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842 lines
21 KiB
842 lines
21 KiB
#ifndef _ASM_X86_PROCESSOR_H |
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#define _ASM_X86_PROCESSOR_H |
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|
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#include <asm/processor-flags.h> |
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|
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/* Forward declaration, a strange C thing */ |
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struct task_struct; |
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struct mm_struct; |
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struct vm86; |
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|
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#include <asm/math_emu.h> |
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#include <asm/segment.h> |
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#include <asm/types.h> |
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#include <uapi/asm/sigcontext.h> |
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#include <asm/current.h> |
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#include <asm/cpufeature.h> |
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#include <asm/page.h> |
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#include <asm/pgtable_types.h> |
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#include <asm/percpu.h> |
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#include <asm/msr.h> |
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#include <asm/desc_defs.h> |
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#include <asm/nops.h> |
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#include <asm/special_insns.h> |
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#include <asm/fpu/types.h> |
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|
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#include <linux/personality.h> |
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#include <linux/cpumask.h> |
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#include <linux/cache.h> |
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#include <linux/threads.h> |
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#include <linux/math64.h> |
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#include <linux/err.h> |
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#include <linux/irqflags.h> |
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/* |
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* We handle most unaligned accesses in hardware. On the other hand |
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* unaligned DMA can be quite expensive on some Nehalem processors. |
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* |
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* Based on this we disable the IP header alignment in network drivers. |
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*/ |
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#define NET_IP_ALIGN 0 |
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|
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#define HBP_NUM 4 |
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/* |
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* Default implementation of macro that returns current |
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* instruction pointer ("program counter"). |
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*/ |
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static inline void *current_text_addr(void) |
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{ |
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void *pc; |
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asm volatile("mov $1f, %0; 1:":"=r" (pc)); |
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return pc; |
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} |
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/* |
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* These alignment constraints are for performance in the vSMP case, |
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* but in the task_struct case we must also meet hardware imposed |
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* alignment requirements of the FPU state: |
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*/ |
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#ifdef CONFIG_X86_VSMP |
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# define ARCH_MIN_TASKALIGN (1 << INTERNODE_CACHE_SHIFT) |
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# define ARCH_MIN_MMSTRUCT_ALIGN (1 << INTERNODE_CACHE_SHIFT) |
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#else |
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# define ARCH_MIN_TASKALIGN __alignof__(union fpregs_state) |
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# define ARCH_MIN_MMSTRUCT_ALIGN 0 |
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#endif |
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enum tlb_infos { |
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ENTRIES, |
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NR_INFO |
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}; |
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extern u16 __read_mostly tlb_lli_4k[NR_INFO]; |
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extern u16 __read_mostly tlb_lli_2m[NR_INFO]; |
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extern u16 __read_mostly tlb_lli_4m[NR_INFO]; |
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extern u16 __read_mostly tlb_lld_4k[NR_INFO]; |
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extern u16 __read_mostly tlb_lld_2m[NR_INFO]; |
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extern u16 __read_mostly tlb_lld_4m[NR_INFO]; |
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extern u16 __read_mostly tlb_lld_1g[NR_INFO]; |
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|
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/* |
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* CPU type and hardware bug flags. Kept separately for each CPU. |
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* Members of this structure are referenced in head.S, so think twice |
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* before touching them. [mj] |
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*/ |
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struct cpuinfo_x86 { |
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__u8 x86; /* CPU family */ |
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__u8 x86_vendor; /* CPU vendor */ |
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__u8 x86_model; |
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__u8 x86_mask; |
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#ifdef CONFIG_X86_32 |
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char wp_works_ok; /* It doesn't on 386's */ |
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|
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/* Problems on some 486Dx4's and old 386's: */ |
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char rfu; |
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char pad0; |
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char pad1; |
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#else |
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/* Number of 4K pages in DTLB/ITLB combined(in pages): */ |
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int x86_tlbsize; |
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#endif |
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__u8 x86_virt_bits; |
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__u8 x86_phys_bits; |
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/* CPUID returned core id bits: */ |
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__u8 x86_coreid_bits; |
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/* Max extended CPUID function supported: */ |
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__u32 extended_cpuid_level; |
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/* Maximum supported CPUID level, -1=no CPUID: */ |
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int cpuid_level; |
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__u32 x86_capability[NCAPINTS + NBUGINTS]; |
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char x86_vendor_id[16]; |
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char x86_model_id[64]; |
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/* in KB - valid for CPUS which support this call: */ |
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int x86_cache_size; |
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int x86_cache_alignment; /* In bytes */ |
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/* Cache QoS architectural values: */ |
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int x86_cache_max_rmid; /* max index */ |
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int x86_cache_occ_scale; /* scale to bytes */ |
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int x86_power; |
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unsigned long loops_per_jiffy; |
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/* cpuid returned max cores value: */ |
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u16 x86_max_cores; |
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u16 apicid; |
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u16 initial_apicid; |
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u16 x86_clflush_size; |
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/* number of cores as seen by the OS: */ |
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u16 booted_cores; |
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/* Physical processor id: */ |
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u16 phys_proc_id; |
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/* Core id: */ |
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u16 cpu_core_id; |
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/* Compute unit id */ |
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u8 compute_unit_id; |
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/* Index into per_cpu list: */ |
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u16 cpu_index; |
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u32 microcode; |
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}; |
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#define X86_VENDOR_INTEL 0 |
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#define X86_VENDOR_CYRIX 1 |
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#define X86_VENDOR_AMD 2 |
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#define X86_VENDOR_UMC 3 |
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#define X86_VENDOR_CENTAUR 5 |
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#define X86_VENDOR_TRANSMETA 7 |
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#define X86_VENDOR_NSC 8 |
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#define X86_VENDOR_NUM 9 |
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#define X86_VENDOR_UNKNOWN 0xff |
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/* |
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* capabilities of CPUs |
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*/ |
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extern struct cpuinfo_x86 boot_cpu_data; |
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extern struct cpuinfo_x86 new_cpu_data; |
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extern struct tss_struct doublefault_tss; |
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extern __u32 cpu_caps_cleared[NCAPINTS]; |
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extern __u32 cpu_caps_set[NCAPINTS]; |
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#ifdef CONFIG_SMP |
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DECLARE_PER_CPU_READ_MOSTLY(struct cpuinfo_x86, cpu_info); |
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#define cpu_data(cpu) per_cpu(cpu_info, cpu) |
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#else |
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#define cpu_info boot_cpu_data |
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#define cpu_data(cpu) boot_cpu_data |
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#endif |
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extern const struct seq_operations cpuinfo_op; |
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#define cache_line_size() (boot_cpu_data.x86_cache_alignment) |
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extern void cpu_detect(struct cpuinfo_x86 *c); |
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extern void early_cpu_init(void); |
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extern void identify_boot_cpu(void); |
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extern void identify_secondary_cpu(struct cpuinfo_x86 *); |
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extern void print_cpu_info(struct cpuinfo_x86 *); |
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void print_cpu_msr(struct cpuinfo_x86 *); |
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extern void init_scattered_cpuid_features(struct cpuinfo_x86 *c); |
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extern unsigned int init_intel_cacheinfo(struct cpuinfo_x86 *c); |
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extern void init_amd_cacheinfo(struct cpuinfo_x86 *c); |
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extern void detect_extended_topology(struct cpuinfo_x86 *c); |
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extern void detect_ht(struct cpuinfo_x86 *c); |
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#ifdef CONFIG_X86_32 |
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extern int have_cpuid_p(void); |
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#else |
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static inline int have_cpuid_p(void) |
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{ |
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return 1; |
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} |
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#endif |
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static inline void native_cpuid(unsigned int *eax, unsigned int *ebx, |
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unsigned int *ecx, unsigned int *edx) |
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{ |
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/* ecx is often an input as well as an output. */ |
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asm volatile("cpuid" |
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: "=a" (*eax), |
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"=b" (*ebx), |
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"=c" (*ecx), |
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"=d" (*edx) |
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: "0" (*eax), "2" (*ecx) |
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: "memory"); |
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} |
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static inline void load_cr3(pgd_t *pgdir) |
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{ |
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write_cr3(__pa(pgdir)); |
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} |
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#ifdef CONFIG_X86_32 |
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/* This is the TSS defined by the hardware. */ |
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struct x86_hw_tss { |
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unsigned short back_link, __blh; |
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unsigned long sp0; |
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unsigned short ss0, __ss0h; |
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unsigned long sp1; |
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/* |
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* We don't use ring 1, so ss1 is a convenient scratch space in |
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* the same cacheline as sp0. We use ss1 to cache the value in |
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* MSR_IA32_SYSENTER_CS. When we context switch |
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* MSR_IA32_SYSENTER_CS, we first check if the new value being |
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* written matches ss1, and, if it's not, then we wrmsr the new |
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* value and update ss1. |
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* |
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* The only reason we context switch MSR_IA32_SYSENTER_CS is |
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* that we set it to zero in vm86 tasks to avoid corrupting the |
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* stack if we were to go through the sysenter path from vm86 |
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* mode. |
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*/ |
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unsigned short ss1; /* MSR_IA32_SYSENTER_CS */ |
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unsigned short __ss1h; |
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unsigned long sp2; |
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unsigned short ss2, __ss2h; |
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unsigned long __cr3; |
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unsigned long ip; |
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unsigned long flags; |
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unsigned long ax; |
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unsigned long cx; |
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unsigned long dx; |
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unsigned long bx; |
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unsigned long sp; |
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unsigned long bp; |
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unsigned long si; |
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unsigned long di; |
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unsigned short es, __esh; |
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unsigned short cs, __csh; |
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unsigned short ss, __ssh; |
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unsigned short ds, __dsh; |
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unsigned short fs, __fsh; |
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unsigned short gs, __gsh; |
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unsigned short ldt, __ldth; |
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unsigned short trace; |
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unsigned short io_bitmap_base; |
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|
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} __attribute__((packed)); |
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#else |
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struct x86_hw_tss { |
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u32 reserved1; |
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u64 sp0; |
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u64 sp1; |
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u64 sp2; |
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u64 reserved2; |
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u64 ist[7]; |
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u32 reserved3; |
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u32 reserved4; |
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u16 reserved5; |
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u16 io_bitmap_base; |
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} __attribute__((packed)) ____cacheline_aligned; |
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#endif |
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/* |
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* IO-bitmap sizes: |
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*/ |
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#define IO_BITMAP_BITS 65536 |
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#define IO_BITMAP_BYTES (IO_BITMAP_BITS/8) |
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#define IO_BITMAP_LONGS (IO_BITMAP_BYTES/sizeof(long)) |
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#define IO_BITMAP_OFFSET offsetof(struct tss_struct, io_bitmap) |
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#define INVALID_IO_BITMAP_OFFSET 0x8000 |
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struct tss_struct { |
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/* |
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* The hardware state: |
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*/ |
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struct x86_hw_tss x86_tss; |
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/* |
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* The extra 1 is there because the CPU will access an |
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* additional byte beyond the end of the IO permission |
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* bitmap. The extra byte must be all 1 bits, and must |
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* be within the limit. |
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*/ |
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unsigned long io_bitmap[IO_BITMAP_LONGS + 1]; |
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/* |
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* Space for the temporary SYSENTER stack: |
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*/ |
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unsigned long SYSENTER_stack[64]; |
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} ____cacheline_aligned; |
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DECLARE_PER_CPU_SHARED_ALIGNED(struct tss_struct, cpu_tss); |
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#ifdef CONFIG_X86_32 |
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DECLARE_PER_CPU(unsigned long, cpu_current_top_of_stack); |
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#endif |
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/* |
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* Save the original ist values for checking stack pointers during debugging |
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*/ |
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struct orig_ist { |
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unsigned long ist[7]; |
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}; |
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#ifdef CONFIG_X86_64 |
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DECLARE_PER_CPU(struct orig_ist, orig_ist); |
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union irq_stack_union { |
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char irq_stack[IRQ_STACK_SIZE]; |
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/* |
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* GCC hardcodes the stack canary as %gs:40. Since the |
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* irq_stack is the object at %gs:0, we reserve the bottom |
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* 48 bytes of the irq stack for the canary. |
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*/ |
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struct { |
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char gs_base[40]; |
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unsigned long stack_canary; |
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}; |
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}; |
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DECLARE_PER_CPU_FIRST(union irq_stack_union, irq_stack_union) __visible; |
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DECLARE_INIT_PER_CPU(irq_stack_union); |
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DECLARE_PER_CPU(char *, irq_stack_ptr); |
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DECLARE_PER_CPU(unsigned int, irq_count); |
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extern asmlinkage void ignore_sysret(void); |
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#else /* X86_64 */ |
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#ifdef CONFIG_CC_STACKPROTECTOR |
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/* |
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* Make sure stack canary segment base is cached-aligned: |
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* "For Intel Atom processors, avoid non zero segment base address |
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* that is not aligned to cache line boundary at all cost." |
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* (Optim Ref Manual Assembly/Compiler Coding Rule 15.) |
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*/ |
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struct stack_canary { |
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char __pad[20]; /* canary at %gs:20 */ |
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unsigned long canary; |
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}; |
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DECLARE_PER_CPU_ALIGNED(struct stack_canary, stack_canary); |
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#endif |
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/* |
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* per-CPU IRQ handling stacks |
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*/ |
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struct irq_stack { |
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u32 stack[THREAD_SIZE/sizeof(u32)]; |
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} __aligned(THREAD_SIZE); |
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DECLARE_PER_CPU(struct irq_stack *, hardirq_stack); |
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DECLARE_PER_CPU(struct irq_stack *, softirq_stack); |
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#endif /* X86_64 */ |
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extern unsigned int xstate_size; |
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struct perf_event; |
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struct thread_struct { |
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/* Cached TLS descriptors: */ |
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struct desc_struct tls_array[GDT_ENTRY_TLS_ENTRIES]; |
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unsigned long sp0; |
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unsigned long sp; |
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#ifdef CONFIG_X86_32 |
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unsigned long sysenter_cs; |
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#else |
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unsigned short es; |
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unsigned short ds; |
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unsigned short fsindex; |
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unsigned short gsindex; |
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#endif |
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#ifdef CONFIG_X86_32 |
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unsigned long ip; |
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#endif |
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#ifdef CONFIG_X86_64 |
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unsigned long fs; |
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#endif |
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unsigned long gs; |
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/* Save middle states of ptrace breakpoints */ |
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struct perf_event *ptrace_bps[HBP_NUM]; |
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/* Debug status used for traps, single steps, etc... */ |
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unsigned long debugreg6; |
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/* Keep track of the exact dr7 value set by the user */ |
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unsigned long ptrace_dr7; |
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/* Fault info: */ |
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unsigned long cr2; |
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unsigned long trap_nr; |
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unsigned long error_code; |
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#ifdef CONFIG_VM86 |
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/* Virtual 86 mode info */ |
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struct vm86 *vm86; |
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#endif |
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/* IO permissions: */ |
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unsigned long *io_bitmap_ptr; |
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unsigned long iopl; |
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/* Max allowed port in the bitmap, in bytes: */ |
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unsigned io_bitmap_max; |
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/* Floating point and extended processor state */ |
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struct fpu fpu; |
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/* |
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* WARNING: 'fpu' is dynamically-sized. It *MUST* be at |
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* the end. |
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*/ |
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}; |
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/* |
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* Set IOPL bits in EFLAGS from given mask |
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*/ |
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static inline void native_set_iopl_mask(unsigned mask) |
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{ |
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#ifdef CONFIG_X86_32 |
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unsigned int reg; |
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asm volatile ("pushfl;" |
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"popl %0;" |
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"andl %1, %0;" |
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"orl %2, %0;" |
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"pushl %0;" |
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"popfl" |
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: "=&r" (reg) |
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: "i" (~X86_EFLAGS_IOPL), "r" (mask)); |
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#endif |
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} |
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static inline void |
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native_load_sp0(struct tss_struct *tss, struct thread_struct *thread) |
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{ |
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tss->x86_tss.sp0 = thread->sp0; |
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#ifdef CONFIG_X86_32 |
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/* Only happens when SEP is enabled, no need to test "SEP"arately: */ |
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if (unlikely(tss->x86_tss.ss1 != thread->sysenter_cs)) { |
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tss->x86_tss.ss1 = thread->sysenter_cs; |
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wrmsr(MSR_IA32_SYSENTER_CS, thread->sysenter_cs, 0); |
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} |
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#endif |
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} |
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static inline void native_swapgs(void) |
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{ |
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#ifdef CONFIG_X86_64 |
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asm volatile("swapgs" ::: "memory"); |
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#endif |
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} |
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static inline unsigned long current_top_of_stack(void) |
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{ |
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#ifdef CONFIG_X86_64 |
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return this_cpu_read_stable(cpu_tss.x86_tss.sp0); |
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#else |
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/* sp0 on x86_32 is special in and around vm86 mode. */ |
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return this_cpu_read_stable(cpu_current_top_of_stack); |
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#endif |
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} |
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#ifdef CONFIG_PARAVIRT |
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#include <asm/paravirt.h> |
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#else |
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#define __cpuid native_cpuid |
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#define paravirt_enabled() 0 |
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#define paravirt_has(x) 0 |
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static inline void load_sp0(struct tss_struct *tss, |
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struct thread_struct *thread) |
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{ |
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native_load_sp0(tss, thread); |
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} |
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#define set_iopl_mask native_set_iopl_mask |
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#endif /* CONFIG_PARAVIRT */ |
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typedef struct { |
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unsigned long seg; |
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} mm_segment_t; |
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/* Free all resources held by a thread. */ |
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extern void release_thread(struct task_struct *); |
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unsigned long get_wchan(struct task_struct *p); |
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/* |
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* Generic CPUID function |
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* clear %ecx since some cpus (Cyrix MII) do not set or clear %ecx |
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* resulting in stale register contents being returned. |
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*/ |
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static inline void cpuid(unsigned int op, |
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unsigned int *eax, unsigned int *ebx, |
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unsigned int *ecx, unsigned int *edx) |
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{ |
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*eax = op; |
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*ecx = 0; |
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__cpuid(eax, ebx, ecx, edx); |
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} |
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/* Some CPUID calls want 'count' to be placed in ecx */ |
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static inline void cpuid_count(unsigned int op, int count, |
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unsigned int *eax, unsigned int *ebx, |
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unsigned int *ecx, unsigned int *edx) |
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{ |
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*eax = op; |
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*ecx = count; |
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__cpuid(eax, ebx, ecx, edx); |
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} |
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/* |
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* CPUID functions returning a single datum |
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*/ |
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static inline unsigned int cpuid_eax(unsigned int op) |
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{ |
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unsigned int eax, ebx, ecx, edx; |
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cpuid(op, &eax, &ebx, &ecx, &edx); |
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return eax; |
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} |
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static inline unsigned int cpuid_ebx(unsigned int op) |
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{ |
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unsigned int eax, ebx, ecx, edx; |
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cpuid(op, &eax, &ebx, &ecx, &edx); |
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return ebx; |
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} |
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static inline unsigned int cpuid_ecx(unsigned int op) |
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{ |
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unsigned int eax, ebx, ecx, edx; |
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cpuid(op, &eax, &ebx, &ecx, &edx); |
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return ecx; |
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} |
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static inline unsigned int cpuid_edx(unsigned int op) |
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{ |
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unsigned int eax, ebx, ecx, edx; |
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cpuid(op, &eax, &ebx, &ecx, &edx); |
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return edx; |
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} |
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/* REP NOP (PAUSE) is a good thing to insert into busy-wait loops. */ |
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static __always_inline void rep_nop(void) |
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{ |
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asm volatile("rep; nop" ::: "memory"); |
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} |
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static __always_inline void cpu_relax(void) |
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{ |
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rep_nop(); |
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} |
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#define cpu_relax_lowlatency() cpu_relax() |
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/* Stop speculative execution and prefetching of modified code. */ |
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static inline void sync_core(void) |
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{ |
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int tmp; |
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#ifdef CONFIG_M486 |
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/* |
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* Do a CPUID if available, otherwise do a jump. The jump |
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* can conveniently enough be the jump around CPUID. |
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*/ |
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asm volatile("cmpl %2,%1\n\t" |
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"jl 1f\n\t" |
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"cpuid\n" |
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"1:" |
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: "=a" (tmp) |
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: "rm" (boot_cpu_data.cpuid_level), "ri" (0), "0" (1) |
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: "ebx", "ecx", "edx", "memory"); |
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#else |
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/* |
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* CPUID is a barrier to speculative execution. |
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* Prefetched instructions are automatically |
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* invalidated when modified. |
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*/ |
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asm volatile("cpuid" |
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: "=a" (tmp) |
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: "0" (1) |
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: "ebx", "ecx", "edx", "memory"); |
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#endif |
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} |
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extern void select_idle_routine(const struct cpuinfo_x86 *c); |
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extern void init_amd_e400_c1e_mask(void); |
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extern unsigned long boot_option_idle_override; |
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extern bool amd_e400_c1e_detected; |
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enum idle_boot_override {IDLE_NO_OVERRIDE=0, IDLE_HALT, IDLE_NOMWAIT, |
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IDLE_POLL}; |
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extern void enable_sep_cpu(void); |
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extern int sysenter_setup(void); |
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extern void early_trap_init(void); |
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void early_trap_pf_init(void); |
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/* Defined in head.S */ |
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extern struct desc_ptr early_gdt_descr; |
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extern void cpu_set_gdt(int); |
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extern void switch_to_new_gdt(int); |
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extern void load_percpu_segment(int); |
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extern void cpu_init(void); |
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static inline unsigned long get_debugctlmsr(void) |
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{ |
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unsigned long debugctlmsr = 0; |
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|
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#ifndef CONFIG_X86_DEBUGCTLMSR |
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if (boot_cpu_data.x86 < 6) |
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return 0; |
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#endif |
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rdmsrl(MSR_IA32_DEBUGCTLMSR, debugctlmsr); |
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return debugctlmsr; |
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} |
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static inline void update_debugctlmsr(unsigned long debugctlmsr) |
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{ |
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#ifndef CONFIG_X86_DEBUGCTLMSR |
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if (boot_cpu_data.x86 < 6) |
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return; |
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#endif |
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wrmsrl(MSR_IA32_DEBUGCTLMSR, debugctlmsr); |
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} |
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extern void set_task_blockstep(struct task_struct *task, bool on); |
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/* Boot loader type from the setup header: */ |
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extern int bootloader_type; |
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extern int bootloader_version; |
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extern char ignore_fpu_irq; |
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#define HAVE_ARCH_PICK_MMAP_LAYOUT 1 |
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#define ARCH_HAS_PREFETCHW |
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#define ARCH_HAS_SPINLOCK_PREFETCH |
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|
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#ifdef CONFIG_X86_32 |
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# define BASE_PREFETCH "" |
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# define ARCH_HAS_PREFETCH |
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#else |
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# define BASE_PREFETCH "prefetcht0 %P1" |
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#endif |
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|
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/* |
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* Prefetch instructions for Pentium III (+) and AMD Athlon (+) |
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* |
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* It's not worth to care about 3dnow prefetches for the K6 |
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* because they are microcoded there and very slow. |
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*/ |
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static inline void prefetch(const void *x) |
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{ |
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alternative_input(BASE_PREFETCH, "prefetchnta %P1", |
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X86_FEATURE_XMM, |
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"m" (*(const char *)x)); |
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} |
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|
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/* |
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* 3dnow prefetch to get an exclusive cache line. |
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* Useful for spinlocks to avoid one state transition in the |
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* cache coherency protocol: |
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*/ |
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static inline void prefetchw(const void *x) |
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{ |
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alternative_input(BASE_PREFETCH, "prefetchw %P1", |
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X86_FEATURE_3DNOWPREFETCH, |
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"m" (*(const char *)x)); |
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} |
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|
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static inline void spin_lock_prefetch(const void *x) |
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{ |
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prefetchw(x); |
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} |
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#define TOP_OF_INIT_STACK ((unsigned long)&init_stack + sizeof(init_stack) - \ |
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TOP_OF_KERNEL_STACK_PADDING) |
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|
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#ifdef CONFIG_X86_32 |
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/* |
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* User space process size: 3GB (default). |
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*/ |
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#define TASK_SIZE PAGE_OFFSET |
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#define TASK_SIZE_MAX TASK_SIZE |
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#define STACK_TOP TASK_SIZE |
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#define STACK_TOP_MAX STACK_TOP |
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|
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#define INIT_THREAD { \ |
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.sp0 = TOP_OF_INIT_STACK, \ |
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.sysenter_cs = __KERNEL_CS, \ |
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.io_bitmap_ptr = NULL, \ |
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} |
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|
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extern unsigned long thread_saved_pc(struct task_struct *tsk); |
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|
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/* |
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* TOP_OF_KERNEL_STACK_PADDING reserves 8 bytes on top of the ring0 stack. |
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* This is necessary to guarantee that the entire "struct pt_regs" |
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* is accessible even if the CPU haven't stored the SS/ESP registers |
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* on the stack (interrupt gate does not save these registers |
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* when switching to the same priv ring). |
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* Therefore beware: accessing the ss/esp fields of the |
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* "struct pt_regs" is possible, but they may contain the |
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* completely wrong values. |
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*/ |
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#define task_pt_regs(task) \ |
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({ \ |
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unsigned long __ptr = (unsigned long)task_stack_page(task); \ |
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__ptr += THREAD_SIZE - TOP_OF_KERNEL_STACK_PADDING; \ |
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((struct pt_regs *)__ptr) - 1; \ |
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}) |
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|
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#define KSTK_ESP(task) (task_pt_regs(task)->sp) |
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|
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#else |
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/* |
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* User space process size. 47bits minus one guard page. The guard |
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* page is necessary on Intel CPUs: if a SYSCALL instruction is at |
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* the highest possible canonical userspace address, then that |
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* syscall will enter the kernel with a non-canonical return |
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* address, and SYSRET will explode dangerously. We avoid this |
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* particular problem by preventing anything from being mapped |
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* at the maximum canonical address. |
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*/ |
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#define TASK_SIZE_MAX ((1UL << 47) - PAGE_SIZE) |
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|
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/* This decides where the kernel will search for a free chunk of vm |
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* space during mmap's. |
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*/ |
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#define IA32_PAGE_OFFSET ((current->personality & ADDR_LIMIT_3GB) ? \ |
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0xc0000000 : 0xFFFFe000) |
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|
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#define TASK_SIZE (test_thread_flag(TIF_ADDR32) ? \ |
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IA32_PAGE_OFFSET : TASK_SIZE_MAX) |
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#define TASK_SIZE_OF(child) ((test_tsk_thread_flag(child, TIF_ADDR32)) ? \ |
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IA32_PAGE_OFFSET : TASK_SIZE_MAX) |
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|
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#define STACK_TOP TASK_SIZE |
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#define STACK_TOP_MAX TASK_SIZE_MAX |
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|
|
#define INIT_THREAD { \ |
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.sp0 = TOP_OF_INIT_STACK \ |
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} |
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|
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/* |
|
* Return saved PC of a blocked thread. |
|
* What is this good for? it will be always the scheduler or ret_from_fork. |
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*/ |
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#define thread_saved_pc(t) (*(unsigned long *)((t)->thread.sp - 8)) |
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|
|
#define task_pt_regs(tsk) ((struct pt_regs *)(tsk)->thread.sp0 - 1) |
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extern unsigned long KSTK_ESP(struct task_struct *task); |
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|
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#endif /* CONFIG_X86_64 */ |
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|
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extern void start_thread(struct pt_regs *regs, unsigned long new_ip, |
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unsigned long new_sp); |
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|
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/* |
|
* This decides where the kernel will search for a free chunk of vm |
|
* space during mmap's. |
|
*/ |
|
#define TASK_UNMAPPED_BASE (PAGE_ALIGN(TASK_SIZE / 3)) |
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|
|
#define KSTK_EIP(task) (task_pt_regs(task)->ip) |
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|
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/* Get/set a process' ability to use the timestamp counter instruction */ |
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#define GET_TSC_CTL(adr) get_tsc_mode((adr)) |
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#define SET_TSC_CTL(val) set_tsc_mode((val)) |
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|
|
extern int get_tsc_mode(unsigned long adr); |
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extern int set_tsc_mode(unsigned int val); |
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|
|
/* Register/unregister a process' MPX related resource */ |
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#define MPX_ENABLE_MANAGEMENT() mpx_enable_management() |
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#define MPX_DISABLE_MANAGEMENT() mpx_disable_management() |
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|
|
#ifdef CONFIG_X86_INTEL_MPX |
|
extern int mpx_enable_management(void); |
|
extern int mpx_disable_management(void); |
|
#else |
|
static inline int mpx_enable_management(void) |
|
{ |
|
return -EINVAL; |
|
} |
|
static inline int mpx_disable_management(void) |
|
{ |
|
return -EINVAL; |
|
} |
|
#endif /* CONFIG_X86_INTEL_MPX */ |
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|
|
extern u16 amd_get_nb_id(int cpu); |
|
extern u32 amd_get_nodes_per_socket(void); |
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|
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static inline uint32_t hypervisor_cpuid_base(const char *sig, uint32_t leaves) |
|
{ |
|
uint32_t base, eax, signature[3]; |
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|
|
for (base = 0x40000000; base < 0x40010000; base += 0x100) { |
|
cpuid(base, &eax, &signature[0], &signature[1], &signature[2]); |
|
|
|
if (!memcmp(sig, signature, 12) && |
|
(leaves == 0 || ((eax - base) >= leaves))) |
|
return base; |
|
} |
|
|
|
return 0; |
|
} |
|
|
|
extern unsigned long arch_align_stack(unsigned long sp); |
|
extern void free_init_pages(char *what, unsigned long begin, unsigned long end); |
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|
|
void default_idle(void); |
|
#ifdef CONFIG_XEN |
|
bool xen_set_default_idle(void); |
|
#else |
|
#define xen_set_default_idle 0 |
|
#endif |
|
|
|
void stop_this_cpu(void *dummy); |
|
void df_debug(struct pt_regs *regs, long error_code); |
|
#endif /* _ASM_X86_PROCESSOR_H */
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