1 // SPDX-License-Identifier: GPL-2.0-or-later 2 /* 3 * drivers.c 4 * 5 * Copyright (c) 1999 The Puffin Group 6 * Copyright (c) 2001 Matthew Wilcox for Hewlett Packard 7 * Copyright (c) 2001-2023 Helge Deller <deller@gmx.de> 8 * Copyright (c) 2001,2002 Ryan Bradetich 9 * Copyright (c) 2004-2005 Thibaut VARENE <varenet@parisc-linux.org> 10 * 11 * The file handles registering devices and drivers, then matching them. 12 * It's the closest we get to a dating agency. 13 * 14 * If you're thinking about modifying this file, here are some gotchas to 15 * bear in mind: 16 * - 715/Mirage device paths have a dummy device between Lasi and its children 17 * - The EISA adapter may show up as a sibling or child of Wax 18 * - Dino has an optionally functional serial port. If firmware enables it, 19 * it shows up as a child of Dino. If firmware disables it, the buswalk 20 * finds it and it shows up as a child of Cujo 21 * - Dino has both parisc and pci devices as children 22 * - parisc devices are discovered in a random order, including children 23 * before parents in some cases. 24 */ 25 26 #include <linux/slab.h> 27 #include <linux/types.h> 28 #include <linux/kernel.h> 29 #include <linux/pci.h> 30 #include <linux/spinlock.h> 31 #include <linux/string.h> 32 #include <linux/export.h> 33 #include <linux/dma-map-ops.h> 34 #include <asm/hardware.h> 35 #include <asm/io.h> 36 #include <asm/pdc.h> 37 #include <asm/parisc-device.h> 38 #include <asm/ropes.h> 39 40 /* See comments in include/asm-parisc/pci.h */ 41 const struct dma_map_ops *hppa_dma_ops __ro_after_init; 42 EXPORT_SYMBOL(hppa_dma_ops); 43 44 static struct device *root; 45 46 static inline int check_dev(struct device *dev) 47 { 48 if (dev->bus == &parisc_bus_type) { 49 struct parisc_device *pdev; 50 pdev = to_parisc_device(dev); 51 return pdev->id.hw_type != HPHW_FAULTY; 52 } 53 return 1; 54 } 55 56 static struct device * 57 parse_tree_node(struct device *parent, int index, struct hardware_path *modpath); 58 59 struct recurse_struct { 60 void * obj; 61 int (*fn)(struct device *, void *); 62 }; 63 64 static int descend_children(struct device * dev, void * data) 65 { 66 struct recurse_struct * recurse_data = (struct recurse_struct *)data; 67 68 if (recurse_data->fn(dev, recurse_data->obj)) 69 return 1; 70 else 71 return device_for_each_child(dev, recurse_data, descend_children); 72 } 73 74 /** 75 * for_each_padev - Iterate over all devices in the tree 76 * @fn: Function to call for each device. 77 * @data: Data to pass to the called function. 78 * 79 * This performs a depth-first traversal of the tree, calling the 80 * function passed for each node. It calls the function for parents 81 * before children. 82 */ 83 84 static int for_each_padev(int (*fn)(struct device *, void *), void * data) 85 { 86 struct recurse_struct recurse_data = { 87 .obj = data, 88 .fn = fn, 89 }; 90 return device_for_each_child(root, &recurse_data, descend_children); 91 } 92 93 /** 94 * match_device - Report whether this driver can handle this device 95 * @driver: the PA-RISC driver to try 96 * @dev: the PA-RISC device to try 97 */ 98 static int match_device(const struct parisc_driver *driver, struct parisc_device *dev) 99 { 100 const struct parisc_device_id *ids; 101 102 for (ids = driver->id_table; ids->sversion; ids++) { 103 if ((ids->sversion != SVERSION_ANY_ID) && 104 (ids->sversion != dev->id.sversion)) 105 continue; 106 107 if ((ids->hw_type != HWTYPE_ANY_ID) && 108 (ids->hw_type != dev->id.hw_type)) 109 continue; 110 111 if ((ids->hversion != HVERSION_ANY_ID) && 112 (ids->hversion != dev->id.hversion)) 113 continue; 114 115 return 1; 116 } 117 return 0; 118 } 119 120 static int parisc_driver_probe(struct device *dev) 121 { 122 int rc; 123 struct parisc_device *pa_dev = to_parisc_device(dev); 124 struct parisc_driver *pa_drv = to_parisc_driver(dev->driver); 125 126 rc = pa_drv->probe(pa_dev); 127 128 if (!rc) 129 pa_dev->driver = pa_drv; 130 131 return rc; 132 } 133 134 static void __exit parisc_driver_remove(struct device *dev) 135 { 136 struct parisc_device *pa_dev = to_parisc_device(dev); 137 struct parisc_driver *pa_drv = to_parisc_driver(dev->driver); 138 139 if (pa_drv->remove) 140 pa_drv->remove(pa_dev); 141 } 142 143 144 /** 145 * register_parisc_driver - Register this driver if it can handle a device 146 * @driver: the PA-RISC driver to try 147 */ 148 int register_parisc_driver(struct parisc_driver *driver) 149 { 150 /* FIXME: we need this because apparently the sti 151 * driver can be registered twice */ 152 if (driver->drv.name) { 153 pr_warn("BUG: skipping previously registered driver %s\n", 154 driver->name); 155 return 1; 156 } 157 158 if (!driver->probe) { 159 pr_warn("BUG: driver %s has no probe routine\n", driver->name); 160 return 1; 161 } 162 163 driver->drv.bus = &parisc_bus_type; 164 165 /* We install our own probe and remove routines */ 166 WARN_ON(driver->drv.probe != NULL); 167 WARN_ON(driver->drv.remove != NULL); 168 169 driver->drv.name = driver->name; 170 171 return driver_register(&driver->drv); 172 } 173 EXPORT_SYMBOL(register_parisc_driver); 174 175 176 struct match_count { 177 struct parisc_driver * driver; 178 int count; 179 }; 180 181 static int match_and_count(struct device * dev, void * data) 182 { 183 struct match_count * m = data; 184 struct parisc_device * pdev = to_parisc_device(dev); 185 186 if (check_dev(dev)) { 187 if (match_device(m->driver, pdev)) 188 m->count++; 189 } 190 return 0; 191 } 192 193 /** 194 * count_parisc_driver - count # of devices this driver would match 195 * @driver: the PA-RISC driver to try 196 * 197 * Use by IOMMU support to "guess" the right size IOPdir. 198 * Formula is something like memsize/(num_iommu * entry_size). 199 */ 200 int __init count_parisc_driver(struct parisc_driver *driver) 201 { 202 struct match_count m = { 203 .driver = driver, 204 .count = 0, 205 }; 206 207 for_each_padev(match_and_count, &m); 208 209 return m.count; 210 } 211 212 213 214 /** 215 * unregister_parisc_driver - Unregister this driver from the list of drivers 216 * @driver: the PA-RISC driver to unregister 217 */ 218 int unregister_parisc_driver(struct parisc_driver *driver) 219 { 220 driver_unregister(&driver->drv); 221 return 0; 222 } 223 EXPORT_SYMBOL(unregister_parisc_driver); 224 225 struct find_data { 226 unsigned long hpa; 227 struct parisc_device * dev; 228 }; 229 230 static int find_device(struct device * dev, void * data) 231 { 232 struct parisc_device * pdev = to_parisc_device(dev); 233 struct find_data * d = (struct find_data*)data; 234 235 if (check_dev(dev)) { 236 if (pdev->hpa.start == d->hpa) { 237 d->dev = pdev; 238 return 1; 239 } 240 } 241 return 0; 242 } 243 244 static struct parisc_device *find_device_by_addr(unsigned long hpa) 245 { 246 struct find_data d = { 247 .hpa = hpa, 248 }; 249 int ret; 250 251 ret = for_each_padev(find_device, &d); 252 return ret ? d.dev : NULL; 253 } 254 255 static int __init is_IKE_device(struct device *dev, void *data) 256 { 257 struct parisc_device *pdev = to_parisc_device(dev); 258 259 if (!check_dev(dev)) 260 return 0; 261 if (pdev->id.hw_type != HPHW_BCPORT) 262 return 0; 263 if (IS_IKE(pdev) || 264 (pdev->id.hversion == REO_MERCED_PORT) || 265 (pdev->id.hversion == REOG_MERCED_PORT)) { 266 return 1; 267 } 268 return 0; 269 } 270 271 int __init machine_has_merced_bus(void) 272 { 273 int ret; 274 275 ret = for_each_padev(is_IKE_device, NULL); 276 return ret ? 1 : 0; 277 } 278 279 /** 280 * find_pa_parent_type - Find a parent of a specific type 281 * @padev: The device to start searching from 282 * @type: The device type to search for. 283 * 284 * Walks up the device tree looking for a device of the specified type. 285 * If it finds it, it returns it. If not, it returns NULL. 286 */ 287 const struct parisc_device * 288 find_pa_parent_type(const struct parisc_device *padev, int type) 289 { 290 const struct device *dev = &padev->dev; 291 while (dev != root) { 292 struct parisc_device *candidate = to_parisc_device(dev); 293 if (candidate->id.hw_type == type) 294 return candidate; 295 dev = dev->parent; 296 } 297 298 return NULL; 299 } 300 301 /* 302 * get_node_path fills in @path with the firmware path to the device. 303 * Note that if @node is a parisc device, we don't fill in the 'mod' field. 304 * This is because both callers pass the parent and fill in the mod 305 * themselves. If @node is a PCI device, we do fill it in, even though this 306 * is inconsistent. 307 */ 308 static void get_node_path(struct device *dev, struct hardware_path *path) 309 { 310 int i = 5; 311 memset(&path->bc, -1, 6); 312 313 if (dev_is_pci(dev)) { 314 unsigned int devfn = to_pci_dev(dev)->devfn; 315 path->mod = PCI_FUNC(devfn); 316 path->bc[i--] = PCI_SLOT(devfn); 317 dev = dev->parent; 318 } 319 320 while (dev != root) { 321 if (dev_is_pci(dev)) { 322 unsigned int devfn = to_pci_dev(dev)->devfn; 323 path->bc[i--] = PCI_SLOT(devfn) | (PCI_FUNC(devfn)<< 5); 324 } else if (dev->bus == &parisc_bus_type) { 325 path->bc[i--] = to_parisc_device(dev)->hw_path; 326 } 327 dev = dev->parent; 328 } 329 } 330 331 static char *print_hwpath(struct hardware_path *path, char *output) 332 { 333 int i; 334 for (i = 0; i < 6; i++) { 335 if (path->bc[i] == -1) 336 continue; 337 output += sprintf(output, "%u/", (unsigned char) path->bc[i]); 338 } 339 output += sprintf(output, "%u", (unsigned char) path->mod); 340 return output; 341 } 342 343 /** 344 * print_pa_hwpath - Returns hardware path for PA devices 345 * @dev: The device to return the path for 346 * @output: Pointer to a previously-allocated array to place the path in. 347 * 348 * This function fills in the output array with a human-readable path 349 * to a PA device. This string is compatible with that used by PDC, and 350 * may be printed on the outside of the box. 351 */ 352 char *print_pa_hwpath(struct parisc_device *dev, char *output) 353 { 354 struct hardware_path path; 355 356 get_node_path(dev->dev.parent, &path); 357 path.mod = dev->hw_path; 358 return print_hwpath(&path, output); 359 } 360 EXPORT_SYMBOL(print_pa_hwpath); 361 362 #if defined(CONFIG_PCI) || defined(CONFIG_ISA) 363 /** 364 * get_pci_node_path - Determines the hardware path for a PCI device 365 * @pdev: The device to return the path for 366 * @path: Pointer to a previously-allocated array to place the path in. 367 * 368 * This function fills in the hardware_path structure with the route to 369 * the specified PCI device. This structure is suitable for passing to 370 * PDC calls. 371 */ 372 void get_pci_node_path(struct pci_dev *pdev, struct hardware_path *path) 373 { 374 get_node_path(&pdev->dev, path); 375 } 376 EXPORT_SYMBOL(get_pci_node_path); 377 378 /** 379 * print_pci_hwpath - Returns hardware path for PCI devices 380 * @dev: The device to return the path for 381 * @output: Pointer to a previously-allocated array to place the path in. 382 * 383 * This function fills in the output array with a human-readable path 384 * to a PCI device. This string is compatible with that used by PDC, and 385 * may be printed on the outside of the box. 386 */ 387 char *print_pci_hwpath(struct pci_dev *dev, char *output) 388 { 389 struct hardware_path path; 390 391 get_pci_node_path(dev, &path); 392 return print_hwpath(&path, output); 393 } 394 EXPORT_SYMBOL(print_pci_hwpath); 395 396 #endif /* defined(CONFIG_PCI) || defined(CONFIG_ISA) */ 397 398 static void setup_bus_id(struct parisc_device *padev) 399 { 400 struct hardware_path path; 401 char name[28]; 402 char *output = name; 403 int i; 404 405 get_node_path(padev->dev.parent, &path); 406 407 for (i = 0; i < 6; i++) { 408 if (path.bc[i] == -1) 409 continue; 410 output += sprintf(output, "%u:", (unsigned char) path.bc[i]); 411 } 412 sprintf(output, "%u", (unsigned char) padev->hw_path); 413 dev_set_name(&padev->dev, name); 414 } 415 416 static struct parisc_device * __init create_tree_node(char id, 417 struct device *parent) 418 { 419 struct parisc_device *dev = kzalloc_obj(*dev); 420 if (!dev) 421 return NULL; 422 423 dev->hw_path = id; 424 dev->id.hw_type = HPHW_FAULTY; 425 426 dev->dev.parent = parent; 427 setup_bus_id(dev); 428 429 dev->dev.bus = &parisc_bus_type; 430 dev->dma_mask = 0xffffffffUL; /* PARISC devices are 32-bit */ 431 432 /* make the generic dma mask a pointer to the parisc one */ 433 dev->dev.dma_mask = &dev->dma_mask; 434 dev->dev.coherent_dma_mask = dev->dma_mask; 435 if (device_register(&dev->dev)) { 436 put_device(&dev->dev); 437 return NULL; 438 } 439 440 return dev; 441 } 442 443 struct match_id_data { 444 char id; 445 struct parisc_device * dev; 446 }; 447 448 static int match_by_id(struct device * dev, void * data) 449 { 450 struct parisc_device * pdev = to_parisc_device(dev); 451 struct match_id_data * d = data; 452 453 if (pdev->hw_path == d->id) { 454 d->dev = pdev; 455 return 1; 456 } 457 return 0; 458 } 459 460 /** 461 * alloc_tree_node - returns a device entry in the iotree 462 * @parent: the parent node in the tree 463 * @id: the element of the module path for this entry 464 * 465 * Checks all the children of @parent for a matching @id. If none 466 * found, it allocates a new device and returns it. 467 */ 468 static struct parisc_device * __init alloc_tree_node( 469 struct device *parent, char id) 470 { 471 struct match_id_data d = { 472 .id = id, 473 }; 474 if (device_for_each_child(parent, &d, match_by_id)) 475 return d.dev; 476 else 477 return create_tree_node(id, parent); 478 } 479 480 static struct parisc_device *create_parisc_device(struct hardware_path *modpath) 481 { 482 int i; 483 struct device *parent = root; 484 for (i = 0; i < 6; i++) { 485 if (modpath->bc[i] == -1) 486 continue; 487 parent = &alloc_tree_node(parent, modpath->bc[i])->dev; 488 } 489 return alloc_tree_node(parent, modpath->mod); 490 } 491 492 struct parisc_device * __init 493 alloc_pa_dev(unsigned long hpa, struct hardware_path *mod_path) 494 { 495 int status; 496 unsigned long bytecnt; 497 u8 iodc_data[32]; 498 struct parisc_device *dev; 499 const char *name; 500 501 /* Check to make sure this device has not already been added - Ryan */ 502 if (find_device_by_addr(hpa) != NULL) 503 return NULL; 504 505 status = pdc_iodc_read(&bytecnt, hpa, 0, &iodc_data, 32); 506 if (status != PDC_OK) 507 return NULL; 508 509 dev = create_parisc_device(mod_path); 510 if (dev->id.hw_type != HPHW_FAULTY) { 511 pr_err("Two devices have hardware path [%s]. IODC data for second device: %7phN\n" 512 "Rearranging GSC cards sometimes helps\n", 513 parisc_pathname(dev), iodc_data); 514 return NULL; 515 } 516 517 dev->id.hw_type = iodc_data[3] & 0x1f; 518 dev->id.hversion = (iodc_data[0] << 4) | ((iodc_data[1] & 0xf0) >> 4); 519 dev->id.hversion_rev = iodc_data[1] & 0x0f; 520 dev->id.sversion = ((iodc_data[4] & 0x0f) << 16) | 521 (iodc_data[5] << 8) | iodc_data[6]; 522 dev->hpa.start = hpa; 523 /* This is awkward. The STI spec says that gfx devices may occupy 524 * 32MB or 64MB. Unfortunately, we don't know how to tell whether 525 * it's the former or the latter. Assumptions either way can hurt us. 526 */ 527 if (hpa == 0xf4000000 || hpa == 0xf8000000) { 528 dev->hpa.end = hpa + 0x03ffffff; 529 } else if (hpa == 0xf6000000 || hpa == 0xfa000000) { 530 dev->hpa.end = hpa + 0x01ffffff; 531 } else { 532 dev->hpa.end = hpa + 0xfff; 533 } 534 dev->hpa.flags = IORESOURCE_MEM; 535 dev->hpa.name = dev->name; 536 name = parisc_hardware_description(&dev->id) ? : "unknown"; 537 snprintf(dev->name, sizeof(dev->name), "%s [%s]", 538 name, parisc_pathname(dev)); 539 540 /* Silently fail things like mouse ports which are subsumed within 541 * the keyboard controller 542 */ 543 if ((hpa & 0xfff) == 0 && insert_resource(&iomem_resource, &dev->hpa)) 544 pr_warn("Unable to claim HPA %lx for device %s\n", hpa, name); 545 546 return dev; 547 } 548 549 static int parisc_generic_match(struct device *dev, const struct device_driver *drv) 550 { 551 return match_device(to_parisc_driver(drv), to_parisc_device(dev)); 552 } 553 554 static ssize_t make_modalias(const struct device *dev, char *buf) 555 { 556 const struct parisc_device *padev = to_parisc_device(dev); 557 const struct parisc_device_id *id = &padev->id; 558 559 return sprintf(buf, "parisc:t%02Xhv%04Xrev%02Xsv%08X\n", 560 (u8)id->hw_type, (u16)id->hversion, (u8)id->hversion_rev, 561 (u32)id->sversion); 562 } 563 564 static int parisc_uevent(const struct device *dev, struct kobj_uevent_env *env) 565 { 566 const struct parisc_device *padev; 567 char modalias[40]; 568 569 if (!dev) 570 return -ENODEV; 571 572 padev = to_parisc_device(dev); 573 if (!padev) 574 return -ENODEV; 575 576 if (add_uevent_var(env, "PARISC_NAME=%s", padev->name)) 577 return -ENOMEM; 578 579 make_modalias(dev, modalias); 580 if (add_uevent_var(env, "MODALIAS=%s", modalias)) 581 return -ENOMEM; 582 583 return 0; 584 } 585 586 #define pa_dev_attr(name, field, format_string) \ 587 static ssize_t name##_show(struct device *dev, struct device_attribute *attr, char *buf) \ 588 { \ 589 struct parisc_device *padev = to_parisc_device(dev); \ 590 return sprintf(buf, format_string, padev->field); \ 591 } \ 592 static DEVICE_ATTR_RO(name); 593 594 #define pa_dev_attr_id(field, format) pa_dev_attr(field, id.field, format) 595 596 pa_dev_attr(irq, irq, "%u\n"); 597 pa_dev_attr_id(hw_type, "0x%02x\n"); 598 pa_dev_attr(rev, id.hversion_rev, "0x%x\n"); 599 pa_dev_attr_id(hversion, "0x%03x\n"); 600 pa_dev_attr_id(sversion, "0x%05x\n"); 601 602 static ssize_t modalias_show(struct device *dev, struct device_attribute *attr, char *buf) 603 { 604 return make_modalias(dev, buf); 605 } 606 static DEVICE_ATTR_RO(modalias); 607 608 static struct attribute *parisc_device_attrs[] = { 609 &dev_attr_irq.attr, 610 &dev_attr_hw_type.attr, 611 &dev_attr_rev.attr, 612 &dev_attr_hversion.attr, 613 &dev_attr_sversion.attr, 614 &dev_attr_modalias.attr, 615 NULL, 616 }; 617 ATTRIBUTE_GROUPS(parisc_device); 618 619 const struct bus_type parisc_bus_type = { 620 .name = "parisc", 621 .match = parisc_generic_match, 622 .uevent = parisc_uevent, 623 .dev_groups = parisc_device_groups, 624 .probe = parisc_driver_probe, 625 .remove = __exit_p(parisc_driver_remove), 626 }; 627 628 /** 629 * register_parisc_device - Locate a driver to manage this device. 630 * @dev: The parisc device. 631 * 632 * Search the driver list for a driver that is willing to manage 633 * this device. 634 */ 635 int __init register_parisc_device(struct parisc_device *dev) 636 { 637 if (!dev) 638 return 0; 639 640 if (dev->driver) 641 return 1; 642 643 return 0; 644 } 645 646 /** 647 * match_pci_device - Matches a pci device against a given hardware path 648 * entry. 649 * @dev: the generic device (known to be contained by a pci_dev). 650 * @index: the current BC index 651 * @modpath: the hardware path. 652 * @return: true if the device matches the hardware path. 653 */ 654 static int match_pci_device(struct device *dev, int index, 655 struct hardware_path *modpath) 656 { 657 struct pci_dev *pdev = to_pci_dev(dev); 658 int id; 659 660 if (index == 5) { 661 /* we are at the end of the path, and on the actual device */ 662 unsigned int devfn = pdev->devfn; 663 return ((modpath->bc[5] == PCI_SLOT(devfn)) && 664 (modpath->mod == PCI_FUNC(devfn))); 665 } 666 667 /* index might be out of bounds for bc[] */ 668 if (index >= 6) 669 return 0; 670 671 id = PCI_SLOT(pdev->devfn) | (PCI_FUNC(pdev->devfn) << 5); 672 return (modpath->bc[index] == id); 673 } 674 675 /** 676 * match_parisc_device - Matches a parisc device against a given hardware 677 * path entry. 678 * @dev: the generic device (known to be contained by a parisc_device). 679 * @index: the current BC index 680 * @modpath: the hardware path. 681 * @return: true if the device matches the hardware path. 682 */ 683 static int match_parisc_device(struct device *dev, int index, 684 struct hardware_path *modpath) 685 { 686 struct parisc_device *curr = to_parisc_device(dev); 687 char id = (index == 6) ? modpath->mod : modpath->bc[index]; 688 689 return (curr->hw_path == id); 690 } 691 692 struct parse_tree_data { 693 int index; 694 struct hardware_path * modpath; 695 struct device * dev; 696 }; 697 698 static int check_parent(struct device * dev, void * data) 699 { 700 struct parse_tree_data * d = data; 701 702 if (check_dev(dev)) { 703 if (dev->bus == &parisc_bus_type) { 704 if (match_parisc_device(dev, d->index, d->modpath)) 705 d->dev = dev; 706 } else if (dev_is_pci(dev)) { 707 if (match_pci_device(dev, d->index, d->modpath)) 708 d->dev = dev; 709 } else if (dev->bus == NULL) { 710 /* we are on a bus bridge */ 711 struct device *new = parse_tree_node(dev, d->index, d->modpath); 712 if (new) 713 d->dev = new; 714 } 715 } 716 return d->dev != NULL; 717 } 718 719 /** 720 * parse_tree_node - returns a device entry in the iotree 721 * @parent: the parent node in the tree 722 * @index: the current BC index 723 * @modpath: the hardware_path struct to match a device against 724 * @return: The corresponding device if found, NULL otherwise. 725 * 726 * Checks all the children of @parent for a matching @id. If none 727 * found, it returns NULL. 728 */ 729 static struct device * 730 parse_tree_node(struct device *parent, int index, struct hardware_path *modpath) 731 { 732 struct parse_tree_data d = { 733 .index = index, 734 .modpath = modpath, 735 }; 736 737 struct recurse_struct recurse_data = { 738 .obj = &d, 739 .fn = check_parent, 740 }; 741 742 if (device_for_each_child(parent, &recurse_data, descend_children)) 743 { /* nothing */ } 744 745 return d.dev; 746 } 747 748 /** 749 * hwpath_to_device - Finds the generic device corresponding to a given hardware path. 750 * @modpath: the hardware path. 751 * @return: The target device, NULL if not found. 752 */ 753 struct device *hwpath_to_device(struct hardware_path *modpath) 754 { 755 int i; 756 struct device *parent = root; 757 for (i = 0; i < 6; i++) { 758 if (modpath->bc[i] == -1) 759 continue; 760 parent = parse_tree_node(parent, i, modpath); 761 if (!parent) 762 return NULL; 763 } 764 if (dev_is_pci(parent)) /* pci devices already parse MOD */ 765 return parent; 766 else 767 return parse_tree_node(parent, 6, modpath); 768 } 769 EXPORT_SYMBOL(hwpath_to_device); 770 771 /** 772 * device_to_hwpath - Populates the hwpath corresponding to the given device. 773 * @dev: the target device 774 * @path: pointer to a previously allocated hwpath struct to be filled in 775 */ 776 void device_to_hwpath(struct device *dev, struct hardware_path *path) 777 { 778 struct parisc_device *padev; 779 if (dev->bus == &parisc_bus_type) { 780 padev = to_parisc_device(dev); 781 get_node_path(dev->parent, path); 782 path->mod = padev->hw_path; 783 } else if (dev_is_pci(dev)) { 784 get_node_path(dev, path); 785 } 786 } 787 EXPORT_SYMBOL(device_to_hwpath); 788 789 #define BC_PORT_MASK 0x8 790 #define BC_LOWER_PORT 0x8 791 792 #define BUS_CONVERTER(dev) \ 793 ((dev->id.hw_type == HPHW_IOA) || (dev->id.hw_type == HPHW_BCPORT)) 794 795 #define IS_LOWER_PORT(dev) \ 796 ((gsc_readl(dev->hpa.start + offsetof(struct bc_module, io_status)) \ 797 & BC_PORT_MASK) == BC_LOWER_PORT) 798 799 #define MAX_NATIVE_DEVICES 64 800 #define NATIVE_DEVICE_OFFSET 0x1000 801 802 #define FLEX_MASK F_EXTEND(0xfffc0000) 803 #define IO_IO_LOW offsetof(struct bc_module, io_io_low) 804 #define IO_IO_HIGH offsetof(struct bc_module, io_io_high) 805 #define READ_IO_IO_LOW(dev) (unsigned long)(signed int)gsc_readl(dev->hpa.start + IO_IO_LOW) 806 #define READ_IO_IO_HIGH(dev) (unsigned long)(signed int)gsc_readl(dev->hpa.start + IO_IO_HIGH) 807 808 static void walk_native_bus(unsigned long io_io_low, unsigned long io_io_high, 809 struct device *parent); 810 811 static void __init walk_lower_bus(struct parisc_device *dev) 812 { 813 unsigned long io_io_low, io_io_high; 814 815 if (!BUS_CONVERTER(dev) || IS_LOWER_PORT(dev)) 816 return; 817 818 if (dev->id.hw_type == HPHW_IOA) { 819 io_io_low = (unsigned long)(signed int)(READ_IO_IO_LOW(dev) << 16); 820 io_io_high = io_io_low + MAX_NATIVE_DEVICES * NATIVE_DEVICE_OFFSET; 821 } else { 822 io_io_low = (READ_IO_IO_LOW(dev) + ~FLEX_MASK) & FLEX_MASK; 823 io_io_high = (READ_IO_IO_HIGH(dev)+ ~FLEX_MASK) & FLEX_MASK; 824 } 825 826 walk_native_bus(io_io_low, io_io_high, &dev->dev); 827 } 828 829 /** 830 * walk_native_bus -- Probe a bus for devices 831 * @io_io_low: Base address of this bus. 832 * @io_io_high: Last address of this bus. 833 * @parent: The parent bus device. 834 * 835 * A native bus (eg Runway or GSC) may have up to 64 devices on it, 836 * spaced at intervals of 0x1000 bytes. PDC may not inform us of these 837 * devices, so we have to probe for them. Unfortunately, we may find 838 * devices which are not physically connected (such as extra serial & 839 * keyboard ports). This problem is not yet solved. 840 */ 841 static void __init walk_native_bus(unsigned long io_io_low, 842 unsigned long io_io_high, struct device *parent) 843 { 844 int i, devices_found = 0; 845 unsigned long hpa = io_io_low; 846 struct hardware_path path; 847 848 get_node_path(parent, &path); 849 do { 850 for(i = 0; i < MAX_NATIVE_DEVICES; i++, hpa += NATIVE_DEVICE_OFFSET) { 851 struct parisc_device *dev; 852 853 /* Was the device already added by Firmware? */ 854 dev = find_device_by_addr(hpa); 855 if (!dev) { 856 path.mod = i; 857 dev = alloc_pa_dev(hpa, &path); 858 if (!dev) 859 continue; 860 861 register_parisc_device(dev); 862 devices_found++; 863 } 864 walk_lower_bus(dev); 865 } 866 } while(!devices_found && hpa < io_io_high); 867 } 868 869 #define CENTRAL_BUS_ADDR F_EXTEND(0xfff80000) 870 871 /** 872 * walk_central_bus - Find devices attached to the central bus 873 * 874 * PDC doesn't tell us about all devices in the system. This routine 875 * finds devices connected to the central bus. 876 */ 877 void __init walk_central_bus(void) 878 { 879 walk_native_bus(CENTRAL_BUS_ADDR, 880 CENTRAL_BUS_ADDR + (MAX_NATIVE_DEVICES * NATIVE_DEVICE_OFFSET), 881 root); 882 } 883 884 static __init void print_parisc_device(struct parisc_device *dev) 885 { 886 static int count __initdata; 887 888 pr_info("%d. %s at %pap { type:%d, hv:%#x, sv:%#x, rev:%#x }", 889 ++count, dev->name, &(dev->hpa.start), dev->id.hw_type, 890 dev->id.hversion, dev->id.sversion, dev->id.hversion_rev); 891 892 if (dev->num_addrs) { 893 int k; 894 pr_cont(", additional addresses: "); 895 for (k = 0; k < dev->num_addrs; k++) 896 pr_cont("0x%lx ", dev->addr[k]); 897 } 898 pr_cont("\n"); 899 } 900 901 /** 902 * init_parisc_bus - Some preparation to be done before inventory 903 */ 904 void __init init_parisc_bus(void) 905 { 906 if (bus_register(&parisc_bus_type)) 907 panic("Could not register PA-RISC bus type\n"); 908 909 root = root_device_register("parisc"); 910 if (IS_ERR(root)) 911 panic("Could not register PA-RISC root device\n"); 912 } 913 914 static __init void qemu_header(void) 915 { 916 int num; 917 unsigned long *p; 918 char name_mpe[80]; 919 920 pr_info("--- cut here ---\n"); 921 pr_info("/* AUTO-GENERATED HEADER FILE FOR SEABIOS FIRMWARE */\n"); 922 pr_cont("/* generated with Linux kernel */\n"); 923 pr_cont("/* search for PARISC_QEMU_MACHINE_HEADER in Linux */\n\n"); 924 925 pr_info("#define PARISC_MODEL \"%s\"\n", 926 boot_cpu_data.pdc.sys_model_name); 927 strcpy(name_mpe, boot_cpu_data.pdc.sys_model_name); 928 pdc_model_sysmodel(OS_ID_MPEXL, name_mpe); 929 pr_info("#define PARISC_MODEL_MPE \"%s\"\n\n", name_mpe); 930 931 #define p ((unsigned long *)&boot_cpu_data.pdc.model) 932 pr_info("#define PARISC_PDC_MODEL 0x%lx, 0x%lx, 0x%lx, " 933 "0x%lx, 0x%lx, 0x%lx, 0x%lx, 0x%lx, 0x%lx, 0x%lx\n\n", 934 p[0], p[1], p[2], p[3], p[4], p[5], p[6], p[7], p[8], p[9]); 935 #undef p 936 937 pr_info("#define PARISC_PDC_VERSION 0x%04lx\n\n", 938 boot_cpu_data.pdc.versions); 939 940 pr_info("#define PARISC_PDC_CPUID 0x%04lx\n\n", 941 boot_cpu_data.pdc.cpuid); 942 943 pr_info("#define PARISC_PDC_CAPABILITIES 0x%04lx\n\n", 944 boot_cpu_data.pdc.capabilities); 945 946 pr_info("#define PARISC_PDC_ENTRY_ORG 0x%04lx\n\n", 947 #ifdef CONFIG_64BIT 948 (unsigned long)(PAGE0->mem_pdc_hi) << 32 | 949 #endif 950 (unsigned long)PAGE0->mem_pdc); 951 952 pr_info("#define PARISC_PDC_CACHE_INFO"); 953 p = (unsigned long *) &cache_info; 954 for (num = 0; num < sizeof(cache_info); num += sizeof(unsigned long)) { 955 if (((num % 5) == 0)) { 956 pr_cont(" \\\n"); 957 pr_info("\t"); 958 } 959 pr_cont("%s0x%04lx", 960 num?", ":"", *p++); 961 } 962 pr_cont("\n\n"); 963 } 964 965 static __init int qemu_print_hpa(struct device *lin_dev, void *data) 966 { 967 struct parisc_device *dev = to_parisc_device(lin_dev); 968 unsigned long hpa = dev->hpa.start; 969 970 pr_cont("\t{\t.hpa = 0x%08lx,\\\n", hpa); 971 pr_cont("\t\t.iodc = &iodc_data_hpa_%08lx,\\\n", hpa); 972 pr_cont("\t\t.mod_info = &mod_info_hpa_%08lx,\\\n", hpa); 973 pr_cont("\t\t.mod_path = &mod_path_hpa_%08lx,\\\n", hpa); 974 pr_cont("\t\t.num_addr = HPA_%08lx_num_addr,\\\n", hpa); 975 pr_cont("\t\t.add_addr = { HPA_%08lx_add_addr } },\\\n", hpa); 976 return 0; 977 } 978 979 980 static __init void qemu_footer(void) 981 { 982 pr_info("\n\n#define PARISC_DEVICE_LIST \\\n"); 983 for_each_padev(qemu_print_hpa, NULL); 984 pr_cont("\t{ 0, }\n"); 985 pr_info("--- cut here ---\n"); 986 } 987 988 /* print iodc data of the various hpa modules for qemu inclusion */ 989 static __init int qemu_print_iodc_data(struct device *lin_dev, void *data) 990 { 991 struct parisc_device *dev = to_parisc_device(lin_dev); 992 unsigned long count; 993 unsigned long hpa = dev->hpa.start; 994 int status; 995 struct pdc_iodc iodc_data; 996 997 int mod_index; 998 struct pdc_system_map_mod_info pdc_mod_info; 999 struct pdc_module_path mod_path; 1000 1001 memset(&iodc_data, 0, sizeof(iodc_data)); 1002 status = pdc_iodc_read(&count, hpa, 0, 1003 &iodc_data, sizeof(iodc_data)); 1004 if (status != PDC_OK) { 1005 pr_info("No IODC data for hpa 0x%08lx\n", hpa); 1006 return 0; 1007 } 1008 1009 pr_info("\n"); 1010 1011 /* Prevent hung task messages when printing on serial console */ 1012 cond_resched(); 1013 1014 pr_info("#define HPA_%08lx_DESCRIPTION \"%s\"\n", 1015 hpa, parisc_hardware_description(&dev->id)); 1016 1017 mod_index = 0; 1018 do { 1019 /* initialize device path for old machines */ 1020 memset(&mod_path, 0xff, sizeof(mod_path)); 1021 get_node_path(dev->dev.parent, &mod_path.path); 1022 mod_path.path.mod = dev->hw_path; 1023 memset(&pdc_mod_info, 0, sizeof(pdc_mod_info)); 1024 status = pdc_system_map_find_mods(&pdc_mod_info, 1025 &mod_path, mod_index++); 1026 } while (status == PDC_OK && pdc_mod_info.mod_addr != hpa); 1027 1028 pr_info("static struct pdc_system_map_mod_info" 1029 " mod_info_hpa_%08lx = {\n", hpa); 1030 #define DO(member) \ 1031 pr_cont("\t." #member " = 0x%x,\n", \ 1032 (unsigned int)pdc_mod_info.member) 1033 DO(mod_addr); 1034 DO(mod_pgs); 1035 DO(add_addrs); 1036 pr_cont("};\n"); 1037 #undef DO 1038 pr_info("static struct pdc_module_path " 1039 "mod_path_hpa_%08lx = {\n", hpa); 1040 pr_cont("\t.path = { "); 1041 pr_cont(".flags = 0x%x, ", mod_path.path.flags); 1042 pr_cont(".bc = { 0x%02x, 0x%02x, 0x%02x, 0x%02x, 0x%02x, 0x%02x }, ", 1043 (unsigned char)mod_path.path.bc[0], 1044 (unsigned char)mod_path.path.bc[1], 1045 (unsigned char)mod_path.path.bc[2], 1046 (unsigned char)mod_path.path.bc[3], 1047 (unsigned char)mod_path.path.bc[4], 1048 (unsigned char)mod_path.path.bc[5]); 1049 pr_cont(".mod = 0x%02x }\n", (unsigned char)mod_path.path.mod); 1050 pr_cont("};\n"); 1051 1052 pr_info("static struct pdc_iodc iodc_data_hpa_%08lx = {\n", hpa); 1053 #define DO(member) \ 1054 pr_cont("\t." #member " = 0x%04lx,\n", \ 1055 (unsigned long)iodc_data.member) 1056 DO(hversion_model); 1057 DO(hversion); 1058 DO(spa); 1059 DO(type); 1060 DO(sversion_rev); 1061 DO(sversion_model); 1062 DO(sversion_opt); 1063 DO(rev); 1064 DO(dep); 1065 DO(features); 1066 DO(checksum); 1067 DO(length); 1068 #undef DO 1069 pr_cont("};\n"); 1070 1071 pr_info("#define HPA_%08lx_num_addr %d\n", hpa, dev->num_addrs); 1072 pr_info("#define HPA_%08lx_add_addr ", hpa); 1073 count = 0; 1074 if (dev->num_addrs == 0) 1075 pr_cont("0"); 1076 while (count < dev->num_addrs) { 1077 pr_cont("0x%08lx, ", dev->addr[count]); 1078 count++; 1079 } 1080 pr_cont("\n\n"); 1081 1082 return 0; 1083 } 1084 1085 1086 1087 static __init int print_one_device(struct device * dev, void * data) 1088 { 1089 struct parisc_device * pdev = to_parisc_device(dev); 1090 1091 if (check_dev(dev)) 1092 print_parisc_device(pdev); 1093 return 0; 1094 } 1095 1096 /** 1097 * print_parisc_devices - Print out a list of devices found in this system 1098 */ 1099 void __init print_parisc_devices(void) 1100 { 1101 for_each_padev(print_one_device, NULL); 1102 #define PARISC_QEMU_MACHINE_HEADER 0 1103 if (PARISC_QEMU_MACHINE_HEADER) { 1104 qemu_header(); 1105 for_each_padev(qemu_print_iodc_data, NULL); 1106 qemu_footer(); 1107 } 1108 } 1109