cc1101.c 5.0 KB

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  1. #include "cc1101.h"
  2. #include <assert.h>
  3. #include <string.h>
  4. CC1101Status cc1101_strobe(FuriHalSpiBusHandle* handle, uint8_t strobe) {
  5. uint8_t tx[1] = {strobe};
  6. CC1101Status rx[1] = {0};
  7. while(furi_hal_gpio_read(handle->miso))
  8. ;
  9. furi_hal_spi_bus_trx(handle, tx, (uint8_t*)rx, 1, CC1101_TIMEOUT);
  10. assert(rx[0].CHIP_RDYn == 0);
  11. return rx[0];
  12. }
  13. CC1101Status cc1101_write_reg(FuriHalSpiBusHandle* handle, uint8_t reg, uint8_t data) {
  14. uint8_t tx[2] = {reg, data};
  15. CC1101Status rx[2] = {0};
  16. while(furi_hal_gpio_read(handle->miso))
  17. ;
  18. furi_hal_spi_bus_trx(handle, tx, (uint8_t*)rx, 2, CC1101_TIMEOUT);
  19. assert((rx[0].CHIP_RDYn | rx[1].CHIP_RDYn) == 0);
  20. return rx[1];
  21. }
  22. CC1101Status cc1101_read_reg(FuriHalSpiBusHandle* handle, uint8_t reg, uint8_t* data) {
  23. assert(sizeof(CC1101Status) == 1);
  24. uint8_t tx[2] = {reg | CC1101_READ, 0};
  25. CC1101Status rx[2] = {0};
  26. while(furi_hal_gpio_read(handle->miso))
  27. ;
  28. furi_hal_spi_bus_trx(handle, tx, (uint8_t*)rx, 2, CC1101_TIMEOUT);
  29. assert((rx[0].CHIP_RDYn) == 0);
  30. *data = *(uint8_t*)&rx[1];
  31. return rx[0];
  32. }
  33. uint8_t cc1101_get_partnumber(FuriHalSpiBusHandle* handle) {
  34. uint8_t partnumber = 0;
  35. cc1101_read_reg(handle, CC1101_STATUS_PARTNUM | CC1101_BURST, &partnumber);
  36. return partnumber;
  37. }
  38. uint8_t cc1101_get_version(FuriHalSpiBusHandle* handle) {
  39. uint8_t version = 0;
  40. cc1101_read_reg(handle, CC1101_STATUS_VERSION | CC1101_BURST, &version);
  41. return version;
  42. }
  43. uint8_t cc1101_get_rssi(FuriHalSpiBusHandle* handle) {
  44. uint8_t rssi = 0;
  45. cc1101_read_reg(handle, CC1101_STATUS_RSSI | CC1101_BURST, &rssi);
  46. return rssi;
  47. }
  48. void cc1101_reset(FuriHalSpiBusHandle* handle) {
  49. cc1101_strobe(handle, CC1101_STROBE_SRES);
  50. }
  51. CC1101Status cc1101_get_status(FuriHalSpiBusHandle* handle) {
  52. return cc1101_strobe(handle, CC1101_STROBE_SNOP);
  53. }
  54. void cc1101_shutdown(FuriHalSpiBusHandle* handle) {
  55. cc1101_strobe(handle, CC1101_STROBE_SPWD);
  56. }
  57. void cc1101_calibrate(FuriHalSpiBusHandle* handle) {
  58. cc1101_strobe(handle, CC1101_STROBE_SCAL);
  59. }
  60. void cc1101_switch_to_idle(FuriHalSpiBusHandle* handle) {
  61. cc1101_strobe(handle, CC1101_STROBE_SIDLE);
  62. }
  63. void cc1101_switch_to_rx(FuriHalSpiBusHandle* handle) {
  64. cc1101_strobe(handle, CC1101_STROBE_SRX);
  65. }
  66. void cc1101_switch_to_tx(FuriHalSpiBusHandle* handle) {
  67. cc1101_strobe(handle, CC1101_STROBE_STX);
  68. }
  69. void cc1101_flush_rx(FuriHalSpiBusHandle* handle) {
  70. cc1101_strobe(handle, CC1101_STROBE_SFRX);
  71. }
  72. void cc1101_flush_tx(FuriHalSpiBusHandle* handle) {
  73. cc1101_strobe(handle, CC1101_STROBE_SFTX);
  74. }
  75. uint32_t cc1101_set_frequency(FuriHalSpiBusHandle* handle, uint32_t value) {
  76. uint64_t real_value = (uint64_t)value * CC1101_FDIV / CC1101_QUARTZ;
  77. // Sanity check
  78. assert((real_value & CC1101_FMASK) == real_value);
  79. cc1101_write_reg(handle, CC1101_FREQ2, (real_value >> 16) & 0xFF);
  80. cc1101_write_reg(handle, CC1101_FREQ1, (real_value >> 8) & 0xFF);
  81. cc1101_write_reg(handle, CC1101_FREQ0, (real_value >> 0) & 0xFF);
  82. uint64_t real_frequency = real_value * CC1101_QUARTZ / CC1101_FDIV;
  83. return (uint32_t)real_frequency;
  84. }
  85. uint32_t cc1101_set_intermediate_frequency(FuriHalSpiBusHandle* handle, uint32_t value) {
  86. uint64_t real_value = value * CC1101_IFDIV / CC1101_QUARTZ;
  87. assert((real_value & 0xFF) == real_value);
  88. cc1101_write_reg(handle, CC1101_FSCTRL0, (real_value >> 0) & 0xFF);
  89. uint64_t real_frequency = real_value * CC1101_QUARTZ / CC1101_IFDIV;
  90. return (uint32_t)real_frequency;
  91. }
  92. void cc1101_set_pa_table(FuriHalSpiBusHandle* handle, const uint8_t value[8]) {
  93. uint8_t tx[9] = {CC1101_PATABLE | CC1101_BURST}; //-V1009
  94. CC1101Status rx[9] = {0};
  95. memcpy(&tx[1], &value[0], 8);
  96. while(furi_hal_gpio_read(handle->miso))
  97. ;
  98. furi_hal_spi_bus_trx(handle, tx, (uint8_t*)rx, sizeof(rx), CC1101_TIMEOUT);
  99. assert((rx[0].CHIP_RDYn | rx[8].CHIP_RDYn) == 0);
  100. }
  101. uint8_t cc1101_write_fifo(FuriHalSpiBusHandle* handle, const uint8_t* data, uint8_t size) {
  102. uint8_t buff_tx[64];
  103. uint8_t buff_rx[64];
  104. buff_tx[0] = CC1101_FIFO | CC1101_BURST;
  105. memcpy(&buff_tx[1], data, size);
  106. // Start transaction
  107. // Wait IC to become ready
  108. while(furi_hal_gpio_read(handle->miso))
  109. ;
  110. // Tell IC what we want
  111. furi_hal_spi_bus_trx(handle, buff_tx, (uint8_t*)buff_rx, size + 1, CC1101_TIMEOUT);
  112. return size;
  113. }
  114. uint8_t cc1101_read_fifo(FuriHalSpiBusHandle* handle, uint8_t* data, uint8_t* size) {
  115. uint8_t buff_trx[2];
  116. buff_trx[0] = CC1101_FIFO | CC1101_READ | CC1101_BURST;
  117. // Start transaction
  118. // Wait IC to become ready
  119. while(furi_hal_gpio_read(handle->miso))
  120. ;
  121. // First byte - packet length
  122. furi_hal_spi_bus_trx(handle, buff_trx, buff_trx, 2, CC1101_TIMEOUT);
  123. // Check that the packet is placed in the receive buffer
  124. if(buff_trx[1] > 64) {
  125. *size = 64;
  126. } else {
  127. *size = buff_trx[1];
  128. }
  129. furi_hal_spi_bus_trx(handle, NULL, data, *size, CC1101_TIMEOUT);
  130. return *size;
  131. }