mirror of
https://github.com/FreeRTOS/FreeRTOS-Kernel.git
synced 2025-09-12 00:57:44 -04:00
Initial mirror based on xmos/FreeRTOS feature/upstream-support branch
This commit is contained in:
parent
6199b72fbf
commit
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7 changed files with 602 additions and 0 deletions
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@ -654,6 +654,7 @@ const List_t *pxTasksWaitingForBits = &( pxEventBits->xTasksWaitingForBits );
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/* For internal use only - execute a 'set bits' command that was pended from
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an interrupt. */
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portTIMER_CALLBACK_ATTRIBUTE
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void vEventGroupSetBitsCallback( void *pvEventGroup, const uint32_t ulBitsToSet )
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{
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( void ) xEventGroupSetBits( pvEventGroup, ( EventBits_t ) ulBitsToSet ); /*lint !e9079 Can't avoid cast to void* as a generic timer callback prototype. Callback casts back to original type so safe. */
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@ -662,6 +663,7 @@ void vEventGroupSetBitsCallback( void *pvEventGroup, const uint32_t ulBitsToSet
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/* For internal use only - execute a 'clear bits' command that was pended from
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an interrupt. */
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portTIMER_CALLBACK_ATTRIBUTE
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void vEventGroupClearBitsCallback( void *pvEventGroup, const uint32_t ulBitsToClear )
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{
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( void ) xEventGroupClearBits( pvEventGroup, ( EventBits_t ) ulBitsToClear ); /*lint !e9079 Can't avoid cast to void* as a generic timer callback prototype. Callback casts back to original type so safe. */
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@ -276,6 +276,10 @@ hold explicit before calling the code. */
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#error If configUSE_TIMERS is set to 1 then configTIMER_TASK_STACK_DEPTH must also be defined.
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#endif /* configTIMER_TASK_STACK_DEPTH */
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#ifndef portTIMER_CALLBACK_ATTRIBUTE
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#define portTIMER_CALLBACK_ATTRIBUTE
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#endif /* portTIMER_CALLBACK_ATTRIBUTE */
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#endif /* configUSE_TIMERS */
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#ifndef portSET_INTERRUPT_MASK_FROM_ISR
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187
portable/ThirdParty/XMOS/XCORE200/port.c
vendored
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187
portable/ThirdParty/XMOS/XCORE200/port.c
vendored
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@ -0,0 +1,187 @@
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// Copyright (c) 2019, XMOS Ltd, All rights reserved
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/* Scheduler includes. */
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#include "FreeRTOS.h"
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#include "task.h"
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#include <xs1.h>
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static hwtimer_t xKernelTimer;
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uint32_t ulPortYieldRequired = pdFALSE;
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/*-----------------------------------------------------------*/
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/***** TODO: These should be added to lib_xcore_c *****/
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static void _hwtimer_get_trigger_time( hwtimer_t t, uint32_t *time )
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{
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asm volatile("getd %0, res[%1]" : "=r" (*time): "r" (t));
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}
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static xcore_c_error_t hwtimer_get_trigger_time( hwtimer_t t, uint32_t *time )
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{
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RETURN_EXCEPTION_OR_ERROR( _hwtimer_get_trigger_time( t, time ) );
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}
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/******************************************************/
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DEFINE_RTOS_INTERRUPT_CALLBACK( pxKernelTimerISR, pvData )
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{
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uint32_t ulLastTrigger;
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uint32_t ulNow;
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/* Need the next interrupt to be scheduled relative to
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* the current trigger time, rather than the current
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* time. */
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hwtimer_get_trigger_time( xKernelTimer, &ulLastTrigger );
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/* Check to see if the ISR is late. If it is, we don't
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* want to schedule the next interrupt to be in the past. */
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hwtimer_get_time( xKernelTimer, &ulNow );
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if( ulNow - ulLastTrigger >= configCPU_CLOCK_HZ / configTICK_RATE_HZ )
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{
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ulLastTrigger = ulNow;
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}
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ulLastTrigger += configCPU_CLOCK_HZ / configTICK_RATE_HZ;
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hwtimer_change_trigger_time( xKernelTimer, ulLastTrigger );
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#if configUPDATE_RTOS_TIME_FROM_TICK_ISR == 1
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rtos_time_increment( RTOS_TICK_PERIOD( configTICK_RATE_HZ ) );
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#endif
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if( xTaskIncrementTick() != pdFALSE )
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{
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ulPortYieldRequired = pdTRUE;
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}
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}
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/*-----------------------------------------------------------*/
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static void prvCoreInit( void )
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{
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rtos_core_register();
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asm volatile (
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"ldap r11, kexcept\n\t"
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"set kep, r11\n\t"
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:
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:
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: "r11"
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);
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rtos_irq_enable( 1 );
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uint32_t ulNow;
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hwtimer_get_time( xKernelTimer, &ulNow );
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// debug_printf( "The time is now (%u)\n", ulNow );
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ulNow += configCPU_CLOCK_HZ / configTICK_RATE_HZ;
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hwtimer_setup_interrupt_callback( xKernelTimer, ulNow, NULL, RTOS_INTERRUPT_CALLBACK( pxKernelTimerISR ) );
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hwtimer_enable_trigger( xKernelTimer );
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}
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/*-----------------------------------------------------------*/
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DEFINE_RTOS_KERNEL_ENTRY( void, vPortStartSchedulerOnCore, void )
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{
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prvCoreInit();
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debug_printf( "FreeRTOS initialized\n" );
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/*
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* Restore the context of the first thread
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* to run and jump into it.
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*/
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asm volatile (
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"bu _freertos_restore_ctx\n\t"
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: /* no outputs */
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: /* no inputs */
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: /* nothing is clobbered */
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);
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}
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/*-----------------------------------------------------------*/
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/*-----------------------------------------------------------*/
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/* Public functions required by all ports below: */
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/*-----------------------------------------------------------*/
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/*
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* See header file for description.
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*/
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StackType_t *pxPortInitialiseStack( StackType_t *pxTopOfStack, TaskFunction_t pxCode, void *pvParameters )
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{
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//debug_printf( "Top of stack was %p for task %p\n", pxTopOfStack, pxCode );
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/*
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* Grow the thread's stack by portTHREAD_CONTEXT_STACK_GROWTH
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* so we can push the context onto it.
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*/
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pxTopOfStack -= portTHREAD_CONTEXT_STACK_GROWTH;
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uint32_t dp;
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uint32_t cp;
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/*
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* We need to get the current CP and DP pointers.
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*/
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asm volatile (
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"ldaw r11, cp[0]\n\t" /* get CP into R11 */
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"mov %0, r11\n\t" /* get R11 (CP) into cp */
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"ldaw r11, dp[0]\n\t" /* get DP into R11 */
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"mov %1, r11\n\t" /* get R11 (DP) into dp */
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: "=r"(cp), "=r"(dp) /* output 0 is cp, output 1 is dp */
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: /* there are no inputs */
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: "r11" /* R11 gets clobbered */
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);
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/*
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* Push the thread context onto the stack.
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* Saved PC will point to the new thread's
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* entry pointer.
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* Interrupts will default to enabled.
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* KEDI is also set to enable dual issue mode
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* upon kernel entry.
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*/
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pxTopOfStack[ 1 ] = ( StackType_t ) pxCode; /* SP[1] := SPC */
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pxTopOfStack[ 2 ] = (1<<9) | XS1_SR_IEBLE_MASK; /* SP[2] := SSR */
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pxTopOfStack[ 3 ] = 0x00000000; /* SP[3] := SED */
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pxTopOfStack[ 4 ] = 0x00000000; /* SP[4] := ET */
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pxTopOfStack[ 5 ] = dp; /* SP[5] := DP */
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pxTopOfStack[ 6 ] = cp; /* SP[6] := CP */
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pxTopOfStack[ 7 ] = 0x00000000; /* SP[7] := LR */
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pxTopOfStack[ 8 ] = ( StackType_t ) pvParameters; /* SP[8] := R0 */
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pxTopOfStack[ 9 ] = 0x01010101; /* SP[9] := R1 */
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pxTopOfStack[ 10 ] = 0x02020202; /* SP[10] := R2 */
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pxTopOfStack[ 11 ] = 0x03030303; /* SP[11] := R3 */
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pxTopOfStack[ 12 ] = 0x04040404; /* SP[12] := R4 */
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pxTopOfStack[ 13 ] = 0x05050505; /* SP[13] := R5 */
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pxTopOfStack[ 14 ] = 0x06060606; /* SP[14] := R6 */
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pxTopOfStack[ 15 ] = 0x07070707; /* SP[15] := R7 */
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pxTopOfStack[ 16 ] = 0x08080808; /* SP[16] := R8 */
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pxTopOfStack[ 17 ] = 0x09090909; /* SP[17] := R9 */
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pxTopOfStack[ 18 ] = 0x10101010; /* SP[18] := R10 */
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pxTopOfStack[ 19 ] = 0x11111111; /* SP[19] := R11 */
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//debug_printf( "Top of stack is now %p for task %p\n", pxTopOfStack, pxCode );
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/*
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* Returns the new top of the stack
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*/
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return pxTopOfStack;
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}
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/*-----------------------------------------------------------*/
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/*
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* See header file for description.
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*/
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BaseType_t xPortStartScheduler( void )
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{
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rtos_locks_initialize();
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hwtimer_alloc( &xKernelTimer );
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RTOS_KERNEL_ENTRY(vPortStartSchedulerOnCore)();
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return pdPASS;
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}
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/*-----------------------------------------------------------*/
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void vPortEndScheduler( void )
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{
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/* Do not implement. */
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}
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/*-----------------------------------------------------------*/
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150
portable/ThirdParty/XMOS/XCORE200/portasm.S
vendored
Normal file
150
portable/ThirdParty/XMOS/XCORE200/portasm.S
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@ -0,0 +1,150 @@
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// Copyright (c) 2020, XMOS Ltd, All rights reserved
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#include "rtos_support_rtos_config.h"
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/* The FreeRTOS interrupt code calls vTaskSwitchContext.
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Therfore it must be added to the rtos_isr group with the
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rest of the ISR callback functions. */
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.weak _fptrgroup.rtos_isr.nstackwords.group
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.add_to_set _fptrgroup.rtos_isr.nstackwords.group, vTaskSwitchContext.nstackwords, vTaskSwitchContext
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.globl kexcept
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.align 128 /* align the kernel section to 128 bytes */
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.type kexcept,@function
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.issue_mode dual
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.cc_top kexcept.function, kexcept
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kexcept:
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ldc r11, 0x0004
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shl r11, r11, 16
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ldc r9, 0x0080
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or r11, r11, r9
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bau r11 //_TrapHandler is at 0x00040080. TODO: Is it always? Why can't I access the symbol _TrapHandler?
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_yield:
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set sp, r4 /* Restore the task's SP to save the rest of its context. */
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bu _yield_continue /* Skip the ulPortYieldRequired check and jump right to */
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/* the context save and switch. Also skips saving SPC */
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/* since the kcall handler has already saved it. */
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.align 64
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kcall:
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/* start saving the thread's context */
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extsp RTOS_SUPPORT_INTERRUPT_STACK_GROWTH
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stw r1, sp[9]
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stw r11, sp[19]
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/* kcall sets SPC to the instruction of the kcall rather than the next instruction */
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/* so we need to adjust the SPC value that we save to the stack: */
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stw spc, sp[1] /* save the saved program counter onto the stack... */
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ldw r1, sp[1] /* so that we can load it into r1 (which we have already saved). */
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add r1, r1, 4 /* Add 4 to the spc to make it point to the instruction after the kcall. */
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{stw r1, sp[1] /* Now save it to the stack. */
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/* kcall uses the same common function as interrupt callbacks. */
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/* tell it to call _yield above. */
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ldap r11, _yield}
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mov r1, r11
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/* fall into rtos_interrupt_callback_common */
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.globl rtos_interrupt_callback_common
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rtos_interrupt_callback_common:
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/* This is the body of the RTOS _xcore_c_interrupt_callback_XXX functions. */
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/* r1 = interrupt_callback_t function */
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/* Save the thread's context onto the thread's stack. */
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/* The stack was extended for this by the wrapper function. */
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/* Begin only by saving some registers. The rest will be saved */
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/* later if vTaskSwitchContext() needs to be called. */
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/* LR needs to be saved because it is clobbered when calling the callback. */
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/* r0-r3, and r11 need to be saved because the callback may clobber them. */
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/* r4 is saved because it is used here to hold the task SP. */
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stw lr, sp[7]
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stw r0, sp[8]
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/*stw r1, sp[9] already saved by the wrapper function. */
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stw r2, sp[10]
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stw r3, sp[11]
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{stw r4, sp[12]
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/*stw r11, sp[19] already saved by the wrapper function. */
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ldaw r4, sp[0]} /* Get value of current stackpointer into r4 */
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{kentsp 0 /* switch to the kernel stack. */
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/* The value 0 is safe to use since we don't need the SP */
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/* that it saves to KSP[0]. We already have it in r4. */
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get r11, ed} /* Get the event data... */
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{mov r0, r11 /* into the first argument for the callback function... */
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bla r1} /* and call the callback function. */
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set sp, r4 /* Restore the task's SP now. */
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ldw r0, dp[ulPortYieldRequired] /* Is a yield required? */
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{bf r0, _freertos_restore_ctx_partial /* If not, restore the context now. */
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ldc r0, 0}
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stw r0, dp[ulPortYieldRequired] /* Otherwise, clear the yield required flag. */
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/* Save the rest of the current task's context. */
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stw spc, sp[1]
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_yield_continue:
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stw ssr, sp[2]
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stw sed, sp[3]
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stw et, sp[4]
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stw dp, sp[5]
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stw cp, sp[6]
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stw r5, sp[13]
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stw r6, sp[14]
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stw r7, sp[15]
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stw r8, sp[16]
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stw r9, sp[17]
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stw r10, sp[18]
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ldw r0, dp[pxCurrentTCB] /* Save the current task's SP to the first */
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stw r4, r0[0x0] /* word (top of stack) in the current TCB */
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kentsp 0 /* switch back to the kernel stack. */
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ldap r11, vTaskSwitchContext
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bla r11 /* Finally call vTaskSwitchContext() now that the task's */
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/* entire context is saved. */
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//krestsp 0 /* unnecessary since KSP is already set and the SP */
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/* is being restored next from the current TCB. */
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.globl _freertos_restore_ctx
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_freertos_restore_ctx:
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ldw r0, dp[pxCurrentTCB]
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ldw r0, r0[0x0] /* Get the top of the stack from the current TCB... */
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set sp, r0; /* into the stack pointer register. */
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/* Restore the state */
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ldw spc, sp[1]
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ldw ssr, sp[2]
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ldw sed, sp[3]
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ldw et, sp[4]
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ldw dp, sp[5]
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ldw cp, sp[6]
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ldw r5, sp[13]
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ldw r6, sp[14]
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ldw r7, sp[15]
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ldw r8, sp[16]
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ldw r9, sp[17]
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ldw r10, sp[18]
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_freertos_restore_ctx_partial:
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ldw lr, sp[7]
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ldw r0, sp[8]
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ldw r1, sp[9]
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ldw r2, sp[10]
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ldw r3, sp[11]
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ldw r4, sp[12]
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{ldw r11, sp[19]
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/* shrink the stack by the size of the context just restored */
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ldaw sp, sp[RTOS_SUPPORT_INTERRUPT_STACK_GROWTH]}
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kret /* exit kernel mode and return to the thread */
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.cc_bottom kexcept.function
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|
174
portable/ThirdParty/XMOS/XCORE200/portmacro.h
vendored
Normal file
174
portable/ThirdParty/XMOS/XCORE200/portmacro.h
vendored
Normal file
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@ -0,0 +1,174 @@
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// Copyright (c) 2020, XMOS Ltd, All rights reserved
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#ifndef PORTMACRO_H
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#define PORTMACRO_H
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#ifndef __ASSEMBLER__
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/* Inclusion of xc1.h will result in clock being defined as a type.
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* By default, FreeRTOS will require standard time.h, where clock is a function.
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*/
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#ifndef USE_XCORE_CLOCK_TYPE
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#define _clock_defined
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#endif
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#include <xs1.h>
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#include "xcore_c.h"
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#include "rtos_support.h"
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#ifdef __cplusplus
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extern "C" {
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#endif
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/* Type definitions. */
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#define portSTACK_TYPE uint32_t
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typedef portSTACK_TYPE StackType_t;
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typedef double portDOUBLE;
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typedef int32_t BaseType_t;
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typedef uint32_t UBaseType_t;
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#if( configUSE_16_BIT_TICKS == 1 )
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typedef uint16_t TickType_t;
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#define portMAX_DELAY ( TickType_t ) 0xffff
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#else
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typedef uint32_t TickType_t;
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#define portMAX_DELAY ( TickType_t ) 0xffffffffUL
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/* 32-bit tick type on a 32-bit architecture, so reads of the tick count do
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not need to be guarded with a critical section. */
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#define portTICK_TYPE_IS_ATOMIC 1
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#endif
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/*-----------------------------------------------------------*/
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#endif /* __ASSEMBLER__ */
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/* Architecture specifics. These can be used by assembly files as well. */
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#define portSTACK_GROWTH ( -1 )
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#define portTICK_PERIOD_MS ( ( TickType_t ) 1000 / configTICK_RATE_HZ )
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#define portBYTE_ALIGNMENT 8
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#define portCRITICAL_NESTING_IN_TCB 1
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#ifdef configNUM_CORES
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#warning configNUM_CORES should not be defined when using the single core XCORE port
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#undef configNUM_CORES
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#endif
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/* This may be set to zero in the config file if the rtos_time
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||||
functions are not needed or if it is incremented elsewhere. */
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#ifndef configUPDATE_RTOS_TIME_FROM_TICK_ISR
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#define configUPDATE_RTOS_TIME_FROM_TICK_ISR 1
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#endif
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/*
|
||||
* When entering an ISR we need to grow the stack by one more word than
|
||||
* we actually need to save the thread context. This is because there are
|
||||
* some functions, written in assembly *cough* memcpy() *cough*, that think
|
||||
* it is OK to store words at SP[0]. Therefore the ISR must leave SP[0] alone
|
||||
* even though it is normally not necessary to do so.
|
||||
*/
|
||||
#define portTHREAD_CONTEXT_STACK_GROWTH RTOS_SUPPORT_INTERRUPT_STACK_GROWTH
|
||||
|
||||
#ifndef __ASSEMBLER__
|
||||
#define portMEMORY_BARRIER() RTOS_MEMORY_BARRIER()
|
||||
#define portTASK_STACK_DEPTH(pxTaskCode) RTOS_THREAD_STACK_SIZE(pxTaskCode)
|
||||
/*-----------------------------------------------------------*/
|
||||
|
||||
/* Scheduler utilities. */
|
||||
#define portYIELD() asm volatile( "KCALLI_lu6 0" ::: "memory" )
|
||||
|
||||
#define portEND_SWITCHING_ISR( xSwitchRequired ) \
|
||||
do \
|
||||
{ \
|
||||
if( xSwitchRequired != pdFALSE ) \
|
||||
{ \
|
||||
extern uint32_t ulPortYieldRequired; \
|
||||
ulPortYieldRequired = pdTRUE; \
|
||||
} \
|
||||
} while( 0 )
|
||||
|
||||
#define portYIELD_FROM_ISR( x ) portEND_SWITCHING_ISR( x )
|
||||
/*-----------------------------------------------------------*/
|
||||
|
||||
/* Architecture specific optimisations. */
|
||||
#ifndef configUSE_PORT_OPTIMISED_TASK_SELECTION
|
||||
#define configUSE_PORT_OPTIMISED_TASK_SELECTION 1
|
||||
#endif
|
||||
|
||||
#if configUSE_PORT_OPTIMISED_TASK_SELECTION == 1
|
||||
|
||||
/* Store/clear the ready priorities in a bit map. */
|
||||
#define portRECORD_READY_PRIORITY( uxPriority, uxReadyPriorities ) ( uxReadyPriorities ) |= ( 1UL << ( uxPriority ) )
|
||||
#define portRESET_READY_PRIORITY( uxPriority, uxReadyPriorities ) ( uxReadyPriorities ) &= ~( 1UL << ( uxPriority ) )
|
||||
|
||||
/*-----------------------------------------------------------*/
|
||||
|
||||
#define portGET_HIGHEST_PRIORITY( uxTopPriority, uxReadyPriorities ) uxTopPriority = ( 31UL - ( uint32_t ) __builtin_clz( uxReadyPriorities ) )
|
||||
|
||||
#endif /* configUSE_PORT_OPTIMISED_TASK_SELECTION */
|
||||
/*-----------------------------------------------------------*/
|
||||
|
||||
/* Critical section management. */
|
||||
|
||||
#define portGET_INTERRUPT_STATE() rtos_interrupt_mask_get()
|
||||
#define portDISABLE_INTERRUPTS() rtos_interrupt_mask_all()
|
||||
#define portENABLE_INTERRUPTS() rtos_interrupt_unmask_all()
|
||||
#define portSET_INTERRUPT_MASK_FROM_ISR() 0
|
||||
#define portCLEAR_INTERRUPT_MASK_FROM_ISR(x)
|
||||
/*
|
||||
* Will enable interrupts if ulState is non-zero.
|
||||
*/
|
||||
#define portRESTORE_INTERRUPTS(ulState) rtos_interrupt_mask_set(ulState)
|
||||
|
||||
/*
|
||||
* Returns non-zero if currently running in an
|
||||
* ISR or otherwise in kernel mode.
|
||||
*/
|
||||
#define portCHECK_IF_IN_ISR() rtos_isr_running()
|
||||
#define portASSERT_IF_IN_ISR() configASSERT( portCHECK_IF_IN_ISR() == 0 )
|
||||
|
||||
void vTaskEnterCritical(void);
|
||||
void vTaskExitCritical(void);
|
||||
#define portENTER_CRITICAL() vTaskEnterCritical()
|
||||
#define portEXIT_CRITICAL() vTaskExitCritical()
|
||||
/*-----------------------------------------------------------*/
|
||||
|
||||
/* Runtime stats support */
|
||||
#if ( configGENERATE_RUN_TIME_STATS == 1 )
|
||||
int xscope_gettime( void );
|
||||
#define portCONFIGURE_TIMER_FOR_RUN_TIME_STATS() /* nothing needed here */
|
||||
#define portGET_RUN_TIME_COUNTER_VALUE() xscope_gettime()
|
||||
#endif
|
||||
/*-----------------------------------------------------------*/
|
||||
|
||||
/* Maps sprintf and snprintf to the lite version in lib_rtos_support */
|
||||
#if ( configUSE_DEBUG_SPRINTF == 1 )
|
||||
#define sprintf(...) rtos_sprintf(__VA_ARGS__)
|
||||
#define snprintf(...) rtos_snprintf(__VA_ARGS__)
|
||||
#endif
|
||||
|
||||
/* Attribute for the pxCallbackFunction member of the Timer_t struct.
|
||||
Required by xcc to calculate stack usage. */
|
||||
#define portTIMER_CALLBACK_ATTRIBUTE __attribute__((fptrgroup("timerCallbackGroup")))
|
||||
|
||||
/* Timer callback function macros. For xcc this ensures they get added to the timer callback
|
||||
group so that stack usage for certain functions in timers.c can be calculated. */
|
||||
#define portTIMER_CALLBACK_FUNCTION_PROTO( vFunction, xTimer ) void vFunction( TimerHandle_t xTimer )
|
||||
#define portTIMER_CALLBACK_FUNCTION( vFunction, xTimer ) portTIMER_CALLBACK_ATTRIBUTE void vFunction( TimerHandle_t xTimer )
|
||||
|
||||
/*-----------------------------------------------------------*/
|
||||
|
||||
/* Task function macros as described on the FreeRTOS.org WEB site. These are
|
||||
not necessary for to use this port. They are defined so the common demo files
|
||||
(which build with all the ports) will build. */
|
||||
#define portTASK_FUNCTION_PROTO( vFunction, pvParameters ) void vFunction( void *pvParameters )
|
||||
#define portTASK_FUNCTION( vFunction, pvParameters ) void vFunction( void *pvParameters )
|
||||
/*-----------------------------------------------------------*/
|
||||
|
||||
|
||||
#ifdef __cplusplus
|
||||
}
|
||||
#endif
|
||||
|
||||
#endif /* __ASSEMBLER__ */
|
||||
|
||||
#endif /* PORTMACRO_H */
|
||||
|
83
portable/ThirdParty/XMOS/XCORE200/rtos_support_rtos_config.h
vendored
Normal file
83
portable/ThirdParty/XMOS/XCORE200/rtos_support_rtos_config.h
vendored
Normal file
|
@ -0,0 +1,83 @@
|
|||
// Copyright (c) 2020, XMOS Ltd, All rights reserved
|
||||
|
||||
#ifndef RTOS_SUPPORT_RTOS_CONFIG_H_
|
||||
#define RTOS_SUPPORT_RTOS_CONFIG_H_
|
||||
|
||||
/**
|
||||
* Lets the application know that the RTOS in use is FreeRTOS.
|
||||
*/
|
||||
#define RTOS_FREERTOS 1
|
||||
|
||||
/**
|
||||
* The number of words to extend the stack by when entering an ISR.
|
||||
*
|
||||
* When entering an ISR we need to grow the stack by one more word than
|
||||
* we actually need to save the thread context. This is because there are
|
||||
* some functions, written in assembly *cough* memcpy() *cough*, that think
|
||||
* it is OK to store words at SP[0]. Therefore the ISR must leave SP[0] alone
|
||||
* even though it is normally not necessary to do so.
|
||||
*/
|
||||
#define RTOS_SUPPORT_INTERRUPT_STACK_GROWTH ( 19 + 1 )
|
||||
|
||||
/**
|
||||
* The word offset into the stack where R1 is to be stored after it
|
||||
* is extended when saving a thread's context.
|
||||
*/
|
||||
#define RTOS_SUPPORT_INTERRUPT_R1_STACK_OFFSET 9
|
||||
|
||||
/**
|
||||
* The word offset into the stack where R11 is to be stored after it
|
||||
* is extended when saving a thread's context.
|
||||
*/
|
||||
#define RTOS_SUPPORT_INTERRUPT_R11_STACK_OFFSET 19
|
||||
|
||||
/**
|
||||
* The RTOS provided handler that should run when a
|
||||
* core receives an intercore interrupt request.
|
||||
*/
|
||||
#define RTOS_INTERCORE_INTERRUPT_ISR()
|
||||
|
||||
/**
|
||||
* The number of hardware locks that the RTOS
|
||||
* requires. For a single core RTOS this could be
|
||||
* zero. Locks are recursive.
|
||||
*
|
||||
* Note that the IRQ routines require a lock and
|
||||
* will share the first one with the RTOS.
|
||||
*/
|
||||
#define RTOS_LOCK_COUNT 0
|
||||
|
||||
/**
|
||||
* Remaps all calls to debug_printf() to rtos_printf().
|
||||
* When this is on, files should not include both rtos_support.h
|
||||
* and debug_print.h.
|
||||
*/
|
||||
#define RTOS_DEBUG_PRINTF_REMAP 1
|
||||
|
||||
|
||||
#ifdef configENABLE_DEBUG_PRINTF
|
||||
#if configENABLE_DEBUG_PRINTF
|
||||
|
||||
/* ensure that debug_printf is enabled */
|
||||
#ifdef DEBUG_PRINT_ENABLE
|
||||
#undef DEBUG_PRINT_ENABLE
|
||||
#endif
|
||||
#define DEBUG_PRINT_ENABLE 1
|
||||
|
||||
#else /* configENABLE_DEBUG_PRINTF */
|
||||
|
||||
/* ensure that debug_printf is disabled */
|
||||
#ifdef DEBUG_UNIT
|
||||
#undef DEBUG_UNIT
|
||||
#endif
|
||||
#ifdef DEBUG_PRINT_ENABLE
|
||||
#undef DEBUG_PRINT_ENABLE
|
||||
#endif
|
||||
|
||||
#define DEBUG_PRINT_ENABLE 0
|
||||
|
||||
#endif /* configENABLE_DEBUG_PRINTF */
|
||||
#endif
|
||||
|
||||
#endif /* RTOS_SUPPORT_RTOS_CONFIG_H_ */
|
||||
|
2
timers.c
2
timers.c
|
@ -76,6 +76,7 @@ typedef struct tmrTimerControl /* The old naming convention is used to prevent b
|
|||
ListItem_t xTimerListItem; /*<< Standard linked list item as used by all kernel features for event management. */
|
||||
TickType_t xTimerPeriodInTicks;/*<< How quickly and often the timer expires. */
|
||||
void *pvTimerID; /*<< An ID to identify the timer. This allows the timer to be identified when the same callback is used for multiple timers. */
|
||||
portTIMER_CALLBACK_ATTRIBUTE
|
||||
TimerCallbackFunction_t pxCallbackFunction; /*<< The function that will be called when the timer expires. */
|
||||
#if( configUSE_TRACE_FACILITY == 1 )
|
||||
UBaseType_t uxTimerNumber; /*<< An ID assigned by trace tools such as FreeRTOS+Trace */
|
||||
|
@ -101,6 +102,7 @@ typedef struct tmrTimerParameters
|
|||
|
||||
typedef struct tmrCallbackParameters
|
||||
{
|
||||
portTIMER_CALLBACK_ATTRIBUTE
|
||||
PendedFunction_t pxCallbackFunction; /* << The callback function to execute. */
|
||||
void *pvParameter1; /* << The value that will be used as the callback functions first parameter. */
|
||||
uint32_t ulParameter2; /* << The value that will be used as the callback functions second parameter. */
|
||||
|
|
Loading…
Add table
Add a link
Reference in a new issue