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https://github.com/RT-Thread/rt-thread.git
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support GCC compiler for LM3S platform
git-svn-id: https://rt-thread.googlecode.com/svn/trunk@233 bbd45198-f89e-11dd-88c7-29a3b14d5316
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/*
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* File : context_gcc.S
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* This file is part of RT-Thread RTOS
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* COPYRIGHT (C) 2009, RT-Thread Development Team
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*
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* The license and distribution terms for this file may be
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* found in the file LICENSE in this distribution or at
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* http://www.rt-thread.org/license/LICENSE
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*
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* Change Logs:
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* Date Author Notes
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* 2009-10-11 Bernard first version
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*/
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/**
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* @addtogroup STM32
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*/
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/*@{*/
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.cpu cortex-m3
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.fpu softvfp
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.syntax unified
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.thumb
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.text
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.equ NVIC_INT_CTRL, 0xE000ED04 /* interrupt control state register */
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.equ NVIC_SYSPRI2, 0xE000ED20 /* system priority register (2) */
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.equ NVIC_PENDSV_PRI, 0x00FF0000 /* PendSV priority value (lowest) */
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.equ NVIC_PENDSVSET, 0x10000000 /* value to trigger PendSV exception */
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/*
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* rt_base_t rt_hw_interrupt_disable();
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*/
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.global rt_hw_interrupt_disable
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.type rt_hw_interrupt_disable, %function
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rt_hw_interrupt_disable:
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MRS r0, PRIMASK
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CPSID I
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BX LR
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/*
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* void rt_hw_interrupt_enable(rt_base_t level);
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*/
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.global rt_hw_interrupt_enable
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.type rt_hw_interrupt_enable, %function
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rt_hw_interrupt_enable:
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MSR PRIMASK, r0
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BX LR
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/*
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* void rt_hw_context_switch(rt_uint32 from, rt_uint32 to);
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* r0 --> from
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* r1 --> to
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*/
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.global rt_hw_context_switch_interrupt
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.type rt_hw_context_switch_interrupt, %function
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.global rt_hw_context_switch
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.type rt_hw_context_switch, %function
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rt_hw_context_switch_interrupt:
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rt_hw_context_switch:
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/* set rt_thread_switch_interrput_flag to 1 */
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LDR r2, =rt_thread_switch_interrput_flag
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LDR r3, [r2]
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CMP r3, #1
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BEQ _reswitch
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MOV r3, #1
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STR r3, [r2]
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LDR r2, =rt_interrupt_from_thread /* set rt_interrupt_from_thread */
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STR r0, [r2]
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_reswitch:
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LDR r2, =rt_interrupt_to_thread /* set rt_interrupt_to_thread */
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STR r1, [r2]
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LDR r0, =NVIC_INT_CTRL /* trigger the PendSV exception (causes context switch) */
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LDR r1, =NVIC_PENDSVSET
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STR r1, [r0]
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BX LR
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/* r0 --> swith from thread stack
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* r1 --> swith to thread stack
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* psr, pc, lr, r12, r3, r2, r1, r0 are pushed into [from] stack
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*/
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.global rt_hw_pend_sv
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.type rt_hw_pend_sv, %function
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rt_hw_pend_sv:
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/* disable interrupt to protect context switch */
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MRS r2, PRIMASK
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CPSID I
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/* get rt_thread_switch_interrupt_flag */
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LDR r0, =rt_thread_switch_interrput_flag
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LDR r1, [r0]
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CBZ r1, pendsv_exit /* pendsv already handled */
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/* clear rt_thread_switch_interrput_flag to 0 */
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MOV r1, #0x00
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STR r1, [r0]
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LDR r0, =rt_interrupt_from_thread
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LDR r1, [r0]
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CBZ r1, swtich_to_thread /* skip register save at the first time */
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MRS r1, psp /* get from thread stack pointer */
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STMFD r1!, {r4 - r11} /* push r4 - r11 register */
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LDR r0, [r0]
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STR r1, [r0] /* update from thread stack pointer */
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swtich_to_thread:
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LDR r1, =rt_interrupt_to_thread
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LDR r1, [r1]
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LDR r1, [r1] /* load thread stack pointer */
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LDMFD r1!, {r4 - r11} /* pop r4 - r11 register */
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MSR psp, r1 /* update stack pointer */
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pendsv_exit:
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/* restore interrupt */
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MSR PRIMASK, r2
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ORR lr, lr, #0x04
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BX lr
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/*
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* void rt_hw_context_switch_to(rt_uint32 to);
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* r0 --> to
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*/
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.global rt_hw_context_switch_to
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.type rt_hw_context_switch_to, %function
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rt_hw_context_switch_to:
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LDR r1, =rt_interrupt_to_thread
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STR r0, [r1]
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/* set from thread to 0 */
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LDR r1, =rt_interrupt_from_thread
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MOV r0, #0x0
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STR r0, [r1]
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/* set interrupt flag to 1 */
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LDR r1, =rt_thread_switch_interrput_flag
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MOV r0, #1
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STR r0, [r1]
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/* set the PendSV exception priority */
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LDR r0, =NVIC_SYSPRI2
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LDR r1, =NVIC_PENDSV_PRI
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STR r1, [r0]
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LDR r0, =NVIC_INT_CTRL /* trigger the PendSV exception (causes context switch) */
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LDR r1, =NVIC_PENDSVSET
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STR r1, [r0]
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CPSIE I /* enable interrupts at processor level */
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/* never reach here! */
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/* compatible with old version */
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.global rt_hw_interrupt_thread_switch
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.type rt_hw_interrupt_thread_switch, %function
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rt_hw_interrupt_thread_switch:
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BX lr
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NOP
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@@ -0,0 +1,242 @@
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//*****************************************************************************
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//
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// startup.c - Boot code for Stellaris.
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//
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// Copyright (c) 2005-2008 Luminary Micro, Inc. All rights reserved.
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//
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// Software License Agreement
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//
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// Luminary Micro, Inc. (LMI) is supplying this software for use solely and
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// exclusively on LMI's microcontroller products.
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//
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// The software is owned by LMI and/or its suppliers, and is protected under
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// applicable copyright laws. All rights are reserved. You may not combine
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// this software with "viral" open-source software in order to form a larger
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// program. Any use in violation of the foregoing restrictions may subject
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// the user to criminal sanctions under applicable laws, as well as to civil
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// liability for the breach of the terms and conditions of this license.
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//
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// THIS SOFTWARE IS PROVIDED "AS IS". NO WARRANTIES, WHETHER EXPRESS, IMPLIED
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// OR STATUTORY, INCLUDING, BUT NOT LIMITED TO, IMPLIED WARRANTIES OF
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// MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE APPLY TO THIS SOFTWARE.
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// LMI SHALL NOT, IN ANY CIRCUMSTANCES, BE LIABLE FOR SPECIAL, INCIDENTAL, OR
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// CONSEQUENTIAL DAMAGES, FOR ANY REASON WHATSOEVER.
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//
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// This is part of revision 2752 of the Stellaris Peripheral Driver Library.
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//
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//*****************************************************************************
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//*****************************************************************************
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//
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// Forward declaration of the default fault handlers.
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//
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//*****************************************************************************
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void ResetISR(void);
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static void NmiSR(void);
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static void FaultISR(void);
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static void IntDefaultHandler(void);
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//*****************************************************************************
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//
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// The entry point for the application.
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//
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//*****************************************************************************
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extern int main(void);
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//*****************************************************************************
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//
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// Reserve space for the system stack.
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//
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//*****************************************************************************
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#ifndef STACK_SIZE
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#define STACK_SIZE 64
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#endif
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static unsigned long pulStack[STACK_SIZE];
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//*****************************************************************************
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//
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// The minimal vector table for a Cortex M3. Note that the proper constructs
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// must be placed on this to ensure that it ends up at physical address
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// 0x0000.0000.
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//
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//*****************************************************************************
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__attribute__ ((section(".isr_vector")))
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void (* const g_pfnVectors[])(void) =
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{
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(void (*)(void))((unsigned long)pulStack + sizeof(pulStack)),
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// The initial stack pointer
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ResetISR, // The reset handler
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NmiSR, // The NMI handler
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FaultISR, // The hard fault handler
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IntDefaultHandler, // The MPU fault handler
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IntDefaultHandler, // The bus fault handler
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IntDefaultHandler, // The usage fault handler
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0, // Reserved
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0, // Reserved
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0, // Reserved
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0, // Reserved
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IntDefaultHandler, // SVCall handler
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IntDefaultHandler, // Debug monitor handler
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0, // Reserved
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IntDefaultHandler, // The PendSV handler
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IntDefaultHandler, // The SysTick handler
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IntDefaultHandler, // GPIO Port A
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IntDefaultHandler, // GPIO Port B
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IntDefaultHandler, // GPIO Port C
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IntDefaultHandler, // GPIO Port D
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IntDefaultHandler, // GPIO Port E
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IntDefaultHandler, // UART0 Rx and Tx
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IntDefaultHandler, // UART1 Rx and Tx
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IntDefaultHandler, // SSI Rx and Tx
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IntDefaultHandler, // I2C Master and Slave
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IntDefaultHandler, // PWM Fault
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IntDefaultHandler, // PWM Generator 0
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IntDefaultHandler, // PWM Generator 1
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IntDefaultHandler, // PWM Generator 2
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IntDefaultHandler, // Quadrature Encoder
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IntDefaultHandler, // ADC Sequence 0
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IntDefaultHandler, // ADC Sequence 1
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IntDefaultHandler, // ADC Sequence 2
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IntDefaultHandler, // ADC Sequence 3
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IntDefaultHandler, // Watchdog timer
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IntDefaultHandler, // Timer 0 subtimer A
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IntDefaultHandler, // Timer 0 subtimer B
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IntDefaultHandler, // Timer 1 subtimer A
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IntDefaultHandler, // Timer 1 subtimer B
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IntDefaultHandler, // Timer 2 subtimer A
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IntDefaultHandler, // Timer 2 subtimer B
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IntDefaultHandler, // Analog Comparator 0
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IntDefaultHandler, // Analog Comparator 1
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IntDefaultHandler, // Analog Comparator 2
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IntDefaultHandler, // System Control (PLL, OSC, BO)
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IntDefaultHandler, // FLASH Control
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IntDefaultHandler, // GPIO Port F
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IntDefaultHandler, // GPIO Port G
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IntDefaultHandler, // GPIO Port H
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IntDefaultHandler, // UART2 Rx and Tx
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IntDefaultHandler, // SSI1 Rx and Tx
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IntDefaultHandler, // Timer 3 subtimer A
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IntDefaultHandler, // Timer 3 subtimer B
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IntDefaultHandler, // I2C1 Master and Slave
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IntDefaultHandler, // Quadrature Encoder 1
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IntDefaultHandler, // CAN0
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IntDefaultHandler, // CAN1
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IntDefaultHandler, // CAN2
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IntDefaultHandler, // Ethernet
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IntDefaultHandler, // Hibernate
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IntDefaultHandler, // USB0
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IntDefaultHandler, // PWM Generator 3
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IntDefaultHandler, // uDMA Software Transfer
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IntDefaultHandler // uDMA Error
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};
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//*****************************************************************************
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//
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// The following are constructs created by the linker, indicating where the
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// the "data" and "bss" segments reside in memory. The initializers for the
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// for the "data" segment resides immediately following the "text" segment.
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//
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//*****************************************************************************
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extern unsigned long _etext;
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extern unsigned long _sdata;
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extern unsigned long _edata;
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extern unsigned long _sbss;
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extern unsigned long _ebss;
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//*****************************************************************************
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//
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// This is the code that gets called when the processor first starts execution
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// following a reset event. Only the absolutely necessary set is performed,
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// after which the application supplied main() routine is called. Any fancy
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// actions (such as making decisions based on the reset cause register, and
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// resetting the bits in that register) are left solely in the hands of the
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// application.
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//
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//*****************************************************************************
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void
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ResetISR(void)
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{
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unsigned long *pulSrc, *pulDest;
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//
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// Copy the data segment initializers from flash to SRAM.
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//
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pulSrc = &_etext;
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for(pulDest = &_sdata; pulDest < &_edata; )
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{
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*pulDest++ = *pulSrc++;
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}
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//
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// Zero fill the bss segment. This is done with inline assembly since this
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// will clear the value of pulDest if it is not kept in a register.
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//
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__asm(" ldr r0, =_sbss\n"
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" ldr r1, =_ebss\n"
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" mov r2, #0\n"
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" .thumb_func\n"
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"zero_loop:\n"
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" cmp r0, r1\n"
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" it lt\n"
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" strlt r2, [r0], #4\n"
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" blt zero_loop");
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//
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// Call the application's entry point.
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//
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main();
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}
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//*****************************************************************************
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//
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// This is the code that gets called when the processor receives a NMI. This
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// simply enters an infinite loop, preserving the system state for examination
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// by a debugger.
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//
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//*****************************************************************************
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static void
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NmiSR(void)
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{
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//
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// Enter an infinite loop.
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//
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while(1)
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{
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}
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}
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//*****************************************************************************
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//
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// This is the code that gets called when the processor receives a fault
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// interrupt. This simply enters an infinite loop, preserving the system state
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// for examination by a debugger.
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//
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//*****************************************************************************
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static void
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FaultISR(void)
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{
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//
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// Enter an infinite loop.
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//
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while(1)
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{
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}
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}
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//*****************************************************************************
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//
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// This is the code that gets called when the processor receives an unexpected
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// interrupt. This simply enters an infinite loop, preserving the system state
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// for examination by a debugger.
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//
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//*****************************************************************************
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static void
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IntDefaultHandler(void)
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{
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//
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// Go into an infinite loop.
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//
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while(1)
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{
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}
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}
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