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							158 lines
						
					
					
						
							5.0 KiB
						
					
					
				
			
		
		
	
	
							158 lines
						
					
					
						
							5.0 KiB
						
					
					
				/*
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             LUFA Library
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     Copyright (C) Dean Camera, 2010.
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  dean [at] fourwalledcubicle [dot] com
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      www.fourwalledcubicle.com
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*/
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/*
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  Copyright 2010  Dean Camera (dean [at] fourwalledcubicle [dot] com)
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  Permission to use, copy, modify, distribute, and sell this 
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  software and its documentation for any purpose is hereby granted
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  without fee, provided that the above copyright notice appear in 
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  all copies and that both that the copyright notice and this
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  permission notice and warranty disclaimer appear in supporting 
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  documentation, and that the name of the author not be used in 
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  advertising or publicity pertaining to distribution of the 
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  software without specific, written prior permission.
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  The author disclaim all warranties with regard to this
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  software, including all implied warranties of merchantability
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  and fitness.  In no event shall the author be liable for any
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  special, indirect or consequential damages or any damages
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  whatsoever resulting from loss of use, data or profits, whether
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  in an action of contract, negligence or other tortious action,
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  arising out of or in connection with the use or performance of
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  this software.
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*/
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/** \file
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 *
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 *  Main source file for the TeensyHID bootloader. This file contains the complete bootloader logic.
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 */
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#include "TeensyHID.h"
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/** Flag to indicate if the bootloader should be running, or should exit and allow the application code to run
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 *  via a soft reset. When cleared, the bootloader will abort, the USB interface will shut down and the application
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 *  started via a forced watchdog reset.
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 */
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bool RunBootloader = true;
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/** Main program entry point. This routine configures the hardware required by the bootloader, then continuously 
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 *  runs the bootloader processing routine until instructed to soft-exit.
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 */
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int main(void)
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{
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	/* Setup hardware required for the bootloader */
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	SetupHardware();
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	/* Enable global interrupts so that the USB stack can function */
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	sei();
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	while (RunBootloader)
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	  USB_USBTask();
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	/* Disconnect from the host - USB interface will be reset later along with the AVR */
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	USB_Detach();
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	/* Enable the watchdog and force a timeout to reset the AVR */
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	wdt_enable(WDTO_250MS);
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	for (;;);
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}
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/** Configures all hardware required for the bootloader. */
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void SetupHardware(void)
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{
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	/* Disable watchdog if enabled by bootloader/fuses */
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	MCUSR &= ~(1 << WDRF);
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	wdt_disable();
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	/* Relocate the interrupt vector table to the bootloader section */
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	MCUCR = (1 << IVCE);
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	MCUCR = (1 << IVSEL);
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	/* Initialize USB subsystem */
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	USB_Init();
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}
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/** Event handler for the USB_ConfigurationChanged event. This configures the device's endpoints ready
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 *  to relay data to and from the attached USB host.
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 */
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void EVENT_USB_Device_ConfigurationChanged(void)
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{
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	/* Setup HID Report Endpoint */
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	Endpoint_ConfigureEndpoint(HID_EPNUM, EP_TYPE_INTERRUPT,
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		                       ENDPOINT_DIR_IN, HID_EPSIZE,
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	                           ENDPOINT_BANK_SINGLE);
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}
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/** Event handler for the USB_UnhandledControlRequest event. This is used to catch standard and class specific
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 *  control requests that are not handled internally by the USB library (including the HID commands, which are
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 *  all issued via the control endpoint), so that they can be handled appropriately for the application.
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 */
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void EVENT_USB_Device_UnhandledControlRequest(void)
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{
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	/* Handle HID Class specific requests */
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	switch (USB_ControlRequest.bRequest)
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	{
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		case REQ_SetReport:
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			Endpoint_ClearSETUP();
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			/* Wait until the command has been sent by the host */
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			while (!(Endpoint_IsOUTReceived()));
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			/* Read in the write destination index */
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			uint16_t PageIndex = Endpoint_Read_Word_LE();
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			/* Check if the command is a program page command, or a start application command */
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			if (PageIndex == TEENSY_STARTAPPLICATION)
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			{
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				RunBootloader = false;
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			}
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			else
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			{
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				#if (SPM_PAGESIZE == 128)
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				uint16_t PageByteAddress = PageIndex;
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				#else
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				uint32_t PageByteAddress = ((uint32_t)PageIndex << 8);
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				#endif
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				/* Erase the given FLASH page, ready to be programmed */
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				boot_page_erase(PageByteAddress);
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				boot_spm_busy_wait();
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				/* Write each of the FLASH page's bytes in sequence */
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				#if (SPM_PAGESIZE == 128)
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				for (uint8_t PageByte = 0; PageByte < SPM_PAGESIZE; PageByte += 2)				
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				#else
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				for (uint16_t PageByte = 0; PageByte < SPM_PAGESIZE; PageByte += 2)				
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				#endif
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				{
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					/* Check if endpoint is empty - if so clear it and wait until ready for next packet */
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					if (!(Endpoint_BytesInEndpoint()))
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					{
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						Endpoint_ClearOUT();
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						while (!(Endpoint_IsOUTReceived()));
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					}
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					/* Write the next data word to the FLASH page */
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					boot_page_fill(PageByteAddress + PageByte, Endpoint_Read_Word_LE());
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				}
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				/* Write the filled FLASH page to memory */
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				boot_page_write(PageByteAddress);
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				boot_spm_busy_wait();
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			}
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			Endpoint_ClearOUT();
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			Endpoint_ClearStatusStage();
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			break;
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	}
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}
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