1 #include <linux/export.h> 2 #include <linux/bitops.h> 3 #include <linux/elf.h> 4 #include <linux/mm.h> 5 6 #include <linux/io.h> 7 #include <linux/sched.h> 8 #include <linux/random.h> 9 #include <asm/processor.h> 10 #include <asm/apic.h> 11 #include <asm/cpu.h> 12 #include <asm/smp.h> 13 #include <asm/pci-direct.h> 14 #include <asm/delay.h> 15 16 #ifdef CONFIG_X86_64 17 # include <asm/mmconfig.h> 18 # include <asm/cacheflush.h> 19 #endif 20 21 #include "cpu.h" 22 23 static const int amd_erratum_383[]; 24 static const int amd_erratum_400[]; 25 static bool cpu_has_amd_erratum(struct cpuinfo_x86 *cpu, const int *erratum); 26 27 /* 28 * nodes_per_socket: Stores the number of nodes per socket. 29 * Refer to Fam15h Models 00-0fh BKDG - CPUID Fn8000_001E_ECX 30 * Node Identifiers[10:8] 31 */ 32 static u32 nodes_per_socket = 1; 33 34 static inline int rdmsrl_amd_safe(unsigned msr, unsigned long long *p) 35 { 36 u32 gprs[8] = { 0 }; 37 int err; 38 39 WARN_ONCE((boot_cpu_data.x86 != 0xf), 40 "%s should only be used on K8!\n", __func__); 41 42 gprs[1] = msr; 43 gprs[7] = 0x9c5a203a; 44 45 err = rdmsr_safe_regs(gprs); 46 47 *p = gprs[0] | ((u64)gprs[2] << 32); 48 49 return err; 50 } 51 52 static inline int wrmsrl_amd_safe(unsigned msr, unsigned long long val) 53 { 54 u32 gprs[8] = { 0 }; 55 56 WARN_ONCE((boot_cpu_data.x86 != 0xf), 57 "%s should only be used on K8!\n", __func__); 58 59 gprs[0] = (u32)val; 60 gprs[1] = msr; 61 gprs[2] = val >> 32; 62 gprs[7] = 0x9c5a203a; 63 64 return wrmsr_safe_regs(gprs); 65 } 66 67 /* 68 * B step AMD K6 before B 9730xxxx have hardware bugs that can cause 69 * misexecution of code under Linux. Owners of such processors should 70 * contact AMD for precise details and a CPU swap. 71 * 72 * See http://www.multimania.com/poulot/k6bug.html 73 * and section 2.6.2 of "AMD-K6 Processor Revision Guide - Model 6" 74 * (Publication # 21266 Issue Date: August 1998) 75 * 76 * The following test is erm.. interesting. AMD neglected to up 77 * the chip setting when fixing the bug but they also tweaked some 78 * performance at the same time.. 79 */ 80 81 extern __visible void vide(void); 82 __asm__(".globl vide\n" 83 ".type vide, @function\n" 84 ".align 4\n" 85 "vide: ret\n"); 86 87 static void init_amd_k5(struct cpuinfo_x86 *c) 88 { 89 #ifdef CONFIG_X86_32 90 /* 91 * General Systems BIOSen alias the cpu frequency registers 92 * of the Elan at 0x000df000. Unfortunately, one of the Linux 93 * drivers subsequently pokes it, and changes the CPU speed. 94 * Workaround : Remove the unneeded alias. 95 */ 96 #define CBAR (0xfffc) /* Configuration Base Address (32-bit) */ 97 #define CBAR_ENB (0x80000000) 98 #define CBAR_KEY (0X000000CB) 99 if (c->x86_model == 9 || c->x86_model == 10) { 100 if (inl(CBAR) & CBAR_ENB) 101 outl(0 | CBAR_KEY, CBAR); 102 } 103 #endif 104 } 105 106 static void init_amd_k6(struct cpuinfo_x86 *c) 107 { 108 #ifdef CONFIG_X86_32 109 u32 l, h; 110 int mbytes = get_num_physpages() >> (20-PAGE_SHIFT); 111 112 if (c->x86_model < 6) { 113 /* Based on AMD doc 20734R - June 2000 */ 114 if (c->x86_model == 0) { 115 clear_cpu_cap(c, X86_FEATURE_APIC); 116 set_cpu_cap(c, X86_FEATURE_PGE); 117 } 118 return; 119 } 120 121 if (c->x86_model == 6 && c->x86_mask == 1) { 122 const int K6_BUG_LOOP = 1000000; 123 int n; 124 void (*f_vide)(void); 125 u64 d, d2; 126 127 pr_info("AMD K6 stepping B detected - "); 128 129 /* 130 * It looks like AMD fixed the 2.6.2 bug and improved indirect 131 * calls at the same time. 132 */ 133 134 n = K6_BUG_LOOP; 135 f_vide = vide; 136 d = rdtsc(); 137 while (n--) 138 f_vide(); 139 d2 = rdtsc(); 140 d = d2-d; 141 142 if (d > 20*K6_BUG_LOOP) 143 pr_cont("system stability may be impaired when more than 32 MB are used.\n"); 144 else 145 pr_cont("probably OK (after B9730xxxx).\n"); 146 } 147 148 /* K6 with old style WHCR */ 149 if (c->x86_model < 8 || 150 (c->x86_model == 8 && c->x86_mask < 8)) { 151 /* We can only write allocate on the low 508Mb */ 152 if (mbytes > 508) 153 mbytes = 508; 154 155 rdmsr(MSR_K6_WHCR, l, h); 156 if ((l&0x0000FFFF) == 0) { 157 unsigned long flags; 158 l = (1<<0)|((mbytes/4)<<1); 159 local_irq_save(flags); 160 wbinvd(); 161 wrmsr(MSR_K6_WHCR, l, h); 162 local_irq_restore(flags); 163 pr_info("Enabling old style K6 write allocation for %d Mb\n", 164 mbytes); 165 } 166 return; 167 } 168 169 if ((c->x86_model == 8 && c->x86_mask > 7) || 170 c->x86_model == 9 || c->x86_model == 13) { 171 /* The more serious chips .. */ 172 173 if (mbytes > 4092) 174 mbytes = 4092; 175 176 rdmsr(MSR_K6_WHCR, l, h); 177 if ((l&0xFFFF0000) == 0) { 178 unsigned long flags; 179 l = ((mbytes>>2)<<22)|(1<<16); 180 local_irq_save(flags); 181 wbinvd(); 182 wrmsr(MSR_K6_WHCR, l, h); 183 local_irq_restore(flags); 184 pr_info("Enabling new style K6 write allocation for %d Mb\n", 185 mbytes); 186 } 187 188 return; 189 } 190 191 if (c->x86_model == 10) { 192 /* AMD Geode LX is model 10 */ 193 /* placeholder for any needed mods */ 194 return; 195 } 196 #endif 197 } 198 199 static void init_amd_k7(struct cpuinfo_x86 *c) 200 { 201 #ifdef CONFIG_X86_32 202 u32 l, h; 203 204 /* 205 * Bit 15 of Athlon specific MSR 15, needs to be 0 206 * to enable SSE on Palomino/Morgan/Barton CPU's. 207 * If the BIOS didn't enable it already, enable it here. 208 */ 209 if (c->x86_model >= 6 && c->x86_model <= 10) { 210 if (!cpu_has(c, X86_FEATURE_XMM)) { 211 pr_info("Enabling disabled K7/SSE Support.\n"); 212 msr_clear_bit(MSR_K7_HWCR, 15); 213 set_cpu_cap(c, X86_FEATURE_XMM); 214 } 215 } 216 217 /* 218 * It's been determined by AMD that Athlons since model 8 stepping 1 219 * are more robust with CLK_CTL set to 200xxxxx instead of 600xxxxx 220 * As per AMD technical note 27212 0.2 221 */ 222 if ((c->x86_model == 8 && c->x86_mask >= 1) || (c->x86_model > 8)) { 223 rdmsr(MSR_K7_CLK_CTL, l, h); 224 if ((l & 0xfff00000) != 0x20000000) { 225 pr_info("CPU: CLK_CTL MSR was %x. Reprogramming to %x\n", 226 l, ((l & 0x000fffff)|0x20000000)); 227 wrmsr(MSR_K7_CLK_CTL, (l & 0x000fffff)|0x20000000, h); 228 } 229 } 230 231 set_cpu_cap(c, X86_FEATURE_K7); 232 233 /* calling is from identify_secondary_cpu() ? */ 234 if (!c->cpu_index) 235 return; 236 237 /* 238 * Certain Athlons might work (for various values of 'work') in SMP 239 * but they are not certified as MP capable. 240 */ 241 /* Athlon 660/661 is valid. */ 242 if ((c->x86_model == 6) && ((c->x86_mask == 0) || 243 (c->x86_mask == 1))) 244 return; 245 246 /* Duron 670 is valid */ 247 if ((c->x86_model == 7) && (c->x86_mask == 0)) 248 return; 249 250 /* 251 * Athlon 662, Duron 671, and Athlon >model 7 have capability 252 * bit. It's worth noting that the A5 stepping (662) of some 253 * Athlon XP's have the MP bit set. 254 * See http://www.heise.de/newsticker/data/jow-18.10.01-000 for 255 * more. 256 */ 257 if (((c->x86_model == 6) && (c->x86_mask >= 2)) || 258 ((c->x86_model == 7) && (c->x86_mask >= 1)) || 259 (c->x86_model > 7)) 260 if (cpu_has(c, X86_FEATURE_MP)) 261 return; 262 263 /* If we get here, not a certified SMP capable AMD system. */ 264 265 /* 266 * Don't taint if we are running SMP kernel on a single non-MP 267 * approved Athlon 268 */ 269 WARN_ONCE(1, "WARNING: This combination of AMD" 270 " processors is not suitable for SMP.\n"); 271 add_taint(TAINT_CPU_OUT_OF_SPEC, LOCKDEP_NOW_UNRELIABLE); 272 #endif 273 } 274 275 #ifdef CONFIG_NUMA 276 /* 277 * To workaround broken NUMA config. Read the comment in 278 * srat_detect_node(). 279 */ 280 static int nearby_node(int apicid) 281 { 282 int i, node; 283 284 for (i = apicid - 1; i >= 0; i--) { 285 node = __apicid_to_node[i]; 286 if (node != NUMA_NO_NODE && node_online(node)) 287 return node; 288 } 289 for (i = apicid + 1; i < MAX_LOCAL_APIC; i++) { 290 node = __apicid_to_node[i]; 291 if (node != NUMA_NO_NODE && node_online(node)) 292 return node; 293 } 294 return first_node(node_online_map); /* Shouldn't happen */ 295 } 296 #endif 297 298 /* 299 * Fixup core topology information for 300 * (1) AMD multi-node processors 301 * Assumption: Number of cores in each internal node is the same. 302 * (2) AMD processors supporting compute units 303 */ 304 #ifdef CONFIG_SMP 305 static void amd_get_topology(struct cpuinfo_x86 *c) 306 { 307 u8 node_id; 308 int cpu = smp_processor_id(); 309 310 /* get information required for multi-node processors */ 311 if (boot_cpu_has(X86_FEATURE_TOPOEXT)) { 312 313 node_id = cpuid_ecx(0x8000001e) & 7; 314 315 /* 316 * We may have multiple LLCs if L3 caches exist, so check if we 317 * have an L3 cache by looking at the L3 cache CPUID leaf. 318 */ 319 if (cpuid_edx(0x80000006)) { 320 if (c->x86 == 0x17) { 321 /* 322 * LLC is at the core complex level. 323 * Core complex id is ApicId[3]. 324 */ 325 per_cpu(cpu_llc_id, cpu) = c->apicid >> 3; 326 } else { 327 /* LLC is at the node level. */ 328 per_cpu(cpu_llc_id, cpu) = node_id; 329 } 330 } 331 } else if (cpu_has(c, X86_FEATURE_NODEID_MSR)) { 332 u64 value; 333 334 rdmsrl(MSR_FAM10H_NODE_ID, value); 335 node_id = value & 7; 336 337 per_cpu(cpu_llc_id, cpu) = node_id; 338 } else 339 return; 340 341 /* fixup multi-node processor information */ 342 if (nodes_per_socket > 1) { 343 u32 cus_per_node; 344 345 set_cpu_cap(c, X86_FEATURE_AMD_DCM); 346 cus_per_node = c->x86_max_cores / nodes_per_socket; 347 348 /* core id has to be in the [0 .. cores_per_node - 1] range */ 349 c->cpu_core_id %= cus_per_node; 350 } 351 } 352 #endif 353 354 /* 355 * On a AMD dual core setup the lower bits of the APIC id distinguish the cores. 356 * Assumes number of cores is a power of two. 357 */ 358 static void amd_detect_cmp(struct cpuinfo_x86 *c) 359 { 360 #ifdef CONFIG_SMP 361 unsigned bits; 362 int cpu = smp_processor_id(); 363 364 bits = c->x86_coreid_bits; 365 /* Low order bits define the core id (index of core in socket) */ 366 c->cpu_core_id = c->initial_apicid & ((1 << bits)-1); 367 /* Convert the initial APIC ID into the socket ID */ 368 c->phys_proc_id = c->initial_apicid >> bits; 369 /* use socket ID also for last level cache */ 370 per_cpu(cpu_llc_id, cpu) = c->phys_proc_id; 371 amd_get_topology(c); 372 #endif 373 } 374 375 u16 amd_get_nb_id(int cpu) 376 { 377 u16 id = 0; 378 #ifdef CONFIG_SMP 379 id = per_cpu(cpu_llc_id, cpu); 380 #endif 381 return id; 382 } 383 EXPORT_SYMBOL_GPL(amd_get_nb_id); 384 385 u32 amd_get_nodes_per_socket(void) 386 { 387 return nodes_per_socket; 388 } 389 EXPORT_SYMBOL_GPL(amd_get_nodes_per_socket); 390 391 static void srat_detect_node(struct cpuinfo_x86 *c) 392 { 393 #ifdef CONFIG_NUMA 394 int cpu = smp_processor_id(); 395 int node; 396 unsigned apicid = c->apicid; 397 398 node = numa_cpu_node(cpu); 399 if (node == NUMA_NO_NODE) 400 node = per_cpu(cpu_llc_id, cpu); 401 402 /* 403 * On multi-fabric platform (e.g. Numascale NumaChip) a 404 * platform-specific handler needs to be called to fixup some 405 * IDs of the CPU. 406 */ 407 if (x86_cpuinit.fixup_cpu_id) 408 x86_cpuinit.fixup_cpu_id(c, node); 409 410 if (!node_online(node)) { 411 /* 412 * Two possibilities here: 413 * 414 * - The CPU is missing memory and no node was created. In 415 * that case try picking one from a nearby CPU. 416 * 417 * - The APIC IDs differ from the HyperTransport node IDs 418 * which the K8 northbridge parsing fills in. Assume 419 * they are all increased by a constant offset, but in 420 * the same order as the HT nodeids. If that doesn't 421 * result in a usable node fall back to the path for the 422 * previous case. 423 * 424 * This workaround operates directly on the mapping between 425 * APIC ID and NUMA node, assuming certain relationship 426 * between APIC ID, HT node ID and NUMA topology. As going 427 * through CPU mapping may alter the outcome, directly 428 * access __apicid_to_node[]. 429 */ 430 int ht_nodeid = c->initial_apicid; 431 432 if (__apicid_to_node[ht_nodeid] != NUMA_NO_NODE) 433 node = __apicid_to_node[ht_nodeid]; 434 /* Pick a nearby node */ 435 if (!node_online(node)) 436 node = nearby_node(apicid); 437 } 438 numa_set_node(cpu, node); 439 #endif 440 } 441 442 static void early_init_amd_mc(struct cpuinfo_x86 *c) 443 { 444 #ifdef CONFIG_SMP 445 unsigned bits, ecx; 446 447 /* Multi core CPU? */ 448 if (c->extended_cpuid_level < 0x80000008) 449 return; 450 451 ecx = cpuid_ecx(0x80000008); 452 453 c->x86_max_cores = (ecx & 0xff) + 1; 454 455 /* CPU telling us the core id bits shift? */ 456 bits = (ecx >> 12) & 0xF; 457 458 /* Otherwise recompute */ 459 if (bits == 0) { 460 while ((1 << bits) < c->x86_max_cores) 461 bits++; 462 } 463 464 c->x86_coreid_bits = bits; 465 #endif 466 } 467 468 static void bsp_init_amd(struct cpuinfo_x86 *c) 469 { 470 471 #ifdef CONFIG_X86_64 472 if (c->x86 >= 0xf) { 473 unsigned long long tseg; 474 475 /* 476 * Split up direct mapping around the TSEG SMM area. 477 * Don't do it for gbpages because there seems very little 478 * benefit in doing so. 479 */ 480 if (!rdmsrl_safe(MSR_K8_TSEG_ADDR, &tseg)) { 481 unsigned long pfn = tseg >> PAGE_SHIFT; 482 483 pr_debug("tseg: %010llx\n", tseg); 484 if (pfn_range_is_mapped(pfn, pfn + 1)) 485 set_memory_4k((unsigned long)__va(tseg), 1); 486 } 487 } 488 #endif 489 490 if (cpu_has(c, X86_FEATURE_CONSTANT_TSC)) { 491 492 if (c->x86 > 0x10 || 493 (c->x86 == 0x10 && c->x86_model >= 0x2)) { 494 u64 val; 495 496 rdmsrl(MSR_K7_HWCR, val); 497 if (!(val & BIT(24))) 498 pr_warn(FW_BUG "TSC doesn't count with P0 frequency!\n"); 499 } 500 } 501 502 if (c->x86 == 0x15) { 503 unsigned long upperbit; 504 u32 cpuid, assoc; 505 506 cpuid = cpuid_edx(0x80000005); 507 assoc = cpuid >> 16 & 0xff; 508 upperbit = ((cpuid >> 24) << 10) / assoc; 509 510 va_align.mask = (upperbit - 1) & PAGE_MASK; 511 va_align.flags = ALIGN_VA_32 | ALIGN_VA_64; 512 513 /* A random value per boot for bit slice [12:upper_bit) */ 514 va_align.bits = get_random_int() & va_align.mask; 515 } 516 517 if (cpu_has(c, X86_FEATURE_MWAITX)) 518 use_mwaitx_delay(); 519 520 if (boot_cpu_has(X86_FEATURE_TOPOEXT)) { 521 u32 ecx; 522 523 ecx = cpuid_ecx(0x8000001e); 524 nodes_per_socket = ((ecx >> 8) & 7) + 1; 525 } else if (boot_cpu_has(X86_FEATURE_NODEID_MSR)) { 526 u64 value; 527 528 rdmsrl(MSR_FAM10H_NODE_ID, value); 529 nodes_per_socket = ((value >> 3) & 7) + 1; 530 } 531 } 532 533 static void early_init_amd(struct cpuinfo_x86 *c) 534 { 535 early_init_amd_mc(c); 536 537 /* 538 * c->x86_power is 8000_0007 edx. Bit 8 is TSC runs at constant rate 539 * with P/T states and does not stop in deep C-states 540 */ 541 if (c->x86_power & (1 << 8)) { 542 set_cpu_cap(c, X86_FEATURE_CONSTANT_TSC); 543 set_cpu_cap(c, X86_FEATURE_NONSTOP_TSC); 544 if (!check_tsc_unstable()) 545 set_sched_clock_stable(); 546 } 547 548 /* Bit 12 of 8000_0007 edx is accumulated power mechanism. */ 549 if (c->x86_power & BIT(12)) 550 set_cpu_cap(c, X86_FEATURE_ACC_POWER); 551 552 #ifdef CONFIG_X86_64 553 set_cpu_cap(c, X86_FEATURE_SYSCALL32); 554 #else 555 /* Set MTRR capability flag if appropriate */ 556 if (c->x86 == 5) 557 if (c->x86_model == 13 || c->x86_model == 9 || 558 (c->x86_model == 8 && c->x86_mask >= 8)) 559 set_cpu_cap(c, X86_FEATURE_K6_MTRR); 560 #endif 561 #if defined(CONFIG_X86_LOCAL_APIC) && defined(CONFIG_PCI) 562 /* 563 * ApicID can always be treated as an 8-bit value for AMD APIC versions 564 * >= 0x10, but even old K8s came out of reset with version 0x10. So, we 565 * can safely set X86_FEATURE_EXTD_APICID unconditionally for families 566 * after 16h. 567 */ 568 if (boot_cpu_has(X86_FEATURE_APIC)) { 569 if (c->x86 > 0x16) 570 set_cpu_cap(c, X86_FEATURE_EXTD_APICID); 571 else if (c->x86 >= 0xf) { 572 /* check CPU config space for extended APIC ID */ 573 unsigned int val; 574 575 val = read_pci_config(0, 24, 0, 0x68); 576 if ((val >> 17 & 0x3) == 0x3) 577 set_cpu_cap(c, X86_FEATURE_EXTD_APICID); 578 } 579 } 580 #endif 581 582 /* 583 * This is only needed to tell the kernel whether to use VMCALL 584 * and VMMCALL. VMMCALL is never executed except under virt, so 585 * we can set it unconditionally. 586 */ 587 set_cpu_cap(c, X86_FEATURE_VMMCALL); 588 589 /* F16h erratum 793, CVE-2013-6885 */ 590 if (c->x86 == 0x16 && c->x86_model <= 0xf) 591 msr_set_bit(MSR_AMD64_LS_CFG, 15); 592 593 /* 594 * Check whether the machine is affected by erratum 400. This is 595 * used to select the proper idle routine and to enable the check 596 * whether the machine is affected in arch_post_acpi_init(), which 597 * sets the X86_BUG_AMD_APIC_C1E bug depending on the MSR check. 598 */ 599 if (cpu_has_amd_erratum(c, amd_erratum_400)) 600 set_cpu_bug(c, X86_BUG_AMD_E400); 601 } 602 603 static void init_amd_k8(struct cpuinfo_x86 *c) 604 { 605 u32 level; 606 u64 value; 607 608 /* On C+ stepping K8 rep microcode works well for copy/memset */ 609 level = cpuid_eax(1); 610 if ((level >= 0x0f48 && level < 0x0f50) || level >= 0x0f58) 611 set_cpu_cap(c, X86_FEATURE_REP_GOOD); 612 613 /* 614 * Some BIOSes incorrectly force this feature, but only K8 revision D 615 * (model = 0x14) and later actually support it. 616 * (AMD Erratum #110, docId: 25759). 617 */ 618 if (c->x86_model < 0x14 && cpu_has(c, X86_FEATURE_LAHF_LM)) { 619 clear_cpu_cap(c, X86_FEATURE_LAHF_LM); 620 if (!rdmsrl_amd_safe(0xc001100d, &value)) { 621 value &= ~BIT_64(32); 622 wrmsrl_amd_safe(0xc001100d, value); 623 } 624 } 625 626 if (!c->x86_model_id[0]) 627 strcpy(c->x86_model_id, "Hammer"); 628 629 #ifdef CONFIG_SMP 630 /* 631 * Disable TLB flush filter by setting HWCR.FFDIS on K8 632 * bit 6 of msr C001_0015 633 * 634 * Errata 63 for SH-B3 steppings 635 * Errata 122 for all steppings (F+ have it disabled by default) 636 */ 637 msr_set_bit(MSR_K7_HWCR, 6); 638 #endif 639 set_cpu_bug(c, X86_BUG_SWAPGS_FENCE); 640 } 641 642 static void init_amd_gh(struct cpuinfo_x86 *c) 643 { 644 #ifdef CONFIG_X86_64 645 /* do this for boot cpu */ 646 if (c == &boot_cpu_data) 647 check_enable_amd_mmconf_dmi(); 648 649 fam10h_check_enable_mmcfg(); 650 #endif 651 652 /* 653 * Disable GART TLB Walk Errors on Fam10h. We do this here because this 654 * is always needed when GART is enabled, even in a kernel which has no 655 * MCE support built in. BIOS should disable GartTlbWlk Errors already. 656 * If it doesn't, we do it here as suggested by the BKDG. 657 * 658 * Fixes: https://bugzilla.kernel.org/show_bug.cgi?id=33012 659 */ 660 msr_set_bit(MSR_AMD64_MCx_MASK(4), 10); 661 662 /* 663 * On family 10h BIOS may not have properly enabled WC+ support, causing 664 * it to be converted to CD memtype. This may result in performance 665 * degradation for certain nested-paging guests. Prevent this conversion 666 * by clearing bit 24 in MSR_AMD64_BU_CFG2. 667 * 668 * NOTE: we want to use the _safe accessors so as not to #GP kvm 669 * guests on older kvm hosts. 670 */ 671 msr_clear_bit(MSR_AMD64_BU_CFG2, 24); 672 673 if (cpu_has_amd_erratum(c, amd_erratum_383)) 674 set_cpu_bug(c, X86_BUG_AMD_TLB_MMATCH); 675 } 676 677 #define MSR_AMD64_DE_CFG 0xC0011029 678 679 static void init_amd_ln(struct cpuinfo_x86 *c) 680 { 681 /* 682 * Apply erratum 665 fix unconditionally so machines without a BIOS 683 * fix work. 684 */ 685 msr_set_bit(MSR_AMD64_DE_CFG, 31); 686 } 687 688 static void init_amd_bd(struct cpuinfo_x86 *c) 689 { 690 u64 value; 691 692 /* re-enable TopologyExtensions if switched off by BIOS */ 693 if ((c->x86_model >= 0x10) && (c->x86_model <= 0x6f) && 694 !cpu_has(c, X86_FEATURE_TOPOEXT)) { 695 696 if (msr_set_bit(0xc0011005, 54) > 0) { 697 rdmsrl(0xc0011005, value); 698 if (value & BIT_64(54)) { 699 set_cpu_cap(c, X86_FEATURE_TOPOEXT); 700 pr_info_once(FW_INFO "CPU: Re-enabling disabled Topology Extensions Support.\n"); 701 } 702 } 703 } 704 705 /* 706 * The way access filter has a performance penalty on some workloads. 707 * Disable it on the affected CPUs. 708 */ 709 if ((c->x86_model >= 0x02) && (c->x86_model < 0x20)) { 710 if (!rdmsrl_safe(MSR_F15H_IC_CFG, &value) && !(value & 0x1E)) { 711 value |= 0x1E; 712 wrmsrl_safe(MSR_F15H_IC_CFG, value); 713 } 714 } 715 } 716 717 static void init_amd(struct cpuinfo_x86 *c) 718 { 719 u32 dummy; 720 721 early_init_amd(c); 722 723 /* 724 * Bit 31 in normal CPUID used for nonstandard 3DNow ID; 725 * 3DNow is IDd by bit 31 in extended CPUID (1*32+31) anyway 726 */ 727 clear_cpu_cap(c, 0*32+31); 728 729 if (c->x86 >= 0x10) 730 set_cpu_cap(c, X86_FEATURE_REP_GOOD); 731 732 /* get apicid instead of initial apic id from cpuid */ 733 c->apicid = hard_smp_processor_id(); 734 735 /* K6s reports MCEs but don't actually have all the MSRs */ 736 if (c->x86 < 6) 737 clear_cpu_cap(c, X86_FEATURE_MCE); 738 739 switch (c->x86) { 740 case 4: init_amd_k5(c); break; 741 case 5: init_amd_k6(c); break; 742 case 6: init_amd_k7(c); break; 743 case 0xf: init_amd_k8(c); break; 744 case 0x10: init_amd_gh(c); break; 745 case 0x12: init_amd_ln(c); break; 746 case 0x15: init_amd_bd(c); break; 747 } 748 749 /* Enable workaround for FXSAVE leak */ 750 if (c->x86 >= 6) 751 set_cpu_bug(c, X86_BUG_FXSAVE_LEAK); 752 753 cpu_detect_cache_sizes(c); 754 755 /* Multi core CPU? */ 756 if (c->extended_cpuid_level >= 0x80000008) { 757 amd_detect_cmp(c); 758 srat_detect_node(c); 759 } 760 761 #ifdef CONFIG_X86_32 762 detect_ht(c); 763 #endif 764 765 init_amd_cacheinfo(c); 766 767 if (c->x86 >= 0xf) 768 set_cpu_cap(c, X86_FEATURE_K8); 769 770 if (cpu_has(c, X86_FEATURE_XMM2)) { 771 /* MFENCE stops RDTSC speculation */ 772 set_cpu_cap(c, X86_FEATURE_MFENCE_RDTSC); 773 } 774 775 /* 776 * Family 0x12 and above processors have APIC timer 777 * running in deep C states. 778 */ 779 if (c->x86 > 0x11) 780 set_cpu_cap(c, X86_FEATURE_ARAT); 781 782 rdmsr_safe(MSR_AMD64_PATCH_LEVEL, &c->microcode, &dummy); 783 784 /* 3DNow or LM implies PREFETCHW */ 785 if (!cpu_has(c, X86_FEATURE_3DNOWPREFETCH)) 786 if (cpu_has(c, X86_FEATURE_3DNOW) || cpu_has(c, X86_FEATURE_LM)) 787 set_cpu_cap(c, X86_FEATURE_3DNOWPREFETCH); 788 789 /* AMD CPUs don't reset SS attributes on SYSRET */ 790 set_cpu_bug(c, X86_BUG_SYSRET_SS_ATTRS); 791 } 792 793 #ifdef CONFIG_X86_32 794 static unsigned int amd_size_cache(struct cpuinfo_x86 *c, unsigned int size) 795 { 796 /* AMD errata T13 (order #21922) */ 797 if ((c->x86 == 6)) { 798 /* Duron Rev A0 */ 799 if (c->x86_model == 3 && c->x86_mask == 0) 800 size = 64; 801 /* Tbird rev A1/A2 */ 802 if (c->x86_model == 4 && 803 (c->x86_mask == 0 || c->x86_mask == 1)) 804 size = 256; 805 } 806 return size; 807 } 808 #endif 809 810 static void cpu_detect_tlb_amd(struct cpuinfo_x86 *c) 811 { 812 u32 ebx, eax, ecx, edx; 813 u16 mask = 0xfff; 814 815 if (c->x86 < 0xf) 816 return; 817 818 if (c->extended_cpuid_level < 0x80000006) 819 return; 820 821 cpuid(0x80000006, &eax, &ebx, &ecx, &edx); 822 823 tlb_lld_4k[ENTRIES] = (ebx >> 16) & mask; 824 tlb_lli_4k[ENTRIES] = ebx & mask; 825 826 /* 827 * K8 doesn't have 2M/4M entries in the L2 TLB so read out the L1 TLB 828 * characteristics from the CPUID function 0x80000005 instead. 829 */ 830 if (c->x86 == 0xf) { 831 cpuid(0x80000005, &eax, &ebx, &ecx, &edx); 832 mask = 0xff; 833 } 834 835 /* Handle DTLB 2M and 4M sizes, fall back to L1 if L2 is disabled */ 836 if (!((eax >> 16) & mask)) 837 tlb_lld_2m[ENTRIES] = (cpuid_eax(0x80000005) >> 16) & 0xff; 838 else 839 tlb_lld_2m[ENTRIES] = (eax >> 16) & mask; 840 841 /* a 4M entry uses two 2M entries */ 842 tlb_lld_4m[ENTRIES] = tlb_lld_2m[ENTRIES] >> 1; 843 844 /* Handle ITLB 2M and 4M sizes, fall back to L1 if L2 is disabled */ 845 if (!(eax & mask)) { 846 /* Erratum 658 */ 847 if (c->x86 == 0x15 && c->x86_model <= 0x1f) { 848 tlb_lli_2m[ENTRIES] = 1024; 849 } else { 850 cpuid(0x80000005, &eax, &ebx, &ecx, &edx); 851 tlb_lli_2m[ENTRIES] = eax & 0xff; 852 } 853 } else 854 tlb_lli_2m[ENTRIES] = eax & mask; 855 856 tlb_lli_4m[ENTRIES] = tlb_lli_2m[ENTRIES] >> 1; 857 } 858 859 static const struct cpu_dev amd_cpu_dev = { 860 .c_vendor = "AMD", 861 .c_ident = { "AuthenticAMD" }, 862 #ifdef CONFIG_X86_32 863 .legacy_models = { 864 { .family = 4, .model_names = 865 { 866 [3] = "486 DX/2", 867 [7] = "486 DX/2-WB", 868 [8] = "486 DX/4", 869 [9] = "486 DX/4-WB", 870 [14] = "Am5x86-WT", 871 [15] = "Am5x86-WB" 872 } 873 }, 874 }, 875 .legacy_cache_size = amd_size_cache, 876 #endif 877 .c_early_init = early_init_amd, 878 .c_detect_tlb = cpu_detect_tlb_amd, 879 .c_bsp_init = bsp_init_amd, 880 .c_init = init_amd, 881 .c_x86_vendor = X86_VENDOR_AMD, 882 }; 883 884 cpu_dev_register(amd_cpu_dev); 885 886 /* 887 * AMD errata checking 888 * 889 * Errata are defined as arrays of ints using the AMD_LEGACY_ERRATUM() or 890 * AMD_OSVW_ERRATUM() macros. The latter is intended for newer errata that 891 * have an OSVW id assigned, which it takes as first argument. Both take a 892 * variable number of family-specific model-stepping ranges created by 893 * AMD_MODEL_RANGE(). 894 * 895 * Example: 896 * 897 * const int amd_erratum_319[] = 898 * AMD_LEGACY_ERRATUM(AMD_MODEL_RANGE(0x10, 0x2, 0x1, 0x4, 0x2), 899 * AMD_MODEL_RANGE(0x10, 0x8, 0x0, 0x8, 0x0), 900 * AMD_MODEL_RANGE(0x10, 0x9, 0x0, 0x9, 0x0)); 901 */ 902 903 #define AMD_LEGACY_ERRATUM(...) { -1, __VA_ARGS__, 0 } 904 #define AMD_OSVW_ERRATUM(osvw_id, ...) { osvw_id, __VA_ARGS__, 0 } 905 #define AMD_MODEL_RANGE(f, m_start, s_start, m_end, s_end) \ 906 ((f << 24) | (m_start << 16) | (s_start << 12) | (m_end << 4) | (s_end)) 907 #define AMD_MODEL_RANGE_FAMILY(range) (((range) >> 24) & 0xff) 908 #define AMD_MODEL_RANGE_START(range) (((range) >> 12) & 0xfff) 909 #define AMD_MODEL_RANGE_END(range) ((range) & 0xfff) 910 911 static const int amd_erratum_400[] = 912 AMD_OSVW_ERRATUM(1, AMD_MODEL_RANGE(0xf, 0x41, 0x2, 0xff, 0xf), 913 AMD_MODEL_RANGE(0x10, 0x2, 0x1, 0xff, 0xf)); 914 915 static const int amd_erratum_383[] = 916 AMD_OSVW_ERRATUM(3, AMD_MODEL_RANGE(0x10, 0, 0, 0xff, 0xf)); 917 918 919 static bool cpu_has_amd_erratum(struct cpuinfo_x86 *cpu, const int *erratum) 920 { 921 int osvw_id = *erratum++; 922 u32 range; 923 u32 ms; 924 925 if (osvw_id >= 0 && osvw_id < 65536 && 926 cpu_has(cpu, X86_FEATURE_OSVW)) { 927 u64 osvw_len; 928 929 rdmsrl(MSR_AMD64_OSVW_ID_LENGTH, osvw_len); 930 if (osvw_id < osvw_len) { 931 u64 osvw_bits; 932 933 rdmsrl(MSR_AMD64_OSVW_STATUS + (osvw_id >> 6), 934 osvw_bits); 935 return osvw_bits & (1ULL << (osvw_id & 0x3f)); 936 } 937 } 938 939 /* OSVW unavailable or ID unknown, match family-model-stepping range */ 940 ms = (cpu->x86_model << 4) | cpu->x86_mask; 941 while ((range = *erratum++)) 942 if ((cpu->x86 == AMD_MODEL_RANGE_FAMILY(range)) && 943 (ms >= AMD_MODEL_RANGE_START(range)) && 944 (ms <= AMD_MODEL_RANGE_END(range))) 945 return true; 946 947 return false; 948 } 949 950 void set_dr_addr_mask(unsigned long mask, int dr) 951 { 952 if (!boot_cpu_has(X86_FEATURE_BPEXT)) 953 return; 954 955 switch (dr) { 956 case 0: 957 wrmsr(MSR_F16H_DR0_ADDR_MASK, mask, 0); 958 break; 959 case 1: 960 case 2: 961 case 3: 962 wrmsr(MSR_F16H_DR1_ADDR_MASK - 1 + dr, mask, 0); 963 break; 964 default: 965 break; 966 } 967 } 968