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linux-headers-4.15.0-197
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include
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asm
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..
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11/17/2022 06:42:16 AM
rwxr-xr-x
📄
Kbuild
294 bytes
01/28/2018 09:20:33 PM
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a.out-core.h
1.89 KB
01/28/2018 09:20:33 PM
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acenv.h
1.56 KB
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acpi.h
4.76 KB
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agp.h
1.04 KB
01/28/2018 09:20:33 PM
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alternative-asm.h
2.43 KB
01/28/2018 09:20:33 PM
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alternative.h
8.28 KB
11/01/2022 04:52:05 PM
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amd_nb.h
2.98 KB
01/28/2018 09:20:33 PM
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apb_timer.h
1.43 KB
01/28/2018 09:20:33 PM
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apic.h
14.53 KB
11/01/2022 04:52:05 PM
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apic_flat_64.h
151 bytes
01/28/2018 09:20:33 PM
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apicdef.h
11.26 KB
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apm.h
1.8 KB
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arch_hweight.h
1.28 KB
01/28/2018 09:20:33 PM
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archrandom.h
3.03 KB
11/01/2022 04:52:05 PM
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asm-offsets.h
35 bytes
01/28/2018 09:20:33 PM
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asm-prototypes.h
946 bytes
01/28/2018 09:20:33 PM
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asm.h
4.97 KB
11/01/2022 04:52:05 PM
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atomic.h
6.02 KB
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atomic64_32.h
8.71 KB
01/28/2018 09:20:33 PM
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atomic64_64.h
6.31 KB
11/01/2022 04:52:05 PM
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barrier.h
3.6 KB
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bios_ebda.h
914 bytes
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bitops.h
13.78 KB
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boot.h
1.53 KB
01/28/2018 09:20:33 PM
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bootparam_utils.h
2.86 KB
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bug.h
2.07 KB
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bugs.h
493 bytes
01/28/2018 09:20:33 PM
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cache.h
641 bytes
01/28/2018 09:20:33 PM
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cacheflush.h
306 bytes
01/28/2018 09:20:33 PM
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cacheinfo.h
209 bytes
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calgary.h
2.31 KB
01/28/2018 09:20:33 PM
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ce4100.h
121 bytes
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checksum.h
133 bytes
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checksum_32.h
4.86 KB
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checksum_64.h
5.41 KB
01/28/2018 09:20:33 PM
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clocksource.h
488 bytes
01/28/2018 09:20:33 PM
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cmdline.h
302 bytes
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cmpxchg.h
7.68 KB
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cmpxchg_32.h
3.15 KB
01/28/2018 09:20:33 PM
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cmpxchg_64.h
543 bytes
01/28/2018 09:20:33 PM
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compat.h
7.37 KB
11/01/2022 04:52:05 PM
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cpu.h
975 bytes
01/28/2018 09:20:33 PM
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cpu_device_id.h
1.38 KB
11/01/2022 04:52:05 PM
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cpu_entry_area.h
2.27 KB
01/28/2018 09:20:33 PM
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cpufeature.h
7.75 KB
11/01/2022 04:52:05 PM
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cpufeatures.h
24.62 KB
11/01/2022 04:52:05 PM
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cpumask.h
408 bytes
01/28/2018 09:20:33 PM
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crash.h
320 bytes
11/01/2022 04:52:05 PM
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crypto
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11/17/2022 06:42:22 AM
rwxr-xr-x
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current.h
443 bytes
01/28/2018 09:20:33 PM
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debugreg.h
2.67 KB
01/28/2018 09:20:33 PM
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delay.h
208 bytes
01/28/2018 09:20:33 PM
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desc.h
11.42 KB
01/28/2018 09:20:33 PM
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desc_defs.h
3.16 KB
01/28/2018 09:20:33 PM
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device.h
568 bytes
01/28/2018 09:20:33 PM
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disabled-features.h
2.31 KB
11/01/2022 04:52:05 PM
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div64.h
1.79 KB
01/28/2018 09:20:33 PM
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dma-mapping.h
2.4 KB
01/28/2018 09:20:33 PM
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dma.h
9.58 KB
11/01/2022 04:52:05 PM
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dmi.h
556 bytes
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dwarf2.h
2.43 KB
01/28/2018 09:20:33 PM
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e820
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11/17/2022 06:42:22 AM
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edac.h
474 bytes
01/28/2018 09:20:33 PM
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efi.h
6.9 KB
11/01/2022 04:52:05 PM
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elf.h
10.82 KB
01/28/2018 09:20:33 PM
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emergency-restart.h
202 bytes
01/28/2018 09:20:33 PM
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entry_arch.h
1.88 KB
01/28/2018 09:20:33 PM
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espfix.h
426 bytes
01/28/2018 09:20:33 PM
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exec.h
37 bytes
01/28/2018 09:20:33 PM
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export.h
120 bytes
01/28/2018 09:20:33 PM
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extable.h
1.27 KB
01/28/2018 09:20:33 PM
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fb.h
540 bytes
01/28/2018 09:20:33 PM
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fixmap.h
6.04 KB
11/01/2022 04:52:05 PM
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floppy.h
6.59 KB
01/28/2018 09:20:33 PM
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fpu
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11/17/2022 06:42:22 AM
rwxr-xr-x
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frame.h
815 bytes
01/28/2018 09:20:33 PM
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ftrace.h
1.8 KB
01/28/2018 09:20:33 PM
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futex.h
2.2 KB
01/28/2018 09:20:33 PM
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gart.h
2.64 KB
01/28/2018 09:20:33 PM
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genapic.h
22 bytes
01/28/2018 09:20:33 PM
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geode.h
842 bytes
01/28/2018 09:20:33 PM
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hardirq.h
2.3 KB
11/01/2022 04:52:05 PM
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highmem.h
2.6 KB
01/28/2018 09:20:33 PM
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hpet.h
3.38 KB
01/28/2018 09:20:33 PM
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hugetlb.h
2.15 KB
01/28/2018 09:20:33 PM
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hw_breakpoint.h
1.96 KB
01/28/2018 09:20:33 PM
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hw_irq.h
3.85 KB
11/01/2022 04:52:05 PM
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hypervisor.h
1.84 KB
01/28/2018 09:20:33 PM
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i8259.h
1.93 KB
11/01/2022 04:52:05 PM
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ia32.h
1.46 KB
01/28/2018 09:20:33 PM
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ia32_unistd.h
313 bytes
01/28/2018 09:20:33 PM
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imr.h
1.81 KB
01/28/2018 09:20:33 PM
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inat.h
6.58 KB
01/28/2018 09:20:33 PM
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inat_types.h
1013 bytes
01/28/2018 09:20:33 PM
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init.h
632 bytes
01/28/2018 09:20:33 PM
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insn-eval.h
837 bytes
01/28/2018 09:20:33 PM
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insn.h
7.46 KB
11/01/2022 04:52:05 PM
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inst.h
5.07 KB
01/28/2018 09:20:33 PM
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intel-family.h
3.29 KB
11/01/2022 04:52:05 PM
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intel-mid.h
4.91 KB
01/28/2018 09:20:33 PM
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intel_ds.h
793 bytes
01/28/2018 09:20:33 PM
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intel_mid_vrtc.h
326 bytes
01/28/2018 09:20:33 PM
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intel_pmc_ipc.h
2.08 KB
01/28/2018 09:20:33 PM
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intel_pt.h
292 bytes
01/28/2018 09:20:33 PM
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intel_punit_ipc.h
4.56 KB
01/28/2018 09:20:33 PM
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intel_rdt_sched.h
2.59 KB
01/28/2018 09:20:33 PM
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intel_scu_ipc.h
2.3 KB
01/28/2018 09:20:33 PM
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intel_telemetry.h
3.96 KB
01/28/2018 09:20:33 PM
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invpcid.h
1.57 KB
01/28/2018 09:20:33 PM
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io.h
12.21 KB
01/28/2018 09:20:33 PM
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io_apic.h
5.63 KB
01/28/2018 09:20:33 PM
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iomap.h
1.22 KB
01/28/2018 09:20:33 PM
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iommu.h
392 bytes
01/28/2018 09:20:33 PM
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iommu_table.h
3.82 KB
01/28/2018 09:20:33 PM
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iosf_mbi.h
5.74 KB
01/28/2018 09:20:33 PM
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ipi.h
2.84 KB
01/28/2018 09:20:33 PM
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irq.h
1.12 KB
01/28/2018 09:20:33 PM
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irq_regs.h
679 bytes
01/28/2018 09:20:33 PM
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irq_remapping.h
2.96 KB
11/01/2022 04:52:05 PM
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irq_vectors.h
4.12 KB
01/28/2018 09:20:33 PM
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irq_work.h
397 bytes
01/28/2018 09:20:33 PM
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irqdomain.h
1.61 KB
01/28/2018 09:20:33 PM
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irqflags.h
4.38 KB
11/01/2022 04:52:05 PM
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ist.h
735 bytes
01/28/2018 09:20:33 PM
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jump_label.h
2.44 KB
01/28/2018 09:20:33 PM
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kasan.h
966 bytes
01/28/2018 09:20:33 PM
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kaslr.h
424 bytes
01/28/2018 09:20:33 PM
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kbdleds.h
454 bytes
01/28/2018 09:20:33 PM
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kdebug.h
752 bytes
01/28/2018 09:20:33 PM
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kexec-bzimage64.h
189 bytes
01/28/2018 09:20:33 PM
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kexec.h
6.69 KB
11/01/2022 04:52:05 PM
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kgdb.h
2.09 KB
01/28/2018 09:20:33 PM
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kmap_types.h
289 bytes
01/28/2018 09:20:33 PM
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kprobes.h
3.82 KB
01/28/2018 09:20:33 PM
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kvm_emulate.h
15.23 KB
11/01/2022 04:52:05 PM
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kvm_guest.h
172 bytes
01/28/2018 09:20:33 PM
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kvm_host.h
42.72 KB
11/01/2022 04:52:05 PM
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kvm_page_track.h
2.48 KB
01/28/2018 09:20:33 PM
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kvm_para.h
3 KB
01/28/2018 09:20:33 PM
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kvmclock.h
170 bytes
01/28/2018 09:20:33 PM
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linkage.h
581 bytes
01/28/2018 09:20:33 PM
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livepatch.h
1.12 KB
01/28/2018 09:20:33 PM
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local.h
3.83 KB
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local64.h
33 bytes
01/28/2018 09:20:33 PM
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mach_timer.h
1.55 KB
01/28/2018 09:20:33 PM
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mach_traps.h
1013 bytes
01/28/2018 09:20:33 PM
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math_emu.h
395 bytes
01/28/2018 09:20:33 PM
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mc146818rtc.h
2.76 KB
01/28/2018 09:20:33 PM
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mce.h
12.54 KB
11/01/2022 04:52:05 PM
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mem_encrypt.h
2.83 KB
01/28/2018 09:20:33 PM
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microcode.h
4.14 KB
11/01/2022 04:52:05 PM
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microcode_amd.h
1.41 KB
11/01/2022 04:52:05 PM
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microcode_intel.h
2.46 KB
01/28/2018 09:20:33 PM
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misc.h
143 bytes
01/28/2018 09:20:33 PM
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mmconfig.h
374 bytes
01/28/2018 09:20:33 PM
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mmu.h
1.57 KB
01/28/2018 09:20:33 PM
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mmu_context.h
10.27 KB
11/01/2022 04:52:05 PM
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mmx.h
337 bytes
01/28/2018 09:20:33 PM
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mmzone.h
129 bytes
01/28/2018 09:20:33 PM
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mmzone_32.h
1.16 KB
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mmzone_64.h
430 bytes
01/28/2018 09:20:33 PM
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module.h
2.05 KB
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mpspec.h
3.93 KB
01/28/2018 09:20:33 PM
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mpspec_def.h
3.93 KB
01/28/2018 09:20:33 PM
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mpx.h
2.97 KB
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mshyperv.h
10.69 KB
01/28/2018 09:20:33 PM
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msi.h
392 bytes
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msidef.h
1.77 KB
01/28/2018 09:20:33 PM
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msr-index.h
30.36 KB
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msr-trace.h
1.35 KB
01/28/2018 09:20:33 PM
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msr.h
10.85 KB
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mtrr.h
4.62 KB
01/28/2018 09:20:33 PM
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mwait.h
3.74 KB
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nmi.h
1.39 KB
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nops.h
4.31 KB
01/28/2018 09:20:33 PM
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nospec-branch.h
10.87 KB
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numa.h
2.18 KB
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numa_32.h
256 bytes
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numachip
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11/17/2022 06:42:22 AM
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olpc.h
3.16 KB
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olpc_ofw.h
1.1 KB
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orc_lookup.h
1.63 KB
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orc_types.h
3.47 KB
01/28/2018 09:20:33 PM
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page.h
2.18 KB
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page_32.h
1.01 KB
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page_32_types.h
1.7 KB
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page_64.h
1.42 KB
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page_64_types.h
2.34 KB
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page_types.h
2.29 KB
01/28/2018 09:20:33 PM
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paravirt.h
23.31 KB
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paravirt_types.h
22.15 KB
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parport.h
314 bytes
01/28/2018 09:20:33 PM
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pat.h
768 bytes
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pci-direct.h
995 bytes
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pci-functions.h
654 bytes
01/28/2018 09:20:33 PM
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pci.h
3.51 KB
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pci_64.h
684 bytes
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pci_x86.h
5.71 KB
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percpu.h
18.97 KB
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perf_event.h
8.82 KB
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perf_event_p4.h
26.1 KB
01/28/2018 09:20:33 PM
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pgalloc.h
5.57 KB
01/28/2018 09:20:33 PM
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pgtable-2level.h
2.75 KB
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pgtable-2level_types.h
867 bytes
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pgtable-3level.h
10.24 KB
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pgtable-3level_types.h
1.06 KB
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pgtable-invert.h
1.07 KB
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pgtable.h
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Editing: mmu_context.h
Close
/* SPDX-License-Identifier: GPL-2.0 */ #ifndef _ASM_X86_MMU_CONTEXT_H #define _ASM_X86_MMU_CONTEXT_H #include <asm/desc.h> #include <linux/atomic.h> #include <linux/mm_types.h> #include <linux/pkeys.h> #include <trace/events/tlb.h> #include <asm/pgalloc.h> #include <asm/tlbflush.h> #include <asm/paravirt.h> #include <asm/mpx.h> extern atomic64_t last_mm_ctx_id; #ifndef CONFIG_PARAVIRT static inline void paravirt_activate_mm(struct mm_struct *prev, struct mm_struct *next) { } #endif /* !CONFIG_PARAVIRT */ #ifdef CONFIG_PERF_EVENTS extern struct static_key rdpmc_always_available; static inline void load_mm_cr4(struct mm_struct *mm) { if (static_key_false(&rdpmc_always_available) || atomic_read(&mm->context.perf_rdpmc_allowed)) cr4_set_bits(X86_CR4_PCE); else cr4_clear_bits(X86_CR4_PCE); } #else static inline void load_mm_cr4(struct mm_struct *mm) {} #endif #ifdef CONFIG_MODIFY_LDT_SYSCALL /* * ldt_structs can be allocated, used, and freed, but they are never * modified while live. */ struct ldt_struct { /* * Xen requires page-aligned LDTs with special permissions. This is * needed to prevent us from installing evil descriptors such as * call gates. On native, we could merge the ldt_struct and LDT * allocations, but it's not worth trying to optimize. */ struct desc_struct *entries; unsigned int nr_entries; /* * If PTI is in use, then the entries array is not mapped while we're * in user mode. The whole array will be aliased at the addressed * given by ldt_slot_va(slot). We use two slots so that we can allocate * and map, and enable a new LDT without invalidating the mapping * of an older, still-in-use LDT. * * slot will be -1 if this LDT doesn't have an alias mapping. */ int slot; }; /* This is a multiple of PAGE_SIZE. */ #define LDT_SLOT_STRIDE (LDT_ENTRIES * LDT_ENTRY_SIZE) static inline void *ldt_slot_va(int slot) { return (void *)(LDT_BASE_ADDR + LDT_SLOT_STRIDE * slot); } /* * Used for LDT copy/destruction. */ static inline void init_new_context_ldt(struct mm_struct *mm) { mm->context.ldt = NULL; init_rwsem(&mm->context.ldt_usr_sem); } int ldt_dup_context(struct mm_struct *oldmm, struct mm_struct *mm); void destroy_context_ldt(struct mm_struct *mm); void ldt_arch_exit_mmap(struct mm_struct *mm); #else /* CONFIG_MODIFY_LDT_SYSCALL */ static inline void init_new_context_ldt(struct mm_struct *mm) { } static inline int ldt_dup_context(struct mm_struct *oldmm, struct mm_struct *mm) { return 0; } static inline void destroy_context_ldt(struct mm_struct *mm) { } static inline void ldt_arch_exit_mmap(struct mm_struct *mm) { } #endif static inline void load_mm_ldt(struct mm_struct *mm) { #ifdef CONFIG_MODIFY_LDT_SYSCALL struct ldt_struct *ldt; /* READ_ONCE synchronizes with smp_store_release */ ldt = READ_ONCE(mm->context.ldt); /* * Any change to mm->context.ldt is followed by an IPI to all * CPUs with the mm active. The LDT will not be freed until * after the IPI is handled by all such CPUs. This means that, * if the ldt_struct changes before we return, the values we see * will be safe, and the new values will be loaded before we run * any user code. * * NB: don't try to convert this to use RCU without extreme care. * We would still need IRQs off, because we don't want to change * the local LDT after an IPI loaded a newer value than the one * that we can see. */ if (unlikely(ldt)) { if (static_cpu_has(X86_FEATURE_PTI)) { if (WARN_ON_ONCE((unsigned long)ldt->slot > 1)) { /* * Whoops -- either the new LDT isn't mapped * (if slot == -1) or is mapped into a bogus * slot (if slot > 1). */ clear_LDT(); return; } /* * If page table isolation is enabled, ldt->entries * will not be mapped in the userspace pagetables. * Tell the CPU to access the LDT through the alias * at ldt_slot_va(ldt->slot). */ set_ldt(ldt_slot_va(ldt->slot), ldt->nr_entries); } else { set_ldt(ldt->entries, ldt->nr_entries); } } else { clear_LDT(); } #else clear_LDT(); #endif } static inline void switch_ldt(struct mm_struct *prev, struct mm_struct *next) { #ifdef CONFIG_MODIFY_LDT_SYSCALL /* * Load the LDT if either the old or new mm had an LDT. * * An mm will never go from having an LDT to not having an LDT. Two * mms never share an LDT, so we don't gain anything by checking to * see whether the LDT changed. There's also no guarantee that * prev->context.ldt actually matches LDTR, but, if LDTR is non-NULL, * then prev->context.ldt will also be non-NULL. * * If we really cared, we could optimize the case where prev == next * and we're exiting lazy mode. Most of the time, if this happens, * we don't actually need to reload LDTR, but modify_ldt() is mostly * used by legacy code and emulators where we don't need this level of * performance. * * This uses | instead of || because it generates better code. */ if (unlikely((unsigned long)prev->context.ldt | (unsigned long)next->context.ldt)) load_mm_ldt(next); #endif DEBUG_LOCKS_WARN_ON(preemptible()); } void enter_lazy_tlb(struct mm_struct *mm, struct task_struct *tsk); /* * Init a new mm. Used on mm copies, like at fork() * and on mm's that are brand-new, like at execve(). */ static inline int init_new_context(struct task_struct *tsk, struct mm_struct *mm) { mutex_init(&mm->context.lock); mm->context.ctx_id = atomic64_inc_return(&last_mm_ctx_id); atomic64_set(&mm->context.tlb_gen, 0); #ifdef CONFIG_X86_INTEL_MEMORY_PROTECTION_KEYS if (cpu_feature_enabled(X86_FEATURE_OSPKE)) { /* pkey 0 is the default and allocated implicitly */ mm->context.pkey_allocation_map = 0x1; /* -1 means unallocated or invalid */ mm->context.execute_only_pkey = -1; } #endif init_new_context_ldt(mm); return 0; } static inline void destroy_context(struct mm_struct *mm) { destroy_context_ldt(mm); } extern void switch_mm(struct mm_struct *prev, struct mm_struct *next, struct task_struct *tsk); extern void switch_mm_irqs_off(struct mm_struct *prev, struct mm_struct *next, struct task_struct *tsk); #define switch_mm_irqs_off switch_mm_irqs_off #define activate_mm(prev, next) \ do { \ paravirt_activate_mm((prev), (next)); \ switch_mm((prev), (next), NULL); \ } while (0); #ifdef CONFIG_X86_32 #define deactivate_mm(tsk, mm) \ do { \ lazy_load_gs(0); \ } while (0) #else #define deactivate_mm(tsk, mm) \ do { \ load_gs_index(0); \ loadsegment(fs, 0); \ } while (0) #endif static inline void arch_dup_pkeys(struct mm_struct *oldmm, struct mm_struct *mm) { #ifdef CONFIG_X86_INTEL_MEMORY_PROTECTION_KEYS if (!cpu_feature_enabled(X86_FEATURE_OSPKE)) return; /* Duplicate the oldmm pkey state in mm: */ mm->context.pkey_allocation_map = oldmm->context.pkey_allocation_map; mm->context.execute_only_pkey = oldmm->context.execute_only_pkey; #endif } static inline int arch_dup_mmap(struct mm_struct *oldmm, struct mm_struct *mm) { arch_dup_pkeys(oldmm, mm); paravirt_arch_dup_mmap(oldmm, mm); return ldt_dup_context(oldmm, mm); } static inline void arch_exit_mmap(struct mm_struct *mm) { paravirt_arch_exit_mmap(mm); ldt_arch_exit_mmap(mm); } #ifdef CONFIG_X86_64 static inline bool is_64bit_mm(struct mm_struct *mm) { return !IS_ENABLED(CONFIG_IA32_EMULATION) || !(mm->context.ia32_compat == TIF_IA32); } #else static inline bool is_64bit_mm(struct mm_struct *mm) { return false; } #endif static inline void arch_bprm_mm_init(struct mm_struct *mm, struct vm_area_struct *vma) { mpx_mm_init(mm); } static inline void arch_unmap(struct mm_struct *mm, struct vm_area_struct *vma, unsigned long start, unsigned long end) { /* * mpx_notify_unmap() goes and reads a rarely-hot * cacheline in the mm_struct. That can be expensive * enough to be seen in profiles. * * The mpx_notify_unmap() call and its contents have been * observed to affect munmap() performance on hardware * where MPX is not present. * * The unlikely() optimizes for the fast case: no MPX * in the CPU, or no MPX use in the process. Even if * we get this wrong (in the unlikely event that MPX * is widely enabled on some system) the overhead of * MPX itself (reading bounds tables) is expected to * overwhelm the overhead of getting this unlikely() * consistently wrong. */ if (unlikely(cpu_feature_enabled(X86_FEATURE_MPX))) mpx_notify_unmap(mm, vma, start, end); } #ifdef CONFIG_X86_INTEL_MEMORY_PROTECTION_KEYS static inline int vma_pkey(struct vm_area_struct *vma) { unsigned long vma_pkey_mask = VM_PKEY_BIT0 | VM_PKEY_BIT1 | VM_PKEY_BIT2 | VM_PKEY_BIT3; return (vma->vm_flags & vma_pkey_mask) >> VM_PKEY_SHIFT; } #else static inline int vma_pkey(struct vm_area_struct *vma) { return 0; } #endif /* * We only want to enforce protection keys on the current process * because we effectively have no access to PKRU for other * processes or any way to tell *which * PKRU in a threaded * process we could use. * * So do not enforce things if the VMA is not from the current * mm, or if we are in a kernel thread. */ static inline bool vma_is_foreign(struct vm_area_struct *vma) { if (!current->mm) return true; /* * Should PKRU be enforced on the access to this VMA? If * the VMA is from another process, then PKRU has no * relevance and should not be enforced. */ if (current->mm != vma->vm_mm) return true; return false; } static inline bool arch_vma_access_permitted(struct vm_area_struct *vma, bool write, bool execute, bool foreign) { /* pkeys never affect instruction fetches */ if (execute) return true; /* allow access if the VMA is not one from this process */ if (foreign || vma_is_foreign(vma)) return true; return __pkru_allows_pkey(vma_pkey(vma), write); } /* * This can be used from process context to figure out what the value of * CR3 is without needing to do a (slow) __read_cr3(). * * It's intended to be used for code like KVM that sneakily changes CR3 * and needs to restore it. It needs to be used very carefully. */ static inline unsigned long __get_current_cr3_fast(void) { unsigned long cr3 = build_cr3(this_cpu_read(cpu_tlbstate.loaded_mm)->pgd, this_cpu_read(cpu_tlbstate.loaded_mm_asid)); /* For now, be very restrictive about when this can be called. */ VM_WARN_ON(in_nmi() || preemptible()); VM_BUG_ON(cr3 != __read_cr3()); return cr3; } #endif /* _ASM_X86_MMU_CONTEXT_H */