example_common.c 11 KB

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  1. /* Copyright 2020-2023 Espressif Systems (Shanghai) CO 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. */
  15. #include <stdio.h>
  16. #include <stdlib.h>
  17. #include <string.h>
  18. #include <inttypes.h>
  19. #include <sys/param.h>
  20. #include "esp_loader_io.h"
  21. #include "esp_loader.h"
  22. #include "example_common.h"
  23. #ifndef SINGLE_TARGET_SUPPORT
  24. // For esp8266, esp32, esp32s2
  25. #define BOOTLOADER_ADDRESS_V0 0x1000
  26. // For esp32s3 and later chips
  27. #define BOOTLOADER_ADDRESS_V1 0x0
  28. #define PARTITION_ADDRESS 0x8000
  29. #define APPLICATION_ADDRESS 0x10000
  30. extern const uint8_t ESP32_bootloader_bin[];
  31. extern const uint32_t ESP32_bootloader_bin_size;
  32. extern const uint8_t ESP32_hello_world_bin[];
  33. extern const uint32_t ESP32_hello_world_bin_size;
  34. extern const uint8_t ESP32_partition_table_bin[];
  35. extern const uint32_t ESP32_partition_table_bin_size;
  36. extern const uint8_t ESP32_S2_bootloader_bin[];
  37. extern const uint32_t ESP32_S2_bootloader_bin_size;
  38. extern const uint8_t ESP32_S2_hello_world_bin[];
  39. extern const uint32_t ESP32_S2_hello_world_bin_size;
  40. extern const uint8_t ESP32_S2_partition_table_bin[];
  41. extern const uint32_t ESP32_S2_partition_table_bin_size;
  42. extern const uint8_t ESP8266_bootloader_bin[];
  43. extern const uint32_t ESP8266_bootloader_bin_size;
  44. extern const uint8_t ESP8266_hello_world_bin[];
  45. extern const uint32_t ESP8266_hello_world_bin_size;
  46. extern const uint8_t ESP8266_partition_table_bin[];
  47. extern const uint32_t ESP8266_partition_table_bin_size;
  48. extern const uint8_t ESP32_H4_bootloader_bin[];
  49. extern const uint32_t ESP32_H4_bootloader_bin_size;
  50. extern const uint8_t ESP32_H4_hello_world_bin[];
  51. extern const uint32_t ESP32_H4_hello_world_bin_size;
  52. extern const uint8_t ESP32_H4_partition_table_bin[];
  53. extern const uint32_t ESP32_H4_partition_table_bin_size;
  54. extern const uint8_t ESP32_H2_bootloader_bin[];
  55. extern const uint32_t ESP32_H2_bootloader_bin_size;
  56. extern const uint8_t ESP32_H2_hello_world_bin[];
  57. extern const uint32_t ESP32_H2_hello_world_bin_size;
  58. extern const uint8_t ESP32_H2_partition_table_bin[];
  59. extern const uint32_t ESP32_H2_partition_table_bin_size;
  60. void get_example_binaries(target_chip_t target, example_binaries_t *bins)
  61. {
  62. if (target == ESP8266_CHIP) {
  63. bins->boot.data = ESP8266_bootloader_bin;
  64. bins->boot.size = ESP8266_bootloader_bin_size;
  65. bins->boot.addr = BOOTLOADER_ADDRESS_V0;
  66. bins->part.data = ESP8266_partition_table_bin;
  67. bins->part.size = ESP8266_partition_table_bin_size;
  68. bins->part.addr = PARTITION_ADDRESS;
  69. bins->app.data = ESP8266_hello_world_bin;
  70. bins->app.size = ESP8266_hello_world_bin_size;
  71. bins->app.addr = APPLICATION_ADDRESS;
  72. } else if (target == ESP32_CHIP) {
  73. bins->boot.data = ESP32_bootloader_bin;
  74. bins->boot.size = ESP32_bootloader_bin_size;
  75. bins->boot.addr = BOOTLOADER_ADDRESS_V0;
  76. bins->part.data = ESP32_partition_table_bin;
  77. bins->part.size = ESP32_partition_table_bin_size;
  78. bins->part.addr = PARTITION_ADDRESS;
  79. bins->app.data = ESP32_hello_world_bin;
  80. bins->app.size = ESP32_hello_world_bin_size;
  81. bins->app.addr = APPLICATION_ADDRESS;
  82. } else if (target == ESP32S2_CHIP) {
  83. bins->boot.data = ESP32_S2_bootloader_bin;
  84. bins->boot.size = ESP32_S2_bootloader_bin_size;
  85. bins->boot.addr = BOOTLOADER_ADDRESS_V0;
  86. bins->part.data = ESP32_S2_partition_table_bin;
  87. bins->part.size = ESP32_S2_partition_table_bin_size;
  88. bins->part.addr = PARTITION_ADDRESS;
  89. bins->app.data = ESP32_S2_hello_world_bin;
  90. bins->app.size = ESP32_S2_hello_world_bin_size;
  91. bins->app.addr = APPLICATION_ADDRESS;
  92. } else if (target == ESP32H4_CHIP){
  93. bins->boot.data = ESP32_H4_bootloader_bin;
  94. bins->boot.size = ESP32_H4_bootloader_bin_size;
  95. bins->boot.addr = BOOTLOADER_ADDRESS_V1;
  96. bins->part.data = ESP32_H4_partition_table_bin;
  97. bins->part.size = ESP32_H4_partition_table_bin_size;
  98. bins->part.addr = PARTITION_ADDRESS;
  99. bins->app.data = ESP32_H4_hello_world_bin;
  100. bins->app.size = ESP32_H4_hello_world_bin_size;
  101. bins->app.addr = APPLICATION_ADDRESS;
  102. } else if (target == ESP32H2_CHIP){
  103. bins->boot.data = ESP32_H2_bootloader_bin;
  104. bins->boot.size = ESP32_H2_bootloader_bin_size;
  105. bins->boot.addr = BOOTLOADER_ADDRESS_V1;
  106. bins->part.data = ESP32_H2_partition_table_bin;
  107. bins->part.size = ESP32_H2_partition_table_bin_size;
  108. bins->part.addr = PARTITION_ADDRESS;
  109. bins->app.data = ESP32_H2_hello_world_bin;
  110. bins->app.size = ESP32_H2_hello_world_bin_size;
  111. bins->app.addr = APPLICATION_ADDRESS;
  112. }else {
  113. abort();
  114. }
  115. }
  116. extern const uint8_t ESP32_app_bin[];
  117. extern const uint32_t ESP32_app_bin_size;
  118. extern const uint8_t ESP32_C2_app_bin[];
  119. extern const uint32_t ESP32_C2_app_bin_size;
  120. extern const uint8_t ESP32_C3_app_bin[];
  121. extern const uint32_t ESP32_C3_app_bin_size;
  122. extern const uint8_t ESP32_H2_app_bin[];
  123. extern const uint32_t ESP32_H2_app_bin_size;
  124. extern const uint8_t ESP32_H4_app_bin[];
  125. extern const uint32_t ESP32_H4_app_bin_size;
  126. extern const uint8_t ESP32_S3_app_bin[];
  127. extern const uint32_t ESP32_S3_app_bin_size;
  128. void get_example_ram_app_binary(target_chip_t target, example_ram_app_binary_t *bin)
  129. {
  130. switch (target) {
  131. case ESP32_CHIP: {
  132. bin->ram_app.data = ESP32_app_bin;
  133. bin->ram_app.size = ESP32_app_bin_size;
  134. break;
  135. }
  136. case ESP32C2_CHIP: {
  137. bin->ram_app.data = ESP32_C2_app_bin;
  138. bin->ram_app.size = ESP32_C2_app_bin_size;
  139. break;
  140. }
  141. case ESP32C3_CHIP: {
  142. bin->ram_app.data = ESP32_C3_app_bin;
  143. bin->ram_app.size = ESP32_C3_app_bin_size;
  144. break;
  145. }
  146. case ESP32H2_CHIP: {
  147. bin->ram_app.data = ESP32_H2_app_bin;
  148. bin->ram_app.size = ESP32_H2_app_bin_size;
  149. break;
  150. }
  151. case ESP32H4_CHIP: {
  152. bin->ram_app.data = ESP32_H4_app_bin;
  153. bin->ram_app.size = ESP32_H4_app_bin_size;
  154. break;
  155. }
  156. case ESP32S3_CHIP: {
  157. bin->ram_app.data = ESP32_S3_app_bin;
  158. bin->ram_app.size = ESP32_S3_app_bin_size;
  159. break;
  160. }
  161. default: {
  162. abort();
  163. }
  164. }
  165. }
  166. #endif
  167. esp_loader_error_t connect_to_target(uint32_t higher_transmission_rate)
  168. {
  169. esp_loader_connect_args_t connect_config = ESP_LOADER_CONNECT_DEFAULT();
  170. esp_loader_error_t err = esp_loader_connect(&connect_config);
  171. if (err != ESP_LOADER_SUCCESS) {
  172. printf("Cannot connect to target. Error: %u\n", err);
  173. return err;
  174. }
  175. printf("Connected to target\n");
  176. if (higher_transmission_rate && esp_loader_get_target() != ESP8266_CHIP) {
  177. err = esp_loader_change_transmission_rate(higher_transmission_rate);
  178. if (err == ESP_LOADER_ERROR_UNSUPPORTED_FUNC) {
  179. printf("ESP8266 does not support change transmission rate command.");
  180. return err;
  181. } else if (err != ESP_LOADER_SUCCESS) {
  182. printf("Unable to change transmission rate on target.");
  183. return err;
  184. } else {
  185. err = loader_port_change_transmission_rate(higher_transmission_rate);
  186. if (err != ESP_LOADER_SUCCESS) {
  187. printf("Unable to change transmission rate.");
  188. return err;
  189. }
  190. printf("Transmission rate changed changed\n");
  191. }
  192. }
  193. return ESP_LOADER_SUCCESS;
  194. }
  195. esp_loader_error_t flash_binary(const uint8_t *bin, size_t size, size_t address)
  196. {
  197. esp_loader_error_t err;
  198. static uint8_t payload[1024];
  199. const uint8_t *bin_addr = bin;
  200. printf("Erasing flash (this may take a while)...\n");
  201. err = esp_loader_flash_start(address, size, sizeof(payload));
  202. if (err != ESP_LOADER_SUCCESS) {
  203. printf("Erasing flash failed with error %d.\n", err);
  204. return err;
  205. }
  206. printf("Start programming\n");
  207. size_t binary_size = size;
  208. size_t written = 0;
  209. while (size > 0) {
  210. size_t to_read = MIN(size, sizeof(payload));
  211. memcpy(payload, bin_addr, to_read);
  212. err = esp_loader_flash_write(payload, to_read);
  213. if (err != ESP_LOADER_SUCCESS) {
  214. printf("\nPacket could not be written! Error %d.\n", err);
  215. return err;
  216. }
  217. size -= to_read;
  218. bin_addr += to_read;
  219. written += to_read;
  220. int progress = (int)(((float)written / binary_size) * 100);
  221. printf("\rProgress: %d %%", progress);
  222. fflush(stdout);
  223. };
  224. printf("\nFinished programming\n");
  225. #if MD5_ENABLED
  226. err = esp_loader_flash_verify();
  227. if (err == ESP_LOADER_ERROR_UNSUPPORTED_FUNC) {
  228. printf("ESP8266 does not support flash verify command.");
  229. return err;
  230. } else if (err != ESP_LOADER_SUCCESS) {
  231. printf("MD5 does not match. err: %d\n", err);
  232. return err;
  233. }
  234. printf("Flash verified\n");
  235. #endif
  236. return ESP_LOADER_SUCCESS;
  237. }
  238. esp_loader_error_t load_ram_binary(const uint8_t *bin)
  239. {
  240. printf("Start loading\n");
  241. esp_loader_error_t err;
  242. const example_bin_header_t *header = (const example_bin_header_t *)bin;
  243. example_bin_segment_t segments[header->segments];
  244. // Parse segments
  245. uint32_t seg;
  246. uint32_t *cur_seg_pos;
  247. for (seg=0, cur_seg_pos = (uint32_t *)(&bin[BIN_FIRST_SEGMENT_OFFSET]);
  248. seg < header->segments;
  249. seg++) {
  250. segments[seg].addr = *cur_seg_pos++;
  251. segments[seg].size = *cur_seg_pos++;
  252. segments[seg].data = (uint8_t *)cur_seg_pos;
  253. cur_seg_pos += (segments[seg].size) / 4;
  254. }
  255. // Download segments
  256. for (seg=0; seg < header->segments; seg++) {
  257. printf("Downloading %"PRIu32" bytes at 0x%08"PRIx32"...\n", segments[seg].size, segments[seg].addr);
  258. err = esp_loader_mem_start(segments[seg].addr, segments[seg].size, ESP_RAM_BLOCK);
  259. if (err != ESP_LOADER_SUCCESS) {
  260. printf("Loading ram start with error %d.\n", err);
  261. return err;
  262. }
  263. size_t remain_size = segments[seg].size;
  264. uint8_t *data_pos = segments[seg].data;
  265. while(remain_size > 0) {
  266. size_t data_size = MIN(ESP_RAM_BLOCK, remain_size);
  267. err = esp_loader_mem_write(data_pos, data_size);
  268. if (err != ESP_LOADER_SUCCESS) {
  269. printf("\nPacket could not be written! Error %d.\n", err);
  270. return err;
  271. }
  272. data_pos += data_size;
  273. remain_size -= data_size;
  274. }
  275. }
  276. err = esp_loader_mem_finish(header->entrypoint);
  277. if (err != ESP_LOADER_SUCCESS) {
  278. printf("\nLoad ram finish with Error %d.\n", err);
  279. return err;
  280. }
  281. printf("\nFinished loading\n");
  282. return ESP_LOADER_SUCCESS;
  283. }