uhf_worker.c 5.6 KB

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  1. #include "uhf_worker.h"
  2. #include "uhf_tag.h"
  3. // yrm100 module commands
  4. UHFWorkerEvent verify_module_connected(UHFWorker* uhf_worker) {
  5. char* hw_version = m100_get_hardware_version(uhf_worker->module);
  6. char* sw_version = m100_get_software_version(uhf_worker->module);
  7. char* manufacturer = m100_get_manufacturers(uhf_worker->module);
  8. // verify all data exists
  9. if(hw_version == NULL || sw_version == NULL || manufacturer == NULL) return UHFWorkerEventFail;
  10. return UHFWorkerEventSuccess;
  11. }
  12. UHFTag* send_polling_command(UHFWorker* uhf_worker) {
  13. // read epc bank
  14. UHFTag* uhf_tag = uhf_tag_alloc();
  15. M100ResponseType status;
  16. do{
  17. if(uhf_worker->state == UHFWorkerStateStop) {
  18. uhf_tag_free(uhf_tag);
  19. return NULL;
  20. }
  21. status = m100_single_poll(uhf_worker->module, uhf_tag);
  22. }while(status != M100SuccessResponse);
  23. return uhf_tag;
  24. }
  25. UHFWorkerEvent read_bank_till_max_length(UHFWorker* uhf_worker, UHFTag* uhf_tag, BankType bank) {
  26. unsigned int word_low = 0, word_high = 64;
  27. unsigned int word_size;
  28. M100ResponseType status;
  29. do {
  30. if(uhf_worker->state == UHFWorkerStateStop) return UHFWorkerEventAborted;
  31. if(word_low >= word_high) return UHFWorkerEventSuccess;
  32. word_size = (word_low + word_high) / 2;
  33. status = m100_read_label_data_storage(uhf_worker->module, uhf_tag, bank, 0, word_size);
  34. if(status == M100SuccessResponse) {
  35. word_low = word_size + 1;
  36. } else if(status == M100MemoryOverrun) {
  37. word_high = word_size - 1;
  38. }
  39. } while(true);
  40. return UHFWorkerEventSuccess;
  41. }
  42. UHFWorkerEvent read_single_card(UHFWorker* uhf_worker) {
  43. UHFTag* uhf_tag = send_polling_command(uhf_worker);
  44. if(uhf_tag == NULL) return UHFWorkerEventAborted;
  45. uhf_tag_wrapper_set_tag(uhf_worker->uhf_tag_wrapper, uhf_tag);
  46. // set select
  47. while(m100_set_select(uhf_worker->module, uhf_tag) != M100SuccessResponse){}
  48. // read tid
  49. UHFWorkerEvent event;
  50. event = read_bank_till_max_length(uhf_worker, uhf_tag, TIDBank);
  51. if(event != UHFWorkerEventSuccess) return event;
  52. // read user
  53. event = read_bank_till_max_length(uhf_worker, uhf_tag, UserBank);
  54. if(event != UHFWorkerEventSuccess) return event;
  55. return UHFWorkerEventSuccess;
  56. }
  57. UHFWorkerEvent write_single_card(UHFWorker* uhf_worker) {
  58. UHFTag* uhf_tag_des = send_polling_command(uhf_worker);
  59. if(uhf_tag_des == NULL) return UHFWorkerEventAborted;
  60. UHFTag* uhf_tag_from = uhf_worker->uhf_tag_wrapper->uhf_tag;
  61. M100ResponseType rp_type;
  62. do{
  63. rp_type = m100_set_select(uhf_worker->module, uhf_tag_des);
  64. if(uhf_worker->state == UHFWorkerStateStop) return UHFWorkerEventAborted;
  65. if(rp_type == M100SuccessResponse) break;
  66. }while(true);
  67. while(m100_is_write_mask_enabled(uhf_worker->module, WRITE_USER)){
  68. rp_type = m100_write_label_data_storage(
  69. uhf_worker->module, uhf_tag_from, uhf_tag_des, UserBank, 0, 0);
  70. if(uhf_worker->state == UHFWorkerStateStop) return UHFWorkerEventAborted;
  71. if(rp_type == M100SuccessResponse) break;
  72. }
  73. while(m100_is_write_mask_enabled(uhf_worker->module, WRITE_TID)){
  74. rp_type = m100_write_label_data_storage(
  75. uhf_worker->module, uhf_tag_from, uhf_tag_des, TIDBank, 0, 0);
  76. if(uhf_worker->state == UHFWorkerStateStop) return UHFWorkerEventAborted;
  77. if(rp_type == M100SuccessResponse) break;
  78. }
  79. while(m100_is_write_mask_enabled(uhf_worker->module, WRITE_EPC)){
  80. rp_type = m100_write_label_data_storage(
  81. uhf_worker->module, uhf_tag_from, uhf_tag_des, EPCBank, 0, 0);
  82. if(uhf_worker->state == UHFWorkerStateStop) return UHFWorkerEventAborted;
  83. if(rp_type == M100SuccessResponse) break;
  84. }
  85. return UHFWorkerEventSuccess;
  86. }
  87. int32_t uhf_worker_task(void* ctx) {
  88. UHFWorker* uhf_worker = ctx;
  89. if(uhf_worker->state == UHFWorkerStateVerify) {
  90. UHFWorkerEvent event = verify_module_connected(uhf_worker);
  91. uhf_worker->callback(event, uhf_worker->ctx);
  92. } else if(uhf_worker->state == UHFWorkerStateDetectSingle) {
  93. UHFWorkerEvent event = read_single_card(uhf_worker);
  94. uhf_worker->callback(event, uhf_worker->ctx);
  95. } else if(uhf_worker->state == UHFWorkerStateWriteSingle) {
  96. UHFWorkerEvent event = write_single_card(uhf_worker);
  97. uhf_worker->callback(event, uhf_worker->ctx);
  98. }
  99. return 0;
  100. }
  101. UHFWorker* uhf_worker_alloc() {
  102. UHFWorker* uhf_worker = (UHFWorker*)malloc(sizeof(UHFWorker));
  103. uhf_worker->thread = furi_thread_alloc_ex("UHFWorker", UHF_WORKER_STACK_SIZE, uhf_worker_task, uhf_worker);
  104. uhf_worker->module = m100_module_alloc();
  105. uhf_worker->callback = NULL;
  106. uhf_worker->ctx = NULL;
  107. return uhf_worker;
  108. }
  109. void uhf_worker_change_state(UHFWorker* worker, UHFWorkerState state) {
  110. worker->state = state;
  111. }
  112. void uhf_worker_start(
  113. UHFWorker* uhf_worker,
  114. UHFWorkerState state,
  115. UHFWorkerCallback callback,
  116. void* ctx) {
  117. uhf_worker->state = state;
  118. uhf_worker->callback = callback;
  119. uhf_worker->ctx = ctx;
  120. furi_thread_start(uhf_worker->thread);
  121. }
  122. void uhf_worker_stop(UHFWorker* uhf_worker) {
  123. furi_assert(uhf_worker);
  124. furi_assert(uhf_worker->thread);
  125. if(furi_thread_get_state(uhf_worker->thread) != FuriThreadStateStopped) {
  126. uhf_worker_change_state(uhf_worker, UHFWorkerStateStop);
  127. furi_thread_join(uhf_worker->thread);
  128. }
  129. }
  130. void uhf_worker_free(UHFWorker* uhf_worker) {
  131. furi_assert(uhf_worker);
  132. furi_thread_free(uhf_worker->thread);
  133. m100_module_free(uhf_worker->module);
  134. free(uhf_worker);
  135. }