Compare commits

..

No commits in common. "3f3300d6778d4692eb5599439249cd2d938da613" and "7f192a0cea83987fd7720e376735571904e79771" have entirely different histories.

2 changed files with 7 additions and 62 deletions

View File

@ -18,7 +18,6 @@ enum TLinkMode {
T_LINK_MASTER, T_LINK_MASTER,
T_LINK_SLAVE, T_LINK_SLAVE,
T_LINK_AUTO, T_LINK_AUTO,
T_LINK_INVALID = 255,
}; };
enum AELinkMode { enum AELinkMode {
@ -61,7 +60,6 @@ std::shared_ptr<Message> EthernetStatusMessage::DecodeToMessage(const std::vecto
case T_LINK_MASTER: mode = EthernetStatusMessage::LinkMode::LinkModeMaster; break; case T_LINK_MASTER: mode = EthernetStatusMessage::LinkMode::LinkModeMaster; break;
case T_LINK_SLAVE: mode = EthernetStatusMessage::LinkMode::LinkModeSlave; break; case T_LINK_SLAVE: mode = EthernetStatusMessage::LinkMode::LinkModeSlave; break;
case T_LINK_AUTO: mode = EthernetStatusMessage::LinkMode::LinkModeAuto; break; case T_LINK_AUTO: mode = EthernetStatusMessage::LinkMode::LinkModeAuto; break;
case T_LINK_INVALID: mode = EthernetStatusMessage::LinkMode::LinkModeInvalid; break;
default: return nullptr; default: return nullptr;
} }
break; break;

View File

@ -11,12 +11,6 @@ namespace icsneo {
class NeoVIFIRE2 : public Device { class NeoVIFIRE2 : public Device {
public: public:
enum class CoreChipVariant {
Core = 0,
Core_SG4 = 1,
Invalid = 2
};
// Serial numbers start with CY // Serial numbers start with CY
// USB PID is 0x1000, standard driver is DXX // USB PID is 0x1000, standard driver is DXX
// Ethernet MAC allocation is 0x04, standard driver is Raw // Ethernet MAC allocation is 0x04, standard driver is Raw
@ -97,65 +91,22 @@ public:
return ProductID::neoVIFIRE2; return ProductID::neoVIFIRE2;
} }
CoreChipVariant getCoreChipVariant() {
const auto& hardwareInfo = getHardwareInfo(std::chrono::milliseconds(1000));
if(!hardwareInfo) {
chipVariant = CoreChipVariant::Invalid;
return chipVariant;
}
const auto& bootloaderVersion = hardwareInfo->bootloaderVersion;
if(bootloaderVersion.major >= CORE_SG4_BL_MAJOR_VERSION_CUTOFF) {
chipVariant = CoreChipVariant::Core_SG4;
} else {
chipVariant = CoreChipVariant::Core;
}
return chipVariant;
}
const std::vector<ChipInfo>& getChipInfo() const override { const std::vector<ChipInfo>& getChipInfo() const override {
static std::vector<ChipInfo> chips = { static std::vector<ChipInfo> chips = {
{ChipID::neoVIFIRE2_MCHIP, true, "MCHIP", "fire2_mchip_ief", 0, FirmwareType::IEF}, {ChipID::neoVIFIRE2_MCHIP, true, "MCHIP", "fire2_mchip_ief", 0, FirmwareType::IEF},
{ChipID::neoVIFIRE2_ZYNQ, true, "ZCHIP", "fire2_zchip_ief", 1, FirmwareType::IEF}, {ChipID::neoVIFIRE2_ZYNQ, true, "ZCHIP", "fire2_zchip_ief", 1, FirmwareType::IEF},
{ChipID::neoVIFIRE2_Core, true, "Core", "fire2_core", 2, FirmwareType::IEF}, {ChipID::neoVIFIRE2_Core, true, "Core", "fire2_core", 2, FirmwareType::IEF},
}; };
return chips;
static std::vector<ChipInfo> chipsSG4 = {
{ChipID::neoVIFIRE2_MCHIP, true, "MCHIP", "fire2_mchip_ief", 0, FirmwareType::IEF},
{ChipID::neoVIFIRE2_ZYNQ, true, "ZCHIP", "fire2_zchip_ief", 1, FirmwareType::IEF},
{ChipID::neoVIFIRE2_CORE_SG4, true, "Core", "fire2_core_sg4", 2, FirmwareType::IEF}
};
if(chipVariant == CoreChipVariant::Core_SG4) {
return chipsSG4;
}
return chips; // Return the base chips even if the mode is invalid
} }
BootloaderPipeline getBootloader() override { BootloaderPipeline getBootloader() override {
BootloaderPipeline pipeline; return BootloaderPipeline()
pipeline.add<EnterBootloaderPhase>() .add<EnterBootloaderPhase>()
.add<FlashPhase>(ChipID::neoVIFIRE2_MCHIP, BootloaderCommunication::RED); .add<FlashPhase>(ChipID::neoVIFIRE2_MCHIP, BootloaderCommunication::RED)
if(chipVariant == CoreChipVariant::Core_SG4) { .add<FlashPhase>(ChipID::neoVIFIRE2_ZYNQ, BootloaderCommunication::RED, false, true)
pipeline.add<FlashPhase>(ChipID::neoVIFIRE2_CORE_SG4, BootloaderCommunication::REDCore, false, false); .add<FlashPhase>(ChipID::neoVIFIRE2_Core, BootloaderCommunication::REDCore, false, false)
} else { .add<ReconnectPhase>();
pipeline.add<FlashPhase>(ChipID::neoVIFIRE2_Core, BootloaderCommunication::REDCore, false, false);
}
pipeline.add<FlashPhase>(ChipID::neoVIFIRE2_ZYNQ, BootloaderCommunication::RED, false, false)
.add<EnterApplicationPhase>(ChipID::neoVIFIRE2_MCHIP)
.add<ReconnectPhase>();
return pipeline;
}
std::vector<VersionReport> getChipVersions(bool refreshComponents = true) override {
if(chipVariant == CoreChipVariant::Invalid) {
getCoreChipVariant();
}
if(refreshComponents) {
refreshComponentVersions();
}
return Device::getChipVersions();
} }
protected: protected:
@ -216,10 +167,6 @@ protected:
size_t getDiskCount() const override { size_t getDiskCount() const override {
return 1; return 1;
} }
private:
CoreChipVariant chipVariant = CoreChipVariant::Invalid;
constexpr static uint8_t CORE_SG4_BL_MAJOR_VERSION_CUTOFF = 5;
}; };
} }