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nrf24l01.c 8.3KB

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  1. #include <stdint.h>
  2. #include <avr/io.h>
  3. #include <util/delay.h>
  4. #include <stdio.h>
  5. #include <stdbool.h>
  6. #include "led.h" // TODO: for debugging
  7. #include "spi.h"
  8. #include "nrf24l01.h"
  9. #include "nrf24l01_definitions.h"
  10. /* TODO
  11. * - Send functions
  12. * - Interrupt handling for Send
  13. */
  14. extern volatile bool nrfInterruptRaised;
  15. void Print_Register_Contents(uint8_t address);
  16. void Send_TX_Flush_Command(void);
  17. /* Startup and initial configuration of the NRF24L01 */
  18. void Initialize_NRF24L01(void)
  19. {
  20. CONFIG_REGISTER configRegisterContents = {.byte = 0x0};
  21. /* Configure the AVR pins for the nrf24l01 */
  22. Set_NRF24L01_Pins();
  23. /* Wait more than 10.3 ms to make sure the nrf24l01 is running */
  24. _delay_ms(11);
  25. /* Write the PWR_UP bit of the CONFIG register (EN_CRC is also set) */
  26. configRegisterContents.bits.EN_CRC = 0x1;
  27. configRegisterContents.bits.PWR_UP = 0x1;
  28. Write_NRF_Register(CONFIG_ADDRESS, configRegisterContents.byte);
  29. /* Wait more than 1.5 ms for the change to take effect */
  30. _delay_ms(2);
  31. /* The NRF24L01 is now in the mode Standby-I */
  32. }
  33. void Set_NRF24L01_Pins(void)
  34. {
  35. /* Set up the NRF24L01 */
  36. NRF_CE_DDR |= (1 << NRF_CE_PIN);
  37. NRF_CSN_DDR |= (1 << NRF_CSN_PIN);
  38. /* Set the chip select pin to not selected */
  39. NRF_CSN_PORT |= (1 << NRF_CSN_PIN);
  40. /* Ensure that the CE pin is set to 0*/
  41. NRF_CE_PORT &= ~(1 << NRF_CE_PIN);
  42. /* Set the interrupt pin */
  43. /* TODO: PCINT21 -> PCINT2 */
  44. NRF_IRQ_DDR &= ~(1 << NRF_IRQ_PIN); // Set the pin as input
  45. NRF_IRQ_PORT |= (1 << NRF_IRQ_PORT); // Enable the pullup for the pin
  46. }
  47. void Configure_Transmission(void)
  48. {
  49. FEATURE_REGISTER featureRegisterContents = {.byte = 0x0};
  50. DYNPD_REGISTER dyndpRegisterContents = {.byte = 0x0};
  51. SETUP_RETR_REGISTER setupRetrRegisterContents = {.byte = 0x0};
  52. uint8_t txAddress[5] = {0xB3, 0xB3, 0xB3, 0xB3, 0x00};
  53. uint8_t rx0Address[5] = {0xB3, 0xB3, 0xB3, 0xB3, 0x20};
  54. /*
  55. * - Length of CRC (CRCO in CONFIG)
  56. * - Enable auto acknowledgment (EN_AA)
  57. * -> Register already set correctly after reset
  58. * - Enable data pipes (EN_RXADDR)?
  59. * -> Two pipes are already enabled on reset
  60. * - Set up address width (SETUP_AW)
  61. * -> 3 bytes
  62. * - Automatic Retransmission (SETUP_RETR)
  63. * -> ARD = 0b0000
  64. * -> 3 retransmits -> ARC = 0b0011
  65. * -> Register already set correctly after reset
  66. * - RF Channel (RF_CH)
  67. * -> RF_CH = 0b1010000
  68. * - RF Setup (RF_SETUP)
  69. * -> first use reset values, can be fine tuned later
  70. * - Enable dynamic payload length (DYNPD) -> command activate + 0x73, then set bits in FEATURE?
  71. */
  72. /* Set the address width to 3 bytes */
  73. //Write_NRF_Register(0x03, 0x1);
  74. /* Set the frequency to 1450 MHz */
  75. Write_NRF_Register(RF_CH_ADDRESS, 0x32);
  76. /* Enable dynamic payload length */
  77. Send_Activate_Command();
  78. featureRegisterContents.bits.EN_DPL = 1; // enable dynamic payload length
  79. Write_NRF_Register(FEATURE_ADDRESS, featureRegisterContents.byte);
  80. /* */
  81. setupRetrRegisterContents.bits.ARC = 0x3;
  82. setupRetrRegisterContents.bits.ARD = 0xF;
  83. Write_NRF_Register(SETUP_RETR_ADDRESS, setupRetrRegisterContents.byte);
  84. /* set dynamic payload length for all data pipes */
  85. dyndpRegisterContents.bits.DPL_P0 = 1;
  86. dyndpRegisterContents.bits.DPL_P1 = 1;
  87. dyndpRegisterContents.bits.DPL_P2 = 1;
  88. dyndpRegisterContents.bits.DPL_P3 = 1;
  89. dyndpRegisterContents.bits.DPL_P4 = 1;
  90. dyndpRegisterContents.bits.DPL_P5 = 1;
  91. Write_NRF_Register(DYNPD_ADDRESS, dyndpRegisterContents.byte);
  92. /* Set the TX address */
  93. Set_TX_Address(txAddress, MAX_ADDRESS_LENGTH);
  94. Set_RX_P0_Address(rx0Address, MAX_ADDRESS_LENGTH);
  95. PCMSK2 |= (1<<PCINT21); // Set the external interrupt for PD5
  96. }
  97. void NRF24L01_Send_Message(uint8_t *buffer, uint8_t length)
  98. {
  99. STATUS_REGISTER statusRegisterContents = {.byte = 0x0};
  100. if ((length > 32) || (length == 0))
  101. {
  102. return;
  103. }
  104. PCICR |= (1<<PCIE2); // Enable the interrupt for the IRQ signal
  105. Write_Message_To_TX_FIFO(length, buffer);
  106. /* Set CE = 1 for more than 10 us */
  107. NRF_CE_PORT |= (1 << NRF_CE_PIN);
  108. _delay_us(15);
  109. NRF_CE_PORT &= ~(1 << NRF_CE_PIN);
  110. while (nrfInterruptRaised == false); // Wait until the transmission is complete
  111. /* An interrupt instead of polling the status register is used to avoid transmission errors
  112. * induced by the SPI:
  113. * https://forum.mysensors.org/topic/10452/nrf24l01-communication-failure-root-cause-and-solution
  114. */
  115. LED_PORT |= (1 << LED_PIN);
  116. statusRegisterContents.byte = Read_NRF_Status_Register();
  117. if (statusRegisterContents.bits.MAX_RT == 1)
  118. {
  119. Send_TX_Flush_Command(); /* Remove the packet from the TX FIFO as it is not done automatically */
  120. }
  121. /* Reset the interrupts */
  122. statusRegisterContents.bits.TX_DS = 1;
  123. statusRegisterContents.bits.MAX_RT = 1;
  124. statusRegisterContents.bits.RX_DR = 1;
  125. Write_NRF_Register(STATUS_ADDRESS, statusRegisterContents.byte);
  126. PCICR &= ~(1<<PCIE2); // Disable the interrupt for the IRQ signal
  127. nrfInterruptRaised = false;
  128. return;
  129. }
  130. void Print_Register_Contents(uint8_t address)
  131. {
  132. uint8_t registerContent[5];
  133. uint8_t lengthRead;
  134. char registerContentString[30];
  135. lengthRead = Read_NRF_Register(address, registerContent);
  136. registerContentString[0] = '\0';
  137. for (uint8_t i = 0; i < lengthRead; i++)
  138. {
  139. sprintf(registerContentString, "%s0x%x ", registerContentString, registerContent[i]);
  140. }
  141. }
  142. /* Send a message:
  143. * - Set PRIM_RX = 0 and add one message to the TX-FIFO
  144. * - Set CE=1 for more than 10 us
  145. * - The NRF takes 130 us to enter the TX Mode
  146. * - An Interrupt is generated once the
  147. * -
  148. */
  149. /* Set the NRF to RX Mode */
  150. /* Disable the RX Mode */
  151. uint8_t Read_NRF_Status_Register(void)
  152. {
  153. uint8_t registerContents;
  154. SPI_Start_Transmission(&NRF_CSN_PORT, NRF_CSN_PIN);
  155. registerContents = SPI_Transfer_Byte(0x00);
  156. SPI_Stop_Transmission(&NRF_CSN_PORT, NRF_CSN_PIN);
  157. return registerContents;
  158. }
  159. uint8_t Read_NRF_Register(uint8_t address, uint8_t * registerContents)
  160. {
  161. /* TODO: simplify this function, as the registers with more than one byte are accessed with other functions */
  162. uint8_t numberOfBytes = 0;
  163. if ((address == 0x0A) ||
  164. (address == 0x0B) ||
  165. (address == 0x10))
  166. {
  167. numberOfBytes = 5;
  168. }
  169. else
  170. {
  171. numberOfBytes = 1;
  172. }
  173. /* First write the address */
  174. SPI_Start_Transmission(&NRF_CSN_PORT, NRF_CSN_PIN);
  175. SPI_Transfer_Byte(address);
  176. /* Read the register bytes */
  177. for (uint8_t i = 0; i < numberOfBytes; i++)
  178. {
  179. /* Write dummy data to shift in the register content */
  180. registerContents[i] = SPI_Transfer_Byte(0x0);
  181. }
  182. SPI_Stop_Transmission(&NRF_CSN_PORT, NRF_CSN_PIN);
  183. return numberOfBytes;
  184. }
  185. void Write_NRF_Register(uint8_t address, uint8_t registerContents)
  186. {
  187. /* First write the write command with the address */
  188. SPI_Start_Transmission(&NRF_CSN_PORT, NRF_CSN_PIN);
  189. SPI_Transfer_Byte(address | 0x20);
  190. /* Write the data byte */
  191. SPI_Transfer_Byte(registerContents);
  192. SPI_Stop_Transmission(&NRF_CSN_PORT, NRF_CSN_PIN);
  193. }
  194. // TODO: clean up functions
  195. void Send_Activate_Command(void)
  196. {
  197. /* First write the write command with the address */
  198. SPI_Start_Transmission(&NRF_CSN_PORT, NRF_CSN_PIN);
  199. SPI_Transfer_Byte(0x50);
  200. /* Write the data byte */
  201. SPI_Transfer_Byte(0x73);
  202. SPI_Stop_Transmission(&NRF_CSN_PORT, NRF_CSN_PIN);
  203. }
  204. void Send_TX_Flush_Command(void)
  205. {
  206. /* First write the write command with the address */
  207. SPI_Start_Transmission(&NRF_CSN_PORT, NRF_CSN_PIN);
  208. SPI_Transfer_Byte(0xE1);
  209. SPI_Stop_Transmission(&NRF_CSN_PORT, NRF_CSN_PIN);
  210. }
  211. void Write_Message_To_TX_FIFO(uint8_t length, uint8_t * buffer)
  212. {
  213. SPI_Start_Transmission(&NRF_CSN_PORT, NRF_CSN_PIN);
  214. /* Issue the write command: */
  215. SPI_Transfer_Byte(0xA0);
  216. /* Write the data bytes */
  217. for (uint8_t i = 0; i < length; i++)
  218. {
  219. SPI_Transfer_Byte(buffer[i]);
  220. }
  221. SPI_Stop_Transmission(&NRF_CSN_PORT, NRF_CSN_PIN);
  222. }
  223. void Set_TX_Address(uint8_t * txAddress, uint8_t length)
  224. {
  225. SPI_Start_Transmission(&NRF_CSN_PORT, NRF_CSN_PIN);
  226. SPI_Transfer_Byte(TX_ADDR_ADDRESS | 0x20);
  227. /* Write the data byte */
  228. for (uint8_t i = 0; i < length; i ++)
  229. {
  230. SPI_Transfer_Byte(txAddress[i]);
  231. }
  232. SPI_Stop_Transmission(&NRF_CSN_PORT, NRF_CSN_PIN);
  233. }
  234. void Set_RX_P0_Address(uint8_t * rxAddress, uint8_t length)
  235. {
  236. SPI_Start_Transmission(&NRF_CSN_PORT, NRF_CSN_PIN);
  237. SPI_Transfer_Byte(RX_ADDR_P0_ADDRESS | 0x20);
  238. /* Write the data byte */
  239. for (uint8_t i = 0; i < length; i ++)
  240. {
  241. SPI_Transfer_Byte(rxAddress[i]);
  242. }
  243. SPI_Stop_Transmission(&NRF_CSN_PORT, NRF_CSN_PIN);
  244. }
  245. //TODO: only write the used bytes into the address registers & add generic write functions