addon_cpuid_features.c 3.4 KB

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  1. /*
  2. * Routines to indentify additional cpu features that are scattered in
  3. * cpuid space.
  4. */
  5. #include <linux/cpu.h>
  6. #include <asm/pat.h>
  7. #include <asm/processor.h>
  8. #include <asm/apic.h>
  9. struct cpuid_bit {
  10. u16 feature;
  11. u8 reg;
  12. u8 bit;
  13. u32 level;
  14. };
  15. enum cpuid_regs {
  16. CR_EAX = 0,
  17. CR_ECX,
  18. CR_EDX,
  19. CR_EBX
  20. };
  21. void __cpuinit init_scattered_cpuid_features(struct cpuinfo_x86 *c)
  22. {
  23. u32 max_level;
  24. u32 regs[4];
  25. const struct cpuid_bit *cb;
  26. static const struct cpuid_bit __cpuinitconst cpuid_bits[] = {
  27. { X86_FEATURE_IDA, CR_EAX, 1, 0x00000006 },
  28. { X86_FEATURE_ARAT, CR_EAX, 2, 0x00000006 },
  29. { X86_FEATURE_NPT, CR_EDX, 0, 0x8000000a },
  30. { X86_FEATURE_LBRV, CR_EDX, 1, 0x8000000a },
  31. { X86_FEATURE_SVML, CR_EDX, 2, 0x8000000a },
  32. { X86_FEATURE_NRIPS, CR_EDX, 3, 0x8000000a },
  33. { 0, 0, 0, 0 }
  34. };
  35. for (cb = cpuid_bits; cb->feature; cb++) {
  36. /* Verify that the level is valid */
  37. max_level = cpuid_eax(cb->level & 0xffff0000);
  38. if (max_level < cb->level ||
  39. max_level > (cb->level | 0xffff))
  40. continue;
  41. cpuid(cb->level, &regs[CR_EAX], &regs[CR_EBX],
  42. &regs[CR_ECX], &regs[CR_EDX]);
  43. if (regs[cb->reg] & (1 << cb->bit))
  44. set_cpu_cap(c, cb->feature);
  45. }
  46. }
  47. /* leaf 0xb SMT level */
  48. #define SMT_LEVEL 0
  49. /* leaf 0xb sub-leaf types */
  50. #define INVALID_TYPE 0
  51. #define SMT_TYPE 1
  52. #define CORE_TYPE 2
  53. #define LEAFB_SUBTYPE(ecx) (((ecx) >> 8) & 0xff)
  54. #define BITS_SHIFT_NEXT_LEVEL(eax) ((eax) & 0x1f)
  55. #define LEVEL_MAX_SIBLINGS(ebx) ((ebx) & 0xffff)
  56. /*
  57. * Check for extended topology enumeration cpuid leaf 0xb and if it
  58. * exists, use it for populating initial_apicid and cpu topology
  59. * detection.
  60. */
  61. void __cpuinit detect_extended_topology(struct cpuinfo_x86 *c)
  62. {
  63. #ifdef CONFIG_SMP
  64. unsigned int eax, ebx, ecx, edx, sub_index;
  65. unsigned int ht_mask_width, core_plus_mask_width;
  66. unsigned int core_select_mask, core_level_siblings;
  67. static bool printed;
  68. if (c->cpuid_level < 0xb)
  69. return;
  70. cpuid_count(0xb, SMT_LEVEL, &eax, &ebx, &ecx, &edx);
  71. /*
  72. * check if the cpuid leaf 0xb is actually implemented.
  73. */
  74. if (ebx == 0 || (LEAFB_SUBTYPE(ecx) != SMT_TYPE))
  75. return;
  76. set_cpu_cap(c, X86_FEATURE_XTOPOLOGY);
  77. /*
  78. * initial apic id, which also represents 32-bit extended x2apic id.
  79. */
  80. c->initial_apicid = edx;
  81. /*
  82. * Populate HT related information from sub-leaf level 0.
  83. */
  84. core_level_siblings = smp_num_siblings = LEVEL_MAX_SIBLINGS(ebx);
  85. core_plus_mask_width = ht_mask_width = BITS_SHIFT_NEXT_LEVEL(eax);
  86. sub_index = 1;
  87. do {
  88. cpuid_count(0xb, sub_index, &eax, &ebx, &ecx, &edx);
  89. /*
  90. * Check for the Core type in the implemented sub leaves.
  91. */
  92. if (LEAFB_SUBTYPE(ecx) == CORE_TYPE) {
  93. core_level_siblings = LEVEL_MAX_SIBLINGS(ebx);
  94. core_plus_mask_width = BITS_SHIFT_NEXT_LEVEL(eax);
  95. break;
  96. }
  97. sub_index++;
  98. } while (LEAFB_SUBTYPE(ecx) != INVALID_TYPE);
  99. core_select_mask = (~(-1 << core_plus_mask_width)) >> ht_mask_width;
  100. c->cpu_core_id = apic->phys_pkg_id(c->initial_apicid, ht_mask_width)
  101. & core_select_mask;
  102. c->phys_proc_id = apic->phys_pkg_id(c->initial_apicid, core_plus_mask_width);
  103. /*
  104. * Reinit the apicid, now that we have extended initial_apicid.
  105. */
  106. c->apicid = apic->phys_pkg_id(c->initial_apicid, 0);
  107. c->x86_max_cores = (core_level_siblings / smp_num_siblings);
  108. if (!printed) {
  109. printk(KERN_INFO "CPU: Physical Processor ID: %d\n",
  110. c->phys_proc_id);
  111. if (c->x86_max_cores > 1)
  112. printk(KERN_INFO "CPU: Processor Core ID: %d\n",
  113. c->cpu_core_id);
  114. printed = 1;
  115. }
  116. return;
  117. #endif
  118. }