1 // SPDX-License-Identifier: GPL-2.0 2 /* 3 * Copyright (C) 2018 Cadence Design Systems Inc. 4 * 5 * Author: Boris Brezillon <boris.brezillon@bootlin.com> 6 */ 7 8 #include <linux/atomic.h> 9 #include <linux/bug.h> 10 #include <linux/device.h> 11 #include <linux/dma-mapping.h> 12 #include <linux/err.h> 13 #include <linux/export.h> 14 #include <linux/kernel.h> 15 #include <linux/list.h> 16 #include <linux/of.h> 17 #include <linux/pm_runtime.h> 18 #include <linux/slab.h> 19 #include <linux/spinlock.h> 20 #include <linux/workqueue.h> 21 22 #include "internals.h" 23 24 static DEFINE_IDR(i3c_bus_idr); 25 static DEFINE_MUTEX(i3c_core_lock); 26 static int __i3c_first_dynamic_bus_num; 27 static BLOCKING_NOTIFIER_HEAD(i3c_bus_notifier); 28 29 /** 30 * i3c_bus_maintenance_lock - Lock the bus for a maintenance operation 31 * @bus: I3C bus to take the lock on 32 * 33 * This function takes the bus lock so that no other operations can occur on 34 * the bus. This is needed for all kind of bus maintenance operation, like 35 * - enabling/disabling slave events 36 * - re-triggering DAA 37 * - changing the dynamic address of a device 38 * - relinquishing mastership 39 * - ... 40 * 41 * The reason for this kind of locking is that we don't want drivers and core 42 * logic to rely on I3C device information that could be changed behind their 43 * back. 44 */ 45 static void i3c_bus_maintenance_lock(struct i3c_bus *bus) 46 { 47 down_write(&bus->lock); 48 } 49 50 /** 51 * i3c_bus_maintenance_unlock - Release the bus lock after a maintenance 52 * operation 53 * @bus: I3C bus to release the lock on 54 * 55 * Should be called when the bus maintenance operation is done. See 56 * i3c_bus_maintenance_lock() for more details on what these maintenance 57 * operations are. 58 */ 59 static void i3c_bus_maintenance_unlock(struct i3c_bus *bus) 60 { 61 up_write(&bus->lock); 62 } 63 64 /** 65 * i3c_bus_normaluse_lock - Lock the bus for a normal operation 66 * @bus: I3C bus to take the lock on 67 * 68 * This function takes the bus lock for any operation that is not a maintenance 69 * operation (see i3c_bus_maintenance_lock() for a non-exhaustive list of 70 * maintenance operations). Basically all communications with I3C devices are 71 * normal operations (HDR, SDR transfers or CCC commands that do not change bus 72 * state or I3C dynamic address). 73 * 74 * Note that this lock is not guaranteeing serialization of normal operations. 75 * In other words, transfer requests passed to the I3C master can be submitted 76 * in parallel and I3C master drivers have to use their own locking to make 77 * sure two different communications are not inter-mixed, or access to the 78 * output/input queue is not done while the engine is busy. 79 */ 80 void i3c_bus_normaluse_lock(struct i3c_bus *bus) 81 { 82 down_read(&bus->lock); 83 } 84 85 /** 86 * i3c_bus_normaluse_unlock - Release the bus lock after a normal operation 87 * @bus: I3C bus to release the lock on 88 * 89 * Should be called when a normal operation is done. See 90 * i3c_bus_normaluse_lock() for more details on what these normal operations 91 * are. 92 */ 93 void i3c_bus_normaluse_unlock(struct i3c_bus *bus) 94 { 95 up_read(&bus->lock); 96 } 97 98 static struct i3c_master_controller * 99 i3c_bus_to_i3c_master(struct i3c_bus *i3cbus) 100 { 101 return container_of(i3cbus, struct i3c_master_controller, bus); 102 } 103 104 static struct i3c_master_controller *dev_to_i3cmaster(struct device *dev) 105 { 106 return container_of(dev, struct i3c_master_controller, dev); 107 } 108 109 static int __must_check i3c_master_rpm_get(struct i3c_master_controller *master) 110 { 111 int ret = master->rpm_allowed ? pm_runtime_resume_and_get(master->dev.parent) : 0; 112 113 if (ret < 0) { 114 dev_err(master->dev.parent, "runtime resume failed, error %d\n", ret); 115 return ret; 116 } 117 return 0; 118 } 119 120 static void i3c_master_rpm_put(struct i3c_master_controller *master) 121 { 122 if (master->rpm_allowed) 123 pm_runtime_put_autosuspend(master->dev.parent); 124 } 125 126 int i3c_bus_rpm_get(struct i3c_bus *bus) 127 { 128 return i3c_master_rpm_get(i3c_bus_to_i3c_master(bus)); 129 } 130 131 void i3c_bus_rpm_put(struct i3c_bus *bus) 132 { 133 i3c_master_rpm_put(i3c_bus_to_i3c_master(bus)); 134 } 135 136 bool i3c_bus_rpm_ibi_allowed(struct i3c_bus *bus) 137 { 138 return i3c_bus_to_i3c_master(bus)->rpm_ibi_allowed; 139 } 140 141 static const struct device_type i3c_device_type; 142 143 static struct i3c_bus *dev_to_i3cbus(struct device *dev) 144 { 145 struct i3c_master_controller *master; 146 147 if (dev->type == &i3c_device_type) 148 return dev_to_i3cdev(dev)->bus; 149 150 master = dev_to_i3cmaster(dev); 151 152 return &master->bus; 153 } 154 155 static struct i3c_dev_desc *dev_to_i3cdesc(struct device *dev) 156 { 157 struct i3c_master_controller *master; 158 159 if (dev->type == &i3c_device_type) 160 return dev_to_i3cdev(dev)->desc; 161 162 master = dev_to_i3cmaster(dev); 163 164 return master->this; 165 } 166 167 static ssize_t bcr_show(struct device *dev, 168 struct device_attribute *da, 169 char *buf) 170 { 171 struct i3c_bus *bus = dev_to_i3cbus(dev); 172 struct i3c_dev_desc *desc; 173 ssize_t ret; 174 175 i3c_bus_normaluse_lock(bus); 176 desc = dev_to_i3cdesc(dev); 177 ret = sysfs_emit(buf, "0x%02x\n", desc->info.bcr); 178 i3c_bus_normaluse_unlock(bus); 179 180 return ret; 181 } 182 static DEVICE_ATTR_RO(bcr); 183 184 static ssize_t dcr_show(struct device *dev, 185 struct device_attribute *da, 186 char *buf) 187 { 188 struct i3c_bus *bus = dev_to_i3cbus(dev); 189 struct i3c_dev_desc *desc; 190 ssize_t ret; 191 192 i3c_bus_normaluse_lock(bus); 193 desc = dev_to_i3cdesc(dev); 194 ret = sysfs_emit(buf, "0x%02x\n", desc->info.dcr); 195 i3c_bus_normaluse_unlock(bus); 196 197 return ret; 198 } 199 static DEVICE_ATTR_RO(dcr); 200 201 static ssize_t pid_show(struct device *dev, 202 struct device_attribute *da, 203 char *buf) 204 { 205 struct i3c_bus *bus = dev_to_i3cbus(dev); 206 struct i3c_dev_desc *desc; 207 ssize_t ret; 208 209 i3c_bus_normaluse_lock(bus); 210 desc = dev_to_i3cdesc(dev); 211 ret = sysfs_emit(buf, "%llx\n", desc->info.pid); 212 i3c_bus_normaluse_unlock(bus); 213 214 return ret; 215 } 216 static DEVICE_ATTR_RO(pid); 217 218 static ssize_t dynamic_address_show(struct device *dev, 219 struct device_attribute *da, 220 char *buf) 221 { 222 struct i3c_bus *bus = dev_to_i3cbus(dev); 223 struct i3c_dev_desc *desc; 224 ssize_t ret; 225 226 i3c_bus_normaluse_lock(bus); 227 desc = dev_to_i3cdesc(dev); 228 ret = sysfs_emit(buf, "%02x\n", desc->info.dyn_addr); 229 i3c_bus_normaluse_unlock(bus); 230 231 return ret; 232 } 233 static DEVICE_ATTR_RO(dynamic_address); 234 235 static const char * const hdrcap_strings[] = { 236 "hdr-ddr", "hdr-tsp", "hdr-tsl", 237 }; 238 239 static ssize_t hdrcap_show(struct device *dev, 240 struct device_attribute *da, 241 char *buf) 242 { 243 struct i3c_bus *bus = dev_to_i3cbus(dev); 244 struct i3c_dev_desc *desc; 245 ssize_t offset = 0, ret; 246 unsigned long caps; 247 int mode; 248 249 i3c_bus_normaluse_lock(bus); 250 desc = dev_to_i3cdesc(dev); 251 caps = desc->info.hdr_cap; 252 for_each_set_bit(mode, &caps, 8) { 253 if (mode >= ARRAY_SIZE(hdrcap_strings)) 254 break; 255 256 if (!hdrcap_strings[mode]) 257 continue; 258 259 ret = sysfs_emit_at(buf, offset, offset ? " %s" : "%s", 260 hdrcap_strings[mode]); 261 if (ret < 0) 262 goto out; 263 264 offset += ret; 265 } 266 267 ret = sysfs_emit_at(buf, offset, "\n"); 268 if (ret < 0) 269 goto out; 270 271 ret = offset + ret; 272 273 out: 274 i3c_bus_normaluse_unlock(bus); 275 276 return ret; 277 } 278 static DEVICE_ATTR_RO(hdrcap); 279 280 static ssize_t modalias_show(struct device *dev, 281 struct device_attribute *da, char *buf) 282 { 283 struct i3c_device *i3c = dev_to_i3cdev(dev); 284 struct i3c_device_info devinfo; 285 u16 manuf, part, ext; 286 287 i3c_device_get_info(i3c, &devinfo); 288 manuf = I3C_PID_MANUF_ID(devinfo.pid); 289 part = I3C_PID_PART_ID(devinfo.pid); 290 ext = I3C_PID_EXTRA_INFO(devinfo.pid); 291 292 if (I3C_PID_RND_LOWER_32BITS(devinfo.pid)) 293 return sysfs_emit(buf, "i3c:dcr%02Xmanuf%04X\n", devinfo.dcr, 294 manuf); 295 296 return sysfs_emit(buf, "i3c:dcr%02Xmanuf%04Xpart%04Xext%04X\n", 297 devinfo.dcr, manuf, part, ext); 298 } 299 static DEVICE_ATTR_RO(modalias); 300 301 static struct attribute *i3c_device_attrs[] = { 302 &dev_attr_bcr.attr, 303 &dev_attr_dcr.attr, 304 &dev_attr_pid.attr, 305 &dev_attr_dynamic_address.attr, 306 &dev_attr_hdrcap.attr, 307 &dev_attr_modalias.attr, 308 NULL, 309 }; 310 ATTRIBUTE_GROUPS(i3c_device); 311 312 static int i3c_device_uevent(const struct device *dev, struct kobj_uevent_env *env) 313 { 314 const struct i3c_device *i3cdev = dev_to_i3cdev(dev); 315 struct i3c_device_info devinfo; 316 u16 manuf, part, ext; 317 318 if (i3cdev->desc) 319 devinfo = i3cdev->desc->info; 320 manuf = I3C_PID_MANUF_ID(devinfo.pid); 321 part = I3C_PID_PART_ID(devinfo.pid); 322 ext = I3C_PID_EXTRA_INFO(devinfo.pid); 323 324 if (I3C_PID_RND_LOWER_32BITS(devinfo.pid)) 325 return add_uevent_var(env, "MODALIAS=i3c:dcr%02Xmanuf%04X", 326 devinfo.dcr, manuf); 327 328 return add_uevent_var(env, 329 "MODALIAS=i3c:dcr%02Xmanuf%04Xpart%04Xext%04X", 330 devinfo.dcr, manuf, part, ext); 331 } 332 333 static const struct device_type i3c_device_type = { 334 .groups = i3c_device_groups, 335 .uevent = i3c_device_uevent, 336 }; 337 338 static int i3c_device_match(struct device *dev, const struct device_driver *drv) 339 { 340 struct i3c_device *i3cdev; 341 const struct i3c_driver *i3cdrv; 342 343 if (dev->type != &i3c_device_type) 344 return 0; 345 346 i3cdev = dev_to_i3cdev(dev); 347 i3cdrv = drv_to_i3cdrv(drv); 348 if (i3c_device_match_id(i3cdev, i3cdrv->id_table)) 349 return 1; 350 351 return 0; 352 } 353 354 static int i3c_device_probe(struct device *dev) 355 { 356 struct i3c_device *i3cdev = dev_to_i3cdev(dev); 357 struct i3c_driver *driver = drv_to_i3cdrv(dev->driver); 358 359 return driver->probe(i3cdev); 360 } 361 362 static void i3c_device_remove(struct device *dev) 363 { 364 struct i3c_device *i3cdev = dev_to_i3cdev(dev); 365 struct i3c_driver *driver = drv_to_i3cdrv(dev->driver); 366 367 if (driver->remove) 368 driver->remove(i3cdev); 369 } 370 371 static enum i3c_addr_slot_status 372 i3c_bus_get_addr_slot_status_mask(struct i3c_bus *bus, u16 addr, u32 mask) 373 { 374 unsigned long status; 375 int bitpos = addr * I3C_ADDR_SLOT_STATUS_BITS; 376 377 if (addr > I2C_MAX_ADDR) 378 return I3C_ADDR_SLOT_RSVD; 379 380 status = bus->addrslots[bitpos / BITS_PER_LONG]; 381 status >>= bitpos % BITS_PER_LONG; 382 383 return status & mask; 384 } 385 386 static enum i3c_addr_slot_status 387 i3c_bus_get_addr_slot_status(struct i3c_bus *bus, u16 addr) 388 { 389 return i3c_bus_get_addr_slot_status_mask(bus, addr, I3C_ADDR_SLOT_STATUS_MASK); 390 } 391 392 static void i3c_bus_set_addr_slot_status_mask(struct i3c_bus *bus, u16 addr, 393 enum i3c_addr_slot_status status, u32 mask) 394 { 395 int bitpos = addr * I3C_ADDR_SLOT_STATUS_BITS; 396 unsigned long *ptr; 397 398 if (addr > I2C_MAX_ADDR) 399 return; 400 401 ptr = bus->addrslots + (bitpos / BITS_PER_LONG); 402 *ptr &= ~((unsigned long)mask << (bitpos % BITS_PER_LONG)); 403 *ptr |= ((unsigned long)status & mask) << (bitpos % BITS_PER_LONG); 404 } 405 406 static void i3c_bus_set_addr_slot_status(struct i3c_bus *bus, u16 addr, 407 enum i3c_addr_slot_status status) 408 { 409 i3c_bus_set_addr_slot_status_mask(bus, addr, status, I3C_ADDR_SLOT_STATUS_MASK); 410 } 411 412 static bool i3c_bus_dev_addr_is_avail(struct i3c_bus *bus, u8 addr) 413 { 414 enum i3c_addr_slot_status status; 415 416 status = i3c_bus_get_addr_slot_status(bus, addr); 417 418 return status == I3C_ADDR_SLOT_FREE; 419 } 420 421 /* 422 * ┌────┬─────────────┬───┬─────────┬───┐ 423 * │S/Sr│ 7'h7E RnW=0 │ACK│ ENTDAA │ T ├────┐ 424 * └────┴─────────────┴───┴─────────┴───┘ │ 425 * ┌─────────────────────────────────────────┘ 426 * │ ┌──┬─────────────┬───┬─────────────────┬────────────────┬───┬─────────┐ 427 * └─►│Sr│7'h7E RnW=1 │ACK│48bit UID BCR DCR│Assign 7bit Addr│PAR│ ACK/NACK│ 428 * └──┴─────────────┴───┴─────────────────┴────────────────┴───┴─────────┘ 429 * Some master controllers (such as HCI) need to prepare the entire above transaction before 430 * sending it out to the I3C bus. This means that a 7-bit dynamic address needs to be allocated 431 * before knowing the target device's UID information. 432 * 433 * However, some I3C targets may request specific addresses (called as "init_dyn_addr"), which is 434 * typically specified by the DT-'s assigned-address property. Lower addresses having higher IBI 435 * priority. If it is available, i3c_bus_get_free_addr() preferably return a free address that is 436 * not in the list of desired addresses (called as "init_dyn_addr"). This allows the device with 437 * the "init_dyn_addr" to switch to its "init_dyn_addr" when it hot-joins the I3C bus. Otherwise, 438 * if the "init_dyn_addr" is already in use by another I3C device, the target device will not be 439 * able to switch to its desired address. 440 * 441 * If the previous step fails, fallback returning one of the remaining unassigned address, 442 * regardless of its state in the desired list. 443 */ 444 static int i3c_bus_get_free_addr(struct i3c_bus *bus, u8 start_addr) 445 { 446 enum i3c_addr_slot_status status; 447 u8 addr; 448 449 for (addr = start_addr; addr < I3C_MAX_ADDR; addr++) { 450 status = i3c_bus_get_addr_slot_status_mask(bus, addr, 451 I3C_ADDR_SLOT_EXT_STATUS_MASK); 452 if (status == I3C_ADDR_SLOT_FREE) 453 return addr; 454 } 455 456 for (addr = start_addr; addr < I3C_MAX_ADDR; addr++) { 457 status = i3c_bus_get_addr_slot_status_mask(bus, addr, 458 I3C_ADDR_SLOT_STATUS_MASK); 459 if (status == I3C_ADDR_SLOT_FREE) 460 return addr; 461 } 462 463 return -ENOMEM; 464 } 465 466 static void i3c_bus_init_addrslots(struct i3c_bus *bus) 467 { 468 int i; 469 470 /* Addresses 0 to 7 are reserved. */ 471 for (i = 0; i < 8; i++) 472 i3c_bus_set_addr_slot_status(bus, i, I3C_ADDR_SLOT_RSVD); 473 474 /* 475 * Reserve broadcast address and all addresses that might collide 476 * with the broadcast address when facing a single bit error. 477 */ 478 i3c_bus_set_addr_slot_status(bus, I3C_BROADCAST_ADDR, 479 I3C_ADDR_SLOT_RSVD); 480 for (i = 0; i < 7; i++) 481 i3c_bus_set_addr_slot_status(bus, I3C_BROADCAST_ADDR ^ BIT(i), 482 I3C_ADDR_SLOT_RSVD); 483 } 484 485 static void i3c_bus_cleanup(struct i3c_bus *i3cbus) 486 { 487 mutex_lock(&i3c_core_lock); 488 idr_remove(&i3c_bus_idr, i3cbus->id); 489 mutex_unlock(&i3c_core_lock); 490 } 491 492 static int i3c_bus_init(struct i3c_bus *i3cbus, struct device_node *np) 493 { 494 int ret, start, end, id = -1; 495 496 init_rwsem(&i3cbus->lock); 497 INIT_LIST_HEAD(&i3cbus->devs.i2c); 498 INIT_LIST_HEAD(&i3cbus->devs.i3c); 499 i3c_bus_init_addrslots(i3cbus); 500 i3cbus->mode = I3C_BUS_MODE_PURE; 501 502 if (np) 503 id = of_alias_get_id(np, "i3c"); 504 505 mutex_lock(&i3c_core_lock); 506 if (id >= 0) { 507 start = id; 508 end = start + 1; 509 } else { 510 start = __i3c_first_dynamic_bus_num; 511 end = 0; 512 } 513 514 ret = idr_alloc(&i3c_bus_idr, i3cbus, start, end, GFP_KERNEL); 515 mutex_unlock(&i3c_core_lock); 516 517 if (ret < 0) 518 return ret; 519 520 i3cbus->id = ret; 521 522 return 0; 523 } 524 525 void i3c_for_each_bus_locked(int (*fn)(struct i3c_bus *bus, void *data), 526 void *data) 527 { 528 struct i3c_bus *bus; 529 int id; 530 531 mutex_lock(&i3c_core_lock); 532 idr_for_each_entry(&i3c_bus_idr, bus, id) 533 fn(bus, data); 534 mutex_unlock(&i3c_core_lock); 535 } 536 EXPORT_SYMBOL_GPL(i3c_for_each_bus_locked); 537 538 int i3c_register_notifier(struct notifier_block *nb) 539 { 540 return blocking_notifier_chain_register(&i3c_bus_notifier, nb); 541 } 542 EXPORT_SYMBOL_GPL(i3c_register_notifier); 543 544 int i3c_unregister_notifier(struct notifier_block *nb) 545 { 546 return blocking_notifier_chain_unregister(&i3c_bus_notifier, nb); 547 } 548 EXPORT_SYMBOL_GPL(i3c_unregister_notifier); 549 550 static void i3c_bus_notify(struct i3c_bus *bus, unsigned int action) 551 { 552 blocking_notifier_call_chain(&i3c_bus_notifier, action, bus); 553 } 554 555 static const char * const i3c_bus_mode_strings[] = { 556 [I3C_BUS_MODE_PURE] = "pure", 557 [I3C_BUS_MODE_MIXED_FAST] = "mixed-fast", 558 [I3C_BUS_MODE_MIXED_LIMITED] = "mixed-limited", 559 [I3C_BUS_MODE_MIXED_SLOW] = "mixed-slow", 560 }; 561 562 static ssize_t mode_show(struct device *dev, 563 struct device_attribute *da, 564 char *buf) 565 { 566 struct i3c_bus *i3cbus = dev_to_i3cbus(dev); 567 ssize_t ret; 568 569 i3c_bus_normaluse_lock(i3cbus); 570 if (i3cbus->mode < 0 || 571 i3cbus->mode >= ARRAY_SIZE(i3c_bus_mode_strings) || 572 !i3c_bus_mode_strings[i3cbus->mode]) 573 ret = sysfs_emit(buf, "unknown\n"); 574 else 575 ret = sysfs_emit(buf, "%s\n", i3c_bus_mode_strings[i3cbus->mode]); 576 i3c_bus_normaluse_unlock(i3cbus); 577 578 return ret; 579 } 580 static DEVICE_ATTR_RO(mode); 581 582 static ssize_t current_master_show(struct device *dev, 583 struct device_attribute *da, 584 char *buf) 585 { 586 struct i3c_bus *i3cbus = dev_to_i3cbus(dev); 587 ssize_t ret; 588 589 i3c_bus_normaluse_lock(i3cbus); 590 ret = sysfs_emit(buf, "%d-%llx\n", i3cbus->id, 591 i3cbus->cur_master->info.pid); 592 i3c_bus_normaluse_unlock(i3cbus); 593 594 return ret; 595 } 596 static DEVICE_ATTR_RO(current_master); 597 598 static ssize_t i3c_scl_frequency_show(struct device *dev, 599 struct device_attribute *da, 600 char *buf) 601 { 602 struct i3c_bus *i3cbus = dev_to_i3cbus(dev); 603 ssize_t ret; 604 605 i3c_bus_normaluse_lock(i3cbus); 606 ret = sysfs_emit(buf, "%ld\n", i3cbus->scl_rate.i3c); 607 i3c_bus_normaluse_unlock(i3cbus); 608 609 return ret; 610 } 611 static DEVICE_ATTR_RO(i3c_scl_frequency); 612 613 static ssize_t i2c_scl_frequency_show(struct device *dev, 614 struct device_attribute *da, 615 char *buf) 616 { 617 struct i3c_bus *i3cbus = dev_to_i3cbus(dev); 618 ssize_t ret; 619 620 i3c_bus_normaluse_lock(i3cbus); 621 ret = sysfs_emit(buf, "%ld\n", i3cbus->scl_rate.i2c); 622 i3c_bus_normaluse_unlock(i3cbus); 623 624 return ret; 625 } 626 static DEVICE_ATTR_RO(i2c_scl_frequency); 627 628 static void i3c_master_hj_work_fn(struct work_struct *work) 629 { 630 struct i3c_master_controller *master = container_of(work, typeof(*master), hj_work); 631 632 if (!master->shutting_down) 633 i3c_master_do_daa(master); 634 } 635 636 static int i3c_set_hotjoin(struct i3c_master_controller *master, bool enable) 637 { 638 int ret; 639 640 if (!master || !master->ops) 641 return -EINVAL; 642 643 if (!master->ops->enable_hotjoin || !master->ops->disable_hotjoin) 644 return -EINVAL; 645 646 if (enable || master->rpm_ibi_allowed) { 647 ret = i3c_master_rpm_get(master); 648 if (ret) 649 return ret; 650 } 651 652 i3c_bus_maintenance_lock(&master->bus); 653 654 if (master->shutting_down) 655 ret = -ENODEV; 656 else if (enable) 657 ret = master->ops->enable_hotjoin(master); 658 else 659 ret = master->ops->disable_hotjoin(master); 660 661 if (!ret) 662 master->hotjoin = enable; 663 664 i3c_bus_maintenance_unlock(&master->bus); 665 666 if ((enable && ret) || (!enable && !ret) || master->rpm_ibi_allowed) 667 i3c_master_rpm_put(master); 668 669 return ret; 670 } 671 672 static ssize_t hotjoin_store(struct device *dev, struct device_attribute *attr, 673 const char *buf, size_t count) 674 { 675 struct i3c_bus *i3cbus = dev_to_i3cbus(dev); 676 int ret; 677 bool res; 678 679 if (!i3cbus->cur_master) 680 return -EINVAL; 681 682 if (kstrtobool(buf, &res)) 683 return -EINVAL; 684 685 ret = i3c_set_hotjoin(i3cbus->cur_master->common.master, res); 686 if (ret) 687 return ret; 688 689 return count; 690 } 691 692 /* 693 * i3c_master_enable_hotjoin - Enable hotjoin 694 * @master: I3C master object 695 * 696 * Return: a 0 in case of success, an negative error code otherwise. 697 */ 698 int i3c_master_enable_hotjoin(struct i3c_master_controller *master) 699 { 700 return i3c_set_hotjoin(master, true); 701 } 702 EXPORT_SYMBOL_GPL(i3c_master_enable_hotjoin); 703 704 /* 705 * i3c_master_disable_hotjoin - Disable hotjoin 706 * @master: I3C master object 707 * 708 * Return: a 0 in case of success, an negative error code otherwise. 709 */ 710 int i3c_master_disable_hotjoin(struct i3c_master_controller *master) 711 { 712 return i3c_set_hotjoin(master, false); 713 } 714 EXPORT_SYMBOL_GPL(i3c_master_disable_hotjoin); 715 716 /** 717 * i3c_master_queue_hotjoin - Queue DAA processing after a Hot-Join event 718 * @master: I3C master object 719 * 720 * Queue the hot-join worker on the master's workqueue. 721 */ 722 void i3c_master_queue_hotjoin(struct i3c_master_controller *master) 723 { 724 queue_work(master->wq, &master->hj_work); 725 } 726 EXPORT_SYMBOL_GPL(i3c_master_queue_hotjoin); 727 728 static ssize_t hotjoin_show(struct device *dev, struct device_attribute *da, char *buf) 729 { 730 struct i3c_bus *i3cbus = dev_to_i3cbus(dev); 731 ssize_t ret; 732 733 i3c_bus_normaluse_lock(i3cbus); 734 ret = sysfs_emit(buf, "%d\n", i3cbus->cur_master->common.master->hotjoin); 735 i3c_bus_normaluse_unlock(i3cbus); 736 737 return ret; 738 } 739 740 static DEVICE_ATTR_RW(hotjoin); 741 742 static ssize_t dev_nack_retry_count_show(struct device *dev, 743 struct device_attribute *attr, char *buf) 744 { 745 return sysfs_emit(buf, "%u\n", dev_to_i3cmaster(dev)->dev_nack_retry_count); 746 } 747 748 static ssize_t dev_nack_retry_count_store(struct device *dev, 749 struct device_attribute *attr, 750 const char *buf, size_t count) 751 { 752 struct i3c_bus *i3cbus = dev_to_i3cbus(dev); 753 struct i3c_master_controller *master = dev_to_i3cmaster(dev); 754 unsigned long val; 755 int ret; 756 757 ret = kstrtoul(buf, 0, &val); 758 if (ret) 759 return ret; 760 761 i3c_bus_maintenance_lock(i3cbus); 762 ret = master->ops->set_dev_nack_retry(master, val); 763 i3c_bus_maintenance_unlock(i3cbus); 764 765 if (ret) 766 return ret; 767 768 master->dev_nack_retry_count = val; 769 770 return count; 771 } 772 773 static DEVICE_ATTR_RW(dev_nack_retry_count); 774 775 static ssize_t do_daa_store(struct device *dev, 776 struct device_attribute *attr, 777 const char *buf, size_t count) 778 { 779 struct i3c_master_controller *master = dev_to_i3cmaster(dev); 780 bool val; 781 int ret; 782 783 if (kstrtobool(buf, &val)) 784 return -EINVAL; 785 786 if (!val) 787 return -EINVAL; 788 789 if (!master->init_done) 790 return -EAGAIN; 791 792 ret = i3c_master_do_daa(master); 793 if (ret) 794 return ret; 795 796 return count; 797 } 798 799 static DEVICE_ATTR_WO(do_daa); 800 801 static struct attribute *i3c_masterdev_attrs[] = { 802 &dev_attr_mode.attr, 803 &dev_attr_current_master.attr, 804 &dev_attr_i3c_scl_frequency.attr, 805 &dev_attr_i2c_scl_frequency.attr, 806 &dev_attr_bcr.attr, 807 &dev_attr_dcr.attr, 808 &dev_attr_pid.attr, 809 &dev_attr_dynamic_address.attr, 810 &dev_attr_hdrcap.attr, 811 &dev_attr_hotjoin.attr, 812 &dev_attr_do_daa.attr, 813 NULL, 814 }; 815 ATTRIBUTE_GROUPS(i3c_masterdev); 816 817 static void i3c_masterdev_release(struct device *dev) 818 { 819 struct i3c_master_controller *master = dev_to_i3cmaster(dev); 820 struct i3c_bus *bus = dev_to_i3cbus(dev); 821 822 if (master->wq) 823 destroy_workqueue(master->wq); 824 825 WARN_ON(!list_empty(&bus->devs.i2c) || !list_empty(&bus->devs.i3c)); 826 i3c_bus_cleanup(bus); 827 828 of_node_put(dev->of_node); 829 } 830 831 static const struct device_type i3c_masterdev_type = { 832 .groups = i3c_masterdev_groups, 833 }; 834 835 static void i3c_master_shutdown(struct i3c_master_controller *master) 836 { 837 i3c_bus_maintenance_lock(&master->bus); 838 master->shutting_down = true; 839 i3c_bus_maintenance_unlock(&master->bus); 840 841 cancel_work_sync(&master->hj_work); 842 } 843 844 static void i3c_device_shutdown(struct device *dev) 845 { 846 if (dev->type == &i3c_masterdev_type) 847 i3c_master_shutdown(dev_to_i3cmaster(dev)); 848 } 849 850 const struct bus_type i3c_bus_type = { 851 .name = "i3c", 852 .match = i3c_device_match, 853 .probe = i3c_device_probe, 854 .remove = i3c_device_remove, 855 .shutdown = i3c_device_shutdown, 856 }; 857 EXPORT_SYMBOL_GPL(i3c_bus_type); 858 859 static int i3c_bus_set_mode(struct i3c_bus *i3cbus, enum i3c_bus_mode mode, 860 unsigned long max_i2c_scl_rate) 861 { 862 struct i3c_master_controller *master = i3c_bus_to_i3c_master(i3cbus); 863 864 i3cbus->mode = mode; 865 866 switch (i3cbus->mode) { 867 case I3C_BUS_MODE_PURE: 868 if (!i3cbus->scl_rate.i3c) 869 i3cbus->scl_rate.i3c = I3C_BUS_I3C_SCL_TYP_RATE; 870 break; 871 case I3C_BUS_MODE_MIXED_FAST: 872 case I3C_BUS_MODE_MIXED_LIMITED: 873 if (!i3cbus->scl_rate.i3c) 874 i3cbus->scl_rate.i3c = I3C_BUS_I3C_SCL_TYP_RATE; 875 if (!i3cbus->scl_rate.i2c) 876 i3cbus->scl_rate.i2c = max_i2c_scl_rate; 877 break; 878 case I3C_BUS_MODE_MIXED_SLOW: 879 if (!i3cbus->scl_rate.i2c) 880 i3cbus->scl_rate.i2c = max_i2c_scl_rate; 881 if (!i3cbus->scl_rate.i3c || 882 i3cbus->scl_rate.i3c > i3cbus->scl_rate.i2c) 883 i3cbus->scl_rate.i3c = i3cbus->scl_rate.i2c; 884 break; 885 default: 886 return -EINVAL; 887 } 888 889 dev_dbg(&master->dev, "i2c-scl = %ld Hz i3c-scl = %ld Hz\n", 890 i3cbus->scl_rate.i2c, i3cbus->scl_rate.i3c); 891 892 /* 893 * I3C/I2C frequency may have been overridden, check that user-provided 894 * values are not exceeding max possible frequency. 895 */ 896 if (i3cbus->scl_rate.i3c > I3C_BUS_I3C_SCL_MAX_RATE || 897 i3cbus->scl_rate.i2c > I3C_BUS_I2C_FM_PLUS_SCL_MAX_RATE) 898 return -EINVAL; 899 900 return 0; 901 } 902 903 static struct i3c_master_controller * 904 i2c_adapter_to_i3c_master(struct i2c_adapter *adap) 905 { 906 return container_of(adap, struct i3c_master_controller, i2c); 907 } 908 909 static struct i2c_adapter * 910 i3c_master_to_i2c_adapter(struct i3c_master_controller *master) 911 { 912 return &master->i2c; 913 } 914 915 static void i3c_master_free_i2c_dev(struct i2c_dev_desc *dev) 916 { 917 kfree(dev); 918 } 919 920 static struct i2c_dev_desc * 921 i3c_master_alloc_i2c_dev(struct i3c_master_controller *master, 922 u16 addr, u8 lvr) 923 { 924 struct i2c_dev_desc *dev; 925 926 dev = kzalloc_obj(*dev); 927 if (!dev) 928 return ERR_PTR(-ENOMEM); 929 930 dev->common.master = master; 931 dev->addr = addr; 932 dev->lvr = lvr; 933 934 return dev; 935 } 936 937 static void *i3c_ccc_cmd_dest_init(struct i3c_ccc_cmd_dest *dest, u8 addr, 938 u16 payloadlen) 939 { 940 dest->addr = addr; 941 dest->payload.len = payloadlen; 942 if (payloadlen) 943 dest->payload.data = kzalloc(payloadlen, GFP_KERNEL); 944 else 945 dest->payload.data = NULL; 946 947 return dest->payload.data; 948 } 949 950 static void i3c_ccc_cmd_dest_cleanup(struct i3c_ccc_cmd_dest *dest) 951 { 952 kfree(dest->payload.data); 953 } 954 955 static void i3c_ccc_cmd_init(struct i3c_ccc_cmd *cmd, bool rnw, u8 id, 956 struct i3c_ccc_cmd_dest *dests, 957 unsigned int ndests) 958 { 959 cmd->rnw = rnw ? 1 : 0; 960 cmd->id = id; 961 cmd->dests = dests; 962 cmd->ndests = ndests; 963 cmd->err = I3C_ERROR_UNKNOWN; 964 } 965 966 /** 967 * i3c_master_send_ccc_cmd_locked() - send a CCC (Common Command Codes) 968 * @master: master used to send frames on the bus 969 * @cmd: command to send 970 * 971 * Return: 0 in case of success, or a negative error code otherwise. 972 * I3C Mx error codes are stored in cmd->err. 973 */ 974 static int i3c_master_send_ccc_cmd_locked(struct i3c_master_controller *master, 975 struct i3c_ccc_cmd *cmd) 976 { 977 if (!cmd || !master) 978 return -EINVAL; 979 980 if (WARN_ON(master->init_done && 981 !rwsem_is_locked(&master->bus.lock))) 982 return -EINVAL; 983 984 if (!master->ops->send_ccc_cmd) 985 return -EOPNOTSUPP; 986 987 if ((cmd->id & I3C_CCC_DIRECT) && (!cmd->dests || !cmd->ndests)) 988 return -EINVAL; 989 990 if (master->ops->supports_ccc_cmd && 991 !master->ops->supports_ccc_cmd(master, cmd)) 992 return -EOPNOTSUPP; 993 994 return master->ops->send_ccc_cmd(master, cmd); 995 } 996 997 static struct i2c_dev_desc * 998 i3c_master_find_i2c_dev_by_addr(const struct i3c_master_controller *master, 999 u16 addr) 1000 { 1001 struct i2c_dev_desc *dev; 1002 1003 i3c_bus_for_each_i2cdev(&master->bus, dev) { 1004 if (dev->addr == addr) 1005 return dev; 1006 } 1007 1008 return NULL; 1009 } 1010 1011 /** 1012 * i3c_master_get_free_addr() - get a free address on the bus 1013 * @master: I3C master object 1014 * @start_addr: where to start searching 1015 * 1016 * This function must be called with the bus lock held in write mode. 1017 * 1018 * Return: the first free address starting at @start_addr (included) or -ENOMEM 1019 * if there's no more address available. 1020 */ 1021 int i3c_master_get_free_addr(struct i3c_master_controller *master, 1022 u8 start_addr) 1023 { 1024 return i3c_bus_get_free_addr(&master->bus, start_addr); 1025 } 1026 EXPORT_SYMBOL_GPL(i3c_master_get_free_addr); 1027 1028 static void i3c_device_release(struct device *dev) 1029 { 1030 struct i3c_device *i3cdev = dev_to_i3cdev(dev); 1031 1032 WARN_ON(i3cdev->desc); 1033 1034 of_node_put(i3cdev->dev.of_node); 1035 kfree(i3cdev); 1036 } 1037 1038 static void i3c_master_free_i3c_dev(struct i3c_dev_desc *dev) 1039 { 1040 kfree(dev); 1041 } 1042 1043 static struct i3c_dev_desc * 1044 i3c_master_alloc_i3c_dev(struct i3c_master_controller *master, 1045 const struct i3c_device_info *info) 1046 { 1047 struct i3c_dev_desc *dev; 1048 1049 dev = kzalloc_obj(*dev); 1050 if (!dev) 1051 return ERR_PTR(-ENOMEM); 1052 1053 dev->common.master = master; 1054 dev->info = *info; 1055 mutex_init(&dev->ibi_lock); 1056 1057 return dev; 1058 } 1059 1060 static int i3c_master_rstdaa_locked(struct i3c_master_controller *master, 1061 u8 addr) 1062 { 1063 enum i3c_addr_slot_status addrstat; 1064 struct i3c_ccc_cmd_dest dest; 1065 struct i3c_ccc_cmd cmd; 1066 int ret; 1067 1068 if (!master) 1069 return -EINVAL; 1070 1071 addrstat = i3c_bus_get_addr_slot_status(&master->bus, addr); 1072 if (addr != I3C_BROADCAST_ADDR && addrstat != I3C_ADDR_SLOT_I3C_DEV) 1073 return -EINVAL; 1074 1075 i3c_ccc_cmd_dest_init(&dest, addr, 0); 1076 i3c_ccc_cmd_init(&cmd, false, 1077 I3C_CCC_RSTDAA(addr == I3C_BROADCAST_ADDR), 1078 &dest, 1); 1079 ret = i3c_master_send_ccc_cmd_locked(master, &cmd); 1080 i3c_ccc_cmd_dest_cleanup(&dest); 1081 1082 /* No active devices on the bus. */ 1083 if (ret && cmd.err == I3C_ERROR_M2) 1084 ret = 0; 1085 1086 return ret; 1087 } 1088 1089 /** 1090 * i3c_master_entdaa_locked() - start a DAA (Dynamic Address Assignment) 1091 * procedure 1092 * @master: master used to send frames on the bus 1093 * 1094 * Send a ENTDAA CCC command to start a DAA procedure. 1095 * 1096 * Note that this function only sends the ENTDAA CCC command, all the logic 1097 * behind dynamic address assignment has to be handled in the I3C master 1098 * driver. 1099 * 1100 * This function must be called with the bus lock held in write mode. 1101 * 1102 * Return: 0 in case of success, or a negative error code otherwise. 1103 */ 1104 int i3c_master_entdaa_locked(struct i3c_master_controller *master) 1105 { 1106 struct i3c_ccc_cmd_dest dest; 1107 struct i3c_ccc_cmd cmd; 1108 int ret; 1109 1110 i3c_ccc_cmd_dest_init(&dest, I3C_BROADCAST_ADDR, 0); 1111 i3c_ccc_cmd_init(&cmd, false, I3C_CCC_ENTDAA, &dest, 1); 1112 ret = i3c_master_send_ccc_cmd_locked(master, &cmd); 1113 i3c_ccc_cmd_dest_cleanup(&dest); 1114 1115 /* No active devices need an address. */ 1116 if (ret && cmd.err == I3C_ERROR_M2) 1117 ret = 0; 1118 1119 return ret; 1120 } 1121 EXPORT_SYMBOL_GPL(i3c_master_entdaa_locked); 1122 1123 static int i3c_master_enec_disec_locked(struct i3c_master_controller *master, 1124 u8 addr, bool enable, u8 evts, 1125 bool suppress_m2) 1126 { 1127 struct i3c_ccc_events *events; 1128 struct i3c_ccc_cmd_dest dest; 1129 struct i3c_ccc_cmd cmd; 1130 int ret; 1131 1132 events = i3c_ccc_cmd_dest_init(&dest, addr, sizeof(*events)); 1133 if (!events) 1134 return -ENOMEM; 1135 1136 events->events = evts; 1137 i3c_ccc_cmd_init(&cmd, false, 1138 enable ? 1139 I3C_CCC_ENEC(addr == I3C_BROADCAST_ADDR) : 1140 I3C_CCC_DISEC(addr == I3C_BROADCAST_ADDR), 1141 &dest, 1); 1142 ret = i3c_master_send_ccc_cmd_locked(master, &cmd); 1143 i3c_ccc_cmd_dest_cleanup(&dest); 1144 1145 if (suppress_m2 && ret && cmd.err == I3C_ERROR_M2) 1146 ret = 0; 1147 1148 return ret; 1149 } 1150 1151 /** 1152 * i3c_master_disec_locked() - send a DISEC CCC command 1153 * @master: master used to send frames on the bus 1154 * @addr: a valid I3C slave address or %I3C_BROADCAST_ADDR 1155 * @evts: events to disable 1156 * 1157 * Send a DISEC CCC command to disable some or all events coming from a 1158 * specific slave, or all devices if @addr is %I3C_BROADCAST_ADDR. 1159 * 1160 * This function must be called with the bus lock held in write mode. 1161 * 1162 * Return: 0 in case of success, or a negative error code otherwise. 1163 */ 1164 int i3c_master_disec_locked(struct i3c_master_controller *master, u8 addr, 1165 u8 evts) 1166 { 1167 return i3c_master_enec_disec_locked(master, addr, false, evts, false); 1168 } 1169 EXPORT_SYMBOL_GPL(i3c_master_disec_locked); 1170 1171 /** 1172 * i3c_master_enec_locked() - send an ENEC CCC command 1173 * @master: master used to send frames on the bus 1174 * @addr: a valid I3C slave address or %I3C_BROADCAST_ADDR 1175 * @evts: events to disable 1176 * 1177 * Sends an ENEC CCC command to enable some or all events coming from a 1178 * specific slave, or all devices if @addr is %I3C_BROADCAST_ADDR. 1179 * 1180 * This function must be called with the bus lock held in write mode. 1181 * 1182 * Return: 0 in case of success, or a negative error code otherwise. 1183 */ 1184 int i3c_master_enec_locked(struct i3c_master_controller *master, u8 addr, 1185 u8 evts) 1186 { 1187 return i3c_master_enec_disec_locked(master, addr, true, evts, false); 1188 } 1189 EXPORT_SYMBOL_GPL(i3c_master_enec_locked); 1190 1191 /** 1192 * i3c_master_defslvs_locked() - send a DEFSLVS CCC command 1193 * @master: master used to send frames on the bus 1194 * 1195 * Send a DEFSLVS CCC command containing all the devices known to the @master. 1196 * This is useful when you have secondary masters on the bus to propagate 1197 * device information. 1198 * 1199 * This should be called after all I3C devices have been discovered (in other 1200 * words, after the DAA procedure has finished) and instantiated in 1201 * &i3c_master_controller_ops->bus_init(). 1202 * It should also be called if a master ACKed an Hot-Join request and assigned 1203 * a dynamic address to the device joining the bus. 1204 * 1205 * This function must be called with the bus lock held in write mode. 1206 * 1207 * Return: 0 in case of success, or a negative error code otherwise. 1208 */ 1209 int i3c_master_defslvs_locked(struct i3c_master_controller *master) 1210 { 1211 struct i3c_ccc_defslvs *defslvs; 1212 struct i3c_ccc_dev_desc *desc; 1213 struct i3c_ccc_cmd_dest dest; 1214 struct i3c_dev_desc *i3cdev; 1215 struct i2c_dev_desc *i2cdev; 1216 struct i3c_ccc_cmd cmd; 1217 struct i3c_bus *bus; 1218 bool send = false; 1219 int ndevs = 0, ret; 1220 1221 if (!master) 1222 return -EINVAL; 1223 1224 bus = i3c_master_get_bus(master); 1225 i3c_bus_for_each_i3cdev(bus, i3cdev) { 1226 ndevs++; 1227 1228 if (i3cdev == master->this) 1229 continue; 1230 1231 if (I3C_BCR_DEVICE_ROLE(i3cdev->info.bcr) == 1232 I3C_BCR_I3C_MASTER) 1233 send = true; 1234 } 1235 1236 /* No other master on the bus, skip DEFSLVS. */ 1237 if (!send) 1238 return 0; 1239 1240 i3c_bus_for_each_i2cdev(bus, i2cdev) 1241 ndevs++; 1242 1243 defslvs = i3c_ccc_cmd_dest_init(&dest, I3C_BROADCAST_ADDR, 1244 struct_size(defslvs, slaves, 1245 ndevs - 1)); 1246 if (!defslvs) 1247 return -ENOMEM; 1248 1249 defslvs->count = ndevs; 1250 defslvs->master.bcr = master->this->info.bcr; 1251 defslvs->master.dcr = master->this->info.dcr; 1252 defslvs->master.dyn_addr = master->this->info.dyn_addr << 1; 1253 defslvs->master.static_addr = I3C_BROADCAST_ADDR << 1; 1254 1255 desc = defslvs->slaves; 1256 i3c_bus_for_each_i2cdev(bus, i2cdev) { 1257 desc->lvr = i2cdev->lvr; 1258 desc->static_addr = i2cdev->addr << 1; 1259 desc++; 1260 } 1261 1262 i3c_bus_for_each_i3cdev(bus, i3cdev) { 1263 /* Skip the I3C dev representing this master. */ 1264 if (i3cdev == master->this) 1265 continue; 1266 1267 desc->bcr = i3cdev->info.bcr; 1268 desc->dcr = i3cdev->info.dcr; 1269 desc->dyn_addr = i3cdev->info.dyn_addr << 1; 1270 desc->static_addr = i3cdev->info.static_addr << 1; 1271 desc++; 1272 } 1273 1274 i3c_ccc_cmd_init(&cmd, false, I3C_CCC_DEFSLVS, &dest, 1); 1275 ret = i3c_master_send_ccc_cmd_locked(master, &cmd); 1276 i3c_ccc_cmd_dest_cleanup(&dest); 1277 1278 return ret; 1279 } 1280 EXPORT_SYMBOL_GPL(i3c_master_defslvs_locked); 1281 1282 static int i3c_master_setda_locked(struct i3c_master_controller *master, 1283 u8 oldaddr, u8 newaddr, bool setdasa) 1284 { 1285 struct i3c_ccc_cmd_dest dest; 1286 struct i3c_ccc_setda *setda; 1287 struct i3c_ccc_cmd cmd; 1288 int ret; 1289 1290 if (!oldaddr || !newaddr) 1291 return -EINVAL; 1292 1293 setda = i3c_ccc_cmd_dest_init(&dest, oldaddr, sizeof(*setda)); 1294 if (!setda) 1295 return -ENOMEM; 1296 1297 setda->addr = newaddr << 1; 1298 i3c_ccc_cmd_init(&cmd, false, 1299 setdasa ? I3C_CCC_SETDASA : I3C_CCC_SETNEWDA, 1300 &dest, 1); 1301 ret = i3c_master_send_ccc_cmd_locked(master, &cmd); 1302 i3c_ccc_cmd_dest_cleanup(&dest); 1303 1304 return ret; 1305 } 1306 1307 static int i3c_master_setdasa_locked(struct i3c_master_controller *master, 1308 u8 static_addr, u8 dyn_addr) 1309 { 1310 return i3c_master_setda_locked(master, static_addr, dyn_addr, true); 1311 } 1312 1313 static int i3c_master_setnewda_locked(struct i3c_master_controller *master, 1314 u8 oldaddr, u8 newaddr) 1315 { 1316 return i3c_master_setda_locked(master, oldaddr, newaddr, false); 1317 } 1318 1319 static int i3c_master_getmrl_locked(struct i3c_master_controller *master, 1320 struct i3c_device_info *info) 1321 { 1322 struct i3c_ccc_cmd_dest dest; 1323 struct i3c_ccc_mrl *mrl; 1324 struct i3c_ccc_cmd cmd; 1325 int ret; 1326 1327 mrl = i3c_ccc_cmd_dest_init(&dest, info->dyn_addr, sizeof(*mrl)); 1328 if (!mrl) 1329 return -ENOMEM; 1330 1331 /* 1332 * When the device does not have IBI payload GETMRL only returns 2 1333 * bytes of data. 1334 */ 1335 if (!(info->bcr & I3C_BCR_IBI_PAYLOAD)) 1336 dest.payload.len -= 1; 1337 1338 i3c_ccc_cmd_init(&cmd, true, I3C_CCC_GETMRL, &dest, 1); 1339 ret = i3c_master_send_ccc_cmd_locked(master, &cmd); 1340 if (ret) 1341 goto out; 1342 1343 switch (dest.payload.len) { 1344 case 3: 1345 info->max_ibi_len = mrl->ibi_len; 1346 fallthrough; 1347 case 2: 1348 info->max_read_len = be16_to_cpu(mrl->read_len); 1349 break; 1350 default: 1351 ret = -EIO; 1352 goto out; 1353 } 1354 1355 out: 1356 i3c_ccc_cmd_dest_cleanup(&dest); 1357 1358 return ret; 1359 } 1360 1361 static int i3c_master_getmwl_locked(struct i3c_master_controller *master, 1362 struct i3c_device_info *info) 1363 { 1364 struct i3c_ccc_cmd_dest dest; 1365 struct i3c_ccc_mwl *mwl; 1366 struct i3c_ccc_cmd cmd; 1367 int ret; 1368 1369 mwl = i3c_ccc_cmd_dest_init(&dest, info->dyn_addr, sizeof(*mwl)); 1370 if (!mwl) 1371 return -ENOMEM; 1372 1373 i3c_ccc_cmd_init(&cmd, true, I3C_CCC_GETMWL, &dest, 1); 1374 ret = i3c_master_send_ccc_cmd_locked(master, &cmd); 1375 if (ret) 1376 goto out; 1377 1378 if (dest.payload.len != sizeof(*mwl)) { 1379 ret = -EIO; 1380 goto out; 1381 } 1382 1383 info->max_write_len = be16_to_cpu(mwl->len); 1384 1385 out: 1386 i3c_ccc_cmd_dest_cleanup(&dest); 1387 1388 return ret; 1389 } 1390 1391 static int i3c_master_getmxds_locked(struct i3c_master_controller *master, 1392 struct i3c_device_info *info) 1393 { 1394 struct i3c_ccc_getmxds *getmaxds; 1395 struct i3c_ccc_cmd_dest dest; 1396 struct i3c_ccc_cmd cmd; 1397 int ret; 1398 1399 getmaxds = i3c_ccc_cmd_dest_init(&dest, info->dyn_addr, 1400 sizeof(*getmaxds)); 1401 if (!getmaxds) 1402 return -ENOMEM; 1403 1404 i3c_ccc_cmd_init(&cmd, true, I3C_CCC_GETMXDS, &dest, 1); 1405 ret = i3c_master_send_ccc_cmd_locked(master, &cmd); 1406 if (ret) { 1407 /* 1408 * Retry when the device does not support max read turnaround 1409 * while expecting shorter length from this CCC command. 1410 */ 1411 dest.payload.len -= 3; 1412 ret = i3c_master_send_ccc_cmd_locked(master, &cmd); 1413 if (ret) 1414 goto out; 1415 } 1416 1417 if (dest.payload.len != 2 && dest.payload.len != 5) { 1418 ret = -EIO; 1419 goto out; 1420 } 1421 1422 info->max_read_ds = getmaxds->maxrd; 1423 info->max_write_ds = getmaxds->maxwr; 1424 if (dest.payload.len == 5) 1425 info->max_read_turnaround = getmaxds->maxrdturn[0] | 1426 ((u32)getmaxds->maxrdturn[1] << 8) | 1427 ((u32)getmaxds->maxrdturn[2] << 16); 1428 1429 out: 1430 i3c_ccc_cmd_dest_cleanup(&dest); 1431 1432 return ret; 1433 } 1434 1435 static int i3c_master_gethdrcap_locked(struct i3c_master_controller *master, 1436 struct i3c_device_info *info) 1437 { 1438 struct i3c_ccc_gethdrcap *gethdrcap; 1439 struct i3c_ccc_cmd_dest dest; 1440 struct i3c_ccc_cmd cmd; 1441 int ret; 1442 1443 gethdrcap = i3c_ccc_cmd_dest_init(&dest, info->dyn_addr, 1444 sizeof(*gethdrcap)); 1445 if (!gethdrcap) 1446 return -ENOMEM; 1447 1448 i3c_ccc_cmd_init(&cmd, true, I3C_CCC_GETHDRCAP, &dest, 1); 1449 ret = i3c_master_send_ccc_cmd_locked(master, &cmd); 1450 if (ret) 1451 goto out; 1452 1453 if (dest.payload.len != 1) { 1454 ret = -EIO; 1455 goto out; 1456 } 1457 1458 info->hdr_cap = gethdrcap->modes; 1459 1460 out: 1461 i3c_ccc_cmd_dest_cleanup(&dest); 1462 1463 return ret; 1464 } 1465 1466 static int i3c_master_getpid_locked(struct i3c_master_controller *master, 1467 struct i3c_device_info *info) 1468 { 1469 struct i3c_ccc_getpid *getpid; 1470 struct i3c_ccc_cmd_dest dest; 1471 struct i3c_ccc_cmd cmd; 1472 int ret, i; 1473 1474 getpid = i3c_ccc_cmd_dest_init(&dest, info->dyn_addr, sizeof(*getpid)); 1475 if (!getpid) 1476 return -ENOMEM; 1477 1478 i3c_ccc_cmd_init(&cmd, true, I3C_CCC_GETPID, &dest, 1); 1479 ret = i3c_master_send_ccc_cmd_locked(master, &cmd); 1480 if (ret) 1481 goto out; 1482 1483 info->pid = 0; 1484 for (i = 0; i < sizeof(getpid->pid); i++) { 1485 int sft = (sizeof(getpid->pid) - i - 1) * 8; 1486 1487 info->pid |= (u64)getpid->pid[i] << sft; 1488 } 1489 1490 out: 1491 i3c_ccc_cmd_dest_cleanup(&dest); 1492 1493 return ret; 1494 } 1495 1496 static int i3c_master_getbcr_locked(struct i3c_master_controller *master, 1497 struct i3c_device_info *info) 1498 { 1499 struct i3c_ccc_getbcr *getbcr; 1500 struct i3c_ccc_cmd_dest dest; 1501 struct i3c_ccc_cmd cmd; 1502 int ret; 1503 1504 getbcr = i3c_ccc_cmd_dest_init(&dest, info->dyn_addr, sizeof(*getbcr)); 1505 if (!getbcr) 1506 return -ENOMEM; 1507 1508 i3c_ccc_cmd_init(&cmd, true, I3C_CCC_GETBCR, &dest, 1); 1509 ret = i3c_master_send_ccc_cmd_locked(master, &cmd); 1510 if (ret) 1511 goto out; 1512 1513 info->bcr = getbcr->bcr; 1514 1515 out: 1516 i3c_ccc_cmd_dest_cleanup(&dest); 1517 1518 return ret; 1519 } 1520 1521 static int i3c_master_getdcr_locked(struct i3c_master_controller *master, 1522 struct i3c_device_info *info) 1523 { 1524 struct i3c_ccc_getdcr *getdcr; 1525 struct i3c_ccc_cmd_dest dest; 1526 struct i3c_ccc_cmd cmd; 1527 int ret; 1528 1529 getdcr = i3c_ccc_cmd_dest_init(&dest, info->dyn_addr, sizeof(*getdcr)); 1530 if (!getdcr) 1531 return -ENOMEM; 1532 1533 i3c_ccc_cmd_init(&cmd, true, I3C_CCC_GETDCR, &dest, 1); 1534 ret = i3c_master_send_ccc_cmd_locked(master, &cmd); 1535 if (ret) 1536 goto out; 1537 1538 info->dcr = getdcr->dcr; 1539 1540 out: 1541 i3c_ccc_cmd_dest_cleanup(&dest); 1542 1543 return ret; 1544 } 1545 1546 static int i3c_master_retrieve_dev_info(struct i3c_dev_desc *dev) 1547 { 1548 struct i3c_master_controller *master = i3c_dev_get_master(dev); 1549 enum i3c_addr_slot_status slot_status; 1550 int ret; 1551 1552 if (!dev->info.dyn_addr) 1553 return -EINVAL; 1554 1555 slot_status = i3c_bus_get_addr_slot_status(&master->bus, 1556 dev->info.dyn_addr); 1557 if (slot_status == I3C_ADDR_SLOT_RSVD || 1558 slot_status == I3C_ADDR_SLOT_I2C_DEV) 1559 return -EINVAL; 1560 1561 ret = i3c_master_getpid_locked(master, &dev->info); 1562 if (ret) 1563 return ret; 1564 1565 ret = i3c_master_getbcr_locked(master, &dev->info); 1566 if (ret) 1567 return ret; 1568 1569 ret = i3c_master_getdcr_locked(master, &dev->info); 1570 if (ret) 1571 return ret; 1572 1573 if (dev->info.bcr & I3C_BCR_MAX_DATA_SPEED_LIM) { 1574 ret = i3c_master_getmxds_locked(master, &dev->info); 1575 if (ret) 1576 return ret; 1577 } 1578 1579 if (dev->info.bcr & I3C_BCR_IBI_PAYLOAD) 1580 dev->info.max_ibi_len = 1; 1581 1582 i3c_master_getmrl_locked(master, &dev->info); 1583 i3c_master_getmwl_locked(master, &dev->info); 1584 1585 if (dev->info.bcr & I3C_BCR_HDR_CAP) { 1586 ret = i3c_master_gethdrcap_locked(master, &dev->info); 1587 if (ret && ret != -EOPNOTSUPP) 1588 return ret; 1589 } 1590 1591 return 0; 1592 } 1593 1594 static void i3c_master_put_i3c_addrs(struct i3c_dev_desc *dev) 1595 { 1596 struct i3c_master_controller *master = i3c_dev_get_master(dev); 1597 1598 if (dev->info.static_addr) 1599 i3c_bus_set_addr_slot_status(&master->bus, 1600 dev->info.static_addr, 1601 I3C_ADDR_SLOT_FREE); 1602 1603 if (dev->info.dyn_addr) 1604 i3c_bus_set_addr_slot_status(&master->bus, dev->info.dyn_addr, 1605 I3C_ADDR_SLOT_FREE); 1606 1607 if (dev->boardinfo && dev->boardinfo->init_dyn_addr) 1608 i3c_bus_set_addr_slot_status(&master->bus, dev->boardinfo->init_dyn_addr, 1609 I3C_ADDR_SLOT_FREE); 1610 } 1611 1612 static int i3c_master_get_i3c_addrs(struct i3c_dev_desc *dev) 1613 { 1614 struct i3c_master_controller *master = i3c_dev_get_master(dev); 1615 enum i3c_addr_slot_status status; 1616 1617 if (!dev->info.static_addr && !dev->info.dyn_addr) 1618 return 0; 1619 1620 if (dev->info.static_addr) { 1621 status = i3c_bus_get_addr_slot_status(&master->bus, 1622 dev->info.static_addr); 1623 /* Since static address and assigned dynamic address can be 1624 * equal, allow this case to pass. 1625 */ 1626 if (status != I3C_ADDR_SLOT_FREE && 1627 dev->info.static_addr != dev->boardinfo->init_dyn_addr) 1628 return -EBUSY; 1629 1630 i3c_bus_set_addr_slot_status(&master->bus, 1631 dev->info.static_addr, 1632 I3C_ADDR_SLOT_I3C_DEV); 1633 } 1634 1635 /* 1636 * ->init_dyn_addr should have been reserved before that, so, if we're 1637 * trying to apply a pre-reserved dynamic address, we should not try 1638 * to reserve the address slot a second time. 1639 */ 1640 if (dev->info.dyn_addr && 1641 (!dev->boardinfo || 1642 dev->boardinfo->init_dyn_addr != dev->info.dyn_addr)) { 1643 status = i3c_bus_get_addr_slot_status(&master->bus, 1644 dev->info.dyn_addr); 1645 if (status != I3C_ADDR_SLOT_FREE) 1646 goto err_release_static_addr; 1647 1648 i3c_bus_set_addr_slot_status(&master->bus, dev->info.dyn_addr, 1649 I3C_ADDR_SLOT_I3C_DEV); 1650 } 1651 1652 return 0; 1653 1654 err_release_static_addr: 1655 if (dev->info.static_addr) 1656 i3c_bus_set_addr_slot_status(&master->bus, 1657 dev->info.static_addr, 1658 I3C_ADDR_SLOT_FREE); 1659 1660 return -EBUSY; 1661 } 1662 1663 static int i3c_master_attach_i3c_dev(struct i3c_master_controller *master, 1664 struct i3c_dev_desc *dev) 1665 { 1666 int ret; 1667 1668 /* 1669 * We don't attach devices to the controller until they are 1670 * addressable on the bus. 1671 */ 1672 if (!dev->info.static_addr && !dev->info.dyn_addr) 1673 return 0; 1674 1675 ret = i3c_master_get_i3c_addrs(dev); 1676 if (ret) 1677 return ret; 1678 1679 /* Do not attach the master device itself. */ 1680 if (master->this != dev && master->ops->attach_i3c_dev) { 1681 ret = master->ops->attach_i3c_dev(dev); 1682 if (ret) { 1683 i3c_master_put_i3c_addrs(dev); 1684 return ret; 1685 } 1686 } 1687 1688 list_add_tail(&dev->common.node, &master->bus.devs.i3c); 1689 1690 return 0; 1691 } 1692 1693 static int i3c_master_reattach_i3c_dev(struct i3c_dev_desc *dev, 1694 u8 old_dyn_addr) 1695 { 1696 struct i3c_master_controller *master = i3c_dev_get_master(dev); 1697 int ret; 1698 1699 if (dev->info.dyn_addr != old_dyn_addr) { 1700 i3c_bus_set_addr_slot_status(&master->bus, 1701 dev->info.dyn_addr, 1702 I3C_ADDR_SLOT_I3C_DEV); 1703 if (old_dyn_addr) 1704 i3c_bus_set_addr_slot_status(&master->bus, old_dyn_addr, 1705 I3C_ADDR_SLOT_FREE); 1706 } 1707 1708 if (master->ops->reattach_i3c_dev) { 1709 ret = master->ops->reattach_i3c_dev(dev, old_dyn_addr); 1710 if (ret) { 1711 i3c_master_put_i3c_addrs(dev); 1712 return ret; 1713 } 1714 } 1715 1716 return 0; 1717 } 1718 1719 static void i3c_master_detach_i3c_dev(struct i3c_dev_desc *dev) 1720 { 1721 struct i3c_master_controller *master = i3c_dev_get_master(dev); 1722 1723 /* Do not detach the master device itself. */ 1724 if (master->this != dev && master->ops->detach_i3c_dev) 1725 master->ops->detach_i3c_dev(dev); 1726 1727 i3c_master_put_i3c_addrs(dev); 1728 list_del(&dev->common.node); 1729 } 1730 1731 static int i3c_master_attach_i2c_dev(struct i3c_master_controller *master, 1732 struct i2c_dev_desc *dev) 1733 { 1734 int ret; 1735 1736 if (master->ops->attach_i2c_dev) { 1737 ret = master->ops->attach_i2c_dev(dev); 1738 if (ret) 1739 return ret; 1740 } 1741 1742 list_add_tail(&dev->common.node, &master->bus.devs.i2c); 1743 1744 return 0; 1745 } 1746 1747 static void i3c_master_detach_i2c_dev(struct i2c_dev_desc *dev) 1748 { 1749 struct i3c_master_controller *master = i2c_dev_get_master(dev); 1750 1751 list_del(&dev->common.node); 1752 1753 if (master->ops->detach_i2c_dev) 1754 master->ops->detach_i2c_dev(dev); 1755 } 1756 1757 static int i3c_master_early_i3c_dev_add(struct i3c_master_controller *master, 1758 struct i3c_dev_boardinfo *boardinfo) 1759 { 1760 struct i3c_device_info info = { 1761 .static_addr = boardinfo->static_addr, 1762 .pid = boardinfo->pid, 1763 }; 1764 struct i3c_dev_desc *i3cdev; 1765 int ret; 1766 1767 i3cdev = i3c_master_alloc_i3c_dev(master, &info); 1768 if (IS_ERR(i3cdev)) 1769 return -ENOMEM; 1770 1771 i3cdev->boardinfo = boardinfo; 1772 1773 ret = i3c_master_attach_i3c_dev(master, i3cdev); 1774 if (ret) 1775 goto err_free_dev; 1776 1777 ret = i3c_master_setdasa_locked(master, i3cdev->info.static_addr, 1778 i3cdev->boardinfo->init_dyn_addr); 1779 if (ret) 1780 goto err_detach_dev; 1781 1782 i3cdev->info.dyn_addr = i3cdev->boardinfo->init_dyn_addr; 1783 ret = i3c_master_reattach_i3c_dev(i3cdev, 0); 1784 if (ret) 1785 goto err_rstdaa; 1786 1787 ret = i3c_master_retrieve_dev_info(i3cdev); 1788 if (ret) 1789 goto err_rstdaa; 1790 1791 return 0; 1792 1793 err_rstdaa: 1794 i3c_master_rstdaa_locked(master, i3cdev->boardinfo->init_dyn_addr); 1795 err_detach_dev: 1796 i3c_master_detach_i3c_dev(i3cdev); 1797 err_free_dev: 1798 i3c_master_free_i3c_dev(i3cdev); 1799 1800 return ret; 1801 } 1802 1803 static void 1804 i3c_master_register_new_i3c_devs(struct i3c_master_controller *master) 1805 { 1806 struct i3c_dev_desc *desc; 1807 int ret; 1808 1809 if (!master->init_done) 1810 return; 1811 1812 i3c_bus_for_each_i3cdev(&master->bus, desc) { 1813 if (desc->dev || !desc->info.dyn_addr || desc == master->this) 1814 continue; 1815 1816 desc->dev = kzalloc_obj(*desc->dev); 1817 if (!desc->dev) 1818 continue; 1819 1820 desc->dev->bus = &master->bus; 1821 desc->dev->desc = desc; 1822 desc->dev->dev.parent = &master->dev; 1823 desc->dev->dev.type = &i3c_device_type; 1824 desc->dev->dev.bus = &i3c_bus_type; 1825 desc->dev->dev.release = i3c_device_release; 1826 dev_set_name(&desc->dev->dev, "%d-%llx", master->bus.id, 1827 desc->info.pid); 1828 1829 if (desc->boardinfo) 1830 desc->dev->dev.of_node = desc->boardinfo->of_node; 1831 1832 ret = device_register(&desc->dev->dev); 1833 if (ret) { 1834 dev_err(&master->dev, 1835 "Failed to add I3C device (err = %d)\n", ret); 1836 put_device(&desc->dev->dev); 1837 } 1838 } 1839 } 1840 1841 /** 1842 * i3c_master_do_daa_ext() - Dynamic Address Assignment (extended version) 1843 * @master: controller 1844 * @rstdaa: whether to first perform Reset of Dynamic Addresses (RSTDAA) 1845 * 1846 * Perform Dynamic Address Assignment with optional support for System 1847 * Hibernation (@rstdaa is true). 1848 * 1849 * After System Hibernation, Dynamic Addresses can have been reassigned at boot 1850 * time to different values. A simple strategy is followed to handle that. 1851 * Perform a Reset of Dynamic Addresses (RSTDAA) followed by the normal DAA 1852 * procedure which has provision for reassigning addresses that differ from the 1853 * previously recorded addresses. 1854 * 1855 * Return: a 0 in case of success, an negative error code otherwise. 1856 */ 1857 int i3c_master_do_daa_ext(struct i3c_master_controller *master, bool rstdaa) 1858 { 1859 int rstret = 0; 1860 int ret; 1861 1862 ret = i3c_master_rpm_get(master); 1863 if (ret) 1864 return ret; 1865 1866 i3c_bus_maintenance_lock(&master->bus); 1867 1868 if (master->shutting_down) { 1869 ret = -ENODEV; 1870 } else { 1871 if (rstdaa) 1872 rstret = i3c_master_rstdaa_locked(master, I3C_BROADCAST_ADDR); 1873 ret = master->ops->do_daa(master); 1874 } 1875 1876 i3c_bus_maintenance_unlock(&master->bus); 1877 1878 if (ret) 1879 goto out; 1880 1881 i3c_bus_normaluse_lock(&master->bus); 1882 i3c_master_register_new_i3c_devs(master); 1883 i3c_bus_normaluse_unlock(&master->bus); 1884 out: 1885 i3c_master_rpm_put(master); 1886 1887 return rstret ?: ret; 1888 } 1889 EXPORT_SYMBOL_GPL(i3c_master_do_daa_ext); 1890 1891 /** 1892 * i3c_master_do_daa() - do a DAA (Dynamic Address Assignment) 1893 * @master: master doing the DAA 1894 * 1895 * This function instantiates I3C device objects and adds them to the 1896 * I3C device list. All device information is automatically retrieved using 1897 * standard CCC commands. 1898 * 1899 * Return: a 0 in case of success, an negative error code otherwise. 1900 */ 1901 int i3c_master_do_daa(struct i3c_master_controller *master) 1902 { 1903 return i3c_master_do_daa_ext(master, false); 1904 } 1905 EXPORT_SYMBOL_GPL(i3c_master_do_daa); 1906 1907 /** 1908 * i3c_master_dma_map_single() - Map buffer for single DMA transfer 1909 * @dev: device object of a device doing DMA 1910 * @buf: destination/source buffer for DMA 1911 * @len: length of transfer 1912 * @force_bounce: true, force to use a bounce buffer, 1913 * false, function will auto check is a bounce buffer required 1914 * @dir: DMA direction 1915 * 1916 * Map buffer for a DMA transfer and allocate a bounce buffer if required. 1917 * 1918 * Return: I3C DMA transfer descriptor or NULL in case of error. 1919 */ 1920 struct i3c_dma *i3c_master_dma_map_single(struct device *dev, void *buf, 1921 size_t len, bool force_bounce, enum dma_data_direction dir) 1922 { 1923 void *bounce __free(kfree) = NULL; 1924 void *dma_buf = buf; 1925 1926 struct i3c_dma *dma_xfer __free(kfree) = kzalloc_obj(*dma_xfer); 1927 if (!dma_xfer) 1928 return NULL; 1929 1930 dma_xfer->dev = dev; 1931 dma_xfer->buf = buf; 1932 dma_xfer->dir = dir; 1933 dma_xfer->len = len; 1934 dma_xfer->map_len = len; 1935 1936 if (is_vmalloc_addr(buf)) 1937 force_bounce = true; 1938 1939 if (force_bounce) { 1940 dma_xfer->map_len = ALIGN(len, cache_line_size()); 1941 if (dir == DMA_FROM_DEVICE) 1942 bounce = kzalloc(dma_xfer->map_len, GFP_KERNEL); 1943 else 1944 bounce = kmemdup(buf, dma_xfer->map_len, GFP_KERNEL); 1945 if (!bounce) 1946 return NULL; 1947 dma_buf = bounce; 1948 } 1949 1950 dma_xfer->addr = dma_map_single(dev, dma_buf, dma_xfer->map_len, dir); 1951 if (dma_mapping_error(dev, dma_xfer->addr)) 1952 return NULL; 1953 1954 dma_xfer->bounce_buf = no_free_ptr(bounce); 1955 return no_free_ptr(dma_xfer); 1956 } 1957 EXPORT_SYMBOL_GPL(i3c_master_dma_map_single); 1958 1959 /** 1960 * i3c_master_dma_unmap_single() - Unmap buffer after DMA 1961 * @dma_xfer: DMA transfer and mapping descriptor 1962 * 1963 * Unmap buffer and cleanup DMA transfer descriptor. 1964 */ 1965 void i3c_master_dma_unmap_single(struct i3c_dma *dma_xfer) 1966 { 1967 dma_unmap_single(dma_xfer->dev, dma_xfer->addr, 1968 dma_xfer->map_len, dma_xfer->dir); 1969 if (dma_xfer->bounce_buf) { 1970 if (dma_xfer->dir == DMA_FROM_DEVICE) 1971 memcpy(dma_xfer->buf, dma_xfer->bounce_buf, 1972 dma_xfer->len); 1973 kfree(dma_xfer->bounce_buf); 1974 } 1975 kfree(dma_xfer); 1976 } 1977 EXPORT_SYMBOL_GPL(i3c_master_dma_unmap_single); 1978 1979 /** 1980 * i3c_master_set_info() - set master device information 1981 * @master: master used to send frames on the bus 1982 * @info: I3C device information 1983 * 1984 * Set master device info. This should be called from 1985 * &i3c_master_controller_ops->bus_init(). 1986 * 1987 * Not all &i3c_device_info fields are meaningful for a master device. 1988 * Here is a list of fields that should be properly filled: 1989 * 1990 * - &i3c_device_info->dyn_addr 1991 * - &i3c_device_info->bcr 1992 * - &i3c_device_info->dcr 1993 * - &i3c_device_info->pid 1994 * - &i3c_device_info->hdr_cap if %I3C_BCR_HDR_CAP bit is set in 1995 * &i3c_device_info->bcr 1996 * 1997 * This function must be called with the bus lock held in maintenance mode. 1998 * 1999 * Return: 0 if @info contains valid information (not every piece of 2000 * information can be checked, but we can at least make sure @info->dyn_addr 2001 * and @info->bcr are correct), -EINVAL otherwise. 2002 */ 2003 int i3c_master_set_info(struct i3c_master_controller *master, 2004 const struct i3c_device_info *info) 2005 { 2006 struct i3c_dev_desc *i3cdev; 2007 int ret; 2008 2009 if (!i3c_bus_dev_addr_is_avail(&master->bus, info->dyn_addr)) 2010 return -EINVAL; 2011 2012 if (I3C_BCR_DEVICE_ROLE(info->bcr) == I3C_BCR_I3C_MASTER && 2013 master->secondary) 2014 return -EINVAL; 2015 2016 if (master->this) 2017 return -EINVAL; 2018 2019 i3cdev = i3c_master_alloc_i3c_dev(master, info); 2020 if (IS_ERR(i3cdev)) 2021 return PTR_ERR(i3cdev); 2022 2023 master->this = i3cdev; 2024 master->bus.cur_master = master->this; 2025 2026 ret = i3c_master_attach_i3c_dev(master, i3cdev); 2027 if (ret) 2028 goto err_free_dev; 2029 2030 return 0; 2031 2032 err_free_dev: 2033 i3c_master_free_i3c_dev(i3cdev); 2034 2035 return ret; 2036 } 2037 EXPORT_SYMBOL_GPL(i3c_master_set_info); 2038 2039 static void i3c_master_detach_free_devs(struct i3c_master_controller *master) 2040 { 2041 struct i3c_dev_desc *i3cdev, *i3ctmp; 2042 struct i2c_dev_desc *i2cdev, *i2ctmp; 2043 2044 list_for_each_entry_safe(i3cdev, i3ctmp, &master->bus.devs.i3c, 2045 common.node) { 2046 i3c_master_detach_i3c_dev(i3cdev); 2047 2048 if (i3cdev->boardinfo && i3cdev->boardinfo->init_dyn_addr) 2049 i3c_bus_set_addr_slot_status(&master->bus, 2050 i3cdev->boardinfo->init_dyn_addr, 2051 I3C_ADDR_SLOT_FREE); 2052 2053 i3c_master_free_i3c_dev(i3cdev); 2054 } 2055 2056 list_for_each_entry_safe(i2cdev, i2ctmp, &master->bus.devs.i2c, 2057 common.node) { 2058 i3c_master_detach_i2c_dev(i2cdev); 2059 i3c_bus_set_addr_slot_status(&master->bus, 2060 i2cdev->addr, 2061 I3C_ADDR_SLOT_FREE); 2062 i3c_master_free_i2c_dev(i2cdev); 2063 } 2064 } 2065 2066 /** 2067 * i3c_master_bus_init() - initialize an I3C bus 2068 * @master: main master initializing the bus 2069 * 2070 * This function is following all initialisation steps described in the I3C 2071 * specification: 2072 * 2073 * 1. Attach I2C devs to the master so that the master can fill its internal 2074 * device table appropriately 2075 * 2076 * 2. Call &i3c_master_controller_ops->bus_init() method to initialize 2077 * the master controller. That's usually where the bus mode is selected 2078 * (pure bus or mixed fast/slow bus) 2079 * 2080 * 3. Instruct all devices on the bus to drop their dynamic address. This is 2081 * particularly important when the bus was previously configured by someone 2082 * else (for example the bootloader) 2083 * 2084 * 4. Disable all slave events. 2085 * 2086 * 5. Reserve address slots for I3C devices with init_dyn_addr. And if devices 2087 * also have static_addr, try to pre-assign dynamic addresses requested by 2088 * the FW with SETDASA and attach corresponding statically defined I3C 2089 * devices to the master. 2090 * 2091 * 6. Do a DAA (Dynamic Address Assignment) to assign dynamic addresses to all 2092 * remaining I3C devices 2093 * 2094 * Once this is done, all I3C and I2C devices should be usable. 2095 * 2096 * Return: a 0 in case of success, an negative error code otherwise. 2097 */ 2098 static int i3c_master_bus_init(struct i3c_master_controller *master) 2099 { 2100 enum i3c_addr_slot_status status; 2101 struct i2c_dev_boardinfo *i2cboardinfo; 2102 struct i3c_dev_boardinfo *i3cboardinfo; 2103 struct i2c_dev_desc *i2cdev; 2104 int ret; 2105 2106 /* 2107 * First attach all devices with static definitions provided by the 2108 * FW. 2109 */ 2110 list_for_each_entry(i2cboardinfo, &master->boardinfo.i2c, node) { 2111 status = i3c_bus_get_addr_slot_status(&master->bus, 2112 i2cboardinfo->base.addr); 2113 if (status != I3C_ADDR_SLOT_FREE) { 2114 ret = -EBUSY; 2115 goto err_detach_devs; 2116 } 2117 2118 i3c_bus_set_addr_slot_status(&master->bus, 2119 i2cboardinfo->base.addr, 2120 I3C_ADDR_SLOT_I2C_DEV); 2121 2122 i2cdev = i3c_master_alloc_i2c_dev(master, 2123 i2cboardinfo->base.addr, 2124 i2cboardinfo->lvr); 2125 if (IS_ERR(i2cdev)) { 2126 ret = PTR_ERR(i2cdev); 2127 goto err_detach_devs; 2128 } 2129 2130 ret = i3c_master_attach_i2c_dev(master, i2cdev); 2131 if (ret) { 2132 i3c_master_free_i2c_dev(i2cdev); 2133 goto err_detach_devs; 2134 } 2135 } 2136 2137 /* 2138 * Now execute the controller specific ->bus_init() routine, which 2139 * might configure its internal logic to match the bus limitations. 2140 */ 2141 ret = master->ops->bus_init(master); 2142 if (ret) 2143 goto err_detach_devs; 2144 2145 /* 2146 * The master device should have been instantiated in ->bus_init(), 2147 * complain if this was not the case. 2148 */ 2149 if (!master->this) { 2150 dev_err(&master->dev, 2151 "master_set_info() was not called in ->bus_init()\n"); 2152 ret = -EINVAL; 2153 goto err_bus_cleanup; 2154 } 2155 2156 if (master->ops->set_speed) { 2157 ret = master->ops->set_speed(master, I3C_OPEN_DRAIN_SLOW_SPEED); 2158 if (ret) 2159 goto err_bus_cleanup; 2160 } 2161 2162 /* 2163 * Reset all dynamic address that may have been assigned before 2164 * (assigned by the bootloader for example). 2165 */ 2166 ret = i3c_master_rstdaa_locked(master, I3C_BROADCAST_ADDR); 2167 if (ret) 2168 goto err_bus_cleanup; 2169 2170 if (master->ops->set_speed) { 2171 ret = master->ops->set_speed(master, I3C_OPEN_DRAIN_NORMAL_SPEED); 2172 if (ret) 2173 goto err_bus_cleanup; 2174 } 2175 2176 /* 2177 * Disable all slave events before starting DAA. When no active device 2178 * is on the bus, returns Mx error code M2, this error is ignored. 2179 */ 2180 ret = i3c_master_enec_disec_locked(master, I3C_BROADCAST_ADDR, false, 2181 I3C_CCC_EVENT_SIR | I3C_CCC_EVENT_MR | 2182 I3C_CCC_EVENT_HJ, true); 2183 if (ret) 2184 goto err_bus_cleanup; 2185 2186 /* 2187 * Reserve init_dyn_addr first, and then try to pre-assign dynamic 2188 * address and retrieve device information if needed. 2189 * In case pre-assign dynamic address fails, setting dynamic address to 2190 * the requested init_dyn_addr is retried after DAA is done in 2191 * i3c_master_add_i3c_dev_locked(). 2192 */ 2193 list_for_each_entry(i3cboardinfo, &master->boardinfo.i3c, node) { 2194 2195 /* 2196 * We don't reserve a dynamic address for devices that 2197 * don't explicitly request one. 2198 */ 2199 if (!i3cboardinfo->init_dyn_addr) 2200 continue; 2201 2202 ret = i3c_bus_get_addr_slot_status(&master->bus, 2203 i3cboardinfo->init_dyn_addr); 2204 if (ret != I3C_ADDR_SLOT_FREE) { 2205 ret = -EBUSY; 2206 goto err_rstdaa; 2207 } 2208 2209 /* Do not mark as occupied until real device exist in bus */ 2210 i3c_bus_set_addr_slot_status_mask(&master->bus, 2211 i3cboardinfo->init_dyn_addr, 2212 I3C_ADDR_SLOT_EXT_DESIRED, 2213 I3C_ADDR_SLOT_EXT_STATUS_MASK); 2214 2215 /* 2216 * Only try to create/attach devices that have a static 2217 * address. Other devices will be created/attached when 2218 * DAA happens, and the requested dynamic address will 2219 * be set using SETNEWDA once those devices become 2220 * addressable. 2221 */ 2222 2223 if (i3cboardinfo->static_addr) 2224 i3c_master_early_i3c_dev_add(master, i3cboardinfo); 2225 } 2226 2227 ret = i3c_master_do_daa(master); 2228 if (ret) 2229 goto err_rstdaa; 2230 2231 return 0; 2232 2233 err_rstdaa: 2234 i3c_master_rstdaa_locked(master, I3C_BROADCAST_ADDR); 2235 2236 err_bus_cleanup: 2237 if (master->ops->bus_cleanup) 2238 master->ops->bus_cleanup(master); 2239 2240 err_detach_devs: 2241 i3c_master_detach_free_devs(master); 2242 2243 return ret; 2244 } 2245 2246 static void i3c_master_bus_cleanup(struct i3c_master_controller *master) 2247 { 2248 if (master->ops->bus_cleanup) { 2249 int ret = i3c_master_rpm_get(master); 2250 2251 if (ret) { 2252 dev_err(&master->dev, 2253 "runtime resume error: master bus_cleanup() not done\n"); 2254 } else { 2255 master->ops->bus_cleanup(master); 2256 i3c_master_rpm_put(master); 2257 } 2258 } 2259 2260 i3c_master_detach_free_devs(master); 2261 } 2262 2263 static void i3c_master_attach_boardinfo(struct i3c_dev_desc *i3cdev) 2264 { 2265 struct i3c_master_controller *master = i3cdev->common.master; 2266 struct i3c_dev_boardinfo *i3cboardinfo; 2267 2268 list_for_each_entry(i3cboardinfo, &master->boardinfo.i3c, node) { 2269 if (i3cdev->info.pid != i3cboardinfo->pid) 2270 continue; 2271 2272 i3cdev->boardinfo = i3cboardinfo; 2273 i3cdev->info.static_addr = i3cboardinfo->static_addr; 2274 return; 2275 } 2276 } 2277 2278 static struct i3c_dev_desc * 2279 i3c_master_search_i3c_dev_duplicate(struct i3c_dev_desc *refdev) 2280 { 2281 struct i3c_master_controller *master = i3c_dev_get_master(refdev); 2282 struct i3c_dev_desc *i3cdev; 2283 2284 i3c_bus_for_each_i3cdev(&master->bus, i3cdev) { 2285 if (i3cdev != refdev && i3cdev->info.pid == refdev->info.pid) 2286 return i3cdev; 2287 } 2288 2289 return NULL; 2290 } 2291 2292 /** 2293 * i3c_master_add_i3c_dev_locked() - add an I3C slave to the bus 2294 * @master: master used to send frames on the bus 2295 * @addr: I3C slave dynamic address assigned to the device 2296 * 2297 * This function is instantiating an I3C device object and adding it to the 2298 * I3C device list. All device information are automatically retrieved using 2299 * standard CCC commands. 2300 * 2301 * The I3C device object is returned in case the master wants to attach 2302 * private data to it using i3c_dev_set_master_data(). 2303 * 2304 * This function must be called with the bus lock held in write mode. 2305 * 2306 * Return: a 0 in case of success, an negative error code otherwise. 2307 */ 2308 int i3c_master_add_i3c_dev_locked(struct i3c_master_controller *master, 2309 u8 addr) 2310 { 2311 struct i3c_device_info info = { .dyn_addr = addr }; 2312 struct i3c_dev_desc *newdev, *olddev; 2313 u8 old_dyn_addr = addr, expected_dyn_addr; 2314 struct i3c_ibi_setup ibireq = { }; 2315 bool enable_ibi = false; 2316 int ret; 2317 2318 if (!master) 2319 return -EINVAL; 2320 2321 newdev = i3c_master_alloc_i3c_dev(master, &info); 2322 if (IS_ERR(newdev)) 2323 return PTR_ERR(newdev); 2324 2325 ret = i3c_master_attach_i3c_dev(master, newdev); 2326 if (ret) 2327 goto err_free_dev; 2328 2329 ret = i3c_master_retrieve_dev_info(newdev); 2330 if (ret) 2331 goto err_detach_dev; 2332 2333 i3c_master_attach_boardinfo(newdev); 2334 2335 olddev = i3c_master_search_i3c_dev_duplicate(newdev); 2336 if (olddev) { 2337 newdev->dev = olddev->dev; 2338 if (newdev->dev) 2339 newdev->dev->desc = newdev; 2340 2341 /* 2342 * We need to restore the IBI state too, so let's save the 2343 * IBI information and try to restore them after olddev has 2344 * been detached+released and its IBI has been stopped and 2345 * the associated resources have been freed. 2346 */ 2347 mutex_lock(&olddev->ibi_lock); 2348 if (olddev->ibi) { 2349 ibireq.handler = olddev->ibi->handler; 2350 ibireq.max_payload_len = olddev->ibi->max_payload_len; 2351 ibireq.num_slots = olddev->ibi->num_slots; 2352 2353 if (olddev->ibi->enabled) 2354 enable_ibi = true; 2355 /* 2356 * The olddev should not receive any commands on the 2357 * i3c bus as it does not exist and has been assigned 2358 * a new address. This will result in NACK or timeout. 2359 * So, update the olddev->ibi->enabled flag to false 2360 * to avoid DISEC with OldAddr. 2361 */ 2362 olddev->ibi->enabled = false; 2363 i3c_dev_free_ibi_locked(olddev); 2364 } 2365 mutex_unlock(&olddev->ibi_lock); 2366 2367 old_dyn_addr = olddev->info.dyn_addr; 2368 2369 i3c_master_detach_i3c_dev(olddev); 2370 i3c_master_free_i3c_dev(olddev); 2371 } 2372 2373 /* 2374 * Depending on our previous state, the expected dynamic address might 2375 * differ: 2376 * - if the device already had a dynamic address assigned, let's try to 2377 * re-apply this one 2378 * - if the device did not have a dynamic address and the firmware 2379 * requested a specific address, pick this one 2380 * - in any other case, keep the address automatically assigned by the 2381 * master 2382 */ 2383 if (old_dyn_addr && old_dyn_addr != newdev->info.dyn_addr) 2384 expected_dyn_addr = old_dyn_addr; 2385 else if (newdev->boardinfo && newdev->boardinfo->init_dyn_addr) 2386 expected_dyn_addr = newdev->boardinfo->init_dyn_addr; 2387 else 2388 expected_dyn_addr = newdev->info.dyn_addr; 2389 2390 if (newdev->info.dyn_addr != expected_dyn_addr && 2391 i3c_bus_get_addr_slot_status(&master->bus, expected_dyn_addr) == I3C_ADDR_SLOT_FREE) { 2392 /* 2393 * Try to apply the expected dynamic address. If it fails, keep 2394 * the address assigned by the master. 2395 */ 2396 ret = i3c_master_setnewda_locked(master, 2397 newdev->info.dyn_addr, 2398 expected_dyn_addr); 2399 if (!ret) { 2400 old_dyn_addr = newdev->info.dyn_addr; 2401 newdev->info.dyn_addr = expected_dyn_addr; 2402 i3c_master_reattach_i3c_dev(newdev, old_dyn_addr); 2403 } else { 2404 dev_err(&master->dev, 2405 "Failed to assign reserved/old address to device %d%llx", 2406 master->bus.id, newdev->info.pid); 2407 } 2408 } 2409 2410 /* 2411 * Now is time to try to restore the IBI setup. If we're lucky, 2412 * everything works as before, otherwise, all we can do is complain. 2413 * FIXME: maybe we should add callback to inform the driver that it 2414 * should request the IBI again instead of trying to hide that from 2415 * him. 2416 */ 2417 if (ibireq.handler) { 2418 mutex_lock(&newdev->ibi_lock); 2419 ret = i3c_dev_request_ibi_locked(newdev, &ibireq); 2420 if (ret) { 2421 dev_err(&master->dev, 2422 "Failed to request IBI on device %d-%llx", 2423 master->bus.id, newdev->info.pid); 2424 } else if (enable_ibi) { 2425 ret = i3c_dev_enable_ibi_locked(newdev); 2426 if (ret) 2427 dev_err(&master->dev, 2428 "Failed to re-enable IBI on device %d-%llx", 2429 master->bus.id, newdev->info.pid); 2430 } 2431 mutex_unlock(&newdev->ibi_lock); 2432 } 2433 2434 return 0; 2435 2436 err_detach_dev: 2437 if (newdev->dev && newdev->dev->desc) 2438 newdev->dev->desc = NULL; 2439 2440 i3c_master_detach_i3c_dev(newdev); 2441 2442 err_free_dev: 2443 i3c_master_free_i3c_dev(newdev); 2444 2445 return ret; 2446 } 2447 EXPORT_SYMBOL_GPL(i3c_master_add_i3c_dev_locked); 2448 2449 #define OF_I3C_REG1_IS_I2C_DEV BIT(31) 2450 2451 static int 2452 of_i3c_master_add_i2c_boardinfo(struct i3c_master_controller *master, 2453 struct device_node *node, u32 *reg) 2454 { 2455 struct i2c_dev_boardinfo *boardinfo; 2456 struct device *dev = &master->dev; 2457 int ret; 2458 2459 boardinfo = devm_kzalloc(dev, sizeof(*boardinfo), GFP_KERNEL); 2460 if (!boardinfo) 2461 return -ENOMEM; 2462 2463 ret = of_i2c_get_board_info(dev, node, &boardinfo->base); 2464 if (ret) 2465 return ret; 2466 2467 /* 2468 * The I3C Specification does not clearly say I2C devices with 10-bit 2469 * address are supported. These devices can't be passed properly through 2470 * DEFSLVS command. 2471 */ 2472 if (boardinfo->base.flags & I2C_CLIENT_TEN) { 2473 dev_err(dev, "I2C device with 10 bit address not supported.\n"); 2474 return -EOPNOTSUPP; 2475 } 2476 2477 /* LVR is encoded in reg[2]. */ 2478 boardinfo->lvr = reg[2]; 2479 2480 list_add_tail(&boardinfo->node, &master->boardinfo.i2c); 2481 of_node_get(node); 2482 2483 return 0; 2484 } 2485 2486 static int 2487 of_i3c_master_add_i3c_boardinfo(struct i3c_master_controller *master, 2488 struct device_node *node, u32 *reg) 2489 { 2490 struct i3c_dev_boardinfo *boardinfo; 2491 struct device *dev = &master->dev; 2492 enum i3c_addr_slot_status addrstatus; 2493 u32 init_dyn_addr = 0; 2494 2495 boardinfo = devm_kzalloc(dev, sizeof(*boardinfo), GFP_KERNEL); 2496 if (!boardinfo) 2497 return -ENOMEM; 2498 2499 if (reg[0]) { 2500 if (reg[0] > I3C_MAX_ADDR) 2501 return -EINVAL; 2502 2503 addrstatus = i3c_bus_get_addr_slot_status(&master->bus, 2504 reg[0]); 2505 if (addrstatus != I3C_ADDR_SLOT_FREE) 2506 return -EINVAL; 2507 } 2508 2509 boardinfo->static_addr = reg[0]; 2510 2511 if (!of_property_read_u32(node, "assigned-address", &init_dyn_addr)) { 2512 if (init_dyn_addr > I3C_MAX_ADDR) 2513 return -EINVAL; 2514 2515 addrstatus = i3c_bus_get_addr_slot_status(&master->bus, 2516 init_dyn_addr); 2517 if (addrstatus != I3C_ADDR_SLOT_FREE) 2518 return -EINVAL; 2519 } 2520 2521 boardinfo->pid = ((u64)reg[1] << 32) | reg[2]; 2522 2523 if ((boardinfo->pid & GENMASK_ULL(63, 48)) || 2524 I3C_PID_RND_LOWER_32BITS(boardinfo->pid)) 2525 return -EINVAL; 2526 2527 boardinfo->init_dyn_addr = init_dyn_addr; 2528 boardinfo->of_node = of_node_get(node); 2529 list_add_tail(&boardinfo->node, &master->boardinfo.i3c); 2530 2531 return 0; 2532 } 2533 2534 static int of_i3c_master_add_dev(struct i3c_master_controller *master, 2535 struct device_node *node) 2536 { 2537 u32 reg[3]; 2538 int ret; 2539 2540 if (!master) 2541 return -EINVAL; 2542 2543 ret = of_property_read_u32_array(node, "reg", reg, ARRAY_SIZE(reg)); 2544 if (ret) 2545 return ret; 2546 2547 /* 2548 * The manufacturer ID can't be 0. If reg[1] == 0 that means we're 2549 * dealing with an I2C device. 2550 */ 2551 if (!reg[1]) 2552 ret = of_i3c_master_add_i2c_boardinfo(master, node, reg); 2553 else 2554 ret = of_i3c_master_add_i3c_boardinfo(master, node, reg); 2555 2556 return ret; 2557 } 2558 2559 static int of_populate_i3c_bus(struct i3c_master_controller *master) 2560 { 2561 struct device *dev = &master->dev; 2562 struct device_node *i3cbus_np = dev->of_node; 2563 int ret; 2564 u32 val; 2565 2566 if (!i3cbus_np) 2567 return 0; 2568 2569 for_each_available_child_of_node_scoped(i3cbus_np, node) { 2570 ret = of_i3c_master_add_dev(master, node); 2571 if (ret) 2572 return ret; 2573 } 2574 2575 /* 2576 * The user might want to limit I2C and I3C speed in case some devices 2577 * on the bus are not supporting typical rates, or if the bus topology 2578 * prevents it from using max possible rate. 2579 */ 2580 if (!of_property_read_u32(i3cbus_np, "i2c-scl-hz", &val)) 2581 master->bus.scl_rate.i2c = val; 2582 2583 if (!of_property_read_u32(i3cbus_np, "i3c-scl-hz", &val)) 2584 master->bus.scl_rate.i3c = val; 2585 2586 return 0; 2587 } 2588 2589 static int i3c_master_i2c_adapter_xfer(struct i2c_adapter *adap, 2590 struct i2c_msg *xfers, int nxfers) 2591 { 2592 struct i3c_master_controller *master = i2c_adapter_to_i3c_master(adap); 2593 struct i2c_dev_desc *dev; 2594 int i, ret; 2595 u16 addr; 2596 2597 if (!xfers || !master || nxfers <= 0) 2598 return -EINVAL; 2599 2600 if (!master->ops->i2c_xfers) 2601 return -EOPNOTSUPP; 2602 2603 /* Doing transfers to different devices is not supported. */ 2604 addr = xfers[0].addr; 2605 for (i = 1; i < nxfers; i++) { 2606 if (addr != xfers[i].addr) 2607 return -EOPNOTSUPP; 2608 } 2609 2610 ret = i3c_master_rpm_get(master); 2611 if (ret) 2612 return ret; 2613 2614 i3c_bus_normaluse_lock(&master->bus); 2615 dev = i3c_master_find_i2c_dev_by_addr(master, addr); 2616 if (!dev) 2617 ret = -ENOENT; 2618 else 2619 ret = master->ops->i2c_xfers(dev, xfers, nxfers); 2620 i3c_bus_normaluse_unlock(&master->bus); 2621 2622 i3c_master_rpm_put(master); 2623 2624 return ret ? ret : nxfers; 2625 } 2626 2627 static u32 i3c_master_i2c_funcs(struct i2c_adapter *adapter) 2628 { 2629 return I2C_FUNC_SMBUS_EMUL | I2C_FUNC_I2C; 2630 } 2631 2632 static u8 i3c_master_i2c_get_lvr(struct i2c_client *client) 2633 { 2634 /* Fall back to no spike filters and FM bus mode. */ 2635 u8 lvr = I3C_LVR_I2C_INDEX(2) | I3C_LVR_I2C_FM_MODE; 2636 u32 reg[3]; 2637 2638 if (!of_property_read_u32_array(client->dev.of_node, "reg", reg, ARRAY_SIZE(reg))) 2639 lvr = reg[2]; 2640 2641 return lvr; 2642 } 2643 2644 static int i3c_master_i2c_attach(struct i2c_adapter *adap, struct i2c_client *client) 2645 { 2646 struct i3c_master_controller *master = i2c_adapter_to_i3c_master(adap); 2647 enum i3c_addr_slot_status status; 2648 struct i2c_dev_desc *i2cdev; 2649 int ret; 2650 2651 /* Already added by board info? */ 2652 if (i3c_master_find_i2c_dev_by_addr(master, client->addr)) 2653 return 0; 2654 2655 status = i3c_bus_get_addr_slot_status(&master->bus, client->addr); 2656 if (status != I3C_ADDR_SLOT_FREE) 2657 return -EBUSY; 2658 2659 i3c_bus_set_addr_slot_status(&master->bus, client->addr, 2660 I3C_ADDR_SLOT_I2C_DEV); 2661 2662 i2cdev = i3c_master_alloc_i2c_dev(master, client->addr, 2663 i3c_master_i2c_get_lvr(client)); 2664 if (IS_ERR(i2cdev)) { 2665 ret = PTR_ERR(i2cdev); 2666 goto out_clear_status; 2667 } 2668 2669 ret = i3c_master_attach_i2c_dev(master, i2cdev); 2670 if (ret) 2671 goto out_free_dev; 2672 2673 return 0; 2674 2675 out_free_dev: 2676 i3c_master_free_i2c_dev(i2cdev); 2677 out_clear_status: 2678 i3c_bus_set_addr_slot_status(&master->bus, client->addr, 2679 I3C_ADDR_SLOT_FREE); 2680 2681 return ret; 2682 } 2683 2684 static int i3c_master_i2c_detach(struct i2c_adapter *adap, struct i2c_client *client) 2685 { 2686 struct i3c_master_controller *master = i2c_adapter_to_i3c_master(adap); 2687 struct i2c_dev_desc *dev; 2688 2689 dev = i3c_master_find_i2c_dev_by_addr(master, client->addr); 2690 if (!dev) 2691 return -ENODEV; 2692 2693 i3c_master_detach_i2c_dev(dev); 2694 i3c_bus_set_addr_slot_status(&master->bus, dev->addr, 2695 I3C_ADDR_SLOT_FREE); 2696 i3c_master_free_i2c_dev(dev); 2697 2698 return 0; 2699 } 2700 2701 static const struct i2c_algorithm i3c_master_i2c_algo = { 2702 .master_xfer = i3c_master_i2c_adapter_xfer, 2703 .functionality = i3c_master_i2c_funcs, 2704 }; 2705 2706 static int i3c_i2c_notifier_call(struct notifier_block *nb, unsigned long action, 2707 void *data) 2708 { 2709 struct i2c_adapter *adap; 2710 struct i2c_client *client; 2711 struct device *dev = data; 2712 struct i3c_master_controller *master; 2713 int ret; 2714 2715 if (dev->type != &i2c_client_type) 2716 return 0; 2717 2718 client = to_i2c_client(dev); 2719 adap = client->adapter; 2720 2721 if (adap->algo != &i3c_master_i2c_algo) 2722 return 0; 2723 2724 master = i2c_adapter_to_i3c_master(adap); 2725 2726 ret = i3c_master_rpm_get(master); 2727 if (ret) 2728 return ret; 2729 2730 i3c_bus_maintenance_lock(&master->bus); 2731 switch (action) { 2732 case BUS_NOTIFY_ADD_DEVICE: 2733 ret = i3c_master_i2c_attach(adap, client); 2734 break; 2735 case BUS_NOTIFY_DEL_DEVICE: 2736 ret = i3c_master_i2c_detach(adap, client); 2737 break; 2738 default: 2739 ret = -EINVAL; 2740 } 2741 i3c_bus_maintenance_unlock(&master->bus); 2742 2743 i3c_master_rpm_put(master); 2744 2745 return ret; 2746 } 2747 2748 static struct notifier_block i2cdev_notifier = { 2749 .notifier_call = i3c_i2c_notifier_call, 2750 }; 2751 2752 static int i3c_master_i2c_adapter_init(struct i3c_master_controller *master) 2753 { 2754 struct i2c_adapter *adap = i3c_master_to_i2c_adapter(master); 2755 struct i2c_dev_desc *i2cdev; 2756 struct i2c_dev_boardinfo *i2cboardinfo; 2757 int ret, id; 2758 2759 adap->dev.parent = master->dev.parent; 2760 adap->owner = master->dev.parent->driver->owner; 2761 adap->algo = &i3c_master_i2c_algo; 2762 strscpy(adap->name, dev_name(master->dev.parent), sizeof(adap->name)); 2763 adap->timeout = HZ; 2764 adap->retries = 3; 2765 2766 id = of_alias_get_id(master->dev.of_node, "i2c"); 2767 if (id >= 0) { 2768 adap->nr = id; 2769 ret = i2c_add_numbered_adapter(adap); 2770 } else { 2771 ret = i2c_add_adapter(adap); 2772 } 2773 if (ret) 2774 return ret; 2775 2776 /* 2777 * We silently ignore failures here. The bus should keep working 2778 * correctly even if one or more i2c devices are not registered. 2779 */ 2780 list_for_each_entry(i2cboardinfo, &master->boardinfo.i2c, node) { 2781 i2cdev = i3c_master_find_i2c_dev_by_addr(master, 2782 i2cboardinfo->base.addr); 2783 if (WARN_ON(!i2cdev)) 2784 continue; 2785 i2cdev->dev = i2c_new_client_device(adap, &i2cboardinfo->base); 2786 } 2787 2788 return 0; 2789 } 2790 2791 static void i3c_master_i2c_adapter_cleanup(struct i3c_master_controller *master) 2792 { 2793 struct i2c_dev_desc *i2cdev; 2794 2795 i2c_del_adapter(&master->i2c); 2796 2797 i3c_bus_for_each_i2cdev(&master->bus, i2cdev) 2798 i2cdev->dev = NULL; 2799 } 2800 2801 static void i3c_master_unregister_i3c_devs(struct i3c_master_controller *master) 2802 { 2803 struct i3c_dev_desc *i3cdev; 2804 2805 i3c_bus_for_each_i3cdev(&master->bus, i3cdev) { 2806 if (!i3cdev->dev) 2807 continue; 2808 2809 i3cdev->dev->desc = NULL; 2810 if (device_is_registered(&i3cdev->dev->dev)) 2811 device_unregister(&i3cdev->dev->dev); 2812 else 2813 put_device(&i3cdev->dev->dev); 2814 i3cdev->dev = NULL; 2815 } 2816 } 2817 2818 /** 2819 * i3c_master_queue_ibi() - Queue an IBI 2820 * @dev: the device this IBI is coming from 2821 * @slot: the IBI slot used to store the payload 2822 * 2823 * Queue an IBI to the controller workqueue. The IBI handler attached to 2824 * the dev will be called from a workqueue context. 2825 */ 2826 void i3c_master_queue_ibi(struct i3c_dev_desc *dev, struct i3c_ibi_slot *slot) 2827 { 2828 if (!dev->ibi || !slot) 2829 return; 2830 2831 atomic_inc(&dev->ibi->pending_ibis); 2832 queue_work(dev->ibi->wq, &slot->work); 2833 } 2834 EXPORT_SYMBOL_GPL(i3c_master_queue_ibi); 2835 2836 static void i3c_master_handle_ibi(struct work_struct *work) 2837 { 2838 struct i3c_ibi_slot *slot = container_of(work, struct i3c_ibi_slot, 2839 work); 2840 struct i3c_dev_desc *dev = slot->dev; 2841 struct i3c_master_controller *master = i3c_dev_get_master(dev); 2842 struct i3c_ibi_payload payload; 2843 2844 payload.data = slot->data; 2845 payload.len = slot->len; 2846 2847 if (dev->dev) 2848 dev->ibi->handler(dev->dev, &payload); 2849 2850 master->ops->recycle_ibi_slot(dev, slot); 2851 if (atomic_dec_and_test(&dev->ibi->pending_ibis)) 2852 complete(&dev->ibi->all_ibis_handled); 2853 } 2854 2855 static void i3c_master_init_ibi_slot(struct i3c_dev_desc *dev, 2856 struct i3c_ibi_slot *slot) 2857 { 2858 slot->dev = dev; 2859 INIT_WORK(&slot->work, i3c_master_handle_ibi); 2860 } 2861 2862 struct i3c_generic_ibi_slot { 2863 struct list_head node; 2864 struct i3c_ibi_slot base; 2865 }; 2866 2867 struct i3c_generic_ibi_pool { 2868 spinlock_t lock; 2869 unsigned int num_slots; 2870 void *payload_buf; 2871 struct list_head free_slots; 2872 struct list_head pending; 2873 struct i3c_generic_ibi_slot slots[] __counted_by(num_slots); 2874 }; 2875 2876 /** 2877 * i3c_generic_ibi_free_pool() - Free a generic IBI pool 2878 * @pool: the IBI pool to free 2879 * 2880 * Free all IBI slots allated by a generic IBI pool. 2881 */ 2882 void i3c_generic_ibi_free_pool(struct i3c_generic_ibi_pool *pool) 2883 { 2884 struct i3c_generic_ibi_slot *slot; 2885 unsigned int nslots = 0; 2886 2887 while (!list_empty(&pool->free_slots)) { 2888 slot = list_first_entry(&pool->free_slots, 2889 struct i3c_generic_ibi_slot, node); 2890 list_del(&slot->node); 2891 nslots++; 2892 } 2893 2894 /* 2895 * If the number of freed slots is not equal to the number of allocated 2896 * slots we have a leak somewhere. 2897 */ 2898 WARN_ON(nslots != pool->num_slots); 2899 2900 kfree(pool->payload_buf); 2901 kfree(pool); 2902 } 2903 EXPORT_SYMBOL_GPL(i3c_generic_ibi_free_pool); 2904 2905 /** 2906 * i3c_generic_ibi_alloc_pool() - Create a generic IBI pool 2907 * @dev: the device this pool will be used for 2908 * @req: IBI setup request describing what the device driver expects 2909 * 2910 * Create a generic IBI pool based on the information provided in @req. 2911 * 2912 * Return: a valid IBI pool in case of success, an ERR_PTR() otherwise. 2913 */ 2914 struct i3c_generic_ibi_pool * 2915 i3c_generic_ibi_alloc_pool(struct i3c_dev_desc *dev, 2916 const struct i3c_ibi_setup *req) 2917 { 2918 struct i3c_generic_ibi_pool *pool; 2919 struct i3c_generic_ibi_slot *slot; 2920 unsigned int i; 2921 int ret; 2922 2923 pool = kzalloc_flex(*pool, slots, req->num_slots); 2924 if (!pool) 2925 return ERR_PTR(-ENOMEM); 2926 2927 pool->num_slots = req->num_slots; 2928 2929 spin_lock_init(&pool->lock); 2930 INIT_LIST_HEAD(&pool->free_slots); 2931 INIT_LIST_HEAD(&pool->pending); 2932 2933 if (req->max_payload_len) { 2934 pool->payload_buf = kcalloc(req->num_slots, 2935 req->max_payload_len, GFP_KERNEL); 2936 if (!pool->payload_buf) { 2937 ret = -ENOMEM; 2938 goto err_free_pool; 2939 } 2940 } 2941 2942 for (i = 0; i < req->num_slots; i++) { 2943 slot = &pool->slots[i]; 2944 i3c_master_init_ibi_slot(dev, &slot->base); 2945 2946 if (req->max_payload_len) 2947 slot->base.data = pool->payload_buf + 2948 (i * req->max_payload_len); 2949 2950 list_add_tail(&slot->node, &pool->free_slots); 2951 } 2952 2953 return pool; 2954 2955 err_free_pool: 2956 i3c_generic_ibi_free_pool(pool); 2957 return ERR_PTR(ret); 2958 } 2959 EXPORT_SYMBOL_GPL(i3c_generic_ibi_alloc_pool); 2960 2961 /** 2962 * i3c_generic_ibi_get_free_slot() - Get a free slot from a generic IBI pool 2963 * @pool: the pool to query an IBI slot on 2964 * 2965 * Search for a free slot in a generic IBI pool. 2966 * The slot should be returned to the pool using i3c_generic_ibi_recycle_slot() 2967 * when it's no longer needed. 2968 * 2969 * Return: a pointer to a free slot, or NULL if there's no free slot available. 2970 */ 2971 struct i3c_ibi_slot * 2972 i3c_generic_ibi_get_free_slot(struct i3c_generic_ibi_pool *pool) 2973 { 2974 struct i3c_generic_ibi_slot *slot; 2975 unsigned long flags; 2976 2977 spin_lock_irqsave(&pool->lock, flags); 2978 slot = list_first_entry_or_null(&pool->free_slots, 2979 struct i3c_generic_ibi_slot, node); 2980 if (slot) 2981 list_del(&slot->node); 2982 spin_unlock_irqrestore(&pool->lock, flags); 2983 2984 return slot ? &slot->base : NULL; 2985 } 2986 EXPORT_SYMBOL_GPL(i3c_generic_ibi_get_free_slot); 2987 2988 /** 2989 * i3c_generic_ibi_recycle_slot() - Return a slot to a generic IBI pool 2990 * @pool: the pool to return the IBI slot to 2991 * @s: IBI slot to recycle 2992 * 2993 * Add an IBI slot back to its generic IBI pool. Should be called from the 2994 * master driver struct_master_controller_ops->recycle_ibi() method. 2995 */ 2996 void i3c_generic_ibi_recycle_slot(struct i3c_generic_ibi_pool *pool, 2997 struct i3c_ibi_slot *s) 2998 { 2999 struct i3c_generic_ibi_slot *slot; 3000 unsigned long flags; 3001 3002 if (!s) 3003 return; 3004 3005 slot = container_of(s, struct i3c_generic_ibi_slot, base); 3006 spin_lock_irqsave(&pool->lock, flags); 3007 list_add_tail(&slot->node, &pool->free_slots); 3008 spin_unlock_irqrestore(&pool->lock, flags); 3009 } 3010 EXPORT_SYMBOL_GPL(i3c_generic_ibi_recycle_slot); 3011 3012 static int i3c_master_check_ops(const struct i3c_master_controller_ops *ops) 3013 { 3014 if (!ops || !ops->bus_init || !ops->i3c_xfers || 3015 !ops->send_ccc_cmd || !ops->do_daa || !ops->i2c_xfers) 3016 return -EINVAL; 3017 3018 if (ops->request_ibi && 3019 (!ops->enable_ibi || !ops->disable_ibi || !ops->free_ibi || 3020 !ops->recycle_ibi_slot)) 3021 return -EINVAL; 3022 3023 return 0; 3024 } 3025 3026 /** 3027 * i3c_master_register() - register an I3C master 3028 * @master: master used to send frames on the bus 3029 * @parent: the parent device (the one that provides this I3C master 3030 * controller) 3031 * @ops: the master controller operations 3032 * @secondary: true if you are registering a secondary master. Will return 3033 * -EOPNOTSUPP if set to true since secondary masters are not yet 3034 * supported 3035 * 3036 * This function takes care of everything for you: 3037 * 3038 * - creates and initializes the I3C bus 3039 * - populates the bus with static I2C devs if @parent->of_node is not 3040 * NULL 3041 * - registers all I3C devices added by the controller during bus 3042 * initialization 3043 * - registers the I2C adapter and all I2C devices 3044 * 3045 * Return: 0 in case of success, a negative error code otherwise. 3046 */ 3047 int i3c_master_register(struct i3c_master_controller *master, 3048 struct device *parent, 3049 const struct i3c_master_controller_ops *ops, 3050 bool secondary) 3051 { 3052 unsigned long i2c_scl_rate = I3C_BUS_I2C_FM_PLUS_SCL_MAX_RATE; 3053 struct i3c_bus *i3cbus = i3c_master_get_bus(master); 3054 enum i3c_bus_mode mode = I3C_BUS_MODE_PURE; 3055 struct i2c_dev_boardinfo *i2cbi; 3056 int ret; 3057 3058 /* We do not support secondary masters yet. */ 3059 if (secondary) 3060 return -EOPNOTSUPP; 3061 3062 ret = i3c_master_check_ops(ops); 3063 if (ret) 3064 return ret; 3065 3066 master->dev.parent = parent; 3067 master->dev.of_node = of_node_get(parent->of_node); 3068 master->dev.bus = &i3c_bus_type; 3069 master->dev.type = &i3c_masterdev_type; 3070 master->dev.release = i3c_masterdev_release; 3071 master->ops = ops; 3072 master->secondary = secondary; 3073 INIT_LIST_HEAD(&master->boardinfo.i2c); 3074 INIT_LIST_HEAD(&master->boardinfo.i3c); 3075 3076 ret = i3c_master_rpm_get(master); 3077 if (ret) 3078 return ret; 3079 3080 device_initialize(&master->dev); 3081 3082 master->dev.dma_mask = parent->dma_mask; 3083 master->dev.coherent_dma_mask = parent->coherent_dma_mask; 3084 master->dev.dma_parms = parent->dma_parms; 3085 3086 ret = i3c_bus_init(i3cbus, master->dev.of_node); 3087 if (ret) 3088 goto err_put_dev; 3089 3090 dev_set_name(&master->dev, "i3c-%d", i3cbus->id); 3091 3092 ret = of_populate_i3c_bus(master); 3093 if (ret) 3094 goto err_put_dev; 3095 3096 list_for_each_entry(i2cbi, &master->boardinfo.i2c, node) { 3097 switch (i2cbi->lvr & I3C_LVR_I2C_INDEX_MASK) { 3098 case I3C_LVR_I2C_INDEX(0): 3099 if (mode < I3C_BUS_MODE_MIXED_FAST) 3100 mode = I3C_BUS_MODE_MIXED_FAST; 3101 break; 3102 case I3C_LVR_I2C_INDEX(1): 3103 if (mode < I3C_BUS_MODE_MIXED_LIMITED) 3104 mode = I3C_BUS_MODE_MIXED_LIMITED; 3105 break; 3106 case I3C_LVR_I2C_INDEX(2): 3107 if (mode < I3C_BUS_MODE_MIXED_SLOW) 3108 mode = I3C_BUS_MODE_MIXED_SLOW; 3109 break; 3110 default: 3111 ret = -EINVAL; 3112 goto err_put_dev; 3113 } 3114 3115 if (i2cbi->lvr & I3C_LVR_I2C_FM_MODE) 3116 i2c_scl_rate = I3C_BUS_I2C_FM_SCL_MAX_RATE; 3117 } 3118 3119 ret = i3c_bus_set_mode(i3cbus, mode, i2c_scl_rate); 3120 if (ret) 3121 goto err_put_dev; 3122 3123 master->wq = alloc_workqueue("%s", WQ_PERCPU | WQ_FREEZABLE, 0, dev_name(parent)); 3124 if (!master->wq) { 3125 ret = -ENOMEM; 3126 goto err_put_dev; 3127 } 3128 INIT_WORK(&master->hj_work, i3c_master_hj_work_fn); 3129 3130 ret = i3c_master_bus_init(master); 3131 if (ret) 3132 goto err_put_dev; 3133 3134 ret = device_add(&master->dev); 3135 if (ret) 3136 goto err_cleanup_bus; 3137 3138 /* 3139 * Expose our I3C bus as an I2C adapter so that I2C devices are exposed 3140 * through the I2C subsystem. 3141 */ 3142 ret = i3c_master_i2c_adapter_init(master); 3143 if (ret) 3144 goto err_del_dev; 3145 3146 i3c_bus_notify(i3cbus, I3C_NOTIFY_BUS_ADD); 3147 3148 pm_runtime_no_callbacks(&master->dev); 3149 pm_suspend_ignore_children(&master->dev, true); 3150 pm_runtime_enable(&master->dev); 3151 3152 /* 3153 * We're done initializing the bus and the controller, we can now 3154 * register I3C devices discovered during the initial DAA. 3155 */ 3156 master->init_done = true; 3157 i3c_bus_normaluse_lock(&master->bus); 3158 i3c_master_register_new_i3c_devs(master); 3159 i3c_bus_normaluse_unlock(&master->bus); 3160 3161 if (master->ops->set_dev_nack_retry) 3162 device_create_file(&master->dev, &dev_attr_dev_nack_retry_count); 3163 3164 i3c_master_rpm_put(master); 3165 3166 return 0; 3167 3168 err_del_dev: 3169 device_del(&master->dev); 3170 3171 err_cleanup_bus: 3172 i3c_master_bus_cleanup(master); 3173 3174 err_put_dev: 3175 i3c_master_rpm_put(master); 3176 put_device(&master->dev); 3177 3178 return ret; 3179 } 3180 EXPORT_SYMBOL_GPL(i3c_master_register); 3181 3182 /** 3183 * i3c_master_unregister() - unregister an I3C master 3184 * @master: master used to send frames on the bus 3185 * 3186 * Basically undo everything done in i3c_master_register(). 3187 */ 3188 void i3c_master_unregister(struct i3c_master_controller *master) 3189 { 3190 i3c_bus_notify(&master->bus, I3C_NOTIFY_BUS_REMOVE); 3191 i3c_master_shutdown(master); 3192 3193 if (master->ops->set_dev_nack_retry) 3194 device_remove_file(&master->dev, &dev_attr_dev_nack_retry_count); 3195 3196 i3c_master_i2c_adapter_cleanup(master); 3197 i3c_master_unregister_i3c_devs(master); 3198 i3c_master_bus_cleanup(master); 3199 pm_runtime_disable(&master->dev); 3200 device_unregister(&master->dev); 3201 } 3202 EXPORT_SYMBOL_GPL(i3c_master_unregister); 3203 3204 int i3c_dev_setdasa_locked(struct i3c_dev_desc *dev) 3205 { 3206 struct i3c_master_controller *master; 3207 3208 if (!dev) 3209 return -ENOENT; 3210 3211 master = i3c_dev_get_master(dev); 3212 if (!master) 3213 return -EINVAL; 3214 3215 if (!dev->boardinfo || !dev->boardinfo->init_dyn_addr || 3216 !dev->boardinfo->static_addr) 3217 return -EINVAL; 3218 3219 return i3c_master_setdasa_locked(master, dev->info.static_addr, 3220 dev->boardinfo->init_dyn_addr); 3221 } 3222 3223 int i3c_dev_do_xfers_locked(struct i3c_dev_desc *dev, struct i3c_xfer *xfers, 3224 int nxfers, enum i3c_xfer_mode mode) 3225 { 3226 struct i3c_master_controller *master; 3227 3228 if (!dev) 3229 return -ENOENT; 3230 3231 master = i3c_dev_get_master(dev); 3232 if (!master || !xfers) 3233 return -EINVAL; 3234 3235 if (mode != I3C_SDR && !(master->this->info.hdr_cap & BIT(mode))) 3236 return -EOPNOTSUPP; 3237 3238 return master->ops->i3c_xfers(dev, xfers, nxfers, mode); 3239 } 3240 3241 int i3c_dev_disable_ibi_locked(struct i3c_dev_desc *dev) 3242 { 3243 struct i3c_master_controller *master; 3244 int ret; 3245 3246 if (!dev->ibi) 3247 return -EINVAL; 3248 3249 master = i3c_dev_get_master(dev); 3250 ret = master->ops->disable_ibi(dev); 3251 if (ret) 3252 return ret; 3253 3254 reinit_completion(&dev->ibi->all_ibis_handled); 3255 if (atomic_read(&dev->ibi->pending_ibis)) 3256 wait_for_completion(&dev->ibi->all_ibis_handled); 3257 3258 dev->ibi->enabled = false; 3259 3260 return 0; 3261 } 3262 3263 int i3c_dev_enable_ibi_locked(struct i3c_dev_desc *dev) 3264 { 3265 struct i3c_master_controller *master = i3c_dev_get_master(dev); 3266 int ret; 3267 3268 if (!dev->ibi) 3269 return -EINVAL; 3270 3271 ret = master->ops->enable_ibi(dev); 3272 if (!ret) 3273 dev->ibi->enabled = true; 3274 3275 return ret; 3276 } 3277 3278 int i3c_dev_request_ibi_locked(struct i3c_dev_desc *dev, 3279 const struct i3c_ibi_setup *req) 3280 { 3281 struct i3c_master_controller *master = i3c_dev_get_master(dev); 3282 struct i3c_device_ibi_info *ibi; 3283 int ret; 3284 3285 if (!master->ops->request_ibi) 3286 return -EOPNOTSUPP; 3287 3288 if (dev->ibi) 3289 return -EBUSY; 3290 3291 ibi = kzalloc_obj(*ibi); 3292 if (!ibi) 3293 return -ENOMEM; 3294 3295 ibi->wq = alloc_ordered_workqueue(dev_name(i3cdev_to_dev(dev->dev)), WQ_MEM_RECLAIM); 3296 if (!ibi->wq) { 3297 kfree(ibi); 3298 return -ENOMEM; 3299 } 3300 3301 atomic_set(&ibi->pending_ibis, 0); 3302 init_completion(&ibi->all_ibis_handled); 3303 ibi->handler = req->handler; 3304 ibi->max_payload_len = req->max_payload_len; 3305 ibi->num_slots = req->num_slots; 3306 3307 dev->ibi = ibi; 3308 ret = master->ops->request_ibi(dev, req); 3309 if (ret) { 3310 kfree(ibi); 3311 dev->ibi = NULL; 3312 } 3313 3314 return ret; 3315 } 3316 3317 void i3c_dev_free_ibi_locked(struct i3c_dev_desc *dev) 3318 { 3319 struct i3c_master_controller *master = i3c_dev_get_master(dev); 3320 3321 if (!dev->ibi) 3322 return; 3323 3324 if (dev->ibi->enabled) { 3325 int ret; 3326 3327 dev_err(&master->dev, "Freeing IBI that is still enabled\n"); 3328 ret = i3c_master_rpm_get(master); 3329 if (!ret) { 3330 ret = i3c_dev_disable_ibi_locked(dev); 3331 i3c_master_rpm_put(master); 3332 } 3333 if (ret) 3334 dev_err(&master->dev, "Failed to disable IBI before freeing\n"); 3335 } 3336 3337 master->ops->free_ibi(dev); 3338 3339 if (dev->ibi->wq) { 3340 destroy_workqueue(dev->ibi->wq); 3341 dev->ibi->wq = NULL; 3342 } 3343 3344 kfree(dev->ibi); 3345 dev->ibi = NULL; 3346 } 3347 3348 static int __init i3c_init(void) 3349 { 3350 int res; 3351 3352 res = of_alias_get_highest_id("i3c"); 3353 if (res >= 0) { 3354 mutex_lock(&i3c_core_lock); 3355 __i3c_first_dynamic_bus_num = res + 1; 3356 mutex_unlock(&i3c_core_lock); 3357 } 3358 3359 res = bus_register_notifier(&i2c_bus_type, &i2cdev_notifier); 3360 if (res) 3361 return res; 3362 3363 res = bus_register(&i3c_bus_type); 3364 if (res) 3365 goto out_unreg_notifier; 3366 3367 return 0; 3368 3369 out_unreg_notifier: 3370 bus_unregister_notifier(&i2c_bus_type, &i2cdev_notifier); 3371 3372 return res; 3373 } 3374 subsys_initcall(i3c_init); 3375 3376 static void __exit i3c_exit(void) 3377 { 3378 bus_unregister_notifier(&i2c_bus_type, &i2cdev_notifier); 3379 idr_destroy(&i3c_bus_idr); 3380 bus_unregister(&i3c_bus_type); 3381 } 3382 module_exit(i3c_exit); 3383 3384 MODULE_AUTHOR("Boris Brezillon <boris.brezillon@bootlin.com>"); 3385 MODULE_DESCRIPTION("I3C core"); 3386 MODULE_LICENSE("GPL v2"); 3387