co_task.c 2.8 KB

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  1. #include "os/co_task.h"
  2. typedef enum {
  3. Task_Pending,
  4. Task_Blocking,
  5. Task_Ready,
  6. Task_Running
  7. }Task_Stat_t;
  8. typedef struct _tcb{
  9. volatile u32 fp;
  10. volatile u32 *pstack; //stack addr
  11. u32 start_tm_ms;
  12. Task_Stat_t stat; //task stat, running, pending, blocked
  13. struct _tcb *next;
  14. }tcb_t;
  15. volatile tcb_t *current_tcb;
  16. u64 g_task_ticks64;
  17. u32 g_task_ticks;
  18. static tcb_t *g_tcb_head;
  19. static volatile u32 _context_swap_cnt = 0;
  20. extern void arch_save_context(void);
  21. extern void arch_restore_context(void);
  22. extern void arch_start_first_task(void);
  23. extern u32 arch_stack_init(volatile u32 *stack_base, u16 stack_size, void *fptr, void *p_arg);
  24. extern void co_task_tick_init(int ticks);
  25. static tcb_t *_next_task(void);
  26. static void _task_add(tcb_t *tcb);
  27. static void _task_context_swap(tcb_t *prev, tcb_t *next);
  28. void *co_task_create(task_func func, void *args, u16 stack_size){
  29. tcb_t *p_tcb = co_malloc(sizeof(tcb_t));
  30. p_tcb->pstack = (u32 *)co_malloc(stack_size);
  31. p_tcb->fp = arch_stack_init(p_tcb->pstack, stack_size>>2, func, args);
  32. p_tcb->start_tm_ms = 0;
  33. p_tcb->stat = Task_Ready;
  34. p_tcb->next = p_tcb;
  35. _task_add(p_tcb);
  36. return p_tcb;
  37. }
  38. void co_task_schedule(void){
  39. co_task_tick_init(TICKS_PER_HZ);
  40. current_tcb = g_tcb_head;
  41. arch_start_first_task();
  42. while(1);
  43. }
  44. void co_task_yield(void){
  45. tcb_t *next = _next_task();
  46. if (next != NULL && next != current_tcb) {
  47. _task_context_swap((tcb_t *)current_tcb, next);
  48. }
  49. }
  50. void co_task_delay(int ms){
  51. current_tcb->start_tm_ms = ms + ticks_2_ms(g_task_ticks);
  52. while(1) {
  53. tcb_t *next = _next_task();
  54. if (next != NULL){
  55. if (next == current_tcb) {
  56. break;
  57. }
  58. _task_context_swap((tcb_t *)current_tcb, next);
  59. break;
  60. }else {
  61. co_task_yield();
  62. }
  63. }
  64. }
  65. u64 co_task_sys64_ticks(void) {
  66. return g_task_ticks64;
  67. }
  68. u64 co_task_sys64_ts(void) {
  69. return ticks_2_ms(g_task_ticks64);
  70. }
  71. /* peak next task to run */
  72. static tcb_t *_next_task(void) {
  73. tcb_t *next = current_tcb->next;
  74. for (; next != current_tcb; next = next->next) {
  75. if (next->stat != Task_Ready) {
  76. continue;
  77. }
  78. if (next->start_tm_ms <= ticks_2_ms(g_task_ticks)){
  79. return next;
  80. }
  81. }
  82. if (current_tcb->start_tm_ms <= ticks_2_ms(g_task_ticks)) {
  83. return (tcb_t *)current_tcb;
  84. }
  85. return NULL;
  86. }
  87. /* add task to running list */
  88. static void _task_add(tcb_t *tcb) {
  89. if (g_tcb_head == NULL) {
  90. g_tcb_head = tcb;
  91. return;
  92. }
  93. tcb_t *next = g_tcb_head->next;
  94. //get the last one
  95. for (; next->next != g_tcb_head; next = next->next);
  96. tcb->next = next->next;
  97. next->next = tcb;
  98. }
  99. static void _task_context_swap(tcb_t *prev, tcb_t *next) {
  100. u32 prev_cnt = ++_context_swap_cnt;
  101. arch_save_context();
  102. if (prev_cnt == _context_swap_cnt) {
  103. current_tcb = next;
  104. arch_restore_context();
  105. }
  106. }
  107. extern void *pvPortMalloc(u32);
  108. extern void vPortFree(void *);
  109. void *co_malloc(u32 size) {
  110. return pvPortMalloc(size);
  111. }
  112. void co_free(void *ptr) {
  113. vPortFree(ptr);
  114. }