1 // SPDX-License-Identifier: GPL-2.0 2 /* 3 * Self tests for device tree subsystem 4 */ 5 6 #define pr_fmt(fmt) "### dt-test ### " fmt 7 8 #include <linux/memblock.h> 9 #include <linux/clk.h> 10 #include <linux/dma-direct.h> /* to test phys_to_dma/dma_to_phys */ 11 #include <linux/err.h> 12 #include <linux/errno.h> 13 #include <linux/hashtable.h> 14 #include <linux/libfdt.h> 15 #include <linux/of.h> 16 #include <linux/of_address.h> 17 #include <linux/of_fdt.h> 18 #include <linux/of_irq.h> 19 #include <linux/of_platform.h> 20 #include <linux/list.h> 21 #include <linux/mutex.h> 22 #include <linux/slab.h> 23 #include <linux/device.h> 24 #include <linux/platform_device.h> 25 #include <linux/pci.h> 26 #include <linux/kernel.h> 27 28 #include <linux/i2c.h> 29 #include <linux/i2c-mux.h> 30 #include <linux/gpio/driver.h> 31 32 #include <linux/bitops.h> 33 34 #include "of_private.h" 35 36 static struct unittest_results { 37 int passed; 38 int failed; 39 } unittest_results; 40 41 #define unittest(result, fmt, ...) ({ \ 42 bool failed = !(result); \ 43 if (failed) { \ 44 unittest_results.failed++; \ 45 pr_err("FAIL %s():%i " fmt, __func__, __LINE__, ##__VA_ARGS__); \ 46 } else { \ 47 unittest_results.passed++; \ 48 pr_info("pass %s():%i\n", __func__, __LINE__); \ 49 } \ 50 failed; \ 51 }) 52 53 #ifdef CONFIG_OF_KOBJ 54 #define OF_KREF_READ(NODE) kref_read(&(NODE)->kobj.kref) 55 #else 56 #define OF_KREF_READ(NODE) 1 57 #endif 58 59 /* 60 * Expected message may have a message level other than KERN_INFO. 61 * Print the expected message only if the current loglevel will allow 62 * the actual message to print. 63 * 64 * Do not use EXPECT_BEGIN(), EXPECT_END(), EXPECT_NOT_BEGIN(), or 65 * EXPECT_NOT_END() to report messages expected to be reported or not 66 * reported by pr_debug(). 67 */ 68 #define EXPECT_BEGIN(level, fmt, ...) \ 69 printk(level pr_fmt("EXPECT \\ : ") fmt, ##__VA_ARGS__) 70 71 #define EXPECT_END(level, fmt, ...) \ 72 printk(level pr_fmt("EXPECT / : ") fmt, ##__VA_ARGS__) 73 74 #define EXPECT_NOT_BEGIN(level, fmt, ...) \ 75 printk(level pr_fmt("EXPECT_NOT \\ : ") fmt, ##__VA_ARGS__) 76 77 #define EXPECT_NOT_END(level, fmt, ...) \ 78 printk(level pr_fmt("EXPECT_NOT / : ") fmt, ##__VA_ARGS__) 79 80 static void __init of_unittest_find_node_by_name(void) 81 { 82 struct device_node *np; 83 const char *options, *name; 84 85 np = of_find_node_by_path("/testcase-data"); 86 name = kasprintf(GFP_KERNEL, "%pOF", np); 87 unittest(np && name && !strcmp("/testcase-data", name), 88 "find /testcase-data failed\n"); 89 of_node_put(np); 90 kfree(name); 91 92 /* Test if trailing '/' works */ 93 np = of_find_node_by_path("/testcase-data/"); 94 unittest(!np, "trailing '/' on /testcase-data/ should fail\n"); 95 96 np = of_find_node_by_path("/testcase-data/phandle-tests/consumer-a"); 97 name = kasprintf(GFP_KERNEL, "%pOF", np); 98 unittest(np && name && !strcmp("/testcase-data/phandle-tests/consumer-a", name), 99 "find /testcase-data/phandle-tests/consumer-a failed\n"); 100 of_node_put(np); 101 kfree(name); 102 103 np = of_find_node_by_path("testcase-alias"); 104 name = kasprintf(GFP_KERNEL, "%pOF", np); 105 unittest(np && name && !strcmp("/testcase-data", name), 106 "find testcase-alias failed\n"); 107 of_node_put(np); 108 kfree(name); 109 110 /* Test if trailing '/' works on aliases */ 111 np = of_find_node_by_path("testcase-alias/"); 112 unittest(!np, "trailing '/' on testcase-alias/ should fail\n"); 113 114 np = of_find_node_by_path("testcase-alias/phandle-tests/consumer-a"); 115 name = kasprintf(GFP_KERNEL, "%pOF", np); 116 unittest(np && name && !strcmp("/testcase-data/phandle-tests/consumer-a", name), 117 "find testcase-alias/phandle-tests/consumer-a failed\n"); 118 of_node_put(np); 119 kfree(name); 120 121 np = of_find_node_by_path("/testcase-data/missing-path"); 122 unittest(!np, "non-existent path returned node %pOF\n", np); 123 of_node_put(np); 124 125 np = of_find_node_by_path("missing-alias"); 126 unittest(!np, "non-existent alias returned node %pOF\n", np); 127 of_node_put(np); 128 129 np = of_find_node_by_path("testcase-alias/missing-path"); 130 unittest(!np, "non-existent alias with relative path returned node %pOF\n", np); 131 of_node_put(np); 132 133 np = of_find_node_opts_by_path("/testcase-data:testoption", &options); 134 unittest(np && !strcmp("testoption", options), 135 "option path test failed\n"); 136 of_node_put(np); 137 138 np = of_find_node_opts_by_path("/testcase-data:test/option", &options); 139 unittest(np && !strcmp("test/option", options), 140 "option path test, subcase #1 failed\n"); 141 of_node_put(np); 142 143 np = of_find_node_opts_by_path("/testcase-data/testcase-device1:test/option", &options); 144 unittest(np && !strcmp("test/option", options), 145 "option path test, subcase #2 failed\n"); 146 of_node_put(np); 147 148 np = of_find_node_opts_by_path("/testcase-data:testoption", NULL); 149 unittest(np, "NULL option path test failed\n"); 150 of_node_put(np); 151 152 np = of_find_node_opts_by_path("testcase-alias:testaliasoption", 153 &options); 154 unittest(np && !strcmp("testaliasoption", options), 155 "option alias path test failed\n"); 156 of_node_put(np); 157 158 np = of_find_node_opts_by_path("testcase-alias:test/alias/option", 159 &options); 160 unittest(np && !strcmp("test/alias/option", options), 161 "option alias path test, subcase #1 failed\n"); 162 of_node_put(np); 163 164 np = of_find_node_opts_by_path("testcase-alias/phandle-tests/consumer-a:testaliasoption", 165 &options); 166 name = kasprintf(GFP_KERNEL, "%pOF", np); 167 unittest(np && name && !strcmp("/testcase-data/phandle-tests/consumer-a", name) && 168 !strcmp("testaliasoption", options), 169 "option alias path test, subcase #2 failed\n"); 170 of_node_put(np); 171 kfree(name); 172 173 np = of_find_node_opts_by_path("testcase-alias:testaliasoption", NULL); 174 unittest(np, "NULL option alias path test failed\n"); 175 of_node_put(np); 176 177 options = "testoption"; 178 np = of_find_node_opts_by_path("testcase-alias", &options); 179 unittest(np && !options, "option clearing test failed\n"); 180 of_node_put(np); 181 182 options = "testoption"; 183 np = of_find_node_opts_by_path("/", &options); 184 unittest(np && !options, "option clearing root node test failed\n"); 185 of_node_put(np); 186 } 187 188 static void __init of_unittest_dynamic(void) 189 { 190 struct device_node *np; 191 struct property *prop; 192 193 np = of_find_node_by_path("/testcase-data"); 194 if (!np) { 195 pr_err("missing testcase data\n"); 196 return; 197 } 198 199 /* Array of 4 properties for the purpose of testing */ 200 prop = kcalloc(4, sizeof(*prop), GFP_KERNEL); 201 if (!prop) { 202 unittest(0, "kzalloc() failed\n"); 203 return; 204 } 205 206 /* Add a new property - should pass*/ 207 prop->name = "new-property"; 208 prop->value = "new-property-data"; 209 prop->length = strlen(prop->value) + 1; 210 unittest(of_add_property(np, prop) == 0, "Adding a new property failed\n"); 211 212 /* Try to add an existing property - should fail */ 213 prop++; 214 prop->name = "new-property"; 215 prop->value = "new-property-data-should-fail"; 216 prop->length = strlen(prop->value) + 1; 217 unittest(of_add_property(np, prop) != 0, 218 "Adding an existing property should have failed\n"); 219 220 /* Try to modify an existing property - should pass */ 221 prop->value = "modify-property-data-should-pass"; 222 prop->length = strlen(prop->value) + 1; 223 unittest(of_update_property(np, prop) == 0, 224 "Updating an existing property should have passed\n"); 225 226 /* Try to modify non-existent property - should pass*/ 227 prop++; 228 prop->name = "modify-property"; 229 prop->value = "modify-missing-property-data-should-pass"; 230 prop->length = strlen(prop->value) + 1; 231 unittest(of_update_property(np, prop) == 0, 232 "Updating a missing property should have passed\n"); 233 234 /* Remove property - should pass */ 235 unittest(of_remove_property(np, prop) == 0, 236 "Removing a property should have passed\n"); 237 238 /* Adding very large property - should pass */ 239 prop++; 240 prop->name = "large-property-PAGE_SIZEx8"; 241 prop->length = PAGE_SIZE * 8; 242 prop->value = kzalloc(prop->length, GFP_KERNEL); 243 unittest(prop->value != NULL, "Unable to allocate large buffer\n"); 244 if (prop->value) 245 unittest(of_add_property(np, prop) == 0, 246 "Adding a large property should have passed\n"); 247 } 248 249 static int __init of_unittest_check_node_linkage(struct device_node *np) 250 { 251 int count = 0, rc; 252 253 for_each_child_of_node_scoped(np, child) { 254 if (child->parent != np) { 255 pr_err("Child node %pOFn links to wrong parent %pOFn\n", 256 child, np); 257 return -EINVAL; 258 } 259 260 rc = of_unittest_check_node_linkage(child); 261 if (rc < 0) 262 return rc; 263 count += rc; 264 } 265 266 return count + 1; 267 } 268 269 static void __init of_unittest_check_tree_linkage(void) 270 { 271 struct device_node *np; 272 int allnode_count = 0, child_count; 273 274 if (!of_root) 275 return; 276 277 for_each_of_allnodes(np) 278 allnode_count++; 279 child_count = of_unittest_check_node_linkage(of_root); 280 281 unittest(child_count > 0, "Device node data structure is corrupted\n"); 282 unittest(child_count == allnode_count, 283 "allnodes list size (%i) doesn't match sibling lists size (%i)\n", 284 allnode_count, child_count); 285 pr_debug("allnodes list size (%i); sibling lists size (%i)\n", allnode_count, child_count); 286 } 287 288 static void __init of_unittest_printf_one(struct device_node *np, const char *fmt, 289 const char *expected) 290 { 291 unsigned char *buf; 292 int buf_size; 293 int size, i; 294 295 buf_size = strlen(expected) + 10; 296 buf = kmalloc(buf_size, GFP_KERNEL); 297 if (!buf) 298 return; 299 300 /* Baseline; check conversion with a large size limit */ 301 memset(buf, 0xff, buf_size); 302 size = snprintf(buf, buf_size - 2, fmt, np); 303 304 /* use strcmp() instead of strncmp() here to be absolutely sure strings match */ 305 unittest((strcmp(buf, expected) == 0) && (buf[size+1] == 0xff), 306 "sprintf failed; fmt='%s' expected='%s' rslt='%s'\n", 307 fmt, expected, buf); 308 309 /* Make sure length limits work */ 310 size++; 311 for (i = 0; i < 2; i++, size--) { 312 /* Clear the buffer, and make sure it works correctly still */ 313 memset(buf, 0xff, buf_size); 314 snprintf(buf, size+1, fmt, np); 315 unittest(strncmp(buf, expected, size) == 0 && (buf[size+1] == 0xff), 316 "snprintf failed; size=%i fmt='%s' expected='%s' rslt='%s'\n", 317 size, fmt, expected, buf); 318 } 319 kfree(buf); 320 } 321 322 static void __init of_unittest_printf(void) 323 { 324 struct device_node *np; 325 const char *full_name = "/testcase-data/platform-tests/test-device@1/dev@100"; 326 char phandle_str[16] = ""; 327 328 np = of_find_node_by_path(full_name); 329 if (!np) { 330 unittest(np, "testcase data missing\n"); 331 return; 332 } 333 334 num_to_str(phandle_str, sizeof(phandle_str), np->phandle, 0); 335 336 of_unittest_printf_one(np, "%pOF", full_name); 337 of_unittest_printf_one(np, "%pOFf", full_name); 338 of_unittest_printf_one(np, "%pOFn", "dev"); 339 of_unittest_printf_one(np, "%2pOFn", "dev"); 340 of_unittest_printf_one(np, "%5pOFn", " dev"); 341 of_unittest_printf_one(np, "%pOFnc", "dev:test-sub-device"); 342 of_unittest_printf_one(np, "%pOFp", phandle_str); 343 of_unittest_printf_one(np, "%pOFP", "dev@100"); 344 of_unittest_printf_one(np, "ABC %pOFP ABC", "ABC dev@100 ABC"); 345 of_unittest_printf_one(np, "%10pOFP", " dev@100"); 346 of_unittest_printf_one(np, "%-10pOFP", "dev@100 "); 347 of_unittest_printf_one(of_root, "%pOFP", "/"); 348 of_unittest_printf_one(np, "%pOFF", "----"); 349 of_unittest_printf_one(np, "%pOFPF", "dev@100:----"); 350 of_unittest_printf_one(np, "%pOFPFPc", "dev@100:----:dev@100:test-sub-device"); 351 of_unittest_printf_one(np, "%pOFc", "test-sub-device"); 352 of_unittest_printf_one(np, "%pOFC", 353 "\"test-sub-device\",\"test-compat2\",\"test-compat3\""); 354 } 355 356 struct node_hash { 357 struct hlist_node node; 358 struct device_node *np; 359 }; 360 361 static DEFINE_HASHTABLE(phandle_ht, 8); 362 static void __init of_unittest_check_phandles(void) 363 { 364 struct device_node *np; 365 struct node_hash *nh; 366 struct hlist_node *tmp; 367 int i, dup_count = 0, phandle_count = 0; 368 369 for_each_of_allnodes(np) { 370 if (!np->phandle) 371 continue; 372 373 hash_for_each_possible(phandle_ht, nh, node, np->phandle) { 374 if (nh->np->phandle == np->phandle) { 375 pr_info("Duplicate phandle! %i used by %pOF and %pOF\n", 376 np->phandle, nh->np, np); 377 dup_count++; 378 break; 379 } 380 } 381 382 nh = kzalloc(sizeof(*nh), GFP_KERNEL); 383 if (!nh) 384 return; 385 386 nh->np = np; 387 hash_add(phandle_ht, &nh->node, np->phandle); 388 phandle_count++; 389 } 390 unittest(dup_count == 0, "Found %i duplicates in %i phandles\n", 391 dup_count, phandle_count); 392 393 /* Clean up */ 394 hash_for_each_safe(phandle_ht, i, tmp, nh, node) { 395 hash_del(&nh->node); 396 kfree(nh); 397 } 398 } 399 400 static void __init of_unittest_parse_phandle_with_args(void) 401 { 402 struct device_node *np; 403 struct of_phandle_args args; 404 int i, rc; 405 406 np = of_find_node_by_path("/testcase-data/phandle-tests/consumer-a"); 407 if (!np) { 408 pr_err("missing testcase data\n"); 409 return; 410 } 411 412 rc = of_count_phandle_with_args(np, "phandle-list", "#phandle-cells"); 413 unittest(rc == 7, "of_count_phandle_with_args() returned %i, expected 7\n", rc); 414 415 for (i = 0; i < 8; i++) { 416 bool passed = true; 417 418 memset(&args, 0, sizeof(args)); 419 rc = of_parse_phandle_with_args(np, "phandle-list", 420 "#phandle-cells", i, &args); 421 422 /* Test the values from tests-phandle.dtsi */ 423 switch (i) { 424 case 0: 425 passed &= !rc; 426 passed &= (args.args_count == 1); 427 passed &= (args.args[0] == (i + 1)); 428 break; 429 case 1: 430 passed &= !rc; 431 passed &= (args.args_count == 2); 432 passed &= (args.args[0] == (i + 1)); 433 passed &= (args.args[1] == 0); 434 break; 435 case 2: 436 passed &= (rc == -ENOENT); 437 break; 438 case 3: 439 passed &= !rc; 440 passed &= (args.args_count == 3); 441 passed &= (args.args[0] == (i + 1)); 442 passed &= (args.args[1] == 4); 443 passed &= (args.args[2] == 3); 444 break; 445 case 4: 446 passed &= !rc; 447 passed &= (args.args_count == 2); 448 passed &= (args.args[0] == (i + 1)); 449 passed &= (args.args[1] == 100); 450 break; 451 case 5: 452 passed &= !rc; 453 passed &= (args.args_count == 0); 454 break; 455 case 6: 456 passed &= !rc; 457 passed &= (args.args_count == 1); 458 passed &= (args.args[0] == (i + 1)); 459 break; 460 case 7: 461 passed &= (rc == -ENOENT); 462 break; 463 default: 464 passed = false; 465 } 466 467 unittest(passed, "index %i - data error on node %pOF rc=%i\n", 468 i, args.np, rc); 469 470 if (rc == 0) 471 of_node_put(args.np); 472 } 473 474 /* Check for missing list property */ 475 memset(&args, 0, sizeof(args)); 476 rc = of_parse_phandle_with_args(np, "phandle-list-missing", 477 "#phandle-cells", 0, &args); 478 unittest(rc == -ENOENT, "expected:%i got:%i\n", -ENOENT, rc); 479 rc = of_count_phandle_with_args(np, "phandle-list-missing", 480 "#phandle-cells"); 481 unittest(rc == -ENOENT, "expected:%i got:%i\n", -ENOENT, rc); 482 483 /* Check for missing cells property */ 484 memset(&args, 0, sizeof(args)); 485 486 EXPECT_BEGIN(KERN_INFO, 487 "OF: /testcase-data/phandle-tests/consumer-a: could not get #phandle-cells-missing for /testcase-data/phandle-tests/provider1"); 488 489 rc = of_parse_phandle_with_args(np, "phandle-list", 490 "#phandle-cells-missing", 0, &args); 491 492 EXPECT_END(KERN_INFO, 493 "OF: /testcase-data/phandle-tests/consumer-a: could not get #phandle-cells-missing for /testcase-data/phandle-tests/provider1"); 494 495 unittest(rc == -EINVAL, "expected:%i got:%i\n", -EINVAL, rc); 496 497 EXPECT_BEGIN(KERN_INFO, 498 "OF: /testcase-data/phandle-tests/consumer-a: could not get #phandle-cells-missing for /testcase-data/phandle-tests/provider1"); 499 500 rc = of_count_phandle_with_args(np, "phandle-list", 501 "#phandle-cells-missing"); 502 503 EXPECT_END(KERN_INFO, 504 "OF: /testcase-data/phandle-tests/consumer-a: could not get #phandle-cells-missing for /testcase-data/phandle-tests/provider1"); 505 506 unittest(rc == -EINVAL, "expected:%i got:%i\n", -EINVAL, rc); 507 508 /* Check for bad phandle in list */ 509 memset(&args, 0, sizeof(args)); 510 511 EXPECT_BEGIN(KERN_INFO, 512 "OF: /testcase-data/phandle-tests/consumer-a: could not find phandle"); 513 514 rc = of_parse_phandle_with_args(np, "phandle-list-bad-phandle", 515 "#phandle-cells", 0, &args); 516 517 EXPECT_END(KERN_INFO, 518 "OF: /testcase-data/phandle-tests/consumer-a: could not find phandle"); 519 520 unittest(rc == -EINVAL, "expected:%i got:%i\n", -EINVAL, rc); 521 522 EXPECT_BEGIN(KERN_INFO, 523 "OF: /testcase-data/phandle-tests/consumer-a: could not find phandle"); 524 525 rc = of_count_phandle_with_args(np, "phandle-list-bad-phandle", 526 "#phandle-cells"); 527 528 EXPECT_END(KERN_INFO, 529 "OF: /testcase-data/phandle-tests/consumer-a: could not find phandle"); 530 531 unittest(rc == -EINVAL, "expected:%i got:%i\n", -EINVAL, rc); 532 533 /* Check for incorrectly formed argument list */ 534 memset(&args, 0, sizeof(args)); 535 536 EXPECT_BEGIN(KERN_INFO, 537 "OF: /testcase-data/phandle-tests/consumer-a: #phandle-cells = 3 found 1"); 538 539 rc = of_parse_phandle_with_args(np, "phandle-list-bad-args", 540 "#phandle-cells", 1, &args); 541 542 EXPECT_END(KERN_INFO, 543 "OF: /testcase-data/phandle-tests/consumer-a: #phandle-cells = 3 found 1"); 544 545 unittest(rc == -EINVAL, "expected:%i got:%i\n", -EINVAL, rc); 546 547 EXPECT_BEGIN(KERN_INFO, 548 "OF: /testcase-data/phandle-tests/consumer-a: #phandle-cells = 3 found 1"); 549 550 rc = of_count_phandle_with_args(np, "phandle-list-bad-args", 551 "#phandle-cells"); 552 553 EXPECT_END(KERN_INFO, 554 "OF: /testcase-data/phandle-tests/consumer-a: #phandle-cells = 3 found 1"); 555 556 unittest(rc == -EINVAL, "expected:%i got:%i\n", -EINVAL, rc); 557 } 558 559 static void __init of_unittest_parse_phandle_with_args_map(void) 560 { 561 struct device_node *np, *p[6] = {}; 562 struct of_phandle_args args; 563 unsigned int prefs[6]; 564 int i, rc; 565 566 np = of_find_node_by_path("/testcase-data/phandle-tests/consumer-b"); 567 if (!np) { 568 pr_err("missing testcase data\n"); 569 return; 570 } 571 572 p[0] = of_find_node_by_path("/testcase-data/phandle-tests/provider0"); 573 p[1] = of_find_node_by_path("/testcase-data/phandle-tests/provider1"); 574 p[2] = of_find_node_by_path("/testcase-data/phandle-tests/provider2"); 575 p[3] = of_find_node_by_path("/testcase-data/phandle-tests/provider3"); 576 p[4] = of_find_node_by_path("/testcase-data/phandle-tests/provider4"); 577 p[5] = of_find_node_by_path("/testcase-data/phandle-tests/provider5"); 578 for (i = 0; i < ARRAY_SIZE(p); ++i) { 579 if (!p[i]) { 580 pr_err("missing testcase data\n"); 581 return; 582 } 583 prefs[i] = OF_KREF_READ(p[i]); 584 } 585 586 rc = of_count_phandle_with_args(np, "phandle-list", "#phandle-cells"); 587 unittest(rc == 8, "of_count_phandle_with_args() returned %i, expected 8\n", rc); 588 589 for (i = 0; i < 9; i++) { 590 bool passed = true; 591 592 memset(&args, 0, sizeof(args)); 593 rc = of_parse_phandle_with_args_map(np, "phandle-list", 594 "phandle", i, &args); 595 596 /* Test the values from tests-phandle.dtsi */ 597 switch (i) { 598 case 0: 599 passed &= !rc; 600 passed &= (args.np == p[1]); 601 passed &= (args.args_count == 1); 602 passed &= (args.args[0] == 1); 603 break; 604 case 1: 605 passed &= !rc; 606 passed &= (args.np == p[3]); 607 passed &= (args.args_count == 3); 608 passed &= (args.args[0] == 2); 609 passed &= (args.args[1] == 5); 610 passed &= (args.args[2] == 3); 611 break; 612 case 2: 613 passed &= (rc == -ENOENT); 614 break; 615 case 3: 616 passed &= !rc; 617 passed &= (args.np == p[0]); 618 passed &= (args.args_count == 0); 619 break; 620 case 4: 621 passed &= !rc; 622 passed &= (args.np == p[1]); 623 passed &= (args.args_count == 1); 624 passed &= (args.args[0] == 3); 625 break; 626 case 5: 627 passed &= !rc; 628 passed &= (args.np == p[0]); 629 passed &= (args.args_count == 0); 630 break; 631 case 6: 632 passed &= !rc; 633 passed &= (args.np == p[2]); 634 passed &= (args.args_count == 2); 635 passed &= (args.args[0] == 15); 636 passed &= (args.args[1] == 0x20); 637 break; 638 case 7: 639 passed &= !rc; 640 passed &= (args.np == p[3]); 641 passed &= (args.args_count == 3); 642 passed &= (args.args[0] == 2); 643 passed &= (args.args[1] == 5); 644 passed &= (args.args[2] == 3); 645 break; 646 case 8: 647 passed &= (rc == -ENOENT); 648 break; 649 default: 650 passed = false; 651 } 652 653 unittest(passed, "index %i - data error on node %s rc=%i\n", 654 i, args.np->full_name, rc); 655 656 if (rc == 0) 657 of_node_put(args.np); 658 } 659 660 /* Check for missing list property */ 661 memset(&args, 0, sizeof(args)); 662 rc = of_parse_phandle_with_args_map(np, "phandle-list-missing", 663 "phandle", 0, &args); 664 unittest(rc == -ENOENT, "expected:%i got:%i\n", -ENOENT, rc); 665 666 /* Check for missing cells,map,mask property */ 667 memset(&args, 0, sizeof(args)); 668 669 EXPECT_BEGIN(KERN_INFO, 670 "OF: /testcase-data/phandle-tests/consumer-b: could not get #phandle-missing-cells for /testcase-data/phandle-tests/provider1"); 671 672 rc = of_parse_phandle_with_args_map(np, "phandle-list", 673 "phandle-missing", 0, &args); 674 EXPECT_END(KERN_INFO, 675 "OF: /testcase-data/phandle-tests/consumer-b: could not get #phandle-missing-cells for /testcase-data/phandle-tests/provider1"); 676 677 unittest(rc == -EINVAL, "expected:%i got:%i\n", -EINVAL, rc); 678 679 /* Check for bad phandle in list */ 680 memset(&args, 0, sizeof(args)); 681 682 EXPECT_BEGIN(KERN_INFO, 683 "OF: /testcase-data/phandle-tests/consumer-b: could not find phandle 12345678"); 684 685 rc = of_parse_phandle_with_args_map(np, "phandle-list-bad-phandle", 686 "phandle", 0, &args); 687 EXPECT_END(KERN_INFO, 688 "OF: /testcase-data/phandle-tests/consumer-b: could not find phandle 12345678"); 689 690 unittest(rc == -EINVAL, "expected:%i got:%i\n", -EINVAL, rc); 691 692 /* Check for incorrectly formed argument list */ 693 memset(&args, 0, sizeof(args)); 694 695 EXPECT_BEGIN(KERN_INFO, 696 "OF: /testcase-data/phandle-tests/consumer-b: #phandle-cells = 2 found 1"); 697 698 rc = of_parse_phandle_with_args_map(np, "phandle-list-bad-args", 699 "phandle", 1, &args); 700 EXPECT_END(KERN_INFO, 701 "OF: /testcase-data/phandle-tests/consumer-b: #phandle-cells = 2 found 1"); 702 703 unittest(rc == -EINVAL, "expected:%i got:%i\n", -EINVAL, rc); 704 705 for (i = 0; i < ARRAY_SIZE(p); ++i) { 706 unittest(prefs[i] == OF_KREF_READ(p[i]), 707 "provider%d: expected:%d got:%d\n", 708 i, prefs[i], OF_KREF_READ(p[i])); 709 of_node_put(p[i]); 710 } 711 } 712 713 static void __init of_unittest_property_string(void) 714 { 715 const char *strings[4]; 716 struct device_node *np; 717 int rc; 718 719 np = of_find_node_by_path("/testcase-data/phandle-tests/consumer-a"); 720 if (!np) { 721 pr_err("No testcase data in device tree\n"); 722 return; 723 } 724 725 rc = of_property_match_string(np, "phandle-list-names", "first"); 726 unittest(rc == 0, "first expected:0 got:%i\n", rc); 727 rc = of_property_match_string(np, "phandle-list-names", "second"); 728 unittest(rc == 1, "second expected:1 got:%i\n", rc); 729 rc = of_property_match_string(np, "phandle-list-names", "third"); 730 unittest(rc == 2, "third expected:2 got:%i\n", rc); 731 rc = of_property_match_string(np, "phandle-list-names", "fourth"); 732 unittest(rc == -ENODATA, "unmatched string; rc=%i\n", rc); 733 rc = of_property_match_string(np, "missing-property", "blah"); 734 unittest(rc == -EINVAL, "missing property; rc=%i\n", rc); 735 rc = of_property_match_string(np, "empty-property", "blah"); 736 unittest(rc == -ENODATA, "empty property; rc=%i\n", rc); 737 rc = of_property_match_string(np, "unterminated-string", "blah"); 738 unittest(rc == -EILSEQ, "unterminated string; rc=%i\n", rc); 739 740 /* of_property_count_strings() tests */ 741 rc = of_property_count_strings(np, "string-property"); 742 unittest(rc == 1, "Incorrect string count; rc=%i\n", rc); 743 rc = of_property_count_strings(np, "phandle-list-names"); 744 unittest(rc == 3, "Incorrect string count; rc=%i\n", rc); 745 rc = of_property_count_strings(np, "unterminated-string"); 746 unittest(rc == -EILSEQ, "unterminated string; rc=%i\n", rc); 747 rc = of_property_count_strings(np, "unterminated-string-list"); 748 unittest(rc == -EILSEQ, "unterminated string array; rc=%i\n", rc); 749 750 /* of_property_read_string_index() tests */ 751 rc = of_property_read_string_index(np, "string-property", 0, strings); 752 unittest(rc == 0 && !strcmp(strings[0], "foobar"), "of_property_read_string_index() failure; rc=%i\n", rc); 753 strings[0] = NULL; 754 rc = of_property_read_string_index(np, "string-property", 1, strings); 755 unittest(rc == -ENODATA && strings[0] == NULL, "of_property_read_string_index() failure; rc=%i\n", rc); 756 rc = of_property_read_string_index(np, "phandle-list-names", 0, strings); 757 unittest(rc == 0 && !strcmp(strings[0], "first"), "of_property_read_string_index() failure; rc=%i\n", rc); 758 rc = of_property_read_string_index(np, "phandle-list-names", 1, strings); 759 unittest(rc == 0 && !strcmp(strings[0], "second"), "of_property_read_string_index() failure; rc=%i\n", rc); 760 rc = of_property_read_string_index(np, "phandle-list-names", 2, strings); 761 unittest(rc == 0 && !strcmp(strings[0], "third"), "of_property_read_string_index() failure; rc=%i\n", rc); 762 strings[0] = NULL; 763 rc = of_property_read_string_index(np, "phandle-list-names", 3, strings); 764 unittest(rc == -ENODATA && strings[0] == NULL, "of_property_read_string_index() failure; rc=%i\n", rc); 765 strings[0] = NULL; 766 rc = of_property_read_string_index(np, "unterminated-string", 0, strings); 767 unittest(rc == -EILSEQ && strings[0] == NULL, "of_property_read_string_index() failure; rc=%i\n", rc); 768 rc = of_property_read_string_index(np, "unterminated-string-list", 0, strings); 769 unittest(rc == 0 && !strcmp(strings[0], "first"), "of_property_read_string_index() failure; rc=%i\n", rc); 770 strings[0] = NULL; 771 rc = of_property_read_string_index(np, "unterminated-string-list", 2, strings); /* should fail */ 772 unittest(rc == -EILSEQ && strings[0] == NULL, "of_property_read_string_index() failure; rc=%i\n", rc); 773 strings[1] = NULL; 774 775 /* of_property_read_string_array() tests */ 776 rc = of_property_read_string_array(np, "string-property", strings, 4); 777 unittest(rc == 1, "Incorrect string count; rc=%i\n", rc); 778 rc = of_property_read_string_array(np, "phandle-list-names", strings, 4); 779 unittest(rc == 3, "Incorrect string count; rc=%i\n", rc); 780 rc = of_property_read_string_array(np, "unterminated-string", strings, 4); 781 unittest(rc == -EILSEQ, "unterminated string; rc=%i\n", rc); 782 /* -- An incorrectly formed string should cause a failure */ 783 rc = of_property_read_string_array(np, "unterminated-string-list", strings, 4); 784 unittest(rc == -EILSEQ, "unterminated string array; rc=%i\n", rc); 785 /* -- parsing the correctly formed strings should still work: */ 786 strings[2] = NULL; 787 rc = of_property_read_string_array(np, "unterminated-string-list", strings, 2); 788 unittest(rc == 2 && strings[2] == NULL, "of_property_read_string_array() failure; rc=%i\n", rc); 789 strings[1] = NULL; 790 rc = of_property_read_string_array(np, "phandle-list-names", strings, 1); 791 unittest(rc == 1 && strings[1] == NULL, "Overwrote end of string array; rc=%i, str='%s'\n", rc, strings[1]); 792 } 793 794 #define propcmp(p1, p2) (((p1)->length == (p2)->length) && \ 795 (p1)->value && (p2)->value && \ 796 !memcmp((p1)->value, (p2)->value, (p1)->length) && \ 797 !strcmp((p1)->name, (p2)->name)) 798 static void __init of_unittest_property_copy(void) 799 { 800 #ifdef CONFIG_OF_DYNAMIC 801 struct property p1 = { .name = "p1", .length = 0, .value = "" }; 802 struct property p2 = { .name = "p2", .length = 5, .value = "abcd" }; 803 struct property *new; 804 805 new = __of_prop_dup(&p1, GFP_KERNEL); 806 unittest(new && propcmp(&p1, new), "empty property didn't copy correctly\n"); 807 __of_prop_free(new); 808 809 new = __of_prop_dup(&p2, GFP_KERNEL); 810 unittest(new && propcmp(&p2, new), "non-empty property didn't copy correctly\n"); 811 __of_prop_free(new); 812 #endif 813 } 814 815 static void __init of_unittest_changeset(void) 816 { 817 #ifdef CONFIG_OF_DYNAMIC 818 int ret; 819 struct property *ppadd, padd = { .name = "prop-add", .length = 1, .value = "" }; 820 struct property *ppname_n1, pname_n1 = { .name = "name", .length = 3, .value = "n1" }; 821 struct property *ppname_n2, pname_n2 = { .name = "name", .length = 3, .value = "n2" }; 822 struct property *ppname_n21, pname_n21 = { .name = "name", .length = 3, .value = "n21" }; 823 struct property *ppupdate, pupdate = { .name = "prop-update", .length = 5, .value = "abcd" }; 824 struct property *ppremove; 825 struct device_node *n1, *n2, *n21, *n22, *nchangeset, *nremove, *parent, *np; 826 static const char * const str_array[] = { "str1", "str2", "str3" }; 827 const u32 u32_array[] = { 1, 2, 3 }; 828 struct of_changeset chgset; 829 const char *propstr = NULL; 830 831 n1 = __of_node_dup(NULL, "n1"); 832 unittest(n1, "testcase setup failure\n"); 833 834 n2 = __of_node_dup(NULL, "n2"); 835 unittest(n2, "testcase setup failure\n"); 836 837 n21 = __of_node_dup(NULL, "n21"); 838 unittest(n21, "testcase setup failure %p\n", n21); 839 840 nchangeset = of_find_node_by_path("/testcase-data/changeset"); 841 nremove = of_get_child_by_name(nchangeset, "node-remove"); 842 unittest(nremove, "testcase setup failure\n"); 843 844 ppadd = __of_prop_dup(&padd, GFP_KERNEL); 845 unittest(ppadd, "testcase setup failure\n"); 846 847 ppname_n1 = __of_prop_dup(&pname_n1, GFP_KERNEL); 848 unittest(ppname_n1, "testcase setup failure\n"); 849 850 ppname_n2 = __of_prop_dup(&pname_n2, GFP_KERNEL); 851 unittest(ppname_n2, "testcase setup failure\n"); 852 853 ppname_n21 = __of_prop_dup(&pname_n21, GFP_KERNEL); 854 unittest(ppname_n21, "testcase setup failure\n"); 855 856 ppupdate = __of_prop_dup(&pupdate, GFP_KERNEL); 857 unittest(ppupdate, "testcase setup failure\n"); 858 859 parent = nchangeset; 860 n1->parent = parent; 861 n2->parent = parent; 862 n21->parent = n2; 863 864 ppremove = of_find_property(parent, "prop-remove", NULL); 865 unittest(ppremove, "failed to find removal prop"); 866 867 of_changeset_init(&chgset); 868 869 unittest(!of_changeset_attach_node(&chgset, n1), "fail attach n1\n"); 870 unittest(!of_changeset_add_property(&chgset, n1, ppname_n1), "fail add prop name\n"); 871 872 unittest(!of_changeset_attach_node(&chgset, n2), "fail attach n2\n"); 873 unittest(!of_changeset_add_property(&chgset, n2, ppname_n2), "fail add prop name\n"); 874 875 unittest(!of_changeset_detach_node(&chgset, nremove), "fail remove node\n"); 876 unittest(!of_changeset_add_property(&chgset, n21, ppname_n21), "fail add prop name\n"); 877 878 unittest(!of_changeset_attach_node(&chgset, n21), "fail attach n21\n"); 879 880 unittest(!of_changeset_add_property(&chgset, parent, ppadd), "fail add prop prop-add\n"); 881 unittest(!of_changeset_update_property(&chgset, parent, ppupdate), "fail update prop\n"); 882 unittest(!of_changeset_remove_property(&chgset, parent, ppremove), "fail remove prop\n"); 883 n22 = of_changeset_create_node(&chgset, n2, "n22"); 884 unittest(n22, "fail create n22\n"); 885 unittest(!of_changeset_add_prop_string(&chgset, n22, "prop-str", "abcd"), 886 "fail add prop prop-str"); 887 unittest(!of_changeset_add_prop_string_array(&chgset, n22, "prop-str-array", 888 (const char **)str_array, 889 ARRAY_SIZE(str_array)), 890 "fail add prop prop-str-array"); 891 unittest(!of_changeset_add_prop_u32_array(&chgset, n22, "prop-u32-array", 892 u32_array, ARRAY_SIZE(u32_array)), 893 "fail add prop prop-u32-array"); 894 895 unittest(!of_changeset_apply(&chgset), "apply failed\n"); 896 897 of_node_put(nchangeset); 898 899 /* Make sure node names are constructed correctly */ 900 unittest((np = of_find_node_by_path("/testcase-data/changeset/n2/n21")), 901 "'%pOF' not added\n", n21); 902 of_node_put(np); 903 unittest((np = of_find_node_by_path("/testcase-data/changeset/n2/n22")), 904 "'%pOF' not added\n", n22); 905 of_node_put(np); 906 907 unittest(!of_changeset_revert(&chgset), "revert failed\n"); 908 909 unittest(!of_find_node_by_path("/testcase-data/changeset/n2/n21"), 910 "'%pOF' still present after revert\n", n21); 911 912 unittest(of_property_present(parent, "prop-remove"), 913 "failed to find removed prop after revert\n"); 914 915 ret = of_property_read_string(parent, "prop-update", &propstr); 916 unittest(!ret, "failed to find updated prop after revert\n"); 917 if (!ret) 918 unittest(strcmp(propstr, "hello") == 0, "original value not in updated property after revert"); 919 920 of_changeset_destroy(&chgset); 921 922 of_node_put(n1); 923 of_node_put(n2); 924 of_node_put(n21); 925 of_node_put(n22); 926 #endif 927 } 928 929 static void __init __maybe_unused changeset_check_string(struct device_node *np, 930 const char *prop_name, 931 const char *expected_str) 932 { 933 const char *str; 934 int ret; 935 936 ret = of_property_read_string(np, prop_name, &str); 937 if (unittest(ret == 0, "failed to read %s\n", prop_name)) 938 return; 939 940 unittest(strcmp(str, expected_str) == 0, 941 "%s value mismatch (read '%s', exp '%s')\n", 942 prop_name, str, expected_str); 943 } 944 945 static void __init __maybe_unused changeset_check_string_array(struct device_node *np, 946 const char *prop_name, 947 const char * const *expected_array, 948 unsigned int count) 949 { 950 const char *str; 951 unsigned int i; 952 int ret; 953 int cnt; 954 955 cnt = of_property_count_strings(np, prop_name); 956 if (unittest(cnt >= 0, "failed to get %s count\n", prop_name)) 957 return; 958 959 if (unittest(cnt == count, 960 "%s count mismatch (read %d, exp %u)\n", 961 prop_name, cnt, count)) 962 return; 963 964 for (i = 0; i < count; i++) { 965 ret = of_property_read_string_index(np, prop_name, i, &str); 966 if (unittest(ret == 0, "failed to read %s[%d]\n", prop_name, i)) 967 continue; 968 969 unittest(strcmp(str, expected_array[i]) == 0, 970 "%s[%d] value mismatch (read '%s', exp '%s')\n", 971 prop_name, i, str, expected_array[i]); 972 } 973 } 974 975 static void __init __maybe_unused changeset_check_u32(struct device_node *np, 976 const char *prop_name, 977 u32 expected_u32) 978 { 979 u32 val32; 980 int ret; 981 982 ret = of_property_read_u32(np, prop_name, &val32); 983 if (unittest(ret == 0, "failed to read %s\n", prop_name)) 984 return; 985 986 unittest(val32 == expected_u32, 987 "%s value mismatch (read '%u', exp '%u')\n", 988 prop_name, val32, expected_u32); 989 } 990 991 static void __init __maybe_unused changeset_check_u32_array(struct device_node *np, 992 const char *prop_name, 993 const u32 *expected_array, 994 unsigned int count) 995 { 996 unsigned int i; 997 u32 val32; 998 int ret; 999 int cnt; 1000 1001 cnt = of_property_count_u32_elems(np, prop_name); 1002 if (unittest(cnt >= 0, "failed to get %s count\n", prop_name)) 1003 return; 1004 1005 if (unittest(cnt == count, 1006 "%s count mismatch (read %d, exp %u)\n", 1007 prop_name, cnt, count)) 1008 return; 1009 1010 for (i = 0; i < count; i++) { 1011 ret = of_property_read_u32_index(np, prop_name, i, &val32); 1012 if (unittest(ret == 0, "failed to read %s[%d]\n", prop_name, i)) 1013 continue; 1014 1015 unittest(val32 == expected_array[i], 1016 "%s[%d] value mismatch (read '%u', exp '%u')\n", 1017 prop_name, i, val32, expected_array[i]); 1018 } 1019 } 1020 1021 static void __init __maybe_unused changeset_check_bool(struct device_node *np, 1022 const char *prop_name) 1023 { 1024 unittest(of_property_read_bool(np, prop_name), 1025 "%s value mismatch (read 'false', exp 'true')\n", prop_name); 1026 } 1027 1028 static void __init of_unittest_changeset_prop(void) 1029 { 1030 #ifdef CONFIG_OF_DYNAMIC 1031 static const char * const str_array[] = { "abc", "defg", "hij" }; 1032 static const u32 u32_array[] = { 123, 4567, 89, 10, 11 }; 1033 struct device_node *nchangeset, *np; 1034 struct of_changeset chgset; 1035 int ret; 1036 1037 nchangeset = of_find_node_by_path("/testcase-data/changeset"); 1038 if (!nchangeset) { 1039 pr_err("missing testcase data\n"); 1040 return; 1041 } 1042 1043 of_changeset_init(&chgset); 1044 1045 np = of_changeset_create_node(&chgset, nchangeset, "test-prop"); 1046 if (unittest(np, "failed to create test-prop node\n")) 1047 goto end_changeset_destroy; 1048 1049 ret = of_changeset_add_prop_string(&chgset, np, "prop-string", "abcde"); 1050 unittest(ret == 0, "failed to add prop-string\n"); 1051 1052 ret = of_changeset_add_prop_string_array(&chgset, np, "prop-string-array", 1053 str_array, ARRAY_SIZE(str_array)); 1054 unittest(ret == 0, "failed to add prop-string-array\n"); 1055 1056 ret = of_changeset_add_prop_u32(&chgset, np, "prop-u32", 1234); 1057 unittest(ret == 0, "failed to add prop-u32\n"); 1058 1059 ret = of_changeset_add_prop_u32_array(&chgset, np, "prop-u32-array", 1060 u32_array, ARRAY_SIZE(u32_array)); 1061 unittest(ret == 0, "failed to add prop-u32-array\n"); 1062 1063 ret = of_changeset_add_prop_bool(&chgset, np, "prop-bool"); 1064 unittest(ret == 0, "failed to add prop-bool\n"); 1065 1066 of_node_put(np); 1067 1068 ret = of_changeset_apply(&chgset); 1069 if (unittest(ret == 0, "failed to apply changeset\n")) 1070 goto end_changeset_destroy; 1071 1072 np = of_find_node_by_path("/testcase-data/changeset/test-prop"); 1073 if (unittest(np, "failed to find test-prop node\n")) 1074 goto end_revert_changeset; 1075 1076 changeset_check_string(np, "prop-string", "abcde"); 1077 changeset_check_string_array(np, "prop-string-array", str_array, ARRAY_SIZE(str_array)); 1078 changeset_check_u32(np, "prop-u32", 1234); 1079 changeset_check_u32_array(np, "prop-u32-array", u32_array, ARRAY_SIZE(u32_array)); 1080 changeset_check_bool(np, "prop-bool"); 1081 1082 of_node_put(np); 1083 1084 end_revert_changeset: 1085 ret = of_changeset_revert(&chgset); 1086 unittest(ret == 0, "failed to revert changeset\n"); 1087 1088 end_changeset_destroy: 1089 of_changeset_destroy(&chgset); 1090 of_node_put(nchangeset); 1091 #endif 1092 } 1093 1094 static void __init of_unittest_dma_get_max_cpu_address(void) 1095 { 1096 struct device_node *np; 1097 phys_addr_t cpu_addr; 1098 1099 if (!IS_ENABLED(CONFIG_OF_ADDRESS)) 1100 return; 1101 1102 np = of_find_node_by_path("/testcase-data/address-tests"); 1103 if (!np) { 1104 pr_err("missing testcase data\n"); 1105 return; 1106 } 1107 1108 cpu_addr = of_dma_get_max_cpu_address(np); 1109 unittest(cpu_addr == 0x4fffffff, 1110 "of_dma_get_max_cpu_address: wrong CPU addr %pad (expecting %x)\n", 1111 &cpu_addr, 0x4fffffff); 1112 } 1113 1114 static void __init of_unittest_dma_ranges_one(const char *path, 1115 u64 expect_dma_addr, u64 expect_paddr) 1116 { 1117 #ifdef CONFIG_HAS_DMA 1118 struct device_node *np; 1119 const struct bus_dma_region *map = NULL; 1120 int rc; 1121 1122 np = of_find_node_by_path(path); 1123 if (!np) { 1124 pr_err("missing testcase data\n"); 1125 return; 1126 } 1127 1128 rc = of_dma_get_range(np, &map); 1129 1130 unittest(!rc, "of_dma_get_range failed on node %pOF rc=%i\n", np, rc); 1131 1132 if (!rc) { 1133 phys_addr_t paddr; 1134 dma_addr_t dma_addr; 1135 struct device *dev_bogus; 1136 1137 dev_bogus = kzalloc(sizeof(struct device), GFP_KERNEL); 1138 if (!dev_bogus) { 1139 unittest(0, "kzalloc() failed\n"); 1140 kfree(map); 1141 return; 1142 } 1143 1144 dev_bogus->dma_range_map = map; 1145 paddr = dma_to_phys(dev_bogus, expect_dma_addr); 1146 dma_addr = phys_to_dma(dev_bogus, expect_paddr); 1147 1148 unittest(paddr == expect_paddr, 1149 "of_dma_get_range: wrong phys addr %pap (expecting %llx) on node %pOF\n", 1150 &paddr, expect_paddr, np); 1151 unittest(dma_addr == expect_dma_addr, 1152 "of_dma_get_range: wrong DMA addr %pad (expecting %llx) on node %pOF\n", 1153 &dma_addr, expect_dma_addr, np); 1154 1155 kfree(map); 1156 kfree(dev_bogus); 1157 } 1158 of_node_put(np); 1159 #endif 1160 } 1161 1162 static void __init of_unittest_parse_dma_ranges(void) 1163 { 1164 of_unittest_dma_ranges_one("/testcase-data/address-tests/device@70000000", 1165 0x0, 0x20000000); 1166 if (IS_ENABLED(CONFIG_ARCH_DMA_ADDR_T_64BIT)) 1167 of_unittest_dma_ranges_one("/testcase-data/address-tests/bus@80000000/device@1000", 1168 0x100000000, 0x20000000); 1169 of_unittest_dma_ranges_one("/testcase-data/address-tests/pci@90000000", 1170 0x80000000, 0x20000000); 1171 } 1172 1173 static void __init of_unittest_pci_dma_ranges(void) 1174 { 1175 struct device_node *np; 1176 struct of_pci_range range; 1177 struct of_pci_range_parser parser; 1178 int i = 0; 1179 1180 if (!IS_ENABLED(CONFIG_PCI)) 1181 return; 1182 1183 np = of_find_node_by_path("/testcase-data/address-tests/pci@90000000"); 1184 if (!np) { 1185 pr_err("missing testcase data\n"); 1186 return; 1187 } 1188 1189 if (of_pci_dma_range_parser_init(&parser, np)) { 1190 pr_err("missing dma-ranges property\n"); 1191 return; 1192 } 1193 1194 /* 1195 * Get the dma-ranges from the device tree 1196 */ 1197 for_each_of_pci_range(&parser, &range) { 1198 if (!i) { 1199 unittest(range.size == 0x10000000, 1200 "for_each_of_pci_range wrong size on node %pOF size=%llx\n", 1201 np, range.size); 1202 unittest(range.cpu_addr == 0x20000000, 1203 "for_each_of_pci_range wrong CPU addr (%llx) on node %pOF", 1204 range.cpu_addr, np); 1205 unittest(range.pci_addr == 0x80000000, 1206 "for_each_of_pci_range wrong DMA addr (%llx) on node %pOF", 1207 range.pci_addr, np); 1208 } else { 1209 unittest(range.size == 0x10000000, 1210 "for_each_of_pci_range wrong size on node %pOF size=%llx\n", 1211 np, range.size); 1212 unittest(range.cpu_addr == 0x40000000, 1213 "for_each_of_pci_range wrong CPU addr (%llx) on node %pOF", 1214 range.cpu_addr, np); 1215 unittest(range.pci_addr == 0xc0000000, 1216 "for_each_of_pci_range wrong DMA addr (%llx) on node %pOF", 1217 range.pci_addr, np); 1218 } 1219 i++; 1220 } 1221 1222 of_node_put(np); 1223 } 1224 1225 static void __init of_unittest_pci_empty_dma_ranges(void) 1226 { 1227 struct device_node *np; 1228 struct of_pci_range range; 1229 struct of_pci_range_parser parser; 1230 1231 if (!IS_ENABLED(CONFIG_PCI)) 1232 return; 1233 1234 np = of_find_node_by_path("/testcase-data/address-tests2/pcie@d1070000/pci@0,0/dev@0,0/local-bus@0"); 1235 if (!np) { 1236 pr_err("missing testcase data\n"); 1237 return; 1238 } 1239 1240 if (of_pci_dma_range_parser_init(&parser, np)) { 1241 pr_err("missing dma-ranges property\n"); 1242 return; 1243 } 1244 1245 /* 1246 * Get the dma-ranges from the device tree 1247 */ 1248 for_each_of_pci_range(&parser, &range) { 1249 unittest(range.size == 0x10000000, 1250 "for_each_of_pci_range wrong size on node %pOF size=%llx\n", 1251 np, range.size); 1252 unittest(range.cpu_addr == 0x00000000, 1253 "for_each_of_pci_range wrong CPU addr (%llx) on node %pOF", 1254 range.cpu_addr, np); 1255 unittest(range.pci_addr == 0xc0000000, 1256 "for_each_of_pci_range wrong DMA addr (%llx) on node %pOF", 1257 range.pci_addr, np); 1258 } 1259 1260 of_node_put(np); 1261 } 1262 1263 static void __init of_unittest_bus_ranges(void) 1264 { 1265 struct device_node *np; 1266 struct of_range range; 1267 struct of_range_parser parser; 1268 struct resource res; 1269 int ret, count, i = 0; 1270 1271 np = of_find_node_by_path("/testcase-data/address-tests"); 1272 if (!np) { 1273 pr_err("missing testcase data\n"); 1274 return; 1275 } 1276 1277 if (of_range_parser_init(&parser, np)) { 1278 pr_err("missing ranges property\n"); 1279 return; 1280 } 1281 1282 ret = of_range_to_resource(np, 1, &res); 1283 unittest(!ret, "of_range_to_resource returned error (%d) node %pOF\n", 1284 ret, np); 1285 unittest(resource_type(&res) == IORESOURCE_MEM, 1286 "of_range_to_resource wrong resource type on node %pOF res=%pR\n", 1287 np, &res); 1288 unittest(res.start == 0xd0000000, 1289 "of_range_to_resource wrong resource start address on node %pOF res=%pR\n", 1290 np, &res); 1291 unittest(resource_size(&res) == 0x20000000, 1292 "of_range_to_resource wrong resource start address on node %pOF res=%pR\n", 1293 np, &res); 1294 1295 count = of_range_count(&parser); 1296 unittest(count == 2, 1297 "of_range_count wrong size on node %pOF count=%d\n", 1298 np, count); 1299 1300 /* 1301 * Get the "ranges" from the device tree 1302 */ 1303 for_each_of_range(&parser, &range) { 1304 unittest(range.flags == IORESOURCE_MEM, 1305 "for_each_of_range wrong flags on node %pOF flags=%x (expected %x)\n", 1306 np, range.flags, IORESOURCE_MEM); 1307 if (!i) { 1308 unittest(range.size == 0x50000000, 1309 "for_each_of_range wrong size on node %pOF size=%llx\n", 1310 np, range.size); 1311 unittest(range.cpu_addr == 0x70000000, 1312 "for_each_of_range wrong CPU addr (%llx) on node %pOF", 1313 range.cpu_addr, np); 1314 unittest(range.bus_addr == 0x70000000, 1315 "for_each_of_range wrong bus addr (%llx) on node %pOF", 1316 range.pci_addr, np); 1317 } else { 1318 unittest(range.size == 0x20000000, 1319 "for_each_of_range wrong size on node %pOF size=%llx\n", 1320 np, range.size); 1321 unittest(range.cpu_addr == 0xd0000000, 1322 "for_each_of_range wrong CPU addr (%llx) on node %pOF", 1323 range.cpu_addr, np); 1324 unittest(range.bus_addr == 0x00000000, 1325 "for_each_of_range wrong bus addr (%llx) on node %pOF", 1326 range.pci_addr, np); 1327 } 1328 i++; 1329 } 1330 1331 of_node_put(np); 1332 } 1333 1334 static void __init of_unittest_bus_3cell_ranges(void) 1335 { 1336 struct device_node *np; 1337 struct of_range range; 1338 struct of_range_parser parser; 1339 int i = 0; 1340 1341 np = of_find_node_by_path("/testcase-data/address-tests/bus@a0000000"); 1342 if (!np) { 1343 pr_err("missing testcase data\n"); 1344 return; 1345 } 1346 1347 if (of_range_parser_init(&parser, np)) { 1348 pr_err("missing ranges property\n"); 1349 return; 1350 } 1351 1352 /* 1353 * Get the "ranges" from the device tree 1354 */ 1355 for_each_of_range(&parser, &range) { 1356 if (!i) { 1357 unittest(range.flags == 0xf00baa, 1358 "for_each_of_range wrong flags on node %pOF flags=%x\n", 1359 np, range.flags); 1360 unittest(range.size == 0x100000, 1361 "for_each_of_range wrong size on node %pOF size=%llx\n", 1362 np, range.size); 1363 unittest(range.cpu_addr == 0xa0000000, 1364 "for_each_of_range wrong CPU addr (%llx) on node %pOF", 1365 range.cpu_addr, np); 1366 unittest(range.bus_addr == 0x0, 1367 "for_each_of_range wrong bus addr (%llx) on node %pOF", 1368 range.pci_addr, np); 1369 } else { 1370 unittest(range.flags == 0xf00bee, 1371 "for_each_of_range wrong flags on node %pOF flags=%x\n", 1372 np, range.flags); 1373 unittest(range.size == 0x200000, 1374 "for_each_of_range wrong size on node %pOF size=%llx\n", 1375 np, range.size); 1376 unittest(range.cpu_addr == 0xb0000000, 1377 "for_each_of_range wrong CPU addr (%llx) on node %pOF", 1378 range.cpu_addr, np); 1379 unittest(range.bus_addr == 0x100000000, 1380 "for_each_of_range wrong bus addr (%llx) on node %pOF", 1381 range.pci_addr, np); 1382 } 1383 i++; 1384 } 1385 1386 of_node_put(np); 1387 } 1388 1389 static void __init of_unittest_reg(void) 1390 { 1391 struct device_node *np; 1392 struct resource res; 1393 int ret; 1394 u64 addr, size; 1395 1396 np = of_find_node_by_path("/testcase-data/address-tests/bus@80000000/device@1000"); 1397 if (!np) { 1398 pr_err("missing testcase data\n"); 1399 return; 1400 } 1401 1402 ret = of_property_read_reg(np, 0, &addr, &size); 1403 unittest(!ret, "of_property_read_reg(%pOF) returned error %d\n", 1404 np, ret); 1405 unittest(addr == 0x1000, "of_property_read_reg(%pOF) untranslated address (%llx) incorrect\n", 1406 np, addr); 1407 1408 of_node_put(np); 1409 1410 np = of_find_node_by_path("/testcase-data/platform-tests-2/node/test-device@100"); 1411 if (!np) { 1412 pr_err("missing testcase data\n"); 1413 return; 1414 } 1415 1416 ret = of_address_to_resource(np, 0, &res); 1417 unittest(ret == -EINVAL, "of_address_to_resource(%pOF) expected error on untranslatable address\n", 1418 np); 1419 1420 of_node_put(np); 1421 1422 } 1423 1424 struct of_unittest_expected_res { 1425 int index; 1426 struct resource res; 1427 }; 1428 1429 static void __init of_unittest_check_addr(const char *node_path, 1430 const struct of_unittest_expected_res *tab_exp, 1431 unsigned int tab_exp_count) 1432 { 1433 const struct of_unittest_expected_res *expected; 1434 struct device_node *np; 1435 struct resource res; 1436 unsigned int count; 1437 int ret; 1438 1439 if (!IS_ENABLED(CONFIG_OF_ADDRESS)) 1440 return; 1441 1442 np = of_find_node_by_path(node_path); 1443 if (!np) { 1444 pr_err("missing testcase data (%s)\n", node_path); 1445 return; 1446 } 1447 1448 expected = tab_exp; 1449 count = tab_exp_count; 1450 while (count--) { 1451 ret = of_address_to_resource(np, expected->index, &res); 1452 unittest(!ret, "of_address_to_resource(%pOF, %d) returned error %d\n", 1453 np, expected->index, ret); 1454 unittest(resource_type(&res) == resource_type(&expected->res) && 1455 res.start == expected->res.start && 1456 resource_size(&res) == resource_size(&expected->res), 1457 "of_address_to_resource(%pOF, %d) wrong resource %pR, expected %pR\n", 1458 np, expected->index, &res, &expected->res); 1459 expected++; 1460 } 1461 1462 of_node_put(np); 1463 } 1464 1465 static const struct of_unittest_expected_res of_unittest_reg_2cell_expected_res[] = { 1466 {.index = 0, .res = DEFINE_RES_MEM(0xa0a01000, 0x100) }, 1467 {.index = 1, .res = DEFINE_RES_MEM(0xa0a02000, 0x100) }, 1468 {.index = 2, .res = DEFINE_RES_MEM(0xc0c01000, 0x100) }, 1469 {.index = 3, .res = DEFINE_RES_MEM(0xd0d01000, 0x100) }, 1470 }; 1471 1472 static const struct of_unittest_expected_res of_unittest_reg_3cell_expected_res[] = { 1473 {.index = 0, .res = DEFINE_RES_MEM(0xa0a01000, 0x100) }, 1474 {.index = 1, .res = DEFINE_RES_MEM(0xa0b02000, 0x100) }, 1475 {.index = 2, .res = DEFINE_RES_MEM(0xc0c01000, 0x100) }, 1476 {.index = 3, .res = DEFINE_RES_MEM(0xc0c09000, 0x100) }, 1477 {.index = 4, .res = DEFINE_RES_MEM(0xd0d01000, 0x100) }, 1478 }; 1479 1480 static const struct of_unittest_expected_res of_unittest_reg_pci_expected_res[] = { 1481 {.index = 0, .res = DEFINE_RES_MEM(0xe8001000, 0x1000) }, 1482 {.index = 1, .res = DEFINE_RES_MEM(0xea002000, 0x2000) }, 1483 }; 1484 1485 static void __init of_unittest_translate_addr(void) 1486 { 1487 of_unittest_check_addr("/testcase-data/address-tests2/bus-2cell@10000000/device@100000", 1488 of_unittest_reg_2cell_expected_res, 1489 ARRAY_SIZE(of_unittest_reg_2cell_expected_res)); 1490 1491 of_unittest_check_addr("/testcase-data/address-tests2/bus-3cell@20000000/local-bus@100000/device@f1001000", 1492 of_unittest_reg_3cell_expected_res, 1493 ARRAY_SIZE(of_unittest_reg_3cell_expected_res)); 1494 1495 of_unittest_check_addr("/testcase-data/address-tests2/pcie@d1070000/pci@0,0/dev@0,0/local-bus@0/dev@e0000000", 1496 of_unittest_reg_pci_expected_res, 1497 ARRAY_SIZE(of_unittest_reg_pci_expected_res)); 1498 } 1499 1500 static void __init of_unittest_parse_interrupts(void) 1501 { 1502 struct device_node *np; 1503 struct of_phandle_args args; 1504 int i, rc; 1505 1506 if (of_irq_workarounds & OF_IMAP_OLDWORLD_MAC) 1507 return; 1508 1509 np = of_find_node_by_path("/testcase-data/interrupts/interrupts0"); 1510 if (!np) { 1511 pr_err("missing testcase data\n"); 1512 return; 1513 } 1514 1515 for (i = 0; i < 4; i++) { 1516 bool passed = true; 1517 1518 memset(&args, 0, sizeof(args)); 1519 rc = of_irq_parse_one(np, i, &args); 1520 1521 passed &= !rc; 1522 passed &= (args.args_count == 1); 1523 passed &= (args.args[0] == (i + 1)); 1524 1525 unittest(passed, "index %i - data error on node %pOF rc=%i\n", 1526 i, args.np, rc); 1527 } 1528 of_node_put(np); 1529 1530 np = of_find_node_by_path("/testcase-data/interrupts/interrupts1"); 1531 if (!np) { 1532 pr_err("missing testcase data\n"); 1533 return; 1534 } 1535 1536 for (i = 0; i < 4; i++) { 1537 bool passed = true; 1538 1539 memset(&args, 0, sizeof(args)); 1540 rc = of_irq_parse_one(np, i, &args); 1541 1542 /* Test the values from tests-phandle.dtsi */ 1543 switch (i) { 1544 case 0: 1545 passed &= !rc; 1546 passed &= (args.args_count == 1); 1547 passed &= (args.args[0] == 9); 1548 break; 1549 case 1: 1550 passed &= !rc; 1551 passed &= (args.args_count == 3); 1552 passed &= (args.args[0] == 10); 1553 passed &= (args.args[1] == 11); 1554 passed &= (args.args[2] == 12); 1555 break; 1556 case 2: 1557 passed &= !rc; 1558 passed &= (args.args_count == 2); 1559 passed &= (args.args[0] == 13); 1560 passed &= (args.args[1] == 14); 1561 break; 1562 case 3: 1563 passed &= !rc; 1564 passed &= (args.args_count == 2); 1565 passed &= (args.args[0] == 15); 1566 passed &= (args.args[1] == 16); 1567 break; 1568 default: 1569 passed = false; 1570 } 1571 unittest(passed, "index %i - data error on node %pOF rc=%i\n", 1572 i, args.np, rc); 1573 } 1574 of_node_put(np); 1575 } 1576 1577 static void __init of_unittest_parse_interrupts_extended(void) 1578 { 1579 struct device_node *np; 1580 struct of_phandle_args args; 1581 int i, rc; 1582 1583 if (of_irq_workarounds & OF_IMAP_OLDWORLD_MAC) 1584 return; 1585 1586 np = of_find_node_by_path("/testcase-data/interrupts/interrupts-extended0"); 1587 if (!np) { 1588 pr_err("missing testcase data\n"); 1589 return; 1590 } 1591 1592 for (i = 0; i < 7; i++) { 1593 bool passed = true; 1594 1595 memset(&args, 0, sizeof(args)); 1596 rc = of_irq_parse_one(np, i, &args); 1597 1598 /* Test the values from tests-phandle.dtsi */ 1599 switch (i) { 1600 case 0: 1601 passed &= !rc; 1602 passed &= (args.args_count == 1); 1603 passed &= (args.args[0] == 1); 1604 break; 1605 case 1: 1606 passed &= !rc; 1607 passed &= (args.args_count == 3); 1608 passed &= (args.args[0] == 2); 1609 passed &= (args.args[1] == 3); 1610 passed &= (args.args[2] == 4); 1611 break; 1612 case 2: 1613 passed &= !rc; 1614 passed &= (args.args_count == 2); 1615 passed &= (args.args[0] == 5); 1616 passed &= (args.args[1] == 6); 1617 break; 1618 case 3: 1619 passed &= !rc; 1620 passed &= (args.args_count == 1); 1621 passed &= (args.args[0] == 9); 1622 break; 1623 case 4: 1624 passed &= !rc; 1625 passed &= (args.args_count == 3); 1626 passed &= (args.args[0] == 10); 1627 passed &= (args.args[1] == 11); 1628 passed &= (args.args[2] == 12); 1629 break; 1630 case 5: 1631 passed &= !rc; 1632 passed &= (args.args_count == 2); 1633 passed &= (args.args[0] == 13); 1634 passed &= (args.args[1] == 14); 1635 break; 1636 case 6: 1637 /* 1638 * Tests child node that is missing property 1639 * #address-cells. See the comments in 1640 * drivers/of/unittest-data/tests-interrupts.dtsi 1641 * nodes intmap1 and interrupts-extended0 1642 */ 1643 passed &= !rc; 1644 passed &= (args.args_count == 1); 1645 passed &= (args.args[0] == 15); 1646 break; 1647 default: 1648 passed = false; 1649 } 1650 1651 unittest(passed, "index %i - data error on node %pOF rc=%i\n", 1652 i, args.np, rc); 1653 } 1654 of_node_put(np); 1655 } 1656 1657 #if IS_ENABLED(CONFIG_OF_DYNAMIC) 1658 static void __init of_unittest_irq_refcount(void) 1659 { 1660 struct of_phandle_args args; 1661 struct device_node *intc0, *int_ext0; 1662 struct device_node *int2, *intc_intmap0; 1663 unsigned int ref_c0, ref_c1, ref_c2; 1664 int rc; 1665 bool passed; 1666 1667 if (of_irq_workarounds & OF_IMAP_OLDWORLD_MAC) 1668 return; 1669 1670 intc0 = of_find_node_by_path("/testcase-data/interrupts/intc0"); 1671 int_ext0 = of_find_node_by_path("/testcase-data/interrupts/interrupts-extended0"); 1672 intc_intmap0 = of_find_node_by_path("/testcase-data/interrupts/intc-intmap0"); 1673 int2 = of_find_node_by_path("/testcase-data/interrupts/interrupts2"); 1674 if (!intc0 || !int_ext0 || !intc_intmap0 || !int2) { 1675 pr_err("missing testcase data\n"); 1676 goto out; 1677 } 1678 1679 /* Test refcount for API of_irq_parse_one() */ 1680 passed = true; 1681 ref_c0 = OF_KREF_READ(intc0); 1682 ref_c1 = ref_c0 + 1; 1683 memset(&args, 0, sizeof(args)); 1684 rc = of_irq_parse_one(int_ext0, 0, &args); 1685 ref_c2 = OF_KREF_READ(intc0); 1686 of_node_put(args.np); 1687 1688 passed &= !rc; 1689 passed &= (args.np == intc0); 1690 passed &= (args.args_count == 1); 1691 passed &= (args.args[0] == 1); 1692 passed &= (ref_c1 == ref_c2); 1693 unittest(passed, "IRQ refcount case #1 failed, original(%u) expected(%u) got(%u)\n", 1694 ref_c0, ref_c1, ref_c2); 1695 1696 /* Test refcount for API of_irq_parse_raw() */ 1697 passed = true; 1698 ref_c0 = OF_KREF_READ(intc_intmap0); 1699 ref_c1 = ref_c0 + 1; 1700 memset(&args, 0, sizeof(args)); 1701 rc = of_irq_parse_one(int2, 0, &args); 1702 ref_c2 = OF_KREF_READ(intc_intmap0); 1703 of_node_put(args.np); 1704 1705 passed &= !rc; 1706 passed &= (args.np == intc_intmap0); 1707 passed &= (args.args_count == 1); 1708 passed &= (args.args[0] == 2); 1709 passed &= (ref_c1 == ref_c2); 1710 unittest(passed, "IRQ refcount case #2 failed, original(%u) expected(%u) got(%u)\n", 1711 ref_c0, ref_c1, ref_c2); 1712 1713 out: 1714 of_node_put(int2); 1715 of_node_put(intc_intmap0); 1716 of_node_put(int_ext0); 1717 of_node_put(intc0); 1718 } 1719 #else 1720 static inline void __init of_unittest_irq_refcount(void) { } 1721 #endif 1722 1723 static const struct of_device_id match_node_table[] = { 1724 { .data = "A", .name = "name0", }, /* Name alone is lowest priority */ 1725 { .data = "B", .type = "type1", }, /* followed by type alone */ 1726 1727 { .data = "Ca", .name = "name2", .type = "type1", }, /* followed by both together */ 1728 { .data = "Cb", .name = "name2", }, /* Only match when type doesn't match */ 1729 { .data = "Cc", .name = "name2", .type = "type2", }, 1730 1731 { .data = "E", .compatible = "compat3" }, 1732 { .data = "G", .compatible = "compat2", }, 1733 { .data = "H", .compatible = "compat2", .name = "name5", }, 1734 { .data = "I", .compatible = "compat2", .type = "type1", }, 1735 { .data = "J", .compatible = "compat2", .type = "type1", .name = "name8", }, 1736 { .data = "K", .compatible = "compat2", .name = "name9", }, 1737 {} 1738 }; 1739 1740 static struct { 1741 const char *path; 1742 const char *data; 1743 } match_node_tests[] = { 1744 { .path = "/testcase-data/match-node/name0", .data = "A", }, 1745 { .path = "/testcase-data/match-node/name1", .data = "B", }, 1746 { .path = "/testcase-data/match-node/a/name2", .data = "Ca", }, 1747 { .path = "/testcase-data/match-node/b/name2", .data = "Cb", }, 1748 { .path = "/testcase-data/match-node/c/name2", .data = "Cc", }, 1749 { .path = "/testcase-data/match-node/name3", .data = "E", }, 1750 { .path = "/testcase-data/match-node/name4", .data = "G", }, 1751 { .path = "/testcase-data/match-node/name5", .data = "H", }, 1752 { .path = "/testcase-data/match-node/name6", .data = "G", }, 1753 { .path = "/testcase-data/match-node/name7", .data = "I", }, 1754 { .path = "/testcase-data/match-node/name8", .data = "J", }, 1755 { .path = "/testcase-data/match-node/name9", .data = "K", }, 1756 }; 1757 1758 static void __init of_unittest_match_node(void) 1759 { 1760 struct device_node *np; 1761 const struct of_device_id *match; 1762 int i; 1763 1764 for (i = 0; i < ARRAY_SIZE(match_node_tests); i++) { 1765 np = of_find_node_by_path(match_node_tests[i].path); 1766 if (!np) { 1767 unittest(0, "missing testcase node %s\n", 1768 match_node_tests[i].path); 1769 continue; 1770 } 1771 1772 match = of_match_node(match_node_table, np); 1773 if (!match) { 1774 unittest(0, "%s didn't match anything\n", 1775 match_node_tests[i].path); 1776 continue; 1777 } 1778 1779 if (strcmp(match->data, match_node_tests[i].data) != 0) { 1780 unittest(0, "%s got wrong match. expected %s, got %s\n", 1781 match_node_tests[i].path, match_node_tests[i].data, 1782 (const char *)match->data); 1783 continue; 1784 } 1785 unittest(1, "passed"); 1786 } 1787 } 1788 1789 static struct resource test_bus_res = DEFINE_RES_MEM(0xfffffff8, 2); 1790 static const struct platform_device_info test_bus_info = { 1791 .name = "unittest-bus", 1792 }; 1793 static void __init of_unittest_platform_populate(void) 1794 { 1795 int irq, rc; 1796 struct device_node *np, *child, *grandchild; 1797 struct platform_device *pdev, *test_bus; 1798 const struct of_device_id match[] = { 1799 { .compatible = "test-device", }, 1800 {} 1801 }; 1802 1803 np = of_find_node_by_path("/testcase-data"); 1804 of_platform_default_populate(np, NULL, NULL); 1805 1806 /* Test that a missing irq domain returns -EPROBE_DEFER */ 1807 np = of_find_node_by_path("/testcase-data/testcase-device1"); 1808 pdev = of_find_device_by_node(np); 1809 unittest(pdev, "device 1 creation failed\n"); 1810 1811 if (!(of_irq_workarounds & OF_IMAP_OLDWORLD_MAC)) { 1812 irq = platform_get_irq(pdev, 0); 1813 unittest(irq == -EPROBE_DEFER, 1814 "device deferred probe failed - %d\n", irq); 1815 1816 /* Test that a parsing failure does not return -EPROBE_DEFER */ 1817 np = of_find_node_by_path("/testcase-data/testcase-device2"); 1818 pdev = of_find_device_by_node(np); 1819 unittest(pdev, "device 2 creation failed\n"); 1820 1821 EXPECT_BEGIN(KERN_INFO, 1822 "platform testcase-data:testcase-device2: error -ENXIO: IRQ index 0 not found"); 1823 1824 irq = platform_get_irq(pdev, 0); 1825 1826 EXPECT_END(KERN_INFO, 1827 "platform testcase-data:testcase-device2: error -ENXIO: IRQ index 0 not found"); 1828 1829 unittest(irq < 0 && irq != -EPROBE_DEFER, 1830 "device parsing error failed - %d\n", irq); 1831 } 1832 1833 np = of_find_node_by_path("/testcase-data/platform-tests"); 1834 unittest(np, "No testcase data in device tree\n"); 1835 if (!np) 1836 return; 1837 1838 test_bus = platform_device_register_full(&test_bus_info); 1839 rc = PTR_ERR_OR_ZERO(test_bus); 1840 unittest(!rc, "testbus registration failed; rc=%i\n", rc); 1841 if (rc) { 1842 of_node_put(np); 1843 return; 1844 } 1845 test_bus->dev.of_node = np; 1846 1847 /* 1848 * Add a dummy resource to the test bus node after it is 1849 * registered to catch problems with un-inserted resources. The 1850 * DT code doesn't insert the resources, and it has caused the 1851 * kernel to oops in the past. This makes sure the same bug 1852 * doesn't crop up again. 1853 */ 1854 platform_device_add_resources(test_bus, &test_bus_res, 1); 1855 1856 of_platform_populate(np, match, NULL, &test_bus->dev); 1857 for_each_child_of_node(np, child) { 1858 for_each_child_of_node(child, grandchild) { 1859 if (!of_property_present(grandchild, "compatible")) 1860 continue; 1861 pdev = of_find_device_by_node(grandchild); 1862 unittest(pdev, 1863 "Could not create device for node '%pOFn'\n", 1864 grandchild); 1865 platform_device_put(pdev); 1866 } 1867 } 1868 1869 of_platform_depopulate(&test_bus->dev); 1870 for_each_child_of_node(np, child) { 1871 for_each_child_of_node(child, grandchild) 1872 unittest(!of_find_device_by_node(grandchild), 1873 "device didn't get destroyed '%pOFn'\n", 1874 grandchild); 1875 } 1876 1877 platform_device_unregister(test_bus); 1878 of_node_put(np); 1879 } 1880 1881 /** 1882 * update_node_properties - adds the properties 1883 * of np into dup node (present in live tree) and 1884 * updates parent of children of np to dup. 1885 * 1886 * @np: node whose properties are being added to the live tree 1887 * @dup: node present in live tree to be updated 1888 */ 1889 static void update_node_properties(struct device_node *np, 1890 struct device_node *dup) 1891 { 1892 struct property *prop; 1893 struct property *save_next; 1894 struct device_node *child; 1895 int ret; 1896 1897 for_each_child_of_node(np, child) 1898 child->parent = dup; 1899 1900 /* 1901 * "unittest internal error: unable to add testdata property" 1902 * 1903 * If this message reports a property in node '/__symbols__' then 1904 * the respective unittest overlay contains a label that has the 1905 * same name as a label in the live devicetree. The label will 1906 * be in the live devicetree only if the devicetree source was 1907 * compiled with the '-@' option. If you encounter this error, 1908 * please consider renaming __all__ of the labels in the unittest 1909 * overlay dts files with an odd prefix that is unlikely to be 1910 * used in a real devicetree. 1911 */ 1912 1913 /* 1914 * open code for_each_property_of_node() because of_add_property() 1915 * sets prop->next to NULL 1916 */ 1917 for (prop = np->properties; prop != NULL; prop = save_next) { 1918 save_next = prop->next; 1919 ret = of_add_property(dup, prop); 1920 if (ret) { 1921 if (ret == -EEXIST && !strcmp(prop->name, "name")) 1922 continue; 1923 pr_err("unittest internal error: unable to add testdata property %pOF/%s", 1924 np, prop->name); 1925 } 1926 } 1927 } 1928 1929 /** 1930 * attach_node_and_children - attaches nodes 1931 * and its children to live tree. 1932 * CAUTION: misleading function name - if node @np already exists in 1933 * the live tree then children of @np are *not* attached to the live 1934 * tree. This works for the current test devicetree nodes because such 1935 * nodes do not have child nodes. 1936 * 1937 * @np: Node to attach to live tree 1938 */ 1939 static void attach_node_and_children(struct device_node *np) 1940 { 1941 struct device_node *next, *dup, *child; 1942 unsigned long flags; 1943 const char *full_name; 1944 1945 full_name = kasprintf(GFP_KERNEL, "%pOF", np); 1946 if (!full_name) 1947 return; 1948 1949 if (!strcmp(full_name, "/__local_fixups__") || 1950 !strcmp(full_name, "/__fixups__")) { 1951 kfree(full_name); 1952 return; 1953 } 1954 1955 dup = of_find_node_by_path(full_name); 1956 kfree(full_name); 1957 if (dup) { 1958 update_node_properties(np, dup); 1959 return; 1960 } 1961 1962 child = np->child; 1963 np->child = NULL; 1964 1965 mutex_lock(&of_mutex); 1966 raw_spin_lock_irqsave(&devtree_lock, flags); 1967 np->sibling = np->parent->child; 1968 np->parent->child = np; 1969 of_node_clear_flag(np, OF_DETACHED); 1970 raw_spin_unlock_irqrestore(&devtree_lock, flags); 1971 1972 __of_attach_node_sysfs(np); 1973 mutex_unlock(&of_mutex); 1974 1975 while (child) { 1976 next = child->sibling; 1977 attach_node_and_children(child); 1978 child = next; 1979 } 1980 } 1981 1982 /** 1983 * unittest_data_add - Reads, copies data from 1984 * linked tree and attaches it to the live tree 1985 */ 1986 static int __init unittest_data_add(void) 1987 { 1988 void *unittest_data; 1989 void *unittest_data_align; 1990 struct device_node *unittest_data_node = NULL, *np; 1991 /* 1992 * __dtbo_testcases_begin[] and __dtbo_testcases_end[] are magically 1993 * created by cmd_wrap_S_dtbo in scripts/Makefile.dtbs 1994 */ 1995 extern uint8_t __dtbo_testcases_begin[]; 1996 extern uint8_t __dtbo_testcases_end[]; 1997 const int size = __dtbo_testcases_end - __dtbo_testcases_begin; 1998 int rc; 1999 void *ret; 2000 2001 if (!size) { 2002 pr_warn("%s: testcases is empty\n", __func__); 2003 return -ENODATA; 2004 } 2005 2006 /* creating copy */ 2007 unittest_data = kmalloc(size + FDT_ALIGN_SIZE, GFP_KERNEL); 2008 if (!unittest_data) 2009 return -ENOMEM; 2010 2011 unittest_data_align = PTR_ALIGN(unittest_data, FDT_ALIGN_SIZE); 2012 memcpy(unittest_data_align, __dtbo_testcases_begin, size); 2013 2014 ret = of_fdt_unflatten_tree(unittest_data_align, NULL, &unittest_data_node); 2015 if (!ret) { 2016 pr_warn("%s: unflatten testcases tree failed\n", __func__); 2017 kfree(unittest_data); 2018 return -ENODATA; 2019 } 2020 if (!unittest_data_node) { 2021 pr_warn("%s: testcases tree is empty\n", __func__); 2022 kfree(unittest_data); 2023 return -ENODATA; 2024 } 2025 2026 /* 2027 * This lock normally encloses of_resolve_phandles() 2028 */ 2029 of_overlay_mutex_lock(); 2030 2031 rc = of_resolve_phandles(unittest_data_node); 2032 if (rc) { 2033 pr_err("%s: Failed to resolve phandles (rc=%i)\n", __func__, rc); 2034 rc = -EINVAL; 2035 goto unlock; 2036 } 2037 2038 /* attach the sub-tree to live tree */ 2039 if (!of_root) { 2040 pr_warn("%s: no live tree to attach sub-tree\n", __func__); 2041 kfree(unittest_data); 2042 rc = -ENODEV; 2043 goto unlock; 2044 } 2045 2046 EXPECT_BEGIN(KERN_INFO, 2047 "Duplicate name in testcase-data, renamed to \"duplicate-name#1\""); 2048 2049 np = unittest_data_node->child; 2050 while (np) { 2051 struct device_node *next = np->sibling; 2052 2053 np->parent = of_root; 2054 /* this will clear OF_DETACHED in np and children */ 2055 attach_node_and_children(np); 2056 np = next; 2057 } 2058 2059 EXPECT_END(KERN_INFO, 2060 "Duplicate name in testcase-data, renamed to \"duplicate-name#1\""); 2061 2062 unlock: 2063 of_overlay_mutex_unlock(); 2064 2065 return rc; 2066 } 2067 2068 #ifdef CONFIG_OF_OVERLAY 2069 static int __init overlay_data_apply(const char *overlay_name, int *ovcs_id); 2070 2071 static int unittest_probe(struct platform_device *pdev) 2072 { 2073 struct device *dev = &pdev->dev; 2074 struct device_node *np = dev->of_node; 2075 2076 if (np == NULL) { 2077 dev_err(dev, "No OF data for device\n"); 2078 return -EINVAL; 2079 2080 } 2081 2082 dev_dbg(dev, "%s for node @%pOF\n", __func__, np); 2083 2084 of_platform_populate(np, NULL, NULL, &pdev->dev); 2085 2086 return 0; 2087 } 2088 2089 static void unittest_remove(struct platform_device *pdev) 2090 { 2091 struct device *dev = &pdev->dev; 2092 struct device_node *np = dev->of_node; 2093 2094 dev_dbg(dev, "%s for node @%pOF\n", __func__, np); 2095 } 2096 2097 static const struct of_device_id unittest_match[] = { 2098 { .compatible = "unittest", }, 2099 {}, 2100 }; 2101 2102 static struct platform_driver unittest_driver = { 2103 .probe = unittest_probe, 2104 .remove = unittest_remove, 2105 .driver = { 2106 .name = "unittest", 2107 .of_match_table = unittest_match, 2108 }, 2109 }; 2110 2111 /* get the platform device instantiated at the path */ 2112 static struct platform_device *of_path_to_platform_device(const char *path) 2113 { 2114 struct device_node *np; 2115 struct platform_device *pdev; 2116 2117 np = of_find_node_by_path(path); 2118 if (np == NULL) 2119 return NULL; 2120 2121 pdev = of_find_device_by_node(np); 2122 of_node_put(np); 2123 2124 return pdev; 2125 } 2126 2127 /* find out if a platform device exists at that path */ 2128 static int of_path_platform_device_exists(const char *path) 2129 { 2130 struct platform_device *pdev; 2131 2132 pdev = of_path_to_platform_device(path); 2133 platform_device_put(pdev); 2134 return pdev != NULL; 2135 } 2136 2137 #ifdef CONFIG_OF_GPIO 2138 2139 struct unittest_gpio_dev { 2140 struct gpio_chip chip; 2141 }; 2142 2143 static int unittest_gpio_chip_request_count; 2144 static int unittest_gpio_probe_count; 2145 static int unittest_gpio_probe_pass_count; 2146 2147 static int unittest_gpio_chip_request(struct gpio_chip *chip, unsigned int offset) 2148 { 2149 unittest_gpio_chip_request_count++; 2150 2151 pr_debug("%s(): %s %d %d\n", __func__, chip->label, offset, 2152 unittest_gpio_chip_request_count); 2153 return 0; 2154 } 2155 2156 static int unittest_gpio_probe(struct platform_device *pdev) 2157 { 2158 struct unittest_gpio_dev *devptr; 2159 int ret; 2160 2161 unittest_gpio_probe_count++; 2162 2163 devptr = kzalloc(sizeof(*devptr), GFP_KERNEL); 2164 if (!devptr) 2165 return -ENOMEM; 2166 2167 platform_set_drvdata(pdev, devptr); 2168 2169 devptr->chip.fwnode = dev_fwnode(&pdev->dev); 2170 devptr->chip.label = "of-unittest-gpio"; 2171 devptr->chip.base = -1; /* dynamic allocation */ 2172 devptr->chip.ngpio = 5; 2173 devptr->chip.request = unittest_gpio_chip_request; 2174 2175 ret = gpiochip_add_data(&devptr->chip, NULL); 2176 2177 unittest(!ret, 2178 "gpiochip_add_data() for node @%pfw failed, ret = %d\n", devptr->chip.fwnode, ret); 2179 2180 if (!ret) 2181 unittest_gpio_probe_pass_count++; 2182 return ret; 2183 } 2184 2185 static void unittest_gpio_remove(struct platform_device *pdev) 2186 { 2187 struct unittest_gpio_dev *devptr = platform_get_drvdata(pdev); 2188 struct device *dev = &pdev->dev; 2189 2190 dev_dbg(dev, "%s for node @%pfw\n", __func__, devptr->chip.fwnode); 2191 2192 if (devptr->chip.base != -1) 2193 gpiochip_remove(&devptr->chip); 2194 2195 kfree(devptr); 2196 } 2197 2198 static const struct of_device_id unittest_gpio_id[] = { 2199 { .compatible = "unittest-gpio", }, 2200 {} 2201 }; 2202 2203 static struct platform_driver unittest_gpio_driver = { 2204 .probe = unittest_gpio_probe, 2205 .remove = unittest_gpio_remove, 2206 .driver = { 2207 .name = "unittest-gpio", 2208 .of_match_table = unittest_gpio_id, 2209 }, 2210 }; 2211 2212 static void __init of_unittest_overlay_gpio(void) 2213 { 2214 int chip_request_count; 2215 int probe_pass_count; 2216 int ret; 2217 2218 /* 2219 * tests: apply overlays before registering driver 2220 * Similar to installing a driver as a module, the 2221 * driver is registered after applying the overlays. 2222 * 2223 * The overlays are applied by overlay_data_apply() 2224 * instead of of_unittest_apply_overlay() so that they 2225 * will not be tracked. Thus they will not be removed 2226 * by of_unittest_remove_tracked_overlays(). 2227 * 2228 * - apply overlay_gpio_01 2229 * - apply overlay_gpio_02a 2230 * - apply overlay_gpio_02b 2231 * - register driver 2232 * 2233 * register driver will result in 2234 * - probe and processing gpio hog for overlay_gpio_01 2235 * - probe for overlay_gpio_02a 2236 * - processing gpio for overlay_gpio_02b 2237 */ 2238 2239 probe_pass_count = unittest_gpio_probe_pass_count; 2240 chip_request_count = unittest_gpio_chip_request_count; 2241 2242 /* 2243 * overlay_gpio_01 contains gpio node and child gpio hog node 2244 * overlay_gpio_02a contains gpio node 2245 * overlay_gpio_02b contains child gpio hog node 2246 */ 2247 2248 unittest(overlay_data_apply("overlay_gpio_01", NULL), 2249 "Adding overlay 'overlay_gpio_01' failed\n"); 2250 2251 unittest(overlay_data_apply("overlay_gpio_02a", NULL), 2252 "Adding overlay 'overlay_gpio_02a' failed\n"); 2253 2254 unittest(overlay_data_apply("overlay_gpio_02b", NULL), 2255 "Adding overlay 'overlay_gpio_02b' failed\n"); 2256 2257 ret = platform_driver_register(&unittest_gpio_driver); 2258 if (unittest(ret == 0, "could not register unittest gpio driver\n")) 2259 return; 2260 2261 unittest(probe_pass_count + 2 == unittest_gpio_probe_pass_count, 2262 "unittest_gpio_probe() failed or not called\n"); 2263 2264 unittest(chip_request_count + 2 == unittest_gpio_chip_request_count, 2265 "unittest_gpio_chip_request() called %d times (expected 1 time)\n", 2266 unittest_gpio_chip_request_count - chip_request_count); 2267 2268 /* 2269 * tests: apply overlays after registering driver 2270 * 2271 * Similar to a driver built-in to the kernel, the 2272 * driver is registered before applying the overlays. 2273 * 2274 * overlay_gpio_03 contains gpio node and child gpio hog node 2275 * 2276 * - apply overlay_gpio_03 2277 * 2278 * apply overlay will result in 2279 * - probe and processing gpio hog. 2280 */ 2281 2282 probe_pass_count = unittest_gpio_probe_pass_count; 2283 chip_request_count = unittest_gpio_chip_request_count; 2284 2285 /* overlay_gpio_03 contains gpio node and child gpio hog node */ 2286 2287 unittest(overlay_data_apply("overlay_gpio_03", NULL), 2288 "Adding overlay 'overlay_gpio_03' failed\n"); 2289 2290 unittest(probe_pass_count + 1 == unittest_gpio_probe_pass_count, 2291 "unittest_gpio_probe() failed or not called\n"); 2292 2293 unittest(chip_request_count + 1 == unittest_gpio_chip_request_count, 2294 "unittest_gpio_chip_request() called %d times (expected 1 time)\n", 2295 unittest_gpio_chip_request_count - chip_request_count); 2296 2297 /* 2298 * overlay_gpio_04a contains gpio node 2299 * 2300 * - apply overlay_gpio_04a 2301 * 2302 * apply the overlay will result in 2303 * - probe for overlay_gpio_04a 2304 */ 2305 2306 probe_pass_count = unittest_gpio_probe_pass_count; 2307 chip_request_count = unittest_gpio_chip_request_count; 2308 2309 /* overlay_gpio_04a contains gpio node */ 2310 2311 unittest(overlay_data_apply("overlay_gpio_04a", NULL), 2312 "Adding overlay 'overlay_gpio_04a' failed\n"); 2313 2314 unittest(probe_pass_count + 1 == unittest_gpio_probe_pass_count, 2315 "unittest_gpio_probe() failed or not called\n"); 2316 2317 /* 2318 * overlay_gpio_04b contains child gpio hog node 2319 * 2320 * - apply overlay_gpio_04b 2321 * 2322 * apply the overlay will result in 2323 * - processing gpio for overlay_gpio_04b 2324 */ 2325 2326 /* overlay_gpio_04b contains child gpio hog node */ 2327 2328 unittest(overlay_data_apply("overlay_gpio_04b", NULL), 2329 "Adding overlay 'overlay_gpio_04b' failed\n"); 2330 2331 unittest(chip_request_count + 1 == unittest_gpio_chip_request_count, 2332 "unittest_gpio_chip_request() called %d times (expected 1 time)\n", 2333 unittest_gpio_chip_request_count - chip_request_count); 2334 } 2335 2336 #else 2337 2338 static void __init of_unittest_overlay_gpio(void) 2339 { 2340 /* skip tests */ 2341 } 2342 2343 #endif 2344 2345 #if IS_BUILTIN(CONFIG_I2C) 2346 2347 /* get the i2c client device instantiated at the path */ 2348 static struct i2c_client *of_path_to_i2c_client(const char *path) 2349 { 2350 struct device_node *np; 2351 struct i2c_client *client; 2352 2353 np = of_find_node_by_path(path); 2354 if (np == NULL) 2355 return NULL; 2356 2357 client = of_find_i2c_device_by_node(np); 2358 of_node_put(np); 2359 2360 return client; 2361 } 2362 2363 /* find out if a i2c client device exists at that path */ 2364 static int of_path_i2c_client_exists(const char *path) 2365 { 2366 struct i2c_client *client; 2367 2368 client = of_path_to_i2c_client(path); 2369 if (client) 2370 put_device(&client->dev); 2371 return client != NULL; 2372 } 2373 #else 2374 static int of_path_i2c_client_exists(const char *path) 2375 { 2376 return 0; 2377 } 2378 #endif 2379 2380 enum overlay_type { 2381 PDEV_OVERLAY, 2382 I2C_OVERLAY 2383 }; 2384 2385 static int of_path_device_type_exists(const char *path, 2386 enum overlay_type ovtype) 2387 { 2388 switch (ovtype) { 2389 case PDEV_OVERLAY: 2390 return of_path_platform_device_exists(path); 2391 case I2C_OVERLAY: 2392 return of_path_i2c_client_exists(path); 2393 } 2394 return 0; 2395 } 2396 2397 static const char *unittest_path(int nr, enum overlay_type ovtype) 2398 { 2399 const char *base; 2400 static char buf[256]; 2401 2402 switch (ovtype) { 2403 case PDEV_OVERLAY: 2404 base = "/testcase-data/overlay-node/test-bus"; 2405 break; 2406 case I2C_OVERLAY: 2407 base = "/testcase-data/overlay-node/test-bus/i2c-test-bus"; 2408 break; 2409 default: 2410 buf[0] = '\0'; 2411 return buf; 2412 } 2413 snprintf(buf, sizeof(buf) - 1, "%s/test-unittest%d", base, nr); 2414 buf[sizeof(buf) - 1] = '\0'; 2415 return buf; 2416 } 2417 2418 static int of_unittest_device_exists(int unittest_nr, enum overlay_type ovtype) 2419 { 2420 const char *path; 2421 2422 path = unittest_path(unittest_nr, ovtype); 2423 2424 switch (ovtype) { 2425 case PDEV_OVERLAY: 2426 return of_path_platform_device_exists(path); 2427 case I2C_OVERLAY: 2428 return of_path_i2c_client_exists(path); 2429 } 2430 return 0; 2431 } 2432 2433 static const char *overlay_name_from_nr(int nr) 2434 { 2435 static char buf[256]; 2436 2437 snprintf(buf, sizeof(buf) - 1, 2438 "overlay_%d", nr); 2439 buf[sizeof(buf) - 1] = '\0'; 2440 2441 return buf; 2442 } 2443 2444 static const char *bus_path = "/testcase-data/overlay-node/test-bus"; 2445 2446 #define MAX_TRACK_OVCS_IDS 256 2447 2448 static int track_ovcs_id[MAX_TRACK_OVCS_IDS]; 2449 static int track_ovcs_id_overlay_nr[MAX_TRACK_OVCS_IDS]; 2450 static int track_ovcs_id_cnt; 2451 2452 static void of_unittest_track_overlay(int ovcs_id, int overlay_nr) 2453 { 2454 if (WARN_ON(track_ovcs_id_cnt >= MAX_TRACK_OVCS_IDS)) 2455 return; 2456 2457 track_ovcs_id[track_ovcs_id_cnt] = ovcs_id; 2458 track_ovcs_id_overlay_nr[track_ovcs_id_cnt] = overlay_nr; 2459 track_ovcs_id_cnt++; 2460 } 2461 2462 static void of_unittest_untrack_overlay(int ovcs_id) 2463 { 2464 if (WARN_ON(track_ovcs_id_cnt < 1)) 2465 return; 2466 2467 track_ovcs_id_cnt--; 2468 2469 /* If out of synch then test is broken. Do not try to recover. */ 2470 WARN_ON(track_ovcs_id[track_ovcs_id_cnt] != ovcs_id); 2471 } 2472 2473 static void of_unittest_remove_tracked_overlays(void) 2474 { 2475 int ret, ovcs_id, overlay_nr, save_ovcs_id; 2476 const char *overlay_name; 2477 2478 while (track_ovcs_id_cnt > 0) { 2479 2480 ovcs_id = track_ovcs_id[track_ovcs_id_cnt - 1]; 2481 overlay_nr = track_ovcs_id_overlay_nr[track_ovcs_id_cnt - 1]; 2482 save_ovcs_id = ovcs_id; 2483 ret = of_overlay_remove(&ovcs_id); 2484 if (ret == -ENODEV) { 2485 overlay_name = overlay_name_from_nr(overlay_nr); 2486 pr_warn("%s: of_overlay_remove() for overlay \"%s\" failed, ret = %d\n", 2487 __func__, overlay_name, ret); 2488 } 2489 of_unittest_untrack_overlay(save_ovcs_id); 2490 } 2491 2492 } 2493 2494 static int __init of_unittest_apply_overlay(int overlay_nr, int *ovcs_id) 2495 { 2496 /* 2497 * The overlay will be tracked, thus it will be removed 2498 * by of_unittest_remove_tracked_overlays(). 2499 */ 2500 2501 const char *overlay_name; 2502 2503 overlay_name = overlay_name_from_nr(overlay_nr); 2504 2505 if (!overlay_data_apply(overlay_name, ovcs_id)) { 2506 unittest(0, "could not apply overlay \"%s\"\n", overlay_name); 2507 return -EFAULT; 2508 } 2509 of_unittest_track_overlay(*ovcs_id, overlay_nr); 2510 2511 return 0; 2512 } 2513 2514 static int __init __of_unittest_apply_overlay_check(int overlay_nr, 2515 int unittest_nr, int before, int after, 2516 enum overlay_type ovtype) 2517 { 2518 int ret, ovcs_id; 2519 2520 /* unittest device must be in before state */ 2521 if (of_unittest_device_exists(unittest_nr, ovtype) != before) { 2522 unittest(0, "%s with device @\"%s\" %s\n", 2523 overlay_name_from_nr(overlay_nr), 2524 unittest_path(unittest_nr, ovtype), 2525 !before ? "enabled" : "disabled"); 2526 return -EINVAL; 2527 } 2528 2529 /* apply the overlay */ 2530 ovcs_id = 0; 2531 ret = of_unittest_apply_overlay(overlay_nr, &ovcs_id); 2532 if (ret != 0) { 2533 /* of_unittest_apply_overlay already called unittest() */ 2534 return ret; 2535 } 2536 2537 /* unittest device must be in after state */ 2538 if (of_unittest_device_exists(unittest_nr, ovtype) != after) { 2539 unittest(0, "%s with device @\"%s\" %s\n", 2540 overlay_name_from_nr(overlay_nr), 2541 unittest_path(unittest_nr, ovtype), 2542 !after ? "enabled" : "disabled"); 2543 return -EINVAL; 2544 } 2545 2546 return ovcs_id; 2547 } 2548 2549 /* apply an overlay while checking before and after states */ 2550 static int __init of_unittest_apply_overlay_check(int overlay_nr, 2551 int unittest_nr, int before, int after, 2552 enum overlay_type ovtype) 2553 { 2554 int ovcs_id = __of_unittest_apply_overlay_check(overlay_nr, 2555 unittest_nr, before, after, ovtype); 2556 if (ovcs_id < 0) 2557 return ovcs_id; 2558 2559 return 0; 2560 } 2561 2562 /* apply an overlay and then revert it while checking before, after states */ 2563 static int __init of_unittest_apply_revert_overlay_check(int overlay_nr, 2564 int unittest_nr, int before, int after, 2565 enum overlay_type ovtype) 2566 { 2567 int ret, ovcs_id, save_ovcs_id; 2568 2569 ovcs_id = __of_unittest_apply_overlay_check(overlay_nr, unittest_nr, 2570 before, after, ovtype); 2571 if (ovcs_id < 0) 2572 return ovcs_id; 2573 2574 /* remove the overlay */ 2575 save_ovcs_id = ovcs_id; 2576 ret = of_overlay_remove(&ovcs_id); 2577 if (ret != 0) { 2578 unittest(0, "%s failed to be destroyed @\"%s\"\n", 2579 overlay_name_from_nr(overlay_nr), 2580 unittest_path(unittest_nr, ovtype)); 2581 return ret; 2582 } 2583 of_unittest_untrack_overlay(save_ovcs_id); 2584 2585 /* unittest device must be again in before state */ 2586 if (of_unittest_device_exists(unittest_nr, ovtype) != before) { 2587 unittest(0, "%s with device @\"%s\" %s\n", 2588 overlay_name_from_nr(overlay_nr), 2589 unittest_path(unittest_nr, ovtype), 2590 !before ? "enabled" : "disabled"); 2591 return -EINVAL; 2592 } 2593 2594 return 0; 2595 } 2596 2597 /* test activation of device */ 2598 static void __init of_unittest_overlay_0(void) 2599 { 2600 int ret; 2601 2602 EXPECT_BEGIN(KERN_INFO, 2603 "OF: overlay: WARNING: memory leak will occur if overlay removed, property: /testcase-data/overlay-node/test-bus/test-unittest0/status"); 2604 2605 /* device should enable */ 2606 ret = of_unittest_apply_overlay_check(0, 0, 0, 1, PDEV_OVERLAY); 2607 2608 EXPECT_END(KERN_INFO, 2609 "OF: overlay: WARNING: memory leak will occur if overlay removed, property: /testcase-data/overlay-node/test-bus/test-unittest0/status"); 2610 2611 if (ret) 2612 return; 2613 2614 unittest(1, "overlay test %d passed\n", 0); 2615 } 2616 2617 /* test deactivation of device */ 2618 static void __init of_unittest_overlay_1(void) 2619 { 2620 int ret; 2621 2622 EXPECT_BEGIN(KERN_INFO, 2623 "OF: overlay: WARNING: memory leak will occur if overlay removed, property: /testcase-data/overlay-node/test-bus/test-unittest1/status"); 2624 2625 /* device should disable */ 2626 ret = of_unittest_apply_overlay_check(1, 1, 1, 0, PDEV_OVERLAY); 2627 2628 EXPECT_END(KERN_INFO, 2629 "OF: overlay: WARNING: memory leak will occur if overlay removed, property: /testcase-data/overlay-node/test-bus/test-unittest1/status"); 2630 2631 if (ret) 2632 return; 2633 2634 unittest(1, "overlay test %d passed\n", 1); 2635 2636 } 2637 2638 /* test activation of device */ 2639 static void __init of_unittest_overlay_2(void) 2640 { 2641 int ret; 2642 2643 EXPECT_BEGIN(KERN_INFO, 2644 "OF: overlay: WARNING: memory leak will occur if overlay removed, property: /testcase-data/overlay-node/test-bus/test-unittest2/status"); 2645 2646 /* device should enable */ 2647 ret = of_unittest_apply_overlay_check(2, 2, 0, 1, PDEV_OVERLAY); 2648 2649 EXPECT_END(KERN_INFO, 2650 "OF: overlay: WARNING: memory leak will occur if overlay removed, property: /testcase-data/overlay-node/test-bus/test-unittest2/status"); 2651 2652 if (ret) 2653 return; 2654 unittest(1, "overlay test %d passed\n", 2); 2655 } 2656 2657 /* test deactivation of device */ 2658 static void __init of_unittest_overlay_3(void) 2659 { 2660 int ret; 2661 2662 EXPECT_BEGIN(KERN_INFO, 2663 "OF: overlay: WARNING: memory leak will occur if overlay removed, property: /testcase-data/overlay-node/test-bus/test-unittest3/status"); 2664 2665 /* device should disable */ 2666 ret = of_unittest_apply_overlay_check(3, 3, 1, 0, PDEV_OVERLAY); 2667 2668 EXPECT_END(KERN_INFO, 2669 "OF: overlay: WARNING: memory leak will occur if overlay removed, property: /testcase-data/overlay-node/test-bus/test-unittest3/status"); 2670 2671 if (ret) 2672 return; 2673 2674 unittest(1, "overlay test %d passed\n", 3); 2675 } 2676 2677 /* test activation of a full device node */ 2678 static void __init of_unittest_overlay_4(void) 2679 { 2680 /* device should disable */ 2681 if (of_unittest_apply_overlay_check(4, 4, 0, 1, PDEV_OVERLAY)) 2682 return; 2683 2684 unittest(1, "overlay test %d passed\n", 4); 2685 } 2686 2687 /* test overlay apply/revert sequence */ 2688 static void __init of_unittest_overlay_5(void) 2689 { 2690 int ret; 2691 2692 EXPECT_BEGIN(KERN_INFO, 2693 "OF: overlay: WARNING: memory leak will occur if overlay removed, property: /testcase-data/overlay-node/test-bus/test-unittest5/status"); 2694 2695 /* device should disable */ 2696 ret = of_unittest_apply_revert_overlay_check(5, 5, 0, 1, PDEV_OVERLAY); 2697 2698 EXPECT_END(KERN_INFO, 2699 "OF: overlay: WARNING: memory leak will occur if overlay removed, property: /testcase-data/overlay-node/test-bus/test-unittest5/status"); 2700 2701 if (ret) 2702 return; 2703 2704 unittest(1, "overlay test %d passed\n", 5); 2705 } 2706 2707 /* test overlay application in sequence */ 2708 static void __init of_unittest_overlay_6(void) 2709 { 2710 int i, save_ovcs_id[2], ovcs_id; 2711 int overlay_nr = 6, unittest_nr = 6; 2712 int before = 0, after = 1; 2713 const char *overlay_name; 2714 2715 int ret; 2716 2717 /* unittest device must be in before state */ 2718 for (i = 0; i < 2; i++) { 2719 if (of_unittest_device_exists(unittest_nr + i, PDEV_OVERLAY) 2720 != before) { 2721 unittest(0, "%s with device @\"%s\" %s\n", 2722 overlay_name_from_nr(overlay_nr + i), 2723 unittest_path(unittest_nr + i, 2724 PDEV_OVERLAY), 2725 !before ? "enabled" : "disabled"); 2726 return; 2727 } 2728 } 2729 2730 /* apply the overlays */ 2731 2732 EXPECT_BEGIN(KERN_INFO, 2733 "OF: overlay: WARNING: memory leak will occur if overlay removed, property: /testcase-data/overlay-node/test-bus/test-unittest6/status"); 2734 2735 overlay_name = overlay_name_from_nr(overlay_nr + 0); 2736 2737 ret = overlay_data_apply(overlay_name, &ovcs_id); 2738 2739 if (!ret) { 2740 unittest(0, "could not apply overlay \"%s\"\n", overlay_name); 2741 return; 2742 } 2743 save_ovcs_id[0] = ovcs_id; 2744 of_unittest_track_overlay(ovcs_id, overlay_nr + 0); 2745 2746 EXPECT_END(KERN_INFO, 2747 "OF: overlay: WARNING: memory leak will occur if overlay removed, property: /testcase-data/overlay-node/test-bus/test-unittest6/status"); 2748 2749 EXPECT_BEGIN(KERN_INFO, 2750 "OF: overlay: WARNING: memory leak will occur if overlay removed, property: /testcase-data/overlay-node/test-bus/test-unittest7/status"); 2751 2752 overlay_name = overlay_name_from_nr(overlay_nr + 1); 2753 2754 ret = overlay_data_apply(overlay_name, &ovcs_id); 2755 2756 if (!ret) { 2757 unittest(0, "could not apply overlay \"%s\"\n", overlay_name); 2758 return; 2759 } 2760 save_ovcs_id[1] = ovcs_id; 2761 of_unittest_track_overlay(ovcs_id, overlay_nr + 1); 2762 2763 EXPECT_END(KERN_INFO, 2764 "OF: overlay: WARNING: memory leak will occur if overlay removed, property: /testcase-data/overlay-node/test-bus/test-unittest7/status"); 2765 2766 2767 for (i = 0; i < 2; i++) { 2768 /* unittest device must be in after state */ 2769 if (of_unittest_device_exists(unittest_nr + i, PDEV_OVERLAY) 2770 != after) { 2771 unittest(0, "overlay @\"%s\" failed @\"%s\" %s\n", 2772 overlay_name_from_nr(overlay_nr + i), 2773 unittest_path(unittest_nr + i, 2774 PDEV_OVERLAY), 2775 !after ? "enabled" : "disabled"); 2776 return; 2777 } 2778 } 2779 2780 for (i = 1; i >= 0; i--) { 2781 ovcs_id = save_ovcs_id[i]; 2782 if (of_overlay_remove(&ovcs_id)) { 2783 unittest(0, "%s failed destroy @\"%s\"\n", 2784 overlay_name_from_nr(overlay_nr + i), 2785 unittest_path(unittest_nr + i, 2786 PDEV_OVERLAY)); 2787 return; 2788 } 2789 of_unittest_untrack_overlay(save_ovcs_id[i]); 2790 } 2791 2792 for (i = 0; i < 2; i++) { 2793 /* unittest device must be again in before state */ 2794 if (of_unittest_device_exists(unittest_nr + i, PDEV_OVERLAY) 2795 != before) { 2796 unittest(0, "%s with device @\"%s\" %s\n", 2797 overlay_name_from_nr(overlay_nr + i), 2798 unittest_path(unittest_nr + i, 2799 PDEV_OVERLAY), 2800 !before ? "enabled" : "disabled"); 2801 return; 2802 } 2803 } 2804 2805 unittest(1, "overlay test %d passed\n", 6); 2806 2807 } 2808 2809 /* test overlay application in sequence */ 2810 static void __init of_unittest_overlay_8(void) 2811 { 2812 int i, save_ovcs_id[2], ovcs_id; 2813 int overlay_nr = 8, unittest_nr = 8; 2814 const char *overlay_name; 2815 int ret; 2816 2817 /* we don't care about device state in this test */ 2818 2819 EXPECT_BEGIN(KERN_INFO, 2820 "OF: overlay: WARNING: memory leak will occur if overlay removed, property: /testcase-data/overlay-node/test-bus/test-unittest8/status"); 2821 2822 overlay_name = overlay_name_from_nr(overlay_nr + 0); 2823 2824 ret = overlay_data_apply(overlay_name, &ovcs_id); 2825 if (!ret) 2826 unittest(0, "could not apply overlay \"%s\"\n", overlay_name); 2827 2828 EXPECT_END(KERN_INFO, 2829 "OF: overlay: WARNING: memory leak will occur if overlay removed, property: /testcase-data/overlay-node/test-bus/test-unittest8/status"); 2830 2831 if (!ret) 2832 return; 2833 2834 save_ovcs_id[0] = ovcs_id; 2835 of_unittest_track_overlay(ovcs_id, overlay_nr + 0); 2836 2837 overlay_name = overlay_name_from_nr(overlay_nr + 1); 2838 2839 EXPECT_BEGIN(KERN_INFO, 2840 "OF: overlay: WARNING: memory leak will occur if overlay removed, property: /testcase-data/overlay-node/test-bus/test-unittest8/property-foo"); 2841 2842 /* apply the overlays */ 2843 ret = overlay_data_apply(overlay_name, &ovcs_id); 2844 2845 EXPECT_END(KERN_INFO, 2846 "OF: overlay: WARNING: memory leak will occur if overlay removed, property: /testcase-data/overlay-node/test-bus/test-unittest8/property-foo"); 2847 2848 if (!ret) { 2849 unittest(0, "could not apply overlay \"%s\"\n", overlay_name); 2850 return; 2851 } 2852 2853 save_ovcs_id[1] = ovcs_id; 2854 of_unittest_track_overlay(ovcs_id, overlay_nr + 1); 2855 2856 /* now try to remove first overlay (it should fail) */ 2857 ovcs_id = save_ovcs_id[0]; 2858 2859 EXPECT_BEGIN(KERN_INFO, 2860 "OF: overlay: node_overlaps_later_cs: #6 overlaps with #7 @/testcase-data/overlay-node/test-bus/test-unittest8"); 2861 2862 EXPECT_BEGIN(KERN_INFO, 2863 "OF: overlay: overlay #6 is not topmost"); 2864 2865 ret = of_overlay_remove(&ovcs_id); 2866 2867 EXPECT_END(KERN_INFO, 2868 "OF: overlay: overlay #6 is not topmost"); 2869 2870 EXPECT_END(KERN_INFO, 2871 "OF: overlay: node_overlaps_later_cs: #6 overlaps with #7 @/testcase-data/overlay-node/test-bus/test-unittest8"); 2872 2873 if (!ret) { 2874 /* 2875 * Should never get here. If we do, expect a lot of 2876 * subsequent tracking and overlay removal related errors. 2877 */ 2878 unittest(0, "%s was destroyed @\"%s\"\n", 2879 overlay_name_from_nr(overlay_nr + 0), 2880 unittest_path(unittest_nr, 2881 PDEV_OVERLAY)); 2882 return; 2883 } 2884 2885 /* removing them in order should work */ 2886 for (i = 1; i >= 0; i--) { 2887 ovcs_id = save_ovcs_id[i]; 2888 if (of_overlay_remove(&ovcs_id)) { 2889 unittest(0, "%s not destroyed @\"%s\"\n", 2890 overlay_name_from_nr(overlay_nr + i), 2891 unittest_path(unittest_nr, 2892 PDEV_OVERLAY)); 2893 return; 2894 } 2895 of_unittest_untrack_overlay(save_ovcs_id[i]); 2896 } 2897 2898 unittest(1, "overlay test %d passed\n", 8); 2899 } 2900 2901 /* test insertion of a bus with parent devices */ 2902 static void __init of_unittest_overlay_10(void) 2903 { 2904 int ret; 2905 char *child_path; 2906 2907 /* device should disable */ 2908 ret = of_unittest_apply_overlay_check(10, 10, 0, 1, PDEV_OVERLAY); 2909 2910 if (unittest(ret == 0, 2911 "overlay test %d failed; overlay application\n", 10)) 2912 return; 2913 2914 child_path = kasprintf(GFP_KERNEL, "%s/test-unittest101", 2915 unittest_path(10, PDEV_OVERLAY)); 2916 if (unittest(child_path, "overlay test %d failed; kasprintf\n", 10)) 2917 return; 2918 2919 ret = of_path_device_type_exists(child_path, PDEV_OVERLAY); 2920 kfree(child_path); 2921 2922 unittest(ret, "overlay test %d failed; no child device\n", 10); 2923 } 2924 2925 /* test insertion of a bus with parent devices (and revert) */ 2926 static void __init of_unittest_overlay_11(void) 2927 { 2928 int ret; 2929 2930 /* device should disable */ 2931 ret = of_unittest_apply_revert_overlay_check(11, 11, 0, 1, 2932 PDEV_OVERLAY); 2933 2934 unittest(ret == 0, "overlay test %d failed; overlay apply\n", 11); 2935 } 2936 2937 #if IS_BUILTIN(CONFIG_I2C) && IS_ENABLED(CONFIG_OF_OVERLAY) 2938 2939 struct unittest_i2c_bus_data { 2940 struct platform_device *pdev; 2941 struct i2c_adapter adap; 2942 }; 2943 2944 static int unittest_i2c_master_xfer(struct i2c_adapter *adap, 2945 struct i2c_msg *msgs, int num) 2946 { 2947 struct unittest_i2c_bus_data *std = i2c_get_adapdata(adap); 2948 2949 (void)std; 2950 2951 return num; 2952 } 2953 2954 static u32 unittest_i2c_functionality(struct i2c_adapter *adap) 2955 { 2956 return I2C_FUNC_I2C | I2C_FUNC_SMBUS_EMUL; 2957 } 2958 2959 static const struct i2c_algorithm unittest_i2c_algo = { 2960 .master_xfer = unittest_i2c_master_xfer, 2961 .functionality = unittest_i2c_functionality, 2962 }; 2963 2964 static int unittest_i2c_bus_probe(struct platform_device *pdev) 2965 { 2966 struct device *dev = &pdev->dev; 2967 struct device_node *np = dev->of_node; 2968 struct unittest_i2c_bus_data *std; 2969 struct i2c_adapter *adap; 2970 int ret; 2971 2972 if (np == NULL) { 2973 dev_err(dev, "No OF data for device\n"); 2974 return -EINVAL; 2975 2976 } 2977 2978 dev_dbg(dev, "%s for node @%pOF\n", __func__, np); 2979 2980 std = devm_kzalloc(dev, sizeof(*std), GFP_KERNEL); 2981 if (!std) 2982 return -ENOMEM; 2983 2984 /* link them together */ 2985 std->pdev = pdev; 2986 platform_set_drvdata(pdev, std); 2987 2988 adap = &std->adap; 2989 i2c_set_adapdata(adap, std); 2990 adap->nr = -1; 2991 strscpy(adap->name, pdev->name, sizeof(adap->name)); 2992 adap->class = I2C_CLASS_DEPRECATED; 2993 adap->algo = &unittest_i2c_algo; 2994 adap->dev.parent = dev; 2995 adap->dev.of_node = dev->of_node; 2996 adap->timeout = 5 * HZ; 2997 adap->retries = 3; 2998 2999 ret = i2c_add_numbered_adapter(adap); 3000 if (ret != 0) { 3001 dev_err(dev, "Failed to add I2C adapter\n"); 3002 return ret; 3003 } 3004 3005 return 0; 3006 } 3007 3008 static void unittest_i2c_bus_remove(struct platform_device *pdev) 3009 { 3010 struct device *dev = &pdev->dev; 3011 struct device_node *np = dev->of_node; 3012 struct unittest_i2c_bus_data *std = platform_get_drvdata(pdev); 3013 3014 dev_dbg(dev, "%s for node @%pOF\n", __func__, np); 3015 i2c_del_adapter(&std->adap); 3016 } 3017 3018 static const struct of_device_id unittest_i2c_bus_match[] = { 3019 { .compatible = "unittest-i2c-bus", }, 3020 {}, 3021 }; 3022 3023 static struct platform_driver unittest_i2c_bus_driver = { 3024 .probe = unittest_i2c_bus_probe, 3025 .remove = unittest_i2c_bus_remove, 3026 .driver = { 3027 .name = "unittest-i2c-bus", 3028 .of_match_table = unittest_i2c_bus_match, 3029 }, 3030 }; 3031 3032 static int unittest_i2c_dev_probe(struct i2c_client *client) 3033 { 3034 struct device *dev = &client->dev; 3035 struct device_node *np = client->dev.of_node; 3036 3037 if (!np) { 3038 dev_err(dev, "No OF node\n"); 3039 return -EINVAL; 3040 } 3041 3042 dev_dbg(dev, "%s for node @%pOF\n", __func__, np); 3043 3044 return 0; 3045 }; 3046 3047 static void unittest_i2c_dev_remove(struct i2c_client *client) 3048 { 3049 struct device *dev = &client->dev; 3050 struct device_node *np = client->dev.of_node; 3051 3052 dev_dbg(dev, "%s for node @%pOF\n", __func__, np); 3053 } 3054 3055 static const struct i2c_device_id unittest_i2c_dev_id[] = { 3056 { .name = "unittest-i2c-dev" }, 3057 { } 3058 }; 3059 3060 static struct i2c_driver unittest_i2c_dev_driver = { 3061 .driver = { 3062 .name = "unittest-i2c-dev", 3063 }, 3064 .probe = unittest_i2c_dev_probe, 3065 .remove = unittest_i2c_dev_remove, 3066 .id_table = unittest_i2c_dev_id, 3067 }; 3068 3069 #if IS_BUILTIN(CONFIG_I2C_MUX) 3070 3071 static int unittest_i2c_mux_select_chan(struct i2c_mux_core *muxc, u32 chan) 3072 { 3073 return 0; 3074 } 3075 3076 static int unittest_i2c_mux_probe(struct i2c_client *client) 3077 { 3078 int i, nchans; 3079 struct device *dev = &client->dev; 3080 struct i2c_adapter *adap = client->adapter; 3081 struct device_node *np = client->dev.of_node, *child; 3082 struct i2c_mux_core *muxc; 3083 u32 reg, max_reg; 3084 3085 dev_dbg(dev, "%s for node @%pOF\n", __func__, np); 3086 3087 if (!np) { 3088 dev_err(dev, "No OF node\n"); 3089 return -EINVAL; 3090 } 3091 3092 max_reg = (u32)-1; 3093 for_each_child_of_node(np, child) { 3094 if (of_property_read_u32(child, "reg", ®)) 3095 continue; 3096 if (max_reg == (u32)-1 || reg > max_reg) 3097 max_reg = reg; 3098 } 3099 nchans = max_reg == (u32)-1 ? 0 : max_reg + 1; 3100 if (nchans == 0) { 3101 dev_err(dev, "No channels\n"); 3102 return -EINVAL; 3103 } 3104 3105 muxc = i2c_mux_alloc(adap, dev, nchans, 0, 0, 3106 unittest_i2c_mux_select_chan, NULL); 3107 if (!muxc) 3108 return -ENOMEM; 3109 for (i = 0; i < nchans; i++) { 3110 if (i2c_mux_add_adapter(muxc, 0, i)) { 3111 dev_err(dev, "Failed to register mux #%d\n", i); 3112 i2c_mux_del_adapters(muxc); 3113 return -ENODEV; 3114 } 3115 } 3116 3117 i2c_set_clientdata(client, muxc); 3118 3119 return 0; 3120 }; 3121 3122 static void unittest_i2c_mux_remove(struct i2c_client *client) 3123 { 3124 struct device *dev = &client->dev; 3125 struct device_node *np = client->dev.of_node; 3126 struct i2c_mux_core *muxc = i2c_get_clientdata(client); 3127 3128 dev_dbg(dev, "%s for node @%pOF\n", __func__, np); 3129 i2c_mux_del_adapters(muxc); 3130 } 3131 3132 static const struct i2c_device_id unittest_i2c_mux_id[] = { 3133 { .name = "unittest-i2c-mux" }, 3134 { } 3135 }; 3136 3137 static struct i2c_driver unittest_i2c_mux_driver = { 3138 .driver = { 3139 .name = "unittest-i2c-mux", 3140 }, 3141 .probe = unittest_i2c_mux_probe, 3142 .remove = unittest_i2c_mux_remove, 3143 .id_table = unittest_i2c_mux_id, 3144 }; 3145 3146 #endif 3147 3148 static int of_unittest_overlay_i2c_init(void) 3149 { 3150 int ret; 3151 3152 ret = i2c_add_driver(&unittest_i2c_dev_driver); 3153 if (unittest(ret == 0, 3154 "could not register unittest i2c device driver\n")) 3155 return ret; 3156 3157 ret = platform_driver_register(&unittest_i2c_bus_driver); 3158 3159 if (unittest(ret == 0, 3160 "could not register unittest i2c bus driver\n")) 3161 return ret; 3162 3163 #if IS_BUILTIN(CONFIG_I2C_MUX) 3164 3165 EXPECT_BEGIN(KERN_INFO, 3166 "i2c i2c-1: Added multiplexed i2c bus 2"); 3167 3168 ret = i2c_add_driver(&unittest_i2c_mux_driver); 3169 3170 EXPECT_END(KERN_INFO, 3171 "i2c i2c-1: Added multiplexed i2c bus 2"); 3172 3173 if (unittest(ret == 0, 3174 "could not register unittest i2c mux driver\n")) 3175 return ret; 3176 #endif 3177 3178 return 0; 3179 } 3180 3181 static void of_unittest_overlay_i2c_cleanup(void) 3182 { 3183 #if IS_BUILTIN(CONFIG_I2C_MUX) 3184 i2c_del_driver(&unittest_i2c_mux_driver); 3185 #endif 3186 platform_driver_unregister(&unittest_i2c_bus_driver); 3187 i2c_del_driver(&unittest_i2c_dev_driver); 3188 } 3189 3190 static void __init of_unittest_overlay_i2c_12(void) 3191 { 3192 int ret; 3193 3194 /* device should enable */ 3195 EXPECT_BEGIN(KERN_INFO, 3196 "OF: overlay: WARNING: memory leak will occur if overlay removed, property: /testcase-data/overlay-node/test-bus/i2c-test-bus/test-unittest12/status"); 3197 3198 ret = of_unittest_apply_overlay_check(12, 12, 0, 1, I2C_OVERLAY); 3199 3200 EXPECT_END(KERN_INFO, 3201 "OF: overlay: WARNING: memory leak will occur if overlay removed, property: /testcase-data/overlay-node/test-bus/i2c-test-bus/test-unittest12/status"); 3202 3203 if (ret) 3204 return; 3205 3206 unittest(1, "overlay test %d passed\n", 12); 3207 } 3208 3209 /* test deactivation of device */ 3210 static void __init of_unittest_overlay_i2c_13(void) 3211 { 3212 int ret; 3213 3214 EXPECT_BEGIN(KERN_INFO, 3215 "OF: overlay: WARNING: memory leak will occur if overlay removed, property: /testcase-data/overlay-node/test-bus/i2c-test-bus/test-unittest13/status"); 3216 3217 /* device should disable */ 3218 ret = of_unittest_apply_overlay_check(13, 13, 1, 0, I2C_OVERLAY); 3219 3220 EXPECT_END(KERN_INFO, 3221 "OF: overlay: WARNING: memory leak will occur if overlay removed, property: /testcase-data/overlay-node/test-bus/i2c-test-bus/test-unittest13/status"); 3222 3223 if (ret) 3224 return; 3225 3226 unittest(1, "overlay test %d passed\n", 13); 3227 } 3228 3229 /* just check for i2c mux existence */ 3230 static void of_unittest_overlay_i2c_14(void) 3231 { 3232 } 3233 3234 static void __init of_unittest_overlay_i2c_15(void) 3235 { 3236 int ret; 3237 3238 /* device should enable */ 3239 EXPECT_BEGIN(KERN_INFO, 3240 "i2c i2c-1: Added multiplexed i2c bus 3"); 3241 3242 ret = of_unittest_apply_overlay_check(15, 15, 0, 1, I2C_OVERLAY); 3243 3244 EXPECT_END(KERN_INFO, 3245 "i2c i2c-1: Added multiplexed i2c bus 3"); 3246 3247 if (ret) 3248 return; 3249 3250 unittest(1, "overlay test %d passed\n", 15); 3251 } 3252 3253 #else 3254 3255 static inline void of_unittest_overlay_i2c_14(void) { } 3256 static inline void of_unittest_overlay_i2c_15(void) { } 3257 3258 #endif 3259 3260 static int of_notify(struct notifier_block *nb, unsigned long action, 3261 void *arg) 3262 { 3263 struct of_overlay_notify_data *nd = arg; 3264 struct device_node *found; 3265 int ret; 3266 3267 /* 3268 * For overlay_16 .. overlay_19, check that returning an error 3269 * works for each of the actions by setting an arbitrary return 3270 * error number that matches the test number. e.g. for unittest16, 3271 * ret = -EBUSY which is -16. 3272 * 3273 * OVERLAY_INFO() for the overlays is declared to expect the same 3274 * error number, so overlay_data_apply() will return no error. 3275 * 3276 * overlay_20 will return NOTIFY_DONE 3277 */ 3278 3279 ret = 0; 3280 of_node_get(nd->overlay); 3281 3282 switch (action) { 3283 3284 case OF_OVERLAY_PRE_APPLY: 3285 found = of_find_node_by_name(nd->overlay, "test-unittest16"); 3286 if (found) { 3287 of_node_put(found); 3288 ret = -EBUSY; 3289 } 3290 break; 3291 3292 case OF_OVERLAY_POST_APPLY: 3293 found = of_find_node_by_name(nd->overlay, "test-unittest17"); 3294 if (found) { 3295 of_node_put(found); 3296 ret = -EEXIST; 3297 } 3298 break; 3299 3300 case OF_OVERLAY_PRE_REMOVE: 3301 found = of_find_node_by_name(nd->overlay, "test-unittest18"); 3302 if (found) { 3303 of_node_put(found); 3304 ret = -EXDEV; 3305 } 3306 break; 3307 3308 case OF_OVERLAY_POST_REMOVE: 3309 found = of_find_node_by_name(nd->overlay, "test-unittest19"); 3310 if (found) { 3311 of_node_put(found); 3312 ret = -ENODEV; 3313 } 3314 break; 3315 3316 default: /* should not happen */ 3317 of_node_put(nd->overlay); 3318 ret = -EINVAL; 3319 break; 3320 } 3321 3322 if (ret) 3323 return notifier_from_errno(ret); 3324 3325 return NOTIFY_DONE; 3326 } 3327 3328 static struct notifier_block of_nb = { 3329 .notifier_call = of_notify, 3330 }; 3331 3332 static void __init of_unittest_overlay_notify(void) 3333 { 3334 int ovcs_id; 3335 int ret; 3336 3337 ret = of_overlay_notifier_register(&of_nb); 3338 unittest(!ret, 3339 "of_overlay_notifier_register() failed, ret = %d\n", ret); 3340 if (ret) 3341 return; 3342 3343 /* 3344 * The overlays are applied by overlay_data_apply() 3345 * instead of of_unittest_apply_overlay() so that they 3346 * will not be tracked. Thus they will not be removed 3347 * by of_unittest_remove_tracked_overlays(). 3348 * 3349 * Applying overlays 16 - 19 will each trigger an error for a 3350 * different action in of_notify(). 3351 * 3352 * Applying overlay 20 will not trigger any error in of_notify(). 3353 */ 3354 3355 /* --- overlay 16 --- */ 3356 3357 EXPECT_BEGIN(KERN_INFO, "OF: overlay: overlay changeset pre-apply notifier error -16, target: /testcase-data/overlay-node/test-bus"); 3358 3359 unittest(overlay_data_apply("overlay_16", &ovcs_id), 3360 "test OF_OVERLAY_PRE_APPLY notify injected error\n"); 3361 3362 EXPECT_END(KERN_INFO, "OF: overlay: overlay changeset pre-apply notifier error -16, target: /testcase-data/overlay-node/test-bus"); 3363 3364 unittest(ovcs_id, "ovcs_id not created for overlay_16\n"); 3365 3366 /* --- overlay 17 --- */ 3367 3368 EXPECT_BEGIN(KERN_INFO, "OF: overlay: overlay changeset post-apply notifier error -17, target: /testcase-data/overlay-node/test-bus"); 3369 3370 unittest(overlay_data_apply("overlay_17", &ovcs_id), 3371 "test OF_OVERLAY_POST_APPLY notify injected error\n"); 3372 3373 EXPECT_END(KERN_INFO, "OF: overlay: overlay changeset post-apply notifier error -17, target: /testcase-data/overlay-node/test-bus"); 3374 3375 unittest(ovcs_id, "ovcs_id not created for overlay_17\n"); 3376 3377 /* --- overlay 18 --- */ 3378 3379 unittest(overlay_data_apply("overlay_18", &ovcs_id), 3380 "OF_OVERLAY_PRE_REMOVE notify injected error\n"); 3381 3382 unittest(ovcs_id, "ovcs_id not created for overlay_18\n"); 3383 3384 if (ovcs_id) { 3385 EXPECT_BEGIN(KERN_INFO, "OF: overlay: overlay changeset pre-remove notifier error -18, target: /testcase-data/overlay-node/test-bus"); 3386 3387 ret = of_overlay_remove(&ovcs_id); 3388 EXPECT_END(KERN_INFO, "OF: overlay: overlay changeset pre-remove notifier error -18, target: /testcase-data/overlay-node/test-bus"); 3389 if (ret == -EXDEV) { 3390 /* 3391 * change set ovcs_id should still exist 3392 */ 3393 unittest(1, "overlay_18 of_overlay_remove() injected error for OF_OVERLAY_PRE_REMOVE\n"); 3394 } else { 3395 unittest(0, "overlay_18 of_overlay_remove() injected error for OF_OVERLAY_PRE_REMOVE not returned\n"); 3396 } 3397 } else { 3398 unittest(1, "ovcs_id not created for overlay_18\n"); 3399 } 3400 3401 unittest(ovcs_id, "ovcs_id removed for overlay_18\n"); 3402 3403 /* --- overlay 19 --- */ 3404 3405 unittest(overlay_data_apply("overlay_19", &ovcs_id), 3406 "OF_OVERLAY_POST_REMOVE notify injected error\n"); 3407 3408 unittest(ovcs_id, "ovcs_id not created for overlay_19\n"); 3409 3410 if (ovcs_id) { 3411 EXPECT_BEGIN(KERN_INFO, "OF: overlay: overlay changeset post-remove notifier error -19, target: /testcase-data/overlay-node/test-bus"); 3412 ret = of_overlay_remove(&ovcs_id); 3413 EXPECT_END(KERN_INFO, "OF: overlay: overlay changeset post-remove notifier error -19, target: /testcase-data/overlay-node/test-bus"); 3414 if (ret == -ENODEV) 3415 unittest(1, "overlay_19 of_overlay_remove() injected error for OF_OVERLAY_POST_REMOVE\n"); 3416 else 3417 unittest(0, "overlay_19 of_overlay_remove() injected error for OF_OVERLAY_POST_REMOVE not returned\n"); 3418 } else { 3419 unittest(1, "ovcs_id removed for overlay_19\n"); 3420 } 3421 3422 unittest(!ovcs_id, "changeset ovcs_id = %d not removed for overlay_19\n", 3423 ovcs_id); 3424 3425 /* --- overlay 20 --- */ 3426 3427 unittest(overlay_data_apply("overlay_20", &ovcs_id), 3428 "overlay notify no injected error\n"); 3429 3430 if (ovcs_id) { 3431 ret = of_overlay_remove(&ovcs_id); 3432 if (ret) 3433 unittest(1, "overlay_20 failed to be destroyed, ret = %d\n", 3434 ret); 3435 } else { 3436 unittest(1, "ovcs_id not created for overlay_20\n"); 3437 } 3438 3439 unittest(!of_overlay_notifier_unregister(&of_nb), 3440 "of_overlay_notifier_unregister() failed, ret = %d\n", ret); 3441 } 3442 3443 static void __init of_unittest_overlay(void) 3444 { 3445 struct device_node *bus_np = NULL; 3446 unsigned int i; 3447 3448 if (platform_driver_register(&unittest_driver)) { 3449 unittest(0, "could not register unittest driver\n"); 3450 goto out; 3451 } 3452 3453 bus_np = of_find_node_by_path(bus_path); 3454 if (bus_np == NULL) { 3455 unittest(0, "could not find bus_path \"%s\"\n", bus_path); 3456 goto out; 3457 } 3458 3459 if (of_platform_default_populate(bus_np, NULL, NULL)) { 3460 unittest(0, "could not populate bus @ \"%s\"\n", bus_path); 3461 goto out; 3462 } 3463 3464 if (!of_unittest_device_exists(100, PDEV_OVERLAY)) { 3465 unittest(0, "could not find unittest0 @ \"%s\"\n", 3466 unittest_path(100, PDEV_OVERLAY)); 3467 goto out; 3468 } 3469 3470 if (of_unittest_device_exists(101, PDEV_OVERLAY)) { 3471 unittest(0, "unittest1 @ \"%s\" should not exist\n", 3472 unittest_path(101, PDEV_OVERLAY)); 3473 goto out; 3474 } 3475 3476 unittest(1, "basic infrastructure of overlays passed"); 3477 3478 /* tests in sequence */ 3479 of_unittest_overlay_0(); 3480 of_unittest_overlay_1(); 3481 of_unittest_overlay_2(); 3482 of_unittest_overlay_3(); 3483 of_unittest_overlay_4(); 3484 for (i = 0; i < 3; i++) 3485 of_unittest_overlay_5(); 3486 of_unittest_overlay_6(); 3487 of_unittest_overlay_8(); 3488 3489 of_unittest_overlay_10(); 3490 of_unittest_overlay_11(); 3491 3492 #if IS_BUILTIN(CONFIG_I2C) 3493 if (unittest(of_unittest_overlay_i2c_init() == 0, "i2c init failed\n")) 3494 goto out; 3495 3496 of_unittest_overlay_i2c_12(); 3497 of_unittest_overlay_i2c_13(); 3498 of_unittest_overlay_i2c_14(); 3499 of_unittest_overlay_i2c_15(); 3500 3501 of_unittest_overlay_i2c_cleanup(); 3502 #endif 3503 3504 of_unittest_overlay_gpio(); 3505 3506 of_unittest_remove_tracked_overlays(); 3507 3508 of_unittest_overlay_notify(); 3509 3510 out: 3511 of_node_put(bus_np); 3512 } 3513 3514 #else 3515 static inline void __init of_unittest_overlay(void) { } 3516 #endif 3517 3518 static void __init of_unittest_lifecycle(void) 3519 { 3520 #ifdef CONFIG_OF_DYNAMIC 3521 unsigned int refcount; 3522 int found_refcount_one = 0; 3523 int put_count = 0; 3524 struct device_node *np; 3525 struct device_node *prev_sibling, *next_sibling; 3526 const char *refcount_path = "/testcase-data/refcount-node"; 3527 const char *refcount_parent_path = "/testcase-data"; 3528 3529 /* 3530 * Node lifecycle tests, non-dynamic node: 3531 * 3532 * - Decrementing refcount to zero via of_node_put() should cause the 3533 * attempt to free the node memory by of_node_release() to fail 3534 * because the node is not a dynamic node. 3535 * 3536 * - Decrementing refcount past zero should result in additional 3537 * errors reported. 3538 */ 3539 3540 np = of_find_node_by_path(refcount_path); 3541 unittest(np, "find refcount_path \"%s\"\n", refcount_path); 3542 if (np == NULL) 3543 goto out_skip_tests; 3544 3545 while (!found_refcount_one) { 3546 3547 if (put_count++ > 10) { 3548 unittest(0, "guardrail to avoid infinite loop\n"); 3549 goto out_skip_tests; 3550 } 3551 3552 refcount = kref_read(&np->kobj.kref); 3553 if (refcount == 1) 3554 found_refcount_one = 1; 3555 else 3556 of_node_put(np); 3557 } 3558 3559 EXPECT_BEGIN(KERN_INFO, "OF: ERROR: of_node_release() detected bad of_node_put() on /testcase-data/refcount-node"); 3560 3561 /* 3562 * refcount is now one, decrementing to zero will result in a call to 3563 * of_node_release() to free the node's memory, which should result 3564 * in an error 3565 */ 3566 unittest(1, "/testcase-data/refcount-node is one"); 3567 of_node_put(np); 3568 3569 EXPECT_END(KERN_INFO, "OF: ERROR: of_node_release() detected bad of_node_put() on /testcase-data/refcount-node"); 3570 3571 3572 /* 3573 * expect stack trace for subsequent of_node_put(): 3574 * __refcount_sub_and_test() calls: 3575 * refcount_warn_saturate(r, REFCOUNT_SUB_UAF) 3576 * 3577 * Not capturing entire WARN_ONCE() trace with EXPECT_*(), just 3578 * the first three lines, and the last line. 3579 */ 3580 EXPECT_BEGIN(KERN_INFO, "------------[ cut here ]------------"); 3581 EXPECT_BEGIN(KERN_INFO, "WARNING: <<all>>"); 3582 EXPECT_BEGIN(KERN_INFO, "refcount_t: underflow; use-after-free."); 3583 EXPECT_BEGIN(KERN_INFO, "---[ end trace <<int>> ]---"); 3584 3585 /* refcount is now zero, this should fail */ 3586 unittest(1, "/testcase-data/refcount-node is zero"); 3587 of_node_put(np); 3588 3589 EXPECT_END(KERN_INFO, "---[ end trace <<int>> ]---"); 3590 EXPECT_END(KERN_INFO, "refcount_t: underflow; use-after-free."); 3591 EXPECT_END(KERN_INFO, "WARNING: <<all>>"); 3592 EXPECT_END(KERN_INFO, "------------[ cut here ]------------"); 3593 3594 /* 3595 * Q. do we expect to get yet another warning? 3596 * A. no, the WARNING is from WARN_ONCE() 3597 */ 3598 EXPECT_NOT_BEGIN(KERN_INFO, "------------[ cut here ]------------"); 3599 EXPECT_NOT_BEGIN(KERN_INFO, "WARNING: <<all>>"); 3600 EXPECT_NOT_BEGIN(KERN_INFO, "refcount_t: underflow; use-after-free."); 3601 EXPECT_NOT_BEGIN(KERN_INFO, "---[ end trace <<int>> ]---"); 3602 3603 unittest(1, "/testcase-data/refcount-node is zero, second time"); 3604 of_node_put(np); 3605 3606 EXPECT_NOT_END(KERN_INFO, "---[ end trace <<int>> ]---"); 3607 EXPECT_NOT_END(KERN_INFO, "refcount_t: underflow; use-after-free."); 3608 EXPECT_NOT_END(KERN_INFO, "WARNING: <<all>>"); 3609 EXPECT_NOT_END(KERN_INFO, "------------[ cut here ]------------"); 3610 3611 /* 3612 * refcount of zero will trigger stack traces from any further 3613 * attempt to of_node_get() node "refcount-node". One example of 3614 * this is where of_unittest_check_node_linkage() will recursively 3615 * scan the tree, with 'for_each_child_of_node()' doing an 3616 * of_node_get() of the children of a node. 3617 * 3618 * Prevent the stack trace by removing node "refcount-node" from 3619 * its parent's child list. 3620 * 3621 * WARNING: EVIL, EVIL, EVIL: 3622 * 3623 * Directly manipulate the child list of node /testcase-data to 3624 * remove child refcount-node. This is ignoring all proper methods 3625 * of removing a child and will leak a small amount of memory. 3626 */ 3627 3628 np = of_find_node_by_path(refcount_parent_path); 3629 unittest(np, "find refcount_parent_path \"%s\"\n", refcount_parent_path); 3630 unittest(np, "ERROR: devicetree live tree left in a 'bad state' if test fail\n"); 3631 if (np == NULL) 3632 return; 3633 3634 prev_sibling = np->child; 3635 next_sibling = prev_sibling->sibling; 3636 if (!strcmp(prev_sibling->full_name, "refcount-node")) { 3637 np->child = next_sibling; 3638 next_sibling = next_sibling->sibling; 3639 } 3640 while (next_sibling) { 3641 if (!strcmp(next_sibling->full_name, "refcount-node")) 3642 prev_sibling->sibling = next_sibling->sibling; 3643 prev_sibling = next_sibling; 3644 next_sibling = next_sibling->sibling; 3645 } 3646 of_node_put(np); 3647 3648 return; 3649 3650 out_skip_tests: 3651 #endif 3652 unittest(0, "One or more lifecycle tests skipped\n"); 3653 } 3654 3655 #ifdef CONFIG_OF_OVERLAY 3656 3657 /* 3658 * __dtbo_##overlay_name##_begin[] and __dtbo_##overlay_name##_end[] are 3659 * created by cmd_wrap_S_dtbo in scripts/Makefile.dtbs 3660 */ 3661 3662 #define OVERLAY_INFO_EXTERN(overlay_name) \ 3663 extern uint8_t __dtbo_##overlay_name##_begin[]; \ 3664 extern uint8_t __dtbo_##overlay_name##_end[] 3665 3666 #define OVERLAY_INFO(overlay_name, expected, expected_remove) \ 3667 { .dtbo_begin = __dtbo_##overlay_name##_begin, \ 3668 .dtbo_end = __dtbo_##overlay_name##_end, \ 3669 .expected_result = expected, \ 3670 .expected_result_remove = expected_remove, \ 3671 .name = #overlay_name, \ 3672 } 3673 3674 struct overlay_info { 3675 uint8_t *dtbo_begin; 3676 uint8_t *dtbo_end; 3677 int expected_result; 3678 int expected_result_remove; /* if apply failed */ 3679 int ovcs_id; 3680 char *name; 3681 }; 3682 3683 OVERLAY_INFO_EXTERN(overlay_base); 3684 OVERLAY_INFO_EXTERN(overlay); 3685 OVERLAY_INFO_EXTERN(overlay_0); 3686 OVERLAY_INFO_EXTERN(overlay_1); 3687 OVERLAY_INFO_EXTERN(overlay_2); 3688 OVERLAY_INFO_EXTERN(overlay_3); 3689 OVERLAY_INFO_EXTERN(overlay_4); 3690 OVERLAY_INFO_EXTERN(overlay_5); 3691 OVERLAY_INFO_EXTERN(overlay_6); 3692 OVERLAY_INFO_EXTERN(overlay_7); 3693 OVERLAY_INFO_EXTERN(overlay_8); 3694 OVERLAY_INFO_EXTERN(overlay_9); 3695 OVERLAY_INFO_EXTERN(overlay_10); 3696 OVERLAY_INFO_EXTERN(overlay_11); 3697 OVERLAY_INFO_EXTERN(overlay_12); 3698 OVERLAY_INFO_EXTERN(overlay_13); 3699 OVERLAY_INFO_EXTERN(overlay_15); 3700 OVERLAY_INFO_EXTERN(overlay_16); 3701 OVERLAY_INFO_EXTERN(overlay_17); 3702 OVERLAY_INFO_EXTERN(overlay_18); 3703 OVERLAY_INFO_EXTERN(overlay_19); 3704 OVERLAY_INFO_EXTERN(overlay_20); 3705 OVERLAY_INFO_EXTERN(overlay_gpio_01); 3706 OVERLAY_INFO_EXTERN(overlay_gpio_02a); 3707 OVERLAY_INFO_EXTERN(overlay_gpio_02b); 3708 OVERLAY_INFO_EXTERN(overlay_gpio_03); 3709 OVERLAY_INFO_EXTERN(overlay_gpio_04a); 3710 OVERLAY_INFO_EXTERN(overlay_gpio_04b); 3711 OVERLAY_INFO_EXTERN(overlay_pci_node); 3712 OVERLAY_INFO_EXTERN(overlay_bad_add_dup_node); 3713 OVERLAY_INFO_EXTERN(overlay_bad_add_dup_prop); 3714 OVERLAY_INFO_EXTERN(overlay_bad_phandle); 3715 OVERLAY_INFO_EXTERN(overlay_bad_symbol); 3716 OVERLAY_INFO_EXTERN(overlay_bad_unresolved); 3717 3718 /* entries found by name */ 3719 static struct overlay_info overlays[] = { 3720 OVERLAY_INFO(overlay_base, -9999, 0), 3721 OVERLAY_INFO(overlay, 0, 0), 3722 OVERLAY_INFO(overlay_0, 0, 0), 3723 OVERLAY_INFO(overlay_1, 0, 0), 3724 OVERLAY_INFO(overlay_2, 0, 0), 3725 OVERLAY_INFO(overlay_3, 0, 0), 3726 OVERLAY_INFO(overlay_4, 0, 0), 3727 OVERLAY_INFO(overlay_5, 0, 0), 3728 OVERLAY_INFO(overlay_6, 0, 0), 3729 OVERLAY_INFO(overlay_7, 0, 0), 3730 OVERLAY_INFO(overlay_8, 0, 0), 3731 OVERLAY_INFO(overlay_9, 0, 0), 3732 OVERLAY_INFO(overlay_10, 0, 0), 3733 OVERLAY_INFO(overlay_11, 0, 0), 3734 OVERLAY_INFO(overlay_12, 0, 0), 3735 OVERLAY_INFO(overlay_13, 0, 0), 3736 OVERLAY_INFO(overlay_15, 0, 0), 3737 OVERLAY_INFO(overlay_16, -EBUSY, 0), 3738 OVERLAY_INFO(overlay_17, -EEXIST, 0), 3739 OVERLAY_INFO(overlay_18, 0, 0), 3740 OVERLAY_INFO(overlay_19, 0, 0), 3741 OVERLAY_INFO(overlay_20, 0, 0), 3742 OVERLAY_INFO(overlay_gpio_01, 0, 0), 3743 OVERLAY_INFO(overlay_gpio_02a, 0, 0), 3744 OVERLAY_INFO(overlay_gpio_02b, 0, 0), 3745 OVERLAY_INFO(overlay_gpio_03, 0, 0), 3746 OVERLAY_INFO(overlay_gpio_04a, 0, 0), 3747 OVERLAY_INFO(overlay_gpio_04b, 0, 0), 3748 OVERLAY_INFO(overlay_pci_node, 0, 0), 3749 OVERLAY_INFO(overlay_bad_add_dup_node, -EINVAL, -ENODEV), 3750 OVERLAY_INFO(overlay_bad_add_dup_prop, -EINVAL, -ENODEV), 3751 OVERLAY_INFO(overlay_bad_phandle, -EINVAL, 0), 3752 OVERLAY_INFO(overlay_bad_symbol, -EINVAL, -ENODEV), 3753 OVERLAY_INFO(overlay_bad_unresolved, -EINVAL, 0), 3754 /* end marker */ 3755 { } 3756 }; 3757 3758 static struct device_node *overlay_base_root; 3759 3760 static void * __init dt_alloc_memory(u64 size, u64 align) 3761 { 3762 return memblock_alloc_or_panic(size, align); 3763 } 3764 3765 /* 3766 * Create base device tree for the overlay unittest. 3767 * 3768 * This is called from very early boot code. 3769 * 3770 * Do as much as possible the same way as done in __unflatten_device_tree 3771 * and other early boot steps for the normal FDT so that the overlay base 3772 * unflattened tree will have the same characteristics as the real tree 3773 * (such as having memory allocated by the early allocator). The goal 3774 * is to test "the real thing" as much as possible, and test "test setup 3775 * code" as little as possible. 3776 * 3777 * Have to stop before resolving phandles, because that uses kmalloc. 3778 */ 3779 void __init unittest_unflatten_overlay_base(void) 3780 { 3781 struct overlay_info *info; 3782 u32 data_size; 3783 void *new_fdt; 3784 u32 size; 3785 int found = 0; 3786 const char *overlay_name = "overlay_base"; 3787 3788 for (info = overlays; info && info->name; info++) { 3789 if (!strcmp(overlay_name, info->name)) { 3790 found = 1; 3791 break; 3792 } 3793 } 3794 if (!found) { 3795 pr_err("no overlay data for %s\n", overlay_name); 3796 return; 3797 } 3798 3799 info = &overlays[0]; 3800 3801 if (info->expected_result != -9999) { 3802 pr_err("No dtb 'overlay_base' to attach\n"); 3803 return; 3804 } 3805 3806 data_size = info->dtbo_end - info->dtbo_begin; 3807 if (!data_size) { 3808 pr_err("No dtb 'overlay_base' to attach\n"); 3809 return; 3810 } 3811 3812 size = fdt_totalsize(info->dtbo_begin); 3813 if (size != data_size) { 3814 pr_err("dtb 'overlay_base' header totalsize != actual size"); 3815 return; 3816 } 3817 3818 new_fdt = dt_alloc_memory(size, roundup_pow_of_two(FDT_V17_SIZE)); 3819 if (!new_fdt) { 3820 pr_err("alloc for dtb 'overlay_base' failed"); 3821 return; 3822 } 3823 3824 memcpy(new_fdt, info->dtbo_begin, size); 3825 3826 __unflatten_device_tree(new_fdt, NULL, &overlay_base_root, 3827 dt_alloc_memory, true); 3828 } 3829 3830 /* 3831 * The purpose of of_unittest_overlay_data_add is to add an 3832 * overlay in the normal fashion. This is a test of the whole 3833 * picture, instead of testing individual elements. 3834 * 3835 * A secondary purpose is to be able to verify that the contents of 3836 * /proc/device-tree/ contains the updated structure and values from 3837 * the overlay. That must be verified separately in user space. 3838 * 3839 * Return 0 on unexpected error. 3840 */ 3841 static int __init overlay_data_apply(const char *overlay_name, int *ovcs_id) 3842 { 3843 struct overlay_info *info; 3844 int passed = 1; 3845 int found = 0; 3846 int ret, ret2; 3847 u32 size; 3848 3849 for (info = overlays; info && info->name; info++) { 3850 if (!strcmp(overlay_name, info->name)) { 3851 found = 1; 3852 break; 3853 } 3854 } 3855 if (!found) { 3856 pr_err("no overlay data for %s\n", overlay_name); 3857 return 0; 3858 } 3859 3860 size = info->dtbo_end - info->dtbo_begin; 3861 if (!size) 3862 pr_err("no overlay data for %s\n", overlay_name); 3863 3864 ret = of_overlay_fdt_apply(info->dtbo_begin, size, &info->ovcs_id, 3865 NULL); 3866 if (ovcs_id) 3867 *ovcs_id = info->ovcs_id; 3868 if (ret < 0) 3869 goto out; 3870 3871 pr_debug("%s applied\n", overlay_name); 3872 3873 out: 3874 if (ret != info->expected_result) { 3875 pr_err("of_overlay_fdt_apply() expected %d, ret=%d, %s\n", 3876 info->expected_result, ret, overlay_name); 3877 passed = 0; 3878 } 3879 3880 if (ret < 0) { 3881 /* changeset may be partially applied */ 3882 ret2 = of_overlay_remove(&info->ovcs_id); 3883 if (ret2 != info->expected_result_remove) { 3884 pr_err("of_overlay_remove() expected %d, ret=%d, %s\n", 3885 info->expected_result_remove, ret2, 3886 overlay_name); 3887 passed = 0; 3888 } 3889 } 3890 3891 return passed; 3892 } 3893 3894 /* 3895 * The purpose of of_unittest_overlay_high_level is to add an overlay 3896 * in the normal fashion. This is a test of the whole picture, 3897 * instead of individual elements. 3898 * 3899 * The first part of the function is _not_ normal overlay usage; it is 3900 * finishing splicing the base overlay device tree into the live tree. 3901 */ 3902 static __init void of_unittest_overlay_high_level(void) 3903 { 3904 struct device_node *last_sibling; 3905 struct device_node *np; 3906 struct device_node *of_symbols; 3907 struct device_node *overlay_base_symbols; 3908 struct device_node **pprev; 3909 struct property *prop; 3910 int ret; 3911 3912 if (!overlay_base_root) { 3913 unittest(0, "overlay_base_root not initialized\n"); 3914 return; 3915 } 3916 3917 /* 3918 * Could not fixup phandles in unittest_unflatten_overlay_base() 3919 * because kmalloc() was not yet available. 3920 */ 3921 of_overlay_mutex_lock(); 3922 of_resolve_phandles(overlay_base_root); 3923 of_overlay_mutex_unlock(); 3924 3925 3926 /* 3927 * do not allow overlay_base to duplicate any node already in 3928 * tree, this greatly simplifies the code 3929 */ 3930 3931 /* 3932 * remove overlay_base_root node "__local_fixups", after 3933 * being used by of_resolve_phandles() 3934 */ 3935 pprev = &overlay_base_root->child; 3936 for (np = overlay_base_root->child; np; np = np->sibling) { 3937 if (of_node_name_eq(np, "__local_fixups__")) { 3938 *pprev = np->sibling; 3939 break; 3940 } 3941 pprev = &np->sibling; 3942 } 3943 3944 /* remove overlay_base_root node "__symbols__" if in live tree */ 3945 of_symbols = of_get_child_by_name(of_root, "__symbols__"); 3946 if (of_symbols) { 3947 /* will have to graft properties from node into live tree */ 3948 pprev = &overlay_base_root->child; 3949 for (np = overlay_base_root->child; np; np = np->sibling) { 3950 if (of_node_name_eq(np, "__symbols__")) { 3951 overlay_base_symbols = np; 3952 *pprev = np->sibling; 3953 break; 3954 } 3955 pprev = &np->sibling; 3956 } 3957 } 3958 3959 for_each_child_of_node(overlay_base_root, np) { 3960 struct device_node *base_child; 3961 for_each_child_of_node(of_root, base_child) { 3962 if (!strcmp(np->full_name, base_child->full_name)) { 3963 unittest(0, "illegal node name in overlay_base %pOFn", 3964 np); 3965 of_node_put(np); 3966 of_node_put(base_child); 3967 return; 3968 } 3969 } 3970 } 3971 3972 /* 3973 * overlay 'overlay_base' is not allowed to have root 3974 * properties, so only need to splice nodes into main device tree. 3975 * 3976 * root node of *overlay_base_root will not be freed, it is lost 3977 * memory. 3978 */ 3979 3980 for (np = overlay_base_root->child; np; np = np->sibling) 3981 np->parent = of_root; 3982 3983 mutex_lock(&of_mutex); 3984 3985 for (last_sibling = np = of_root->child; np; np = np->sibling) 3986 last_sibling = np; 3987 3988 if (last_sibling) 3989 last_sibling->sibling = overlay_base_root->child; 3990 else 3991 of_root->child = overlay_base_root->child; 3992 3993 for_each_of_allnodes_from(overlay_base_root, np) 3994 __of_attach_node_sysfs(np); 3995 3996 if (of_symbols) { 3997 struct property *new_prop; 3998 for_each_property_of_node(overlay_base_symbols, prop) { 3999 4000 new_prop = __of_prop_dup(prop, GFP_KERNEL); 4001 if (!new_prop) { 4002 unittest(0, "__of_prop_dup() of '%s' from overlay_base node __symbols__", 4003 prop->name); 4004 goto err_unlock; 4005 } 4006 if (__of_add_property(of_symbols, new_prop)) { 4007 __of_prop_free(new_prop); 4008 /* "name" auto-generated by unflatten */ 4009 if (!strcmp(prop->name, "name")) 4010 continue; 4011 unittest(0, "duplicate property '%s' in overlay_base node __symbols__", 4012 prop->name); 4013 goto err_unlock; 4014 } 4015 if (__of_add_property_sysfs(of_symbols, new_prop)) { 4016 unittest(0, "unable to add property '%s' in overlay_base node __symbols__ to sysfs", 4017 prop->name); 4018 goto err_unlock; 4019 } 4020 } 4021 } 4022 4023 mutex_unlock(&of_mutex); 4024 4025 4026 /* now do the normal overlay usage test */ 4027 4028 /* --- overlay --- */ 4029 4030 EXPECT_BEGIN(KERN_ERR, 4031 "OF: overlay: WARNING: memory leak will occur if overlay removed, property: /testcase-data-2/substation@100/status"); 4032 EXPECT_BEGIN(KERN_ERR, 4033 "OF: overlay: WARNING: memory leak will occur if overlay removed, property: /testcase-data-2/fairway-1/status"); 4034 EXPECT_BEGIN(KERN_ERR, 4035 "OF: overlay: WARNING: memory leak will occur if overlay removed, property: /testcase-data-2/fairway-1/ride@100/track@30/incline-up"); 4036 EXPECT_BEGIN(KERN_ERR, 4037 "OF: overlay: WARNING: memory leak will occur if overlay removed, property: /testcase-data-2/fairway-1/ride@100/track@40/incline-up"); 4038 EXPECT_BEGIN(KERN_ERR, 4039 "OF: overlay: WARNING: memory leak will occur if overlay removed, property: /testcase-data-2/lights@40000/status"); 4040 EXPECT_BEGIN(KERN_ERR, 4041 "OF: overlay: WARNING: memory leak will occur if overlay removed, property: /testcase-data-2/lights@40000/color"); 4042 EXPECT_BEGIN(KERN_ERR, 4043 "OF: overlay: WARNING: memory leak will occur if overlay removed, property: /testcase-data-2/lights@40000/rate"); 4044 EXPECT_BEGIN(KERN_ERR, 4045 "OF: overlay: WARNING: memory leak will occur if overlay removed, property: /__symbols__/hvac_2"); 4046 EXPECT_BEGIN(KERN_ERR, 4047 "OF: overlay: WARNING: memory leak will occur if overlay removed, property: /__symbols__/ride_200"); 4048 EXPECT_BEGIN(KERN_ERR, 4049 "OF: overlay: WARNING: memory leak will occur if overlay removed, property: /__symbols__/ride_200_left"); 4050 EXPECT_BEGIN(KERN_ERR, 4051 "OF: overlay: WARNING: memory leak will occur if overlay removed, property: /__symbols__/ride_200_right"); 4052 4053 ret = overlay_data_apply("overlay", NULL); 4054 4055 EXPECT_END(KERN_ERR, 4056 "OF: overlay: WARNING: memory leak will occur if overlay removed, property: /__symbols__/ride_200_right"); 4057 EXPECT_END(KERN_ERR, 4058 "OF: overlay: WARNING: memory leak will occur if overlay removed, property: /__symbols__/ride_200_left"); 4059 EXPECT_END(KERN_ERR, 4060 "OF: overlay: WARNING: memory leak will occur if overlay removed, property: /__symbols__/ride_200"); 4061 EXPECT_END(KERN_ERR, 4062 "OF: overlay: WARNING: memory leak will occur if overlay removed, property: /__symbols__/hvac_2"); 4063 EXPECT_END(KERN_ERR, 4064 "OF: overlay: WARNING: memory leak will occur if overlay removed, property: /testcase-data-2/lights@40000/rate"); 4065 EXPECT_END(KERN_ERR, 4066 "OF: overlay: WARNING: memory leak will occur if overlay removed, property: /testcase-data-2/lights@40000/color"); 4067 EXPECT_END(KERN_ERR, 4068 "OF: overlay: WARNING: memory leak will occur if overlay removed, property: /testcase-data-2/lights@40000/status"); 4069 EXPECT_END(KERN_ERR, 4070 "OF: overlay: WARNING: memory leak will occur if overlay removed, property: /testcase-data-2/fairway-1/ride@100/track@40/incline-up"); 4071 EXPECT_END(KERN_ERR, 4072 "OF: overlay: WARNING: memory leak will occur if overlay removed, property: /testcase-data-2/fairway-1/ride@100/track@30/incline-up"); 4073 EXPECT_END(KERN_ERR, 4074 "OF: overlay: WARNING: memory leak will occur if overlay removed, property: /testcase-data-2/fairway-1/status"); 4075 EXPECT_END(KERN_ERR, 4076 "OF: overlay: WARNING: memory leak will occur if overlay removed, property: /testcase-data-2/substation@100/status"); 4077 4078 unittest(ret, "Adding overlay 'overlay' failed\n"); 4079 4080 /* --- overlay_bad_add_dup_node --- */ 4081 4082 EXPECT_BEGIN(KERN_ERR, 4083 "OF: overlay: ERROR: multiple fragments add and/or delete node /testcase-data-2/substation@100/motor-1/controller"); 4084 EXPECT_BEGIN(KERN_ERR, 4085 "OF: overlay: ERROR: multiple fragments add, update, and/or delete property /testcase-data-2/substation@100/motor-1/controller/name"); 4086 EXPECT_BEGIN(KERN_ERR, 4087 "OF: changeset: apply failed: REMOVE_PROPERTY /testcase-data-2/substation@100/motor-1/controller:name"); 4088 EXPECT_BEGIN(KERN_ERR, 4089 "OF: Error reverting changeset (-19)"); 4090 4091 unittest(overlay_data_apply("overlay_bad_add_dup_node", NULL), 4092 "Adding overlay 'overlay_bad_add_dup_node' failed\n"); 4093 4094 EXPECT_END(KERN_ERR, 4095 "OF: Error reverting changeset (-19)"); 4096 EXPECT_END(KERN_ERR, 4097 "OF: changeset: apply failed: REMOVE_PROPERTY /testcase-data-2/substation@100/motor-1/controller:name"); 4098 EXPECT_END(KERN_ERR, 4099 "OF: overlay: ERROR: multiple fragments add, update, and/or delete property /testcase-data-2/substation@100/motor-1/controller/name"); 4100 EXPECT_END(KERN_ERR, 4101 "OF: overlay: ERROR: multiple fragments add and/or delete node /testcase-data-2/substation@100/motor-1/controller"); 4102 4103 /* --- overlay_bad_add_dup_prop --- */ 4104 4105 EXPECT_BEGIN(KERN_ERR, 4106 "OF: overlay: ERROR: multiple fragments add and/or delete node /testcase-data-2/substation@100/motor-1/electric"); 4107 EXPECT_BEGIN(KERN_ERR, 4108 "OF: overlay: ERROR: multiple fragments add, update, and/or delete property /testcase-data-2/substation@100/motor-1/electric/rpm_avail"); 4109 EXPECT_BEGIN(KERN_ERR, 4110 "OF: overlay: ERROR: multiple fragments add, update, and/or delete property /testcase-data-2/substation@100/motor-1/electric/name"); 4111 EXPECT_BEGIN(KERN_ERR, 4112 "OF: changeset: apply failed: REMOVE_PROPERTY /testcase-data-2/substation@100/motor-1/electric:name"); 4113 EXPECT_BEGIN(KERN_ERR, 4114 "OF: Error reverting changeset (-19)"); 4115 4116 unittest(overlay_data_apply("overlay_bad_add_dup_prop", NULL), 4117 "Adding overlay 'overlay_bad_add_dup_prop' failed\n"); 4118 4119 EXPECT_END(KERN_ERR, 4120 "OF: Error reverting changeset (-19)"); 4121 EXPECT_END(KERN_ERR, 4122 "OF: changeset: apply failed: REMOVE_PROPERTY /testcase-data-2/substation@100/motor-1/electric:name"); 4123 EXPECT_END(KERN_ERR, 4124 "OF: overlay: ERROR: multiple fragments add, update, and/or delete property /testcase-data-2/substation@100/motor-1/electric/name"); 4125 EXPECT_END(KERN_ERR, 4126 "OF: overlay: ERROR: multiple fragments add, update, and/or delete property /testcase-data-2/substation@100/motor-1/electric/rpm_avail"); 4127 EXPECT_END(KERN_ERR, 4128 "OF: overlay: ERROR: multiple fragments add and/or delete node /testcase-data-2/substation@100/motor-1/electric"); 4129 4130 /* --- overlay_bad_phandle --- */ 4131 4132 unittest(overlay_data_apply("overlay_bad_phandle", NULL), 4133 "Adding overlay 'overlay_bad_phandle' failed\n"); 4134 4135 /* --- overlay_bad_symbol --- */ 4136 4137 EXPECT_BEGIN(KERN_ERR, 4138 "OF: changeset: apply failed: REMOVE_PROPERTY /testcase-data-2/substation@100/hvac-medium-2:name"); 4139 EXPECT_BEGIN(KERN_ERR, 4140 "OF: Error reverting changeset (-19)"); 4141 4142 unittest(overlay_data_apply("overlay_bad_symbol", NULL), 4143 "Adding overlay 'overlay_bad_symbol' failed\n"); 4144 4145 EXPECT_END(KERN_ERR, 4146 "OF: Error reverting changeset (-19)"); 4147 EXPECT_END(KERN_ERR, 4148 "OF: changeset: apply failed: REMOVE_PROPERTY /testcase-data-2/substation@100/hvac-medium-2:name"); 4149 4150 /* --- overlay_bad_unresolved --- */ 4151 4152 EXPECT_BEGIN(KERN_ERR, 4153 "OF: resolver: node label 'this_label_does_not_exist' not found in live devicetree symbols table"); 4154 EXPECT_BEGIN(KERN_ERR, 4155 "OF: resolver: overlay phandle fixup failed: -22"); 4156 4157 unittest(overlay_data_apply("overlay_bad_unresolved", NULL), 4158 "Adding overlay 'overlay_bad_unresolved' failed\n"); 4159 4160 EXPECT_END(KERN_ERR, 4161 "OF: resolver: overlay phandle fixup failed: -22"); 4162 EXPECT_END(KERN_ERR, 4163 "OF: resolver: node label 'this_label_does_not_exist' not found in live devicetree symbols table"); 4164 4165 return; 4166 4167 err_unlock: 4168 mutex_unlock(&of_mutex); 4169 } 4170 4171 static int of_unittest_pci_dev_num; 4172 static int of_unittest_pci_child_num; 4173 4174 /* 4175 * PCI device tree node test driver 4176 */ 4177 static const struct pci_device_id testdrv_pci_ids[] = { 4178 { PCI_DEVICE(PCI_VENDOR_ID_REDHAT, 0x5), }, /* PCI_VENDOR_ID_REDHAT */ 4179 { 0, } 4180 }; 4181 4182 static int testdrv_probe(struct pci_dev *pdev, const struct pci_device_id *id) 4183 { 4184 struct overlay_info *info; 4185 struct device_node *dn; 4186 int ret, ovcs_id; 4187 u32 size; 4188 4189 dn = pdev->dev.of_node; 4190 if (!dn) { 4191 dev_err(&pdev->dev, "does not find bus endpoint"); 4192 return -EINVAL; 4193 } 4194 4195 for (info = overlays; info && info->name; info++) { 4196 if (!strcmp(info->name, "overlay_pci_node")) 4197 break; 4198 } 4199 if (!info || !info->name) { 4200 dev_err(&pdev->dev, "no overlay data for overlay_pci_node"); 4201 return -ENODEV; 4202 } 4203 4204 size = info->dtbo_end - info->dtbo_begin; 4205 ret = of_overlay_fdt_apply(info->dtbo_begin, size, &ovcs_id, dn); 4206 of_node_put(dn); 4207 if (ret) 4208 return ret; 4209 4210 of_platform_default_populate(dn, NULL, &pdev->dev); 4211 pci_set_drvdata(pdev, (void *)(uintptr_t)ovcs_id); 4212 4213 return 0; 4214 } 4215 4216 static void testdrv_remove(struct pci_dev *pdev) 4217 { 4218 int ovcs_id = (int)(uintptr_t)pci_get_drvdata(pdev); 4219 4220 of_platform_depopulate(&pdev->dev); 4221 of_overlay_remove(&ovcs_id); 4222 } 4223 4224 static struct pci_driver testdrv_driver = { 4225 .name = "pci_dt_testdrv", 4226 .id_table = testdrv_pci_ids, 4227 .probe = testdrv_probe, 4228 .remove = testdrv_remove, 4229 }; 4230 4231 static int unittest_pci_probe(struct platform_device *pdev) 4232 { 4233 struct resource *res; 4234 struct device *dev; 4235 u64 exp_addr; 4236 4237 res = platform_get_resource(pdev, IORESOURCE_MEM, 0); 4238 if (!res) 4239 return -ENODEV; 4240 4241 dev = &pdev->dev; 4242 while (dev && !dev_is_pci(dev)) 4243 dev = dev->parent; 4244 if (!dev) { 4245 pr_err("unable to find parent device\n"); 4246 return -ENODEV; 4247 } 4248 4249 exp_addr = pci_resource_start(to_pci_dev(dev), 0) + 0x100; 4250 unittest(res->start == exp_addr, "Incorrect translated address %llx, expected %llx\n", 4251 (u64)res->start, exp_addr); 4252 4253 of_unittest_pci_child_num++; 4254 4255 return 0; 4256 } 4257 4258 static const struct of_device_id unittest_pci_of_match[] = { 4259 { .compatible = "unittest-pci" }, 4260 { } 4261 }; 4262 4263 static struct platform_driver unittest_pci_driver = { 4264 .probe = unittest_pci_probe, 4265 .driver = { 4266 .name = "unittest-pci", 4267 .of_match_table = unittest_pci_of_match, 4268 }, 4269 }; 4270 4271 static int of_unittest_pci_node_verify(struct pci_dev *pdev, bool add) 4272 { 4273 struct device_node *pnp, *np = NULL; 4274 struct device *child_dev; 4275 char *path = NULL; 4276 const __be32 *reg; 4277 int rc = 0; 4278 4279 pnp = pdev->dev.of_node; 4280 unittest(pnp, "Failed creating PCI dt node\n"); 4281 if (!pnp) 4282 return -ENODEV; 4283 4284 if (add) { 4285 path = kasprintf(GFP_KERNEL, "%pOF/pci-ep-bus@0/unittest-pci@100", pnp); 4286 np = of_find_node_by_path(path); 4287 unittest(np, "Failed to get unittest-pci node under PCI node\n"); 4288 if (!np) { 4289 rc = -ENODEV; 4290 goto failed; 4291 } 4292 4293 reg = of_get_property(np, "reg", NULL); 4294 unittest(reg, "Failed to get reg property\n"); 4295 if (!reg) 4296 rc = -ENODEV; 4297 } else { 4298 path = kasprintf(GFP_KERNEL, "%pOF/pci-ep-bus@0", pnp); 4299 np = of_find_node_by_path(path); 4300 unittest(!np, "Child device tree node is not removed\n"); 4301 child_dev = device_find_any_child(&pdev->dev); 4302 unittest(!child_dev, "Child device is not removed\n"); 4303 } 4304 4305 failed: 4306 kfree(path); 4307 if (np) 4308 of_node_put(np); 4309 4310 return rc; 4311 } 4312 4313 static void __init of_unittest_pci_node(void) 4314 { 4315 struct pci_dev *pdev = NULL; 4316 int rc; 4317 4318 if (!IS_ENABLED(CONFIG_PCI_DYNAMIC_OF_NODES)) 4319 return; 4320 4321 rc = pci_register_driver(&testdrv_driver); 4322 unittest(!rc, "Failed to register pci test driver; rc = %d\n", rc); 4323 if (rc) 4324 return; 4325 4326 rc = platform_driver_register(&unittest_pci_driver); 4327 if (unittest(!rc, "Failed to register unittest pci driver\n")) { 4328 pci_unregister_driver(&testdrv_driver); 4329 return; 4330 } 4331 4332 while ((pdev = pci_get_device(PCI_VENDOR_ID_REDHAT, 0x5, pdev)) != NULL) { 4333 of_unittest_pci_node_verify(pdev, true); 4334 of_unittest_pci_dev_num++; 4335 } 4336 if (pdev) 4337 pci_dev_put(pdev); 4338 4339 unittest(of_unittest_pci_dev_num, 4340 "No test PCI device been found. Please run QEMU with '-device pci-testdev'\n"); 4341 unittest(of_unittest_pci_dev_num == of_unittest_pci_child_num, 4342 "Child device number %d is not expected %d", of_unittest_pci_child_num, 4343 of_unittest_pci_dev_num); 4344 4345 platform_driver_unregister(&unittest_pci_driver); 4346 pci_unregister_driver(&testdrv_driver); 4347 4348 while ((pdev = pci_get_device(PCI_VENDOR_ID_REDHAT, 0x5, pdev)) != NULL) 4349 of_unittest_pci_node_verify(pdev, false); 4350 if (pdev) 4351 pci_dev_put(pdev); 4352 } 4353 #else 4354 4355 static inline __init void of_unittest_overlay_high_level(void) {} 4356 static inline __init void of_unittest_pci_node(void) { } 4357 4358 #endif 4359 4360 static int __init of_unittest(void) 4361 { 4362 struct device_node *np; 4363 int res; 4364 4365 pr_info("start of unittest - you will see error messages\n"); 4366 4367 /* Taint the kernel so we know we've run tests. */ 4368 add_taint(TAINT_TEST, LOCKDEP_STILL_OK); 4369 4370 /* adding data for unittest */ 4371 res = unittest_data_add(); 4372 if (res) 4373 return res; 4374 if (!of_aliases) 4375 of_aliases = of_find_node_by_path("/aliases"); 4376 4377 np = of_find_node_by_path("/testcase-data/phandle-tests/consumer-a"); 4378 if (!np) { 4379 pr_info("No testcase data in device tree; not running tests\n"); 4380 return 0; 4381 } 4382 of_node_put(np); 4383 4384 of_unittest_check_tree_linkage(); 4385 of_unittest_check_phandles(); 4386 of_unittest_find_node_by_name(); 4387 of_unittest_dynamic(); 4388 of_unittest_parse_phandle_with_args(); 4389 of_unittest_parse_phandle_with_args_map(); 4390 of_unittest_printf(); 4391 of_unittest_property_string(); 4392 of_unittest_property_copy(); 4393 of_unittest_changeset(); 4394 of_unittest_changeset_prop(); 4395 of_unittest_parse_interrupts(); 4396 of_unittest_parse_interrupts_extended(); 4397 of_unittest_irq_refcount(); 4398 of_unittest_dma_get_max_cpu_address(); 4399 of_unittest_parse_dma_ranges(); 4400 of_unittest_pci_dma_ranges(); 4401 of_unittest_pci_empty_dma_ranges(); 4402 of_unittest_bus_ranges(); 4403 of_unittest_bus_3cell_ranges(); 4404 of_unittest_reg(); 4405 of_unittest_translate_addr(); 4406 of_unittest_match_node(); 4407 of_unittest_platform_populate(); 4408 of_unittest_overlay(); 4409 of_unittest_lifecycle(); 4410 of_unittest_pci_node(); 4411 4412 /* Double check linkage after removing testcase data */ 4413 of_unittest_check_tree_linkage(); 4414 4415 of_unittest_overlay_high_level(); 4416 4417 pr_info("end of unittest - %i passed, %i failed\n", 4418 unittest_results.passed, unittest_results.failed); 4419 4420 return 0; 4421 } 4422 late_initcall(of_unittest); 4423