1 /* 2 * pSeries_lpar.c 3 * Copyright (C) 2001 Todd Inglett, IBM Corporation 4 * 5 * pSeries LPAR support. 6 * 7 * This program is free software; you can redistribute it and/or modify 8 * it under the terms of the GNU General Public License as published by 9 * the Free Software Foundation; either version 2 of the License, or 10 * (at your option) any later version. 11 * 12 * This program is distributed in the hope that it will be useful, 13 * but WITHOUT ANY WARRANTY; without even the implied warranty of 14 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the 15 * GNU General Public License for more details. 16 * 17 * You should have received a copy of the GNU General Public License 18 * along with this program; if not, write to the Free Software 19 * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA 20 */ 21 22 /* Enables debugging of low-level hash table routines - careful! */ 23 #undef DEBUG 24 #define pr_fmt(fmt) "lpar: " fmt 25 26 #include <linux/kernel.h> 27 #include <linux/dma-mapping.h> 28 #include <linux/console.h> 29 #include <linux/export.h> 30 #include <linux/jump_label.h> 31 #include <linux/delay.h> 32 #include <linux/stop_machine.h> 33 #include <asm/processor.h> 34 #include <asm/mmu.h> 35 #include <asm/page.h> 36 #include <asm/pgtable.h> 37 #include <asm/machdep.h> 38 #include <asm/mmu_context.h> 39 #include <asm/iommu.h> 40 #include <asm/tlbflush.h> 41 #include <asm/tlb.h> 42 #include <asm/prom.h> 43 #include <asm/cputable.h> 44 #include <asm/udbg.h> 45 #include <asm/smp.h> 46 #include <asm/trace.h> 47 #include <asm/firmware.h> 48 #include <asm/plpar_wrappers.h> 49 #include <asm/kexec.h> 50 #include <asm/fadump.h> 51 #include <asm/asm-prototypes.h> 52 53 #include "pseries.h" 54 55 /* Flag bits for H_BULK_REMOVE */ 56 #define HBR_REQUEST 0x4000000000000000UL 57 #define HBR_RESPONSE 0x8000000000000000UL 58 #define HBR_END 0xc000000000000000UL 59 #define HBR_AVPN 0x0200000000000000UL 60 #define HBR_ANDCOND 0x0100000000000000UL 61 62 63 /* in hvCall.S */ 64 EXPORT_SYMBOL(plpar_hcall); 65 EXPORT_SYMBOL(plpar_hcall9); 66 EXPORT_SYMBOL(plpar_hcall_norets); 67 68 void vpa_init(int cpu) 69 { 70 int hwcpu = get_hard_smp_processor_id(cpu); 71 unsigned long addr; 72 long ret; 73 struct paca_struct *pp; 74 struct dtl_entry *dtl; 75 76 /* 77 * The spec says it "may be problematic" if CPU x registers the VPA of 78 * CPU y. We should never do that, but wail if we ever do. 79 */ 80 WARN_ON(cpu != smp_processor_id()); 81 82 if (cpu_has_feature(CPU_FTR_ALTIVEC)) 83 lppaca_of(cpu).vmxregs_in_use = 1; 84 85 if (cpu_has_feature(CPU_FTR_ARCH_207S)) 86 lppaca_of(cpu).ebb_regs_in_use = 1; 87 88 addr = __pa(&lppaca_of(cpu)); 89 ret = register_vpa(hwcpu, addr); 90 91 if (ret) { 92 pr_err("WARNING: VPA registration for cpu %d (hw %d) of area " 93 "%lx failed with %ld\n", cpu, hwcpu, addr, ret); 94 return; 95 } 96 97 #ifdef CONFIG_PPC_BOOK3S_64 98 /* 99 * PAPR says this feature is SLB-Buffer but firmware never 100 * reports that. All SPLPAR support SLB shadow buffer. 101 */ 102 if (!radix_enabled() && firmware_has_feature(FW_FEATURE_SPLPAR)) { 103 addr = __pa(paca_ptrs[cpu]->slb_shadow_ptr); 104 ret = register_slb_shadow(hwcpu, addr); 105 if (ret) 106 pr_err("WARNING: SLB shadow buffer registration for " 107 "cpu %d (hw %d) of area %lx failed with %ld\n", 108 cpu, hwcpu, addr, ret); 109 } 110 #endif /* CONFIG_PPC_BOOK3S_64 */ 111 112 /* 113 * Register dispatch trace log, if one has been allocated. 114 */ 115 pp = paca_ptrs[cpu]; 116 dtl = pp->dispatch_log; 117 if (dtl) { 118 pp->dtl_ridx = 0; 119 pp->dtl_curr = dtl; 120 lppaca_of(cpu).dtl_idx = 0; 121 122 /* hypervisor reads buffer length from this field */ 123 dtl->enqueue_to_dispatch_time = cpu_to_be32(DISPATCH_LOG_BYTES); 124 ret = register_dtl(hwcpu, __pa(dtl)); 125 if (ret) 126 pr_err("WARNING: DTL registration of cpu %d (hw %d) " 127 "failed with %ld\n", smp_processor_id(), 128 hwcpu, ret); 129 lppaca_of(cpu).dtl_enable_mask = 2; 130 } 131 } 132 133 #ifdef CONFIG_PPC_BOOK3S_64 134 135 static long pSeries_lpar_hpte_insert(unsigned long hpte_group, 136 unsigned long vpn, unsigned long pa, 137 unsigned long rflags, unsigned long vflags, 138 int psize, int apsize, int ssize) 139 { 140 unsigned long lpar_rc; 141 unsigned long flags; 142 unsigned long slot; 143 unsigned long hpte_v, hpte_r; 144 145 if (!(vflags & HPTE_V_BOLTED)) 146 pr_devel("hpte_insert(group=%lx, vpn=%016lx, " 147 "pa=%016lx, rflags=%lx, vflags=%lx, psize=%d)\n", 148 hpte_group, vpn, pa, rflags, vflags, psize); 149 150 hpte_v = hpte_encode_v(vpn, psize, apsize, ssize) | vflags | HPTE_V_VALID; 151 hpte_r = hpte_encode_r(pa, psize, apsize) | rflags; 152 153 if (!(vflags & HPTE_V_BOLTED)) 154 pr_devel(" hpte_v=%016lx, hpte_r=%016lx\n", hpte_v, hpte_r); 155 156 /* Now fill in the actual HPTE */ 157 /* Set CEC cookie to 0 */ 158 /* Zero page = 0 */ 159 /* I-cache Invalidate = 0 */ 160 /* I-cache synchronize = 0 */ 161 /* Exact = 0 */ 162 flags = 0; 163 164 if (firmware_has_feature(FW_FEATURE_XCMO) && !(hpte_r & HPTE_R_N)) 165 flags |= H_COALESCE_CAND; 166 167 lpar_rc = plpar_pte_enter(flags, hpte_group, hpte_v, hpte_r, &slot); 168 if (unlikely(lpar_rc == H_PTEG_FULL)) { 169 pr_devel("Hash table group is full\n"); 170 return -1; 171 } 172 173 /* 174 * Since we try and ioremap PHBs we don't own, the pte insert 175 * will fail. However we must catch the failure in hash_page 176 * or we will loop forever, so return -2 in this case. 177 */ 178 if (unlikely(lpar_rc != H_SUCCESS)) { 179 pr_err("Failed hash pte insert with error %ld\n", lpar_rc); 180 return -2; 181 } 182 if (!(vflags & HPTE_V_BOLTED)) 183 pr_devel(" -> slot: %lu\n", slot & 7); 184 185 /* Because of iSeries, we have to pass down the secondary 186 * bucket bit here as well 187 */ 188 return (slot & 7) | (!!(vflags & HPTE_V_SECONDARY) << 3); 189 } 190 191 static DEFINE_SPINLOCK(pSeries_lpar_tlbie_lock); 192 193 static long pSeries_lpar_hpte_remove(unsigned long hpte_group) 194 { 195 unsigned long slot_offset; 196 unsigned long lpar_rc; 197 int i; 198 unsigned long dummy1, dummy2; 199 200 /* pick a random slot to start at */ 201 slot_offset = mftb() & 0x7; 202 203 for (i = 0; i < HPTES_PER_GROUP; i++) { 204 205 /* don't remove a bolted entry */ 206 lpar_rc = plpar_pte_remove(H_ANDCOND, hpte_group + slot_offset, 207 (0x1UL << 4), &dummy1, &dummy2); 208 if (lpar_rc == H_SUCCESS) 209 return i; 210 211 /* 212 * The test for adjunct partition is performed before the 213 * ANDCOND test. H_RESOURCE may be returned, so we need to 214 * check for that as well. 215 */ 216 BUG_ON(lpar_rc != H_NOT_FOUND && lpar_rc != H_RESOURCE); 217 218 slot_offset++; 219 slot_offset &= 0x7; 220 } 221 222 return -1; 223 } 224 225 static void manual_hpte_clear_all(void) 226 { 227 unsigned long size_bytes = 1UL << ppc64_pft_size; 228 unsigned long hpte_count = size_bytes >> 4; 229 struct { 230 unsigned long pteh; 231 unsigned long ptel; 232 } ptes[4]; 233 long lpar_rc; 234 unsigned long i, j; 235 236 /* Read in batches of 4, 237 * invalidate only valid entries not in the VRMA 238 * hpte_count will be a multiple of 4 239 */ 240 for (i = 0; i < hpte_count; i += 4) { 241 lpar_rc = plpar_pte_read_4_raw(0, i, (void *)ptes); 242 if (lpar_rc != H_SUCCESS) { 243 pr_info("Failed to read hash page table at %ld err %ld\n", 244 i, lpar_rc); 245 continue; 246 } 247 for (j = 0; j < 4; j++){ 248 if ((ptes[j].pteh & HPTE_V_VRMA_MASK) == 249 HPTE_V_VRMA_MASK) 250 continue; 251 if (ptes[j].pteh & HPTE_V_VALID) 252 plpar_pte_remove_raw(0, i + j, 0, 253 &(ptes[j].pteh), &(ptes[j].ptel)); 254 } 255 } 256 } 257 258 static int hcall_hpte_clear_all(void) 259 { 260 int rc; 261 262 do { 263 rc = plpar_hcall_norets(H_CLEAR_HPT); 264 } while (rc == H_CONTINUE); 265 266 return rc; 267 } 268 269 static void pseries_hpte_clear_all(void) 270 { 271 int rc; 272 273 rc = hcall_hpte_clear_all(); 274 if (rc != H_SUCCESS) 275 manual_hpte_clear_all(); 276 277 #ifdef __LITTLE_ENDIAN__ 278 /* 279 * Reset exceptions to big endian. 280 * 281 * FIXME this is a hack for kexec, we need to reset the exception 282 * endian before starting the new kernel and this is a convenient place 283 * to do it. 284 * 285 * This is also called on boot when a fadump happens. In that case we 286 * must not change the exception endian mode. 287 */ 288 if (firmware_has_feature(FW_FEATURE_SET_MODE) && !is_fadump_active()) 289 pseries_big_endian_exceptions(); 290 #endif 291 } 292 293 /* 294 * NOTE: for updatepp ops we are fortunate that the linux "newpp" bits and 295 * the low 3 bits of flags happen to line up. So no transform is needed. 296 * We can probably optimize here and assume the high bits of newpp are 297 * already zero. For now I am paranoid. 298 */ 299 static long pSeries_lpar_hpte_updatepp(unsigned long slot, 300 unsigned long newpp, 301 unsigned long vpn, 302 int psize, int apsize, 303 int ssize, unsigned long inv_flags) 304 { 305 unsigned long lpar_rc; 306 unsigned long flags; 307 unsigned long want_v; 308 309 want_v = hpte_encode_avpn(vpn, psize, ssize); 310 311 flags = (newpp & 7) | H_AVPN; 312 if (mmu_has_feature(MMU_FTR_KERNEL_RO)) 313 /* Move pp0 into bit 8 (IBM 55) */ 314 flags |= (newpp & HPTE_R_PP0) >> 55; 315 316 pr_devel(" update: avpnv=%016lx, hash=%016lx, f=%lx, psize: %d ...", 317 want_v, slot, flags, psize); 318 319 lpar_rc = plpar_pte_protect(flags, slot, want_v); 320 321 if (lpar_rc == H_NOT_FOUND) { 322 pr_devel("not found !\n"); 323 return -1; 324 } 325 326 pr_devel("ok\n"); 327 328 BUG_ON(lpar_rc != H_SUCCESS); 329 330 return 0; 331 } 332 333 static long __pSeries_lpar_hpte_find(unsigned long want_v, unsigned long hpte_group) 334 { 335 long lpar_rc; 336 unsigned long i, j; 337 struct { 338 unsigned long pteh; 339 unsigned long ptel; 340 } ptes[4]; 341 342 for (i = 0; i < HPTES_PER_GROUP; i += 4, hpte_group += 4) { 343 344 lpar_rc = plpar_pte_read_4(0, hpte_group, (void *)ptes); 345 if (lpar_rc != H_SUCCESS) { 346 pr_info("Failed to read hash page table at %ld err %ld\n", 347 hpte_group, lpar_rc); 348 continue; 349 } 350 351 for (j = 0; j < 4; j++) { 352 if (HPTE_V_COMPARE(ptes[j].pteh, want_v) && 353 (ptes[j].pteh & HPTE_V_VALID)) 354 return i + j; 355 } 356 } 357 358 return -1; 359 } 360 361 static long pSeries_lpar_hpte_find(unsigned long vpn, int psize, int ssize) 362 { 363 long slot; 364 unsigned long hash; 365 unsigned long want_v; 366 unsigned long hpte_group; 367 368 hash = hpt_hash(vpn, mmu_psize_defs[psize].shift, ssize); 369 want_v = hpte_encode_avpn(vpn, psize, ssize); 370 371 /* Bolted entries are always in the primary group */ 372 hpte_group = (hash & htab_hash_mask) * HPTES_PER_GROUP; 373 slot = __pSeries_lpar_hpte_find(want_v, hpte_group); 374 if (slot < 0) 375 return -1; 376 return hpte_group + slot; 377 } 378 379 static void pSeries_lpar_hpte_updateboltedpp(unsigned long newpp, 380 unsigned long ea, 381 int psize, int ssize) 382 { 383 unsigned long vpn; 384 unsigned long lpar_rc, slot, vsid, flags; 385 386 vsid = get_kernel_vsid(ea, ssize); 387 vpn = hpt_vpn(ea, vsid, ssize); 388 389 slot = pSeries_lpar_hpte_find(vpn, psize, ssize); 390 BUG_ON(slot == -1); 391 392 flags = newpp & 7; 393 if (mmu_has_feature(MMU_FTR_KERNEL_RO)) 394 /* Move pp0 into bit 8 (IBM 55) */ 395 flags |= (newpp & HPTE_R_PP0) >> 55; 396 397 lpar_rc = plpar_pte_protect(flags, slot, 0); 398 399 BUG_ON(lpar_rc != H_SUCCESS); 400 } 401 402 static void pSeries_lpar_hpte_invalidate(unsigned long slot, unsigned long vpn, 403 int psize, int apsize, 404 int ssize, int local) 405 { 406 unsigned long want_v; 407 unsigned long lpar_rc; 408 unsigned long dummy1, dummy2; 409 410 pr_devel(" inval : slot=%lx, vpn=%016lx, psize: %d, local: %d\n", 411 slot, vpn, psize, local); 412 413 want_v = hpte_encode_avpn(vpn, psize, ssize); 414 lpar_rc = plpar_pte_remove(H_AVPN, slot, want_v, &dummy1, &dummy2); 415 if (lpar_rc == H_NOT_FOUND) 416 return; 417 418 BUG_ON(lpar_rc != H_SUCCESS); 419 } 420 421 #ifdef CONFIG_TRANSPARENT_HUGEPAGE 422 /* 423 * Limit iterations holding pSeries_lpar_tlbie_lock to 3. We also need 424 * to make sure that we avoid bouncing the hypervisor tlbie lock. 425 */ 426 #define PPC64_HUGE_HPTE_BATCH 12 427 428 static void __pSeries_lpar_hugepage_invalidate(unsigned long *slot, 429 unsigned long *vpn, int count, 430 int psize, int ssize) 431 { 432 unsigned long param[PLPAR_HCALL9_BUFSIZE]; 433 int i = 0, pix = 0, rc; 434 unsigned long flags = 0; 435 int lock_tlbie = !mmu_has_feature(MMU_FTR_LOCKLESS_TLBIE); 436 437 if (lock_tlbie) 438 spin_lock_irqsave(&pSeries_lpar_tlbie_lock, flags); 439 440 for (i = 0; i < count; i++) { 441 442 if (!firmware_has_feature(FW_FEATURE_BULK_REMOVE)) { 443 pSeries_lpar_hpte_invalidate(slot[i], vpn[i], psize, 0, 444 ssize, 0); 445 } else { 446 param[pix] = HBR_REQUEST | HBR_AVPN | slot[i]; 447 param[pix+1] = hpte_encode_avpn(vpn[i], psize, ssize); 448 pix += 2; 449 if (pix == 8) { 450 rc = plpar_hcall9(H_BULK_REMOVE, param, 451 param[0], param[1], param[2], 452 param[3], param[4], param[5], 453 param[6], param[7]); 454 BUG_ON(rc != H_SUCCESS); 455 pix = 0; 456 } 457 } 458 } 459 if (pix) { 460 param[pix] = HBR_END; 461 rc = plpar_hcall9(H_BULK_REMOVE, param, param[0], param[1], 462 param[2], param[3], param[4], param[5], 463 param[6], param[7]); 464 BUG_ON(rc != H_SUCCESS); 465 } 466 467 if (lock_tlbie) 468 spin_unlock_irqrestore(&pSeries_lpar_tlbie_lock, flags); 469 } 470 471 static void pSeries_lpar_hugepage_invalidate(unsigned long vsid, 472 unsigned long addr, 473 unsigned char *hpte_slot_array, 474 int psize, int ssize, int local) 475 { 476 int i, index = 0; 477 unsigned long s_addr = addr; 478 unsigned int max_hpte_count, valid; 479 unsigned long vpn_array[PPC64_HUGE_HPTE_BATCH]; 480 unsigned long slot_array[PPC64_HUGE_HPTE_BATCH]; 481 unsigned long shift, hidx, vpn = 0, hash, slot; 482 483 shift = mmu_psize_defs[psize].shift; 484 max_hpte_count = 1U << (PMD_SHIFT - shift); 485 486 for (i = 0; i < max_hpte_count; i++) { 487 valid = hpte_valid(hpte_slot_array, i); 488 if (!valid) 489 continue; 490 hidx = hpte_hash_index(hpte_slot_array, i); 491 492 /* get the vpn */ 493 addr = s_addr + (i * (1ul << shift)); 494 vpn = hpt_vpn(addr, vsid, ssize); 495 hash = hpt_hash(vpn, shift, ssize); 496 if (hidx & _PTEIDX_SECONDARY) 497 hash = ~hash; 498 499 slot = (hash & htab_hash_mask) * HPTES_PER_GROUP; 500 slot += hidx & _PTEIDX_GROUP_IX; 501 502 slot_array[index] = slot; 503 vpn_array[index] = vpn; 504 if (index == PPC64_HUGE_HPTE_BATCH - 1) { 505 /* 506 * Now do a bluk invalidate 507 */ 508 __pSeries_lpar_hugepage_invalidate(slot_array, 509 vpn_array, 510 PPC64_HUGE_HPTE_BATCH, 511 psize, ssize); 512 index = 0; 513 } else 514 index++; 515 } 516 if (index) 517 __pSeries_lpar_hugepage_invalidate(slot_array, vpn_array, 518 index, psize, ssize); 519 } 520 #else 521 static void pSeries_lpar_hugepage_invalidate(unsigned long vsid, 522 unsigned long addr, 523 unsigned char *hpte_slot_array, 524 int psize, int ssize, int local) 525 { 526 WARN(1, "%s called without THP support\n", __func__); 527 } 528 #endif 529 530 static int pSeries_lpar_hpte_removebolted(unsigned long ea, 531 int psize, int ssize) 532 { 533 unsigned long vpn; 534 unsigned long slot, vsid; 535 536 vsid = get_kernel_vsid(ea, ssize); 537 vpn = hpt_vpn(ea, vsid, ssize); 538 539 slot = pSeries_lpar_hpte_find(vpn, psize, ssize); 540 if (slot == -1) 541 return -ENOENT; 542 543 /* 544 * lpar doesn't use the passed actual page size 545 */ 546 pSeries_lpar_hpte_invalidate(slot, vpn, psize, 0, ssize, 0); 547 return 0; 548 } 549 550 /* 551 * Take a spinlock around flushes to avoid bouncing the hypervisor tlbie 552 * lock. 553 */ 554 static void pSeries_lpar_flush_hash_range(unsigned long number, int local) 555 { 556 unsigned long vpn; 557 unsigned long i, pix, rc; 558 unsigned long flags = 0; 559 struct ppc64_tlb_batch *batch = this_cpu_ptr(&ppc64_tlb_batch); 560 int lock_tlbie = !mmu_has_feature(MMU_FTR_LOCKLESS_TLBIE); 561 unsigned long param[PLPAR_HCALL9_BUFSIZE]; 562 unsigned long hash, index, shift, hidx, slot; 563 real_pte_t pte; 564 int psize, ssize; 565 566 if (lock_tlbie) 567 spin_lock_irqsave(&pSeries_lpar_tlbie_lock, flags); 568 569 psize = batch->psize; 570 ssize = batch->ssize; 571 pix = 0; 572 for (i = 0; i < number; i++) { 573 vpn = batch->vpn[i]; 574 pte = batch->pte[i]; 575 pte_iterate_hashed_subpages(pte, psize, vpn, index, shift) { 576 hash = hpt_hash(vpn, shift, ssize); 577 hidx = __rpte_to_hidx(pte, index); 578 if (hidx & _PTEIDX_SECONDARY) 579 hash = ~hash; 580 slot = (hash & htab_hash_mask) * HPTES_PER_GROUP; 581 slot += hidx & _PTEIDX_GROUP_IX; 582 if (!firmware_has_feature(FW_FEATURE_BULK_REMOVE)) { 583 /* 584 * lpar doesn't use the passed actual page size 585 */ 586 pSeries_lpar_hpte_invalidate(slot, vpn, psize, 587 0, ssize, local); 588 } else { 589 param[pix] = HBR_REQUEST | HBR_AVPN | slot; 590 param[pix+1] = hpte_encode_avpn(vpn, psize, 591 ssize); 592 pix += 2; 593 if (pix == 8) { 594 rc = plpar_hcall9(H_BULK_REMOVE, param, 595 param[0], param[1], param[2], 596 param[3], param[4], param[5], 597 param[6], param[7]); 598 BUG_ON(rc != H_SUCCESS); 599 pix = 0; 600 } 601 } 602 } pte_iterate_hashed_end(); 603 } 604 if (pix) { 605 param[pix] = HBR_END; 606 rc = plpar_hcall9(H_BULK_REMOVE, param, param[0], param[1], 607 param[2], param[3], param[4], param[5], 608 param[6], param[7]); 609 BUG_ON(rc != H_SUCCESS); 610 } 611 612 if (lock_tlbie) 613 spin_unlock_irqrestore(&pSeries_lpar_tlbie_lock, flags); 614 } 615 616 static int __init disable_bulk_remove(char *str) 617 { 618 if (strcmp(str, "off") == 0 && 619 firmware_has_feature(FW_FEATURE_BULK_REMOVE)) { 620 pr_info("Disabling BULK_REMOVE firmware feature"); 621 powerpc_firmware_features &= ~FW_FEATURE_BULK_REMOVE; 622 } 623 return 1; 624 } 625 626 __setup("bulk_remove=", disable_bulk_remove); 627 628 #define HPT_RESIZE_TIMEOUT 10000 /* ms */ 629 630 struct hpt_resize_state { 631 unsigned long shift; 632 int commit_rc; 633 }; 634 635 static int pseries_lpar_resize_hpt_commit(void *data) 636 { 637 struct hpt_resize_state *state = data; 638 639 state->commit_rc = plpar_resize_hpt_commit(0, state->shift); 640 if (state->commit_rc != H_SUCCESS) 641 return -EIO; 642 643 /* Hypervisor has transitioned the HTAB, update our globals */ 644 ppc64_pft_size = state->shift; 645 htab_size_bytes = 1UL << ppc64_pft_size; 646 htab_hash_mask = (htab_size_bytes >> 7) - 1; 647 648 return 0; 649 } 650 651 /* Must be called in user context */ 652 static int pseries_lpar_resize_hpt(unsigned long shift) 653 { 654 struct hpt_resize_state state = { 655 .shift = shift, 656 .commit_rc = H_FUNCTION, 657 }; 658 unsigned int delay, total_delay = 0; 659 int rc; 660 ktime_t t0, t1, t2; 661 662 might_sleep(); 663 664 if (!firmware_has_feature(FW_FEATURE_HPT_RESIZE)) 665 return -ENODEV; 666 667 pr_info("Attempting to resize HPT to shift %lu\n", shift); 668 669 t0 = ktime_get(); 670 671 rc = plpar_resize_hpt_prepare(0, shift); 672 while (H_IS_LONG_BUSY(rc)) { 673 delay = get_longbusy_msecs(rc); 674 total_delay += delay; 675 if (total_delay > HPT_RESIZE_TIMEOUT) { 676 /* prepare with shift==0 cancels an in-progress resize */ 677 rc = plpar_resize_hpt_prepare(0, 0); 678 if (rc != H_SUCCESS) 679 pr_warn("Unexpected error %d cancelling timed out HPT resize\n", 680 rc); 681 return -ETIMEDOUT; 682 } 683 msleep(delay); 684 rc = plpar_resize_hpt_prepare(0, shift); 685 }; 686 687 switch (rc) { 688 case H_SUCCESS: 689 /* Continue on */ 690 break; 691 692 case H_PARAMETER: 693 return -EINVAL; 694 case H_RESOURCE: 695 return -EPERM; 696 default: 697 pr_warn("Unexpected error %d from H_RESIZE_HPT_PREPARE\n", rc); 698 return -EIO; 699 } 700 701 t1 = ktime_get(); 702 703 rc = stop_machine(pseries_lpar_resize_hpt_commit, &state, NULL); 704 705 t2 = ktime_get(); 706 707 if (rc != 0) { 708 switch (state.commit_rc) { 709 case H_PTEG_FULL: 710 pr_warn("Hash collision while resizing HPT\n"); 711 return -ENOSPC; 712 713 default: 714 pr_warn("Unexpected error %d from H_RESIZE_HPT_COMMIT\n", 715 state.commit_rc); 716 return -EIO; 717 }; 718 } 719 720 pr_info("HPT resize to shift %lu complete (%lld ms / %lld ms)\n", 721 shift, (long long) ktime_ms_delta(t1, t0), 722 (long long) ktime_ms_delta(t2, t1)); 723 724 return 0; 725 } 726 727 static int pseries_lpar_register_process_table(unsigned long base, 728 unsigned long page_size, unsigned long table_size) 729 { 730 long rc; 731 unsigned long flags = 0; 732 733 if (table_size) 734 flags |= PROC_TABLE_NEW; 735 if (radix_enabled()) 736 flags |= PROC_TABLE_RADIX | PROC_TABLE_GTSE; 737 else 738 flags |= PROC_TABLE_HPT_SLB; 739 for (;;) { 740 rc = plpar_hcall_norets(H_REGISTER_PROC_TBL, flags, base, 741 page_size, table_size); 742 if (!H_IS_LONG_BUSY(rc)) 743 break; 744 mdelay(get_longbusy_msecs(rc)); 745 } 746 if (rc != H_SUCCESS) { 747 pr_err("Failed to register process table (rc=%ld)\n", rc); 748 BUG(); 749 } 750 return rc; 751 } 752 753 void __init hpte_init_pseries(void) 754 { 755 mmu_hash_ops.hpte_invalidate = pSeries_lpar_hpte_invalidate; 756 mmu_hash_ops.hpte_updatepp = pSeries_lpar_hpte_updatepp; 757 mmu_hash_ops.hpte_updateboltedpp = pSeries_lpar_hpte_updateboltedpp; 758 mmu_hash_ops.hpte_insert = pSeries_lpar_hpte_insert; 759 mmu_hash_ops.hpte_remove = pSeries_lpar_hpte_remove; 760 mmu_hash_ops.hpte_removebolted = pSeries_lpar_hpte_removebolted; 761 mmu_hash_ops.flush_hash_range = pSeries_lpar_flush_hash_range; 762 mmu_hash_ops.hpte_clear_all = pseries_hpte_clear_all; 763 mmu_hash_ops.hugepage_invalidate = pSeries_lpar_hugepage_invalidate; 764 register_process_table = pseries_lpar_register_process_table; 765 766 if (firmware_has_feature(FW_FEATURE_HPT_RESIZE)) 767 mmu_hash_ops.resize_hpt = pseries_lpar_resize_hpt; 768 } 769 770 void radix_init_pseries(void) 771 { 772 pr_info("Using radix MMU under hypervisor\n"); 773 register_process_table = pseries_lpar_register_process_table; 774 } 775 776 #ifdef CONFIG_PPC_SMLPAR 777 #define CMO_FREE_HINT_DEFAULT 1 778 static int cmo_free_hint_flag = CMO_FREE_HINT_DEFAULT; 779 780 static int __init cmo_free_hint(char *str) 781 { 782 char *parm; 783 parm = strstrip(str); 784 785 if (strcasecmp(parm, "no") == 0 || strcasecmp(parm, "off") == 0) { 786 pr_info("%s: CMO free page hinting is not active.\n", __func__); 787 cmo_free_hint_flag = 0; 788 return 1; 789 } 790 791 cmo_free_hint_flag = 1; 792 pr_info("%s: CMO free page hinting is active.\n", __func__); 793 794 if (strcasecmp(parm, "yes") == 0 || strcasecmp(parm, "on") == 0) 795 return 1; 796 797 return 0; 798 } 799 800 __setup("cmo_free_hint=", cmo_free_hint); 801 802 static void pSeries_set_page_state(struct page *page, int order, 803 unsigned long state) 804 { 805 int i, j; 806 unsigned long cmo_page_sz, addr; 807 808 cmo_page_sz = cmo_get_page_size(); 809 addr = __pa((unsigned long)page_address(page)); 810 811 for (i = 0; i < (1 << order); i++, addr += PAGE_SIZE) { 812 for (j = 0; j < PAGE_SIZE; j += cmo_page_sz) 813 plpar_hcall_norets(H_PAGE_INIT, state, addr + j, 0); 814 } 815 } 816 817 void arch_free_page(struct page *page, int order) 818 { 819 if (radix_enabled()) 820 return; 821 if (!cmo_free_hint_flag || !firmware_has_feature(FW_FEATURE_CMO)) 822 return; 823 824 pSeries_set_page_state(page, order, H_PAGE_SET_UNUSED); 825 } 826 EXPORT_SYMBOL(arch_free_page); 827 828 #endif /* CONFIG_PPC_SMLPAR */ 829 #endif /* CONFIG_PPC_BOOK3S_64 */ 830 831 #ifdef CONFIG_TRACEPOINTS 832 #ifdef HAVE_JUMP_LABEL 833 struct static_key hcall_tracepoint_key = STATIC_KEY_INIT; 834 835 int hcall_tracepoint_regfunc(void) 836 { 837 static_key_slow_inc(&hcall_tracepoint_key); 838 return 0; 839 } 840 841 void hcall_tracepoint_unregfunc(void) 842 { 843 static_key_slow_dec(&hcall_tracepoint_key); 844 } 845 #else 846 /* 847 * We optimise our hcall path by placing hcall_tracepoint_refcount 848 * directly in the TOC so we can check if the hcall tracepoints are 849 * enabled via a single load. 850 */ 851 852 /* NB: reg/unreg are called while guarded with the tracepoints_mutex */ 853 extern long hcall_tracepoint_refcount; 854 855 int hcall_tracepoint_regfunc(void) 856 { 857 hcall_tracepoint_refcount++; 858 return 0; 859 } 860 861 void hcall_tracepoint_unregfunc(void) 862 { 863 hcall_tracepoint_refcount--; 864 } 865 #endif 866 867 /* 868 * Since the tracing code might execute hcalls we need to guard against 869 * recursion. One example of this are spinlocks calling H_YIELD on 870 * shared processor partitions. 871 */ 872 static DEFINE_PER_CPU(unsigned int, hcall_trace_depth); 873 874 875 void __trace_hcall_entry(unsigned long opcode, unsigned long *args) 876 { 877 unsigned long flags; 878 unsigned int *depth; 879 880 /* 881 * We cannot call tracepoints inside RCU idle regions which 882 * means we must not trace H_CEDE. 883 */ 884 if (opcode == H_CEDE) 885 return; 886 887 local_irq_save(flags); 888 889 depth = this_cpu_ptr(&hcall_trace_depth); 890 891 if (*depth) 892 goto out; 893 894 (*depth)++; 895 preempt_disable(); 896 trace_hcall_entry(opcode, args); 897 (*depth)--; 898 899 out: 900 local_irq_restore(flags); 901 } 902 903 void __trace_hcall_exit(long opcode, long retval, unsigned long *retbuf) 904 { 905 unsigned long flags; 906 unsigned int *depth; 907 908 if (opcode == H_CEDE) 909 return; 910 911 local_irq_save(flags); 912 913 depth = this_cpu_ptr(&hcall_trace_depth); 914 915 if (*depth) 916 goto out; 917 918 (*depth)++; 919 trace_hcall_exit(opcode, retval, retbuf); 920 preempt_enable(); 921 (*depth)--; 922 923 out: 924 local_irq_restore(flags); 925 } 926 #endif 927 928 /** 929 * h_get_mpp 930 * H_GET_MPP hcall returns info in 7 parms 931 */ 932 int h_get_mpp(struct hvcall_mpp_data *mpp_data) 933 { 934 int rc; 935 unsigned long retbuf[PLPAR_HCALL9_BUFSIZE]; 936 937 rc = plpar_hcall9(H_GET_MPP, retbuf); 938 939 mpp_data->entitled_mem = retbuf[0]; 940 mpp_data->mapped_mem = retbuf[1]; 941 942 mpp_data->group_num = (retbuf[2] >> 2 * 8) & 0xffff; 943 mpp_data->pool_num = retbuf[2] & 0xffff; 944 945 mpp_data->mem_weight = (retbuf[3] >> 7 * 8) & 0xff; 946 mpp_data->unallocated_mem_weight = (retbuf[3] >> 6 * 8) & 0xff; 947 mpp_data->unallocated_entitlement = retbuf[3] & 0xffffffffffffUL; 948 949 mpp_data->pool_size = retbuf[4]; 950 mpp_data->loan_request = retbuf[5]; 951 mpp_data->backing_mem = retbuf[6]; 952 953 return rc; 954 } 955 EXPORT_SYMBOL(h_get_mpp); 956 957 int h_get_mpp_x(struct hvcall_mpp_x_data *mpp_x_data) 958 { 959 int rc; 960 unsigned long retbuf[PLPAR_HCALL9_BUFSIZE] = { 0 }; 961 962 rc = plpar_hcall9(H_GET_MPP_X, retbuf); 963 964 mpp_x_data->coalesced_bytes = retbuf[0]; 965 mpp_x_data->pool_coalesced_bytes = retbuf[1]; 966 mpp_x_data->pool_purr_cycles = retbuf[2]; 967 mpp_x_data->pool_spurr_cycles = retbuf[3]; 968 969 return rc; 970 } 971 972 static unsigned long vsid_unscramble(unsigned long vsid, int ssize) 973 { 974 unsigned long protovsid; 975 unsigned long va_bits = VA_BITS; 976 unsigned long modinv, vsid_modulus; 977 unsigned long max_mod_inv, tmp_modinv; 978 979 if (!mmu_has_feature(MMU_FTR_68_BIT_VA)) 980 va_bits = 65; 981 982 if (ssize == MMU_SEGSIZE_256M) { 983 modinv = VSID_MULINV_256M; 984 vsid_modulus = ((1UL << (va_bits - SID_SHIFT)) - 1); 985 } else { 986 modinv = VSID_MULINV_1T; 987 vsid_modulus = ((1UL << (va_bits - SID_SHIFT_1T)) - 1); 988 } 989 990 /* 991 * vsid outside our range. 992 */ 993 if (vsid >= vsid_modulus) 994 return 0; 995 996 /* 997 * If modinv is the modular multiplicate inverse of (x % vsid_modulus) 998 * and vsid = (protovsid * x) % vsid_modulus, then we say: 999 * protovsid = (vsid * modinv) % vsid_modulus 1000 */ 1001 1002 /* Check if (vsid * modinv) overflow (63 bits) */ 1003 max_mod_inv = 0x7fffffffffffffffull / vsid; 1004 if (modinv < max_mod_inv) 1005 return (vsid * modinv) % vsid_modulus; 1006 1007 tmp_modinv = modinv/max_mod_inv; 1008 modinv %= max_mod_inv; 1009 1010 protovsid = (((vsid * max_mod_inv) % vsid_modulus) * tmp_modinv) % vsid_modulus; 1011 protovsid = (protovsid + vsid * modinv) % vsid_modulus; 1012 1013 return protovsid; 1014 } 1015 1016 static int __init reserve_vrma_context_id(void) 1017 { 1018 unsigned long protovsid; 1019 1020 /* 1021 * Reserve context ids which map to reserved virtual addresses. For now 1022 * we only reserve the context id which maps to the VRMA VSID. We ignore 1023 * the addresses in "ibm,adjunct-virtual-addresses" because we don't 1024 * enable adjunct support via the "ibm,client-architecture-support" 1025 * interface. 1026 */ 1027 protovsid = vsid_unscramble(VRMA_VSID, MMU_SEGSIZE_1T); 1028 hash__reserve_context_id(protovsid >> ESID_BITS_1T); 1029 return 0; 1030 } 1031 machine_device_initcall(pseries, reserve_vrma_context_id); 1032