1 /* 2 * Contains common pci routines for ALL ppc platform 3 * (based on pci_32.c and pci_64.c) 4 * 5 * Port for PPC64 David Engebretsen, IBM Corp. 6 * Contains common pci routines for ppc64 platform, pSeries and iSeries brands. 7 * 8 * Copyright (C) 2003 Anton Blanchard <anton@au.ibm.com>, IBM 9 * Rework, based on alpha PCI code. 10 * 11 * Common pmac/prep/chrp pci routines. -- Cort 12 * 13 * This program is free software; you can redistribute it and/or 14 * modify it under the terms of the GNU General Public License 15 * as published by the Free Software Foundation; either version 16 * 2 of the License, or (at your option) any later version. 17 */ 18 19 #include <linux/kernel.h> 20 #include <linux/pci.h> 21 #include <linux/string.h> 22 #include <linux/init.h> 23 #include <linux/delay.h> 24 #include <linux/export.h> 25 #include <linux/of_address.h> 26 #include <linux/of_pci.h> 27 #include <linux/mm.h> 28 #include <linux/list.h> 29 #include <linux/syscalls.h> 30 #include <linux/irq.h> 31 #include <linux/vmalloc.h> 32 #include <linux/slab.h> 33 #include <linux/vgaarb.h> 34 35 #include <asm/processor.h> 36 #include <asm/io.h> 37 #include <asm/prom.h> 38 #include <asm/pci-bridge.h> 39 #include <asm/byteorder.h> 40 #include <asm/machdep.h> 41 #include <asm/ppc-pci.h> 42 #include <asm/eeh.h> 43 44 static DEFINE_SPINLOCK(hose_spinlock); 45 LIST_HEAD(hose_list); 46 47 /* XXX kill that some day ... */ 48 static int global_phb_number; /* Global phb counter */ 49 50 /* ISA Memory physical address */ 51 resource_size_t isa_mem_base; 52 53 54 static struct dma_map_ops *pci_dma_ops = &dma_direct_ops; 55 56 void set_pci_dma_ops(struct dma_map_ops *dma_ops) 57 { 58 pci_dma_ops = dma_ops; 59 } 60 61 struct dma_map_ops *get_pci_dma_ops(void) 62 { 63 return pci_dma_ops; 64 } 65 EXPORT_SYMBOL(get_pci_dma_ops); 66 67 struct pci_controller *pcibios_alloc_controller(struct device_node *dev) 68 { 69 struct pci_controller *phb; 70 71 phb = zalloc_maybe_bootmem(sizeof(struct pci_controller), GFP_KERNEL); 72 if (phb == NULL) 73 return NULL; 74 spin_lock(&hose_spinlock); 75 phb->global_number = global_phb_number++; 76 list_add_tail(&phb->list_node, &hose_list); 77 spin_unlock(&hose_spinlock); 78 phb->dn = dev; 79 phb->is_dynamic = slab_is_available(); 80 #ifdef CONFIG_PPC64 81 if (dev) { 82 int nid = of_node_to_nid(dev); 83 84 if (nid < 0 || !node_online(nid)) 85 nid = -1; 86 87 PHB_SET_NODE(phb, nid); 88 } 89 #endif 90 return phb; 91 } 92 EXPORT_SYMBOL_GPL(pcibios_alloc_controller); 93 94 void pcibios_free_controller(struct pci_controller *phb) 95 { 96 spin_lock(&hose_spinlock); 97 list_del(&phb->list_node); 98 spin_unlock(&hose_spinlock); 99 100 if (phb->is_dynamic) 101 kfree(phb); 102 } 103 104 /* 105 * The function is used to return the minimal alignment 106 * for memory or I/O windows of the associated P2P bridge. 107 * By default, 4KiB alignment for I/O windows and 1MiB for 108 * memory windows. 109 */ 110 resource_size_t pcibios_window_alignment(struct pci_bus *bus, 111 unsigned long type) 112 { 113 struct pci_controller *phb = pci_bus_to_host(bus); 114 115 if (phb->controller_ops.window_alignment) 116 return phb->controller_ops.window_alignment(bus, type); 117 118 /* 119 * PCI core will figure out the default 120 * alignment: 4KiB for I/O and 1MiB for 121 * memory window. 122 */ 123 return 1; 124 } 125 126 void pcibios_reset_secondary_bus(struct pci_dev *dev) 127 { 128 struct pci_controller *phb = pci_bus_to_host(dev->bus); 129 130 if (phb->controller_ops.reset_secondary_bus) { 131 phb->controller_ops.reset_secondary_bus(dev); 132 return; 133 } 134 135 pci_reset_secondary_bus(dev); 136 } 137 138 #ifdef CONFIG_PCI_IOV 139 resource_size_t pcibios_iov_resource_alignment(struct pci_dev *pdev, int resno) 140 { 141 if (ppc_md.pcibios_iov_resource_alignment) 142 return ppc_md.pcibios_iov_resource_alignment(pdev, resno); 143 144 return pci_iov_resource_size(pdev, resno); 145 } 146 #endif /* CONFIG_PCI_IOV */ 147 148 static resource_size_t pcibios_io_size(const struct pci_controller *hose) 149 { 150 #ifdef CONFIG_PPC64 151 return hose->pci_io_size; 152 #else 153 return resource_size(&hose->io_resource); 154 #endif 155 } 156 157 int pcibios_vaddr_is_ioport(void __iomem *address) 158 { 159 int ret = 0; 160 struct pci_controller *hose; 161 resource_size_t size; 162 163 spin_lock(&hose_spinlock); 164 list_for_each_entry(hose, &hose_list, list_node) { 165 size = pcibios_io_size(hose); 166 if (address >= hose->io_base_virt && 167 address < (hose->io_base_virt + size)) { 168 ret = 1; 169 break; 170 } 171 } 172 spin_unlock(&hose_spinlock); 173 return ret; 174 } 175 176 unsigned long pci_address_to_pio(phys_addr_t address) 177 { 178 struct pci_controller *hose; 179 resource_size_t size; 180 unsigned long ret = ~0; 181 182 spin_lock(&hose_spinlock); 183 list_for_each_entry(hose, &hose_list, list_node) { 184 size = pcibios_io_size(hose); 185 if (address >= hose->io_base_phys && 186 address < (hose->io_base_phys + size)) { 187 unsigned long base = 188 (unsigned long)hose->io_base_virt - _IO_BASE; 189 ret = base + (address - hose->io_base_phys); 190 break; 191 } 192 } 193 spin_unlock(&hose_spinlock); 194 195 return ret; 196 } 197 EXPORT_SYMBOL_GPL(pci_address_to_pio); 198 199 /* 200 * Return the domain number for this bus. 201 */ 202 int pci_domain_nr(struct pci_bus *bus) 203 { 204 struct pci_controller *hose = pci_bus_to_host(bus); 205 206 return hose->global_number; 207 } 208 EXPORT_SYMBOL(pci_domain_nr); 209 210 /* This routine is meant to be used early during boot, when the 211 * PCI bus numbers have not yet been assigned, and you need to 212 * issue PCI config cycles to an OF device. 213 * It could also be used to "fix" RTAS config cycles if you want 214 * to set pci_assign_all_buses to 1 and still use RTAS for PCI 215 * config cycles. 216 */ 217 struct pci_controller* pci_find_hose_for_OF_device(struct device_node* node) 218 { 219 while(node) { 220 struct pci_controller *hose, *tmp; 221 list_for_each_entry_safe(hose, tmp, &hose_list, list_node) 222 if (hose->dn == node) 223 return hose; 224 node = node->parent; 225 } 226 return NULL; 227 } 228 229 /* 230 * Reads the interrupt pin to determine if interrupt is use by card. 231 * If the interrupt is used, then gets the interrupt line from the 232 * openfirmware and sets it in the pci_dev and pci_config line. 233 */ 234 static int pci_read_irq_line(struct pci_dev *pci_dev) 235 { 236 struct of_phandle_args oirq; 237 unsigned int virq; 238 239 pr_debug("PCI: Try to map irq for %s...\n", pci_name(pci_dev)); 240 241 #ifdef DEBUG 242 memset(&oirq, 0xff, sizeof(oirq)); 243 #endif 244 /* Try to get a mapping from the device-tree */ 245 if (of_irq_parse_pci(pci_dev, &oirq)) { 246 u8 line, pin; 247 248 /* If that fails, lets fallback to what is in the config 249 * space and map that through the default controller. We 250 * also set the type to level low since that's what PCI 251 * interrupts are. If your platform does differently, then 252 * either provide a proper interrupt tree or don't use this 253 * function. 254 */ 255 if (pci_read_config_byte(pci_dev, PCI_INTERRUPT_PIN, &pin)) 256 return -1; 257 if (pin == 0) 258 return -1; 259 if (pci_read_config_byte(pci_dev, PCI_INTERRUPT_LINE, &line) || 260 line == 0xff || line == 0) { 261 return -1; 262 } 263 pr_debug(" No map ! Using line %d (pin %d) from PCI config\n", 264 line, pin); 265 266 virq = irq_create_mapping(NULL, line); 267 if (virq != NO_IRQ) 268 irq_set_irq_type(virq, IRQ_TYPE_LEVEL_LOW); 269 } else { 270 pr_debug(" Got one, spec %d cells (0x%08x 0x%08x...) on %s\n", 271 oirq.args_count, oirq.args[0], oirq.args[1], 272 of_node_full_name(oirq.np)); 273 274 virq = irq_create_of_mapping(&oirq); 275 } 276 if(virq == NO_IRQ) { 277 pr_debug(" Failed to map !\n"); 278 return -1; 279 } 280 281 pr_debug(" Mapped to linux irq %d\n", virq); 282 283 pci_dev->irq = virq; 284 285 return 0; 286 } 287 288 /* 289 * Platform support for /proc/bus/pci/X/Y mmap()s, 290 * modelled on the sparc64 implementation by Dave Miller. 291 * -- paulus. 292 */ 293 294 /* 295 * Adjust vm_pgoff of VMA such that it is the physical page offset 296 * corresponding to the 32-bit pci bus offset for DEV requested by the user. 297 * 298 * Basically, the user finds the base address for his device which he wishes 299 * to mmap. They read the 32-bit value from the config space base register, 300 * add whatever PAGE_SIZE multiple offset they wish, and feed this into the 301 * offset parameter of mmap on /proc/bus/pci/XXX for that device. 302 * 303 * Returns negative error code on failure, zero on success. 304 */ 305 static struct resource *__pci_mmap_make_offset(struct pci_dev *dev, 306 resource_size_t *offset, 307 enum pci_mmap_state mmap_state) 308 { 309 struct pci_controller *hose = pci_bus_to_host(dev->bus); 310 unsigned long io_offset = 0; 311 int i, res_bit; 312 313 if (hose == NULL) 314 return NULL; /* should never happen */ 315 316 /* If memory, add on the PCI bridge address offset */ 317 if (mmap_state == pci_mmap_mem) { 318 #if 0 /* See comment in pci_resource_to_user() for why this is disabled */ 319 *offset += hose->pci_mem_offset; 320 #endif 321 res_bit = IORESOURCE_MEM; 322 } else { 323 io_offset = (unsigned long)hose->io_base_virt - _IO_BASE; 324 *offset += io_offset; 325 res_bit = IORESOURCE_IO; 326 } 327 328 /* 329 * Check that the offset requested corresponds to one of the 330 * resources of the device. 331 */ 332 for (i = 0; i <= PCI_ROM_RESOURCE; i++) { 333 struct resource *rp = &dev->resource[i]; 334 int flags = rp->flags; 335 336 /* treat ROM as memory (should be already) */ 337 if (i == PCI_ROM_RESOURCE) 338 flags |= IORESOURCE_MEM; 339 340 /* Active and same type? */ 341 if ((flags & res_bit) == 0) 342 continue; 343 344 /* In the range of this resource? */ 345 if (*offset < (rp->start & PAGE_MASK) || *offset > rp->end) 346 continue; 347 348 /* found it! construct the final physical address */ 349 if (mmap_state == pci_mmap_io) 350 *offset += hose->io_base_phys - io_offset; 351 return rp; 352 } 353 354 return NULL; 355 } 356 357 /* 358 * Set vm_page_prot of VMA, as appropriate for this architecture, for a pci 359 * device mapping. 360 */ 361 static pgprot_t __pci_mmap_set_pgprot(struct pci_dev *dev, struct resource *rp, 362 pgprot_t protection, 363 enum pci_mmap_state mmap_state, 364 int write_combine) 365 { 366 367 /* Write combine is always 0 on non-memory space mappings. On 368 * memory space, if the user didn't pass 1, we check for a 369 * "prefetchable" resource. This is a bit hackish, but we use 370 * this to workaround the inability of /sysfs to provide a write 371 * combine bit 372 */ 373 if (mmap_state != pci_mmap_mem) 374 write_combine = 0; 375 else if (write_combine == 0) { 376 if (rp->flags & IORESOURCE_PREFETCH) 377 write_combine = 1; 378 } 379 380 /* XXX would be nice to have a way to ask for write-through */ 381 if (write_combine) 382 return pgprot_noncached_wc(protection); 383 else 384 return pgprot_noncached(protection); 385 } 386 387 /* 388 * This one is used by /dev/mem and fbdev who have no clue about the 389 * PCI device, it tries to find the PCI device first and calls the 390 * above routine 391 */ 392 pgprot_t pci_phys_mem_access_prot(struct file *file, 393 unsigned long pfn, 394 unsigned long size, 395 pgprot_t prot) 396 { 397 struct pci_dev *pdev = NULL; 398 struct resource *found = NULL; 399 resource_size_t offset = ((resource_size_t)pfn) << PAGE_SHIFT; 400 int i; 401 402 if (page_is_ram(pfn)) 403 return prot; 404 405 prot = pgprot_noncached(prot); 406 for_each_pci_dev(pdev) { 407 for (i = 0; i <= PCI_ROM_RESOURCE; i++) { 408 struct resource *rp = &pdev->resource[i]; 409 int flags = rp->flags; 410 411 /* Active and same type? */ 412 if ((flags & IORESOURCE_MEM) == 0) 413 continue; 414 /* In the range of this resource? */ 415 if (offset < (rp->start & PAGE_MASK) || 416 offset > rp->end) 417 continue; 418 found = rp; 419 break; 420 } 421 if (found) 422 break; 423 } 424 if (found) { 425 if (found->flags & IORESOURCE_PREFETCH) 426 prot = pgprot_noncached_wc(prot); 427 pci_dev_put(pdev); 428 } 429 430 pr_debug("PCI: Non-PCI map for %llx, prot: %lx\n", 431 (unsigned long long)offset, pgprot_val(prot)); 432 433 return prot; 434 } 435 436 437 /* 438 * Perform the actual remap of the pages for a PCI device mapping, as 439 * appropriate for this architecture. The region in the process to map 440 * is described by vm_start and vm_end members of VMA, the base physical 441 * address is found in vm_pgoff. 442 * The pci device structure is provided so that architectures may make mapping 443 * decisions on a per-device or per-bus basis. 444 * 445 * Returns a negative error code on failure, zero on success. 446 */ 447 int pci_mmap_page_range(struct pci_dev *dev, struct vm_area_struct *vma, 448 enum pci_mmap_state mmap_state, int write_combine) 449 { 450 resource_size_t offset = 451 ((resource_size_t)vma->vm_pgoff) << PAGE_SHIFT; 452 struct resource *rp; 453 int ret; 454 455 rp = __pci_mmap_make_offset(dev, &offset, mmap_state); 456 if (rp == NULL) 457 return -EINVAL; 458 459 vma->vm_pgoff = offset >> PAGE_SHIFT; 460 vma->vm_page_prot = __pci_mmap_set_pgprot(dev, rp, 461 vma->vm_page_prot, 462 mmap_state, write_combine); 463 464 ret = remap_pfn_range(vma, vma->vm_start, vma->vm_pgoff, 465 vma->vm_end - vma->vm_start, vma->vm_page_prot); 466 467 return ret; 468 } 469 470 /* This provides legacy IO read access on a bus */ 471 int pci_legacy_read(struct pci_bus *bus, loff_t port, u32 *val, size_t size) 472 { 473 unsigned long offset; 474 struct pci_controller *hose = pci_bus_to_host(bus); 475 struct resource *rp = &hose->io_resource; 476 void __iomem *addr; 477 478 /* Check if port can be supported by that bus. We only check 479 * the ranges of the PHB though, not the bus itself as the rules 480 * for forwarding legacy cycles down bridges are not our problem 481 * here. So if the host bridge supports it, we do it. 482 */ 483 offset = (unsigned long)hose->io_base_virt - _IO_BASE; 484 offset += port; 485 486 if (!(rp->flags & IORESOURCE_IO)) 487 return -ENXIO; 488 if (offset < rp->start || (offset + size) > rp->end) 489 return -ENXIO; 490 addr = hose->io_base_virt + port; 491 492 switch(size) { 493 case 1: 494 *((u8 *)val) = in_8(addr); 495 return 1; 496 case 2: 497 if (port & 1) 498 return -EINVAL; 499 *((u16 *)val) = in_le16(addr); 500 return 2; 501 case 4: 502 if (port & 3) 503 return -EINVAL; 504 *((u32 *)val) = in_le32(addr); 505 return 4; 506 } 507 return -EINVAL; 508 } 509 510 /* This provides legacy IO write access on a bus */ 511 int pci_legacy_write(struct pci_bus *bus, loff_t port, u32 val, size_t size) 512 { 513 unsigned long offset; 514 struct pci_controller *hose = pci_bus_to_host(bus); 515 struct resource *rp = &hose->io_resource; 516 void __iomem *addr; 517 518 /* Check if port can be supported by that bus. We only check 519 * the ranges of the PHB though, not the bus itself as the rules 520 * for forwarding legacy cycles down bridges are not our problem 521 * here. So if the host bridge supports it, we do it. 522 */ 523 offset = (unsigned long)hose->io_base_virt - _IO_BASE; 524 offset += port; 525 526 if (!(rp->flags & IORESOURCE_IO)) 527 return -ENXIO; 528 if (offset < rp->start || (offset + size) > rp->end) 529 return -ENXIO; 530 addr = hose->io_base_virt + port; 531 532 /* WARNING: The generic code is idiotic. It gets passed a pointer 533 * to what can be a 1, 2 or 4 byte quantity and always reads that 534 * as a u32, which means that we have to correct the location of 535 * the data read within those 32 bits for size 1 and 2 536 */ 537 switch(size) { 538 case 1: 539 out_8(addr, val >> 24); 540 return 1; 541 case 2: 542 if (port & 1) 543 return -EINVAL; 544 out_le16(addr, val >> 16); 545 return 2; 546 case 4: 547 if (port & 3) 548 return -EINVAL; 549 out_le32(addr, val); 550 return 4; 551 } 552 return -EINVAL; 553 } 554 555 /* This provides legacy IO or memory mmap access on a bus */ 556 int pci_mmap_legacy_page_range(struct pci_bus *bus, 557 struct vm_area_struct *vma, 558 enum pci_mmap_state mmap_state) 559 { 560 struct pci_controller *hose = pci_bus_to_host(bus); 561 resource_size_t offset = 562 ((resource_size_t)vma->vm_pgoff) << PAGE_SHIFT; 563 resource_size_t size = vma->vm_end - vma->vm_start; 564 struct resource *rp; 565 566 pr_debug("pci_mmap_legacy_page_range(%04x:%02x, %s @%llx..%llx)\n", 567 pci_domain_nr(bus), bus->number, 568 mmap_state == pci_mmap_mem ? "MEM" : "IO", 569 (unsigned long long)offset, 570 (unsigned long long)(offset + size - 1)); 571 572 if (mmap_state == pci_mmap_mem) { 573 /* Hack alert ! 574 * 575 * Because X is lame and can fail starting if it gets an error trying 576 * to mmap legacy_mem (instead of just moving on without legacy memory 577 * access) we fake it here by giving it anonymous memory, effectively 578 * behaving just like /dev/zero 579 */ 580 if ((offset + size) > hose->isa_mem_size) { 581 printk(KERN_DEBUG 582 "Process %s (pid:%d) mapped non-existing PCI legacy memory for 0%04x:%02x\n", 583 current->comm, current->pid, pci_domain_nr(bus), bus->number); 584 if (vma->vm_flags & VM_SHARED) 585 return shmem_zero_setup(vma); 586 return 0; 587 } 588 offset += hose->isa_mem_phys; 589 } else { 590 unsigned long io_offset = (unsigned long)hose->io_base_virt - _IO_BASE; 591 unsigned long roffset = offset + io_offset; 592 rp = &hose->io_resource; 593 if (!(rp->flags & IORESOURCE_IO)) 594 return -ENXIO; 595 if (roffset < rp->start || (roffset + size) > rp->end) 596 return -ENXIO; 597 offset += hose->io_base_phys; 598 } 599 pr_debug(" -> mapping phys %llx\n", (unsigned long long)offset); 600 601 vma->vm_pgoff = offset >> PAGE_SHIFT; 602 vma->vm_page_prot = pgprot_noncached(vma->vm_page_prot); 603 return remap_pfn_range(vma, vma->vm_start, vma->vm_pgoff, 604 vma->vm_end - vma->vm_start, 605 vma->vm_page_prot); 606 } 607 608 void pci_resource_to_user(const struct pci_dev *dev, int bar, 609 const struct resource *rsrc, 610 resource_size_t *start, resource_size_t *end) 611 { 612 struct pci_controller *hose = pci_bus_to_host(dev->bus); 613 resource_size_t offset = 0; 614 615 if (hose == NULL) 616 return; 617 618 if (rsrc->flags & IORESOURCE_IO) 619 offset = (unsigned long)hose->io_base_virt - _IO_BASE; 620 621 /* We pass a fully fixed up address to userland for MMIO instead of 622 * a BAR value because X is lame and expects to be able to use that 623 * to pass to /dev/mem ! 624 * 625 * That means that we'll have potentially 64 bits values where some 626 * userland apps only expect 32 (like X itself since it thinks only 627 * Sparc has 64 bits MMIO) but if we don't do that, we break it on 628 * 32 bits CHRPs :-( 629 * 630 * Hopefully, the sysfs insterface is immune to that gunk. Once X 631 * has been fixed (and the fix spread enough), we can re-enable the 632 * 2 lines below and pass down a BAR value to userland. In that case 633 * we'll also have to re-enable the matching code in 634 * __pci_mmap_make_offset(). 635 * 636 * BenH. 637 */ 638 #if 0 639 else if (rsrc->flags & IORESOURCE_MEM) 640 offset = hose->pci_mem_offset; 641 #endif 642 643 *start = rsrc->start - offset; 644 *end = rsrc->end - offset; 645 } 646 647 /** 648 * pci_process_bridge_OF_ranges - Parse PCI bridge resources from device tree 649 * @hose: newly allocated pci_controller to be setup 650 * @dev: device node of the host bridge 651 * @primary: set if primary bus (32 bits only, soon to be deprecated) 652 * 653 * This function will parse the "ranges" property of a PCI host bridge device 654 * node and setup the resource mapping of a pci controller based on its 655 * content. 656 * 657 * Life would be boring if it wasn't for a few issues that we have to deal 658 * with here: 659 * 660 * - We can only cope with one IO space range and up to 3 Memory space 661 * ranges. However, some machines (thanks Apple !) tend to split their 662 * space into lots of small contiguous ranges. So we have to coalesce. 663 * 664 * - Some busses have IO space not starting at 0, which causes trouble with 665 * the way we do our IO resource renumbering. The code somewhat deals with 666 * it for 64 bits but I would expect problems on 32 bits. 667 * 668 * - Some 32 bits platforms such as 4xx can have physical space larger than 669 * 32 bits so we need to use 64 bits values for the parsing 670 */ 671 void pci_process_bridge_OF_ranges(struct pci_controller *hose, 672 struct device_node *dev, int primary) 673 { 674 int memno = 0; 675 struct resource *res; 676 struct of_pci_range range; 677 struct of_pci_range_parser parser; 678 679 printk(KERN_INFO "PCI host bridge %s %s ranges:\n", 680 dev->full_name, primary ? "(primary)" : ""); 681 682 /* Check for ranges property */ 683 if (of_pci_range_parser_init(&parser, dev)) 684 return; 685 686 /* Parse it */ 687 for_each_of_pci_range(&parser, &range) { 688 /* If we failed translation or got a zero-sized region 689 * (some FW try to feed us with non sensical zero sized regions 690 * such as power3 which look like some kind of attempt at exposing 691 * the VGA memory hole) 692 */ 693 if (range.cpu_addr == OF_BAD_ADDR || range.size == 0) 694 continue; 695 696 /* Act based on address space type */ 697 res = NULL; 698 switch (range.flags & IORESOURCE_TYPE_BITS) { 699 case IORESOURCE_IO: 700 printk(KERN_INFO 701 " IO 0x%016llx..0x%016llx -> 0x%016llx\n", 702 range.cpu_addr, range.cpu_addr + range.size - 1, 703 range.pci_addr); 704 705 /* We support only one IO range */ 706 if (hose->pci_io_size) { 707 printk(KERN_INFO 708 " \\--> Skipped (too many) !\n"); 709 continue; 710 } 711 #ifdef CONFIG_PPC32 712 /* On 32 bits, limit I/O space to 16MB */ 713 if (range.size > 0x01000000) 714 range.size = 0x01000000; 715 716 /* 32 bits needs to map IOs here */ 717 hose->io_base_virt = ioremap(range.cpu_addr, 718 range.size); 719 720 /* Expect trouble if pci_addr is not 0 */ 721 if (primary) 722 isa_io_base = 723 (unsigned long)hose->io_base_virt; 724 #endif /* CONFIG_PPC32 */ 725 /* pci_io_size and io_base_phys always represent IO 726 * space starting at 0 so we factor in pci_addr 727 */ 728 hose->pci_io_size = range.pci_addr + range.size; 729 hose->io_base_phys = range.cpu_addr - range.pci_addr; 730 731 /* Build resource */ 732 res = &hose->io_resource; 733 range.cpu_addr = range.pci_addr; 734 break; 735 case IORESOURCE_MEM: 736 printk(KERN_INFO 737 " MEM 0x%016llx..0x%016llx -> 0x%016llx %s\n", 738 range.cpu_addr, range.cpu_addr + range.size - 1, 739 range.pci_addr, 740 (range.pci_space & 0x40000000) ? 741 "Prefetch" : ""); 742 743 /* We support only 3 memory ranges */ 744 if (memno >= 3) { 745 printk(KERN_INFO 746 " \\--> Skipped (too many) !\n"); 747 continue; 748 } 749 /* Handles ISA memory hole space here */ 750 if (range.pci_addr == 0) { 751 if (primary || isa_mem_base == 0) 752 isa_mem_base = range.cpu_addr; 753 hose->isa_mem_phys = range.cpu_addr; 754 hose->isa_mem_size = range.size; 755 } 756 757 /* Build resource */ 758 hose->mem_offset[memno] = range.cpu_addr - 759 range.pci_addr; 760 res = &hose->mem_resources[memno++]; 761 break; 762 } 763 if (res != NULL) { 764 res->name = dev->full_name; 765 res->flags = range.flags; 766 res->start = range.cpu_addr; 767 res->end = range.cpu_addr + range.size - 1; 768 res->parent = res->child = res->sibling = NULL; 769 } 770 } 771 } 772 773 /* Decide whether to display the domain number in /proc */ 774 int pci_proc_domain(struct pci_bus *bus) 775 { 776 struct pci_controller *hose = pci_bus_to_host(bus); 777 778 if (!pci_has_flag(PCI_ENABLE_PROC_DOMAINS)) 779 return 0; 780 if (pci_has_flag(PCI_COMPAT_DOMAIN_0)) 781 return hose->global_number != 0; 782 return 1; 783 } 784 785 int pcibios_root_bridge_prepare(struct pci_host_bridge *bridge) 786 { 787 if (ppc_md.pcibios_root_bridge_prepare) 788 return ppc_md.pcibios_root_bridge_prepare(bridge); 789 790 return 0; 791 } 792 793 /* This header fixup will do the resource fixup for all devices as they are 794 * probed, but not for bridge ranges 795 */ 796 static void pcibios_fixup_resources(struct pci_dev *dev) 797 { 798 struct pci_controller *hose = pci_bus_to_host(dev->bus); 799 int i; 800 801 if (!hose) { 802 printk(KERN_ERR "No host bridge for PCI dev %s !\n", 803 pci_name(dev)); 804 return; 805 } 806 807 if (dev->is_virtfn) 808 return; 809 810 for (i = 0; i < DEVICE_COUNT_RESOURCE; i++) { 811 struct resource *res = dev->resource + i; 812 struct pci_bus_region reg; 813 if (!res->flags) 814 continue; 815 816 /* If we're going to re-assign everything, we mark all resources 817 * as unset (and 0-base them). In addition, we mark BARs starting 818 * at 0 as unset as well, except if PCI_PROBE_ONLY is also set 819 * since in that case, we don't want to re-assign anything 820 */ 821 pcibios_resource_to_bus(dev->bus, ®, res); 822 if (pci_has_flag(PCI_REASSIGN_ALL_RSRC) || 823 (reg.start == 0 && !pci_has_flag(PCI_PROBE_ONLY))) { 824 /* Only print message if not re-assigning */ 825 if (!pci_has_flag(PCI_REASSIGN_ALL_RSRC)) 826 pr_debug("PCI:%s Resource %d %pR is unassigned\n", 827 pci_name(dev), i, res); 828 res->end -= res->start; 829 res->start = 0; 830 res->flags |= IORESOURCE_UNSET; 831 continue; 832 } 833 834 pr_debug("PCI:%s Resource %d %pR\n", pci_name(dev), i, res); 835 } 836 837 /* Call machine specific resource fixup */ 838 if (ppc_md.pcibios_fixup_resources) 839 ppc_md.pcibios_fixup_resources(dev); 840 } 841 DECLARE_PCI_FIXUP_HEADER(PCI_ANY_ID, PCI_ANY_ID, pcibios_fixup_resources); 842 843 /* This function tries to figure out if a bridge resource has been initialized 844 * by the firmware or not. It doesn't have to be absolutely bullet proof, but 845 * things go more smoothly when it gets it right. It should covers cases such 846 * as Apple "closed" bridge resources and bare-metal pSeries unassigned bridges 847 */ 848 static int pcibios_uninitialized_bridge_resource(struct pci_bus *bus, 849 struct resource *res) 850 { 851 struct pci_controller *hose = pci_bus_to_host(bus); 852 struct pci_dev *dev = bus->self; 853 resource_size_t offset; 854 struct pci_bus_region region; 855 u16 command; 856 int i; 857 858 /* We don't do anything if PCI_PROBE_ONLY is set */ 859 if (pci_has_flag(PCI_PROBE_ONLY)) 860 return 0; 861 862 /* Job is a bit different between memory and IO */ 863 if (res->flags & IORESOURCE_MEM) { 864 pcibios_resource_to_bus(dev->bus, ®ion, res); 865 866 /* If the BAR is non-0 then it's probably been initialized */ 867 if (region.start != 0) 868 return 0; 869 870 /* The BAR is 0, let's check if memory decoding is enabled on 871 * the bridge. If not, we consider it unassigned 872 */ 873 pci_read_config_word(dev, PCI_COMMAND, &command); 874 if ((command & PCI_COMMAND_MEMORY) == 0) 875 return 1; 876 877 /* Memory decoding is enabled and the BAR is 0. If any of the bridge 878 * resources covers that starting address (0 then it's good enough for 879 * us for memory space) 880 */ 881 for (i = 0; i < 3; i++) { 882 if ((hose->mem_resources[i].flags & IORESOURCE_MEM) && 883 hose->mem_resources[i].start == hose->mem_offset[i]) 884 return 0; 885 } 886 887 /* Well, it starts at 0 and we know it will collide so we may as 888 * well consider it as unassigned. That covers the Apple case. 889 */ 890 return 1; 891 } else { 892 /* If the BAR is non-0, then we consider it assigned */ 893 offset = (unsigned long)hose->io_base_virt - _IO_BASE; 894 if (((res->start - offset) & 0xfffffffful) != 0) 895 return 0; 896 897 /* Here, we are a bit different than memory as typically IO space 898 * starting at low addresses -is- valid. What we do instead if that 899 * we consider as unassigned anything that doesn't have IO enabled 900 * in the PCI command register, and that's it. 901 */ 902 pci_read_config_word(dev, PCI_COMMAND, &command); 903 if (command & PCI_COMMAND_IO) 904 return 0; 905 906 /* It's starting at 0 and IO is disabled in the bridge, consider 907 * it unassigned 908 */ 909 return 1; 910 } 911 } 912 913 /* Fixup resources of a PCI<->PCI bridge */ 914 static void pcibios_fixup_bridge(struct pci_bus *bus) 915 { 916 struct resource *res; 917 int i; 918 919 struct pci_dev *dev = bus->self; 920 921 pci_bus_for_each_resource(bus, res, i) { 922 if (!res || !res->flags) 923 continue; 924 if (i >= 3 && bus->self->transparent) 925 continue; 926 927 /* If we're going to reassign everything, we can 928 * shrink the P2P resource to have size as being 929 * of 0 in order to save space. 930 */ 931 if (pci_has_flag(PCI_REASSIGN_ALL_RSRC)) { 932 res->flags |= IORESOURCE_UNSET; 933 res->start = 0; 934 res->end = -1; 935 continue; 936 } 937 938 pr_debug("PCI:%s Bus rsrc %d %pR\n", pci_name(dev), i, res); 939 940 /* Try to detect uninitialized P2P bridge resources, 941 * and clear them out so they get re-assigned later 942 */ 943 if (pcibios_uninitialized_bridge_resource(bus, res)) { 944 res->flags = 0; 945 pr_debug("PCI:%s (unassigned)\n", pci_name(dev)); 946 } 947 } 948 } 949 950 void pcibios_setup_bus_self(struct pci_bus *bus) 951 { 952 struct pci_controller *phb; 953 954 /* Fix up the bus resources for P2P bridges */ 955 if (bus->self != NULL) 956 pcibios_fixup_bridge(bus); 957 958 /* Platform specific bus fixups. This is currently only used 959 * by fsl_pci and I'm hoping to get rid of it at some point 960 */ 961 if (ppc_md.pcibios_fixup_bus) 962 ppc_md.pcibios_fixup_bus(bus); 963 964 /* Setup bus DMA mappings */ 965 phb = pci_bus_to_host(bus); 966 if (phb->controller_ops.dma_bus_setup) 967 phb->controller_ops.dma_bus_setup(bus); 968 } 969 970 static void pcibios_setup_device(struct pci_dev *dev) 971 { 972 struct pci_controller *phb; 973 /* Fixup NUMA node as it may not be setup yet by the generic 974 * code and is needed by the DMA init 975 */ 976 set_dev_node(&dev->dev, pcibus_to_node(dev->bus)); 977 978 /* Hook up default DMA ops */ 979 set_dma_ops(&dev->dev, pci_dma_ops); 980 set_dma_offset(&dev->dev, PCI_DRAM_OFFSET); 981 982 /* Additional platform DMA/iommu setup */ 983 phb = pci_bus_to_host(dev->bus); 984 if (phb->controller_ops.dma_dev_setup) 985 phb->controller_ops.dma_dev_setup(dev); 986 987 /* Read default IRQs and fixup if necessary */ 988 pci_read_irq_line(dev); 989 if (ppc_md.pci_irq_fixup) 990 ppc_md.pci_irq_fixup(dev); 991 } 992 993 int pcibios_add_device(struct pci_dev *dev) 994 { 995 /* 996 * We can only call pcibios_setup_device() after bus setup is complete, 997 * since some of the platform specific DMA setup code depends on it. 998 */ 999 if (dev->bus->is_added) 1000 pcibios_setup_device(dev); 1001 1002 #ifdef CONFIG_PCI_IOV 1003 if (ppc_md.pcibios_fixup_sriov) 1004 ppc_md.pcibios_fixup_sriov(dev); 1005 #endif /* CONFIG_PCI_IOV */ 1006 1007 return 0; 1008 } 1009 1010 void pcibios_setup_bus_devices(struct pci_bus *bus) 1011 { 1012 struct pci_dev *dev; 1013 1014 pr_debug("PCI: Fixup bus devices %d (%s)\n", 1015 bus->number, bus->self ? pci_name(bus->self) : "PHB"); 1016 1017 list_for_each_entry(dev, &bus->devices, bus_list) { 1018 /* Cardbus can call us to add new devices to a bus, so ignore 1019 * those who are already fully discovered 1020 */ 1021 if (dev->is_added) 1022 continue; 1023 1024 pcibios_setup_device(dev); 1025 } 1026 } 1027 1028 void pcibios_set_master(struct pci_dev *dev) 1029 { 1030 /* No special bus mastering setup handling */ 1031 } 1032 1033 void pcibios_fixup_bus(struct pci_bus *bus) 1034 { 1035 /* When called from the generic PCI probe, read PCI<->PCI bridge 1036 * bases. This is -not- called when generating the PCI tree from 1037 * the OF device-tree. 1038 */ 1039 pci_read_bridge_bases(bus); 1040 1041 /* Now fixup the bus bus */ 1042 pcibios_setup_bus_self(bus); 1043 1044 /* Now fixup devices on that bus */ 1045 pcibios_setup_bus_devices(bus); 1046 } 1047 EXPORT_SYMBOL(pcibios_fixup_bus); 1048 1049 void pci_fixup_cardbus(struct pci_bus *bus) 1050 { 1051 /* Now fixup devices on that bus */ 1052 pcibios_setup_bus_devices(bus); 1053 } 1054 1055 1056 static int skip_isa_ioresource_align(struct pci_dev *dev) 1057 { 1058 if (pci_has_flag(PCI_CAN_SKIP_ISA_ALIGN) && 1059 !(dev->bus->bridge_ctl & PCI_BRIDGE_CTL_ISA)) 1060 return 1; 1061 return 0; 1062 } 1063 1064 /* 1065 * We need to avoid collisions with `mirrored' VGA ports 1066 * and other strange ISA hardware, so we always want the 1067 * addresses to be allocated in the 0x000-0x0ff region 1068 * modulo 0x400. 1069 * 1070 * Why? Because some silly external IO cards only decode 1071 * the low 10 bits of the IO address. The 0x00-0xff region 1072 * is reserved for motherboard devices that decode all 16 1073 * bits, so it's ok to allocate at, say, 0x2800-0x28ff, 1074 * but we want to try to avoid allocating at 0x2900-0x2bff 1075 * which might have be mirrored at 0x0100-0x03ff.. 1076 */ 1077 resource_size_t pcibios_align_resource(void *data, const struct resource *res, 1078 resource_size_t size, resource_size_t align) 1079 { 1080 struct pci_dev *dev = data; 1081 resource_size_t start = res->start; 1082 1083 if (res->flags & IORESOURCE_IO) { 1084 if (skip_isa_ioresource_align(dev)) 1085 return start; 1086 if (start & 0x300) 1087 start = (start + 0x3ff) & ~0x3ff; 1088 } 1089 1090 return start; 1091 } 1092 EXPORT_SYMBOL(pcibios_align_resource); 1093 1094 /* 1095 * Reparent resource children of pr that conflict with res 1096 * under res, and make res replace those children. 1097 */ 1098 static int reparent_resources(struct resource *parent, 1099 struct resource *res) 1100 { 1101 struct resource *p, **pp; 1102 struct resource **firstpp = NULL; 1103 1104 for (pp = &parent->child; (p = *pp) != NULL; pp = &p->sibling) { 1105 if (p->end < res->start) 1106 continue; 1107 if (res->end < p->start) 1108 break; 1109 if (p->start < res->start || p->end > res->end) 1110 return -1; /* not completely contained */ 1111 if (firstpp == NULL) 1112 firstpp = pp; 1113 } 1114 if (firstpp == NULL) 1115 return -1; /* didn't find any conflicting entries? */ 1116 res->parent = parent; 1117 res->child = *firstpp; 1118 res->sibling = *pp; 1119 *firstpp = res; 1120 *pp = NULL; 1121 for (p = res->child; p != NULL; p = p->sibling) { 1122 p->parent = res; 1123 pr_debug("PCI: Reparented %s %pR under %s\n", 1124 p->name, p, res->name); 1125 } 1126 return 0; 1127 } 1128 1129 /* 1130 * Handle resources of PCI devices. If the world were perfect, we could 1131 * just allocate all the resource regions and do nothing more. It isn't. 1132 * On the other hand, we cannot just re-allocate all devices, as it would 1133 * require us to know lots of host bridge internals. So we attempt to 1134 * keep as much of the original configuration as possible, but tweak it 1135 * when it's found to be wrong. 1136 * 1137 * Known BIOS problems we have to work around: 1138 * - I/O or memory regions not configured 1139 * - regions configured, but not enabled in the command register 1140 * - bogus I/O addresses above 64K used 1141 * - expansion ROMs left enabled (this may sound harmless, but given 1142 * the fact the PCI specs explicitly allow address decoders to be 1143 * shared between expansion ROMs and other resource regions, it's 1144 * at least dangerous) 1145 * 1146 * Our solution: 1147 * (1) Allocate resources for all buses behind PCI-to-PCI bridges. 1148 * This gives us fixed barriers on where we can allocate. 1149 * (2) Allocate resources for all enabled devices. If there is 1150 * a collision, just mark the resource as unallocated. Also 1151 * disable expansion ROMs during this step. 1152 * (3) Try to allocate resources for disabled devices. If the 1153 * resources were assigned correctly, everything goes well, 1154 * if they weren't, they won't disturb allocation of other 1155 * resources. 1156 * (4) Assign new addresses to resources which were either 1157 * not configured at all or misconfigured. If explicitly 1158 * requested by the user, configure expansion ROM address 1159 * as well. 1160 */ 1161 1162 static void pcibios_allocate_bus_resources(struct pci_bus *bus) 1163 { 1164 struct pci_bus *b; 1165 int i; 1166 struct resource *res, *pr; 1167 1168 pr_debug("PCI: Allocating bus resources for %04x:%02x...\n", 1169 pci_domain_nr(bus), bus->number); 1170 1171 pci_bus_for_each_resource(bus, res, i) { 1172 if (!res || !res->flags || res->start > res->end || res->parent) 1173 continue; 1174 1175 /* If the resource was left unset at this point, we clear it */ 1176 if (res->flags & IORESOURCE_UNSET) 1177 goto clear_resource; 1178 1179 if (bus->parent == NULL) 1180 pr = (res->flags & IORESOURCE_IO) ? 1181 &ioport_resource : &iomem_resource; 1182 else { 1183 pr = pci_find_parent_resource(bus->self, res); 1184 if (pr == res) { 1185 /* this happens when the generic PCI 1186 * code (wrongly) decides that this 1187 * bridge is transparent -- paulus 1188 */ 1189 continue; 1190 } 1191 } 1192 1193 pr_debug("PCI: %s (bus %d) bridge rsrc %d: %pR, parent %p (%s)\n", 1194 bus->self ? pci_name(bus->self) : "PHB", bus->number, 1195 i, res, pr, (pr && pr->name) ? pr->name : "nil"); 1196 1197 if (pr && !(pr->flags & IORESOURCE_UNSET)) { 1198 struct pci_dev *dev = bus->self; 1199 1200 if (request_resource(pr, res) == 0) 1201 continue; 1202 /* 1203 * Must be a conflict with an existing entry. 1204 * Move that entry (or entries) under the 1205 * bridge resource and try again. 1206 */ 1207 if (reparent_resources(pr, res) == 0) 1208 continue; 1209 1210 if (dev && i < PCI_BRIDGE_RESOURCE_NUM && 1211 pci_claim_bridge_resource(dev, 1212 i + PCI_BRIDGE_RESOURCES) == 0) 1213 continue; 1214 } 1215 pr_warning("PCI: Cannot allocate resource region " 1216 "%d of PCI bridge %d, will remap\n", i, bus->number); 1217 clear_resource: 1218 /* The resource might be figured out when doing 1219 * reassignment based on the resources required 1220 * by the downstream PCI devices. Here we set 1221 * the size of the resource to be 0 in order to 1222 * save more space. 1223 */ 1224 res->start = 0; 1225 res->end = -1; 1226 res->flags = 0; 1227 } 1228 1229 list_for_each_entry(b, &bus->children, node) 1230 pcibios_allocate_bus_resources(b); 1231 } 1232 1233 static inline void alloc_resource(struct pci_dev *dev, int idx) 1234 { 1235 struct resource *pr, *r = &dev->resource[idx]; 1236 1237 pr_debug("PCI: Allocating %s: Resource %d: %pR\n", 1238 pci_name(dev), idx, r); 1239 1240 pr = pci_find_parent_resource(dev, r); 1241 if (!pr || (pr->flags & IORESOURCE_UNSET) || 1242 request_resource(pr, r) < 0) { 1243 printk(KERN_WARNING "PCI: Cannot allocate resource region %d" 1244 " of device %s, will remap\n", idx, pci_name(dev)); 1245 if (pr) 1246 pr_debug("PCI: parent is %p: %pR\n", pr, pr); 1247 /* We'll assign a new address later */ 1248 r->flags |= IORESOURCE_UNSET; 1249 r->end -= r->start; 1250 r->start = 0; 1251 } 1252 } 1253 1254 static void __init pcibios_allocate_resources(int pass) 1255 { 1256 struct pci_dev *dev = NULL; 1257 int idx, disabled; 1258 u16 command; 1259 struct resource *r; 1260 1261 for_each_pci_dev(dev) { 1262 pci_read_config_word(dev, PCI_COMMAND, &command); 1263 for (idx = 0; idx <= PCI_ROM_RESOURCE; idx++) { 1264 r = &dev->resource[idx]; 1265 if (r->parent) /* Already allocated */ 1266 continue; 1267 if (!r->flags || (r->flags & IORESOURCE_UNSET)) 1268 continue; /* Not assigned at all */ 1269 /* We only allocate ROMs on pass 1 just in case they 1270 * have been screwed up by firmware 1271 */ 1272 if (idx == PCI_ROM_RESOURCE ) 1273 disabled = 1; 1274 if (r->flags & IORESOURCE_IO) 1275 disabled = !(command & PCI_COMMAND_IO); 1276 else 1277 disabled = !(command & PCI_COMMAND_MEMORY); 1278 if (pass == disabled) 1279 alloc_resource(dev, idx); 1280 } 1281 if (pass) 1282 continue; 1283 r = &dev->resource[PCI_ROM_RESOURCE]; 1284 if (r->flags) { 1285 /* Turn the ROM off, leave the resource region, 1286 * but keep it unregistered. 1287 */ 1288 u32 reg; 1289 pci_read_config_dword(dev, dev->rom_base_reg, ®); 1290 if (reg & PCI_ROM_ADDRESS_ENABLE) { 1291 pr_debug("PCI: Switching off ROM of %s\n", 1292 pci_name(dev)); 1293 r->flags &= ~IORESOURCE_ROM_ENABLE; 1294 pci_write_config_dword(dev, dev->rom_base_reg, 1295 reg & ~PCI_ROM_ADDRESS_ENABLE); 1296 } 1297 } 1298 } 1299 } 1300 1301 static void __init pcibios_reserve_legacy_regions(struct pci_bus *bus) 1302 { 1303 struct pci_controller *hose = pci_bus_to_host(bus); 1304 resource_size_t offset; 1305 struct resource *res, *pres; 1306 int i; 1307 1308 pr_debug("Reserving legacy ranges for domain %04x\n", pci_domain_nr(bus)); 1309 1310 /* Check for IO */ 1311 if (!(hose->io_resource.flags & IORESOURCE_IO)) 1312 goto no_io; 1313 offset = (unsigned long)hose->io_base_virt - _IO_BASE; 1314 res = kzalloc(sizeof(struct resource), GFP_KERNEL); 1315 BUG_ON(res == NULL); 1316 res->name = "Legacy IO"; 1317 res->flags = IORESOURCE_IO; 1318 res->start = offset; 1319 res->end = (offset + 0xfff) & 0xfffffffful; 1320 pr_debug("Candidate legacy IO: %pR\n", res); 1321 if (request_resource(&hose->io_resource, res)) { 1322 printk(KERN_DEBUG 1323 "PCI %04x:%02x Cannot reserve Legacy IO %pR\n", 1324 pci_domain_nr(bus), bus->number, res); 1325 kfree(res); 1326 } 1327 1328 no_io: 1329 /* Check for memory */ 1330 for (i = 0; i < 3; i++) { 1331 pres = &hose->mem_resources[i]; 1332 offset = hose->mem_offset[i]; 1333 if (!(pres->flags & IORESOURCE_MEM)) 1334 continue; 1335 pr_debug("hose mem res: %pR\n", pres); 1336 if ((pres->start - offset) <= 0xa0000 && 1337 (pres->end - offset) >= 0xbffff) 1338 break; 1339 } 1340 if (i >= 3) 1341 return; 1342 res = kzalloc(sizeof(struct resource), GFP_KERNEL); 1343 BUG_ON(res == NULL); 1344 res->name = "Legacy VGA memory"; 1345 res->flags = IORESOURCE_MEM; 1346 res->start = 0xa0000 + offset; 1347 res->end = 0xbffff + offset; 1348 pr_debug("Candidate VGA memory: %pR\n", res); 1349 if (request_resource(pres, res)) { 1350 printk(KERN_DEBUG 1351 "PCI %04x:%02x Cannot reserve VGA memory %pR\n", 1352 pci_domain_nr(bus), bus->number, res); 1353 kfree(res); 1354 } 1355 } 1356 1357 void __init pcibios_resource_survey(void) 1358 { 1359 struct pci_bus *b; 1360 1361 /* Allocate and assign resources */ 1362 list_for_each_entry(b, &pci_root_buses, node) 1363 pcibios_allocate_bus_resources(b); 1364 pcibios_allocate_resources(0); 1365 pcibios_allocate_resources(1); 1366 1367 /* Before we start assigning unassigned resource, we try to reserve 1368 * the low IO area and the VGA memory area if they intersect the 1369 * bus available resources to avoid allocating things on top of them 1370 */ 1371 if (!pci_has_flag(PCI_PROBE_ONLY)) { 1372 list_for_each_entry(b, &pci_root_buses, node) 1373 pcibios_reserve_legacy_regions(b); 1374 } 1375 1376 /* Now, if the platform didn't decide to blindly trust the firmware, 1377 * we proceed to assigning things that were left unassigned 1378 */ 1379 if (!pci_has_flag(PCI_PROBE_ONLY)) { 1380 pr_debug("PCI: Assigning unassigned resources...\n"); 1381 pci_assign_unassigned_resources(); 1382 } 1383 1384 /* Call machine dependent fixup */ 1385 if (ppc_md.pcibios_fixup) 1386 ppc_md.pcibios_fixup(); 1387 } 1388 1389 /* This is used by the PCI hotplug driver to allocate resource 1390 * of newly plugged busses. We can try to consolidate with the 1391 * rest of the code later, for now, keep it as-is as our main 1392 * resource allocation function doesn't deal with sub-trees yet. 1393 */ 1394 void pcibios_claim_one_bus(struct pci_bus *bus) 1395 { 1396 struct pci_dev *dev; 1397 struct pci_bus *child_bus; 1398 1399 list_for_each_entry(dev, &bus->devices, bus_list) { 1400 int i; 1401 1402 for (i = 0; i < PCI_NUM_RESOURCES; i++) { 1403 struct resource *r = &dev->resource[i]; 1404 1405 if (r->parent || !r->start || !r->flags) 1406 continue; 1407 1408 pr_debug("PCI: Claiming %s: Resource %d: %pR\n", 1409 pci_name(dev), i, r); 1410 1411 if (pci_claim_resource(dev, i) == 0) 1412 continue; 1413 1414 pci_claim_bridge_resource(dev, i); 1415 } 1416 } 1417 1418 list_for_each_entry(child_bus, &bus->children, node) 1419 pcibios_claim_one_bus(child_bus); 1420 } 1421 EXPORT_SYMBOL_GPL(pcibios_claim_one_bus); 1422 1423 1424 /* pcibios_finish_adding_to_bus 1425 * 1426 * This is to be called by the hotplug code after devices have been 1427 * added to a bus, this include calling it for a PHB that is just 1428 * being added 1429 */ 1430 void pcibios_finish_adding_to_bus(struct pci_bus *bus) 1431 { 1432 pr_debug("PCI: Finishing adding to hotplug bus %04x:%02x\n", 1433 pci_domain_nr(bus), bus->number); 1434 1435 /* Allocate bus and devices resources */ 1436 pcibios_allocate_bus_resources(bus); 1437 pcibios_claim_one_bus(bus); 1438 if (!pci_has_flag(PCI_PROBE_ONLY)) 1439 pci_assign_unassigned_bus_resources(bus); 1440 1441 /* Fixup EEH */ 1442 eeh_add_device_tree_late(bus); 1443 1444 /* Add new devices to global lists. Register in proc, sysfs. */ 1445 pci_bus_add_devices(bus); 1446 1447 /* sysfs files should only be added after devices are added */ 1448 eeh_add_sysfs_files(bus); 1449 } 1450 EXPORT_SYMBOL_GPL(pcibios_finish_adding_to_bus); 1451 1452 int pcibios_enable_device(struct pci_dev *dev, int mask) 1453 { 1454 struct pci_controller *phb = pci_bus_to_host(dev->bus); 1455 1456 if (phb->controller_ops.enable_device_hook) 1457 if (!phb->controller_ops.enable_device_hook(dev)) 1458 return -EINVAL; 1459 1460 return pci_enable_resources(dev, mask); 1461 } 1462 1463 void pcibios_disable_device(struct pci_dev *dev) 1464 { 1465 struct pci_controller *phb = pci_bus_to_host(dev->bus); 1466 1467 if (phb->controller_ops.disable_device) 1468 phb->controller_ops.disable_device(dev); 1469 } 1470 1471 resource_size_t pcibios_io_space_offset(struct pci_controller *hose) 1472 { 1473 return (unsigned long) hose->io_base_virt - _IO_BASE; 1474 } 1475 1476 static void pcibios_setup_phb_resources(struct pci_controller *hose, 1477 struct list_head *resources) 1478 { 1479 struct resource *res; 1480 resource_size_t offset; 1481 int i; 1482 1483 /* Hookup PHB IO resource */ 1484 res = &hose->io_resource; 1485 1486 if (!res->flags) { 1487 pr_info("PCI: I/O resource not set for host" 1488 " bridge %s (domain %d)\n", 1489 hose->dn->full_name, hose->global_number); 1490 } else { 1491 offset = pcibios_io_space_offset(hose); 1492 1493 pr_debug("PCI: PHB IO resource = %pR off 0x%08llx\n", 1494 res, (unsigned long long)offset); 1495 pci_add_resource_offset(resources, res, offset); 1496 } 1497 1498 /* Hookup PHB Memory resources */ 1499 for (i = 0; i < 3; ++i) { 1500 res = &hose->mem_resources[i]; 1501 if (!res->flags) { 1502 if (i == 0) 1503 printk(KERN_ERR "PCI: Memory resource 0 not set for " 1504 "host bridge %s (domain %d)\n", 1505 hose->dn->full_name, hose->global_number); 1506 continue; 1507 } 1508 offset = hose->mem_offset[i]; 1509 1510 1511 pr_debug("PCI: PHB MEM resource %d = %pR off 0x%08llx\n", i, 1512 res, (unsigned long long)offset); 1513 1514 pci_add_resource_offset(resources, res, offset); 1515 } 1516 } 1517 1518 /* 1519 * Null PCI config access functions, for the case when we can't 1520 * find a hose. 1521 */ 1522 #define NULL_PCI_OP(rw, size, type) \ 1523 static int \ 1524 null_##rw##_config_##size(struct pci_dev *dev, int offset, type val) \ 1525 { \ 1526 return PCIBIOS_DEVICE_NOT_FOUND; \ 1527 } 1528 1529 static int 1530 null_read_config(struct pci_bus *bus, unsigned int devfn, int offset, 1531 int len, u32 *val) 1532 { 1533 return PCIBIOS_DEVICE_NOT_FOUND; 1534 } 1535 1536 static int 1537 null_write_config(struct pci_bus *bus, unsigned int devfn, int offset, 1538 int len, u32 val) 1539 { 1540 return PCIBIOS_DEVICE_NOT_FOUND; 1541 } 1542 1543 static struct pci_ops null_pci_ops = 1544 { 1545 .read = null_read_config, 1546 .write = null_write_config, 1547 }; 1548 1549 /* 1550 * These functions are used early on before PCI scanning is done 1551 * and all of the pci_dev and pci_bus structures have been created. 1552 */ 1553 static struct pci_bus * 1554 fake_pci_bus(struct pci_controller *hose, int busnr) 1555 { 1556 static struct pci_bus bus; 1557 1558 if (hose == NULL) { 1559 printk(KERN_ERR "Can't find hose for PCI bus %d!\n", busnr); 1560 } 1561 bus.number = busnr; 1562 bus.sysdata = hose; 1563 bus.ops = hose? hose->ops: &null_pci_ops; 1564 return &bus; 1565 } 1566 1567 #define EARLY_PCI_OP(rw, size, type) \ 1568 int early_##rw##_config_##size(struct pci_controller *hose, int bus, \ 1569 int devfn, int offset, type value) \ 1570 { \ 1571 return pci_bus_##rw##_config_##size(fake_pci_bus(hose, bus), \ 1572 devfn, offset, value); \ 1573 } 1574 1575 EARLY_PCI_OP(read, byte, u8 *) 1576 EARLY_PCI_OP(read, word, u16 *) 1577 EARLY_PCI_OP(read, dword, u32 *) 1578 EARLY_PCI_OP(write, byte, u8) 1579 EARLY_PCI_OP(write, word, u16) 1580 EARLY_PCI_OP(write, dword, u32) 1581 1582 int early_find_capability(struct pci_controller *hose, int bus, int devfn, 1583 int cap) 1584 { 1585 return pci_bus_find_capability(fake_pci_bus(hose, bus), devfn, cap); 1586 } 1587 1588 struct device_node *pcibios_get_phb_of_node(struct pci_bus *bus) 1589 { 1590 struct pci_controller *hose = bus->sysdata; 1591 1592 return of_node_get(hose->dn); 1593 } 1594 1595 /** 1596 * pci_scan_phb - Given a pci_controller, setup and scan the PCI bus 1597 * @hose: Pointer to the PCI host controller instance structure 1598 */ 1599 void pcibios_scan_phb(struct pci_controller *hose) 1600 { 1601 LIST_HEAD(resources); 1602 struct pci_bus *bus; 1603 struct device_node *node = hose->dn; 1604 int mode; 1605 1606 pr_debug("PCI: Scanning PHB %s\n", of_node_full_name(node)); 1607 1608 /* Get some IO space for the new PHB */ 1609 pcibios_setup_phb_io_space(hose); 1610 1611 /* Wire up PHB bus resources */ 1612 pcibios_setup_phb_resources(hose, &resources); 1613 1614 hose->busn.start = hose->first_busno; 1615 hose->busn.end = hose->last_busno; 1616 hose->busn.flags = IORESOURCE_BUS; 1617 pci_add_resource(&resources, &hose->busn); 1618 1619 /* Create an empty bus for the toplevel */ 1620 bus = pci_create_root_bus(hose->parent, hose->first_busno, 1621 hose->ops, hose, &resources); 1622 if (bus == NULL) { 1623 pr_err("Failed to create bus for PCI domain %04x\n", 1624 hose->global_number); 1625 pci_free_resource_list(&resources); 1626 return; 1627 } 1628 hose->bus = bus; 1629 1630 /* Get probe mode and perform scan */ 1631 mode = PCI_PROBE_NORMAL; 1632 if (node && hose->controller_ops.probe_mode) 1633 mode = hose->controller_ops.probe_mode(bus); 1634 pr_debug(" probe mode: %d\n", mode); 1635 if (mode == PCI_PROBE_DEVTREE) 1636 of_scan_bus(node, bus); 1637 1638 if (mode == PCI_PROBE_NORMAL) { 1639 pci_bus_update_busn_res_end(bus, 255); 1640 hose->last_busno = pci_scan_child_bus(bus); 1641 pci_bus_update_busn_res_end(bus, hose->last_busno); 1642 } 1643 1644 /* Platform gets a chance to do some global fixups before 1645 * we proceed to resource allocation 1646 */ 1647 if (ppc_md.pcibios_fixup_phb) 1648 ppc_md.pcibios_fixup_phb(hose); 1649 1650 /* Configure PCI Express settings */ 1651 if (bus && !pci_has_flag(PCI_PROBE_ONLY)) { 1652 struct pci_bus *child; 1653 list_for_each_entry(child, &bus->children, node) 1654 pcie_bus_configure_settings(child); 1655 } 1656 } 1657 EXPORT_SYMBOL_GPL(pcibios_scan_phb); 1658 1659 static void fixup_hide_host_resource_fsl(struct pci_dev *dev) 1660 { 1661 int i, class = dev->class >> 8; 1662 /* When configured as agent, programing interface = 1 */ 1663 int prog_if = dev->class & 0xf; 1664 1665 if ((class == PCI_CLASS_PROCESSOR_POWERPC || 1666 class == PCI_CLASS_BRIDGE_OTHER) && 1667 (dev->hdr_type == PCI_HEADER_TYPE_NORMAL) && 1668 (prog_if == 0) && 1669 (dev->bus->parent == NULL)) { 1670 for (i = 0; i < DEVICE_COUNT_RESOURCE; i++) { 1671 dev->resource[i].start = 0; 1672 dev->resource[i].end = 0; 1673 dev->resource[i].flags = 0; 1674 } 1675 } 1676 } 1677 DECLARE_PCI_FIXUP_HEADER(PCI_VENDOR_ID_MOTOROLA, PCI_ANY_ID, fixup_hide_host_resource_fsl); 1678 DECLARE_PCI_FIXUP_HEADER(PCI_VENDOR_ID_FREESCALE, PCI_ANY_ID, fixup_hide_host_resource_fsl); 1679 1680 static void fixup_vga(struct pci_dev *pdev) 1681 { 1682 u16 cmd; 1683 1684 pci_read_config_word(pdev, PCI_COMMAND, &cmd); 1685 if ((cmd & (PCI_COMMAND_IO | PCI_COMMAND_MEMORY)) || !vga_default_device()) 1686 vga_set_default_device(pdev); 1687 1688 } 1689 DECLARE_PCI_FIXUP_CLASS_FINAL(PCI_ANY_ID, PCI_ANY_ID, 1690 PCI_CLASS_DISPLAY_VGA, 8, fixup_vga); 1691