iio-test-gts.c 15 KB

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  1. // SPDX-License-Identifier: GPL-2.0-only
  2. /* Unit tests for IIO light sensor gain-time-scale helpers
  3. *
  4. * Copyright (c) 2023 Matti Vaittinen <mazziesaccount@gmail.com>
  5. */
  6. #include <kunit/device.h>
  7. #include <kunit/test.h>
  8. #include <linux/device.h>
  9. #include <linux/iio/iio-gts-helper.h>
  10. #include <linux/iio/types.h>
  11. /*
  12. * Please, read the "rant" from the top of the lib/test_linear_ranges.c if
  13. * you see a line of helper code which is not being tested.
  14. *
  15. * Then, please look at the line which is not being tested. Is this line
  16. * somehow unusually complex? If answer is "no", then chances are that the
  17. * "development inertia" caused by adding a test exceeds the benefits.
  18. *
  19. * If yes, then adding a test is probably a good idea but please stop for a
  20. * moment and consider the effort of changing all the tests when code gets
  21. * refactored. Eventually it neeeds to be.
  22. */
  23. #define TEST_TSEL_50 1
  24. #define TEST_TSEL_X_MIN TEST_TSEL_50
  25. #define TEST_TSEL_100 0
  26. #define TEST_TSEL_200 2
  27. #define TEST_TSEL_400 4
  28. #define TEST_TSEL_X_MAX TEST_TSEL_400
  29. #define TEST_GSEL_1 0x00
  30. #define TEST_GSEL_X_MIN TEST_GSEL_1
  31. #define TEST_GSEL_4 0x08
  32. #define TEST_GSEL_16 0x0a
  33. #define TEST_GSEL_32 0x0b
  34. #define TEST_GSEL_64 0x0c
  35. #define TEST_GSEL_256 0x18
  36. #define TEST_GSEL_512 0x19
  37. #define TEST_GSEL_1024 0x1a
  38. #define TEST_GSEL_2048 0x1b
  39. #define TEST_GSEL_4096 0x1c
  40. #define TEST_GSEL_X_MAX TEST_GSEL_4096
  41. #define TEST_SCALE_1X 64
  42. #define TEST_SCALE_MIN_X TEST_SCALE_1X
  43. #define TEST_SCALE_2X 32
  44. #define TEST_SCALE_4X 16
  45. #define TEST_SCALE_8X 8
  46. #define TEST_SCALE_16X 4
  47. #define TEST_SCALE_32X 2
  48. #define TEST_SCALE_64X 1
  49. #define TEST_SCALE_NANO_128X 500000000
  50. #define TEST_SCALE_NANO_256X 250000000
  51. #define TEST_SCALE_NANO_512X 125000000
  52. #define TEST_SCALE_NANO_1024X 62500000
  53. #define TEST_SCALE_NANO_2048X 31250000
  54. #define TEST_SCALE_NANO_4096X 15625000
  55. #define TEST_SCALE_NANO_4096X2 7812500
  56. #define TEST_SCALE_NANO_4096X4 3906250
  57. #define TEST_SCALE_NANO_4096X8 1953125
  58. #define TEST_SCALE_NANO_MAX_X TEST_SCALE_NANO_4096X8
  59. /*
  60. * Can't have this allocated from stack because the kunit clean-up will
  61. * happen only after the test function has already gone
  62. */
  63. static struct iio_gts gts;
  64. /* Keep the gain and time tables unsorted to test the sorting */
  65. static const struct iio_gain_sel_pair gts_test_gains[] = {
  66. GAIN_SCALE_GAIN(1, TEST_GSEL_1),
  67. GAIN_SCALE_GAIN(4, TEST_GSEL_4),
  68. GAIN_SCALE_GAIN(16, TEST_GSEL_16),
  69. GAIN_SCALE_GAIN(32, TEST_GSEL_32),
  70. GAIN_SCALE_GAIN(64, TEST_GSEL_64),
  71. GAIN_SCALE_GAIN(256, TEST_GSEL_256),
  72. GAIN_SCALE_GAIN(512, TEST_GSEL_512),
  73. GAIN_SCALE_GAIN(1024, TEST_GSEL_1024),
  74. GAIN_SCALE_GAIN(4096, TEST_GSEL_4096),
  75. GAIN_SCALE_GAIN(2048, TEST_GSEL_2048),
  76. #define HWGAIN_MAX 4096
  77. };
  78. static const struct iio_itime_sel_mul gts_test_itimes[] = {
  79. GAIN_SCALE_ITIME_US(100 * 1000, TEST_TSEL_100, 2),
  80. GAIN_SCALE_ITIME_US(400 * 1000, TEST_TSEL_400, 8),
  81. GAIN_SCALE_ITIME_US(400 * 1000, TEST_TSEL_400, 8),
  82. GAIN_SCALE_ITIME_US(50 * 1000, TEST_TSEL_50, 1),
  83. GAIN_SCALE_ITIME_US(200 * 1000, TEST_TSEL_200, 4),
  84. #define TIMEGAIN_MAX 8
  85. };
  86. #define TOTAL_GAIN_MAX (HWGAIN_MAX * TIMEGAIN_MAX)
  87. #define IIO_GTS_TEST_DEV "iio-gts-test-dev"
  88. static struct device *__test_init_iio_gain_scale(struct kunit *test,
  89. struct iio_gts *gts, const struct iio_gain_sel_pair *g_table,
  90. int num_g, const struct iio_itime_sel_mul *i_table, int num_i)
  91. {
  92. struct device *dev;
  93. int ret;
  94. dev = kunit_device_register(test, IIO_GTS_TEST_DEV);
  95. KUNIT_EXPECT_NOT_ERR_OR_NULL(test, dev);
  96. if (IS_ERR_OR_NULL(dev))
  97. return NULL;
  98. ret = devm_iio_init_iio_gts(dev, TEST_SCALE_1X, 0, g_table, num_g,
  99. i_table, num_i, gts);
  100. KUNIT_EXPECT_EQ(test, 0, ret);
  101. if (ret)
  102. return NULL;
  103. return dev;
  104. }
  105. #define test_init_iio_gain_scale(test, gts) \
  106. __test_init_iio_gain_scale(test, gts, gts_test_gains, \
  107. ARRAY_SIZE(gts_test_gains), gts_test_itimes, \
  108. ARRAY_SIZE(gts_test_itimes))
  109. static void test_init_iio_gts_invalid(struct kunit *test)
  110. {
  111. struct device *dev;
  112. int ret;
  113. const struct iio_itime_sel_mul itimes_neg[] = {
  114. GAIN_SCALE_ITIME_US(-10, TEST_TSEL_400, 8),
  115. GAIN_SCALE_ITIME_US(200 * 1000, TEST_TSEL_200, 4),
  116. };
  117. const struct iio_gain_sel_pair gains_neg[] = {
  118. GAIN_SCALE_GAIN(1, TEST_GSEL_1),
  119. GAIN_SCALE_GAIN(2, TEST_GSEL_4),
  120. GAIN_SCALE_GAIN(-2, TEST_GSEL_16),
  121. };
  122. /* 55555 * 38656 = 2147534080 => overflows 32bit int */
  123. const struct iio_itime_sel_mul itimes_overflow[] = {
  124. GAIN_SCALE_ITIME_US(400 * 1000, TEST_TSEL_400, 55555),
  125. GAIN_SCALE_ITIME_US(200 * 1000, TEST_TSEL_200, 4),
  126. };
  127. const struct iio_gain_sel_pair gains_overflow[] = {
  128. GAIN_SCALE_GAIN(1, TEST_GSEL_1),
  129. GAIN_SCALE_GAIN(2, TEST_GSEL_4),
  130. GAIN_SCALE_GAIN(38656, TEST_GSEL_16),
  131. };
  132. dev = kunit_device_register(test, IIO_GTS_TEST_DEV);
  133. KUNIT_EXPECT_NOT_ERR_OR_NULL(test, dev);
  134. if (!dev)
  135. return;
  136. /* Ok gains, negative time */
  137. ret = devm_iio_init_iio_gts(dev, TEST_SCALE_1X, 0, gts_test_gains,
  138. ARRAY_SIZE(gts_test_gains), itimes_neg,
  139. ARRAY_SIZE(itimes_neg), &gts);
  140. KUNIT_EXPECT_EQ(test, -EINVAL, ret);
  141. /* Ok times, negative gain */
  142. ret = devm_iio_init_iio_gts(dev, TEST_SCALE_1X, 0, gains_neg,
  143. ARRAY_SIZE(gains_neg), gts_test_itimes,
  144. ARRAY_SIZE(gts_test_itimes), &gts);
  145. KUNIT_EXPECT_EQ(test, -EINVAL, ret);
  146. /* gain * time overflow int */
  147. ret = devm_iio_init_iio_gts(dev, TEST_SCALE_1X, 0, gains_overflow,
  148. ARRAY_SIZE(gains_overflow), itimes_overflow,
  149. ARRAY_SIZE(itimes_overflow), &gts);
  150. KUNIT_EXPECT_EQ(test, -EOVERFLOW, ret);
  151. }
  152. static void test_iio_gts_find_gain_for_scale_using_time(struct kunit *test)
  153. {
  154. struct device *dev;
  155. int ret, gain_sel;
  156. dev = test_init_iio_gain_scale(test, &gts);
  157. if (!dev)
  158. return;
  159. ret = iio_gts_find_gain_sel_for_scale_using_time(&gts, TEST_TSEL_100,
  160. TEST_SCALE_8X, 0, &gain_sel);
  161. /*
  162. * Meas time 100 => gain by time 2x
  163. * TEST_SCALE_8X matches total gain 8x
  164. * => required HWGAIN 4x
  165. */
  166. KUNIT_EXPECT_EQ(test, 0, ret);
  167. KUNIT_EXPECT_EQ(test, TEST_GSEL_4, gain_sel);
  168. ret = iio_gts_find_gain_sel_for_scale_using_time(&gts, TEST_TSEL_200, 0,
  169. TEST_SCALE_NANO_256X, &gain_sel);
  170. /*
  171. * Meas time 200 => gain by time 4x
  172. * TEST_SCALE_256X matches total gain 256x
  173. * => required HWGAIN 256/4 => 64x
  174. */
  175. KUNIT_EXPECT_EQ(test, 0, ret);
  176. KUNIT_EXPECT_EQ(test, TEST_GSEL_64, gain_sel);
  177. /* Min time, Min gain */
  178. ret = iio_gts_find_gain_sel_for_scale_using_time(&gts, TEST_TSEL_X_MIN,
  179. TEST_SCALE_MIN_X, 0, &gain_sel);
  180. KUNIT_EXPECT_EQ(test, 0, ret);
  181. KUNIT_EXPECT_EQ(test, TEST_GSEL_1, gain_sel);
  182. /* Max time, Max gain */
  183. ret = iio_gts_find_gain_sel_for_scale_using_time(&gts, TEST_TSEL_X_MAX,
  184. 0, TEST_SCALE_NANO_MAX_X, &gain_sel);
  185. KUNIT_EXPECT_EQ(test, 0, ret);
  186. KUNIT_EXPECT_EQ(test, TEST_GSEL_4096, gain_sel);
  187. ret = iio_gts_find_gain_sel_for_scale_using_time(&gts, TEST_TSEL_100, 0,
  188. TEST_SCALE_NANO_256X, &gain_sel);
  189. /*
  190. * Meas time 100 => gain by time 2x
  191. * TEST_SCALE_256X matches total gain 256x
  192. * => required HWGAIN 256/2 => 128x (not in gain-table - unsupported)
  193. */
  194. KUNIT_EXPECT_NE(test, 0, ret);
  195. ret = iio_gts_find_gain_sel_for_scale_using_time(&gts, TEST_TSEL_200, 0,
  196. TEST_SCALE_NANO_MAX_X, &gain_sel);
  197. /* We can't reach the max gain with integration time smaller than MAX */
  198. KUNIT_EXPECT_NE(test, 0, ret);
  199. ret = iio_gts_find_gain_sel_for_scale_using_time(&gts, TEST_TSEL_50, 0,
  200. TEST_SCALE_NANO_MAX_X, &gain_sel);
  201. /* We can't reach the max gain with integration time smaller than MAX */
  202. KUNIT_EXPECT_NE(test, 0, ret);
  203. }
  204. static void test_iio_gts_find_new_gain_sel_by_old_gain_time(struct kunit *test)
  205. {
  206. struct device *dev;
  207. int ret, old_gain, new_gain, old_time_sel, new_time_sel;
  208. dev = test_init_iio_gain_scale(test, &gts);
  209. if (!dev)
  210. return;
  211. old_gain = 32;
  212. old_time_sel = TEST_TSEL_200;
  213. new_time_sel = TEST_TSEL_400;
  214. ret = iio_gts_find_new_gain_sel_by_old_gain_time(&gts, old_gain,
  215. old_time_sel, new_time_sel, &new_gain);
  216. KUNIT_EXPECT_EQ(test, 0, ret);
  217. /*
  218. * Doubling the integration time doubles the total gain - so old
  219. * (hw)gain must be divided by two to compensate. => 32 / 2 => 16
  220. */
  221. KUNIT_EXPECT_EQ(test, 16, new_gain);
  222. old_gain = 4;
  223. old_time_sel = TEST_TSEL_50;
  224. new_time_sel = TEST_TSEL_200;
  225. ret = iio_gts_find_new_gain_sel_by_old_gain_time(&gts, old_gain,
  226. old_time_sel, new_time_sel, &new_gain);
  227. KUNIT_EXPECT_EQ(test, 0, ret);
  228. /*
  229. * gain by time 1x => 4x - (hw)gain 4x => 1x
  230. */
  231. KUNIT_EXPECT_EQ(test, 1, new_gain);
  232. old_gain = 512;
  233. old_time_sel = TEST_TSEL_400;
  234. new_time_sel = TEST_TSEL_50;
  235. ret = iio_gts_find_new_gain_sel_by_old_gain_time(&gts, old_gain,
  236. old_time_sel, new_time_sel, &new_gain);
  237. KUNIT_EXPECT_EQ(test, 0, ret);
  238. /*
  239. * gain by time 8x => 1x - (hw)gain 512x => 4096x)
  240. */
  241. KUNIT_EXPECT_EQ(test, 4096, new_gain);
  242. /* Unsupported gain 2x */
  243. old_gain = 4;
  244. old_time_sel = TEST_TSEL_200;
  245. new_time_sel = TEST_TSEL_400;
  246. ret = iio_gts_find_new_gain_sel_by_old_gain_time(&gts, old_gain,
  247. old_time_sel, new_time_sel, &new_gain);
  248. KUNIT_EXPECT_NE(test, 0, ret);
  249. /* Too small gain */
  250. old_gain = 4;
  251. old_time_sel = TEST_TSEL_50;
  252. new_time_sel = TEST_TSEL_400;
  253. ret = iio_gts_find_new_gain_sel_by_old_gain_time(&gts, old_gain,
  254. old_time_sel, new_time_sel, &new_gain);
  255. KUNIT_EXPECT_NE(test, 0, ret);
  256. /* Too big gain */
  257. old_gain = 1024;
  258. old_time_sel = TEST_TSEL_400;
  259. new_time_sel = TEST_TSEL_50;
  260. ret = iio_gts_find_new_gain_sel_by_old_gain_time(&gts, old_gain,
  261. old_time_sel, new_time_sel, &new_gain);
  262. KUNIT_EXPECT_NE(test, 0, ret);
  263. }
  264. static void test_iio_find_closest_gain_low(struct kunit *test)
  265. {
  266. struct device *dev;
  267. bool in_range;
  268. int ret;
  269. const struct iio_gain_sel_pair gts_test_gains_gain_low[] = {
  270. GAIN_SCALE_GAIN(4, TEST_GSEL_4),
  271. GAIN_SCALE_GAIN(16, TEST_GSEL_16),
  272. GAIN_SCALE_GAIN(32, TEST_GSEL_32),
  273. };
  274. dev = test_init_iio_gain_scale(test, &gts);
  275. if (!dev)
  276. return;
  277. ret = iio_find_closest_gain_low(&gts, 2, &in_range);
  278. KUNIT_EXPECT_EQ(test, 1, ret);
  279. KUNIT_EXPECT_EQ(test, true, in_range);
  280. ret = iio_find_closest_gain_low(&gts, 1, &in_range);
  281. KUNIT_EXPECT_EQ(test, 1, ret);
  282. KUNIT_EXPECT_EQ(test, true, in_range);
  283. ret = iio_find_closest_gain_low(&gts, 4095, &in_range);
  284. KUNIT_EXPECT_EQ(test, 2048, ret);
  285. KUNIT_EXPECT_EQ(test, true, in_range);
  286. ret = iio_find_closest_gain_low(&gts, 4097, &in_range);
  287. KUNIT_EXPECT_EQ(test, 4096, ret);
  288. KUNIT_EXPECT_EQ(test, false, in_range);
  289. kunit_device_unregister(test, dev);
  290. dev = __test_init_iio_gain_scale(test, &gts, gts_test_gains_gain_low,
  291. ARRAY_SIZE(gts_test_gains_gain_low),
  292. gts_test_itimes, ARRAY_SIZE(gts_test_itimes));
  293. if (!dev)
  294. return;
  295. ret = iio_find_closest_gain_low(&gts, 3, &in_range);
  296. KUNIT_EXPECT_EQ(test, -EINVAL, ret);
  297. KUNIT_EXPECT_EQ(test, false, in_range);
  298. }
  299. static void test_iio_gts_total_gain_to_scale(struct kunit *test)
  300. {
  301. struct device *dev;
  302. int ret, scale_int, scale_nano;
  303. dev = test_init_iio_gain_scale(test, &gts);
  304. if (!dev)
  305. return;
  306. ret = iio_gts_total_gain_to_scale(&gts, 1, &scale_int, &scale_nano);
  307. KUNIT_EXPECT_EQ(test, 0, ret);
  308. KUNIT_EXPECT_EQ(test, TEST_SCALE_1X, scale_int);
  309. KUNIT_EXPECT_EQ(test, 0, scale_nano);
  310. ret = iio_gts_total_gain_to_scale(&gts, 1, &scale_int, &scale_nano);
  311. KUNIT_EXPECT_EQ(test, 0, ret);
  312. KUNIT_EXPECT_EQ(test, TEST_SCALE_1X, scale_int);
  313. KUNIT_EXPECT_EQ(test, 0, scale_nano);
  314. ret = iio_gts_total_gain_to_scale(&gts, 4096 * 8, &scale_int,
  315. &scale_nano);
  316. KUNIT_EXPECT_EQ(test, 0, ret);
  317. KUNIT_EXPECT_EQ(test, 0, scale_int);
  318. KUNIT_EXPECT_EQ(test, TEST_SCALE_NANO_4096X8, scale_nano);
  319. }
  320. static void test_iio_gts_chk_times(struct kunit *test, const int *vals)
  321. {
  322. static const int expected[] = {0, 50000, 0, 100000, 0, 200000, 0, 400000};
  323. int i;
  324. for (i = 0; i < ARRAY_SIZE(expected); i++)
  325. KUNIT_EXPECT_EQ(test, expected[i], vals[i]);
  326. }
  327. static void test_iio_gts_chk_scales_all(struct kunit *test, struct iio_gts *gts,
  328. const int *vals, int len)
  329. {
  330. static const int gains[] = {1, 2, 4, 8, 16, 32, 64, 128, 256, 512,
  331. 1024, 2048, 4096, 4096 * 2, 4096 * 4,
  332. 4096 * 8};
  333. int expected[ARRAY_SIZE(gains) * 2];
  334. int i, ret;
  335. int exp_len = ARRAY_SIZE(gains) * 2;
  336. KUNIT_EXPECT_EQ(test, exp_len, len);
  337. if (len != exp_len)
  338. return;
  339. for (i = 0; i < ARRAY_SIZE(gains); i++) {
  340. ret = iio_gts_total_gain_to_scale(gts, gains[i],
  341. &expected[2 * i],
  342. &expected[2 * i + 1]);
  343. KUNIT_EXPECT_EQ(test, 0, ret);
  344. if (ret)
  345. return;
  346. }
  347. for (i = 0; i < ARRAY_SIZE(expected); i++)
  348. KUNIT_EXPECT_EQ(test, expected[i], vals[i]);
  349. }
  350. static void test_iio_gts_chk_scales_t200(struct kunit *test, struct iio_gts *gts,
  351. const int *vals, int len)
  352. {
  353. /* The gain caused by time 200 is 4x */
  354. static const int gains[] = {
  355. 1 * 4,
  356. 4 * 4,
  357. 16 * 4,
  358. 32 * 4,
  359. 64 * 4,
  360. 256 * 4,
  361. 512 * 4,
  362. 1024 * 4,
  363. 2048 * 4,
  364. 4096 * 4
  365. };
  366. int expected[ARRAY_SIZE(gains) * 2];
  367. int i, ret;
  368. KUNIT_EXPECT_EQ(test, 2 * ARRAY_SIZE(gains), len);
  369. if (len < 2 * ARRAY_SIZE(gains))
  370. return;
  371. for (i = 0; i < ARRAY_SIZE(gains); i++) {
  372. ret = iio_gts_total_gain_to_scale(gts, gains[i],
  373. &expected[2 * i],
  374. &expected[2 * i + 1]);
  375. KUNIT_EXPECT_EQ(test, 0, ret);
  376. if (ret)
  377. return;
  378. }
  379. for (i = 0; i < ARRAY_SIZE(expected); i++)
  380. KUNIT_EXPECT_EQ(test, expected[i], vals[i]);
  381. }
  382. static void test_iio_gts_avail_test(struct kunit *test)
  383. {
  384. struct device *dev;
  385. int ret;
  386. int type, len;
  387. const int *vals;
  388. dev = test_init_iio_gain_scale(test, &gts);
  389. if (!dev)
  390. return;
  391. /* test table building for times and iio_gts_avail_times() */
  392. ret = iio_gts_avail_times(&gts, &vals, &type, &len);
  393. KUNIT_EXPECT_EQ(test, IIO_AVAIL_LIST, ret);
  394. if (ret)
  395. return;
  396. KUNIT_EXPECT_EQ(test, IIO_VAL_INT_PLUS_MICRO, type);
  397. KUNIT_EXPECT_EQ(test, 8, len);
  398. if (len < 8)
  399. return;
  400. test_iio_gts_chk_times(test, vals);
  401. /* Test table building for all scales and iio_gts_all_avail_scales() */
  402. ret = iio_gts_all_avail_scales(&gts, &vals, &type, &len);
  403. KUNIT_EXPECT_EQ(test, IIO_AVAIL_LIST, ret);
  404. if (ret)
  405. return;
  406. KUNIT_EXPECT_EQ(test, IIO_VAL_INT_PLUS_NANO, type);
  407. test_iio_gts_chk_scales_all(test, &gts, vals, len);
  408. /*
  409. * Test table building for scales/time and
  410. * iio_gts_avail_scales_for_time()
  411. */
  412. ret = iio_gts_avail_scales_for_time(&gts, 200000, &vals, &type, &len);
  413. KUNIT_EXPECT_EQ(test, IIO_AVAIL_LIST, ret);
  414. if (ret)
  415. return;
  416. KUNIT_EXPECT_EQ(test, IIO_VAL_INT_PLUS_NANO, type);
  417. test_iio_gts_chk_scales_t200(test, &gts, vals, len);
  418. }
  419. static struct kunit_case iio_gts_test_cases[] = {
  420. KUNIT_CASE(test_init_iio_gts_invalid),
  421. KUNIT_CASE(test_iio_gts_find_gain_for_scale_using_time),
  422. KUNIT_CASE(test_iio_gts_find_new_gain_sel_by_old_gain_time),
  423. KUNIT_CASE(test_iio_find_closest_gain_low),
  424. KUNIT_CASE(test_iio_gts_total_gain_to_scale),
  425. KUNIT_CASE(test_iio_gts_avail_test),
  426. {}
  427. };
  428. static struct kunit_suite iio_gts_test_suite = {
  429. .name = "iio-gain-time-scale",
  430. .test_cases = iio_gts_test_cases,
  431. };
  432. kunit_test_suite(iio_gts_test_suite);
  433. MODULE_LICENSE("GPL");
  434. MODULE_AUTHOR("Matti Vaittinen <mazziesaccount@gmail.com>");
  435. MODULE_DESCRIPTION("Test IIO light sensor gain-time-scale helpers");
  436. MODULE_IMPORT_NS(IIO_GTS_HELPER);