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/*
    ChibiOS - Copyright (C) 2006..2016 Giovanni Di Sirio

    Licensed under the Apache License, Version 2.0 (the "License");
    you may not use this file except in compliance with the License.
    You may obtain a copy of the License at

        http://www.apache.org/licenses/LICENSE-2.0

    Unless required by applicable law or agreed to in writing, software
    distributed under the License is distributed on an "AS IS" BASIS,
    WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
    See the License for the specific language governing permissions and
    limitations under the License.
*/

#include "ch.h"
#include "hal.h"

/* TRUE means that DMA-accessible buffers are placed in a non-cached RAM
   area and that no cache management is required.*/
#define DMA_BUFFERS_COHERENCE TRUE

/*===========================================================================*/
/* GPT driver related.                                                       */
/*===========================================================================*/

/*
 * GPT4 configuration. This timer is used as trigger for the ADC.
 */
static const GPTConfig gpt4cfg1 = {
  .frequency =  1000000U,
  .callback  =  NULL,
  .cr2       =  TIM_CR2_MMS_1,  /* MMS = 010 = TRGO on Update Event.        */
  .dier      =  0U
};

/*===========================================================================*/
/* ADC driver related.                                                       */
/*===========================================================================*/

#define ADC_GRP1_NUM_CHANNELS   2
#define ADC_GRP1_BUF_DEPTH      64

#if !DMA_BUFFERS_COHERENCE
/* Note, the buffer is aligned to a 32 bytes boundary because limitations
   imposed by the data cache. Note, this is GNU specific, it must be
   handled differently for other compilers.
   Only required if the ADC buffer is placed in a cache-able area.*/
#if defined(__GNUC__)
__attribute__((aligned (32)))
#endif
#endif
static adcsample_t samples1[ADC_GRP1_NUM_CHANNELS * ADC_GRP1_BUF_DEPTH];

/*
 * ADC streaming callback.
 */
size_t nx = 0, ny = 0;
static void adccallback(ADCDriver *adcp, adcsample_t *buffer, size_t n) {

#if !DMA_BUFFERS_COHERENCE
  /* DMA buffer invalidation because data cache, only invalidating the
     half buffer just filled.
     Only required if the ADC buffer is placed in a cache-able area.*/
  dmaBufferInvalidate(buffer,
                      n * adcp->grpp->num_channels * sizeof (adcsample_t));
#else
  (void)adcp;
#endif

  /* Updating counters.*/
  if (samples1 == buffer) {
    nx += n;
  }
  else {
    ny += n;
  }
}

/*
 * ADC errors callback, should never happen.
 */
static void adcerrorcallback(ADCDriver *adcp, adcerror_t err) {

  (void)adcp;
  (void)err;
}

/*
 * ADC conversion group.
 * Mode:        Continuous, 16 samples of 2 channels, HS triggered by
 *              GPT4-TRGO.
 * Channels:    Sensor, VRef.
 */
static const ADCConversionGroup adcgrpcfg1 = {
  true,
  ADC_GRP1_NUM_CHANNELS,
  adccallback,
  adcerrorcallback,
  0,                                                    /* CR1   */
  ADC_CR2_EXTEN_RISING | ADC_CR2_EXTSEL_SRC(12),        /* CR2   */
  ADC_SMPR1_SMP_SENSOR(ADC_SAMPLE_144) | 
  ADC_SMPR1_SMP_VREF(ADC_SAMPLE_144),                   /* SMPR1 */
  0,                                                    /* SMPR2 */
  0,                                                    /* SQR1  */
  0,                                                    /* SQR2  */
  ADC_SQR3_SQ2_N(ADC_CHANNEL_SENSOR) | 
  ADC_SQR3_SQ1_N(ADC_CHANNEL_VREFINT)                   /* SQR3  */
};

/*===========================================================================*/
/* Application code.                                                         */
/*===========================================================================*/

/*
 * This is a periodic thread that does absolutely nothing except flashing
 * a LED attached to TP1.
 */
static THD_WORKING_AREA(waThread1, 128);
static THD_FUNCTION(Thread1, arg) {

  (void)arg;
  chRegSetThreadName("blinker");
  palSetLineMode(LINE_ARD_D13, PAL_MODE_OUTPUT_PUSHPULL);
  while (true) {
    palSetLine(LINE_ARD_D13);
    chThdSleepMilliseconds(500);
    palClearLine(LINE_ARD_D13);
    chThdSleepMilliseconds(500);
  }
}

/*
 * Application entry point.
 */
int main(void) {

  /*
   * System initializations.
   * - HAL initialization, this also initializes the configured device drivers
   *   and performs the board-specific initializations.
   * - Kernel initialization, the main() function becomes a thread and the
   *   RTOS is active.
   */
  halInit();
  chSysInit();

  /*
   * Activates the serial driver 1 using the driver default configuration.
   */
  sdStart(&SD1, NULL);

  /*
   * Starting GPT4 driver, it is used for triggering the ADC.
   */
  gptStart(&GPTD4, &gpt4cfg1);

  /*
   * Fixed an errata on the STM32F7xx, the DAC clock is required for ADC
   * triggering.
   */
  rccEnableDAC1(false);

  /*
   * Activates the ADC1 driver and the temperature sensor.
   */
  adcStart(&ADCD1, NULL);
  adcSTM32EnableTSVREFE();

  /*
   * Starts an ADC continuous conversion triggered with a period of
   * 1/10000 second.
   */
  adcStartConversion(&ADCD1, &adcgrpcfg1, samples1, ADC_GRP1_BUF_DEPTH);
  gptStartContinuous(&GPTD4, 100);

  /*
   * Creates the example thread.
   */
  chThdCreateStatic(waThread1, sizeof(waThread1), NORMALPRIO, Thread1, NULL);

  /*
   * Normal main() thread activity, in this demo it does nothing.
   */
  while (true) {
    chThdSleepMilliseconds(500);
  }
}
an class="p">: if (USB_ControlRequest.bmRequestType == (REQDIR_DEVICETOHOST | REQTYPE_CLASS | REQREC_INTERFACE)) { USB_MouseReport_Data_t MouseReportData; /* Create the next mouse report for transmission to the host */ CreateMouseReport(&MouseReportData); Endpoint_ClearSETUP(); /* Write the report data to the control endpoint */ Endpoint_Write_Control_Stream_LE(&MouseReportData, sizeof(MouseReportData)); Endpoint_ClearOUT(); /* Clear the report data afterwards */ memset(&MouseReportData, 0, sizeof(MouseReportData)); } break; case HID_REQ_GetProtocol: if (USB_ControlRequest.bmRequestType == (REQDIR_DEVICETOHOST | REQTYPE_CLASS | REQREC_INTERFACE)) { Endpoint_ClearSETUP(); /* Write the current protocol flag to the host */ Endpoint_Write_8(UsingReportProtocol); Endpoint_ClearIN(); Endpoint_ClearStatusStage(); } break; case HID_REQ_SetProtocol: if (USB_ControlRequest.bmRequestType == (REQDIR_HOSTTODEVICE | REQTYPE_CLASS | REQREC_INTERFACE)) { Endpoint_ClearSETUP(); Endpoint_ClearStatusStage(); /* Set or clear the flag depending on what the host indicates that the current Protocol should be */ UsingReportProtocol = (USB_ControlRequest.wValue != 0); } break; case HID_REQ_SetIdle: if (USB_ControlRequest.bmRequestType == (REQDIR_HOSTTODEVICE | REQTYPE_CLASS | REQREC_INTERFACE)) { Endpoint_ClearSETUP(); Endpoint_ClearStatusStage(); /* Get idle period in MSB, must multiply by 4 to get the duration in milliseconds */ IdleCount = ((USB_ControlRequest.wValue & 0xFF00) >> 6); } break; case HID_REQ_GetIdle: if (USB_ControlRequest.bmRequestType == (REQDIR_DEVICETOHOST | REQTYPE_CLASS | REQREC_INTERFACE)) { Endpoint_ClearSETUP(); /* Write the current idle duration to the host, must be divided by 4 before sent to host */ Endpoint_Write_8(IdleCount >> 2); Endpoint_ClearIN(); Endpoint_ClearStatusStage(); } break; } } /** Event handler for the USB device Start Of Frame event. */ void EVENT_USB_Device_StartOfFrame(void) { /* One millisecond has elapsed, decrement the idle time remaining counter if it has not already elapsed */ if (IdleMSRemaining) IdleMSRemaining--; } /** Fills the given HID report data structure with the next HID report to send to the host. * * \param[out] ReportData Pointer to a HID report data structure to be filled */ void CreateMouseReport(USB_MouseReport_Data_t* const ReportData) { uint8_t JoyStatus_LCL = Joystick_GetStatus(); uint8_t ButtonStatus_LCL = Buttons_GetStatus(); /* Clear the report contents */ memset(ReportData, 0, sizeof(USB_MouseReport_Data_t)); if (JoyStatus_LCL & JOY_UP) ReportData->Y = -1; else if (JoyStatus_LCL & JOY_DOWN) ReportData->Y = 1; if (JoyStatus_LCL & JOY_LEFT) ReportData->X = -1; else if (JoyStatus_LCL & JOY_RIGHT) ReportData->X = 1; if (JoyStatus_LCL & JOY_PRESS) ReportData->Button |= (1 << 0); if (ButtonStatus_LCL & BUTTONS_BUTTON1) ReportData->Button |= (1 << 1); } /** Sends the next HID report to the host, via the keyboard data endpoint. */ void SendNextReport(void) { static USB_MouseReport_Data_t PrevMouseReportData; USB_MouseReport_Data_t MouseReportData; bool SendReport; /* Create the next mouse report for transmission to the host */ CreateMouseReport(&MouseReportData); /* Check to see if the report data has changed - if so a report MUST be sent */ SendReport = (memcmp(&PrevMouseReportData, &MouseReportData, sizeof(USB_MouseReport_Data_t)) != 0); /* Override the check if the Y or X values are non-zero - we want continuous movement while the joystick * is being held down (via continuous reports), otherwise the cursor will only move once per joystick toggle */ if ((MouseReportData.Y != 0) || (MouseReportData.X != 0)) SendReport = true; /* Check if the idle period is set and has elapsed */ if (IdleCount && (!(IdleMSRemaining))) { /* Reset the idle time remaining counter */ IdleMSRemaining = IdleCount; /* Idle period is set and has elapsed, must send a report to the host */ SendReport = true; } /* Select the Mouse Report Endpoint */ Endpoint_SelectEndpoint(MOUSE_EPADDR); /* Check if Mouse Endpoint Ready for Read/Write and if we should send a new report */ if (Endpoint_IsReadWriteAllowed() && SendReport) { /* Save the current report data for later comparison to check for changes */ PrevMouseReportData = MouseReportData; /* Write Mouse Report Data */ Endpoint_Write_Stream_LE(&MouseReportData, sizeof(MouseReportData), NULL); /* Finalize the stream transfer to send the last packet */ Endpoint_ClearIN(); } } /** Task to manage HID report generation and transmission to the host, when in report mode. */ void Mouse_Task(void) { /* Device must be connected and configured for the task to run */ if (USB_DeviceState != DEVICE_STATE_Configured) return; /* Send the next mouse report to the host */ SendNextReport(); }