1 // SPDX-License-Identifier: GPL-2.0-only 2 /* 3 * Driver to enumerate TPMI features and create devices 4 * 5 * Copyright (c) 2023, Intel Corporation. 6 * All Rights Reserved. 7 * 8 * The TPMI (Topology Aware Register and PM Capsule Interface) provides a 9 * flexible, extendable and PCIe enumerable MMIO interface for PM features. 10 * 11 * For example Intel RAPL (Running Average Power Limit) provides a MMIO 12 * interface using TPMI. This has advantage over traditional MSR 13 * (Model Specific Register) interface, where a thread needs to be scheduled 14 * on the target CPU to read or write. Also the RAPL features vary between 15 * CPU models, and hence lot of model specific code. Here TPMI provides an 16 * architectural interface by providing hierarchical tables and fields, 17 * which will not need any model specific implementation. 18 * 19 * The TPMI interface uses a PCI VSEC structure to expose the location of 20 * MMIO region. 21 * 22 * This VSEC structure is present in the PCI configuration space of the 23 * Intel Out-of-Band (OOB) device, which is handled by the Intel VSEC 24 * driver. The Intel VSEC driver parses VSEC structures present in the PCI 25 * configuration space of the given device and creates an auxiliary device 26 * object for each of them. In particular, it creates an auxiliary device 27 * object representing TPMI that can be bound by an auxiliary driver. 28 * 29 * This TPMI driver will bind to the TPMI auxiliary device object created 30 * by the Intel VSEC driver. 31 * 32 * The TPMI specification defines a PFS (PM Feature Structure) table. 33 * This table is present in the TPMI MMIO region. The starting address 34 * of PFS is derived from the tBIR (Bar Indicator Register) and "Address" 35 * field from the VSEC header. 36 * 37 * Each TPMI PM feature has one entry in the PFS with a unique TPMI 38 * ID and its access details. The TPMI driver creates device nodes 39 * for the supported PM features. 40 * 41 * The names of the devices created by the TPMI driver start with the 42 * "intel_vsec.tpmi-" prefix which is followed by a specific name of the 43 * given PM feature (for example, "intel_vsec.tpmi-rapl.0"). 44 * 45 * The device nodes are create by using interface "intel_vsec_add_aux()" 46 * provided by the Intel VSEC driver. 47 */ 48 49 #include <linux/align.h> 50 #include <linux/auxiliary_bus.h> 51 #include <linux/bitfield.h> 52 #include <linux/debugfs.h> 53 #include <linux/cleanup.h> 54 #include <linux/delay.h> 55 #include <linux/intel_tpmi.h> 56 #include <linux/intel_vsec.h> 57 #include <linux/io.h> 58 #include <linux/iopoll.h> 59 #include <linux/module.h> 60 #include <linux/notifier.h> 61 #include <linux/pci.h> 62 #include <linux/security.h> 63 #include <linux/sizes.h> 64 #include <linux/string_helpers.h> 65 66 /** 67 * struct intel_tpmi_pfs_entry - TPMI PM Feature Structure (PFS) entry 68 * @tpmi_id: TPMI feature identifier (what the feature is and its data format). 69 * @num_entries: Number of feature interface instances present in the PFS. 70 * This represents the maximum number of Power domains in the SoC. 71 * @entry_size: Interface instance entry size in 32-bit words. 72 * @cap_offset: Offset from the PM_Features base address to the base of the PM VSEC 73 * register bank in KB. 74 * @attribute: Feature attribute: 0=BIOS. 1=OS. 2-3=Reserved. 75 * @reserved: Bits for use in the future. 76 * 77 * Represents one TPMI feature entry data in the PFS retrieved as is 78 * from the hardware. 79 */ 80 struct intel_tpmi_pfs_entry { 81 u64 tpmi_id:8; 82 u64 num_entries:8; 83 u64 entry_size:16; 84 u64 cap_offset:16; 85 u64 attribute:2; 86 u64 reserved:14; 87 } __packed; 88 89 /** 90 * struct intel_tpmi_pm_feature - TPMI PM Feature information for a TPMI ID 91 * @pfs_header: PFS header retireved from the hardware. 92 * @vsec_offset: Starting MMIO address for this feature in bytes. Essentially 93 * this offset = "Address" from VSEC header + PFS Capability 94 * offset for this feature entry. 95 * @vsec_dev: Pointer to intel_vsec_device structure for this TPMI device 96 * 97 * Represents TPMI instance information for one TPMI ID. 98 */ 99 struct intel_tpmi_pm_feature { 100 struct intel_tpmi_pfs_entry pfs_header; 101 u64 vsec_offset; 102 struct intel_vsec_device *vsec_dev; 103 }; 104 105 /** 106 * struct intel_tpmi_info - TPMI information for all IDs in an instance 107 * @tpmi_features: Pointer to a list of TPMI feature instances 108 * @vsec_dev: Pointer to intel_vsec_device structure for this TPMI device 109 * @feature_count: Number of TPMI of TPMI instances pointed by tpmi_features 110 * @pfs_start: Start of PFS offset for the TPMI instances in this device 111 * @plat_info: Stores platform info which can be used by the client drivers 112 * @tpmi_control_mem: Memory mapped IO for getting control information 113 * @dbgfs_dir: debugfs entry pointer 114 * 115 * Stores the information for all TPMI devices enumerated from a single PCI device. 116 */ 117 struct intel_tpmi_info { 118 struct intel_tpmi_pm_feature *tpmi_features; 119 struct intel_vsec_device *vsec_dev; 120 int feature_count; 121 u64 pfs_start; 122 struct oobmsm_plat_info plat_info; 123 void __iomem *tpmi_control_mem; 124 struct dentry *dbgfs_dir; 125 }; 126 127 /** 128 * struct tpmi_info_header - CPU package ID to PCI device mapping information 129 * @fn: PCI function number 130 * @dev: PCI device number 131 * @bus: PCI bus number 132 * @pkg: CPU Package id 133 * @segment: PCI segment id 134 * @partition: Package Partition id 135 * @cdie_mask: Bitmap of compute dies in the current partition 136 * @reserved: Reserved for future use 137 * @lock: When set to 1 the register is locked and becomes read-only 138 * until next reset. Not for use by the OS driver. 139 * 140 * The structure to read hardware provided mapping information. 141 */ 142 struct tpmi_info_header { 143 u64 fn:3; 144 u64 dev:5; 145 u64 bus:8; 146 u64 pkg:8; 147 u64 segment:8; 148 u64 partition:2; 149 u64 cdie_mask:16; 150 u64 reserved:13; 151 u64 lock:1; 152 } __packed; 153 154 /** 155 * struct tpmi_feature_state - Structure to read hardware state of a feature 156 * @enabled: Enable state of a feature, 1: enabled, 0: disabled 157 * @reserved_1: Reserved for future use 158 * @write_blocked: Writes are blocked means all write operations are ignored 159 * @read_blocked: Reads are blocked means will read 0xFFs 160 * @pcs_select: Interface used by out of band software, not used in OS 161 * @reserved_2: Reserved for future use 162 * @id: TPMI ID of the feature 163 * @reserved_3: Reserved for future use 164 * @locked: When set to 1, OS can't change this register. 165 * 166 * The structure is used to read hardware state of a TPMI feature. This 167 * information is used for debug and restricting operations for this feature. 168 */ 169 struct tpmi_feature_state { 170 u32 enabled:1; 171 u32 reserved_1:3; 172 u32 write_blocked:1; 173 u32 read_blocked:1; 174 u32 pcs_select:1; 175 u32 reserved_2:1; 176 u32 id:8; 177 u32 reserved_3:15; 178 u32 locked:1; 179 } __packed; 180 181 /* 182 * The size from hardware is in u32 units. This size is from a trusted hardware, 183 * but better to verify for pre silicon platforms. Set size to 0, when invalid. 184 */ 185 #define TPMI_GET_SINGLE_ENTRY_SIZE(pfs) \ 186 ({ \ 187 pfs->pfs_header.entry_size > SZ_1K ? 0 : pfs->pfs_header.entry_size << 2; \ 188 }) 189 190 /* Used during auxbus device creation */ 191 static DEFINE_IDA(intel_vsec_tpmi_ida); 192 193 static BLOCKING_NOTIFIER_HEAD(tpmi_notify_list); 194 195 int tpmi_register_notifier(struct notifier_block *nb) 196 { 197 return blocking_notifier_chain_register(&tpmi_notify_list, nb); 198 } 199 EXPORT_SYMBOL_NS_GPL(tpmi_register_notifier, "INTEL_TPMI"); 200 201 int tpmi_unregister_notifier(struct notifier_block *nb) 202 { 203 return blocking_notifier_chain_unregister(&tpmi_notify_list, nb); 204 } 205 EXPORT_SYMBOL_NS_GPL(tpmi_unregister_notifier, "INTEL_TPMI"); 206 207 struct oobmsm_plat_info *tpmi_get_platform_data(struct auxiliary_device *auxdev) 208 { 209 struct intel_vsec_device *vsec_dev = auxdev_to_ivdev(auxdev); 210 211 return vsec_dev->priv_data; 212 } 213 EXPORT_SYMBOL_NS_GPL(tpmi_get_platform_data, "INTEL_TPMI"); 214 215 int tpmi_get_resource_count(struct auxiliary_device *auxdev) 216 { 217 struct intel_vsec_device *vsec_dev = auxdev_to_ivdev(auxdev); 218 219 if (vsec_dev) 220 return vsec_dev->num_resources; 221 222 return 0; 223 } 224 EXPORT_SYMBOL_NS_GPL(tpmi_get_resource_count, "INTEL_TPMI"); 225 226 struct resource *tpmi_get_resource_at_index(struct auxiliary_device *auxdev, int index) 227 { 228 struct intel_vsec_device *vsec_dev = auxdev_to_ivdev(auxdev); 229 230 if (vsec_dev && index < vsec_dev->num_resources) 231 return &vsec_dev->resource[index]; 232 233 return NULL; 234 } 235 EXPORT_SYMBOL_NS_GPL(tpmi_get_resource_at_index, "INTEL_TPMI"); 236 237 /* TPMI Control Interface */ 238 239 #define TPMI_CONTROL_STATUS_OFFSET 0x00 240 #define TPMI_COMMAND_OFFSET 0x08 241 #define TMPI_CONTROL_DATA_VAL_OFFSET 0x0c 242 243 /* 244 * Spec is calling for max 1 seconds to get ownership at the worst 245 * case. Read at 10 ms timeouts and repeat up to 1 second. 246 */ 247 #define TPMI_CONTROL_TIMEOUT_US (10 * USEC_PER_MSEC) 248 #define TPMI_CONTROL_TIMEOUT_MAX_US (1 * USEC_PER_SEC) 249 250 #define TPMI_RB_TIMEOUT_US (10 * USEC_PER_MSEC) 251 #define TPMI_RB_TIMEOUT_MAX_US USEC_PER_SEC 252 253 /* TPMI Control status register defines */ 254 255 #define TPMI_CONTROL_STATUS_RB BIT_ULL(0) 256 257 #define TPMI_CONTROL_STATUS_OWNER GENMASK_ULL(5, 4) 258 #define TPMI_OWNER_NONE 0 259 #define TPMI_OWNER_IN_BAND 1 260 261 #define TPMI_CONTROL_STATUS_CPL BIT_ULL(6) 262 #define TPMI_CONTROL_STATUS_RESULT GENMASK_ULL(15, 8) 263 #define TPMI_CONTROL_STATUS_LEN GENMASK_ULL(31, 16) 264 265 #define TPMI_CMD_PKT_LEN 2 266 #define TPMI_CMD_STATUS_SUCCESS 0x40 267 268 /* TPMI command data registers */ 269 #define TMPI_CONTROL_DATA_CMD GENMASK_ULL(7, 0) 270 #define TPMI_CONTROL_DATA_VAL_FEATURE GENMASK_ULL(48, 40) 271 272 /* Command to send via control interface */ 273 #define TPMI_CONTROL_GET_STATE_CMD 0x10 274 275 #define TPMI_CONTROL_CMD_MASK GENMASK_ULL(48, 40) 276 277 #define TPMI_CMD_LEN_MASK GENMASK_ULL(18, 16) 278 279 /* Mutex to complete get feature status without interruption */ 280 static DEFINE_MUTEX(tpmi_dev_lock); 281 282 static int tpmi_wait_for_owner(struct intel_tpmi_info *tpmi_info, u8 owner) 283 { 284 u64 control; 285 286 return readq_poll_timeout(tpmi_info->tpmi_control_mem + TPMI_CONTROL_STATUS_OFFSET, 287 control, owner == FIELD_GET(TPMI_CONTROL_STATUS_OWNER, control), 288 TPMI_CONTROL_TIMEOUT_US, TPMI_CONTROL_TIMEOUT_MAX_US); 289 } 290 291 static int tpmi_read_feature_status(struct intel_tpmi_info *tpmi_info, int feature_id, 292 struct tpmi_feature_state *feature_state) 293 { 294 u64 control, data; 295 int ret; 296 297 if (!tpmi_info->tpmi_control_mem) 298 return -EFAULT; 299 300 mutex_lock(&tpmi_dev_lock); 301 302 /* Wait for owner bit set to 0 (none) */ 303 ret = tpmi_wait_for_owner(tpmi_info, TPMI_OWNER_NONE); 304 if (ret) 305 goto err_unlock; 306 307 /* set command id to 0x10 for TPMI_GET_STATE */ 308 data = FIELD_PREP(TMPI_CONTROL_DATA_CMD, TPMI_CONTROL_GET_STATE_CMD); 309 310 /* 32 bits for DATA offset and +8 for feature_id field */ 311 data |= FIELD_PREP(TPMI_CONTROL_DATA_VAL_FEATURE, feature_id); 312 313 /* Write at command offset for qword access */ 314 writeq(data, tpmi_info->tpmi_control_mem + TPMI_COMMAND_OFFSET); 315 316 /* Wait for owner bit set to in-band */ 317 ret = tpmi_wait_for_owner(tpmi_info, TPMI_OWNER_IN_BAND); 318 if (ret) 319 goto err_unlock; 320 321 /* Set Run Busy and packet length of 2 dwords */ 322 control = TPMI_CONTROL_STATUS_RB; 323 control |= FIELD_PREP(TPMI_CONTROL_STATUS_LEN, TPMI_CMD_PKT_LEN); 324 325 /* Write at status offset for qword access */ 326 writeq(control, tpmi_info->tpmi_control_mem + TPMI_CONTROL_STATUS_OFFSET); 327 328 /* Wait for Run Busy clear */ 329 ret = readq_poll_timeout(tpmi_info->tpmi_control_mem + TPMI_CONTROL_STATUS_OFFSET, 330 control, !(control & TPMI_CONTROL_STATUS_RB), 331 TPMI_RB_TIMEOUT_US, TPMI_RB_TIMEOUT_MAX_US); 332 if (ret) 333 goto done_proc; 334 335 control = FIELD_GET(TPMI_CONTROL_STATUS_RESULT, control); 336 if (control != TPMI_CMD_STATUS_SUCCESS) { 337 ret = -EBUSY; 338 goto done_proc; 339 } 340 341 /* Response is ready */ 342 memcpy_fromio(feature_state, tpmi_info->tpmi_control_mem + TMPI_CONTROL_DATA_VAL_OFFSET, 343 sizeof(*feature_state)); 344 345 ret = 0; 346 347 done_proc: 348 /* Set CPL "completion" bit */ 349 writeq(TPMI_CONTROL_STATUS_CPL, tpmi_info->tpmi_control_mem + TPMI_CONTROL_STATUS_OFFSET); 350 351 err_unlock: 352 mutex_unlock(&tpmi_dev_lock); 353 354 return ret; 355 } 356 357 int tpmi_get_feature_status(struct auxiliary_device *auxdev, 358 int feature_id, bool *read_blocked, bool *write_blocked) 359 { 360 struct intel_vsec_device *intel_vsec_dev = dev_to_ivdev(auxdev->dev.parent); 361 struct intel_tpmi_info *tpmi_info = auxiliary_get_drvdata(&intel_vsec_dev->auxdev); 362 struct tpmi_feature_state feature_state; 363 int ret; 364 365 ret = tpmi_read_feature_status(tpmi_info, feature_id, &feature_state); 366 if (ret) 367 return ret; 368 369 *read_blocked = feature_state.read_blocked; 370 *write_blocked = feature_state.write_blocked; 371 372 return 0; 373 } 374 EXPORT_SYMBOL_NS_GPL(tpmi_get_feature_status, "INTEL_TPMI"); 375 376 struct dentry *tpmi_get_debugfs_dir(struct auxiliary_device *auxdev) 377 { 378 struct intel_vsec_device *intel_vsec_dev = dev_to_ivdev(auxdev->dev.parent); 379 struct intel_tpmi_info *tpmi_info = auxiliary_get_drvdata(&intel_vsec_dev->auxdev); 380 381 return tpmi_info->dbgfs_dir; 382 } 383 EXPORT_SYMBOL_NS_GPL(tpmi_get_debugfs_dir, "INTEL_TPMI"); 384 385 static int tpmi_pfs_dbg_show(struct seq_file *s, void *unused) 386 { 387 struct intel_tpmi_info *tpmi_info = s->private; 388 int locked, disabled, read_blocked, write_blocked; 389 struct tpmi_feature_state feature_state; 390 struct intel_tpmi_pm_feature *pfs; 391 int ret, i; 392 393 394 seq_printf(s, "tpmi PFS start offset 0x:%llx\n", tpmi_info->pfs_start); 395 seq_puts(s, "tpmi_id\t\tentries\t\tsize\t\tcap_offset\tattribute\tvsec_offset\tlocked\tdisabled\tread_blocked\twrite_blocked\n"); 396 for (i = 0; i < tpmi_info->feature_count; ++i) { 397 pfs = &tpmi_info->tpmi_features[i]; 398 ret = tpmi_read_feature_status(tpmi_info, pfs->pfs_header.tpmi_id, &feature_state); 399 if (ret) { 400 locked = 'U'; 401 disabled = 'U'; 402 read_blocked = 'U'; 403 write_blocked = 'U'; 404 } else { 405 disabled = feature_state.enabled ? 'N' : 'Y'; 406 locked = feature_state.locked ? 'Y' : 'N'; 407 read_blocked = feature_state.read_blocked ? 'Y' : 'N'; 408 write_blocked = feature_state.write_blocked ? 'Y' : 'N'; 409 } 410 seq_printf(s, "0x%02x\t\t0x%02x\t\t0x%04x\t\t0x%04x\t\t0x%02x\t\t0x%016llx\t%c\t%c\t\t%c\t\t%c\n", 411 pfs->pfs_header.tpmi_id, pfs->pfs_header.num_entries, 412 pfs->pfs_header.entry_size, pfs->pfs_header.cap_offset, 413 pfs->pfs_header.attribute, pfs->vsec_offset, locked, disabled, 414 read_blocked, write_blocked); 415 } 416 417 return 0; 418 } 419 DEFINE_SHOW_ATTRIBUTE(tpmi_pfs_dbg); 420 421 #define MEM_DUMP_COLUMN_COUNT 8 422 423 static int tpmi_mem_dump_show(struct seq_file *s, void *unused) 424 { 425 size_t row_size = MEM_DUMP_COLUMN_COUNT * sizeof(u32); 426 struct intel_tpmi_pm_feature *pfs = s->private; 427 int count, ret = 0; 428 void __iomem *mem; 429 u32 size; 430 u64 off; 431 u8 *buffer; 432 433 size = TPMI_GET_SINGLE_ENTRY_SIZE(pfs); 434 if (!size) 435 return -EIO; 436 437 buffer = kmalloc(size, GFP_KERNEL); 438 if (!buffer) 439 return -ENOMEM; 440 441 off = pfs->vsec_offset; 442 443 mutex_lock(&tpmi_dev_lock); 444 445 for (count = 0; count < pfs->pfs_header.num_entries; ++count) { 446 seq_printf(s, "TPMI Instance:%d offset:0x%llx\n", count, off); 447 448 mem = ioremap(off, size); 449 if (!mem) { 450 ret = -ENOMEM; 451 break; 452 } 453 454 memcpy_fromio(buffer, mem, size); 455 456 seq_hex_dump(s, " ", DUMP_PREFIX_OFFSET, row_size, sizeof(u32), buffer, size, 457 false); 458 459 iounmap(mem); 460 461 off += size; 462 } 463 464 mutex_unlock(&tpmi_dev_lock); 465 466 kfree(buffer); 467 468 return ret; 469 } 470 DEFINE_SHOW_ATTRIBUTE(tpmi_mem_dump); 471 472 static ssize_t mem_write(struct file *file, const char __user *userbuf, size_t len, loff_t *ppos) 473 { 474 struct seq_file *m = file->private_data; 475 struct intel_tpmi_pm_feature *pfs = m->private; 476 u32 addr, value, punit, size; 477 u32 num_elems; 478 void __iomem *mem; 479 int ret; 480 481 size = TPMI_GET_SINGLE_ENTRY_SIZE(pfs); 482 if (!size) 483 return -EIO; 484 485 u32 *array __free(kfree) = NULL; 486 ret = parse_int_array_user(userbuf, len, (int **)&array); 487 if (ret < 0) 488 return ret; 489 490 num_elems = *array; 491 if (num_elems != 3) 492 return -EINVAL; 493 494 punit = array[1]; 495 addr = array[2]; 496 value = array[3]; 497 498 if (!IS_ALIGNED(addr, sizeof(u32))) 499 return -EINVAL; 500 501 if (punit >= pfs->pfs_header.num_entries) 502 return -EINVAL; 503 504 if (addr >= size) 505 return -EINVAL; 506 507 guard(mutex)(&tpmi_dev_lock); 508 509 mem = ioremap(pfs->vsec_offset + punit * size, size); 510 if (!mem) 511 return -ENOMEM; 512 513 writel(value, mem + addr); 514 515 iounmap(mem); 516 517 return len; 518 } 519 520 static int mem_write_show(struct seq_file *s, void *unused) 521 { 522 return 0; 523 } 524 525 static int mem_write_open(struct inode *inode, struct file *file) 526 { 527 return single_open(file, mem_write_show, inode->i_private); 528 } 529 530 static const struct file_operations mem_write_ops = { 531 .open = mem_write_open, 532 .read = seq_read, 533 .write = mem_write, 534 .llseek = seq_lseek, 535 .release = single_release, 536 }; 537 538 #define tpmi_to_dev(info) ((info)->vsec_dev->dev) 539 540 static void tpmi_dbgfs_register(struct intel_tpmi_info *tpmi_info) 541 { 542 char name[64]; 543 int i; 544 545 snprintf(name, sizeof(name), "tpmi-%s", dev_name(tpmi_to_dev(tpmi_info))); 546 tpmi_info->dbgfs_dir = debugfs_create_dir(name, NULL); 547 548 debugfs_create_file("pfs_dump", 0444, tpmi_info->dbgfs_dir, tpmi_info, &tpmi_pfs_dbg_fops); 549 550 for (i = 0; i < tpmi_info->feature_count; ++i) { 551 struct intel_tpmi_pm_feature *pfs; 552 struct dentry *dir; 553 554 pfs = &tpmi_info->tpmi_features[i]; 555 snprintf(name, sizeof(name), "tpmi-id-%02x", pfs->pfs_header.tpmi_id); 556 dir = debugfs_create_dir(name, tpmi_info->dbgfs_dir); 557 558 debugfs_create_file("mem_dump", 0444, dir, pfs, &tpmi_mem_dump_fops); 559 debugfs_create_file("mem_write", 0644, dir, pfs, &mem_write_ops); 560 } 561 } 562 563 static void tpmi_set_control_base(struct auxiliary_device *auxdev, 564 struct intel_tpmi_info *tpmi_info, 565 struct intel_tpmi_pm_feature *pfs) 566 { 567 void __iomem *mem; 568 u32 size; 569 570 size = TPMI_GET_SINGLE_ENTRY_SIZE(pfs); 571 if (!size) 572 return; 573 574 mem = devm_ioremap(&auxdev->dev, pfs->vsec_offset, size); 575 if (!mem) 576 return; 577 578 /* mem is pointing to TPMI CONTROL base */ 579 tpmi_info->tpmi_control_mem = mem; 580 } 581 582 static const char *intel_tpmi_name(enum intel_tpmi_id id) 583 { 584 switch (id) { 585 case TPMI_ID_RAPL: 586 return "rapl"; 587 case TPMI_ID_PEM: 588 return "pem"; 589 case TPMI_ID_UNCORE: 590 return "uncore"; 591 case TPMI_ID_SST: 592 return "sst"; 593 case TPMI_ID_PLR: 594 return "plr"; 595 default: 596 return NULL; 597 } 598 } 599 600 /* String Length for tpmi-"feature_name(upto 8 bytes)" */ 601 #define TPMI_FEATURE_NAME_LEN 14 602 603 static int tpmi_create_device(struct intel_tpmi_info *tpmi_info, 604 struct intel_tpmi_pm_feature *pfs, 605 u64 pfs_start) 606 { 607 struct intel_vsec_device *vsec_dev = tpmi_info->vsec_dev; 608 char feature_id_name[TPMI_FEATURE_NAME_LEN]; 609 struct intel_vsec_device *feature_vsec_dev; 610 struct tpmi_feature_state feature_state; 611 struct resource *res, *tmp; 612 const char *name; 613 int i, ret; 614 615 ret = tpmi_read_feature_status(tpmi_info, pfs->pfs_header.tpmi_id, &feature_state); 616 if (ret) 617 return ret; 618 619 /* 620 * If not enabled, continue to look at other features in the PFS, so return -EOPNOTSUPP. 621 * This will not cause failure of loading of this driver. 622 */ 623 if (!feature_state.enabled) 624 return -EOPNOTSUPP; 625 626 name = intel_tpmi_name(pfs->pfs_header.tpmi_id); 627 if (!name) 628 return -EOPNOTSUPP; 629 630 feature_vsec_dev = kzalloc_flex(*feature_vsec_dev, resource, pfs->pfs_header.num_entries); 631 if (!feature_vsec_dev) 632 return -ENOMEM; 633 634 feature_vsec_dev->num_resources = pfs->pfs_header.num_entries; 635 res = feature_vsec_dev->resource; 636 637 snprintf(feature_id_name, sizeof(feature_id_name), "tpmi-%s", name); 638 639 for (i = 0, tmp = res; i < pfs->pfs_header.num_entries; i++, tmp++) { 640 u64 entry_size_bytes = pfs->pfs_header.entry_size * sizeof(u32); 641 642 tmp->start = pfs->vsec_offset + entry_size_bytes * i; 643 tmp->end = tmp->start + entry_size_bytes - 1; 644 tmp->flags = IORESOURCE_MEM; 645 } 646 647 feature_vsec_dev->dev = vsec_dev->dev; 648 feature_vsec_dev->priv_data = &tpmi_info->plat_info; 649 feature_vsec_dev->priv_data_size = sizeof(tpmi_info->plat_info); 650 feature_vsec_dev->ida = &intel_vsec_tpmi_ida; 651 652 /* 653 * intel_vsec_add_aux() is resource managed, no explicit 654 * delete is required on error or on module unload. 655 * feature_vsec_dev and res memory are also freed as part of 656 * device deletion. 657 */ 658 return intel_vsec_add_aux(&vsec_dev->auxdev.dev, 659 feature_vsec_dev, feature_id_name); 660 } 661 662 static int tpmi_create_devices(struct intel_tpmi_info *tpmi_info) 663 { 664 struct intel_vsec_device *vsec_dev = tpmi_info->vsec_dev; 665 int ret, i; 666 667 for (i = 0; i < vsec_dev->num_resources; i++) { 668 ret = tpmi_create_device(tpmi_info, &tpmi_info->tpmi_features[i], 669 tpmi_info->pfs_start); 670 /* 671 * Fail, if the supported features fails to create device, 672 * otherwise, continue. Even if one device failed to create, 673 * fail the loading of driver. Since intel_vsec_add_aux() 674 * is resource managed, no clean up is required for the 675 * successfully created devices. 676 */ 677 if (ret && ret != -EOPNOTSUPP) 678 return ret; 679 } 680 681 return 0; 682 } 683 684 #define TPMI_INFO_BUS_INFO_OFFSET 0x08 685 #define TPMI_INFO_MAJOR_VERSION 0x00 686 #define TPMI_INFO_MINOR_VERSION 0x02 687 688 static int tpmi_process_info(struct intel_tpmi_info *tpmi_info, 689 struct intel_tpmi_pm_feature *pfs) 690 { 691 struct tpmi_info_header header; 692 void __iomem *info_mem; 693 u64 feature_header; 694 int ret = 0; 695 696 info_mem = ioremap(pfs->vsec_offset, pfs->pfs_header.entry_size * sizeof(u32)); 697 if (!info_mem) 698 return -ENOMEM; 699 700 feature_header = readq(info_mem); 701 if (TPMI_MAJOR_VERSION(feature_header) != TPMI_INFO_MAJOR_VERSION) { 702 ret = -ENODEV; 703 goto error_info_header; 704 } 705 706 memcpy_fromio(&header, info_mem + TPMI_INFO_BUS_INFO_OFFSET, sizeof(header)); 707 708 tpmi_info->plat_info.package_id = header.pkg; 709 tpmi_info->plat_info.bus_number = header.bus; 710 tpmi_info->plat_info.device_number = header.dev; 711 tpmi_info->plat_info.function_number = header.fn; 712 713 if (TPMI_MINOR_VERSION(feature_header) >= TPMI_INFO_MINOR_VERSION) { 714 tpmi_info->plat_info.cdie_mask = header.cdie_mask; 715 tpmi_info->plat_info.partition = header.partition; 716 tpmi_info->plat_info.segment = header.segment; 717 } 718 719 error_info_header: 720 iounmap(info_mem); 721 722 return ret; 723 } 724 725 static int tpmi_fetch_pfs_header(struct intel_tpmi_pm_feature *pfs, u64 start, int size) 726 { 727 void __iomem *pfs_mem; 728 729 pfs_mem = ioremap(start, size); 730 if (!pfs_mem) 731 return -ENOMEM; 732 733 memcpy_fromio(&pfs->pfs_header, pfs_mem, sizeof(pfs->pfs_header)); 734 735 iounmap(pfs_mem); 736 737 return 0; 738 } 739 740 #define TPMI_CAP_OFFSET_UNIT 1024 741 742 static int intel_vsec_tpmi_init(struct auxiliary_device *auxdev) 743 { 744 struct intel_vsec_device *vsec_dev = auxdev_to_ivdev(auxdev); 745 struct pci_dev *pci_dev = to_pci_dev(vsec_dev->dev); 746 struct intel_tpmi_info *tpmi_info; 747 u64 pfs_start = 0; 748 int ret, i; 749 750 tpmi_info = devm_kzalloc(&auxdev->dev, sizeof(*tpmi_info), GFP_KERNEL); 751 if (!tpmi_info) 752 return -ENOMEM; 753 754 tpmi_info->vsec_dev = vsec_dev; 755 tpmi_info->feature_count = vsec_dev->num_resources; 756 tpmi_info->plat_info.bus_number = pci_dev->bus->number; 757 758 tpmi_info->tpmi_features = devm_kcalloc(&auxdev->dev, vsec_dev->num_resources, 759 sizeof(*tpmi_info->tpmi_features), 760 GFP_KERNEL); 761 if (!tpmi_info->tpmi_features) 762 return -ENOMEM; 763 764 for (i = 0; i < vsec_dev->num_resources; i++) { 765 struct intel_tpmi_pm_feature *pfs; 766 struct resource *res; 767 u64 res_start; 768 int size, ret; 769 770 pfs = &tpmi_info->tpmi_features[i]; 771 pfs->vsec_dev = vsec_dev; 772 773 res = &vsec_dev->resource[i]; 774 if (!res) 775 continue; 776 777 res_start = res->start; 778 size = resource_size(res); 779 if (size < 0) 780 continue; 781 782 ret = tpmi_fetch_pfs_header(pfs, res_start, size); 783 if (ret) 784 continue; 785 786 if (!pfs_start) 787 pfs_start = res_start; 788 789 pfs->vsec_offset = pfs_start + pfs->pfs_header.cap_offset * TPMI_CAP_OFFSET_UNIT; 790 791 /* 792 * Process TPMI_INFO to get PCI device to CPU package ID. 793 * Device nodes for TPMI features are not created in this 794 * for loop. So, the mapping information will be available 795 * when actual device nodes created outside this 796 * loop via tpmi_create_devices(). 797 */ 798 if (pfs->pfs_header.tpmi_id == TPMI_INFO_ID) { 799 ret = tpmi_process_info(tpmi_info, pfs); 800 if (ret) 801 return ret; 802 803 ret = intel_vsec_set_mapping(&tpmi_info->plat_info, vsec_dev); 804 if (ret) 805 return ret; 806 } 807 808 if (pfs->pfs_header.tpmi_id == TPMI_CONTROL_ID) 809 tpmi_set_control_base(auxdev, tpmi_info, pfs); 810 } 811 812 tpmi_info->pfs_start = pfs_start; 813 814 auxiliary_set_drvdata(auxdev, tpmi_info); 815 816 /* 817 * Allow debugfs when security policy allows. Everything this debugfs 818 * interface provides, can also be done via /dev/mem access. If 819 * /dev/mem interface is locked, don't allow debugfs to present any 820 * information. Also check for CAP_SYS_RAWIO as /dev/mem interface. 821 */ 822 if (!security_locked_down(LOCKDOWN_DEV_MEM) && capable(CAP_SYS_RAWIO)) 823 tpmi_dbgfs_register(tpmi_info); 824 825 ret = tpmi_create_devices(tpmi_info); 826 if (ret) { 827 debugfs_remove_recursive(tpmi_info->dbgfs_dir); 828 return ret; 829 } 830 831 blocking_notifier_call_chain(&tpmi_notify_list, TPMI_CORE_INIT, auxdev); 832 833 return 0; 834 } 835 836 static int tpmi_probe(struct auxiliary_device *auxdev, 837 const struct auxiliary_device_id *id) 838 { 839 return intel_vsec_tpmi_init(auxdev); 840 } 841 842 static void tpmi_remove(struct auxiliary_device *auxdev) 843 { 844 struct intel_tpmi_info *tpmi_info = auxiliary_get_drvdata(auxdev); 845 846 blocking_notifier_call_chain(&tpmi_notify_list, TPMI_CORE_EXIT, auxdev); 847 848 debugfs_remove_recursive(tpmi_info->dbgfs_dir); 849 } 850 851 static const struct auxiliary_device_id tpmi_id_table[] = { 852 { .name = "intel_vsec.tpmi" }, 853 {} 854 }; 855 MODULE_DEVICE_TABLE(auxiliary, tpmi_id_table); 856 857 static struct auxiliary_driver tpmi_aux_driver = { 858 .id_table = tpmi_id_table, 859 .probe = tpmi_probe, 860 .remove = tpmi_remove, 861 }; 862 863 module_auxiliary_driver(tpmi_aux_driver); 864 865 MODULE_IMPORT_NS("INTEL_VSEC"); 866 MODULE_DESCRIPTION("Intel TPMI enumeration module"); 867 MODULE_LICENSE("GPL"); 868