test_i2c.cpp 15 KB

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  1. // Copyright 2020 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. #include "unity.h"
  15. #include "unity_cxx.hpp"
  16. #include <limits>
  17. #include <stdio.h>
  18. #include <iostream>
  19. #include "test_utils.h" // unity_send_signal
  20. #include "i2c_cxx.hpp"
  21. #ifdef __cpp_exceptions
  22. using namespace std;
  23. using namespace idf;
  24. #define TAG "I2C Test"
  25. #define ADDR 0x47
  26. #define MAGIC_TEST_NUMBER 47
  27. #define I2C_SLAVE_NUM I2C_NUM_0 /*!<I2C port number for slave dev */
  28. #define I2C_SLAVE_SCL_IO 19 /*!<gpio number for i2c slave clock */
  29. #define I2C_SLAVE_SDA_IO 18 /*!<gpio number for i2c slave data */
  30. #define I2C_MASTER_NUM I2C_NUM_1 /*!< I2C port number for master dev */
  31. #define I2C_MASTER_SCL_IO 19 /*!< gpio number for I2C master clock */
  32. #define I2C_MASTER_SDA_IO 18 /*!< gpio number for I2C master data */
  33. struct MasterFixture {
  34. MasterFixture(const vector<uint8_t> &data_arg = {47u}) :
  35. master(new I2CMaster(I2C_MASTER_NUM, I2C_MASTER_SCL_IO, I2C_MASTER_SDA_IO, 400000)),
  36. data(data_arg) { }
  37. std::shared_ptr<I2CMaster> master;
  38. vector<uint8_t> data;
  39. };
  40. TEST_CASE("I2CMaster GPIO out of range", "[cxx i2c][leaks=300]")
  41. {
  42. TEST_THROW(I2CMaster(0, 255, 255, 400000), I2CException);
  43. }
  44. TEST_CASE("I2CMaster SDA and SCL equal", "[cxx i2c][leaks=300]")
  45. {
  46. TEST_THROW(I2CMaster(0, 0, 0, 400000), I2CException);
  47. }
  48. // TODO The I2C driver tests are disabled, so disable them here, too. Probably due to no runners.
  49. #if !TEMPORARY_DISABLED_FOR_TARGETS(ESP32S2)
  50. static void i2c_slave_read_raw_byte(void)
  51. {
  52. I2CSlave slave(I2C_SLAVE_NUM, I2C_SLAVE_SCL_IO, I2C_SLAVE_SDA_IO, ADDR, 512, 512);
  53. uint8_t buffer = 0;
  54. unity_send_signal("slave init");
  55. unity_wait_for_signal("master write");
  56. TEST_ASSERT_EQUAL(1, slave.read_raw(&buffer, 1, chrono::milliseconds(1000)));
  57. TEST_ASSERT_EQUAL(MAGIC_TEST_NUMBER, buffer);
  58. }
  59. static void i2c_slave_write_raw_byte(void)
  60. {
  61. I2CSlave slave(I2C_SLAVE_NUM, I2C_SLAVE_SCL_IO, I2C_SLAVE_SDA_IO, ADDR, 512, 512);
  62. uint8_t WRITE_BUFFER = MAGIC_TEST_NUMBER;
  63. unity_wait_for_signal("master init");
  64. TEST_ASSERT_EQUAL(1, slave.write_raw(&WRITE_BUFFER, 1, chrono::milliseconds(1000)));
  65. unity_send_signal("slave write");
  66. // This last synchronization is necessary to prevent slave from going out of scope hence de-initializing already
  67. // before master has read
  68. unity_wait_for_signal("master read done");
  69. }
  70. static void i2c_slave_read_multiple_raw_bytes(void)
  71. {
  72. I2CSlave slave(I2C_SLAVE_NUM, I2C_SLAVE_SCL_IO, I2C_SLAVE_SDA_IO, ADDR, 512, 512);
  73. uint8_t buffer [8] = {};
  74. unity_send_signal("slave init");
  75. unity_wait_for_signal("master write");
  76. TEST_ASSERT_EQUAL(8, slave.read_raw(buffer, 8, chrono::milliseconds(1000)));
  77. for (int i = 0; i < 8; i++) {
  78. TEST_ASSERT_EQUAL(i, buffer[i]);
  79. }
  80. }
  81. static void i2c_slave_write_multiple_raw_bytes(void)
  82. {
  83. I2CSlave slave(1, I2C_SLAVE_SCL_IO, I2C_SLAVE_SDA_IO, ADDR, 512, 512);
  84. uint8_t WRITE_BUFFER [8] = {0, 1, 2, 3, 4, 5, 6, 7};
  85. unity_wait_for_signal("master init");
  86. TEST_ASSERT_EQUAL(8, slave.write_raw(WRITE_BUFFER, 8, chrono::milliseconds(1000)));
  87. unity_send_signal("slave write");
  88. unity_wait_for_signal("master read done");
  89. }
  90. static void i2c_slave_composed_trans(void)
  91. {
  92. I2CSlave slave(1, I2C_SLAVE_SCL_IO, I2C_SLAVE_SDA_IO, ADDR, 512, 512);
  93. size_t BUF_SIZE = 2;
  94. const uint8_t SLAVE_WRITE_BUFFER [BUF_SIZE] = {0xde, 0xad};
  95. uint8_t slave_read_buffer = 0;
  96. unity_send_signal("slave init");
  97. TEST_ASSERT_EQUAL(BUF_SIZE, slave.write_raw(SLAVE_WRITE_BUFFER, BUF_SIZE, chrono::milliseconds(1000)));
  98. unity_wait_for_signal("master transfer");
  99. TEST_ASSERT_EQUAL(1, slave.read_raw(&slave_read_buffer, 1, chrono::milliseconds(1000)));
  100. TEST_ASSERT_EQUAL(MAGIC_TEST_NUMBER, slave_read_buffer);
  101. }
  102. static void i2c_I2CRead(void)
  103. {
  104. // here only to install/uninstall driver
  105. MasterFixture fix;
  106. unity_send_signal("master init");
  107. unity_wait_for_signal("slave write");
  108. I2CRead reader(1);
  109. vector<uint8_t> data = reader.do_transfer(I2C_MASTER_NUM, ADDR);
  110. unity_send_signal("master read done");
  111. TEST_ASSERT_EQUAL(1, data.size());
  112. TEST_ASSERT_EQUAL(MAGIC_TEST_NUMBER, data[0]);
  113. }
  114. TEST_CASE_MULTIPLE_DEVICES("I2CRead do_transfer", "[cxx i2c][test_env=UT_T2_I2C][timeout=150]",
  115. i2c_I2CRead, i2c_slave_write_raw_byte);
  116. static void i2c_I2CWrite(void)
  117. {
  118. MasterFixture fix;
  119. I2CWrite writer(fix.data);
  120. unity_wait_for_signal("slave init");
  121. writer.do_transfer(I2C_MASTER_NUM, ADDR);
  122. unity_send_signal("master write");
  123. }
  124. TEST_CASE_MULTIPLE_DEVICES("I2CWrite do_transfer", "[cxx i2c][test_env=UT_T2_I2C][timeout=150]",
  125. i2c_I2CWrite, i2c_slave_read_raw_byte);
  126. static void i2c_master_read_raw_byte(void)
  127. {
  128. MasterFixture fix;
  129. unity_send_signal("master init");
  130. unity_wait_for_signal("slave write");
  131. std::shared_ptr<I2CRead> reader(new I2CRead(1));
  132. future<vector<uint8_t> > fut = fix.master->transfer(reader, ADDR);
  133. vector<uint8_t> data;
  134. data = fut.get();
  135. unity_send_signal("master read done");
  136. TEST_ASSERT_EQUAL(1, data.size());
  137. TEST_ASSERT_EQUAL(MAGIC_TEST_NUMBER, data[0]);
  138. }
  139. TEST_CASE_MULTIPLE_DEVICES("I2CMaster read one byte", "[cxx i2c][test_env=UT_T2_I2C][timeout=150]",
  140. i2c_master_read_raw_byte, i2c_slave_write_raw_byte);
  141. static void i2c_master_write_raw_byte(void)
  142. {
  143. MasterFixture fix;
  144. unity_wait_for_signal("slave init");
  145. std::shared_ptr<I2CWrite> writer(new I2CWrite(fix.data));
  146. future<void> fut = fix.master->transfer(writer, ADDR);
  147. fut.get();
  148. unity_send_signal("master write");
  149. }
  150. TEST_CASE_MULTIPLE_DEVICES("I2CMaster write one byte", "[cxx i2c][test_env=UT_T2_I2C][timeout=150]",
  151. i2c_master_write_raw_byte, i2c_slave_read_raw_byte);
  152. static void i2c_master_read_multiple_raw_bytes(void)
  153. {
  154. MasterFixture fix;
  155. unity_send_signal("master init");
  156. unity_wait_for_signal("slave write");
  157. std::shared_ptr<I2CRead> reader(new I2CRead(8));
  158. future<vector<uint8_t> > fut = fix.master->transfer(reader, ADDR);
  159. vector<uint8_t> data = fut.get();
  160. unity_send_signal("master read done");
  161. TEST_ASSERT_EQUAL(8, data.size());
  162. for (int i = 0; i < 8; i++) {
  163. TEST_ASSERT_EQUAL(i, data[i]);
  164. }
  165. }
  166. TEST_CASE_MULTIPLE_DEVICES("I2CMaster read multiple bytes", "[cxx i2c][test_env=UT_T2_I2C][timeout=150]",
  167. i2c_master_read_multiple_raw_bytes, i2c_slave_write_multiple_raw_bytes);
  168. static void i2c_master_write_multiple_raw_bytes(void)
  169. {
  170. MasterFixture fix({0, 1, 2, 3, 4, 5, 6, 7});
  171. unity_wait_for_signal("slave init");
  172. std::shared_ptr<I2CWrite> writer(new I2CWrite(fix.data));
  173. future<void> fut = fix.master->transfer(writer, ADDR);
  174. fut.get();
  175. unity_send_signal("master write");
  176. }
  177. TEST_CASE_MULTIPLE_DEVICES("I2CMaster write multiple bytes", "[cxx i2c][test_env=UT_T2_I2C][timeout=150]",
  178. i2c_master_write_multiple_raw_bytes, i2c_slave_read_multiple_raw_bytes);
  179. static void i2c_master_sync_read(void)
  180. {
  181. MasterFixture fix;
  182. unity_send_signal("master init");
  183. unity_wait_for_signal("slave write");
  184. vector<uint8_t> data = fix.master->sync_read(ADDR, 1);
  185. unity_send_signal("master read done");
  186. TEST_ASSERT_EQUAL(1, data.size());
  187. TEST_ASSERT_EQUAL(MAGIC_TEST_NUMBER, data[0]);
  188. }
  189. TEST_CASE_MULTIPLE_DEVICES("I2CMaster sync read", "[cxx i2c][test_env=UT_T2_I2C][timeout=150]",
  190. i2c_master_sync_read, i2c_slave_write_raw_byte);
  191. static void i2c_master_sync_write(void)
  192. {
  193. MasterFixture fix;
  194. unity_wait_for_signal("slave init");
  195. fix.master->sync_write(ADDR, fix.data);
  196. unity_send_signal("master write");
  197. }
  198. TEST_CASE_MULTIPLE_DEVICES("I2CMaster sync write", "[cxx i2c][test_env=UT_T2_I2C][timeout=150]",
  199. i2c_master_sync_write, i2c_slave_read_raw_byte);
  200. static void i2c_master_sync_transfer(void)
  201. {
  202. MasterFixture fix;
  203. size_t READ_SIZE = 2;
  204. const uint8_t DESIRED_READ [READ_SIZE] = {0xde, 0xad};
  205. unity_wait_for_signal("slave init");
  206. vector<uint8_t> read_data = fix.master->sync_transfer(ADDR, fix.data, READ_SIZE);
  207. unity_send_signal("master transfer");
  208. TEST_ASSERT_EQUAL(READ_SIZE, read_data.size());
  209. for (int i = 0; i < READ_SIZE; i++) {
  210. TEST_ASSERT_EQUAL(DESIRED_READ[i], read_data[i]);
  211. }
  212. }
  213. TEST_CASE_MULTIPLE_DEVICES("I2CMaster sync transfer", "[cxx i2c][test_env=UT_T2_I2C][timeout=150]",
  214. i2c_master_sync_transfer, i2c_slave_composed_trans);
  215. static void i2c_master_composed_trans(void)
  216. {
  217. MasterFixture fix;
  218. size_t BUF_SIZE = 2;
  219. const uint8_t SLAVE_WRITE_BUFFER [BUF_SIZE] = {0xde, 0xad};
  220. std::shared_ptr<I2CComposed> composed_transfer(new I2CComposed);
  221. composed_transfer->add_write({47u});
  222. composed_transfer->add_read(BUF_SIZE);
  223. unity_wait_for_signal("slave init");
  224. future<vector<vector<uint8_t> > > result = fix.master->transfer(composed_transfer, ADDR);
  225. unity_send_signal("master transfer");
  226. vector<vector<uint8_t> > read_data = result.get();
  227. TEST_ASSERT_EQUAL(1, read_data.size());
  228. TEST_ASSERT_EQUAL(2, read_data[0].size());
  229. for (int i = 0; i < BUF_SIZE; i++) {
  230. TEST_ASSERT_EQUAL(SLAVE_WRITE_BUFFER[i], read_data[0][i]);
  231. }
  232. }
  233. TEST_CASE_MULTIPLE_DEVICES("I2CMaster Composed transfer", "[cxx i2c][test_env=UT_T2_I2C][timeout=150]",
  234. i2c_master_composed_trans, i2c_slave_composed_trans);
  235. static void i2c_slave_write_multiple_raw_bytes_twice(void)
  236. {
  237. I2CSlave slave(1, I2C_SLAVE_SCL_IO, I2C_SLAVE_SDA_IO, ADDR, 512, 512);
  238. const size_t BUF_SIZE = 8;
  239. uint8_t WRITE_BUFFER [BUF_SIZE] = {0, 1, 2, 3, 4, 5, 6, 7};
  240. unity_wait_for_signal("master init");
  241. TEST_ASSERT_EQUAL(BUF_SIZE, slave.write_raw(WRITE_BUFFER, BUF_SIZE, chrono::milliseconds(1000)));
  242. TEST_ASSERT_EQUAL(BUF_SIZE, slave.write_raw(WRITE_BUFFER, BUF_SIZE, chrono::milliseconds(1000)));
  243. unity_send_signal("slave write");
  244. unity_wait_for_signal("master read done");
  245. }
  246. static void i2c_master_reuse_read_multiple_raw_bytes(void)
  247. {
  248. MasterFixture fix;
  249. unity_send_signal("master init");
  250. unity_wait_for_signal("slave write");
  251. const size_t BUF_SIZE = 8;
  252. std::shared_ptr<I2CRead> reader(new I2CRead(BUF_SIZE));
  253. future<vector<uint8_t> > fut;
  254. fut = fix.master->transfer(reader, ADDR);
  255. vector<uint8_t> data1 = fut.get();
  256. fut = fix.master->transfer(reader, ADDR);
  257. vector<uint8_t> data2 = fut.get();
  258. unity_send_signal("master read done");
  259. TEST_ASSERT_EQUAL(BUF_SIZE, data1.size());
  260. TEST_ASSERT_EQUAL(BUF_SIZE, data2.size());
  261. for (int i = 0; i < BUF_SIZE; i++) {
  262. TEST_ASSERT_EQUAL(i, data1[i]);
  263. TEST_ASSERT_EQUAL(i, data2[i]);
  264. }
  265. }
  266. TEST_CASE_MULTIPLE_DEVICES("I2CMaster reuse read multiple bytes", "[cxx i2c][test_env=UT_T2_I2C][timeout=150]",
  267. i2c_master_reuse_read_multiple_raw_bytes, i2c_slave_write_multiple_raw_bytes_twice);
  268. static void i2c_slave_read_multiple_raw_bytes_twice(void)
  269. {
  270. I2CSlave slave(I2C_SLAVE_NUM, I2C_SLAVE_SCL_IO, I2C_SLAVE_SDA_IO, ADDR, 512, 512);
  271. const size_t BUF_SIZE = 8;
  272. uint8_t buffer1 [BUF_SIZE] = {};
  273. uint8_t buffer2 [BUF_SIZE] = {};
  274. unity_send_signal("slave init");
  275. unity_wait_for_signal("master write");
  276. TEST_ASSERT_EQUAL(BUF_SIZE, slave.read_raw(buffer1, BUF_SIZE, chrono::milliseconds(1000)));
  277. TEST_ASSERT_EQUAL(BUF_SIZE, slave.read_raw(buffer2, BUF_SIZE, chrono::milliseconds(1000)));
  278. for (int i = 0; i < BUF_SIZE; i++) {
  279. TEST_ASSERT_EQUAL(i, buffer1[i]);
  280. TEST_ASSERT_EQUAL(i, buffer2[i]);
  281. }
  282. }
  283. static void i2c_master_reuse_write_multiple_raw_bytes(void)
  284. {
  285. MasterFixture fix({0, 1, 2, 3, 4, 5, 6, 7});
  286. unity_wait_for_signal("slave init");
  287. std::shared_ptr<I2CWrite> writer(new I2CWrite(fix.data));
  288. future<void> fut;
  289. fut = fix.master->transfer(writer, ADDR);
  290. fut.get();
  291. fut = fix.master->transfer(writer, ADDR);
  292. fut.get();
  293. unity_send_signal("master write");
  294. }
  295. TEST_CASE_MULTIPLE_DEVICES("I2CMaster reuse write multiple bytes", "[cxx i2c][test_env=UT_T2_I2C][timeout=150]",
  296. i2c_master_reuse_write_multiple_raw_bytes, i2c_slave_read_multiple_raw_bytes_twice);
  297. static void i2c_slave_composed_trans_twice(void)
  298. {
  299. I2CSlave slave(1, I2C_SLAVE_SCL_IO, I2C_SLAVE_SDA_IO, ADDR, 512, 512);
  300. size_t BUF_SIZE = 2;
  301. const uint8_t SLAVE_WRITE_BUFFER1 [BUF_SIZE] = {0xde, 0xad};
  302. const uint8_t SLAVE_WRITE_BUFFER2 [BUF_SIZE] = {0xbe, 0xef};
  303. uint8_t slave_read_buffer = 0;
  304. unity_send_signal("slave init");
  305. TEST_ASSERT_EQUAL(BUF_SIZE, slave.write_raw(SLAVE_WRITE_BUFFER1, BUF_SIZE, chrono::milliseconds(1000)));
  306. TEST_ASSERT_EQUAL(BUF_SIZE, slave.write_raw(SLAVE_WRITE_BUFFER2, BUF_SIZE, chrono::milliseconds(1000)));
  307. unity_wait_for_signal("master transfer");
  308. TEST_ASSERT_EQUAL(1, slave.read_raw(&slave_read_buffer, 1, chrono::milliseconds(1000)));
  309. TEST_ASSERT_EQUAL(MAGIC_TEST_NUMBER, slave_read_buffer);
  310. TEST_ASSERT_EQUAL(1, slave.read_raw(&slave_read_buffer, 1, chrono::milliseconds(1000)));
  311. TEST_ASSERT_EQUAL(MAGIC_TEST_NUMBER, slave_read_buffer);
  312. }
  313. static void i2c_master_reuse_composed_trans(void)
  314. {
  315. MasterFixture fix;
  316. size_t BUF_SIZE = 2;
  317. const uint8_t SLAVE_WRITE_BUFFER1 [BUF_SIZE] = {0xde, 0xad};
  318. const uint8_t SLAVE_WRITE_BUFFER2 [BUF_SIZE] = {0xbe, 0xef};
  319. std::shared_ptr<I2CComposed> composed_transfer(new I2CComposed);
  320. composed_transfer->add_write({47u});
  321. composed_transfer->add_read(BUF_SIZE);
  322. unity_wait_for_signal("slave init");
  323. vector<vector<uint8_t> > read_data1 = fix.master->transfer(composed_transfer, ADDR).get();
  324. vector<vector<uint8_t> > read_data2 = fix.master->transfer(composed_transfer, ADDR).get();
  325. unity_send_signal("master transfer");
  326. TEST_ASSERT_EQUAL(1, read_data1.size());
  327. TEST_ASSERT_EQUAL(2, read_data1[0].size());
  328. TEST_ASSERT_EQUAL(1, read_data2.size());
  329. TEST_ASSERT_EQUAL(2, read_data2[0].size());
  330. for (int i = 0; i < BUF_SIZE; i++) {
  331. TEST_ASSERT_EQUAL(SLAVE_WRITE_BUFFER1[i], read_data1[0][i]);
  332. TEST_ASSERT_EQUAL(SLAVE_WRITE_BUFFER2[i], read_data2[0][i]);
  333. }
  334. }
  335. TEST_CASE_MULTIPLE_DEVICES("I2CMaster reuse composed transfer", "[cxx i2c][test_env=UT_T2_I2C][timeout=150]",
  336. i2c_master_reuse_composed_trans, i2c_slave_composed_trans_twice);
  337. #endif //TEMPORARY_DISABLED_FOR_TARGETS(ESP32S2)
  338. #endif // __cpp_exceptions