esp_phy_init.h 14 KB

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  1. // Copyright 2015-2016 Espressif Systems (Shanghai) PTE LTD
  2. //
  3. // Licensed under the Apache License, Version 2.0 (the "License");
  4. // you may not use this file except in compliance with the License.
  5. // You may obtain a copy of the License at
  6. //
  7. // http://www.apache.org/licenses/LICENSE-2.0
  8. //
  9. // Unless required by applicable law or agreed to in writing, software
  10. // distributed under the License is distributed on an "AS IS" BASIS,
  11. // WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
  12. // See the License for the specific language governing permissions and
  13. // limitations under the License.
  14. #pragma once
  15. #include <stdint.h>
  16. #include "esp_err.h"
  17. #ifdef __cplusplus
  18. extern "C" {
  19. #endif
  20. /**
  21. * @file PHY init parameters and API
  22. */
  23. /**
  24. * @brief Structure holding PHY init parameters
  25. */
  26. typedef struct {
  27. uint8_t param_ver_id; /*!< init_data structure version */
  28. uint8_t crystal_select; /*!< 0: 40MHz, 1: 26 MHz, 2: 24 MHz, 3: auto */
  29. uint8_t wifi_rx_gain_swp_step_1; /*!< do not change */
  30. uint8_t wifi_rx_gain_swp_step_2; /*!< do not change */
  31. uint8_t wifi_rx_gain_swp_step_3; /*!< do not change */
  32. uint8_t wifi_rx_gain_swp_step_4; /*!< do not change */
  33. uint8_t wifi_rx_gain_swp_step_5; /*!< do not change */
  34. uint8_t wifi_rx_gain_swp_step_6; /*!< do not change */
  35. uint8_t wifi_rx_gain_swp_step_7; /*!< do not change */
  36. uint8_t wifi_rx_gain_swp_step_8; /*!< do not change */
  37. uint8_t wifi_rx_gain_swp_step_9; /*!< do not change */
  38. uint8_t wifi_rx_gain_swp_step_10; /*!< do not change */
  39. uint8_t wifi_rx_gain_swp_step_11; /*!< do not change */
  40. uint8_t wifi_rx_gain_swp_step_12; /*!< do not change */
  41. uint8_t wifi_rx_gain_swp_step_13; /*!< do not change */
  42. uint8_t wifi_rx_gain_swp_step_14; /*!< do not change */
  43. uint8_t wifi_rx_gain_swp_step_15; /*!< do not change */
  44. uint8_t bt_rx_gain_swp_step_1; /*!< do not change */
  45. uint8_t bt_rx_gain_swp_step_2; /*!< do not change */
  46. uint8_t bt_rx_gain_swp_step_3; /*!< do not change */
  47. uint8_t bt_rx_gain_swp_step_4; /*!< do not change */
  48. uint8_t bt_rx_gain_swp_step_5; /*!< do not change */
  49. uint8_t bt_rx_gain_swp_step_6; /*!< do not change */
  50. uint8_t bt_rx_gain_swp_step_7; /*!< do not change */
  51. uint8_t bt_rx_gain_swp_step_8; /*!< do not change */
  52. uint8_t bt_rx_gain_swp_step_9; /*!< do not change */
  53. uint8_t bt_rx_gain_swp_step_10; /*!< do not change */
  54. uint8_t bt_rx_gain_swp_step_11; /*!< do not change */
  55. uint8_t bt_rx_gain_swp_step_12; /*!< do not change */
  56. uint8_t bt_rx_gain_swp_step_13; /*!< do not change */
  57. uint8_t bt_rx_gain_swp_step_14; /*!< do not change */
  58. uint8_t bt_rx_gain_swp_step_15; /*!< do not change */
  59. uint8_t gain_cmp_1; /*!< do not change */
  60. uint8_t gain_cmp_6; /*!< do not change */
  61. uint8_t gain_cmp_11; /*!< do not change */
  62. uint8_t gain_cmp_ext2_1; /*!< do not change */
  63. uint8_t gain_cmp_ext2_6; /*!< do not change */
  64. uint8_t gain_cmp_ext2_11; /*!< do not change */
  65. uint8_t gain_cmp_ext3_1; /*!< do not change */
  66. uint8_t gain_cmp_ext3_6; /*!< do not change */
  67. uint8_t gain_cmp_ext3_11; /*!< do not change */
  68. uint8_t gain_cmp_bt_ofs_1; /*!< do not change */
  69. uint8_t gain_cmp_bt_ofs_6; /*!< do not change */
  70. uint8_t gain_cmp_bt_ofs_11; /*!< do not change */
  71. uint8_t target_power_qdb_0; /*!< 78 means target power is 78/4=19.5dbm */
  72. uint8_t target_power_qdb_1; /*!< 76 means target power is 76/4=19dbm */
  73. uint8_t target_power_qdb_2; /*!< 74 means target power is 74/4=18.5dbm */
  74. uint8_t target_power_qdb_3; /*!< 68 means target power is 68/4=17dbm */
  75. uint8_t target_power_qdb_4; /*!< 64 means target power is 64/4=16dbm */
  76. uint8_t target_power_qdb_5; /*!< 52 means target power is 52/4=13dbm */
  77. uint8_t target_power_index_mcs0; /*!< target power index is 0, means target power is target_power_qdb_0 19.5dbm; (1m,2m,5.5m,11m,6m,9m) */
  78. uint8_t target_power_index_mcs1; /*!< target power index is 0, means target power is target_power_qdb_0 19.5dbm; (12m) */
  79. uint8_t target_power_index_mcs2; /*!< target power index is 1, means target power is target_power_qdb_1 19dbm; (18m) */
  80. uint8_t target_power_index_mcs3; /*!< target power index is 1, means target power is target_power_qdb_1 19dbm; (24m) */
  81. uint8_t target_power_index_mcs4; /*!< target power index is 2, means target power is target_power_qdb_2 18.5dbm; (36m) */
  82. uint8_t target_power_index_mcs5; /*!< target power index is 3, means target power is target_power_qdb_3 17dbm; (48m) */
  83. uint8_t target_power_index_mcs6; /*!< target power index is 4, means target power is target_power_qdb_4 16dbm; (54m) */
  84. uint8_t target_power_index_mcs7; /*!< target power index is 5, means target power is target_power_qdb_5 13dbm */
  85. uint8_t pwr_ind_11b_en; /*!< 0: 11b power is same as mcs0 and 6m, 1: 11b power different with OFDM */
  86. uint8_t pwr_ind_11b_0; /*!< 1m, 2m power index [0~5] */
  87. uint8_t pwr_ind_11b_1; /*!< 5.5m, 11m power index [0~5] */
  88. uint8_t chan_backoff_en; /*!< 0: channel backoff disable, 1:channel backoff enable */
  89. uint8_t chan1_power_backoff_qdb; /*!< 4 means backoff is 1db */
  90. uint8_t chan2_power_backoff_qdb; /*!< see chan1_power_backoff_qdb */
  91. uint8_t chan3_power_backoff_qdb; /*!< chan1_power_backoff_qdb */
  92. uint8_t chan4_power_backoff_qdb; /*!< chan1_power_backoff_qdb */
  93. uint8_t chan5_power_backoff_qdb; /*!< chan1_power_backoff_qdb */
  94. uint8_t chan6_power_backoff_qdb; /*!< chan1_power_backoff_qdb */
  95. uint8_t chan7_power_backoff_qdb; /*!< chan1_power_backoff_qdb */
  96. uint8_t chan8_power_backoff_qdb; /*!< chan1_power_backoff_qdb */
  97. uint8_t chan9_power_backoff_qdb; /*!< chan1_power_backoff_qdb */
  98. uint8_t chan10_power_backoff_qdb; /*!< chan1_power_backoff_qdb */
  99. uint8_t chan11_power_backoff_qdb; /*!< chan1_power_backoff_qdb */
  100. uint8_t chan12_power_backoff_qdb; /*!< chan1_power_backoff_qdb */
  101. uint8_t chan13_power_backoff_qdb; /*!< chan1_power_backoff_qdb */
  102. uint8_t chan14_power_backoff_qdb; /*!< chan1_power_backoff_qdb */
  103. uint8_t chan1_rate_backoff_index; /*!< if bit i is set, backoff data rate is target_power_qdb_i */
  104. uint8_t chan2_rate_backoff_index; /*!< see chan1_rate_backoff_index */
  105. uint8_t chan3_rate_backoff_index; /*!< see chan1_rate_backoff_index */
  106. uint8_t chan4_rate_backoff_index; /*!< see chan1_rate_backoff_index */
  107. uint8_t chan5_rate_backoff_index; /*!< see chan1_rate_backoff_index */
  108. uint8_t chan6_rate_backoff_index; /*!< see chan1_rate_backoff_index */
  109. uint8_t chan7_rate_backoff_index; /*!< see chan1_rate_backoff_index */
  110. uint8_t chan8_rate_backoff_index; /*!< see chan1_rate_backoff_index */
  111. uint8_t chan9_rate_backoff_index; /*!< see chan1_rate_backoff_index */
  112. uint8_t chan10_rate_backoff_index; /*!< see chan1_rate_backoff_index */
  113. uint8_t chan11_rate_backoff_index; /*!< see chan1_rate_backoff_index */
  114. uint8_t chan12_rate_backoff_index; /*!< see chan1_rate_backoff_index */
  115. uint8_t chan13_rate_backoff_index; /*!< see chan1_rate_backoff_index */
  116. uint8_t chan14_rate_backoff_index; /*!< see chan1_rate_backoff_index */
  117. uint8_t spur_freq_cfg_msb_1; /*!< first spur: */
  118. uint8_t spur_freq_cfg_1; /*!< spur_freq_cfg = (spur_freq_cfg_msb_1 <<8) | spur_freq_cfg_1 */
  119. uint8_t spur_freq_cfg_div_1; /*!< spur_freq=spur_freq_cfg/spur_freq_cfg_div_1 */
  120. uint8_t spur_freq_en_h_1; /*!< the seventh bit for total enable */
  121. uint8_t spur_freq_en_l_1; /*!< each bit for 1 channel, and use [spur_freq_en_h, spur_freq_en_l] to select the spur's channel priority */
  122. uint8_t spur_freq_cfg_msb_2; /*!< second spur: */
  123. uint8_t spur_freq_cfg_2; /*!< spur_freq_cfg = (spur_freq_cfg_msb_2 <<8) | spur_freq_cfg_2 */
  124. uint8_t spur_freq_cfg_div_2; /*!< spur_freq=spur_freq_cfg/spur_freq_cfg_div_2 */
  125. uint8_t spur_freq_en_h_2; /*!< the seventh bit for total enable */
  126. uint8_t spur_freq_en_l_2; /*!< each bit for 1 channel, and use [spur_freq_en_h, spur_freq_en_l] to select the spur's channel priority */
  127. uint8_t spur_freq_cfg_msb_3; /*!< third spur: */
  128. uint8_t spur_freq_cfg_3; /*!< spur_freq_cfg = (spur_freq_cfg_msb_3 <<8) | spur_freq_cfg_3 */
  129. uint8_t spur_freq_cfg_div_3; /*!< spur_freq=spur_freq_cfg/spur_freq_cfg_div_3 */
  130. uint8_t spur_freq_en_h_3; /*!< the seventh bit for total enable */
  131. uint8_t spur_freq_en_l_3; /*!< each bit for 1 channel, and use [spur_freq_en_h, spur_freq_en_l] to select the spur's channel priority, */
  132. uint8_t reserved[23]; /*!< reserved for future expansion */
  133. } esp_phy_init_data_t;
  134. /**
  135. * @brief Opaque PHY calibration data
  136. */
  137. typedef struct {
  138. uint8_t opaque[1904]; /*!< calibration data */
  139. } esp_phy_calibration_data_t;
  140. typedef enum {
  141. PHY_RF_CAL_PARTIAL = 0x00000000, /*!< Do part of RF calibration. This should be used after power-on reset. */
  142. PHY_RF_CAL_NONE = 0x00000001, /*!< Don't do any RF calibration. This mode is only suggested to be used after deep sleep reset. */
  143. PHY_RF_CAL_FULL = 0x00000002 /*!< Do full RF calibration. Produces best results, but also consumes a lot of time and current. Suggested to be used once. */
  144. } esp_phy_calibration_mode_t;
  145. /**
  146. * @brief Get PHY init data
  147. *
  148. * If "Use a partition to store PHY init data" option is set in menuconfig,
  149. * This function will load PHY init data from a partition. Otherwise,
  150. * PHY init data will be compiled into the application itself, and this function
  151. * will return a pointer to PHY init data located in read-only memory (DROM).
  152. *
  153. * If "Use a partition to store PHY init data" option is enabled, this function
  154. * may return NULL if the data loaded from flash is not valid.
  155. *
  156. * @note Call esp_phy_release_init_data to release the pointer obtained using
  157. * this function after the call to esp_wifi_init.
  158. *
  159. * @return pointer to PHY init data structure
  160. */
  161. const esp_phy_init_data_t* esp_phy_get_init_data();
  162. /**
  163. * @brief Release PHY init data
  164. * @param data pointer to PHY init data structure obtained from
  165. * esp_phy_get_init_data function
  166. */
  167. void esp_phy_release_init_data(const esp_phy_init_data_t* data);
  168. /**
  169. * @brief Function called by esp_phy_init to load PHY calibration data
  170. *
  171. * This is a convenience function which can be used to load PHY calibration
  172. * data from NVS. Data can be stored to NVS using esp_phy_store_cal_data_to_nvs
  173. * function.
  174. *
  175. * If calibration data is not present in the NVS, or
  176. * data is not valid (was obtained for a chip with a different MAC address,
  177. * or obtained for a different version of software), this function will
  178. * return an error.
  179. *
  180. * If "Initialize PHY in startup code" option is set in menuconfig, this
  181. * function will be used to load calibration data. To provide a different
  182. * mechanism for loading calibration data, disable
  183. * "Initialize PHY in startup code" option in menuconfig and call esp_phy_init
  184. * function from the application. For an example usage of esp_phy_init and
  185. * this function, see do_phy_init function in cpu_start.c
  186. *
  187. * @param out_cal_data pointer to calibration data structure to be filled with
  188. * loaded data.
  189. * @return ESP_OK on success
  190. */
  191. esp_err_t esp_phy_load_cal_data_from_nvs(esp_phy_calibration_data_t* out_cal_data);
  192. /**
  193. * @brief Function called by esp_phy_init to store PHY calibration data
  194. *
  195. * This is a convenience function which can be used to store PHY calibration
  196. * data to the NVS. Calibration data is returned by esp_phy_init function.
  197. * Data saved using this function to the NVS can later be loaded using
  198. * esp_phy_store_cal_data_to_nvs function.
  199. *
  200. * If "Initialize PHY in startup code" option is set in menuconfig, this
  201. * function will be used to store calibration data. To provide a different
  202. * mechanism for storing calibration data, disable
  203. * "Initialize PHY in startup code" option in menuconfig and call esp_phy_init
  204. * function from the application.
  205. *
  206. * @param cal_data pointer to calibration data which has to be saved.
  207. * @return ESP_OK on success
  208. */
  209. esp_err_t esp_phy_store_cal_data_to_nvs(const esp_phy_calibration_data_t* cal_data);
  210. /**
  211. * @brief Initialize PHY module
  212. *
  213. * PHY module should be initialized in order to use WiFi or BT.
  214. * If "Initialize PHY in startup code" option is set in menuconfig,
  215. * this function will be called automatically before app_main is called,
  216. * using parameters obtained from esp_phy_get_init_data.
  217. *
  218. * Applications which don't need to enable PHY on every start up should
  219. * disable this menuconfig option and call esp_phy_init before calling
  220. * esp_wifi_init or bt_controller_init. See do_phy_init function in
  221. * cpu_start.c for an example of using this function.
  222. *
  223. * @param init_data PHY parameters. Default set of parameters can
  224. * be obtained by calling esp_phy_get_default_init_data
  225. * function.
  226. * @param mode Calibration mode (Full, partial, or no calibration)
  227. * @param[inout] calibration_data
  228. * @return ESP_OK on success.
  229. */
  230. esp_err_t esp_phy_init(const esp_phy_init_data_t* init_data,
  231. esp_phy_calibration_mode_t mode, esp_phy_calibration_data_t* calibration_data);
  232. #ifdef __cplusplus
  233. }
  234. #endif