178 lines
		
	
	
		
			4.6 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
			
		
		
	
	
			178 lines
		
	
	
		
			4.6 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
#include "TM4C123.h"
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#include "bsp/board_api.h"
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#include "board.h"
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//--------------------------------------------------------------------+
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// Forward USB interrupt events to TinyUSB IRQ Handler
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//--------------------------------------------------------------------+
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void USB0_Handler(void)
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{
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#if CFG_TUH_ENABLED
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  tuh_int_handler(0, true);
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#endif
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#if CFG_TUD_ENABLED
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  tud_int_handler(0);
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#endif
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}
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//--------------------------------------------------------------------+
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// MACRO TYPEDEF CONSTANT ENUM
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//--------------------------------------------------------------------+
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static void board_uart_init (void)
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{
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  SYSCTL->RCGCUART |= (1 << 0);                // Enable the clock to UART0
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  SYSCTL->RCGCGPIO |= (1 << 0);                // Enable the clock to GPIOA
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  GPIOA->AFSEL |= (1 << 1) | (1 << 0);         // Enable the alternate function on pin PA0 & PA1
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  GPIOA->PCTL |= (1 << 0) | (1 << 4);          // Configure the GPIOPCTL register to select UART0 in PA0 and PA1
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  GPIOA->DEN |= (1 << 0) | (1 << 1);           // Enable the digital functionality in PA0 and PA1
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  // BAUDRATE = 115200, with SystemCoreClock = 50 Mhz refer manual for calculation
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  //  - BRDI = SystemCoreClock / (16* baud)
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  //  - BRDF = int(fraction*64 + 0.5)
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  UART0->CTL &= ~(1 << 0);                     // Disable UART0 by clearing UARTEN bit in the UARTCTL register
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  UART0->IBRD = 27;                            // Write the integer portion of the BRD to the UARTIRD register
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  UART0->FBRD = 8;                             // Write the fractional portion of the BRD to the UARTFBRD registerer
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  UART0->LCRH = (0x3 << 5);                    // 8-bit, no parity, 1 stop bit
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  UART0->CC = 0x0;                             // Configure the UART clock source as system clock
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  UART0->CTL = (1 << 0) | (1 << 8) | (1 << 9); // UART0 Enable, Transmit Enable, Receive Enable
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}
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static void initialize_board_led (GPIOA_Type *port, uint8_t PinMsk, uint8_t dirmsk)
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{
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  /* Enable PortF Clock */
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  SYSCTL->RCGCGPIO |= (1 << 5);
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  /* Let the clock stabilize */
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  while ( !((SYSCTL->PRGPIO) & (1 << 5)) ) {}
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  /* Port Digital Enable */
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  port->DEN |= PinMsk;
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  /* Set direction */
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  port->DIR = dirmsk;
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}
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static void board_switch_init (void)
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{
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  GPIOF->DIR &= ~(1 << BOARD_BTN);
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  GPIOF->PUR |= (1 << BOARD_BTN);
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  GPIOF->DEN |= (1 << BOARD_BTN);
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}
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static void WriteGPIOPin (GPIOA_Type *port, uint8_t PinMsk, bool state)
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{
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  if ( state )
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  {
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    port->DATA |= PinMsk;
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  }
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  else
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  {
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    port->DATA &= ~(PinMsk);
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  }
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}
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static uint32_t ReadGPIOPin (GPIOA_Type *port, uint8_t pinMsk)
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{
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  return (port->DATA & pinMsk);
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}
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void board_init (void)
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{
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  SystemCoreClockUpdate();
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#if CFG_TUSB_OS == OPT_OS_NONE
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  // 1ms tick timer
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  SysTick_Config(SystemCoreClock / 1000);
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#elif CFG_TUSB_OS == OPT_OS_FREERTOS
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    // If freeRTOS is used, IRQ priority is limit by max syscall ( smaller is higher )
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    NVIC_SetPriority(USB0_IRQn, configLIBRARY_MAX_SYSCALL_INTERRUPT_PRIORITY );
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#endif
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  /* Reset USB */
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  SYSCTL->SRCR2 |= (1u << 16);
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  for ( volatile uint8_t i = 0; i < 20; i++ ) {}
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  SYSCTL->SRCR2 &= ~(1u << 16);
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  /* Open the USB clock gate */
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  SYSCTL->RCGCUSB |= (1 << 0);
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  /* Power-up USB PLL */
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  SYSCTL->RCC2 &= ~(1u << 14);
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  /* USB IO Initialization */
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  SYSCTL->RCGCGPIO |= (1u << 3);
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  /* Let the clock stabilize */
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  while ( !(SYSCTL->PRGPIO & (1u << 3)) ) {}
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  /* USB IOs to Analog Mode */
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  GPIOD->AFSEL &= ~((1u << 4) | (1u << 5));
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  GPIOD->DEN &= ~((1u << 4) | (1u << 5));
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  GPIOD->AMSEL |= ((1u << 4) | (1u << 5));
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  uint8_t leds = (1 << LED_PIN_RED) | (1 << LED_PIN_BLUE) | (1 << LED_PIN_GREEN);
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  uint8_t dirmsk = (1 << LED_PIN_RED) | (1 << LED_PIN_BLUE) | (1 << LED_PIN_GREEN);
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  /* Configure GPIO for board LED */
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  initialize_board_led(LED_PORT, leds, dirmsk);
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  /* Configure GPIO for board switch */
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  board_switch_init();
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  /* Initialize board UART */
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  board_uart_init();
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  TU_LOG1_INT(SystemCoreClock);
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}
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void board_led_write (bool state)
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{
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  WriteGPIOPin(LED_PORT, (1 << LED_PIN_BLUE), state);
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}
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uint32_t board_button_read (void)
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{
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  uint32_t gpio_value = ReadGPIOPin(BOARD_BTN_PORT, BOARD_BTN_Msk);
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  return BUTTON_STATE_ACTIVE ? gpio_value : !gpio_value;
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}
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int board_uart_write (void const *buf, int len)
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{
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  uint8_t const * data = buf;
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  for ( int i = 0; i < len; i++ )
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  {
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    while ( (UART0->FR & (1 << 5)) != 0 ) {} // Poll until previous data was shofted out
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    UART0->DR = data[i];                     // Write UART0 DATA REGISTER
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  }
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  return len;
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}
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int board_uart_read (uint8_t *buf, int len)
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{
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  (void) buf;
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  (void) len;
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  return 0;
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}
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#if CFG_TUSB_OS == OPT_OS_NONE
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volatile uint32_t system_ticks = 0;
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void SysTick_Handler (void)
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{
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  system_ticks++;
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}
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uint32_t board_millis (void)
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{
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  return system_ticks;
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}
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#endif
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