83 Commits
Author SHA1 Message Date
David RebbeandKyle Schwarz bb892bfd9b Bindings: Python: Support multi-config generators for stubgen 2026-09-17 11:27:23 -04:00
William SkellengerandKyle Schwarz 8801e949da CI: Enable interruptible 2026-09-15 17:37:51 -04:00
Samuel BejkoandKyle Schwarz d95a17b360 LIN: Add wakeup request 2026-09-14 17:13:23 -04:00
Kurt WachowskiandKyle Schwarz 3a6501d116 Device: Add ISO-15765 hardware acceleration 2026-09-10 20:52:01 -04:00
Bryant JonesandKyle Schwarz 34875129ee Gigastar: Add FLEXRAY_01 network 2026-09-10 14:18:24 -04:00
Jonathan SchwartzandKyle Schwarz 236c6ad089 Device: Add manufacturing config message 2026-09-10 12:56:55 -04:00
Max Brombach cf58f819cb Platform: Darwin: Replace deprecate kIOMasterPortDefault with kIOMainPortDefault 2026-08-27 18:33:01 +00:00
Kyle Schwarz 07e4eca14a Heartbeat: Include DeviceStatus 2026-08-17 15:34:16 -04:00
Max BrombachandKyle Schwarz 936566170f Communication: Add GenericAPIDataMessage and GenericAPIStatusMessage types 2026-08-17 10:30:35 -04:00
Kyle Schwarz 3aaacb6cc8 Device: Refactor heartbeat 2026-08-06 13:21:35 -04:00
Max BrombachandKyle Schwarz 1dda9f5412 Device: Add sendSPIPortKeyOperation() 2026-08-04 15:42:21 -04:00
Max Brombach 78c2e3ff89 Device: RAD-wBMS: Fix missing include for disk driver 2026-08-04 18:06:01 +00:00
Kyle Schwarz afedd4bb1f Servd: Add pushRx error 2026-07-29 17:44:58 -04:00
Kyle Schwarz 9b01e488da Build: Resolve warnings 2026-07-24 13:09:29 -04:00
David RebbeandKyle Schwarz 77a886bbe0 C2: Validate MAC network IDs 2026-07-21 13:30:21 -04:00
David RebbeandKyle Schwarz aff547b738 C2: Report copied buffer lengths 2026-07-21 13:07:06 -04:00
Max BrombachandKyle Schwarz 7a5c8c2879 Device: RAD-wBMS: Add class, chips, and bootloader information 2026-07-20 13:01:56 -04:00
Thomas StoddardandKyle Schwarz 0dd8dbfb64 Communication: Command: Add Main51 errors 2026-07-07 21:47:52 -04:00
David RebbeandKyle Schwarz d708f8081a C2: Add termination group support 2026-07-07 21:25:23 -04:00
David RebbeandKyle Schwarz 743246e813 Legacy: Update icsnVC40.h to Vehicle Spy 3.26.3.9 2026-07-07 20:51:37 -04:00
Max BrombachandKyle Schwarz 4ed29b4a5e Device: Add Failed enum value to Device::OpenStatusType enum 2026-06-29 16:13:39 -04:00
Jonathan SchwartzandKyle Schwarz 55d69246b0 Device: FIRE3: Add EnterBootloader phase 2026-06-29 12:19:02 -04:00
David RebbeandKyle Schwarz 19232def41 C2: Add icsneoc2_device_force_disk_config_update 2026-06-29 09:55:18 -04:00
David RebbeandKyle Schwarz 9d91524dc0 C2: Add EthernetStatusMessage 2026-06-29 09:08:51 -04:00
David RebbeandKyle Schwarz d86e3164af C2: Add AppError support 2026-06-26 17:32:43 -04:00
David RebbeandKyle Schwarz 3d99898598 FIRE3: Fix termination groups 2026-06-25 16:59:09 -04:00
David RebbeandKyle Schwarz 4b9cf1a37f Device: RAD: Add reboot support 2026-06-25 14:06:43 -04:00
David RebbeandKyle Schwarz 40d83f3b7c C2: Add device_product_name_get() 2026-06-24 16:58:28 -04:00
David RebbeandKyle Schwarz 60918c4b6d C2: Add PerfTest setting 2026-06-24 15:16:51 -04:00
Bryant JonesandKyle Schwarz 749552e443 Device: Fix coremini loading
For:
- RADA2B
- RADComet2
- RADComet3
- RADGalaxy2
- RADMoonT1S
- RADStar2
2026-06-24 13:28:12 -04:00
David RebbeandKyle Schwarz 8af6d5f2a8 FIRE3: Add reboot support 2026-06-19 17:58:49 -04:00
David RebbeandKyle Schwarz 54fb89b675 Settings: Add Linux options 2026-06-19 17:12:42 -04:00
Thomas StoddardandKyle Schwarz 299766403f Settings: Add GPTP 2026-06-18 22:23:13 -04:00
Max Brombach 2d0b0c63ed Device: RAD-Star 2: Add bootloader pipeline and chip info 2026-06-18 15:30:21 +00:00
Bryant JonesandKyle Schwarz 30606be7a8 Settings: Add PerfTest 2026-06-18 11:12:13 -04:00
Kyle Schwarz 4dd97f734a Servd: Disable signal on send failure 2026-06-18 10:21:35 -04:00
Bryant JonesandKyle Schwarz 44d0e3de64 Gigastar2: Fix loading coremini 2026-06-10 18:08:02 -04:00
Kyle Schwarz 023f5aa089 Bindings: Python: Add AppError 2026-06-10 16:59:43 -04:00
Kyle Schwarz bb711ae7e2 Event: Store device as weak pointer 2026-06-02 17:19:23 -04:00
Kyle Schwarz 476b5ff35c FIRE3: Add MDIO_01 network 2026-06-02 13:19:56 -04:00
Jonathan SchwartzandKyle Schwarz 99792a0ee1 Communication: Increase max packet length 2026-06-02 11:10:16 -04:00
Max BrombachandKyle Schwarz d42c51d772 EventManager: Fix Event Manager being accessed after static destruction 2026-05-22 15:56:02 -04:00
Thomas StoddardandKyle Schwarz 3ab06199c3 Device: Add ExtendedCommand::GetAllMACAddresses 2026-05-22 11:40:44 -04:00
Max BrombachandKyle Schwarz 49e578a657 Device: RAD-Comet and RAD-Comet 2: Replace all references to RAD-Comet with RAD-Comet2 2026-05-19 13:17:12 -04:00
Kyle Schwarz 0bf279c7b9 Build: Add WORKING_DIRECTORY to git commands 2026-05-15 14:55:17 -04:00
Kyle Schwarz 9de0cf688c Build: Parse CMake version from git 2026-05-14 23:16:20 -04:00
David RebbeandKyle Schwarz eded388b83 C2: Add message timestamp support 2026-05-14 22:16:41 -04:00
Kyle Schwarz 00b7b4a6de CI: Set ICSPB_BOOTSTRAP_DIR 2026-05-14 21:29:24 -04:00
Thomas StoddardandKyle Schwarz 0ecb360195 RADComet1: Deprecate and replace with RADComet2 2026-05-14 20:20:46 -04:00
David RebbeandKyle Schwarz b3bb033ecb C2: Add Supported Device Types" 2026-05-14 19:08:11 -04:00
David RebbeandKyle Schwarz c3762bbf22 C2: Add ChipVersions
Also fixes some formatting issues.
2026-05-14 13:39:39 -04:00
Thomas StoddardandKyle Schwarz e926e10dc5 RADGigastar2: Add to MACsecConfig 2026-05-14 11:29:54 -04:00
Thomas StoddardandKyle Schwarz 5620c98eda Examples: Add more error reporting 2026-05-13 17:03:01 -04:00
Thomas StoddardandKyle Schwarz c466d75dae All: neoVI Explorer -> ICS Device Manager 2026-05-13 15:45:28 -04:00
Thomas StoddardandKyle Schwarz d7fc7ffa47 RADGigastar2 & RADGalaxy2: Add PhyEnableFor support 2026-05-12 18:38:32 -04:00
Kyle Schwarz 70ad76771e Servd: Clean up unused parseError 2026-05-12 16:57:04 -04:00
Kyle Schwarz 87c10410e8 Servd: Remove no devices found event 2026-05-12 15:58:11 -04:00
Thomas StoddardandKyle Schwarz 7cca96dcfb All: Switch to Servd default on
See README for details on how to install Servd.
2026-05-08 13:28:49 -04:00
Kyle Schwarz d45b72ef68 Settings: Increase response timeouts 2026-05-07 09:05:57 -04:00
Thomas StoddardandKyle Schwarz da02927da7 APIEvent: Add missing types 2026-05-06 16:57:00 -04:00
Thomas StoddardandKyle Schwarz b5a6f6ace6 Core: MACsec: Validate AN range and enable slots during addition 2026-05-06 13:47:25 -04:00
David RebbeandKyle Schwarz 0d2bbed7d5 C2: Add TC10 APIs 2026-05-06 11:04:44 -04:00
Kyle Schwarz a68b64c641 Device: Refactor supportsNetworkMutex 2026-05-05 20:35:51 -04:00
David RebbeandKyle Schwarz 9abd9389f4 Docs: Add Linux pcap info 2026-05-05 20:34:23 -04:00
David RebbeandKyle Schwarz d682627b40 CI: Fedora 44 & Ubuntu 26.04 2026-05-05 16:11:48 -04:00
David RebbeandKyle Schwarz 9ae3e115fc C2: Add Ethernet message support 2026-04-30 15:28:40 -04:00
Kyle Schwarz 87f45e060e Device: RADGalaxy2: Adjust bootloader pipeline 2026-04-28 15:37:17 -04:00
Thomas StoddardandKyle Schwarz 0cb30cfc5b Bindings: icsneopy: Add install instructions 2026-04-28 15:26:02 -04:00
Max BrombachandKyle Schwarz 79ff19015a Device: RAD-Gigastar 1 & 2: Add SFP flashing to bootloader pipelines 2026-04-24 16:12:45 -04:00
David RebbeandKyle Schwarz 9c4323987f C2: CAN error message support 2026-04-17 11:39:38 -04:00
David RebbeandKyle Schwarz f5f6d0828b C2: Add LIN message support 2026-04-15 15:50:33 -04:00
David RebbeandKyle Schwarz 6dc005fcea C2: Add PCBSN and MAC Address support 2026-04-14 13:37:27 -04:00
David RebbeandKyle Schwarz 5b553b63d3 C2: Add icsneoc2_device_reconnect 2026-04-08 16:19:31 -04:00
Michael BowersandKyle Schwarz 97a6b4a04f Device: RADGalaxy2: Remove EnterApplicationPhase 2026-04-06 10:57:09 -04:00
Thomas StoddardandKyle Schwarz 67929a19bc Example: Fix type casting for MSVC warnings 2026-04-06 10:17:16 -04:00
Thomas StoddardandKyle Schwarz e7c2c07947 Bindings: Python: Update to pybind11 3.0.3 2026-04-03 16:16:27 -04:00
Thomas StoddardandKyle Schwarz 146ddaf23c Device: Add T1S extended settings 2026-04-03 12:14:17 -04:00
Thomas StoddardandKyle Schwarz 6f2ad54adc Device: Add get_pcb_serial() & get_mac_address() 2026-04-02 15:45:58 -04:00
Max Brombach 87e2a65b71 Device: VividCAN: Add bootloader pipeline and chips 2026-03-30 10:43:41 -04:00
Thomas StoddardandKyle Schwarz 26e8a2c3d9 Device: FIRE3: Add BASE-T settings 2026-03-26 13:56:12 -04:00
David RebbeandKyle Schwarz 0ef26fec63 C2: Fix preprocessor defines for libclang parsing 2026-03-25 09:28:56 -04:00
Thomas StoddardandKyle Schwarz 682299cb8c API: Add icsneoc2 2026-03-24 21:08:40 -04:00
Yaroslav StetsykandKyle Schwarz 294e707924 Device: NeoVIFIRE3T1SLIN: Add bootloader details 2026-03-20 15:54:23 -04:00
251 changed files with 26883 additions and 3003 deletions
+60 -75
View File
@@ -1,3 +1,6 @@
default:
interruptible: true
variables:
DEBIAN_FRONTEND: noninteractive
LIBICSNEO_ICSPB_REPO: https://gitlab-ci-token:${CI_JOB_TOKEN}@${LIBICSNEO_ICSPB_GIT}
@@ -35,30 +38,6 @@ unit_test windows/x64:
- libicsneo-win-x64
timeout: 5m
build windows/x86:
stage: build
script:
- cmd /C ci\build-windows32.bat
artifacts:
when: always
paths:
- build
expire_in: 3 days
tags:
- libicsneo-win-x64
unit_test windows/x86:
stage: unit_test
script:
- build\libicsneo-unit-tests.exe
dependencies:
- build windows/x86
needs:
- build windows/x86
tags:
- libicsneo-win-x64
timeout: 5m
#-------------------------------------------------------------------------------
# Ubuntu
#-------------------------------------------------------------------------------
@@ -119,30 +98,6 @@ unit_test windows/x86:
- linux-build
timeout: 5m
build linux/ubuntu/2204/amd64/gcc:
<<: *build_linux_ubuntu_gcc
image: ubuntu:22.04
unit_test linux/ubuntu/2204/amd64/gcc:
<<: *test_linux_ubuntu_gcc
image: ubuntu:22.04
dependencies:
- build linux/ubuntu/2204/amd64/gcc
needs:
- build linux/ubuntu/2204/amd64/gcc
build linux/ubuntu/2204/amd64/clang:
<<: *build_linux_ubuntu_clang
image: ubuntu:22.04
unit_test linux/ubuntu/2204/amd64/clang:
<<: *test_linux_ubuntu_clang
image: ubuntu:22.04
dependencies:
- build linux/ubuntu/2204/amd64/clang
needs:
- build linux/ubuntu/2204/amd64/clang
build linux/ubuntu/2404/amd64/gcc:
<<: *build_linux_ubuntu_gcc
image: ubuntu:24.04
@@ -167,6 +122,30 @@ unit_test linux/ubuntu/2404/amd64/clang:
needs:
- build linux/ubuntu/2404/amd64/clang
build linux/ubuntu/2604/amd64/gcc:
<<: *build_linux_ubuntu_gcc
image: ubuntu:26.04
unit_test linux/ubuntu/2604/amd64/gcc:
<<: *test_linux_ubuntu_gcc
image: ubuntu:26.04
dependencies:
- build linux/ubuntu/2604/amd64/gcc
needs:
- build linux/ubuntu/2604/amd64/gcc
build linux/ubuntu/2604/amd64/clang:
<<: *build_linux_ubuntu_clang
image: ubuntu:26.04
unit_test linux/ubuntu/2604/amd64/clang:
<<: *test_linux_ubuntu_clang
image: ubuntu:26.04
dependencies:
- build linux/ubuntu/2604/amd64/clang
needs:
- build linux/ubuntu/2604/amd64/clang
#-------------------------------------------------------------------------------
# Fedora
#-------------------------------------------------------------------------------
@@ -243,30 +222,6 @@ unit_test linux/ubuntu/2404/amd64/clang:
- linux-build
timeout: 5m
build linux/fedora/42/amd64/gcc:
<<: *build_linux_fedora_gcc
image: fedora:42
unit_test linux/fedora/42/amd64/gcc:
<<: *test_linux_fedora_gcc
image: fedora:42
dependencies:
- build linux/fedora/42/amd64/gcc
needs:
- build linux/fedora/42/amd64/gcc
build linux/fedora/42/amd64/clang:
<<: *build_linux_fedora_clang
image: fedora:42
unit_test linux/fedora/42/amd64/clang:
<<: *test_linux_fedora_clang
image: fedora:42
dependencies:
- build linux/fedora/42/amd64/clang
needs:
- build linux/fedora/42/amd64/clang
build linux/fedora/43/amd64/gcc:
<<: *build_linux_fedora_gcc
image: fedora:43
@@ -291,6 +246,30 @@ unit_test linux/fedora/43/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
#-------------------------------------------------------------------------------
@@ -303,7 +282,8 @@ build python/linux/amd64:
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
CIBW_ENVIRONMENT: PCAP_ROOT=/project/libpcap/install
SKBUILD_CMAKE_DEFINE: ICSPB_BOOTSTRAP_DIR=/project/icspb
script:
- sh ci/build-wheel-posix.sh
artifacts:
@@ -318,7 +298,8 @@ build python/linux/arm64:
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
CIBW_ENVIRONMENT: PCAP_ROOT=/project/libpcap/install
SKBUILD_CMAKE_DEFINE: ICSPB_BOOTSTRAP_DIR=/project/icspb
script:
- sh ci/build-wheel-posix.sh
artifacts:
@@ -332,7 +313,8 @@ build python/macos:
variables:
CIBW_BEFORE_ALL: sh ci/bootstrap-libpcap.sh
CIBW_ARCHS: arm64
CIBW_ENVIRONMENT: CMAKE_PREFIX_PATH=$CI_PROJECT_DIR/libpcap/install
CIBW_ENVIRONMENT: PCAP_ROOT=$CI_PROJECT_DIR/libpcap/install
SKBUILD_CMAKE_DEFINE: ICSPB_BOOTSTRAP_DIR=$CI_PROJECT_DIR/icspb
MACOSX_DEPLOYMENT_TARGET: 10.14
script:
- sh ci/build-wheel-posix.sh
@@ -347,6 +329,7 @@ build python/windows:
variables:
CIBW_ARCHS: AMD64
CIBW_ENVIRONMENT: CMAKE_GENERATOR=Ninja
SKBUILD_CMAKE_DEFINE: ICSPB_BOOTSTRAP_DIR=$CI_PROJECT_DIR/icspb
script:
- cmd /c ci\build-wheel-windows.bat
artifacts:
@@ -355,6 +338,7 @@ build python/windows:
deploy python/pypi:
stage: deploy
interruptible: false
variables:
TWINE_USERNAME: __token__
TWINE_PASSWORD: $PYPI_TOKEN
@@ -379,6 +363,7 @@ deploy python/pypi:
push github:
stage: deploy
interruptible: false
tags:
- linux-build
image: alpine:latest
+92 -7
View File
@@ -1,5 +1,43 @@
cmake_minimum_required(VERSION 3.16)
project(libicsneo VERSION 1.0.0)
function(git_tag_version VERSION_RESULT)
set(${VERSION_RESULT} "0.0.0.0" PARENT_SCOPE)
find_package(Git)
if(NOT Git_FOUND)
return()
endif()
execute_process(
COMMAND ${GIT_EXECUTABLE} describe --tags --abbrev=0
WORKING_DIRECTORY ${CMAKE_CURRENT_SOURCE_DIR}
OUTPUT_VARIABLE LAST_TAG
RESULT_VARIABLE RESULT
ERROR_QUIET
OUTPUT_STRIP_TRAILING_WHITESPACE
)
if(NOT RESULT EQUAL 0)
return()
endif()
execute_process(
COMMAND ${GIT_EXECUTABLE} rev-list ${LAST_TAG}..HEAD --count
WORKING_DIRECTORY ${CMAKE_CURRENT_SOURCE_DIR}
OUTPUT_VARIABLE COMMIT_COUNT_SINCE_TAG
RESULT_VARIABLE RESULT
ERROR_QUIET
OUTPUT_STRIP_TRAILING_WHITESPACE
)
if(NOT RESULT EQUAL 0)
return()
endif()
set(${VERSION_RESULT} "${LAST_TAG}.${COMMIT_COUNT_SINCE_TAG}" PARENT_SCOPE)
endfunction()
git_tag_version(LIBICSNEO_VERSION)
if(LIBICSNEO_VERSION STREQUAL "0.0.0.0")
message(WARNING "Unable to parse version from git history")
endif()
project(libicsneo VERSION ${LIBICSNEO_VERSION})
cmake_policy(SET CMP0074 NEW)
if(POLICY CMP0135)
@@ -11,6 +49,8 @@ option(LIBICSNEO_BUILD_DOCS "Build documentation. Don't use in Visual Studio." O
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")
@@ -42,7 +82,7 @@ if(MSVC)
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(LIBICSNEO_COMPILER_WARNINGS -Wall -Wno-unknown-pragmas)
endif()
find_package(Threads REQUIRED)
@@ -170,10 +210,6 @@ 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})
@@ -194,10 +230,18 @@ set(SRC_FILES
communication/message/logdatamessage.cpp
communication/message/tc10statusmessage.cpp
communication/message/gptpstatusmessage.cpp
communication/message/allmacaddressesmessage.cpp
communication/message/ethernetstatusmessage.cpp
communication/message/networkmutexmessage.cpp
communication/message/clientidmessage.cpp
communication/message/mfgconfigmessage.cpp
communication/message/transmitmessage.cpp
communication/message/spiportkeymessage.cpp
communication/message/genericapidatamessage.cpp
communication/message/genericapistatusmessage.cpp
communication/message/iso15765message.cpp
communication/packet/flexraypacket.cpp
communication/packet/canpacket.cpp
communication/packet/a2bpacket.cpp
@@ -289,6 +333,7 @@ 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})
@@ -307,6 +352,7 @@ add_library(icsneocpp
api/icsneocpp/icsneocpp.cpp
api/icsneocpp/event.cpp
api/icsneocpp/eventmanager.cpp
api/icsneocpp/heartbeat.cpp
api/icsneocpp/version.cpp
${SRC_FILES}
)
@@ -426,6 +472,38 @@ if(LIBICSNEO_BUILD_ICSNEOC_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)
add_library(icsneolegacy SHARED
api/icsneolegacy/icsneolegacy.cpp
@@ -467,6 +545,10 @@ endif()
add_subdirectory(bindings)
if(LIBICSNEO_BUILD_EXAMPLES)
add_subdirectory(examples)
endif()
# googletest
if(LIBICSNEO_BUILD_UNIT_TESTS)
include(FetchContent)
@@ -475,6 +557,7 @@ if(LIBICSNEO_BUILD_UNIT_TESTS)
GIT_TAG 6986c2b575f77135401a4e1c65a7a42f20e18fef
)
FetchContent_MakeAvailable(googletest)
include(GoogleTest)
add_executable(libicsneo-unit-tests
test/unit/main.cpp
@@ -489,6 +572,7 @@ if(LIBICSNEO_BUILD_UNIT_TESTS)
test/unit/livedataencoderdecodertest.cpp
test/unit/ringbuffertest.cpp
test/unit/apperrordecodertest.cpp
test/unit/icsneoc2.cpp
test/unit/windowsstrings.cpp
test/unit/periodictest.cpp
)
@@ -497,12 +581,13 @@ if(LIBICSNEO_BUILD_UNIT_TESTS)
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})
enable_testing()
add_test(NAME libicsneo-unit-test-suite COMMAND libicsneo-unit-tests)
gtest_discover_tests(libicsneo-unit-tests TEST_PREFIX "unit/" PROPERTIES LABELS "unit")
endif()
set(CPACK_PROJECT_NAME ${PROJECT_NAME})
+11 -2
View File
@@ -4,11 +4,20 @@ 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.
## Installation
libicsneo relies on Servd, IntrepidCS's device communication server.
Servd can be installed for all platforms from https://cdn.intrepidcs.net/servd/.
Instructions for installing each API can be found in its respective documentation.
## Documentation
- [C++](https://libicsneo.readthedocs.io/en/latest/icsneocpp/)
- [Python](https://libicsneo.readthedocs.io/en/latest/icsneopy/)
- [C](https://libicsneo.readthedocs.io/en/latest/icsneoc/)
- [C](https://libicsneo.readthedocs.io/en/latest/icsneoc/) (deprecated, use C2)
- [C2](https://libicsneo.readthedocs.io/en/latest/icsneoc2/)
## Hardware Support
@@ -36,7 +45,7 @@ each of the respective APIs.
- RAD-Pluto
- RAD-Star 2
- RAD-SuperMoon
- RADComet
- RAD-wBMS
- ValueCAN 3
- ValueCAN 4
File diff suppressed because it is too large Load Diff
+74
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@@ -0,0 +1,74 @@
// 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_supported_device_t {
DeviceType device_type;
icsneoc2_supported_device_t* next;
} icsneoc2_supported_device_t;
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;
typedef struct icsneoc2_chip_versions_t {
VersionReport version_report;
icsneoc2_chip_versions_t* next;
} icsneoc2_chip_versions_t;
typedef struct icsneoc2_termination_group_t {
std::vector<icsneoc2_netid_t> netids;
icsneoc2_termination_group_t* next;
} icsneoc2_termination_group_t;
typedef struct icsneoc2_mac_addr_entry_t {
uint16_t network_id;
uint8_t address[ICSNEO_MAC_ADDRESS_LEN];
icsneoc2_mac_addr_entry_t* next;
} icsneoc2_mac_addr_entry_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);
+711
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@@ -0,0 +1,711 @@
#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/apperrormessage.h"
#include "icsneo/communication/message/linmessage.h"
#include "icsneo/communication/message/ethernetmessage.h"
#include "icsneo/communication/message/ethernetstatusmessage.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_timestamp_set(icsneoc2_message_t* message, uint64_t timestamp) {
if(!message) {
return icsneoc2_error_invalid_parameters;
}
if(!message->message) {
return icsneoc2_error_invalid_message;
}
message->message->timestamp = timestamp;
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_message_timestamp_get(icsneoc2_message_t* message, uint64_t* timestamp) {
if(!message || !timestamp) {
return icsneoc2_error_invalid_parameters;
}
if(!message->message) {
return icsneoc2_error_invalid_message;
}
*timestamp = message->message->timestamp;
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_app_error(icsneoc2_message_t* message, bool* is_app_error) {
if(!message || !is_app_error) {
return icsneoc2_error_invalid_parameters;
}
*is_app_error = std::dynamic_pointer_cast<AppErrorMessage>(message->message) != nullptr;
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_message_app_error_props_get(icsneoc2_message_t* message,
icsneoc2_app_error_type_t* error_type, icsneoc2_netid_t* error_netid) {
if(!message) {
return icsneoc2_error_invalid_parameters;
}
auto app_err = std::dynamic_pointer_cast<AppErrorMessage>(message->message);
if(!app_err) {
return icsneoc2_error_invalid_type;
}
if(error_type) {
*error_type = static_cast<icsneoc2_app_error_type_t>(app_err->getAppErrorType());
}
if(error_netid) {
*error_netid = static_cast<icsneoc2_netid_t>(app_err->errorNetID);
}
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_message_app_error_string_get(icsneoc2_message_t* message,
char* value, size_t* value_length) {
if(!message || !value_length) {
return icsneoc2_error_invalid_parameters;
}
auto app_err = std::dynamic_pointer_cast<AppErrorMessage>(message->message);
if(!app_err) {
return icsneoc2_error_invalid_type;
}
return safe_str_copy(value, value_length, app_err->getAppErrorString()) ? icsneoc2_error_success : icsneoc2_error_string_copy_failed;
}
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;
if(lin_msg->statusFlags.WakeupRequest) *status_flags |= ICSNEOC2_LIN_STATUS_WAKEUP_REQUEST;
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 || !is_ethernet) {
return icsneoc2_error_invalid_parameters;
}
*is_ethernet = std::dynamic_pointer_cast<EthernetMessage>(message->message) != nullptr;
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_message_is_ethernet_status(icsneoc2_message_t* message, bool* is_ethernet_status) {
if(!message || !is_ethernet_status) {
return icsneoc2_error_invalid_parameters;
}
*is_ethernet_status = std::dynamic_pointer_cast<EthernetStatusMessage>(message->message) != nullptr;
return icsneoc2_error_success;
}
icsneoc2_error_t icsneoc2_message_eth_status_props_get(icsneoc2_message_t* message, bool* link_state, bool* duplex, icsneoc2_link_speed_t* link_speed, icsneoc2_link_mode_t* link_mode) {
if(!message) {
return icsneoc2_error_invalid_parameters;
}
auto msg = std::dynamic_pointer_cast<EthernetStatusMessage>(message->message);
if(!msg) {
return icsneoc2_error_invalid_type;
}
if(link_state) {
*link_state = msg->state;
}
if(duplex) {
*duplex = msg->duplex;
}
if(link_speed) {
*link_speed = static_cast<icsneoc2_link_speed_t>(msg->speed);
}
if(link_mode) {
*link_mode = static_cast<icsneoc2_link_mode_t>(msg->mode);
}
return icsneoc2_error_success;
}
File diff suppressed because it is too large Load Diff
+51
View File
@@ -0,0 +1,51 @@
#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
+85 -35
View File
@@ -4,10 +4,10 @@
using namespace icsneo;
APIEvent::APIEvent(Type type, APIEvent::Severity severity, const Device* device) : eventStruct({}) {
this->device = device;
if(device) {
serial = device->getSerial();
APIEvent::APIEvent(Type type, APIEvent::Severity severity, std::weak_ptr<Device> device) : eventStruct({}), device(device) {
auto shared = device.lock();
if(shared) {
serial = shared->getSerial();
eventStruct.serial[serial.copy(eventStruct.serial, sizeof(eventStruct.serial))] = '\0';
}
@@ -22,37 +22,15 @@ 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;
}
bool APIEvent::isForDevice(std::string filterSerial) const noexcept {
if(!device || filterSerial.length() == 0)
auto shared = device.lock();
if(!shared || filterSerial.length() == 0)
return false;
return device->getSerial() == filterSerial;
return shared->getSerial() == filterSerial;
}
// API Errors
@@ -86,8 +64,8 @@ static constexpr const char* NO_SERIAL_NUMBER_12V = "Communication could not be
static constexpr const char* NO_SERIAL_NUMBER = "Communication could not be established with the device. Perhaps it is not powered or requires a firmware update using Vehicle Spy.";
static constexpr const char* INCORRECT_SERIAL_NUMBER = "The device did not return the expected serial number!";
static constexpr const char* SETTINGS_READ = "The device settings could not be read.";
static constexpr const char* SETTINGS_VERSION = "The settings version is incorrect, please update your firmware with neoVI Explorer.";
static constexpr const char* SETTINGS_LENGTH = "The settings length is incorrect, please update your firmware with neoVI Explorer.";
static constexpr const char* SETTINGS_VERSION = "The settings version is incorrect, please update your firmware with ICS Device Manager.";
static constexpr const char* SETTINGS_LENGTH = "The settings length is incorrect, please update your firmware with ICS Device Manager.";
static constexpr const char* SETTINGS_CHECKSUM = "The settings checksum is incorrect, attempting to set defaults may remedy this issue.";
static constexpr const char* SETTINGS_NOT_AVAILABLE = "Settings are not available for this device.";
static constexpr const char* SETTINGS_READONLY = "Settings are read-only for this device.";
@@ -118,18 +96,28 @@ static constexpr const char* ATOMIC_OPERATION_COMPLETED_NONATOMICALLY = "An idea
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* 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.";
static constexpr const char* FAILED_TO_WRITE = "A write operation failed.";
@@ -146,6 +134,7 @@ 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.";
@@ -178,6 +167,7 @@ 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";
// DXX
static constexpr const char* DXX_ERROR_SYS = "System error, check errno/GetLastError()";
@@ -186,6 +176,7 @@ 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.";
@@ -313,6 +304,8 @@ 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:
@@ -321,10 +314,32 @@ 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
@@ -358,6 +373,8 @@ 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:
@@ -423,6 +440,8 @@ const char* APIEvent::DescriptionForType(Type type) {
return SERVD_NODATA_ERROR;
case Type::ServdJoinMulticastError:
return SERVD_JOIN_MULTICAST_ERROR;
case Type::ServdNotReachable:
return SERVD_NOT_REACHABLE;
// DXX
case Type::DXXErrorSys:
@@ -437,13 +456,44 @@ const char* APIEvent::DescriptionForType(Type type) {
return DXX_ERROR_ARG;
// Other Errors
case Type::NoErrorFound:
return NO_ERROR_FOUND;
case Type::TooManyEvents:
return TOO_MANY_EVENTS;
case Type::Unknown:
return UNKNOWN;
default:
return INVALID;
case Type::Any:
break;
}
return INVALID;
}
std::string APIEvent::describe() const noexcept {
std::stringstream ss;
auto shared = device.lock();
if(shared)
ss << *shared; // 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 {
+2 -2
View File
@@ -7,8 +7,8 @@
using namespace icsneo;
EventManager& EventManager::GetInstance() {
static EventManager inst;
return inst;
static EventManager* inst = new EventManager();
return *inst;
}
void EventManager::downgradeErrorsOnCurrentThread() {
+60
View File
@@ -0,0 +1,60 @@
#include "icsneo/api/heartbeat.h"
#include "icsneo/api/lifetime.h"
#include "icsneo/device/device.h"
using namespace icsneo;
Heartbeat::Heartbeat(Device& device) :
device(device), mode(device.isOnline() ? Mode::Passive : Mode::Active), thread(&Heartbeat::run, this) {
}
Heartbeat::~Heartbeat() {
{
std::lock_guard lk(mutex);
stop = true;
}
cv.notify_one();
thread.join();
}
void Heartbeat::run() {
EventManager::GetInstance().downgradeErrorsOnCurrentThread();
auto filter = std::make_shared<MessageFilter>();
filter->includeInternalInAny = true;
bool status = false;
auto cbHandle = device.com->addMessageCallback(std::make_shared<MessageCallback>(filter, [&](std::shared_ptr<Message> msg) {
// TODO: remove DeviceStatus after 2027-08-17, as ResetStatus should be widely supported
const bool isHeartbeat =
(msg->type == Message::Type::ResetStatus) ||
(msg->type == Message::Type::RawMessage && std::static_pointer_cast<RawMessage>(msg)->network == Network::NetID::DeviceStatus);
if(!isHeartbeat)
return;
{
std::lock_guard lk(mutex);
status = true;
}
cv.notify_one();
}));
Lifetime cbLifetime([&] {
device.com->removeMessageCallback(cbHandle);
});
while(true) {
std::unique_lock lk(mutex);
if(mode == Mode::Active) {
if(cv.wait_for(lk, std::chrono::milliseconds(100), [&] { return stop; })) {
break;
}
device.com->sendCommand(Command::RequestStatusUpdate);
}
if(!cv.wait_for(lk, std::chrono::seconds(2), [&] { return status || stop; })) {
// we disconnect instead of close because it indicates to the user that a cleanup is still required (our thread join)
device.report(APIEvent::Type::DeviceDisconnected, APIEvent::Severity::Error);
device.com->driver->setIsDisconnected(true);
break;
}
if(stop)
break;
status = false;
}
}
@@ -5,6 +5,13 @@
#include <windows.h>
#include "icsneo/icsnVC40.h"
// Vehicle Spy 3.26.3.9 removed these legacy settings structure definitions from
// icsnVC40.h. The corresponding functions only ever treat them as opaque
// buffers, so forward declarations keep the existing API/ABI intact.
typedef struct _SFireSettings SFireSettings;
typedef struct _SVCAN3Settings SVCAN3Settings;
typedef struct _SVCANRFSettings SVCANRFSettings;
bool LoadDLLAPI(HINSTANCE &hAPIDLL);
+28 -30
View File
@@ -545,15 +545,13 @@ int LegacyDLLExport icsneoGetTimeStampForMsg(void* hObject, icsSpyMessage* pMsg,
void LegacyDLLExport icsneoGetISO15765Status(void* hObject, int lNetwork, int lClearTxStatus, int lClearRxStatus,
int* lTxStatus, int* lRxStatus)
{
// TODO Implement
return;
// Not supported
}
void LegacyDLLExport icsneoSetISO15765RxParameters(void* hObject, int lNetwork, int lEnable, spyFilterLong* pFF_CFMsgFilter,
icsSpyMessage* pTxMsg, int lCFTimeOutMs, int lFlowCBlockSize, int lUsesExtendedAddressing, int lUseHardwareIfPresent)
{
// TODO Implement
return;
// Not supported
}
int LegacyDLLExport icsneoGetRTC(void* hObject, icsSpyTime* time)
@@ -835,26 +833,25 @@ int LegacyDLLExport icsneoGetErrorInfo(int lErrorNumber, char* szErrorDescriptio
//ISO15765-2 Functions
int LegacyDLLExport icsneoISO15765_EnableNetworks(void* hObject, unsigned long ulNetworks)
{
// TODO Implement
// Not supported
return false;
}
int LegacyDLLExport icsneoISO15765_DisableNetworks(void* hObject)
{
// TODO Implement
// Not supported
return false;
}
int LegacyDLLExport icsneoISO15765_TransmitMessage(void* hObject, unsigned long ulNetworkID, stCM_ISO157652_TxMessage* pMsg,
unsigned long ulBlockingTimeout)
int LegacyDLLExport icsneoISO15765_TransmitMessage(void* hObject, unsigned long ulNetworkID, stCM_ISO157652_TxMessage* pMsg, unsigned long ulBlockingTimeout)
{
// TODO Implement
// Not supported
return false;
}
int LegacyDLLExport icsneoISO15765_ReceiveMessage(void* hObject, int ulNetworkID, stCM_ISO157652_RxMessage* pMsg)
{
// TODO Implement
// Not supported
return false;
}
@@ -1035,10 +1032,10 @@ int LegacyDLLExport icsneoGetDeviceSettingsType(void* hObject, EPlasmaIonVnetCha
case NEODEVICE_ION:
*pDeviceSettingsType = DeviceFire2SettingsType; //defaults to FIRE2 vnets with libicsneo - no firevnets!
break;
case NEODEVICE_VCAN3:
*pDeviceSettingsType = DeviceVCAN3SettingsType;
case NEODEVICE_VCAN3_DEPRECATED:
*pDeviceSettingsType = DeviceVCAN3SettingsTypeDeprecated;
break;
case NEODEVICE_FIRE:
case NEODEVICE_FIRE_DEPRECATED:
*pDeviceSettingsType = DeviceFireSettingsType;
break;
case NEODEVICE_FIRE2:
@@ -1061,17 +1058,17 @@ int LegacyDLLExport icsneoGetDeviceSettingsType(void* hObject, EPlasmaIonVnetCha
case NEODEVICE_VIVIDCAN:
*pDeviceSettingsType = DeviceVividCANSettingsType;
break;
case NEODEVICE_ECU_AVB:
*pDeviceSettingsType = DeviceECU_AVBSettingsType;
case NEODEVICE_ECU_AVB_DEPRECATED:
*pDeviceSettingsType = DeviceECU_AVBSettingsTypeDeprecated;
break;
case NEODEVICE_RADSUPERMOON:
*pDeviceSettingsType = DeviceRADSuperMoonSettingsType;
case NEODEVICE_RADSUPERMOON_DEPRECATED:
*pDeviceSettingsType = DeviceRADSuperMoonSettingsTypeDeprecated;
break;
case NEODEVICE_RADMOON2:
*pDeviceSettingsType = DeviceRADMoon2SettingsType;
break;
case NEODEVICE_RADGIGALOG:
*pDeviceSettingsType = DeviceRADGigalogSettingsType;
case NEODEVICE_RADGIGALOG_DEPRECATED:
*pDeviceSettingsType = DeviceRADGigalogSettingsTypeDeprecated;
break;
case NEODEVICE_RADMOON3:
*pDeviceSettingsType = DeviceRADMoon3SettingsType;
@@ -1088,6 +1085,8 @@ int LegacyDLLExport icsneoGetDeviceSettingsType(void* hObject, EPlasmaIonVnetCha
case NEODEVICE_FIRE3_FLEXRAY:
*pDeviceSettingsType = DeviceFire3FlexraySettingsType;
break;
case NEODEVICE_RAD_BMS:
*pDeviceSettingsType = DeviceRADBMSSettingsType;
default:
return 0;
}
@@ -1283,10 +1282,11 @@ int LegacyDLLExport icsneoJ2534Cmd(void* hObject, unsigned char* CmdBuf, short L
return false;
neodevice_t* device = reinterpret_cast<neodevice_t*>(hObject);
const auto& cmd = static_cast<icsneo::J2534Command>(*CmdBuf);
switch (*CmdBuf)
switch (cmd)
{
case J2534NVCMD_SetNetworkBaudRate:
case icsneo::J2534Command::SetNetworkBaudRate:
pTmp = (uint64_t *)&CmdBuf[1];
NetworkID = (uint16_t)*pTmp;
@@ -1296,7 +1296,7 @@ int LegacyDLLExport icsneoJ2534Cmd(void* hObject, unsigned char* CmdBuf, short L
iRetVal = 0;
break;
case J2534NVCMD_GetNetworkBaudRate:
case icsneo::J2534Command::GetNetworkBaudRate:
{
pTmp = (uint64_t *)&CmdBuf[1];
NetworkID = (uint16_t)*pTmp;
@@ -1309,7 +1309,7 @@ int LegacyDLLExport icsneoJ2534Cmd(void* hObject, unsigned char* CmdBuf, short L
*pTmp = static_cast<uint64_t>(ret);
break;
}
case J2534NVCMD_SetCANFDRate:
case icsneo::J2534Command::SetCANFDRate:
pTmp = (uint64_t *)&CmdBuf[1];
NetworkID = (uint16_t)*pTmp;
@@ -1320,7 +1320,7 @@ int LegacyDLLExport icsneoJ2534Cmd(void* hObject, unsigned char* CmdBuf, short L
iRetVal = 0;
break;
case J2534NVCMD_GetCANFDRate:
case icsneo::J2534Command::GetCANFDRate:
pTmp = (uint64_t *)&CmdBuf[1];
NetworkID = (uint16_t)*pTmp;
@@ -1330,7 +1330,7 @@ int LegacyDLLExport icsneoJ2534Cmd(void* hObject, unsigned char* CmdBuf, short L
*pTmp = icsneo_getFDBaudrate(device, NetworkID);
break;
case J2534NVCMD_GetCANFDTermination:
case icsneo::J2534Command::GetCANFDTermination:
pTmp = (uint64_t *)&CmdBuf[1];
NetworkID = (uint16_t)*pTmp;
@@ -1366,7 +1366,7 @@ int LegacyDLLExport icsneoJ2534Cmd(void* hObject, unsigned char* CmdBuf, short L
}
break;
case J2534NVCMD_SetCANFDTermination:
case icsneo::J2534Command::SetCANFDTermination:
pTmp = (uint64_t *)&CmdBuf[1];
NetworkID = (uint16_t)*pTmp;
@@ -1420,11 +1420,9 @@ int LegacyDLLExport icsneoEnableBusVoltageMonitor(void* hObject, unsigned int en
return false;
}
int LegacyDLLExport icsneoISO15765_TransmitMessageEx(void* hObject,
unsigned long ulNetworkID,
ISO15765_2015_TxMessage* pMsg,
unsigned long ulBlockingTimeout)
int LegacyDLLExport icsneoISO15765_TransmitMessageEx(void* hObject, unsigned long ulNetworkID, ISO15765_2015_TxMessage* pMsg, unsigned long ulBlockingTimeout)
{
// Not supported
return false;
}
+11 -2
View File
@@ -9,7 +9,7 @@ else()
FetchContent_Declare(
pybind11
GIT_REPOSITORY https://github.com/pybind/pybind11.git
GIT_TAG v3.0.1
GIT_TAG v3.0.3
)
FetchContent_MakeAvailable(pybind11)
endif()
@@ -31,6 +31,8 @@ pybind11_add_module(icsneopy
icsneopy/communication/message/tc10statusmessage.cpp
icsneopy/communication/message/mdiomessage.cpp
icsneopy/communication/message/gptpstatusmessage.cpp
icsneopy/communication/message/allmacaddressesmessage.cpp
icsneopy/communication/message/apperrormessage.cpp
icsneopy/communication/message/ethernetstatusmessage.cpp
icsneopy/communication/message/spimessage.cpp
icsneopy/communication/message/scriptstatusmessage.cpp
@@ -55,7 +57,14 @@ 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 .)
# Multi-config generators put the extension in Release/ or Debug/. Import
# that freshly built module, not a globally installed older icsneopy.
add_custom_command(TARGET icsneopy POST_BUILD
COMMAND "${CMAKE_COMMAND}" -E rm -f "${CMAKE_CURRENT_BINARY_DIR}/icsneopy.pyi"
COMMAND "${STUBGEN_EXE}" -v -p icsneopy -o "${CMAKE_CURRENT_BINARY_DIR}"
WORKING_DIRECTORY "$<TARGET_FILE_DIR:icsneopy>"
VERBATIM
)
install(FILES ${CMAKE_CURRENT_BINARY_DIR}/icsneopy.pyi py.typed DESTINATION icsneopy)
endif()
+1
View File
@@ -126,6 +126,7 @@ void init_event(pybind11::module_& m) {
.value("ServdPollError", APIEvent::Type::ServdPollError)
.value("ServdNoDataError", APIEvent::Type::ServdNoDataError)
.value("ServdJoinMulticastError", APIEvent::Type::ServdJoinMulticastError)
.value("ServdNotReachable", APIEvent::Type::ServdNotReachable)
.value("DXXErrorSys", APIEvent::Type::DXXErrorSys)
.value("DXXErrorInt", APIEvent::Type::DXXErrorInt)
.value("DXXErrorOverflow", APIEvent::Type::DXXErrorOverflow)
@@ -0,0 +1,13 @@
#include <pybind11/pybind11.h>
#include <pybind11/stl.h>
#include "icsneo/communication/message/allmacaddressesmessage.h"
namespace icsneo {
void init_allmacaddressesmessage(pybind11::module_& m) {
pybind11::classh<AllMACAddressesMessage, Message>(m, "AllMACAddressesMessage")
.def_readonly("addresses", &AllMACAddressesMessage::addresses);
}
} // namespace icsneo
@@ -0,0 +1,71 @@
#include <pybind11/pybind11.h>
#include <pybind11/stl.h>
#include <pybind11/native_enum.h>
#include "icsneo/communication/message/apperrormessage.h"
namespace icsneo {
void init_errortypes(pybind11::module_& m) {
pybind11::native_enum<AppErrorType>(m, "AppErrorType", "enum.IntEnum")
.value("RxMessagesFull", AppErrorType::AppErrorRxMessagesFull)
.value("TxMessagesFull", AppErrorType::AppErrorTxMessagesFull)
.value("TxReportMessagesFull", AppErrorType::AppErrorTxReportMessagesFull)
.value("BadCommWithDspIC", AppErrorType::AppErrorBadCommWithDspIC)
.value("DriverOverflow", AppErrorType::AppErrorDriverOverflow)
.value("PCBuffOverflow", AppErrorType::AppErrorPCBuffOverflow)
.value("PCChksumError", AppErrorType::AppErrorPCChksumError)
.value("PCMissedByte", AppErrorType::AppErrorPCMissedByte)
.value("PCOverrunError", AppErrorType::AppErrorPCOverrunError)
.value("SettingFailure", AppErrorType::AppErrorSettingFailure)
.value("TooManySelectedNetworks", AppErrorType::AppErrorTooManySelectedNetworks)
.value("NetworkNotEnabled", AppErrorType::AppErrorNetworkNotEnabled)
.value("RtcNotCorrect", AppErrorType::AppErrorRtcNotCorrect)
.value("LoadedDefaultSettings", AppErrorType::AppErrorLoadedDefaultSettings)
.value("FeatureNotUnlocked", AppErrorType::AppErrorFeatureNotUnlocked)
.value("FeatureRtcCmdDropped", AppErrorType::AppErrorFeatureRtcCmdDropped)
.value("TxMessagesFlushed", AppErrorType::AppErrorTxMessagesFlushed)
.value("TxMessagesHalfFull", AppErrorType::AppErrorTxMessagesHalfFull)
.value("NetworkNotValid", AppErrorType::AppErrorNetworkNotValid)
.value("TxInterfaceNotImplemented", AppErrorType::AppErrorTxInterfaceNotImplemented)
.value("TxMessagesCommEnableIsOff", AppErrorType::AppErrorTxMessagesCommEnableIsOff)
.value("RxFilterMatchCountExceeded", AppErrorType::AppErrorRxFilterMatchCountExceeded)
.value("EthPreemptionNotEnabled", AppErrorType::AppErrorEthPreemptionNotEnabled)
.value("TxNotSupportedInMode", AppErrorType::AppErrorTxNotSupportedInMode)
.value("JumboFramesNotSupported", AppErrorType::AppErrorJumboFramesNotSupported)
.value("EthernetIpFragment", AppErrorType::AppErrorEthernetIpFragment)
.value("TxMessagesUnderrun", AppErrorType::AppErrorTxMessagesUnderrun)
.value("DeviceFanFailure", AppErrorType::AppErrorDeviceFanFailure)
.value("DeviceOvertemperature", AppErrorType::AppErrorDeviceOvertemperature)
.value("TxMessageIndexOutOfRange", AppErrorType::AppErrorTxMessageIndexOutOfRange)
.value("UndersizedFrameDropped", AppErrorType::AppErrorUndersizedFrameDropped)
.value("OversizedFrameDropped", AppErrorType::AppErrorOversizedFrameDropped)
.value("WatchdogEvent", AppErrorType::AppErrorWatchdogEvent)
.value("SystemClockFailure", AppErrorType::AppErrorSystemClockFailure)
.value("SystemClockRecovered", AppErrorType::AppErrorSystemClockRecovered)
.value("SystemPeripheralReset", AppErrorType::AppErrorSystemPeripheralReset)
.value("SystemCommunicationFailure", AppErrorType::AppErrorSystemCommunicationFailure)
.value("TxMessagesUnsupportedSourceOrPacketId", AppErrorType::AppErrorTxMessagesUnsupportedSourceOrPacketId)
.value("WbmsManagerConnectFailed", AppErrorType::AppErrorWbmsManagerConnectFailed)
.value("WbmsManagerConnectBadState", AppErrorType::AppErrorWbmsManagerConnectBadState)
.value("WbmsManagerConnectTimeout", AppErrorType::AppErrorWbmsManagerConnectTimeout)
.value("FailedToInitializeLoggerDisk", AppErrorType::AppErrorFailedToInitializeLoggerDisk)
.value("InvalidSetting", AppErrorType::AppErrorInvalidSetting)
.value("SystemFailureRequestedReset", AppErrorType::AppErrorSystemFailureRequestedReset)
.value("PortKeyMistmatch", AppErrorType::AppErrorPortKeyMistmatch)
.value("BusFailure", AppErrorType::AppErrorBusFailure)
.value("TapOverflow", AppErrorType::AppErrorTapOverflow)
.value("EthTxNoLink", AppErrorType::AppErrorEthTxNoLink)
.value("ErrorBufferOverflow", AppErrorType::AppErrorErrorBufferOverflow)
.value("NoError", AppErrorType::AppNoError)
.finalize();
}
void init_apperrormessage(pybind11::module_& m) {
init_errortypes(m);
pybind11::classh<AppErrorMessage, Message>(m, "AppErrorMessage")
.def("get_app_error_type", &AppErrorMessage::getAppErrorType)
.def("get_app_error_string", &AppErrorMessage::getAppErrorString);
}
} // namespace icsneo
@@ -15,7 +15,10 @@ void init_canmessage(pybind11::module_& m) {
.def_readwrite("isExtended", &CANMessage::isExtended)
.def_readwrite("isCANFD", &CANMessage::isCANFD)
.def_readwrite("baudrateSwitch", &CANMessage::baudrateSwitch)
.def_readwrite("errorStateIndicator", &CANMessage::errorStateIndicator);
.def_readwrite("errorStateIndicator", &CANMessage::errorStateIndicator)
.def_readwrite("txAborted", &CANMessage::txAborted)
.def_readwrite("txLostArb", &CANMessage::txLostArb)
.def_readwrite("txError", &CANMessage::txError);
}
} // namespace icsneo
@@ -7,32 +7,29 @@
namespace icsneo {
void init_ethernetmessage(pybind11::module_& m) {
pybind11::classh<MACAddress>(m, "MACAddress")
.def("to_string", &MACAddress::toString)
.def("__repr__", &MACAddress::toString);
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("preemptionEnabled", &EthernetMessage::preemptionEnabled)
.def_readwrite("preemptionFlags", &EthernetMessage::preemptionFlags)
.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("isT1S", &EthernetMessage::isT1S)
.def_readwrite("isT1SSymbol", &EthernetMessage::isT1SSymbol)
.def_readwrite("isT1SBurst", &EthernetMessage::isT1SBurst)
.def_readwrite("txCollision", &EthernetMessage::txCollision)
.def_readwrite("isT1SWake", &EthernetMessage::isT1SWake)
.def_readwrite("t1sNodeId", &EthernetMessage::t1sNodeId)
.def_readwrite("t1sBurstCount", &EthernetMessage::t1sBurstCount)
.def_readwrite("t1sSymbolType", &EthernetMessage::t1sSymbolType)
.def("get_destination_mac", &EthernetMessage::getDestinationMAC, pybind11::return_value_policy::reference)
.def("get_source_mac", &EthernetMessage::getSourceMAC, pybind11::return_value_policy::reference)
.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
@@ -7,7 +7,7 @@
namespace icsneo {
void init_ethernetstatusmessage(pybind11::module_& m) {
pybind11::classh<EthernetStatusMessage, Message> ethernetStatusMessage(m, "EthernetStatusMessage");
pybind11::classh<EthernetStatusMessage, RawMessage> ethernetStatusMessage(m, "EthernetStatusMessage");
pybind11::enum_<EthernetStatusMessage::LinkSpeed>(ethernetStatusMessage, "LinkSpeed")
.value("LinkSpeedAuto", EthernetStatusMessage::LinkSpeed::LinkSpeedAuto)
@@ -28,7 +28,8 @@ void init_linmessage(pybind11::module_& m) {
.def_readwrite("UpdateResponderOnce", &LINStatusFlags::UpdateResponderOnce)
.def_readwrite("HasUpdatedResponderOnce", &LINStatusFlags::HasUpdatedResponderOnce)
.def_readwrite("BusRecovered", &LINStatusFlags::BusRecovered)
.def_readwrite("BreakOnly", &LINStatusFlags::BreakOnly);
.def_readwrite("BreakOnly", &LINStatusFlags::BreakOnly)
.def_readwrite("WakeupRequest", &LINStatusFlags::WakeupRequest);
pybind11::classh<LINMessage, Frame> linMessage(m, "LINMessage");
@@ -39,7 +40,8 @@ void init_linmessage(pybind11::module_& m) {
.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);
.value("LIN_ERROR", LINMessage::Type::LIN_ERROR)
.value("LIN_WAKEUP_REQUEST", LINMessage::Type::LIN_WAKEUP_REQUEST);
linMessage
.def(pybind11::init<>())
+6 -2
View File
@@ -103,7 +103,7 @@ void init_chipid(pybind11::module_& m) {
.value("neoOBD2Dev_MCHIP", ChipID::neoOBD2Dev_MCHIP)
.value("neoOBD2Dev_SCHIP", ChipID::neoOBD2Dev_SCHIP)
.value("neoOBD2SIMDoIP_MCHIP", ChipID::neoOBD2SIMDoIP_MCHIP)
.value("SFPModule_MCHIP", ChipID::SFPModule_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)
@@ -120,16 +120,20 @@ void init_chipid(pybind11::module_& m) {
.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("RADComet2_ZYNQ", ChipID::RADComet2_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();
@@ -32,6 +32,8 @@ void init_device(pybind11::module_& m) {
.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_addresses", &Device::getMACAddresses, 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>())
@@ -50,9 +52,11 @@ void init_device(pybind11::module_& m) {
.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("reboot", &Device::reboot, pybind11::arg("safe") = false, 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_reboot", &Device::supportsReboot)
.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>())
@@ -36,9 +36,10 @@ void init_devicetype(pybind11::module_& m) {
.value("RADEpsilon", DeviceType::Enum::RADEpsilon)
.value("RADEpsilonXL", DeviceType::Enum::RADEpsilonXL)
.value("RADGalaxy2", DeviceType::Enum::RADGalaxy2)
.value("RADwBMS", DeviceType::Enum::RADwBMS)
.value("RADMoon3", DeviceType::Enum::RADMoon3)
.value("RADGemini", DeviceType::Enum::RADGemini)
.value("RADComet", DeviceType::Enum::RADComet)
.value("RADComet2", DeviceType::Enum::RADComet2)
.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)
@@ -40,6 +40,16 @@ void init_idevicesettings(pybind11::module_& m) {
.value("Normal", LINMode::NORMAL_MODE)
.value("Fast", LINMode::FAST_MODE);
pybind11::enum_<RADGPTPProfile>(settings, "GPTPProfile")
.value("Standard", RADGPTPProfile::RAD_GPTP_PROFILE_STANDARD)
.value("Automotive", RADGPTPProfile::RAD_GPTP_PROFILE_AUTOMOTIVE);
pybind11::enum_<RADGPTPRole>(settings, "GPTPRole")
.value("Disabled", RADGPTPRole::RAD_GPTP_ROLE_DISABLED)
.value("Passive", RADGPTPRole::RAD_GPTP_ROLE_PASSIVE)
.value("Master", RADGPTPRole::RAD_GPTP_ROLE_MASTER)
.value("Slave", RADGPTPRole::RAD_GPTP_ROLE_SLAVE);
pybind11::enum_<MiscIOAnalogVoltage>(settings, "MiscIOAnalogVoltage")
.value("V0", MiscIOAnalogVoltage::V0)
.value("V1", MiscIOAnalogVoltage::V1)
@@ -48,6 +58,10 @@ void init_idevicesettings(pybind11::module_& m) {
.value("V4", MiscIOAnalogVoltage::V4)
.value("V5", MiscIOAnalogVoltage::V5);
pybind11::enum_<LinuxConfigurationPort>(settings, "LinuxConfigurationPort")
.value("USB", LinuxConfigurationPort::USB)
.value("ETH01", LinuxConfigurationPort::ETH01);
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>())
@@ -104,10 +118,43 @@ void init_idevicesettings(pybind11::module_& m) {
.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>())
// Performance blast
.def("is_perf_test_enabled", &IDeviceSettings::isPerfTestEnabled, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("set_perf_test_enable", &IDeviceSettings::setPerfTestEnable, pybind11::call_guard<pybind11::gil_scoped_release>())
// gPTP methods
.def("get_gptp_profile", &IDeviceSettings::getGPTPProfile, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("set_gptp_profile", &IDeviceSettings::setGPTPProfile, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("get_gptp_role", &IDeviceSettings::getGPTPRole, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("set_gptp_role", &IDeviceSettings::setGPTPRole, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("get_gptp_enabled_port", &IDeviceSettings::getGPTPEnabledPort, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("set_gptp_enabled_port", &IDeviceSettings::setGPTPEnabledPort, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("is_gptp_clock_syntonization_enabled", &IDeviceSettings::isGPTPClockSyntonizationEnabled, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("set_gptp_clock_syntonization_enabled", &IDeviceSettings::setGPTPClockSyntonizationEnabled, pybind11::call_guard<pybind11::gil_scoped_release>())
// Linux operating-system settings (Fire3 family devices)
.def("get_linux_boot_enabled", &IDeviceSettings::getLinuxBootEnabled, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("set_linux_boot_enabled", &IDeviceSettings::setLinuxBootEnabled, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("get_external_wifi_antenna_enabled", &IDeviceSettings::getExternalWifiAntennaEnabled, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("set_external_wifi_antenna_enabled", &IDeviceSettings::setExternalWifiAntennaEnabled, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("get_linux_configuration_port", &IDeviceSettings::getLinuxConfigurationPort, pybind11::call_guard<pybind11::gil_scoped_release>())
.def("set_linux_configuration_port", &IDeviceSettings::setLinuxConfigurationPort, pybind11::call_guard<pybind11::gil_scoped_release>())
// Status properties
.def_readonly("disabled", &IDeviceSettings::disabled)
.def_readonly("readonly", &IDeviceSettings::readonly);
+4
View File
@@ -19,6 +19,8 @@ void init_ethernetmessage(pybind11::module_&);
void init_linmessage(pybind11::module_&);
void init_tc10statusmessage(pybind11::module_&);
void init_gptpstatusmessage(pybind11::module_&);
void init_allmacaddressesmessage(pybind11::module_&);
void init_apperrormessage(pybind11::module_&);
void init_mdiomessage(pybind11::module_&);
void init_spimessage(pybind11::module_&);
void init_ethernetstatusmessage(pybind11::module_&);
@@ -59,6 +61,8 @@ PYBIND11_MODULE(icsneopy, m) {
init_linmessage(m);
init_tc10statusmessage(m);
init_gptpstatusmessage(m);
init_allmacaddressesmessage(m);
init_apperrormessage(m);
init_mdiomessage(m);
init_ethernetstatusmessage(m);
init_macsecconfig(m);
+1 -2
View File
@@ -1,7 +1,6 @@
#!/bin/sh
cmake -GNinja -Bbuild -DCMAKE_BUILD_TYPE=Release -DLIBICSNEO_BUILD_EXAMPLES=ON \
-DLIBICSNEO_BUILD_UNIT_TESTS=ON -DLIBICSNEO_ENABLE_TCP=OFF || exit 1
cmake -GNinja -Bbuild -DCMAKE_BUILD_TYPE=Release -DLIBICSNEO_BUILD_EXAMPLES=ON -DLIBICSNEO_BUILD_UNIT_TESTS=ON -DLIBICSNEO_ENABLE_TCP=OFF || exit 1
cmake --build build || exit 1
+1 -2
View File
@@ -3,7 +3,6 @@
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 -GNinja -Bbuild -DCMAKE_BUILD_TYPE=Release -DCMAKE_COMPILE_WARNING_AS_ERROR=ON -DLIBICSNEO_BUILD_UNIT_TESTS=ON-DLIBICSNEO_ENABLE_TCP=ON || exit /b 1
cmake --build build || exit /b 1
+37 -1
View File
@@ -21,10 +21,15 @@
#include "icsneo/communication/message/hardwareinfo.h"
#include "icsneo/communication/message/tc10statusmessage.h"
#include "icsneo/communication/message/gptpstatusmessage.h"
#include "icsneo/communication/message/allmacaddressesmessage.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/message/mfgconfigmessage.h"
#include "icsneo/communication/message/spiportkeymessage.h"
#include "icsneo/communication/message/genericapidatamessage.h"
#include "icsneo/communication/message/genericapistatusmessage.h"
#include "icsneo/communication/command.h"
#include "icsneo/device/device.h"
#include "icsneo/communication/packet/canpacket.h"
@@ -39,6 +44,7 @@
#include "icsneo/communication/packet/i2cpacket.h"
#include "icsneo/communication/packet/scriptstatuspacket.h"
#include "icsneo/communication/packet/linpacket.h"
#include "icsneo/communication/message/iso15765message.h"
#include "icsneo/communication/packet/componentversionpacket.h"
#include "icsneo/communication/packet/supportedfeaturespacket.h"
#include "icsneo/communication/packet/mdiopacket.h"
@@ -326,19 +332,35 @@ 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);
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);
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::ExecuteSPIPortKeyOperation:
result = SPIPortKeyMessage::DecodeToMessage(packet->data);
return true;
case ExtendedCommand::ReadGenericAPIData:
result = GenericAPIDataMessage::DecodeToMessage(packet->data);
return true;
case ExtendedCommand::ReadGenericAPIStatus:
result = GenericAPIStatusMessage::DecodeToMessage(packet->data);
return true;
case ExtendedCommand::GetTC10Status:
result = TC10StatusMessage::DecodeToMessage(packet->data);
return true;
case ExtendedCommand::GetAllMACAddresses:
result = AllMACAddressesMessage::DecodeToMessage(packet->data);
return true;
case ExtendedCommand::GetGPTPStatus: {
result = GPTPStatus::DecodeToMessage(packet->data, report);
return true;
@@ -351,6 +373,9 @@ bool Decoder::decode(std::shared_ptr<Message>& result, const std::shared_ptr<Pac
);
protoapi::Id protoId = protoapi::getProtoId(responseBody.data(), responseBody.size());
switch(protoId) {
case protoapi::Id::MfgConfig:
result = MfgConfigMessage::DecodeToMessage(responseBody);
return true;
case protoapi::Id::NetworkMutex:
result = NetworkMutexMessage::DecodeToMessage(responseBody);
return true;
@@ -455,6 +480,14 @@ bool Decoder::decode(std::shared_ptr<Message>& result, const std::shared_ptr<Pac
return true;
}
case Command::J2534Command: {
result = J2534CommandMessage::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]);
@@ -555,6 +588,9 @@ bool Decoder::decode(std::shared_ptr<Message>& result, const std::shared_ptr<Pac
}
break;
}
default:
report(APIEvent::Type::UnexpectedNetworkType, APIEvent::Severity::Error);
return false;
}
// For the moment other types of messages will automatically be decoded as raw messages
+3 -1
View File
@@ -234,7 +234,9 @@ bool Encoder::encode(const Packetizer& packetizer, std::vector<uint8_t>& result,
result = packetizer.packetWrap(result, false);
return true;
}
break;
default:
report(APIEvent::Type::MessageFormattingError, APIEvent::Severity::Error);
return false; // The message was not a properly formed Message
}
// Early returns may mean we don't reach this far, check the type you're concerned with
+2
View File
@@ -163,6 +163,8 @@ void A2BMessage::setChannelSample(Direction dir, uint8_t channel, size_t frame,
case PCMType::L24:
sampleToSet = sampleToSet << 8;
break;
case PCMType::L32:
break;
}
if(channelSize16) {
@@ -0,0 +1,51 @@
#include "icsneo/communication/message/allmacaddressesmessage.h"
#include "icsneo/communication/command.h"
#include "icsneo/communication/network.h"
#include <cstring>
using namespace icsneo;
#pragma pack(push, 2)
struct ResponseHeader {
ExtendedCommand command;
uint16_t length;
uint16_t count;
};
struct MacAddrEntryPacket {
uint16_t networkId;
uint8_t address[MACAddressLength];
};
#pragma pack(pop)
std::shared_ptr<AllMACAddressesMessage> AllMACAddressesMessage::DecodeToMessage(const std::vector<uint8_t>& bytestream) {
if(bytestream.size() < sizeof(ResponseHeader))
return nullptr;
const auto* hdr = reinterpret_cast<const ResponseHeader*>(bytestream.data());
if(hdr->command != ExtendedCommand::GetAllMACAddresses)
return nullptr;
if(hdr->count > MaxMACAddressCount)
return nullptr;
const size_t required = sizeof(ResponseHeader) + hdr->count * sizeof(MacAddrEntryPacket);
if(bytestream.size() < required)
return nullptr;
auto msg = std::make_shared<AllMACAddressesMessage>();
const auto* entries = reinterpret_cast<const MacAddrEntryPacket*>(bytestream.data() + sizeof(ResponseHeader));
for(uint16_t i = 0; i < hdr->count; ++i) {
// The firmware sends CoreMini network IDs — convert to NetID for consistent use in libicsneo
Network::NetID netId = Network::GetNetIDFromCoreMiniNetwork(static_cast<Network::CoreMini>(entries[i].networkId));
auto addr = entries[i].address;
MACAddress arrAddr;
std::copy(addr, addr + MACAddressLength, arrAddr.begin());
msg->addresses.emplace(std::make_pair(netId, arrAddr));
}
return msg;
}
@@ -37,7 +37,7 @@ struct Packet {
};
#pragma pack(pop)
std::shared_ptr<Message> EthernetStatusMessage::DecodeToMessage(const std::vector<uint8_t>& bytestream) {
std::shared_ptr<RawMessage> EthernetStatusMessage::DecodeToMessage(const std::vector<uint8_t>& bytestream) {
if(bytestream.size() < sizeof(Packet)) {
return nullptr;
}
@@ -76,5 +76,5 @@ std::shared_ptr<Message> EthernetStatusMessage::DecodeToMessage(const std::vecto
break;
default: return nullptr;
}
return std::make_shared<EthernetStatusMessage>(packet->network, packet->state, speed, packet->duplex, mode);
}
return std::make_shared<EthernetStatusMessage>(packet->network, packet->state != 0, speed, packet->duplex != 0, mode);
}
+1 -1
View File
@@ -35,7 +35,7 @@ bool EthPhyMessage::appendPhyMessage(bool writeEnable, bool clause45, uint8_t ph
bool EthPhyMessage::appendPhyMessage(std::shared_ptr<PhyMessage> message)
{
if(message != nullptr)
if(message)
{
messages.push_back(message);
return true;
@@ -0,0 +1,28 @@
#include "icsneo/communication/message/genericapidatamessage.h"
#include "icsneo/communication/message/extendedresponsemessage.h"
#include "icsneo/communication/command.h"
using namespace icsneo;
std::shared_ptr<GenericAPIDataMessage> GenericAPIDataMessage::DecodeToMessage(const std::vector<uint8_t>& bytestream) {
if(bytestream.size() < sizeof(ExtendedResponseMessage::ResponseHeader))
return nullptr;
const auto* hdr = reinterpret_cast<const ExtendedResponseMessage::ResponseHeader*>(bytestream.data());
if(hdr->command != ExtendedCommand::ReadGenericAPIData)
return nullptr;
const size_t required = sizeof(ExtendedResponseMessage::ResponseHeader) + sizeof(GenericAPIDataHeader);
if(bytestream.size() < required)
return nullptr;
auto msg = std::make_shared<GenericAPIDataMessage>();
const auto* packet = reinterpret_cast<const GenericAPIDataPacket*>(bytestream.data() + sizeof(ExtendedResponseMessage::ResponseHeader));
msg->functionId = packet->header.functionId;
msg->buffer.resize(packet->header.bufferLength);
std::copy(packet->buffer, packet->buffer + packet->header.bufferLength, msg->buffer.data());
return msg;
}
@@ -0,0 +1,29 @@
#include "icsneo/communication/message/genericapistatusmessage.h"
#include "icsneo/communication/message/extendedresponsemessage.h"
#include "icsneo/communication/command.h"
using namespace icsneo;
std::shared_ptr<GenericAPIStatusMessage> GenericAPIStatusMessage::DecodeToMessage(const std::vector<uint8_t>& bytestream) {
if(bytestream.size() < sizeof(ExtendedResponseMessage::ResponseHeader))
return nullptr;
const auto* hdr = reinterpret_cast<const ExtendedResponseMessage::ResponseHeader*>(bytestream.data());
if(hdr->command != ExtendedCommand::ReadGenericAPIStatus)
return nullptr;
const size_t required = sizeof(ExtendedResponseMessage::ResponseHeader) + sizeof(GenericAPIStatusResponsePacket);
if(bytestream.size() < required)
return nullptr;
auto msg = std::make_shared<GenericAPIStatusMessage>();
const auto* packet = reinterpret_cast<const GenericAPIStatusResponsePacket*>(bytestream.data() + sizeof(ExtendedResponseMessage::ResponseHeader));
msg->functionId = packet->functionId;
msg->finishedProcessing = static_cast<bool>(packet->finishedProcessing);
msg->functionError = packet->functionError;
msg->callbackError = packet->callbackError;
return msg;
}
+337
View File
@@ -0,0 +1,337 @@
#include "icsneo/communication/message/iso15765message.h"
#include <cstring>
using namespace icsneo;
std::shared_ptr<J2534CommandMessage> J2534CommandMessage::decodeToMessage(const std::vector<uint8_t>& data) {
if(data.size() < 2)
return nullptr;
auto msg = std::make_shared<J2534CommandMessage>((J2534Command)data[1]);
if(data.size() > 2)
msg->setArgumentData(std::vector<uint8_t>(data.begin() + 2, data.end()));
return msg;
}
uint16_t J2534CommandMessage::read16LE(size_t o) const {
return (uint16_t)((uint16_t)argumentData[o] | ((uint16_t)argumentData[o + 1] << 8));
}
void J2534CommandMessage::write16LE(size_t o, uint16_t v) {
argumentData[o] = (uint8_t)(v & 0xFF);
argumentData[o + 1] = (uint8_t)((v >> 8) & 0xFF);
}
uint16_t J2534CommandMessage::read16BE(size_t o) const {
return (uint16_t)(((uint16_t)argumentData[o] << 8) | argumentData[o + 1]);
}
void J2534CommandMessage::write16BE(size_t o, uint16_t v) {
argumentData[o] = (uint8_t)((v >> 8) & 0xFF);
argumentData[o + 1] = (uint8_t)(v & 0xFF);
}
void J2534CommandMessage::writeBits16LE(size_t o, unsigned bitPos, unsigned bitCount, uint32_t value) {
const uint16_t mask = (uint16_t)(((1u << bitCount) - 1u) << bitPos);
uint16_t word = read16LE(o);
word = (uint16_t)((word & ~mask) | (((value << bitPos) & mask)));
write16LE(o, word);
}
uint32_t J2534CommandMessage::read32LE(size_t o) const {
return (uint32_t)argumentData[o]
| ((uint32_t)argumentData[o + 1] << 8)
| ((uint32_t)argumentData[o + 2] << 16)
| ((uint32_t)argumentData[o + 3] << 24);
}
void J2534CommandMessage::write32LE(size_t o, uint32_t v) {
argumentData[o] = (uint8_t)(v & 0xFF);
argumentData[o + 1] = (uint8_t)((v >> 8) & 0xFF);
argumentData[o + 2] = (uint8_t)((v >> 16) & 0xFF);
argumentData[o + 3] = (uint8_t)((v >> 24) & 0xFF);
}
uint32_t J2534CommandMessage::read32BE(size_t o) const {
return ((uint32_t)argumentData[o] << 24) | ((uint32_t)argumentData[o + 1] << 16)
| ((uint32_t)argumentData[o + 2] << 8) | (uint32_t)argumentData[o + 3];
}
void J2534CommandMessage::write32BE(size_t o, uint32_t v) {
argumentData[o] = (uint8_t)((v >> 24) & 0xFF);
argumentData[o + 1] = (uint8_t)((v >> 16) & 0xFF);
argumentData[o + 2] = (uint8_t)((v >> 8) & 0xFF);
argumentData[o + 3] = (uint8_t)(v & 0xFF);
}
J2534_RxCanFilter J2534SetupCanRxFilteringMessage::getRxCanFilter() const {
constexpr size_t filterSize = sizeof(J2534_RxCanFilter::fb);
J2534_RxCanFilter filter = {};
if(argumentData.size() >= (10 + filterSize))
{
filter.idx = (argumentData[2] << 8) | argumentData[3];
filter.enabled = (argumentData[4] << 8) | argumentData[5];
filter.filterCount = (argumentData[6] << 8) | argumentData[7];
filter.fb = *((MessageFilterBytes*)(argumentData.data() + 8));
filter.networkId = (argumentData[8 + filterSize] << 8) | argumentData[9 + filterSize];
}
return filter;
}
void J2534SetupCanRxFilteringMessage::setRxCanFilter(const J2534_RxCanFilter& filter) {
argumentData.resize(10 + sizeof(filter.fb));
argumentData[2] = (filter.idx >> 8) & 0xFF;
argumentData[3] = filter.idx & 0xFF;
argumentData[4] = (filter.enabled >> 8) & 0xFF;
argumentData[5] = filter.enabled & 0xFF;
argumentData[6] = (filter.filterCount >> 8) & 0xFF;
argumentData[7] = filter.filterCount & 0xFF;
*((MessageFilterBytes*)(argumentData.data() + 8)) = filter.fb;
argumentData[8 + sizeof(filter.fb)] = (filter.networkId >> 8) & 0xFF;
argumentData[9 + sizeof(filter.fb)] = filter.networkId & 0xFF;
}
J2534SetupIso15765FlowControlMessage::J2534SetupIso15765FlowControlMessage()
: J2534CommandMessage(J2534Command::SetupIso15765RxFilter) {
argumentData.resize(MessageSize);
// Bytes [0..1] were populated by the base constructor. Everything else starts at zero
// (matches the previous behavior which zeroed the flt region and left the rest of the
// caller-supplied struct as-is; typical callers value-initialized their struct too).
for(size_t i = 2; i < MessageSize; ++i)
argumentData[i] = 0;
}
void J2534SetupIso15765FlowControlMessage::rebuildFilterBytes(void) {
// Zero the 28-byte flt region.
for(size_t i = 0; i < FltSize; ++i)
argumentData[FltOffset + i] = 0;
const uint32_t id = read32LE(IdOffset);
const uint32_t idMask = read32LE(IdMaskOffset);
const bool is29Bit = getFlagBit(FlagId29BitEnable);
const bool extAddr = getFlagBit(FlagExtAddressEnable);
const uint8_t extAddrByte = argumentData[ExtAddrOffset];
// CoreMiniMessageFilterBytes has an interleaved layout:
// uiFilterMask0 at flt+0, uiFilterID0 at flt+2
// uiFilterMask1 at flt+4, uiFilterID1 at flt+6
// uiFilterMask2 at flt+8, uiFilterID2 at flt+10
// datalink.uiFilterMask3 at flt+12, datalink.uiFilterID3 at flt+14
//
// CoreMiniMsgBitsCAN bit layout within each 16-bit unit:
// unit0: IDE(bit0), SRR(bit1), SID(bits2-12), NETWORKINDEX(bits13-15)
// unit1: EID(bits0-11), TXMSG(bit12), ...
// unit2: DLC(bits0-3), ..., RTR(bit9), EID2(bits10-15)
const size_t MaskUnit0 = FltOffset + 0;
const size_t MaskUnit1 = FltOffset + 4;
const size_t MaskUnit2 = FltOffset + 8;
const size_t ValueUnit0 = FltOffset + 2;
const size_t ValueUnit1 = FltOffset + 6;
const size_t ValueUnit2 = FltOffset + 10;
// filter arbid: pMask->IDE = 1
writeBits16LE(MaskUnit0, /*bit*/0, /*width*/1, 1);
if(is29Bit) {
// pValue->IDE = 1; pValue->SID = (id >> 18) & 0x7FF
writeBits16LE(ValueUnit0, 0, 1, 1);
writeBits16LE(ValueUnit0, 2, 11, (id >> 18) & 0x7FF);
// pValue->EID = (id >> 6) & 0xFFF
writeBits16LE(ValueUnit1, 0, 12, (id >> 6) & 0xFFF);
// pValue->EID2 = id & 0x3F
writeBits16LE(ValueUnit2, 10, 6, id & 0x3F);
// pMask->SID = (id_mask >> 18) & 0x7FF
writeBits16LE(MaskUnit0, 2, 11, (idMask >> 18) & 0x7FF);
// pMask->EID = (id_mask >> 6) & 0xFFF (overlaps pValue->{IDE,SID} storage)
writeBits16LE(MaskUnit1, 0, 12, (idMask >> 6) & 0xFFF);
// pMask->EID2 = id_mask & 0x3F (overlaps pValue->EID storage)
writeBits16LE(MaskUnit2, 10, 6, idMask & 0x3F);
} else {
// pValue->IDE = 0 (already zero); pValue->SID = id
writeBits16LE(ValueUnit0, 2, 11, id & 0x7FF);
// pMask->SID = id_mask
writeBits16LE(MaskUnit0, 2, 11, idMask & 0x7FF);
}
// Extended-address filter: writes into the datalink.uiFilterID3 / uiFilterMask3 bytes.
// uiFilterMask3 = flt[12..13] = wire[37..38]
// uiFilterID3 = flt[14..15] = wire[39..40]
if(extAddr) {
const size_t kValueBytes = FltOffset + 14; // uiFilterID3
const size_t kMaskBytes = FltOffset + 12; // uiFilterMask3
argumentData[kValueBytes + 0] = extAddrByte;
argumentData[kMaskBytes + 0] = 0xFF;
argumentData[kValueBytes + 1] = 0;
argumentData[kMaskBytes + 1] = 0;
}
}
uint16_t J2534SetupIso15765FlowControlMessage::getIdx(void) const { return read16LE(IdxOffset); }
void J2534SetupIso15765FlowControlMessage::setIdx(uint16_t idx) { write16LE(IdxOffset, idx); }
uint16_t J2534SetupIso15765FlowControlMessage::getCoreMiniId(void) const { return read16LE(CoreMiniOffset); }
void J2534SetupIso15765FlowControlMessage::setCoreMiniId(uint16_t coreMiniId) { write16LE(CoreMiniOffset, coreMiniId); }
uint8_t J2534SetupIso15765FlowControlMessage::getPadding(void) const { return argumentData[PaddingOffset]; }
void J2534SetupIso15765FlowControlMessage::setPadding(uint8_t padding) { argumentData[PaddingOffset] = padding; }
uint32_t J2534SetupIso15765FlowControlMessage::getId(void) const { return read32LE(IdOffset); }
void J2534SetupIso15765FlowControlMessage::setId(uint32_t id) { write32LE(IdOffset, id); rebuildFilterBytes(); }
uint32_t J2534SetupIso15765FlowControlMessage::getIdMask(void) const { return read32LE(IdMaskOffset); }
void J2534SetupIso15765FlowControlMessage::setIdMask(uint32_t idMask) { write32LE(IdMaskOffset, idMask); rebuildFilterBytes(); }
uint32_t J2534SetupIso15765FlowControlMessage::getFcId(void) const { return read32LE(FcIdOffset); }
void J2534SetupIso15765FlowControlMessage::setFcId(uint32_t fcId) { write32LE(FcIdOffset, fcId); }
uint8_t J2534SetupIso15765FlowControlMessage::getFlowControlExtendedAddress(void) const { return argumentData[FcExtAddrOffset]; }
void J2534SetupIso15765FlowControlMessage::setFlowControlExtendedAddress(uint8_t addr) { argumentData[FcExtAddrOffset] = addr; }
uint8_t J2534SetupIso15765FlowControlMessage::getExtendedAddress(void) const { return argumentData[ExtAddrOffset]; }
void J2534SetupIso15765FlowControlMessage::setExtendedAddress(uint8_t addr) { argumentData[ExtAddrOffset] = addr; rebuildFilterBytes(); }
uint8_t J2534SetupIso15765FlowControlMessage::getBlockSize(void) const { return argumentData[BlockSizeOffset]; }
void J2534SetupIso15765FlowControlMessage::setBlockSize(uint8_t blockSize) { argumentData[BlockSizeOffset] = blockSize; }
uint8_t J2534SetupIso15765FlowControlMessage::getStMin(void) const { return argumentData[StMinOffset]; }
void J2534SetupIso15765FlowControlMessage::setStMin(uint8_t stMin) { argumentData[StMinOffset] = stMin; }
uint16_t J2534SetupIso15765FlowControlMessage::getCfTimeout(void) const { return read16LE(CfTimeoutOffset); }
void J2534SetupIso15765FlowControlMessage::setCfTimeout(uint16_t cfTimeout) { write16LE(CfTimeoutOffset, cfTimeout); }
uint32_t J2534SetupIso15765FlowControlMessage::getFlags(void) const { return read32LE(FlagsOffset); }
void J2534SetupIso15765FlowControlMessage::setFlags(uint32_t flags) { write32LE(FlagsOffset, flags); rebuildFilterBytes(); }
bool J2534SetupIso15765FlowControlMessage::getEnable(void) const { return getFlagBit(FlagEnable); }
void J2534SetupIso15765FlowControlMessage::setEnable(bool enable) { setFlagBit(FlagEnable, enable); }
bool J2534SetupIso15765FlowControlMessage::getIs29BitEnabled(void) const { return getFlagBit(FlagId29BitEnable); }
void J2534SetupIso15765FlowControlMessage::setIs29BitEnabled(bool enable) { setFlagBit(FlagId29BitEnable, enable); rebuildFilterBytes(); }
bool J2534SetupIso15765FlowControlMessage::getIsFc29BitEnabled(void) const { return getFlagBit(FlagFcId29BitEnable); }
void J2534SetupIso15765FlowControlMessage::setIsFc29BitEnabled(bool enable) { setFlagBit(FlagFcId29BitEnable, enable); }
bool J2534SetupIso15765FlowControlMessage::getExtAddressEnabled(void) const { return getFlagBit(FlagExtAddressEnable); }
void J2534SetupIso15765FlowControlMessage::setExtAddressEnabled(bool enable) { setFlagBit(FlagExtAddressEnable, enable); rebuildFilterBytes(); }
bool J2534SetupIso15765FlowControlMessage::getFcExtAddressEnabled(void) const { return getFlagBit(FlagFcExtAddressEnable); }
void J2534SetupIso15765FlowControlMessage::setFcExtAddressEnabled(bool enable) { setFlagBit(FlagFcExtAddressEnable, enable); }
bool J2534SetupIso15765FlowControlMessage::getFlowControlTransmissionEnabled(void) const { return getFlagBit(FlagEnableFlowControlTransmit); }
void J2534SetupIso15765FlowControlMessage::setFlowControlTransmissionEnabled(bool enable) { setFlagBit(FlagEnableFlowControlTransmit, enable); }
bool J2534SetupIso15765FlowControlMessage::getPaddingEnabled(void) const { return getFlagBit(FlagPaddingEnable); }
void J2534SetupIso15765FlowControlMessage::setPaddingEnabled(bool enable) { setFlagBit(FlagPaddingEnable, enable); }
bool J2534SetupIso15765FlowControlMessage::getIsCanFd(void) const { return getFlagBit(FlagIsCanFd); }
void J2534SetupIso15765FlowControlMessage::setIsCanFd(bool enable) { setFlagBit(FlagIsCanFd, enable); }
bool J2534SetupIso15765FlowControlMessage::getIsBrsEnabled(void) const { return getFlagBit(FlagIsBrsEnabled); }
void J2534SetupIso15765FlowControlMessage::setIsBrsEnabled(bool enable) { setFlagBit(FlagIsBrsEnabled, enable); }
void J2534SetupIso15765FlowControlMessage::setFlagBit(uint32_t mask, bool enable) {
uint32_t f = read32LE(FlagsOffset);
if(enable) f |= mask;
else f &= ~mask;
write32LE(FlagsOffset, f);
}
bool J2534SetupIso15765FlowControlMessage::getFlagBit(uint32_t mask) const {
return (read32LE(FlagsOffset) & mask) != 0;
}
uint16_t Iso15765TxSetupMessage::getIdx(void) const { return read16LE(SetupIdxOffset); }
void Iso15765TxSetupMessage::setIdx(uint16_t idx) { write16LE(SetupIdxOffset, idx); }
uint16_t Iso15765TxSetupMessage::getCoreMiniId(void) const { return read16LE(SetupCoreMiniOffset); }
void Iso15765TxSetupMessage::setCoreMiniId(uint16_t coreMiniId) { write16LE(SetupCoreMiniOffset, coreMiniId); }
uint32_t Iso15765TxSetupMessage::getMessageLength(void) const { return read32LE(SetupMsgLenOffset); }
void Iso15765TxSetupMessage::setMessageLength(uint32_t messageLength) { write32LE(SetupMsgLenOffset, messageLength); }
uint8_t Iso15765TxSetupMessage::getPadding(void) const { return argumentData[SetupPaddingOffset]; }
void Iso15765TxSetupMessage::setPadding(uint8_t padding) { argumentData[SetupPaddingOffset] = padding; }
uint8_t Iso15765TxSetupMessage::getTxDl(void) const { return argumentData[SetupTxDlOffset]; }
void Iso15765TxSetupMessage::setTxDl(uint8_t txDl) { argumentData[SetupTxDlOffset] = txDl; }
uint32_t Iso15765TxSetupMessage::getId(void) const { return read32LE(SetupIdOffset); }
void Iso15765TxSetupMessage::setId(uint32_t id) { write32LE(SetupIdOffset, id); }
uint32_t Iso15765TxSetupMessage::getFcId(void) const { return read32LE(SetupFcIdOffset); }
void Iso15765TxSetupMessage::setFcId(uint32_t fcId) { write32LE(SetupFcIdOffset, fcId); }
uint32_t Iso15765TxSetupMessage::getFcIdMask(void) const { return read32LE(SetupFcIdMaskOffset); }
void Iso15765TxSetupMessage::setFcIdMask(uint32_t fcIdMask) { write32LE(SetupFcIdMaskOffset, fcIdMask); }
uint8_t Iso15765TxSetupMessage::getFlowControlExtendedAddress(void) const { return argumentData[SetupFcExtAddrOffset]; }
void Iso15765TxSetupMessage::setFlowControlExtendedAddress(uint8_t addr) { argumentData[SetupFcExtAddrOffset] = addr; }
uint8_t Iso15765TxSetupMessage::getExtendedAddress(void) const { return argumentData[SetupExtAddrOffset]; }
void Iso15765TxSetupMessage::setExtendedAddress(uint8_t addr) { argumentData[SetupExtAddrOffset] = addr; }
uint16_t Iso15765TxSetupMessage::getFsTimeout(void) const { return read16LE(SetupFsTimeoutOffset); }
void Iso15765TxSetupMessage::setFsTimeout(uint16_t timeout) { write16LE(SetupFsTimeoutOffset, timeout); }
uint16_t Iso15765TxSetupMessage::getFsWait(void) const { return read16LE(SetupFsWaitOffset); }
void Iso15765TxSetupMessage::setFsWait(uint16_t wait) { write16LE(SetupFsWaitOffset, wait); }
uint32_t Iso15765TxSetupMessage::getFlags(void) const { return read32LE(SetupFlagsOffset); }
void Iso15765TxSetupMessage::setFlags(uint32_t flags) { write32LE(SetupFlagsOffset, flags); }
uint8_t Iso15765TxSetupMessage::getStMin(void) const { return argumentData[SetupStMinOffset]; }
void Iso15765TxSetupMessage::setStMin(uint8_t stMin) { argumentData[SetupStMinOffset] = stMin; }
uint8_t Iso15765TxSetupMessage::getBlockSize(void) const { return argumentData[SetupBlockSizeOffset]; }
void Iso15765TxSetupMessage::setBlockSize(uint8_t blockSize) { argumentData[SetupBlockSizeOffset] = blockSize; }
bool Iso15765TxSetupMessage::getIs29BitEnabled(void) const { return getFlagBit(FlagId29BitEnable); }
void Iso15765TxSetupMessage::setIs29BitEnabled(bool enable) { setFlagBit(FlagId29BitEnable, enable); }
bool Iso15765TxSetupMessage::getIsFc29BitEnabled(void) const { return getFlagBit(FlagFcId29BitEnable); }
void Iso15765TxSetupMessage::setIsFc29BitEnabled(bool enable) { setFlagBit(FlagFcId29BitEnable, enable); }
bool Iso15765TxSetupMessage::getExtAddressEnabled(void) const { return getFlagBit(FlagExtAddressEnable); }
void Iso15765TxSetupMessage::setExtAddressEnabled(bool enable) { setFlagBit(FlagExtAddressEnable, enable); }
bool Iso15765TxSetupMessage::getFcExtAddressEnabled(void) const { return getFlagBit(FlagFcExtAddressEnable); }
void Iso15765TxSetupMessage::setFcExtAddressEnabled(bool enable) { setFlagBit(FlagFcExtAddressEnable, enable); }
bool Iso15765TxSetupMessage::getOverrideStMin(void) const { return getFlagBit(FlagOverrideStMin); }
void Iso15765TxSetupMessage::setOverrideStMin(bool enable) { setFlagBit(FlagOverrideStMin, enable); }
bool Iso15765TxSetupMessage::getOverrideBlockSize(void) const { return getFlagBit(FlagOverrideBlockSize); }
void Iso15765TxSetupMessage::setOverrideBlockSize(bool enable) { setFlagBit(FlagOverrideBlockSize, enable); }
bool Iso15765TxSetupMessage::getPaddingEnabled(void) const { return getFlagBit(FlagPaddingEnable); }
void Iso15765TxSetupMessage::setPaddingEnabled(bool enable) { setFlagBit(FlagPaddingEnable, enable); }
bool Iso15765TxSetupMessage::getIsCanFd(void) const { return getFlagBit(FlagIsCanFd); }
void Iso15765TxSetupMessage::setIsCanFd(bool enable) { setFlagBit(FlagIsCanFd, enable); }
bool Iso15765TxSetupMessage::getIsBrsEnabled(void) const { return getFlagBit(FlagIsBrsEnabled); }
void Iso15765TxSetupMessage::setIsBrsEnabled(bool enable) { setFlagBit(FlagIsBrsEnabled, enable); }
bool Iso15765TxSetupMessage::getFlagBit(uint32_t mask) const {
return (getFlags() & mask) != 0;
}
void Iso15765TxSetupMessage::setFlagBit(uint32_t mask, bool enable) {
uint32_t f = getFlags();
if(enable) f |= mask;
else f &= ~mask;
setFlags(f);
}
uint16_t Iso15765TxDataMessage::getIdx(void) const { return read16LE(DataIdxOffset); }
void Iso15765TxDataMessage::setIdx(uint16_t idx) { write16LE(DataIdxOffset, idx); }
uint32_t Iso15765TxDataMessage::getOffset(void) const { return read32LE(DataOffsetOffset); }
void Iso15765TxDataMessage::setOffset(uint32_t offset) { write32LE(DataOffsetOffset, offset); }
uint16_t Iso15765TxDataMessage::getLen(void) const { return read16LE(DataLenOffset); }
const uint8_t* Iso15765TxDataMessage::getData(void) const { return argumentData.data() + DataPayloadOffset; }
void Iso15765TxDataMessage::setData(const uint8_t* sourceData, uint16_t len) {
len = std::min(len, (uint16_t)MaxDataLength);
argumentData.resize(DataPayloadOffset + len);
write16LE(DataLenOffset, len);
if(len > 0 && sourceData != nullptr)
std::copy(sourceData, sourceData + len, argumentData.begin() + DataPayloadOffset);
}
@@ -0,0 +1,77 @@
#include "icsneo/communication/message/mfgconfigmessage.h"
#include "icsneo/communication/icspb.h"
#include <algorithm>
using namespace icsneo;
static MfgConfigMessage::VersionNumber versionFromProto(const settings::common::v1::VersionNumber& version) {
MfgConfigMessage::VersionNumber decoded;
decoded.major = version.major();
decoded.minor = version.minor();
if(version.has_release())
decoded.release = version.release();
if(version.has_build())
decoded.build = version.build();
return decoded;
}
std::shared_ptr<MfgConfigMessage> MfgConfigMessage::DecodeToMessage(const std::vector<uint8_t>& bytestream) {
MfgConfigMessage decoded;
settings::manufacturing::v1::MfgConfig msg;
if(!protoapi::processResponse(bytestream.data(), bytestream.size(), msg)) {
return nullptr;
}
if(msg.has_serial_number()) {
decoded.serialNumber = msg.serial_number();
}
if(msg.has_manufacture_date()) {
const auto& date = msg.manufacture_date();
decoded.manufactureDate = MfgDate{date.manufacture_day(), date.manufacture_month(), date.manufacture_year()};
}
if(msg.has_hardware_rev()) {
decoded.hardwareRev = versionFromProto(msg.hardware_rev());
}
if(msg.has_product_id()) {
decoded.productId = static_cast<uint8_t>(msg.product_id());
}
if(msg.has_bootloader_rev()) {
decoded.bootloaderRev = versionFromProto(msg.bootloader_rev());
}
if(msg.has_usb_descriptor()) {
decoded.usbDescriptor = msg.usb_descriptor();
}
for(const auto& mac : msg.mac_addresses()) {
const auto& bytes = mac.mac_addr();
if(bytes.size() < MACAddressLength)
continue;
MACAddress address{};
std::copy_n(bytes.begin(), MACAddressLength, address.begin());
decoded.macAddresses.push_back(address);
}
if(msg.has_pcb_serial()) {
decoded.pcbSerial = msg.pcb_serial().pcb_serial();
}
if(msg.has_chip_id()) {
decoded.chipId = static_cast<ChipID>(msg.chip_id());
}
if(msg.has_imei()) {
decoded.imei = msg.imei();
}
if(msg.has_parent_product_id()) {
decoded.parentProductId = static_cast<uint8_t>(msg.parent_product_id());
}
if(msg.has_software_version_lock()) {
decoded.softwareVersionLock = versionFromProto(msg.software_version_lock());
}
return std::make_shared<MfgConfigMessage>(decoded);
}
std::vector<uint8_t> MfgConfigMessage::EncodeArgumentsForGet() {
settings::manufacturing::v1::MfgConfig msg;
msg.Clear();
return protoapi::getPayload(protoapi::Command::GET, msg);
}
+1 -1
View File
@@ -48,7 +48,7 @@ neomessage_t icsneo::CreateNeoMessage(const std::shared_ptr<Message> message) {
case Network::Type::AutomotiveEthernet: {
neomessage_eth_t& eth = *(neomessage_eth_t*)&neomsg;
auto ethmsg = std::static_pointer_cast<EthernetMessage>(message);
eth.preemptionFlags = ethmsg->preemptionFlags;
eth.preemptionFlags = ethmsg->preemptionFlags.value_or(0);
eth.status.incompleteFrame = ethmsg->frameTooShort;
// TODO Fill in extra status bits
//eth.status.xyz = ethmsg->preemptionEnabled;
@@ -0,0 +1,27 @@
#include "icsneo/communication/message/spiportkeymessage.h"
#include "icsneo/communication/message/extendedresponsemessage.h"
#include "icsneo/communication/command.h"
#include "icsneo/communication/network.h"
using namespace icsneo;
std::shared_ptr<SPIPortKeyMessage> SPIPortKeyMessage::DecodeToMessage(const std::vector<uint8_t>& bytestream) {
if(bytestream.size() < sizeof(ExtendedResponseMessage::ResponseHeader))
return nullptr;
const auto* hdr = reinterpret_cast<const ExtendedResponseMessage::ResponseHeader*>(bytestream.data());
if(hdr->command != ExtendedCommand::ExecuteSPIPortKeyOperation)
return nullptr;
const size_t required = sizeof(ExtendedResponseMessage::ResponseHeader) + sizeof(SPIPortKeyPacket);
if(bytestream.size() < required)
return nullptr;
auto msg = std::make_shared<SPIPortKeyMessage>();
const auto* packet = reinterpret_cast<const SPIPortKeyPacket*>(bytestream.data() + sizeof(ExtendedResponseMessage::ResponseHeader));
msg->isKeyLoaded = packet->isKeyLoaded;
return msg;
}
+68 -29
View File
@@ -7,31 +7,6 @@
using namespace icsneo;
// copied.. TODO
static std::optional<uint8_t> CAN_LengthToDLC(size_t dataLength, bool fd) {
if(dataLength <= 8)
return uint8_t(dataLength);
if(fd) {
if(dataLength <= 12)
return uint8_t(0x9);
if(dataLength <= 16)
return uint8_t(0xA);
if(dataLength <= 20)
return uint8_t(0xB);
if(dataLength <= 24)
return uint8_t(0xC);
if(dataLength <= 32)
return uint8_t(0xD);
if(dataLength <= 48)
return uint8_t(0xE);
if(dataLength <= 64)
return uint8_t(0xF);
}
return std::nullopt;
}
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) {
@@ -127,10 +102,72 @@ static std::vector<uint8_t> EncodeFromMessageCAN(std::shared_ptr<Frame> frame, c
return encoded;
}
static std::vector<uint8_t> EncodeFromMessageLIN(std::shared_ptr<Frame> /* frame */, const device_eventhandler_t& report) {
// TODO
report(APIEvent::Type::UnsupportedTXNetwork, APIEvent::Severity::Error);
return {};
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.TXCommander = 1;
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) {
@@ -152,6 +189,8 @@ std::vector<uint8_t> TransmitMessage::EncodeFromMessage(std::shared_ptr<Frame> f
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());
@@ -142,6 +142,8 @@ void MultiChannelCommunication::hidReadTask() {
dispatchMessage(msg);
break;
}
default:
break;
}
if(currentQueue == nullptr) {
+6 -2
View File
@@ -29,8 +29,7 @@ static std::optional<uint8_t> CAN_DLCToLength(uint8_t length, bool fd) {
return std::nullopt;
}
static std::optional<uint8_t> CAN_LengthToDLC(size_t dataLength, bool fd)
{
std::optional<uint8_t> icsneo::CAN_LengthToDLC(size_t dataLength, bool fd) {
if (dataLength <= 8)
return uint8_t(dataLength);
@@ -120,7 +119,12 @@ std::shared_ptr<Message> HardwareCANPacket::DecodeToMessage(const std::vector<ui
}
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;
+22 -15
View File
@@ -1,6 +1,7 @@
#include "icsneo/communication/packet/ethernetpacket.h"
#include <algorithm>
#include <iostream>
#include <optional>
using namespace icsneo;
@@ -24,9 +25,6 @@ std::shared_ptr<EthernetMessage> HardwareEthernetPacket::DecodeToMessage(const s
message.transmitted = packet->eid.TXMSG;
if(message.transmitted)
message.description = packet->stats;
message.preemptionEnabled = packet->header.PREEMPTION_ENABLED;
if(message.preemptionEnabled)
message.preemptionFlags = (uint8_t)((rawWords[0] & 0x03F8) >> 4);
message.frameTooShort = packet->header.RUNT_FRAME;
message.noPadding = !packet->header.ENABLE_PADDING;
message.fcsVerified = packet->header.FCS_VERIFIED;
@@ -39,15 +37,21 @@ std::shared_ptr<EthernetMessage> HardwareEthernetPacket::DecodeToMessage(const s
// 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);
}
// Check if this is a T1S packet and populate T1S-specific fields
message.isT1S = packet->header.T1S_ETHERNET;
if(message.isT1S) {
message.isT1SSymbol = packet->eid.T1S_SYMBOL;
message.isT1SBurst = packet->eid.T1S_BURST;
message.txCollision = packet->t1s_status.TXCollision;
message.isT1SWake = packet->t1s_status.T1SWake;
message.t1sNodeId = packet->t1s_node.T1S_NODE_ID;
message.t1sBurstCount = packet->t1s_node.T1S_BURST_COUNT;
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);
@@ -72,7 +76,7 @@ bool HardwareEthernetPacket::EncodeFromMessage(const EthernetMessage& message, s
if(description & 0x8000)
return false;
const bool preempt = message.preemptionEnabled;
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
@@ -121,12 +125,15 @@ bool HardwareEthernetPacket::EncodeFromMessage(const EthernetMessage& message, s
uint8_t flags = 0x00;
if(!message.noPadding) flags |= FLAG_PADDING;
if(message.fcs) flags |= FLAG_FCS;
if(message.preemptionEnabled) flags |= FLAG_PREEMPTION;
if(message.preemptionFlags.has_value()) {
flags |= FLAG_PREEMPTION;
}
bytestream.push_back(flags);
if(preempt)
bytestream.push_back(static_cast<uint8_t>(message.preemptionFlags));
if(preempt) {
bytestream.push_back(message.preemptionFlags.value());
}
bytestream.insert(bytestream.end(), message.data.begin(), message.data.end());
+17 -5
View File
@@ -72,18 +72,30 @@ std::shared_ptr<Message> HardwareLINPacket::DecodeToMessage(const std::vector<ui
static_cast<bool>(packet->CoreMiniBitsLIN.UpdateResponderOnce),
static_cast<bool>(packet->CoreMiniBitsLIN.HasUpdatedResponderOnce),
static_cast<bool>(packet->CoreMiniBitsLIN.BusRecovered),
static_cast<bool>(packet->CoreMiniBitsLIN.BreakOnly)
static_cast<bool>(packet->CoreMiniBitsLIN.BreakOnly),
static_cast<bool>(packet->CoreMiniBitsLIN.WakeupRequest)
};
if(msg->statusFlags.TxCommander || msg->statusFlags.TxResponder)
// Wake type only for a wake-only pulse. A UART/LIN break or a complete
// frame may also carry WakeupRequest; those keep their existing type.
const bool wakeupPulse = msg->statusFlags.WakeupRequest &&
packet->CoreMiniBitsLIN.len == 0 &&
packet->CoreMiniBitsLIN.ID == 0 &&
!msg->statusFlags.BreakOnly &&
!msg->errFlags.ErrRxBreakOnly &&
!msg->errFlags.ErrRxBreakSyncOnly;
if(wakeupPulse)
msg->linMsgType = LINMessage::Type::LIN_WAKEUP_REQUEST;
else if(msg->statusFlags.TxCommander || msg->statusFlags.TxResponder)
msg->linMsgType = LINMessage::Type::LIN_COMMANDER_MSG;
else if(msg->statusFlags.BreakOnly)
msg->linMsgType = LINMessage::Type::LIN_BREAK_ONLY;
if( msg->errFlags.ErrRxBreakOnly || msg->errFlags.ErrRxBreakSyncOnly ||
if( !wakeupPulse &&
(msg->errFlags.ErrRxBreakOnly || msg->errFlags.ErrRxBreakSyncOnly ||
msg->errFlags.ErrTxRxMismatch || msg->errFlags.ErrRxBreakNotZero ||
msg->errFlags.ErrRxBreakTooShort || msg->errFlags.ErrRxSyncNot55 ||
msg->errFlags.ErrRxDataLenOver8 || msg->errFlags.ErrFrameSync ||
msg->errFlags.ErrFrameMessageID || msg->errFlags.ErrChecksumMatch ||
msg->errFlags.ErrFrameResponderData )
msg->errFlags.ErrFrameResponderData) )
{ msg->linMsgType = LINMessage::Type::LIN_ERROR; }
msg->timestamp = packet->timestamp;
@@ -103,7 +115,7 @@ bool HardwareLINPacket::EncodeFromMessage(LINMessage& message, std::vector<uint8
}
case LINMessage::Type::LIN_BREAK_ONLY:
{
size |= 0x20u;
size |= 0x80u | 0x20u;
break;
}
case LINMessage::Type::NOT_SET:
+1 -1
View File
@@ -80,7 +80,7 @@ bool Packetizer::input(RingBuffer& bytes) {
* end of the payload. The short packet length, for reference, only encompasses the length of the actual
* payload, and not the header or checksum.
*/
if(packetLength < 6 || packetLength > 4000) {
if(packetLength < 6 || packetLength > std::numeric_limits<uint16_t>::max()) {
bytes.pop_front();
EventManager::GetInstance().add(APIEvent::Type::FailedToRead, APIEvent::Severity::Error);
state = ReadState::SearchForHeader;
+37 -9
View File
@@ -230,6 +230,7 @@ MACsecConfig::MACsecConfig(const DeviceType& deviceType) : type(deviceType) {
case icsneo::DeviceType::Enum::RADMoon2:
case icsneo::DeviceType::Enum::RADMoon3:
case icsneo::DeviceType::Enum::RADEpsilon:
case icsneo::DeviceType::Enum::RADGigastar2:
maxSecY = 2;
maxRule = 2;
maxSa = 4;
@@ -285,14 +286,29 @@ int MACsecConfig::addTxSecY(const MACsecTxSecY& secY, uint8_t saIndex) {
}
int MACsecConfig::addRxSa(const MACsecRxSa& sa) {
// Validate AN is in valid range
if(sa.an > 3) {
ReportEvent(APIEvent::Type::MACsecSaLimit, APIEvent::Severity::Error);
return -1;
}
// Check if we've exceeded the maximum SA count
if(rxSa.size() >= maxSa) {
ReportEvent(APIEvent::Type::MACsecSaLimit, APIEvent::Severity::Error);
return -1;
}
int ret = static_cast<int>(rxSa.size());
rxSa.emplace_back(sa);
return ret;
// Ensure vector is large enough to hold index sa.an (sparse array)
// This allows SA index to match the AN value from the MACsec SecTAG
if(rxSa.size() <= sa.an) {
rxSa.resize(sa.an + 1);
}
// Mark it enabled; padding slots created by resize() above default to enabled=false.
rxSa[sa.an] = sa;
rxSa[sa.an].enabled = true;
return sa.an;
}
int MACsecConfig::addTxSa(const MACsecTxSa& sa) {
@@ -603,13 +619,23 @@ static void SetHardwareRxSecY(
hwSc->enable = 0x1u;
hwSc->secYIndex = index;
hwSc->enable_auto_rekey = rekeyEnabled ? 0x1u : 0x0u;
hwSc->sa_index0 = saIndices.first;
hwSc->sa_index1 = saIndices.second;
hwSc->sa_index0_in_use = 0x1u;
hwSc->sa_index1_in_use = rekeyEnabled ? 0x1u : 0x0u;
hwSc->isActiveSA1 = rekeyEnabled ? 0x1u : 0x0u;
hwSc->sci = secY.sci;
if(saIndices.first & 0x1u) {
hwSc->sa_index0 = rekeyEnabled ? saIndices.second : saIndices.first;
hwSc->sa_index1 = saIndices.first;
hwSc->sa_index0_in_use = rekeyEnabled ? 0x1u : 0x0u;
hwSc->sa_index1_in_use = 0x1u;
hwSc->isActiveSA1 = rekeyEnabled ? 0x0u : 0x1u;
} else {
hwSc->sa_index0 = saIndices.first;
hwSc->sa_index1 = saIndices.second;
hwSc->sa_index0_in_use = 0x1u;
hwSc->sa_index1_in_use = rekeyEnabled ? 0x1u : 0x0u;
hwSc->isActiveSA1 = rekeyEnabled ? 0x1u : 0x0u;
}
hwMap->index = index;
hwMap->enable = 0x1u;
hwMap->secYIndex = index;
@@ -638,7 +664,9 @@ static void SetHardwareRxSa(MACSEC_SETTINGS_W_HDR* hwSettings, const MACsecRxSa&
MACSecSa_t* hwSa = &hwSettings->macsec.rx.sa[index];
hwSa->index = index;
hwSa->enable = 0x1u;
hwSa->enable = sa.enabled ? 0x1u : 0x0u;
if(!sa.enabled)
return;
memcpy(hwSa->sak, sa.sak.data(), 32);
memcpy(hwSa->hashKey, sa.hashKey.data(), 16);
memcpy(hwSa->salt, sa.salt.data(), 12);
+426 -151
View File
@@ -1,4 +1,5 @@
#include <sstream>
#include <iomanip>
#include "icsneo/api/eventmanager.h"
#include "icsneo/communication/message/filter/main51messagefilter.h"
#include "icsneo/communication/message/extendedresponsemessage.h"
@@ -7,6 +8,7 @@
#include "icsneo/disk/fat.h"
#include "icsneo/communication/message/filter/extendedresponsefilter.h"
#include "icsneo/communication/message/networkmutexmessage.h"
#include "icsneo/communication/message/mfgconfigmessage.h"
#include "icsneo/communication/message/transmitmessage.h"
#ifdef _MSC_VER
@@ -91,10 +93,6 @@ Device::~Device() {
disableMessagePolling();
if(isOpen())
close();
if(heartbeatThread.joinable()) {
stopHeartbeatThread = true;
heartbeatThread.join();
}
}
uint16_t Device::getTimestampResolution() const {
@@ -181,12 +179,11 @@ bool Device::getMessages(std::vector<std::shared_ptr<Message>>& container, size_
if(container.size() < limit)
container.resize(limit);
size_t actuallyRead;
if(timeout != std::chrono::milliseconds(0))
actuallyRead = pollingContainer.wait_dequeue_bulk_timed(container.data(), limit, timeout);
else
actuallyRead = pollingContainer.try_dequeue_bulk(container.data(), limit);
size_t actuallyRead = 0;
if(pollingContainer.wait_dequeue_timed(container.front(), timeout)) {
actuallyRead = 1; // Account for the first message we already dequeued
actuallyRead += pollingContainer.try_dequeue_bulk(container.data() + 1, limit - 1);
}
if(container.size() > actuallyRead)
container.resize(actuallyRead);
@@ -242,12 +239,12 @@ std::vector<VersionReport> Device::getChipVersions(bool refreshComponents) {
auto& version = chipVersions.back();
auto disectedVersion = disectVersion(component.dotVersion);
version.id = chipInfo.id;
version.name = chipInfo.name;
version.major = disectedVersion[0];
version.minor = disectedVersion[1];
version.id = chipInfo.id;
version.name = chipInfo.name;
version.major = disectedVersion[0];
version.minor = disectedVersion[1];
version.maintenance = disectedVersion[2];
version.build = disectedVersion[3];
version.build = disectedVersion[3];
}
}
}
@@ -267,12 +264,12 @@ std::vector<VersionReport> Device::getChipVersions(bool refreshComponents) {
chipVersions.emplace_back();
auto& version = chipVersions.back();
version.id = chipInfo.id;
version.name = chipInfo.name;
version.major = appVer->major;
version.minor = appVer->minor;
version.id = chipInfo.id;
version.name = chipInfo.name;
version.major = appVer->major;
version.minor = appVer->minor;
version.maintenance = 0;
version.build = 0;
version.build = 0;
}
}
return chipVersions;
@@ -288,6 +285,8 @@ bool Device::open(OpenFlags flags, OpenStatusHandler handler) {
return false;
}
startHeartbeat();
APIEvent::Type attemptErr = attemptToBeginCommunication();
if(attemptErr != APIEvent::Type::NoErrorFound) {
// We could not communicate with the device, let's see if an extension can
@@ -334,79 +333,6 @@ bool Device::open(OpenFlags flags, OpenStatusHandler handler) {
EventManager::GetInstance().cancelErrorDowngradingOnCurrentThread();
}
MessageFilter filter;
filter.includeInternalInAny = true;
internalHandlerCallbackID = com->addMessageCallback(std::make_shared<MessageCallback>(filter, [this](std::shared_ptr<Message> message) {
handleInternalMessage(message);
}));
// Clear the previous heartbeat thread, in case open() was called on this instance more than once
if(heartbeatThread.joinable())
heartbeatThread.join();
stopHeartbeatThread = false;
heartbeatThread = std::thread([this]() {
EventManager::GetInstance().downgradeErrorsOnCurrentThread();
MessageFilter filter;
filter.includeInternalInAny = true;
std::condition_variable heartbeatCV;
std::mutex receivedMessageMutex;
bool receivedMessage = false;
auto messageReceivedCallbackID = com->addMessageCallback(std::make_shared<MessageCallback>(filter, [&](std::shared_ptr<Message>) {
{
std::scoped_lock<std::mutex> lk(receivedMessageMutex);
receivedMessage = true;
}
heartbeatCV.notify_all();
}));
// Give the device time to get situated
auto i = 150;
while(!stopHeartbeatThread && i != 0) {
std::this_thread::sleep_for(std::chrono::milliseconds(50));
i--;
}
while(!stopHeartbeatThread) {
std::unique_lock<std::mutex> recvLk(receivedMessageMutex);
// Wait for 110ms for a possible heartbeat
if(heartbeatCV.wait_for(recvLk, std::chrono::milliseconds(110), [&]() { return receivedMessage; })) {
receivedMessage = false;
} else if(!stopHeartbeatThread) { // Add this condition here in case the thread was stopped while waiting for the last message
// Some communication, such as the bootloader and extractor interfaces, must
// redirect the input stream from the device as it will no longer be in the
// packet format we expect here. As a result, status updates will not reach
// us here and suppressDisconnects() must be used. We don't want to request
// a status and then redirect the stream, as we'll then be polluting an
// otherwise quiet stream. This lock makes sure suppressDisconnects() will
// block until we've either gotten our status update or disconnected from
// the device.
std::unique_lock<std::mutex> lk(heartbeatMutex);
if(heartbeatSuppressed()) continue;
// No heartbeat received, request a status
com->sendCommand(Command::RequestStatusUpdate);
// Check if we got a message, and if not, if settings are being applied
if(heartbeatCV.wait_for(recvLk, std::chrono::milliseconds(3500), [&](){ return receivedMessage; })) {
receivedMessage = false;
} else {
if(!stopHeartbeatThread && !isDisconnected()) {
close();
report(APIEvent::Type::DeviceDisconnected, APIEvent::Severity::Error);
}
break;
}
}
}
com->removeMessageCallback(messageReceivedCallbackID);
});
if(supportsLiveData())
clearAllLiveData();
@@ -503,7 +429,7 @@ bool Device::close() {
return false;
}
stopHeartbeatThread = true;
stopHeartbeat();
if (isMessagePollingEnabled()) {
disableMessagePolling();
@@ -534,33 +460,17 @@ bool Device::goOnline() {
if(!enableNetworkCommunication(true, onlineTimeoutMs))
return false;
auto startTime = std::chrono::system_clock::now();
ledState = LEDState::Online;
updateLEDState();
std::shared_ptr<MessageFilter> filter = std::make_shared<MessageFilter>(Network::NetID::Reset_Status);
filter->includeInternalInAny = true;
// (re)start the keeponline
keeponline = std::make_unique<Periodic>([this] {
static std::vector<uint8_t> timeoutBytes = std::vector<uint8_t>((uint8_t*)&onlineTimeoutMs, (uint8_t*)&onlineTimeoutMs + sizeof(onlineTimeoutMs));
return com->sendCommand(Command::KeepAlive, timeoutBytes);
}, std::chrono::milliseconds(onlineTimeoutMs / 4));
// Wait until communication is enabled or 5 seconds, whichever comes first
while((std::chrono::system_clock::now() - startTime) < std::chrono::seconds(5)) {
if(latestResetStatus && latestResetStatus->comEnabled)
break;
bool failOut = false;
com->waitForMessageSync([this, &failOut]() {
if(!com->sendCommand(Command::RequestStatusUpdate)) {
failOut = true;
return false;
}
return true;
}, filter, std::chrono::milliseconds(100));
if(failOut)
return false;
}
if(supportsNetworkMutex()) {
if(supportsNetworkMutex) {
assignedClientId = com->getClientIDSync();
if(assignedClientId) {
std::set<Network::NetID> nets;
@@ -575,41 +485,46 @@ bool Device::goOnline() {
case NetworkMutexEvent::Acquired:
lockedNetworks.emplace(*netMutexMsg->networks.begin());
break;
case NetworkMutexEvent::Expired:
case NetworkMutexEvent::Preempted:
case NetworkMutexEvent::Released: {
auto it = lockedNetworks.find(*netMutexMsg->networks.begin());
if (it != lockedNetworks.end())
lockedNetworks.erase(it);
break;
}
case NetworkMutexEvent::Queued:
break;
}
}
});
}
}
// (re)start the keeponline
keeponline = std::make_unique<Periodic>([this] {
static std::vector<uint8_t> timeoutBytes = std::vector<uint8_t>((uint8_t*)&onlineTimeoutMs, (uint8_t*)&onlineTimeoutMs + sizeof(onlineTimeoutMs));
return com->sendCommand(Command::KeepAlive, timeoutBytes);
}, std::chrono::milliseconds(onlineTimeoutMs / 4));
online = true;
// restart the heartbeat in online mode
restartHeartbeat();
forEachExtension([](const std::shared_ptr<DeviceExtension>& ext) { ext->onGoOnline(); return true; });
return true;
}
bool Device::goOffline() {
online = false;
keeponline.reset();
// restart the heartbeat in offline mode
restartHeartbeat();
if(networkMutexCallbackHandle)
removeMessageCallback(*networkMutexCallbackHandle);
forEachExtension([](const std::shared_ptr<DeviceExtension>& ext) { ext->onGoOffline(); return true; });
if(isDisconnected()) {
online = false;
return true;
}
@@ -625,8 +540,6 @@ bool Device::goOffline() {
updateLEDState();
online = false;
return true;
}
@@ -737,15 +650,17 @@ bool Device::uploadCoremini(std::istream& stream, Disk::MemoryType memType) {
return false;
}
auto connected = isLogicalDiskConnected();
if(!connected) {
return false; // Already added an API error
}
if(!(*connected)) {
report(APIEvent::Type::DiskNotConnected, APIEvent::Severity::Error);
return false;
if (memType == Disk::MemoryType::SD) {
auto connected = isLogicalDiskConnected();
if(!connected) {
return false; // Already added an API error
}
if(!(*connected)) {
report(APIEvent::Type::DiskNotConnected, APIEvent::Severity::Error);
return false;
}
}
if(!stopScript()) {
@@ -756,7 +671,6 @@ bool Device::uploadCoremini(std::istream& stream, Disk::MemoryType memType) {
return false;
}
if(!eraseScriptMemory(memType, static_cast<uint64_t>(bin.size()))) {
return false;
}
@@ -846,10 +760,12 @@ std::optional<CoreminiHeader> Device::readCoreminiHeader(Disk::MemoryType memTyp
return std::nullopt;
}
auto connected = isLogicalDiskConnected();
if(!connected) {
return std::nullopt; // Already added an API error
if (memType == Disk::MemoryType::SD) {
auto connected = isLogicalDiskConnected();
if(!connected) {
return std::nullopt; // Already added an API error
}
}
#pragma pack(push, 2)
@@ -1008,6 +924,36 @@ std::shared_ptr<HardwareInfo> Device::getHardwareInfo(std::chrono::milliseconds
return hardwareInfo;
}
std::shared_ptr<MfgConfigMessage> Device::getMfgConfig() {
if(!isOpen()) {
report(APIEvent::Type::DeviceCurrentlyClosed, APIEvent::Severity::Error);
return nullptr;
}
std::vector<uint8_t> payload = MfgConfigMessage::EncodeArgumentsForGet();
auto response = com->waitForMessageSync(
[this, payload]() {
return com->sendCommand(ExtendedCommand::ProtobufAPI, payload);
},
std::make_shared<MessageFilter>(Message::Type::MfgConfig),
std::chrono::milliseconds(250)
);
if(!response) {
report(APIEvent::Type::Timeout, APIEvent::Severity::Error);
return nullptr;
}
auto mfgConfig = std::dynamic_pointer_cast<MfgConfigMessage>(response);
if(!mfgConfig) {
report(APIEvent::Type::UnexpectedResponse, APIEvent::Severity::Error);
return nullptr;
}
return mfgConfig;
}
std::optional<uint64_t> Device::readLogicalDisk(uint64_t pos, uint8_t* into, uint64_t amount, std::chrono::milliseconds timeout, Disk::MemoryType memType) {
if(!into || timeout <= std::chrono::milliseconds(0)) {
@@ -1985,11 +1931,9 @@ void Device::stopScriptStatusThreadIfNecessary(std::unique_lock<std::mutex> lk)
}
Lifetime Device::suppressDisconnects() {
std::lock_guard<std::mutex> lk(heartbeatMutex);
heartbeatSuppressedByUser++;
stopHeartbeat();
return Lifetime([this] {
std::lock_guard<std::mutex> lk2(heartbeatMutex);
heartbeatSuppressedByUser--;
startHeartbeat();
});
}
@@ -2125,6 +2069,18 @@ std::optional<EthPhyMessage> Device::sendEthPhyMsg(const EthPhyMessage& message,
return std::make_optional<EthPhyMessage>(*retMsg);
}
bool Device::sendSPIPortKeyOperation(uint8_t portIndex, SPIPortKeyMessage::Operation op, std::array<uint8_t, 16> key) {
std::vector<uint8_t> args(sizeof(SPIPortKeyMessage::SPIPortKeyPacket));
auto& params = *reinterpret_cast<SPIPortKeyMessage::SPIPortKeyPacket*>(args.data());
params.op = op;
params.portIndex = portIndex;
std::copy(key.begin(), key.end(), params.key);
if(!com->sendCommand(ExtendedCommand::ExecuteSPIPortKeyOperation, args)) {
return false;
}
return true;
}
std::optional<bool> Device::SetRootDirectoryEntryFlags(uint8_t mask, uint8_t values, uint32_t collectionEntryByteAddress)
{
if(!supportsWiVI())
@@ -2254,6 +2210,45 @@ bool Device::setRTC(const std::chrono::time_point<std::chrono::system_clock>& ti
return m51msg->data.front();
}
std::optional<std::vector<uint8_t>> Device::getPCBSerial() {
auto serialMsg = com->getSerialNumberSync();
if(!serialMsg || !serialMsg->hasPCBSerial) {
return std::nullopt;
}
return std::vector<uint8_t>(serialMsg->pcbSerial, serialMsg->pcbSerial + sizeof(serialMsg->pcbSerial));
}
std::unordered_map<Network::NetID, MACAddress> Device::getMACAddresses() {
if(supportsGetAllMACAddresses()) {
if(!isOpen()) {
report(APIEvent::Type::DeviceCurrentlyClosed, APIEvent::Severity::Error);
return {};
}
auto msg = com->waitForMessageSync(
[this](){ return com->sendCommand(ExtendedCommand::GetAllMACAddresses, {}); },
std::make_shared<MessageFilter>(Message::Type::AllMACAddresses),
std::chrono::milliseconds(100)
);
if(msg) {
const auto typed = std::dynamic_pointer_cast<AllMACAddressesMessage>(msg);
if(typed)
return typed->addresses;
}
}
auto serialMsg = com->getSerialNumberSync();
if(!serialMsg || !serialMsg->hasMacAddress)
return {};
std::unordered_map<Network::NetID, MACAddress> addresses;
auto addr = serialMsg->macAddress;
MACAddress arrAddr;
std::copy(addr, addr + MACAddressLength, arrAddr.begin());
addresses.emplace(std::make_pair(Network::NetID::ETHERNET_01, arrAddr));
return addresses;
}
std::optional<std::set<SupportedFeature>> Device::getSupportedFeatures() {
auto timeout = std::chrono::milliseconds(100);
std::shared_ptr<Message> msg = com->waitForMessageSync(
@@ -3255,11 +3250,12 @@ bool Device::findVSAOffsetFromTimepoint(ICSClock::time_point point, uint64_t& vs
std::shared_ptr<VSA> midRecord;
auto midRecordStatus = parser.getRecordFromBytes(buffer.data(), Disk::SectorSize, midRecord);
switch(midRecordStatus) {
case VSAParser::RecordParseStatus::NotARecordStart:
case VSAParser::RecordParseStatus::NotARecordStart: {
// This part of the buffer does not contain records
rightIndex = midIndex - 1;
continue;
case VSAParser::RecordParseStatus::ConsecutiveExtended:
}
case VSAParser::RecordParseStatus::ConsecutiveExtended: {
// We dropped in the middle of an extended message record
auto extendedRecord = std::dynamic_pointer_cast<VSAExtendedMessage>(midRecord);
uint64_t pos = readPos;
@@ -3274,6 +3270,9 @@ bool Device::findVSAOffsetFromTimepoint(ICSClock::time_point point, uint64_t& vs
midIndex = (pos - firstOffset) / Disk::SectorSize;
midRecord = extendedRecord;
break;
}
default:
break;
}
if(midIndex <= leftIndex) {
// Extended records cause problems with binary search
@@ -3696,6 +3695,15 @@ bool Device::requestTC10Sleep(Network::NetID network) {
return typed->response == ExtendedResponse::OK;
}
bool Device::reboot(bool safe) {
if(!supportsReboot()) {
report(APIEvent::Type::NotSupported, APIEvent::Severity::Error);
return false;
}
// The device reboots in response to this command, so no reply is expected.
return com->sendCommand(ExtendedCommand::Reboot, { uint8_t(safe ? 1 : 0) });
}
std::optional<TC10StatusMessage> Device::getTC10Status(Network::NetID network) {
if(!supportsTC10()) {
report(APIEvent::Type::NotSupported, APIEvent::Severity::Error);
@@ -3817,7 +3825,7 @@ bool Device::formatDisk(const DiskDetails& config, const DiskFormatProgress& han
return com->sendCommand(ExtendedCommand::DiskFormatProgress, {});
},
std::make_shared<ExtendedResponseFilter>(ExtendedCommand::DiskFormatProgress),
std::chrono::milliseconds(1000)
std::chrono::milliseconds(5000)
);
if(!response) {
@@ -3909,7 +3917,7 @@ std::shared_ptr<DiskDetails> Device::getDiskDetails(std::chrono::milliseconds ti
[[nodiscard]] std::optional<int> Device::lockNetworks(const std::set<Network::NetID>& networks, uint32_t priority, uint32_t ttlMs, NetworkMutexType type, std::function<void(std::shared_ptr<Message>)>&& on_event)
{
if(!supportsNetworkMutex()) {
if(!supportsNetworkMutex) {
report(APIEvent::Type::NotSupported, APIEvent::Severity::Error);
return std::nullopt;
}
@@ -3959,7 +3967,7 @@ std::shared_ptr<DiskDetails> Device::getDiskDetails(std::chrono::milliseconds ti
bool Device::unlockNetworks(const std::set<Network::NetID>& networks)
{
if(!supportsNetworkMutex()) {
if(!supportsNetworkMutex) {
report(APIEvent::Type::NotSupported, APIEvent::Severity::Error);
return false;
}
@@ -3999,7 +4007,7 @@ bool Device::unlockNetworks(const std::set<Network::NetID>& networks)
std::shared_ptr<NetworkMutexMessage> Device::getNetworkMutexStatus(Network::NetID network)
{
if(!supportsNetworkMutex()) {
if(!supportsNetworkMutex) {
report(APIEvent::Type::NotSupported, APIEvent::Severity::Error);
return nullptr;
}
@@ -4021,7 +4029,7 @@ std::shared_ptr<NetworkMutexMessage> Device::getNetworkMutexStatus(Network::NetI
[[nodiscard]] std::optional<int> Device::lockAllNetworks(uint32_t priority, uint32_t ttlMs, NetworkMutexType type, std::function<void(std::shared_ptr<Message>)>&& on_event)
{
if(!supportsNetworkMutex()) {
if(!supportsNetworkMutex) {
report(APIEvent::Type::NotSupported, APIEvent::Severity::Error);
return std::nullopt;
}
@@ -4068,7 +4076,7 @@ std::shared_ptr<NetworkMutexMessage> Device::getNetworkMutexStatus(Network::NetI
bool Device::unlockAllNetworks()
{
if(!supportsNetworkMutex()) {
if(!supportsNetworkMutex) {
report(APIEvent::Type::NotSupported, APIEvent::Severity::Error);
return false;
}
@@ -4105,3 +4113,270 @@ bool Device::unlockAllNetworks()
return true;
}
void Device::startHeartbeat() {
if(!heartbeat)
heartbeat = std::make_unique<Heartbeat>(*this);
}
void Device::stopHeartbeat() {
heartbeat.reset();
}
void Device::restartHeartbeat() {
stopHeartbeat();
startHeartbeat();
}
bool Device::iso15765Enable(const Network& network) {
return J2534_EnableIso15765(network, true);
}
bool Device::iso15765DisableAll(void) {
bool ok = true;
for(const auto& slot : iso15765FirmwareEnabled)
{
if (slot.second)
{
if (!J2534_EnableIso15765(slot.first, false))
ok = false;
}
}
return ok;
}
bool Device::iso15765TransmitMessage(const Network& network, const Iso15765MessageArgs& msg, const std::chrono::milliseconds& timeout) {
if (!isOnline())
return false;
if(iso15765FirmwareEnabled.find(network) == iso15765FirmwareEnabled.end() || !iso15765FirmwareEnabled[network])
return false;
bool result;
Iso15765TxSetupMessage setupMsg;
//Set the network ID to use
if(const auto& coreMiniId = network.getCoreMini())
setupMsg.setCoreMiniId((uint16_t)*coreMiniId);
const uint8_t txIndex = msg.getTxIndex();
setupMsg.setIdx(txIndex);
setupMsg.setId(msg.getArbId().Id);
setupMsg.setFcId(msg.getFlowControlArbId().Id);
setupMsg.setFcIdMask(msg.getFlowControlArbIdMask());
setupMsg.setFsTimeout(msg.getFsTimeout());
setupMsg.setFsWait(msg.getFsWaitTimeout());
const uint32_t messageLength = (uint32_t)msg.getData().size();
setupMsg.setMessageLength(messageLength);
setupMsg.setIs29BitEnabled(msg.getArbId().Is29Bit);
setupMsg.setIsFc29BitEnabled(msg.getFlowControlArbId().Is29Bit);
if(const auto& extAddress = msg.getExtendedAddress())
{
setupMsg.setExtAddressEnabled(true);
setupMsg.setExtendedAddress(*extAddress);
}
if(const auto& extFcAddress = msg.getFlowControlExtendedAddress())
{
setupMsg.setFcExtAddressEnabled(true);
setupMsg.setFlowControlExtendedAddress(*extFcAddress);
}
if(const auto& stMin = msg.getStMin())
{
setupMsg.setOverrideStMin(true);
setupMsg.setStMin(*stMin);
}
if(const auto& blockSize = msg.getBlockSize())
{
setupMsg.setOverrideBlockSize(true);
setupMsg.setBlockSize(*blockSize);
}
if(const auto& padding = msg.getPaddingValue())
{
setupMsg.setPaddingEnabled(true);
setupMsg.setPadding(*padding);
}
setupMsg.setIsBrsEnabled(msg.getIsBrsEnabled());
setupMsg.setIsCanFd(msg.getIsCanFd());
setupMsg.setTxDl(msg.getTxDl());
{
uint32_t octetsToSend = messageLength;
const uint8_t* payload = msg.getData().data();
uint32_t offset = 0;
result = J2534_Transaction(network, std::move(setupMsg), timeout);
while(result && octetsToSend)
{
const uint16_t chunkSize = (uint16_t)std::min((uint32_t)Iso15765TxDataMessage::MaxDataLength, octetsToSend);
Iso15765TxDataMessage dataMsg;
dataMsg.setIdx(txIndex);
dataMsg.setOffset(offset);
dataMsg.setData(&payload[offset], chunkSize);
result = J2534_Transaction(network, std::move(dataMsg), timeout);
offset += chunkSize;
octetsToSend -= chunkSize;
}
}
return result;
}
bool Device::iso15765SetupRxFlowControl(const Network& network, const Iso15765MessageArgs& msg) {
if (!isOnline())
return false;
if(iso15765FirmwareEnabled.find(network) == iso15765FirmwareEnabled.end() || !iso15765FirmwareEnabled[network])
return false;
J2534SetupIso15765FlowControlMessage rxFlowControl;
rxFlowControl.setIsBrsEnabled(msg.getIsBrsEnabled());
rxFlowControl.setIsCanFd(msg.getIsCanFd());
rxFlowControl.setIdx(msg.getTxIndex());
if(const auto& coreMiniId = network.getCoreMini())
rxFlowControl.setCoreMiniId((uint16_t)*coreMiniId);
rxFlowControl.setEnable(true);
if(const auto& blockSize = msg.getBlockSize())
{
rxFlowControl.setBlockSize(*blockSize);
}
rxFlowControl.setCfTimeout(msg.getCfTimeout());
rxFlowControl.setFlowControlTransmissionEnabled(msg.getIsFlowControlEnabled());
if(const auto& extAddress = msg.getExtendedAddress())
{
rxFlowControl.setExtendedAddress(*extAddress);
rxFlowControl.setExtAddressEnabled(true);
}
if(const auto& fcExtAddress = msg.getFlowControlExtendedAddress())
{
rxFlowControl.setFlowControlExtendedAddress(*fcExtAddress);
rxFlowControl.setFcExtAddressEnabled(true);
}
rxFlowControl.setFcId(msg.getFlowControlArbId().Id);
rxFlowControl.setIsFc29BitEnabled(msg.getFlowControlArbId().Is29Bit);
rxFlowControl.setIs29BitEnabled(msg.getArbId().Is29Bit);
rxFlowControl.setId(msg.getArbId().Id);
rxFlowControl.setIdMask(msg.getFlowControlArbIdMask());
if(const auto& padding = msg.getPaddingValue())
{
rxFlowControl.setPadding(*padding);
rxFlowControl.setPaddingEnabled(true);
}
if(const auto& stMin = msg.getStMin())
{
rxFlowControl.setStMin(*stMin);
}
return J2534_Transaction(network, std::move(rxFlowControl), std::chrono::milliseconds(0));
}
bool Device::J2534_Transaction(const Network& network, J2534CommandMessage&& msg, const std::chrono::milliseconds& timeout) {
msg.network = network;
if (timeout.count())
{
static std::shared_ptr<MessageFilter> filter = std::make_shared<Main51MessageFilter>(Command::J2534Command);
const auto& response = com->waitForMessageSync([&](void)
{
return com->sendCommand(msg.command, msg.getArgumentData());
}, filter, timeout);
if (!response)
{
report(APIEvent::Type::NoDeviceResponse, APIEvent::Severity::Error);
return false;
}
auto responseMsg = std::dynamic_pointer_cast<Main51Message>(response);
if (!responseMsg || responseMsg->command != Command::J2534Command)
{
report(APIEvent::Type::MessageFormattingError, APIEvent::Severity::Error);
return false;
}
}
else
{
return com->sendCommand(msg.command, msg.getArgumentData());
}
// NOTE: responseMsg->data.front()
return true;
}
bool Device::J2534_ClearRxFilters(const Network& network)
{
return J2534_Transaction(network, J2534CommandMessage(J2534CommandMessage::J2534Command::SetupClearCanRxFilters, { (uint8_t)0 /* is this necessary? */}), std::chrono::milliseconds(0));
}
bool Device::J2534_SetupCanRxFilter(const Network& network, const J2534_RxCanFilter& rxCanFilter)
{
return J2534_Transaction(network, J2534SetupCanRxFilteringMessage(rxCanFilter), std::chrono::milliseconds(0));
}
bool Device::J2534_EnableFiltering(const Network& network, const bool enable)
{
return J2534_Transaction(network, J2534EnableFilteringMessage(enable), std::chrono::milliseconds(0));
}
bool Device::J2534_EnableIso15765(const Network& network, const bool enable)
{
if (iso15765FirmwareEnabled[network] == enable)
return true;
if (!J2534_Transaction(network, J2534EnableMessage(enable), std::chrono::milliseconds(0)))
return false;
iso15765FirmwareEnabled[network] = enable;
if (enable)
{
// Turn OFF filtering of CAN messages in the firmware
return J2534_EnableFirmwareUsbPassFilters(network, false);
}
return true;
}
bool Device::J2534_ClearRxFilter(const Network& network, unsigned int iIndex)
{
if (const auto& slot = iso15765FirmwareEnabled.find(network); slot != iso15765FirmwareEnabled.end() && slot->second)
{
J2534_RxCanFilter rxFilter;
memset(&rxFilter, 0, sizeof(rxFilter));
rxFilter.idx = (uint16_t)iIndex;
return J2534_SetupCanRxFilter(network, rxFilter);
}
return false;
}
bool Device::J2534_EnableFirmwareUsbPassFilters(const Network& network, const bool enable)
{
const auto& slot = iso15765FirmwareEnabled.find(network);
if (slot == iso15765FirmwareEnabled.end())
return false;
//check for disconnect here!
if (!slot->second)
{
// Tried to shut-off Rx table message filtering but FW ISO15765 was not enabled
return true; //just ignore it, no filtering can occur anyway
}
if (enable) //turning ON filtering in the Firmware based on the rx table
{
//Rx table message filtering is on by default in the firmware when m_bISO15765_FW_Enabled is true
//need to check here to see if we set index 0 to a PASS all filter (i.e. turned off USB filtering)
if (!J2534_ClearRxFilters(network))
return false;
}
// New "filtering enable" mechanism - old firmware ignores this frame
return J2534_EnableFiltering(network, enable);
}
+10 -6
View File
@@ -165,10 +165,6 @@ std::vector<std::shared_ptr<Device>> DeviceFinder::FindAll() {
makeIfSerialMatches<RADA2B>(dev, newFoundDevices);
#endif
#ifdef __RADCOMET_H_
makeIfSerialRangeMatches<RADComet>(dev, newFoundDevices);
#endif
#ifdef __RADCOMET2_H_
makeIfSerialRangeMatches<RADComet2>(dev, newFoundDevices);
#endif
@@ -245,6 +241,10 @@ std::vector<std::shared_ptr<Device>> DeviceFinder::FindAll() {
makeIfSerialMatches<RADSupermoon>(dev, newFoundDevices);
#endif
#ifdef __RADWBMS_H_
makeIfSerialMatches<RADwBMS>(dev, newFoundDevices);
#endif
#ifdef __VALUECAN3_H_
makeIfSerialRangeMatches<ValueCAN3>(dev, newFoundDevices);
#endif
@@ -340,8 +340,8 @@ const std::vector<DeviceType>& DeviceFinder::GetSupportedDevices() {
RADA2B::DEVICE_TYPE,
#endif
#ifdef __RADCOMET_H_
RADComet::DEVICE_TYPE,
#ifdef __RADCOMET2_H_
RADComet2::DEVICE_TYPE,
#endif
#ifdef __RADCOMET3_H_
@@ -408,6 +408,10 @@ const std::vector<DeviceType>& DeviceFinder::GetSupportedDevices() {
RADSupermoon::DEVICE_TYPE,
#endif
#ifdef __RADWBMS_H_
RADwBMS::DEVICE_TYPE,
#endif
#ifdef __VALUECAN3_H_
ValueCAN3::DEVICE_TYPE,
#endif
+175 -22
View File
@@ -1,9 +1,16 @@
#include "icsneo/device/device.h"
#include "icsneo/device/idevicesettings.h"
#include "icsneo/communication/message/filter/main51messagefilter.h"
#include <cstring>
using namespace icsneo;
IDeviceSettings::IDeviceSettings(Device* device, size_t size)
: device(device), report(device->report), structSize(size) {}
IDeviceSettings::IDeviceSettings(warn_t createInoperableSettings, Device* device)
: disabled(true), readonly(true), report(device->report), structSize(0) { (void)createInoperableSettings; }
std::optional<uint16_t> IDeviceSettings::CalculateGSChecksum(const std::vector<uint8_t>& settings) {
const uint16_t* p = reinterpret_cast<const uint16_t*>(settings.data());
size_t words = settings.size();
@@ -166,7 +173,7 @@ bool IDeviceSettings::refresh() {
}
std::vector<uint8_t> rxSettings;
bool ret = com->getSettingsSync(rxSettings);
bool ret = device->com->getSettingsSync(rxSettings);
if(!ret) {
report(APIEvent::Type::SettingsReadError, APIEvent::Severity::Error);
return false;
@@ -231,11 +238,11 @@ bool IDeviceSettings::apply(bool temporary) {
memcpy(bytestream.data() + 7, getMutableRawStructurePointer(), settings.size());
// Pause I/O with the device while the settings are applied
applyingSettings = true;
device->stopHeartbeat();
std::shared_ptr<Main51Message> msg = std::dynamic_pointer_cast<Main51Message>(com->waitForMessageSync([this, &bytestream]() {
return com->sendCommand(Command::SetSettings, bytestream);
}, std::make_shared<Main51MessageFilter>(Command::SetSettings), std::chrono::milliseconds(2000)));
std::shared_ptr<Main51Message> msg = std::dynamic_pointer_cast<Main51Message>(device->com->waitForMessageSync([this, &bytestream]() {
return device->com->sendCommand(Command::SetSettings, bytestream);
}, std::make_shared<Main51MessageFilter>(Command::SetSettings), std::chrono::milliseconds(5000)));
if(!msg || msg->data[0] != 1) { // We did not receive a response
// Attempt to get the settings from the device so we're up to date if possible
@@ -259,9 +266,9 @@ bool IDeviceSettings::apply(bool temporary) {
bytestream[6] = (uint8_t)(*gsChecksum >> 8);
memcpy(bytestream.data() + 7, getMutableRawStructurePointer(), settings.size());
msg = std::dynamic_pointer_cast<Main51Message>(com->waitForMessageSync([this, &bytestream]() {
return com->sendCommand(Command::SetSettings, bytestream);
}, std::make_shared<Main51MessageFilter>(Command::SetSettings), std::chrono::milliseconds(2000)));
msg = std::dynamic_pointer_cast<Main51Message>(device->com->waitForMessageSync([this, &bytestream]() {
return device->com->sendCommand(Command::SetSettings, bytestream);
}, std::make_shared<Main51MessageFilter>(Command::SetSettings), std::chrono::milliseconds(5000)));
if(!msg || msg->data[0] != 1) {
// Attempt to get the settings from the device so we're up to date if possible
if(refresh()) {
@@ -272,12 +279,12 @@ bool IDeviceSettings::apply(bool temporary) {
}
if(!temporary) {
msg = std::dynamic_pointer_cast<Main51Message>(com->waitForMessageSync([this]() {
return com->sendCommand(Command::SaveSettings);
msg = std::dynamic_pointer_cast<Main51Message>(device->com->waitForMessageSync([this]() {
return device->com->sendCommand(Command::SaveSettings);
}, std::make_shared<Main51MessageFilter>(Command::SaveSettings), std::chrono::milliseconds(5000)));
}
applyingSettings = false;
device->startHeartbeat();
refresh(); // Refresh our buffer with what the device has, whether we were successful or not
@@ -299,11 +306,11 @@ bool IDeviceSettings::applyDefaults(bool temporary) {
return false;
}
applyingSettings = true;
device->stopHeartbeat();
std::shared_ptr<Main51Message> msg = std::dynamic_pointer_cast<Main51Message>(com->waitForMessageSync([this]() {
return com->sendCommand(Command::SetDefaultSettings);
}, std::make_shared<Main51MessageFilter>(Command::SetDefaultSettings), std::chrono::milliseconds(1000)));
std::shared_ptr<Main51Message> msg = std::dynamic_pointer_cast<Main51Message>(device->com->waitForMessageSync([this]() {
return device->com->sendCommand(Command::SetDefaultSettings);
}, std::make_shared<Main51MessageFilter>(Command::SetDefaultSettings), std::chrono::milliseconds(5000)));
if(!msg || msg->data[0] != 1) {
// Attempt to get the settings from the device so we're up to date if possible
if(refresh()) {
@@ -336,9 +343,9 @@ bool IDeviceSettings::applyDefaults(bool temporary) {
bytestream[6] = (uint8_t)(*gsChecksum >> 8);
memcpy(bytestream.data() + 7, getMutableRawStructurePointer(), settings.size());
msg = std::dynamic_pointer_cast<Main51Message>(com->waitForMessageSync([this, &bytestream]() {
return com->sendCommand(Command::SetSettings, bytestream);
}, std::make_shared<Main51MessageFilter>(Command::SetSettings), std::chrono::milliseconds(2000)));
msg = std::dynamic_pointer_cast<Main51Message>(device->com->waitForMessageSync([this, &bytestream]() {
return device->com->sendCommand(Command::SetSettings, bytestream);
}, std::make_shared<Main51MessageFilter>(Command::SetSettings), std::chrono::milliseconds(5000)));
if(!msg || msg->data[0] != 1) {
// Attempt to get the settings from the device so we're up to date if possible
if(refresh()) {
@@ -349,12 +356,12 @@ bool IDeviceSettings::applyDefaults(bool temporary) {
}
if(!temporary) {
msg = std::dynamic_pointer_cast<Main51Message>(com->waitForMessageSync([this]() {
return com->sendCommand(Command::SaveSettings);
msg = std::dynamic_pointer_cast<Main51Message>(device->com->waitForMessageSync([this]() {
return device->com->sendCommand(Command::SaveSettings);
}, std::make_shared<Main51MessageFilter>(Command::SaveSettings), std::chrono::milliseconds(5000)));
}
applyingSettings = false;
device->startHeartbeat();
refresh(); // Refresh our buffer with what the device has, whether we were successful or not
@@ -959,4 +966,150 @@ bool IDeviceSettings::setMiscIOAnalogOutput(uint8_t pin, MiscIOAnalogVoltage vol
(void)voltage;
report(APIEvent::Type::SettingNotAvaiableDevice, APIEvent::Severity::Error);
return false;
}
}
std::optional<RADGPTPProfile> IDeviceSettings::getGPTPProfile() const {
const auto* gptp = getGPTPSettings();
if(!gptp) {
report(APIEvent::Type::SettingNotAvaiableDevice, APIEvent::Severity::EventWarning);
return std::nullopt;
}
return static_cast<RADGPTPProfile>(gptp->profile);
}
bool IDeviceSettings::setGPTPProfile(RADGPTPProfile profile) {
auto* gptp = getMutableGPTPSettings();
if(!gptp) {
report(APIEvent::Type::SettingNotAvaiableDevice, APIEvent::Severity::EventWarning);
return false;
}
gptp->profile = static_cast<uint8_t>(profile);
return true;
}
std::optional<RADGPTPRole> IDeviceSettings::getGPTPRole() const {
const auto* gptp = getGPTPSettings();
if(!gptp) {
report(APIEvent::Type::SettingNotAvaiableDevice, APIEvent::Severity::EventWarning);
return std::nullopt;
}
return static_cast<RADGPTPRole>(gptp->gptpPortRole);
}
bool IDeviceSettings::setGPTPRole(RADGPTPRole role) {
auto* gptp = getMutableGPTPSettings();
if(!gptp) {
report(APIEvent::Type::SettingNotAvaiableDevice, APIEvent::Severity::EventWarning);
return false;
}
gptp->gptpPortRole = static_cast<uint8_t>(role);
return true;
}
std::optional<uint8_t> IDeviceSettings::getGPTPEnabledPort() const {
const auto* gptp = getGPTPSettings();
if(!gptp) {
report(APIEvent::Type::SettingNotAvaiableDevice, APIEvent::Severity::EventWarning);
return std::nullopt;
}
return gptp->gptpEnabledPort;
}
bool IDeviceSettings::setGPTPEnabledPort(uint8_t port) {
auto* gptp = getMutableGPTPSettings();
if(!gptp) {
report(APIEvent::Type::SettingNotAvaiableDevice, APIEvent::Severity::EventWarning);
return false;
}
gptp->gptpEnabledPort = port;
return true;
}
std::optional<bool> IDeviceSettings::isGPTPClockSyntonizationEnabled() const {
const auto* gptp = getGPTPSettings();
if(!gptp) {
report(APIEvent::Type::SettingNotAvaiableDevice, APIEvent::Severity::EventWarning);
return std::nullopt;
}
return gptp->enableClockSyntonization != 0;
}
bool IDeviceSettings::setGPTPClockSyntonizationEnabled(bool enable) {
auto* gptp = getMutableGPTPSettings();
if(!gptp) {
report(APIEvent::Type::SettingNotAvaiableDevice, APIEvent::Severity::EventWarning);
return false;
}
gptp->enableClockSyntonization = enable ? 1 : 0;
return true;
}
std::optional<bool> IDeviceSettings::getLinuxBootEnabled() {
const auto* os = getLinuxSettings();
if(os == nullptr) {
report(APIEvent::Type::SettingNotAvaiableDevice, APIEvent::Severity::EventWarning);
return std::nullopt;
}
return os->allowBoot != 0;
}
bool IDeviceSettings::setLinuxBootEnabled(bool enabled) {
auto os = getMutableLinuxSettings();
if(!os) {
report(APIEvent::Type::SettingNotAvaiableDevice, APIEvent::Severity::Error);
return false;
}
(*os)->allowBoot = enabled ? 1 : 0;
return true;
}
std::optional<bool> IDeviceSettings::getExternalWifiAntennaEnabled() {
const auto* os = getLinuxSettings();
if(os == nullptr) {
report(APIEvent::Type::SettingNotAvaiableDevice, APIEvent::Severity::EventWarning);
return std::nullopt;
}
return os->useExternalWifiAntenna != 0;
}
bool IDeviceSettings::setExternalWifiAntennaEnabled(bool enabled) {
auto os = getMutableLinuxSettings();
if(!os) {
report(APIEvent::Type::SettingNotAvaiableDevice, APIEvent::Severity::Error);
return false;
}
(*os)->useExternalWifiAntenna = enabled ? 1 : 0;
return true;
}
std::optional<LinuxConfigurationPort> IDeviceSettings::getLinuxConfigurationPort() {
const auto* os = getLinuxSettings();
if(os == nullptr) {
report(APIEvent::Type::SettingNotAvaiableDevice, APIEvent::Severity::EventWarning);
return std::nullopt;
}
switch(static_cast<LinuxConfigurationPort>(os->ethConfigurationPort)) {
case LinuxConfigurationPort::ETH01:
return LinuxConfigurationPort::ETH01;
case LinuxConfigurationPort::USB:
default: // Any other value means the configuration interface is over USB
return LinuxConfigurationPort::USB;
}
}
bool IDeviceSettings::setLinuxConfigurationPort(LinuxConfigurationPort port) {
switch(port) {
case LinuxConfigurationPort::USB:
case LinuxConfigurationPort::ETH01:
break;
default:
report(APIEvent::Type::ParameterOutOfRange, APIEvent::Severity::Error);
return false;
}
auto os = getMutableLinuxSettings();
if(!os) {
report(APIEvent::Type::SettingNotAvaiableDevice, APIEvent::Severity::Error);
return false;
}
(*os)->ethConfigurationPort = static_cast<uint8_t>(port);
return true;
}
+2
View File
@@ -7,6 +7,7 @@ import subprocess
subprocess.call('cd ..; doxygen docs/icsneocpp/Doxyfile', shell=True)
subprocess.call('cd ..; doxygen docs/icsneoc/Doxyfile', shell=True)
subprocess.call('cd ..; doxygen docs/icsneoc2/Doxyfile', shell=True)
# -- Project information -----------------------------------------------------
# https://www.sphinx-doc.org/en/master/usage/configuration.html#project-information
@@ -26,6 +27,7 @@ exclude_patterns = ['_build', 'Thumbs.db', '.DS_Store']
breathe_projects = {
'icsneocpp': 'icsneocpp/doxygen/xml',
'icsneoc': 'icsneoc/doxygen/xml',
'icsneoc2': 'icsneoc2/doxygen/xml',
}
breathe_default_project = 'icsneocpp'
+1
View File
@@ -0,0 +1 @@
doxygen
+2 -2
View File
@@ -1,5 +1,5 @@
icsneoc
=======
icsneoc (deprecated, use icsneoc2)
============================
.. toctree::
:maxdepth: 2
+1
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@@ -0,0 +1 @@
doxygen
File diff suppressed because it is too large Load Diff
+12
View File
@@ -0,0 +1,12 @@
======
C2 API
======
.. doxygenfile:: icsneoc2.h
:project: icsneoc2
.. doxygenfile:: icsneoc2messages.h
:project: icsneoc2
.. doxygenfile:: icsneoc2settings.h
:project: icsneoc2
.. doxygenfile:: icsneoc2types.h
:project: icsneoc2
+124
View File
@@ -0,0 +1,124 @@
=================
icsneoc2 Examples
=================
Simple
======
:download:`Download example <../../examples/c2/simple/src/main.c>`
.. literalinclude:: ../../examples/c2/simple/src/main.c
:language: c
Supported Devices
=================
:download:`Download example <../../examples/c2/supported_devices/src/main.c>`
.. literalinclude:: ../../examples/c2/supported_devices/src/main.c
:language: c
Disk Format
===========
:download:`Download example <../../examples/c2/diskformat/src/main.c>`
.. literalinclude:: ../../examples/c2/diskformat/src/main.c
:language: c
Read Messages
=============
:download:`Download example <../../examples/c2/read_messages/src/main.c>`
.. literalinclude:: ../../examples/c2/read_messages/src/main.c
:language: c
Device Info
===========
:download:`Download example <../../examples/c2/device_info/src/main.c>`
.. literalinclude:: ../../examples/c2/device_info/src/main.c
:language: c
LIN
===
:download:`Download example <../../examples/c2/lin/src/main.c>`
.. literalinclude:: ../../examples/c2/lin/src/main.c
:language: c
LIN Transmit
============
:download:`Download example <../../examples/c2/lin_transmit/src/main.c>`
.. literalinclude:: ../../examples/c2/lin_transmit/src/main.c
:language: c
Ethernet Transmit
=================
:download:`Download example <../../examples/c2/ethernet_transmit/src/main.c>`
.. literalinclude:: ../../examples/c2/ethernet_transmit/src/main.c
:language: c
Ethernet Receive
================
:download:`Download example <../../examples/c2/ethernet_receive/src/main.c>`
.. literalinclude:: ../../examples/c2/ethernet_receive/src/main.c
:language: c
Ethernet Status
===============
:download:`Download example <../../examples/c2/ethernet_status/src/main.c>`
.. literalinclude:: ../../examples/c2/ethernet_status/src/main.c
:language: c
T1S Loopback
============
:download:`Download example <../../examples/c2/t1s_loopback/src/main.c>`
.. literalinclude:: ../../examples/c2/t1s_loopback/src/main.c
:language: c
TC10
====
:download:`Download example <../../examples/c2/tc10/src/main.c>`
.. literalinclude:: ../../examples/c2/tc10/src/main.c
:language: c
gPTP
====
:download:`Download example <../../examples/c2/gptp/src/main.c>`
.. literalinclude:: ../../examples/c2/gptp/src/main.c
:language: c
PerfTest
========
:download:`Download example <../../examples/c2/perf_test/src/main.c>`
.. literalinclude:: ../../examples/c2/perf_test/src/main.c
:language: c
Termination Groups
==================
:download:`Download example <../../examples/c2/termination/src/main.c>`
.. literalinclude:: ../../examples/c2/termination/src/main.c
:language: c
+9
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@@ -0,0 +1,9 @@
icsneoc2
========
.. toctree::
:maxdepth: 2
installation
examples
api
+7
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@@ -0,0 +1,7 @@
============
Installation
============
The installation steps for the C2 API are the same as the C++ API as the C2 API is
a wrapper for the C++ library. The ``LIBICSNEO_BUILD_ICSNEOC2`` CMake option is
default ``ON`` but note that the C2 API depends on this flag to build.
+1
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@@ -0,0 +1 @@
doxygen
+1 -1
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@@ -6,7 +6,7 @@ Prerequisites
=============
- Python 3.8 or higher
- icsneopy library installed
- icsneopy installed (see :doc:`installation`)
- CAN hardware device connected
:download:`Download complete example <../../examples/python/can/can_complete_example.py>`
+1 -1
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@@ -8,7 +8,7 @@ Prerequisites
=============
- Python 3.8 or higher
- icsneopy library installed
- icsneopy installed (see :doc:`installation`)
- Intrepid Control Systems Device
:download:`Download complete example <../../examples/python/ethernet/ethernet_complete_example.py>`
+8
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@@ -92,6 +92,14 @@ SPI Example for 10BASE-T1S
.. literalinclude:: ../../examples/python/spi/spi_example.py
:language: python
10BASE-T1S Settings Configuration
=================================
:download:`Download example <../../examples/python/t1s/t1s_settings.py>`
.. literalinclude:: ../../examples/python/t1s/t1s_settings.py
:language: python
Analog Output Control
=====================
+2 -2
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@@ -5,7 +5,7 @@ FlexRay Getting Started
Prerequisites
=============
- icsneopy library installed
- icsneopy installed (see :doc:`installation`)
- FlexRay hardware device connected (e.g., Fire3 Flexray)
- Proper FlexRay bus termination (100Ω on each channel end)
@@ -127,7 +127,7 @@ FlexRay Coldstart Configuration
To use the Coldstart example, ensure the following:
Set the Flexray network in neoVI Explorer to Coldstart.
Set the Flexray network in ICS Device Manager to Coldstart.
No other nodes should be present on the network during testing.
+1
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@@ -5,6 +5,7 @@ icsneopy
.. toctree::
:maxdepth: 2
installation
can_getting_started
ethernet_getting_started
flexray_getting_started
+38
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@@ -0,0 +1,38 @@
============
Installation
============
icsneopy is available on PyPI at https://pypi.org/project/icsneopy/ and can be installed with pip:
.. code-block:: bash
pip install icsneopy
Pre-release
===========
For the latest features, install with the ``--pre`` flag to include pre-release versions:
.. code-block:: bash
pip install --pre icsneopy
Upgrading
=========
To upgrade an existing installation:
.. code-block:: bash
pip install --pre --upgrade icsneopy
Linux udev Rules
================
Linux users may want to install the included udev rules to run icsneopy-based
applications without root. The rules file can be found in the libicsneo source
repository at https://github.com/intrepidcs/libicsneo/.
.. code-block:: bash
sudo cp 99-intrepidcs.rules /etc/udev/rules.d/
+16
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@@ -13,3 +13,19 @@ communication library. The source code for libicsneo can be found on GitHub:
icsneocpp/index
icsneopy/index
icsneoc/index
icsneoc2/index
Linux Installation
==================
Applications that use raw Ethernet device discovery, such as PCAP-backed
discovery, need permission to open raw network sockets. Instead of running your
application with ``sudo``, grant the installed executable the required Linux
capabilities:
.. code-block:: bash
sudo setcap cap_net_raw,cap_net_admin=eip /usr/bin/your-app
Replace ``/usr/bin/your-app`` with the full path to the application executable.
+105
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@@ -1,7 +1,25 @@
option(LIBICSNEO_BUILD_C_INTERACTIVE_EXAMPLE "Build the command-line interactive C example." ON)
option(LIBICSNEO_BUILD_C_SIMPLE_EXAMPLE "Build the command-line simple C example." ON)
option(LIBICSNEO_BUILD_C_LEGACY_EXAMPLE "Build the command-line simple C example." ON)
option(LIBICSNEO_BUILD_C2_SIMPLE_EXAMPLE "Build the simple C2 example." ON)
option(LIBICSNEO_BUILD_C2_SUPPORTED_DEVICES_EXAMPLE "Build the C2 supported devices example." ON)
option(LIBICSNEO_BUILD_C2_READ_MESSAGES_EXAMPLE "Build the C2 read messages example." ON)
option(LIBICSNEO_BUILD_C2_DISKFORMAT_EXAMPLE "Build the C2 disk format example." ON)
option(LIBICSNEO_BUILD_C2_RECONNECT_EXAMPLE "Build the C2 reconnect example." ON)
option(LIBICSNEO_BUILD_C2_DEVICE_INFO_EXAMPLE "Build the C2 device info example." ON)
option(LIBICSNEO_BUILD_C2_CHIP_VERSIONS_EXAMPLE "Build the C2 chip versions example." ON)
option(LIBICSNEO_BUILD_C2_TERMINATION_EXAMPLE "Build the C2 termination groups example." ON)
option(LIBICSNEO_BUILD_C2_LIN_EXAMPLE "Build the C2 LIN example." ON)
option(LIBICSNEO_BUILD_C2_LIN_TRANSMIT_EXAMPLE "Build the C2 LIN transmit example." ON)
option(LIBICSNEO_BUILD_C2_ETHERNET_TRANSMIT_EXAMPLE "Build the C2 ethernet transmit example." ON)
option(LIBICSNEO_BUILD_C2_ETHERNET_RECEIVE_EXAMPLE "Build the C2 ethernet receive example." ON)
option(LIBICSNEO_BUILD_C2_ETHERNET_STATUS_EXAMPLE "Build the C2 ethernet status example." ON)
option(LIBICSNEO_BUILD_C2_T1S_LOOPBACK_EXAMPLE "Build the C2 RAD-Comet3 T1S loopback example." ON)
option(LIBICSNEO_BUILD_C2_TC10_EXAMPLE "Build the C2 TC10 example." ON)
option(LIBICSNEO_BUILD_C2_GPTP_EXAMPLE "Build the C2 gPTP settings example." ON)
option(LIBICSNEO_BUILD_C2_PERF_TEST_EXAMPLE "Build the C2 PerfTest setting example." ON)
option(LIBICSNEO_BUILD_CPP_SIMPLE_EXAMPLE "Build the simple C++ example." ON)
option(LIBICSNEO_BUILD_CPP_DEVICE_INFO_EXAMPLE "Build the C++ device info example." ON)
option(LIBICSNEO_BUILD_CPP_INTERACTIVE_EXAMPLE "Build the command-line interactive C++ example." ON)
option(LIBICSNEO_BUILD_CPP_A2B_EXAMPLE "Build the A2B example." ON)
option(LIBICSNEO_BUILD_CPP_LIN_EXAMPLE "Build the LIN example." ON)
@@ -16,6 +34,9 @@ option(LIBICSNEO_BUILD_CPP_SPI_EXAMPLE "Build the SPI example." ON)
option(LIBICSNEO_BUILD_CPP_MUTEX_EXAMPLE "Build the NetworkMutex example." ON)
option(LIBICSNEO_BUILD_CPP_ANALOG_OUT_EXAMPLE "Build the analog output example." ON)
option(LIBICSNEO_BUILD_CPP_DISKFORMAT_EXAMPLE "Build the disk format example." ON)
option(LIBICSNEO_BUILD_CPP_T1S_EXAMPLE "Build the T1S example." ON)
option(LIBICSNEO_BUILD_CPP_GPTP_EXAMPLE "Build the C++ gPTP settings example." ON)
option(LIBICSNEO_BUILD_CPP_ISO15765_LOOPBACK_EXAMPLE "Build the C++ ISO15765 two-device CAN1 loopback example." ON)
add_compile_options(${LIBICSNEO_COMPILER_WARNINGS})
@@ -31,10 +52,82 @@ if(LIBICSNEO_BUILD_C_LEGACY_EXAMPLE)
add_subdirectory(c/legacy)
endif()
if(LIBICSNEO_BUILD_C2_SIMPLE_EXAMPLE)
add_subdirectory(c2/simple)
endif()
if(LIBICSNEO_BUILD_C2_SUPPORTED_DEVICES_EXAMPLE)
add_subdirectory(c2/supported_devices)
endif()
if(LIBICSNEO_BUILD_C2_READ_MESSAGES_EXAMPLE)
add_subdirectory(c2/read_messages)
endif()
if(LIBICSNEO_BUILD_C2_DISKFORMAT_EXAMPLE)
add_subdirectory(c2/diskformat)
endif()
if(LIBICSNEO_BUILD_C2_RECONNECT_EXAMPLE)
add_subdirectory(c2/reconnect)
endif()
if(LIBICSNEO_BUILD_C2_DEVICE_INFO_EXAMPLE)
add_subdirectory(c2/device_info)
endif()
if(LIBICSNEO_BUILD_C2_CHIP_VERSIONS_EXAMPLE)
add_subdirectory(c2/chip_versions)
endif()
if(LIBICSNEO_BUILD_C2_TERMINATION_EXAMPLE)
add_subdirectory(c2/termination)
endif()
if(LIBICSNEO_BUILD_C2_LIN_EXAMPLE)
add_subdirectory(c2/lin)
endif()
if(LIBICSNEO_BUILD_C2_LIN_TRANSMIT_EXAMPLE)
add_subdirectory(c2/lin_transmit)
endif()
if(LIBICSNEO_BUILD_C2_ETHERNET_TRANSMIT_EXAMPLE)
add_subdirectory(c2/ethernet_transmit)
endif()
if(LIBICSNEO_BUILD_C2_ETHERNET_RECEIVE_EXAMPLE)
add_subdirectory(c2/ethernet_receive)
endif()
if(LIBICSNEO_BUILD_C2_ETHERNET_STATUS_EXAMPLE)
add_subdirectory(c2/ethernet_status)
endif()
if(LIBICSNEO_BUILD_C2_T1S_LOOPBACK_EXAMPLE)
add_subdirectory(c2/t1s_loopback)
endif()
if(LIBICSNEO_BUILD_C2_TC10_EXAMPLE)
add_subdirectory(c2/tc10)
endif()
if(LIBICSNEO_BUILD_C2_GPTP_EXAMPLE)
add_subdirectory(c2/gptp)
endif()
if(LIBICSNEO_BUILD_C2_PERF_TEST_EXAMPLE)
add_subdirectory(c2/perf_test)
endif()
if(LIBICSNEO_BUILD_CPP_SIMPLE_EXAMPLE)
add_subdirectory(cpp/simple)
endif()
if(LIBICSNEO_BUILD_CPP_DEVICE_INFO_EXAMPLE)
add_subdirectory(cpp/device_info)
endif()
if(LIBICSNEO_BUILD_CPP_INTERACTIVE_EXAMPLE)
add_subdirectory(cpp/interactive)
endif()
@@ -90,3 +183,15 @@ endif()
if(LIBICSNEO_BUILD_CPP_DISKFORMAT_EXAMPLE)
add_subdirectory(cpp/diskformat)
endif()
if(LIBICSNEO_BUILD_CPP_T1S_EXAMPLE)
add_subdirectory(cpp/t1s)
endif()
if(LIBICSNEO_BUILD_CPP_GPTP_EXAMPLE)
add_subdirectory(cpp/gptp)
endif()
if(LIBICSNEO_BUILD_CPP_ISO15765_LOOPBACK_EXAMPLE)
add_subdirectory(cpp/iso15765_loopback)
endif()
+5 -5
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@@ -58,7 +58,7 @@ int main() {
msg1.Protocol = SPY_PROTOCOL_LIN;
msg1.StatusBitField = 0;
msg1.StatusBitField2 = 0;
lNetworkID = NETID_LIN_02;
lNetworkID = NETID_LIN2;
msg1.Header[0] = 0x11; //protected ID
msg1.Header[1] = 0xaa;
msg1.Header[2] = 0xbb;
@@ -80,7 +80,7 @@ int main() {
icsSpyMessageJ1850 msg2 = {0};
msg2.Protocol = SPY_PROTOCOL_LIN;
msg2.StatusBitField = SPY_STATUS_INIT_MESSAGE;
lNetworkID = NETID_LIN_01;
lNetworkID = NETID_LIN;
msg2.Header[0] = 0x11; //protected ID
msg2.NumberBytesData = 0;
msg2.NumberBytesHeader = 1;
@@ -96,7 +96,7 @@ int main() {
msg3.Protocol = SPY_PROTOCOL_LIN;
msg3.StatusBitField = SPY_STATUS_INIT_MESSAGE;
msg3.StatusBitField2 = 0;
lNetworkID = NETID_LIN_01;
lNetworkID = NETID_LIN;
msg3.Header[0] = 0xe2; //protected ID
msg3.Header[1] = 0x44;
msg3.Header[2] = 0x33;
@@ -131,10 +131,10 @@ int main() {
const icsSpyMessageJ1850* linMsg = (icsSpyMessageJ1850*)&rxMsg[idx];
size_t frameLen = (linMsg->NumberBytesHeader + linMsg->NumberBytesData);
size_t dataLen = (frameLen > 2) ? (frameLen - 2) : 0;
if(linMsg->NetworkID == NETID_LIN_01) {
if(linMsg->NetworkID == NETID_LIN) {
printf("LIN 1 | ID: 0x%02x [%zu] ", linMsg->Header[0], dataLen);
}
else if (linMsg->NetworkID == NETID_LIN_02) {
else if (linMsg->NetworkID == NETID_LIN2) {
printf("LIN 2 | ID: 0x%02x [%zu] ", linMsg->Header[0], dataLen);
}
+6
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@@ -0,0 +1,6 @@
add_executable(libicsneoc2-chip-versions-example src/main.c)
target_link_libraries(libicsneoc2-chip-versions-example icsneoc2-static)
if(WIN32)
target_compile_definitions(libicsneoc2-chip-versions-example PRIVATE _CRT_SECURE_NO_WARNINGS)
endif()
+59
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@@ -0,0 +1,59 @@
#include <icsneo/icsneoc2.h>
#include <stdio.h>
#include <inttypes.h>
int print_error_code(const char* message, icsneoc2_error_t error) {
char error_str[64];
size_t error_str_len = sizeof(error_str);
icsneoc2_error_t res = icsneoc2_error_code_get(error, error_str, &error_str_len);
if(res != icsneoc2_error_success) {
printf("%s: Failed to get string for error code %u with error code %u\n", message, error, res);
return (int)res;
}
printf("%s: \"%s\" (%u)\n", message, error_str, error);
return (int)error;
}
int main() {
icsneoc2_error_t res;
icsneoc2_device_t* device = NULL;
res = icsneoc2_device_open_first(0, icsneoc2_open_options_default, &device);
if(res != icsneoc2_error_success) {
return print_error_code("Failed to open first device", res);
}
char description[128] = {0};
size_t description_length = sizeof(description);
icsneoc2_device_description_get(device, description, &description_length);
printf("Opened device: %s\n\n", description);
size_t count = 0;
icsneoc2_chip_versions_t* chip_versions = NULL;
res = icsneoc2_device_chip_versions_enumerate(device, &chip_versions, true, &count);
if(res != icsneoc2_error_success) {
print_error_code("Failed to enumerate chip versions", res);
icsneoc2_device_close(device);
icsneoc2_device_free(device);
return 1;
}
printf("Found %zu chip version(s):\n", count);
for(icsneoc2_chip_versions_t* cur = chip_versions; cur; cur = icsneoc2_chip_versions_next(cur)) {
char name[64] = {0};
size_t name_length = sizeof(name);
uint8_t major = 0, minor = 0, maintenance = 0, build = 0;
res = icsneoc2_chip_versions_props_get(cur, name, &name_length, &major, &minor, &maintenance, &build);
if(res != icsneoc2_error_success) {
print_error_code("Failed to get chip version properties", res);
continue;
}
printf(" %s: %u.%u.%u.%u\n", name, major, minor, maintenance, build);
}
icsneoc2_chip_versions_free(chip_versions);
icsneoc2_device_close(device);
icsneoc2_device_free(device);
return 0;
}
+6
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@@ -0,0 +1,6 @@
add_executable(libicsneoc2-device-info-example src/main.c)
target_link_libraries(libicsneoc2-device-info-example icsneoc2-static)
if(WIN32)
target_compile_definitions(libicsneoc2-device-info-example PRIVATE _CRT_SECURE_NO_WARNINGS)
endif()
+139
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@@ -0,0 +1,139 @@
#include <icsneo/icsneoc2.h>
#include <stdio.h>
#include <inttypes.h>
int print_error_code(const char* message, icsneoc2_error_t error) {
char error_str[64];
size_t error_str_len = sizeof(error_str);
icsneoc2_error_t res = icsneoc2_error_code_get(error, error_str, &error_str_len);
if(res != icsneoc2_error_success) {
printf("%s: Failed to get string for error code %d with error code %d\n", message, error, res);
return res;
}
printf("%s: \"%s\" (%u)\n", message, error_str, error);
return (int)error;
}
int main() {
icsneoc2_error_t res;
/* ===== Device Selection ===== */
printf("Searching for devices...\n");
icsneoc2_device_info_t* found_devices = NULL;
res = icsneoc2_device_enumerate(0, &found_devices);
if(res != icsneoc2_error_success) {
return print_error_code("Failed to enumerate devices", res);
}
if(!found_devices) {
printf("No devices found.\n");
return 1;
}
/* Count and display devices */
int device_count = 0;
for(icsneoc2_device_info_t* cur = found_devices; cur; cur = icsneoc2_device_info_next(cur)) {
char desc[128] = {0};
size_t desc_len = sizeof(desc);
icsneoc2_device_info_description_get(cur, desc, &desc_len);
char serial[32] = {0};
size_t serial_len = sizeof(serial);
icsneoc2_device_info_serial_get(cur, serial, &serial_len);
printf(" [%d] %s (Serial: %s)\n", device_count + 1, desc, serial);
device_count++;
}
int device_choice;
printf("Select device (1-%d): ", device_count);
if(scanf("%d", &device_choice) != 1 || device_choice < 1 || device_choice > device_count) {
printf("Invalid selection.\n");
icsneoc2_enumeration_free(found_devices);
return 1;
}
/* Find the selected device_info node */
icsneoc2_device_info_t* selected_info = found_devices;
for(int i = 1; i < device_choice; i++) {
selected_info = icsneoc2_device_info_next(selected_info);
}
/* Open the selected device */
icsneoc2_device_t* device = NULL;
res = icsneoc2_device_create(selected_info, &device);
if(res != icsneoc2_error_success) {
icsneoc2_enumeration_free(found_devices);
return print_error_code("Failed to create device from device info", res);
}
res = icsneoc2_device_open(device, icsneoc2_open_options_default);
icsneoc2_enumeration_free(found_devices);
if(res != icsneoc2_error_success) {
icsneoc2_device_free(device);
return print_error_code("Failed to open device", res);
}
char description[128] = {0};
size_t description_length = sizeof(description);
icsneoc2_device_description_get(device, description, &description_length);
printf("\nOpened device: %s\n\n", description);
/* ===== Serial Number ===== */
char serial[32] = {0};
size_t serial_len = sizeof(serial);
res = icsneoc2_device_serial_get(device, serial, &serial_len);
if(res == icsneoc2_error_success) {
printf("Serial: %s\n", serial);
} else {
print_error_code("Failed to get serial", res);
}
/* ===== PCB Serial Number ===== */
uint8_t pcbsn[16] = {0};
size_t pcbsn_len = sizeof(pcbsn);
res = icsneoc2_device_pcb_serial_get(device, pcbsn, &pcbsn_len);
if(res == icsneoc2_error_success) {
printf("PCB Serial: ");
for(size_t i = 0; i < pcbsn_len; i++) {
printf("%c", pcbsn[i]);
}
printf("\n");
} else {
print_error_code("Failed to get PCB serial (device may not support it)", res);
}
/* ===== MAC Addresses ===== */
icsneoc2_mac_addr_entry_t* macs = NULL;
res = icsneoc2_device_mac_addresses_enumerate(device, &macs);
if(res == icsneoc2_error_success) {
uint16_t mac_count = 0;
for(icsneoc2_mac_addr_entry_t* cur = macs; cur; cur = icsneoc2_mac_addresses_next(cur)) {
mac_count++;
}
printf("MACs: %u entr%s\n", mac_count, mac_count == 1 ? "y" : "ies");
for(icsneoc2_mac_addr_entry_t* cur = macs; cur; cur = icsneoc2_mac_addresses_next(cur)) {
icsneoc2_netid_t network_id;
icsneoc2_mac_network_id_get(cur, &network_id);
printf(" Network %-5u ", (unsigned)network_id);
uint8_t address[6];
size_t address_size = 6;
icsneoc2_mac_address_get(cur, address, &address_size);
for(int j = 0; j < 6; j++) {
if(j > 0) printf(":");
printf("%02X", (unsigned)address[j]);
}
printf("\n");
}
icsneoc2_mac_addresses_free(macs);
} else {
print_error_code("Failed to get MAC addresses (device may not support it)", res);
}
/* Cleanup */
printf("\nClosing device... ");
res = icsneoc2_device_close(device);
printf("%s\n", res == icsneoc2_error_success ? "OK" : "FAIL");
icsneoc2_device_free(device);
return 0;
}
+6
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@@ -0,0 +1,6 @@
add_executable(libicsneoc2-diskformat-example src/main.c)
target_link_libraries(libicsneoc2-diskformat-example icsneoc2-static)
if(WIN32)
target_compile_definitions(libicsneoc2-diskformat-example PRIVATE _CRT_SECURE_NO_WARNINGS)
endif()
+262
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@@ -0,0 +1,262 @@
#include <icsneo/icsneoc2.h>
#include <stdio.h>
#include <inttypes.h>
/**
* Prints an error message with the given string and error code.
*
* @param message The message to print.
* @param error The error code to print.
* @return error as int
*/
static int print_error_code(const char* message, icsneoc2_error_t error) {
char error_str[64];
size_t error_str_len = sizeof(error_str);
icsneoc2_error_code_get(error, error_str, &error_str_len);
printf("%s: \"%s\" (%u)\n", message, error_str, error);
return (int)error;
}
/**
* Progress callback invoked periodically during disk formatting.
*
* @param sectors_formatted Number of sectors formatted so far.
* @param total_sectors Total number of sectors to format.
* @param user_data Unused opaque pointer.
* @return icsneoc2_disk_format_directive_continue to keep formatting.
*/
static icsneoc2_disk_format_directive_t format_progress(uint64_t sectors_formatted, uint64_t total_sectors, void* user_data) {
(void)user_data;
double pct = total_sectors > 0 ? (100.0 * (double)sectors_formatted / (double)total_sectors) : 0.0;
printf("\r Progress: %" PRIu64 " / %" PRIu64 " sectors (%d%%)", sectors_formatted, total_sectors, (int)pct);
fflush(stdout);
return icsneoc2_disk_format_directive_continue;
}
int main() {
/* Open the first available device (no online needed for formatting) */
printf("Opening first available device...\n");
icsneoc2_device_t* device = NULL;
icsneoc2_error_t res = icsneoc2_device_open_first(0, ICSNEOC2_OPEN_OPTIONS_NONE, &device);
if(res != icsneoc2_error_success) {
return print_error_code("\tFailed to open first device", res);
}
/* Get a description of the opened device */
char description[255] = {0};
size_t description_length = sizeof(description);
res = icsneoc2_device_description_get(device, description, &description_length);
if(res != icsneoc2_error_success) {
icsneoc2_device_free(device);
return print_error_code("\tFailed to get device description", res);
}
printf("\tOpened device: %s\n", description);
/* Check disk formatting support */
bool supported = false;
res = icsneoc2_device_supports_disk_formatting(device, &supported);
if(res != icsneoc2_error_success) {
print_error_code("\tFailed to check disk formatting support", res);
icsneoc2_device_close(device);
icsneoc2_device_free(device);
return -1;
}
if(!supported) {
printf("\terror: %s does not support disk formatting\n", description);
icsneoc2_device_close(device);
icsneoc2_device_free(device);
return -1;
}
size_t disk_count = 0;
icsneoc2_device_disk_count_get(device, &disk_count);
printf("\tDisk count: %zu\n", disk_count);
/* Query disk details */
printf("\tQuerying disk details... ");
fflush(stdout);
icsneoc2_disk_details_t* details = NULL;
res = icsneoc2_device_disk_details_get(device, &details);
if(res != icsneoc2_error_success) {
printf("FAIL\n");
print_error_code("\tFailed to get disk details", res);
icsneoc2_device_close(device);
icsneoc2_device_free(device);
return -1;
}
printf("OK\n");
/* Display current state */
icsneoc2_disk_layout_t layout = 0;
icsneoc2_disk_details_layout_get(details, &layout);
printf("\t Layout : %s\n", layout == icsneoc2_disk_layout_raid0 ? "RAID0" : "Spanned");
size_t detail_count = 0;
icsneoc2_disk_details_count_get(details, &detail_count);
for(size_t i = 0; i < detail_count; i++) {
icsneoc2_disk_format_flags_t flags = 0;
icsneoc2_disk_details_flags_get(details, i, &flags);
printf("\t Disk [%zu]:\n", i);
printf("\t Present : %s\n", (flags & ICSNEOC2_DISK_FORMAT_FLAGS_PRESENT) ? "yes" : "no");
printf("\t Initialized : %s\n", (flags & ICSNEOC2_DISK_FORMAT_FLAGS_INITIALIZED) ? "yes" : "no");
printf("\t Formatted : %s\n", (flags & ICSNEOC2_DISK_FORMAT_FLAGS_FORMATTED) ? "yes" : "no");
if(flags & ICSNEOC2_DISK_FORMAT_FLAGS_PRESENT) {
uint64_t sectors = 0, bps = 0;
icsneoc2_disk_details_size_get(details, i, &sectors, &bps);
printf("\t Size : %" PRIu64 " MB (%" PRIu64 " sectors x %" PRIu64 " bytes)\n",
(sectors * bps) / (1024 * 1024), sectors, bps);
}
}
/* Choose operation */
printf("\n\tChoose operation:\n");
printf("\t [f] Format the disk(s)\n");
printf("\t [u] Update the disk configuration without formatting\n");
printf("\t [q] Quit\n");
printf("\tSelection [f/u/q]: ");
char choice[8] = {0};
if(scanf("%7s", choice) != 1) {
choice[0] = 'q';
}
if(choice[0] == 'u' || choice[0] == 'U') {
/* Force a disk config update (e.g. changing the disk layout) without formatting.
* Unlike a format, this preserves the existing data on the disk(s). */
printf("\n\tChoose disk layout:\n");
printf("\t [s] Spanned\n");
printf("\t [r] RAID0\n");
printf("\tSelection [s/r] (current: %s): ", layout == icsneoc2_disk_layout_raid0 ? "RAID0" : "Spanned");
char layout_choice[8] = {0};
if(scanf("%7s", layout_choice) != 1) {
layout_choice[0] = '\0';
}
if(layout_choice[0] == 'r' || layout_choice[0] == 'R') {
icsneoc2_disk_details_layout_set(details, icsneoc2_disk_layout_raid0);
} else if(layout_choice[0] == 's' || layout_choice[0] == 'S') {
icsneoc2_disk_details_layout_set(details, icsneoc2_disk_layout_spanned);
} else {
printf("\tKeeping current layout.\n");
}
/* Enable/disable individual disks in the configuration. A disk's enabled
* state is carried by the FORMATTED flag; only present disks can be enabled. */
for(size_t i = 0; i < detail_count; i++) {
icsneoc2_disk_format_flags_t flags = 0;
icsneoc2_disk_details_flags_get(details, i, &flags);
if(!(flags & ICSNEOC2_DISK_FORMAT_FLAGS_PRESENT)) {
continue; /* Can't enable a disk that isn't present */
}
printf("\tEnable disk [%zu]? [y/N] (currently %s): ", i,
(flags & ICSNEOC2_DISK_FORMAT_FLAGS_FORMATTED) ? "enabled" : "disabled");
char disk_choice[8] = {0};
if(scanf("%7s", disk_choice) != 1) {
disk_choice[0] = '\0';
}
if(disk_choice[0] == 'y' || disk_choice[0] == 'Y') {
flags |= ICSNEOC2_DISK_FORMAT_FLAGS_FORMATTED;
} else {
flags &= ~(icsneoc2_disk_format_flags_t)ICSNEOC2_DISK_FORMAT_FLAGS_FORMATTED;
}
icsneoc2_disk_details_flags_set(details, i, flags);
}
icsneoc2_disk_layout_t new_layout = 0;
icsneoc2_disk_details_layout_get(details, &new_layout);
printf("\n\tForcing disk config update on %s to %s layout (no data will be erased)...\n",
description, new_layout == icsneoc2_disk_layout_raid0 ? "RAID0" : "Spanned");
res = icsneoc2_device_force_disk_config_update(device, details);
if(res != icsneoc2_error_success) {
print_error_code("\tForce disk config update failed", res);
icsneoc2_disk_details_free(details);
icsneoc2_device_close(device);
icsneoc2_device_free(device);
return -1;
}
printf("\tDisk config update complete!\n");
icsneoc2_disk_details_free(details);
icsneoc2_device_close(device);
icsneoc2_device_free(device);
return 0;
}
if(choice[0] != 'f' && choice[0] != 'F') {
printf("\tAborted.\n");
icsneoc2_disk_details_free(details);
icsneoc2_device_close(device);
icsneoc2_device_free(device);
return 0;
}
/* Build format config: mark present disks for formatting */
bool any_present = false;
for(size_t i = 0; i < detail_count; i++) {
icsneoc2_disk_format_flags_t flags = 0;
icsneoc2_disk_details_flags_get(details, i, &flags);
if(flags & ICSNEOC2_DISK_FORMAT_FLAGS_PRESENT) {
flags |= ICSNEOC2_DISK_FORMAT_FLAGS_FORMATTED;
icsneoc2_disk_details_flags_set(details, i, flags);
any_present = true;
}
}
icsneoc2_disk_details_full_format_set(details, false); /* Quick format */
if(!any_present) {
printf("\n\terror: no disks are present in the device\n");
icsneoc2_disk_details_free(details);
icsneoc2_device_close(device);
icsneoc2_device_free(device);
return -1;
}
/* Confirm */
printf("\n\tThis will format the disk(s) in %s.\n", description);
printf("\tAll existing data will be lost. Continue? [y/N]: ");
char confirm[8] = {0};
if(scanf("%7s", confirm) != 1 || (confirm[0] != 'y' && confirm[0] != 'Y')) {
printf("\tAborted.\n");
icsneoc2_disk_details_free(details);
icsneoc2_device_close(device);
icsneoc2_device_free(device);
return 0;
}
/* Format */
printf("\n\tStarting format...\n");
res = icsneoc2_device_format_disk(device, details, format_progress, NULL);
printf("\n"); /* newline after progress line */
if(res != icsneoc2_error_success) {
print_error_code("\tFormat failed", res);
icsneoc2_disk_details_free(details);
icsneoc2_device_close(device);
icsneoc2_device_free(device);
return -1;
}
printf("\tFormat complete!\n");
icsneoc2_disk_details_free(details);
/* Verify */
printf("\n\tVerifying disk state after format... ");
fflush(stdout);
icsneoc2_disk_details_t* post_details = NULL;
res = icsneoc2_device_disk_details_get(device, &post_details);
if(res != icsneoc2_error_success) {
printf("FAIL (could not re-query disk details)\n");
} else {
printf("OK\n");
size_t post_count = 0;
icsneoc2_disk_details_count_get(post_details, &post_count);
for(size_t i = 0; i < post_count; i++) {
icsneoc2_disk_format_flags_t flags = 0;
icsneoc2_disk_details_flags_get(post_details, i, &flags);
printf("\t Disk [%zu] formatted: %s\n", i, (flags & ICSNEOC2_DISK_FORMAT_FLAGS_FORMATTED) ? "yes" : "no");
}
icsneoc2_disk_details_free(post_details);
}
printf("\tClosing device: %s...\n", description);
icsneoc2_device_close(device);
icsneoc2_device_free(device);
return 0;
}
@@ -0,0 +1,6 @@
add_executable(libicsneoc2-ethernet-receive-example src/main.c)
target_link_libraries(libicsneoc2-ethernet-receive-example icsneoc2-static)
if(WIN32)
target_compile_definitions(libicsneoc2-ethernet-receive-example PRIVATE _CRT_SECURE_NO_WARNINGS)
endif()
+229
View File
@@ -0,0 +1,229 @@
#include <icsneo/icsneoc2.h>
#include <icsneo/icsneoc2messages.h>
#include <stdio.h>
#include <inttypes.h>
#ifdef _WIN32
#include <windows.h>
#else
#include <unistd.h>
#endif
void sleep_ms(uint32_t ms) {
#ifdef _WIN32
Sleep(ms);
#else
sleep(ms / 1000);
#endif
}
int print_error_code(const char* message, icsneoc2_error_t error) {
char error_str[64];
size_t error_str_len = sizeof(error_str);
icsneoc2_error_t res = icsneoc2_error_code_get(error, error_str, &error_str_len);
if(res != icsneoc2_error_success) {
printf("%s: Failed to get string for error code %d with error code %d\n", message, error, res);
return res;
}
printf("%s: \"%s\" (%u)\n", message, error_str, error);
return (int)error;
}
void print_events(void) {
icsneoc2_event_t* events[256] = {0};
size_t events_count = 256;
for(size_t i = 0; i < events_count; ++i) {
icsneoc2_error_t res = icsneoc2_event_get(&events[i], NULL);
if(res != icsneoc2_error_success) {
(void)print_error_code("\tFailed to get events", res);
return;
}
if(events[i] == NULL) {
events_count = i;
break;
}
}
for(size_t i = 0; i < events_count; i++) {
char description[255] = {0};
size_t description_length = 255;
icsneoc2_error_t res = icsneoc2_event_description_get(events[i], description, &description_length);
if(res != icsneoc2_error_success) {
print_error_code("\tFailed to get event description", res);
continue;
}
printf("\tEvent %zu: %s\n", i, description);
}
for(size_t i = 0; i < events_count; i++) {
icsneoc2_event_free(events[i]);
}
if(events_count > 0) {
printf("\tReceived %zu events\n", events_count);
}
}
void print_mac(const char* label, const uint8_t* mac) {
printf("%s: %02x:%02x:%02x:%02x:%02x:%02x", label, mac[0], mac[1], mac[2], mac[3], mac[4], mac[5]);
}
int process_ethernet_message(icsneoc2_message_t* message, size_t index) {
icsneoc2_netid_t netid = 0;
uint64_t timestamp = 0;
char netid_name[128] = {0};
size_t netid_name_length = 128;
icsneoc2_error_t res = icsneoc2_message_netid_get(message, &netid);
if(res != icsneoc2_error_success) {
return print_error_code("\tFailed to get netid", res);
}
res = icsneoc2_netid_name_get(netid, netid_name, &netid_name_length);
if(res != icsneoc2_error_success) {
return print_error_code("\tFailed to get netid name", res);
}
res = icsneoc2_message_timestamp_get(message, &timestamp);
if(res != icsneoc2_error_success) {
return print_error_code("\tFailed to get timestamp", res);
}
/* Get data length first */
size_t data_length = 0;
res = icsneoc2_message_data_get(message, NULL, &data_length);
if(res != icsneoc2_error_success) {
return print_error_code("\tFailed to get data length", res);
}
printf("\t%zu) Ethernet Frame on %s (0x%x) - %zu bytes\n", index, netid_name, netid, data_length);
printf("\t Timestamp: %" PRIu64 " ns since 2007-01-01 UTC\n", timestamp);
/* Get MAC addresses and EtherType if we have enough data */
uint8_t dst_mac[6] = {0};
uint8_t src_mac[6] = {0};
uint16_t ether_type = 0;
res = icsneoc2_message_eth_mac_get(message, dst_mac, src_mac);
if(res == icsneoc2_error_success) {
printf("\t ");
print_mac("Dst", dst_mac);
printf(" ");
print_mac("Src", src_mac);
printf("\n");
}
res = icsneoc2_message_eth_ether_type_get(message, &ether_type);
if(res == icsneoc2_error_success) {
printf("\t EtherType: 0x%04x\n", ether_type);
}
/* Get flags */
icsneoc2_message_eth_flags_t flags = 0;
res = icsneoc2_message_eth_props_get(message, &flags, NULL, NULL);
if(res == icsneoc2_error_success && flags != 0) {
printf("\t Flags: 0x%" PRIx64, flags);
if(flags & ICSNEOC2_MESSAGE_ETH_FLAGS_CRC_ERROR) printf(" [CRC_ERROR]");
if(flags & ICSNEOC2_MESSAGE_ETH_FLAGS_FRAME_TOO_SHORT) printf(" [FRAME_TOO_SHORT]");
if(flags & ICSNEOC2_MESSAGE_ETH_FLAGS_TX_ABORTED) printf(" [TX_ABORTED]");
if(flags & ICSNEOC2_MESSAGE_ETH_FLAGS_FCS_VERIFIED) printf(" [FCS_VERIFIED]");
if(flags & ICSNEOC2_MESSAGE_ETH_FLAGS_PREEMPTION_ENABLED) printf(" [PREEMPTION]");
if(flags & ICSNEOC2_MESSAGE_ETH_FLAGS_IS_T1S) printf(" [T1S]");
printf("\n");
}
/* Print data bytes */
uint8_t data[1600] = {0};
res = icsneoc2_message_data_get(message, data, &data_length);
if(res == icsneoc2_error_success) {
printf("\t Data:\n\t ");
for(size_t x = 0; x < data_length; x++) {
printf("0x%02x ", data[x]);
if((x + 1) % 20 == 0 && x + 1 < data_length) {
printf("\n\t ");
}
}
printf("\n");
}
return icsneoc2_error_success;
}
int main(void) {
/* Open the first available device */
printf("Opening first available device...\n");
icsneoc2_device_t* device = NULL;
icsneoc2_error_t res = icsneoc2_device_open_first(0, icsneoc2_open_options_default, &device);
if(res != icsneoc2_error_success) {
return print_error_code("Failed to open first device", res);
}
/* Get a description of the opened device */
char description[255] = {0};
size_t description_length = 255;
res = icsneoc2_device_description_get(device, description, &description_length);
if(res != icsneoc2_error_success) {
return print_error_code("Failed to get device description", res);
}
printf("Opened device: %s\n", description);
/* Wait for Ethernet frames to arrive */
const int duration_seconds = 10;
printf("Listening for Ethernet frames for %d seconds...\n", duration_seconds);
sleep_ms(duration_seconds * 1000);
/* Retrieve and process messages */
icsneoc2_message_t* messages[20000] = {0};
size_t message_count = 20000;
size_t eth_count = 0;
for(size_t i = 0; i < message_count; ++i) {
res = icsneoc2_device_message_get(device, &messages[i], 0);
if(res != icsneoc2_error_success) {
print_events();
return print_error_code("Failed to get messages", res);
}
if(messages[i] == NULL) {
message_count = i;
break;
}
}
printf("Got %zu messages total, filtering for Ethernet...\n", message_count);
for(size_t i = 0; i < message_count; i++) {
icsneoc2_message_t* message = messages[i];
/* Check if this is a TX echo (skip it) */
bool is_tx = false;
res = icsneoc2_message_is_transmit(message, &is_tx);
if(res != icsneoc2_error_success || is_tx) {
continue;
}
/* Check if this is an Ethernet message */
bool is_ethernet = false;
res = icsneoc2_message_is_ethernet(message, &is_ethernet);
if(res != icsneoc2_error_success || !is_ethernet) {
continue;
}
process_ethernet_message(message, eth_count);
eth_count++;
}
printf("Received %zu Ethernet frames out of %zu total messages\n", eth_count, message_count);
/* Free all messages */
for(size_t i = 0; i < message_count; ++i) {
icsneoc2_message_free(messages[i]);
}
/* Print any events */
print_events();
/* Close the device */
printf("Closing device...\n");
res = icsneoc2_device_close(device);
if(res != icsneoc2_error_success) {
return print_error_code("Failed to close device", res);
}
return 0;
}
@@ -0,0 +1,6 @@
add_executable(libicsneoc2-ethernet-status-example src/main.c)
target_link_libraries(libicsneoc2-ethernet-status-example icsneoc2-static)
if(WIN32)
target_compile_definitions(libicsneoc2-ethernet-status-example PRIVATE _CRT_SECURE_NO_WARNINGS)
endif()
+228
View File
@@ -0,0 +1,228 @@
#include <icsneo/icsneoc2.h>
#include <icsneo/icsneoc2messages.h>
#include <stdio.h>
#include <time.h>
#ifdef _WIN32
#include <windows.h>
#else
#include <unistd.h>
#endif
void sleep_ms(uint32_t ms) {
#ifdef _WIN32
Sleep(ms);
#else
usleep(ms * 1000);
#endif
}
int print_error_code(const char* message, icsneoc2_error_t error) {
char error_str[64] = {0};
size_t error_str_len = sizeof(error_str);
icsneoc2_error_t res = icsneoc2_error_code_get(error, error_str, &error_str_len);
if(res != icsneoc2_error_success) {
printf("%s: Failed to get string for error code %u with error code %u\n", message, error, res);
return (int)res;
}
printf("%s: \"%s\" (%u)\n", message, error_str, error);
return (int)error;
}
void print_events(void) {
icsneoc2_event_t* events[256] = {0};
size_t events_count = 256;
for(size_t i = 0; i < events_count; ++i) {
icsneoc2_error_t res = icsneoc2_event_get(&events[i], NULL);
if(res != icsneoc2_error_success) {
(void)print_error_code("\tFailed to get events", res);
return;
}
if(events[i] == NULL) {
events_count = i;
break;
}
}
for(size_t i = 0; i < events_count; i++) {
char description[255] = {0};
size_t description_length = sizeof(description);
icsneoc2_error_t res = icsneoc2_event_description_get(events[i], description, &description_length);
if(res != icsneoc2_error_success) {
(void)print_error_code("\tFailed to get event description", res);
continue;
}
printf("\tEvent %zu: %s\n", i, description);
}
for(size_t i = 0; i < events_count; i++) {
icsneoc2_event_free(events[i]);
}
if(events_count > 0) {
printf("\tReceived %zu events\n", events_count);
}
}
const char* link_speed_name(icsneoc2_link_speed_t speed) {
switch(speed) {
case icsneoc2_link_speed_auto:
return "Auto";
case icsneoc2_link_speed_10mbps:
return "10 Mbps";
case icsneoc2_link_speed_100mbps:
return "100 Mbps";
case icsneoc2_link_speed_1000mbps:
return "1000 Mbps";
case icsneoc2_link_speed_2500mbps:
return "2500 Mbps";
case icsneoc2_link_speed_5000mbps:
return "5000 Mbps";
case icsneoc2_link_speed_10000mbps:
return "10000 Mbps";
default:
return "Unknown";
}
}
const char* link_mode_name(icsneoc2_link_mode_t mode) {
switch(mode) {
case icsneoc2_link_mode_auto:
return "Auto";
case icsneoc2_link_mode_master:
return "Master";
case icsneoc2_link_mode_slave:
return "Slave";
case icsneoc2_link_mode_invalid:
return "Invalid";
case icsneoc2_link_mode_none:
return "None";
default:
return "Unknown";
}
}
int print_ethernet_status_message(icsneoc2_message_t* message, size_t index) {
icsneoc2_netid_t netid = 0;
char netid_name[128] = {0};
size_t netid_name_length = sizeof(netid_name);
bool link_state = false;
bool duplex = false;
icsneoc2_link_speed_t link_speed = icsneoc2_link_speed_auto;
icsneoc2_link_mode_t link_mode = icsneoc2_link_mode_auto;
icsneoc2_error_t res = icsneoc2_message_netid_get(message, &netid);
if(res != icsneoc2_error_success) {
return print_error_code("\tFailed to get Ethernet status netid", res);
}
res = icsneoc2_netid_name_get(netid, netid_name, &netid_name_length);
if(res != icsneoc2_error_success) {
return print_error_code("\tFailed to get Ethernet status netid name", res);
}
res = icsneoc2_message_eth_status_props_get(message, &link_state, &duplex, &link_speed, &link_mode);
if(res != icsneoc2_error_success) {
return print_error_code("\tFailed to get Ethernet status properties", res);
}
printf("\t%zu) Ethernet status on %s (0x%x)\n", index, netid_name, netid);
printf("\t Link: %s\n", link_state ? "Up" : "Down");
printf("\t Duplex: %s\n", duplex ? "Full" : "Half");
printf("\t Speed: %s (%u)\n", link_speed_name(link_speed), link_speed);
printf("\t Mode: %s (%u)\n", link_mode_name(link_mode), link_mode);
return icsneoc2_error_success;
}
int main(void) {
printf("Opening first available device offline...\n");
icsneoc2_device_t* device = NULL;
icsneoc2_open_options_t options = icsneoc2_open_options_default & ~ICSNEOC2_OPEN_OPTIONS_GO_ONLINE;
icsneoc2_error_t res = icsneoc2_device_open_first(0, options, &device);
if(res != icsneoc2_error_success) {
return print_error_code("Failed to open first device", res);
}
char description[255] = {0};
size_t description_length = sizeof(description);
res = icsneoc2_device_description_get(device, description, &description_length);
if(res != icsneoc2_error_success) {
icsneoc2_device_close(device);
icsneoc2_device_free(device);
return print_error_code("Failed to get device description", res);
}
printf("Opened device: %s\n", description);
printf("Going online to trigger Ethernet status broadcast...\n");
res = icsneoc2_device_go_online(device, true);
if(res != icsneoc2_error_success) {
print_events();
icsneoc2_device_close(device);
icsneoc2_device_free(device);
return print_error_code("Failed to go online", res);
}
const int listen_seconds = 6;
time_t start_time = time(NULL);
size_t status_count = 0;
size_t total_count = 0;
printf("Listening for Ethernet status messages for %d seconds...\n", listen_seconds);
while(time(NULL) - start_time < listen_seconds) {
icsneoc2_message_t* message = NULL;
res = icsneoc2_device_message_get(device, &message, 100);
if(res != icsneoc2_error_success) {
print_events();
icsneoc2_device_close(device);
icsneoc2_device_free(device);
return print_error_code("Failed to get message", res);
}
if(message == NULL) {
sleep_ms(10);
continue;
}
total_count++;
bool is_ethernet_status = false;
res = icsneoc2_message_is_ethernet_status(message, &is_ethernet_status);
if(res != icsneoc2_error_success) {
icsneoc2_message_free(message);
print_events();
icsneoc2_device_close(device);
icsneoc2_device_free(device);
return print_error_code("Failed to check for Ethernet status message", res);
}
if(is_ethernet_status) {
res = print_ethernet_status_message(message, status_count);
if(res != icsneoc2_error_success) {
icsneoc2_message_free(message);
print_events();
icsneoc2_device_close(device);
icsneoc2_device_free(device);
return (int)res;
}
status_count++;
}
icsneoc2_message_free(message);
}
printf("Received %zu Ethernet status messages out of %zu total messages.\n", status_count, total_count);
if(status_count == 0) {
printf("No Ethernet status messages were seen. These messages are broadcast when the device goes online and may depend on device Ethernet support.\n");
}
print_events();
printf("Closing device...\n");
res = icsneoc2_device_close(device);
if(res != icsneoc2_error_success) {
icsneoc2_device_free(device);
return print_error_code("Failed to close device", res);
}
icsneoc2_device_free(device);
return 0;
}
@@ -0,0 +1,6 @@
add_executable(libicsneoc2-ethernet-transmit-example src/main.c)
target_link_libraries(libicsneoc2-ethernet-transmit-example icsneoc2-static)
if(WIN32)
target_compile_definitions(libicsneoc2-ethernet-transmit-example PRIVATE _CRT_SECURE_NO_WARNINGS)
endif()
+204
View File
@@ -0,0 +1,204 @@
#include <icsneo/icsneoc2.h>
#include <icsneo/icsneoc2messages.h>
#include <stdio.h>
#include <inttypes.h>
#ifdef _WIN32
#include <windows.h>
#else
#include <unistd.h>
#endif
int print_error_code(const char* message, icsneoc2_error_t error) {
char error_str[64];
size_t error_str_len = sizeof(error_str);
icsneoc2_error_t res = icsneoc2_error_code_get(error, error_str, &error_str_len);
if(res != icsneoc2_error_success) {
printf("%s: Failed to get string for error code %d with error code %d\n", message, error, res);
return res;
}
printf("%s: \"%s\" (%u)\n", message, error_str, error);
return (int)error;
}
void print_events(void) {
icsneoc2_event_t* events[256] = {0};
size_t events_count = 256;
for(size_t i = 0; i < events_count; ++i) {
icsneoc2_error_t res = icsneoc2_event_get(&events[i], NULL);
if(res != icsneoc2_error_success) {
(void)print_error_code("\tFailed to get events", res);
return;
}
if(events[i] == NULL) {
events_count = i;
break;
}
}
for(size_t i = 0; i < events_count; i++) {
char description[255] = {0};
size_t description_length = 255;
icsneoc2_error_t res = icsneoc2_event_description_get(events[i], description, &description_length);
if(res != icsneoc2_error_success) {
print_error_code("\tFailed to get event description", res);
continue;
}
printf("\tEvent %zu: %s\n", i, description);
}
for(size_t i = 0; i < events_count; i++) {
icsneoc2_event_free(events[i]);
}
if(events_count > 0) {
printf("\tReceived %zu events\n", events_count);
}
}
int main(void) {
/* Open the first available device */
printf("Opening first available device...\n");
icsneoc2_device_t* device = NULL;
icsneoc2_error_t res = icsneoc2_device_open_first(0, icsneoc2_open_options_default, &device);
if(res != icsneoc2_error_success) {
return print_error_code("Failed to open first device", res);
}
/* Get a description of the opened device */
char description[255] = {0};
size_t description_length = 255;
res = icsneoc2_device_description_get(device, description, &description_length);
if(res != icsneoc2_error_success) {
return print_error_code("Failed to get device description", res);
}
printf("Opened device: %s\n", description);
icsneoc2_netid_t tx_networks[255] = {0};
size_t tx_net_count = sizeof(tx_networks) / sizeof(tx_networks[0]);
res = icsneoc2_device_supported_tx_networks_get(device, tx_networks, &tx_net_count);
if(res != icsneoc2_error_success) {
print_events();
return print_error_code("Failed to get TX networks", res);
}
/* Filter for Ethernet/AutomotiveEthernet networks */
icsneoc2_netid_t eth_networks[64] = {0};
char eth_names[64][128] = {{0}};
size_t eth_count = 0;
for(size_t i = 0; i < tx_net_count && eth_count < 64; i++) {
/* Create a temporary message to check network type */
icsneoc2_message_t* tmp = NULL;
res = icsneoc2_message_eth_create(&tmp);
if(res != icsneoc2_error_success) continue;
res = icsneoc2_message_netid_set(tmp, tx_networks[i]);
if(res != icsneoc2_error_success) { icsneoc2_message_free(tmp); continue; }
icsneoc2_network_type_t ntype = 0;
res = icsneoc2_message_network_type_get(tmp, &ntype);
icsneoc2_message_free(tmp);
if(res != icsneoc2_error_success) continue;
if(ntype == icsneoc2_network_type_ethernet || ntype == icsneoc2_network_type_automotive_ethernet) {
eth_networks[eth_count] = tx_networks[i];
size_t name_len = 128;
icsneoc2_netid_name_get(tx_networks[i], eth_names[eth_count], &name_len);
eth_count++;
}
}
if(eth_count == 0) {
printf("No Ethernet TX networks available on this device.\n");
icsneoc2_device_close(device);
return 0;
}
/* Let the user pick */
printf("Available Ethernet TX networks:\n");
for(size_t i = 0; i < eth_count; i++) {
printf(" %zu) %s\n", i + 1, eth_names[i]);
}
printf("Select network [1-%zu]: ", eth_count);
int selection = 0;
if(scanf("%d", &selection) != 1 || selection < 1 || (size_t)selection > eth_count) {
printf("Invalid selection, using first available.\n");
selection = 1;
}
icsneoc2_netid_t netid = eth_networks[selection - 1];
printf("Selected: %s\n", eth_names[selection - 1]);
/* Transmit Ethernet frames */
const size_t msg_count = 10;
printf("Transmitting %zu Ethernet frames on %s...\n", msg_count, eth_names[selection - 1]);
for(size_t i = 0; i < msg_count; i++) {
/* Create an Ethernet message */
icsneoc2_message_t* message = NULL;
res = icsneoc2_message_eth_create(&message);
if(res != icsneoc2_error_success) {
print_events();
return print_error_code("Failed to create Ethernet message", res);
}
/* Set the network ID */
res = icsneoc2_message_netid_set(message, netid );
if(res != icsneoc2_error_success) {
icsneoc2_message_free(message);
print_events();
return print_error_code("Failed to set netid", res);
}
/* Build Ethernet frame data:
* Bytes 0-5: Destination MAC (00:FC:70:00:01:02)
* Bytes 6-11: Source MAC (00:FC:70:00:01:01)
* Bytes 12-13: EtherType (0x0800 = IPv4)
* Bytes 14+: Payload
*/
uint8_t frame_data[] = {
0x00, 0xFC, 0x70, 0x00, 0x01, 0x02, /* Destination MAC */
0x00, 0xFC, 0x70, 0x00, 0x01, 0x01, /* Source MAC */
0x08, 0x00, /* EtherType (IPv4) */
0x45, 0x00, 0x00, 0x20, /* IPv4: ver/IHL, DSCP, total length (32) */
0x00, 0x00, 0x00, 0x00, /* Identification, flags/fragment offset */
0x40, 0x11, 0x00, 0x00, /* TTL (64), protocol (UDP), checksum (0) */
0xC0, 0xA8, 0x01, 0x01, /* Source IP (192.168.1.1) */
0xC0, 0xA8, 0x01, 0x02, /* Destination IP (192.168.1.2) */
0xC3, 0x50, 0xC3, 0x51, /* UDP: src port (50000), dst port (50001) */
0x00, 0x0C, 0x00, 0x00, /* UDP: length (12), checksum (0) */
0x00, 0x00, 0x00, 0x00 /* UDP payload (4 bytes, frame counter) */
};
/* Put the frame counter in the UDP payload */
frame_data[42] = (uint8_t)((i >> 24) & 0xFF);
frame_data[43] = (uint8_t)((i >> 16) & 0xFF);
frame_data[44] = (uint8_t)((i >> 8) & 0xFF);
frame_data[45] = (uint8_t)(i & 0xFF);
res = icsneoc2_message_data_set(message, frame_data, sizeof(frame_data));
if(res != icsneoc2_error_success) {
icsneoc2_message_free(message);
print_events();
return print_error_code("Failed to set frame data", res);
}
/* Transmit the message */
res = icsneoc2_device_message_transmit(device, message);
if(res != icsneoc2_error_success) {
icsneoc2_message_free(message);
print_events();
return print_error_code("Failed to transmit Ethernet frame", res);
}
icsneoc2_message_free(message);
printf("\tTransmitted frame %zu\n", i + 1);
}
printf("Successfully transmitted %zu Ethernet frames\n", msg_count);
/* Print any events */
print_events();
/* Close the device */
printf("Closing device...\n");
res = icsneoc2_device_close(device);
if(res != icsneoc2_error_success) {
return print_error_code("Failed to close device", res);
}
return 0;
}
+6
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@@ -0,0 +1,6 @@
add_executable(libicsneoc2-gptp-example src/main.c)
target_link_libraries(libicsneoc2-gptp-example icsneoc2-static)
if(WIN32)
target_compile_definitions(libicsneoc2-gptp-example PRIVATE _CRT_SECURE_NO_WARNINGS)
endif()
+330
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@@ -0,0 +1,330 @@
/*
* gPTP settings configurator example.
*
* Lists connected devices and their gPTP support, then lets the user
* configure the gPTP profile, role, port, and clock syntonization on any
* device that supports it. If --serial is omitted, the first available
* gPTP-capable device is used.
*/
#include <icsneo/icsneoc2.h>
#include <icsneo/icsneoc2settings.h>
#include <icsneo/icsneoc2messages.h>
#include <inttypes.h>
#include <stdbool.h>
#include <stdio.h>
#include <stdlib.h>
#include <string.h>
typedef struct {
const char* serial;
bool list;
} args_t;
/* Maps an icsneoc2_netid_t to its gPTP port index (0 = not a gPTP port). */
static uint8_t netid_to_gptp_port(icsneoc2_netid_t netid) {
switch(netid) {
case icsneoc2_netid_ae_01: return 1;
case icsneoc2_netid_ae_02: return 2;
case icsneoc2_netid_ae_03: return 3;
case icsneoc2_netid_ae_04: return 4;
case icsneoc2_netid_ae_05: return 5;
case icsneoc2_netid_ae_06: return 6;
case icsneoc2_netid_ae_07: return 7;
case icsneoc2_netid_ae_08: return 8;
case icsneoc2_netid_ae_09: return 9;
case icsneoc2_netid_ae_10: return 10;
case icsneoc2_netid_ae_11: return 11;
case icsneoc2_netid_ae_12: return 12;
case icsneoc2_netid_ethernet_01: return 13;
case icsneoc2_netid_ethernet_02: return 14;
case icsneoc2_netid_ethernet_03: return 15;
case icsneoc2_netid_ae_13: return 16;
case icsneoc2_netid_ae_14: return 17;
case icsneoc2_netid_ae_15: return 18;
case icsneoc2_netid_ae_16: return 19;
default: return 0;
}
}
static const char* gptp_profile_str(icsneoc2_gptp_profile_t p) {
switch(p) {
case icsneoc2_gptp_profile_standard: return "Standard";
case icsneoc2_gptp_profile_automotive: return "Automotive";
default: return "Unknown";
}
}
static const char* gptp_role_str(icsneoc2_gptp_role_t r) {
switch(r) {
case icsneoc2_gptp_role_disabled: return "Disabled";
case icsneoc2_gptp_role_passive: return "Passive";
case icsneoc2_gptp_role_master: return "Master";
case icsneoc2_gptp_role_slave: return "Slave";
default: return "Unknown";
}
}
static int print_error_code(const char* message, icsneoc2_error_t error) {
char error_str[64] = {0};
size_t error_str_len = sizeof(error_str);
icsneoc2_error_t res = icsneoc2_error_code_get(error, error_str, &error_str_len);
if(res != icsneoc2_error_success) {
fprintf(stderr, "%s: failed to get string for error code %u\n", message, error);
return (int)res;
}
fprintf(stderr, "%s: \"%s\" (%u)\n", message, error_str, error);
return (int)error;
}
static void print_usage(const char* prog) {
printf("Usage:\n");
printf(" %s --list\n", prog);
printf(" %s [--serial SERIAL]\n", prog);
printf("\n");
printf(" --list List connected devices and their gPTP support.\n");
printf(" --serial SERIAL Serial number of the device to configure.\n");
printf(" -h, --help Show this message.\n");
}
static int parse_args(int argc, char** argv, args_t* out) {
memset(out, 0, sizeof(*out));
for(int i = 1; i < argc; ++i) {
const char* a = argv[i];
if(strcmp(a, "-h") == 0 || strcmp(a, "--help") == 0) {
print_usage(argv[0]);
exit(0);
} else if(strcmp(a, "--list") == 0) {
out->list = true;
} else if(strcmp(a, "--serial") == 0) {
if(i + 1 >= argc) {
fprintf(stderr, "error: --serial requires a value\n");
return 1;
}
out->serial = argv[++i];
} else {
fprintf(stderr, "error: unknown argument '%s'\n", a);
print_usage(argv[0]);
return 1;
}
}
return 0;
}
static icsneoc2_device_info_t* find_device(icsneoc2_device_info_t* list, const char* serial) {
for(icsneoc2_device_info_t* cur = list; cur != NULL; cur = icsneoc2_device_info_next(cur)) {
if(serial == NULL)
return cur;
char dev_serial[64] = {0};
size_t dev_serial_len = sizeof(dev_serial);
if(icsneoc2_device_info_serial_get(cur, dev_serial, &dev_serial_len) != icsneoc2_error_success)
continue;
if(strcmp(dev_serial, serial) == 0)
return cur;
}
return NULL;
}
/*
* Print a list of available Ethernet/AE networks with their gPTP port indices.
* Returns the number of ports printed.
*/
static size_t print_gptp_ports(icsneoc2_device_t* device) {
icsneoc2_netid_t nets[128] = {0};
size_t count = sizeof(nets) / sizeof(nets[0]);
if(icsneoc2_device_supported_tx_networks_get(device, nets, &count) != icsneoc2_error_success)
return 0;
size_t printed = 0;
for(size_t i = 0; i < count; ++i) {
uint8_t port = netid_to_gptp_port(nets[i]);
if(port == 0)
continue;
char name[64] = {0};
size_t name_len = sizeof(name);
icsneoc2_netid_name_get(nets[i], name, &name_len);
printf(" [%u] %s\n", (unsigned)port, name);
++printed;
}
return printed;
}
static int list_devices(icsneoc2_device_info_t* list) {
size_t index = 0;
for(icsneoc2_device_info_t* cur = list; cur != NULL; cur = icsneoc2_device_info_next(cur)) {
char serial[64] = {0};
size_t serial_len = sizeof(serial);
char description[256] = {0};
size_t description_len = sizeof(description);
icsneoc2_device_info_serial_get(cur, serial, &serial_len);
icsneoc2_device_info_description_get(cur, description, &description_len);
printf("[%zu] %s (%s)\n", index++, description, serial);
icsneoc2_device_t* device = NULL;
if(icsneoc2_device_create(cur, &device) != icsneoc2_error_success)
continue;
icsneoc2_open_options_t opts = icsneoc2_open_options_default;
opts &= ~ICSNEOC2_OPEN_OPTIONS_SYNC_RTC;
opts &= ~ICSNEOC2_OPEN_OPTIONS_GO_ONLINE;
if(icsneoc2_device_open(device, opts) != icsneoc2_error_success) {
icsneoc2_device_free(device);
continue;
}
bool supported = false;
icsneoc2_device_supports_gptp(device, &supported);
printf(" gPTP supported: %s\n", supported ? "yes" : "no");
if(supported) {
printf(" gPTP ports:\n");
print_gptp_ports(device);
}
icsneoc2_device_close(device);
icsneoc2_device_free(device);
}
return 0;
}
static void print_current_settings(icsneoc2_device_t* device) {
icsneoc2_gptp_profile_t profile = icsneoc2_gptp_profile_standard;
icsneoc2_gptp_role_t role = icsneoc2_gptp_role_disabled;
uint8_t port = 0;
bool clock_syntonization = false;
printf("\nCurrent gPTP settings:\n");
if(icsneoc2_settings_gptp_profile_get(device, &profile) == icsneoc2_error_success)
printf(" Profile: %s\n", gptp_profile_str(profile));
if(icsneoc2_settings_gptp_role_get(device, &role) == icsneoc2_error_success)
printf(" Role: %s\n", gptp_role_str(role));
if(icsneoc2_settings_gptp_enabled_port_get(device, &port) == icsneoc2_error_success)
printf(" Enabled port: %u%s\n", (unsigned)port, port == 0 ? " (disabled)" : "");
if(icsneoc2_settings_gptp_clock_syntonization_enabled_get(device, &clock_syntonization) == icsneoc2_error_success)
printf(" Clock syntonization: %s\n", clock_syntonization ? "enabled" : "disabled");
}
static long prompt_long(const char* prompt, long default_val, long min, long max) {
char buf[32] = {0};
printf("%s [%ld]: ", prompt, default_val);
fflush(stdout);
if(fgets(buf, sizeof(buf), stdin) == NULL || buf[0] == '\n')
return default_val;
char* end = NULL;
long val = strtol(buf, &end, 10);
if(end == buf || val < min || val > max) {
printf("Invalid input, using %ld.\n", default_val);
return default_val;
}
return val;
}
static int configure_device(icsneoc2_device_t* device) {
icsneoc2_error_t res;
res = icsneoc2_settings_refresh(device);
if(res != icsneoc2_error_success)
return print_error_code("Failed to refresh settings", res);
print_current_settings(device);
printf("\nAvailable gPTP ports (0 = disabled):\n");
printf(" [0] Disabled\n");
print_gptp_ports(device);
printf("\nConfigure gPTP:\n");
long profile = prompt_long(" Profile (0=Standard, 1=Automotive)", 1, 0, 1);
res = icsneoc2_settings_gptp_profile_set(device, (icsneoc2_gptp_profile_t)profile);
if(res != icsneoc2_error_success)
return print_error_code("Failed to set profile", res);
long role = prompt_long(" Role (0=Disabled, 1=Passive, 2=Master, 3=Slave)", 3, 0, 3);
res = icsneoc2_settings_gptp_role_set(device, (icsneoc2_gptp_role_t)role);
if(res != icsneoc2_error_success)
return print_error_code("Failed to set role", res);
long port = prompt_long(" Enabled port index", 0, 0, 19);
res = icsneoc2_settings_gptp_enabled_port_set(device, (uint8_t)port);
if(res != icsneoc2_error_success)
return print_error_code("Failed to set enabled port", res);
long syntonization = prompt_long(" Clock syntonization (0=disabled, 1=enabled)", 0, 0, 1);
res = icsneoc2_settings_gptp_clock_syntonization_enabled_set(device, syntonization != 0);
if(res != icsneoc2_error_success)
return print_error_code("Failed to set clock syntonization", res);
printf("\nNote: icsneoc2_settings_apply() persists settings on the device.\n");
res = icsneoc2_settings_apply(device);
if(res != icsneoc2_error_success)
return print_error_code("Failed to apply settings", res);
printf("\nUpdated gPTP settings:\n");
print_current_settings(device);
return 0;
}
int main(int argc, char** argv) {
args_t args;
if(parse_args(argc, argv, &args) != 0)
return 1;
icsneoc2_device_info_t* found_devices = NULL;
icsneoc2_error_t res = icsneoc2_device_enumerate(0, &found_devices);
if(res != icsneoc2_error_success)
return print_error_code("Failed to enumerate devices", res);
if(found_devices == NULL) {
fprintf(stderr, "error: no devices found\n");
return 1;
}
if(args.list) {
int rc = list_devices(found_devices);
icsneoc2_enumeration_free(found_devices);
return rc;
}
icsneoc2_device_info_t* info = find_device(found_devices, args.serial);
if(info == NULL) {
fprintf(stderr, "error: unable to find device %s\n", args.serial ? args.serial : "(any)");
icsneoc2_enumeration_free(found_devices);
return 1;
}
char description[256] = {0};
size_t description_len = sizeof(description);
icsneoc2_device_info_description_get(info, description, &description_len);
icsneoc2_device_t* device = NULL;
res = icsneoc2_device_create(info, &device);
if(res != icsneoc2_error_success) {
icsneoc2_enumeration_free(found_devices);
return print_error_code("Failed to create device", res);
}
printf("Opening %s\n", description);
res = icsneoc2_device_open(device, icsneoc2_open_options_default);
if(res != icsneoc2_error_success) {
icsneoc2_device_free(device);
icsneoc2_enumeration_free(found_devices);
return print_error_code("Failed to open device", res);
}
bool supported = false;
icsneoc2_device_supports_gptp(device, &supported);
if(!supported) {
fprintf(stderr, "error: device does not support gPTP (%s)\n", description);
icsneoc2_device_close(device);
icsneoc2_device_free(device);
icsneoc2_enumeration_free(found_devices);
return 1;
}
int rc = configure_device(device);
printf("Closing %s\n", description);
icsneoc2_device_close(device);
icsneoc2_device_free(device);
icsneoc2_enumeration_free(found_devices);
return rc;
}
+6
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@@ -0,0 +1,6 @@
add_executable(libicsneoc2-lin-example src/main.c)
target_link_libraries(libicsneoc2-lin-example icsneoc2-static)
if(WIN32)
target_compile_definitions(libicsneoc2-lin-example PRIVATE _CRT_SECURE_NO_WARNINGS)
endif()
+314
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@@ -0,0 +1,314 @@
/* Note: This example requires LIN 1 and LIN 2 channels to be connected on the device */
#include <icsneo/icsneoc2.h>
#include <icsneo/icsneoc2messages.h>
#include <icsneo/icsneoc2settings.h>
#ifdef _WIN32
#include <windows.h>
#else
#include <unistd.h>
#endif
#include <stdio.h>
#include <inttypes.h>
void sleep_ms(uint32_t ms) {
#ifdef _WIN32
Sleep(ms);
#else
sleep(ms / 1000);
#endif
}
int print_error_code(const char* message, icsneoc2_error_t error) {
char error_str[64];
size_t error_str_len = sizeof(error_str);
icsneoc2_error_t res = icsneoc2_error_code_get(error, error_str, &error_str_len);
if(res != icsneoc2_error_success) {
printf("%s: Failed to get string for error code %d with error code %d\n", message, error, res);
return res;
}
printf("%s: \"%s\" (%u)\n", message, error_str, error);
return (int)error;
}
void print_events(const char* device_description) {
icsneoc2_event_t* events[1024] = {0};
size_t events_count = 1024;
for(size_t i = 0; i < events_count; ++i) {
icsneoc2_error_t res = icsneoc2_event_get(&events[i], NULL);
if(res != icsneoc2_error_success) {
for(size_t j = 0; j < i; ++j) {
icsneoc2_event_free(events[j]);
}
(void)print_error_code("\tFailed to get device events", res);
return;
}
if(events[i] == NULL) {
events_count = i;
break;
}
}
for(size_t i = 0; i < events_count; i++) {
char event_description[255] = {0};
size_t event_description_length = 255;
icsneoc2_error_t res = icsneoc2_event_description_get(events[i], event_description, &event_description_length);
if(res != icsneoc2_error_success) {
print_error_code("\tFailed to get event description", res);
continue;
}
printf("\t%s: Event %zu: %s\n", device_description, i, event_description);
}
for(size_t i = 0; i < events_count; i++) {
icsneoc2_event_free(events[i]);
}
printf("\t%s: Received %zu events\n", device_description, events_count);
}
void process_lin_messages(icsneoc2_message_t** messages, size_t count) {
for(size_t i = 0; i < count; i++) {
bool is_lin = false;
icsneoc2_error_t res = icsneoc2_message_is_lin(messages[i], &is_lin);
if(res != icsneoc2_error_success || !is_lin)
continue;
uint8_t id = 0;
uint8_t protected_id = 0;
uint8_t checksum = 0;
icsneoc2_lin_msg_type_t msg_type = 0;
bool is_enhanced_checksum = false;
res = icsneoc2_message_lin_props_get(messages[i], &id, &protected_id, &checksum, &msg_type, &is_enhanced_checksum);
if(res != icsneoc2_error_success) {
print_error_code("\tFailed to get LIN properties", res);
continue;
}
icsneoc2_netid_t netid = 0;
icsneoc2_message_netid_get(messages[i], &netid);
uint64_t timestamp = 0;
icsneoc2_message_timestamp_get(messages[i], &timestamp);
char netid_name[128] = {0};
size_t netid_name_length = 128;
icsneoc2_netid_name_get(netid, netid_name, &netid_name_length);
uint8_t data[64] = {0};
size_t data_length = 64;
icsneoc2_message_data_get(messages[i], data, &data_length);
icsneoc2_lin_err_flags_t err_flags = 0;
icsneoc2_message_lin_err_flags_get(messages[i], &err_flags);
printf("\t%s RX | ID: 0x%02x | Protected ID: 0x%02x\n", netid_name, id, protected_id);
printf("\tTimestamp: %" PRIu64 " ns since 2007-01-01 UTC\n", timestamp);
printf("\tData: [");
for(size_t x = 0; x < data_length; x++) {
printf(" 0x%02x", data[x]);
}
printf(" ]\n");
printf("\tChecksum type: %s\n", is_enhanced_checksum ? "Enhanced" : "Classic");
printf("\tChecksum: 0x%02x\n", checksum);
printf("\tChecksum valid: %s\n\n", (!(err_flags & ICSNEOC2_LIN_ERR_CHECKSUM_MATCH)) ? "yes" : "no");
}
}
int main() {
/* Open the first available device */
printf("Opening first available device...\n");
icsneoc2_device_t* device = NULL;
icsneoc2_error_t res = icsneoc2_device_open_first(0, icsneoc2_open_options_default, &device);
if(res != icsneoc2_error_success) {
return print_error_code("\tFailed to open first device", res);
}
char description[255] = {0};
size_t description_length = 255;
res = icsneoc2_device_description_get(device, description, &description_length);
if(res != icsneoc2_error_success) {
icsneoc2_device_close(device);
return print_error_code("\tFailed to get device description", res);
}
printf("\tOpened device: %s\n\n", description);
/* Configure LIN settings */
int64_t baud = 19200;
printf("Enable LIN 01 commander resistor... ");
res = icsneoc2_settings_commander_resistor_set(device, icsneoc2_netid_lin_01, true);
printf("%s\n", res == icsneoc2_error_success ? "OK" : "FAIL");
printf("Disable LIN 02 commander resistor... ");
res = icsneoc2_settings_commander_resistor_set(device, icsneoc2_netid_lin_02, false);
printf("%s\n", res == icsneoc2_error_success ? "OK" : "FAIL");
printf("Setting LIN 01 baudrate to %" PRId64 " bit/s... ", baud);
res = icsneoc2_settings_baudrate_set(device, icsneoc2_netid_lin_01, baud);
printf("%s\n", res == icsneoc2_error_success ? "OK" : "FAIL");
printf("Setting LIN 02 baudrate to %" PRId64 " bit/s... ", baud);
res = icsneoc2_settings_baudrate_set(device, icsneoc2_netid_lin_02, baud);
printf("%s\n", res == icsneoc2_error_success ? "OK" : "FAIL");
printf("Setting LIN 01 mode to NORMAL... ");
res = icsneoc2_settings_lin_mode_set(device, icsneoc2_netid_lin_01, icsneoc2_lin_mode_normal);
printf("%s\n", res == icsneoc2_error_success ? "OK" : "FAIL");
printf("Setting LIN 02 mode to NORMAL... ");
res = icsneoc2_settings_lin_mode_set(device, icsneoc2_netid_lin_02, icsneoc2_lin_mode_normal);
printf("%s\n", res == icsneoc2_error_success ? "OK" : "FAIL");
printf("Applying settings... ");
res = icsneoc2_settings_apply(device);
if(res != icsneoc2_error_success) {
print_events(description);
icsneoc2_device_close(device);
return print_error_code("\tFailed to apply settings", res);
}
printf("OK\n");
printf("Getting LIN 01 baudrate... ");
int64_t read_baud = 0;
res = icsneoc2_settings_baudrate_get(device, icsneoc2_netid_lin_01, &read_baud);
if(res == icsneoc2_error_success)
printf("OK, %" PRId64 " bit/s\n", read_baud);
else
printf("FAIL\n");
printf("Getting LIN 02 baudrate... ");
res = icsneoc2_settings_baudrate_get(device, icsneoc2_netid_lin_02, &read_baud);
if(res == icsneoc2_error_success)
printf("OK, %" PRId64 " bit/s\n\n", read_baud);
else
printf("FAIL\n\n");
/* Transmit a LIN responder data update on LIN 02 */
printf("Transmitting a LIN 02 responder data frame... ");
{
icsneoc2_message_t* msg = NULL;
res = icsneoc2_message_lin_create(&msg, 0x11);
if(res != icsneoc2_error_success) {
print_events(description);
icsneoc2_device_close(device);
return print_error_code("\tFailed to create LIN message", res);
}
icsneoc2_lin_msg_type_t msg_type = icsneoc2_lin_msg_type_update_responder;
res = icsneoc2_message_lin_props_set(msg, NULL, NULL, &msg_type, NULL);
uint8_t data[] = {0xaa, 0xbb, 0xcc, 0xdd, 0x11, 0x22, 0x33, 0x44};
res += icsneoc2_message_data_set(msg, data, sizeof(data));
res += icsneoc2_message_netid_set(msg, icsneoc2_netid_lin_02);
res += icsneoc2_message_lin_calc_checksum(msg);
if(res != icsneoc2_error_success) {
icsneoc2_message_free(msg);
print_events(description);
icsneoc2_device_close(device);
return print_error_code("\tFailed to set LIN message properties", res);
}
res = icsneoc2_device_message_transmit(device, msg);
icsneoc2_message_free(msg);
if(res != icsneoc2_error_success) {
print_events(description);
icsneoc2_device_close(device);
return print_error_code("\tFailed to transmit LIN responder message", res);
}
printf("OK\n");
}
/* Transmit a LIN commander header on LIN 01 */
printf("Transmitting a LIN 01 commander header... ");
{
icsneoc2_message_t* msg = NULL;
res = icsneoc2_message_lin_create(&msg, 0x11);
if(res != icsneoc2_error_success) {
print_events(description);
icsneoc2_device_close(device);
return print_error_code("\tFailed to create LIN message", res);
}
icsneoc2_lin_msg_type_t msg_type = icsneoc2_lin_msg_type_header_only;
res = icsneoc2_message_lin_props_set(msg, NULL, NULL, &msg_type, NULL);
res += icsneoc2_message_netid_set(msg, icsneoc2_netid_lin_01);
if(res != icsneoc2_error_success) {
icsneoc2_message_free(msg);
print_events(description);
icsneoc2_device_close(device);
return print_error_code("\tFailed to set LIN message properties", res);
}
res = icsneoc2_device_message_transmit(device, msg);
icsneoc2_message_free(msg);
if(res != icsneoc2_error_success) {
print_events(description);
icsneoc2_device_close(device);
return print_error_code("\tFailed to transmit LIN header", res);
}
printf("OK\n\n");
}
sleep_ms(100);
/* Transmit a LIN commander message with data on LIN 01 */
printf("Transmitting a LIN 01 commander frame with data... ");
{
icsneoc2_message_t* msg = NULL;
res = icsneoc2_message_lin_create(&msg, 0x22);
if(res != icsneoc2_error_success) {
print_events(description);
icsneoc2_device_close(device);
return print_error_code("\tFailed to create LIN message", res);
}
icsneoc2_lin_msg_type_t msg_type = icsneoc2_lin_msg_type_commander_msg;
bool enhanced = true;
res = icsneoc2_message_lin_props_set(msg, NULL, NULL, &msg_type, &enhanced);
uint8_t data[] = {0x11, 0x22, 0x33, 0x44, 0xaa, 0xbb, 0xcc, 0xdd};
res += icsneoc2_message_data_set(msg, data, sizeof(data));
res += icsneoc2_message_netid_set(msg, icsneoc2_netid_lin_01);
res += icsneoc2_message_lin_calc_checksum(msg);
if(res != icsneoc2_error_success) {
icsneoc2_message_free(msg);
print_events(description);
icsneoc2_device_close(device);
return print_error_code("\tFailed to set LIN message properties", res);
}
res = icsneoc2_device_message_transmit(device, msg);
icsneoc2_message_free(msg);
if(res != icsneoc2_error_success) {
print_events(description);
icsneoc2_device_close(device);
return print_error_code("\tFailed to transmit LIN commander message", res);
}
printf("OK\n\n");
}
sleep_ms(100);
/* Read back any received messages and display LIN frames */
icsneoc2_message_t* messages[2048] = {0};
size_t message_count = 2048;
printf("Getting messages...\n");
for(size_t i = 0; i < message_count; ++i) {
res = icsneoc2_device_message_get(device, &messages[i], 0);
if(res != icsneoc2_error_success) {
for(size_t j = 0; j < i; ++j) {
icsneoc2_message_free(messages[j]);
}
print_events(description);
icsneoc2_device_close(device);
return print_error_code("\tFailed to get messages", res);
}
if(messages[i] == NULL) {
message_count = i;
break;
}
}
printf("\tReceived %zu messages\n", message_count);
process_lin_messages(messages, message_count);
for(size_t i = 0; i < message_count; ++i) {
icsneoc2_message_free(messages[i]);
}
/* Cleanup */
print_events(description);
printf("Closing device... ");
res = icsneoc2_device_close(device);
printf("%s\n", res == icsneoc2_error_success ? "OK" : "FAIL");
return 0;
}
+6
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@@ -0,0 +1,6 @@
add_executable(libicsneoc2-lin-transmit-example src/main.c)
target_link_libraries(libicsneoc2-lin-transmit-example icsneoc2-static)
if(WIN32)
target_compile_definitions(libicsneoc2-lin-transmit-example PRIVATE _CRT_SECURE_NO_WARNINGS)
endif()
+276
View File
@@ -0,0 +1,276 @@
#include <icsneo/icsneoc2.h>
#include <icsneo/icsneoc2messages.h>
#include <icsneo/icsneoc2settings.h>
#ifdef _WIN32
#include <windows.h>
#else
#include <unistd.h>
#endif
#include <stdio.h>
#include <stdlib.h>
#include <string.h>
#include <inttypes.h>
void sleep_ms(uint32_t ms) {
#ifdef _WIN32
Sleep(ms);
#else
sleep(ms / 1000);
#endif
}
int print_error_code(const char* message, icsneoc2_error_t error) {
char error_str[64];
size_t error_str_len = sizeof(error_str);
icsneoc2_error_t res = icsneoc2_error_code_get(error, error_str, &error_str_len);
if(res != icsneoc2_error_success) {
printf("%s: Failed to get string for error code %d with error code %d\n", message, error, res);
return res;
}
printf("%s: \"%s\" (%u)\n", message, error_str, error);
return (int)error;
}
int read_int(const char* prompt, int min_val, int max_val) {
int value;
while(1) {
printf("%s", prompt);
if(scanf("%d", &value) != 1) {
/* Clear invalid input */
int c;
while((c = getchar()) != '\n' && c != EOF) {}
printf("Invalid input, try again.\n");
continue;
}
if(value < min_val || value > max_val) {
printf("Please enter a value between %d and %d.\n", min_val, max_val);
continue;
}
return value;
}
}
int read_hex(const char* prompt, int min_val, int max_val) {
int value;
while(1) {
printf("%s", prompt);
if(scanf("%x", &value) != 1) {
/* Clear invalid input */
int c;
while((c = getchar()) != '\n' && c != EOF) {}
printf("Invalid input, try again.\n");
continue;
}
if(value < min_val || value > max_val) {
printf("Please enter a value between 0x%X and 0x%X.\n", min_val, max_val);
continue;
}
return value;
}
}
int main() {
icsneoc2_error_t res;
/* ===== Device Selection ===== */
printf("Searching for devices...\n");
icsneoc2_device_info_t* found_devices = NULL;
res = icsneoc2_device_enumerate(0, &found_devices);
if(res != icsneoc2_error_success) {
return print_error_code("Failed to enumerate devices", res);
}
if(!found_devices) {
printf("No devices found.\n");
return 1;
}
/* Count and display devices */
int device_count = 0;
for(icsneoc2_device_info_t* cur = found_devices; cur; cur = icsneoc2_device_info_next(cur)) {
char desc[128] = {0};
size_t desc_len = sizeof(desc);
icsneoc2_device_info_description_get(cur, desc, &desc_len);
printf(" [%d] %s\n", device_count + 1, desc);
device_count++;
}
int device_choice = read_int("Select device: ", 1, device_count);
/* Find the selected device_info node */
icsneoc2_device_info_t* selected_info = found_devices;
for(int i = 1; i < device_choice; i++) {
selected_info = icsneoc2_device_info_next(selected_info);
}
/* Open the selected device */
icsneoc2_device_t* device = NULL;
res = icsneoc2_device_create(selected_info, &device);
if(res != icsneoc2_error_success) {
icsneoc2_enumeration_free(found_devices);
return print_error_code("Failed to create device from device info", res);
}
res = icsneoc2_device_open(device, icsneoc2_open_options_default);
icsneoc2_enumeration_free(found_devices);
if(res != icsneoc2_error_success) {
icsneoc2_device_free(device);
return print_error_code("Failed to open device", res);
}
char description[128] = {0};
size_t description_length = sizeof(description);
icsneoc2_device_description_get(device, description, &description_length);
printf("Opened device: %s\n\n", description);
/* ===== LIN Network Selection ===== */
/* Get all supported TX networks */
size_t tx_net_count = 0;
res = icsneoc2_device_supported_tx_networks_get(device, NULL, &tx_net_count);
if(res != icsneoc2_error_success || tx_net_count == 0) {
printf("No supported TX networks.\n");
icsneoc2_device_close(device);
return 1;
}
icsneoc2_netid_t* tx_networks = (icsneoc2_netid_t*)malloc(tx_net_count * sizeof(icsneoc2_netid_t));
if(!tx_networks) {
printf("Out of memory.\n");
icsneoc2_device_close(device);
icsneoc2_device_free(device);
return 1;
}
res = icsneoc2_device_supported_tx_networks_get(device, tx_networks, &tx_net_count);
if(res != icsneoc2_error_success) {
free(tx_networks);
icsneoc2_device_close(device);
icsneoc2_device_free(device);
return print_error_code("Failed to get TX networks", res);
}
/* Filter for LIN networks */
icsneoc2_netid_t lin_networks[64] = {0};
char lin_names[64][128] = {{0}};
size_t lin_count = 0;
for(size_t i = 0; i < tx_net_count && lin_count < 64; i++) {
icsneoc2_message_t* tmp = NULL;
res = icsneoc2_message_lin_create(&tmp, 0);
if(res != icsneoc2_error_success) continue;
res = icsneoc2_message_netid_set(tmp, tx_networks[i]);
if(res != icsneoc2_error_success) { icsneoc2_message_free(tmp); continue; }
icsneoc2_network_type_t ntype = 0;
res = icsneoc2_message_network_type_get(tmp, &ntype);
icsneoc2_message_free(tmp);
if(res != icsneoc2_error_success) continue;
if(ntype == icsneoc2_network_type_lin) {
lin_networks[lin_count] = tx_networks[i];
size_t name_len = 128;
icsneoc2_netid_name_get(tx_networks[i], lin_names[lin_count], &name_len);
lin_count++;
}
}
free(tx_networks);
if(lin_count == 0) {
printf("No LIN networks available on this device.\n");
icsneoc2_device_close(device);
icsneoc2_device_free(device);
return 1;
}
printf("Available LIN networks:\n");
for(size_t i = 0; i < lin_count; i++) {
printf(" [%zu] %s\n", i + 1, lin_names[i]);
}
int lin_choice = read_int("Select LIN network: ", 1, (int)lin_count);
icsneoc2_netid_t selected_netid = lin_networks[lin_choice - 1];
printf("Selected: %s\n\n", lin_names[lin_choice - 1]);
/* ===== Commander / Responder Selection ===== */
printf("Message type:\n");
printf(" [1] Commander frame\n");
printf(" [2] Responder frame (update responder + header only)\n");
int type_choice = read_int("Select message type: ", 1, 2);
bool is_commander = (type_choice == 1);
printf("Selected: %s\n\n", is_commander ? "Commander" : "Responder");
uint8_t id_choice = (uint8_t)read_hex("Select LIN ID (0x00-0x3F): ", 0, 0x3F);
printf("Selected: 0x%02X\n\n", id_choice);
/* ===== Configure LIN ===== */
printf("Configuring %s... ", lin_names[lin_choice - 1]);
res = icsneoc2_settings_commander_resistor_set(device, selected_netid, is_commander);
res += icsneoc2_settings_baudrate_set(device, selected_netid, 19200);
res += icsneoc2_settings_lin_mode_set(device, selected_netid, icsneoc2_lin_mode_normal);
res += icsneoc2_settings_apply(device);
if(res != icsneoc2_error_success) {
icsneoc2_device_close(device);
icsneoc2_device_free(device);
return print_error_code("Failed to configure LIN", res);
}
printf("OK\n\n");
/* ===== Transmit Loop ===== */
printf("Transmitting on %s every second for 10 seconds...\n", lin_names[lin_choice - 1]);
uint8_t counter = 0;
for(int i = 0; i < 10; i++) {
icsneoc2_message_t* msg = NULL;
res = icsneoc2_message_lin_create(&msg, id_choice);
if(res != icsneoc2_error_success) {
print_error_code("\tFailed to create LIN message", res);
break;
}
uint8_t data[] = {counter, counter + 1, counter + 2, counter + 3, 0xAA, 0xBB, 0xCC, 0xDD};
bool enhanced = true;
if(is_commander) {
/* Commander: send header-only frame to poll the bus */
icsneoc2_lin_msg_type_t msg_type = icsneoc2_lin_msg_type_header_only;
res = icsneoc2_message_lin_props_set(msg, NULL, NULL, &msg_type, &enhanced);
res += icsneoc2_message_netid_set(msg, selected_netid);
if(res != icsneoc2_error_success) {
icsneoc2_message_free(msg);
print_error_code("\tFailed to set commander properties", res);
break;
}
res = icsneoc2_device_message_transmit(device, msg);
icsneoc2_message_free(msg);
if(res != icsneoc2_error_success) {
print_error_code("\tFailed to transmit header", res);
break;
}
} else {
/* Responder: update the responder table with new data */
icsneoc2_lin_msg_type_t msg_type = icsneoc2_lin_msg_type_update_responder;
res = icsneoc2_message_lin_props_set(msg, NULL, NULL, &msg_type, &enhanced);
res += icsneoc2_message_data_set(msg, data, sizeof(data));
res += icsneoc2_message_lin_calc_checksum(msg);
res += icsneoc2_message_netid_set(msg, selected_netid);
if(res != icsneoc2_error_success) {
icsneoc2_message_free(msg);
print_error_code("\tFailed to update responder", res);
break;
}
res = icsneoc2_device_message_transmit(device, msg);
icsneoc2_message_free(msg);
if(res != icsneoc2_error_success) {
print_error_code("\tFailed to transmit responder update", res);
break;
}
}
printf("[%2d/10] Transmitted %s msg ID=0x%02X, counter=%u\n",
i + 1, is_commander ? "commander" : "responder", id_choice, counter);
counter += 4;
sleep_ms(1000);
}
/* Cleanup */
printf("\nClosing device... ");
res = icsneoc2_device_close(device);
printf("%s\n", res == icsneoc2_error_success ? "OK" : "FAIL");
icsneoc2_device_free(device);
return 0;
}
+6
View File
@@ -0,0 +1,6 @@
add_executable(libicsneoc2-perf_test-example src/main.c)
target_link_libraries(libicsneoc2-perf_test-example icsneoc2-static)
if(WIN32)
target_compile_definitions(libicsneoc2-perf_test-example PRIVATE _CRT_SECURE_NO_WARNINGS)
endif()
+137
View File
@@ -0,0 +1,137 @@
/*
* PerfTest setting example.
*
* Opens the first available device, enables the device-global PerfTest mode
* via icsneoc2_settings_perf_test_enabled_set(), reads messages for a few
* seconds while PerfTest is active, then disables PerfTest again. Each step
* reads the value back with icsneoc2_settings_perf_test_enabled_get() to
* confirm the change took effect.
*/
#include <icsneo/icsneoc2.h>
#include <icsneo/icsneoc2settings.h>
#include <icsneo/icsneoc2messages.h>
#include <stdbool.h>
#include <stdio.h>
#include <time.h>
static int print_error_code(const char* message, icsneoc2_error_t error) {
char error_str[64] = {0};
size_t error_str_len = sizeof(error_str);
icsneoc2_error_t res = icsneoc2_error_code_get(error, error_str, &error_str_len);
if(res != icsneoc2_error_success) {
fprintf(stderr, "%s: failed to get string for error code %u\n", message, error);
return (int)res;
}
fprintf(stderr, "%s: \"%s\" (%u)\n", message, error_str, error);
return (int)error;
}
/* Sets PerfTest, applies it to the device, then reads it back to confirm. */
static icsneoc2_error_t set_and_verify_perf_test(icsneoc2_device_t* device, bool enable) {
icsneoc2_error_t res = icsneoc2_settings_perf_test_enabled_set(device, enable);
if(res != icsneoc2_error_success)
return res;
res = icsneoc2_settings_apply(device);
if(res != icsneoc2_error_success)
return res;
/* Re-read settings from the device so the read-back reflects what was
* actually persisted, not just the local settings buffer. */
res = icsneoc2_settings_refresh(device);
if(res != icsneoc2_error_success)
return res;
bool value = !enable;
res = icsneoc2_settings_perf_test_enabled_get(device, &value);
if(res != icsneoc2_error_success)
return res;
printf("\tPerfTest now reads back as: %s\n", value ? "enabled" : "disabled");
if(value != enable) {
fprintf(stderr, "\tERROR: expected PerfTest %s but device reports %s\n",
enable ? "enabled" : "disabled", value ? "enabled" : "disabled");
return icsneoc2_error_get_settings_failure;
}
return icsneoc2_error_success;
}
/* Continuously drains and counts messages for the given wall-clock duration. */
static icsneoc2_error_t read_messages_for(icsneoc2_device_t* device, unsigned seconds) {
size_t total = 0;
printf("\tReading messages for %u seconds...\n", seconds);
time_t start = time(NULL);
while((time_t)(time(NULL) - start) < (time_t)seconds) {
/* Short timeout so an idle bus still lets us re-check the clock,
* while a flooding bus is drained as fast as messages arrive. */
icsneoc2_message_t* message = NULL;
icsneoc2_error_t res = icsneoc2_device_message_get(device, &message, 50);
if(res != icsneoc2_error_success)
return res;
if(message == NULL)
continue;
++total;
icsneoc2_message_free(message);
}
printf("\tReceived %zu messages in %u seconds.\n", total, seconds);
return icsneoc2_error_success;
}
int main(void) {
printf("Opening first available device...\n");
icsneoc2_device_t* device = NULL;
icsneoc2_error_t res = icsneoc2_device_open_first(0, icsneoc2_open_options_default, &device);
if(res != icsneoc2_error_success)
return print_error_code("\tFailed to open first device", res);
char description[255] = {0};
size_t description_length = sizeof(description);
res = icsneoc2_device_description_get(device, description, &description_length);
if(res != icsneoc2_error_success) {
icsneoc2_device_free(device);
return print_error_code("\tFailed to get device description", res);
}
printf("\tOpened device: %s\n", description);
/* Pull the current settings down from the device before reading/modifying them. */
res = icsneoc2_settings_refresh(device);
if(res != icsneoc2_error_success)
goto cleanup;
bool initial = false;
res = icsneoc2_settings_perf_test_enabled_get(device, &initial);
if(res != icsneoc2_error_success) {
print_error_code("\tFailed to read initial PerfTest state (device may not support it)", res);
goto cleanup;
}
printf("\tInitial PerfTest state: %s\n", initial ? "enabled" : "disabled");
printf("Enabling PerfTest...\n");
res = set_and_verify_perf_test(device, true);
if(res != icsneoc2_error_success) {
print_error_code("\tFailed to enable PerfTest", res);
goto cleanup;
}
res = read_messages_for(device, 3);
if(res != icsneoc2_error_success) {
print_error_code("\tFailed while reading messages", res);
goto cleanup;
}
printf("Disabling PerfTest...\n");
res = set_and_verify_perf_test(device, false);
if(res != icsneoc2_error_success) {
print_error_code("\tFailed to disable PerfTest", res);
goto cleanup;
}
printf("PerfTest enable/read/disable cycle completed successfully.\n");
cleanup:
icsneoc2_device_close(device);
icsneoc2_device_free(device);
return (int)res;
}
+6
View File
@@ -0,0 +1,6 @@
add_executable(libicsneoc2-read_messages-example src/main.c)
target_link_libraries(libicsneoc2-read_messages-example icsneoc2-static)
if(WIN32)
target_compile_definitions(libicsneoc2-read_messages-example PRIVATE _CRT_SECURE_NO_WARNINGS)
endif()
+343
View File
@@ -0,0 +1,343 @@
#include <icsneo/icsneoc2.h>
#include <icsneo/icsneoc2settings.h>
#include <icsneo/icsneoc2messages.h>
#include <stdio.h>
#include <inttypes.h>
#include <time.h>
#ifdef _WIN32
#include <windows.h>
#else
#include <unistd.h>
#endif
/**
* Sleeps for a specified number of milliseconds using Sleep() on Windows and sleep() on *nix.
*
* @param ms The number of milliseconds to sleep.
*/
void sleep_ms(uint32_t ms) {
#ifdef _WIN32
Sleep(ms);
#else
sleep(ms / 1000);
#endif
}
/**
* Prints all events
*
* @param device_description A description of the device used in the output.
*/
void print_events(const char* device_description);
/**
* Prints an error message with the given string and error code.
*
* If the error code is not icsneoc2_error_success, prints the error string for the given error code
* and returns the error code.
*
* @param message The message to print.
* @param error The error code to print.
* @return error as int
*/
int print_error_code(const char* message, icsneoc2_error_t error) {
char error_str[64];
size_t error_str_len = sizeof(error_str);
icsneoc2_error_t res = icsneoc2_error_code_get(error, error_str, &error_str_len);
if(res != icsneoc2_error_success) {
printf("%s: Failed to get string for error code %d with error code %d\n", message, error, res);
return res;
}
printf("%s: \"%s\" (%u)\n", message, error_str, error);
return (int)error;
}
/**
* Processes a list of messages from a device.
*
* This function iterates over a given array of messages received from a specified device.
* For each message in the array, it retrieves and prints the message type and bus type.
* If an error occurs while retrieving these details, an error message is printed.
*
* @param messages An array of pointers to icsneoc2_message_t structures containing the messages to process.
* @param messages_count The number of messages in the messages array.
*
* @return An icsneoc2_error_t value indicating success or failure of the message processing.
*/
int process_message(icsneoc2_message_t** messages, size_t messages_count);
int transmit_can_messages(icsneoc2_device_t* device);
int main() {
// Open the first available device with default options
printf("Opening first available device...\n");
icsneoc2_device_t* open_device = NULL;
icsneoc2_error_t res = icsneoc2_device_open_first(0, icsneoc2_open_options_default, &open_device);
if(res != icsneoc2_error_success) {
return print_error_code("\tFailed to open first device", res);
};
// Get a description of the opened device
char description[255] = {0};
size_t description_length = 255;
res = icsneoc2_device_description_get(open_device, description, &description_length);
if(res != icsneoc2_error_success) {
icsneoc2_device_free(open_device);
return print_error_code("\tFailed to get device description", res);
};
printf("\tOpened device: %s\n", description);
// Transmit messages for debugging purposes
// transmit_can_messages(open_device);
// sleep_ms(1000);
// Get the messages
icsneoc2_message_t* messages[20000] = {0};
size_t message_count = 20000;
time_t start_time = time(NULL);
printf("\tGetting messages from device with timeout of 3000ms on %s...\n", description);
for(size_t i = 0; i < message_count; ++i) {
res = icsneoc2_device_message_get(open_device, &messages[i], 0);
if(res != icsneoc2_error_success) {
print_events(description);
icsneoc2_device_free(open_device);
return print_error_code("\tFailed to get messages from device", res);
};
if(messages[i] == NULL) {
// no more messages
message_count = i;
break;
}
}
if(res != icsneoc2_error_success) {
print_events(description);
icsneoc2_device_free(open_device);
return print_error_code("\tFailed to get messages from device", res);
}
time_t end_time = time(NULL);
printf("\tGot %zu messages in %lld seconds\n", message_count, (long long)(end_time - start_time));
// Process the messages
res = process_message(messages, message_count);
if(res != icsneoc2_error_success) {
print_events(description);
icsneoc2_device_free(open_device);
return print_error_code("\tFailed to process messages", res);
}
// Finally, close the device.
printf("\tClosing device: %s...\n", description);
res = icsneoc2_device_close(open_device);
if(res != icsneoc2_error_success) {
print_events(description);
icsneoc2_device_free(open_device);
return print_error_code("\tFailed to close device", res);
};
icsneoc2_device_free(open_device);
printf("\n");
return 0;
}
void print_events(const char* device_description) {
icsneoc2_event_t* events[1024] = {0};
size_t events_count = 1024;
for(size_t i = 0; i < events_count; ++i) {
// no device filter, get all events
icsneoc2_error_t res = icsneoc2_event_get(&events[i], NULL);
if(res != icsneoc2_error_success) {
(void)print_error_code("\tFailed to get device events", res);
return;
}
if(events[i] == NULL) {
events_count = i;
break;
}
}
// Loop over each event and describe it.
for(size_t i = 0; i < events_count; i++) {
char event_description[255] = {0};
size_t event_description_length = 255;
icsneoc2_error_t res = icsneoc2_event_description_get(events[i], event_description, &event_description_length);
if(res != icsneoc2_error_success) {
print_error_code("\tFailed to get event description", res);
continue;
}
printf("\t%s: Event %zu: %s\n", device_description, i, event_description);
}
for(size_t i = 0; i < events_count; i++) {
icsneoc2_event_free(events[i]);
}
printf("\t%s: Received %zu events\n", device_description, events_count);
}
int process_message(icsneoc2_message_t** messages, size_t messages_count) {
// Print the type and bus type of each message
size_t tx_count = 0;
size_t can_error_count = 0;
size_t internal_count = 0;
icsneoc2_error_t res = icsneoc2_error_success;
for(size_t i = 0; i < messages_count; i++) {
icsneoc2_message_t* message = messages[i];
bool is_can_error = false;
res = icsneoc2_message_is_can_error(message, &is_can_error);
if(res != icsneoc2_error_success) {
return print_error_code("\tFailed to check if message is a CAN error", res);
}
if(is_can_error) {
icsneoc2_network_type_t network_type;
uint8_t tec = 0;
uint8_t rec = 0;
icsneoc2_can_error_code_t error_code = 0;
icsneoc2_can_error_code_t data_error_code = 0;
icsneoc2_message_can_error_flags_t error_flags = 0;
icsneoc2_netid_t netid = 0;
char network_type_name[128] = {0};
size_t network_type_name_length = 128;
char netid_name[128] = {0};
size_t netid_name_length = 128;
res = icsneoc2_message_network_type_get(message, &network_type);
res += icsneoc2_network_type_name_get(network_type, network_type_name, &network_type_name_length);
res += icsneoc2_message_netid_get(message, &netid);
res += icsneoc2_netid_name_get(netid, netid_name, &netid_name_length);
res += icsneoc2_message_can_error_props_get(message, &tec, &rec, &error_code, &data_error_code, &error_flags);
if(res != icsneoc2_error_success) {
return print_error_code("\tFailed to get CAN error properties", res);
}
printf("\t%zd) CAN Error on %s [%s] (0x%x): TEC=%u REC=%u ErrorCode=%u DataErrorCode=%u%s%s%s\n",
i, netid_name, network_type_name, netid, tec, rec, error_code, data_error_code,
(error_flags & ICSNEOC2_MESSAGE_CAN_ERROR_FLAGS_BUS_OFF) ? " [BusOff]" : "",
(error_flags & ICSNEOC2_MESSAGE_CAN_ERROR_FLAGS_ERROR_PASSIVE) ? " [ErrorPassive]" : "",
(error_flags & ICSNEOC2_MESSAGE_CAN_ERROR_FLAGS_ERROR_WARN) ? " [ErrorWarn]" : "");
can_error_count++;
continue;
}
// This example only cares about bus traffic, so skip internal
// device/status messages.
icsneoc2_network_type_t internal_check = icsneoc2_network_type_invalid;
res = icsneoc2_message_network_type_get(message, &internal_check);
if(res == icsneoc2_error_success && internal_check == icsneoc2_network_type_internal) {
internal_count++;
continue;
}
bool is_frame = false;
res = icsneoc2_message_is_frame(message, &is_frame);
if(res != icsneoc2_error_success) {
return print_error_code("\tFailed to check if message is a frame", res);
}
if(!is_frame) {
continue;
}
icsneoc2_network_type_t network_type;
res = icsneoc2_message_network_type_get(message, &network_type);
if(res != icsneoc2_error_success) {
return print_error_code("\tFailed to get message network type", res);
}
char network_type_name[128] = {0};
size_t network_type_name_length = 128;
res = icsneoc2_network_type_name_get(network_type, network_type_name, &network_type_name_length);
if(res != icsneoc2_error_success) {
return print_error_code("\tFailed to get message bus type name", res);
}
if(res != icsneoc2_error_success) {
return print_error_code("\tFailed to get message is transmit", res);
}
printf("\t%zd) network type: %s (%u)\n", i, network_type_name, network_type);
if(network_type == icsneoc2_network_type_can) {
uint64_t timestamp = 0;
uint64_t arbid = 0;
int32_t dlc = 0;
icsneoc2_netid_t netid = 0;
icsneoc2_message_can_flags_t can_flags = 0;
uint8_t data[64] = {0};
size_t data_length = 64;
char netid_name[128] = {0};
size_t netid_name_length = 128;
bool is_error = false;
bool is_tx = false;
icsneoc2_error_t result = icsneoc2_message_netid_get(message, &netid);
result += icsneoc2_netid_name_get(netid, netid_name, &netid_name_length);
result += icsneoc2_message_timestamp_get(message, &timestamp);
result += icsneoc2_message_can_props_get(message, &arbid, &can_flags);
result += icsneoc2_message_data_get(message, data, &data_length);
result += icsneoc2_message_is_transmit(message, &is_tx);
result += icsneoc2_message_is_error(message, &is_error);
if(result != icsneoc2_error_success) {
printf("\tFailed get get CAN parameters (error: %u) for index %zu\n", result, i);
continue;
}
tx_count += is_tx ? 1 : 0;
bool is_remote = (can_flags & ICSNEOC2_MESSAGE_CAN_FLAGS_RTR) != 0;
bool is_extended = (can_flags & ICSNEOC2_MESSAGE_CAN_FLAGS_IDE) != 0;
bool is_canfd = (can_flags & ICSNEOC2_MESSAGE_CAN_FLAGS_FDF) != 0;
bool is_brs = (can_flags & ICSNEOC2_MESSAGE_CAN_FLAGS_BRS) != 0;
bool is_esi = (can_flags & ICSNEOC2_MESSAGE_CAN_FLAGS_ESI) != 0;
bool tx_aborted = (can_flags & ICSNEOC2_MESSAGE_CAN_FLAGS_TX_ABORTED) != 0;
bool tx_lost_arb = (can_flags & ICSNEOC2_MESSAGE_CAN_FLAGS_TX_LOST_ARB) != 0;
bool tx_error = (can_flags & ICSNEOC2_MESSAGE_CAN_FLAGS_TX_ERROR) != 0;
dlc = (int32_t)data_length;
printf("\t %s%s\n", is_tx ? "TX" : "RX", is_error ? " [Error]" : "");
printf("\t Timestamp: %" PRIu64 " ns since 2007-01-01 UTC\n", timestamp);
printf("\t NetID: %s (0x%x)\tArbID: 0x%llx\tDLC: %u\tLen: %zu\n", netid_name, netid, (unsigned long long)arbid, dlc, data_length);
printf("\t Flags:%s%s%s%s%s%s%s%s\n",
is_remote ? " RTR" : "",
is_extended ? " IDE" : "",
is_canfd ? " FDF" : "",
is_brs ? " BRS" : "",
is_esi ? " ESI" : "",
tx_aborted ? " TX_ABORTED" : "",
tx_lost_arb ? " TX_LOST_ARB" : "",
tx_error ? " TX_ERROR" : "");
printf("\t Data: [");
for(size_t x = 0; x < data_length; x++) {
printf(" 0x%x", data[x]);
}
printf(" ]\n");
}
}
printf("\tReceived %zu messages total, %zu were TX messages, %zu were CAN errors, %zu internal (skipped)\n", messages_count, tx_count, can_error_count, internal_count);
return icsneoc2_error_success;
}
int transmit_can_messages(icsneoc2_device_t* device) {
uint64_t counter = 0;
const size_t msg_count = 10;
printf("\tTransmitting %zd messages...\n", msg_count);
for(size_t i = 0; i < msg_count; i++) {
// Create the message
icsneoc2_message_t* message = NULL;
icsneoc2_error_t res = icsneoc2_message_can_create(&message);
if(res != icsneoc2_error_success) {
return print_error_code("\tFailed to create messages", res);
}
// Set the message attributes
res = icsneoc2_message_netid_set(message, icsneoc2_netid_dwcan_01);
uint64_t arb_id = 0x10;
uint64_t flags = 0;
res += icsneoc2_message_can_props_set(message, &arb_id, &flags);
res += icsneoc2_message_data_set(message, (uint8_t*)&counter, sizeof(counter));
if(res != icsneoc2_error_success) {
icsneoc2_message_free(message);
return print_error_code("\tFailed to modify message", res);
}
res = icsneoc2_device_message_transmit(device, message);
res += icsneoc2_message_free(message);
if(res != icsneoc2_error_success) {
return print_error_code("\tFailed to transmit message", res);
}
counter++;
}
return icsneoc2_error_success;
}
+6
View File
@@ -0,0 +1,6 @@
add_executable(libicsneoc2-reconnect-example src/main.c)
target_link_libraries(libicsneoc2-reconnect-example icsneoc2-static)
if(WIN32)
target_compile_definitions(libicsneoc2-reconnect-example PRIVATE _CRT_SECURE_NO_WARNINGS)
endif()
+132
View File
@@ -0,0 +1,132 @@
#include <icsneo/icsneoc2.h>
#include <stdio.h>
#ifdef _WIN32
#include <windows.h>
#else
#include <unistd.h>
#endif
void sleep_ms(uint32_t ms) {
#ifdef _WIN32
Sleep(ms);
#else
usleep(ms * 1000);
#endif
}
int print_error_code(const char* message, icsneoc2_error_t error) {
char error_str[64];
size_t error_str_len = sizeof(error_str);
icsneoc2_error_t res = icsneoc2_error_code_get(error, error_str, &error_str_len);
if(res != icsneoc2_error_success) {
printf("%s: Failed to get string for error code %d with error code %d\n", message, error, res);
return res;
}
printf("%s: \"%s\" (%u)\n", message, error_str, error);
return (int)error;
}
void print_events(void) {
icsneoc2_event_t* events[256] = {0};
size_t events_count = 256;
for(size_t i = 0; i < events_count; ++i) {
icsneoc2_error_t res = icsneoc2_event_get(&events[i], NULL);
if(res != icsneoc2_error_success) {
(void)print_error_code("\tFailed to get events", res);
return;
}
if(events[i] == NULL) {
events_count = i;
break;
}
}
for(size_t i = 0; i < events_count; i++) {
char description[255] = {0};
size_t description_length = 255;
icsneoc2_error_t res = icsneoc2_event_description_get(events[i], description, &description_length);
if(res != icsneoc2_error_success) {
print_error_code("\tFailed to get event description", res);
continue;
}
printf("\tEvent %zu: %s\n", i, description);
}
for(size_t i = 0; i < events_count; i++) {
icsneoc2_event_free(events[i]);
}
if(events_count > 0) {
printf("\tReceived %zu events\n", events_count);
}
}
int main(void) {
/* Open the first available device */
printf("Opening first available device...\n");
icsneoc2_device_t* device = NULL;
icsneoc2_error_t res = icsneoc2_device_open_first(0, icsneoc2_open_options_default, &device);
if(res != icsneoc2_error_success) {
return print_error_code("Failed to open first device", res);
}
/* Get a description of the opened device */
char description[255] = {0};
size_t description_length = 255;
res = icsneoc2_device_description_get(device, description, &description_length);
if(res != icsneoc2_error_success) {
icsneoc2_device_free(device);
return print_error_code("Failed to get device description", res);
}
printf("Opened device: %s\n", description);
/* Wait for the device to disconnect */
printf("Waiting for device to disconnect (unplug device from PC)...\n");
for(;;) {
bool is_open = true;
res = icsneoc2_device_is_open(device, &is_open);
if(res != icsneoc2_error_success) {
print_events();
icsneoc2_device_free(device);
return print_error_code("Failed to check open status", res);
}
if(!is_open) {
printf("Device disconnected!\n");
break;
}
sleep_ms(500);
}
/* Attempt to reconnect */
uint32_t timeout_ms = 20000; // 20 second timeout
printf("Attempting to reconnect (%u second timeout)...\n", timeout_ms / 1000);
res = icsneoc2_device_reconnect(device, icsneoc2_open_options_default, timeout_ms);
if(res != icsneoc2_error_success) {
print_events();
icsneoc2_device_free(device);
return print_error_code("Failed to reconnect", res);
}
printf("Reconnected successfully!\n");
/* Verify by getting the description again */
description_length = 255;
res = icsneoc2_device_description_get(device, description, &description_length);
if(res == icsneoc2_error_success) {
printf("Device: %s\n", description);
}
/* Print any events */
print_events();
/* Close the device */
printf("Closing device...\n");
res = icsneoc2_device_close(device);
if(res != icsneoc2_error_success) {
icsneoc2_device_free(device);
return print_error_code("Failed to close device", res);
}
icsneoc2_device_free(device);
printf("Done.\n");
return 0;
}
+6
View File
@@ -0,0 +1,6 @@
add_executable(libicsneoc2-simple-example src/main.c)
target_link_libraries(libicsneoc2-simple-example icsneoc2-static)
if(WIN32)
target_compile_definitions(libicsneoc2-simple-example PRIVATE _CRT_SECURE_NO_WARNINGS)
endif()
+541
View File
@@ -0,0 +1,541 @@
#include <icsneo/icsneoc2.h>
#include <icsneo/icsneoc2messages.h>
#include <icsneo/icsneoc2settings.h>
#ifdef _WIN32
#include <windows.h>
#else
#include <unistd.h>
#endif
#include <stdio.h>
#include <inttypes.h>
#include <time.h>
/**
* Sleeps for a specified number of milliseconds using Sleep() on Windows and sleep() on *nix.
*
* @param ms The number of milliseconds to sleep.
*/
void sleep_ms(uint32_t ms) {
#ifdef _WIN32
Sleep(ms);
#else
sleep(ms / 1000);
#endif
}
/**
* Prints an error message with the given string and error code.
*
* If the error code is not icsneoc2_error_success, prints the error string for the given error code
* and returns the error code.
*
* @param message The message to print.
* @param error The error code to print.
* @return error as int
*/
int print_error_code(const char* message, icsneoc2_error_t error) {
char error_str[64];
size_t error_str_len = sizeof(error_str);
icsneoc2_error_t res = icsneoc2_error_code_get(error, error_str, &error_str_len);
if(res != icsneoc2_error_success) {
printf("%s: Failed to get string for error code %d with error code %d\n", message, error, res);
return res;
}
printf("%s: \"%s\" (%u)\n", message, error_str, error);
return (int)error;
}
/**
* Processes a list of messages from a device.
*
* This function iterates over a given array of messages received from a specified device.
* For each message in the array, it retrieves and prints the message type and bus type.
* If an error occurs while retrieving these details, an error message is printed.
*
* @param messages An array of pointers to icsneoc2_message_t structures containing the messages to process.
* @param messages_count The number of messages in the messages array.
*
* @return An icsneoc2_error_t value indicating success or failure of the message processing.
*/
int process_messages(icsneoc2_message_t** messages, size_t messages_count);
/**
* Prints all events
*
* @param device_description A description of the device used in the output.
*/
void print_events(const char* device_description);
/**
* Transmits a series of CAN messages from a device.
*
* This function creates and transmits 100 CAN messages with incrementing payload data.
* Each message is configured with specific attributes such as network ID, arbitration
* ID, CANFD status, extended status, and baudrate switch. After successfully transmitting
* each message, it is freed from memory.
*
* @param device A pointer to the icsneoc2_device_t structure representing the device to transmit messages from.
*
* @return An icsneoc2_error_t value indicating success or failure of the message transmission process.
*/
int transmit_can_messages(icsneoc2_device_t* device);
/**
* Get the RTC (Real time clock) of a device and print it.
*
* @param[in] device The device to get the RTC of.
* @param[in] description A description of the device for printing purpose.
*
* @return icsneoc2_error_t icsneoc2_error_success if successful, icsneoc2_error_invalid_parameters otherwise.
*/
icsneoc2_error_t get_and_print_rtc(icsneoc2_device_t* device);
int main() {
icsneoc2_device_info_t* found_devices = NULL;
printf("Finding devices...\n");
icsneoc2_error_t res = icsneoc2_device_enumerate(0, &found_devices);
if(res != icsneoc2_error_success) {
return print_error_code("\tFailed to find devices", res);
}
if(found_devices == NULL) {
printf("No devices found, exiting\n");
return 0;
}
// Count and list off the devices
size_t devices_count = 0;
for(icsneoc2_device_info_t* cur = found_devices; cur != NULL; cur = icsneoc2_device_info_next(cur)) {
devices_count++;
}
printf("OK, %zu device%s found\n", devices_count, devices_count == 1 ? "" : "s");
for(icsneoc2_device_info_t* cur = found_devices; cur != NULL; cur = icsneoc2_device_info_next(cur)) {
// Get description of the device
char description[255] = {0};
size_t description_length = 255;
res = icsneoc2_device_info_description_get(cur, description, &description_length);
if(res != icsneoc2_error_success) {
icsneoc2_enumeration_free(found_devices);
return print_error_code("\tFailed to get device description", res);
};
printf("%.*s\n", (int)description_length, description);
// Open the device without RTC sync and going online
icsneoc2_open_options_t options = icsneoc2_open_options_default;
options &= ~ICSNEOC2_OPEN_OPTIONS_SYNC_RTC;
options &= ~ICSNEOC2_OPEN_OPTIONS_GO_ONLINE;
printf("\tDevice open options: 0x%x\n", options);
printf("\tOpening device: %s...\n", description);
icsneoc2_device_t* open_device = NULL;
res = icsneoc2_device_create(cur, &open_device);
if(res != icsneoc2_error_success) {
icsneoc2_enumeration_free(found_devices);
return print_error_code("\tFailed to create device", res);
}
res = icsneoc2_device_open(open_device, options);
if(res != icsneoc2_error_success) {
icsneoc2_device_free(open_device);
icsneoc2_enumeration_free(found_devices);
return print_error_code("\tFailed to open device", res);
};
// Get timestamp resolution of the device
printf("\tGetting timestamp resolution... ");
uint32_t timestamp_resolution = 0;
res = icsneoc2_device_timestamp_resolution_get(open_device, &timestamp_resolution);
if(res != icsneoc2_error_success) {
print_events(description);
icsneoc2_device_free(open_device);
icsneoc2_enumeration_free(found_devices);
return print_error_code("\tFailed to get timestamp resolution", res);
}
printf("%uns\n", timestamp_resolution);
// Get baudrates for HSCAN
printf("\tGetting DW CAN 01 Baudrate... ");
int64_t baudrate = 0;
res = icsneoc2_settings_baudrate_get(open_device, icsneoc2_netid_dwcan_01, &baudrate);
if(res != icsneoc2_error_success) {
print_events(description);
icsneoc2_device_free(open_device);
icsneoc2_enumeration_free(found_devices);
return print_error_code("\tFailed to get baudrate", res);
};
printf("%" PRIu64 "mbit/s\n", baudrate);
// Get FDbaudrates for HSCAN
printf("\tGetting FD DW CAN 01 Baudrate... ");
int64_t fd_baudrate = 0;
res = icsneoc2_settings_canfd_baudrate_get(open_device, icsneoc2_netid_dwcan_01, &fd_baudrate);
if(res != icsneoc2_error_success) {
print_events(description);
icsneoc2_device_free(open_device);
icsneoc2_enumeration_free(found_devices);
return print_error_code("\tFailed to get FD baudrate", res);
};
printf("%" PRIu64 "mbit/s\n", fd_baudrate);
// Set baudrates for HSCAN
// save_to_device: If this is set to true, the baudrate will be saved on the device
// and will persist through a power cycle
printf("\tSetting DW CAN 01 Baudrate... ");
res = icsneoc2_settings_baudrate_set(open_device, icsneoc2_netid_dwcan_01, baudrate);
if(res != icsneoc2_error_success) {
print_events(description);
icsneoc2_device_free(open_device);
icsneoc2_enumeration_free(found_devices);
return print_error_code("\tFailed to set baudrate", res);
};
printf("Ok\n");
// Set FDbaudrates for HSCAN
printf("\tSetting FD DW CAN 01 Baudrate... ");
res = icsneoc2_settings_canfd_baudrate_set(open_device, icsneoc2_netid_dwcan_01, fd_baudrate);
if(res != icsneoc2_error_success) {
print_events(description);
icsneoc2_device_free(open_device);
icsneoc2_enumeration_free(found_devices);
return print_error_code("\tFailed to set FD baudrate", res);
};
printf("Ok\n");
// Get RTC
printf("\tGetting RTC... ");
res = get_and_print_rtc(open_device);
if(res != icsneoc2_error_success) {
print_events(description);
icsneoc2_device_free(open_device);
icsneoc2_enumeration_free(found_devices);
return print_error_code("\tFailed to get RTC", res);
}
// Set RTC
printf("\tSetting RTC to current time... ");
time_t current_time = time(NULL);
res = icsneoc2_device_rtc_set(open_device, current_time);
if(res != icsneoc2_error_success) {
print_events(description);
icsneoc2_device_free(open_device);
icsneoc2_enumeration_free(found_devices);
return print_error_code("\tFailed to set RTC", res);
}
printf("Ok\n");
// Get RTC
printf("\tGetting RTC... ");
res = get_and_print_rtc(open_device);
if(res != icsneoc2_error_success) {
print_events(description);
icsneoc2_device_free(open_device);
icsneoc2_enumeration_free(found_devices);
return print_error_code("\tFailed to get RTC", res);
}
// Go online, start acking traffic
printf("\tGoing online... ");
res = icsneoc2_device_go_online(open_device, true);
if(res != icsneoc2_error_success) {
print_events(description);
icsneoc2_device_free(open_device);
icsneoc2_enumeration_free(found_devices);
return print_error_code("\tFailed to go online", res);
}
// Redundant check to show how to check if the device is online, if the previous
// icsneoc2_device_go_online call was successful we can assume we are online already
bool is_online = false;
res = icsneoc2_device_is_online(open_device, &is_online);
if(res != icsneoc2_error_success) {
print_events(description);
icsneoc2_device_free(open_device);
icsneoc2_enumeration_free(found_devices);
return print_error_code("\tFailed to check if online", res);
}
printf("%s\n", is_online ? "Online" : "Offline");
// Transmit CAN messages
res = transmit_can_messages(open_device);
if(res != icsneoc2_error_success) {
print_events(description);
icsneoc2_device_free(open_device);
icsneoc2_enumeration_free(found_devices);
return print_error_code("\tFailed to transmit CAN messages", res);
}
// Wait for the bus to collect some messages, requires an active bus to get messages
printf("\tWaiting 1 second for messages...\n");
sleep_ms(1000);
// Get the messages
icsneoc2_message_t* messages[20000] = {0};
size_t message_count = 20000;
printf("\tGetting messages from device with timeout of 3000ms on %s...\n", description);
for(size_t i = 0; i < message_count; ++i) {
res = icsneoc2_device_message_get(open_device, &messages[i], 0);
if(res != icsneoc2_error_success) {
for(size_t j = 0; j < i; ++j) {
icsneoc2_message_free(messages[j]);
}
print_events(description);
icsneoc2_device_free(open_device);
icsneoc2_enumeration_free(found_devices);
return print_error_code("\tFailed to get messages from device", res);
};
if(messages[i] == NULL) {
// no more messages
message_count = i;
break;
}
}
// Process the messages
res = process_messages(messages, message_count);
if(res != icsneoc2_error_success) {
for(size_t i = 0; i < message_count; ++i) {
icsneoc2_message_free(messages[i]);
}
print_events(description);
icsneoc2_device_free(open_device);
icsneoc2_enumeration_free(found_devices);
return print_error_code("\tFailed to process messages", res);
}
for(size_t i = 0; i < message_count; ++i) {
icsneoc2_message_free(messages[i]);
}
// Finally, close the device.
printf("\tClosing device: %s...\n", description);
res = icsneoc2_device_close(open_device);
if(res != icsneoc2_error_success) {
print_events(description);
icsneoc2_device_free(open_device);
icsneoc2_enumeration_free(found_devices);
return print_error_code("\tFailed to close device", res);
};
// Print device events
print_events(description);
icsneoc2_device_free(open_device);
}
icsneoc2_enumeration_free(found_devices);
printf("\n");
return 0;
}
icsneoc2_error_t get_and_print_rtc(icsneoc2_device_t* device) {
time_t unix_epoch = 0;
icsneoc2_error_t res = icsneoc2_device_rtc_get(device, &unix_epoch);
if(res != icsneoc2_error_success) {
return res;
}
char rtc_time[32] = {0};
strftime(rtc_time, sizeof(rtc_time), "%Y-%m-%d %H:%M:%S", localtime(&unix_epoch));
printf("RTC: %lld %s\n", (long long)unix_epoch, rtc_time);
return icsneoc2_error_success;
}
void print_events(const char* device_description) {
icsneoc2_event_t* events[1024] = {0};
size_t events_count = 1024;
for(size_t i = 0; i < events_count; ++i) {
// no device filter, get all events
icsneoc2_error_t res = icsneoc2_event_get(&events[i], NULL);
if(res != icsneoc2_error_success) {
for(size_t j = 0; j < i; ++j) {
icsneoc2_event_free(events[j]);
}
(void)print_error_code("\tFailed to get device events", res);
return;
}
if(events[i] == NULL) {
events_count = i;
break;
}
}
// Loop over each event and describe it.
for(size_t i = 0; i < events_count; i++) {
char event_description[255] = {0};
size_t event_description_length = 255;
icsneoc2_error_t res = icsneoc2_event_description_get(events[i], event_description, &event_description_length);
if(res != icsneoc2_error_success) {
print_error_code("\tFailed to get event description", res);
continue;
}
printf("\t%s: Event %zu: %s\n", device_description, i, event_description);
}
for(size_t i = 0; i < events_count; i++) {
icsneoc2_event_free(events[i]);
}
printf("\t%s: Received %zu events\n", device_description, events_count);
}
int process_messages(icsneoc2_message_t** messages, size_t messages_count) {
// Print the type and bus type of each message
size_t tx_count = 0;
size_t can_error_count = 0;
size_t app_error_count = 0;
size_t internal_count = 0;
for(size_t i = 0; i < messages_count; i++) {
icsneoc2_message_t* message = messages[i];
// Check for CAN error messages
bool is_can_error = false;
icsneoc2_error_t res = icsneoc2_message_is_can_error(message, &is_can_error);
if(res != icsneoc2_error_success) {
return print_error_code("\tFailed to check if message is a CAN error", res);
}
if(is_can_error) {
uint8_t tec = 0;
uint8_t rec = 0;
icsneoc2_can_error_code_t error_code = 0;
icsneoc2_can_error_code_t data_error_code = 0;
icsneoc2_message_can_error_flags_t error_flags = 0;
icsneoc2_netid_t netid = 0;
res = icsneoc2_message_netid_get(message, &netid);
res += icsneoc2_message_can_error_props_get(message, &tec, &rec, &error_code, &data_error_code, &error_flags);
if(res != icsneoc2_error_success) {
return print_error_code("\tFailed to get CAN error properties", res);
}
char netid_name[128] = {0};
size_t netid_name_length = 128;
icsneoc2_netid_name_get(netid, netid_name, &netid_name_length);
printf("\t%zd) CAN Error on %s (0x%x): TEC=%u REC=%u ErrorCode=%u DataErrorCode=%u%s%s%s\n",
i, netid_name, netid, tec, rec, error_code, data_error_code,
(error_flags & ICSNEOC2_MESSAGE_CAN_ERROR_FLAGS_BUS_OFF) ? " [BusOff]" : "",
(error_flags & ICSNEOC2_MESSAGE_CAN_ERROR_FLAGS_ERROR_PASSIVE) ? " [ErrorPassive]" : "",
(error_flags & ICSNEOC2_MESSAGE_CAN_ERROR_FLAGS_ERROR_WARN) ? " [ErrorWarn]" : "");
can_error_count++;
continue;
}
// Check for application error messages
bool is_app_error = false;
res = icsneoc2_message_is_app_error(message, &is_app_error);
if(res != icsneoc2_error_success) {
return print_error_code("\tFailed to check if message is an app error", res);
}
if(is_app_error) {
icsneoc2_app_error_type_t error_type = icsneoc2_app_error_type_no_error;
icsneoc2_netid_t error_netid = 0;
char description[256] = {0};
size_t description_length = sizeof(description);
res = icsneoc2_message_app_error_props_get(message, &error_type, &error_netid);
res += icsneoc2_message_app_error_string_get(message, description, &description_length);
if(res != icsneoc2_error_success) {
return print_error_code("\tFailed to get app error properties", res);
}
printf("\t%zd) App Error (type %u) on netid 0x%x: %s\n", i, error_type, error_netid, description);
app_error_count++;
continue;
}
// This example only cares about bus traffic, so skip internal
// device/status messages.
icsneoc2_network_type_t internal_check = icsneoc2_network_type_invalid;
res = icsneoc2_message_network_type_get(message, &internal_check);
if(res == icsneoc2_error_success && internal_check == icsneoc2_network_type_internal) {
internal_count++;
continue;
}
bool is_frame = false;
res = icsneoc2_message_is_frame(message, &is_frame);
if(res != icsneoc2_error_success) {
return print_error_code("\tFailed to check if message is a frame", res);
}
if(!is_frame) {
continue;
}
icsneoc2_network_type_t network_type;
res = icsneoc2_message_network_type_get(message, &network_type);
if(res != icsneoc2_error_success) {
return print_error_code("\tFailed to get message network type", res);
}
char network_type_name[128] = {0};
size_t network_type_name_length = 128;
res = icsneoc2_network_type_name_get(network_type, network_type_name, &network_type_name_length);
if(res != icsneoc2_error_success) {
return print_error_code("\tFailed to get network type name", res);
}
bool is_tx = false;
res = icsneoc2_message_is_transmit(message, &is_tx);
if(res != icsneoc2_error_success) {
return print_error_code("\tFailed to get message is transmit", res);
}
if(is_tx) {
tx_count++;
continue;
}
printf("\t%zd) network type: %s (%u)\n", i, network_type_name, network_type);
if(network_type == icsneoc2_network_type_can) {
uint64_t timestamp = 0;
uint64_t arbid = 0;
int32_t dlc = 0;
icsneoc2_netid_t netid = 0;
icsneoc2_message_can_flags_t can_flags = 0;
uint8_t data[64] = {0};
size_t data_length = 64;
char netid_name[128] = {0};
size_t netid_name_length = 128;
icsneoc2_error_t result = icsneoc2_message_netid_get(message, &netid);
result += icsneoc2_netid_name_get(netid, netid_name, &netid_name_length);
result += icsneoc2_message_timestamp_get(message, &timestamp);
result += icsneoc2_message_can_props_get(message, &arbid, &can_flags);
result += icsneoc2_message_data_get(message, data, &data_length);
if(result != icsneoc2_error_success) {
printf("\tFailed get get CAN parameters (error: %u) for index %zu\n", result, i);
continue;
}
bool is_remote = (can_flags & ICSNEOC2_MESSAGE_CAN_FLAGS_RTR) != 0;
bool is_extended = (can_flags & ICSNEOC2_MESSAGE_CAN_FLAGS_IDE) != 0;
bool is_canfd = (can_flags & ICSNEOC2_MESSAGE_CAN_FLAGS_FDF) != 0;
bool is_brs = (can_flags & ICSNEOC2_MESSAGE_CAN_FLAGS_BRS) != 0;
bool is_esi = (can_flags & ICSNEOC2_MESSAGE_CAN_FLAGS_ESI) != 0;
bool tx_aborted = (can_flags & ICSNEOC2_MESSAGE_CAN_FLAGS_TX_ABORTED) != 0;
bool tx_lost_arb = (can_flags & ICSNEOC2_MESSAGE_CAN_FLAGS_TX_LOST_ARB) != 0;
bool tx_error = (can_flags & ICSNEOC2_MESSAGE_CAN_FLAGS_TX_ERROR) != 0;
dlc = (int32_t)data_length;
printf("\t Timestamp: %" PRIu64 " ns since 2007-01-01 UTC\n", timestamp);
printf("\t NetID: %s (0x%x)\tArbID: 0x%llx\tDLC: %u\tLen: %zu\n", netid_name, netid, (unsigned long long)arbid, dlc, data_length);
printf("\t Flags:%s%s%s%s%s%s%s%s\n",
is_remote ? " RTR" : "",
is_extended ? " IDE" : "",
is_canfd ? " FDF" : "",
is_brs ? " BRS" : "",
is_esi ? " ESI" : "",
tx_aborted ? " TX_ABORTED" : "",
tx_lost_arb ? " TX_LOST_ARB" : "",
tx_error ? " TX_ERROR" : "");
printf("\t Data: [");
for(size_t x = 0; x < data_length; x++) {
printf(" 0x%x", data[x]);
}
printf(" ]\n");
}
}
printf("\tReceived %zu messages total, %zu were TX messages, %zu were CAN errors, %zu were app errors, %zu internal (skipped)\n", messages_count, tx_count, can_error_count, app_error_count, internal_count);
return icsneoc2_error_success;
}
int transmit_can_messages(icsneoc2_device_t* device) {
uint64_t counter = 0;
const size_t msg_count = 100;
printf("\tTransmitting %zd messages...\n", msg_count);
for(size_t i = 0; i < msg_count; i++) {
// Create the message
icsneoc2_message_t* message = NULL;
icsneoc2_error_t res = icsneoc2_message_can_create(&message);
if(res != icsneoc2_error_success) {
return print_error_code("\tFailed to create messages", res);
}
// Set the message attributes
res = icsneoc2_message_netid_set(message, icsneoc2_netid_dwcan_01);
uint64_t arb_id = 0x10;
uint64_t flags = ICSNEOC2_MESSAGE_CAN_FLAGS_BRS | ICSNEOC2_MESSAGE_CAN_FLAGS_IDE | ICSNEOC2_MESSAGE_CAN_FLAGS_FDF;
res += icsneoc2_message_can_props_set(message, &arb_id, &flags);
res += icsneoc2_message_data_set(message, (uint8_t*)&counter, sizeof(counter));
if(res != icsneoc2_error_success) {
icsneoc2_message_free(message);
return print_error_code("\tFailed to modify message", res);
}
res = icsneoc2_device_message_transmit(device, message);
res += icsneoc2_message_free(message);
if(res != icsneoc2_error_success) {
return print_error_code("\tFailed to transmit message", res);
}
counter++;
}
return icsneoc2_error_success;
}
@@ -0,0 +1,6 @@
add_executable(libicsneoc2-supported-devices-example src/main.c)
target_link_libraries(libicsneoc2-supported-devices-example icsneoc2-static)
if(WIN32)
target_compile_definitions(libicsneoc2-supported-devices-example PRIVATE _CRT_SECURE_NO_WARNINGS)
endif()
+55
View File
@@ -0,0 +1,55 @@
#include <icsneo/icsneoc2.h>
#include <stdio.h>
static int print_error_code(const char* message, icsneoc2_error_t error) {
char error_str[64] = {0};
size_t error_str_len = sizeof(error_str);
icsneoc2_error_t res = icsneoc2_error_code_get(error, error_str, &error_str_len);
if(res != icsneoc2_error_success) {
printf("%s: failed to get string for error code %u\n", message, error);
return (int)res;
}
printf("%s: %s (%u)\n", message, error_str, error);
return (int)error;
}
int main(void) {
icsneoc2_supported_device_t* supported_devices = NULL;
icsneoc2_error_t res = icsneoc2_supported_devices_enumerate(&supported_devices);
if(res != icsneoc2_error_success) {
return print_error_code("Failed to enumerate supported devices", res);
}
if(!supported_devices) {
printf("No supported devices found.\n");
return 0;
}
printf("Supported devices:\n");
for(icsneoc2_supported_device_t* cur = supported_devices; cur != NULL; cur = icsneoc2_supported_devices_next(cur)) {
icsneoc2_devicetype_t device_type = 0;
res = icsneoc2_supported_device_get(cur, &device_type);
if(res != icsneoc2_error_success) {
icsneoc2_supported_devices_free(supported_devices);
return print_error_code("Failed to get supported device type", res);
}
char name[128] = {0};
size_t name_len = sizeof(name);
res = icsneoc2_device_type_name_get(device_type, name, &name_len);
if(res != icsneoc2_error_success) {
icsneoc2_supported_devices_free(supported_devices);
return print_error_code("Failed to get supported device type name", res);
}
printf(" %s (%u)\n", name, (unsigned int)device_type);
}
res = icsneoc2_supported_devices_free(supported_devices);
if(res != icsneoc2_error_success) {
return print_error_code("Failed to free supported device list", res);
}
return 0;
}
+6
View File
@@ -0,0 +1,6 @@
add_executable(libicsneoc2-t1s-loopback-example src/main.c)
target_link_libraries(libicsneoc2-t1s-loopback-example icsneoc2-static)
if(WIN32)
target_compile_definitions(libicsneoc2-t1s-loopback-example PRIVATE _CRT_SECURE_NO_WARNINGS)
endif()
+647
View File
@@ -0,0 +1,647 @@
#include <icsneo/icsneoc2.h>
#include <icsneo/icsneoc2messages.h>
#include <icsneo/icsneoc2settings.h>
#include <inttypes.h>
#include <stdbool.h>
#include <stdlib.h>
#include <stdio.h>
#include <string.h>
#ifdef _WIN32
#include <windows.h>
#else
#include <unistd.h>
#endif
#define TX_LOCAL_ID 0u
#define RX_LOCAL_ID 1u
#define T1S_MAX_NODES 8u
#define T1S_TX_OPP_TIMER 20u
#define T1S_BURST_TIMER 64u
#define T1S_MAX_BURST 128u
#define LOOPBACK_ETHER_TYPE 0x9000u
#define LOOPBACK_FRAME_SIZE 60u
typedef struct selectable_network {
icsneoc2_netid_t netid;
char name[64];
} selectable_network_t;
/* Sleep for a short period while waiting for the device to apply settings. */
static void sleep_ms(uint32_t ms);
/* Print a readable error string and return the same failure code to the caller. */
static int print_error_code(const char* message, icsneoc2_error_t error);
/* Drain and print queued library events when the example encounters an error. */
static void print_events(void);
/* Convert a netid to a readable name such as "AE 02". */
static int get_netid_name(icsneoc2_netid_t netid, char* buffer, size_t buffer_size);
/* Gather the device's TX and RX networks, keeping only automotive Ethernet ports. */
static int get_available_networks(const icsneoc2_device_t* device,
selectable_network_t* tx_networks,
size_t* tx_count,
selectable_network_t* rx_networks,
size_t* rx_count);
/* Prompt the user to choose one TX or RX network from the filtered list. */
static int prompt_for_network_selection(const char* label, const selectable_network_t* networks, size_t count, icsneoc2_netid_t* selected_netid, char* selected_name, size_t selected_name_size);
/* Apply the small set of T1S settings needed for this two-port loopback example. */
static int configure_t1s_port(icsneoc2_device_t* device, icsneoc2_netid_t netid, uint8_t local_id);
/* Print a MAC address in a compact human-readable form. */
static void print_mac(const char* label, const uint8_t* mac);
/* Print payload bytes as hex for the TX echo and RX frame output. */
static void print_payload_hex(const uint8_t* data, size_t length);
/* Build one recognizable Ethernet frame that both transmit and receive paths share. */
static void build_loopback_frame(uint8_t* frame_data, size_t frame_size, const char* tx_name, const char* rx_name);
/* Check whether a received Ethernet frame matches the loopback frame this example sent. */
static int message_matches_loopback_frame(icsneoc2_message_t* message, const uint8_t* expected, size_t expected_length, bool* matches);
/* Print the key details of an Ethernet message found during the loopback test. */
static int print_ethernet_message(icsneoc2_message_t* message, const char* direction_label);
/* Transmit the loopback Ethernet frame on the selected TX port. */
static int transmit_loopback_frame(icsneoc2_device_t* device, icsneoc2_netid_t tx_netid, const char* tx_name, const char* rx_name);
/* Poll until the example sees both the TX echo and the matching RX frame. */
static int poll_for_loopback_messages(icsneoc2_device_t* device,
icsneoc2_netid_t tx_netid,
icsneoc2_netid_t rx_netid,
const char* tx_name,
const char* rx_name,
const uint8_t* expected_frame,
size_t expected_frame_length);
int main(void) {
icsneoc2_device_t* device = NULL;
icsneoc2_error_t res;
char description[255] = {0};
char serial[64] = {0};
size_t description_length = sizeof(description);
size_t serial_length = sizeof(serial);
selectable_network_t available_tx_networks[128] = {0};
selectable_network_t available_rx_networks[128] = {0};
size_t available_tx_count = 0;
size_t available_rx_count = 0;
icsneoc2_netid_t tx_netid = 0;
icsneoc2_netid_t rx_netid = 0;
uint8_t expected_frame[LOOPBACK_FRAME_SIZE] = {0};
char tx_name[64] = {0};
char rx_name[64] = {0};
int status = 1;
printf("RAD-Comet3 C2 T1S loopback example\n");
printf("Opening first available RAD-Comet3...\n");
res = icsneoc2_device_open_first(icsneoc2_devicetype_rad_comet3, icsneoc2_open_options_default, &device);
if(res != icsneoc2_error_success) {
return print_error_code("Failed to open a RAD-Comet3", res);
}
res = icsneoc2_device_description_get(device, description, &description_length);
if(res != icsneoc2_error_success) {
print_error_code("Failed to get device description", res);
goto cleanup;
}
res = icsneoc2_device_serial_get(device, serial, &serial_length);
if(res != icsneoc2_error_success) {
print_error_code("Failed to get device serial", res);
goto cleanup;
}
printf("Opened device: %s [%s]\n", description, serial);
if(get_available_networks(device, available_tx_networks, &available_tx_count, available_rx_networks, &available_rx_count) != 0) {
goto cleanup;
}
if(prompt_for_network_selection("TX", available_tx_networks, available_tx_count, &tx_netid, tx_name, sizeof(tx_name)) != 0) {
goto cleanup;
}
if(prompt_for_network_selection("RX", available_rx_networks, available_rx_count, &rx_netid, rx_name, sizeof(rx_name)) != 0) {
goto cleanup;
}
printf("Selected loopback wiring: %s connected to %s\n", tx_name, rx_name);
if(tx_netid == rx_netid) {
printf("TX and RX networks are the same. This example is intended for a physical loopback between two ports.\n");
goto cleanup;
}
// Use the same expected frame bytes for transmit and for receive-side matching.
build_loopback_frame(expected_frame, sizeof(expected_frame), tx_name, rx_name);
res = icsneoc2_settings_refresh(device);
if(res != icsneoc2_error_success) {
print_error_code("Failed to refresh device settings", res);
goto cleanup;
}
if(configure_t1s_port(device, tx_netid, TX_LOCAL_ID) != 0) {
goto cleanup;
}
if(configure_t1s_port(device, rx_netid, RX_LOCAL_ID) != 0) {
goto cleanup;
}
printf("Applying T1S settings to the device.\n");
printf("Note: icsneoc2_settings_apply() persists these settings on the device.\n");
res = icsneoc2_settings_apply(device);
if(res != icsneoc2_error_success) {
print_error_code("Failed to apply T1S settings", res);
goto cleanup;
}
sleep_ms(500);
if(transmit_loopback_frame(device, tx_netid, tx_name, rx_name) != 0) {
goto cleanup;
}
if(poll_for_loopback_messages(device, tx_netid, rx_netid, tx_name, rx_name, expected_frame, sizeof(expected_frame)) != 0) {
print_events();
goto cleanup;
}
status = 0;
cleanup:
if(device != NULL) {
res = icsneoc2_device_close(device);
if(res != icsneoc2_error_success) {
(void)print_error_code("Failed to close device", res);
}
res = icsneoc2_device_free(device);
if(res != icsneoc2_error_success) {
(void)print_error_code("Failed to free device", res);
}
}
return status;
}
static void sleep_ms(uint32_t ms) {
#ifdef _WIN32
Sleep(ms);
#else
usleep(ms * 1000);
#endif
}
static int print_error_code(const char* message, icsneoc2_error_t error) {
char error_str[64] = {0};
size_t error_str_len = sizeof(error_str);
icsneoc2_error_t res = icsneoc2_error_code_get(error, error_str, &error_str_len);
if(res != icsneoc2_error_success) {
printf("%s: failed to get string for error code %u with error code %u\n", message, error, res);
return (int)res;
}
printf("%s: \"%s\" (%u)\n", message, error_str, error);
return (int)error;
}
static void print_events(void) {
icsneoc2_event_t* events[64] = {0};
size_t count = sizeof(events) / sizeof(events[0]);
for(size_t i = 0; i < count; ++i) {
icsneoc2_error_t res = icsneoc2_event_get(&events[i], NULL);
if(res != icsneoc2_error_success) {
(void)print_error_code("Failed to get events", res);
return;
}
if(events[i] == NULL) {
count = i;
break;
}
}
for(size_t i = 0; i < count; ++i) {
char description[255] = {0};
size_t description_length = sizeof(description);
icsneoc2_error_t res = icsneoc2_event_description_get(events[i], description, &description_length);
if(res == icsneoc2_error_success) {
printf("Event %zu: %s\n", i, description);
}
icsneoc2_event_free(events[i]);
}
}
static int get_netid_name(icsneoc2_netid_t netid, char* buffer, size_t buffer_size) {
size_t length = buffer_size;
icsneoc2_error_t res = icsneoc2_netid_name_get(netid, buffer, &length);
if(res != icsneoc2_error_success) {
return print_error_code("Failed to get netid name", res);
}
return 0;
}
static int get_available_networks(const icsneoc2_device_t* device,
selectable_network_t* tx_networks,
size_t* tx_count,
selectable_network_t* rx_networks,
size_t* rx_count) {
icsneoc2_netid_t supported_tx_networks[128] = {0};
icsneoc2_netid_t supported_rx_networks[128] = {0};
size_t tx_supported_count = sizeof(supported_tx_networks) / sizeof(supported_tx_networks[0]);
size_t rx_supported_count = sizeof(supported_rx_networks) / sizeof(supported_rx_networks[0]);
icsneoc2_message_t* probe = NULL;
icsneoc2_network_type_t network_type = 0;
icsneoc2_error_t res = icsneoc2_device_supported_tx_networks_get(device, supported_tx_networks, &tx_supported_count);
if(res != icsneoc2_error_success) {
return print_error_code("Failed to get supported TX networks", res);
}
res = icsneoc2_device_supported_rx_networks_get(device, supported_rx_networks, &rx_supported_count);
if(res != icsneoc2_error_success) {
return print_error_code("Failed to get supported RX networks", res);
}
*tx_count = 0;
*rx_count = 0;
// Reuse one temporary Ethernet message to classify each netid by network type.
res = icsneoc2_message_eth_create(&probe);
if(res != icsneoc2_error_success) {
return print_error_code("Failed to create temporary Ethernet message", res);
}
for(size_t i = 0; i < tx_supported_count; ++i) {
res = icsneoc2_message_netid_set(probe, supported_tx_networks[i]);
if(res != icsneoc2_error_success) {
continue;
}
res = icsneoc2_message_network_type_get(probe, &network_type);
if(res != icsneoc2_error_success || network_type != icsneoc2_network_type_automotive_ethernet) {
continue;
}
tx_networks[*tx_count].netid = supported_tx_networks[i];
if(get_netid_name(supported_tx_networks[i], tx_networks[*tx_count].name, sizeof(tx_networks[*tx_count].name)) != 0) {
icsneoc2_message_free(probe);
return 1;
}
(*tx_count)++;
}
for(size_t i = 0; i < rx_supported_count; ++i) {
res = icsneoc2_message_netid_set(probe, supported_rx_networks[i]);
if(res != icsneoc2_error_success) {
continue;
}
res = icsneoc2_message_network_type_get(probe, &network_type);
if(res != icsneoc2_error_success || network_type != icsneoc2_network_type_automotive_ethernet) {
continue;
}
rx_networks[*rx_count].netid = supported_rx_networks[i];
if(get_netid_name(supported_rx_networks[i], rx_networks[*rx_count].name, sizeof(rx_networks[*rx_count].name)) != 0) {
icsneoc2_message_free(probe);
return 1;
}
(*rx_count)++;
}
icsneoc2_message_free(probe);
if(*tx_count == 0) {
printf("No automotive Ethernet TX networks are available on this device.\n");
return 1;
}
if(*rx_count == 0) {
printf("No automotive Ethernet RX networks are available on this device.\n");
return 1;
}
return 0;
}
static int prompt_for_network_selection(const char* label, const selectable_network_t* networks, size_t count, icsneoc2_netid_t* selected_netid, char* selected_name, size_t selected_name_size) {
char input[32] = {0};
char* end_ptr = NULL;
long selected_index = 0;
if(!label || !networks || count == 0 || !selected_netid || !selected_name || selected_name_size == 0) {
return print_error_code("Invalid network selection parameters", icsneoc2_error_invalid_parameters);
}
printf("Available automotive Ethernet %s networks:\n", label);
for(size_t i = 0; i < count; ++i) {
printf(" %zu) %s\n", i + 1, networks[i].name);
}
printf("Select %s network [1-%zu, default 1]: ", label, count);
if(fgets(input, sizeof(input), stdin) == NULL || input[0] == '\n') {
selected_index = 1;
} else {
selected_index = strtol(input, &end_ptr, 10);
if(end_ptr == input || selected_index < 1 || (size_t)selected_index > count) {
printf("Invalid selection, using %s.\n", networks[0].name);
selected_index = 1;
}
}
*selected_netid = networks[selected_index - 1].netid;
strncpy(selected_name, networks[selected_index - 1].name, selected_name_size - 1);
selected_name[selected_name_size - 1] = '\0';
return 0;
}
static int configure_t1s_port(icsneoc2_device_t* device, icsneoc2_netid_t netid, uint8_t local_id) {
char netid_name[64] = {0};
icsneoc2_error_t res;
bool termination = false;
if(get_netid_name(netid, netid_name, sizeof(netid_name)) != 0) {
return 1;
}
printf("Configuring %s: PLCA on, LocalID=%u, MaxNodes=%u, TxOpp=%u, BurstTimer=%u, MaxBurst=%u\n",
netid_name,
(unsigned)local_id,
(unsigned)T1S_MAX_NODES,
(unsigned)T1S_TX_OPP_TIMER,
(unsigned)T1S_BURST_TIMER,
(unsigned)T1S_MAX_BURST);
// Keep the example explicit about the small set of T1S settings needed for loopback.
res = icsneoc2_settings_t1s_plca_enabled_for_set(device, netid, true);
if(res != icsneoc2_error_success) return print_error_code("Failed to enable T1S PLCA", res);
res = icsneoc2_settings_t1s_local_id_set(device, netid, local_id);
if(res != icsneoc2_error_success) return print_error_code("Failed to set T1S local ID", res);
res = icsneoc2_settings_t1s_max_nodes_set(device, netid, T1S_MAX_NODES);
if(res != icsneoc2_error_success) return print_error_code("Failed to set T1S max nodes", res);
res = icsneoc2_settings_t1s_tx_opp_timer_set(device, netid, T1S_TX_OPP_TIMER);
if(res != icsneoc2_error_success) return print_error_code("Failed to set T1S TX opportunity timer", res);
res = icsneoc2_settings_t1s_burst_timer_set(device, netid, T1S_BURST_TIMER);
if(res != icsneoc2_error_success) return print_error_code("Failed to set T1S burst timer", res);
res = icsneoc2_settings_t1s_max_burst_timer_for_set(device, netid, T1S_MAX_BURST);
if(res != icsneoc2_error_success) return print_error_code("Failed to set T1S max burst", res);
res = icsneoc2_settings_t1s_is_termination_enabled_for(device, netid, &termination);
if(res == icsneoc2_error_success) {
res = icsneoc2_settings_t1s_termination_for_set(device, netid, true);
if(res != icsneoc2_error_success) return print_error_code("Failed to enable T1S termination", res);
} else if(res != icsneoc2_error_get_settings_failure) {
return print_error_code("Failed to query T1S termination support", res);
}
return 0;
}
static void print_mac(const char* label, const uint8_t* mac) {
printf("%s %02x:%02x:%02x:%02x:%02x:%02x", label, mac[0], mac[1], mac[2], mac[3], mac[4], mac[5]);
}
static void print_payload_hex(const uint8_t* data, size_t length) {
for(size_t i = 0; i < length; ++i) {
printf("%02x", data[i]);
if(i + 1 < length) {
printf(" ");
}
}
printf("\n");
}
static void build_loopback_frame(uint8_t* frame_data, size_t frame_size, const char* tx_name, const char* rx_name) {
const char* tx_label = tx_name ? tx_name : "TX";
const char* rx_label = rx_name ? rx_name : "RX";
// Build one recognizable Ethernet frame so the receive side can match exactly what we sent.
memset(frame_data, 0, frame_size);
frame_data[0] = 0x00;
frame_data[1] = 0xFC;
frame_data[2] = 0x70;
frame_data[3] = 0x00;
frame_data[4] = 0x00;
frame_data[5] = 0x02;
frame_data[6] = 0x00;
frame_data[7] = 0xFC;
frame_data[8] = 0x70;
frame_data[9] = 0x00;
frame_data[10] = 0x00;
frame_data[11] = 0x01;
frame_data[12] = (uint8_t)((LOOPBACK_ETHER_TYPE >> 8) & 0xFF);
frame_data[13] = (uint8_t)(LOOPBACK_ETHER_TYPE & 0xFF);
snprintf((char*)&frame_data[14], frame_size - 14, "C2 T1S loopback %s->%s", tx_label, rx_label);
}
static int message_matches_loopback_frame(icsneoc2_message_t* message, const uint8_t* expected, size_t expected_length, bool* matches) {
uint8_t data[1600] = {0};
size_t data_length = sizeof(data);
uint16_t ether_type = 0;
icsneoc2_error_t res;
if(!expected || !matches || expected_length < 14) {
return print_error_code("Invalid loopback match output", icsneoc2_error_invalid_parameters);
}
*matches = false;
res = icsneoc2_message_eth_ether_type_get(message, &ether_type);
if(res != icsneoc2_error_success) {
return print_error_code("Failed to read loopback EtherType", res);
}
if(ether_type != LOOPBACK_ETHER_TYPE) {
return 0;
}
res = icsneoc2_message_data_get(message, data, &data_length);
if(res != icsneoc2_error_success) {
return print_error_code("Failed to read loopback frame data", res);
}
if(data_length < 14) {
return 0;
}
if(data_length >= expected_length) {
*matches = memcmp(data, expected, expected_length) == 0;
} else {
*matches = memcmp(data, expected, data_length) == 0;
}
return 0;
}
static int print_ethernet_message(icsneoc2_message_t* message, const char* direction_label) {
icsneoc2_netid_t netid = 0;
uint64_t timestamp = 0;
char netid_name[64] = {0};
uint8_t dst_mac[6] = {0};
uint8_t src_mac[6] = {0};
uint16_t ether_type = 0;
icsneoc2_message_eth_t1s_flags_t t1s_flags = 0;
uint8_t node_id = 0;
uint8_t burst_count = 0;
uint8_t symbol_type = 0;
uint8_t data[1600] = {0};
size_t data_length = sizeof(data);
icsneoc2_error_t res;
res = icsneoc2_message_netid_get(message, &netid);
if(res != icsneoc2_error_success) return print_error_code("Failed to get message netid", res);
if(get_netid_name(netid, netid_name, sizeof(netid_name)) != 0) return 1;
res = icsneoc2_message_timestamp_get(message, &timestamp);
if(res != icsneoc2_error_success) return print_error_code("Failed to get message timestamp", res);
res = icsneoc2_message_data_get(message, data, &data_length);
if(res != icsneoc2_error_success) return print_error_code("Failed to get Ethernet data", res);
printf("%s on %s: %zu bytes\n", direction_label, netid_name, data_length);
printf(" Timestamp: %" PRIu64 " ns since 2007-01-01 UTC\n", timestamp);
res = icsneoc2_message_eth_mac_get(message, dst_mac, src_mac);
if(res == icsneoc2_error_success) {
print_mac(" Dst", dst_mac);
printf(" ");
print_mac("Src", src_mac);
printf("\n");
}
res = icsneoc2_message_eth_ether_type_get(message, &ether_type);
if(res == icsneoc2_error_success) {
printf(" EtherType: 0x%04x\n", ether_type);
}
res = icsneoc2_message_eth_t1s_props_get(message, &t1s_flags, &node_id, &burst_count, &symbol_type);
if(res == icsneoc2_error_success && (t1s_flags != 0 || node_id != 0 || burst_count != 0 || symbol_type != 0)) {
printf(" T1S: node=%u burst=%u symbol=%u", (unsigned)node_id, (unsigned)burst_count, (unsigned)symbol_type);
if(t1s_flags & ICSNEOC2_MESSAGE_ETH_T1S_FLAGS_IS_T1S_SYMBOL) printf(" [SYMBOL]");
if(t1s_flags & ICSNEOC2_MESSAGE_ETH_T1S_FLAGS_IS_T1S_BURST) printf(" [BURST]");
if(t1s_flags & ICSNEOC2_MESSAGE_ETH_T1S_FLAGS_TX_COLLISION) printf(" [TX_COLLISION]");
if(t1s_flags & ICSNEOC2_MESSAGE_ETH_T1S_FLAGS_IS_T1S_WAKE) printf(" [WAKE]");
printf("\n");
}
printf(" Payload bytes: ");
if(data_length > 14) {
print_payload_hex(&data[14], data_length - 14);
} else {
printf("<none>\n");
}
return 0;
}
static int transmit_loopback_frame(icsneoc2_device_t* device, icsneoc2_netid_t tx_netid, const char* tx_name, const char* rx_name) {
icsneoc2_message_t* message = NULL;
icsneoc2_error_t res;
uint8_t frame_data[LOOPBACK_FRAME_SIZE] = {0};
build_loopback_frame(frame_data, sizeof(frame_data), tx_name, rx_name);
res = icsneoc2_message_eth_create(&message);
if(res != icsneoc2_error_success) return print_error_code("Failed to create Ethernet message", res);
res = icsneoc2_message_netid_set(message, tx_netid);
if(res != icsneoc2_error_success) {
icsneoc2_message_free(message);
return print_error_code("Failed to set Ethernet netid", res);
}
res = icsneoc2_message_data_set(message, frame_data, sizeof(frame_data));
if(res != icsneoc2_error_success) {
icsneoc2_message_free(message);
return print_error_code("Failed to set Ethernet payload", res);
}
printf("Transmitting one T1S loopback frame on %s...\n", tx_name ? tx_name : "selected TX network");
res = icsneoc2_device_message_transmit(device, message);
icsneoc2_message_free(message);
if(res != icsneoc2_error_success) return print_error_code("Failed to transmit loopback frame", res);
return 0;
}
static int poll_for_loopback_messages(icsneoc2_device_t* device,
icsneoc2_netid_t tx_netid,
icsneoc2_netid_t rx_netid,
const char* tx_name,
const char* rx_name,
const uint8_t* expected_frame,
size_t expected_frame_length) {
bool saw_tx_echo = false;
bool saw_rx_frame = false;
printf("Polling for TX echo on %s and RX frame on %s...\n", tx_name, rx_name);
for(size_t attempt = 0; attempt < 60 && !(saw_tx_echo && saw_rx_frame); ++attempt) {
icsneoc2_message_t* message = NULL;
icsneoc2_error_t res = icsneoc2_device_message_get(device, &message, 100);
if(res != icsneoc2_error_success) {
return print_error_code("Failed while polling for loopback messages", res);
}
if(message == NULL) {
continue;
}
bool is_ethernet = false;
bool matches_loopback = false;
res = icsneoc2_message_is_ethernet(message, &is_ethernet);
if(res != icsneoc2_error_success || !is_ethernet) {
icsneoc2_message_free(message);
continue;
}
icsneoc2_netid_t netid = 0;
res = icsneoc2_message_netid_get(message, &netid);
if(res != icsneoc2_error_success) {
icsneoc2_message_free(message);
return print_error_code("Failed to get polled netid", res);
}
if(netid != tx_netid && netid != rx_netid) {
icsneoc2_message_free(message);
continue;
}
// Ignore unrelated traffic on the selected ports and only count the frame this example transmitted.
if(message_matches_loopback_frame(message, expected_frame, expected_frame_length, &matches_loopback) != 0) {
icsneoc2_message_free(message);
return 1;
}
if(!matches_loopback) {
icsneoc2_message_free(message);
continue;
}
bool is_tx = false;
res = icsneoc2_message_is_transmit(message, &is_tx);
if(res != icsneoc2_error_success) {
icsneoc2_message_free(message);
return print_error_code("Failed to determine TX status", res);
}
if(netid == tx_netid && is_tx && !saw_tx_echo) {
if(print_ethernet_message(message, "TX echo") != 0) {
icsneoc2_message_free(message);
return 1;
}
saw_tx_echo = true;
} else if(netid == rx_netid && !saw_rx_frame) {
if(print_ethernet_message(message, "RX frame") != 0) {
icsneoc2_message_free(message);
return 1;
}
if(is_tx) {
printf(" Note: RX port message was also marked as transmit.\n");
}
saw_rx_frame = true;
}
icsneoc2_message_free(message);
}
if(!saw_tx_echo || !saw_rx_frame) {
printf("Loopback incomplete: saw_tx_echo=%s, saw_rx_frame=%s\n",
saw_tx_echo ? "true" : "false",
saw_rx_frame ? "true" : "false");
printf("Confirm %s is physically connected to %s and both ports are configured for 10BASE-T1S.\n", tx_name, rx_name);
return 1;
}
printf("Loopback complete: TX echo on %s and RX frame on %s were both observed.\n", tx_name, rx_name);
return 0;
}
+6
View File
@@ -0,0 +1,6 @@
add_executable(libicsneoc2-tc10-example src/main.c)
target_link_libraries(libicsneoc2-tc10-example icsneoc2-static)
if(WIN32)
target_compile_definitions(libicsneoc2-tc10-example PRIVATE _CRT_SECURE_NO_WARNINGS)
endif()

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