1 /*- 2 * Copyright (C) 1996 Wolfgang Solfrank. 3 * Copyright (C) 1996 TooLs GmbH. 4 * All rights reserved. 5 * 6 * Redistribution and use in source and binary forms, with or without 7 * modification, are permitted provided that the following conditions 8 * are met: 9 * 1. Redistributions of source code must retain the above copyright 10 * notice, this list of conditions and the following disclaimer. 11 * 2. Redistributions in binary form must reproduce the above copyright 12 * notice, this list of conditions and the following disclaimer in the 13 * documentation and/or other materials provided with the distribution. 14 * 3. All advertising materials mentioning features or use of this software 15 * must display the following acknowledgement: 16 * This product includes software developed by TooLs GmbH. 17 * 4. The name of TooLs GmbH may not be used to endorse or promote products 18 * derived from this software without specific prior written permission. 19 * 20 * THIS SOFTWARE IS PROVIDED BY TOOLS GMBH ``AS IS'' AND ANY EXPRESS OR 21 * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES 22 * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED. 23 * IN NO EVENT SHALL TOOLS GMBH BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, 24 * SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, 25 * PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; 26 * OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, 27 * WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR 28 * OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF 29 * ADVISED OF THE POSSIBILITY OF SUCH DAMAGE. 30 * 31 * $NetBSD: ofw_machdep.c,v 1.5 2000/05/23 13:25:43 tsubai Exp $ 32 */ 33 34 #include <sys/cdefs.h> 35 __FBSDID("$FreeBSD$"); 36 37 #include "opt_platform.h" 38 #include <sys/param.h> 39 #include <sys/bus.h> 40 #include <sys/systm.h> 41 #include <sys/conf.h> 42 #include <sys/disk.h> 43 #include <sys/fcntl.h> 44 #include <sys/malloc.h> 45 #include <sys/smp.h> 46 #include <sys/stat.h> 47 #include <sys/endian.h> 48 49 #include <net/ethernet.h> 50 51 #include <dev/fdt/fdt_common.h> 52 #include <dev/ofw/openfirm.h> 53 #include <dev/ofw/ofw_pci.h> 54 #include <dev/ofw/ofw_bus.h> 55 #include <dev/ofw/ofw_subr.h> 56 57 #include <vm/vm.h> 58 #include <vm/vm_param.h> 59 #include <vm/vm_page.h> 60 61 #include <machine/bus.h> 62 #include <machine/cpu.h> 63 #include <machine/md_var.h> 64 #include <machine/platform.h> 65 #include <machine/ofw_machdep.h> 66 #include <machine/trap.h> 67 68 static void *fdt; 69 int ofw_real_mode; 70 71 #ifdef AIM 72 extern register_t ofmsr[5]; 73 extern void *openfirmware_entry; 74 char save_trap_init[0x2f00]; /* EXC_LAST */ 75 char save_trap_of[0x2f00]; /* EXC_LAST */ 76 77 int ofwcall(void *); 78 static int openfirmware(void *args); 79 80 __inline void 81 ofw_save_trap_vec(char *save_trap_vec) 82 { 83 if (!ofw_real_mode) 84 return; 85 86 bcopy((void *)EXC_RST, save_trap_vec, EXC_LAST - EXC_RST); 87 } 88 89 static __inline void 90 ofw_restore_trap_vec(char *restore_trap_vec) 91 { 92 if (!ofw_real_mode) 93 return; 94 95 bcopy(restore_trap_vec, (void *)EXC_RST, EXC_LAST - EXC_RST); 96 __syncicache(EXC_RSVD, EXC_LAST - EXC_RSVD); 97 } 98 99 /* 100 * Saved SPRG0-3 from OpenFirmware. Will be restored prior to the callback. 101 */ 102 register_t ofw_sprg0_save; 103 104 static __inline void 105 ofw_sprg_prepare(void) 106 { 107 if (ofw_real_mode) 108 return; 109 110 /* 111 * Assume that interrupt are disabled at this point, or 112 * SPRG1-3 could be trashed 113 */ 114 #ifdef __powerpc64__ 115 __asm __volatile("mtsprg1 %0\n\t" 116 "mtsprg2 %1\n\t" 117 "mtsprg3 %2\n\t" 118 : 119 : "r"(ofmsr[2]), 120 "r"(ofmsr[3]), 121 "r"(ofmsr[4])); 122 #else 123 __asm __volatile("mfsprg0 %0\n\t" 124 "mtsprg0 %1\n\t" 125 "mtsprg1 %2\n\t" 126 "mtsprg2 %3\n\t" 127 "mtsprg3 %4\n\t" 128 : "=&r"(ofw_sprg0_save) 129 : "r"(ofmsr[1]), 130 "r"(ofmsr[2]), 131 "r"(ofmsr[3]), 132 "r"(ofmsr[4])); 133 #endif 134 } 135 136 static __inline void 137 ofw_sprg_restore(void) 138 { 139 if (ofw_real_mode) 140 return; 141 142 /* 143 * Note that SPRG1-3 contents are irrelevant. They are scratch 144 * registers used in the early portion of trap handling when 145 * interrupts are disabled. 146 * 147 * PCPU data cannot be used until this routine is called ! 148 */ 149 #ifndef __powerpc64__ 150 __asm __volatile("mtsprg0 %0" :: "r"(ofw_sprg0_save)); 151 #endif 152 } 153 #endif 154 155 static int 156 parse_ofw_memory(phandle_t node, const char *prop, struct mem_region *output) 157 { 158 cell_t address_cells, size_cells; 159 cell_t OFmem[4 * PHYS_AVAIL_SZ]; 160 int sz, i, j; 161 phandle_t phandle; 162 163 sz = 0; 164 165 /* 166 * Get #address-cells from root node, defaulting to 1 if it cannot 167 * be found. 168 */ 169 phandle = OF_finddevice("/"); 170 if (OF_getencprop(phandle, "#address-cells", &address_cells, 171 sizeof(address_cells)) < (ssize_t)sizeof(address_cells)) 172 address_cells = 1; 173 if (OF_getencprop(phandle, "#size-cells", &size_cells, 174 sizeof(size_cells)) < (ssize_t)sizeof(size_cells)) 175 size_cells = 1; 176 177 /* 178 * Get memory. 179 */ 180 if (node == -1 || (sz = OF_getencprop(node, prop, 181 OFmem, sizeof(OFmem))) <= 0) 182 panic("Physical memory map not found"); 183 184 i = 0; 185 j = 0; 186 while (i < sz/sizeof(cell_t)) { 187 output[j].mr_start = OFmem[i++]; 188 if (address_cells == 2) { 189 output[j].mr_start <<= 32; 190 output[j].mr_start += OFmem[i++]; 191 } 192 193 output[j].mr_size = OFmem[i++]; 194 if (size_cells == 2) { 195 output[j].mr_size <<= 32; 196 output[j].mr_size += OFmem[i++]; 197 } 198 199 if (output[j].mr_start > BUS_SPACE_MAXADDR) 200 continue; 201 202 /* 203 * Constrain memory to that which we can access. 204 * 32-bit AIM can only reference 32 bits of address currently, 205 * but Book-E can access 36 bits. 206 */ 207 if (((uint64_t)output[j].mr_start + 208 (uint64_t)output[j].mr_size - 1) > 209 BUS_SPACE_MAXADDR) { 210 output[j].mr_size = BUS_SPACE_MAXADDR - 211 output[j].mr_start + 1; 212 } 213 214 j++; 215 } 216 sz = j*sizeof(output[0]); 217 218 return (sz); 219 } 220 221 static int 222 excise_fdt_reserved(struct mem_region *avail, int asz) 223 { 224 struct { 225 uint64_t address; 226 uint64_t size; 227 } fdtmap[16]; 228 ssize_t fdtmapsize; 229 phandle_t chosen; 230 int i, j, k; 231 232 chosen = OF_finddevice("/chosen"); 233 fdtmapsize = OF_getprop(chosen, "fdtmemreserv", fdtmap, sizeof(fdtmap)); 234 235 for (j = 0; j < fdtmapsize/sizeof(fdtmap[0]); j++) { 236 fdtmap[j].address = be64toh(fdtmap[j].address); 237 fdtmap[j].size = be64toh(fdtmap[j].size); 238 } 239 240 for (i = 0; i < asz; i++) { 241 for (j = 0; j < fdtmapsize/sizeof(fdtmap[0]); j++) { 242 /* 243 * Case 1: Exclusion region encloses complete 244 * available entry. Drop it and move on. 245 */ 246 if (fdtmap[j].address <= avail[i].mr_start && 247 fdtmap[j].address + fdtmap[j].size >= 248 avail[i].mr_start + avail[i].mr_size) { 249 for (k = i+1; k < asz; k++) 250 avail[k-1] = avail[k]; 251 asz--; 252 i--; /* Repeat some entries */ 253 continue; 254 } 255 256 /* 257 * Case 2: Exclusion region starts in available entry. 258 * Trim it to where the entry begins and append 259 * a new available entry with the region after 260 * the excluded region, if any. 261 */ 262 if (fdtmap[j].address >= avail[i].mr_start && 263 fdtmap[j].address < avail[i].mr_start + 264 avail[i].mr_size) { 265 if (fdtmap[j].address + fdtmap[j].size < 266 avail[i].mr_start + avail[i].mr_size) { 267 avail[asz].mr_start = 268 fdtmap[j].address + fdtmap[j].size; 269 avail[asz].mr_size = avail[i].mr_start + 270 avail[i].mr_size - 271 avail[asz].mr_start; 272 asz++; 273 } 274 275 avail[i].mr_size = fdtmap[j].address - 276 avail[i].mr_start; 277 } 278 279 /* 280 * Case 3: Exclusion region ends in available entry. 281 * Move start point to where the exclusion zone ends. 282 * The case of a contained exclusion zone has already 283 * been caught in case 2. 284 */ 285 if (fdtmap[j].address + fdtmap[j].size >= 286 avail[i].mr_start && fdtmap[j].address + 287 fdtmap[j].size < avail[i].mr_start + 288 avail[i].mr_size) { 289 avail[i].mr_size += avail[i].mr_start; 290 avail[i].mr_start = 291 fdtmap[j].address + fdtmap[j].size; 292 avail[i].mr_size -= avail[i].mr_start; 293 } 294 } 295 } 296 297 return (asz); 298 } 299 300 /* 301 * This is called during powerpc_init, before the system is really initialized. 302 * It shall provide the total and the available regions of RAM. 303 * The available regions need not take the kernel into account. 304 */ 305 void 306 ofw_mem_regions(struct mem_region *memp, int *memsz, 307 struct mem_region *availp, int *availsz) 308 { 309 phandle_t phandle; 310 int asz, msz; 311 int res; 312 char name[31]; 313 314 asz = msz = 0; 315 316 /* 317 * Get memory from all the /memory nodes. 318 */ 319 for (phandle = OF_child(OF_peer(0)); phandle != 0; 320 phandle = OF_peer(phandle)) { 321 if (OF_getprop(phandle, "name", name, sizeof(name)) <= 0) 322 continue; 323 if (strncmp(name, "memory", sizeof(name)) != 0 && 324 strncmp(name, "memory@", strlen("memory@")) != 0) 325 continue; 326 327 res = parse_ofw_memory(phandle, "reg", &memp[msz]); 328 msz += res/sizeof(struct mem_region); 329 if (OF_getproplen(phandle, "available") >= 0) 330 res = parse_ofw_memory(phandle, "available", 331 &availp[asz]); 332 else 333 res = parse_ofw_memory(phandle, "reg", &availp[asz]); 334 asz += res/sizeof(struct mem_region); 335 } 336 337 phandle = OF_finddevice("/chosen"); 338 if (OF_hasprop(phandle, "fdtmemreserv")) 339 asz = excise_fdt_reserved(availp, asz); 340 341 *memsz = msz; 342 *availsz = asz; 343 } 344 345 void 346 OF_initial_setup(void *fdt_ptr, void *junk, int (*openfirm)(void *)) 347 { 348 #ifdef AIM 349 ofmsr[0] = mfmsr(); 350 #ifdef __powerpc64__ 351 ofmsr[0] &= ~PSL_SF; 352 #else 353 __asm __volatile("mfsprg0 %0" : "=&r"(ofmsr[1])); 354 #endif 355 __asm __volatile("mfsprg1 %0" : "=&r"(ofmsr[2])); 356 __asm __volatile("mfsprg2 %0" : "=&r"(ofmsr[3])); 357 __asm __volatile("mfsprg3 %0" : "=&r"(ofmsr[4])); 358 openfirmware_entry = openfirm; 359 360 if (ofmsr[0] & PSL_DR) 361 ofw_real_mode = 0; 362 else 363 ofw_real_mode = 1; 364 365 ofw_save_trap_vec(save_trap_init); 366 #else 367 ofw_real_mode = 1; 368 #endif 369 370 fdt = fdt_ptr; 371 372 #ifdef FDT_DTB_STATIC 373 /* Check for a statically included blob */ 374 if (fdt == NULL) 375 fdt = &fdt_static_dtb; 376 #endif 377 } 378 379 boolean_t 380 OF_bootstrap() 381 { 382 boolean_t status = FALSE; 383 384 #ifdef AIM 385 if (openfirmware_entry != NULL) { 386 if (ofw_real_mode) { 387 status = OF_install(OFW_STD_REAL, 0); 388 } else { 389 #ifdef __powerpc64__ 390 status = OF_install(OFW_STD_32BIT, 0); 391 #else 392 status = OF_install(OFW_STD_DIRECT, 0); 393 #endif 394 } 395 396 if (status != TRUE) 397 return status; 398 399 OF_init(openfirmware); 400 } else 401 #endif 402 if (fdt != NULL) { 403 status = OF_install(OFW_FDT, 0); 404 405 if (status != TRUE) 406 return status; 407 408 OF_init(fdt); 409 OF_interpret("perform-fixup", 0); 410 } 411 412 return (status); 413 } 414 415 #ifdef AIM 416 void 417 ofw_quiesce(void) 418 { 419 struct { 420 cell_t name; 421 cell_t nargs; 422 cell_t nreturns; 423 } args; 424 425 KASSERT(!pmap_bootstrapped, ("Cannot call ofw_quiesce after VM is up")); 426 427 args.name = (cell_t)(uintptr_t)"quiesce"; 428 args.nargs = 0; 429 args.nreturns = 0; 430 openfirmware(&args); 431 } 432 433 static int 434 openfirmware_core(void *args) 435 { 436 int result; 437 register_t oldmsr; 438 439 if (openfirmware_entry == NULL) 440 return (-1); 441 442 /* 443 * Turn off exceptions - we really don't want to end up 444 * anywhere unexpected with PCPU set to something strange 445 * or the stack pointer wrong. 446 */ 447 oldmsr = intr_disable(); 448 449 ofw_sprg_prepare(); 450 451 /* Save trap vectors */ 452 ofw_save_trap_vec(save_trap_of); 453 454 /* Restore initially saved trap vectors */ 455 ofw_restore_trap_vec(save_trap_init); 456 457 #ifndef __powerpc64__ 458 /* 459 * Clear battable[] translations 460 */ 461 if (!(cpu_features & PPC_FEATURE_64)) 462 __asm __volatile("mtdbatu 2, %0\n" 463 "mtdbatu 3, %0" : : "r" (0)); 464 isync(); 465 #endif 466 467 result = ofwcall(args); 468 469 /* Restore trap vecotrs */ 470 ofw_restore_trap_vec(save_trap_of); 471 472 ofw_sprg_restore(); 473 474 intr_restore(oldmsr); 475 476 return (result); 477 } 478 479 #ifdef SMP 480 struct ofw_rv_args { 481 void *args; 482 int retval; 483 volatile int in_progress; 484 }; 485 486 static void 487 ofw_rendezvous_dispatch(void *xargs) 488 { 489 struct ofw_rv_args *rv_args = xargs; 490 491 /* NOTE: Interrupts are disabled here */ 492 493 if (PCPU_GET(cpuid) == 0) { 494 /* 495 * Execute all OF calls on CPU 0 496 */ 497 rv_args->retval = openfirmware_core(rv_args->args); 498 rv_args->in_progress = 0; 499 } else { 500 /* 501 * Spin with interrupts off on other CPUs while OF has 502 * control of the machine. 503 */ 504 while (rv_args->in_progress) 505 cpu_spinwait(); 506 } 507 } 508 #endif 509 510 static int 511 openfirmware(void *args) 512 { 513 int result; 514 #ifdef SMP 515 struct ofw_rv_args rv_args; 516 #endif 517 518 if (openfirmware_entry == NULL) 519 return (-1); 520 521 #ifdef SMP 522 rv_args.args = args; 523 rv_args.in_progress = 1; 524 smp_rendezvous(smp_no_rendezvous_barrier, ofw_rendezvous_dispatch, 525 smp_no_rendezvous_barrier, &rv_args); 526 result = rv_args.retval; 527 #else 528 result = openfirmware_core(args); 529 #endif 530 531 return (result); 532 } 533 534 void 535 OF_reboot() 536 { 537 struct { 538 cell_t name; 539 cell_t nargs; 540 cell_t nreturns; 541 cell_t arg; 542 } args; 543 544 args.name = (cell_t)(uintptr_t)"interpret"; 545 args.nargs = 1; 546 args.nreturns = 0; 547 args.arg = (cell_t)(uintptr_t)"reset-all"; 548 openfirmware_core(&args); /* Don't do rendezvous! */ 549 550 for (;;); /* just in case */ 551 } 552 553 #endif /* AIM */ 554 555 void 556 OF_getetheraddr(device_t dev, u_char *addr) 557 { 558 phandle_t node; 559 560 node = ofw_bus_get_node(dev); 561 OF_getprop(node, "local-mac-address", addr, ETHER_ADDR_LEN); 562 } 563 564 /* 565 * Return a bus handle and bus tag that corresponds to the register 566 * numbered regno for the device referenced by the package handle 567 * dev. This function is intended to be used by console drivers in 568 * early boot only. It works by mapping the address of the device's 569 * register in the address space of its parent and recursively walk 570 * the device tree upward this way. 571 */ 572 int 573 OF_decode_addr(phandle_t dev, int regno, bus_space_tag_t *tag, 574 bus_space_handle_t *handle, bus_size_t *sz) 575 { 576 bus_addr_t addr; 577 bus_size_t size; 578 pcell_t pci_hi; 579 int flags, res; 580 581 res = ofw_reg_to_paddr(dev, regno, &addr, &size, &pci_hi); 582 if (res < 0) 583 return (res); 584 585 if (pci_hi == OFW_PADDR_NOT_PCI) { 586 *tag = &bs_be_tag; 587 flags = 0; 588 } else { 589 *tag = &bs_le_tag; 590 flags = (pci_hi & OFW_PCI_PHYS_HI_PREFETCHABLE) ? 591 BUS_SPACE_MAP_PREFETCHABLE: 0; 592 } 593 594 if (sz != NULL) 595 *sz = size; 596 597 return (bus_space_map(*tag, addr, size, flags, handle)); 598 } 599 600