xref: /linux/arch/arm/Kconfig (revision 6505114e82e7541414b176b5da4a3c015a1214ea)
1# SPDX-License-Identifier: GPL-2.0
2config ARM
3	bool
4	default y
5	select ARCH_32BIT_OFF_T
6	select ARCH_CORRECT_STACKTRACE_ON_KRETPROBE if HAVE_KRETPROBES && FRAME_POINTER && !ARM_UNWIND
7	select ARCH_HAS_BINFMT_FLAT
8	select ARCH_HAS_CACHE_LINE_SIZE if OF
9	select ARCH_HAS_CC_CAN_LINK
10	select ARCH_HAS_CPU_CACHE_ALIASING
11	select ARCH_HAS_CPU_FINALIZE_INIT if MMU
12	select ARCH_HAS_CURRENT_STACK_POINTER
13	select ARCH_HAS_DEBUG_VIRTUAL if MMU
14	select ARCH_HAS_DMA_ALLOC if MMU
15	select ARCH_HAS_DMA_OPS
16	select ARCH_HAS_DMA_WRITE_COMBINE if !ARM_DMA_MEM_BUFFERABLE
17	select ARCH_HAS_ELF_RANDOMIZE
18	select ARCH_HAS_FORTIFY_SOURCE
19	select ARCH_HAS_KEEPINITRD
20	select ARCH_HAS_KCOV
21	select ARCH_HAS_MEMBARRIER_SYNC_CORE
22	select ARCH_HAS_NON_OVERLAPPING_ADDRESS_SPACE
23	select ARCH_HAS_PTE_SPECIAL if ARM_LPAE
24	select ARCH_HAS_SETUP_DMA_OPS
25	select ARCH_HAS_SET_MEMORY
26	select ARCH_STACKWALK
27	select ARCH_HAS_STRICT_KERNEL_RWX if MMU && !XIP_KERNEL
28	select ARCH_HAS_STRICT_MODULE_RWX if MMU
29	select ARCH_HAS_SYNC_DMA_FOR_DEVICE
30	select ARCH_HAS_SYNC_DMA_FOR_CPU
31	select ARCH_HAS_TEARDOWN_DMA_OPS if MMU
32	select ARCH_HAS_TICK_BROADCAST if GENERIC_CLOCKEVENTS_BROADCAST
33	select ARCH_HAVE_NMI_SAFE_CMPXCHG if CPU_V7 || CPU_V7M || CPU_V6K
34	select ARCH_HAS_GCOV_PROFILE_ALL
35	select ARCH_KEEP_MEMBLOCK
36	select ARCH_HAS_UBSAN
37	select ARCH_MIGHT_HAVE_PC_PARPORT
38	select ARCH_OPTIONAL_KERNEL_RWX if ARCH_HAS_STRICT_KERNEL_RWX
39	select ARCH_OPTIONAL_KERNEL_RWX_DEFAULT if CPU_V7
40	select ARCH_NEED_CMPXCHG_1_EMU if CPU_V6
41	select ARCH_SUPPORTS_ATOMIC_RMW
42	select ARCH_SUPPORTS_CFI
43	select ARCH_SUPPORTS_HUGETLBFS if ARM_LPAE
44	select ARCH_SUPPORTS_PER_VMA_LOCK
45	select ARCH_SUPPORTS_RT
46	select ARCH_USE_BUILTIN_BSWAP
47	select ARCH_USE_CMPXCHG_LOCKREF
48	select ARCH_USE_MEMTEST
49	# https://github.com/llvm/llvm-project/commit/d130f402642fba3d065aacb506cb061c899558de
50	select ARCH_USES_CFI_GENERIC_LLVM_PASS if CLANG_VERSION < 220000
51	select ARCH_WANT_DEFAULT_TOPDOWN_MMAP_LAYOUT if MMU
52	select ARCH_WANT_GENERAL_HUGETLB
53	select ARCH_WANT_IPC_PARSE_VERSION
54	select ARCH_WANT_LD_ORPHAN_WARN
55	select BINFMT_FLAT_ARGVP_ENVP_ON_STACK
56	select BUILDTIME_TABLE_SORT if MMU
57	select COMMON_CLK if !(ARCH_RPC || ARCH_FOOTBRIDGE)
58	select CLONE_BACKWARDS
59	select CPU_PM if SUSPEND || CPU_IDLE
60	select DCACHE_WORD_ACCESS if HAVE_EFFICIENT_UNALIGNED_ACCESS
61	select DMA_DECLARE_COHERENT
62	select DMA_GLOBAL_POOL if !MMU
63	select DMA_NONCOHERENT_MMAP if MMU
64	select EDAC_SUPPORT
65	select EDAC_ATOMIC_SCRUB
66	select GENERIC_ALLOCATOR
67	select GENERIC_ARCH_TOPOLOGY if ARM_CPU_TOPOLOGY
68	select GENERIC_ATOMIC64 if CPU_V7M || CPU_V6 || !CPU_32v6K || !AEABI
69	select GENERIC_CLOCKEVENTS_BROADCAST if SMP
70	select GENERIC_IRQ_IPI if SMP
71	select GENERIC_CPU_AUTOPROBE
72	select GENERIC_CPU_DEVICES
73	select GENERIC_EARLY_IOREMAP
74	select GENERIC_IDLE_POLL_SETUP
75	select GENERIC_IRQ_MULTI_HANDLER
76	select GENERIC_IRQ_PROBE
77	select GENERIC_IRQ_SHOW
78	select GENERIC_IRQ_SHOW_LEVEL
79	select GENERIC_LIB_DEVMEM_IS_ALLOWED
80	select GENERIC_PCI_IOMAP
81	select GENERIC_SCHED_CLOCK
82	select GENERIC_SMP_IDLE_THREAD
83	select HARDIRQS_SW_RESEND
84	select HAS_IOPORT
85	select HAVE_ARCH_AUDITSYSCALL if AEABI && !OABI_COMPAT
86	select HAVE_ARCH_BITREVERSE if (CPU_32v7M || CPU_32v7) && !CPU_32v6 && BITREVERSE
87	select HAVE_ARCH_JUMP_LABEL if !XIP_KERNEL && !CPU_ENDIAN_BE32 && MMU && (!PREEMPT_RT || !SMP)
88	select HAVE_ARCH_KFENCE if MMU && !XIP_KERNEL
89	select HAVE_ARCH_KGDB if !CPU_ENDIAN_BE32 && MMU
90	select HAVE_ARCH_KASAN if MMU && !XIP_KERNEL
91	select HAVE_ARCH_KASAN_VMALLOC if HAVE_ARCH_KASAN
92	select HAVE_ARCH_KSTACK_ERASE
93	select HAVE_ARCH_MMAP_RND_BITS if MMU
94	select HAVE_ARCH_PFN_VALID
95	select HAVE_ARCH_SECCOMP
96	select HAVE_ARCH_SECCOMP_FILTER if AEABI && !OABI_COMPAT
97	select HAVE_ARCH_THREAD_STRUCT_WHITELIST
98	select HAVE_ARCH_TRACEHOOK
99	select HAVE_ARCH_TRANSPARENT_HUGEPAGE if ARM_LPAE
100	select HAVE_ARM_SMCCC if CPU_V7
101	select HAVE_EBPF_JIT if !CPU_ENDIAN_BE32
102	select HAVE_CONTEXT_TRACKING_USER
103	select HAVE_C_RECORDMCOUNT
104	select HAVE_BUILDTIME_MCOUNT_SORT
105	select HAVE_DEBUG_KMEMLEAK if !XIP_KERNEL
106	select HAVE_DMA_CONTIGUOUS if MMU
107	select HAVE_EXTRA_IPI_TRACEPOINTS
108	select HAVE_DYNAMIC_FTRACE if !XIP_KERNEL && !CPU_ENDIAN_BE32 && MMU
109	select HAVE_DYNAMIC_FTRACE_WITH_REGS if HAVE_DYNAMIC_FTRACE
110	select HAVE_EFFICIENT_UNALIGNED_ACCESS if (CPU_V6 || CPU_V6K || CPU_V7) && MMU
111	select HAVE_EXIT_THREAD
112	select HAVE_GUP_FAST if ARM_LPAE
113	select HAVE_FUNCTION_ERROR_INJECTION
114	select HAVE_FUNCTION_GRAPH_TRACER
115	select HAVE_FUNCTION_GRAPH_FREGS
116	select HAVE_FUNCTION_TRACER if !XIP_KERNEL
117	select HAVE_GCC_PLUGINS
118	select HAVE_HW_BREAKPOINT if PERF_EVENTS && (CPU_V6 || CPU_V6K || CPU_V7)
119	select HAVE_IRQ_TIME_ACCOUNTING
120	select HAVE_KERNEL_GZIP
121	select HAVE_KERNEL_LZ4
122	select HAVE_KERNEL_LZMA
123	select HAVE_KERNEL_LZO
124	select HAVE_KERNEL_XZ
125	select HAVE_KPROBES if !XIP_KERNEL && !CPU_ENDIAN_BE32 && !CPU_V7M
126	select HAVE_KRETPROBES if HAVE_KPROBES
127	select HAVE_LD_DEAD_CODE_DATA_ELIMINATION if (LD_VERSION >= 23600 || LD_IS_LLD) && LD_CAN_USE_KEEP_IN_OVERLAY
128	select HAVE_MOD_ARCH_SPECIFIC
129	select HAVE_NMI
130	select HAVE_OPTPROBES if !THUMB2_KERNEL
131	select HAVE_PAGE_SIZE_4KB
132	select HAVE_PCI if MMU
133	select HAVE_PERF_EVENTS
134	select HAVE_PERF_REGS
135	select HAVE_PERF_USER_STACK_DUMP
136	select MMU_GATHER_RCU_TABLE_FREE if SMP && ARM_LPAE
137	select HAVE_REGS_AND_STACK_ACCESS_API
138	select HAVE_RSEQ
139	select HAVE_RUST if CPU_LITTLE_ENDIAN && CPU_32v7 && !KASAN
140	select HAVE_STACKPROTECTOR
141	select HAVE_SYSCALL_TRACEPOINTS
142	select HAVE_UID16
143	select HAVE_VIRT_CPU_ACCOUNTING_GEN
144	select HOTPLUG_CORE_SYNC_DEAD if HOTPLUG_CPU
145	select IRQ_FORCED_THREADING
146	select LOCK_MM_AND_FIND_VMA
147	select MODULES_USE_ELF_REL
148	select NEED_DMA_MAP_STATE
149	select OF_EARLY_FLATTREE if OF
150	select OLD_SIGACTION
151	select OLD_SIGSUSPEND3
152	select PCI_DOMAINS_GENERIC if PCI
153	select PCI_SYSCALL if PCI
154	select PERF_USE_VMALLOC
155	select RTC_LIB
156	select SPARSE_IRQ if !(ARCH_FOOTBRIDGE || ARCH_RPC)
157	select SYS_SUPPORTS_APM_EMULATION
158	select THREAD_INFO_IN_TASK
159	select TIMER_OF if OF
160	select HAVE_ARCH_VMAP_STACK if MMU && ARM_HAS_GROUP_RELOCS
161	select TRACE_IRQFLAGS_SUPPORT if !CPU_V7M
162	select USE_OF if !(ARCH_FOOTBRIDGE || ARCH_RPC || ARCH_SA1100)
163	# Above selects are sorted alphabetically; please add new ones
164	# according to that.  Thanks.
165	help
166	  The ARM series is a line of low-power-consumption RISC chip designs
167	  licensed by ARM Ltd and targeted at embedded applications and
168	  handhelds such as the Compaq IPAQ.  ARM-based PCs are no longer
169	  manufactured, but legacy ARM-based PC hardware remains popular in
170	  Europe.  There is an ARM Linux project with a web page at
171	  <http://www.arm.linux.org.uk/>.
172
173config ARM_HAS_GROUP_RELOCS
174	def_bool !COMPILE_TEST
175	help
176	  Whether or not to use R_ARM_ALU_PC_Gn or R_ARM_LDR_PC_Gn group
177	  relocations. The combined range is -/+ 256 MiB, which is usually
178	  sufficient, but not for allyesconfig, so we disable this feature
179	  when doing compile testing.
180
181config ARM_DMA_USE_IOMMU
182	bool
183	select NEED_SG_DMA_LENGTH
184
185if ARM_DMA_USE_IOMMU
186
187config ARM_DMA_IOMMU_ALIGNMENT
188	int "Maximum PAGE_SIZE order of alignment for DMA IOMMU buffers"
189	range 4 9
190	default 8
191	help
192	  DMA mapping framework by default aligns all buffers to the smallest
193	  PAGE_SIZE order which is greater than or equal to the requested buffer
194	  size. This works well for buffers up to a few hundreds kilobytes, but
195	  for larger buffers it just a waste of address space. Drivers which has
196	  relatively small addressing window (like 64Mib) might run out of
197	  virtual space with just a few allocations.
198
199	  With this parameter you can specify the maximum PAGE_SIZE order for
200	  DMA IOMMU buffers. Larger buffers will be aligned only to this
201	  specified order. The order is expressed as a power of two multiplied
202	  by the PAGE_SIZE.
203
204endif
205
206config SYS_SUPPORTS_APM_EMULATION
207	bool
208
209config HAVE_TCM
210	bool
211	select GENERIC_ALLOCATOR
212
213config HAVE_PROC_CPU
214	bool
215
216config NO_IOPORT_MAP
217	bool
218
219config SBUS
220	bool
221
222config STACKTRACE_SUPPORT
223	bool
224	default y
225
226config LOCKDEP_SUPPORT
227	bool
228	default y
229
230config ARCH_HAS_ILOG2_U32
231	bool
232
233config ARCH_HAS_ILOG2_U64
234	bool
235
236config ARCH_HAS_BANDGAP
237	bool
238
239config FIX_EARLYCON_MEM
240	def_bool y if MMU
241
242config GENERIC_HWEIGHT
243	bool
244	default y
245
246config GENERIC_CALIBRATE_DELAY
247	bool
248	default y
249
250config ARCH_MAY_HAVE_PC_FDC
251	bool
252
253config ARCH_SUPPORTS_UPROBES
254	def_bool y
255
256config GENERIC_ISA_DMA
257	bool
258
259config FIQ
260	bool
261
262config ARCH_MTD_XIP
263	bool
264
265config ARM_PATCH_PHYS_VIRT
266	bool "Patch physical to virtual translations at runtime" if !ARCH_MULTIPLATFORM
267	default y
268	depends on MMU
269	help
270	  Patch phys-to-virt and virt-to-phys translation functions at
271	  boot and module load time according to the position of the
272	  kernel in system memory.
273
274	  This can only be used with non-XIP MMU kernels where the base
275	  of physical memory is at a 2 MiB boundary.
276
277	  Only disable this option if you know that you do not require
278	  this feature (eg, building a kernel for a single machine) and
279	  you need to shrink the kernel to the minimal size.
280
281config NEED_MACH_IO_H
282	bool
283	help
284	  Select this when mach/io.h is required to provide special
285	  definitions for this platform.  The need for mach/io.h should
286	  be avoided when possible.
287
288config NEED_MACH_MEMORY_H
289	bool
290	help
291	  Select this when mach/memory.h is required to provide special
292	  definitions for this platform.  The need for mach/memory.h should
293	  be avoided when possible.
294
295config PHYS_OFFSET
296	hex "Physical address of main memory" if MMU
297	depends on !ARM_PATCH_PHYS_VIRT || !AUTO_ZRELADDR
298	default DRAM_BASE if !MMU
299	default 0x00000000 if ARCH_FOOTBRIDGE
300	default 0x10000000 if ARCH_OMAP1 || ARCH_RPC
301	default 0xa0000000 if ARCH_PXA
302	default 0xc0000000 if ARCH_EP93XX || ARCH_SA1100
303	default 0
304	help
305	  Please provide the physical address corresponding to the
306	  location of main memory in your system.
307
308config GENERIC_BUG
309	def_bool y
310	depends on BUG
311
312config PGTABLE_LEVELS
313	int
314	default 3 if ARM_LPAE
315	default 2
316
317menu "System Type"
318
319config MMU
320	bool "MMU-based Paged Memory Management Support"
321	default y
322	help
323	  Select if you want MMU-based virtualised addressing space
324	  support by paged memory management. If unsure, say 'Y'.
325
326config ARM_SINGLE_ARMV7M
327	def_bool !MMU
328	select ARM_NVIC
329	select CPU_V7M
330	select NO_IOPORT_MAP
331
332config ARCH_MMAP_RND_BITS_MIN
333	default 8
334
335config ARCH_MMAP_RND_BITS_MAX
336	default 14 if PAGE_OFFSET=0x40000000
337	default 15 if PAGE_OFFSET=0x80000000
338	default 16
339
340config ARCH_MULTIPLATFORM
341	bool "Require kernel to be portable to multiple machines" if EXPERT
342	depends on MMU && !(ARCH_FOOTBRIDGE || ARCH_RPC || ARCH_SA1100)
343	default y
344	help
345	  In general, all Arm machines can be supported in a single
346	  kernel image, covering either Armv4/v5 or Armv6/v7.
347
348	  However, some configuration options require hardcoding machine
349	  specific physical addresses or enable errata workarounds that may
350	  break other machines.
351
352	  Selecting N here allows using those options, including
353	  DEBUG_UNCOMPRESS, XIP_KERNEL and ZBOOT_ROM. If unsure, say Y.
354
355source "arch/arm/Kconfig.platforms"
356
357#
358# This is sorted alphabetically by mach-* pathname.  However, plat-*
359# Kconfigs may be included either alphabetically (according to the
360# plat- suffix) or along side the corresponding mach-* source.
361#
362source "arch/arm/mach-actions/Kconfig"
363
364source "arch/arm/mach-alpine/Kconfig"
365
366source "arch/arm/mach-artpec/Kconfig"
367
368source "arch/arm/mach-aspeed/Kconfig"
369
370source "arch/arm/mach-at91/Kconfig"
371
372source "arch/arm/mach-axxia/Kconfig"
373
374source "arch/arm/mach-bcm/Kconfig"
375
376source "arch/arm/mach-berlin/Kconfig"
377
378source "arch/arm/mach-clps711x/Kconfig"
379
380source "arch/arm/mach-davinci/Kconfig"
381
382source "arch/arm/mach-digicolor/Kconfig"
383
384source "arch/arm/mach-dove/Kconfig"
385
386source "arch/arm/mach-ep93xx/Kconfig"
387
388source "arch/arm/mach-exynos/Kconfig"
389
390source "arch/arm/mach-footbridge/Kconfig"
391
392source "arch/arm/mach-gemini/Kconfig"
393
394source "arch/arm/mach-highbank/Kconfig"
395
396source "arch/arm/mach-hisi/Kconfig"
397
398source "arch/arm/mach-imx/Kconfig"
399
400source "arch/arm/mach-ixp4xx/Kconfig"
401
402source "arch/arm/mach-keystone/Kconfig"
403
404source "arch/arm/mach-lpc32xx/Kconfig"
405
406source "arch/arm/mach-mediatek/Kconfig"
407
408source "arch/arm/mach-meson/Kconfig"
409
410source "arch/arm/mach-milbeaut/Kconfig"
411
412source "arch/arm/mach-mmp/Kconfig"
413
414source "arch/arm/mach-mstar/Kconfig"
415
416source "arch/arm/mach-mv78xx0/Kconfig"
417
418source "arch/arm/mach-mvebu/Kconfig"
419
420source "arch/arm/mach-mxs/Kconfig"
421
422source "arch/arm/mach-nomadik/Kconfig"
423
424source "arch/arm/mach-npcm/Kconfig"
425
426source "arch/arm/mach-omap1/Kconfig"
427
428source "arch/arm/mach-omap2/Kconfig"
429
430source "arch/arm/mach-orion5x/Kconfig"
431
432source "arch/arm/mach-pxa/Kconfig"
433
434source "arch/arm/mach-qcom/Kconfig"
435
436source "arch/arm/mach-realtek/Kconfig"
437
438source "arch/arm/mach-rpc/Kconfig"
439
440source "arch/arm/mach-rockchip/Kconfig"
441
442source "arch/arm/mach-s3c/Kconfig"
443
444source "arch/arm/mach-s5pv210/Kconfig"
445
446source "arch/arm/mach-sa1100/Kconfig"
447
448source "arch/arm/mach-shmobile/Kconfig"
449
450source "arch/arm/mach-socfpga/Kconfig"
451
452source "arch/arm/mach-spear/Kconfig"
453
454source "arch/arm/mach-sti/Kconfig"
455
456source "arch/arm/mach-stm32/Kconfig"
457
458source "arch/arm/mach-sunxi/Kconfig"
459
460source "arch/arm/mach-tegra/Kconfig"
461
462source "arch/arm/mach-ux500/Kconfig"
463
464source "arch/arm/mach-versatile/Kconfig"
465
466source "arch/arm/mach-vt8500/Kconfig"
467
468source "arch/arm/mach-zte/Kconfig"
469
470source "arch/arm/mach-zynq/Kconfig"
471
472# ARMv7-M architecture
473config ARCH_LPC18XX
474	bool "NXP LPC18xx/LPC43xx"
475	depends on ARM_SINGLE_ARMV7M
476	select ARCH_HAS_RESET_CONTROLLER
477	select ARM_AMBA
478	select CLKSRC_LPC32XX
479	select PINCTRL
480	help
481	  Support for NXP's LPC18xx Cortex-M3 and LPC43xx Cortex-M4
482	  high performance microcontrollers.
483
484config ARCH_MPS2
485	bool "ARM MPS2 platform"
486	depends on ARM_SINGLE_ARMV7M
487	select ARM_AMBA
488	select CLKSRC_MPS2
489	help
490	  Support for Cortex-M Prototyping System (or V2M-MPS2) which comes
491	  with a range of available cores like Cortex-M3/M4/M7.
492
493	  Please, note that depends which Application Note is used memory map
494	  for the platform may vary, so adjustment of RAM base might be needed.
495
496# Definitions to make life easier
497config ARCH_ACORN
498	bool
499
500config PLAT_ORION
501	bool
502	select CLKSRC_MMIO
503	select GENERIC_IRQ_CHIP
504	select IRQ_DOMAIN
505
506config PLAT_ORION_LEGACY
507	bool
508	select PLAT_ORION
509
510config PLAT_VERSATILE
511	bool
512
513source "arch/arm/mm/Kconfig"
514
515config IWMMXT
516	bool "Enable iWMMXt support"
517	depends on CPU_XSCALE || CPU_XSC3 || CPU_MOHAWK
518	default y if PXA27x || PXA3xx || ARCH_MMP
519	help
520	  Enable support for iWMMXt context switching at run time if
521	  running on a CPU that supports it.
522
523if !MMU
524source "arch/arm/Kconfig-nommu"
525endif
526
527config PJ4B_ERRATA_4742
528	bool "PJ4B Errata 4742: IDLE Wake Up Commands can Cause the CPU Core to Cease Operation"
529	depends on CPU_PJ4B && MACH_ARMADA_370
530	default y
531	help
532	  When coming out of either a Wait for Interrupt (WFI) or a Wait for
533	  Event (WFE) IDLE states, a specific timing sensitivity exists between
534	  the retiring WFI/WFE instructions and the newly issued subsequent
535	  instructions.  This sensitivity can result in a CPU hang scenario.
536	  Workaround:
537	  The software must insert either a Data Synchronization Barrier (DSB)
538	  or Data Memory Barrier (DMB) command immediately after the WFI/WFE
539	  instruction
540
541config ARM_ERRATA_326103
542	bool "ARM errata: FSR write bit incorrect on a SWP to read-only memory"
543	depends on CPU_V6
544	help
545	  Executing a SWP instruction to read-only memory does not set bit 11
546	  of the FSR on the ARM 1136 prior to r1p0. This causes the kernel to
547	  treat the access as a read, preventing a COW from occurring and
548	  causing the faulting task to livelock.
549
550config ARM_ERRATA_411920
551	bool "ARM errata: Invalidation of the Instruction Cache operation can fail"
552	depends on CPU_V6 || CPU_V6K
553	help
554	  Invalidation of the Instruction Cache operation can
555	  fail. This erratum is present in 1136 (before r1p4), 1156 and 1176.
556	  It does not affect the MPCore. This option enables the ARM Ltd.
557	  recommended workaround.
558
559config ARM_ERRATA_430973
560	bool "ARM errata: Stale prediction on replaced interworking branch"
561	depends on CPU_V7
562	help
563	  This option enables the workaround for the 430973 Cortex-A8
564	  r1p* erratum. If a code sequence containing an ARM/Thumb
565	  interworking branch is replaced with another code sequence at the
566	  same virtual address, whether due to self-modifying code or virtual
567	  to physical address re-mapping, Cortex-A8 does not recover from the
568	  stale interworking branch prediction. This results in Cortex-A8
569	  executing the new code sequence in the incorrect ARM or Thumb state.
570	  The workaround enables the BTB/BTAC operations by setting ACTLR.IBE
571	  and also flushes the branch target cache at every context switch.
572	  Note that setting specific bits in the ACTLR register may not be
573	  available in non-secure mode.
574
575config ARM_ERRATA_458693
576	bool "ARM errata: Processor deadlock when a false hazard is created"
577	depends on CPU_V7
578	depends on !ARCH_MULTIPLATFORM
579	help
580	  This option enables the workaround for the 458693 Cortex-A8 (r2p0)
581	  erratum. For very specific sequences of memory operations, it is
582	  possible for a hazard condition intended for a cache line to instead
583	  be incorrectly associated with a different cache line. This false
584	  hazard might then cause a processor deadlock. The workaround enables
585	  the L1 caching of the NEON accesses and disables the PLD instruction
586	  in the ACTLR register. Note that setting specific bits in the ACTLR
587	  register may not be available in non-secure mode and thus is not
588	  available on a multiplatform kernel. This should be applied by the
589	  bootloader instead.
590
591config ARM_ERRATA_460075
592	bool "ARM errata: Data written to the L2 cache can be overwritten with stale data"
593	depends on CPU_V7
594	depends on !ARCH_MULTIPLATFORM
595	help
596	  This option enables the workaround for the 460075 Cortex-A8 (r2p0)
597	  erratum. Any asynchronous access to the L2 cache may encounter a
598	  situation in which recent store transactions to the L2 cache are lost
599	  and overwritten with stale memory contents from external memory. The
600	  workaround disables the write-allocate mode for the L2 cache via the
601	  ACTLR register. Note that setting specific bits in the ACTLR register
602	  may not be available in non-secure mode and thus is not available on
603	  a multiplatform kernel. This should be applied by the bootloader
604	  instead.
605
606config ARM_ERRATA_742230
607	bool "ARM errata: DMB operation may be faulty"
608	depends on CPU_V7 && SMP
609	depends on !ARCH_MULTIPLATFORM
610	help
611	  This option enables the workaround for the 742230 Cortex-A9
612	  (r1p0..r2p2) erratum. Under rare circumstances, a DMB instruction
613	  between two write operations may not ensure the correct visibility
614	  ordering of the two writes. This workaround sets a specific bit in
615	  the diagnostic register of the Cortex-A9 which causes the DMB
616	  instruction to behave as a DSB, ensuring the correct behaviour of
617	  the two writes. Note that setting specific bits in the diagnostics
618	  register may not be available in non-secure mode and thus is not
619	  available on a multiplatform kernel. This should be applied by the
620	  bootloader instead.
621
622config ARM_ERRATA_742231
623	bool "ARM errata: Incorrect hazard handling in the SCU may lead to data corruption"
624	depends on CPU_V7 && SMP
625	depends on !ARCH_MULTIPLATFORM
626	help
627	  This option enables the workaround for the 742231 Cortex-A9
628	  (r2p0..r2p2) erratum. Under certain conditions, specific to the
629	  Cortex-A9 MPCore micro-architecture, two CPUs working in SMP mode,
630	  accessing some data located in the same cache line, may get corrupted
631	  data due to bad handling of the address hazard when the line gets
632	  replaced from one of the CPUs at the same time as another CPU is
633	  accessing it. This workaround sets specific bits in the diagnostic
634	  register of the Cortex-A9 which reduces the linefill issuing
635	  capabilities of the processor. Note that setting specific bits in the
636	  diagnostics register may not be available in non-secure mode and thus
637	  is not available on a multiplatform kernel. This should be applied by
638	  the bootloader instead.
639
640config ARM_ERRATA_643719
641	bool "ARM errata: LoUIS bit field in CLIDR register is incorrect"
642	depends on CPU_V7 && SMP
643	default y
644	help
645	  This option enables the workaround for the 643719 Cortex-A9 (prior to
646	  r1p0) erratum. On affected cores the LoUIS bit field of the CLIDR
647	  register returns zero when it should return one. The workaround
648	  corrects this value, ensuring cache maintenance operations which use
649	  it behave as intended and avoiding data corruption.
650
651config ARM_ERRATA_720789
652	bool "ARM errata: TLBIASIDIS and TLBIMVAIS operations can broadcast a faulty ASID"
653	depends on CPU_V7
654	help
655	  This option enables the workaround for the 720789 Cortex-A9 (prior to
656	  r2p0) erratum. A faulty ASID can be sent to the other CPUs for the
657	  broadcasted CP15 TLB maintenance operations TLBIASIDIS and TLBIMVAIS.
658	  As a consequence of this erratum, some TLB entries which should be
659	  invalidated are not, resulting in an incoherency in the system page
660	  tables. The workaround changes the TLB flushing routines to invalidate
661	  entries regardless of the ASID.
662
663config ARM_ERRATA_743622
664	bool "ARM errata: Faulty hazard checking in the Store Buffer may lead to data corruption"
665	depends on CPU_V7
666	depends on !ARCH_MULTIPLATFORM
667	help
668	  This option enables the workaround for the 743622 Cortex-A9
669	  (r2p*) erratum. Under very rare conditions, a faulty
670	  optimisation in the Cortex-A9 Store Buffer may lead to data
671	  corruption. This workaround sets a specific bit in the diagnostic
672	  register of the Cortex-A9 which disables the Store Buffer
673	  optimisation, preventing the defect from occurring. This has no
674	  visible impact on the overall performance or power consumption of the
675	  processor. Note that setting specific bits in the diagnostics register
676	  may not be available in non-secure mode and thus is not available on a
677	  multiplatform kernel. This should be applied by the bootloader instead.
678
679config ARM_ERRATA_751472
680	bool "ARM errata: Interrupted ICIALLUIS may prevent completion of broadcasted operation"
681	depends on CPU_V7
682	depends on !ARCH_MULTIPLATFORM
683	help
684	  This option enables the workaround for the 751472 Cortex-A9 (prior
685	  to r3p0) erratum. An interrupted ICIALLUIS operation may prevent the
686	  completion of a following broadcasted operation if the second
687	  operation is received by a CPU before the ICIALLUIS has completed,
688	  potentially leading to corrupted entries in the cache or TLB.
689	  Note that setting specific bits in the diagnostics register may
690	  not be available in non-secure mode and thus is not available on
691	  a multiplatform kernel. This should be applied by the bootloader
692	  instead.
693
694config ARM_ERRATA_754322
695	bool "ARM errata: possible faulty MMU translations following an ASID switch"
696	depends on CPU_V7
697	help
698	  This option enables the workaround for the 754322 Cortex-A9 (r2p*,
699	  r3p*) erratum. A speculative memory access may cause a page table walk
700	  which starts prior to an ASID switch but completes afterwards. This
701	  can populate the micro-TLB with a stale entry which may be hit with
702	  the new ASID. This workaround places two dsb instructions in the mm
703	  switching code so that no page table walks can cross the ASID switch.
704
705config ARM_ERRATA_754327
706	bool "ARM errata: no automatic Store Buffer drain"
707	depends on CPU_V7 && SMP
708	help
709	  This option enables the workaround for the 754327 Cortex-A9 (prior to
710	  r2p0) erratum. The Store Buffer does not have any automatic draining
711	  mechanism and therefore a livelock may occur if an external agent
712	  continuously polls a memory location waiting to observe an update.
713	  This workaround defines cpu_relax() as smp_mb(), preventing correctly
714	  written polling loops from denying visibility of updates to memory.
715
716config ARM_ERRATA_364296
717	bool "ARM errata: Possible cache data corruption with hit-under-miss enabled"
718	depends on CPU_V6
719	help
720	  This options enables the workaround for the 364296 ARM1136
721	  r0p2 erratum (possible cache data corruption with
722	  hit-under-miss enabled). It sets the undocumented bit 31 in
723	  the auxiliary control register and the FI bit in the control
724	  register, thus disabling hit-under-miss without putting the
725	  processor into full low interrupt latency mode. ARM11MPCore
726	  is not affected.
727
728config ARM_ERRATA_764369
729	bool "ARM errata: Data cache line maintenance operation by MVA may not succeed"
730	depends on CPU_V7 && SMP
731	help
732	  This option enables the workaround for erratum 764369
733	  affecting Cortex-A9 MPCore with two or more processors (all
734	  current revisions). Under certain timing circumstances, a data
735	  cache line maintenance operation by MVA targeting an Inner
736	  Shareable memory region may fail to proceed up to either the
737	  Point of Coherency or to the Point of Unification of the
738	  system. This workaround adds a DSB instruction before the
739	  relevant cache maintenance functions and sets a specific bit
740	  in the diagnostic control register of the SCU.
741
742config ARM_ERRATA_764319
743	bool "ARM errata: Read to DBGPRSR and DBGOSLSR may generate Undefined instruction"
744	depends on CPU_V7
745	help
746	  This option enables the workaround for the 764319 Cortex-A9 erratum.
747	  CP14 read accesses to the DBGPRSR and DBGOSLSR registers generate an
748	  unexpected Undefined Instruction exception when the DBGSWENABLE
749	  external pin is set to 0, even when the CP14 accesses are performed
750	  from a privileged mode. This work around catches the exception in a
751	  way the kernel does not stop execution.
752
753config ARM_ERRATA_775420
754       bool "ARM errata: A data cache maintenance operation which aborts, might lead to deadlock"
755       depends on CPU_V7
756       help
757	 This option enables the workaround for the 775420 Cortex-A9 (r2p2,
758	 r2p6,r2p8,r2p10,r3p0) erratum. In case a data cache maintenance
759	 operation aborts with MMU exception, it might cause the processor
760	 to deadlock. This workaround puts DSB before executing ISB if
761	 an abort may occur on cache maintenance.
762
763config ARM_ERRATA_798181
764	bool "ARM errata: TLBI/DSB failure on Cortex-A15"
765	depends on CPU_V7 && SMP
766	help
767	  On Cortex-A15 (r0p0..r3p2) the TLBI*IS/DSB operations are not
768	  adequately shooting down all use of the old entries. This
769	  option enables the Linux kernel workaround for this erratum
770	  which sends an IPI to the CPUs that are running the same ASID
771	  as the one being invalidated.
772
773config ARM_ERRATA_773022
774	bool "ARM errata: incorrect instructions may be executed from loop buffer"
775	depends on CPU_V7
776	help
777	  This option enables the workaround for the 773022 Cortex-A15
778	  (up to r0p4) erratum. In certain rare sequences of code, the
779	  loop buffer may deliver incorrect instructions. This
780	  workaround disables the loop buffer to avoid the erratum.
781
782config ARM_ERRATA_818325_852422
783	bool "ARM errata: A12: some seqs of opposed cond code instrs => deadlock or corruption"
784	depends on CPU_V7
785	help
786	  This option enables the workaround for:
787	  - Cortex-A12 818325: Execution of an UNPREDICTABLE STR or STM
788	    instruction might deadlock.  Fixed in r0p1.
789	  - Cortex-A12 852422: Execution of a sequence of instructions might
790	    lead to either a data corruption or a CPU deadlock.  Not fixed in
791	    any Cortex-A12 cores yet.
792	  This workaround for all both errata involves setting bit[12] of the
793	  Feature Register. This bit disables an optimisation applied to a
794	  sequence of 2 instructions that use opposing condition codes.
795
796config ARM_ERRATA_821420
797	bool "ARM errata: A12: sequence of VMOV to core registers might lead to a dead lock"
798	depends on CPU_V7
799	help
800	  This option enables the workaround for the 821420 Cortex-A12
801	  (all revs) erratum. In very rare timing conditions, a sequence
802	  of VMOV to Core registers instructions, for which the second
803	  one is in the shadow of a branch or abort, can lead to a
804	  deadlock when the VMOV instructions are issued out-of-order.
805
806config ARM_ERRATA_825619
807	bool "ARM errata: A12: DMB NSHST/ISHST mixed ... might cause deadlock"
808	depends on CPU_V7
809	help
810	  This option enables the workaround for the 825619 Cortex-A12
811	  (all revs) erratum. Within rare timing constraints, executing a
812	  DMB NSHST or DMB ISHST instruction followed by a mix of Cacheable
813	  and Device/Strongly-Ordered loads and stores might cause deadlock
814
815config ARM_ERRATA_857271
816	bool "ARM errata: A12: CPU might deadlock under some very rare internal conditions"
817	depends on CPU_V7
818	help
819	  This option enables the workaround for the 857271 Cortex-A12
820	  (all revs) erratum. Under very rare timing conditions, the CPU might
821	  hang. The workaround is expected to have a < 1% performance impact.
822
823config ARM_ERRATA_852421
824	bool "ARM errata: A17: DMB ST might fail to create order between stores"
825	depends on CPU_V7
826	help
827	  This option enables the workaround for the 852421 Cortex-A17
828	  (r1p0, r1p1, r1p2) erratum. Under very rare timing conditions,
829	  execution of a DMB ST instruction might fail to properly order
830	  stores from GroupA and stores from GroupB.
831
832config ARM_ERRATA_852423
833	bool "ARM errata: A17: some seqs of opposed cond code instrs => deadlock or corruption"
834	depends on CPU_V7
835	help
836	  This option enables the workaround for:
837	  - Cortex-A17 852423: Execution of a sequence of instructions might
838	    lead to either a data corruption or a CPU deadlock.  Not fixed in
839	    any Cortex-A17 cores yet.
840	  This is identical to Cortex-A12 erratum 852422.  It is a separate
841	  config option from the A12 erratum due to the way errata are checked
842	  for and handled.
843
844config ARM_ERRATA_857272
845	bool "ARM errata: A17: CPU might deadlock under some very rare internal conditions"
846	depends on CPU_V7
847	help
848	  This option enables the workaround for the 857272 Cortex-A17 erratum.
849	  This erratum is not known to be fixed in any A17 revision.
850	  This is identical to Cortex-A12 erratum 857271.  It is a separate
851	  config option from the A12 erratum due to the way errata are checked
852	  for and handled.
853
854endmenu
855
856source "arch/arm/common/Kconfig"
857
858menu "Bus support"
859
860config ISA
861	bool
862	help
863	  Find out whether you have ISA slots on your motherboard.  ISA is the
864	  name of a bus system, i.e. the way the CPU talks to the other stuff
865	  inside your box.  Other bus systems are PCI, EISA, MicroChannel
866	  (MCA) or VESA.  ISA is an older system, now being displaced by PCI;
867	  newer boards don't support it.  If you have ISA, say Y, otherwise N.
868
869# Select ISA DMA interface
870config ISA_DMA_API
871	bool
872
873config ARM_ERRATA_814220
874	bool "ARM errata: Cache maintenance by set/way operations can execute out of order"
875	depends on CPU_V7
876	help
877	  The v7 ARM states that all cache and branch predictor maintenance
878	  operations that do not specify an address execute, relative to
879	  each other, in program order.
880	  However, because of this erratum, an L2 set/way cache maintenance
881	  operation can overtake an L1 set/way cache maintenance operation.
882	  This ERRATA only affected the Cortex-A7 and present in r0p2, r0p3,
883	  r0p4, r0p5.
884
885endmenu
886
887menu "Kernel Features"
888
889config HAVE_SMP
890	bool
891	help
892	  This option should be selected by machines which have an SMP-
893	  capable CPU.
894
895	  The only effect of this option is to make the SMP-related
896	  options available to the user for configuration.
897
898config SMP
899	bool "Symmetric Multi-Processing"
900	depends on CPU_V6K || CPU_V7
901	depends on HAVE_SMP
902	depends on MMU || ARM_MPU
903	select IRQ_WORK
904	help
905	  This enables support for systems with more than one CPU. If you have
906	  a system with only one CPU, say N. If you have a system with more
907	  than one CPU, say Y.
908
909	  If you say N here, the kernel will run on uni- and multiprocessor
910	  machines, but will use only one CPU of a multiprocessor machine. If
911	  you say Y here, the kernel will run on many, but not all,
912	  uniprocessor machines. On a uniprocessor machine, the kernel
913	  will run faster if you say N here.
914
915	  See also <file:Documentation/arch/x86/i386/IO-APIC.rst>,
916	  <file:Documentation/admin-guide/lockup-watchdogs.rst> and the SMP-HOWTO available at
917	  <http://tldp.org/HOWTO/SMP-HOWTO.html>.
918
919	  If you don't know what to do here, say N.
920
921config SMP_ON_UP
922	bool "Allow booting SMP kernel on uniprocessor systems"
923	depends on SMP && MMU
924	default y
925	help
926	  SMP kernels contain instructions which fail on non-SMP processors.
927	  Enabling this option allows the kernel to modify itself to make
928	  these instructions safe.  Disabling it allows about 1K of space
929	  savings.
930
931	  If you don't know what to do here, say Y.
932
933
934config CURRENT_POINTER_IN_TPIDRURO
935	def_bool y
936	depends on CPU_32v6K && !CPU_V6
937
938config IRQSTACKS
939	def_bool y
940	select HAVE_IRQ_EXIT_ON_IRQ_STACK
941	select HAVE_SOFTIRQ_ON_OWN_STACK
942
943config ARM_CPU_TOPOLOGY
944	bool "Support cpu topology definition"
945	depends on SMP && CPU_V7
946	select ARCH_SUPPORTS_SCHED_MC
947	select ARCH_SUPPORTS_SCHED_SMT
948	default y
949	help
950	  Support ARM cpu topology definition. The MPIDR register defines
951	  affinity between processors which is then used to describe the cpu
952	  topology of an ARM System.
953
954config HAVE_ARM_SCU
955	bool
956	help
957	  This option enables support for the ARM snoop control unit
958
959config HAVE_ARM_ARCH_TIMER
960	bool "Architected timer support"
961	depends on CPU_V7
962	select ARM_ARCH_TIMER
963	help
964	  This option enables support for the ARM architected timer
965
966config HAVE_ARM_TWD
967	bool
968	help
969	  This options enables support for the ARM timer and watchdog unit
970
971config MCPM
972	bool "Multi-Cluster Power Management"
973	depends on CPU_V7 && SMP
974	help
975	  This option provides the common power management infrastructure
976	  for (multi-)cluster based systems, such as big.LITTLE based
977	  systems.
978
979config MCPM_QUAD_CLUSTER
980	bool
981	depends on MCPM
982	help
983	  To avoid wasting resources unnecessarily, MCPM only supports up
984	  to 2 clusters by default.
985	  Platforms with 3 or 4 clusters that use MCPM must select this
986	  option to allow the additional clusters to be managed.
987
988config BIG_LITTLE
989	bool "big.LITTLE support (Experimental)"
990	depends on CPU_V7 && SMP
991	select MCPM
992	help
993	  This option enables support selections for the big.LITTLE
994	  system architecture.
995
996config BL_SWITCHER
997	bool "big.LITTLE switcher support"
998	depends on BIG_LITTLE && MCPM && HOTPLUG_CPU && ARM_GIC
999	select CPU_PM
1000	help
1001	  The big.LITTLE "switcher" provides the core functionality to
1002	  transparently handle transition between a cluster of A15's
1003	  and a cluster of A7's in a big.LITTLE system.
1004
1005config BL_SWITCHER_DUMMY_IF
1006	tristate "Simple big.LITTLE switcher user interface"
1007	depends on BL_SWITCHER && DEBUG_KERNEL
1008	help
1009	  This is a simple and dummy char dev interface to control
1010	  the big.LITTLE switcher core code.  It is meant for
1011	  debugging purposes only.
1012
1013choice
1014	prompt "Memory split"
1015	depends on MMU
1016	default VMSPLIT_3G
1017	help
1018	  Select the desired split between kernel and user memory.
1019
1020	  If you are not absolutely sure what you are doing, leave this
1021	  option alone!
1022
1023	config VMSPLIT_3G
1024		bool "3G/1G user/kernel split"
1025	config VMSPLIT_3G_OPT
1026		depends on !ARM_LPAE
1027		bool "3G/1G user/kernel split (for full 1G low memory)"
1028	config VMSPLIT_2G
1029		bool "2G/2G user/kernel split"
1030	config VMSPLIT_1G
1031		bool "1G/3G user/kernel split"
1032endchoice
1033
1034config PAGE_OFFSET
1035	hex
1036	default PHYS_OFFSET if !MMU
1037	default 0x40000000 if VMSPLIT_1G
1038	default 0x80000000 if VMSPLIT_2G
1039	default 0xB0000000 if VMSPLIT_3G_OPT
1040	default 0xC0000000
1041
1042config KASAN_SHADOW_OFFSET
1043	hex
1044	depends on KASAN
1045	default 0x1f000000 if PAGE_OFFSET=0x40000000
1046	default 0x5f000000 if PAGE_OFFSET=0x80000000
1047	default 0x9f000000 if PAGE_OFFSET=0xC0000000
1048	default 0x8f000000 if PAGE_OFFSET=0xB0000000
1049	default 0xffffffff
1050
1051config NR_CPUS
1052	int "Maximum number of CPUs (2-32)"
1053	range 2 16 if DEBUG_KMAP_LOCAL
1054	range 2 32 if !DEBUG_KMAP_LOCAL
1055	depends on SMP
1056	default "4"
1057	help
1058	  The maximum number of CPUs that the kernel can support.
1059	  Up to 32 CPUs can be supported, or up to 16 if kmap_local()
1060	  debugging is enabled, which uses half of the per-CPU fixmap
1061	  slots as guard regions.
1062
1063config HOTPLUG_CPU
1064	bool "Support for hot-pluggable CPUs"
1065	depends on SMP
1066	select GENERIC_IRQ_MIGRATION
1067	help
1068	  Say Y here to experiment with turning CPUs off and on.  CPUs
1069	  can be controlled through /sys/devices/system/cpu.
1070
1071config ARM_PSCI
1072	bool "Support for the ARM Power State Coordination Interface (PSCI)"
1073	depends on HAVE_ARM_SMCCC
1074	select ARM_PSCI_FW
1075	help
1076	  Say Y here if you want Linux to communicate with system firmware
1077	  implementing the PSCI specification for CPU-centric power
1078	  management operations described in ARM document number ARM DEN
1079	  0022A ("Power State Coordination Interface System Software on
1080	  ARM processors").
1081
1082config HZ_FIXED
1083	int
1084	default 128 if SOC_AT91RM9200
1085	default 0
1086
1087choice
1088	depends on HZ_FIXED = 0
1089	prompt "Timer frequency"
1090
1091config HZ_100
1092	bool "100 Hz"
1093
1094config HZ_200
1095	bool "200 Hz"
1096
1097config HZ_250
1098	bool "250 Hz"
1099
1100config HZ_300
1101	bool "300 Hz"
1102
1103config HZ_500
1104	bool "500 Hz"
1105
1106config HZ_1000
1107	bool "1000 Hz"
1108
1109endchoice
1110
1111config HZ
1112	int
1113	default HZ_FIXED if HZ_FIXED != 0
1114	default 100 if HZ_100
1115	default 200 if HZ_200
1116	default 250 if HZ_250
1117	default 300 if HZ_300
1118	default 500 if HZ_500
1119	default 1000
1120
1121config SCHED_HRTICK
1122	def_bool HIGH_RES_TIMERS
1123
1124config THUMB2_KERNEL
1125	bool "Compile the kernel in Thumb-2 mode" if !CPU_THUMBONLY
1126	depends on (CPU_V7 || CPU_V7M) && !CPU_V6 && !CPU_V6K
1127	default y if CPU_THUMBONLY
1128	select ARM_UNWIND
1129	help
1130	  By enabling this option, the kernel will be compiled in
1131	  Thumb-2 mode.
1132
1133	  If unsure, say N.
1134
1135config ARM_PATCH_IDIV
1136	bool "Runtime patch udiv/sdiv instructions into __aeabi_{u}idiv()"
1137	depends on CPU_32v7
1138	default y
1139	help
1140	  The ARM compiler inserts calls to __aeabi_idiv() and
1141	  __aeabi_uidiv() when it needs to perform division on signed
1142	  and unsigned integers. Some v7 CPUs have support for the sdiv
1143	  and udiv instructions that can be used to implement those
1144	  functions.
1145
1146	  Enabling this option allows the kernel to modify itself to
1147	  replace the first two instructions of these library functions
1148	  with the sdiv or udiv plus "bx lr" instructions when the CPU
1149	  it is running on supports them. Typically this will be faster
1150	  and less power intensive than running the original library
1151	  code to do integer division.
1152
1153config AEABI
1154	bool "Use the ARM EABI to compile the kernel" if !CPU_V7 && \
1155		!CPU_V7M && !CPU_V6 && !CPU_V6K && !CC_IS_CLANG
1156	default CPU_V7 || CPU_V7M || CPU_V6 || CPU_V6K || CC_IS_CLANG
1157	help
1158	  This option allows for the kernel to be compiled using the latest
1159	  ARM ABI (aka EABI).  This is only useful if you are using a user
1160	  space environment that is also compiled with EABI.
1161
1162	  Since there are major incompatibilities between the legacy ABI and
1163	  EABI, especially with regard to structure member alignment, this
1164	  option also changes the kernel syscall calling convention to
1165	  disambiguate both ABIs and allow for backward compatibility support
1166	  (selected with CONFIG_OABI_COMPAT).
1167
1168config OABI_COMPAT
1169	bool "Allow old ABI binaries to run with this kernel (EXPERIMENTAL)"
1170	depends on AEABI && !THUMB2_KERNEL
1171	help
1172	  This option preserves the old syscall interface along with the
1173	  new (ARM EABI) one. It also provides a compatibility layer to
1174	  intercept syscalls that have structure arguments which layout
1175	  in memory differs between the legacy ABI and the new ARM EABI
1176	  (only for non "thumb" binaries). This option adds a tiny
1177	  overhead to all syscalls and produces a slightly larger kernel.
1178
1179	  The seccomp filter system will not be available when this is
1180	  selected, since there is no way yet to sensibly distinguish
1181	  between calling conventions during filtering.
1182
1183	  If you know you'll be using only pure EABI user space then you
1184	  can say N here. If this option is not selected and you attempt
1185	  to execute a legacy ABI binary then the result will be
1186	  UNPREDICTABLE (in fact it can be predicted that it won't work
1187	  at all). If in doubt say N.
1188
1189config ARCH_SELECT_MEMORY_MODEL
1190	def_bool y
1191
1192config ARCH_FLATMEM_ENABLE
1193	def_bool !(ARCH_RPC || ARCH_SA1100)
1194
1195config ARCH_SPARSEMEM_ENABLE
1196	def_bool !ARCH_FOOTBRIDGE
1197	select SPARSEMEM_STATIC if SPARSEMEM
1198
1199config HIGHMEM
1200	bool "High Memory Support"
1201	depends on MMU
1202	select KMAP_LOCAL
1203	select KMAP_LOCAL_NON_LINEAR_PTE_ARRAY
1204	help
1205	  The address space of ARM processors is only 4 Gigabytes large
1206	  and it has to accommodate user address space, kernel address
1207	  space as well as some memory mapped IO. That means that, if you
1208	  have a large amount of physical memory and/or IO, not all of the
1209	  memory can be "permanently mapped" by the kernel. The physical
1210	  memory that is not permanently mapped is called "high memory".
1211
1212	  Depending on the selected kernel/user memory split, minimum
1213	  vmalloc space and actual amount of RAM, you may not need this
1214	  option which should result in a slightly faster kernel.
1215
1216	  If unsure, say n.
1217
1218config HIGHPTE
1219	bool "Allocate 2nd-level pagetables from highmem" if EXPERT
1220	depends on HIGHMEM && !PREEMPT_RT
1221	default y
1222	help
1223	  The VM uses one page of physical memory for each page table.
1224	  For systems with a lot of processes, this can use a lot of
1225	  precious low memory, eventually leading to low memory being
1226	  consumed by page tables.  Setting this option will allow
1227	  user-space 2nd level page tables to reside in high memory.
1228
1229config ARM_PAN
1230	bool "Enable privileged no-access"
1231	depends on MMU
1232	default y
1233	help
1234	  Increase kernel security by ensuring that normal kernel accesses
1235	  are unable to access userspace addresses.  This can help prevent
1236	  use-after-free bugs becoming an exploitable privilege escalation
1237	  by ensuring that magic values (such as LIST_POISON) will always
1238	  fault when dereferenced.
1239
1240	  The implementation uses CPU domains when !CONFIG_ARM_LPAE and
1241	  disabling of TTBR0 page table walks with CONFIG_ARM_LPAE.
1242
1243config CPU_SW_DOMAIN_PAN
1244	def_bool y
1245	depends on ARM_PAN && !ARM_LPAE
1246	help
1247	  Enable use of CPU domains to implement privileged no-access.
1248
1249	  CPUs with low-vector mappings use a best-efforts implementation.
1250	  Their lower 1MB needs to remain accessible for the vectors, but
1251	  the remainder of userspace will become appropriately inaccessible.
1252
1253config CPU_TTBR0_PAN
1254	def_bool y
1255	depends on ARM_PAN && ARM_LPAE
1256	help
1257	  Enable privileged no-access by disabling TTBR0 page table walks when
1258	  running in kernel mode.
1259
1260config HW_PERF_EVENTS
1261	def_bool y
1262	depends on ARM_PMU
1263
1264config ARM_MODULE_PLTS
1265	bool "Use PLTs to allow module memory to spill over into vmalloc area"
1266	depends on MODULES
1267	select KASAN_VMALLOC if KASAN
1268	default y
1269	help
1270	  Allocate PLTs when loading modules so that jumps and calls whose
1271	  targets are too far away for their relative offsets to be encoded
1272	  in the instructions themselves can be bounced via veneers in the
1273	  module's PLT. This allows modules to be allocated in the generic
1274	  vmalloc area after the dedicated module memory area has been
1275	  exhausted. The modules will use slightly more memory, but after
1276	  rounding up to page size, the actual memory footprint is usually
1277	  the same.
1278
1279	  Disabling this is usually safe for small single-platform
1280	  configurations. If unsure, say y.
1281
1282config ARCH_FORCE_MAX_ORDER
1283	int "Order of maximal physically contiguous allocations"
1284	default "11" if SOC_AM33XX
1285	default "8" if SA1111
1286	default "10"
1287	help
1288	  The kernel page allocator limits the size of maximal physically
1289	  contiguous allocations. The limit is called MAX_PAGE_ORDER and it
1290	  defines the maximal power of two of number of pages that can be
1291	  allocated as a single contiguous block. This option allows
1292	  overriding the default setting when ability to allocate very
1293	  large blocks of physically contiguous memory is required.
1294
1295	  Don't change if unsure.
1296
1297config ALIGNMENT_TRAP
1298	def_bool CPU_CP15_MMU
1299	select HAVE_PROC_CPU if PROC_FS
1300	help
1301	  ARM processors cannot fetch/store information which is not
1302	  naturally aligned on the bus, i.e., a 4 byte fetch must start at an
1303	  address divisible by 4. On 32-bit ARM processors, these non-aligned
1304	  fetch/store instructions will be emulated in software if you say
1305	  here, which has a severe performance impact. This is necessary for
1306	  correct operation of some network protocols. With an IP-only
1307	  configuration it is safe to say N, otherwise say Y.
1308
1309config UACCESS_WITH_MEMCPY
1310	bool "Use kernel mem{cpy,set}() for {copy_to,clear}_user()"
1311	depends on MMU
1312	default y if CPU_FEROCEON
1313	help
1314	  Implement faster copy_to_user and clear_user methods for CPU
1315	  cores where a 8-word STM instruction give significantly higher
1316	  memory write throughput than a sequence of individual 32bit stores.
1317
1318	  A possible side effect is a slight increase in scheduling latency
1319	  between threads sharing the same address space if they invoke
1320	  such copy operations with large buffers.
1321
1322	  However, if the CPU data cache is using a write-allocate mode,
1323	  this option is unlikely to provide any performance gain.
1324
1325config PARAVIRT
1326	bool "Enable paravirtualization code"
1327	select HAVE_PV_STEAL_CLOCK_GEN
1328	help
1329	  This changes the kernel so it can modify itself when it is run
1330	  under a hypervisor, potentially improving performance significantly
1331	  over full virtualization.
1332
1333config PARAVIRT_TIME_ACCOUNTING
1334	bool "Paravirtual steal time accounting"
1335	select PARAVIRT
1336	help
1337	  Select this option to enable fine granularity task steal time
1338	  accounting. Time spent executing other tasks in parallel with
1339	  the current vCPU is discounted from the vCPU power. To account for
1340	  that, there can be a small performance impact.
1341
1342	  If in doubt, say N here.
1343
1344config XEN_DOM0
1345	def_bool y
1346	depends on XEN
1347
1348config XEN
1349	bool "Xen guest support on ARM"
1350	depends on ARM && AEABI && OF
1351	depends on CPU_V7 && !CPU_V6
1352	depends on !GENERIC_ATOMIC64
1353	depends on MMU
1354	select ARCH_DMA_ADDR_T_64BIT
1355	select ARM_PSCI
1356	select SWIOTLB
1357	select SWIOTLB_XEN
1358	select PARAVIRT
1359	help
1360	  Say Y if you want to run Linux in a Virtual Machine on Xen on ARM.
1361
1362config CC_HAVE_STACKPROTECTOR_TLS
1363	def_bool $(cc-option,-mtp=cp15 -mstack-protector-guard=tls -mstack-protector-guard-offset=0)
1364
1365config STACKPROTECTOR_PER_TASK
1366	bool "Use a unique stack canary value for each task"
1367	depends on STACKPROTECTOR && CURRENT_POINTER_IN_TPIDRURO && !XIP_DEFLATED_DATA
1368	depends on CC_HAVE_STACKPROTECTOR_TLS
1369	default y
1370	help
1371	  Due to the fact that GCC uses an ordinary symbol reference from
1372	  which to load the value of the stack canary, this value can only
1373	  change at reboot time on SMP systems, and all tasks running in the
1374	  kernel's address space are forced to use the same canary value for
1375	  the entire duration that the system is up.
1376
1377	  Enable this option to switch to a different method that uses a
1378	  different canary value for each task.
1379
1380endmenu
1381
1382menu "Boot options"
1383
1384config USE_OF
1385	bool "Flattened Device Tree support"
1386	select IRQ_DOMAIN
1387	select OF
1388	help
1389	  Include support for flattened device tree machine descriptions.
1390
1391config ARCH_WANT_FLAT_DTB_INSTALL
1392	def_bool y
1393
1394config ATAGS
1395	bool "Support for the traditional ATAGS boot data passing"
1396	default y
1397	help
1398	  This is the traditional way of passing data to the kernel at boot
1399	  time. If you are solely relying on the flattened device tree (or
1400	  the ARM_ATAG_DTB_COMPAT option) then you may unselect this option
1401	  to remove ATAGS support from your kernel binary.
1402
1403config DEPRECATED_PARAM_STRUCT
1404	bool "Provide old way to pass kernel parameters"
1405	depends on ATAGS
1406	help
1407	  This was deprecated in 2001 and announced to live on for 5 years.
1408	  Some old boot loaders still use this way.
1409
1410# Compressed boot loader in ROM.  Yes, we really want to ask about
1411# TEXT and BSS so we preserve their values in the config files.
1412config ZBOOT_ROM_TEXT
1413	hex "Compressed ROM boot loader base address"
1414	default 0x0
1415	help
1416	  The physical address at which the ROM-able zImage is to be
1417	  placed in the target.  Platforms which normally make use of
1418	  ROM-able zImage formats normally set this to a suitable
1419	  value in their defconfig file.
1420
1421	  If ZBOOT_ROM is not enabled, this has no effect.
1422
1423config ZBOOT_ROM_BSS
1424	hex "Compressed ROM boot loader BSS address"
1425	default 0x0
1426	help
1427	  The base address of an area of read/write memory in the target
1428	  for the ROM-able zImage which must be available while the
1429	  decompressor is running. It must be large enough to hold the
1430	  entire decompressed kernel plus an additional 128 KiB.
1431	  Platforms which normally make use of ROM-able zImage formats
1432	  normally set this to a suitable value in their defconfig file.
1433
1434	  If ZBOOT_ROM is not enabled, this has no effect.
1435
1436config ZBOOT_ROM
1437	bool "Compressed boot loader in ROM/flash"
1438	depends on ZBOOT_ROM_TEXT != ZBOOT_ROM_BSS
1439	depends on !ARM_APPENDED_DTB && !XIP_KERNEL && !AUTO_ZRELADDR
1440	help
1441	  Say Y here if you intend to execute your compressed kernel image
1442	  (zImage) directly from ROM or flash.  If unsure, say N.
1443
1444config ARM_APPENDED_DTB
1445	bool "Use appended device tree blob to zImage (EXPERIMENTAL)"
1446	depends on OF
1447	help
1448	  With this option, the boot code will look for a device tree binary
1449	  (DTB) appended to zImage
1450	  (e.g. cat zImage <filename>.dtb > zImage_w_dtb).
1451
1452	  This is meant as a backward compatibility convenience for those
1453	  systems with a bootloader that can't be upgraded to accommodate
1454	  the documented boot protocol using a device tree.
1455
1456	  Beware that there is very little in terms of protection against
1457	  this option being confused by leftover garbage in memory that might
1458	  look like a DTB header after a reboot if no actual DTB is appended
1459	  to zImage.  Do not leave this option active in a production kernel
1460	  if you don't intend to always append a DTB.  Proper passing of the
1461	  location into r2 of a bootloader provided DTB is always preferable
1462	  to this option.
1463
1464config ARM_ATAG_DTB_COMPAT
1465	bool "Supplement the appended DTB with traditional ATAG information"
1466	depends on ARM_APPENDED_DTB
1467	help
1468	  Some old bootloaders can't be updated to a DTB capable one, yet
1469	  they provide ATAGs with memory configuration, the ramdisk address,
1470	  the kernel cmdline string, etc.  Such information is dynamically
1471	  provided by the bootloader and can't always be stored in a static
1472	  DTB.  To allow a device tree enabled kernel to be used with such
1473	  bootloaders, this option allows zImage to extract the information
1474	  from the ATAG list and store it at run time into the appended DTB.
1475
1476choice
1477	prompt "Kernel command line type"
1478	depends on ARM_ATAG_DTB_COMPAT
1479	default ARM_ATAG_DTB_COMPAT_CMDLINE_FROM_BOOTLOADER
1480
1481config ARM_ATAG_DTB_COMPAT_CMDLINE_FROM_BOOTLOADER
1482	bool "Use bootloader kernel arguments if available"
1483	help
1484	  Uses the command-line options passed by the boot loader instead of
1485	  the device tree bootargs property. If the boot loader doesn't provide
1486	  any, the device tree bootargs property will be used.
1487
1488config ARM_ATAG_DTB_COMPAT_CMDLINE_EXTEND
1489	bool "Extend with bootloader kernel arguments"
1490	help
1491	  The command-line arguments provided by the boot loader will be
1492	  appended to the the device tree bootargs property.
1493
1494endchoice
1495
1496config CMDLINE
1497	string "Default kernel command string"
1498	default ""
1499	help
1500	  On some architectures (e.g. CATS), there is currently no way
1501	  for the boot loader to pass arguments to the kernel. For these
1502	  architectures, you should supply some command-line options at build
1503	  time by entering them here. As a minimum, you should specify the
1504	  memory size and the root device (e.g., mem=64M root=/dev/nfs).
1505
1506choice
1507	prompt "Kernel command line type"
1508	depends on CMDLINE != ""
1509	default CMDLINE_FROM_BOOTLOADER
1510
1511config CMDLINE_FROM_BOOTLOADER
1512	bool "Use bootloader kernel arguments if available"
1513	help
1514	  Uses the command-line options passed by the boot loader. If
1515	  the boot loader doesn't provide any, the default kernel command
1516	  string provided in CMDLINE will be used.
1517
1518config CMDLINE_EXTEND
1519	bool "Extend bootloader kernel arguments"
1520	help
1521	  The command-line arguments provided by the boot loader will be
1522	  appended to the default kernel command string.
1523
1524config CMDLINE_FORCE
1525	bool "Always use the default kernel command string"
1526	help
1527	  Always use the default kernel command string, even if the boot
1528	  loader passes other arguments to the kernel.
1529	  This is useful if you cannot or don't want to change the
1530	  command-line options your boot loader passes to the kernel.
1531endchoice
1532
1533config XIP_KERNEL
1534	bool "Kernel Execute-In-Place from ROM"
1535	depends on !ARM_LPAE && !ARCH_MULTIPLATFORM
1536	depends on !ARM_PATCH_IDIV && !ARM_PATCH_PHYS_VIRT && !SMP_ON_UP
1537	help
1538	  Execute-In-Place allows the kernel to run from non-volatile storage
1539	  directly addressable by the CPU, such as NOR flash. This saves RAM
1540	  space since the text section of the kernel is not loaded from flash
1541	  to RAM.  Read-write sections, such as the data section and stack,
1542	  are still copied to RAM.  The XIP kernel is not compressed since
1543	  it has to run directly from flash, so it will take more space to
1544	  store it.  The flash address used to link the kernel object files,
1545	  and for storing it, is configuration dependent. Therefore, if you
1546	  say Y here, you must know the proper physical address where to
1547	  store the kernel image depending on your own flash memory usage.
1548
1549	  Also note that the make target becomes "make xipImage" rather than
1550	  "make zImage" or "make Image".  The final kernel binary to put in
1551	  ROM memory will be arch/arm/boot/xipImage.
1552
1553	  If unsure, say N.
1554
1555config XIP_PHYS_ADDR
1556	hex "XIP Kernel Physical Location"
1557	depends on XIP_KERNEL
1558	default "0x00080000"
1559	help
1560	  This is the physical address in your flash memory the kernel will
1561	  be linked for and stored to.  This address is dependent on your
1562	  own flash usage.
1563
1564config XIP_DEFLATED_DATA
1565	bool "Store kernel .data section compressed in ROM"
1566	depends on XIP_KERNEL
1567	select ZLIB_INFLATE
1568	help
1569	  Before the kernel is actually executed, its .data section has to be
1570	  copied to RAM from ROM. This option allows for storing that data
1571	  in compressed form and decompressed to RAM rather than merely being
1572	  copied, saving some precious ROM space. A possible drawback is a
1573	  slightly longer boot delay.
1574
1575config ARCH_SUPPORTS_KEXEC
1576	def_bool (!SMP || PM_SLEEP_SMP) && MMU
1577
1578config ATAGS_PROC
1579	bool "Export atags in procfs"
1580	depends on ATAGS && KEXEC
1581	default y
1582	help
1583	  Should the atags used to boot the kernel be exported in an "atags"
1584	  file in procfs. Useful with kexec.
1585
1586config ARCH_SUPPORTS_CRASH_DUMP
1587	def_bool y
1588
1589config ARCH_DEFAULT_CRASH_DUMP
1590	def_bool y
1591
1592config AUTO_ZRELADDR
1593	bool "Auto calculation of the decompressed kernel image address" if !ARCH_MULTIPLATFORM
1594	default !(ARCH_FOOTBRIDGE || ARCH_RPC || ARCH_SA1100)
1595	help
1596	  ZRELADDR is the physical address where the decompressed kernel
1597	  image will be placed. If AUTO_ZRELADDR is selected, the address
1598	  will be determined at run-time, either by masking the current IP
1599	  with 0xf8000000, or, if invalid, from the DTB passed in r2.
1600	  This assumes the zImage being placed in the first 128MB from
1601	  start of memory.
1602
1603config EFI_STUB
1604	bool
1605
1606config EFI
1607	bool "UEFI runtime support"
1608	depends on OF && !CPU_BIG_ENDIAN && MMU && AUTO_ZRELADDR && !XIP_KERNEL
1609	select UCS2_STRING
1610	select EFI_PARAMS_FROM_FDT
1611	select EFI_STUB
1612	select EFI_GENERIC_STUB
1613	select EFI_RUNTIME_WRAPPERS
1614	help
1615	  This option provides support for runtime services provided
1616	  by UEFI firmware (such as non-volatile variables, realtime
1617	  clock, and platform reset). A UEFI stub is also provided to
1618	  allow the kernel to be booted as an EFI application. This
1619	  is only useful for kernels that may run on systems that have
1620	  UEFI firmware.
1621
1622config DMI
1623	bool "Enable support for SMBIOS (DMI) tables"
1624	depends on EFI
1625	default y
1626	help
1627	  This enables SMBIOS/DMI feature for systems.
1628
1629	  This option is only useful on systems that have UEFI firmware.
1630	  However, even with this option, the resultant kernel should
1631	  continue to boot on existing non-UEFI platforms.
1632
1633	  NOTE: This does *NOT* enable or encourage the use of DMI quirks,
1634	  i.e., the the practice of identifying the platform via DMI to
1635	  decide whether certain workarounds for buggy hardware and/or
1636	  firmware need to be enabled. This would require the DMI subsystem
1637	  to be enabled much earlier than we do on ARM, which is non-trivial.
1638
1639endmenu
1640
1641menu "CPU Power Management"
1642
1643source "drivers/cpufreq/Kconfig"
1644
1645source "drivers/cpuidle/Kconfig"
1646
1647endmenu
1648
1649menu "Floating point emulation"
1650
1651comment "At least one emulation must be selected"
1652
1653config FPE_NWFPE
1654	bool "NWFPE math emulation"
1655	depends on (!AEABI || OABI_COMPAT) && !THUMB2_KERNEL
1656	help
1657	  Say Y to include the NWFPE floating point emulator in the kernel.
1658	  This is necessary to run most binaries. Linux does not currently
1659	  support floating point hardware so you need to say Y here even if
1660	  your machine has an FPA or floating point co-processor podule.
1661
1662	  You may say N here if you are going to load the Acorn FPEmulator
1663	  early in the bootup.
1664
1665config FPE_NWFPE_XP
1666	bool "Support extended precision"
1667	depends on FPE_NWFPE
1668	help
1669	  Say Y to include 80-bit support in the kernel floating-point
1670	  emulator.  Otherwise, only 32 and 64-bit support is compiled in.
1671	  Note that gcc does not generate 80-bit operations by default,
1672	  so in most cases this option only enlarges the size of the
1673	  floating point emulator without any good reason.
1674
1675	  You almost surely want to say N here.
1676
1677config FPE_FASTFPE
1678	bool "FastFPE math emulation (EXPERIMENTAL)"
1679	depends on (!AEABI || OABI_COMPAT) && !CPU_32v3
1680	help
1681	  Say Y here to include the FAST floating point emulator in the kernel.
1682	  This is an experimental much faster emulator which now also has full
1683	  precision for the mantissa.  It does not support any exceptions.
1684	  It is very simple, and approximately 3-6 times faster than NWFPE.
1685
1686	  It should be sufficient for most programs.  It may be not suitable
1687	  for scientific calculations, but you have to check this for yourself.
1688	  If you do not feel you need a faster FP emulation you should better
1689	  choose NWFPE.
1690
1691config VFP
1692	bool "VFP-format floating point maths"
1693	depends on CPU_V6 || CPU_V6K || CPU_ARM926T || CPU_V7 || CPU_FEROCEON
1694	help
1695	  Say Y to include VFP support code in the kernel. This is needed
1696	  if your hardware includes a VFP unit.
1697
1698	  Please see <file:Documentation/arch/arm/vfp/release-notes.rst> for
1699	  release notes and additional status information.
1700
1701	  Say N if your target does not have VFP hardware.
1702
1703config VFPv3
1704	bool
1705	depends on VFP
1706	default y if CPU_V7
1707
1708config NEON
1709	bool "Advanced SIMD (NEON) Extension support"
1710	depends on VFPv3 && CPU_V7
1711	help
1712	  Say Y to include support code for NEON, the ARMv7 Advanced SIMD
1713	  Extension.
1714
1715config KERNEL_MODE_NEON
1716	bool "Support for NEON in kernel mode"
1717	depends on NEON && AEABI
1718	help
1719	  Say Y to include support for NEON in kernel mode.
1720
1721endmenu
1722
1723config ARCH_CC_CAN_LINK
1724	bool
1725	default $(cc_can_link_user,-mlittle-endian) if CPU_LITTLE_ENDIAN
1726	default $(cc_can_link_user,-mbig-endian -mbe8) if CPU_ENDIAN_BE8
1727	default $(cc_can_link_user,-mbig-endian -mbe32) if CPU_ENDIAN_BE32
1728
1729config ARCH_USERFLAGS
1730	string
1731	default "-mlittle-endian" if CPU_LITTLE_ENDIAN
1732	default "-mbig-endian -mbe8" if CPU_ENDIAN_BE8
1733	default "-mbig-endian -mbe32" if CPU_ENDIAN_BE32
1734
1735menu "Power management options"
1736
1737source "kernel/power/Kconfig"
1738
1739config ARCH_SUSPEND_POSSIBLE
1740	depends on CPU_ARM920T || CPU_ARM926T || CPU_FEROCEON || CPU_SA1100 || \
1741		CPU_V6 || CPU_V6K || CPU_V7 || CPU_V7M || CPU_XSC3 || CPU_XSCALE || CPU_MOHAWK
1742	def_bool y
1743
1744config ARM_CPU_SUSPEND
1745	def_bool PM_SLEEP || BL_SWITCHER || ARM_PSCI_FW
1746	depends on ARCH_SUSPEND_POSSIBLE
1747
1748config ARCH_HIBERNATION_POSSIBLE
1749	bool
1750	depends on MMU
1751	default y if ARCH_SUSPEND_POSSIBLE
1752
1753endmenu
1754