//***************************************************************************** // // mpu9150.c - Driver for the MPU9150 accelerometer, gyroscope, and // magnetometer. // // Copyright (c) 2013-2014 Texas Instruments Incorporated. All rights reserved. // Software License Agreement // // Texas Instruments (TI) is supplying this software for use solely and // exclusively on TI's microcontroller products. The software is owned by // TI and/or its suppliers, and is protected under applicable copyright // laws. You may not combine this software with "viral" open-source // software in order to form a larger program. // // THIS SOFTWARE IS PROVIDED "AS IS" AND WITH ALL FAULTS. // NO WARRANTIES, WHETHER EXPRESS, IMPLIED OR STATUTORY, INCLUDING, BUT // NOT LIMITED TO, IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR // A PARTICULAR PURPOSE APPLY TO THIS SOFTWARE. TI SHALL NOT, UNDER ANY // CIRCUMSTANCES, BE LIABLE FOR SPECIAL, INCIDENTAL, OR CONSEQUENTIAL // DAMAGES, FOR ANY REASON WHATSOEVER. // // This is part of revision 2.1.0.12573 of the Tiva Firmware Development Package. // //***************************************************************************** #include #include "sensorlib/hw_ak8975.h" #include "sensorlib/hw_mpu9150.h" #include "sensorlib/i2cm_drv.h" #include "sensorlib/ak8975.h" #include "sensorlib/mpu9150.h" //***************************************************************************** // //! \addtogroup mpu9150_api //! @{ // //***************************************************************************** //***************************************************************************** // // The states of the MPU9150 state machine. // //***************************************************************************** #define MPU9150_STATE_IDLE 0 // State machine is idle #define MPU9150_STATE_LAST 1 // Last step in a sequence #define MPU9150_STATE_READ 2 // Waiting for read #define MPU9150_STATE_WRITE 3 // Waiting for write #define MPU9150_STATE_RMW 4 // Waiting for read modify write #define MPU9150_STATE_INIT_RESET \ 5 // reset request issued. #define MPU9150_STATE_INIT_RESET_WAIT \ 6 // polling wait for reset complete #define MPU9150_STATE_INIT_PWR_MGMT \ 7 // wake up the device. #define MPU9150_STATE_INIT_USER_CTRL \ 8 // init user control #define MPU9150_STATE_INIT_SAMPLE_RATE_CFG \ 9 // init the sensors and filters #define MPU9150_STATE_INIT_I2C_SLAVE_DLY \ 10 // set the ak8975 polling delay #define MPU9150_STATE_INIT_I2C_SLAVE_0 \ 11 // config ak8975 automatic read #define MPU9150_STATE_RD_DATA 12 // Waiting for data read //***************************************************************************** // // The factors used to convert the acceleration readings from the MPU9150 into // floating point values in meters per second squared. // // Values are obtained by taking the g conversion factors from the data sheet // and multiplying by 9.81 (1 g = 9.81 m/s^2). // //***************************************************************************** static const float g_fMPU9150AccelFactors[] = { 0.0005985482, // Range = +/- 2 g (16384 lsb/g) 0.0011970964, // Range = +/- 4 g (8192 lsb/g) 0.0023941928, // Range = +/- 8 g (4096 lsb/g) 0.0047883855 // Range = +/- 16 g (2048 lsb/g) }; //***************************************************************************** // // The factors used to convert the acceleration readings from the MPU9150 into // floating point values in radians per second. // // Values are obtained by taking the degree per second conversion factors // from the data sheet and then converting to radians per sec (1 degree = // 0.0174532925 radians). // //***************************************************************************** static const float g_fMPU9150GyroFactors[] = { 1.3323124e-4, // Range = +/- 250 dps (131.0) 2.6646248e-4, // Range = +/- 500 dps (65.5) 5.3211258e-4, // Range = +/- 1000 dps (32.8) 0.0010642252 // Range = +/- 2000 dps (16.4) }; //***************************************************************************** // // Converting sensor data to tesla (0.3 uT per LSB) // //***************************************************************************** #define CONVERT_TO_TESLA 0.0000003 //***************************************************************************** // // The callback function that is called when I2C transations to/from the // MPU9150 have completed. // //***************************************************************************** static void MPU9150Callback(void *pvCallbackData, uint_fast8_t ui8Status) { tMPU9150 *psInst; // // Convert the instance data into a pointer to a tMPU9150 structure. // psInst = pvCallbackData; // // If the I2C master driver encountered a failure, force the state machine // to the idle state (which will also result in a callback to propagate the // error). Except in the case that we are in the reset wait state and the // error is an address NACK. This error is handled by the reset wait // state. // if((ui8Status != I2CM_STATUS_SUCCESS) && !((ui8Status == I2CM_STATUS_ADDR_NACK) && (psInst->ui8State == MPU9150_STATE_INIT_RESET_WAIT))) { psInst->ui8State = MPU9150_STATE_IDLE; } // // Determine the current state of the MPU9150 state machine. // switch(psInst->ui8State) { // // All states that trivially transition to IDLE, and all unknown // states. // case MPU9150_STATE_READ: case MPU9150_STATE_LAST: case MPU9150_STATE_RD_DATA: default: { // // The state machine is now idle. // psInst->ui8State = MPU9150_STATE_IDLE; // // Done. // break; } // // MPU9150 Device reset was issued // case MPU9150_STATE_INIT_RESET: { // // Issue a read of the status register to confirm reset is done. // psInst->uCommand.pui8Buffer[0] = MPU9150_O_PWR_MGMT_1; I2CMRead(psInst->psI2CInst, psInst->ui8Addr, psInst->uCommand.pui8Buffer, 1, psInst->pui8Data, 1, MPU9150Callback, psInst); psInst->ui8State = MPU9150_STATE_INIT_RESET_WAIT; break; } // // Status register was read, check if reset is done before proceeding. // case MPU9150_STATE_INIT_RESET_WAIT: { // // Check the value read back from status to determine if device // is still in reset or if it is ready. Reset state for this // register is 0x40, which has sleep bit set. Device may also // respond with an address NACK during very early stages of the // its internal reset. Keep polling until we verify device is // ready. // if((psInst->pui8Data[0] != MPU9150_PWR_MGMT_1_SLEEP) || (ui8Status == I2CM_STATUS_ADDR_NACK)) { // // Device still in reset so begin polling this register. // psInst->uCommand.pui8Buffer[0] = MPU9150_O_PWR_MGMT_1; I2CMRead(psInst->psI2CInst, psInst->ui8Addr, psInst->uCommand.pui8Buffer, 1, psInst->pui8Data, 1, MPU9150Callback, psInst); // // Intentionally stay in this state to create polling effect. // } else { // // Device is out of reset, bring it out of sleep mode. // psInst->uCommand.pui8Buffer[0] = MPU9150_O_PWR_MGMT_1; psInst->uCommand.pui8Buffer[1] = MPU9150_PWR_MGMT_1_CLKSEL_XG; I2CMWrite(psInst->psI2CInst, psInst->ui8Addr, psInst->uCommand.pui8Buffer, 2, MPU9150Callback, psInst); // // Update state to show we are modifing user control and // power management 1 regs. // psInst->ui8State = MPU9150_STATE_INIT_PWR_MGMT; } break; } // // Reset complete now take device out of sleep mode. // case MPU9150_STATE_INIT_PWR_MGMT: { psInst->uCommand.pui8Buffer[0] = MPU9150_O_USER_CTRL; psInst->uCommand.pui8Buffer[1] = MPU9150_USER_CTRL_I2C_MST_EN; I2CMWrite(psInst->psI2CInst, psInst->ui8Addr, psInst->uCommand.pui8Buffer, 2, MPU9150Callback, psInst); // // Update state to show we are modifing user control and // power management 1 regs. // psInst->ui8State = MPU9150_STATE_INIT_USER_CTRL; break; } // // Change to power mode complete, device is ready for configuration. // case MPU9150_STATE_INIT_USER_CTRL: { // // Load index 0 with the sample rate register number. // psInst->uCommand.pui8Buffer[0] = MPU9150_O_SMPLRT_DIV; // // Set sample rate to 50 hertz. 1000 hz / (1 + 19) // psInst->uCommand.pui8Buffer[1] = 19; I2CMWrite(psInst->psI2CInst, psInst->ui8Addr, psInst->uCommand.pui8Buffer, 2, MPU9150Callback, psInst); // // update state to show are in process of configuring sensors. // psInst->ui8State = MPU9150_STATE_INIT_SAMPLE_RATE_CFG; break; } // // Sensor configuration is complete. // case MPU9150_STATE_INIT_SAMPLE_RATE_CFG: { // // Write the I2C Master delay control so we only sample the AK // every 5th time that we sample accel/gyro. Delay Count itself // handled in next state. // psInst->uCommand.pui8Buffer[0] = MPU9150_O_I2C_MST_DELAY_CTRL; psInst->uCommand.pui8Buffer[1] = (MPU9150_I2C_MST_DELAY_CTRL_I2C_SLV0_DLY_EN | MPU9150_I2C_MST_DELAY_CTRL_I2C_SLV4_DLY_EN); I2CMWrite(psInst->psI2CInst, psInst->ui8Addr, psInst->uCommand.pui8Buffer, 2, MPU9150Callback, psInst); // // Update state to show we are configuring i2c slave delay between // slave events. Slave 0 and Slave 4 transaction only occur every // 5th sample cycle. // psInst->ui8State = MPU9150_STATE_INIT_I2C_SLAVE_DLY; break; } // // Master slave delay configuration complete. // case MPU9150_STATE_INIT_I2C_SLAVE_DLY: { // // Write the configuration for I2C master control clock 400khz // and wait for external sensor before asserting data ready // psInst->uCommand.pui8Buffer[0] = MPU9150_O_I2C_MST_CTRL; psInst->uCommand.pui8Buffer[1] = (MPU9150_I2C_MST_CTRL_I2C_MST_CLK_400 | MPU9150_I2C_MST_CTRL_WAIT_FOR_ES); // // Configure I2C Slave 0 for read of AK8975 (I2C Address 0x0C) // Start at AK8975 register status 1 // Read 8 bytes and enable this slave transaction // psInst->uCommand.pui8Buffer[2] = MPU9150_I2C_SLV0_ADDR_RW | 0x0C; psInst->uCommand.pui8Buffer[3] = AK8975_O_ST1; psInst->uCommand.pui8Buffer[4] = MPU9150_I2C_SLV0_CTRL_EN | 0x08; I2CMWrite(psInst->psI2CInst, psInst->ui8Addr, psInst->uCommand.pui8Buffer, 5, MPU9150Callback, psInst); // // Update state. Now in process of configuring slave 0. // psInst->ui8State = MPU9150_STATE_INIT_I2C_SLAVE_0; break; } // // I2C slave 0 init complete. // case MPU9150_STATE_INIT_I2C_SLAVE_0: { // // Write the configuration for I2C Slave 4 transaction to AK8975 // 0x0c is the AK8975 address on i2c bus. // we want to write the control register with the value for a // starting a single measurement. // psInst->uCommand.pui8Buffer[0] = MPU9150_O_I2C_SLV4_ADDR; psInst->uCommand.pui8Buffer[1] = 0x0C; psInst->uCommand.pui8Buffer[2] = AK8975_O_CNTL; psInst->uCommand.pui8Buffer[3] = AK8975_CNTL_MODE_SINGLE; // // Enable the SLV4 transaction and set the master delay to // 0x04 + 1. This means the slave transactions with delay enabled // will run every fifth accel/gyro sample. // psInst->uCommand.pui8Buffer[4] = MPU9150_I2C_SLV4_CTRL_EN | 0x04; I2CMWrite(psInst->psI2CInst, psInst->ui8Addr, psInst->uCommand.pui8Buffer, 5, MPU9150Callback, psInst); // // Update state. Now in the final init state. // psInst->ui8State = MPU9150_STATE_LAST; break; } // // A write just completed // case MPU9150_STATE_WRITE: { // // Set the accelerometer and gyroscope ranges to the new values. // If the register was not modified, the values will be the same so // this has no effect. // psInst->ui8AccelAfsSel = psInst->ui8NewAccelAfsSel; psInst->ui8GyroFsSel = psInst->ui8NewGyroFsSel; // // The state machine is now idle. // psInst->ui8State = MPU9150_STATE_IDLE; // // Done. // break; } // // A read-modify-write just completed // case MPU9150_STATE_RMW: { // // See if the PWR_MGMT_1 register was just modified. // if(psInst->uCommand.sReadModifyWriteState.pui8Buffer[0] == MPU9150_O_PWR_MGMT_1) { // // See if a soft reset has been issued. // if(psInst->uCommand.sReadModifyWriteState.pui8Buffer[1] & MPU9150_PWR_MGMT_1_DEVICE_RESET) { // // Default range setting is +/- 2 g // psInst->ui8AccelAfsSel = 0; psInst->ui8NewAccelAfsSel = 0; // // Default range setting is +/- 250 degrees/s // psInst->ui8GyroFsSel = 0; psInst->ui8NewGyroFsSel = 0; } } // // See if the GYRO_CONFIG register was just modified. // if(psInst->uCommand.sReadModifyWriteState.pui8Buffer[0] == MPU9150_O_GYRO_CONFIG) { // // Extract the FS_SEL from the GYRO_CONFIG register value. // psInst->ui8GyroFsSel = ((psInst->uCommand.sReadModifyWriteState.pui8Buffer[1] & MPU9150_GYRO_CONFIG_FS_SEL_M) >> MPU9150_GYRO_CONFIG_FS_SEL_S); } // // See if the ACCEL_CONFIG register was just modified. // if(psInst->uCommand.sReadModifyWriteState.pui8Buffer[0] == MPU9150_O_ACCEL_CONFIG) { // // Extract the FS_SEL from the ACCEL_CONFIG register value. // psInst->ui8AccelAfsSel = ((psInst->uCommand.sReadModifyWriteState.pui8Buffer[1] & MPU9150_ACCEL_CONFIG_AFS_SEL_M) >> MPU9150_ACCEL_CONFIG_AFS_SEL_S); } // // The state machine is now idle. // psInst->ui8State = MPU9150_STATE_IDLE; // // Done. // break; } } // // See if the state machine is now idle and there is a callback function. // if((psInst->ui8State == MPU9150_STATE_IDLE) && psInst->pfnCallback) { // // Call the application-supplied callback function. // psInst->pfnCallback(psInst->pvCallbackData, ui8Status); } } //***************************************************************************** // //! Initializes the MPU9150 driver. //! //! \param psInst is a pointer to the MPU9150 instance data. //! \param psI2CInst is a pointer to the I2C master driver instance data. //! \param ui8I2CAddr is the I2C address of the MPU9150 device. //! \param pfnCallback is the function to be called when the initialization has //! completed (can be \b NULL if a callback is not required). //! \param pvCallbackData is a pointer that is passed to the callback function. //! //! This function initializes the MPU9150 driver, preparing it for operation. //! //! \return Returns 1 if the MPU9150 driver was successfully initialized and 0 //! if it was not. // //***************************************************************************** uint_fast8_t MPU9150Init(tMPU9150 *psInst, tI2CMInstance *psI2CInst, uint_fast8_t ui8I2CAddr, tSensorCallback *pfnCallback, void *pvCallbackData) { // // Initialize the MPU9150 instance structure. // psInst->psI2CInst = psI2CInst; psInst->ui8Addr = ui8I2CAddr; // // Save the callback information. // psInst->pfnCallback = pfnCallback; psInst->pvCallbackData = pvCallbackData; // // Default range setting is +/- 2 g // psInst->ui8AccelAfsSel = (MPU9150_ACCEL_CONFIG_AFS_SEL_2G >> MPU9150_ACCEL_CONFIG_AFS_SEL_S); psInst->ui8NewAccelAfsSel = (MPU9150_ACCEL_CONFIG_AFS_SEL_2G >> MPU9150_ACCEL_CONFIG_AFS_SEL_S); // // Default range setting is +/- 250 degrees/s // psInst->ui8GyroFsSel = (MPU9150_GYRO_CONFIG_FS_SEL_250 >> MPU9150_GYRO_CONFIG_FS_SEL_S); psInst->ui8NewGyroFsSel = (MPU9150_GYRO_CONFIG_FS_SEL_250 >> MPU9150_GYRO_CONFIG_FS_SEL_S); // // Set the state to show we are initiating a reset. // psInst->ui8State = MPU9150_STATE_INIT_RESET; // // Load the buffer with command to perform device reset // psInst->uCommand.pui8Buffer[0] = MPU9150_O_PWR_MGMT_1; psInst->uCommand.pui8Buffer[1] = MPU9150_PWR_MGMT_1_DEVICE_RESET; if(I2CMWrite(psInst->psI2CInst, psInst->ui8Addr, psInst->uCommand.pui8Buffer, 2, MPU9150Callback, psInst) == 0) { psInst->ui8State = MPU9150_STATE_IDLE; return(0); } // // Success // return(1); } //***************************************************************************** // //! Returns the pointer to the tAK8975 object //! //! \param psInst is a pointer to the MPU9150 instance data. //! //! The MPU9150 contains in internal AK8975 magnetometer. To access data from //! that sensor, application should use this function to get a pointer to the //! tAK8975 object, and then use the AK8975 APIs. //! //! \return Returns the pointer to the tAK8975 object // //***************************************************************************** tAK8975 * MPU9150MagnetoInstGet(tMPU9150 *psInst) { return(&(psInst->sAK8975Inst)); } //***************************************************************************** // //! Reads data from MPU9150 registers. //! //! \param psInst is a pointer to the MPU9150 instance data. //! \param ui8Reg is the first register to read. //! \param pui8Data is a pointer to the location to store the data that is //! read. //! \param ui16Count is the number of data bytes to read. //! \param pfnCallback is the function to be called when the data has been read //! (can be \b NULL if a callback is not required). //! \param pvCallbackData is a pointer that is passed to the callback function. //! //! This function reads a sequence of data values from consecutive registers in //! the MPU9150. //! //! \return Returns 1 if the write was successfully started and 0 if it was //! not. // //***************************************************************************** uint_fast8_t MPU9150Read(tMPU9150 *psInst, uint_fast8_t ui8Reg, uint8_t *pui8Data, uint_fast16_t ui16Count, tSensorCallback *pfnCallback, void *pvCallbackData) { // // Return a failure if the MPU9150 driver is not idle (in other words, // there is already an outstanding request to the MPU9150). // if(psInst->ui8State != MPU9150_STATE_IDLE) { return(0); } // // Save the callback information. // psInst->pfnCallback = pfnCallback; psInst->pvCallbackData = pvCallbackData; // // Move the state machine to the wait for read state. // psInst->ui8State = MPU9150_STATE_READ; // // Read the requested registers from the MPU9150. // psInst->uCommand.pui8Buffer[0] = ui8Reg; if(I2CMRead(psInst->psI2CInst, psInst->ui8Addr, psInst->uCommand.pui8Buffer, 1, pui8Data, ui16Count, MPU9150Callback, psInst) == 0) { // // The I2C write failed, so move to the idle state and return a // failure. // psInst->ui8State = MPU9150_STATE_IDLE; return(0); } // // Success. // return(1); } //***************************************************************************** // //! Writes data to MPU9150 registers. //! //! \param psInst is a pointer to the MPU9150 instance data. //! \param ui8Reg is the first register to write. //! \param pui8Data is a pointer to the data to write. //! \param ui16Count is the number of data bytes to write. //! \param pfnCallback is the function to be called when the data has been //! written (can be \b NULL if a callback is not required). //! \param pvCallbackData is a pointer that is passed to the callback function. //! //! This function writes a sequence of data values to consecutive registers in //! the MPU9150. The first byte of the \e pui8Data buffer contains the value //! to be written into the \e ui8Reg register, the second value contains the //! data to be written into the next register, and so on. //! //! \return Returns 1 if the write was successfully started and 0 if it was //! not. // //***************************************************************************** uint_fast8_t MPU9150Write(tMPU9150 *psInst, uint_fast8_t ui8Reg, const uint8_t *pui8Data, uint_fast16_t ui16Count, tSensorCallback *pfnCallback, void *pvCallbackData) { // // Return a failure if the MPU9150 driver is not idle (in other words, // there is already an outstanding request to the MPU9150). // if(psInst->ui8State != MPU9150_STATE_IDLE) { return(0); } // // Save the callback information. // psInst->pfnCallback = pfnCallback; psInst->pvCallbackData = pvCallbackData; // // See if the PWR_MGMT_1 register is being written. // if((ui8Reg <= MPU9150_O_PWR_MGMT_1) && ((ui8Reg + ui16Count) > MPU9150_O_PWR_MGMT_1)) { // // See if a soft reset is being requested. // if(pui8Data[ui8Reg - MPU9150_O_PWR_MGMT_1] & MPU9150_PWR_MGMT_1_DEVICE_RESET) { // // Default range setting is +/- 2 g. // psInst->ui8NewAccelAfsSel = 0; // // Default range setting is +/- 250 degrees/s. // psInst->ui8NewGyroFsSel = 0; } } // // See if the GYRO_CONFIG register is being written. // if((ui8Reg <= MPU9150_O_GYRO_CONFIG) && ((ui8Reg + ui16Count) > MPU9150_O_GYRO_CONFIG)) { // // Extract the FS_SEL from the GYRO_CONFIG register value. // psInst->ui8NewGyroFsSel = ((pui8Data[ui8Reg - MPU9150_O_GYRO_CONFIG] & MPU9150_GYRO_CONFIG_FS_SEL_M) >> MPU9150_GYRO_CONFIG_FS_SEL_S); } // // See if the ACCEL_CONFIG register is being written. // if((ui8Reg <= MPU9150_O_ACCEL_CONFIG) && ((ui8Reg + ui16Count) > MPU9150_O_ACCEL_CONFIG)) { // // Extract the AFS_SEL from the ACCEL_CONFIG register value. // psInst->ui8NewAccelAfsSel = ((pui8Data[ui8Reg - MPU9150_O_ACCEL_CONFIG] & MPU9150_ACCEL_CONFIG_AFS_SEL_M) >> MPU9150_ACCEL_CONFIG_AFS_SEL_S); } // // Move the state machine to the wait for write state. // psInst->ui8State = MPU9150_STATE_WRITE; // // Write the requested registers to the MPU9150. // if(I2CMWrite8(&(psInst->uCommand.sWriteState), psInst->psI2CInst, psInst->ui8Addr, ui8Reg, pui8Data, ui16Count, MPU9150Callback, psInst) == 0) { // // The I2C write failed, so move to the idle state and return a // failure. // psInst->ui8State = MPU9150_STATE_IDLE; return(0); } // // Success. // return(1); } //***************************************************************************** // //! Performs a read-modify-write of a MPU9150 register. //! //! \param psInst is a pointer to the MPU9150 instance data. //! \param ui8Reg is the register to modify. //! \param ui8Mask is the bit mask that is ANDed with the current register //! value. //! \param ui8Value is the bit mask that is ORed with the result of the AND //! operation. //! \param pfnCallback is the function to be called when the data has been //! changed (can be \b NULL if a callback is not required). //! \param pvCallbackData is a pointer that is passed to the callback function. //! //! This function changes the value of a register in the MPU9150 via a //! read-modify-write operation, allowing one of the fields to be changed //! without disturbing the other fields. The \e ui8Reg register is read, ANDed //! with \e ui8Mask, ORed with \e ui8Value, and then written back to the //! MPU9150. //! //! \return Returns 1 if the read-modify-write was successfully started and 0 //! if it was not. // //***************************************************************************** uint_fast8_t MPU9150ReadModifyWrite(tMPU9150 *psInst, uint_fast8_t ui8Reg, uint_fast8_t ui8Mask, uint_fast8_t ui8Value, tSensorCallback *pfnCallback, void *pvCallbackData) { // // Return a failure if the MPU9150 driver is not idle (in other words, // there is already an outstanding request to the MPU9150). // if(psInst->ui8State != MPU9150_STATE_IDLE) { return(0); } // // Save the callback information. // psInst->pfnCallback = pfnCallback; psInst->pvCallbackData = pvCallbackData; // // Move the state machine to the wait for read-modify-write state. // psInst->ui8State = MPU9150_STATE_RMW; // // Submit the read-modify-write request to the MPU9150. // if(I2CMReadModifyWrite8(&(psInst->uCommand.sReadModifyWriteState), psInst->psI2CInst, psInst->ui8Addr, ui8Reg, ui8Mask, ui8Value, MPU9150Callback, psInst) == 0) { // // The I2C read-modify-write failed, so move to the idle state and // return a failure. // psInst->ui8State = MPU9150_STATE_IDLE; return(0); } // // Success. // return(1); } //***************************************************************************** // //! Reads the accelerometer and gyroscope data from the MPU9150 and the //! magnetometer data from the on-chip aK8975. //! //! \param psInst is a pointer to the MPU9150 instance data. //! \param pfnCallback is the function to be called when the data has been read //! (can be \b NULL if a callback is not required). //! \param pvCallbackData is a pointer that is passed to the callback function. //! //! This function initiates a read of the MPU9150 data registers. When the //! read has completed (as indicated by calling the callback function), the new //! readings can be obtained via: //! //! - MPU9150DataAccelGetRaw() //! - MPU9150DataAccelGetFloat() //! - MPU9150DataGyroGetRaw() //! - MPU9150DataGyroGetFloat() //! - MPU9150DataMagnetoGetRaw() //! - MPU9150DataMagnetoGetFloat() //! //! \return Returns 1 if the read was successfully started and 0 if it was not. // //***************************************************************************** uint_fast8_t MPU9150DataRead(tMPU9150 *psInst, tSensorCallback *pfnCallback, void *pvCallbackData) { // // Return a failure if the MPU9150 driver is not idle (in other words, // there is already an outstanding request to the MPU9150). // if(psInst->ui8State != MPU9150_STATE_IDLE) { return(0); } // // Save the callback information. // psInst->pfnCallback = pfnCallback; psInst->pvCallbackData = pvCallbackData; // // Move the state machine to the wait for data read state. // psInst->ui8State = MPU9150_STATE_RD_DATA; // // Read the data registers from the MPU9150. // // (ACCEL_XOUT_H(0x3B) -> GYRO_ZOUT_L(0x48) = 14 bytes // Grab Ext Sens Data as well for another 8 bytes. ST1 + Mag Data + ST2 // psInst->uCommand.pui8Buffer[0] = MPU9150_O_ACCEL_XOUT_H; if(I2CMRead(psInst->psI2CInst, psInst->ui8Addr, psInst->uCommand.pui8Buffer, 1, psInst->pui8Data, 22, MPU9150Callback, psInst) == 0) { // // The I2C read failed, so move to the idle state and return a failure. // psInst->ui8State = MPU9150_STATE_IDLE; return(0); } // // Success. // return(1); } //***************************************************************************** // //! Gets the raw accelerometer data from the most recent data read. //! //! \param psInst is a pointer to the MPU9150 instance data. //! \param pui16AccelX is a pointer to the value into which the raw X-axis //! accelerometer data is stored. //! \param pui16AccelY is a pointer to the value into which the raw Y-axis //! accelerometer data is stored. //! \param pui16AccelZ is a pointer to the value into which the raw Z-axis //! accelerometer data is stored. //! //! This function returns the raw accelerometer data from the most recent data //! read. The data is not manipulated in any way by the driver. If any of the //! output data pointers are \b NULL, the corresponding data is not provided. //! //! \return None. // //***************************************************************************** void MPU9150DataAccelGetRaw(tMPU9150 *psInst, uint_fast16_t *pui16AccelX, uint_fast16_t *pui16AccelY, uint_fast16_t *pui16AccelZ) { // // Return the raw accelerometer values. // if(pui16AccelX) { *pui16AccelX = (psInst->pui8Data[0] << 8) | psInst->pui8Data[1]; } if(pui16AccelY) { *pui16AccelY = (psInst->pui8Data[2] << 8) | psInst->pui8Data[3]; } if(pui16AccelZ) { *pui16AccelZ = (psInst->pui8Data[4] << 8) | psInst->pui8Data[5]; } } //***************************************************************************** // //! Gets the accelerometer data from the most recent data read. //! //! \param psInst is a pointer to the MPU9150 instance data. //! \param pfAccelX is a pointer to the value into which the X-axis //! accelerometer data is stored. //! \param pfAccelY is a pointer to the value into which the Y-axis //! accelerometer data is stored. //! \param pfAccelZ is a pointer to the value into which the Z-axis //! accelerometer data is stored. //! //! This function returns the accelerometer data from the most recent data //! read, converted into meters per second squared (m/s^2). If any of the //! output data pointers are \b NULL, the corresponding data is not provided. //! //! \return None. // //***************************************************************************** void MPU9150DataAccelGetFloat(tMPU9150 *psInst, float *pfAccelX, float *pfAccelY, float *pfAccelZ) { float fFactor; // // Get the acceleration conversion factor for the current data format. // fFactor = g_fMPU9150AccelFactors[psInst->ui8AccelAfsSel]; // // Convert the accelerometer values into m/sec^2 // if(pfAccelX) { *pfAccelX = ((float)(int16_t)((psInst->pui8Data[0] << 8) | psInst->pui8Data[1]) * fFactor); } if(pfAccelY) { *pfAccelY = ((float)(int16_t)((psInst->pui8Data[2] << 8) | psInst->pui8Data[3]) * fFactor); } if(pfAccelZ) { *pfAccelZ = ((float)(int16_t)((psInst->pui8Data[4] << 8) | psInst->pui8Data[5]) * fFactor); } } //***************************************************************************** // //! Gets the raw gyroscope data from the most recent data read. //! //! \param psInst is a pointer to the MPU9150 instance data. //! \param pui16GyroX is a pointer to the value into which the raw X-axis //! gyroscope data is stored. //! \param pui16GyroY is a pointer to the value into which the raw Y-axis //! gyroscope data is stored. //! \param pui16GyroZ is a pointer to the value into which the raw Z-axis //! gyroscope data is stored. //! //! This function returns the raw gyroscope data from the most recent data //! read. The data is not manipulated in any way by the driver. If any of the //! output data pointers are \b NULL, the corresponding data is not provided. //! //! \return None. // //***************************************************************************** void MPU9150DataGyroGetRaw(tMPU9150 *psInst, uint_fast16_t *pui16GyroX, uint_fast16_t *pui16GyroY, uint_fast16_t *pui16GyroZ) { // // Return the raw gyroscope values. // if(pui16GyroX) { *pui16GyroX = (psInst->pui8Data[8] << 8) | psInst->pui8Data[9]; } if(pui16GyroY) { *pui16GyroY = (psInst->pui8Data[10] << 8) | psInst->pui8Data[11]; } if(pui16GyroZ) { *pui16GyroZ = (psInst->pui8Data[12] << 8) | psInst->pui8Data[13]; } } //***************************************************************************** // //! Gets the gyroscope data from the most recent data read. //! //! \param psInst is a pointer to the MPU9150 instance data. //! \param pfGyroX is a pointer to the value into which the X-axis //! gyroscope data is stored. //! \param pfGyroY is a pointer to the value into which the Y-axis //! gyroscope data is stored. //! \param pfGyroZ is a pointer to the value into which the Z-axis //! gyroscope data is stored. //! //! This function returns the gyroscope data from the most recent data read, //! converted into radians per second. If any of the output data pointers are //! \b NULL, the corresponding data is not provided. //! //! \return None. // //***************************************************************************** void MPU9150DataGyroGetFloat(tMPU9150 *psInst, float *pfGyroX, float *pfGyroY, float *pfGyroZ) { float fFactor; int16_t i16Temp; // // Get the gyroscope conversion factor for the current data format. // fFactor = g_fMPU9150GyroFactors[psInst->ui8GyroFsSel]; // // Convert the gyroscope values into rad/sec // if(pfGyroX) { i16Temp = (int16_t)psInst->pui8Data[8]; i16Temp <<= 8; i16Temp += psInst->pui8Data[9]; *pfGyroX = (float)i16Temp; *pfGyroX *= fFactor; } if(pfGyroY) { i16Temp = (int16_t)psInst->pui8Data[10]; i16Temp <<= 8; i16Temp += psInst->pui8Data[11]; *pfGyroY = (float)i16Temp; *pfGyroY *= fFactor; } if(pfGyroZ) { i16Temp = (int16_t)psInst->pui8Data[12]; i16Temp <<= 8; i16Temp += psInst->pui8Data[13]; *pfGyroZ = (float)i16Temp; *pfGyroZ *= fFactor; } } //***************************************************************************** // //! Gets the raw magnetometer data from the most recent data read. //! //! \param psInst is a pointer to the MPU9150 instance data. //! \param pui16MagnetoX is a pointer to the value into which the raw X-axis //! magnetometer data is stored. //! \param pui16MagnetoY is a pointer to the value into which the raw Y-axis //! magnetometer data is stored. //! \param pui16MagnetoZ is a pointer to the value into which the raw Z-axis //! magnetometer data is stored. //! //! This function returns the raw magnetometer data from the most recent data //! read. The data is not manipulated in any way by the driver. If any of the //! output data pointers are \b NULL, the corresponding data is not provided. //! //! \return None. // //***************************************************************************** void MPU9150DataMagnetoGetRaw(tMPU9150 *psInst, uint_fast16_t *pui16MagnetoX, uint_fast16_t *pui16MagnetoY, uint_fast16_t *pui16MagnetoZ) { uint8_t *pui8ExtSensData; pui8ExtSensData = &(psInst->pui8Data[14]); // // Return the raw magnetometer values. // if(pui16MagnetoX) { *pui16MagnetoX = (pui8ExtSensData[2] << 8) | pui8ExtSensData[1]; } if(pui16MagnetoY) { *pui16MagnetoY = (pui8ExtSensData[4] << 8) | pui8ExtSensData[3]; } if(pui16MagnetoZ) { *pui16MagnetoZ = (pui8ExtSensData[6] << 8) | pui8ExtSensData[5]; } } //***************************************************************************** // //! Gets the magnetometer data from the most recent data read. //! //! \param psInst is a pointer to the MPU9150 instance data. //! \param pfMagnetoX is a pointer to the value into which the X-axis //! magnetometer data is stored. //! \param pfMagnetoY is a pointer to the value into which the Y-axis //! magnetometer data is stored. //! \param pfMagnetoZ is a pointer to the value into which the Z-axis //! magnetometer data is stored. //! //! This function returns the magnetometer data from the most recent data read, //! converted into tesla. If any of the output data pointers are //! \b NULL, the corresponding data is not provided. //! //! \return None. // //***************************************************************************** void MPU9150DataMagnetoGetFloat(tMPU9150 *psInst, float *pfMagnetoX, float *pfMagnetoY, float *pfMagnetoZ) { int16_t *pi16Data; pi16Data = (int16_t *)(psInst->pui8Data + 15); // // Convert the magnetometer values into floating-point tesla values. // if(pfMagnetoX) { *pfMagnetoX = (float)pi16Data[0]; *pfMagnetoX *= CONVERT_TO_TESLA; } if(pfMagnetoY) { *pfMagnetoY = (float)pi16Data[1]; *pfMagnetoY *= CONVERT_TO_TESLA; } if(pfMagnetoZ) { *pfMagnetoZ = (float)pi16Data[2]; *pfMagnetoZ *= CONVERT_TO_TESLA; } } //***************************************************************************** // // Close the Doxygen group. //! @} // //*****************************************************************************