well this doesnt work
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EIVE/eive-obsw/pipeline/pr-v3.0.0-dev This commit looks good
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EIVE/eive-obsw/pipeline/pr-v3.0.0-dev This commit looks good
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3be495fc30
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6a2d5b8161
@ -113,6 +113,7 @@ ReturnValue_t AcsBoardPolling::sendMessage(CookieIF* cookie, const uint8_t* send
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if (req->mode != adis.mode) {
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if (req->mode == acs::SimpleSensorMode::NORMAL) {
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adis.type = req->type;
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adis.decRate = req->cfg.decRateReg;
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// The initial countdown is handled by the device handler now.
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// adis.countdown.setTimeout(adis1650x::START_UP_TIME);
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if (adis.type == adis1650x::Type::ADIS16507) {
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@ -376,6 +377,81 @@ void AcsBoardPolling::gyroL3gHandler(GyroL3g& l3g) {
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}
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}
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ReturnValue_t AcsBoardPolling::writeAdisReg(SpiCookie& cookie) {
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ReturnValue_t result = returnvalue::OK;
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int retval = 0;
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// Prepare transfer
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int fileDescriptor = 0;
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std::string device = spiComIF.getSpiDev();
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UnixFileGuard fileHelper(device, fileDescriptor, O_RDWR, "SpiComIF::sendMessage");
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if (fileHelper.getOpenResult() != returnvalue::OK) {
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return spi::OPENING_FILE_FAILED;
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}
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spi::SpiModes spiMode = spi::SpiModes::MODE_0;
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uint32_t spiSpeed = 0;
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cookie.getSpiParameters(spiMode, spiSpeed, nullptr);
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spiComIF.setSpiSpeedAndMode(fileDescriptor, spiMode, spiSpeed);
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cookie.assignWriteBuffer(cmdBuf.data());
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cookie.setTransferSize(2);
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gpioId_t gpioId = cookie.getChipSelectPin();
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MutexIF::TimeoutType timeoutType = MutexIF::TimeoutType::WAITING;
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uint32_t timeoutMs = 0;
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MutexIF* mutex = spiComIF.getCsMutex();
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cookie.getMutexParams(timeoutType, timeoutMs);
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if (mutex == nullptr) {
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sif::warning << "GyroADIS16507Handler::spiSendCallback: "
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"Mutex or GPIO interface invalid"
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<< std::endl;
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return returnvalue::FAILED;
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}
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size_t idx = 0;
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spi_ioc_transfer* transferStruct = cookie.getTransferStructHandle();
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uint64_t origTx = transferStruct->tx_buf;
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uint64_t origRx = transferStruct->rx_buf;
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for (idx = 0; idx < 2; idx++) {
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result = mutex->lockMutex(timeoutType, timeoutMs);
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if (result != returnvalue::OK) {
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#if FSFW_CPP_OSTREAM_ENABLED == 1
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sif::error << "AcsBoardPolling: Failed to lock mutex" << std::endl;
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#endif
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return result;
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}
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// Pull SPI CS low. For now, no support for active high given
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if (gpioId != gpio::NO_GPIO) {
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gpioIF.pullLow(gpioId);
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}
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// Execute transfer
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// Initiate a full duplex SPI transfer.
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retval = ioctl(fileDescriptor, SPI_IOC_MESSAGE(1), cookie.getTransferStructHandle());
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if (retval < 0) {
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utility::handleIoctlError("SpiComIF::sendMessage: ioctl error.");
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result = spi::FULL_DUPLEX_TRANSFER_FAILED;
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}
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#if FSFW_HAL_SPI_WIRETAPPING == 1
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comIf->performSpiWiretapping(cookie);
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#endif /* FSFW_LINUX_SPI_WIRETAPPING == 1 */
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if (gpioId != gpio::NO_GPIO) {
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gpioIF.pullHigh(gpioId);
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}
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mutex->unlockMutex();
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idx += 2;
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transferStruct->tx_buf += 2;
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transferStruct->rx_buf += 2;
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if (idx < 4) {
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usleep(adis1650x::STALL_TIME_MICROSECONDS);
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}
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}
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transferStruct->tx_buf = origTx;
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transferStruct->rx_buf = origRx;
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cookie.setTransferSize(0);
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return returnvalue::OK;
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}
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ReturnValue_t AcsBoardPolling::readAdisCfg(SpiCookie& cookie, size_t transferLen) {
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ReturnValue_t result = returnvalue::OK;
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int retval = 0;
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@ -455,15 +531,20 @@ void AcsBoardPolling::gyroAdisHandler(GyroAdis& gyro) {
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ReturnValue_t result;
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acs::SimpleSensorMode mode = acs::SimpleSensorMode::OFF;
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bool mustPerformStartup = false;
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uint16_t decRate = 0;
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{
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MutexGuard mg(ipcLock, LOCK_TYPE, LOCK_TIMEOUT, LOCK_CTX);
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mode = gyro.mode;
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decRate = gyro.decRate;
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mustPerformStartup = gyro.performStartup;
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}
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if (mode == acs::SimpleSensorMode::OFF) {
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return;
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}
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if (mustPerformStartup) {
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adis1650x::prepareWriteRegCommand(adis1650x::DEC_RATE_REG, decRate, cmdBuf.data(),
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cmdBuf.size());
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writeAdisReg(*gyro.cookie);
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uint8_t regList[6];
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// Read configuration
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regList[0] = adis1650x::DIAG_STAT_REG;
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@ -491,13 +572,19 @@ void AcsBoardPolling::gyroAdisHandler(GyroAdis& gyro) {
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gyro.replyResult = returnvalue::FAILED;
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return;
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}
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uint16_t decRateReadBack = (rawReply[10] << 8) | rawReply[11];
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if (decRateReadBack != decRate) {
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sif::warning << "AcsPollingTask: DEC rate configuration failed. Read " << decRateReadBack
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<< ", expected " << decRate << std::endl;
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gyro.replyResult = returnvalue::FAILED;
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}
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MutexGuard mg(ipcLock, LOCK_TYPE, LOCK_TIMEOUT, LOCK_CTX);
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gyro.ownReply.cfgWasSet = true;
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gyro.ownReply.cfg.diagStat = (rawReply[2] << 8) | rawReply[3];
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gyro.ownReply.cfg.filterSetting = (rawReply[4] << 8) | rawReply[5];
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gyro.ownReply.cfg.rangMdl = (rawReply[6] << 8) | rawReply[7];
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gyro.ownReply.cfg.mscCtrlReg = (rawReply[8] << 8) | rawReply[9];
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gyro.ownReply.cfg.decRateReg = (rawReply[10] << 8) | rawReply[11];
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gyro.ownReply.cfg.decRateReg = decRateReadBack;
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gyro.ownReply.cfg.prodId = prodId;
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gyro.ownReply.data.sensitivity = adis1650x::rangMdlToSensitivity(gyro.ownReply.cfg.rangMdl);
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gyro.performStartup = false;
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@ -37,6 +37,7 @@ class AcsBoardPolling : public SystemObject,
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struct GyroAdis : public DevBase {
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adis1650x::Type type;
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uint16_t decRate;
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Countdown countdown;
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acs::Adis1650XReply ownReply;
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acs::Adis1650XReply readerReply;
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@ -84,6 +85,8 @@ class AcsBoardPolling : public SystemObject,
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void gyroAdisHandler(GyroAdis& gyro);
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void mgmLis3Handler(MgmLis3& mgm);
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void mgmRm3100Handler(MgmRm3100& mgm);
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// This fumction configures the register as specified on p.21 of the datasheet.
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ReturnValue_t writeAdisReg(SpiCookie& cookie);
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// Special readout: 16us stall time between small 2 byte transfers.
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ReturnValue_t readAdisCfg(SpiCookie& spiCookie, size_t transferLen);
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};
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@ -26,12 +26,12 @@ void GyrAdis1650XHandler::doStartUp() {
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breakCountdown.setTimeout(adis1650x::START_UP_TIME);
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commandExecuted = true;
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}
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if (breakCountdown.hasTimedOut()) {
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}
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if (internalState == InternalState::STARTUP_DONE) {
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updatePeriodicReply(true, adis1650x::REPLY);
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setMode(MODE_ON);
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internalState = InternalState::NONE;
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}
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}
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}
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void GyrAdis1650XHandler::doShutDown() {
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@ -61,6 +61,8 @@ ReturnValue_t GyrAdis1650XHandler::buildTransitionDeviceCommand(DeviceCommandId_
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return NOTHING_TO_SEND;
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}
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*id = adis1650x::REQUEST;
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adisRequest.cfg.decRateReg = adis1650x::DEC_RATE;
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internalState = InternalState::STARTUP_DONE;
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return preparePeriodicRequest(acs::SimpleSensorMode::NORMAL);
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}
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case (InternalState::SHUTDOWN): {
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@ -48,7 +48,7 @@ class GyrAdis1650XHandler : public DeviceHandlerBase {
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bool warningSwitch = true;
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enum class InternalState { NONE, STARTUP, SHUTDOWN };
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enum class InternalState { NONE, STARTUP, STARTUP_DONE, SHUTDOWN };
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InternalState internalState = InternalState::STARTUP;
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bool commandExecuted = false;
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@ -8,11 +8,6 @@
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namespace acs {
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struct Adis1650XRequest {
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SimpleSensorMode mode;
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adis1650x::Type type;
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};
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struct Adis1650XConfig {
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uint16_t diagStat;
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uint16_t filterSetting;
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@ -22,6 +17,12 @@ struct Adis1650XConfig {
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uint16_t prodId;
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};
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struct Adis1650XRequest {
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SimpleSensorMode mode;
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adis1650x::Type type;
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Adis1650XConfig cfg;
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};
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struct Adis1650XData {
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double sensitivity = 0.0;
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// Angular velocities in all axes (X, Y and Z)
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@ -52,3 +52,14 @@ double adis1650x::rangMdlToSensitivity(uint16_t rangMdl) {
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}
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}
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}
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void adis1650x::prepareWriteRegCommand(uint8_t regStart, uint16_t val, uint8_t* outBuf,
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size_t maxLen) {
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if (maxLen < 4) {
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return;
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}
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outBuf[0] = regStart | adis1650x::WRITE_MASK;
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outBuf[1] = val & 0Xff;
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outBuf[2] = (regStart + 1) | adis1650x::WRITE_MASK;
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outBuf[3] = (val >> 8) & 0xff;
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}
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};
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size_t prepareReadCommand(const uint8_t* regList, size_t len, uint8_t* outBuf, size_t maxLen);
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void prepareWriteRegCommand(uint8_t regStart, uint16_t val, uint8_t* outBuf, size_t maxLen);
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BurstModes burstModeFromMscCtrl(uint16_t mscCtrl);
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double rangMdlToSensitivity(uint16_t rangMdl);
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