xref: /linux-6.15/arch/x86/Kconfig (revision dcbb01fb)
1# SPDX-License-Identifier: GPL-2.0
2# Select 32 or 64 bit
3config 64BIT
4	bool "64-bit kernel" if "$(ARCH)" = "x86"
5	default "$(ARCH)" != "i386"
6	help
7	  Say yes to build a 64-bit kernel - formerly known as x86_64
8	  Say no to build a 32-bit kernel - formerly known as i386
9
10config X86_32
11	def_bool y
12	depends on !64BIT
13	# Options that are inherently 32-bit kernel only:
14	select ARCH_WANT_IPC_PARSE_VERSION
15	select CLKSRC_I8253
16	select CLONE_BACKWARDS
17	select GENERIC_VDSO_32
18	select HAVE_DEBUG_STACKOVERFLOW
19	select KMAP_LOCAL
20	select MODULES_USE_ELF_REL
21	select OLD_SIGACTION
22	select ARCH_SPLIT_ARG64
23
24config X86_64
25	def_bool y
26	depends on 64BIT
27	# Options that are inherently 64-bit kernel only:
28	select ARCH_HAS_GIGANTIC_PAGE
29	select ARCH_SUPPORTS_INT128 if CC_HAS_INT128
30	select ARCH_SUPPORTS_PER_VMA_LOCK
31	select ARCH_SUPPORTS_HUGE_PFNMAP if TRANSPARENT_HUGEPAGE
32	select HAVE_ARCH_SOFT_DIRTY
33	select MODULES_USE_ELF_RELA
34	select NEED_DMA_MAP_STATE
35	select SWIOTLB
36	select ARCH_HAS_ELFCORE_COMPAT
37	select ZONE_DMA32
38	select EXECMEM if DYNAMIC_FTRACE
39
40config FORCE_DYNAMIC_FTRACE
41	def_bool y
42	depends on X86_32
43	depends on FUNCTION_TRACER
44	select DYNAMIC_FTRACE
45	help
46	  We keep the static function tracing (!DYNAMIC_FTRACE) around
47	  in order to test the non static function tracing in the
48	  generic code, as other architectures still use it. But we
49	  only need to keep it around for x86_64. No need to keep it
50	  for x86_32. For x86_32, force DYNAMIC_FTRACE.
51#
52# Arch settings
53#
54# ( Note that options that are marked 'if X86_64' could in principle be
55#   ported to 32-bit as well. )
56#
57config X86
58	def_bool y
59	#
60	# Note: keep this list sorted alphabetically
61	#
62	select ACPI_LEGACY_TABLES_LOOKUP	if ACPI
63	select ACPI_SYSTEM_POWER_STATES_SUPPORT	if ACPI
64	select ACPI_HOTPLUG_CPU			if ACPI_PROCESSOR && HOTPLUG_CPU
65	select ARCH_32BIT_OFF_T			if X86_32
66	select ARCH_CLOCKSOURCE_INIT
67	select ARCH_CONFIGURES_CPU_MITIGATIONS
68	select ARCH_CORRECT_STACKTRACE_ON_KRETPROBE
69	select ARCH_ENABLE_HUGEPAGE_MIGRATION if X86_64 && HUGETLB_PAGE && MIGRATION
70	select ARCH_ENABLE_MEMORY_HOTPLUG if X86_64
71	select ARCH_ENABLE_MEMORY_HOTREMOVE if MEMORY_HOTPLUG
72	select ARCH_ENABLE_SPLIT_PMD_PTLOCK if (PGTABLE_LEVELS > 2) && (X86_64 || X86_PAE)
73	select ARCH_ENABLE_THP_MIGRATION if X86_64 && TRANSPARENT_HUGEPAGE
74	select ARCH_HAS_ACPI_TABLE_UPGRADE	if ACPI
75	select ARCH_HAS_CACHE_LINE_SIZE
76	select ARCH_HAS_CPU_CACHE_INVALIDATE_MEMREGION
77	select ARCH_HAS_CPU_FINALIZE_INIT
78	select ARCH_HAS_CPU_PASID		if IOMMU_SVA
79	select ARCH_HAS_CRC32
80	select ARCH_HAS_CRC_T10DIF		if X86_64
81	select ARCH_HAS_CURRENT_STACK_POINTER
82	select ARCH_HAS_DEBUG_VIRTUAL
83	select ARCH_HAS_DEBUG_VM_PGTABLE	if !X86_PAE
84	select ARCH_HAS_DEVMEM_IS_ALLOWED
85	select ARCH_HAS_DMA_OPS			if GART_IOMMU || XEN
86	select ARCH_HAS_EARLY_DEBUG		if KGDB
87	select ARCH_HAS_ELF_RANDOMIZE
88	select ARCH_HAS_EXECMEM_ROX		if X86_64
89	select ARCH_HAS_FAST_MULTIPLIER
90	select ARCH_HAS_FORTIFY_SOURCE
91	select ARCH_HAS_GCOV_PROFILE_ALL
92	select ARCH_HAS_KCOV			if X86_64
93	select ARCH_HAS_KERNEL_FPU_SUPPORT
94	select ARCH_HAS_MEM_ENCRYPT
95	select ARCH_HAS_MEMBARRIER_SYNC_CORE
96	select ARCH_HAS_NMI_SAFE_THIS_CPU_OPS
97	select ARCH_HAS_NON_OVERLAPPING_ADDRESS_SPACE
98	select ARCH_HAS_PMEM_API		if X86_64
99	select ARCH_HAS_PREEMPT_LAZY
100	select ARCH_HAS_PTE_DEVMAP		if X86_64
101	select ARCH_HAS_PTE_SPECIAL
102	select ARCH_HAS_HW_PTE_YOUNG
103	select ARCH_HAS_NONLEAF_PMD_YOUNG	if PGTABLE_LEVELS > 2
104	select ARCH_HAS_UACCESS_FLUSHCACHE	if X86_64
105	select ARCH_HAS_COPY_MC			if X86_64
106	select ARCH_HAS_SET_MEMORY
107	select ARCH_HAS_SET_DIRECT_MAP
108	select ARCH_HAS_STRICT_KERNEL_RWX
109	select ARCH_HAS_STRICT_MODULE_RWX
110	select ARCH_HAS_SYNC_CORE_BEFORE_USERMODE
111	select ARCH_HAS_SYSCALL_WRAPPER
112	select ARCH_HAS_UBSAN
113	select ARCH_HAS_DEBUG_WX
114	select ARCH_HAS_ZONE_DMA_SET if EXPERT
115	select ARCH_HAVE_NMI_SAFE_CMPXCHG
116	select ARCH_HAVE_EXTRA_ELF_NOTES
117	select ARCH_MHP_MEMMAP_ON_MEMORY_ENABLE
118	select ARCH_MIGHT_HAVE_ACPI_PDC		if ACPI
119	select ARCH_MIGHT_HAVE_PC_PARPORT
120	select ARCH_MIGHT_HAVE_PC_SERIO
121	select ARCH_STACKWALK
122	select ARCH_SUPPORTS_ACPI
123	select ARCH_SUPPORTS_ATOMIC_RMW
124	select ARCH_SUPPORTS_DEBUG_PAGEALLOC
125	select ARCH_SUPPORTS_PAGE_TABLE_CHECK	if X86_64
126	select ARCH_SUPPORTS_NUMA_BALANCING	if X86_64
127	select ARCH_SUPPORTS_KMAP_LOCAL_FORCE_MAP	if NR_CPUS <= 4096
128	select ARCH_SUPPORTS_CFI_CLANG		if X86_64
129	select ARCH_USES_CFI_TRAPS		if X86_64 && CFI_CLANG
130	select ARCH_SUPPORTS_LTO_CLANG
131	select ARCH_SUPPORTS_LTO_CLANG_THIN
132	select ARCH_SUPPORTS_RT
133	select ARCH_SUPPORTS_AUTOFDO_CLANG
134	select ARCH_SUPPORTS_PROPELLER_CLANG    if X86_64
135	select ARCH_USE_BUILTIN_BSWAP
136	select ARCH_USE_CMPXCHG_LOCKREF		if X86_CMPXCHG64
137	select ARCH_USE_MEMTEST
138	select ARCH_USE_QUEUED_RWLOCKS
139	select ARCH_USE_QUEUED_SPINLOCKS
140	select ARCH_USE_SYM_ANNOTATIONS
141	select ARCH_WANT_BATCHED_UNMAP_TLB_FLUSH
142	select ARCH_WANT_DEFAULT_BPF_JIT	if X86_64
143	select ARCH_WANTS_DYNAMIC_TASK_STRUCT
144	select ARCH_WANTS_NO_INSTR
145	select ARCH_WANT_GENERAL_HUGETLB
146	select ARCH_WANT_HUGE_PMD_SHARE
147	select ARCH_WANT_LD_ORPHAN_WARN
148	select ARCH_WANT_OPTIMIZE_DAX_VMEMMAP	if X86_64
149	select ARCH_WANT_OPTIMIZE_HUGETLB_VMEMMAP	if X86_64
150	select ARCH_WANTS_THP_SWAP		if X86_64
151	select ARCH_HAS_PARANOID_L1D_FLUSH
152	select BUILDTIME_TABLE_SORT
153	select CLKEVT_I8253
154	select CLOCKSOURCE_WATCHDOG
155	# Word-size accesses may read uninitialized data past the trailing \0
156	# in strings and cause false KMSAN reports.
157	select DCACHE_WORD_ACCESS		if !KMSAN
158	select DYNAMIC_SIGFRAME
159	select EDAC_ATOMIC_SCRUB
160	select EDAC_SUPPORT
161	select GENERIC_CLOCKEVENTS_BROADCAST	if X86_64 || (X86_32 && X86_LOCAL_APIC)
162	select GENERIC_CLOCKEVENTS_BROADCAST_IDLE	if GENERIC_CLOCKEVENTS_BROADCAST
163	select GENERIC_CLOCKEVENTS_MIN_ADJUST
164	select GENERIC_CMOS_UPDATE
165	select GENERIC_CPU_AUTOPROBE
166	select GENERIC_CPU_DEVICES
167	select GENERIC_CPU_VULNERABILITIES
168	select GENERIC_EARLY_IOREMAP
169	select GENERIC_ENTRY
170	select GENERIC_IOMAP
171	select GENERIC_IRQ_EFFECTIVE_AFF_MASK	if SMP
172	select GENERIC_IRQ_MATRIX_ALLOCATOR	if X86_LOCAL_APIC
173	select GENERIC_IRQ_MIGRATION		if SMP
174	select GENERIC_IRQ_PROBE
175	select GENERIC_IRQ_RESERVATION_MODE
176	select GENERIC_IRQ_SHOW
177	select GENERIC_PENDING_IRQ		if SMP
178	select GENERIC_PTDUMP
179	select GENERIC_SMP_IDLE_THREAD
180	select GENERIC_TIME_VSYSCALL
181	select GENERIC_GETTIMEOFDAY
182	select GENERIC_VDSO_TIME_NS
183	select GENERIC_VDSO_OVERFLOW_PROTECT
184	select GUP_GET_PXX_LOW_HIGH		if X86_PAE
185	select HARDIRQS_SW_RESEND
186	select HARDLOCKUP_CHECK_TIMESTAMP	if X86_64
187	select HAS_IOPORT
188	select HAVE_ACPI_APEI			if ACPI
189	select HAVE_ACPI_APEI_NMI		if ACPI
190	select HAVE_ALIGNED_STRUCT_PAGE
191	select HAVE_ARCH_AUDITSYSCALL
192	select HAVE_ARCH_HUGE_VMAP		if X86_64 || X86_PAE
193	select HAVE_ARCH_HUGE_VMALLOC		if X86_64
194	select HAVE_ARCH_JUMP_LABEL
195	select HAVE_ARCH_JUMP_LABEL_RELATIVE
196	select HAVE_ARCH_KASAN			if X86_64
197	select HAVE_ARCH_KASAN_VMALLOC		if X86_64
198	select HAVE_ARCH_KFENCE
199	select HAVE_ARCH_KMSAN			if X86_64
200	select HAVE_ARCH_KGDB
201	select HAVE_ARCH_MMAP_RND_BITS		if MMU
202	select HAVE_ARCH_MMAP_RND_COMPAT_BITS	if MMU && COMPAT
203	select HAVE_ARCH_COMPAT_MMAP_BASES	if MMU && COMPAT
204	select HAVE_ARCH_PREL32_RELOCATIONS
205	select HAVE_ARCH_SECCOMP_FILTER
206	select HAVE_ARCH_THREAD_STRUCT_WHITELIST
207	select HAVE_ARCH_STACKLEAK
208	select HAVE_ARCH_TRACEHOOK
209	select HAVE_ARCH_TRANSPARENT_HUGEPAGE
210	select HAVE_ARCH_TRANSPARENT_HUGEPAGE_PUD if X86_64
211	select HAVE_ARCH_USERFAULTFD_WP         if X86_64 && USERFAULTFD
212	select HAVE_ARCH_USERFAULTFD_MINOR	if X86_64 && USERFAULTFD
213	select HAVE_ARCH_VMAP_STACK		if X86_64
214	select HAVE_ARCH_RANDOMIZE_KSTACK_OFFSET
215	select HAVE_ARCH_WITHIN_STACK_FRAMES
216	select HAVE_ASM_MODVERSIONS
217	select HAVE_CMPXCHG_DOUBLE
218	select HAVE_CMPXCHG_LOCAL
219	select HAVE_CONTEXT_TRACKING_USER		if X86_64
220	select HAVE_CONTEXT_TRACKING_USER_OFFSTACK	if HAVE_CONTEXT_TRACKING_USER
221	select HAVE_C_RECORDMCOUNT
222	select HAVE_OBJTOOL_MCOUNT		if HAVE_OBJTOOL
223	select HAVE_OBJTOOL_NOP_MCOUNT		if HAVE_OBJTOOL_MCOUNT
224	select HAVE_BUILDTIME_MCOUNT_SORT
225	select HAVE_DEBUG_KMEMLEAK
226	select HAVE_DMA_CONTIGUOUS
227	select HAVE_DYNAMIC_FTRACE
228	select HAVE_DYNAMIC_FTRACE_WITH_REGS
229	select HAVE_DYNAMIC_FTRACE_WITH_ARGS	if X86_64
230	select HAVE_FTRACE_REGS_HAVING_PT_REGS	if X86_64
231	select HAVE_DYNAMIC_FTRACE_WITH_DIRECT_CALLS
232	select HAVE_SAMPLE_FTRACE_DIRECT	if X86_64
233	select HAVE_SAMPLE_FTRACE_DIRECT_MULTI	if X86_64
234	select HAVE_EBPF_JIT
235	select HAVE_EFFICIENT_UNALIGNED_ACCESS
236	select HAVE_EISA
237	select HAVE_EXIT_THREAD
238	select HAVE_GUP_FAST
239	select HAVE_FENTRY			if X86_64 || DYNAMIC_FTRACE
240	select HAVE_FTRACE_GRAPH_FUNC		if HAVE_FUNCTION_GRAPH_TRACER
241	select HAVE_FTRACE_MCOUNT_RECORD
242	select HAVE_FUNCTION_GRAPH_FREGS	if HAVE_FUNCTION_GRAPH_TRACER
243	select HAVE_FUNCTION_GRAPH_TRACER	if X86_32 || (X86_64 && DYNAMIC_FTRACE)
244	select HAVE_FUNCTION_TRACER
245	select HAVE_GCC_PLUGINS
246	select HAVE_HW_BREAKPOINT
247	select HAVE_IOREMAP_PROT
248	select HAVE_IRQ_EXIT_ON_IRQ_STACK	if X86_64
249	select HAVE_IRQ_TIME_ACCOUNTING
250	select HAVE_JUMP_LABEL_HACK		if HAVE_OBJTOOL
251	select HAVE_KERNEL_BZIP2
252	select HAVE_KERNEL_GZIP
253	select HAVE_KERNEL_LZ4
254	select HAVE_KERNEL_LZMA
255	select HAVE_KERNEL_LZO
256	select HAVE_KERNEL_XZ
257	select HAVE_KERNEL_ZSTD
258	select HAVE_KPROBES
259	select HAVE_KPROBES_ON_FTRACE
260	select HAVE_FUNCTION_ERROR_INJECTION
261	select HAVE_KRETPROBES
262	select HAVE_RETHOOK
263	select HAVE_LIVEPATCH			if X86_64
264	select HAVE_MIXED_BREAKPOINTS_REGS
265	select HAVE_MOD_ARCH_SPECIFIC
266	select HAVE_MOVE_PMD
267	select HAVE_MOVE_PUD
268	select HAVE_NOINSTR_HACK		if HAVE_OBJTOOL
269	select HAVE_NMI
270	select HAVE_NOINSTR_VALIDATION		if HAVE_OBJTOOL
271	select HAVE_OBJTOOL			if X86_64
272	select HAVE_OPTPROBES
273	select HAVE_PAGE_SIZE_4KB
274	select HAVE_PCSPKR_PLATFORM
275	select HAVE_PERF_EVENTS
276	select HAVE_PERF_EVENTS_NMI
277	select HAVE_HARDLOCKUP_DETECTOR_PERF	if PERF_EVENTS && HAVE_PERF_EVENTS_NMI
278	select HAVE_PCI
279	select HAVE_PERF_REGS
280	select HAVE_PERF_USER_STACK_DUMP
281	select MMU_GATHER_RCU_TABLE_FREE
282	select MMU_GATHER_MERGE_VMAS
283	select HAVE_POSIX_CPU_TIMERS_TASK_WORK
284	select HAVE_REGS_AND_STACK_ACCESS_API
285	select HAVE_RELIABLE_STACKTRACE		if UNWINDER_ORC || STACK_VALIDATION
286	select HAVE_FUNCTION_ARG_ACCESS_API
287	select HAVE_SETUP_PER_CPU_AREA
288	select HAVE_SOFTIRQ_ON_OWN_STACK
289	select HAVE_STACKPROTECTOR		if CC_HAS_SANE_STACKPROTECTOR
290	select HAVE_STACK_VALIDATION		if HAVE_OBJTOOL
291	select HAVE_STATIC_CALL
292	select HAVE_STATIC_CALL_INLINE		if HAVE_OBJTOOL
293	select HAVE_PREEMPT_DYNAMIC_CALL
294	select HAVE_RSEQ
295	select HAVE_RUST			if X86_64
296	select HAVE_SYSCALL_TRACEPOINTS
297	select HAVE_UACCESS_VALIDATION		if HAVE_OBJTOOL
298	select HAVE_UNSTABLE_SCHED_CLOCK
299	select HAVE_USER_RETURN_NOTIFIER
300	select HAVE_GENERIC_VDSO
301	select VDSO_GETRANDOM			if X86_64
302	select HOTPLUG_PARALLEL			if SMP && X86_64
303	select HOTPLUG_SMT			if SMP
304	select HOTPLUG_SPLIT_STARTUP		if SMP && X86_32
305	select IRQ_FORCED_THREADING
306	select LOCK_MM_AND_FIND_VMA
307	select NEED_PER_CPU_EMBED_FIRST_CHUNK
308	select NEED_PER_CPU_PAGE_FIRST_CHUNK
309	select NEED_SG_DMA_LENGTH
310	select NUMA_MEMBLKS			if NUMA
311	select PCI_DOMAINS			if PCI
312	select PCI_LOCKLESS_CONFIG		if PCI
313	select PERF_EVENTS
314	select RTC_LIB
315	select RTC_MC146818_LIB
316	select SPARSE_IRQ
317	select SYSCTL_EXCEPTION_TRACE
318	select THREAD_INFO_IN_TASK
319	select TRACE_IRQFLAGS_SUPPORT
320	select TRACE_IRQFLAGS_NMI_SUPPORT
321	select USER_STACKTRACE_SUPPORT
322	select HAVE_ARCH_KCSAN			if X86_64
323	select PROC_PID_ARCH_STATUS		if PROC_FS
324	select HAVE_ARCH_NODE_DEV_GROUP		if X86_SGX
325	select FUNCTION_ALIGNMENT_16B		if X86_64 || X86_ALIGNMENT_16
326	select FUNCTION_ALIGNMENT_4B
327	imply IMA_SECURE_AND_OR_TRUSTED_BOOT    if EFI
328	select HAVE_DYNAMIC_FTRACE_NO_PATCHABLE
329	select ARCH_SUPPORTS_PT_RECLAIM		if X86_64
330
331config INSTRUCTION_DECODER
332	def_bool y
333	depends on KPROBES || PERF_EVENTS || UPROBES
334
335config OUTPUT_FORMAT
336	string
337	default "elf32-i386" if X86_32
338	default "elf64-x86-64" if X86_64
339
340config LOCKDEP_SUPPORT
341	def_bool y
342
343config STACKTRACE_SUPPORT
344	def_bool y
345
346config MMU
347	def_bool y
348
349config ARCH_MMAP_RND_BITS_MIN
350	default 28 if 64BIT
351	default 8
352
353config ARCH_MMAP_RND_BITS_MAX
354	default 32 if 64BIT
355	default 16
356
357config ARCH_MMAP_RND_COMPAT_BITS_MIN
358	default 8
359
360config ARCH_MMAP_RND_COMPAT_BITS_MAX
361	default 16
362
363config SBUS
364	bool
365
366config GENERIC_ISA_DMA
367	def_bool y
368	depends on ISA_DMA_API
369
370config GENERIC_CSUM
371	bool
372	default y if KMSAN || KASAN
373
374config GENERIC_BUG
375	def_bool y
376	depends on BUG
377	select GENERIC_BUG_RELATIVE_POINTERS if X86_64
378
379config GENERIC_BUG_RELATIVE_POINTERS
380	bool
381
382config ARCH_MAY_HAVE_PC_FDC
383	def_bool y
384	depends on ISA_DMA_API
385
386config GENERIC_CALIBRATE_DELAY
387	def_bool y
388
389config ARCH_HAS_CPU_RELAX
390	def_bool y
391
392config ARCH_HIBERNATION_POSSIBLE
393	def_bool y
394
395config ARCH_SUSPEND_POSSIBLE
396	def_bool y
397
398config AUDIT_ARCH
399	def_bool y if X86_64
400
401config KASAN_SHADOW_OFFSET
402	hex
403	depends on KASAN
404	default 0xdffffc0000000000
405
406config HAVE_INTEL_TXT
407	def_bool y
408	depends on INTEL_IOMMU && ACPI
409
410config X86_64_SMP
411	def_bool y
412	depends on X86_64 && SMP
413
414config ARCH_SUPPORTS_UPROBES
415	def_bool y
416
417config FIX_EARLYCON_MEM
418	def_bool y
419
420config DYNAMIC_PHYSICAL_MASK
421	bool
422
423config PGTABLE_LEVELS
424	int
425	default 5 if X86_5LEVEL
426	default 4 if X86_64
427	default 3 if X86_PAE
428	default 2
429
430config CC_HAS_SANE_STACKPROTECTOR
431	bool
432	default $(success,$(srctree)/scripts/gcc-x86_64-has-stack-protector.sh $(CC) $(CLANG_FLAGS)) if 64BIT
433	default $(success,$(srctree)/scripts/gcc-x86_32-has-stack-protector.sh $(CC) $(CLANG_FLAGS))
434	help
435	  We have to make sure stack protector is unconditionally disabled if
436	  the compiler produces broken code or if it does not let us control
437	  the segment on 32-bit kernels.
438
439menu "Processor type and features"
440
441config SMP
442	bool "Symmetric multi-processing support"
443	help
444	  This enables support for systems with more than one CPU. If you have
445	  a system with only one CPU, say N. If you have a system with more
446	  than one CPU, say Y.
447
448	  If you say N here, the kernel will run on uni- and multiprocessor
449	  machines, but will use only one CPU of a multiprocessor machine. If
450	  you say Y here, the kernel will run on many, but not all,
451	  uniprocessor machines. On a uniprocessor machine, the kernel
452	  will run faster if you say N here.
453
454	  Note that if you say Y here and choose architecture "586" or
455	  "Pentium" under "Processor family", the kernel will not work on 486
456	  architectures. Similarly, multiprocessor kernels for the "PPro"
457	  architecture may not work on all Pentium based boards.
458
459	  People using multiprocessor machines who say Y here should also say
460	  Y to "Enhanced Real Time Clock Support", below. The "Advanced Power
461	  Management" code will be disabled if you say Y here.
462
463	  See also <file:Documentation/arch/x86/i386/IO-APIC.rst>,
464	  <file:Documentation/admin-guide/lockup-watchdogs.rst> and the SMP-HOWTO available at
465	  <http://www.tldp.org/docs.html#howto>.
466
467	  If you don't know what to do here, say N.
468
469config X86_X2APIC
470	bool "Support x2apic"
471	depends on X86_LOCAL_APIC && X86_64 && (IRQ_REMAP || HYPERVISOR_GUEST)
472	help
473	  This enables x2apic support on CPUs that have this feature.
474
475	  This allows 32-bit apic IDs (so it can support very large systems),
476	  and accesses the local apic via MSRs not via mmio.
477
478	  Some Intel systems circa 2022 and later are locked into x2APIC mode
479	  and can not fall back to the legacy APIC modes if SGX or TDX are
480	  enabled in the BIOS. They will boot with very reduced functionality
481	  without enabling this option.
482
483	  If you don't know what to do here, say N.
484
485config X86_POSTED_MSI
486	bool "Enable MSI and MSI-x delivery by posted interrupts"
487	depends on X86_64 && IRQ_REMAP
488	help
489	  This enables MSIs that are under interrupt remapping to be delivered as
490	  posted interrupts to the host kernel. Interrupt throughput can
491	  potentially be improved by coalescing CPU notifications during high
492	  frequency bursts.
493
494	  If you don't know what to do here, say N.
495
496config X86_MPPARSE
497	bool "Enable MPS table" if ACPI
498	default y
499	depends on X86_LOCAL_APIC
500	help
501	  For old smp systems that do not have proper acpi support. Newer systems
502	  (esp with 64bit cpus) with acpi support, MADT and DSDT will override it
503
504config X86_CPU_RESCTRL
505	bool "x86 CPU resource control support"
506	depends on X86 && (CPU_SUP_INTEL || CPU_SUP_AMD)
507	select KERNFS
508	select PROC_CPU_RESCTRL		if PROC_FS
509	help
510	  Enable x86 CPU resource control support.
511
512	  Provide support for the allocation and monitoring of system resources
513	  usage by the CPU.
514
515	  Intel calls this Intel Resource Director Technology
516	  (Intel(R) RDT). More information about RDT can be found in the
517	  Intel x86 Architecture Software Developer Manual.
518
519	  AMD calls this AMD Platform Quality of Service (AMD QoS).
520	  More information about AMD QoS can be found in the AMD64 Technology
521	  Platform Quality of Service Extensions manual.
522
523	  Say N if unsure.
524
525config X86_FRED
526	bool "Flexible Return and Event Delivery"
527	depends on X86_64
528	help
529	  When enabled, try to use Flexible Return and Event Delivery
530	  instead of the legacy SYSCALL/SYSENTER/IDT architecture for
531	  ring transitions and exception/interrupt handling if the
532	  system supports it.
533
534config X86_EXTENDED_PLATFORM
535	bool "Support for extended (non-PC) x86 platforms"
536	default y
537	help
538	  If you disable this option then the kernel will only support
539	  standard PC platforms. (which covers the vast majority of
540	  systems out there.)
541
542	  If you enable this option then you'll be able to select support
543	  for the following non-PC x86 platforms, depending on the value of
544	  CONFIG_64BIT.
545
546	  32-bit platforms (CONFIG_64BIT=n):
547		Goldfish (Android emulator)
548		AMD Elan
549		RDC R-321x SoC
550		SGI 320/540 (Visual Workstation)
551
552	  64-bit platforms (CONFIG_64BIT=y):
553		Numascale NumaChip
554		ScaleMP vSMP
555		SGI Ultraviolet
556		Merrifield/Moorefield MID devices
557
558	  If you have one of these systems, or if you want to build a
559	  generic distribution kernel, say Y here - otherwise say N.
560
561# This is an alphabetically sorted list of 64 bit extended platforms
562# Please maintain the alphabetic order if and when there are additions
563config X86_NUMACHIP
564	bool "Numascale NumaChip"
565	depends on X86_64
566	depends on X86_EXTENDED_PLATFORM
567	depends on NUMA
568	depends on SMP
569	depends on X86_X2APIC
570	depends on PCI_MMCONFIG
571	help
572	  Adds support for Numascale NumaChip large-SMP systems. Needed to
573	  enable more than ~168 cores.
574	  If you don't have one of these, you should say N here.
575
576config X86_VSMP
577	bool "ScaleMP vSMP"
578	select HYPERVISOR_GUEST
579	select PARAVIRT
580	depends on X86_64 && PCI
581	depends on X86_EXTENDED_PLATFORM
582	depends on SMP
583	help
584	  Support for ScaleMP vSMP systems.  Say 'Y' here if this kernel is
585	  supposed to run on these EM64T-based machines.  Only choose this option
586	  if you have one of these machines.
587
588config X86_UV
589	bool "SGI Ultraviolet"
590	depends on X86_64
591	depends on X86_EXTENDED_PLATFORM
592	depends on NUMA
593	depends on EFI
594	depends on KEXEC_CORE
595	depends on X86_X2APIC
596	depends on PCI
597	help
598	  This option is needed in order to support SGI Ultraviolet systems.
599	  If you don't have one of these, you should say N here.
600
601config X86_INTEL_MID
602	bool "Intel Z34xx/Z35xx MID platform support"
603	depends on X86_EXTENDED_PLATFORM
604	depends on X86_PLATFORM_DEVICES
605	depends on PCI
606	depends on X86_64 || (EXPERT && PCI_GOANY)
607	depends on X86_IO_APIC
608	select I2C
609	select DW_APB_TIMER
610	select INTEL_SCU_PCI
611	help
612	  Select to build a kernel capable of supporting 64-bit Intel MID
613	  (Mobile Internet Device) platform systems which do not have
614	  the PCI legacy interfaces.
615
616	  The only supported devices are the 22nm Merrified (Z34xx)
617	  and Moorefield (Z35xx) SoC used in the Intel Edison board and
618	  a small number of Android devices such as the Asus Zenfone 2,
619	  Asus FonePad 8 and Dell Venue 7.
620
621	  If you are building for a PC class system or non-MID tablet
622	  SoCs like Bay Trail (Z36xx/Z37xx), say N here.
623
624	  Intel MID platforms are based on an Intel processor and chipset which
625	  consume less power than most of the x86 derivatives.
626
627config X86_GOLDFISH
628	bool "Goldfish (Virtual Platform)"
629	depends on X86_EXTENDED_PLATFORM
630	help
631	  Enable support for the Goldfish virtual platform used primarily
632	  for Android development. Unless you are building for the Android
633	  Goldfish emulator say N here.
634
635# Following is an alphabetically sorted list of 32 bit extended platforms
636# Please maintain the alphabetic order if and when there are additions
637
638config X86_INTEL_CE
639	bool "CE4100 TV platform"
640	depends on PCI
641	depends on PCI_GODIRECT
642	depends on X86_IO_APIC
643	depends on X86_32
644	depends on X86_EXTENDED_PLATFORM
645	select X86_REBOOTFIXUPS
646	select OF
647	select OF_EARLY_FLATTREE
648	help
649	  Select for the Intel CE media processor (CE4100) SOC.
650	  This option compiles in support for the CE4100 SOC for settop
651	  boxes and media devices.
652
653config X86_INTEL_QUARK
654	bool "Intel Quark platform support"
655	depends on X86_32
656	depends on X86_EXTENDED_PLATFORM
657	depends on X86_PLATFORM_DEVICES
658	depends on X86_TSC
659	depends on PCI
660	depends on PCI_GOANY
661	depends on X86_IO_APIC
662	select IOSF_MBI
663	select INTEL_IMR
664	select COMMON_CLK
665	help
666	  Select to include support for Quark X1000 SoC.
667	  Say Y here if you have a Quark based system such as the Arduino
668	  compatible Intel Galileo.
669
670config X86_INTEL_LPSS
671	bool "Intel Low Power Subsystem Support"
672	depends on X86 && ACPI && PCI
673	select COMMON_CLK
674	select PINCTRL
675	select IOSF_MBI
676	help
677	  Select to build support for Intel Low Power Subsystem such as
678	  found on Intel Lynxpoint PCH. Selecting this option enables
679	  things like clock tree (common clock framework) and pincontrol
680	  which are needed by the LPSS peripheral drivers.
681
682config X86_AMD_PLATFORM_DEVICE
683	bool "AMD ACPI2Platform devices support"
684	depends on ACPI
685	select COMMON_CLK
686	select PINCTRL
687	help
688	  Select to interpret AMD specific ACPI device to platform device
689	  such as I2C, UART, GPIO found on AMD Carrizo and later chipsets.
690	  I2C and UART depend on COMMON_CLK to set clock. GPIO driver is
691	  implemented under PINCTRL subsystem.
692
693config IOSF_MBI
694	tristate "Intel SoC IOSF Sideband support for SoC platforms"
695	depends on PCI
696	help
697	  This option enables sideband register access support for Intel SoC
698	  platforms. On these platforms the IOSF sideband is used in lieu of
699	  MSR's for some register accesses, mostly but not limited to thermal
700	  and power. Drivers may query the availability of this device to
701	  determine if they need the sideband in order to work on these
702	  platforms. The sideband is available on the following SoC products.
703	  This list is not meant to be exclusive.
704	   - BayTrail
705	   - Braswell
706	   - Quark
707
708	  You should say Y if you are running a kernel on one of these SoC's.
709
710config IOSF_MBI_DEBUG
711	bool "Enable IOSF sideband access through debugfs"
712	depends on IOSF_MBI && DEBUG_FS
713	help
714	  Select this option to expose the IOSF sideband access registers (MCR,
715	  MDR, MCRX) through debugfs to write and read register information from
716	  different units on the SoC. This is most useful for obtaining device
717	  state information for debug and analysis. As this is a general access
718	  mechanism, users of this option would have specific knowledge of the
719	  device they want to access.
720
721	  If you don't require the option or are in doubt, say N.
722
723config X86_RDC321X
724	bool "RDC R-321x SoC"
725	depends on X86_32
726	depends on X86_EXTENDED_PLATFORM
727	select M486
728	select X86_REBOOTFIXUPS
729	help
730	  This option is needed for RDC R-321x system-on-chip, also known
731	  as R-8610-(G).
732	  If you don't have one of these chips, you should say N here.
733
734config X86_SUPPORTS_MEMORY_FAILURE
735	def_bool y
736	# MCE code calls memory_failure():
737	depends on X86_MCE
738	# On 32-bit this adds too big of NODES_SHIFT and we run out of page flags:
739	# On 32-bit SPARSEMEM adds too big of SECTIONS_WIDTH:
740	depends on X86_64 || !SPARSEMEM
741	select ARCH_SUPPORTS_MEMORY_FAILURE
742
743config X86_32_IRIS
744	tristate "Eurobraille/Iris poweroff module"
745	depends on X86_32
746	help
747	  The Iris machines from EuroBraille do not have APM or ACPI support
748	  to shut themselves down properly.  A special I/O sequence is
749	  needed to do so, which is what this module does at
750	  kernel shutdown.
751
752	  This is only for Iris machines from EuroBraille.
753
754	  If unused, say N.
755
756config SCHED_OMIT_FRAME_POINTER
757	def_bool y
758	prompt "Single-depth WCHAN output"
759	depends on X86
760	help
761	  Calculate simpler /proc/<PID>/wchan values. If this option
762	  is disabled then wchan values will recurse back to the
763	  caller function. This provides more accurate wchan values,
764	  at the expense of slightly more scheduling overhead.
765
766	  If in doubt, say "Y".
767
768menuconfig HYPERVISOR_GUEST
769	bool "Linux guest support"
770	help
771	  Say Y here to enable options for running Linux under various hyper-
772	  visors. This option enables basic hypervisor detection and platform
773	  setup.
774
775	  If you say N, all options in this submenu will be skipped and
776	  disabled, and Linux guest support won't be built in.
777
778if HYPERVISOR_GUEST
779
780config PARAVIRT
781	bool "Enable paravirtualization code"
782	depends on HAVE_STATIC_CALL
783	help
784	  This changes the kernel so it can modify itself when it is run
785	  under a hypervisor, potentially improving performance significantly
786	  over full virtualization.  However, when run without a hypervisor
787	  the kernel is theoretically slower and slightly larger.
788
789config PARAVIRT_XXL
790	bool
791
792config PARAVIRT_DEBUG
793	bool "paravirt-ops debugging"
794	depends on PARAVIRT && DEBUG_KERNEL
795	help
796	  Enable to debug paravirt_ops internals.  Specifically, BUG if
797	  a paravirt_op is missing when it is called.
798
799config PARAVIRT_SPINLOCKS
800	bool "Paravirtualization layer for spinlocks"
801	depends on PARAVIRT && SMP
802	help
803	  Paravirtualized spinlocks allow a pvops backend to replace the
804	  spinlock implementation with something virtualization-friendly
805	  (for example, block the virtual CPU rather than spinning).
806
807	  It has a minimal impact on native kernels and gives a nice performance
808	  benefit on paravirtualized KVM / Xen kernels.
809
810	  If you are unsure how to answer this question, answer Y.
811
812config X86_HV_CALLBACK_VECTOR
813	def_bool n
814
815source "arch/x86/xen/Kconfig"
816
817config KVM_GUEST
818	bool "KVM Guest support (including kvmclock)"
819	depends on PARAVIRT
820	select PARAVIRT_CLOCK
821	select ARCH_CPUIDLE_HALTPOLL
822	select X86_HV_CALLBACK_VECTOR
823	default y
824	help
825	  This option enables various optimizations for running under the KVM
826	  hypervisor. It includes a paravirtualized clock, so that instead
827	  of relying on a PIT (or probably other) emulation by the
828	  underlying device model, the host provides the guest with
829	  timing infrastructure such as time of day, and system time
830
831config ARCH_CPUIDLE_HALTPOLL
832	def_bool n
833	prompt "Disable host haltpoll when loading haltpoll driver"
834	help
835	  If virtualized under KVM, disable host haltpoll.
836
837config PVH
838	bool "Support for running PVH guests"
839	help
840	  This option enables the PVH entry point for guest virtual machines
841	  as specified in the x86/HVM direct boot ABI.
842
843config PARAVIRT_TIME_ACCOUNTING
844	bool "Paravirtual steal time accounting"
845	depends on PARAVIRT
846	help
847	  Select this option to enable fine granularity task steal time
848	  accounting. Time spent executing other tasks in parallel with
849	  the current vCPU is discounted from the vCPU power. To account for
850	  that, there can be a small performance impact.
851
852	  If in doubt, say N here.
853
854config PARAVIRT_CLOCK
855	bool
856
857config JAILHOUSE_GUEST
858	bool "Jailhouse non-root cell support"
859	depends on X86_64 && PCI
860	select X86_PM_TIMER
861	help
862	  This option allows to run Linux as guest in a Jailhouse non-root
863	  cell. You can leave this option disabled if you only want to start
864	  Jailhouse and run Linux afterwards in the root cell.
865
866config ACRN_GUEST
867	bool "ACRN Guest support"
868	depends on X86_64
869	select X86_HV_CALLBACK_VECTOR
870	help
871	  This option allows to run Linux as guest in the ACRN hypervisor. ACRN is
872	  a flexible, lightweight reference open-source hypervisor, built with
873	  real-time and safety-criticality in mind. It is built for embedded
874	  IOT with small footprint and real-time features. More details can be
875	  found in https://projectacrn.org/.
876
877config INTEL_TDX_GUEST
878	bool "Intel TDX (Trust Domain Extensions) - Guest Support"
879	depends on X86_64 && CPU_SUP_INTEL
880	depends on X86_X2APIC
881	depends on EFI_STUB
882	select ARCH_HAS_CC_PLATFORM
883	select X86_MEM_ENCRYPT
884	select X86_MCE
885	select UNACCEPTED_MEMORY
886	help
887	  Support running as a guest under Intel TDX.  Without this support,
888	  the guest kernel can not boot or run under TDX.
889	  TDX includes memory encryption and integrity capabilities
890	  which protect the confidentiality and integrity of guest
891	  memory contents and CPU state. TDX guests are protected from
892	  some attacks from the VMM.
893
894endif # HYPERVISOR_GUEST
895
896source "arch/x86/Kconfig.cpu"
897
898config HPET_TIMER
899	def_bool X86_64
900	prompt "HPET Timer Support" if X86_32
901	help
902	  Use the IA-PC HPET (High Precision Event Timer) to manage
903	  time in preference to the PIT and RTC, if a HPET is
904	  present.
905	  HPET is the next generation timer replacing legacy 8254s.
906	  The HPET provides a stable time base on SMP
907	  systems, unlike the TSC, but it is more expensive to access,
908	  as it is off-chip.  The interface used is documented
909	  in the HPET spec, revision 1.
910
911	  You can safely choose Y here.  However, HPET will only be
912	  activated if the platform and the BIOS support this feature.
913	  Otherwise the 8254 will be used for timing services.
914
915	  Choose N to continue using the legacy 8254 timer.
916
917config HPET_EMULATE_RTC
918	def_bool y
919	depends on HPET_TIMER && (RTC_DRV_CMOS=m || RTC_DRV_CMOS=y)
920
921# Mark as expert because too many people got it wrong.
922# The code disables itself when not needed.
923config DMI
924	default y
925	select DMI_SCAN_MACHINE_NON_EFI_FALLBACK
926	bool "Enable DMI scanning" if EXPERT
927	help
928	  Enabled scanning of DMI to identify machine quirks. Say Y
929	  here unless you have verified that your setup is not
930	  affected by entries in the DMI blacklist. Required by PNP
931	  BIOS code.
932
933config GART_IOMMU
934	bool "Old AMD GART IOMMU support"
935	select IOMMU_HELPER
936	select SWIOTLB
937	depends on X86_64 && PCI && AMD_NB
938	help
939	  Provides a driver for older AMD Athlon64/Opteron/Turion/Sempron
940	  GART based hardware IOMMUs.
941
942	  The GART supports full DMA access for devices with 32-bit access
943	  limitations, on systems with more than 3 GB. This is usually needed
944	  for USB, sound, many IDE/SATA chipsets and some other devices.
945
946	  Newer systems typically have a modern AMD IOMMU, supported via
947	  the CONFIG_AMD_IOMMU=y config option.
948
949	  In normal configurations this driver is only active when needed:
950	  there's more than 3 GB of memory and the system contains a
951	  32-bit limited device.
952
953	  If unsure, say Y.
954
955config BOOT_VESA_SUPPORT
956	bool
957	help
958	  If true, at least one selected framebuffer driver can take advantage
959	  of VESA video modes set at an early boot stage via the vga= parameter.
960
961config MAXSMP
962	bool "Enable Maximum number of SMP Processors and NUMA Nodes"
963	depends on X86_64 && SMP && DEBUG_KERNEL
964	select CPUMASK_OFFSTACK
965	help
966	  Enable maximum number of CPUS and NUMA Nodes for this architecture.
967	  If unsure, say N.
968
969#
970# The maximum number of CPUs supported:
971#
972# The main config value is NR_CPUS, which defaults to NR_CPUS_DEFAULT,
973# and which can be configured interactively in the
974# [NR_CPUS_RANGE_BEGIN ... NR_CPUS_RANGE_END] range.
975#
976# The ranges are different on 32-bit and 64-bit kernels, depending on
977# hardware capabilities and scalability features of the kernel.
978#
979# ( If MAXSMP is enabled we just use the highest possible value and disable
980#   interactive configuration. )
981#
982
983config NR_CPUS_RANGE_BEGIN
984	int
985	default NR_CPUS_RANGE_END if MAXSMP
986	default    1 if !SMP
987	default    2
988
989config NR_CPUS_RANGE_END
990	int
991	depends on X86_32
992	default    8 if  SMP
993	default    1 if !SMP
994
995config NR_CPUS_RANGE_END
996	int
997	depends on X86_64
998	default 8192 if  SMP && CPUMASK_OFFSTACK
999	default  512 if  SMP && !CPUMASK_OFFSTACK
1000	default    1 if !SMP
1001
1002config NR_CPUS_DEFAULT
1003	int
1004	depends on X86_32
1005	default    8 if  SMP
1006	default    1 if !SMP
1007
1008config NR_CPUS_DEFAULT
1009	int
1010	depends on X86_64
1011	default 8192 if  MAXSMP
1012	default   64 if  SMP
1013	default    1 if !SMP
1014
1015config NR_CPUS
1016	int "Maximum number of CPUs" if SMP && !MAXSMP
1017	range NR_CPUS_RANGE_BEGIN NR_CPUS_RANGE_END
1018	default NR_CPUS_DEFAULT
1019	help
1020	  This allows you to specify the maximum number of CPUs which this
1021	  kernel will support.  If CPUMASK_OFFSTACK is enabled, the maximum
1022	  supported value is 8192, otherwise the maximum value is 512.  The
1023	  minimum value which makes sense is 2.
1024
1025	  This is purely to save memory: each supported CPU adds about 8KB
1026	  to the kernel image.
1027
1028config SCHED_CLUSTER
1029	bool "Cluster scheduler support"
1030	depends on SMP
1031	default y
1032	help
1033	  Cluster scheduler support improves the CPU scheduler's decision
1034	  making when dealing with machines that have clusters of CPUs.
1035	  Cluster usually means a couple of CPUs which are placed closely
1036	  by sharing mid-level caches, last-level cache tags or internal
1037	  busses.
1038
1039config SCHED_SMT
1040	def_bool y if SMP
1041
1042config SCHED_MC
1043	def_bool y
1044	prompt "Multi-core scheduler support"
1045	depends on SMP
1046	help
1047	  Multi-core scheduler support improves the CPU scheduler's decision
1048	  making when dealing with multi-core CPU chips at a cost of slightly
1049	  increased overhead in some places. If unsure say N here.
1050
1051config SCHED_MC_PRIO
1052	bool "CPU core priorities scheduler support"
1053	depends on SCHED_MC
1054	select X86_INTEL_PSTATE if CPU_SUP_INTEL
1055	select X86_AMD_PSTATE if CPU_SUP_AMD && ACPI
1056	select CPU_FREQ
1057	default y
1058	help
1059	  Intel Turbo Boost Max Technology 3.0 enabled CPUs have a
1060	  core ordering determined at manufacturing time, which allows
1061	  certain cores to reach higher turbo frequencies (when running
1062	  single threaded workloads) than others.
1063
1064	  Enabling this kernel feature teaches the scheduler about
1065	  the TBM3 (aka ITMT) priority order of the CPU cores and adjusts the
1066	  scheduler's CPU selection logic accordingly, so that higher
1067	  overall system performance can be achieved.
1068
1069	  This feature will have no effect on CPUs without this feature.
1070
1071	  If unsure say Y here.
1072
1073config UP_LATE_INIT
1074	def_bool y
1075	depends on !SMP && X86_LOCAL_APIC
1076
1077config X86_UP_APIC
1078	bool "Local APIC support on uniprocessors" if !PCI_MSI
1079	default PCI_MSI
1080	depends on X86_32 && !SMP
1081	help
1082	  A local APIC (Advanced Programmable Interrupt Controller) is an
1083	  integrated interrupt controller in the CPU. If you have a single-CPU
1084	  system which has a processor with a local APIC, you can say Y here to
1085	  enable and use it. If you say Y here even though your machine doesn't
1086	  have a local APIC, then the kernel will still run with no slowdown at
1087	  all. The local APIC supports CPU-generated self-interrupts (timer,
1088	  performance counters), and the NMI watchdog which detects hard
1089	  lockups.
1090
1091config X86_UP_IOAPIC
1092	bool "IO-APIC support on uniprocessors"
1093	depends on X86_UP_APIC
1094	help
1095	  An IO-APIC (I/O Advanced Programmable Interrupt Controller) is an
1096	  SMP-capable replacement for PC-style interrupt controllers. Most
1097	  SMP systems and many recent uniprocessor systems have one.
1098
1099	  If you have a single-CPU system with an IO-APIC, you can say Y here
1100	  to use it. If you say Y here even though your machine doesn't have
1101	  an IO-APIC, then the kernel will still run with no slowdown at all.
1102
1103config X86_LOCAL_APIC
1104	def_bool y
1105	depends on X86_64 || SMP || X86_UP_APIC || PCI_MSI
1106	select IRQ_DOMAIN_HIERARCHY
1107
1108config ACPI_MADT_WAKEUP
1109	def_bool y
1110	depends on X86_64
1111	depends on ACPI
1112	depends on SMP
1113	depends on X86_LOCAL_APIC
1114
1115config X86_IO_APIC
1116	def_bool y
1117	depends on X86_LOCAL_APIC || X86_UP_IOAPIC
1118
1119config X86_REROUTE_FOR_BROKEN_BOOT_IRQS
1120	bool "Reroute for broken boot IRQs"
1121	depends on X86_IO_APIC
1122	help
1123	  This option enables a workaround that fixes a source of
1124	  spurious interrupts. This is recommended when threaded
1125	  interrupt handling is used on systems where the generation of
1126	  superfluous "boot interrupts" cannot be disabled.
1127
1128	  Some chipsets generate a legacy INTx "boot IRQ" when the IRQ
1129	  entry in the chipset's IO-APIC is masked (as, e.g. the RT
1130	  kernel does during interrupt handling). On chipsets where this
1131	  boot IRQ generation cannot be disabled, this workaround keeps
1132	  the original IRQ line masked so that only the equivalent "boot
1133	  IRQ" is delivered to the CPUs. The workaround also tells the
1134	  kernel to set up the IRQ handler on the boot IRQ line. In this
1135	  way only one interrupt is delivered to the kernel. Otherwise
1136	  the spurious second interrupt may cause the kernel to bring
1137	  down (vital) interrupt lines.
1138
1139	  Only affects "broken" chipsets. Interrupt sharing may be
1140	  increased on these systems.
1141
1142config X86_MCE
1143	bool "Machine Check / overheating reporting"
1144	select GENERIC_ALLOCATOR
1145	default y
1146	help
1147	  Machine Check support allows the processor to notify the
1148	  kernel if it detects a problem (e.g. overheating, data corruption).
1149	  The action the kernel takes depends on the severity of the problem,
1150	  ranging from warning messages to halting the machine.
1151
1152config X86_MCELOG_LEGACY
1153	bool "Support for deprecated /dev/mcelog character device"
1154	depends on X86_MCE
1155	help
1156	  Enable support for /dev/mcelog which is needed by the old mcelog
1157	  userspace logging daemon. Consider switching to the new generation
1158	  rasdaemon solution.
1159
1160config X86_MCE_INTEL
1161	def_bool y
1162	prompt "Intel MCE features"
1163	depends on X86_MCE && X86_LOCAL_APIC
1164	help
1165	  Additional support for intel specific MCE features such as
1166	  the thermal monitor.
1167
1168config X86_MCE_AMD
1169	def_bool y
1170	prompt "AMD MCE features"
1171	depends on X86_MCE && X86_LOCAL_APIC
1172	help
1173	  Additional support for AMD specific MCE features such as
1174	  the DRAM Error Threshold.
1175
1176config X86_ANCIENT_MCE
1177	bool "Support for old Pentium 5 / WinChip machine checks"
1178	depends on X86_32 && X86_MCE
1179	help
1180	  Include support for machine check handling on old Pentium 5 or WinChip
1181	  systems. These typically need to be enabled explicitly on the command
1182	  line.
1183
1184config X86_MCE_THRESHOLD
1185	depends on X86_MCE_AMD || X86_MCE_INTEL
1186	def_bool y
1187
1188config X86_MCE_INJECT
1189	depends on X86_MCE && X86_LOCAL_APIC && DEBUG_FS
1190	tristate "Machine check injector support"
1191	help
1192	  Provide support for injecting machine checks for testing purposes.
1193	  If you don't know what a machine check is and you don't do kernel
1194	  QA it is safe to say n.
1195
1196source "arch/x86/events/Kconfig"
1197
1198config X86_LEGACY_VM86
1199	bool "Legacy VM86 support"
1200	depends on X86_32
1201	help
1202	  This option allows user programs to put the CPU into V8086
1203	  mode, which is an 80286-era approximation of 16-bit real mode.
1204
1205	  Some very old versions of X and/or vbetool require this option
1206	  for user mode setting.  Similarly, DOSEMU will use it if
1207	  available to accelerate real mode DOS programs.  However, any
1208	  recent version of DOSEMU, X, or vbetool should be fully
1209	  functional even without kernel VM86 support, as they will all
1210	  fall back to software emulation. Nevertheless, if you are using
1211	  a 16-bit DOS program where 16-bit performance matters, vm86
1212	  mode might be faster than emulation and you might want to
1213	  enable this option.
1214
1215	  Note that any app that works on a 64-bit kernel is unlikely to
1216	  need this option, as 64-bit kernels don't, and can't, support
1217	  V8086 mode. This option is also unrelated to 16-bit protected
1218	  mode and is not needed to run most 16-bit programs under Wine.
1219
1220	  Enabling this option increases the complexity of the kernel
1221	  and slows down exception handling a tiny bit.
1222
1223	  If unsure, say N here.
1224
1225config VM86
1226	bool
1227	default X86_LEGACY_VM86
1228
1229config X86_16BIT
1230	bool "Enable support for 16-bit segments" if EXPERT
1231	default y
1232	depends on MODIFY_LDT_SYSCALL
1233	help
1234	  This option is required by programs like Wine to run 16-bit
1235	  protected mode legacy code on x86 processors.  Disabling
1236	  this option saves about 300 bytes on i386, or around 6K text
1237	  plus 16K runtime memory on x86-64,
1238
1239config X86_ESPFIX32
1240	def_bool y
1241	depends on X86_16BIT && X86_32
1242
1243config X86_ESPFIX64
1244	def_bool y
1245	depends on X86_16BIT && X86_64
1246
1247config X86_VSYSCALL_EMULATION
1248	bool "Enable vsyscall emulation" if EXPERT
1249	default y
1250	depends on X86_64
1251	help
1252	  This enables emulation of the legacy vsyscall page.  Disabling
1253	  it is roughly equivalent to booting with vsyscall=none, except
1254	  that it will also disable the helpful warning if a program
1255	  tries to use a vsyscall.  With this option set to N, offending
1256	  programs will just segfault, citing addresses of the form
1257	  0xffffffffff600?00.
1258
1259	  This option is required by many programs built before 2013, and
1260	  care should be used even with newer programs if set to N.
1261
1262	  Disabling this option saves about 7K of kernel size and
1263	  possibly 4K of additional runtime pagetable memory.
1264
1265config X86_IOPL_IOPERM
1266	bool "IOPERM and IOPL Emulation"
1267	default y
1268	help
1269	  This enables the ioperm() and iopl() syscalls which are necessary
1270	  for legacy applications.
1271
1272	  Legacy IOPL support is an overbroad mechanism which allows user
1273	  space aside of accessing all 65536 I/O ports also to disable
1274	  interrupts. To gain this access the caller needs CAP_SYS_RAWIO
1275	  capabilities and permission from potentially active security
1276	  modules.
1277
1278	  The emulation restricts the functionality of the syscall to
1279	  only allowing the full range I/O port access, but prevents the
1280	  ability to disable interrupts from user space which would be
1281	  granted if the hardware IOPL mechanism would be used.
1282
1283config TOSHIBA
1284	tristate "Toshiba Laptop support"
1285	depends on X86_32
1286	help
1287	  This adds a driver to safely access the System Management Mode of
1288	  the CPU on Toshiba portables with a genuine Toshiba BIOS. It does
1289	  not work on models with a Phoenix BIOS. The System Management Mode
1290	  is used to set the BIOS and power saving options on Toshiba portables.
1291
1292	  For information on utilities to make use of this driver see the
1293	  Toshiba Linux utilities web site at:
1294	  <http://www.buzzard.org.uk/toshiba/>.
1295
1296	  Say Y if you intend to run this kernel on a Toshiba portable.
1297	  Say N otherwise.
1298
1299config X86_REBOOTFIXUPS
1300	bool "Enable X86 board specific fixups for reboot"
1301	depends on X86_32
1302	help
1303	  This enables chipset and/or board specific fixups to be done
1304	  in order to get reboot to work correctly. This is only needed on
1305	  some combinations of hardware and BIOS. The symptom, for which
1306	  this config is intended, is when reboot ends with a stalled/hung
1307	  system.
1308
1309	  Currently, the only fixup is for the Geode machines using
1310	  CS5530A and CS5536 chipsets and the RDC R-321x SoC.
1311
1312	  Say Y if you want to enable the fixup. Currently, it's safe to
1313	  enable this option even if you don't need it.
1314	  Say N otherwise.
1315
1316config MICROCODE
1317	def_bool y
1318	depends on CPU_SUP_AMD || CPU_SUP_INTEL
1319
1320config MICROCODE_INITRD32
1321	def_bool y
1322	depends on MICROCODE && X86_32 && BLK_DEV_INITRD
1323
1324config MICROCODE_LATE_LOADING
1325	bool "Late microcode loading (DANGEROUS)"
1326	default n
1327	depends on MICROCODE && SMP
1328	help
1329	  Loading microcode late, when the system is up and executing instructions
1330	  is a tricky business and should be avoided if possible. Just the sequence
1331	  of synchronizing all cores and SMT threads is one fragile dance which does
1332	  not guarantee that cores might not softlock after the loading. Therefore,
1333	  use this at your own risk. Late loading taints the kernel unless the
1334	  microcode header indicates that it is safe for late loading via the
1335	  minimal revision check. This minimal revision check can be enforced on
1336	  the kernel command line with "microcode.minrev=Y".
1337
1338config MICROCODE_LATE_FORCE_MINREV
1339	bool "Enforce late microcode loading minimal revision check"
1340	default n
1341	depends on MICROCODE_LATE_LOADING
1342	help
1343	  To prevent that users load microcode late which modifies already
1344	  in use features, newer microcode patches have a minimum revision field
1345	  in the microcode header, which tells the kernel which minimum
1346	  revision must be active in the CPU to safely load that new microcode
1347	  late into the running system. If disabled the check will not
1348	  be enforced but the kernel will be tainted when the minimal
1349	  revision check fails.
1350
1351	  This minimal revision check can also be controlled via the
1352	  "microcode.minrev" parameter on the kernel command line.
1353
1354	  If unsure say Y.
1355
1356config X86_MSR
1357	tristate "/dev/cpu/*/msr - Model-specific register support"
1358	help
1359	  This device gives privileged processes access to the x86
1360	  Model-Specific Registers (MSRs).  It is a character device with
1361	  major 202 and minors 0 to 31 for /dev/cpu/0/msr to /dev/cpu/31/msr.
1362	  MSR accesses are directed to a specific CPU on multi-processor
1363	  systems.
1364
1365config X86_CPUID
1366	tristate "/dev/cpu/*/cpuid - CPU information support"
1367	help
1368	  This device gives processes access to the x86 CPUID instruction to
1369	  be executed on a specific processor.  It is a character device
1370	  with major 203 and minors 0 to 31 for /dev/cpu/0/cpuid to
1371	  /dev/cpu/31/cpuid.
1372
1373config HIGHMEM4G
1374	bool "High Memory Support"
1375	depends on X86_32
1376	help
1377	  Linux can use up to 4 Gigabytes of physical memory on x86 systems.
1378	  However, the address space of 32-bit x86 processors is only 4
1379	  Gigabytes large. That means that, if you have a large amount of
1380	  physical memory, not all of it can be "permanently mapped" by the
1381	  kernel. The physical memory that's not permanently mapped is called
1382	  "high memory".
1383
1384	  If you are compiling a kernel which will never run on a machine with
1385	  more than 1 Gigabyte total physical RAM, answer "off" here (default
1386	  choice and suitable for most users). This will result in a "3GB/1GB"
1387	  split: 3GB are mapped so that each process sees a 3GB virtual memory
1388	  space and the remaining part of the 4GB virtual memory space is used
1389	  by the kernel to permanently map as much physical memory as
1390	  possible.
1391
1392	  If the machine has between 1 and 4 Gigabytes physical RAM, then
1393	  answer "Y" here.
1394
1395	  If unsure, say N.
1396
1397choice
1398	prompt "Memory split" if EXPERT
1399	default VMSPLIT_3G
1400	depends on X86_32
1401	help
1402	  Select the desired split between kernel and user memory.
1403
1404	  If the address range available to the kernel is less than the
1405	  physical memory installed, the remaining memory will be available
1406	  as "high memory". Accessing high memory is a little more costly
1407	  than low memory, as it needs to be mapped into the kernel first.
1408	  Note that increasing the kernel address space limits the range
1409	  available to user programs, making the address space there
1410	  tighter.  Selecting anything other than the default 3G/1G split
1411	  will also likely make your kernel incompatible with binary-only
1412	  kernel modules.
1413
1414	  If you are not absolutely sure what you are doing, leave this
1415	  option alone!
1416
1417	config VMSPLIT_3G
1418		bool "3G/1G user/kernel split"
1419	config VMSPLIT_3G_OPT
1420		depends on !X86_PAE
1421		bool "3G/1G user/kernel split (for full 1G low memory)"
1422	config VMSPLIT_2G
1423		bool "2G/2G user/kernel split"
1424	config VMSPLIT_2G_OPT
1425		depends on !X86_PAE
1426		bool "2G/2G user/kernel split (for full 2G low memory)"
1427	config VMSPLIT_1G
1428		bool "1G/3G user/kernel split"
1429endchoice
1430
1431config PAGE_OFFSET
1432	hex
1433	default 0xB0000000 if VMSPLIT_3G_OPT
1434	default 0x80000000 if VMSPLIT_2G
1435	default 0x78000000 if VMSPLIT_2G_OPT
1436	default 0x40000000 if VMSPLIT_1G
1437	default 0xC0000000
1438	depends on X86_32
1439
1440config HIGHMEM
1441	def_bool HIGHMEM4G
1442
1443config X86_PAE
1444	bool "PAE (Physical Address Extension) Support"
1445	depends on X86_32 && X86_HAVE_PAE
1446	select PHYS_ADDR_T_64BIT
1447	help
1448	  PAE is required for NX support, and furthermore enables
1449	  larger swapspace support for non-overcommit purposes. It
1450	  has the cost of more pagetable lookup overhead, and also
1451	  consumes more pagetable space per process.
1452
1453config X86_5LEVEL
1454	bool "Enable 5-level page tables support"
1455	default y
1456	select DYNAMIC_MEMORY_LAYOUT
1457	select SPARSEMEM_VMEMMAP
1458	depends on X86_64
1459	help
1460	  5-level paging enables access to larger address space:
1461	  up to 128 PiB of virtual address space and 4 PiB of
1462	  physical address space.
1463
1464	  It will be supported by future Intel CPUs.
1465
1466	  A kernel with the option enabled can be booted on machines that
1467	  support 4- or 5-level paging.
1468
1469	  See Documentation/arch/x86/x86_64/5level-paging.rst for more
1470	  information.
1471
1472	  Say N if unsure.
1473
1474config X86_DIRECT_GBPAGES
1475	def_bool y
1476	depends on X86_64
1477	help
1478	  Certain kernel features effectively disable kernel
1479	  linear 1 GB mappings (even if the CPU otherwise
1480	  supports them), so don't confuse the user by printing
1481	  that we have them enabled.
1482
1483config X86_CPA_STATISTICS
1484	bool "Enable statistic for Change Page Attribute"
1485	depends on DEBUG_FS
1486	help
1487	  Expose statistics about the Change Page Attribute mechanism, which
1488	  helps to determine the effectiveness of preserving large and huge
1489	  page mappings when mapping protections are changed.
1490
1491config X86_MEM_ENCRYPT
1492	select ARCH_HAS_FORCE_DMA_UNENCRYPTED
1493	select DYNAMIC_PHYSICAL_MASK
1494	def_bool n
1495
1496config AMD_MEM_ENCRYPT
1497	bool "AMD Secure Memory Encryption (SME) support"
1498	depends on X86_64 && CPU_SUP_AMD
1499	depends on EFI_STUB
1500	select DMA_COHERENT_POOL
1501	select ARCH_USE_MEMREMAP_PROT
1502	select INSTRUCTION_DECODER
1503	select ARCH_HAS_CC_PLATFORM
1504	select X86_MEM_ENCRYPT
1505	select UNACCEPTED_MEMORY
1506	select CRYPTO_LIB_AESGCM
1507	help
1508	  Say yes to enable support for the encryption of system memory.
1509	  This requires an AMD processor that supports Secure Memory
1510	  Encryption (SME).
1511
1512# Common NUMA Features
1513config NUMA
1514	bool "NUMA Memory Allocation and Scheduler Support"
1515	depends on SMP
1516	depends on X86_64
1517	select USE_PERCPU_NUMA_NODE_ID
1518	select OF_NUMA if OF
1519	help
1520	  Enable NUMA (Non-Uniform Memory Access) support.
1521
1522	  The kernel will try to allocate memory used by a CPU on the
1523	  local memory controller of the CPU and add some more
1524	  NUMA awareness to the kernel.
1525
1526	  For 64-bit this is recommended if the system is Intel Core i7
1527	  (or later), AMD Opteron, or EM64T NUMA.
1528
1529	  Otherwise, you should say N.
1530
1531config AMD_NUMA
1532	def_bool y
1533	prompt "Old style AMD Opteron NUMA detection"
1534	depends on X86_64 && NUMA && PCI
1535	help
1536	  Enable AMD NUMA node topology detection.  You should say Y here if
1537	  you have a multi processor AMD system. This uses an old method to
1538	  read the NUMA configuration directly from the builtin Northbridge
1539	  of Opteron. It is recommended to use X86_64_ACPI_NUMA instead,
1540	  which also takes priority if both are compiled in.
1541
1542config X86_64_ACPI_NUMA
1543	def_bool y
1544	prompt "ACPI NUMA detection"
1545	depends on X86_64 && NUMA && ACPI && PCI
1546	select ACPI_NUMA
1547	help
1548	  Enable ACPI SRAT based node topology detection.
1549
1550config NODES_SHIFT
1551	int "Maximum NUMA Nodes (as a power of 2)" if !MAXSMP
1552	range 1 10
1553	default "10" if MAXSMP
1554	default "6" if X86_64
1555	default "3"
1556	depends on NUMA
1557	help
1558	  Specify the maximum number of NUMA Nodes available on the target
1559	  system.  Increases memory reserved to accommodate various tables.
1560
1561config ARCH_FLATMEM_ENABLE
1562	def_bool y
1563	depends on X86_32 && !NUMA
1564
1565config ARCH_SPARSEMEM_ENABLE
1566	def_bool y
1567	depends on X86_64 || NUMA || X86_32
1568	select SPARSEMEM_STATIC if X86_32
1569	select SPARSEMEM_VMEMMAP_ENABLE if X86_64
1570
1571config ARCH_SPARSEMEM_DEFAULT
1572	def_bool X86_64 || (NUMA && X86_32)
1573
1574config ARCH_SELECT_MEMORY_MODEL
1575	def_bool y
1576	depends on ARCH_SPARSEMEM_ENABLE && ARCH_FLATMEM_ENABLE
1577
1578config ARCH_MEMORY_PROBE
1579	bool "Enable sysfs memory/probe interface"
1580	depends on MEMORY_HOTPLUG
1581	help
1582	  This option enables a sysfs memory/probe interface for testing.
1583	  See Documentation/admin-guide/mm/memory-hotplug.rst for more information.
1584	  If you are unsure how to answer this question, answer N.
1585
1586config ARCH_PROC_KCORE_TEXT
1587	def_bool y
1588	depends on X86_64 && PROC_KCORE
1589
1590config ILLEGAL_POINTER_VALUE
1591	hex
1592	default 0 if X86_32
1593	default 0xdead000000000000 if X86_64
1594
1595config X86_PMEM_LEGACY_DEVICE
1596	bool
1597
1598config X86_PMEM_LEGACY
1599	tristate "Support non-standard NVDIMMs and ADR protected memory"
1600	depends on PHYS_ADDR_T_64BIT
1601	depends on BLK_DEV
1602	select X86_PMEM_LEGACY_DEVICE
1603	select NUMA_KEEP_MEMINFO if NUMA
1604	select LIBNVDIMM
1605	help
1606	  Treat memory marked using the non-standard e820 type of 12 as used
1607	  by the Intel Sandy Bridge-EP reference BIOS as protected memory.
1608	  The kernel will offer these regions to the 'pmem' driver so
1609	  they can be used for persistent storage.
1610
1611	  Say Y if unsure.
1612
1613config X86_CHECK_BIOS_CORRUPTION
1614	bool "Check for low memory corruption"
1615	help
1616	  Periodically check for memory corruption in low memory, which
1617	  is suspected to be caused by BIOS.  Even when enabled in the
1618	  configuration, it is disabled at runtime.  Enable it by
1619	  setting "memory_corruption_check=1" on the kernel command
1620	  line.  By default it scans the low 64k of memory every 60
1621	  seconds; see the memory_corruption_check_size and
1622	  memory_corruption_check_period parameters in
1623	  Documentation/admin-guide/kernel-parameters.rst to adjust this.
1624
1625	  When enabled with the default parameters, this option has
1626	  almost no overhead, as it reserves a relatively small amount
1627	  of memory and scans it infrequently.  It both detects corruption
1628	  and prevents it from affecting the running system.
1629
1630	  It is, however, intended as a diagnostic tool; if repeatable
1631	  BIOS-originated corruption always affects the same memory,
1632	  you can use memmap= to prevent the kernel from using that
1633	  memory.
1634
1635config X86_BOOTPARAM_MEMORY_CORRUPTION_CHECK
1636	bool "Set the default setting of memory_corruption_check"
1637	depends on X86_CHECK_BIOS_CORRUPTION
1638	default y
1639	help
1640	  Set whether the default state of memory_corruption_check is
1641	  on or off.
1642
1643config MATH_EMULATION
1644	bool
1645	depends on MODIFY_LDT_SYSCALL
1646	prompt "Math emulation" if X86_32 && (M486SX || MELAN)
1647	help
1648	  Linux can emulate a math coprocessor (used for floating point
1649	  operations) if you don't have one. 486DX and Pentium processors have
1650	  a math coprocessor built in, 486SX and 386 do not, unless you added
1651	  a 487DX or 387, respectively. (The messages during boot time can
1652	  give you some hints here ["man dmesg"].) Everyone needs either a
1653	  coprocessor or this emulation.
1654
1655	  If you don't have a math coprocessor, you need to say Y here; if you
1656	  say Y here even though you have a coprocessor, the coprocessor will
1657	  be used nevertheless. (This behavior can be changed with the kernel
1658	  command line option "no387", which comes handy if your coprocessor
1659	  is broken. Try "man bootparam" or see the documentation of your boot
1660	  loader (lilo or loadlin) about how to pass options to the kernel at
1661	  boot time.) This means that it is a good idea to say Y here if you
1662	  intend to use this kernel on different machines.
1663
1664	  More information about the internals of the Linux math coprocessor
1665	  emulation can be found in <file:arch/x86/math-emu/README>.
1666
1667	  If you are not sure, say Y; apart from resulting in a 66 KB bigger
1668	  kernel, it won't hurt.
1669
1670config MTRR
1671	def_bool y
1672	prompt "MTRR (Memory Type Range Register) support" if EXPERT
1673	help
1674	  On Intel P6 family processors (Pentium Pro, Pentium II and later)
1675	  the Memory Type Range Registers (MTRRs) may be used to control
1676	  processor access to memory ranges. This is most useful if you have
1677	  a video (VGA) card on a PCI or AGP bus. Enabling write-combining
1678	  allows bus write transfers to be combined into a larger transfer
1679	  before bursting over the PCI/AGP bus. This can increase performance
1680	  of image write operations 2.5 times or more. Saying Y here creates a
1681	  /proc/mtrr file which may be used to manipulate your processor's
1682	  MTRRs. Typically the X server should use this.
1683
1684	  This code has a reasonably generic interface so that similar
1685	  control registers on other processors can be easily supported
1686	  as well:
1687
1688	  The Cyrix 6x86, 6x86MX and M II processors have Address Range
1689	  Registers (ARRs) which provide a similar functionality to MTRRs. For
1690	  these, the ARRs are used to emulate the MTRRs.
1691	  The AMD K6-2 (stepping 8 and above) and K6-3 processors have two
1692	  MTRRs. The Centaur C6 (WinChip) has 8 MCRs, allowing
1693	  write-combining. All of these processors are supported by this code
1694	  and it makes sense to say Y here if you have one of them.
1695
1696	  Saying Y here also fixes a problem with buggy SMP BIOSes which only
1697	  set the MTRRs for the boot CPU and not for the secondary CPUs. This
1698	  can lead to all sorts of problems, so it's good to say Y here.
1699
1700	  You can safely say Y even if your machine doesn't have MTRRs, you'll
1701	  just add about 9 KB to your kernel.
1702
1703	  See <file:Documentation/arch/x86/mtrr.rst> for more information.
1704
1705config MTRR_SANITIZER
1706	def_bool y
1707	prompt "MTRR cleanup support"
1708	depends on MTRR
1709	help
1710	  Convert MTRR layout from continuous to discrete, so X drivers can
1711	  add writeback entries.
1712
1713	  Can be disabled with disable_mtrr_cleanup on the kernel command line.
1714	  The largest mtrr entry size for a continuous block can be set with
1715	  mtrr_chunk_size.
1716
1717	  If unsure, say Y.
1718
1719config MTRR_SANITIZER_ENABLE_DEFAULT
1720	int "MTRR cleanup enable value (0-1)"
1721	range 0 1
1722	default "0"
1723	depends on MTRR_SANITIZER
1724	help
1725	  Enable mtrr cleanup default value
1726
1727config MTRR_SANITIZER_SPARE_REG_NR_DEFAULT
1728	int "MTRR cleanup spare reg num (0-7)"
1729	range 0 7
1730	default "1"
1731	depends on MTRR_SANITIZER
1732	help
1733	  mtrr cleanup spare entries default, it can be changed via
1734	  mtrr_spare_reg_nr=N on the kernel command line.
1735
1736config X86_PAT
1737	def_bool y
1738	prompt "x86 PAT support" if EXPERT
1739	depends on MTRR
1740	select ARCH_USES_PG_ARCH_2
1741	help
1742	  Use PAT attributes to setup page level cache control.
1743
1744	  PATs are the modern equivalents of MTRRs and are much more
1745	  flexible than MTRRs.
1746
1747	  Say N here if you see bootup problems (boot crash, boot hang,
1748	  spontaneous reboots) or a non-working video driver.
1749
1750	  If unsure, say Y.
1751
1752config X86_UMIP
1753	def_bool y
1754	prompt "User Mode Instruction Prevention" if EXPERT
1755	help
1756	  User Mode Instruction Prevention (UMIP) is a security feature in
1757	  some x86 processors. If enabled, a general protection fault is
1758	  issued if the SGDT, SLDT, SIDT, SMSW or STR instructions are
1759	  executed in user mode. These instructions unnecessarily expose
1760	  information about the hardware state.
1761
1762	  The vast majority of applications do not use these instructions.
1763	  For the very few that do, software emulation is provided in
1764	  specific cases in protected and virtual-8086 modes. Emulated
1765	  results are dummy.
1766
1767config CC_HAS_IBT
1768	# GCC >= 9 and binutils >= 2.29
1769	# Retpoline check to work around https://gcc.gnu.org/bugzilla/show_bug.cgi?id=93654
1770	# Clang/LLVM >= 14
1771	# https://github.com/llvm/llvm-project/commit/e0b89df2e0f0130881bf6c39bf31d7f6aac00e0f
1772	# https://github.com/llvm/llvm-project/commit/dfcf69770bc522b9e411c66454934a37c1f35332
1773	def_bool ((CC_IS_GCC && $(cc-option, -fcf-protection=branch -mindirect-branch-register)) || \
1774		  (CC_IS_CLANG && CLANG_VERSION >= 140000)) && \
1775		  $(as-instr,endbr64)
1776
1777config X86_CET
1778	def_bool n
1779	help
1780	  CET features configured (Shadow stack or IBT)
1781
1782config X86_KERNEL_IBT
1783	prompt "Indirect Branch Tracking"
1784	def_bool y
1785	depends on X86_64 && CC_HAS_IBT && HAVE_OBJTOOL
1786	# https://github.com/llvm/llvm-project/commit/9d7001eba9c4cb311e03cd8cdc231f9e579f2d0f
1787	depends on !LD_IS_LLD || LLD_VERSION >= 140000
1788	select OBJTOOL
1789	select X86_CET
1790	help
1791	  Build the kernel with support for Indirect Branch Tracking, a
1792	  hardware support course-grain forward-edge Control Flow Integrity
1793	  protection. It enforces that all indirect calls must land on
1794	  an ENDBR instruction, as such, the compiler will instrument the
1795	  code with them to make this happen.
1796
1797	  In addition to building the kernel with IBT, seal all functions that
1798	  are not indirect call targets, avoiding them ever becoming one.
1799
1800	  This requires LTO like objtool runs and will slow down the build. It
1801	  does significantly reduce the number of ENDBR instructions in the
1802	  kernel image.
1803
1804config X86_INTEL_MEMORY_PROTECTION_KEYS
1805	prompt "Memory Protection Keys"
1806	def_bool y
1807	# Note: only available in 64-bit mode
1808	depends on X86_64 && (CPU_SUP_INTEL || CPU_SUP_AMD)
1809	select ARCH_USES_HIGH_VMA_FLAGS
1810	select ARCH_HAS_PKEYS
1811	help
1812	  Memory Protection Keys provides a mechanism for enforcing
1813	  page-based protections, but without requiring modification of the
1814	  page tables when an application changes protection domains.
1815
1816	  For details, see Documentation/core-api/protection-keys.rst
1817
1818	  If unsure, say y.
1819
1820config ARCH_PKEY_BITS
1821	int
1822	default 4
1823
1824choice
1825	prompt "TSX enable mode"
1826	depends on CPU_SUP_INTEL
1827	default X86_INTEL_TSX_MODE_OFF
1828	help
1829	  Intel's TSX (Transactional Synchronization Extensions) feature
1830	  allows to optimize locking protocols through lock elision which
1831	  can lead to a noticeable performance boost.
1832
1833	  On the other hand it has been shown that TSX can be exploited
1834	  to form side channel attacks (e.g. TAA) and chances are there
1835	  will be more of those attacks discovered in the future.
1836
1837	  Therefore TSX is not enabled by default (aka tsx=off). An admin
1838	  might override this decision by tsx=on the command line parameter.
1839	  Even with TSX enabled, the kernel will attempt to enable the best
1840	  possible TAA mitigation setting depending on the microcode available
1841	  for the particular machine.
1842
1843	  This option allows to set the default tsx mode between tsx=on, =off
1844	  and =auto. See Documentation/admin-guide/kernel-parameters.txt for more
1845	  details.
1846
1847	  Say off if not sure, auto if TSX is in use but it should be used on safe
1848	  platforms or on if TSX is in use and the security aspect of tsx is not
1849	  relevant.
1850
1851config X86_INTEL_TSX_MODE_OFF
1852	bool "off"
1853	help
1854	  TSX is disabled if possible - equals to tsx=off command line parameter.
1855
1856config X86_INTEL_TSX_MODE_ON
1857	bool "on"
1858	help
1859	  TSX is always enabled on TSX capable HW - equals the tsx=on command
1860	  line parameter.
1861
1862config X86_INTEL_TSX_MODE_AUTO
1863	bool "auto"
1864	help
1865	  TSX is enabled on TSX capable HW that is believed to be safe against
1866	  side channel attacks- equals the tsx=auto command line parameter.
1867endchoice
1868
1869config X86_SGX
1870	bool "Software Guard eXtensions (SGX)"
1871	depends on X86_64 && CPU_SUP_INTEL && X86_X2APIC
1872	depends on CRYPTO=y
1873	depends on CRYPTO_SHA256=y
1874	select MMU_NOTIFIER
1875	select NUMA_KEEP_MEMINFO if NUMA
1876	select XARRAY_MULTI
1877	help
1878	  Intel(R) Software Guard eXtensions (SGX) is a set of CPU instructions
1879	  that can be used by applications to set aside private regions of code
1880	  and data, referred to as enclaves. An enclave's private memory can
1881	  only be accessed by code running within the enclave. Accesses from
1882	  outside the enclave, including other enclaves, are disallowed by
1883	  hardware.
1884
1885	  If unsure, say N.
1886
1887config X86_USER_SHADOW_STACK
1888	bool "X86 userspace shadow stack"
1889	depends on AS_WRUSS
1890	depends on X86_64
1891	select ARCH_USES_HIGH_VMA_FLAGS
1892	select ARCH_HAS_USER_SHADOW_STACK
1893	select X86_CET
1894	help
1895	  Shadow stack protection is a hardware feature that detects function
1896	  return address corruption.  This helps mitigate ROP attacks.
1897	  Applications must be enabled to use it, and old userspace does not
1898	  get protection "for free".
1899
1900	  CPUs supporting shadow stacks were first released in 2020.
1901
1902	  See Documentation/arch/x86/shstk.rst for more information.
1903
1904	  If unsure, say N.
1905
1906config INTEL_TDX_HOST
1907	bool "Intel Trust Domain Extensions (TDX) host support"
1908	depends on CPU_SUP_INTEL
1909	depends on X86_64
1910	depends on KVM_INTEL
1911	depends on X86_X2APIC
1912	select ARCH_KEEP_MEMBLOCK
1913	depends on CONTIG_ALLOC
1914	depends on !KEXEC_CORE
1915	depends on X86_MCE
1916	help
1917	  Intel Trust Domain Extensions (TDX) protects guest VMs from malicious
1918	  host and certain physical attacks.  This option enables necessary TDX
1919	  support in the host kernel to run confidential VMs.
1920
1921	  If unsure, say N.
1922
1923config EFI
1924	bool "EFI runtime service support"
1925	depends on ACPI
1926	select UCS2_STRING
1927	select EFI_RUNTIME_WRAPPERS
1928	select ARCH_USE_MEMREMAP_PROT
1929	select EFI_RUNTIME_MAP if KEXEC_CORE
1930	help
1931	  This enables the kernel to use EFI runtime services that are
1932	  available (such as the EFI variable services).
1933
1934	  This option is only useful on systems that have EFI firmware.
1935	  In addition, you should use the latest ELILO loader available
1936	  at <http://elilo.sourceforge.net> in order to take advantage
1937	  of EFI runtime services. However, even with this option, the
1938	  resultant kernel should continue to boot on existing non-EFI
1939	  platforms.
1940
1941config EFI_STUB
1942	bool "EFI stub support"
1943	depends on EFI
1944	select RELOCATABLE
1945	help
1946	  This kernel feature allows a bzImage to be loaded directly
1947	  by EFI firmware without the use of a bootloader.
1948
1949	  See Documentation/admin-guide/efi-stub.rst for more information.
1950
1951config EFI_HANDOVER_PROTOCOL
1952	bool "EFI handover protocol (DEPRECATED)"
1953	depends on EFI_STUB
1954	default y
1955	help
1956	  Select this in order to include support for the deprecated EFI
1957	  handover protocol, which defines alternative entry points into the
1958	  EFI stub.  This is a practice that has no basis in the UEFI
1959	  specification, and requires a priori knowledge on the part of the
1960	  bootloader about Linux/x86 specific ways of passing the command line
1961	  and initrd, and where in memory those assets may be loaded.
1962
1963	  If in doubt, say Y. Even though the corresponding support is not
1964	  present in upstream GRUB or other bootloaders, most distros build
1965	  GRUB with numerous downstream patches applied, and may rely on the
1966	  handover protocol as as result.
1967
1968config EFI_MIXED
1969	bool "EFI mixed-mode support"
1970	depends on EFI_STUB && X86_64
1971	help
1972	  Enabling this feature allows a 64-bit kernel to be booted
1973	  on a 32-bit firmware, provided that your CPU supports 64-bit
1974	  mode.
1975
1976	  Note that it is not possible to boot a mixed-mode enabled
1977	  kernel via the EFI boot stub - a bootloader that supports
1978	  the EFI handover protocol must be used.
1979
1980	  If unsure, say N.
1981
1982config EFI_RUNTIME_MAP
1983	bool "Export EFI runtime maps to sysfs" if EXPERT
1984	depends on EFI
1985	help
1986	  Export EFI runtime memory regions to /sys/firmware/efi/runtime-map.
1987	  That memory map is required by the 2nd kernel to set up EFI virtual
1988	  mappings after kexec, but can also be used for debugging purposes.
1989
1990	  See also Documentation/ABI/testing/sysfs-firmware-efi-runtime-map.
1991
1992source "kernel/Kconfig.hz"
1993
1994config ARCH_SUPPORTS_KEXEC
1995	def_bool y
1996
1997config ARCH_SUPPORTS_KEXEC_FILE
1998	def_bool X86_64
1999
2000config ARCH_SELECTS_KEXEC_FILE
2001	def_bool y
2002	depends on KEXEC_FILE
2003	select HAVE_IMA_KEXEC if IMA
2004
2005config ARCH_SUPPORTS_KEXEC_PURGATORY
2006	def_bool y
2007
2008config ARCH_SUPPORTS_KEXEC_SIG
2009	def_bool y
2010
2011config ARCH_SUPPORTS_KEXEC_SIG_FORCE
2012	def_bool y
2013
2014config ARCH_SUPPORTS_KEXEC_BZIMAGE_VERIFY_SIG
2015	def_bool y
2016
2017config ARCH_SUPPORTS_KEXEC_JUMP
2018	def_bool y
2019
2020config ARCH_SUPPORTS_CRASH_DUMP
2021	def_bool X86_64 || (X86_32 && HIGHMEM)
2022
2023config ARCH_DEFAULT_CRASH_DUMP
2024	def_bool y
2025
2026config ARCH_SUPPORTS_CRASH_HOTPLUG
2027	def_bool y
2028
2029config ARCH_HAS_GENERIC_CRASHKERNEL_RESERVATION
2030	def_bool CRASH_RESERVE
2031
2032config PHYSICAL_START
2033	hex "Physical address where the kernel is loaded" if (EXPERT || CRASH_DUMP)
2034	default "0x1000000"
2035	help
2036	  This gives the physical address where the kernel is loaded.
2037
2038	  If the kernel is not relocatable (CONFIG_RELOCATABLE=n) then bzImage
2039	  will decompress itself to above physical address and run from there.
2040	  Otherwise, bzImage will run from the address where it has been loaded
2041	  by the boot loader. The only exception is if it is loaded below the
2042	  above physical address, in which case it will relocate itself there.
2043
2044	  In normal kdump cases one does not have to set/change this option
2045	  as now bzImage can be compiled as a completely relocatable image
2046	  (CONFIG_RELOCATABLE=y) and be used to load and run from a different
2047	  address. This option is mainly useful for the folks who don't want
2048	  to use a bzImage for capturing the crash dump and want to use a
2049	  vmlinux instead. vmlinux is not relocatable hence a kernel needs
2050	  to be specifically compiled to run from a specific memory area
2051	  (normally a reserved region) and this option comes handy.
2052
2053	  So if you are using bzImage for capturing the crash dump,
2054	  leave the value here unchanged to 0x1000000 and set
2055	  CONFIG_RELOCATABLE=y.  Otherwise if you plan to use vmlinux
2056	  for capturing the crash dump change this value to start of
2057	  the reserved region.  In other words, it can be set based on
2058	  the "X" value as specified in the "crashkernel=YM@XM"
2059	  command line boot parameter passed to the panic-ed
2060	  kernel. Please take a look at Documentation/admin-guide/kdump/kdump.rst
2061	  for more details about crash dumps.
2062
2063	  Usage of bzImage for capturing the crash dump is recommended as
2064	  one does not have to build two kernels. Same kernel can be used
2065	  as production kernel and capture kernel. Above option should have
2066	  gone away after relocatable bzImage support is introduced. But it
2067	  is present because there are users out there who continue to use
2068	  vmlinux for dump capture. This option should go away down the
2069	  line.
2070
2071	  Don't change this unless you know what you are doing.
2072
2073config RELOCATABLE
2074	bool "Build a relocatable kernel"
2075	default y
2076	help
2077	  This builds a kernel image that retains relocation information
2078	  so it can be loaded someplace besides the default 1MB.
2079	  The relocations tend to make the kernel binary about 10% larger,
2080	  but are discarded at runtime.
2081
2082	  One use is for the kexec on panic case where the recovery kernel
2083	  must live at a different physical address than the primary
2084	  kernel.
2085
2086	  Note: If CONFIG_RELOCATABLE=y, then the kernel runs from the address
2087	  it has been loaded at and the compile time physical address
2088	  (CONFIG_PHYSICAL_START) is used as the minimum location.
2089
2090config RANDOMIZE_BASE
2091	bool "Randomize the address of the kernel image (KASLR)"
2092	depends on RELOCATABLE
2093	default y
2094	help
2095	  In support of Kernel Address Space Layout Randomization (KASLR),
2096	  this randomizes the physical address at which the kernel image
2097	  is decompressed and the virtual address where the kernel
2098	  image is mapped, as a security feature that deters exploit
2099	  attempts relying on knowledge of the location of kernel
2100	  code internals.
2101
2102	  On 64-bit, the kernel physical and virtual addresses are
2103	  randomized separately. The physical address will be anywhere
2104	  between 16MB and the top of physical memory (up to 64TB). The
2105	  virtual address will be randomized from 16MB up to 1GB (9 bits
2106	  of entropy). Note that this also reduces the memory space
2107	  available to kernel modules from 1.5GB to 1GB.
2108
2109	  On 32-bit, the kernel physical and virtual addresses are
2110	  randomized together. They will be randomized from 16MB up to
2111	  512MB (8 bits of entropy).
2112
2113	  Entropy is generated using the RDRAND instruction if it is
2114	  supported. If RDTSC is supported, its value is mixed into
2115	  the entropy pool as well. If neither RDRAND nor RDTSC are
2116	  supported, then entropy is read from the i8254 timer. The
2117	  usable entropy is limited by the kernel being built using
2118	  2GB addressing, and that PHYSICAL_ALIGN must be at a
2119	  minimum of 2MB. As a result, only 10 bits of entropy are
2120	  theoretically possible, but the implementations are further
2121	  limited due to memory layouts.
2122
2123	  If unsure, say Y.
2124
2125# Relocation on x86 needs some additional build support
2126config X86_NEED_RELOCS
2127	def_bool y
2128	depends on RANDOMIZE_BASE || (X86_32 && RELOCATABLE)
2129
2130config PHYSICAL_ALIGN
2131	hex "Alignment value to which kernel should be aligned"
2132	default "0x200000"
2133	range 0x2000 0x1000000 if X86_32
2134	range 0x200000 0x1000000 if X86_64
2135	help
2136	  This value puts the alignment restrictions on physical address
2137	  where kernel is loaded and run from. Kernel is compiled for an
2138	  address which meets above alignment restriction.
2139
2140	  If bootloader loads the kernel at a non-aligned address and
2141	  CONFIG_RELOCATABLE is set, kernel will move itself to nearest
2142	  address aligned to above value and run from there.
2143
2144	  If bootloader loads the kernel at a non-aligned address and
2145	  CONFIG_RELOCATABLE is not set, kernel will ignore the run time
2146	  load address and decompress itself to the address it has been
2147	  compiled for and run from there. The address for which kernel is
2148	  compiled already meets above alignment restrictions. Hence the
2149	  end result is that kernel runs from a physical address meeting
2150	  above alignment restrictions.
2151
2152	  On 32-bit this value must be a multiple of 0x2000. On 64-bit
2153	  this value must be a multiple of 0x200000.
2154
2155	  Don't change this unless you know what you are doing.
2156
2157config DYNAMIC_MEMORY_LAYOUT
2158	bool
2159	help
2160	  This option makes base addresses of vmalloc and vmemmap as well as
2161	  __PAGE_OFFSET movable during boot.
2162
2163config RANDOMIZE_MEMORY
2164	bool "Randomize the kernel memory sections"
2165	depends on X86_64
2166	depends on RANDOMIZE_BASE
2167	select DYNAMIC_MEMORY_LAYOUT
2168	default RANDOMIZE_BASE
2169	help
2170	  Randomizes the base virtual address of kernel memory sections
2171	  (physical memory mapping, vmalloc & vmemmap). This security feature
2172	  makes exploits relying on predictable memory locations less reliable.
2173
2174	  The order of allocations remains unchanged. Entropy is generated in
2175	  the same way as RANDOMIZE_BASE. Current implementation in the optimal
2176	  configuration have in average 30,000 different possible virtual
2177	  addresses for each memory section.
2178
2179	  If unsure, say Y.
2180
2181config RANDOMIZE_MEMORY_PHYSICAL_PADDING
2182	hex "Physical memory mapping padding" if EXPERT
2183	depends on RANDOMIZE_MEMORY
2184	default "0xa" if MEMORY_HOTPLUG
2185	default "0x0"
2186	range 0x1 0x40 if MEMORY_HOTPLUG
2187	range 0x0 0x40
2188	help
2189	  Define the padding in terabytes added to the existing physical
2190	  memory size during kernel memory randomization. It is useful
2191	  for memory hotplug support but reduces the entropy available for
2192	  address randomization.
2193
2194	  If unsure, leave at the default value.
2195
2196config ADDRESS_MASKING
2197	bool "Linear Address Masking support"
2198	depends on X86_64
2199	depends on COMPILE_TEST || !CPU_MITIGATIONS # wait for LASS
2200	help
2201	  Linear Address Masking (LAM) modifies the checking that is applied
2202	  to 64-bit linear addresses, allowing software to use of the
2203	  untranslated address bits for metadata.
2204
2205	  The capability can be used for efficient address sanitizers (ASAN)
2206	  implementation and for optimizations in JITs.
2207
2208config HOTPLUG_CPU
2209	def_bool y
2210	depends on SMP
2211
2212config COMPAT_VDSO
2213	def_bool n
2214	prompt "Disable the 32-bit vDSO (needed for glibc 2.3.3)"
2215	depends on COMPAT_32
2216	help
2217	  Certain buggy versions of glibc will crash if they are
2218	  presented with a 32-bit vDSO that is not mapped at the address
2219	  indicated in its segment table.
2220
2221	  The bug was introduced by f866314b89d56845f55e6f365e18b31ec978ec3a
2222	  and fixed by 3b3ddb4f7db98ec9e912ccdf54d35df4aa30e04a and
2223	  49ad572a70b8aeb91e57483a11dd1b77e31c4468.  Glibc 2.3.3 is
2224	  the only released version with the bug, but OpenSUSE 9
2225	  contains a buggy "glibc 2.3.2".
2226
2227	  The symptom of the bug is that everything crashes on startup, saying:
2228	  dl_main: Assertion `(void *) ph->p_vaddr == _rtld_local._dl_sysinfo_dso' failed!
2229
2230	  Saying Y here changes the default value of the vdso32 boot
2231	  option from 1 to 0, which turns off the 32-bit vDSO entirely.
2232	  This works around the glibc bug but hurts performance.
2233
2234	  If unsure, say N: if you are compiling your own kernel, you
2235	  are unlikely to be using a buggy version of glibc.
2236
2237choice
2238	prompt "vsyscall table for legacy applications"
2239	depends on X86_64
2240	default LEGACY_VSYSCALL_XONLY
2241	help
2242	  Legacy user code that does not know how to find the vDSO expects
2243	  to be able to issue three syscalls by calling fixed addresses in
2244	  kernel space. Since this location is not randomized with ASLR,
2245	  it can be used to assist security vulnerability exploitation.
2246
2247	  This setting can be changed at boot time via the kernel command
2248	  line parameter vsyscall=[emulate|xonly|none].  Emulate mode
2249	  is deprecated and can only be enabled using the kernel command
2250	  line.
2251
2252	  On a system with recent enough glibc (2.14 or newer) and no
2253	  static binaries, you can say None without a performance penalty
2254	  to improve security.
2255
2256	  If unsure, select "Emulate execution only".
2257
2258	config LEGACY_VSYSCALL_XONLY
2259		bool "Emulate execution only"
2260		help
2261		  The kernel traps and emulates calls into the fixed vsyscall
2262		  address mapping and does not allow reads.  This
2263		  configuration is recommended when userspace might use the
2264		  legacy vsyscall area but support for legacy binary
2265		  instrumentation of legacy code is not needed.  It mitigates
2266		  certain uses of the vsyscall area as an ASLR-bypassing
2267		  buffer.
2268
2269	config LEGACY_VSYSCALL_NONE
2270		bool "None"
2271		help
2272		  There will be no vsyscall mapping at all. This will
2273		  eliminate any risk of ASLR bypass due to the vsyscall
2274		  fixed address mapping. Attempts to use the vsyscalls
2275		  will be reported to dmesg, so that either old or
2276		  malicious userspace programs can be identified.
2277
2278endchoice
2279
2280config CMDLINE_BOOL
2281	bool "Built-in kernel command line"
2282	help
2283	  Allow for specifying boot arguments to the kernel at
2284	  build time.  On some systems (e.g. embedded ones), it is
2285	  necessary or convenient to provide some or all of the
2286	  kernel boot arguments with the kernel itself (that is,
2287	  to not rely on the boot loader to provide them.)
2288
2289	  To compile command line arguments into the kernel,
2290	  set this option to 'Y', then fill in the
2291	  boot arguments in CONFIG_CMDLINE.
2292
2293	  Systems with fully functional boot loaders (i.e. non-embedded)
2294	  should leave this option set to 'N'.
2295
2296config CMDLINE
2297	string "Built-in kernel command string"
2298	depends on CMDLINE_BOOL
2299	default ""
2300	help
2301	  Enter arguments here that should be compiled into the kernel
2302	  image and used at boot time.  If the boot loader provides a
2303	  command line at boot time, it is appended to this string to
2304	  form the full kernel command line, when the system boots.
2305
2306	  However, you can use the CONFIG_CMDLINE_OVERRIDE option to
2307	  change this behavior.
2308
2309	  In most cases, the command line (whether built-in or provided
2310	  by the boot loader) should specify the device for the root
2311	  file system.
2312
2313config CMDLINE_OVERRIDE
2314	bool "Built-in command line overrides boot loader arguments"
2315	depends on CMDLINE_BOOL && CMDLINE != ""
2316	help
2317	  Set this option to 'Y' to have the kernel ignore the boot loader
2318	  command line, and use ONLY the built-in command line.
2319
2320	  This is used to work around broken boot loaders.  This should
2321	  be set to 'N' under normal conditions.
2322
2323config MODIFY_LDT_SYSCALL
2324	bool "Enable the LDT (local descriptor table)" if EXPERT
2325	default y
2326	help
2327	  Linux can allow user programs to install a per-process x86
2328	  Local Descriptor Table (LDT) using the modify_ldt(2) system
2329	  call.  This is required to run 16-bit or segmented code such as
2330	  DOSEMU or some Wine programs.  It is also used by some very old
2331	  threading libraries.
2332
2333	  Enabling this feature adds a small amount of overhead to
2334	  context switches and increases the low-level kernel attack
2335	  surface.  Disabling it removes the modify_ldt(2) system call.
2336
2337	  Saying 'N' here may make sense for embedded or server kernels.
2338
2339config STRICT_SIGALTSTACK_SIZE
2340	bool "Enforce strict size checking for sigaltstack"
2341	depends on DYNAMIC_SIGFRAME
2342	help
2343	  For historical reasons MINSIGSTKSZ is a constant which became
2344	  already too small with AVX512 support. Add a mechanism to
2345	  enforce strict checking of the sigaltstack size against the
2346	  real size of the FPU frame. This option enables the check
2347	  by default. It can also be controlled via the kernel command
2348	  line option 'strict_sas_size' independent of this config
2349	  switch. Enabling it might break existing applications which
2350	  allocate a too small sigaltstack but 'work' because they
2351	  never get a signal delivered.
2352
2353	  Say 'N' unless you want to really enforce this check.
2354
2355config CFI_AUTO_DEFAULT
2356	bool "Attempt to use FineIBT by default at boot time"
2357	depends on FINEIBT
2358	default y
2359	help
2360	  Attempt to use FineIBT by default at boot time. If enabled,
2361	  this is the same as booting with "cfi=auto". If disabled,
2362	  this is the same as booting with "cfi=kcfi".
2363
2364source "kernel/livepatch/Kconfig"
2365
2366config X86_BUS_LOCK_DETECT
2367	bool "Split Lock Detect and Bus Lock Detect support"
2368	depends on CPU_SUP_INTEL || CPU_SUP_AMD
2369	default y
2370	help
2371	  Enable Split Lock Detect and Bus Lock Detect functionalities.
2372	  See <file:Documentation/arch/x86/buslock.rst> for more information.
2373
2374endmenu
2375
2376config CC_HAS_NAMED_AS
2377	def_bool $(success,echo 'int __seg_fs fs; int __seg_gs gs;' | $(CC) -x c - -S -o /dev/null)
2378	depends on CC_IS_GCC
2379
2380config CC_HAS_NAMED_AS_FIXED_SANITIZERS
2381	def_bool CC_IS_GCC && GCC_VERSION >= 130300
2382
2383config USE_X86_SEG_SUPPORT
2384	def_bool y
2385	depends on CC_HAS_NAMED_AS
2386	#
2387	# -fsanitize=kernel-address (KASAN) and -fsanitize=thread
2388	# (KCSAN) are incompatible with named address spaces with
2389	# GCC < 13.3 - see GCC PR sanitizer/111736.
2390	#
2391	depends on !(KASAN || KCSAN) || CC_HAS_NAMED_AS_FIXED_SANITIZERS
2392
2393config CC_HAS_SLS
2394	def_bool $(cc-option,-mharden-sls=all)
2395
2396config CC_HAS_RETURN_THUNK
2397	def_bool $(cc-option,-mfunction-return=thunk-extern)
2398
2399config CC_HAS_ENTRY_PADDING
2400	def_bool $(cc-option,-fpatchable-function-entry=16,16)
2401
2402config FUNCTION_PADDING_CFI
2403	int
2404	default 59 if FUNCTION_ALIGNMENT_64B
2405	default 27 if FUNCTION_ALIGNMENT_32B
2406	default 11 if FUNCTION_ALIGNMENT_16B
2407	default  3 if FUNCTION_ALIGNMENT_8B
2408	default  0
2409
2410# Basically: FUNCTION_ALIGNMENT - 5*CFI_CLANG
2411# except Kconfig can't do arithmetic :/
2412config FUNCTION_PADDING_BYTES
2413	int
2414	default FUNCTION_PADDING_CFI if CFI_CLANG
2415	default FUNCTION_ALIGNMENT
2416
2417config CALL_PADDING
2418	def_bool n
2419	depends on CC_HAS_ENTRY_PADDING && OBJTOOL
2420	select FUNCTION_ALIGNMENT_16B
2421
2422config FINEIBT
2423	def_bool y
2424	depends on X86_KERNEL_IBT && CFI_CLANG && MITIGATION_RETPOLINE
2425	select CALL_PADDING
2426
2427config HAVE_CALL_THUNKS
2428	def_bool y
2429	depends on CC_HAS_ENTRY_PADDING && MITIGATION_RETHUNK && OBJTOOL
2430
2431config CALL_THUNKS
2432	def_bool n
2433	select CALL_PADDING
2434
2435config PREFIX_SYMBOLS
2436	def_bool y
2437	depends on CALL_PADDING && !CFI_CLANG
2438
2439menuconfig CPU_MITIGATIONS
2440	bool "Mitigations for CPU vulnerabilities"
2441	default y
2442	help
2443	  Say Y here to enable options which enable mitigations for hardware
2444	  vulnerabilities (usually related to speculative execution).
2445	  Mitigations can be disabled or restricted to SMT systems at runtime
2446	  via the "mitigations" kernel parameter.
2447
2448	  If you say N, all mitigations will be disabled.  This CANNOT be
2449	  overridden at runtime.
2450
2451	  Say 'Y', unless you really know what you are doing.
2452
2453if CPU_MITIGATIONS
2454
2455config MITIGATION_PAGE_TABLE_ISOLATION
2456	bool "Remove the kernel mapping in user mode"
2457	default y
2458	depends on (X86_64 || X86_PAE)
2459	help
2460	  This feature reduces the number of hardware side channels by
2461	  ensuring that the majority of kernel addresses are not mapped
2462	  into userspace.
2463
2464	  See Documentation/arch/x86/pti.rst for more details.
2465
2466config MITIGATION_RETPOLINE
2467	bool "Avoid speculative indirect branches in kernel"
2468	select OBJTOOL if HAVE_OBJTOOL
2469	default y
2470	help
2471	  Compile kernel with the retpoline compiler options to guard against
2472	  kernel-to-user data leaks by avoiding speculative indirect
2473	  branches. Requires a compiler with -mindirect-branch=thunk-extern
2474	  support for full protection. The kernel may run slower.
2475
2476config MITIGATION_RETHUNK
2477	bool "Enable return-thunks"
2478	depends on MITIGATION_RETPOLINE && CC_HAS_RETURN_THUNK
2479	select OBJTOOL if HAVE_OBJTOOL
2480	default y if X86_64
2481	help
2482	  Compile the kernel with the return-thunks compiler option to guard
2483	  against kernel-to-user data leaks by avoiding return speculation.
2484	  Requires a compiler with -mfunction-return=thunk-extern
2485	  support for full protection. The kernel may run slower.
2486
2487config MITIGATION_UNRET_ENTRY
2488	bool "Enable UNRET on kernel entry"
2489	depends on CPU_SUP_AMD && MITIGATION_RETHUNK && X86_64
2490	default y
2491	help
2492	  Compile the kernel with support for the retbleed=unret mitigation.
2493
2494config MITIGATION_CALL_DEPTH_TRACKING
2495	bool "Mitigate RSB underflow with call depth tracking"
2496	depends on CPU_SUP_INTEL && HAVE_CALL_THUNKS
2497	select HAVE_DYNAMIC_FTRACE_NO_PATCHABLE
2498	select CALL_THUNKS
2499	default y
2500	help
2501	  Compile the kernel with call depth tracking to mitigate the Intel
2502	  SKL Return-Stack-Buffer (RSB) underflow issue. The mitigation is off
2503	  by default and needs to be enabled on the kernel command line via the
2504	  retbleed=stuff option. For non-affected systems the overhead of this
2505	  option is marginal as the call depth tracking is using run-time
2506	  generated call thunks in a compiler generated padding area and call
2507	  patching. This increases text size by ~5%. For non affected systems
2508	  this space is unused. On affected SKL systems this results in a
2509	  significant performance gain over the IBRS mitigation.
2510
2511config CALL_THUNKS_DEBUG
2512	bool "Enable call thunks and call depth tracking debugging"
2513	depends on MITIGATION_CALL_DEPTH_TRACKING
2514	select FUNCTION_ALIGNMENT_32B
2515	default n
2516	help
2517	  Enable call/ret counters for imbalance detection and build in
2518	  a noisy dmesg about callthunks generation and call patching for
2519	  trouble shooting. The debug prints need to be enabled on the
2520	  kernel command line with 'debug-callthunks'.
2521	  Only enable this when you are debugging call thunks as this
2522	  creates a noticeable runtime overhead. If unsure say N.
2523
2524config MITIGATION_IBPB_ENTRY
2525	bool "Enable IBPB on kernel entry"
2526	depends on CPU_SUP_AMD && X86_64
2527	default y
2528	help
2529	  Compile the kernel with support for the retbleed=ibpb and
2530	  spec_rstack_overflow={ibpb,ibpb-vmexit} mitigations.
2531
2532config MITIGATION_IBRS_ENTRY
2533	bool "Enable IBRS on kernel entry"
2534	depends on CPU_SUP_INTEL && X86_64
2535	default y
2536	help
2537	  Compile the kernel with support for the spectre_v2=ibrs mitigation.
2538	  This mitigates both spectre_v2 and retbleed at great cost to
2539	  performance.
2540
2541config MITIGATION_SRSO
2542	bool "Mitigate speculative RAS overflow on AMD"
2543	depends on CPU_SUP_AMD && X86_64 && MITIGATION_RETHUNK
2544	default y
2545	help
2546	  Enable the SRSO mitigation needed on AMD Zen1-4 machines.
2547
2548config MITIGATION_SLS
2549	bool "Mitigate Straight-Line-Speculation"
2550	depends on CC_HAS_SLS && X86_64
2551	select OBJTOOL if HAVE_OBJTOOL
2552	default n
2553	help
2554	  Compile the kernel with straight-line-speculation options to guard
2555	  against straight line speculation. The kernel image might be slightly
2556	  larger.
2557
2558config MITIGATION_GDS
2559	bool "Mitigate Gather Data Sampling"
2560	depends on CPU_SUP_INTEL
2561	default y
2562	help
2563	  Enable mitigation for Gather Data Sampling (GDS). GDS is a hardware
2564	  vulnerability which allows unprivileged speculative access to data
2565	  which was previously stored in vector registers. The attacker uses gather
2566	  instructions to infer the stale vector register data.
2567
2568config MITIGATION_RFDS
2569	bool "RFDS Mitigation"
2570	depends on CPU_SUP_INTEL
2571	default y
2572	help
2573	  Enable mitigation for Register File Data Sampling (RFDS) by default.
2574	  RFDS is a hardware vulnerability which affects Intel Atom CPUs. It
2575	  allows unprivileged speculative access to stale data previously
2576	  stored in floating point, vector and integer registers.
2577	  See also <file:Documentation/admin-guide/hw-vuln/reg-file-data-sampling.rst>
2578
2579config MITIGATION_SPECTRE_BHI
2580	bool "Mitigate Spectre-BHB (Branch History Injection)"
2581	depends on CPU_SUP_INTEL
2582	default y
2583	help
2584	  Enable BHI mitigations. BHI attacks are a form of Spectre V2 attacks
2585	  where the branch history buffer is poisoned to speculatively steer
2586	  indirect branches.
2587	  See <file:Documentation/admin-guide/hw-vuln/spectre.rst>
2588
2589config MITIGATION_MDS
2590	bool "Mitigate Microarchitectural Data Sampling (MDS) hardware bug"
2591	depends on CPU_SUP_INTEL
2592	default y
2593	help
2594	  Enable mitigation for Microarchitectural Data Sampling (MDS). MDS is
2595	  a hardware vulnerability which allows unprivileged speculative access
2596	  to data which is available in various CPU internal buffers.
2597	  See also <file:Documentation/admin-guide/hw-vuln/mds.rst>
2598
2599config MITIGATION_TAA
2600	bool "Mitigate TSX Asynchronous Abort (TAA) hardware bug"
2601	depends on CPU_SUP_INTEL
2602	default y
2603	help
2604	  Enable mitigation for TSX Asynchronous Abort (TAA). TAA is a hardware
2605	  vulnerability that allows unprivileged speculative access to data
2606	  which is available in various CPU internal buffers by using
2607	  asynchronous aborts within an Intel TSX transactional region.
2608	  See also <file:Documentation/admin-guide/hw-vuln/tsx_async_abort.rst>
2609
2610config MITIGATION_MMIO_STALE_DATA
2611	bool "Mitigate MMIO Stale Data hardware bug"
2612	depends on CPU_SUP_INTEL
2613	default y
2614	help
2615	  Enable mitigation for MMIO Stale Data hardware bugs.  Processor MMIO
2616	  Stale Data Vulnerabilities are a class of memory-mapped I/O (MMIO)
2617	  vulnerabilities that can expose data. The vulnerabilities require the
2618	  attacker to have access to MMIO.
2619	  See also
2620	  <file:Documentation/admin-guide/hw-vuln/processor_mmio_stale_data.rst>
2621
2622config MITIGATION_L1TF
2623	bool "Mitigate L1 Terminal Fault (L1TF) hardware bug"
2624	depends on CPU_SUP_INTEL
2625	default y
2626	help
2627	  Mitigate L1 Terminal Fault (L1TF) hardware bug. L1 Terminal Fault is a
2628	  hardware vulnerability which allows unprivileged speculative access to data
2629	  available in the Level 1 Data Cache.
2630	  See <file:Documentation/admin-guide/hw-vuln/l1tf.rst
2631
2632config MITIGATION_RETBLEED
2633	bool "Mitigate RETBleed hardware bug"
2634	depends on (CPU_SUP_INTEL && MITIGATION_SPECTRE_V2) || MITIGATION_UNRET_ENTRY || MITIGATION_IBPB_ENTRY
2635	default y
2636	help
2637	  Enable mitigation for RETBleed (Arbitrary Speculative Code Execution
2638	  with Return Instructions) vulnerability.  RETBleed is a speculative
2639	  execution attack which takes advantage of microarchitectural behavior
2640	  in many modern microprocessors, similar to Spectre v2. An
2641	  unprivileged attacker can use these flaws to bypass conventional
2642	  memory security restrictions to gain read access to privileged memory
2643	  that would otherwise be inaccessible.
2644
2645config MITIGATION_SPECTRE_V1
2646	bool "Mitigate SPECTRE V1 hardware bug"
2647	default y
2648	help
2649	  Enable mitigation for Spectre V1 (Bounds Check Bypass). Spectre V1 is a
2650	  class of side channel attacks that takes advantage of speculative
2651	  execution that bypasses conditional branch instructions used for
2652	  memory access bounds check.
2653	  See also <file:Documentation/admin-guide/hw-vuln/spectre.rst>
2654
2655config MITIGATION_SPECTRE_V2
2656	bool "Mitigate SPECTRE V2 hardware bug"
2657	default y
2658	help
2659	  Enable mitigation for Spectre V2 (Branch Target Injection). Spectre
2660	  V2 is a class of side channel attacks that takes advantage of
2661	  indirect branch predictors inside the processor. In Spectre variant 2
2662	  attacks, the attacker can steer speculative indirect branches in the
2663	  victim to gadget code by poisoning the branch target buffer of a CPU
2664	  used for predicting indirect branch addresses.
2665	  See also <file:Documentation/admin-guide/hw-vuln/spectre.rst>
2666
2667config MITIGATION_SRBDS
2668	bool "Mitigate Special Register Buffer Data Sampling (SRBDS) hardware bug"
2669	depends on CPU_SUP_INTEL
2670	default y
2671	help
2672	  Enable mitigation for Special Register Buffer Data Sampling (SRBDS).
2673	  SRBDS is a hardware vulnerability that allows Microarchitectural Data
2674	  Sampling (MDS) techniques to infer values returned from special
2675	  register accesses. An unprivileged user can extract values returned
2676	  from RDRAND and RDSEED executed on another core or sibling thread
2677	  using MDS techniques.
2678	  See also
2679	  <file:Documentation/admin-guide/hw-vuln/special-register-buffer-data-sampling.rst>
2680
2681config MITIGATION_SSB
2682	bool "Mitigate Speculative Store Bypass (SSB) hardware bug"
2683	default y
2684	help
2685	  Enable mitigation for Speculative Store Bypass (SSB). SSB is a
2686	  hardware security vulnerability and its exploitation takes advantage
2687	  of speculative execution in a similar way to the Meltdown and Spectre
2688	  security vulnerabilities.
2689
2690endif
2691
2692config ARCH_HAS_ADD_PAGES
2693	def_bool y
2694	depends on ARCH_ENABLE_MEMORY_HOTPLUG
2695
2696menu "Power management and ACPI options"
2697
2698config ARCH_HIBERNATION_HEADER
2699	def_bool y
2700	depends on HIBERNATION
2701
2702source "kernel/power/Kconfig"
2703
2704source "drivers/acpi/Kconfig"
2705
2706config X86_APM_BOOT
2707	def_bool y
2708	depends on APM
2709
2710menuconfig APM
2711	tristate "APM (Advanced Power Management) BIOS support"
2712	depends on X86_32 && PM_SLEEP
2713	help
2714	  APM is a BIOS specification for saving power using several different
2715	  techniques. This is mostly useful for battery powered laptops with
2716	  APM compliant BIOSes. If you say Y here, the system time will be
2717	  reset after a RESUME operation, the /proc/apm device will provide
2718	  battery status information, and user-space programs will receive
2719	  notification of APM "events" (e.g. battery status change).
2720
2721	  If you select "Y" here, you can disable actual use of the APM
2722	  BIOS by passing the "apm=off" option to the kernel at boot time.
2723
2724	  Note that the APM support is almost completely disabled for
2725	  machines with more than one CPU.
2726
2727	  In order to use APM, you will need supporting software. For location
2728	  and more information, read <file:Documentation/power/apm-acpi.rst>
2729	  and the Battery Powered Linux mini-HOWTO, available from
2730	  <http://www.tldp.org/docs.html#howto>.
2731
2732	  This driver does not spin down disk drives (see the hdparm(8)
2733	  manpage ("man 8 hdparm") for that), and it doesn't turn off
2734	  VESA-compliant "green" monitors.
2735
2736	  This driver does not support the TI 4000M TravelMate and the ACER
2737	  486/DX4/75 because they don't have compliant BIOSes. Many "green"
2738	  desktop machines also don't have compliant BIOSes, and this driver
2739	  may cause those machines to panic during the boot phase.
2740
2741	  Generally, if you don't have a battery in your machine, there isn't
2742	  much point in using this driver and you should say N. If you get
2743	  random kernel OOPSes or reboots that don't seem to be related to
2744	  anything, try disabling/enabling this option (or disabling/enabling
2745	  APM in your BIOS).
2746
2747	  Some other things you should try when experiencing seemingly random,
2748	  "weird" problems:
2749
2750	  1) make sure that you have enough swap space and that it is
2751	  enabled.
2752	  2) pass the "idle=poll" option to the kernel
2753	  3) switch on floating point emulation in the kernel and pass
2754	  the "no387" option to the kernel
2755	  4) pass the "floppy=nodma" option to the kernel
2756	  5) pass the "mem=4M" option to the kernel (thereby disabling
2757	  all but the first 4 MB of RAM)
2758	  6) make sure that the CPU is not over clocked.
2759	  7) read the sig11 FAQ at <http://www.bitwizard.nl/sig11/>
2760	  8) disable the cache from your BIOS settings
2761	  9) install a fan for the video card or exchange video RAM
2762	  10) install a better fan for the CPU
2763	  11) exchange RAM chips
2764	  12) exchange the motherboard.
2765
2766	  To compile this driver as a module, choose M here: the
2767	  module will be called apm.
2768
2769if APM
2770
2771config APM_IGNORE_USER_SUSPEND
2772	bool "Ignore USER SUSPEND"
2773	help
2774	  This option will ignore USER SUSPEND requests. On machines with a
2775	  compliant APM BIOS, you want to say N. However, on the NEC Versa M
2776	  series notebooks, it is necessary to say Y because of a BIOS bug.
2777
2778config APM_DO_ENABLE
2779	bool "Enable PM at boot time"
2780	help
2781	  Enable APM features at boot time. From page 36 of the APM BIOS
2782	  specification: "When disabled, the APM BIOS does not automatically
2783	  power manage devices, enter the Standby State, enter the Suspend
2784	  State, or take power saving steps in response to CPU Idle calls."
2785	  This driver will make CPU Idle calls when Linux is idle (unless this
2786	  feature is turned off -- see "Do CPU IDLE calls", below). This
2787	  should always save battery power, but more complicated APM features
2788	  will be dependent on your BIOS implementation. You may need to turn
2789	  this option off if your computer hangs at boot time when using APM
2790	  support, or if it beeps continuously instead of suspending. Turn
2791	  this off if you have a NEC UltraLite Versa 33/C or a Toshiba
2792	  T400CDT. This is off by default since most machines do fine without
2793	  this feature.
2794
2795config APM_CPU_IDLE
2796	depends on CPU_IDLE
2797	bool "Make CPU Idle calls when idle"
2798	help
2799	  Enable calls to APM CPU Idle/CPU Busy inside the kernel's idle loop.
2800	  On some machines, this can activate improved power savings, such as
2801	  a slowed CPU clock rate, when the machine is idle. These idle calls
2802	  are made after the idle loop has run for some length of time (e.g.,
2803	  333 mS). On some machines, this will cause a hang at boot time or
2804	  whenever the CPU becomes idle. (On machines with more than one CPU,
2805	  this option does nothing.)
2806
2807config APM_DISPLAY_BLANK
2808	bool "Enable console blanking using APM"
2809	help
2810	  Enable console blanking using the APM. Some laptops can use this to
2811	  turn off the LCD backlight when the screen blanker of the Linux
2812	  virtual console blanks the screen. Note that this is only used by
2813	  the virtual console screen blanker, and won't turn off the backlight
2814	  when using the X Window system. This also doesn't have anything to
2815	  do with your VESA-compliant power-saving monitor. Further, this
2816	  option doesn't work for all laptops -- it might not turn off your
2817	  backlight at all, or it might print a lot of errors to the console,
2818	  especially if you are using gpm.
2819
2820config APM_ALLOW_INTS
2821	bool "Allow interrupts during APM BIOS calls"
2822	help
2823	  Normally we disable external interrupts while we are making calls to
2824	  the APM BIOS as a measure to lessen the effects of a badly behaving
2825	  BIOS implementation.  The BIOS should reenable interrupts if it
2826	  needs to.  Unfortunately, some BIOSes do not -- especially those in
2827	  many of the newer IBM Thinkpads.  If you experience hangs when you
2828	  suspend, try setting this to Y.  Otherwise, say N.
2829
2830endif # APM
2831
2832source "drivers/cpufreq/Kconfig"
2833
2834source "drivers/cpuidle/Kconfig"
2835
2836source "drivers/idle/Kconfig"
2837
2838endmenu
2839
2840menu "Bus options (PCI etc.)"
2841
2842choice
2843	prompt "PCI access mode"
2844	depends on X86_32 && PCI
2845	default PCI_GOANY
2846	help
2847	  On PCI systems, the BIOS can be used to detect the PCI devices and
2848	  determine their configuration. However, some old PCI motherboards
2849	  have BIOS bugs and may crash if this is done. Also, some embedded
2850	  PCI-based systems don't have any BIOS at all. Linux can also try to
2851	  detect the PCI hardware directly without using the BIOS.
2852
2853	  With this option, you can specify how Linux should detect the
2854	  PCI devices. If you choose "BIOS", the BIOS will be used,
2855	  if you choose "Direct", the BIOS won't be used, and if you
2856	  choose "MMConfig", then PCI Express MMCONFIG will be used.
2857	  If you choose "Any", the kernel will try MMCONFIG, then the
2858	  direct access method and falls back to the BIOS if that doesn't
2859	  work. If unsure, go with the default, which is "Any".
2860
2861config PCI_GOBIOS
2862	bool "BIOS"
2863
2864config PCI_GOMMCONFIG
2865	bool "MMConfig"
2866
2867config PCI_GODIRECT
2868	bool "Direct"
2869
2870config PCI_GOOLPC
2871	bool "OLPC XO-1"
2872	depends on OLPC
2873
2874config PCI_GOANY
2875	bool "Any"
2876
2877endchoice
2878
2879config PCI_BIOS
2880	def_bool y
2881	depends on X86_32 && PCI && (PCI_GOBIOS || PCI_GOANY)
2882
2883# x86-64 doesn't support PCI BIOS access from long mode so always go direct.
2884config PCI_DIRECT
2885	def_bool y
2886	depends on PCI && (X86_64 || (PCI_GODIRECT || PCI_GOANY || PCI_GOOLPC || PCI_GOMMCONFIG))
2887
2888config PCI_MMCONFIG
2889	bool "Support mmconfig PCI config space access" if X86_64
2890	default y
2891	depends on PCI && (ACPI || JAILHOUSE_GUEST)
2892	depends on X86_64 || (PCI_GOANY || PCI_GOMMCONFIG)
2893
2894config PCI_OLPC
2895	def_bool y
2896	depends on PCI && OLPC && (PCI_GOOLPC || PCI_GOANY)
2897
2898config PCI_XEN
2899	def_bool y
2900	depends on PCI && XEN
2901
2902config MMCONF_FAM10H
2903	def_bool y
2904	depends on X86_64 && PCI_MMCONFIG && ACPI
2905
2906config PCI_CNB20LE_QUIRK
2907	bool "Read CNB20LE Host Bridge Windows" if EXPERT
2908	depends on PCI
2909	help
2910	  Read the PCI windows out of the CNB20LE host bridge. This allows
2911	  PCI hotplug to work on systems with the CNB20LE chipset which do
2912	  not have ACPI.
2913
2914	  There's no public spec for this chipset, and this functionality
2915	  is known to be incomplete.
2916
2917	  You should say N unless you know you need this.
2918
2919config ISA_BUS
2920	bool "ISA bus support on modern systems" if EXPERT
2921	help
2922	  Expose ISA bus device drivers and options available for selection and
2923	  configuration. Enable this option if your target machine has an ISA
2924	  bus. ISA is an older system, displaced by PCI and newer bus
2925	  architectures -- if your target machine is modern, it probably does
2926	  not have an ISA bus.
2927
2928	  If unsure, say N.
2929
2930# x86_64 have no ISA slots, but can have ISA-style DMA.
2931config ISA_DMA_API
2932	bool "ISA-style DMA support" if (X86_64 && EXPERT)
2933	default y
2934	help
2935	  Enables ISA-style DMA support for devices requiring such controllers.
2936	  If unsure, say Y.
2937
2938if X86_32
2939
2940config ISA
2941	bool "ISA support"
2942	help
2943	  Find out whether you have ISA slots on your motherboard.  ISA is the
2944	  name of a bus system, i.e. the way the CPU talks to the other stuff
2945	  inside your box.  Other bus systems are PCI, EISA, MicroChannel
2946	  (MCA) or VESA.  ISA is an older system, now being displaced by PCI;
2947	  newer boards don't support it.  If you have ISA, say Y, otherwise N.
2948
2949config SCx200
2950	tristate "NatSemi SCx200 support"
2951	help
2952	  This provides basic support for National Semiconductor's
2953	  (now AMD's) Geode processors.  The driver probes for the
2954	  PCI-IDs of several on-chip devices, so its a good dependency
2955	  for other scx200_* drivers.
2956
2957	  If compiled as a module, the driver is named scx200.
2958
2959config SCx200HR_TIMER
2960	tristate "NatSemi SCx200 27MHz High-Resolution Timer Support"
2961	depends on SCx200
2962	default y
2963	help
2964	  This driver provides a clocksource built upon the on-chip
2965	  27MHz high-resolution timer.  Its also a workaround for
2966	  NSC Geode SC-1100's buggy TSC, which loses time when the
2967	  processor goes idle (as is done by the scheduler).  The
2968	  other workaround is idle=poll boot option.
2969
2970config OLPC
2971	bool "One Laptop Per Child support"
2972	depends on !X86_PAE
2973	select GPIOLIB
2974	select OF
2975	select OF_PROMTREE
2976	select IRQ_DOMAIN
2977	select OLPC_EC
2978	help
2979	  Add support for detecting the unique features of the OLPC
2980	  XO hardware.
2981
2982config OLPC_XO1_PM
2983	bool "OLPC XO-1 Power Management"
2984	depends on OLPC && MFD_CS5535=y && PM_SLEEP
2985	help
2986	  Add support for poweroff and suspend of the OLPC XO-1 laptop.
2987
2988config OLPC_XO1_RTC
2989	bool "OLPC XO-1 Real Time Clock"
2990	depends on OLPC_XO1_PM && RTC_DRV_CMOS
2991	help
2992	  Add support for the XO-1 real time clock, which can be used as a
2993	  programmable wakeup source.
2994
2995config OLPC_XO1_SCI
2996	bool "OLPC XO-1 SCI extras"
2997	depends on OLPC && OLPC_XO1_PM && GPIO_CS5535=y
2998	depends on INPUT=y
2999	select POWER_SUPPLY
3000	help
3001	  Add support for SCI-based features of the OLPC XO-1 laptop:
3002	   - EC-driven system wakeups
3003	   - Power button
3004	   - Ebook switch
3005	   - Lid switch
3006	   - AC adapter status updates
3007	   - Battery status updates
3008
3009config OLPC_XO15_SCI
3010	bool "OLPC XO-1.5 SCI extras"
3011	depends on OLPC && ACPI
3012	select POWER_SUPPLY
3013	help
3014	  Add support for SCI-based features of the OLPC XO-1.5 laptop:
3015	   - EC-driven system wakeups
3016	   - AC adapter status updates
3017	   - Battery status updates
3018
3019config GEODE_COMMON
3020	bool
3021
3022config ALIX
3023	bool "PCEngines ALIX System Support (LED setup)"
3024	select GPIOLIB
3025	select GEODE_COMMON
3026	help
3027	  This option enables system support for the PCEngines ALIX.
3028	  At present this just sets up LEDs for GPIO control on
3029	  ALIX2/3/6 boards.  However, other system specific setup should
3030	  get added here.
3031
3032	  Note: You must still enable the drivers for GPIO and LED support
3033	  (GPIO_CS5535 & LEDS_GPIO) to actually use the LEDs
3034
3035	  Note: You have to set alix.force=1 for boards with Award BIOS.
3036
3037config NET5501
3038	bool "Soekris Engineering net5501 System Support (LEDS, GPIO, etc)"
3039	select GPIOLIB
3040	select GEODE_COMMON
3041	help
3042	  This option enables system support for the Soekris Engineering net5501.
3043
3044config GEOS
3045	bool "Traverse Technologies GEOS System Support (LEDS, GPIO, etc)"
3046	select GPIOLIB
3047	select GEODE_COMMON
3048	depends on DMI
3049	help
3050	  This option enables system support for the Traverse Technologies GEOS.
3051
3052config TS5500
3053	bool "Technologic Systems TS-5500 platform support"
3054	depends on MELAN
3055	select CHECK_SIGNATURE
3056	select NEW_LEDS
3057	select LEDS_CLASS
3058	help
3059	  This option enables system support for the Technologic Systems TS-5500.
3060
3061endif # X86_32
3062
3063config AMD_NB
3064	def_bool y
3065	depends on AMD_NODE
3066
3067config AMD_NODE
3068	def_bool y
3069	depends on CPU_SUP_AMD && PCI
3070
3071endmenu
3072
3073menu "Binary Emulations"
3074
3075config IA32_EMULATION
3076	bool "IA32 Emulation"
3077	depends on X86_64
3078	select ARCH_WANT_OLD_COMPAT_IPC
3079	select BINFMT_ELF
3080	select COMPAT_OLD_SIGACTION
3081	help
3082	  Include code to run legacy 32-bit programs under a
3083	  64-bit kernel. You should likely turn this on, unless you're
3084	  100% sure that you don't have any 32-bit programs left.
3085
3086config IA32_EMULATION_DEFAULT_DISABLED
3087	bool "IA32 emulation disabled by default"
3088	default n
3089	depends on IA32_EMULATION
3090	help
3091	  Make IA32 emulation disabled by default. This prevents loading 32-bit
3092	  processes and access to 32-bit syscalls. If unsure, leave it to its
3093	  default value.
3094
3095config X86_X32_ABI
3096	bool "x32 ABI for 64-bit mode"
3097	depends on X86_64
3098	# llvm-objcopy does not convert x86_64 .note.gnu.property or
3099	# compressed debug sections to x86_x32 properly:
3100	# https://github.com/ClangBuiltLinux/linux/issues/514
3101	# https://github.com/ClangBuiltLinux/linux/issues/1141
3102	depends on $(success,$(OBJCOPY) --version | head -n1 | grep -qv llvm)
3103	help
3104	  Include code to run binaries for the x32 native 32-bit ABI
3105	  for 64-bit processors.  An x32 process gets access to the
3106	  full 64-bit register file and wide data path while leaving
3107	  pointers at 32 bits for smaller memory footprint.
3108
3109config COMPAT_32
3110	def_bool y
3111	depends on IA32_EMULATION || X86_32
3112	select HAVE_UID16
3113	select OLD_SIGSUSPEND3
3114
3115config COMPAT
3116	def_bool y
3117	depends on IA32_EMULATION || X86_X32_ABI
3118
3119config COMPAT_FOR_U64_ALIGNMENT
3120	def_bool y
3121	depends on COMPAT
3122
3123endmenu
3124
3125config HAVE_ATOMIC_IOMAP
3126	def_bool y
3127	depends on X86_32
3128
3129source "arch/x86/kvm/Kconfig"
3130
3131source "arch/x86/Kconfig.assembler"
3132