames();
size_t bytesPerSampleWAV = static_cast<size_t>(wavStream.header.bitsPerSample / 8); // Number of bytes per sample in the WAV data-stream
size_t numWAVChannels = static_cast<size_t>(wavStream.header.numChannels);
size_t wavFrameSize = numWAVChannels * bytesPerSampleWAV;
if(bytesPerSampleWAV != 2 && bytesPerSampleWAV != 3 && bytesPerSampleWAV != 4) {
return false;
}
if(numFrames == 0) {
return false;
}
uint8_t* audioBuffer = data.data();
std::vector<uint8_t> wavFrame(wavFrameSize, 0);
for(size_t frame = 0; frame < numFrames; frame++) {
// Read one frame of data from the input stream
if(!wavStream.read(reinterpret_cast<char*>(wavFrame.data()), wavFrame.size())) {
break;
}
// Iterate through each mapping and set a message channel to a channel in the WAV frame above
for(const auto& [messageChannel, wavChannel] : channelMap) {
if(messageChannel >= totalMessageChannels || wavChannel >= numWAVChannels) {
return false;
}
size_t frameOffset = wavChannel * bytesPerSampleWAV; // Offset in the read WAV frame
size_t audioBufferOffset = frame * frameSize + messageChannel * bytesPerChannel; // Offset in the message audio buffer
if(bytesPerChannel < bytesPerSampleWAV) {
// In this case, the message channels are smaller than the samples in the input WAV
// samples in both the message channel and WAV are little endian, so we write only the
// most significant bytes of the WAV
// Align to most significant bytes of wav frame
size_t align = bytesPerSampleWAV - bytesPerChannel;
for(
size_t frameByte = frameOffset + align;
frameByte < frameOffset + bytesPerSampleWAV;
frameByte++,
audioBufferOffset++
) {
audioBuffer[audioBufferOffset] = wavFrame[frameByte];
}
} else {
// The message channel is greater than or equal to the sample in the WAV
// I2S specifies that the sample in this case is right aligned to the most significant
// byte of the message channel
// Align to most significant byte of audio buffer channel
size_t align = bytesPerChannel - bytesPerSampleWAV;
for(
size_t audioByte = audioBufferOffset + align;
audioByte < audioBufferOffset + bytesPerChannel;
audioByte++,
frameOffset++
) {
audioBuffer[audioByte] = wavFrame[frameOffset];
}
}
}
}
return true;
}
-148
View File
@@ -1,148 +0,0 @@
#include <icsneo/communication/message/apperrormessage.h>
namespace icsneo {
#pragma pack(push, 2)
typedef struct {
uint16_t error_type;
uint16_t network_id;
uint32_t uiTimeStamp10uS;
uint32_t uiTimeStamp10uSMSB;
} AppErrorData;
#pragma pack(pop)
std::shared_ptr<Message> AppErrorMessage::DecodeToMessage(const std::vector<uint8_t>& bytestream, const device_eventhandler_t& report) {
const AppErrorData* data = reinterpret_cast<const AppErrorData*>(bytestream.data());
if(!data) {
report(APIEvent::Type::AppErrorParsingFailed, APIEvent::Severity::Error);
return nullptr;
}
auto appErr = std::make_shared<AppErrorMessage>();
appErr->errorType = data->error_type;
appErr->errorNetID = static_cast<Network::NetID>(data->network_id);
appErr->timestamp10us = data->uiTimeStamp10uS;
appErr->timestamp10usMSB = data->uiTimeStamp10uSMSB;
appErr->network = Network::NetID::RED_App_Error;
return appErr;
}
AppErrorType AppErrorMessage::getAppErrorType() {
AppErrorType errType = static_cast<AppErrorType>(errorType);
if(errType > AppErrorType::AppNoError) {
return AppErrorType::AppNoError;
}
return errType;
}
std::string AppErrorMessage::getAppErrorString() {
auto netIDString = Network::GetNetIDString(errorNetID);
AppErrorType errType = static_cast<AppErrorType>(errorType);
switch (errType) {
case AppErrorType::AppErrorRxMessagesFull:
return std::string(netIDString) + ": RX message buffer full";
case AppErrorType::AppErrorTxMessagesFull:
return std::string(netIDString) + ": TX message buffer full";
case AppErrorType::AppErrorTxReportMessagesFull:
return std::string(netIDString) + ": TX report buffer full";
case AppErrorType::AppErrorBadCommWithDspIC:
return "Received bad packet from DSP IC";
case AppErrorType::AppErrorDriverOverflow:
return std::string(netIDString) + ": Driver overflow";
case AppErrorType::AppErrorPCBuffOverflow:
return "PC buffer overflow";
case AppErrorType::AppErrorPCChksumError:
return "PC checksum error";
case AppErrorType::AppErrorPCMissedByte:
return "PC missed byte";
case AppErrorType::AppErrorPCOverrunError:
return "PC overrun error";
case AppErrorType::AppErrorSettingFailure:
return std::string(netIDString) + ": Settings incorrectly set";
case AppErrorType::AppErrorTooManySelectedNetworks:
return "Too many selected networks";
case AppErrorType::AppErrorNetworkNotEnabled:
return std::string(netIDString) + ": Network not enabled";
case AppErrorType::AppErrorRtcNotCorrect:
return "RTC not correct";
case AppErrorType::AppErrorLoadedDefaultSettings:
return "Loaded default settings";
case AppErrorType::AppErrorFeatureNotUnlocked:
return "Feature not unlocked";
case AppErrorType::AppErrorFeatureRtcCmdDropped:
return "RTC command dropped";
case AppErrorType::AppErrorTxMessagesFlushed:
return "TX message buffer flushed";
case AppErrorType::AppErrorTxMessagesHalfFull:
return "TX message buffer half full";
case AppErrorType::AppErrorNetworkNotValid:
return "Network is not valid";
case AppErrorType::AppErrorTxInterfaceNotImplemented:
return "TX interface is not implemented";
case AppErrorType::AppErrorTxMessagesCommEnableIsOff:
return "TX message communication is disabled";
case AppErrorType::AppErrorRxFilterMatchCountExceeded:
return "RX filter match count exceeded";
case AppErrorType::AppErrorEthPreemptionNotEnabled:
return std::string(netIDString) + ": Ethernet preemption not enabled";
case AppErrorType::AppErrorTxNotSupportedInMode:
return std::string(netIDString) + ": Transmit is not supported in this mode";
case AppErrorType::AppErrorJumboFramesNotSupported:
return std::string(netIDString) + ": Jumbo frames not supported";
case AppErrorType::AppErrorEthernetIpFragment:
return "Ethernet IP fragment received";
case AppErrorType::AppErrorTxMessagesUnderrun:
return std::string(netIDString) + ": Transmit buffer underrun";
case AppErrorType::AppErrorDeviceFanFailure:
return "Device fan failure";
case AppErrorType::AppErrorDeviceOvertemperature:
return "Device overtemperature";
case AppErrorType::AppErrorTxMessageIndexOutOfRange:
return "Transmit message index out of range";
case AppErrorType::AppErrorUndersizedFrameDropped:
return std::string(netIDString) + ": Undersized frame dropped";
case AppErrorType::AppErrorOversizedFrameDropped:
return std::string(netIDString) + ": Oversized frame dropped";
case AppErrorType::AppErrorWatchdogEvent:
return "Watchdog event occured";
case AppErrorType::AppErrorSystemClockFailure:
return "Device clock failed";
case AppErrorType::AppErrorSystemClockRecovered:
return "Device clock recovered";
case AppErrorType::AppErrorSystemPeripheralReset:
return "Device peripheral reset";
case AppErrorType::AppErrorSystemCommunicationFailure:
return "Device communication failure";
case AppErrorType::AppErrorTxMessagesUnsupportedSourceOrPacketId:
return std::string(netIDString) + ": Transmit unsupported source or packet ID";
case AppErrorType::AppErrorWbmsManagerConnectFailed:
return std::string(netIDString) + ": Failed to connect to managers with settings";
case AppErrorType::AppErrorWbmsManagerConnectBadState:
return std::string(netIDString) + ": Connected to managers in a invalid state";
case AppErrorType::AppErrorWbmsManagerConnectTimeout:
return std::string(netIDString) + ": Timeout while attempting to connect to managers";
case AppErrorType::AppErrorFailedToInitializeLoggerDisk:
return "Device failed to initialize storage disk";
case AppErrorType::AppErrorInvalidSetting:
return std::string(netIDString) + ": Invalid settings";
case AppErrorType::AppErrorSystemFailureRequestedReset:
return "Device rebooted to recover from an unexpected error condition";
case AppErrorType::AppErrorPortKeyMistmatch:
return std::string(netIDString) + ": Mismatch between key in manager and stored key";
case AppErrorType::AppErrorBusFailure:
return std::string(netIDString) + ": Bus failure";
case AppErrorType::AppErrorTapOverflow:
return std::string(netIDString) + ": Tap overflow";
case AppErrorType::AppErrorEthTxNoLink:
return std::string(netIDString) + ": Attempted Ethernet transmit without link";
case AppErrorType::AppErrorErrorBufferOverflow:
return "Device error buffer overflow";
case AppErrorType::AppNoError:
return "No error";
default:
return "Unknown error";
}
}
} // namespace icsneo
@@ -0,0 +1,156 @@
#include "icsneo/communication/message/callback/streamoutput/a2bdecoder.h"
#include <chrono>
#include "icsneo/icsneocpp.h"
namespace icsneo {
static constexpr uint8_t maxChannel = 255;
size_t A2BAudioChannelMap::getChannelIndex(Channel channel, A2BMessage::A2BDirection dir) const {
size_t output = (size_t)channel;
if(dir == A2BMessage::A2BDirection::Upstream) {
output++;
}
return output;
}
A2BAudioChannelMap::A2BAudioChannelMap(uint8_t tdm) {
rawMap.resize(2*tdm, maxChannel);
}
void A2BAudioChannelMap::set(Channel outChannel, A2BMessage::A2BDirection dir, Channel inChannel) {
auto index = getChannelIndex(outChannel, dir);
rawMap[index] = inChannel;
}
void A2BAudioChannelMap::setAll(Channel inChannel) {
std::fill(rawMap.begin(), rawMap.end(), inChannel);
}
Channel A2BAudioChannelMap::get(Channel outChannel, A2BMessage::A2BDirection dir) const {
auto index = getChannelIndex(outChannel, dir);
return rawMap[index];
}
size_t A2BAudioChannelMap::A2BAudioChannelMap::size() const {
return rawMap.size();
}
uint8_t A2BAudioChannelMap::getTDM() const {
return (uint8_t)(rawMap.size() / 2);
}
Channel& A2BAudioChannelMap::operator[](size_t idx) {
return rawMap[idx];
}
A2BAudioChannelMap::operator const std::vector<Channel>&() const {
return rawMap;
}
A2BDecoder::A2BDecoder(
std::unique_ptr<std::istream>&& streamOut,
bool chSize16,
const A2BAudioChannelMap& chMap
) : channelSize16(chSize16), channelMap(chMap) {
stream = std::move(streamOut);
tdm = chMap.getTDM();
initializeFromHeader();
}
A2BDecoder::A2BDecoder(
const char* filename,
bool chSize16,
const A2BAudioChannelMap& chMap
) : A2BDecoder(std::make_unique<std::ifstream>(filename, std::ios::binary), chSize16, chMap) { }
A2BDecoder::operator bool() const {
return initialized && stream->good() && !stream->eof();
}
void A2BDecoder::initializeFromHeader() {
WaveFileHeader header;
if(!stream->read((char*)&header, sizeof(header))) {
initialized = false;
return;
}
// Only allow 16 or 24 bit samples
if(header.bitsPerSample != 16 && header.bitsPerSample != 24) {
initialized = false;
return;
}
audioBytesPerSample = header.bitsPerSample == 16 ? 2 : 3;
channelsInWave = (uint8_t)header.numChannels;
size_t bytesPerSample = channelSize16 ? 2 : 4;
size_t frameSize = 2*tdm*bytesPerSample;
size_t frameSizeWave = (size_t)(channelsInWave) * (size_t)(audioBytesPerSample);
frame.resize(frameSize, 0);
frameWave.resize(frameSizeWave, 0);
initialized = true;
}
std::shared_ptr<A2BMessage> A2BDecoder::decode() {
if(!*(this)) {
return nullptr;
}
auto a2bMessagePtr = std::make_shared<icsneo::A2BMessage>(
tdm,
channelSize16,
2048
);
A2BMessage& a2bMessage = *a2bMessagePtr.get();
a2bMessage.setMonitorBit(false); // Probably not necessary
a2bMessage.setTxMsgBit(true);
a2bMessage.network = Network(Network::NetID::A2B2);
for(uint32_t frameIndex = 0; frameIndex < a2bMessage.getNumFrames(); frameIndex++) {
if(!stream->read((char*)frameWave.data(), frameWave.size())) {
break;
}
for(size_t icsChannel = 0; icsChannel < channelMap.size(); icsChannel++) {
if(channelMap[icsChannel] >= maxChannel) {
continue;
}
size_t wBegin = audioBytesPerSample * channelMap[icsChannel];
A2BPCMSample sample = 0;
uint8_t* sampBytes = (uint8_t*)&sample;
std::copy(frameWave.begin() + wBegin, frameWave.begin() + wBegin + audioBytesPerSample, sampBytes);
a2bMessage[frameIndex][icsChannel] = sample;
}
}
return a2bMessagePtr;
}
bool A2BDecoder::outputAll(std::shared_ptr<Device>& device) {
const auto& networks = device->getSupportedTXNetworks();
if(std::none_of(networks.begin(), networks.end(), [](const Network& net) { return net.getNetID() == Network::NetID::A2B2; })) {
return false;
}
while(*this) {
device->transmit(decode());
}
return true;
}
}
@@ -4,100 +4,16 @@
namespace icsneo {
A2BWAVOutput::A2BWAVOutput(
const char* filename,
const ChannelMap& channelMap,
PCMType bitDepth,
size_t numWAVChannels,
uint32_t sampleRate
)
: StreamOutput(filename), wavSampleRate(sampleRate), numChannelsWAV(numWAVChannels), chMap(channelMap) {
switch(bitDepth) {
case PCMType::L16:
bytesPerSampleWAV = 2;
break;
case PCMType::L24:
bytesPerSampleWAV = 3;
break;
case PCMType::L32:
bytesPerSampleWAV = 4;
break;
}
if(initialize()) {
initialized = true;
}
}
A2BWAVOutput::A2BWAVOutput(
std::ostream& os,
const ChannelMap& channelMap,
PCMType bitDepth,
size_t numWAVChannels,
uint32_t sampleRate
)
: StreamOutput(os), wavSampleRate(sampleRate), numChannelsWAV(numWAVChannels), chMap(channelMap) {
switch(bitDepth) {
case PCMType::L16:
bytesPerSampleWAV = 2;
break;
case PCMType::L24:
bytesPerSampleWAV = 3;
break;
case PCMType::L32:
bytesPerSampleWAV = 4;
break;
}
if(initialize()) {
initialized = true;
}
}
A2BWAVOutput::~A2BWAVOutput() {
if(!closed) {
close();
}
}
bool A2BWAVOutput::initialize() {
static constexpr size_t maxWAVChannels = 256;
if(numChannelsWAV > maxWAVChannels) {
return false;
}
maxMessageChannel = 0;
// Check if the inputted channel map has invalid mappings and compute maxMessageChannel
for(auto [wavChannel, messageChannel] : chMap) {
maxMessageChannel = std::max<size_t>(maxMessageChannel, messageChannel);
if(wavChannel >= numChannelsWAV) {
return false;
}
}
WAVHeader header = WAVHeader(
static_cast<uint16_t>(chMap.size()),
wavSampleRate,
static_cast<uint16_t>(bytesPerSampleWAV * 8)
);
if(!stream->write(reinterpret_cast<const char*>(&header), sizeof(WAVHeader))) {
return false;
}
void A2BWAVOutput::writeHeader(const std::shared_ptr<A2BMessage>& firstMsg) const {
WaveFileHeader header = WaveFileHeader(2 * firstMsg->getNumChannels(), wavSampleRate, firstMsg->getBitDepth());
header.write(stream);
streamStartPos = static_cast<uint32_t>(stream->tellp());
wavBuffer = std::vector<uint8_t>(wavBufferSize, 0);
wavBufferOffset = 0;
return true;
}
bool A2BWAVOutput::callIfMatch(const std::shared_ptr<Message>& message) const {
if(!initialized) {
return false;
}
if(closed) {
return false;
}
@@ -106,87 +22,28 @@ bool A2BWAVOutput::callIfMatch(const std::shared_ptr<Message>& message) const {
return false;
}
const auto& frameMsg = std::dynamic_pointer_cast<Frame>(message);
const auto& frame = std::static_pointer_cast<Frame>(message);
if(!frameMsg) {
return false;
}
if(frameMsg->network.getType() != Network::Type::A2B)
if(frame->network.getType() != Network::Type::A2B)
return false;
const auto& a2bMsg = std::dynamic_pointer_cast<A2BMessage>(frameMsg);
const auto& a2bmsg = std::static_pointer_cast<A2BMessage>(frame);
if(!a2bMsg) {
return false;
if(firstMessageFlag) {
writeHeader(a2bmsg);
firstMessageFlag = false;
}
size_t frameSize = a2bMsg->getFrameSize();
size_t wavFrameSize = numChannelsWAV * bytesPerSampleWAV;
size_t bytesPerChannel = static_cast<size_t>(a2bMsg->getBytesPerChannel());
size_t numMessageChannels = 2 * a2bMsg->numChannels;
size_t numFrames = a2bMsg->getNumFrames();
const uint8_t* audioBuffer = a2bMsg->data.data();
if(maxMessageChannel >= numMessageChannels) {
// The max message channel in our channel map is larger than the number of channels in this message
// this is likely due to the user inputting incorrect settings
return false;
// Might need to readd this block of code later if sample alignment fix is necessary
/*
std::streamsize bps = (std::streamsize)a2bmsg->getBytesPerSample();
for(size_t i=0; i<a2bmsg->getNumSamples(); i++) {
A2BPCMSample samp = *(a2bmsg->getSample(i));
write((void*)&samp, bps);
}
*/
for(size_t frame = 0; frame < numFrames; frame++) {
// Check to see if we can read another frame in wavBuffer, otherwise write and clear the buffer
if(wavBufferOffset + wavFrameSize >= wavBufferSize) {
if(!writeCurrentBuffer()) {
return false;
}
}
for(size_t wavChannel = 0; wavChannel < numChannelsWAV; wavChannel++) {
if(auto iter = chMap.find(static_cast<uint8_t>(wavChannel)); iter != chMap.end()) {
auto messageChannel = iter->second;
size_t messageChannelOffset = messageChannel * bytesPerChannel + frameSize* frame;
// Samples in the WAV are little endian signed integers
// Samples in the message channels are little endian signed integers that are
// most significant bit aligned
if(a2bMsg->channelSize16) {
// In this case, the channel size will be less than or equal to the sample we are writing
// so we zero out any of the least significant bytes which won't be occupied by a sample byte
for(size_t zeroByte = 0; zeroByte < bytesPerSampleWAV - bytesPerChannel; zeroByte++) {
wavBuffer[wavBufferOffset++] = 0;
}
// Write the channel data in the most signifant bytes of the wav sample, this effectively
// writes a sample which is scaled up.
for(size_t channelByte = 0; channelByte < bytesPerChannel; channelByte++) {
wavBuffer[wavBufferOffset++] = audioBuffer[messageChannelOffset + channelByte];
}
} else {
// In this case, the channel size will be greater than or equal to the sample we are reading
// Align the wav sample with the most significant bytes of the channel
size_t channelByte = messageChannelOffset + (bytesPerChannel - bytesPerSampleWAV);
// Read the most significant bytes of the channel into the wavBuffer
for(size_t sampleByte = 0; sampleByte < bytesPerSampleWAV; sampleByte++, channelByte++) {
wavBuffer[wavBufferOffset++] = audioBuffer[channelByte];
}
}
} else {
// If this channel wasn't specified in the channel map, set a zero sample
for(
size_t sampleByte = 0;
sampleByte < bytesPerSampleWAV;
sampleByte++
) {
wavBuffer[wavBufferOffset++] = 0;
}
}
}
}
write((void*)a2bmsg->getAudioBuffer(), a2bmsg->getAudioBufferSize());
return true;
}
@@ -196,39 +53,17 @@ void A2BWAVOutput::close() const {
return;
}
if(!initialized) {
return;
}
// Write any left over data in the buffer
if(wavBufferOffset > 0) {
writeCurrentBuffer();
}
// Seek back in the output stream and write the WAV chunk sizes
uint32_t streamEndPos = static_cast<uint32_t>(stream->tellp());
uint32_t subChunk2Size = streamEndPos - streamStartPos;
uint32_t chunkSize = streamEndPos - 8;
stream->seekp(streamStartPos - 4);
stream->write(reinterpret_cast<const char*>(&subChunk2Size), 4);
write((void*)&subChunk2Size, 4);
stream->seekp(4, std::ios::beg);
stream->write(reinterpret_cast<const char*>(&chunkSize), 4);
write((void*)&chunkSize, 4);
closed = true;
}
bool A2BWAVOutput::writeCurrentBuffer() const {
if(!stream->write(reinterpret_cast<const char*>(wavBuffer.data()), wavBufferOffset)) {
return false;
}
wavBufferOffset = 0;
return true;
}
}
-21
View File
@@ -1,21 +0,0 @@
#include "icsneo/communication/message/clientidmessage.h"
#include "icsneo/communication/icspb.h"
#include "icsneo/communication/command.h"
#include "icsneo/communication/message/extendedresponsemessage.h"
using namespace icsneo;
std::shared_ptr<ClientIdMessage> ClientIdMessage::DecodeToMessage(const std::vector<uint8_t>& bytestream) {
ClientIdMessage decoded;
commands::generic::v1::ClientId msg;
if(!protoapi::processResponse(bytestream.data(), bytestream.size(), msg)) {
return nullptr;
}
if(msg.has_client_id()) {
decoded.clientId.emplace(msg.client_id());
}
return std::make_shared<ClientIdMessage>(decoded);
}
@@ -1,80 +0,0 @@
#include "icsneo/communication/message/ethernetstatusmessage.h"
using namespace icsneo;
#pragma pack(push, 1)
enum LinkSpeed {
ethSpeed10,
ethSpeed100,
ethSpeed1000,
ethSpeedAutoNeg,
ethSpeed2500,
ethSpeed5000,
ethSpeed10000,
};
enum TLinkMode {
T_LINK_NONE,
T_LINK_MASTER,
T_LINK_SLAVE,
T_LINK_AUTO,
T_LINK_INVALID = 255,
};
enum AELinkMode {
AE_LINK_AUTO,
AE_LINK_MASTER,
AE_LINK_SLAVE,
AE_LINK_INVALID = 255,
};
struct Packet {
uint8_t state;
uint8_t speed;
uint8_t duplex;
uint16_t network;
uint8_t mode;
};
#pragma pack(pop)
std::shared_ptr<Message> EthernetStatusMessage::DecodeToMessage(const std::vector<uint8_t>& bytestream) {
if(bytestream.size() < sizeof(Packet)) {
return nullptr;
}
Packet* packet = (Packet*)bytestream.data();
LinkSpeed speed;
switch(packet->speed) {
case ethSpeed10: speed = EthernetStatusMessage::LinkSpeed::LinkSpeed10; break;
case ethSpeed100: speed = EthernetStatusMessage::LinkSpeed::LinkSpeed100; break;
case ethSpeed1000: speed = EthernetStatusMessage::LinkSpeed::LinkSpeed1000; break;
case ethSpeedAutoNeg: speed = EthernetStatusMessage::LinkSpeed::LinkSpeedAuto; break;
case ethSpeed2500: speed = EthernetStatusMessage::LinkSpeed::LinkSpeed2500; break;
case ethSpeed5000: speed = EthernetStatusMessage::LinkSpeed::LinkSpeed5000; break;
case ethSpeed10000: speed = EthernetStatusMessage::LinkSpeed::LinkSpeed10000; break;
default: return nullptr;
}
LinkMode mode;
switch(Network::GetTypeOfNetID((Network::NetID)packet->network, false)) {
case Network::Type::Ethernet:
switch(packet->mode) {
case T_LINK_NONE: mode = EthernetStatusMessage::LinkMode::LinkModeNone; break;
case T_LINK_MASTER: mode = EthernetStatusMessage::LinkMode::LinkModeMaster; break;
case T_LINK_SLAVE: mode = EthernetStatusMessage::LinkMode::LinkModeSlave; break;
case T_LINK_AUTO: mode = EthernetStatusMessage::LinkMode::LinkModeAuto; break;
case T_LINK_INVALID: mode = EthernetStatusMessage::LinkMode::LinkModeInvalid; break;
default: return nullptr;
}
break;
case Network::Type::AutomotiveEthernet:
switch(packet->mode) {
case AE_LINK_AUTO: mode = EthernetStatusMessage::LinkMode::LinkModeAuto; break;
case AE_LINK_MASTER: mode = EthernetStatusMessage::LinkMode::LinkModeMaster; break;
case AE_LINK_SLAVE: mode = EthernetStatusMessage::LinkMode::LinkModeSlave; break;
case AE_LINK_INVALID: mode = EthernetStatusMessage::LinkMode::LinkModeInvalid; break;
default: return nullptr;
}
break;
default: return nullptr;
}
return std::make_shared<EthernetStatusMessage>(packet->network, packet->state, speed, packet->duplex, mode);
}
+9 -9
View File
@@ -8,7 +8,7 @@ bool EthPhyMessage::appendPhyMessage(bool writeEnable, bool clause45, uint8_t ph
msg->Clause45Enable = clause45;
msg->Enabled = enabled;
msg->WriteEnable = writeEnable;
msg->Version = 1u;
msg->version = 1u;
if( (FiveBits < phyAddrOrPort) ||
(clause45 && (FiveBits < pageOrDevice)) ||
(!clause45 && (FiveBits < regAddr)) )
@@ -18,17 +18,17 @@ bool EthPhyMessage::appendPhyMessage(bool writeEnable, bool clause45, uint8_t ph
if(clause45)
{
msg->Clause45.port = phyAddrOrPort;
msg->Clause45.device = pageOrDevice;
msg->Clause45.regAddr = regAddr;
msg->Clause45.regVal = regVal;
msg->clause45.port = phyAddrOrPort;
msg->clause45.device = pageOrDevice;
msg->clause45.regAddr = regAddr;
msg->clause45.regVal = regVal;
}
else
{
msg->Clause22.phyAddr = phyAddrOrPort;
msg->Clause22.page = pageOrDevice;
msg->Clause22.regAddr = regAddr;
msg->Clause22.regVal = regVal;
msg->clause22.phyAddr = phyAddrOrPort;
msg->clause22.page = pageOrDevice;
msg->clause22.regAddr = regAddr;
msg->clause22.regVal = regVal;
}
return appendPhyMessage(msg);
}
@@ -8,8 +8,9 @@ using namespace icsneo;
std::vector<uint8_t> FlexRayControlMessage::BuildBaseControlArgs(uint8_t controller, FlexRay::Opcode op, const std::vector<uint8_t>& args) {
std::vector<uint8_t> ret;
ret.reserve(args.size() + 4);
ret.push_back(controller);
const uint16_t size = static_cast<uint16_t>(std::min(args.size() + 1, size_t(std::numeric_limits<uint16_t>::max()))); // Add 1 for the opcode
const uint16_t size = uint16_t((std::min)(args.size() + 1, size_t(std::numeric_limits<uint16_t>::max()))); // Add 1 for the opcode
ret.push_back(uint8_t(size));
ret.push_back(uint8_t(size >> 8));
ret.push_back(uint8_t(op));
-219
View File
@@ -1,219 +0,0 @@
#include <icsneo/communication/message/gptpstatusmessage.h>
#include <icsneo/communication/message/extendedresponsemessage.h>
#include <cstring>
namespace icsneo {
typedef double float64;
typedef int64_t time_interval;
typedef uint64_t _clock_identity;
#pragma pack(push, 1)
struct port_identity {
_clock_identity clock_identity;
uint16_t port_number;
};
struct _scaled_ns {
int16_t nanoseconds_msb;
int64_t nanoseconds_lsb;
int16_t fractional_nanoseconds;
};
struct _clock_quality {
uint8_t clock_class;
uint8_t clock_accuracy;
uint16_t offset_scaled_log_variance;
};
struct system_identity {
uint8_t priority_1;
struct _clock_quality clock_quality;
uint8_t priority_2;
_clock_identity clock_identity;
};
struct _timestamp {
uint16_t seconds_msb;
uint32_t seconds_lsb;
uint32_t nanoseconds;
};
struct priority_vector {
struct system_identity sysid;
uint16_t steps_removed;
struct port_identity portid;
uint16_t port_number;
};
// IEEE 802.1AS-2020 14.3
// This is a read-only data structure
struct _current_ds {
uint16_t steps_removed;
time_interval offset_from_master;
struct _scaled_ns last_gm_phase_change;
float64 last_gm_freq_change;
uint16_t gm_time_base_indicator;
uint32_t gm_change_count;
uint32_t time_of_last_gm_change_event;
uint32_t time_of_last_gm_phase_change_event;
uint32_t time_of_last_gm_freq_change_event;
};
// IEEE 802.1AS-2020 14.4
// This is a read-only data structure
struct _parent_ds {
struct port_identity parent_port_identity;
int32_t cumulative_rate_ratio;
_clock_identity grandmaster_identity;
uint8_t gm_clock_quality_clock_class;
uint8_t gm_clock_quality_clock_accuracy;
uint16_t gm_clock_quality_offset_scaled_log_variance;
uint8_t gm_priority1;
uint8_t gm_priority2;
};
struct _GPTPStatus
{
struct _timestamp current_time;
struct priority_vector gm_priority;
int64_t ms_offset_ns;
uint8_t is_sync;
uint8_t link_status;
int64_t link_delay_ns;
uint8_t selected_role;
uint8_t as_capable;
uint8_t is_syntonized;
struct _timestamp last_rx_sync_ts; // t2 in IEEE 1588-2019 Figure-16
struct _current_ds current_ds;
struct _parent_ds parent_ds;
};
#pragma pack(pop)
static void SetField(GPTPStatus::Timestamp& output, const _timestamp& input) {
output.seconds = ((uint64_t)(input.seconds_msb) << 32) | ((uint64_t)input.seconds_lsb);
output.nanoseconds = input.nanoseconds;
}
static void SetField(GPTPStatus::PortID& output, const port_identity& input) {
output.clockIdentity = input.clock_identity;
output.portNumber = input.port_number;
}
static void SetField(GPTPStatus::ClockQuality& output, const _clock_quality& input) {
output.clockClass = input.clock_class;
output.clockAccuracy = input.clock_accuracy;
output.offsetScaledLogVariance = input.offset_scaled_log_variance;
}
static void SetField(GPTPStatus::SystemID& output, const system_identity& input) {
output.priority1 = input.priority_1;
SetField(output.clockQuality, input.clock_quality);
output.priority2 = input.priority_2;
output.clockID = input.clock_identity;
}
static void SetField(GPTPStatus::ScaledNanoSeconds& output, const _scaled_ns& input) {
output.nanosecondsMSB = input.nanoseconds_msb;
output.nanosecondsLSB = input.nanoseconds_lsb;
output.fractionalNanoseconds = input.fractional_nanoseconds;
}
static void SetField(GPTPStatus::PriorityVector& output, const priority_vector& input) {
SetField(output.sysID, input.sysid);
output.stepsRemoved = input.steps_removed;
SetField(output.portID, input.portid);
output.portNumber = input.port_number;
}
static void SetField(GPTPStatus::CurrentDS& output, const _current_ds& input) {
output.stepsRemoved = input.steps_removed;
output.offsetFromMaster = input.offset_from_master;
SetField(output.lastgmPhaseChange, input.last_gm_phase_change);
output.lastgmFreqChange = input.last_gm_freq_change;
output.gmTimeBaseIndicator = input.gm_time_base_indicator;
output.gmChangeCount = input.gm_change_count;
output.timeOfLastgmChangeEvent = input.time_of_last_gm_change_event;
output.timeOfLastgmPhaseChangeEvent = input.time_of_last_gm_phase_change_event;
output.timeOfLastgmFreqChangeEvent = input.time_of_last_gm_freq_change_event;
}
static void SetField(GPTPStatus::ParentDS& output, const _parent_ds& input) {
SetField(output.parentPortIdentity, input.parent_port_identity);
output.cumulativeRateRatio = input.cumulative_rate_ratio;
output.grandmasterIdentity = input.grandmaster_identity;
output.gmClockQualityClockClass = input.gm_clock_quality_clock_class;
output.gmClockQualityClockAccuracy = input.gm_clock_quality_clock_accuracy;
output.gmClockQualityOffsetScaledLogVariance = input.gm_clock_quality_offset_scaled_log_variance;
output.gmPriority1 = input.gm_priority1;
output.gmPriority2 = input.gm_priority2;
}
[[maybe_unused]] static void SetField(uint8_t& output, const uint8_t& input) {
output = input;
}
[[maybe_unused]] static void SetField(uint16_t& output, const uint16_t& input) {
output = input;
}
[[maybe_unused]] static void SetField(uint32_t& output, const uint32_t& input) {
output = input;
}
[[maybe_unused]] static void SetField(uint64_t& output, const uint64_t& input) {
output = input;
}
[[maybe_unused]] static void SetField(int8_t& output, const int8_t& input) {
output = input;
}
[[maybe_unused]] static void SetField(int16_t& output, const int16_t& input) {
output = input;
}
[[maybe_unused]] static void SetField(int32_t& output, const int32_t& input) {
output = input;
}
[[maybe_unused]] static void SetField(int64_t& output, const int64_t& input) {
output = input;
}
std::shared_ptr<GPTPStatus> GPTPStatus::DecodeToMessage(std::vector<uint8_t>& bytes, const device_eventhandler_t&) {
// The following does not lead to overflow since we only call this function if it has at least ResponseHeader length bytes
std::shared_ptr<GPTPStatus> res = std::make_shared<GPTPStatus>();
auto* header = reinterpret_cast<ExtendedResponseMessage::ResponseHeader*>(bytes.data());
uint16_t length = header->length;
_GPTPStatus* input = reinterpret_cast<_GPTPStatus*>(bytes.data() + sizeof(ExtendedResponseMessage::ResponseHeader));
#define CheckLengthAndSet(output, input) if(length >= sizeof(decltype(input))) { \
SetField(output, input); \
length -= sizeof(decltype(input)); \
} else {\
memset(&output, 0, sizeof(decltype(output))); \
length = 0; \
res->shortFormat = true; \
}
CheckLengthAndSet(res->currentTime, input->current_time);
CheckLengthAndSet(res->gmPriority, input->gm_priority);
CheckLengthAndSet(res->msOffsetNs, input->ms_offset_ns);
CheckLengthAndSet(res->isSync, input->is_sync);
CheckLengthAndSet(res->linkStatus, input->link_status);
CheckLengthAndSet(res->linkDelayNS, input->link_delay_ns);
CheckLengthAndSet(res->selectedRole, input->selected_role);
CheckLengthAndSet(res->asCapable, input->as_capable);
CheckLengthAndSet(res->isSyntonized, input->is_syntonized);
CheckLengthAndSet(res->lastRXSyncTS, input->last_rx_sync_ts);
CheckLengthAndSet(res->currentDS, input->current_ds);
CheckLengthAndSet(res->parentDS, input->parent_ds);
return res;
}
}
-10
View File
@@ -12,14 +12,4 @@ void LiveDataCommandMessage::appendSignalArg(LiveDataValueType valueType) {
arg->valueType = valueType;
}
void LiveDataSetValueMessage::appendSetValue(LiveDataValueType valueType, const LiveDataValue& value) {
auto& arg = args.emplace_back(std::make_shared<LiveDataArgument>());
arg->objectType = LiveDataObjectType::MISC;
arg->objectIndex = 0u;
arg->signalIndex = 0u;
arg->valueType = valueType;
values.push_back(std::make_shared<LiveDataValue>(value));
}
} // namespace icsneo
-12
View File
@@ -1,12 +0,0 @@
#include "icsneo/communication/message/logdatamessage.h"
#include <iostream>
using namespace icsneo;
std::shared_ptr<LogDataMessage> LogDataMessage::DecodeToMessage(const std::vector<uint8_t>& bytestream) {
if(bytestream.size() % 2 != 0)
return nullptr;
const auto* begin = (char16_t*)bytestream.data();
const auto* end = begin + (bytestream.size() / sizeof(char16_t));
return std::make_shared<LogDataMessage>(std::wstring(begin,end));
}
+13 -17
View File
@@ -1,7 +1,7 @@
#include "icsneo/communication/message/neomessage.h"
#include "icsneo/communication/message/canmessage.h"
#include "icsneo/communication/message/ethernetmessage.h"
#include "icsneo/communication/message/canerrormessage.h"
#include "icsneo/communication/message/canerrorcountmessage.h"
#include "icsneo/communication/message/linmessage.h"
using namespace icsneo;
@@ -44,15 +44,14 @@ neomessage_t icsneo::CreateNeoMessage(const std::shared_ptr<Message> message) {
can.status.canfdESI = canmsg->errorStateIndicator;
break;
}
case Network::Type::Ethernet:
case Network::Type::AutomotiveEthernet: {
case Network::Type::Ethernet: {
neomessage_eth_t& eth = *(neomessage_eth_t*)&neomsg;
auto ethmsg = std::static_pointer_cast<EthernetMessage>(message);
eth.preemptionFlags = ethmsg->preemptionFlags.value_or(0);
eth.preemptionFlags = ethmsg->preemptionFlags;
eth.status.incompleteFrame = ethmsg->frameTooShort;
// TODO Fill in extra status bits
//eth.status.xyz = ethmsg->preemptionEnabled;
//eth.status.xyz = ethmsg->fcs;
//eth.status.xyz = ethmsg->fcsAvailable;
//eth.status.xyz = ethmsg->noPadding;
break;
}
@@ -76,15 +75,13 @@ neomessage_t icsneo::CreateNeoMessage(const std::shared_ptr<Message> message) {
lin.length = 1;
lin.linStatus = {
linmsg->statusFlags.TxChecksumEnhanced, // .txChecksumEnhanced
linmsg->statusFlags.TxCommander, // .txCommander
linmsg->statusFlags.TxResponder, // .txResponder
0, // .txAborted
linmsg->statusFlags.UpdateResponderOnce, // .updateResponderOnce
linmsg->statusFlags.HasUpdatedResponderOnce, // .hasUpdatedResponderOnce
linmsg->statusFlags.BusRecovered, // .busRecovered
linmsg->statusFlags.BreakOnly // .breakOnly
linmsg->statusFlags.TxChecksumEnhanced,
linmsg->statusFlags.TxCommander,
linmsg->statusFlags.TxResponder,
linmsg->statusFlags.UpdateResponderOnce,
linmsg->statusFlags.HasUpdatedResponderOnce,
linmsg->statusFlags.BusRecovered,
linmsg->statusFlags.BreakOnly
};
lin.status.linJustBreakSync = linmsg->errFlags.ErrRxBreakSyncOnly;
@@ -107,7 +104,7 @@ neomessage_t icsneo::CreateNeoMessage(const std::shared_ptr<Message> message) {
}
case Message::Type::CANErrorCount: {
neomessage_can_error_t& canerror = *(neomessage_can_error_t*)&neomsg;
auto canerrormsg = std::static_pointer_cast<CANErrorMessage>(message);
auto canerrormsg = std::static_pointer_cast<CANErrorCountMessage>(message);
canerror.transmitErrorCount = canerrormsg->transmitErrorCount;
canerror.receiveErrorCount = canerrormsg->receiveErrorCount;
canerror.status.canBusOff = canerrormsg->busOff;
@@ -143,8 +140,7 @@ std::shared_ptr<Message> icsneo::CreateMessageFromNeoMessage(const neomessage_t*
canmsg->errorStateIndicator = can.status.canfdESI;
return canmsg;
}
case Network::Type::Ethernet:
case Network::Type::AutomotiveEthernet: {
case Network::Type::Ethernet: {
neomessage_eth_t& eth = *(neomessage_eth_t*)neomessage;
auto ethmsg = std::make_shared<EthernetMessage>();
ethmsg->network = network;
@@ -1,89 +0,0 @@
#include "icsneo/communication/message/networkmutexmessage.h"
#include "icsneo/communication/icspb.h"
#include "icsneo/communication/command.h"
#include "icsneo/communication/message/extendedresponsemessage.h"
using namespace icsneo;
std::shared_ptr<NetworkMutexMessage> NetworkMutexMessage::DecodeToMessage(const std::vector<uint8_t>& bytestream) {
NetworkMutexMessage decoded;
commands::network::v1::NetworkMutex msg;
if(!protoapi::processResponse(bytestream.data(), bytestream.size(), msg)) {
return nullptr;
}
if(msg.has_client_id()) {
decoded.owner_id.emplace(msg.client_id());
}
if(msg.has_type()) {
decoded.type.emplace(static_cast<NetworkMutexType>(msg.type()));
}
if(msg.has_priority()) {
decoded.priority.emplace(msg.priority());
}
if(msg.has_ttl()){
decoded.ttlMs.emplace(msg.ttl());
}
if(msg.has_event()){
decoded.event.emplace(static_cast<NetworkMutexEvent>(msg.event()));
}
for(int i = 0 ; i < msg.network_ids_size(); ++i){
decoded.networks.emplace(static_cast<Network::NetID>(msg.network_ids(i)));
}
return std::make_shared<NetworkMutexMessage>(decoded);
}
std::vector<uint8_t> NetworkMutexMessage::EncodeArgumentsForLock(uint32_t client_id, NetworkMutexType type, uint32_t priority, uint32_t ttlMs, const std::set<Network::NetID>& networks, const device_eventhandler_t& /* report */) {
commands::network::v1::NetworkMutex msg;
for(auto&& network_id : networks) {
msg.add_network_ids(static_cast<commands::network::v1::NetworkId>(network_id));
}
msg.set_client_id(client_id);
msg.set_priority(priority);
msg.set_ttl(ttlMs);
msg.set_type(static_cast<commands::network::v1::MutexType>(type));
return protoapi::getPayload(protoapi::Command::PUT, msg);
}
std::vector<uint8_t> NetworkMutexMessage::EncodeArgumentsForLockAll(uint32_t client_id, NetworkMutexType type, uint32_t priority, uint32_t ttlMs, const device_eventhandler_t& /* report */) {
commands::network::v1::NetworkMutex msg;
msg.set_client_id(client_id);
msg.set_priority(priority);
msg.set_ttl(ttlMs);
msg.set_type(static_cast<commands::network::v1::MutexType>(type));
msg.set_global(true);
return protoapi::getPayload(protoapi::Command::PUT, msg);
}
std::vector<uint8_t> NetworkMutexMessage::EncodeArgumentsForUnlock(uint32_t client_id, const std::set<Network::NetID>& networks, const device_eventhandler_t& /* report */) {
commands::network::v1::NetworkMutex msg;
msg.Clear();
for(auto&& network_id : networks)
{
msg.add_network_ids(static_cast<commands::network::v1::NetworkId>(network_id));
}
msg.set_client_id(client_id);
msg.set_release(true);
return protoapi::getPayload(protoapi::Command::PUT, msg);
}
std::vector<uint8_t> NetworkMutexMessage::EncodeArgumentsForUnlockAll(uint32_t client_id, const device_eventhandler_t& /* report */) {
commands::network::v1::NetworkMutex msg;
msg.Clear();
msg.set_client_id(client_id);
msg.set_release(true);
msg.set_global(true);
return protoapi::getPayload(protoapi::Command::PUT, msg);
}
std::vector<uint8_t> NetworkMutexMessage::EncodeArgumentsForStatus(Network::NetID network, const device_eventhandler_t& /* report */) {
commands::network::v1::NetworkMutex msg;
msg.add_network_ids(static_cast<commands::network::v1::NetworkId>(network));
return protoapi::getPayload(protoapi::Command::GET, msg);
}
@@ -1,31 +0,0 @@
#include "icsneo/communication/message/tc10statusmessage.h"
#include "icsneo/communication/command.h"
using namespace icsneo;
#pragma pack(push, 2)
struct Header {
ExtendedCommand command;
uint16_t length;
};
struct Packet {
Header header;
TC10WakeStatus wakeStatus;
TC10SleepStatus sleepStatus;
};
#pragma pack(pop)
std::shared_ptr<TC10StatusMessage> TC10StatusMessage::DecodeToMessage(const std::vector<uint8_t>& bytestream) {
if(bytestream.size() < sizeof(Packet)) {
return nullptr;
}
const Packet* packet = (Packet*)bytestream.data();
if (packet->header.command != ExtendedCommand::GetTC10Status) {
return nullptr;
}
if (packet->header.length < sizeof(Packet) - sizeof(Header)) {
return nullptr;
}
return std::make_shared<TC10StatusMessage>(packet->wakeStatus, packet->sleepStatus);
}
-201
View File
@@ -1,201 +0,0 @@
#include "icsneo/communication/message/transmitmessage.h"
// packet defs
#include "icsneo/communication/packet/ethernetpacket.h"
#include "icsneo/communication/packet/canpacket.h"
#include "icsneo/communication/packet/linpacket.h"
using namespace icsneo;
static std::vector<uint8_t> EncodeFromMessageEthernet(std::shared_ptr<Frame> frame, const device_eventhandler_t& report) {
auto ethmsg = std::dynamic_pointer_cast<EthernetMessage>(frame);
if(!ethmsg) {
report(APIEvent::Type::MessageFormattingError, APIEvent::Severity::Error);
return {};
}
std::vector<uint8_t> encoded;
size_t messageLen = ethmsg->data.size();
encoded.resize(sizeof(TransmitMessage) + messageLen);
TransmitMessage* const msg = (TransmitMessage*)encoded.data();
HardwareEthernetPacket* const ethpacket = (HardwareEthernetPacket*)(msg->commonHeader);
uint8_t* const payload = encoded.data() + sizeof(TransmitMessage);
ethpacket->header.ENABLE_PADDING = ethmsg->noPadding ? 0 : 1;
ethpacket->header.FCS_OVERRIDE = ethmsg->fcs ? 1 : 0;
ethpacket->eid.txlen = static_cast<uint16_t>(messageLen);
ethpacket->Length = static_cast<uint16_t>(messageLen);
ethpacket->stats = ethmsg->description;
ethpacket->NetworkID = static_cast<uint16_t>(ethmsg->network.getNetID());
std::copy(ethmsg->data.begin(), ethmsg->data.end(), payload);
return encoded;
}
static std::vector<uint8_t> EncodeFromMessageCAN(std::shared_ptr<Frame> frame, const device_eventhandler_t& report) {
auto canmsg = std::dynamic_pointer_cast<CANMessage>(frame);
if(!canmsg) {
report(APIEvent::Type::MessageFormattingError, APIEvent::Severity::Error);
return {};
}
if(canmsg->isCANFD && canmsg->isRemote) {
report(APIEvent::Type::RTRNotSupported, APIEvent::Severity::Error);
return {}; // RTR frames can not be used with CAN FD
}
std::vector<uint8_t> encoded;
size_t messageLen = canmsg->data.size();
size_t extraLen = 0;
if(messageLen > 8) {
extraLen = messageLen - 8;
}
encoded.resize(sizeof(TransmitMessage) + extraLen);
TransmitMessage* const msg = (TransmitMessage*)encoded.data();
HardwareCANPacket* const canpacket = (HardwareCANPacket*)(msg->commonHeader);
uint8_t* const extra_payload = encoded.data() + sizeof(TransmitMessage);
const size_t dataSize = canmsg->data.size();
std::optional<uint8_t> dlc = CAN_LengthToDLC(dataSize, canmsg->isCANFD);
if(!dlc.has_value()) {
report(APIEvent::Type::MessageMaxLengthExceeded, APIEvent::Severity::Error);
return {}; // Too much data for the protocol
}
// arb id
if(canmsg->isExtended) {
canpacket->header.IDE = 1;
canpacket->header.SID = (canmsg->arbid >> 18) & 0x7FF;
canpacket->eid.EID = (canmsg->arbid >> 6) & 0xfff;
canpacket->dlc.EID2 = canmsg->arbid & 0x3f;
} else {
canpacket->header.IDE = 0;
canpacket->header.SID = canmsg->arbid & 0x7FF;
}
// DLC
canpacket->dlc.DLC = dlc.value();
// FDF/BRS or remote frames
if(canmsg->isCANFD) {
canpacket->header.EDL = 1;
canpacket->header.BRS = canmsg->baudrateSwitch ? 1 : 0;
canpacket->header.ESI = canmsg->errorStateIndicator ? 1 : 0;
canpacket->dlc.RTR = 0;
canpacket->timestamp.IsExtended = 1;
} else {
canpacket->header.EDL = 0;
canpacket->header.BRS = 0;
canpacket->header.ESI = 0;
canpacket->dlc.RTR = canmsg->isRemote ? 1 : 0;
}
// network
canpacket->NetworkID = static_cast<uint16_t>(canmsg->network.getNetID());
canpacket->Length = static_cast<uint16_t>(extraLen);
// description id
canpacket->stats = canmsg->description;
// first 8 bytes
std::copy(canmsg->data.begin(), canmsg->data.begin() + (messageLen > 8 ? 8 : messageLen), canpacket->data);
// extra bytes
if(extraLen > 0) {
// copy extra data after the can packet
std::copy(canmsg->data.begin() + 8, canmsg->data.end(), extra_payload);
}
return encoded;
}
static std::vector<uint8_t> EncodeFromMessageLIN(std::shared_ptr<Frame> frame, const device_eventhandler_t& report) {
auto linmsg = std::dynamic_pointer_cast<LINMessage>(frame);
if(!linmsg) {
report(APIEvent::Type::MessageFormattingError, APIEvent::Severity::Error);
return {};
}
if(linmsg->linMsgType == LINMessage::Type::NOT_SET) {
report(APIEvent::Type::RequiredParameterNull, APIEvent::Severity::Error);
return {};
}
size_t dataLen = std::min<size_t>(8, linmsg->data.size());
std::vector<uint8_t> encoded;
encoded.resize(sizeof(TransmitMessage));
TransmitMessage* const msg = (TransmitMessage*)encoded.data();
HardwareLINPacket* const linpacket = (HardwareLINPacket*)(msg->commonHeader);
memset(linpacket, 0, sizeof(HardwareLINPacket));
// Protected ID and ID
linmsg->protectedID = linmsg->calcProtectedID(linmsg->ID);
linpacket->CoreMiniBitsLIN.ID = linmsg->protectedID & 0x3F;
// LIN message type flags
switch(linmsg->linMsgType) {
case LINMessage::Type::LIN_COMMANDER_MSG:
linpacket->CoreMiniBitsLIN.TXCommander = 1;
break;
case LINMessage::Type::LIN_HEADER_ONLY:
linpacket->CoreMiniBitsLIN.TXCommander = 1;
break;
case LINMessage::Type::LIN_UPDATE_RESPONDER:
linpacket->CoreMiniBitsLIN.TXResponder = 1;
break;
case LINMessage::Type::LIN_BREAK_ONLY:
linpacket->CoreMiniBitsLIN.BreakOnly = 1;
break;
default:
break;
}
// Enhanced checksum
linpacket->CoreMiniBitsLIN.TxChkSumEnhanced = linmsg->isEnhancedChecksum ? 1 : 0;
// Data and checksum
bool hasData = (linmsg->linMsgType == LINMessage::Type::LIN_COMMANDER_MSG ||
linmsg->linMsgType == LINMessage::Type::LIN_UPDATE_RESPONDER) && dataLen > 0;
if(hasData) {
// len includes data bytes + 1 checksum byte
linpacket->CoreMiniBitsLIN.len = static_cast<uint16_t>(dataLen + 1);
std::copy(linmsg->data.begin(), linmsg->data.begin() + dataLen, linpacket->data);
// Checksum goes after data: in data[dataLen] if < 8, otherwise in LINByte9
if(dataLen < 8)
linpacket->data[dataLen] = linmsg->checksum;
else
linpacket->CoreMiniBitsLIN.LINByte9 = linmsg->checksum;
} else {
linpacket->CoreMiniBitsLIN.len = 0;
}
// Description/stats and network
linpacket->stats = linmsg->description;
return encoded;
}
std::vector<uint8_t> TransmitMessage::EncodeFromMessage(std::shared_ptr<Frame> frame, uint32_t client_id, const device_eventhandler_t& report) {
std::vector<uint8_t> result;
switch(frame->network.getType()) {
case Network::Type::Ethernet:
case Network::Type::AutomotiveEthernet:
result = EncodeFromMessageEthernet(frame, report);
break;
case Network::Type::Internal:
case Network::Type::CAN:
result = EncodeFromMessageCAN(frame, report);
break;
case Network::Type::LIN:
result = EncodeFromMessageLIN(frame, report);
break;
default:
report(APIEvent::Type::UnexpectedNetworkType, APIEvent::Severity::Error);
return result;
}
// common fields
if(result.empty())
return result;
TransmitMessage* const msg = (TransmitMessage*)result.data();
msg->options.clientId = client_id;
msg->options.networkId = static_cast<uint32_t>(frame->network.getNetID());
msg->options.reserved[0] = 0;
msg->options.reserved[1] = 0;
msg->options.reserved[2] = 0;
return result;
}
+10 -22
View File
@@ -9,7 +9,7 @@ using namespace icsneo;
MultiChannelCommunication::MultiChannelCommunication(device_eventhandler_t err, std::unique_ptr<Driver> com,
std::function<std::unique_ptr<Packetizer>()> makeConfiguredPacketizer, std::unique_ptr<Encoder> e,
std::unique_ptr<Decoder> md, size_t vnetCount) :
Communication(err, std::move(com), makeConfiguredPacketizer, std::move(e), std::move(md)), numVnets(vnetCount), packetRB(2048) {
Communication(err, std::move(com), makeConfiguredPacketizer, std::move(e), std::move(md)), numVnets(vnetCount) {
vnetThreads.resize(numVnets);
vnetQueues.resize(numVnets);
}
@@ -24,7 +24,6 @@ void MultiChannelCommunication::spawnThreads() {
void MultiChannelCommunication::joinThreads() {
closing = true;
ringBufCV.notify_all();
if(hidReadThread.joinable())
hidReadThread.join();
for(auto& thread : vnetThreads) {
@@ -149,13 +148,9 @@ void MultiChannelCommunication::hidReadTask() {
break;
}
{
std::unique_lock lk(ringBufMutex);
if(!packetRB.write(std::move(payloadBytes)) && gotPacket)
EventManager::GetInstance().add(APIEvent(APIEvent::Type::FailedToRead, APIEvent::Severity::Error));
payloadBytes.clear();
}
ringBufCV.notify_all();
if(!currentQueue->enqueue(std::move(payloadBytes)) && gotPacket)
EventManager::GetInstance().add(APIEvent(APIEvent::Type::FailedToRead, APIEvent::Severity::Error));
payloadBytes.clear();
gotPacket = true;
state = PreprocessState::SearchForCommand;
break;
@@ -165,6 +160,7 @@ void MultiChannelCommunication::hidReadTask() {
}
void MultiChannelCommunication::vnetReadTask(size_t vnetIndex) {
moodycamel::BlockingReaderWriterQueue< std::vector<uint8_t> >& queue = vnetQueues[vnetIndex];
std::vector<uint8_t> payloadBytes;
std::unique_ptr<Packetizer> packetizerLifetime;
Packetizer* vnetPacketizer;
@@ -178,19 +174,11 @@ void MultiChannelCommunication::vnetReadTask(size_t vnetIndex) {
EventManager::GetInstance().downgradeErrorsOnCurrentThread();
while(!closing) {
std::unique_lock lk(ringBufMutex);
ringBufCV.wait(lk);
if(closing) {
break;
if(queue.wait_dequeue_timed(payloadBytes, std::chrono::milliseconds(250))) {
if(closing)
break;
handleInput(*vnetPacketizer, payloadBytes);
}
if(vnetPacketizer->input(packetRB)) {
for(const auto& packet : vnetPacketizer->output()) {
std::shared_ptr<Message> msg;
if(!decoder->decode(msg, packet))
continue;
dispatchMessage(msg);
}
}
}
}
+27 -23
View File
@@ -4,51 +4,55 @@
namespace icsneo {
const size_t HardwareA2BPacket::a2bMessageMaxLength = sizeof(HardwareA2BPacket) + 1024;
const size_t HardwareA2BPacket::coreMiniMessageHeaderSize = 28;
const size_t HardwareA2BPacket::a2bMessageMaxLength = (size_t)HardwareA2BPacket::coreMiniMessageHeaderSize + 1024;
const size_t HardwareA2BPacket::a2bHeaderSize = 6;
std::shared_ptr<Message> HardwareA2BPacket::DecodeToMessage(const std::vector<uint8_t>& bytestream) {
if(bytestream.size() < sizeof(HardwareA2BPacket))
if(bytestream.size() < coreMiniMessageHeaderSize)
{
return nullptr;
}
const HardwareA2BPacket* data = (const HardwareA2BPacket*)bytestream.data();
const HardwareA2BPacket *data = (const HardwareA2BPacket*)bytestream.data();
size_t totalPackedLength = static_cast<size_t>(bytestream.size()) - sizeof(HardwareA2BPacket); // First 28 bytes are message header.
size_t totalPackedLength = static_cast<size_t>(bytestream.size()) - static_cast<size_t>(coreMiniMessageHeaderSize); // First 28 bytes are message header.
if(totalPackedLength == 0) {
return nullptr;
}
std::shared_ptr<A2BMessage> msg = std::make_shared<A2BMessage>(
(uint8_t)data->header.channelNum,
data->header.channelSize16,
totalPackedLength
);
std::shared_ptr<A2BMessage> msg = std::make_shared<A2BMessage>();
msg->setMonitorBit(data->header.monitor);
msg->setTxMsgBit(data->header.txmsg);
msg->setErrIndicatorBit(data->header.errIndicator);
msg->setSyncFrameBit(data->header.syncFrame);
msg->setRFU2(data->header.rfu2);
msg->setAudioBuffer(bytestream.begin() + coreMiniMessageHeaderSize, bytestream.end());
msg->numChannels = data->header.channelNum;
msg->channelSize16 = data->header.channelSize16;
msg->monitor = data->header.monitor;
msg->txmsg = data->header.txmsg;
msg->errIndicator = data->header.errIndicator;
msg->syncFrame = data->header.syncFrame;
msg->rfu2 = data->header.rfu2;
msg->timestamp = data->timestamp.TS;
msg->data = std::vector(bytestream.begin() + sizeof(HardwareA2BPacket), bytestream.end());
return msg;
}
bool HardwareA2BPacket::EncodeFromMessage(const A2BMessage& message, std::vector<uint8_t>& bytestream, const device_eventhandler_t& /*report*/) {
bool HardwareA2BPacket::EncodeFromMessage(const A2BMessage& message, std::vector<uint8_t>& bytestream, const device_eventhandler_t& report) {
constexpr size_t a2btxMessageHeaderSize = 6;
size_t audioBufferSize = message.data.size();
size_t totalSize = a2btxMessageHeaderSize + audioBufferSize;
if(message.getBytesPerSample() != 2 && message.getBytesPerSample() != 4) {
report(APIEvent::Type::MessageFormattingError, APIEvent::Severity::Error);
return false;
}
size_t sampleBytes = message.getAudioBufferSize();
size_t totalSize = a2btxMessageHeaderSize + sampleBytes;
bytestream.resize(totalSize, 0);
uint32_t offset = 0;
bytestream[offset++] = 0;
bytestream[offset++] = 0;
bytestream[offset++] = (uint8_t)(audioBufferSize & 0xFF);
bytestream[offset++] = (uint8_t)((audioBufferSize >> 8) & 0xFF);
bytestream[offset++] = (uint8_t)(sampleBytes & 0xFF);
bytestream[offset++] = (uint8_t)((sampleBytes >> 8) & 0xFF);
bytestream[offset++] = (uint8_t)((message.description >> 8) & 0xFF);
bytestream[offset++] = (uint8_t)(message.description & 0xFF);
+12 -18
View File
@@ -1,5 +1,5 @@
#include "icsneo/communication/packet/canpacket.h"
#include "icsneo/communication/message/canerrormessage.h"
#include "icsneo/communication/message/canerrorcountmessage.h"
using namespace icsneo;
@@ -29,7 +29,8 @@ static std::optional<uint8_t> CAN_DLCToLength(uint8_t length, bool fd) {
return std::nullopt;
}
std::optional<uint8_t> icsneo::CAN_LengthToDLC(size_t dataLength, bool fd) {
static std::optional<uint8_t> CAN_LengthToDLC(size_t dataLength, bool fd)
{
if (dataLength <= 8)
return uint8_t(dataLength);
@@ -52,18 +53,16 @@ std::optional<uint8_t> icsneo::CAN_LengthToDLC(size_t dataLength, bool fd) {
return std::nullopt;
}
std::shared_ptr<Message> HardwareCANPacket::DecodeToMessage(const std::vector<uint8_t>& bytestream) {
const HardwareCANPacket* data = (const HardwareCANPacket*)bytestream.data();
const HardwareCANErrorPacket* errPacket = (const HardwareCANErrorPacket*)bytestream.data();
if(errPacket->ERROR_INDICATOR) {
auto msg = std::make_shared<CANErrorMessage>();
msg->receiveErrorCount = errPacket->REC;
msg->transmitErrorCount = errPacket->TEC;
msg->errorWarn = HardwareCANErrorPacket::GetErrorWarn(errPacket->flags);
msg->errorPassive = HardwareCANErrorPacket::GetErrorPassive(errPacket->flags);
msg->busOff = HardwareCANErrorPacket::GetBusOff(errPacket->flags);
msg->errorCode = (CANErrorCode)errPacket->error_code;
msg->dataErrorCode = (CANErrorCode)errPacket->brs_data_error_code;
if(data->dlc.RB1) { // Change counts reporting
const bool busOff = data->data[0] & 0b00100000;
auto msg = std::make_shared<CANErrorCountMessage>(data->data[2], data->data[1], busOff);
// This timestamp is raw off the device (in timestampResolution increments)
// Decoder will fix as it has information about the timestampResolution increments
msg->timestamp = data->timestamp.TS;
@@ -113,18 +112,13 @@ std::shared_ptr<Message> HardwareCANPacket::DecodeToMessage(const std::vector<ui
msg->data.insert(msg->data.end(), data->data, data->data + (length > 8 ? 8 : length));
if(length > 8) { // If there are more than 8 bytes, they come at the end of the message
// Messages with extra data are formatted as message, then uint16_t netid, then uint16_t length, then extra data
const auto extraDataStart = bytestream.begin() + sizeof(HardwareCANPacket);
const auto extraDataStart = bytestream.begin() + sizeof(HardwareCANPacket) + 2 + 2;
msg->data.insert(msg->data.end(), extraDataStart, extraDataStart + (length - 8));
}
}
msg->transmitted = data->eid.TXMSG;
// Set the generic frame error state
msg->error = data->eid.TXAborted || data->eid.TXError || data->eid.TXLostArb;
// Set specific error states for CANError
msg->txAborted = data->eid.TXAborted;
msg->txLostArb = data->eid.TXLostArb;
msg->txError = data->eid.TXError;
msg->description = data->stats;
return msg;
@@ -31,7 +31,7 @@ std::shared_ptr<ComponentVersionsMessage> ComponentVersionPacket::DecodeToMessag
// Get a reference to the payload to fully validate the length
const auto& response = *reinterpret_cast<const ComponentVersionsResponse*>(bytes.data());
// Expected size is the header, numVersions field, and numVersions ComponentVersion objects.
auto expectedSize = sizeof(ExtendedResponseMessage::ResponseHeader) + 2 + (response.numVersions * sizeof(PackedComponentVersion));
auto expectedSize = sizeof(ExtendedResponseMessage::ResponseHeader) + 2 + (response.numVersions * sizeof(ComponentVersion));
// If the response is malformed (too small), return an empty message.
if(bytes.size() < expectedSize) {
return msg; // Empty
@@ -39,14 +39,7 @@ std::shared_ptr<ComponentVersionsMessage> ComponentVersionPacket::DecodeToMessag
// Unpack into the portable class
for(unsigned int i = 0; i < response.numVersions; ++i) {
const auto& packedVersion = response.versions[i];
msg->versions.emplace_back(
packedVersion.valid,
packedVersion.componentInfo,
packedVersion.identifier,
packedVersion.dotVersion,
packedVersion.commitHash,
packedVersion.expansionSlot
);
msg->versions.emplace_back(packedVersion.valid, packedVersion.componentInfo, packedVersion.identifier, packedVersion.dotVersion, packedVersion.commitHash);
}
return msg;
}
+51 -106
View File
@@ -1,153 +1,98 @@
#include "icsneo/communication/packet/ethernetpacket.h"
#include <algorithm>
#include <cstring> // memcpy
#include <iostream>
#include <optional>
using namespace icsneo;
std::shared_ptr<EthernetMessage> HardwareEthernetPacket::DecodeToMessage(const std::vector<uint8_t>& bytestream) {
std::shared_ptr<EthernetMessage> HardwareEthernetPacket::DecodeToMessage(const std::vector<uint8_t>& bytestream, const device_eventhandler_t& report) {
const HardwareEthernetPacket* packet = (const HardwareEthernetPacket*)((const void*)bytestream.data());
const uint16_t* rawWords = (const uint16_t*)bytestream.data();
// Make sure we have enough to read the packet length first
if(bytestream.size() < sizeof(HardwareEthernetPacket))
return nullptr;
const size_t fcsSize = packet->header.FCS_AVAIL ? 4 : 0;
// Ensure Length is sufficient for FCS extraction to avoid invalid iterator arithmetic
if(packet->Length < fcsSize)
// packet->Length will also encompass the two uint16_t's at the end of the struct, make sure that at least they are here
if(packet->Length < 4)
return nullptr;
const size_t bytestreamExpectedSize = sizeof(HardwareEthernetPacket) + packet->Length;
const size_t ethernetFrameSize = packet->Length - (sizeof(uint16_t) * 2);
const size_t bytestreamExpectedSize = sizeof(HardwareEthernetPacket) + ethernetFrameSize;
const size_t bytestreamActualSize = bytestream.size();
if(bytestreamActualSize < bytestreamExpectedSize)
return nullptr;
// Check for oversized packets, noting that some devices will send an extra byte to have an even number of bytes
if(bytestreamActualSize > bytestreamExpectedSize + 1)
report(APIEvent::Type::PacketDecodingError, APIEvent::Severity::EventWarning);
auto messagePtr = std::make_shared<EthernetMessage>();
EthernetMessage& message = *messagePtr;
// Standard Ethernet fields
message.transmitted = packet->eid.TXMSG;
if(message.transmitted)
message.description = packet->stats;
message.frameTooShort = packet->header.RUNT_FRAME;
message.noPadding = !packet->header.ENABLE_PADDING;
message.fcsVerified = packet->header.FCS_VERIFIED;
message.txAborted = packet->eid.TXAborted;
message.crcError = packet->header.CRC_ERROR;
message.preemptionEnabled = packet->header.PREEMPTION_ENABLED;
if(message.preemptionEnabled)
message.preemptionFlags = (uint8_t)((rawWords[0] & 0x03F8) >> 4);
message.fcsAvailable = packet->header.FCS_AVAIL;
message.frameTooShort = packet->header.RUNT_FRAME;
if(message.frameTooShort)
message.error = true;
// This timestamp is raw off the device (in timestampResolution increments)
// Decoder will fix as it has information about the timestampResolution increments
message.timestamp = packet->timestamp.TS;
// Ethernet Frame Preemption for TSN
if(packet->header.PREEMPTION_ENABLED) {
message.preemptionFlags = static_cast<uint8_t>((rawWords[0] & 0x03F8) >> 4);
}
// Network ID is also not set, this will be fixed in the Decoder as well
// Check if this is a T1S packet and populate T1S-specific fields
if(packet->header.T1S_ETHERNET) {
auto& t1s = message.t1s.emplace();
t1s.isSymbol = packet->eid.T1S_SYMBOL;
t1s.isBurst = packet->eid.T1S_BURST;
t1s.txCollision = packet->t1s_status.TXCollision;
t1s.isWake = packet->t1s_status.T1SWake;
t1s.nodeId = packet->t1s_node.T1S_NODE_ID;
t1s.burstCount = packet->t1s_node.T1S_BURST_COUNT;
}
const std::vector<uint8_t>::const_iterator databegin = bytestream.begin() + sizeof(HardwareEthernetPacket);
const std::vector<uint8_t>::const_iterator dataend = databegin + packet->Length - fcsSize;
const std::vector<uint8_t>::const_iterator databegin = bytestream.begin() + (sizeof(HardwareEthernetPacket) - (sizeof(uint16_t) * 2));
const std::vector<uint8_t>::const_iterator dataend = databegin + ethernetFrameSize;
message.data.insert(message.data.begin(), databegin, dataend);
if(fcsSize) {
uint32_t& fcs = message.fcs.emplace();
std::copy(dataend, dataend + fcsSize, (uint8_t*)&fcs);
}
return messagePtr;
}
bool HardwareEthernetPacket::EncodeFromMessage(const EthernetMessage& message, std::vector<uint8_t>& bytestream, const device_eventhandler_t&) {
const size_t unpaddedSize = message.data.size();
if(unpaddedSize == 0)
return false;
size_t paddedSize = unpaddedSize;
uint16_t description = message.description;
if(!message.noPadding && unpaddedSize < 60)
paddedSize = 60; // Pad out short messages
size_t sizeWithHeader = paddedSize + 4; // DescriptionID and Padded Count
// Description ID Most Significant bit is used to identify preemption frames
uint16_t description = message.description;
if(description & 0x8000)
return false;
const bool preempt = message.preemptionFlags.has_value();
// full header including parent
const size_t headerByteCount = preempt ? 15 : 14;
// local header for netID, description, and flags
const size_t localHeader = preempt ? 10 : 9;
// allocate space for fcs override
const size_t fcsSize = message.fcs ? 4 : 0;
if(preempt)
if(message.preemptionEnabled) {
sizeWithHeader++; // Make space for the preemption flags
description |= 0x8000;
size_t paddedSize = unpaddedSize;
if(!message.noPadding && unpaddedSize < 60)
paddedSize = 60;
// size of full payload including optional fcs
size_t payloadSize = paddedSize + fcsSize;
// totalBufferSize is local header + ethernet payload and option fcs
const size_t totalBufferSize = localHeader + paddedSize + fcsSize;
bytestream.clear();
bytestream.reserve(totalBufferSize);
// Header size field (little endian)
bytestream.push_back(static_cast<uint8_t>(payloadSize & 0xFF));
bytestream.push_back(static_cast<uint8_t>((payloadSize >> 8) & 0xFF));
// Description (big endian)
bytestream.push_back(static_cast<uint8_t>(description >> 8));
bytestream.push_back(static_cast<uint8_t>(description));
bytestream.push_back(0x00);
bytestream.push_back(static_cast<uint8_t>(headerByteCount));
// Network ID (little endian)
uint16_t realID = static_cast<uint16_t>(message.network.getNetID());
bytestream.push_back(static_cast<uint8_t>(realID & 0xFF));
bytestream.push_back(static_cast<uint8_t>((realID >> 8) & 0xFF));
// Flags
constexpr uint8_t FLAG_PADDING = 0x01;
constexpr uint8_t FLAG_FCS = 0x04;
constexpr uint8_t FLAG_PREEMPTION = 0x08;
uint8_t flags = 0x00;
if(!message.noPadding) flags |= FLAG_PADDING;
if(message.fcs) flags |= FLAG_FCS;
if(message.preemptionFlags.has_value()) {
flags |= FLAG_PREEMPTION;
}
bytestream.reserve(sizeWithHeader + 8); // Also reserve space for the bytes we'll use later on
bytestream.resize(sizeWithHeader);
size_t index = 0;
bytestream.push_back(flags);
// Padded size, little endian
bytestream[index++] = uint8_t(paddedSize);
bytestream[index++] = uint8_t(paddedSize >> 8);
if(preempt) {
bytestream.push_back(message.preemptionFlags.value());
}
// Description ID, big endian
bytestream[index++] = uint8_t(description >> 8);
bytestream[index++] = uint8_t(description);
bytestream.insert(bytestream.end(), message.data.begin(), message.data.end());
// The header is one byte larger if preemption is enabled, shifting the data
if(message.preemptionEnabled)
bytestream[index++] = message.preemptionFlags;
// Only zero-fill when we want padding
if(!message.noPadding && unpaddedSize < 60) {
size_t paddingNeeded = 60 - unpaddedSize;
bytestream.insert(bytestream.end(), paddingNeeded, 0); // Zero-fill for padding
}
if(message.fcs) {
uint32_t fcs = message.fcs.value();
const uint8_t* fcsBytes = reinterpret_cast<const uint8_t*>(&fcs);
bytestream.insert(bytestream.end(), fcsBytes, fcsBytes + sizeof(fcs));
}
// We only copy in the unpadded size, the rest will be 0
memcpy(bytestream.data() + index, message.data.data(), unpaddedSize);
return true;
}
}
+16 -18
View File
@@ -34,12 +34,11 @@ std::shared_ptr<EthPhyMessage> HardwareEthernetPhyRegisterPacket::DecodeToMessag
phyMessage->Enabled = (pEntry->Enabled != 0u);
phyMessage->WriteEnable = (pEntry->WriteEnable != 0u);
phyMessage->Clause45Enable = (pEntry->Clause45Enable != 0u);
phyMessage->BusIndex = static_cast<uint8_t>(pEntry->BusIndex);
phyMessage->Version = static_cast<uint8_t>(pEntry->version);
phyMessage->version = static_cast<uint8_t>(pEntry->version);
if(phyMessage->Clause45Enable)
phyMessage->Clause45 = pEntry->clause45;
phyMessage->clause45 = pEntry->clause45;
else
phyMessage->Clause22 = pEntry->clause22;
phyMessage->clause22 = pEntry->clause22;
msg->messages.push_back(phyMessage);
}
}
@@ -70,35 +69,34 @@ bool HardwareEthernetPhyRegisterPacket::EncodeFromMessage(const EthPhyMessage& m
PhyRegisterPacket_t tempPacket;
tempPacket.Enabled = phyMessage->Enabled ? 0x1u : 0x0u;
tempPacket.WriteEnable = phyMessage->WriteEnable ? 0x1u : 0x0u;
tempPacket.BusIndex = (phyMessage->BusIndex & 0xF);
tempPacket.version = (phyMessage->Version & 0xF);
tempPacket.version = (phyMessage->version & 0xF);
if(phyMessage->Clause45Enable)
{
if( (FiveBits < phyMessage->Clause45.port) ||
(FiveBits < phyMessage->Clause45.device) )
if( (FiveBits < phyMessage->clause45.port) ||
(FiveBits < phyMessage->clause45.device) )
{
report(APIEvent::Type::ParameterOutOfRange, APIEvent::Severity::Error);
return false;
}
tempPacket.Clause45Enable = 0x1u;
tempPacket.clause45.port = phyMessage->Clause45.port;
tempPacket.clause45.device = phyMessage->Clause45.device;
tempPacket.clause45.regAddr = phyMessage->Clause45.regAddr;
tempPacket.clause45.regVal = phyMessage->Clause45.regVal;
tempPacket.clause45.port = phyMessage->clause45.port;
tempPacket.clause45.device = phyMessage->clause45.device;
tempPacket.clause45.regAddr = phyMessage->clause45.regAddr;
tempPacket.clause45.regVal = phyMessage->clause45.regVal;
}
else
{
if( (FiveBits < phyMessage->Clause22.phyAddr) ||
(FiveBits < phyMessage->Clause22.regAddr) )
if( (FiveBits < phyMessage->clause22.phyAddr) ||
(FiveBits < phyMessage->clause22.regAddr) )
{
report(APIEvent::Type::ParameterOutOfRange, APIEvent::Severity::Error);
return false;
}
tempPacket.Clause45Enable = 0x0u;
tempPacket.clause22.phyAddr = phyMessage->Clause22.phyAddr;
tempPacket.clause22.page = phyMessage->Clause22.page;
tempPacket.clause22.regAddr = phyMessage->Clause22.regAddr;
tempPacket.clause22.regVal = phyMessage->Clause22.regVal;
tempPacket.clause22.phyAddr = phyMessage->clause22.phyAddr;
tempPacket.clause22.page = phyMessage->clause22.page;
tempPacket.clause22.regAddr = phyMessage->clause22.regAddr;
tempPacket.clause22.regVal = phyMessage->clause22.regVal;
}
uint8_t* pktPtr = reinterpret_cast<uint8_t*>(&tempPacket);
bytestream.insert(bytestream.end(), pktPtr, pktPtr + sizeof(PhyRegisterPacket_t));
@@ -1,50 +0,0 @@
#include "icsneo/communication/packet/hardwareinfopacket.h"
#include "icsneo/communication/message/hardwareinfo.h"
#include <iostream>
using namespace icsneo;
#pragma pack(push, 1)
typedef struct
{
uint8_t valid;
struct
{
uint8_t day;
uint8_t month;
uint16_t year;
} manufactureDate;
struct
{
uint8_t major;
uint8_t minor;
} hwRev;
uint8_t deviceId;
struct
{
uint8_t major;
uint8_t minor;
} blVersion;
} HardwareInfoFrame;
#pragma pack(pop)
std::shared_ptr<HardwareInfo> HardwareInfoPacket::DecodeToMessage(const std::vector<uint8_t>& bytes) {
if(bytes.size() < (sizeof(HardwareInfoFrame) + 1)) {
return nullptr;
}
const auto* frame = reinterpret_cast<const HardwareInfoFrame*>(&bytes[1]);
auto msg = std::make_shared<HardwareInfo>();
msg->manufactureDate.day = frame->manufactureDate.day;
msg->manufactureDate.year = frame->manufactureDate.year;
msg->manufactureDate.month = frame->manufactureDate.month;
msg->hardwareRevision.major = frame->hwRev.major;
msg->hardwareRevision.minor = frame->hwRev.minor;
msg->bootloaderVersion.major = frame->blVersion.major;
msg->bootloaderVersion.minor = frame->blVersion.minor;
return msg;
}
+1 -1
View File
@@ -49,7 +49,7 @@ namespace icsneo
report(APIEvent::Type::I2CMessageExceedsMaxLength, APIEvent::Severity::Error);
return false;
}
if(message.controlBytes.empty() && message.dataBytes.empty())
if(message.controlBytes.empty() || message.dataBytes.empty())
{
//You'll need to provide a target R/W register in controlBytes
//alternatively, you're expecting to read without providing a dataBytes payload
+3 -2
View File
@@ -9,7 +9,7 @@ std::shared_ptr<Message> HardwareLINPacket::DecodeToMessage(const std::vector<ui
size_t numDataBytes = packet->CoreMiniBitsLIN.len;
size_t numHeaderBytes = sizeof(HardwareLINPacket::CoreMiniBitsLIN);
if( (sizeof(HardwareLINPacket) > bytestream.size()) ||
if( (sizeof(HardwareLINPacket) != bytestream.size()) ||
((numDataBytes + numHeaderBytes) > bytestream.size()) )
return nullptr;
@@ -17,6 +17,7 @@ std::shared_ptr<Message> HardwareLINPacket::DecodeToMessage(const std::vector<ui
--numDataBytes; //If data is present, there will be a checksum included
auto msg = std::make_shared<LINMessage>(static_cast<uint8_t>(packet->CoreMiniBitsLIN.ID));
msg->network = Network::GetNetIDFromCoreMiniNetwork(static_cast<Network::CoreMini>(packet->networkID));
msg->isEnhancedChecksum = static_cast<bool>(packet->CoreMiniBitsLIN.TxChkSumEnhanced);
/* Minimum one responder byte and one checksum byte. */
@@ -30,7 +31,7 @@ std::shared_ptr<Message> HardwareLINPacket::DecodeToMessage(const std::vector<ui
auto isChecksumInvalid = [&]() -> bool {
/* messages with no data have no checksum (e.g. header only) */
if(!msg->data.size())
return false;
return true;
uint8_t checkSum = (8 > numDataBytes) ? *(dataStart + numDataBytes) : packet->CoreMiniBitsLIN.LINByte9;
LINMessage::calcChecksum(*msg);
-27
View File
@@ -99,33 +99,6 @@ bool HardwareLiveDataPacket::EncodeFromMessage(LiveDataMessage& message, std::ve
clearMsg->cmd = static_cast<uint32_t>(message.cmd);
break;
}
case LiveDataCommand::SET_VALUE: {
auto setValMsg = reinterpret_cast<LiveDataSetValueMessage*>(&message);
const auto numArgs = setValMsg->args.size();
if(numArgs) {
payloadSize = static_cast<uint16_t>(sizeof(LiveDataSetValue) + (sizeof(LiveDataSetValueEntry) * (numArgs-1)));
bytestream.resize((payloadSize + sizeof(ExtendedCommandHeader)),0);
LiveDataSetValue* out = reinterpret_cast<LiveDataSetValue*>(bytestream.data() + sizeof(ExtendedCommandHeader));
out->version = icsneo::LiveDataUtil::LiveDataVersion;
out->cmd = static_cast<uint32_t>(setValMsg->cmd);
if(!setValMsg->handle)
setValMsg->handle = LiveDataUtil::getNewHandle();
out->handle = setValMsg->handle;
out->numSetValues = (uint32_t)numArgs;
for(size_t i = 0; i < numArgs; ++i) {
out->values[i].arg.objectType = setValMsg->args[i]->objectType;
out->values[i].arg.objectIndex = setValMsg->args[i]->objectIndex;
out->values[i].arg.signalIndex = setValMsg->args[i]->signalIndex;
out->values[i].arg.valueType = setValMsg->args[i]->valueType;
out->values[i].value.value = setValMsg->values[i]->value;
out->values[i].value.header.length = sizeof(LiveDataValue::value);
}
} else {
report(APIEvent::Type::LiveDataInvalidArgument, APIEvent::Severity::Error);
return false;
}
break;
}
default: {
report(APIEvent::Type::LiveDataInvalidCommand, APIEvent::Severity::Error);
return false;
-82
View File
@@ -1,82 +0,0 @@
#include "icsneo/communication/packet/spipacket.h"
#include "icsneo/communication/command.h"
#include <cstring>
#include <vector>
using namespace icsneo;
static size_t SPISubHeaderLength = 5u;
std::shared_ptr<Message> HardwareSPIPacket::DecodeToMessage(const std::vector<uint8_t>& bytestream) {
if(bytestream.size() < sizeof(HardwareSPIPacket)) {
return nullptr;
}
const HardwareSPIPacket* packet = (const HardwareSPIPacket*)bytestream.data();
size_t totalPackedLength = static_cast<size_t>(bytestream.size()) - sizeof(HardwareSPIPacket); // First 28 bytes are message header.
if(totalPackedLength < SPISubHeaderLength) {
return nullptr;
}
const uint8_t* bytes = bytestream.data() + sizeof(HardwareSPIPacket);
std::shared_ptr<SPIMessage> msg = std::make_shared<SPIMessage>();
msg->direction = static_cast<SPIMessage::Direction>(bytes[0]);
msg->address = *reinterpret_cast<const uint16_t*>(&bytes[1]);
msg->mms = bytes[3];
msg->stats = packet->stats;
msg->timestamp = packet->timestamp.TS;
size_t numWords = (totalPackedLength - SPISubHeaderLength) / 4;
msg->payload.reserve(numWords);
for(size_t offset = SPISubHeaderLength; offset < totalPackedLength; offset += 4) {
msg->payload.push_back(*reinterpret_cast<const uint32_t*>(bytes + offset));
}
return msg;
}
bool HardwareSPIPacket::EncodeFromMessage(const SPIMessage& message, std::vector<uint8_t>& bytestream, const device_eventhandler_t& /*report*/) {
// Payload length is everything excluding cmdHeader (note at the beginning there is an offset of 2)
uint16_t payloadLength = static_cast<uint16_t>(
2 +
sizeof(HardwareSPIPacket) +
SPISubHeaderLength +
message.payload.size() * sizeof(uint32_t)
);
if(payloadLength % 2) {
// Pad payload to even number
payloadLength++;
}
// +1 for AA, another +1 for firmware nuance
uint16_t fullSize = 1 + sizeof(ExtendedCommandHeader) + payloadLength + 1;
uint16_t unwrappedSize = sizeof(ExtendedCommandHeader) + payloadLength; // fullSize without AA and firmware nuance
bytestream.resize(unwrappedSize, 0);
uint32_t offset = 0;
auto* cmdHeader = reinterpret_cast<ExtendedCommandHeader*>(bytestream.data() + offset);
cmdHeader->netid = static_cast<uint8_t>(Network::NetID::Main51);
cmdHeader->fullLength = fullSize;
cmdHeader->command = static_cast<uint8_t>(Command::Extended);
cmdHeader->extendedCommand = static_cast<uint16_t>(ExtendedCommand::TransmitCoreminiMessage);
cmdHeader->payloadLength = payloadLength;
offset += sizeof(ExtendedCommandHeader) + 2; // Offset of 2 between header and packet
auto* packet = reinterpret_cast<HardwareSPIPacket*>(bytestream.data() + offset);
packet->header.frameLength = static_cast<uint16_t>(SPISubHeaderLength + message.payload.size() * sizeof(uint32_t));
packet->networkID = static_cast<uint16_t>(message.network.getNetID());
packet->length = packet->header.frameLength;
packet->timestamp.IsExtended = 1;
offset += sizeof(HardwareSPIPacket);
// Write the sub header details
bytestream[offset++] = static_cast<uint8_t>(message.direction);
bytestream[offset++] = static_cast<uint8_t>(message.address & 0xFF);
bytestream[offset++] = static_cast<uint8_t>((message.address >> 8) & 0xFF);
bytestream[offset++] = static_cast<uint8_t>(message.mms);
bytestream[offset++] = static_cast<uint8_t>(message.payload.size());
// Write the words
for(uint32_t word : message.payload) {
*reinterpret_cast<uint32_t*>(bytestream.data() + offset) = word;
offset += sizeof(uint32_t);
}
return true;
}
@@ -23,9 +23,6 @@ std::shared_ptr<SupportedFeaturesMessage> SupportedFeaturesPacket::DecodeToMessa
}
// Get a reference to the payload to fully validate the length
const auto& response = *reinterpret_cast<const SupportedFeaturesResponse*>(bytes.data());
if(response.cmdVersion != SupportedFeaturesCommandVersion) {
return msg;
}
// Expected size is the header, cmdVersion and numValidBits fields, plus the number of 32-bit bitfields in the response based on numValidBits
auto expectedSize = sizeof(ExtendedResponseMessage::ResponseHeader) + 4 + ((response.numValidBits + 31) / 32) * 4;
// If the response is malformed (too small), return an empty message
+7 -41
View File
@@ -31,46 +31,24 @@ std::shared_ptr<WiVI::ResponseMessage> WiVI::CommandPacket::DecodeToMessage(cons
break;
}
case WiVI::Command::GetAll: {
if(bytestream.size() < sizeof(WiVI::CommandPacket::GetAllHeader))
if(bytestream.size() < sizeof(WiVI::CommandPacket::GetAll))
return {};
const auto& getAll = *reinterpret_cast<const WiVI::CommandPacket::GetAllHeader*>(bytestream.data());
const auto& getAll = *reinterpret_cast<const WiVI::CommandPacket::GetAll*>(bytestream.data());
msg->responseTo = WiVI::Command::GetAll;
msg->info.emplace();
msg->info->sleepRequest = getAll.sleepRequest;
msg->info->connectionTimeoutMinutes = getAll.connectionTimeoutMinutes;
// Check that we have enough data for the capture infos
size_t captureInfosSize = sizeof(WiVI::CaptureInfo) * getAll.numCaptureInfos;
if(bytestream.size() < sizeof(WiVI::CommandPacket::GetAllHeader) + captureInfosSize)
if(bytestream.size() < sizeof(WiVI::CommandPacket::GetAll) + (sizeof(WiVI::CaptureInfo) * getAll.numCaptureInfos))
return {};
const WiVI::CaptureInfo* const captureInfos = (const WiVI::CaptureInfo*)(bytestream.data() + sizeof(WiVI::CommandPacket::GetAllHeader));
msg->info->captures.resize(getAll.numCaptureInfos);
for(uint16_t i = 0; i < getAll.numCaptureInfos; i++)
msg->info->captures[i] = captureInfos[i];
// New field vinAvail was added - check if it is present:
if(bytestream.size() >= sizeof(WiVI::CommandPacket::GetAllHeader) + captureInfosSize + 2) {
msg->info->vinAvailable = *(bytestream.data() + sizeof(WiVI::CommandPacket::GetAllHeader) + captureInfosSize);
} else {
msg->info->vinAvailable = 0;
}
msg->info->captures[i] = getAll.captureInfos[i];
break;
}
case WiVI::Command::GetVIN: {
if (bytestream.size() < sizeof(WiVI::CommandPacket::GetVIN))
return {};
const auto& getVIN = *reinterpret_cast<const WiVI::CommandPacket::GetVIN*>(bytestream.data());
msg->responseTo = WiVI::Command::GetVIN;
msg->vin = getVIN.VIN;
break;
}
default: // Unknown command response
return {};
}
@@ -100,9 +78,9 @@ std::vector<uint8_t> WiVI::CommandPacket::SetSignal::Encode(WiVI::SignalType typ
return ret;
}
std::vector<uint8_t> WiVI::CommandPacket::GetAllHeader::Encode() {
std::vector<uint8_t> ret(sizeof(WiVI::CommandPacket::GetAllHeader));
auto& frame = *reinterpret_cast<WiVI::CommandPacket::GetAllHeader*>(ret.data());
std::vector<uint8_t> WiVI::CommandPacket::GetAll::Encode() {
std::vector<uint8_t> ret(sizeof(WiVI::CommandPacket::GetAll));
auto& frame = *reinterpret_cast<WiVI::CommandPacket::GetAll*>(ret.data());
frame.header.cmd = WiVI::Command::GetAll;
frame.header.length = sizeof(frame) - sizeof(frame.header);
@@ -120,15 +98,3 @@ std::vector<uint8_t> WiVI::CommandPacket::ClearUploads::Encode(const std::vector
return ret;
}
std::vector<uint8_t> WiVI::CommandPacket::GetVIN::Encode()
{
std::vector<uint8_t> ret(sizeof(WiVI::CommandPacket::GetVIN));
auto& frame = *reinterpret_cast<WiVI::CommandPacket::GetVIN*>(ret.data());
frame.header.cmd = WiVI::Command::GetVIN;
frame.header.length = sizeof(frame) - sizeof(frame.header);
return ret;
}
+5 -3
View File
@@ -24,9 +24,11 @@ std::vector<uint8_t>& Packetizer::packetWrap(std::vector<uint8_t>& data, bool sh
return data;
}
bool Packetizer::input(RingBuffer& bytes) {
bool Packetizer::input(const std::vector<uint8_t>& inputBytes) {
bool haveEnoughData = true;
bytes.Copy(inputBytes);
while(haveEnoughData) {
switch(state) {
case ReadState::SearchForHeader:
@@ -150,14 +152,14 @@ bool Packetizer::input(RingBuffer& bytes) {
if(packetLength > 0)
packet.data.resize(packetLength - headerSize);
bytes.read(packet.data.data(), currentIndex, (packetLength - currentIndex));
bytes.CopyTo(packet.data.data(), currentIndex, (packetLength - currentIndex));
currentIndex = packetLength;
if(disableChecksum || !checksum || bytes[currentIndex] == ICSChecksum(packet.data)) {
// Got a good packet
gotGoodPackets = true;
processedPackets.push_back(std::make_shared<Packet>(packet));
bytes.pop(packetLength);
bytes.Erase_front(packetLength);
if(packet.network == Network::NetID::DiskData && (packetLength - headerSize) % 2 == 0) {
bytes.pop_front();
-69
View File
@@ -1,69 +0,0 @@
/*
* crc32.c
*
* Created on: Jun 22, 2020
* Author: BJones
*/
#include "icsneo/core/crc32.h"
static const unsigned long crc32_table[256] = { 0x00000000, 0x77073096, 0xEE0E612C, 0x990951BA, 0x076DC419, 0x706AF48F, 0xE963A535,
0x9E6495A3, 0x0EDB8832, 0x79DCB8A4, 0xE0D5E91E, 0x97D2D988, 0x09B64C2B, 0x7EB17CBD, 0xE7B82D07, 0x90BF1D91, 0x1DB71064, 0x6AB020F2,
0xF3B97148, 0x84BE41DE, 0x1ADAD47D, 0x6DDDE4EB, 0xF4D4B551, 0x83D385C7, 0x136C9856, 0x646BA8C0, 0xFD62F97A, 0x8A65C9EC, 0x14015C4F,
0x63066CD9, 0xFA0F3D63, 0x8D080DF5, 0x3B6E20C8, 0x4C69105E, 0xD56041E4, 0xA2677172, 0x3C03E4D1, 0x4B04D447, 0xD20D85FD, 0xA50AB56B,
0x35B5A8FA, 0x42B2986C, 0xDBBBC9D6, 0xACBCF940, 0x32D86CE3, 0x45DF5C75, 0xDCD60DCF, 0xABD13D59, 0x26D930AC, 0x51DE003A, 0xC8D75180,
0xBFD06116, 0x21B4F4B5, 0x56B3C423, 0xCFBA9599, 0xB8BDA50F, 0x2802B89E, 0x5F058808, 0xC60CD9B2, 0xB10BE924, 0x2F6F7C87, 0x58684C11,
0xC1611DAB, 0xB6662D3D, 0x76DC4190, 0x01DB7106, 0x98D220BC, 0xEFD5102A, 0x71B18589, 0x06B6B51F, 0x9FBFE4A5, 0xE8B8D433, 0x7807C9A2,
0x0F00F934, 0x9609A88E, 0xE10E9818, 0x7F6A0DBB, 0x086D3D2D, 0x91646C97, 0xE6635C01, 0x6B6B51F4, 0x1C6C6162, 0x856530D8, 0xF262004E,
0x6C0695ED, 0x1B01A57B, 0x8208F4C1, 0xF50FC457, 0x65B0D9C6, 0x12B7E950, 0x8BBEB8EA, 0xFCB9887C, 0x62DD1DDF, 0x15DA2D49, 0x8CD37CF3,
0xFBD44C65, 0x4DB26158, 0x3AB551CE, 0xA3BC0074, 0xD4BB30E2, 0x4ADFA541, 0x3DD895D7, 0xA4D1C46D, 0xD3D6F4FB, 0x4369E96A, 0x346ED9FC,
0xAD678846, 0xDA60B8D0, 0x44042D73, 0x33031DE5, 0xAA0A4C5F, 0xDD0D7CC9, 0x5005713C, 0x270241AA, 0xBE0B1010, 0xC90C2086, 0x5768B525,
0x206F85B3, 0xB966D409, 0xCE61E49F, 0x5EDEF90E, 0x29D9C998, 0xB0D09822, 0xC7D7A8B4, 0x59B33D17, 0x2EB40D81, 0xB7BD5C3B, 0xC0BA6CAD,
0xEDB88320, 0x9ABFB3B6, 0x03B6E20C, 0x74B1D29A, 0xEAD54739, 0x9DD277AF, 0x04DB2615, 0x73DC1683, 0xE3630B12, 0x94643B84, 0x0D6D6A3E,
0x7A6A5AA8, 0xE40ECF0B, 0x9309FF9D, 0x0A00AE27, 0x7D079EB1, 0xF00F9344, 0x8708A3D2, 0x1E01F268, 0x6906C2FE, 0xF762575D, 0x806567CB,
0x196C3671, 0x6E6B06E7, 0xFED41B76, 0x89D32BE0, 0x10DA7A5A, 0x67DD4ACC, 0xF9B9DF6F, 0x8EBEEFF9, 0x17B7BE43, 0x60B08ED5, 0xD6D6A3E8,
0xA1D1937E, 0x38D8C2C4, 0x4FDFF252, 0xD1BB67F1, 0xA6BC5767, 0x3FB506DD, 0x48B2364B, 0xD80D2BDA, 0xAF0A1B4C, 0x36034AF6, 0x41047A60,
0xDF60EFC3, 0xA867DF55, 0x316E8EEF, 0x4669BE79, 0xCB61B38C, 0xBC66831A, 0x256FD2A0, 0x5268E236, 0xCC0C7795, 0xBB0B4703, 0x220216B9,
0x5505262F, 0xC5BA3BBE, 0xB2BD0B28, 0x2BB45A92, 0x5CB36A04, 0xC2D7FFA7, 0xB5D0CF31, 0x2CD99E8B, 0x5BDEAE1D, 0x9B64C2B0, 0xEC63F226,
0x756AA39C, 0x026D930A, 0x9C0906A9, 0xEB0E363F, 0x72076785, 0x05005713, 0x95BF4A82, 0xE2B87A14, 0x7BB12BAE, 0x0CB61B38, 0x92D28E9B,
0xE5D5BE0D, 0x7CDCEFB7, 0x0BDBDF21, 0x86D3D2D4, 0xF1D4E242, 0x68DDB3F8, 0x1FDA836E, 0x81BE16CD, 0xF6B9265B, 0x6FB077E1, 0x18B74777,
0x88085AE6, 0xFF0F6A70, 0x66063BCA, 0x11010B5C, 0x8F659EFF, 0xF862AE69, 0x616BFFD3, 0x166CCF45, 0xA00AE278, 0xD70DD2EE, 0x4E048354,
0x3903B3C2, 0xA7672661, 0xD06016F7, 0x4969474D, 0x3E6E77DB, 0xAED16A4A, 0xD9D65ADC, 0x40DF0B66, 0x37D83BF0, 0xA9BCAE53, 0xDEBB9EC5,
0x47B2CF7F, 0x30B5FFE9, 0xBDBDF21C, 0xCABAC28A, 0x53B39330, 0x24B4A3A6, 0xBAD03605, 0xCDD70693, 0x54DE5729, 0x23D967BF, 0xB3667A2E,
0xC4614AB8, 0x5D681B02, 0x2A6F2B94, 0xB40BBE37, 0xC30C8EA1, 0x5A05DF1B, 0x2D02EF8D };
uint32_t icsneo::crc32(uint32_t crc, const unsigned char* buf, uint32_t len)
{
unsigned char octet;
const unsigned char* p = buf;
crc = ~crc;
while (len--)
{
octet = *p++; /* Cast to unsigned octet. */
crc = (crc >> 8) ^ crc32_table[(crc & 0xff) ^ octet];
}
return ~crc;
}
static unsigned char rev_crc32_table[256];
static void revgen(void)
{
uint16_t k;
for (k = 0; k < 256; k++)
rev_crc32_table[crc32_table[k] >> 24] = (unsigned char)k;
}
uint32_t icsneo::revcrc32(uint32_t crc, const unsigned char* buf, uint32_t len)
{
unsigned char k;
revgen();
crc = ~crc;
while (len--)
{
k = rev_crc32_table[crc >> 24];
crc = ((crc ^ crc32_table[k]) << 8) | (k ^ buf[len]);
}
return ~crc;
}

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