1 /* 2 * ioport.c: Simple io mapping allocator. 3 * 4 * Copyright (C) 1995 David S. Miller (davem@caip.rutgers.edu) 5 * Copyright (C) 1995 Miguel de Icaza (miguel@nuclecu.unam.mx) 6 * 7 * 1996: sparc_free_io, 1999: ioremap()/iounmap() by Pete Zaitcev. 8 * 9 * 2000/01/29 10 * <rth> zait: as long as pci_alloc_consistent produces something addressable, 11 * things are ok. 12 * <zaitcev> rth: no, it is relevant, because get_free_pages returns you a 13 * pointer into the big page mapping 14 * <rth> zait: so what? 15 * <rth> zait: remap_it_my_way(virt_to_phys(get_free_page())) 16 * <zaitcev> Hmm 17 * <zaitcev> Suppose I did this remap_it_my_way(virt_to_phys(get_free_page())). 18 * So far so good. 19 * <zaitcev> Now, driver calls pci_free_consistent(with result of 20 * remap_it_my_way()). 21 * <zaitcev> How do you find the address to pass to free_pages()? 22 * <rth> zait: walk the page tables? It's only two or three level after all. 23 * <rth> zait: you have to walk them anyway to remove the mapping. 24 * <zaitcev> Hmm 25 * <zaitcev> Sounds reasonable 26 */ 27 28 #include <linux/module.h> 29 #include <linux/sched.h> 30 #include <linux/kernel.h> 31 #include <linux/errno.h> 32 #include <linux/types.h> 33 #include <linux/ioport.h> 34 #include <linux/mm.h> 35 #include <linux/slab.h> 36 #include <linux/pci.h> /* struct pci_dev */ 37 #include <linux/proc_fs.h> 38 #include <linux/seq_file.h> 39 #include <linux/scatterlist.h> 40 #include <linux/of_device.h> 41 42 #include <asm/io.h> 43 #include <asm/vaddrs.h> 44 #include <asm/oplib.h> 45 #include <asm/prom.h> 46 #include <asm/page.h> 47 #include <asm/pgalloc.h> 48 #include <asm/dma.h> 49 #include <asm/iommu.h> 50 #include <asm/io-unit.h> 51 #include <asm/leon.h> 52 53 #ifndef CONFIG_SPARC_LEON 54 #define mmu_inval_dma_area(p, l) /* Anton pulled it out for 2.4.0-xx */ 55 #else 56 static inline void mmu_inval_dma_area(void *va, unsigned long len) 57 { 58 if (!sparc_leon3_snooping_enabled()) 59 leon_flush_dcache_all(); 60 } 61 #endif 62 63 static struct resource *_sparc_find_resource(struct resource *r, 64 unsigned long); 65 66 static void __iomem *_sparc_ioremap(struct resource *res, u32 bus, u32 pa, int sz); 67 static void __iomem *_sparc_alloc_io(unsigned int busno, unsigned long phys, 68 unsigned long size, char *name); 69 static void _sparc_free_io(struct resource *res); 70 71 static void register_proc_sparc_ioport(void); 72 73 /* This points to the next to use virtual memory for DVMA mappings */ 74 static struct resource _sparc_dvma = { 75 .name = "sparc_dvma", .start = DVMA_VADDR, .end = DVMA_END - 1 76 }; 77 /* This points to the start of I/O mappings, cluable from outside. */ 78 /*ext*/ struct resource sparc_iomap = { 79 .name = "sparc_iomap", .start = IOBASE_VADDR, .end = IOBASE_END - 1 80 }; 81 82 /* 83 * Our mini-allocator... 84 * Boy this is gross! We need it because we must map I/O for 85 * timers and interrupt controller before the kmalloc is available. 86 */ 87 88 #define XNMLN 15 89 #define XNRES 10 /* SS-10 uses 8 */ 90 91 struct xresource { 92 struct resource xres; /* Must be first */ 93 int xflag; /* 1 == used */ 94 char xname[XNMLN+1]; 95 }; 96 97 static struct xresource xresv[XNRES]; 98 99 static struct xresource *xres_alloc(void) { 100 struct xresource *xrp; 101 int n; 102 103 xrp = xresv; 104 for (n = 0; n < XNRES; n++) { 105 if (xrp->xflag == 0) { 106 xrp->xflag = 1; 107 return xrp; 108 } 109 xrp++; 110 } 111 return NULL; 112 } 113 114 static void xres_free(struct xresource *xrp) { 115 xrp->xflag = 0; 116 } 117 118 /* 119 * These are typically used in PCI drivers 120 * which are trying to be cross-platform. 121 * 122 * Bus type is always zero on IIep. 123 */ 124 void __iomem *ioremap(unsigned long offset, unsigned long size) 125 { 126 char name[14]; 127 128 sprintf(name, "phys_%08x", (u32)offset); 129 return _sparc_alloc_io(0, offset, size, name); 130 } 131 EXPORT_SYMBOL(ioremap); 132 133 /* 134 * Comlimentary to ioremap(). 135 */ 136 void iounmap(volatile void __iomem *virtual) 137 { 138 unsigned long vaddr = (unsigned long) virtual & PAGE_MASK; 139 struct resource *res; 140 141 if ((res = _sparc_find_resource(&sparc_iomap, vaddr)) == NULL) { 142 printk("free_io/iounmap: cannot free %lx\n", vaddr); 143 return; 144 } 145 _sparc_free_io(res); 146 147 if ((char *)res >= (char*)xresv && (char *)res < (char *)&xresv[XNRES]) { 148 xres_free((struct xresource *)res); 149 } else { 150 kfree(res); 151 } 152 } 153 EXPORT_SYMBOL(iounmap); 154 155 void __iomem *of_ioremap(struct resource *res, unsigned long offset, 156 unsigned long size, char *name) 157 { 158 return _sparc_alloc_io(res->flags & 0xF, 159 res->start + offset, 160 size, name); 161 } 162 EXPORT_SYMBOL(of_ioremap); 163 164 void of_iounmap(struct resource *res, void __iomem *base, unsigned long size) 165 { 166 iounmap(base); 167 } 168 EXPORT_SYMBOL(of_iounmap); 169 170 /* 171 * Meat of mapping 172 */ 173 static void __iomem *_sparc_alloc_io(unsigned int busno, unsigned long phys, 174 unsigned long size, char *name) 175 { 176 static int printed_full; 177 struct xresource *xres; 178 struct resource *res; 179 char *tack; 180 int tlen; 181 void __iomem *va; /* P3 diag */ 182 183 if (name == NULL) name = "???"; 184 185 if ((xres = xres_alloc()) != 0) { 186 tack = xres->xname; 187 res = &xres->xres; 188 } else { 189 if (!printed_full) { 190 printk("ioremap: done with statics, switching to malloc\n"); 191 printed_full = 1; 192 } 193 tlen = strlen(name); 194 tack = kmalloc(sizeof (struct resource) + tlen + 1, GFP_KERNEL); 195 if (tack == NULL) return NULL; 196 memset(tack, 0, sizeof(struct resource)); 197 res = (struct resource *) tack; 198 tack += sizeof (struct resource); 199 } 200 201 strlcpy(tack, name, XNMLN+1); 202 res->name = tack; 203 204 va = _sparc_ioremap(res, busno, phys, size); 205 /* printk("ioremap(0x%x:%08lx[0x%lx])=%p\n", busno, phys, size, va); */ /* P3 diag */ 206 return va; 207 } 208 209 /* 210 */ 211 static void __iomem * 212 _sparc_ioremap(struct resource *res, u32 bus, u32 pa, int sz) 213 { 214 unsigned long offset = ((unsigned long) pa) & (~PAGE_MASK); 215 216 if (allocate_resource(&sparc_iomap, res, 217 (offset + sz + PAGE_SIZE-1) & PAGE_MASK, 218 sparc_iomap.start, sparc_iomap.end, PAGE_SIZE, NULL, NULL) != 0) { 219 /* Usually we cannot see printks in this case. */ 220 prom_printf("alloc_io_res(%s): cannot occupy\n", 221 (res->name != NULL)? res->name: "???"); 222 prom_halt(); 223 } 224 225 pa &= PAGE_MASK; 226 sparc_mapiorange(bus, pa, res->start, res->end - res->start + 1); 227 228 return (void __iomem *)(unsigned long)(res->start + offset); 229 } 230 231 /* 232 * Comlimentary to _sparc_ioremap(). 233 */ 234 static void _sparc_free_io(struct resource *res) 235 { 236 unsigned long plen; 237 238 plen = res->end - res->start + 1; 239 BUG_ON((plen & (PAGE_SIZE-1)) != 0); 240 sparc_unmapiorange(res->start, plen); 241 release_resource(res); 242 } 243 244 #ifdef CONFIG_SBUS 245 246 void sbus_set_sbus64(struct device *dev, int x) 247 { 248 printk("sbus_set_sbus64: unsupported\n"); 249 } 250 EXPORT_SYMBOL(sbus_set_sbus64); 251 252 /* 253 * Allocate a chunk of memory suitable for DMA. 254 * Typically devices use them for control blocks. 255 * CPU may access them without any explicit flushing. 256 */ 257 static void *sbus_alloc_coherent(struct device *dev, size_t len, 258 dma_addr_t *dma_addrp, gfp_t gfp) 259 { 260 struct platform_device *op = to_platform_device(dev); 261 unsigned long len_total = PAGE_ALIGN(len); 262 unsigned long va; 263 struct resource *res; 264 int order; 265 266 /* XXX why are some lengths signed, others unsigned? */ 267 if (len <= 0) { 268 return NULL; 269 } 270 /* XXX So what is maxphys for us and how do drivers know it? */ 271 if (len > 256*1024) { /* __get_free_pages() limit */ 272 return NULL; 273 } 274 275 order = get_order(len_total); 276 if ((va = __get_free_pages(GFP_KERNEL|__GFP_COMP, order)) == 0) 277 goto err_nopages; 278 279 if ((res = kzalloc(sizeof(struct resource), GFP_KERNEL)) == NULL) 280 goto err_nomem; 281 282 if (allocate_resource(&_sparc_dvma, res, len_total, 283 _sparc_dvma.start, _sparc_dvma.end, PAGE_SIZE, NULL, NULL) != 0) { 284 printk("sbus_alloc_consistent: cannot occupy 0x%lx", len_total); 285 goto err_nova; 286 } 287 mmu_inval_dma_area((void *)va, len_total); 288 289 // XXX The mmu_map_dma_area does this for us below, see comments. 290 // sparc_mapiorange(0, virt_to_phys(va), res->start, len_total); 291 /* 292 * XXX That's where sdev would be used. Currently we load 293 * all iommu tables with the same translations. 294 */ 295 if (mmu_map_dma_area(dev, dma_addrp, va, res->start, len_total) != 0) 296 goto err_noiommu; 297 298 res->name = op->dev.of_node->name; 299 300 return (void *)(unsigned long)res->start; 301 302 err_noiommu: 303 release_resource(res); 304 err_nova: 305 kfree(res); 306 err_nomem: 307 free_pages(va, order); 308 err_nopages: 309 return NULL; 310 } 311 312 static void sbus_free_coherent(struct device *dev, size_t n, void *p, 313 dma_addr_t ba) 314 { 315 struct resource *res; 316 struct page *pgv; 317 318 if ((res = _sparc_find_resource(&_sparc_dvma, 319 (unsigned long)p)) == NULL) { 320 printk("sbus_free_consistent: cannot free %p\n", p); 321 return; 322 } 323 324 if (((unsigned long)p & (PAGE_SIZE-1)) != 0) { 325 printk("sbus_free_consistent: unaligned va %p\n", p); 326 return; 327 } 328 329 n = PAGE_ALIGN(n); 330 if ((res->end-res->start)+1 != n) { 331 printk("sbus_free_consistent: region 0x%lx asked 0x%zx\n", 332 (long)((res->end-res->start)+1), n); 333 return; 334 } 335 336 release_resource(res); 337 kfree(res); 338 339 /* mmu_inval_dma_area(va, n); */ /* it's consistent, isn't it */ 340 pgv = virt_to_page(p); 341 mmu_unmap_dma_area(dev, ba, n); 342 343 __free_pages(pgv, get_order(n)); 344 } 345 346 /* 347 * Map a chunk of memory so that devices can see it. 348 * CPU view of this memory may be inconsistent with 349 * a device view and explicit flushing is necessary. 350 */ 351 static dma_addr_t sbus_map_page(struct device *dev, struct page *page, 352 unsigned long offset, size_t len, 353 enum dma_data_direction dir, 354 struct dma_attrs *attrs) 355 { 356 void *va = page_address(page) + offset; 357 358 /* XXX why are some lengths signed, others unsigned? */ 359 if (len <= 0) { 360 return 0; 361 } 362 /* XXX So what is maxphys for us and how do drivers know it? */ 363 if (len > 256*1024) { /* __get_free_pages() limit */ 364 return 0; 365 } 366 return mmu_get_scsi_one(dev, va, len); 367 } 368 369 static void sbus_unmap_page(struct device *dev, dma_addr_t ba, size_t n, 370 enum dma_data_direction dir, struct dma_attrs *attrs) 371 { 372 mmu_release_scsi_one(dev, ba, n); 373 } 374 375 static int sbus_map_sg(struct device *dev, struct scatterlist *sg, int n, 376 enum dma_data_direction dir, struct dma_attrs *attrs) 377 { 378 mmu_get_scsi_sgl(dev, sg, n); 379 380 /* 381 * XXX sparc64 can return a partial length here. sun4c should do this 382 * but it currently panics if it can't fulfill the request - Anton 383 */ 384 return n; 385 } 386 387 static void sbus_unmap_sg(struct device *dev, struct scatterlist *sg, int n, 388 enum dma_data_direction dir, struct dma_attrs *attrs) 389 { 390 mmu_release_scsi_sgl(dev, sg, n); 391 } 392 393 static void sbus_sync_sg_for_cpu(struct device *dev, struct scatterlist *sg, 394 int n, enum dma_data_direction dir) 395 { 396 BUG(); 397 } 398 399 static void sbus_sync_sg_for_device(struct device *dev, struct scatterlist *sg, 400 int n, enum dma_data_direction dir) 401 { 402 BUG(); 403 } 404 405 struct dma_map_ops sbus_dma_ops = { 406 .alloc_coherent = sbus_alloc_coherent, 407 .free_coherent = sbus_free_coherent, 408 .map_page = sbus_map_page, 409 .unmap_page = sbus_unmap_page, 410 .map_sg = sbus_map_sg, 411 .unmap_sg = sbus_unmap_sg, 412 .sync_sg_for_cpu = sbus_sync_sg_for_cpu, 413 .sync_sg_for_device = sbus_sync_sg_for_device, 414 }; 415 416 static int __init sparc_register_ioport(void) 417 { 418 register_proc_sparc_ioport(); 419 420 return 0; 421 } 422 423 arch_initcall(sparc_register_ioport); 424 425 #endif /* CONFIG_SBUS */ 426 427 428 /* LEON reuses PCI DMA ops */ 429 #if defined(CONFIG_PCI) || defined(CONFIG_SPARC_LEON) 430 431 /* Allocate and map kernel buffer using consistent mode DMA for a device. 432 * hwdev should be valid struct pci_dev pointer for PCI devices. 433 */ 434 static void *pci32_alloc_coherent(struct device *dev, size_t len, 435 dma_addr_t *pba, gfp_t gfp) 436 { 437 unsigned long len_total = PAGE_ALIGN(len); 438 void *va; 439 struct resource *res; 440 int order; 441 442 if (len == 0) { 443 return NULL; 444 } 445 if (len > 256*1024) { /* __get_free_pages() limit */ 446 return NULL; 447 } 448 449 order = get_order(len_total); 450 va = (void *) __get_free_pages(GFP_KERNEL, order); 451 if (va == NULL) { 452 printk("pci_alloc_consistent: no %ld pages\n", len_total>>PAGE_SHIFT); 453 goto err_nopages; 454 } 455 456 if ((res = kzalloc(sizeof(struct resource), GFP_KERNEL)) == NULL) { 457 printk("pci_alloc_consistent: no core\n"); 458 goto err_nomem; 459 } 460 461 if (allocate_resource(&_sparc_dvma, res, len_total, 462 _sparc_dvma.start, _sparc_dvma.end, PAGE_SIZE, NULL, NULL) != 0) { 463 printk("pci_alloc_consistent: cannot occupy 0x%lx", len_total); 464 goto err_nova; 465 } 466 mmu_inval_dma_area(va, len_total); 467 sparc_mapiorange(0, virt_to_phys(va), res->start, len_total); 468 469 *pba = virt_to_phys(va); /* equals virt_to_bus (R.I.P.) for us. */ 470 return (void *) res->start; 471 472 err_nova: 473 kfree(res); 474 err_nomem: 475 free_pages((unsigned long)va, order); 476 err_nopages: 477 return NULL; 478 } 479 480 /* Free and unmap a consistent DMA buffer. 481 * cpu_addr is what was returned from pci_alloc_consistent, 482 * size must be the same as what as passed into pci_alloc_consistent, 483 * and likewise dma_addr must be the same as what *dma_addrp was set to. 484 * 485 * References to the memory and mappings associated with cpu_addr/dma_addr 486 * past this call are illegal. 487 */ 488 static void pci32_free_coherent(struct device *dev, size_t n, void *p, 489 dma_addr_t ba) 490 { 491 struct resource *res; 492 void *pgp; 493 494 if ((res = _sparc_find_resource(&_sparc_dvma, 495 (unsigned long)p)) == NULL) { 496 printk("pci_free_consistent: cannot free %p\n", p); 497 return; 498 } 499 500 if (((unsigned long)p & (PAGE_SIZE-1)) != 0) { 501 printk("pci_free_consistent: unaligned va %p\n", p); 502 return; 503 } 504 505 n = PAGE_ALIGN(n); 506 if ((res->end-res->start)+1 != n) { 507 printk("pci_free_consistent: region 0x%lx asked 0x%lx\n", 508 (long)((res->end-res->start)+1), (long)n); 509 return; 510 } 511 512 pgp = phys_to_virt(ba); /* bus_to_virt actually */ 513 mmu_inval_dma_area(pgp, n); 514 sparc_unmapiorange((unsigned long)p, n); 515 516 release_resource(res); 517 kfree(res); 518 519 free_pages((unsigned long)pgp, get_order(n)); 520 } 521 522 /* 523 * Same as pci_map_single, but with pages. 524 */ 525 static dma_addr_t pci32_map_page(struct device *dev, struct page *page, 526 unsigned long offset, size_t size, 527 enum dma_data_direction dir, 528 struct dma_attrs *attrs) 529 { 530 /* IIep is write-through, not flushing. */ 531 return page_to_phys(page) + offset; 532 } 533 534 static void pci32_unmap_page(struct device *dev, dma_addr_t ba, size_t size, 535 enum dma_data_direction dir, struct dma_attrs *attrs) 536 { 537 if (dir != PCI_DMA_TODEVICE) 538 mmu_inval_dma_area(phys_to_virt(ba), PAGE_ALIGN(size)); 539 } 540 541 /* Map a set of buffers described by scatterlist in streaming 542 * mode for DMA. This is the scather-gather version of the 543 * above pci_map_single interface. Here the scatter gather list 544 * elements are each tagged with the appropriate dma address 545 * and length. They are obtained via sg_dma_{address,length}(SG). 546 * 547 * NOTE: An implementation may be able to use a smaller number of 548 * DMA address/length pairs than there are SG table elements. 549 * (for example via virtual mapping capabilities) 550 * The routine returns the number of addr/length pairs actually 551 * used, at most nents. 552 * 553 * Device ownership issues as mentioned above for pci_map_single are 554 * the same here. 555 */ 556 static int pci32_map_sg(struct device *device, struct scatterlist *sgl, 557 int nents, enum dma_data_direction dir, 558 struct dma_attrs *attrs) 559 { 560 struct scatterlist *sg; 561 int n; 562 563 /* IIep is write-through, not flushing. */ 564 for_each_sg(sgl, sg, nents, n) { 565 BUG_ON(page_address(sg_page(sg)) == NULL); 566 sg->dma_address = virt_to_phys(sg_virt(sg)); 567 sg->dma_length = sg->length; 568 } 569 return nents; 570 } 571 572 /* Unmap a set of streaming mode DMA translations. 573 * Again, cpu read rules concerning calls here are the same as for 574 * pci_unmap_single() above. 575 */ 576 static void pci32_unmap_sg(struct device *dev, struct scatterlist *sgl, 577 int nents, enum dma_data_direction dir, 578 struct dma_attrs *attrs) 579 { 580 struct scatterlist *sg; 581 int n; 582 583 if (dir != PCI_DMA_TODEVICE) { 584 for_each_sg(sgl, sg, nents, n) { 585 BUG_ON(page_address(sg_page(sg)) == NULL); 586 mmu_inval_dma_area(page_address(sg_page(sg)), 587 PAGE_ALIGN(sg->length)); 588 } 589 } 590 } 591 592 /* Make physical memory consistent for a single 593 * streaming mode DMA translation before or after a transfer. 594 * 595 * If you perform a pci_map_single() but wish to interrogate the 596 * buffer using the cpu, yet do not wish to teardown the PCI dma 597 * mapping, you must call this function before doing so. At the 598 * next point you give the PCI dma address back to the card, you 599 * must first perform a pci_dma_sync_for_device, and then the 600 * device again owns the buffer. 601 */ 602 static void pci32_sync_single_for_cpu(struct device *dev, dma_addr_t ba, 603 size_t size, enum dma_data_direction dir) 604 { 605 if (dir != PCI_DMA_TODEVICE) { 606 mmu_inval_dma_area(phys_to_virt(ba), 607 PAGE_ALIGN(size)); 608 } 609 } 610 611 static void pci32_sync_single_for_device(struct device *dev, dma_addr_t ba, 612 size_t size, enum dma_data_direction dir) 613 { 614 if (dir != PCI_DMA_TODEVICE) { 615 mmu_inval_dma_area(phys_to_virt(ba), 616 PAGE_ALIGN(size)); 617 } 618 } 619 620 /* Make physical memory consistent for a set of streaming 621 * mode DMA translations after a transfer. 622 * 623 * The same as pci_dma_sync_single_* but for a scatter-gather list, 624 * same rules and usage. 625 */ 626 static void pci32_sync_sg_for_cpu(struct device *dev, struct scatterlist *sgl, 627 int nents, enum dma_data_direction dir) 628 { 629 struct scatterlist *sg; 630 int n; 631 632 if (dir != PCI_DMA_TODEVICE) { 633 for_each_sg(sgl, sg, nents, n) { 634 BUG_ON(page_address(sg_page(sg)) == NULL); 635 mmu_inval_dma_area(page_address(sg_page(sg)), 636 PAGE_ALIGN(sg->length)); 637 } 638 } 639 } 640 641 static void pci32_sync_sg_for_device(struct device *device, struct scatterlist *sgl, 642 int nents, enum dma_data_direction dir) 643 { 644 struct scatterlist *sg; 645 int n; 646 647 if (dir != PCI_DMA_TODEVICE) { 648 for_each_sg(sgl, sg, nents, n) { 649 BUG_ON(page_address(sg_page(sg)) == NULL); 650 mmu_inval_dma_area(page_address(sg_page(sg)), 651 PAGE_ALIGN(sg->length)); 652 } 653 } 654 } 655 656 struct dma_map_ops pci32_dma_ops = { 657 .alloc_coherent = pci32_alloc_coherent, 658 .free_coherent = pci32_free_coherent, 659 .map_page = pci32_map_page, 660 .unmap_page = pci32_unmap_page, 661 .map_sg = pci32_map_sg, 662 .unmap_sg = pci32_unmap_sg, 663 .sync_single_for_cpu = pci32_sync_single_for_cpu, 664 .sync_single_for_device = pci32_sync_single_for_device, 665 .sync_sg_for_cpu = pci32_sync_sg_for_cpu, 666 .sync_sg_for_device = pci32_sync_sg_for_device, 667 }; 668 EXPORT_SYMBOL(pci32_dma_ops); 669 670 #endif /* CONFIG_PCI || CONFIG_SPARC_LEON */ 671 672 #ifdef CONFIG_SPARC_LEON 673 struct dma_map_ops *dma_ops = &pci32_dma_ops; 674 #elif defined(CONFIG_SBUS) 675 struct dma_map_ops *dma_ops = &sbus_dma_ops; 676 #endif 677 678 EXPORT_SYMBOL(dma_ops); 679 680 681 /* 682 * Return whether the given PCI device DMA address mask can be 683 * supported properly. For example, if your device can only drive the 684 * low 24-bits during PCI bus mastering, then you would pass 685 * 0x00ffffff as the mask to this function. 686 */ 687 int dma_supported(struct device *dev, u64 mask) 688 { 689 #ifdef CONFIG_PCI 690 if (dev->bus == &pci_bus_type) 691 return 1; 692 #endif 693 return 0; 694 } 695 EXPORT_SYMBOL(dma_supported); 696 697 #ifdef CONFIG_PROC_FS 698 699 static int sparc_io_proc_show(struct seq_file *m, void *v) 700 { 701 struct resource *root = m->private, *r; 702 const char *nm; 703 704 for (r = root->child; r != NULL; r = r->sibling) { 705 if ((nm = r->name) == 0) nm = "???"; 706 seq_printf(m, "%016llx-%016llx: %s\n", 707 (unsigned long long)r->start, 708 (unsigned long long)r->end, nm); 709 } 710 711 return 0; 712 } 713 714 static int sparc_io_proc_open(struct inode *inode, struct file *file) 715 { 716 return single_open(file, sparc_io_proc_show, PDE(inode)->data); 717 } 718 719 static const struct file_operations sparc_io_proc_fops = { 720 .owner = THIS_MODULE, 721 .open = sparc_io_proc_open, 722 .read = seq_read, 723 .llseek = seq_lseek, 724 .release = single_release, 725 }; 726 #endif /* CONFIG_PROC_FS */ 727 728 /* 729 * This is a version of find_resource and it belongs to kernel/resource.c. 730 * Until we have agreement with Linus and Martin, it lingers here. 731 * 732 * XXX Too slow. Can have 8192 DVMA pages on sun4m in the worst case. 733 * This probably warrants some sort of hashing. 734 */ 735 static struct resource *_sparc_find_resource(struct resource *root, 736 unsigned long hit) 737 { 738 struct resource *tmp; 739 740 for (tmp = root->child; tmp != 0; tmp = tmp->sibling) { 741 if (tmp->start <= hit && tmp->end >= hit) 742 return tmp; 743 } 744 return NULL; 745 } 746 747 static void register_proc_sparc_ioport(void) 748 { 749 #ifdef CONFIG_PROC_FS 750 proc_create_data("io_map", 0, NULL, &sparc_io_proc_fops, &sparc_iomap); 751 proc_create_data("dvma_map", 0, NULL, &sparc_io_proc_fops, &_sparc_dvma); 752 #endif 753 } 754