xref: /linux/arch/arm64/kernel/cpufeature.c (revision 546b928da0427b0d6c663cbb992bd7bfa9ac7971)
1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3  * Contains CPU feature definitions
4  *
5  * Copyright (C) 2015 ARM Ltd.
6  *
7  * A note for the weary kernel hacker: the code here is confusing and hard to
8  * follow! That's partly because it's solving a nasty problem, but also because
9  * there's a little bit of over-abstraction that tends to obscure what's going
10  * on behind a maze of helper functions and macros.
11  *
12  * The basic problem is that hardware folks have started gluing together CPUs
13  * with distinct architectural features; in some cases even creating SoCs where
14  * user-visible instructions are available only on a subset of the available
15  * cores. We try to address this by snapshotting the feature registers of the
16  * boot CPU and comparing these with the feature registers of each secondary
17  * CPU when bringing them up. If there is a mismatch, then we update the
18  * snapshot state to indicate the lowest-common denominator of the feature,
19  * known as the "safe" value. This snapshot state can be queried to view the
20  * "sanitised" value of a feature register.
21  *
22  * The sanitised register values are used to decide which capabilities we
23  * have in the system. These may be in the form of traditional "hwcaps"
24  * advertised to userspace or internal "cpucaps" which are used to configure
25  * things like alternative patching and static keys. While a feature mismatch
26  * may result in a TAINT_CPU_OUT_OF_SPEC kernel taint, a capability mismatch
27  * may prevent a CPU from being onlined at all.
28  *
29  * Some implementation details worth remembering:
30  *
31  * - Mismatched features are *always* sanitised to a "safe" value, which
32  *   usually indicates that the feature is not supported.
33  *
34  * - A mismatched feature marked with FTR_STRICT will cause a "SANITY CHECK"
35  *   warning when onlining an offending CPU and the kernel will be tainted
36  *   with TAINT_CPU_OUT_OF_SPEC.
37  *
38  * - Features marked as FTR_VISIBLE have their sanitised value visible to
39  *   userspace. FTR_VISIBLE features in registers that are only visible
40  *   to EL0 by trapping *must* have a corresponding HWCAP so that late
41  *   onlining of CPUs cannot lead to features disappearing at runtime.
42  *
43  * - A "feature" is typically a 4-bit register field. A "capability" is the
44  *   high-level description derived from the sanitised field value.
45  *
46  * - Read the Arm ARM (DDI 0487F.a) section D13.1.3 ("Principles of the ID
47  *   scheme for fields in ID registers") to understand when feature fields
48  *   may be signed or unsigned (FTR_SIGNED and FTR_UNSIGNED accordingly).
49  *
50  * - KVM exposes its own view of the feature registers to guest operating
51  *   systems regardless of FTR_VISIBLE. This is typically driven from the
52  *   sanitised register values to allow virtual CPUs to be migrated between
53  *   arbitrary physical CPUs, but some features not present on the host are
54  *   also advertised and emulated. Look at sys_reg_descs[] for the gory
55  *   details.
56  *
57  * - If the arm64_ftr_bits[] for a register has a missing field, then this
58  *   field is treated as STRICT RES0, including for read_sanitised_ftr_reg().
59  *   This is stronger than FTR_HIDDEN and can be used to hide features from
60  *   KVM guests.
61  */
62 
63 #define pr_fmt(fmt) "CPU features: " fmt
64 
65 #include <linux/bsearch.h>
66 #include <linux/cpumask.h>
67 #include <linux/crash_dump.h>
68 #include <linux/kstrtox.h>
69 #include <linux/sort.h>
70 #include <linux/stop_machine.h>
71 #include <linux/sysfs.h>
72 #include <linux/types.h>
73 #include <linux/minmax.h>
74 #include <linux/mm.h>
75 #include <linux/cpu.h>
76 #include <linux/kasan.h>
77 #include <linux/percpu.h>
78 #include <linux/sched/isolation.h>
79 
80 #include <asm/arm_pmuv3.h>
81 #include <asm/cpu.h>
82 #include <asm/cpufeature.h>
83 #include <asm/cpu_ops.h>
84 #include <asm/fpsimd.h>
85 #include <asm/hwcap.h>
86 #include <asm/insn.h>
87 #include <asm/kvm_host.h>
88 #include <asm/mmu.h>
89 #include <asm/mmu_context.h>
90 #include <asm/mpam.h>
91 #include <asm/mte.h>
92 #include <asm/hypervisor.h>
93 #include <asm/processor.h>
94 #include <asm/smp.h>
95 #include <asm/sysreg.h>
96 #include <asm/traps.h>
97 #include <asm/vectors.h>
98 #include <asm/virt.h>
99 
100 #include <asm/spectre.h>
101 /* Kernel representation of AT_HWCAP and AT_HWCAP2 */
102 static DECLARE_BITMAP(elf_hwcap, MAX_CPU_FEATURES) __read_mostly;
103 
104 #ifdef CONFIG_COMPAT
105 #define COMPAT_ELF_HWCAP_DEFAULT	\
106 				(COMPAT_HWCAP_HALF|COMPAT_HWCAP_THUMB|\
107 				 COMPAT_HWCAP_FAST_MULT|COMPAT_HWCAP_EDSP|\
108 				 COMPAT_HWCAP_TLS|COMPAT_HWCAP_IDIV|\
109 				 COMPAT_HWCAP_LPAE)
110 unsigned int compat_elf_hwcap __read_mostly = COMPAT_ELF_HWCAP_DEFAULT;
111 unsigned int compat_elf_hwcap2 __read_mostly;
112 unsigned int compat_elf_hwcap3 __read_mostly;
113 #endif
114 
115 DECLARE_BITMAP(system_cpucaps, ARM64_NCAPS);
116 EXPORT_SYMBOL(system_cpucaps);
117 static struct arm64_cpu_capabilities const __ro_after_init *cpucap_ptrs[ARM64_NCAPS];
118 
119 DECLARE_BITMAP(boot_cpucaps, ARM64_NCAPS);
120 
121 /*
122  * arm64_use_ng_mappings must be placed in the .data section, otherwise it
123  * ends up in the .bss section where it is initialized in early_map_kernel()
124  * after the MMU (with the idmap) was enabled. create_init_idmap() - which
125  * runs before early_map_kernel() and reads the variable via PTE_MAYBE_NG -
126  * may end up generating an incorrect idmap page table attributes.
127  */
128 bool arm64_use_ng_mappings __read_mostly = false;
129 EXPORT_SYMBOL(arm64_use_ng_mappings);
130 
131 DEFINE_PER_CPU_READ_MOSTLY(const char *, this_cpu_vector) = vectors;
132 
133 /*
134  * Permit PER_LINUX32 and execve() of 32-bit binaries even if not all CPUs
135  * support it?
136  */
137 static bool __read_mostly allow_mismatched_32bit_el0;
138 
139 /*
140  * Static branch enabled only if allow_mismatched_32bit_el0 is set and we have
141  * seen at least one CPU capable of 32-bit EL0.
142  */
143 DEFINE_STATIC_KEY_FALSE(arm64_mismatched_32bit_el0);
144 
145 /*
146  * Mask of CPUs supporting 32-bit EL0.
147  * Only valid if arm64_mismatched_32bit_el0 is enabled.
148  */
149 static cpumask_var_t cpu_32bit_el0_mask __cpumask_var_read_mostly;
150 
dump_cpu_features(void)151 void dump_cpu_features(void)
152 {
153 	/* file-wide pr_fmt adds "CPU features: " prefix */
154 	pr_emerg("0x%*pb\n", ARM64_NCAPS, &system_cpucaps);
155 }
156 
157 #define __ARM64_MAX_POSITIVE(reg, field)				\
158 		((reg##_##field##_SIGNED ?				\
159 		  BIT(reg##_##field##_WIDTH - 1) :			\
160 		  BIT(reg##_##field##_WIDTH)) - 1)
161 
162 #define __ARM64_MIN_NEGATIVE(reg, field)  BIT(reg##_##field##_WIDTH - 1)
163 
164 #define __ARM64_CPUID_FIELDS(reg, field, min_value, max_value)		\
165 		.sys_reg = SYS_##reg,					\
166 		.field_pos = reg##_##field##_SHIFT,			\
167 		.field_width = reg##_##field##_WIDTH,			\
168 		.sign = reg##_##field##_SIGNED,				\
169 		.min_field_value = min_value,				\
170 		.max_field_value = max_value,
171 
172 /*
173  * ARM64_CPUID_FIELDS() encodes a field with a range from min_value to
174  * an implicit maximum that depends on the sign-ess of the field.
175  *
176  * An unsigned field will be capped at all ones, while a signed field
177  * will be limited to the positive half only.
178  */
179 #define ARM64_CPUID_FIELDS(reg, field, min_value)			\
180 	__ARM64_CPUID_FIELDS(reg, field,				\
181 			     SYS_FIELD_VALUE(reg, field, min_value),	\
182 			     __ARM64_MAX_POSITIVE(reg, field))
183 
184 /*
185  * ARM64_CPUID_FIELDS_NEG() encodes a field with a range from an
186  * implicit minimal value to max_value. This should be used when
187  * matching a non-implemented property.
188  */
189 #define ARM64_CPUID_FIELDS_NEG(reg, field, max_value)			\
190 	__ARM64_CPUID_FIELDS(reg, field,				\
191 			     __ARM64_MIN_NEGATIVE(reg, field),		\
192 			     SYS_FIELD_VALUE(reg, field, max_value))
193 
194 #define __ARM64_FTR_BITS(SIGNED, VISIBLE, STRICT, TYPE, SHIFT, WIDTH, SAFE_VAL) \
195 	{						\
196 		.sign = SIGNED,				\
197 		.visible = VISIBLE,			\
198 		.strict = STRICT,			\
199 		.type = TYPE,				\
200 		.shift = SHIFT,				\
201 		.width = WIDTH,				\
202 		.safe_val = SAFE_VAL,			\
203 	}
204 
205 /* Define a feature with unsigned values */
206 #define ARM64_FTR_BITS(VISIBLE, STRICT, TYPE, SHIFT, WIDTH, SAFE_VAL) \
207 	__ARM64_FTR_BITS(FTR_UNSIGNED, VISIBLE, STRICT, TYPE, SHIFT, WIDTH, SAFE_VAL)
208 
209 /* Define a feature with a signed value */
210 #define S_ARM64_FTR_BITS(VISIBLE, STRICT, TYPE, SHIFT, WIDTH, SAFE_VAL) \
211 	__ARM64_FTR_BITS(FTR_SIGNED, VISIBLE, STRICT, TYPE, SHIFT, WIDTH, SAFE_VAL)
212 
213 #define ARM64_FTR_END					\
214 	{						\
215 		.width = 0,				\
216 	}
217 
218 static void cpu_enable_cnp(struct arm64_cpu_capabilities const *cap);
219 
220 static bool __system_matches_cap(unsigned int n);
221 
222 /*
223  * NOTE: Any changes to the visibility of features should be kept in
224  * sync with the documentation of the CPU feature register ABI.
225  */
226 static const struct arm64_ftr_bits ftr_id_aa64isar0[] = {
227 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ISAR0_EL1_RNDR_SHIFT, 4, 0),
228 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ISAR0_EL1_TLB_SHIFT, 4, 0),
229 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ISAR0_EL1_TS_SHIFT, 4, 0),
230 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ISAR0_EL1_FHM_SHIFT, 4, 0),
231 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ISAR0_EL1_DP_SHIFT, 4, 0),
232 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ISAR0_EL1_SM4_SHIFT, 4, 0),
233 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ISAR0_EL1_SM3_SHIFT, 4, 0),
234 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ISAR0_EL1_SHA3_SHIFT, 4, 0),
235 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ISAR0_EL1_RDM_SHIFT, 4, 0),
236 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ISAR0_EL1_ATOMIC_SHIFT, 4, 0),
237 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ISAR0_EL1_CRC32_SHIFT, 4, 0),
238 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ISAR0_EL1_SHA2_SHIFT, 4, 0),
239 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ISAR0_EL1_SHA1_SHIFT, 4, 0),
240 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ISAR0_EL1_AES_SHIFT, 4, 0),
241 	ARM64_FTR_END,
242 };
243 
244 static const struct arm64_ftr_bits ftr_id_aa64isar1[] = {
245 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ISAR1_EL1_LS64_SHIFT, 4, 0),
246 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ISAR1_EL1_XS_SHIFT, 4, 0),
247 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ISAR1_EL1_I8MM_SHIFT, 4, 0),
248 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ISAR1_EL1_DGH_SHIFT, 4, 0),
249 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ISAR1_EL1_BF16_SHIFT, 4, 0),
250 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ISAR1_EL1_SPECRES_SHIFT, 4, 0),
251 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ISAR1_EL1_SB_SHIFT, 4, 0),
252 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ISAR1_EL1_FRINTTS_SHIFT, 4, 0),
253 	ARM64_FTR_BITS(FTR_VISIBLE_IF_IS_ENABLED(CONFIG_ARM64_PTR_AUTH),
254 		       FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ISAR1_EL1_GPI_SHIFT, 4, 0),
255 	ARM64_FTR_BITS(FTR_VISIBLE_IF_IS_ENABLED(CONFIG_ARM64_PTR_AUTH),
256 		       FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ISAR1_EL1_GPA_SHIFT, 4, 0),
257 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ISAR1_EL1_LRCPC_SHIFT, 4, 0),
258 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ISAR1_EL1_FCMA_SHIFT, 4, 0),
259 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ISAR1_EL1_JSCVT_SHIFT, 4, 0),
260 	ARM64_FTR_BITS(FTR_VISIBLE_IF_IS_ENABLED(CONFIG_ARM64_PTR_AUTH),
261 		       FTR_STRICT, FTR_EXACT, ID_AA64ISAR1_EL1_API_SHIFT, 4, 0),
262 	ARM64_FTR_BITS(FTR_VISIBLE_IF_IS_ENABLED(CONFIG_ARM64_PTR_AUTH),
263 		       FTR_STRICT, FTR_EXACT, ID_AA64ISAR1_EL1_APA_SHIFT, 4, 0),
264 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ISAR1_EL1_DPB_SHIFT, 4, 0),
265 	ARM64_FTR_END,
266 };
267 
268 static const struct arm64_ftr_bits ftr_id_aa64isar2[] = {
269 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ISAR2_EL1_ATS1A_SHIFT, 4, 0),
270 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_NONSTRICT, FTR_LOWER_SAFE, ID_AA64ISAR2_EL1_LUT_SHIFT, 4, 0),
271 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_NONSTRICT, FTR_LOWER_SAFE, ID_AA64ISAR2_EL1_CSSC_SHIFT, 4, 0),
272 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_NONSTRICT, FTR_LOWER_SAFE, ID_AA64ISAR2_EL1_RPRFM_SHIFT, 4, 0),
273 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ISAR2_EL1_CLRBHB_SHIFT, 4, 0),
274 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ISAR2_EL1_BC_SHIFT, 4, 0),
275 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ISAR2_EL1_MOPS_SHIFT, 4, 0),
276 	ARM64_FTR_BITS(FTR_VISIBLE_IF_IS_ENABLED(CONFIG_ARM64_PTR_AUTH),
277 		       FTR_STRICT, FTR_EXACT, ID_AA64ISAR2_EL1_APA3_SHIFT, 4, 0),
278 	ARM64_FTR_BITS(FTR_VISIBLE_IF_IS_ENABLED(CONFIG_ARM64_PTR_AUTH),
279 		       FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ISAR2_EL1_GPA3_SHIFT, 4, 0),
280 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_NONSTRICT, FTR_LOWER_SAFE, ID_AA64ISAR2_EL1_RPRES_SHIFT, 4, 0),
281 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_NONSTRICT, FTR_LOWER_SAFE, ID_AA64ISAR2_EL1_WFxT_SHIFT, 4, 0),
282 	ARM64_FTR_END,
283 };
284 
285 static const struct arm64_ftr_bits ftr_id_aa64isar3[] = {
286 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_NONSTRICT, FTR_LOWER_SAFE, ID_AA64ISAR3_EL1_FPRCVT_SHIFT, 4, 0),
287 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_NONSTRICT, FTR_LOWER_SAFE, ID_AA64ISAR3_EL1_LSUI_SHIFT, 4, ID_AA64ISAR3_EL1_LSUI_NI),
288 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_NONSTRICT, FTR_LOWER_SAFE, ID_AA64ISAR3_EL1_LSFE_SHIFT, 4, 0),
289 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_NONSTRICT, FTR_LOWER_SAFE, ID_AA64ISAR3_EL1_FAMINMAX_SHIFT, 4, 0),
290 	ARM64_FTR_END,
291 };
292 
293 static const struct arm64_ftr_bits ftr_id_aa64pfr0[] = {
294 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_NONSTRICT, FTR_LOWER_SAFE, ID_AA64PFR0_EL1_CSV3_SHIFT, 4, 0),
295 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_NONSTRICT, FTR_LOWER_SAFE, ID_AA64PFR0_EL1_CSV2_SHIFT, 4, 0),
296 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64PFR0_EL1_DIT_SHIFT, 4, 0),
297 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_NONSTRICT, FTR_LOWER_SAFE, ID_AA64PFR0_EL1_AMU_SHIFT, 4, 0),
298 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64PFR0_EL1_MPAM_SHIFT, 4, 0),
299 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_NONSTRICT, FTR_LOWER_SAFE, ID_AA64PFR0_EL1_SEL2_SHIFT, 4, 0),
300 	ARM64_FTR_BITS(FTR_VISIBLE_IF_IS_ENABLED(CONFIG_ARM64_SVE),
301 				   FTR_STRICT, FTR_LOWER_SAFE, ID_AA64PFR0_EL1_SVE_SHIFT, 4, 0),
302 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64PFR0_EL1_RAS_SHIFT, 4, 0),
303 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64PFR0_EL1_GIC_SHIFT, 4, 0),
304 	S_ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64PFR0_EL1_AdvSIMD_SHIFT, 4, ID_AA64PFR0_EL1_AdvSIMD_NI),
305 	S_ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64PFR0_EL1_FP_SHIFT, 4, ID_AA64PFR0_EL1_FP_NI),
306 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_NONSTRICT, FTR_LOWER_SAFE, ID_AA64PFR0_EL1_EL3_SHIFT, 4, 0),
307 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_NONSTRICT, FTR_LOWER_SAFE, ID_AA64PFR0_EL1_EL2_SHIFT, 4, 0),
308 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_NONSTRICT, FTR_LOWER_SAFE, ID_AA64PFR0_EL1_EL1_SHIFT, 4, ID_AA64PFR0_EL1_EL1_IMP),
309 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_NONSTRICT, FTR_LOWER_SAFE, ID_AA64PFR0_EL1_EL0_SHIFT, 4, ID_AA64PFR0_EL1_EL0_IMP),
310 	ARM64_FTR_END,
311 };
312 
313 static const struct arm64_ftr_bits ftr_id_aa64pfr1[] = {
314 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64PFR1_EL1_DF2_SHIFT, 4, 0),
315 	ARM64_FTR_BITS(FTR_VISIBLE_IF_IS_ENABLED(CONFIG_ARM64_GCS),
316 		       FTR_STRICT, FTR_LOWER_SAFE, ID_AA64PFR1_EL1_GCS_SHIFT, 4, 0),
317 	S_ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64PFR1_EL1_MTE_frac_SHIFT, 4, 0),
318 	ARM64_FTR_BITS(FTR_VISIBLE_IF_IS_ENABLED(CONFIG_ARM64_SME),
319 		       FTR_STRICT, FTR_LOWER_SAFE, ID_AA64PFR1_EL1_SME_SHIFT, 4, 0),
320 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64PFR1_EL1_MPAM_frac_SHIFT, 4, 0),
321 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64PFR1_EL1_RAS_frac_SHIFT, 4, 0),
322 	ARM64_FTR_BITS(FTR_VISIBLE_IF_IS_ENABLED(CONFIG_ARM64_MTE),
323 		       FTR_STRICT, FTR_LOWER_SAFE, ID_AA64PFR1_EL1_MTE_SHIFT, 4, ID_AA64PFR1_EL1_MTE_NI),
324 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_NONSTRICT, FTR_LOWER_SAFE, ID_AA64PFR1_EL1_SSBS_SHIFT, 4, ID_AA64PFR1_EL1_SSBS_NI),
325 	ARM64_FTR_BITS(FTR_VISIBLE_IF_IS_ENABLED(CONFIG_ARM64_BTI),
326 				    FTR_STRICT, FTR_LOWER_SAFE, ID_AA64PFR1_EL1_BT_SHIFT, 4, 0),
327 	ARM64_FTR_END,
328 };
329 
330 static const struct arm64_ftr_bits ftr_id_aa64pfr2[] = {
331 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64PFR2_EL1_FPMR_SHIFT, 4, 0),
332 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64PFR2_EL1_GCIE_SHIFT, 4, ID_AA64PFR2_EL1_GCIE_NI),
333 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_NONSTRICT, FTR_LOWER_SAFE, ID_AA64PFR2_EL1_MTEFAR_SHIFT, 4, ID_AA64PFR2_EL1_MTEFAR_NI),
334 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_NONSTRICT, FTR_LOWER_SAFE, ID_AA64PFR2_EL1_MTESTOREONLY_SHIFT, 4, ID_AA64PFR2_EL1_MTESTOREONLY_NI),
335 	ARM64_FTR_END,
336 };
337 
338 static const struct arm64_ftr_bits ftr_id_aa64zfr0[] = {
339 	ARM64_FTR_BITS(FTR_VISIBLE_IF_IS_ENABLED(CONFIG_ARM64_SVE),
340 		       FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ZFR0_EL1_F64MM_SHIFT, 4, 0),
341 	ARM64_FTR_BITS(FTR_VISIBLE_IF_IS_ENABLED(CONFIG_ARM64_SVE),
342 		       FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ZFR0_EL1_F32MM_SHIFT, 4, 0),
343 	ARM64_FTR_BITS(FTR_VISIBLE_IF_IS_ENABLED(CONFIG_ARM64_SVE),
344 		       FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ZFR0_EL1_F16MM_SHIFT, 4, 0),
345 	ARM64_FTR_BITS(FTR_VISIBLE_IF_IS_ENABLED(CONFIG_ARM64_SVE),
346 		       FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ZFR0_EL1_I8MM_SHIFT, 4, 0),
347 	ARM64_FTR_BITS(FTR_VISIBLE_IF_IS_ENABLED(CONFIG_ARM64_SVE),
348 		       FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ZFR0_EL1_SM4_SHIFT, 4, 0),
349 	ARM64_FTR_BITS(FTR_VISIBLE_IF_IS_ENABLED(CONFIG_ARM64_SVE),
350 		       FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ZFR0_EL1_SHA3_SHIFT, 4, 0),
351 	ARM64_FTR_BITS(FTR_VISIBLE_IF_IS_ENABLED(CONFIG_ARM64_SVE),
352 		       FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ZFR0_EL1_B16B16_SHIFT, 4, 0),
353 	ARM64_FTR_BITS(FTR_VISIBLE_IF_IS_ENABLED(CONFIG_ARM64_SVE),
354 		       FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ZFR0_EL1_BF16_SHIFT, 4, 0),
355 	ARM64_FTR_BITS(FTR_VISIBLE_IF_IS_ENABLED(CONFIG_ARM64_SVE),
356 		       FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ZFR0_EL1_BitPerm_SHIFT, 4, 0),
357 	ARM64_FTR_BITS(FTR_VISIBLE_IF_IS_ENABLED(CONFIG_ARM64_SVE),
358 		       FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ZFR0_EL1_EltPerm_SHIFT, 4, 0),
359 	ARM64_FTR_BITS(FTR_VISIBLE_IF_IS_ENABLED(CONFIG_ARM64_SVE),
360 		       FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ZFR0_EL1_AES_SHIFT, 4, 0),
361 	ARM64_FTR_BITS(FTR_VISIBLE_IF_IS_ENABLED(CONFIG_ARM64_SVE),
362 		       FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ZFR0_EL1_SVEver_SHIFT, 4, 0),
363 	ARM64_FTR_END,
364 };
365 
366 static const struct arm64_ftr_bits ftr_id_aa64smfr0[] = {
367 	ARM64_FTR_BITS(FTR_VISIBLE_IF_IS_ENABLED(CONFIG_ARM64_SME),
368 		       FTR_STRICT, FTR_EXACT, ID_AA64SMFR0_EL1_FA64_SHIFT, 1, 0),
369 	ARM64_FTR_BITS(FTR_VISIBLE_IF_IS_ENABLED(CONFIG_ARM64_SME),
370 		       FTR_STRICT, FTR_EXACT, ID_AA64SMFR0_EL1_LUT6_SHIFT, 1, 0),
371 	ARM64_FTR_BITS(FTR_VISIBLE_IF_IS_ENABLED(CONFIG_ARM64_SME),
372 		       FTR_STRICT, FTR_EXACT, ID_AA64SMFR0_EL1_LUTv2_SHIFT, 1, 0),
373 	ARM64_FTR_BITS(FTR_VISIBLE_IF_IS_ENABLED(CONFIG_ARM64_SME),
374 		       FTR_STRICT, FTR_EXACT, ID_AA64SMFR0_EL1_SMEver_SHIFT, 4, 0),
375 	ARM64_FTR_BITS(FTR_VISIBLE_IF_IS_ENABLED(CONFIG_ARM64_SME),
376 		       FTR_STRICT, FTR_EXACT, ID_AA64SMFR0_EL1_I16I64_SHIFT, 4, 0),
377 	ARM64_FTR_BITS(FTR_VISIBLE_IF_IS_ENABLED(CONFIG_ARM64_SME),
378 		       FTR_STRICT, FTR_EXACT, ID_AA64SMFR0_EL1_F64F64_SHIFT, 1, 0),
379 	ARM64_FTR_BITS(FTR_VISIBLE_IF_IS_ENABLED(CONFIG_ARM64_SME),
380 		       FTR_STRICT, FTR_EXACT, ID_AA64SMFR0_EL1_I16I32_SHIFT, 4, 0),
381 	ARM64_FTR_BITS(FTR_VISIBLE_IF_IS_ENABLED(CONFIG_ARM64_SME),
382 		       FTR_STRICT, FTR_EXACT, ID_AA64SMFR0_EL1_B16B16_SHIFT, 1, 0),
383 	ARM64_FTR_BITS(FTR_VISIBLE_IF_IS_ENABLED(CONFIG_ARM64_SME),
384 		       FTR_STRICT, FTR_EXACT, ID_AA64SMFR0_EL1_F16F16_SHIFT, 1, 0),
385 	ARM64_FTR_BITS(FTR_VISIBLE_IF_IS_ENABLED(CONFIG_ARM64_SME),
386 		       FTR_STRICT, FTR_EXACT, ID_AA64SMFR0_EL1_F8F16_SHIFT, 1, 0),
387 	ARM64_FTR_BITS(FTR_VISIBLE_IF_IS_ENABLED(CONFIG_ARM64_SME),
388 		       FTR_STRICT, FTR_EXACT, ID_AA64SMFR0_EL1_F8F32_SHIFT, 1, 0),
389 	ARM64_FTR_BITS(FTR_VISIBLE_IF_IS_ENABLED(CONFIG_ARM64_SME),
390 		       FTR_STRICT, FTR_EXACT, ID_AA64SMFR0_EL1_I8I32_SHIFT, 4, 0),
391 	ARM64_FTR_BITS(FTR_VISIBLE_IF_IS_ENABLED(CONFIG_ARM64_SME),
392 		       FTR_STRICT, FTR_EXACT, ID_AA64SMFR0_EL1_F16F32_SHIFT, 1, 0),
393 	ARM64_FTR_BITS(FTR_VISIBLE_IF_IS_ENABLED(CONFIG_ARM64_SME),
394 		       FTR_STRICT, FTR_EXACT, ID_AA64SMFR0_EL1_B16F32_SHIFT, 1, 0),
395 	ARM64_FTR_BITS(FTR_VISIBLE_IF_IS_ENABLED(CONFIG_ARM64_SME),
396 		       FTR_STRICT, FTR_EXACT, ID_AA64SMFR0_EL1_BI32I32_SHIFT, 1, 0),
397 	ARM64_FTR_BITS(FTR_VISIBLE_IF_IS_ENABLED(CONFIG_ARM64_SME),
398 		       FTR_STRICT, FTR_EXACT, ID_AA64SMFR0_EL1_F32F32_SHIFT, 1, 0),
399 	ARM64_FTR_BITS(FTR_VISIBLE_IF_IS_ENABLED(CONFIG_ARM64_SME),
400 		       FTR_STRICT, FTR_EXACT, ID_AA64SMFR0_EL1_SF8FMA_SHIFT, 1, 0),
401 	ARM64_FTR_BITS(FTR_VISIBLE_IF_IS_ENABLED(CONFIG_ARM64_SME),
402 		       FTR_STRICT, FTR_EXACT, ID_AA64SMFR0_EL1_SF8DP4_SHIFT, 1, 0),
403 	ARM64_FTR_BITS(FTR_VISIBLE_IF_IS_ENABLED(CONFIG_ARM64_SME),
404 		       FTR_STRICT, FTR_EXACT, ID_AA64SMFR0_EL1_SF8DP2_SHIFT, 1, 0),
405 	ARM64_FTR_BITS(FTR_VISIBLE_IF_IS_ENABLED(CONFIG_ARM64_SME),
406 		       FTR_STRICT, FTR_EXACT, ID_AA64SMFR0_EL1_SBitPerm_SHIFT, 1, 0),
407 	ARM64_FTR_BITS(FTR_VISIBLE_IF_IS_ENABLED(CONFIG_ARM64_SME),
408 		       FTR_STRICT, FTR_EXACT, ID_AA64SMFR0_EL1_AES_SHIFT, 1, 0),
409 	ARM64_FTR_BITS(FTR_VISIBLE_IF_IS_ENABLED(CONFIG_ARM64_SME),
410 		       FTR_STRICT, FTR_EXACT, ID_AA64SMFR0_EL1_SFEXPA_SHIFT, 1, 0),
411 	ARM64_FTR_BITS(FTR_VISIBLE_IF_IS_ENABLED(CONFIG_ARM64_SME),
412 		       FTR_STRICT, FTR_EXACT, ID_AA64SMFR0_EL1_STMOP_SHIFT, 1, 0),
413 	ARM64_FTR_BITS(FTR_VISIBLE_IF_IS_ENABLED(CONFIG_ARM64_SME),
414 		       FTR_STRICT, FTR_EXACT, ID_AA64SMFR0_EL1_SMOP4_SHIFT, 1, 0),
415 	ARM64_FTR_END,
416 };
417 
418 static const struct arm64_ftr_bits ftr_id_aa64fpfr0[] = {
419 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_EXACT, ID_AA64FPFR0_EL1_F8CVT_SHIFT, 1, 0),
420 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_EXACT, ID_AA64FPFR0_EL1_F8FMA_SHIFT, 1, 0),
421 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_EXACT, ID_AA64FPFR0_EL1_F8DP4_SHIFT, 1, 0),
422 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_EXACT, ID_AA64FPFR0_EL1_F8DP2_SHIFT, 1, 0),
423 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_EXACT, ID_AA64FPFR0_EL1_F8MM8_SHIFT, 1, 0),
424 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_EXACT, ID_AA64FPFR0_EL1_F8MM4_SHIFT, 1, 0),
425 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_EXACT, ID_AA64FPFR0_EL1_F16MM2_SHIFT, 1, 0),
426 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_EXACT, ID_AA64FPFR0_EL1_F8E4M3_SHIFT, 1, 0),
427 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_EXACT, ID_AA64FPFR0_EL1_F8E5M2_SHIFT, 1, 0),
428 	ARM64_FTR_END,
429 };
430 
431 static const struct arm64_ftr_bits ftr_id_aa64mmfr0[] = {
432 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64MMFR0_EL1_ECV_SHIFT, 4, 0),
433 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64MMFR0_EL1_FGT_SHIFT, 4, 0),
434 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64MMFR0_EL1_EXS_SHIFT, 4, 0),
435 	/*
436 	 * Page size not being supported at Stage-2 is not fatal. You
437 	 * just give up KVM if PAGE_SIZE isn't supported there. Go fix
438 	 * your favourite nesting hypervisor.
439 	 *
440 	 * There is a small corner case where the hypervisor explicitly
441 	 * advertises a given granule size at Stage-2 (value 2) on some
442 	 * vCPUs, and uses the fallback to Stage-1 (value 0) for other
443 	 * vCPUs. Although this is not forbidden by the architecture, it
444 	 * indicates that the hypervisor is being silly (or buggy).
445 	 *
446 	 * We make no effort to cope with this and pretend that if these
447 	 * fields are inconsistent across vCPUs, then it isn't worth
448 	 * trying to bring KVM up.
449 	 */
450 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_NONSTRICT, FTR_EXACT, ID_AA64MMFR0_EL1_TGRAN4_2_SHIFT, 4, 1),
451 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_NONSTRICT, FTR_EXACT, ID_AA64MMFR0_EL1_TGRAN64_2_SHIFT, 4, 1),
452 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_NONSTRICT, FTR_EXACT, ID_AA64MMFR0_EL1_TGRAN16_2_SHIFT, 4, 1),
453 	/*
454 	 * We already refuse to boot CPUs that don't support our configured
455 	 * page size, so we can only detect mismatches for a page size other
456 	 * than the one we're currently using. Unfortunately, SoCs like this
457 	 * exist in the wild so, even though we don't like it, we'll have to go
458 	 * along with it and treat them as non-strict.
459 	 */
460 	S_ARM64_FTR_BITS(FTR_HIDDEN, FTR_NONSTRICT, FTR_LOWER_SAFE, ID_AA64MMFR0_EL1_TGRAN4_SHIFT, 4, ID_AA64MMFR0_EL1_TGRAN4_NI),
461 	S_ARM64_FTR_BITS(FTR_HIDDEN, FTR_NONSTRICT, FTR_LOWER_SAFE, ID_AA64MMFR0_EL1_TGRAN64_SHIFT, 4, ID_AA64MMFR0_EL1_TGRAN64_NI),
462 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_NONSTRICT, FTR_LOWER_SAFE, ID_AA64MMFR0_EL1_TGRAN16_SHIFT, 4, ID_AA64MMFR0_EL1_TGRAN16_NI),
463 
464 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64MMFR0_EL1_BIGENDEL0_SHIFT, 4, 0),
465 	/* Linux shouldn't care about secure memory */
466 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_NONSTRICT, FTR_LOWER_SAFE, ID_AA64MMFR0_EL1_SNSMEM_SHIFT, 4, 0),
467 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64MMFR0_EL1_BIGEND_SHIFT, 4, 0),
468 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64MMFR0_EL1_ASIDBITS_SHIFT, 4, 0),
469 	/*
470 	 * Differing PARange is fine as long as all peripherals and memory are mapped
471 	 * within the minimum PARange of all CPUs
472 	 */
473 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_NONSTRICT, FTR_LOWER_SAFE, ID_AA64MMFR0_EL1_PARANGE_SHIFT, 4, 0),
474 	ARM64_FTR_END,
475 };
476 
477 static const struct arm64_ftr_bits ftr_id_aa64mmfr1[] = {
478 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64MMFR1_EL1_ECBHB_SHIFT, 4, 0),
479 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_NONSTRICT, FTR_LOWER_SAFE, ID_AA64MMFR1_EL1_TIDCP1_SHIFT, 4, 0),
480 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64MMFR1_EL1_AFP_SHIFT, 4, 0),
481 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64MMFR1_EL1_HCX_SHIFT, 4, 0),
482 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64MMFR1_EL1_ETS_SHIFT, 4, 0),
483 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64MMFR1_EL1_TWED_SHIFT, 4, 0),
484 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64MMFR1_EL1_XNX_SHIFT, 4, 0),
485 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_HIGHER_SAFE, ID_AA64MMFR1_EL1_SpecSEI_SHIFT, 4, 0),
486 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64MMFR1_EL1_PAN_SHIFT, 4, 0),
487 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64MMFR1_EL1_LO_SHIFT, 4, 0),
488 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64MMFR1_EL1_HPDS_SHIFT, 4, 0),
489 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64MMFR1_EL1_VH_SHIFT, 4, 0),
490 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64MMFR1_EL1_VMIDBits_SHIFT, 4, 0),
491 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64MMFR1_EL1_HAFDBS_SHIFT, 4, 0),
492 	ARM64_FTR_END,
493 };
494 
495 static const struct arm64_ftr_bits ftr_id_aa64mmfr2[] = {
496 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_NONSTRICT, FTR_LOWER_SAFE, ID_AA64MMFR2_EL1_E0PD_SHIFT, 4, 0),
497 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64MMFR2_EL1_EVT_SHIFT, 4, 0),
498 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64MMFR2_EL1_BBM_SHIFT, 4, 0),
499 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64MMFR2_EL1_TTL_SHIFT, 4, 0),
500 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64MMFR2_EL1_FWB_SHIFT, 4, 0),
501 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64MMFR2_EL1_IDS_SHIFT, 4, 0),
502 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64MMFR2_EL1_AT_SHIFT, 4, 0),
503 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64MMFR2_EL1_ST_SHIFT, 4, 0),
504 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64MMFR2_EL1_NV_SHIFT, 4, 0),
505 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64MMFR2_EL1_CCIDX_SHIFT, 4, 0),
506 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64MMFR2_EL1_VARange_SHIFT, 4, 0),
507 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_NONSTRICT, FTR_LOWER_SAFE, ID_AA64MMFR2_EL1_IESB_SHIFT, 4, 0),
508 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64MMFR2_EL1_LSM_SHIFT, 4, 0),
509 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64MMFR2_EL1_UAO_SHIFT, 4, 0),
510 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64MMFR2_EL1_CnP_SHIFT, 4, 0),
511 	ARM64_FTR_END,
512 };
513 
514 static const struct arm64_ftr_bits ftr_id_aa64mmfr3[] = {
515 	ARM64_FTR_BITS(FTR_VISIBLE_IF_IS_ENABLED(CONFIG_ARM64_POE),
516 		       FTR_NONSTRICT, FTR_LOWER_SAFE, ID_AA64MMFR3_EL1_S1POE_SHIFT, 4, 0),
517 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_NONSTRICT, FTR_LOWER_SAFE, ID_AA64MMFR3_EL1_S1PIE_SHIFT, 4, 0),
518 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64MMFR3_EL1_SCTLRX_SHIFT, 4, 0),
519 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_NONSTRICT, FTR_LOWER_SAFE, ID_AA64MMFR3_EL1_TCRX_SHIFT, 4, 0),
520 	ARM64_FTR_END,
521 };
522 
523 static const struct arm64_ftr_bits ftr_id_aa64mmfr4[] = {
524 	S_ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64MMFR4_EL1_E2H0_SHIFT, 4, 0),
525 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64MMFR4_EL1_NV_frac_SHIFT, 4, 0),
526 	ARM64_FTR_END,
527 };
528 
529 static const struct arm64_ftr_bits ftr_ctr[] = {
530 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_EXACT, 31, 1, 1), /* RES1 */
531 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, CTR_EL0_DIC_SHIFT, 1, 1),
532 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, CTR_EL0_IDC_SHIFT, 1, 1),
533 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_HIGHER_OR_ZERO_SAFE, CTR_EL0_CWG_SHIFT, 4, 0),
534 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_HIGHER_OR_ZERO_SAFE, CTR_EL0_ERG_SHIFT, 4, 0),
535 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, CTR_EL0_DminLine_SHIFT, 4, 1),
536 	/*
537 	 * Linux can handle differing I-cache policies. Userspace JITs will
538 	 * make use of *minLine.
539 	 * If we have differing I-cache policies, report it as the weakest - VIPT.
540 	 */
541 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_NONSTRICT, FTR_EXACT, CTR_EL0_L1Ip_SHIFT, 2, CTR_EL0_L1Ip_VIPT),	/* L1Ip */
542 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, CTR_EL0_IminLine_SHIFT, 4, 0),
543 	ARM64_FTR_END,
544 };
545 
546 static struct arm64_ftr_override __ro_after_init no_override = { };
547 
548 struct arm64_ftr_reg arm64_ftr_reg_ctrel0 = {
549 	.name		= "SYS_CTR_EL0",
550 	.ftr_bits	= ftr_ctr,
551 	.override	= &no_override,
552 };
553 
554 static const struct arm64_ftr_bits ftr_id_mmfr0[] = {
555 	S_ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_MMFR0_EL1_InnerShr_SHIFT, 4, 0xf),
556 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_MMFR0_EL1_FCSE_SHIFT, 4, 0),
557 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_NONSTRICT, FTR_LOWER_SAFE, ID_MMFR0_EL1_AuxReg_SHIFT, 4, 0),
558 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_MMFR0_EL1_TCM_SHIFT, 4, 0),
559 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_MMFR0_EL1_ShareLvl_SHIFT, 4, 0),
560 	S_ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_MMFR0_EL1_OuterShr_SHIFT, 4, 0xf),
561 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_MMFR0_EL1_PMSA_SHIFT, 4, 0),
562 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_MMFR0_EL1_VMSA_SHIFT, 4, 0),
563 	ARM64_FTR_END,
564 };
565 
566 static const struct arm64_ftr_bits ftr_id_aa64dfr0[] = {
567 	S_ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64DFR0_EL1_DoubleLock_SHIFT, 4, 0),
568 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_NONSTRICT, FTR_LOWER_SAFE, ID_AA64DFR0_EL1_PMSVer_SHIFT, 4, 0),
569 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64DFR0_EL1_CTX_CMPs_SHIFT, 4, 0),
570 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64DFR0_EL1_WRPs_SHIFT, 4, 0),
571 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64DFR0_EL1_BRPs_SHIFT, 4, 0),
572 	/*
573 	 * We can instantiate multiple PMU instances with different levels
574 	 * of support.
575 	 */
576 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_NONSTRICT, FTR_EXACT, ID_AA64DFR0_EL1_PMUVer_SHIFT, 4, 0),
577 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_EXACT, ID_AA64DFR0_EL1_DebugVer_SHIFT, 4, 0x6),
578 	ARM64_FTR_END,
579 };
580 
581 static const struct arm64_ftr_bits ftr_mvfr0[] = {
582 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, MVFR0_EL1_FPRound_SHIFT, 4, 0),
583 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, MVFR0_EL1_FPShVec_SHIFT, 4, 0),
584 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, MVFR0_EL1_FPSqrt_SHIFT, 4, 0),
585 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, MVFR0_EL1_FPDivide_SHIFT, 4, 0),
586 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, MVFR0_EL1_FPTrap_SHIFT, 4, 0),
587 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, MVFR0_EL1_FPDP_SHIFT, 4, 0),
588 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, MVFR0_EL1_FPSP_SHIFT, 4, 0),
589 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, MVFR0_EL1_SIMDReg_SHIFT, 4, 0),
590 	ARM64_FTR_END,
591 };
592 
593 static const struct arm64_ftr_bits ftr_mvfr1[] = {
594 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, MVFR1_EL1_SIMDFMAC_SHIFT, 4, 0),
595 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, MVFR1_EL1_FPHP_SHIFT, 4, 0),
596 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, MVFR1_EL1_SIMDHP_SHIFT, 4, 0),
597 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, MVFR1_EL1_SIMDSP_SHIFT, 4, 0),
598 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, MVFR1_EL1_SIMDInt_SHIFT, 4, 0),
599 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, MVFR1_EL1_SIMDLS_SHIFT, 4, 0),
600 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, MVFR1_EL1_FPDNaN_SHIFT, 4, 0),
601 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, MVFR1_EL1_FPFtZ_SHIFT, 4, 0),
602 	ARM64_FTR_END,
603 };
604 
605 static const struct arm64_ftr_bits ftr_mvfr2[] = {
606 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, MVFR2_EL1_FPMisc_SHIFT, 4, 0),
607 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, MVFR2_EL1_SIMDMisc_SHIFT, 4, 0),
608 	ARM64_FTR_END,
609 };
610 
611 static const struct arm64_ftr_bits ftr_dczid[] = {
612 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_EXACT, DCZID_EL0_DZP_SHIFT, 1, 1),
613 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, DCZID_EL0_BS_SHIFT, 4, 0),
614 	ARM64_FTR_END,
615 };
616 
617 static const struct arm64_ftr_bits ftr_gmid[] = {
618 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, GMID_EL1_BS_SHIFT, 4, 0),
619 	ARM64_FTR_END,
620 };
621 
622 static const struct arm64_ftr_bits ftr_id_isar0[] = {
623 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_ISAR0_EL1_Divide_SHIFT, 4, 0),
624 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_ISAR0_EL1_Debug_SHIFT, 4, 0),
625 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_ISAR0_EL1_Coproc_SHIFT, 4, 0),
626 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_ISAR0_EL1_CmpBranch_SHIFT, 4, 0),
627 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_ISAR0_EL1_BitField_SHIFT, 4, 0),
628 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_ISAR0_EL1_BitCount_SHIFT, 4, 0),
629 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_ISAR0_EL1_Swap_SHIFT, 4, 0),
630 	ARM64_FTR_END,
631 };
632 
633 static const struct arm64_ftr_bits ftr_id_isar5[] = {
634 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_ISAR5_EL1_RDM_SHIFT, 4, 0),
635 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, ID_ISAR5_EL1_CRC32_SHIFT, 4, 0),
636 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, ID_ISAR5_EL1_SHA2_SHIFT, 4, 0),
637 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, ID_ISAR5_EL1_SHA1_SHIFT, 4, 0),
638 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, ID_ISAR5_EL1_AES_SHIFT, 4, 0),
639 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_ISAR5_EL1_SEVL_SHIFT, 4, 0),
640 	ARM64_FTR_END,
641 };
642 
643 static const struct arm64_ftr_bits ftr_id_mmfr4[] = {
644 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_MMFR4_EL1_EVT_SHIFT, 4, 0),
645 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_MMFR4_EL1_CCIDX_SHIFT, 4, 0),
646 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_MMFR4_EL1_LSM_SHIFT, 4, 0),
647 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_MMFR4_EL1_HPDS_SHIFT, 4, 0),
648 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_MMFR4_EL1_CnP_SHIFT, 4, 0),
649 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_MMFR4_EL1_XNX_SHIFT, 4, 0),
650 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_MMFR4_EL1_AC2_SHIFT, 4, 0),
651 
652 	/*
653 	 * SpecSEI = 1 indicates that the PE might generate an SError on an
654 	 * external abort on speculative read. It is safe to assume that an
655 	 * SError might be generated than it will not be. Hence it has been
656 	 * classified as FTR_HIGHER_SAFE.
657 	 */
658 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_HIGHER_SAFE, ID_MMFR4_EL1_SpecSEI_SHIFT, 4, 0),
659 	ARM64_FTR_END,
660 };
661 
662 static const struct arm64_ftr_bits ftr_id_isar4[] = {
663 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_ISAR4_EL1_SWP_frac_SHIFT, 4, 0),
664 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_ISAR4_EL1_PSR_M_SHIFT, 4, 0),
665 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_ISAR4_EL1_SynchPrim_frac_SHIFT, 4, 0),
666 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_ISAR4_EL1_Barrier_SHIFT, 4, 0),
667 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_ISAR4_EL1_SMC_SHIFT, 4, 0),
668 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_ISAR4_EL1_Writeback_SHIFT, 4, 0),
669 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_ISAR4_EL1_WithShifts_SHIFT, 4, 0),
670 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_ISAR4_EL1_Unpriv_SHIFT, 4, 0),
671 	ARM64_FTR_END,
672 };
673 
674 static const struct arm64_ftr_bits ftr_id_mmfr5[] = {
675 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_MMFR5_EL1_ETS_SHIFT, 4, 0),
676 	ARM64_FTR_END,
677 };
678 
679 static const struct arm64_ftr_bits ftr_id_isar6[] = {
680 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, ID_ISAR6_EL1_I8MM_SHIFT, 4, 0),
681 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, ID_ISAR6_EL1_BF16_SHIFT, 4, 0),
682 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_ISAR6_EL1_SPECRES_SHIFT, 4, 0),
683 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, ID_ISAR6_EL1_SB_SHIFT, 4, 0),
684 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, ID_ISAR6_EL1_FHM_SHIFT, 4, 0),
685 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, ID_ISAR6_EL1_DP_SHIFT, 4, 0),
686 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_ISAR6_EL1_JSCVT_SHIFT, 4, 0),
687 	ARM64_FTR_END,
688 };
689 
690 static const struct arm64_ftr_bits ftr_id_pfr0[] = {
691 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_PFR0_EL1_DIT_SHIFT, 4, 0),
692 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_NONSTRICT, FTR_LOWER_SAFE, ID_PFR0_EL1_CSV2_SHIFT, 4, 0),
693 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_PFR0_EL1_State3_SHIFT, 4, 0),
694 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_PFR0_EL1_State2_SHIFT, 4, 0),
695 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_PFR0_EL1_State1_SHIFT, 4, 0),
696 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_PFR0_EL1_State0_SHIFT, 4, 0),
697 	ARM64_FTR_END,
698 };
699 
700 static const struct arm64_ftr_bits ftr_id_pfr1[] = {
701 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_PFR1_EL1_GIC_SHIFT, 4, 0),
702 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_PFR1_EL1_Virt_frac_SHIFT, 4, 0),
703 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_PFR1_EL1_Sec_frac_SHIFT, 4, 0),
704 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_PFR1_EL1_GenTimer_SHIFT, 4, 0),
705 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_PFR1_EL1_Virtualization_SHIFT, 4, 0),
706 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_PFR1_EL1_MProgMod_SHIFT, 4, 0),
707 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_PFR1_EL1_Security_SHIFT, 4, 0),
708 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_PFR1_EL1_ProgMod_SHIFT, 4, 0),
709 	ARM64_FTR_END,
710 };
711 
712 static const struct arm64_ftr_bits ftr_id_pfr2[] = {
713 	ARM64_FTR_BITS(FTR_VISIBLE, FTR_NONSTRICT, FTR_LOWER_SAFE, ID_PFR2_EL1_SSBS_SHIFT, 4, 0),
714 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_NONSTRICT, FTR_LOWER_SAFE, ID_PFR2_EL1_CSV3_SHIFT, 4, 0),
715 	ARM64_FTR_END,
716 };
717 
718 static const struct arm64_ftr_bits ftr_id_dfr0[] = {
719 	/* [31:28] TraceFilt */
720 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_NONSTRICT, FTR_EXACT, ID_DFR0_EL1_PerfMon_SHIFT, 4, 0),
721 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_DFR0_EL1_MProfDbg_SHIFT, 4, 0),
722 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_DFR0_EL1_MMapTrc_SHIFT, 4, 0),
723 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_DFR0_EL1_CopTrc_SHIFT, 4, 0),
724 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_DFR0_EL1_MMapDbg_SHIFT, 4, 0),
725 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_DFR0_EL1_CopSDbg_SHIFT, 4, 0),
726 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_DFR0_EL1_CopDbg_SHIFT, 4, 0),
727 	ARM64_FTR_END,
728 };
729 
730 static const struct arm64_ftr_bits ftr_id_dfr1[] = {
731 	S_ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_DFR1_EL1_MTPMU_SHIFT, 4, 0),
732 	ARM64_FTR_END,
733 };
734 
735 static const struct arm64_ftr_bits ftr_mpamidr[] = {
736 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_NONSTRICT, FTR_LOWER_SAFE, MPAMIDR_EL1_PMG_MAX_SHIFT, MPAMIDR_EL1_PMG_MAX_WIDTH, 0),
737 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_NONSTRICT, FTR_LOWER_SAFE, MPAMIDR_EL1_VPMR_MAX_SHIFT, MPAMIDR_EL1_VPMR_MAX_WIDTH, 0),
738 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, MPAMIDR_EL1_HAS_HCR_SHIFT, 1, 0),
739 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_NONSTRICT, FTR_LOWER_SAFE, MPAMIDR_EL1_PARTID_MAX_SHIFT, MPAMIDR_EL1_PARTID_MAX_WIDTH, 0),
740 	ARM64_FTR_END,
741 };
742 
743 /*
744  * Common ftr bits for a 32bit register with all hidden, strict
745  * attributes, with 4bit feature fields and a default safe value of
746  * 0. Covers the following 32bit registers:
747  * id_isar[1-3], id_mmfr[1-3]
748  */
749 static const struct arm64_ftr_bits ftr_generic_32bits[] = {
750 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, 28, 4, 0),
751 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, 24, 4, 0),
752 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, 20, 4, 0),
753 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, 16, 4, 0),
754 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, 12, 4, 0),
755 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, 8, 4, 0),
756 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, 4, 4, 0),
757 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, 0, 4, 0),
758 	ARM64_FTR_END,
759 };
760 
761 /* Table for a single 32bit feature value */
762 static const struct arm64_ftr_bits ftr_single32[] = {
763 	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_EXACT, 0, 32, 0),
764 	ARM64_FTR_END,
765 };
766 
767 static const struct arm64_ftr_bits ftr_raz[] = {
768 	ARM64_FTR_END,
769 };
770 
771 #define __ARM64_FTR_REG_OVERRIDE(id_str, id, table, ovr) {	\
772 		.sys_id = id,					\
773 		.reg = 	&(struct arm64_ftr_reg){		\
774 			.name = id_str,				\
775 			.override = (ovr),			\
776 			.ftr_bits = &((table)[0]),		\
777 	}}
778 
779 #define ARM64_FTR_REG_OVERRIDE(id, table, ovr)	\
780 	__ARM64_FTR_REG_OVERRIDE(#id, id, table, ovr)
781 
782 #define ARM64_FTR_REG(id, table)		\
783 	__ARM64_FTR_REG_OVERRIDE(#id, id, table, &no_override)
784 
785 struct arm64_ftr_override __read_mostly id_aa64mmfr0_override;
786 struct arm64_ftr_override __read_mostly id_aa64mmfr1_override;
787 struct arm64_ftr_override __read_mostly id_aa64mmfr2_override;
788 struct arm64_ftr_override __read_mostly id_aa64mmfr4_override;
789 struct arm64_ftr_override __read_mostly id_aa64pfr0_override;
790 struct arm64_ftr_override __read_mostly id_aa64pfr1_override;
791 struct arm64_ftr_override __read_mostly id_aa64zfr0_override;
792 struct arm64_ftr_override __read_mostly id_aa64smfr0_override;
793 struct arm64_ftr_override __read_mostly id_aa64isar1_override;
794 struct arm64_ftr_override __read_mostly id_aa64isar2_override;
795 
796 struct arm64_ftr_override __read_mostly arm64_sw_feature_override;
797 
798 static const struct __ftr_reg_entry {
799 	u32			sys_id;
800 	struct arm64_ftr_reg 	*reg;
801 } arm64_ftr_regs[] = {
802 
803 	/* Op1 = 0, CRn = 0, CRm = 1 */
804 	ARM64_FTR_REG(SYS_ID_PFR0_EL1, ftr_id_pfr0),
805 	ARM64_FTR_REG(SYS_ID_PFR1_EL1, ftr_id_pfr1),
806 	ARM64_FTR_REG(SYS_ID_DFR0_EL1, ftr_id_dfr0),
807 	ARM64_FTR_REG(SYS_ID_MMFR0_EL1, ftr_id_mmfr0),
808 	ARM64_FTR_REG(SYS_ID_MMFR1_EL1, ftr_generic_32bits),
809 	ARM64_FTR_REG(SYS_ID_MMFR2_EL1, ftr_generic_32bits),
810 	ARM64_FTR_REG(SYS_ID_MMFR3_EL1, ftr_generic_32bits),
811 
812 	/* Op1 = 0, CRn = 0, CRm = 2 */
813 	ARM64_FTR_REG(SYS_ID_ISAR0_EL1, ftr_id_isar0),
814 	ARM64_FTR_REG(SYS_ID_ISAR1_EL1, ftr_generic_32bits),
815 	ARM64_FTR_REG(SYS_ID_ISAR2_EL1, ftr_generic_32bits),
816 	ARM64_FTR_REG(SYS_ID_ISAR3_EL1, ftr_generic_32bits),
817 	ARM64_FTR_REG(SYS_ID_ISAR4_EL1, ftr_id_isar4),
818 	ARM64_FTR_REG(SYS_ID_ISAR5_EL1, ftr_id_isar5),
819 	ARM64_FTR_REG(SYS_ID_MMFR4_EL1, ftr_id_mmfr4),
820 	ARM64_FTR_REG(SYS_ID_ISAR6_EL1, ftr_id_isar6),
821 
822 	/* Op1 = 0, CRn = 0, CRm = 3 */
823 	ARM64_FTR_REG(SYS_MVFR0_EL1, ftr_mvfr0),
824 	ARM64_FTR_REG(SYS_MVFR1_EL1, ftr_mvfr1),
825 	ARM64_FTR_REG(SYS_MVFR2_EL1, ftr_mvfr2),
826 	ARM64_FTR_REG(SYS_ID_PFR2_EL1, ftr_id_pfr2),
827 	ARM64_FTR_REG(SYS_ID_DFR1_EL1, ftr_id_dfr1),
828 	ARM64_FTR_REG(SYS_ID_MMFR5_EL1, ftr_id_mmfr5),
829 
830 	/* Op1 = 0, CRn = 0, CRm = 4 */
831 	ARM64_FTR_REG_OVERRIDE(SYS_ID_AA64PFR0_EL1, ftr_id_aa64pfr0,
832 			       &id_aa64pfr0_override),
833 	ARM64_FTR_REG_OVERRIDE(SYS_ID_AA64PFR1_EL1, ftr_id_aa64pfr1,
834 			       &id_aa64pfr1_override),
835 	ARM64_FTR_REG(SYS_ID_AA64PFR2_EL1, ftr_id_aa64pfr2),
836 	ARM64_FTR_REG_OVERRIDE(SYS_ID_AA64ZFR0_EL1, ftr_id_aa64zfr0,
837 			       &id_aa64zfr0_override),
838 	ARM64_FTR_REG_OVERRIDE(SYS_ID_AA64SMFR0_EL1, ftr_id_aa64smfr0,
839 			       &id_aa64smfr0_override),
840 	ARM64_FTR_REG(SYS_ID_AA64FPFR0_EL1, ftr_id_aa64fpfr0),
841 
842 	/* Op1 = 0, CRn = 0, CRm = 5 */
843 	ARM64_FTR_REG(SYS_ID_AA64DFR0_EL1, ftr_id_aa64dfr0),
844 	ARM64_FTR_REG(SYS_ID_AA64DFR1_EL1, ftr_raz),
845 
846 	/* Op1 = 0, CRn = 0, CRm = 6 */
847 	ARM64_FTR_REG(SYS_ID_AA64ISAR0_EL1, ftr_id_aa64isar0),
848 	ARM64_FTR_REG_OVERRIDE(SYS_ID_AA64ISAR1_EL1, ftr_id_aa64isar1,
849 			       &id_aa64isar1_override),
850 	ARM64_FTR_REG_OVERRIDE(SYS_ID_AA64ISAR2_EL1, ftr_id_aa64isar2,
851 			       &id_aa64isar2_override),
852 	ARM64_FTR_REG(SYS_ID_AA64ISAR3_EL1, ftr_id_aa64isar3),
853 
854 	/* Op1 = 0, CRn = 0, CRm = 7 */
855 	ARM64_FTR_REG_OVERRIDE(SYS_ID_AA64MMFR0_EL1, ftr_id_aa64mmfr0,
856 			       &id_aa64mmfr0_override),
857 	ARM64_FTR_REG_OVERRIDE(SYS_ID_AA64MMFR1_EL1, ftr_id_aa64mmfr1,
858 			       &id_aa64mmfr1_override),
859 	ARM64_FTR_REG_OVERRIDE(SYS_ID_AA64MMFR2_EL1, ftr_id_aa64mmfr2,
860 			       &id_aa64mmfr2_override),
861 	ARM64_FTR_REG(SYS_ID_AA64MMFR3_EL1, ftr_id_aa64mmfr3),
862 	ARM64_FTR_REG_OVERRIDE(SYS_ID_AA64MMFR4_EL1, ftr_id_aa64mmfr4,
863 			       &id_aa64mmfr4_override),
864 
865 	/* Op1 = 0, CRn = 10, CRm = 4 */
866 	ARM64_FTR_REG(SYS_MPAMIDR_EL1, ftr_mpamidr),
867 
868 	/* Op1 = 1, CRn = 0, CRm = 0 */
869 	ARM64_FTR_REG(SYS_GMID_EL1, ftr_gmid),
870 
871 	/* Op1 = 3, CRn = 0, CRm = 0 */
872 	{ SYS_CTR_EL0, &arm64_ftr_reg_ctrel0 },
873 	ARM64_FTR_REG(SYS_DCZID_EL0, ftr_dczid),
874 
875 	/* Op1 = 3, CRn = 14, CRm = 0 */
876 	ARM64_FTR_REG(SYS_CNTFRQ_EL0, ftr_single32),
877 };
878 
search_cmp_ftr_reg(const void * id,const void * regp)879 static int search_cmp_ftr_reg(const void *id, const void *regp)
880 {
881 	return (int)(unsigned long)id - (int)((const struct __ftr_reg_entry *)regp)->sys_id;
882 }
883 
884 /*
885  * get_arm64_ftr_reg_nowarn - Looks up a feature register entry using
886  * its sys_reg() encoding. With the array arm64_ftr_regs sorted in the
887  * ascending order of sys_id, we use binary search to find a matching
888  * entry.
889  *
890  * returns - Upon success,  matching ftr_reg entry for id.
891  *         - NULL on failure. It is upto the caller to decide
892  *	     the impact of a failure.
893  */
get_arm64_ftr_reg_nowarn(u32 sys_id)894 static struct arm64_ftr_reg *get_arm64_ftr_reg_nowarn(u32 sys_id)
895 {
896 	const struct __ftr_reg_entry *ret;
897 
898 	ret = bsearch((const void *)(unsigned long)sys_id,
899 			arm64_ftr_regs,
900 			ARRAY_SIZE(arm64_ftr_regs),
901 			sizeof(arm64_ftr_regs[0]),
902 			search_cmp_ftr_reg);
903 	if (ret)
904 		return ret->reg;
905 	return NULL;
906 }
907 
908 /*
909  * get_arm64_ftr_reg - Looks up a feature register entry using
910  * its sys_reg() encoding. This calls get_arm64_ftr_reg_nowarn().
911  *
912  * returns - Upon success,  matching ftr_reg entry for id.
913  *         - NULL on failure but with an WARN_ON().
914  */
get_arm64_ftr_reg(u32 sys_id)915 struct arm64_ftr_reg *get_arm64_ftr_reg(u32 sys_id)
916 {
917 	struct arm64_ftr_reg *reg;
918 
919 	reg = get_arm64_ftr_reg_nowarn(sys_id);
920 
921 	/*
922 	 * Requesting a non-existent register search is an error. Warn
923 	 * and let the caller handle it.
924 	 */
925 	WARN_ON(!reg);
926 	return reg;
927 }
928 
arm64_ftr_set_value(const struct arm64_ftr_bits * ftrp,s64 reg,s64 ftr_val)929 static u64 arm64_ftr_set_value(const struct arm64_ftr_bits *ftrp, s64 reg,
930 			       s64 ftr_val)
931 {
932 	u64 mask = arm64_ftr_mask(ftrp);
933 
934 	reg &= ~mask;
935 	reg |= (ftr_val << ftrp->shift) & mask;
936 	return reg;
937 }
938 
arm64_ftr_safe_value(const struct arm64_ftr_bits * ftrp,s64 new,s64 cur)939 s64 arm64_ftr_safe_value(const struct arm64_ftr_bits *ftrp, s64 new,
940 				s64 cur)
941 {
942 	s64 ret = 0;
943 
944 	switch (ftrp->type) {
945 	case FTR_EXACT:
946 		ret = ftrp->safe_val;
947 		break;
948 	case FTR_LOWER_SAFE:
949 		ret = min(new, cur);
950 		break;
951 	case FTR_HIGHER_OR_ZERO_SAFE:
952 		if (!cur || !new)
953 			break;
954 		fallthrough;
955 	case FTR_HIGHER_SAFE:
956 		ret = max(new, cur);
957 		break;
958 	default:
959 		BUG();
960 	}
961 
962 	return ret;
963 }
964 
sort_ftr_regs(void)965 static void __init sort_ftr_regs(void)
966 {
967 	unsigned int i;
968 
969 	for (i = 0; i < ARRAY_SIZE(arm64_ftr_regs); i++) {
970 		const struct arm64_ftr_reg *ftr_reg = arm64_ftr_regs[i].reg;
971 		const struct arm64_ftr_bits *ftr_bits = ftr_reg->ftr_bits;
972 		unsigned int j = 0;
973 
974 		/*
975 		 * Features here must be sorted in descending order with respect
976 		 * to their shift values and should not overlap with each other.
977 		 */
978 		for (; ftr_bits->width != 0; ftr_bits++, j++) {
979 			unsigned int width = ftr_reg->ftr_bits[j].width;
980 			unsigned int shift = ftr_reg->ftr_bits[j].shift;
981 			unsigned int prev_shift;
982 
983 			WARN((shift  + width) > 64,
984 				"%s has invalid feature at shift %d\n",
985 				ftr_reg->name, shift);
986 
987 			/*
988 			 * Skip the first feature. There is nothing to
989 			 * compare against for now.
990 			 */
991 			if (j == 0)
992 				continue;
993 
994 			prev_shift = ftr_reg->ftr_bits[j - 1].shift;
995 			WARN((shift + width) > prev_shift,
996 				"%s has feature overlap at shift %d\n",
997 				ftr_reg->name, shift);
998 		}
999 
1000 		/*
1001 		 * Skip the first register. There is nothing to
1002 		 * compare against for now.
1003 		 */
1004 		if (i == 0)
1005 			continue;
1006 		/*
1007 		 * Registers here must be sorted in ascending order with respect
1008 		 * to sys_id for subsequent binary search in get_arm64_ftr_reg()
1009 		 * to work correctly.
1010 		 */
1011 		BUG_ON(arm64_ftr_regs[i].sys_id <= arm64_ftr_regs[i - 1].sys_id);
1012 	}
1013 }
1014 
1015 /*
1016  * Initialise the CPU feature register from Boot CPU values.
1017  * Also initialises the strict_mask for the register.
1018  * Any bits that are not covered by an arm64_ftr_bits entry are considered
1019  * RES0 for the system-wide value, and must strictly match.
1020  */
init_cpu_ftr_reg(u32 sys_reg,u64 new)1021 static void init_cpu_ftr_reg(u32 sys_reg, u64 new)
1022 {
1023 	u64 val = 0;
1024 	u64 strict_mask = ~0x0ULL;
1025 	u64 user_mask = 0;
1026 	u64 valid_mask = 0;
1027 
1028 	const struct arm64_ftr_bits *ftrp;
1029 	struct arm64_ftr_reg *reg = get_arm64_ftr_reg(sys_reg);
1030 
1031 	if (!reg)
1032 		return;
1033 
1034 	for (ftrp = reg->ftr_bits; ftrp->width; ftrp++) {
1035 		u64 ftr_mask = arm64_ftr_mask(ftrp);
1036 		s64 ftr_new = arm64_ftr_value(ftrp, new);
1037 		s64 ftr_ovr = arm64_ftr_value(ftrp, reg->override->val);
1038 
1039 		if ((ftr_mask & reg->override->mask) == ftr_mask) {
1040 			s64 tmp = arm64_ftr_safe_value(ftrp, ftr_ovr, ftr_new);
1041 			char *str = NULL;
1042 
1043 			if (ftr_ovr != tmp) {
1044 				/* Unsafe, remove the override */
1045 				reg->override->mask &= ~ftr_mask;
1046 				reg->override->val &= ~ftr_mask;
1047 				tmp = ftr_ovr;
1048 				str = "ignoring override";
1049 			} else if (ftr_new != tmp) {
1050 				/* Override was valid */
1051 				ftr_new = tmp;
1052 				str = "forced";
1053 			} else {
1054 				/* Override was the safe value */
1055 				str = "already set";
1056 			}
1057 
1058 			pr_warn("%s[%d:%d]: %s to %llx\n",
1059 				reg->name,
1060 				ftrp->shift + ftrp->width - 1,
1061 				ftrp->shift, str,
1062 				tmp & (BIT(ftrp->width) - 1));
1063 		} else if ((ftr_mask & reg->override->val) == ftr_mask) {
1064 			reg->override->val &= ~ftr_mask;
1065 			pr_warn("%s[%d:%d]: impossible override, ignored\n",
1066 				reg->name,
1067 				ftrp->shift + ftrp->width - 1,
1068 				ftrp->shift);
1069 		}
1070 
1071 		val = arm64_ftr_set_value(ftrp, val, ftr_new);
1072 
1073 		valid_mask |= ftr_mask;
1074 		if (!ftrp->strict)
1075 			strict_mask &= ~ftr_mask;
1076 		if (ftrp->visible)
1077 			user_mask |= ftr_mask;
1078 		else
1079 			reg->user_val = arm64_ftr_set_value(ftrp,
1080 							    reg->user_val,
1081 							    ftrp->safe_val);
1082 	}
1083 
1084 	val &= valid_mask;
1085 
1086 	reg->sys_val = val;
1087 	reg->strict_mask = strict_mask;
1088 	reg->user_mask = user_mask;
1089 }
1090 
1091 extern const struct arm64_cpu_capabilities arm64_errata[];
1092 static const struct arm64_cpu_capabilities arm64_features[];
1093 
1094 static void __init
init_cpucap_indirect_list_from_array(const struct arm64_cpu_capabilities * caps)1095 init_cpucap_indirect_list_from_array(const struct arm64_cpu_capabilities *caps)
1096 {
1097 	for (; caps->matches; caps++) {
1098 		if (WARN(caps->capability >= ARM64_NCAPS,
1099 			"Invalid capability %d\n", caps->capability))
1100 			continue;
1101 		if (WARN(cpucap_ptrs[caps->capability],
1102 			"Duplicate entry for capability %d\n",
1103 			caps->capability))
1104 			continue;
1105 		cpucap_ptrs[caps->capability] = caps;
1106 	}
1107 }
1108 
init_cpucap_indirect_list(void)1109 static void __init init_cpucap_indirect_list(void)
1110 {
1111 	init_cpucap_indirect_list_from_array(arm64_features);
1112 	init_cpucap_indirect_list_from_array(arm64_errata);
1113 }
1114 
1115 static void __init setup_boot_cpu_capabilities(void);
1116 
init_32bit_cpu_features(struct cpuinfo_32bit * info)1117 static void init_32bit_cpu_features(struct cpuinfo_32bit *info)
1118 {
1119 	init_cpu_ftr_reg(SYS_ID_DFR0_EL1, info->reg_id_dfr0);
1120 	init_cpu_ftr_reg(SYS_ID_DFR1_EL1, info->reg_id_dfr1);
1121 	init_cpu_ftr_reg(SYS_ID_ISAR0_EL1, info->reg_id_isar0);
1122 	init_cpu_ftr_reg(SYS_ID_ISAR1_EL1, info->reg_id_isar1);
1123 	init_cpu_ftr_reg(SYS_ID_ISAR2_EL1, info->reg_id_isar2);
1124 	init_cpu_ftr_reg(SYS_ID_ISAR3_EL1, info->reg_id_isar3);
1125 	init_cpu_ftr_reg(SYS_ID_ISAR4_EL1, info->reg_id_isar4);
1126 	init_cpu_ftr_reg(SYS_ID_ISAR5_EL1, info->reg_id_isar5);
1127 	init_cpu_ftr_reg(SYS_ID_ISAR6_EL1, info->reg_id_isar6);
1128 	init_cpu_ftr_reg(SYS_ID_MMFR0_EL1, info->reg_id_mmfr0);
1129 	init_cpu_ftr_reg(SYS_ID_MMFR1_EL1, info->reg_id_mmfr1);
1130 	init_cpu_ftr_reg(SYS_ID_MMFR2_EL1, info->reg_id_mmfr2);
1131 	init_cpu_ftr_reg(SYS_ID_MMFR3_EL1, info->reg_id_mmfr3);
1132 	init_cpu_ftr_reg(SYS_ID_MMFR4_EL1, info->reg_id_mmfr4);
1133 	init_cpu_ftr_reg(SYS_ID_MMFR5_EL1, info->reg_id_mmfr5);
1134 	init_cpu_ftr_reg(SYS_ID_PFR0_EL1, info->reg_id_pfr0);
1135 	init_cpu_ftr_reg(SYS_ID_PFR1_EL1, info->reg_id_pfr1);
1136 	init_cpu_ftr_reg(SYS_ID_PFR2_EL1, info->reg_id_pfr2);
1137 	init_cpu_ftr_reg(SYS_MVFR0_EL1, info->reg_mvfr0);
1138 	init_cpu_ftr_reg(SYS_MVFR1_EL1, info->reg_mvfr1);
1139 	init_cpu_ftr_reg(SYS_MVFR2_EL1, info->reg_mvfr2);
1140 }
1141 
1142 #ifdef CONFIG_ARM64_PSEUDO_NMI
1143 static bool enable_pseudo_nmi;
1144 
early_enable_pseudo_nmi(char * p)1145 static int __init early_enable_pseudo_nmi(char *p)
1146 {
1147 	return kstrtobool(p, &enable_pseudo_nmi);
1148 }
1149 early_param("irqchip.gicv3_pseudo_nmi", early_enable_pseudo_nmi);
1150 
detect_system_supports_pseudo_nmi(void)1151 static __init void detect_system_supports_pseudo_nmi(void)
1152 {
1153 	struct device_node *np;
1154 
1155 	if (!enable_pseudo_nmi)
1156 		return;
1157 
1158 	/*
1159 	 * Detect broken MediaTek firmware that doesn't properly save and
1160 	 * restore GIC priorities.
1161 	 */
1162 	np = of_find_compatible_node(NULL, NULL, "arm,gic-v3");
1163 	if (np && of_property_read_bool(np, "mediatek,broken-save-restore-fw")) {
1164 		pr_info("Pseudo-NMI disabled due to MediaTek Chromebook GICR save problem\n");
1165 		enable_pseudo_nmi = false;
1166 	}
1167 	of_node_put(np);
1168 }
1169 #else /* CONFIG_ARM64_PSEUDO_NMI */
detect_system_supports_pseudo_nmi(void)1170 static inline void detect_system_supports_pseudo_nmi(void) { }
1171 #endif
1172 
detect_ftr_has_mpam(void)1173 static bool detect_ftr_has_mpam(void)
1174 {
1175 	u64 pfr0 = read_sanitised_ftr_reg(SYS_ID_AA64PFR0_EL1);
1176 	u64 pfr1 = read_sanitised_ftr_reg(SYS_ID_AA64PFR1_EL1);
1177 
1178 	return id_aa64pfr0_mpam(pfr0) || id_aa64pfr1_mpamfrac(pfr1);
1179 }
1180 
gmid_el1_accessible(const struct cpuinfo_arm64 * info)1181 bool gmid_el1_accessible(const struct cpuinfo_arm64 *info)
1182 {
1183 	const struct arm64_ftr_bits *ftrp;
1184 	s64 mte, ovr;
1185 	u64 ftr_mask;
1186 
1187 	/* No ID register reflects CONFIG_ARM64_MTE. */
1188 	if (!IS_ENABLED(CONFIG_ARM64_MTE))
1189 		return false;
1190 
1191 	for (ftrp = ftr_id_aa64pfr1; ftrp->width; ftrp++) {
1192 		if (ftrp->shift == ID_AA64PFR1_EL1_MTE_SHIFT)
1193 			break;
1194 	}
1195 
1196 	ftr_mask = arm64_ftr_mask(ftrp);
1197 	mte = arm64_ftr_value(ftrp, info->reg_id_aa64pfr1);
1198 
1199 	/* The boot CPU runs before init_cpu_ftr_reg() strips unsafe overrides. */
1200 	if ((id_aa64pfr1_override.mask & ftr_mask) == ftr_mask) {
1201 		ovr = arm64_ftr_value(ftrp, id_aa64pfr1_override.val);
1202 		mte = arm64_ftr_safe_value(ftrp, ovr, mte);
1203 	}
1204 
1205 	return mte >= ID_AA64PFR1_EL1_MTE_MTE2;
1206 }
1207 
init_cpu_features(struct cpuinfo_arm64 * info)1208 void __init init_cpu_features(struct cpuinfo_arm64 *info)
1209 {
1210 	/* Before we start using the tables, make sure it is sorted */
1211 	sort_ftr_regs();
1212 
1213 	init_cpu_ftr_reg(SYS_CTR_EL0, info->reg_ctr);
1214 	init_cpu_ftr_reg(SYS_DCZID_EL0, info->reg_dczid);
1215 	init_cpu_ftr_reg(SYS_CNTFRQ_EL0, info->reg_cntfrq);
1216 	init_cpu_ftr_reg(SYS_ID_AA64DFR0_EL1, info->reg_id_aa64dfr0);
1217 	init_cpu_ftr_reg(SYS_ID_AA64DFR1_EL1, info->reg_id_aa64dfr1);
1218 	init_cpu_ftr_reg(SYS_ID_AA64ISAR0_EL1, info->reg_id_aa64isar0);
1219 	init_cpu_ftr_reg(SYS_ID_AA64ISAR1_EL1, info->reg_id_aa64isar1);
1220 	init_cpu_ftr_reg(SYS_ID_AA64ISAR2_EL1, info->reg_id_aa64isar2);
1221 	init_cpu_ftr_reg(SYS_ID_AA64ISAR3_EL1, info->reg_id_aa64isar3);
1222 	init_cpu_ftr_reg(SYS_ID_AA64MMFR0_EL1, info->reg_id_aa64mmfr0);
1223 	init_cpu_ftr_reg(SYS_ID_AA64MMFR1_EL1, info->reg_id_aa64mmfr1);
1224 	init_cpu_ftr_reg(SYS_ID_AA64MMFR2_EL1, info->reg_id_aa64mmfr2);
1225 	init_cpu_ftr_reg(SYS_ID_AA64MMFR3_EL1, info->reg_id_aa64mmfr3);
1226 	init_cpu_ftr_reg(SYS_ID_AA64MMFR4_EL1, info->reg_id_aa64mmfr4);
1227 	init_cpu_ftr_reg(SYS_ID_AA64PFR0_EL1, info->reg_id_aa64pfr0);
1228 	init_cpu_ftr_reg(SYS_ID_AA64PFR1_EL1, info->reg_id_aa64pfr1);
1229 	init_cpu_ftr_reg(SYS_ID_AA64PFR2_EL1, info->reg_id_aa64pfr2);
1230 	init_cpu_ftr_reg(SYS_ID_AA64ZFR0_EL1, info->reg_id_aa64zfr0);
1231 	init_cpu_ftr_reg(SYS_ID_AA64SMFR0_EL1, info->reg_id_aa64smfr0);
1232 	init_cpu_ftr_reg(SYS_ID_AA64FPFR0_EL1, info->reg_id_aa64fpfr0);
1233 
1234 	if (id_aa64pfr0_32bit_el0(info->reg_id_aa64pfr0))
1235 		init_32bit_cpu_features(&info->aarch32);
1236 
1237 	if (IS_ENABLED(CONFIG_ARM64_SVE) &&
1238 	    id_aa64pfr0_sve(read_sanitised_ftr_reg(SYS_ID_AA64PFR0_EL1))) {
1239 		unsigned long cpacr = cpacr_save_enable_kernel_sve();
1240 
1241 		vec_init_vq_map(ARM64_VEC_SVE);
1242 
1243 		cpacr_restore(cpacr);
1244 	}
1245 
1246 	if (IS_ENABLED(CONFIG_ARM64_SME) &&
1247 	    id_aa64pfr1_sme(read_sanitised_ftr_reg(SYS_ID_AA64PFR1_EL1))) {
1248 		unsigned long cpacr = cpacr_save_enable_kernel_sme();
1249 
1250 		vec_init_vq_map(ARM64_VEC_SME);
1251 
1252 		cpacr_restore(cpacr);
1253 	}
1254 
1255 	if (detect_ftr_has_mpam()) {
1256 		info->reg_mpamidr = read_cpuid(MPAMIDR_EL1);
1257 		init_cpu_ftr_reg(SYS_MPAMIDR_EL1, info->reg_mpamidr);
1258 	}
1259 
1260 	if (gmid_el1_accessible(info))
1261 		init_cpu_ftr_reg(SYS_GMID_EL1, info->reg_gmid);
1262 }
1263 
update_cpu_ftr_reg(struct arm64_ftr_reg * reg,u64 new)1264 static void update_cpu_ftr_reg(struct arm64_ftr_reg *reg, u64 new)
1265 {
1266 	const struct arm64_ftr_bits *ftrp;
1267 
1268 	for (ftrp = reg->ftr_bits; ftrp->width; ftrp++) {
1269 		s64 ftr_cur = arm64_ftr_value(ftrp, reg->sys_val);
1270 		s64 ftr_new = arm64_ftr_value(ftrp, new);
1271 
1272 		if (ftr_cur == ftr_new)
1273 			continue;
1274 		/* Find a safe value */
1275 		ftr_new = arm64_ftr_safe_value(ftrp, ftr_new, ftr_cur);
1276 		reg->sys_val = arm64_ftr_set_value(ftrp, reg->sys_val, ftr_new);
1277 	}
1278 
1279 }
1280 
check_update_ftr_reg(u32 sys_id,int cpu,u64 val,u64 boot)1281 static int check_update_ftr_reg(u32 sys_id, int cpu, u64 val, u64 boot)
1282 {
1283 	struct arm64_ftr_reg *regp = get_arm64_ftr_reg(sys_id);
1284 
1285 	if (!regp)
1286 		return 0;
1287 
1288 	update_cpu_ftr_reg(regp, val);
1289 	if ((boot & regp->strict_mask) == (val & regp->strict_mask))
1290 		return 0;
1291 	pr_warn("SANITY CHECK: Unexpected variation in %s. Boot CPU: %#016llx, CPU%d: %#016llx\n",
1292 			regp->name, boot, cpu, val);
1293 	return 1;
1294 }
1295 
relax_cpu_ftr_reg(u32 sys_id,int field)1296 static void relax_cpu_ftr_reg(u32 sys_id, int field)
1297 {
1298 	const struct arm64_ftr_bits *ftrp;
1299 	struct arm64_ftr_reg *regp = get_arm64_ftr_reg(sys_id);
1300 
1301 	if (!regp)
1302 		return;
1303 
1304 	for (ftrp = regp->ftr_bits; ftrp->width; ftrp++) {
1305 		if (ftrp->shift == field) {
1306 			regp->strict_mask &= ~arm64_ftr_mask(ftrp);
1307 			break;
1308 		}
1309 	}
1310 
1311 	/* Bogus field? */
1312 	WARN_ON(!ftrp->width);
1313 }
1314 
lazy_init_32bit_cpu_features(struct cpuinfo_arm64 * info,struct cpuinfo_arm64 * boot)1315 static void lazy_init_32bit_cpu_features(struct cpuinfo_arm64 *info,
1316 					 struct cpuinfo_arm64 *boot)
1317 {
1318 	static bool boot_cpu_32bit_regs_overridden = false;
1319 
1320 	if (!allow_mismatched_32bit_el0 || boot_cpu_32bit_regs_overridden)
1321 		return;
1322 
1323 	if (id_aa64pfr0_32bit_el0(boot->reg_id_aa64pfr0))
1324 		return;
1325 
1326 	boot->aarch32 = info->aarch32;
1327 	init_32bit_cpu_features(&boot->aarch32);
1328 	boot_cpu_32bit_regs_overridden = true;
1329 }
1330 
update_32bit_cpu_features(int cpu,struct cpuinfo_32bit * info,struct cpuinfo_32bit * boot)1331 static int update_32bit_cpu_features(int cpu, struct cpuinfo_32bit *info,
1332 				     struct cpuinfo_32bit *boot)
1333 {
1334 	int taint = 0;
1335 	u64 pfr0 = read_sanitised_ftr_reg(SYS_ID_AA64PFR0_EL1);
1336 
1337 	/*
1338 	 * If we don't have AArch32 at EL1, then relax the strictness of
1339 	 * EL1-dependent register fields to avoid spurious sanity check fails.
1340 	 */
1341 	if (!id_aa64pfr0_32bit_el1(pfr0)) {
1342 		relax_cpu_ftr_reg(SYS_ID_ISAR4_EL1, ID_ISAR4_EL1_SMC_SHIFT);
1343 		relax_cpu_ftr_reg(SYS_ID_PFR1_EL1, ID_PFR1_EL1_Virt_frac_SHIFT);
1344 		relax_cpu_ftr_reg(SYS_ID_PFR1_EL1, ID_PFR1_EL1_Sec_frac_SHIFT);
1345 		relax_cpu_ftr_reg(SYS_ID_PFR1_EL1, ID_PFR1_EL1_Virtualization_SHIFT);
1346 		relax_cpu_ftr_reg(SYS_ID_PFR1_EL1, ID_PFR1_EL1_Security_SHIFT);
1347 		relax_cpu_ftr_reg(SYS_ID_PFR1_EL1, ID_PFR1_EL1_ProgMod_SHIFT);
1348 	}
1349 
1350 	taint |= check_update_ftr_reg(SYS_ID_DFR0_EL1, cpu,
1351 				      info->reg_id_dfr0, boot->reg_id_dfr0);
1352 	taint |= check_update_ftr_reg(SYS_ID_DFR1_EL1, cpu,
1353 				      info->reg_id_dfr1, boot->reg_id_dfr1);
1354 	taint |= check_update_ftr_reg(SYS_ID_ISAR0_EL1, cpu,
1355 				      info->reg_id_isar0, boot->reg_id_isar0);
1356 	taint |= check_update_ftr_reg(SYS_ID_ISAR1_EL1, cpu,
1357 				      info->reg_id_isar1, boot->reg_id_isar1);
1358 	taint |= check_update_ftr_reg(SYS_ID_ISAR2_EL1, cpu,
1359 				      info->reg_id_isar2, boot->reg_id_isar2);
1360 	taint |= check_update_ftr_reg(SYS_ID_ISAR3_EL1, cpu,
1361 				      info->reg_id_isar3, boot->reg_id_isar3);
1362 	taint |= check_update_ftr_reg(SYS_ID_ISAR4_EL1, cpu,
1363 				      info->reg_id_isar4, boot->reg_id_isar4);
1364 	taint |= check_update_ftr_reg(SYS_ID_ISAR5_EL1, cpu,
1365 				      info->reg_id_isar5, boot->reg_id_isar5);
1366 	taint |= check_update_ftr_reg(SYS_ID_ISAR6_EL1, cpu,
1367 				      info->reg_id_isar6, boot->reg_id_isar6);
1368 
1369 	/*
1370 	 * Regardless of the value of the AuxReg field, the AIFSR, ADFSR, and
1371 	 * ACTLR formats could differ across CPUs and therefore would have to
1372 	 * be trapped for virtualization anyway.
1373 	 */
1374 	taint |= check_update_ftr_reg(SYS_ID_MMFR0_EL1, cpu,
1375 				      info->reg_id_mmfr0, boot->reg_id_mmfr0);
1376 	taint |= check_update_ftr_reg(SYS_ID_MMFR1_EL1, cpu,
1377 				      info->reg_id_mmfr1, boot->reg_id_mmfr1);
1378 	taint |= check_update_ftr_reg(SYS_ID_MMFR2_EL1, cpu,
1379 				      info->reg_id_mmfr2, boot->reg_id_mmfr2);
1380 	taint |= check_update_ftr_reg(SYS_ID_MMFR3_EL1, cpu,
1381 				      info->reg_id_mmfr3, boot->reg_id_mmfr3);
1382 	taint |= check_update_ftr_reg(SYS_ID_MMFR4_EL1, cpu,
1383 				      info->reg_id_mmfr4, boot->reg_id_mmfr4);
1384 	taint |= check_update_ftr_reg(SYS_ID_MMFR5_EL1, cpu,
1385 				      info->reg_id_mmfr5, boot->reg_id_mmfr5);
1386 	taint |= check_update_ftr_reg(SYS_ID_PFR0_EL1, cpu,
1387 				      info->reg_id_pfr0, boot->reg_id_pfr0);
1388 	taint |= check_update_ftr_reg(SYS_ID_PFR1_EL1, cpu,
1389 				      info->reg_id_pfr1, boot->reg_id_pfr1);
1390 	taint |= check_update_ftr_reg(SYS_ID_PFR2_EL1, cpu,
1391 				      info->reg_id_pfr2, boot->reg_id_pfr2);
1392 	taint |= check_update_ftr_reg(SYS_MVFR0_EL1, cpu,
1393 				      info->reg_mvfr0, boot->reg_mvfr0);
1394 	taint |= check_update_ftr_reg(SYS_MVFR1_EL1, cpu,
1395 				      info->reg_mvfr1, boot->reg_mvfr1);
1396 	taint |= check_update_ftr_reg(SYS_MVFR2_EL1, cpu,
1397 				      info->reg_mvfr2, boot->reg_mvfr2);
1398 
1399 	return taint;
1400 }
1401 
1402 /*
1403  * Update system wide CPU feature registers with the values from a
1404  * non-boot CPU. Also performs SANITY checks to make sure that there
1405  * aren't any insane variations from that of the boot CPU.
1406  */
update_cpu_features(int cpu,struct cpuinfo_arm64 * info,struct cpuinfo_arm64 * boot)1407 void update_cpu_features(int cpu,
1408 			 struct cpuinfo_arm64 *info,
1409 			 struct cpuinfo_arm64 *boot)
1410 {
1411 	int taint = 0;
1412 
1413 	/*
1414 	 * The kernel can handle differing I-cache policies, but otherwise
1415 	 * caches should look identical. Userspace JITs will make use of
1416 	 * *minLine.
1417 	 */
1418 	taint |= check_update_ftr_reg(SYS_CTR_EL0, cpu,
1419 				      info->reg_ctr, boot->reg_ctr);
1420 
1421 	/*
1422 	 * Userspace may perform DC ZVA instructions. Mismatched block sizes
1423 	 * could result in too much or too little memory being zeroed if a
1424 	 * process is preempted and migrated between CPUs.
1425 	 */
1426 	taint |= check_update_ftr_reg(SYS_DCZID_EL0, cpu,
1427 				      info->reg_dczid, boot->reg_dczid);
1428 
1429 	/* If different, timekeeping will be broken (especially with KVM) */
1430 	taint |= check_update_ftr_reg(SYS_CNTFRQ_EL0, cpu,
1431 				      info->reg_cntfrq, boot->reg_cntfrq);
1432 
1433 	/*
1434 	 * The kernel uses self-hosted debug features and expects CPUs to
1435 	 * support identical debug features. We presently need CTX_CMPs, WRPs,
1436 	 * and BRPs to be identical.
1437 	 * ID_AA64DFR1 is currently RES0.
1438 	 */
1439 	taint |= check_update_ftr_reg(SYS_ID_AA64DFR0_EL1, cpu,
1440 				      info->reg_id_aa64dfr0, boot->reg_id_aa64dfr0);
1441 	taint |= check_update_ftr_reg(SYS_ID_AA64DFR1_EL1, cpu,
1442 				      info->reg_id_aa64dfr1, boot->reg_id_aa64dfr1);
1443 	/*
1444 	 * Even in big.LITTLE, processors should be identical instruction-set
1445 	 * wise.
1446 	 */
1447 	taint |= check_update_ftr_reg(SYS_ID_AA64ISAR0_EL1, cpu,
1448 				      info->reg_id_aa64isar0, boot->reg_id_aa64isar0);
1449 	taint |= check_update_ftr_reg(SYS_ID_AA64ISAR1_EL1, cpu,
1450 				      info->reg_id_aa64isar1, boot->reg_id_aa64isar1);
1451 	taint |= check_update_ftr_reg(SYS_ID_AA64ISAR2_EL1, cpu,
1452 				      info->reg_id_aa64isar2, boot->reg_id_aa64isar2);
1453 	taint |= check_update_ftr_reg(SYS_ID_AA64ISAR3_EL1, cpu,
1454 				      info->reg_id_aa64isar3, boot->reg_id_aa64isar3);
1455 
1456 	/*
1457 	 * Differing PARange support is fine as long as all peripherals and
1458 	 * memory are mapped within the minimum PARange of all CPUs.
1459 	 * Linux should not care about secure memory.
1460 	 */
1461 	taint |= check_update_ftr_reg(SYS_ID_AA64MMFR0_EL1, cpu,
1462 				      info->reg_id_aa64mmfr0, boot->reg_id_aa64mmfr0);
1463 	taint |= check_update_ftr_reg(SYS_ID_AA64MMFR1_EL1, cpu,
1464 				      info->reg_id_aa64mmfr1, boot->reg_id_aa64mmfr1);
1465 	taint |= check_update_ftr_reg(SYS_ID_AA64MMFR2_EL1, cpu,
1466 				      info->reg_id_aa64mmfr2, boot->reg_id_aa64mmfr2);
1467 	taint |= check_update_ftr_reg(SYS_ID_AA64MMFR3_EL1, cpu,
1468 				      info->reg_id_aa64mmfr3, boot->reg_id_aa64mmfr3);
1469 	taint |= check_update_ftr_reg(SYS_ID_AA64MMFR4_EL1, cpu,
1470 				      info->reg_id_aa64mmfr4, boot->reg_id_aa64mmfr4);
1471 
1472 	taint |= check_update_ftr_reg(SYS_ID_AA64PFR0_EL1, cpu,
1473 				      info->reg_id_aa64pfr0, boot->reg_id_aa64pfr0);
1474 	taint |= check_update_ftr_reg(SYS_ID_AA64PFR1_EL1, cpu,
1475 				      info->reg_id_aa64pfr1, boot->reg_id_aa64pfr1);
1476 	taint |= check_update_ftr_reg(SYS_ID_AA64PFR2_EL1, cpu,
1477 				      info->reg_id_aa64pfr2, boot->reg_id_aa64pfr2);
1478 
1479 	taint |= check_update_ftr_reg(SYS_ID_AA64ZFR0_EL1, cpu,
1480 				      info->reg_id_aa64zfr0, boot->reg_id_aa64zfr0);
1481 
1482 	taint |= check_update_ftr_reg(SYS_ID_AA64SMFR0_EL1, cpu,
1483 				      info->reg_id_aa64smfr0, boot->reg_id_aa64smfr0);
1484 
1485 	taint |= check_update_ftr_reg(SYS_ID_AA64FPFR0_EL1, cpu,
1486 				      info->reg_id_aa64fpfr0, boot->reg_id_aa64fpfr0);
1487 
1488 	/* Probe vector lengths */
1489 	if (IS_ENABLED(CONFIG_ARM64_SVE) &&
1490 	    id_aa64pfr0_sve(read_sanitised_ftr_reg(SYS_ID_AA64PFR0_EL1))) {
1491 		if (!system_capabilities_finalized()) {
1492 			unsigned long cpacr = cpacr_save_enable_kernel_sve();
1493 
1494 			vec_update_vq_map(ARM64_VEC_SVE);
1495 
1496 			cpacr_restore(cpacr);
1497 		}
1498 	}
1499 
1500 	if (IS_ENABLED(CONFIG_ARM64_SME) &&
1501 	    id_aa64pfr1_sme(read_sanitised_ftr_reg(SYS_ID_AA64PFR1_EL1))) {
1502 		unsigned long cpacr = cpacr_save_enable_kernel_sme();
1503 
1504 		/* Probe vector lengths */
1505 		if (!system_capabilities_finalized())
1506 			vec_update_vq_map(ARM64_VEC_SME);
1507 
1508 		cpacr_restore(cpacr);
1509 	}
1510 
1511 	if (detect_ftr_has_mpam()) {
1512 		info->reg_mpamidr = read_cpuid(MPAMIDR_EL1);
1513 		taint |= check_update_ftr_reg(SYS_MPAMIDR_EL1, cpu,
1514 					info->reg_mpamidr, boot->reg_mpamidr);
1515 	}
1516 
1517 	/*
1518 	 * The kernel uses the LDGM/STGM instructions and the number of tags
1519 	 * they read/write depends on the GMID_EL1.BS field. Check that the
1520 	 * value is the same on all CPUs.
1521 	 */
1522 	if (gmid_el1_accessible(info))
1523 		taint |= check_update_ftr_reg(SYS_GMID_EL1, cpu,
1524 					      info->reg_gmid, boot->reg_gmid);
1525 
1526 	/*
1527 	 * If we don't have AArch32 at all then skip the checks entirely
1528 	 * as the register values may be UNKNOWN and we're not going to be
1529 	 * using them for anything.
1530 	 *
1531 	 * This relies on a sanitised view of the AArch64 ID registers
1532 	 * (e.g. SYS_ID_AA64PFR0_EL1), so we call it last.
1533 	 */
1534 	if (id_aa64pfr0_32bit_el0(info->reg_id_aa64pfr0)) {
1535 		lazy_init_32bit_cpu_features(info, boot);
1536 		taint |= update_32bit_cpu_features(cpu, &info->aarch32,
1537 						   &boot->aarch32);
1538 	}
1539 
1540 	/*
1541 	 * Mismatched CPU features are a recipe for disaster. Don't even
1542 	 * pretend to support them.
1543 	 */
1544 	if (taint) {
1545 		pr_warn_once("Unsupported CPU feature variation detected.\n");
1546 		add_taint(TAINT_CPU_OUT_OF_SPEC, LOCKDEP_STILL_OK);
1547 	}
1548 }
1549 
read_sanitised_ftr_reg(u32 id)1550 u64 read_sanitised_ftr_reg(u32 id)
1551 {
1552 	struct arm64_ftr_reg *regp = get_arm64_ftr_reg(id);
1553 
1554 	if (!regp)
1555 		return 0;
1556 	return regp->sys_val;
1557 }
1558 EXPORT_SYMBOL_GPL(read_sanitised_ftr_reg);
1559 
1560 #define read_sysreg_case(r)	\
1561 	case r:		val = read_sysreg_s(r); break;
1562 
1563 /*
1564  * __read_sysreg_by_encoding() - Used by a STARTING cpu before cpuinfo is populated.
1565  * Read the system register on the current CPU
1566  */
__read_sysreg_by_encoding(u32 sys_id)1567 u64 __read_sysreg_by_encoding(u32 sys_id)
1568 {
1569 	struct arm64_ftr_reg *regp;
1570 	u64 val;
1571 
1572 	switch (sys_id) {
1573 	read_sysreg_case(SYS_ID_PFR0_EL1);
1574 	read_sysreg_case(SYS_ID_PFR1_EL1);
1575 	read_sysreg_case(SYS_ID_PFR2_EL1);
1576 	read_sysreg_case(SYS_ID_DFR0_EL1);
1577 	read_sysreg_case(SYS_ID_DFR1_EL1);
1578 	read_sysreg_case(SYS_ID_MMFR0_EL1);
1579 	read_sysreg_case(SYS_ID_MMFR1_EL1);
1580 	read_sysreg_case(SYS_ID_MMFR2_EL1);
1581 	read_sysreg_case(SYS_ID_MMFR3_EL1);
1582 	read_sysreg_case(SYS_ID_MMFR4_EL1);
1583 	read_sysreg_case(SYS_ID_MMFR5_EL1);
1584 	read_sysreg_case(SYS_ID_ISAR0_EL1);
1585 	read_sysreg_case(SYS_ID_ISAR1_EL1);
1586 	read_sysreg_case(SYS_ID_ISAR2_EL1);
1587 	read_sysreg_case(SYS_ID_ISAR3_EL1);
1588 	read_sysreg_case(SYS_ID_ISAR4_EL1);
1589 	read_sysreg_case(SYS_ID_ISAR5_EL1);
1590 	read_sysreg_case(SYS_ID_ISAR6_EL1);
1591 	read_sysreg_case(SYS_MVFR0_EL1);
1592 	read_sysreg_case(SYS_MVFR1_EL1);
1593 	read_sysreg_case(SYS_MVFR2_EL1);
1594 
1595 	read_sysreg_case(SYS_ID_AA64PFR0_EL1);
1596 	read_sysreg_case(SYS_ID_AA64PFR1_EL1);
1597 	read_sysreg_case(SYS_ID_AA64PFR2_EL1);
1598 	read_sysreg_case(SYS_ID_AA64ZFR0_EL1);
1599 	read_sysreg_case(SYS_ID_AA64SMFR0_EL1);
1600 	read_sysreg_case(SYS_ID_AA64FPFR0_EL1);
1601 	read_sysreg_case(SYS_ID_AA64DFR0_EL1);
1602 	read_sysreg_case(SYS_ID_AA64DFR1_EL1);
1603 	read_sysreg_case(SYS_ID_AA64MMFR0_EL1);
1604 	read_sysreg_case(SYS_ID_AA64MMFR1_EL1);
1605 	read_sysreg_case(SYS_ID_AA64MMFR2_EL1);
1606 	read_sysreg_case(SYS_ID_AA64MMFR3_EL1);
1607 	read_sysreg_case(SYS_ID_AA64MMFR4_EL1);
1608 	read_sysreg_case(SYS_ID_AA64ISAR0_EL1);
1609 	read_sysreg_case(SYS_ID_AA64ISAR1_EL1);
1610 	read_sysreg_case(SYS_ID_AA64ISAR2_EL1);
1611 	read_sysreg_case(SYS_ID_AA64ISAR3_EL1);
1612 
1613 	read_sysreg_case(SYS_CNTFRQ_EL0);
1614 	read_sysreg_case(SYS_CTR_EL0);
1615 	read_sysreg_case(SYS_DCZID_EL0);
1616 
1617 	default:
1618 		BUG();
1619 		return 0;
1620 	}
1621 
1622 	regp  = get_arm64_ftr_reg(sys_id);
1623 	if (regp) {
1624 		val &= ~regp->override->mask;
1625 		val |= (regp->override->val & regp->override->mask);
1626 	}
1627 
1628 	return val;
1629 }
1630 
1631 #include <linux/irqchip/arm-gic-v3.h>
1632 
1633 static bool
has_always(const struct arm64_cpu_capabilities * entry,int scope)1634 has_always(const struct arm64_cpu_capabilities *entry, int scope)
1635 {
1636 	return true;
1637 }
1638 
1639 static bool
feature_matches(u64 reg,const struct arm64_cpu_capabilities * entry)1640 feature_matches(u64 reg, const struct arm64_cpu_capabilities *entry)
1641 {
1642 	int val, min, max;
1643 	u64 tmp;
1644 
1645 	val = cpuid_feature_extract_field_width(reg, entry->field_pos,
1646 						entry->field_width,
1647 						entry->sign);
1648 
1649 	tmp = entry->min_field_value;
1650 	tmp <<= entry->field_pos;
1651 
1652 	min = cpuid_feature_extract_field_width(tmp, entry->field_pos,
1653 						entry->field_width,
1654 						entry->sign);
1655 
1656 	tmp = entry->max_field_value;
1657 	tmp <<= entry->field_pos;
1658 
1659 	max = cpuid_feature_extract_field_width(tmp, entry->field_pos,
1660 						entry->field_width,
1661 						entry->sign);
1662 
1663 	return val >= min && val <= max;
1664 }
1665 
1666 static u64
read_scoped_sysreg(const struct arm64_cpu_capabilities * entry,int scope)1667 read_scoped_sysreg(const struct arm64_cpu_capabilities *entry, int scope)
1668 {
1669 	WARN_ON(scope == SCOPE_LOCAL_CPU && preemptible());
1670 	if (scope == SCOPE_SYSTEM)
1671 		return read_sanitised_ftr_reg(entry->sys_reg);
1672 	else
1673 		return __read_sysreg_by_encoding(entry->sys_reg);
1674 }
1675 
1676 static bool
has_user_cpuid_feature(const struct arm64_cpu_capabilities * entry,int scope)1677 has_user_cpuid_feature(const struct arm64_cpu_capabilities *entry, int scope)
1678 {
1679 	int mask;
1680 	struct arm64_ftr_reg *regp;
1681 	u64 val = read_scoped_sysreg(entry, scope);
1682 
1683 	regp = get_arm64_ftr_reg(entry->sys_reg);
1684 	if (!regp)
1685 		return false;
1686 
1687 	mask = cpuid_feature_extract_unsigned_field_width(regp->user_mask,
1688 							  entry->field_pos,
1689 							  entry->field_width);
1690 	if (!mask)
1691 		return false;
1692 
1693 	return feature_matches(val, entry);
1694 }
1695 
1696 static bool
has_cpuid_feature(const struct arm64_cpu_capabilities * entry,int scope)1697 has_cpuid_feature(const struct arm64_cpu_capabilities *entry, int scope)
1698 {
1699 	u64 val = read_scoped_sysreg(entry, scope);
1700 	return feature_matches(val, entry);
1701 }
1702 
system_32bit_el0_cpumask(void)1703 const struct cpumask *system_32bit_el0_cpumask(void)
1704 {
1705 	if (!system_supports_32bit_el0())
1706 		return cpu_none_mask;
1707 
1708 	if (static_branch_unlikely(&arm64_mismatched_32bit_el0))
1709 		return cpu_32bit_el0_mask;
1710 
1711 	return cpu_possible_mask;
1712 }
1713 
task_cpu_fallback_mask(struct task_struct * p)1714 const struct cpumask *task_cpu_fallback_mask(struct task_struct *p)
1715 {
1716 	return __task_cpu_possible_mask(p, housekeeping_cpumask(HK_TYPE_DOMAIN));
1717 }
1718 
parse_32bit_el0_param(char * str)1719 static int __init parse_32bit_el0_param(char *str)
1720 {
1721 	allow_mismatched_32bit_el0 = true;
1722 	return 0;
1723 }
1724 early_param("allow_mismatched_32bit_el0", parse_32bit_el0_param);
1725 
aarch32_el0_show(struct device * dev,struct device_attribute * attr,char * buf)1726 static ssize_t aarch32_el0_show(struct device *dev,
1727 				struct device_attribute *attr, char *buf)
1728 {
1729 	const struct cpumask *mask = system_32bit_el0_cpumask();
1730 
1731 	return sysfs_emit(buf, "%*pbl\n", cpumask_pr_args(mask));
1732 }
1733 static const DEVICE_ATTR_RO(aarch32_el0);
1734 
aarch32_el0_sysfs_init(void)1735 static int __init aarch32_el0_sysfs_init(void)
1736 {
1737 	struct device *dev_root;
1738 	int ret = 0;
1739 
1740 	if (!allow_mismatched_32bit_el0)
1741 		return 0;
1742 
1743 	dev_root = bus_get_dev_root(&cpu_subsys);
1744 	if (dev_root) {
1745 		ret = device_create_file(dev_root, &dev_attr_aarch32_el0);
1746 		put_device(dev_root);
1747 	}
1748 	return ret;
1749 }
1750 device_initcall(aarch32_el0_sysfs_init);
1751 
has_32bit_el0(const struct arm64_cpu_capabilities * entry,int scope)1752 static bool has_32bit_el0(const struct arm64_cpu_capabilities *entry, int scope)
1753 {
1754 	if (!has_cpuid_feature(entry, scope))
1755 		return allow_mismatched_32bit_el0;
1756 
1757 	if (scope == SCOPE_SYSTEM)
1758 		pr_info("detected: 32-bit EL0 Support\n");
1759 
1760 	return true;
1761 }
1762 
has_useable_gicv3_cpuif(const struct arm64_cpu_capabilities * entry,int scope)1763 static bool has_useable_gicv3_cpuif(const struct arm64_cpu_capabilities *entry, int scope)
1764 {
1765 	bool has_sre;
1766 
1767 	if (!has_cpuid_feature(entry, scope))
1768 		return false;
1769 
1770 	has_sre = gic_enable_sre();
1771 	if (!has_sre)
1772 		pr_warn_once("%s present but disabled by higher exception level\n",
1773 			     entry->desc);
1774 
1775 	return has_sre;
1776 }
1777 
has_cache_idc(const struct arm64_cpu_capabilities * entry,int scope)1778 static bool has_cache_idc(const struct arm64_cpu_capabilities *entry,
1779 			  int scope)
1780 {
1781 	u64 ctr;
1782 
1783 	if (scope == SCOPE_SYSTEM)
1784 		ctr = arm64_ftr_reg_ctrel0.sys_val;
1785 	else
1786 		ctr = read_cpuid_effective_cachetype();
1787 
1788 	return ctr & BIT(CTR_EL0_IDC_SHIFT);
1789 }
1790 
cpu_emulate_effective_ctr(const struct arm64_cpu_capabilities * __unused)1791 static void cpu_emulate_effective_ctr(const struct arm64_cpu_capabilities *__unused)
1792 {
1793 	/*
1794 	 * If the CPU exposes raw CTR_EL0.IDC = 0, while effectively
1795 	 * CTR_EL0.IDC = 1 (from CLIDR values), we need to trap accesses
1796 	 * to the CTR_EL0 on this CPU and emulate it with the real/safe
1797 	 * value.
1798 	 */
1799 	if (!(read_cpuid_cachetype() & BIT(CTR_EL0_IDC_SHIFT)))
1800 		sysreg_clear_set(sctlr_el1, SCTLR_EL1_UCT, 0);
1801 }
1802 
has_cache_dic(const struct arm64_cpu_capabilities * entry,int scope)1803 static bool has_cache_dic(const struct arm64_cpu_capabilities *entry,
1804 			  int scope)
1805 {
1806 	u64 ctr;
1807 
1808 	if (scope == SCOPE_SYSTEM)
1809 		ctr = arm64_ftr_reg_ctrel0.sys_val;
1810 	else
1811 		ctr = read_cpuid_cachetype();
1812 
1813 	return ctr & BIT(CTR_EL0_DIC_SHIFT);
1814 }
1815 
1816 static bool __maybe_unused
has_useable_cnp(const struct arm64_cpu_capabilities * entry,int scope)1817 has_useable_cnp(const struct arm64_cpu_capabilities *entry, int scope)
1818 {
1819 	/*
1820 	 * Kdump isn't guaranteed to power-off all secondary CPUs, CNP
1821 	 * may share TLB entries with a CPU stuck in the crashed
1822 	 * kernel.
1823 	 */
1824 	if (is_kdump_kernel())
1825 		return false;
1826 
1827 	if (cpus_have_cap(ARM64_WORKAROUND_DISABLE_CNP))
1828 		return false;
1829 
1830 	return has_cpuid_feature(entry, scope);
1831 }
1832 
1833 static bool __meltdown_safe = true;
1834 static int __kpti_forced; /* 0: not forced, >0: forced on, <0: forced off */
1835 
unmap_kernel_at_el0(const struct arm64_cpu_capabilities * entry,int scope)1836 static bool unmap_kernel_at_el0(const struct arm64_cpu_capabilities *entry,
1837 				int scope)
1838 {
1839 	/* List of CPUs that are not vulnerable and don't need KPTI */
1840 	static const struct midr_range kpti_safe_list[] = {
1841 		MIDR_ALL_VERSIONS(MIDR_CAVIUM_THUNDERX2),
1842 		MIDR_ALL_VERSIONS(MIDR_BRCM_VULCAN),
1843 		MIDR_ALL_VERSIONS(MIDR_BRAHMA_B53),
1844 		MIDR_ALL_VERSIONS(MIDR_CORTEX_A35),
1845 		MIDR_ALL_VERSIONS(MIDR_CORTEX_A53),
1846 		MIDR_ALL_VERSIONS(MIDR_CORTEX_A55),
1847 		MIDR_ALL_VERSIONS(MIDR_CORTEX_A57),
1848 		MIDR_ALL_VERSIONS(MIDR_CORTEX_A72),
1849 		MIDR_ALL_VERSIONS(MIDR_CORTEX_A73),
1850 		MIDR_ALL_VERSIONS(MIDR_HISI_TSV110),
1851 		MIDR_ALL_VERSIONS(MIDR_NVIDIA_CARMEL),
1852 		MIDR_ALL_VERSIONS(MIDR_QCOM_KRYO_2XX_GOLD),
1853 		MIDR_ALL_VERSIONS(MIDR_QCOM_KRYO_2XX_SILVER),
1854 		MIDR_ALL_VERSIONS(MIDR_QCOM_KRYO_3XX_SILVER),
1855 		MIDR_ALL_VERSIONS(MIDR_QCOM_KRYO_4XX_SILVER),
1856 		{ /* sentinel */ }
1857 	};
1858 	char const *str = "kpti command line option";
1859 	bool meltdown_safe;
1860 
1861 	meltdown_safe = is_midr_in_range_list(kpti_safe_list);
1862 
1863 	/* Defer to CPU feature registers */
1864 	if (has_cpuid_feature(entry, scope))
1865 		meltdown_safe = true;
1866 
1867 	if (!meltdown_safe)
1868 		__meltdown_safe = false;
1869 
1870 	/*
1871 	 * For reasons that aren't entirely clear, enabling KPTI on Cavium
1872 	 * ThunderX leads to apparent I-cache corruption of kernel text, which
1873 	 * ends as well as you might imagine. Don't even try. We cannot rely
1874 	 * on the cpus_have_*cap() helpers here to detect the CPU erratum
1875 	 * because cpucap detection order may change. However, since we know
1876 	 * affected CPUs are always in a homogeneous configuration, it is
1877 	 * safe to rely on this_cpu_has_cap() here.
1878 	 */
1879 	if (this_cpu_has_cap(ARM64_WORKAROUND_CAVIUM_27456)) {
1880 		str = "ARM64_WORKAROUND_CAVIUM_27456";
1881 		__kpti_forced = -1;
1882 	}
1883 
1884 	/* Useful for KASLR robustness */
1885 	if (kaslr_enabled() && kaslr_requires_kpti()) {
1886 		if (!__kpti_forced) {
1887 			str = "KASLR";
1888 			__kpti_forced = 1;
1889 		}
1890 	}
1891 
1892 	if (cpu_mitigations_off() && !__kpti_forced) {
1893 		str = "mitigations=off";
1894 		__kpti_forced = -1;
1895 	}
1896 
1897 	if (!IS_ENABLED(CONFIG_UNMAP_KERNEL_AT_EL0)) {
1898 		pr_info_once("kernel page table isolation disabled by kernel configuration\n");
1899 		return false;
1900 	}
1901 
1902 	/* Forced? */
1903 	if (__kpti_forced) {
1904 		pr_info_once("kernel page table isolation forced %s by %s\n",
1905 			     __kpti_forced > 0 ? "ON" : "OFF", str);
1906 		return __kpti_forced > 0;
1907 	}
1908 
1909 	return !meltdown_safe;
1910 }
1911 
has_nv1(const struct arm64_cpu_capabilities * entry,int scope)1912 static bool has_nv1(const struct arm64_cpu_capabilities *entry, int scope)
1913 {
1914 	/*
1915 	 * Although the Apple M2 family appears to support NV1, the
1916 	 * PTW barfs on the nVHE EL2 S1 page table format. Pretend
1917 	 * that it doesn't support NV1 at all.
1918 	 */
1919 	static const struct midr_range nv1_ni_list[] = {
1920 		MIDR_ALL_VERSIONS(MIDR_APPLE_M2_BLIZZARD),
1921 		MIDR_ALL_VERSIONS(MIDR_APPLE_M2_AVALANCHE),
1922 		MIDR_ALL_VERSIONS(MIDR_APPLE_M2_BLIZZARD_PRO),
1923 		MIDR_ALL_VERSIONS(MIDR_APPLE_M2_AVALANCHE_PRO),
1924 		MIDR_ALL_VERSIONS(MIDR_APPLE_M2_BLIZZARD_MAX),
1925 		MIDR_ALL_VERSIONS(MIDR_APPLE_M2_AVALANCHE_MAX),
1926 		{}
1927 	};
1928 
1929 	return (__system_matches_cap(ARM64_HAS_NESTED_VIRT) &&
1930 		!(has_cpuid_feature(entry, scope) ||
1931 		  is_midr_in_range_list(nv1_ni_list)));
1932 }
1933 
1934 #if defined(ID_AA64MMFR0_EL1_TGRAN_LPA2) && defined(ID_AA64MMFR0_EL1_TGRAN_2_SUPPORTED_LPA2)
has_lpa2_at_stage1(u64 mmfr0)1935 static bool has_lpa2_at_stage1(u64 mmfr0)
1936 {
1937 	unsigned int tgran;
1938 
1939 	tgran = cpuid_feature_extract_unsigned_field(mmfr0,
1940 					ID_AA64MMFR0_EL1_TGRAN_SHIFT);
1941 	return tgran == ID_AA64MMFR0_EL1_TGRAN_LPA2;
1942 }
1943 
has_lpa2_at_stage2(u64 mmfr0)1944 static bool has_lpa2_at_stage2(u64 mmfr0)
1945 {
1946 	unsigned int tgran;
1947 
1948 	tgran = cpuid_feature_extract_unsigned_field(mmfr0,
1949 					ID_AA64MMFR0_EL1_TGRAN_2_SHIFT);
1950 	return tgran == ID_AA64MMFR0_EL1_TGRAN_2_SUPPORTED_LPA2;
1951 }
1952 
has_lpa2(const struct arm64_cpu_capabilities * entry,int scope)1953 static bool has_lpa2(const struct arm64_cpu_capabilities *entry, int scope)
1954 {
1955 	u64 mmfr0;
1956 
1957 	mmfr0 = read_sanitised_ftr_reg(SYS_ID_AA64MMFR0_EL1);
1958 	return has_lpa2_at_stage1(mmfr0) && has_lpa2_at_stage2(mmfr0);
1959 }
1960 #else
has_lpa2(const struct arm64_cpu_capabilities * entry,int scope)1961 static bool has_lpa2(const struct arm64_cpu_capabilities *entry, int scope)
1962 {
1963 	return false;
1964 }
1965 #endif
1966 
1967 #ifdef CONFIG_HW_PERF_EVENTS
has_pmuv3(const struct arm64_cpu_capabilities * entry,int scope)1968 static bool has_pmuv3(const struct arm64_cpu_capabilities *entry, int scope)
1969 {
1970 	u64 dfr0 = read_sanitised_ftr_reg(SYS_ID_AA64DFR0_EL1);
1971 	unsigned int pmuver;
1972 
1973 	pmuver = cpuid_feature_extract_unsigned_field(dfr0,
1974 						      ID_AA64DFR0_EL1_PMUVer_SHIFT);
1975 
1976 	return pmuv3_implemented(pmuver);
1977 }
1978 #endif
1979 
cpu_enable_kpti(struct arm64_cpu_capabilities const * cap)1980 static void cpu_enable_kpti(struct arm64_cpu_capabilities const *cap)
1981 {
1982 	if (__this_cpu_read(this_cpu_vector) == vectors) {
1983 		const char *v = arm64_get_bp_hardening_vector(EL1_VECTOR_KPTI);
1984 
1985 		__this_cpu_write(this_cpu_vector, v);
1986 	}
1987 
1988 }
1989 
parse_kpti(char * str)1990 static int __init parse_kpti(char *str)
1991 {
1992 	bool enabled;
1993 	int ret = kstrtobool(str, &enabled);
1994 
1995 	if (ret)
1996 		return ret;
1997 
1998 	__kpti_forced = enabled ? 1 : -1;
1999 	return 0;
2000 }
2001 early_param("kpti", parse_kpti);
2002 
2003 #ifdef CONFIG_ARM64_HW_AFDBM
2004 static struct cpumask dbm_cpus __read_mostly;
2005 
__cpu_enable_hw_dbm(void)2006 static inline void __cpu_enable_hw_dbm(void)
2007 {
2008 	u64 tcr = read_sysreg(tcr_el1) | TCR_EL1_HD;
2009 
2010 	write_sysreg(tcr, tcr_el1);
2011 	isb();
2012 	local_flush_tlb_all();
2013 }
2014 
cpu_has_broken_dbm(void)2015 static bool cpu_has_broken_dbm(void)
2016 {
2017 	/* List of CPUs which have broken DBM support. */
2018 	static const struct midr_range cpus[] = {
2019 #ifdef CONFIG_ARM64_ERRATUM_1024718
2020 		MIDR_ALL_VERSIONS(MIDR_CORTEX_A55),
2021 		/* Kryo4xx Silver (rdpe => r1p0) */
2022 		MIDR_REV(MIDR_QCOM_KRYO_4XX_SILVER, 0xd, 0xe),
2023 #endif
2024 #ifdef CONFIG_ARM64_ERRATUM_2051678
2025 		MIDR_REV_RANGE(MIDR_CORTEX_A510, 0, 0, 2),
2026 #endif
2027 		{},
2028 	};
2029 
2030 	return is_midr_in_range_list(cpus);
2031 }
2032 
cpu_can_use_dbm(const struct arm64_cpu_capabilities * cap)2033 static bool cpu_can_use_dbm(const struct arm64_cpu_capabilities *cap)
2034 {
2035 	return has_cpuid_feature(cap, SCOPE_LOCAL_CPU) &&
2036 	       !cpu_has_broken_dbm();
2037 }
2038 
cpu_enable_hw_dbm(struct arm64_cpu_capabilities const * cap)2039 static void cpu_enable_hw_dbm(struct arm64_cpu_capabilities const *cap)
2040 {
2041 	if (cpu_can_use_dbm(cap)) {
2042 		__cpu_enable_hw_dbm();
2043 		cpumask_set_cpu(smp_processor_id(), &dbm_cpus);
2044 	}
2045 }
2046 
has_hw_dbm(const struct arm64_cpu_capabilities * cap,int __unused)2047 static bool has_hw_dbm(const struct arm64_cpu_capabilities *cap,
2048 		       int __unused)
2049 {
2050 	/*
2051 	 * DBM is a non-conflicting feature. i.e, the kernel can safely
2052 	 * run a mix of CPUs with and without the feature. So, we
2053 	 * unconditionally enable the capability to allow any late CPU
2054 	 * to use the feature. We only enable the control bits on the
2055 	 * CPU, if it is supported.
2056 	 */
2057 
2058 	return true;
2059 }
2060 
2061 #endif
2062 
2063 #ifdef CONFIG_ARM64_AMU_EXTN
2064 
2065 /*
2066  * The "amu_cpus" cpumask only signals that the CPU implementation for the
2067  * flagged CPUs supports the Activity Monitors Unit (AMU) but does not provide
2068  * information regarding all the events that it supports. When a CPU bit is
2069  * set in the cpumask, the user of this feature can only rely on the presence
2070  * of the 4 fixed counters for that CPU. But this does not guarantee that the
2071  * counters are enabled or access to these counters is enabled by code
2072  * executed at higher exception levels (firmware).
2073  */
2074 static struct cpumask amu_cpus __read_mostly;
2075 
cpu_has_amu_feat(int cpu)2076 bool cpu_has_amu_feat(int cpu)
2077 {
2078 	return cpumask_test_cpu(cpu, &amu_cpus);
2079 }
2080 
get_cpu_with_amu_feat(void)2081 int get_cpu_with_amu_feat(void)
2082 {
2083 	return cpumask_any(&amu_cpus);
2084 }
2085 
cpu_amu_enable(struct arm64_cpu_capabilities const * cap)2086 static void cpu_amu_enable(struct arm64_cpu_capabilities const *cap)
2087 {
2088 	if (has_cpuid_feature(cap, SCOPE_LOCAL_CPU)) {
2089 		cpumask_set_cpu(smp_processor_id(), &amu_cpus);
2090 
2091 		/* 0 reference values signal broken/disabled counters */
2092 		if (!this_cpu_has_cap(ARM64_WORKAROUND_2457168))
2093 			update_freq_counters_refs();
2094 	}
2095 }
2096 
has_amu(const struct arm64_cpu_capabilities * cap,int __unused)2097 static bool has_amu(const struct arm64_cpu_capabilities *cap,
2098 		    int __unused)
2099 {
2100 	/*
2101 	 * The AMU extension is a non-conflicting feature: the kernel can
2102 	 * safely run a mix of CPUs with and without support for the
2103 	 * activity monitors extension. Therefore, unconditionally enable
2104 	 * the capability to allow any late CPU to use the feature.
2105 	 *
2106 	 * With this feature unconditionally enabled, the cpu_enable
2107 	 * function will be called for all CPUs that match the criteria,
2108 	 * including secondary and hotplugged, marking this feature as
2109 	 * present on that respective CPU. The enable function will also
2110 	 * print a detection message.
2111 	 */
2112 
2113 	return true;
2114 }
2115 #else
get_cpu_with_amu_feat(void)2116 int get_cpu_with_amu_feat(void)
2117 {
2118 	return nr_cpu_ids;
2119 }
2120 #endif
2121 
runs_at_el2(const struct arm64_cpu_capabilities * entry,int __unused)2122 static bool runs_at_el2(const struct arm64_cpu_capabilities *entry, int __unused)
2123 {
2124 	return is_kernel_in_hyp_mode();
2125 }
2126 
cpu_copy_el2regs(const struct arm64_cpu_capabilities * __unused)2127 static void cpu_copy_el2regs(const struct arm64_cpu_capabilities *__unused)
2128 {
2129 	/*
2130 	 * Copy register values that aren't redirected by hardware.
2131 	 *
2132 	 * Before code patching, we only set tpidr_el1, all CPUs need to copy
2133 	 * this value to tpidr_el2 before we patch the code. Once we've done
2134 	 * that, freshly-onlined CPUs will set tpidr_el2, so we don't need to
2135 	 * do anything here.
2136 	 */
2137 	if (!alternative_is_applied(ARM64_HAS_VIRT_HOST_EXTN))
2138 		write_sysreg(read_sysreg(tpidr_el1), tpidr_el2);
2139 }
2140 
has_nested_virt_support(const struct arm64_cpu_capabilities * cap,int scope)2141 static bool has_nested_virt_support(const struct arm64_cpu_capabilities *cap,
2142 				    int scope)
2143 {
2144 	if (kvm_get_mode() != KVM_MODE_NV)
2145 		return false;
2146 
2147 	if (!cpucap_multi_entry_cap_matches(cap, scope)) {
2148 		pr_warn("unavailable: %s\n", cap->desc);
2149 		return false;
2150 	}
2151 
2152 	return true;
2153 }
2154 
hvhe_possible(const struct arm64_cpu_capabilities * entry,int __unused)2155 static bool hvhe_possible(const struct arm64_cpu_capabilities *entry,
2156 			  int __unused)
2157 {
2158 	return arm64_test_sw_feature_override(ARM64_SW_FEATURE_OVERRIDE_HVHE);
2159 }
2160 
cpu_supports_bbml3(void)2161 bool cpu_supports_bbml3(void)
2162 {
2163 	/* CPUs that support BBML3 but dont advertise through ID_AA64MMFR2_EL1 */
2164 	static const struct midr_range supports_bbml3_list[] = {
2165 		MIDR_REV_RANGE(MIDR_CORTEX_X4, 0, 3, 0xf),
2166 		MIDR_REV_RANGE(MIDR_NEOVERSE_V3, 0, 2, 0xf),
2167 		MIDR_REV_RANGE(MIDR_NEOVERSE_V3AE, 0, 2, 0xf),
2168 		MIDR_ALL_VERSIONS(MIDR_NVIDIA_OLYMPUS),
2169 		MIDR_ALL_VERSIONS(MIDR_AMPERE1),
2170 		MIDR_ALL_VERSIONS(MIDR_AMPERE1A),
2171 		MIDR_ALL_VERSIONS(MIDR_CORTEX_A520AE),
2172 		MIDR_ALL_VERSIONS(MIDR_CORTEX_A715),
2173 		MIDR_ALL_VERSIONS(MIDR_CORTEX_A720AE),
2174 		MIDR_ALL_VERSIONS(MIDR_CORTEX_A725),
2175 		MIDR_ALL_VERSIONS(MIDR_NEOVERSE_N3),
2176 		MIDR_ALL_VERSIONS(MIDR_C1_NANO),
2177 		MIDR_ALL_VERSIONS(MIDR_C1_PRO),
2178 		/* Erratum 3683289 fixed in r1p1 */
2179 		MIDR_RANGE(MIDR_C1_ULTRA, 1, 1, 0xf, 0xf),
2180 		MIDR_RANGE(MIDR_C1_PREMIUM, 1, 1, 0xf, 0xf),
2181 		{}
2182 	};
2183 	u64 mmfr2 = __read_sysreg_by_encoding(SYS_ID_AA64MMFR2_EL1);
2184 
2185 	if (SYS_FIELD_GET(ID_AA64MMFR2_EL1, BBM, mmfr2) >= ID_AA64MMFR2_EL1_BBM_3)
2186 		return true;
2187 
2188 	return is_midr_in_range_list(supports_bbml3_list);
2189 }
2190 
has_bbml3(const struct arm64_cpu_capabilities * caps,int scope)2191 static bool has_bbml3(const struct arm64_cpu_capabilities *caps, int scope)
2192 {
2193 	return cpu_supports_bbml3();
2194 }
2195 
cpu_enable_pan(const struct arm64_cpu_capabilities * __unused)2196 static void cpu_enable_pan(const struct arm64_cpu_capabilities *__unused)
2197 {
2198 	/*
2199 	 * We modify PSTATE. This won't work from irq context as the PSTATE
2200 	 * is discarded once we return from the exception.
2201 	 */
2202 	WARN_ON_ONCE(in_interrupt());
2203 
2204 	sysreg_clear_set(sctlr_el1, SCTLR_EL1_SPAN, 0);
2205 	set_pstate_pan(1);
2206 }
2207 
2208 #ifdef CONFIG_ARM64_RAS_EXTN
cpu_clear_disr(const struct arm64_cpu_capabilities * __unused)2209 static void cpu_clear_disr(const struct arm64_cpu_capabilities *__unused)
2210 {
2211 	/* Firmware may have left a deferred SError in this register. */
2212 	write_sysreg_s(0, SYS_DISR_EL1);
2213 }
has_rasv1p1(const struct arm64_cpu_capabilities * __unused,int scope)2214 static bool has_rasv1p1(const struct arm64_cpu_capabilities *__unused, int scope)
2215 {
2216 	const struct arm64_cpu_capabilities rasv1p1_caps[] = {
2217 		{
2218 			ARM64_CPUID_FIELDS(ID_AA64PFR0_EL1, RAS, V1P1)
2219 		},
2220 		{
2221 			ARM64_CPUID_FIELDS(ID_AA64PFR0_EL1, RAS, IMP)
2222 		},
2223 		{
2224 			ARM64_CPUID_FIELDS(ID_AA64PFR1_EL1, RAS_frac, RASv1p1)
2225 		},
2226 	};
2227 
2228 	return (has_cpuid_feature(&rasv1p1_caps[0], scope) ||
2229 		(has_cpuid_feature(&rasv1p1_caps[1], scope) &&
2230 		 has_cpuid_feature(&rasv1p1_caps[2], scope)));
2231 }
2232 #endif /* CONFIG_ARM64_RAS_EXTN */
2233 
2234 #ifdef CONFIG_ARM64_PTR_AUTH
has_address_auth_cpucap(const struct arm64_cpu_capabilities * entry,int scope)2235 static bool has_address_auth_cpucap(const struct arm64_cpu_capabilities *entry, int scope)
2236 {
2237 	int boot_val, sec_val;
2238 
2239 	/* We don't expect to be called with SCOPE_SYSTEM */
2240 	WARN_ON(scope == SCOPE_SYSTEM);
2241 	/*
2242 	 * The ptr-auth feature levels are not intercompatible with lower
2243 	 * levels. Hence we must match ptr-auth feature level of the secondary
2244 	 * CPUs with that of the boot CPU. The level of boot cpu is fetched
2245 	 * from the sanitised register whereas direct register read is done for
2246 	 * the secondary CPUs.
2247 	 * The sanitised feature state is guaranteed to match that of the
2248 	 * boot CPU as a mismatched secondary CPU is parked before it gets
2249 	 * a chance to update the state, with the capability.
2250 	 */
2251 	boot_val = cpuid_feature_extract_field(read_sanitised_ftr_reg(entry->sys_reg),
2252 					       entry->field_pos, entry->sign);
2253 	if (scope & SCOPE_BOOT_CPU)
2254 		return boot_val >= entry->min_field_value;
2255 	/* Now check for the secondary CPUs with SCOPE_LOCAL_CPU scope */
2256 	sec_val = cpuid_feature_extract_field(__read_sysreg_by_encoding(entry->sys_reg),
2257 					      entry->field_pos, entry->sign);
2258 	return (sec_val >= entry->min_field_value) && (sec_val == boot_val);
2259 }
2260 
has_address_auth_metacap(const struct arm64_cpu_capabilities * entry,int scope)2261 static bool has_address_auth_metacap(const struct arm64_cpu_capabilities *entry,
2262 				     int scope)
2263 {
2264 	bool api = has_address_auth_cpucap(cpucap_ptrs[ARM64_HAS_ADDRESS_AUTH_IMP_DEF], scope);
2265 	bool apa = has_address_auth_cpucap(cpucap_ptrs[ARM64_HAS_ADDRESS_AUTH_ARCH_QARMA5], scope);
2266 	bool apa3 = has_address_auth_cpucap(cpucap_ptrs[ARM64_HAS_ADDRESS_AUTH_ARCH_QARMA3], scope);
2267 
2268 	return apa || apa3 || api;
2269 }
2270 
has_generic_auth(const struct arm64_cpu_capabilities * entry,int __unused)2271 static bool has_generic_auth(const struct arm64_cpu_capabilities *entry,
2272 			     int __unused)
2273 {
2274 	bool gpi = __system_matches_cap(ARM64_HAS_GENERIC_AUTH_IMP_DEF);
2275 	bool gpa = __system_matches_cap(ARM64_HAS_GENERIC_AUTH_ARCH_QARMA5);
2276 	bool gpa3 = __system_matches_cap(ARM64_HAS_GENERIC_AUTH_ARCH_QARMA3);
2277 
2278 	return gpa || gpa3 || gpi;
2279 }
2280 #endif /* CONFIG_ARM64_PTR_AUTH */
2281 
2282 #ifdef CONFIG_ARM64_E0PD
cpu_enable_e0pd(struct arm64_cpu_capabilities const * cap)2283 static void cpu_enable_e0pd(struct arm64_cpu_capabilities const *cap)
2284 {
2285 	if (this_cpu_has_cap(ARM64_HAS_E0PD))
2286 		sysreg_clear_set(tcr_el1, 0, TCR_EL1_E0PD1);
2287 }
2288 #endif /* CONFIG_ARM64_E0PD */
2289 
cpu_enable_ls64(struct arm64_cpu_capabilities const * cap)2290 static void cpu_enable_ls64(struct arm64_cpu_capabilities const *cap)
2291 {
2292 	sysreg_clear_set(sctlr_el1, SCTLR_EL1_EnALS, SCTLR_EL1_EnALS);
2293 }
2294 
cpu_enable_ls64_v(struct arm64_cpu_capabilities const * cap)2295 static void cpu_enable_ls64_v(struct arm64_cpu_capabilities const *cap)
2296 {
2297 	sysreg_clear_set(sctlr_el1, SCTLR_EL1_EnASR, 0);
2298 }
2299 
2300 #ifdef CONFIG_ARM64_PSEUDO_NMI
can_use_gic_priorities(const struct arm64_cpu_capabilities * entry,int scope)2301 static bool can_use_gic_priorities(const struct arm64_cpu_capabilities *entry,
2302 				   int scope)
2303 {
2304 	/*
2305 	 * ARM64_HAS_GICV3_CPUIF has a lower index, and is a boot CPU
2306 	 * feature, so will be detected earlier.
2307 	 */
2308 	BUILD_BUG_ON(ARM64_HAS_GIC_PRIO_MASKING <= ARM64_HAS_GICV3_CPUIF);
2309 	if (!cpus_have_cap(ARM64_HAS_GICV3_CPUIF))
2310 		return false;
2311 
2312 	return enable_pseudo_nmi;
2313 }
2314 
has_gic_prio_relaxed_sync(const struct arm64_cpu_capabilities * entry,int scope)2315 static bool has_gic_prio_relaxed_sync(const struct arm64_cpu_capabilities *entry,
2316 				      int scope)
2317 {
2318 	/*
2319 	 * If we're not using priority masking then we won't be poking PMR_EL1,
2320 	 * and there's no need to relax synchronization of writes to it, and
2321 	 * ICC_CTLR_EL1 might not be accessible and we must avoid reads from
2322 	 * that.
2323 	 *
2324 	 * ARM64_HAS_GIC_PRIO_MASKING has a lower index, and is a boot CPU
2325 	 * feature, so will be detected earlier.
2326 	 */
2327 	BUILD_BUG_ON(ARM64_HAS_GIC_PRIO_RELAXED_SYNC <= ARM64_HAS_GIC_PRIO_MASKING);
2328 	if (!cpus_have_cap(ARM64_HAS_GIC_PRIO_MASKING))
2329 		return false;
2330 
2331 	/*
2332 	 * When Priority Mask Hint Enable (PMHE) == 0b0, PMR is not used as a
2333 	 * hint for interrupt distribution, a DSB is not necessary when
2334 	 * unmasking IRQs via PMR, and we can relax the barrier to a NOP.
2335 	 *
2336 	 * Linux itself doesn't use 1:N distribution, so has no need to
2337 	 * set PMHE. The only reason to have it set is if EL3 requires it
2338 	 * (and we can't change it).
2339 	 */
2340 	return (gic_read_ctlr() & ICC_CTLR_EL1_PMHE_MASK) == 0;
2341 }
2342 #endif
2343 
can_trap_icv_dir_el1(const struct arm64_cpu_capabilities * entry,int scope)2344 static bool can_trap_icv_dir_el1(const struct arm64_cpu_capabilities *entry,
2345 				 int scope)
2346 {
2347 	static const struct midr_range has_vgic_v3[] = {
2348 		MIDR_ALL_VERSIONS(MIDR_APPLE_M1_ICESTORM),
2349 		MIDR_ALL_VERSIONS(MIDR_APPLE_M1_FIRESTORM),
2350 		MIDR_ALL_VERSIONS(MIDR_APPLE_M1_ICESTORM_PRO),
2351 		MIDR_ALL_VERSIONS(MIDR_APPLE_M1_FIRESTORM_PRO),
2352 		MIDR_ALL_VERSIONS(MIDR_APPLE_M1_ICESTORM_MAX),
2353 		MIDR_ALL_VERSIONS(MIDR_APPLE_M1_FIRESTORM_MAX),
2354 		MIDR_ALL_VERSIONS(MIDR_APPLE_M2_BLIZZARD),
2355 		MIDR_ALL_VERSIONS(MIDR_APPLE_M2_AVALANCHE),
2356 		MIDR_ALL_VERSIONS(MIDR_APPLE_M2_BLIZZARD_PRO),
2357 		MIDR_ALL_VERSIONS(MIDR_APPLE_M2_AVALANCHE_PRO),
2358 		MIDR_ALL_VERSIONS(MIDR_APPLE_M2_BLIZZARD_MAX),
2359 		MIDR_ALL_VERSIONS(MIDR_APPLE_M2_AVALANCHE_MAX),
2360 		{},
2361 	};
2362 	struct arm_smccc_res res = {};
2363 
2364 	BUILD_BUG_ON(ARM64_HAS_ICH_HCR_EL2_TDIR <= ARM64_HAS_GICV3_CPUIF);
2365 	BUILD_BUG_ON(ARM64_HAS_ICH_HCR_EL2_TDIR <= ARM64_HAS_GICV5_LEGACY);
2366 	if (!is_hyp_mode_available())
2367 		return false;
2368 
2369 	if (this_cpu_has_cap(ARM64_HAS_GICV5_LEGACY))
2370 		return true;
2371 
2372 	if (!this_cpu_has_cap(ARM64_HAS_GICV3_CPUIF) &&
2373 	    !is_midr_in_range_list(has_vgic_v3))
2374 		return false;
2375 
2376 	/*
2377 	 * pKVM prevents late onlining of CPUs. This means that whatever
2378 	 * state the capability is in after deprivilege cannot be affected
2379 	 * by a new CPU booting -- this is garanteed to be a CPU we have
2380 	 * already seen, and the cap is therefore unchanged.
2381 	 */
2382 	if (system_capabilities_finalized() && is_protected_kvm_enabled())
2383 		return cpus_have_final_cap(ARM64_HAS_ICH_HCR_EL2_TDIR);
2384 
2385 	if (is_kernel_in_hyp_mode())
2386 		res.a1 = read_sysreg_s(SYS_ICH_VTR_EL2);
2387 	else
2388 		arm_smccc_1_1_hvc(HVC_GET_ICH_VTR_EL2, &res);
2389 
2390 	if (res.a0 == HVC_STUB_ERR)
2391 		return false;
2392 
2393 	return res.a1 & ICH_VTR_EL2_TDS;
2394 }
2395 
2396 #ifdef CONFIG_ARM64_BTI
bti_enable(const struct arm64_cpu_capabilities * __unused)2397 static void bti_enable(const struct arm64_cpu_capabilities *__unused)
2398 {
2399 	/*
2400 	 * Use of X16/X17 for tail-calls and trampolines that jump to
2401 	 * function entry points using BR is a requirement for
2402 	 * marking binaries with GNU_PROPERTY_AARCH64_FEATURE_1_BTI.
2403 	 * So, be strict and forbid other BRs using other registers to
2404 	 * jump onto a PACIxSP instruction:
2405 	 */
2406 	sysreg_clear_set(sctlr_el1, 0, SCTLR_EL1_BT0 | SCTLR_EL1_BT1);
2407 	isb();
2408 }
2409 #endif /* CONFIG_ARM64_BTI */
2410 
2411 #ifdef CONFIG_ARM64_MTE
cpu_enable_mte(struct arm64_cpu_capabilities const * cap)2412 static void cpu_enable_mte(struct arm64_cpu_capabilities const *cap)
2413 {
2414 	static bool cleared_zero_page = false;
2415 
2416 	sysreg_clear_set(sctlr_el1, 0, SCTLR_ELx_ATA | SCTLR_EL1_ATA0);
2417 
2418 	mte_cpu_setup();
2419 
2420 	/*
2421 	 * Clear the tags in the zero page. This needs to be done via the
2422 	 * linear map which has the Tagged attribute. Since this page is
2423 	 * always mapped as pte_special(), set_pte_at() will not attempt to
2424 	 * clear the tags or set PG_mte_tagged.
2425 	 */
2426 	if (!cleared_zero_page) {
2427 		cleared_zero_page = true;
2428 		mte_clear_page_tags(lm_alias(empty_zero_page));
2429 	}
2430 
2431 	kasan_init_hw_tags_cpu();
2432 }
2433 #endif /* CONFIG_ARM64_MTE */
2434 
user_feature_fixup(void)2435 static void user_feature_fixup(void)
2436 {
2437 	if (cpus_have_cap(ARM64_WORKAROUND_2658417)) {
2438 		struct arm64_ftr_reg *regp;
2439 
2440 		regp = get_arm64_ftr_reg(SYS_ID_AA64ISAR1_EL1);
2441 		if (regp)
2442 			regp->user_mask &= ~ID_AA64ISAR1_EL1_BF16_MASK;
2443 	}
2444 
2445 	if (cpus_have_cap(ARM64_WORKAROUND_SPECULATIVE_SSBS)) {
2446 		struct arm64_ftr_reg *regp;
2447 
2448 		regp = get_arm64_ftr_reg(SYS_ID_AA64PFR1_EL1);
2449 		if (regp)
2450 			regp->user_mask &= ~ID_AA64PFR1_EL1_SSBS_MASK;
2451 	}
2452 }
2453 
elf_hwcap_fixup(void)2454 static void elf_hwcap_fixup(void)
2455 {
2456 #ifdef CONFIG_COMPAT
2457 	if (cpus_have_cap(ARM64_WORKAROUND_1742098))
2458 		compat_elf_hwcap2 &= ~COMPAT_HWCAP2_AES;
2459 #endif /* CONFIG_COMPAT */
2460 }
2461 
2462 #ifdef CONFIG_KVM
is_kvm_protected_mode(const struct arm64_cpu_capabilities * entry,int __unused)2463 static bool is_kvm_protected_mode(const struct arm64_cpu_capabilities *entry, int __unused)
2464 {
2465 	return kvm_get_mode() == KVM_MODE_PROTECTED;
2466 }
2467 #endif /* CONFIG_KVM */
2468 
cpu_trap_el0_impdef(const struct arm64_cpu_capabilities * __unused)2469 static void cpu_trap_el0_impdef(const struct arm64_cpu_capabilities *__unused)
2470 {
2471 	sysreg_clear_set(sctlr_el1, 0, SCTLR_EL1_TIDCP);
2472 }
2473 
cpu_enable_dit(const struct arm64_cpu_capabilities * __unused)2474 static void cpu_enable_dit(const struct arm64_cpu_capabilities *__unused)
2475 {
2476 	set_pstate_dit(1);
2477 }
2478 
cpu_enable_mops(const struct arm64_cpu_capabilities * __unused)2479 static void cpu_enable_mops(const struct arm64_cpu_capabilities *__unused)
2480 {
2481 	sysreg_clear_set(sctlr_el1, 0, SCTLR_EL1_MSCEn);
2482 }
2483 
2484 #ifdef CONFIG_ARM64_POE
cpu_enable_poe(const struct arm64_cpu_capabilities * __unused)2485 static void cpu_enable_poe(const struct arm64_cpu_capabilities *__unused)
2486 {
2487 	sysreg_clear_set(REG_TCR2_EL1, 0, TCR2_EL1_E0POE);
2488 	sysreg_clear_set(CPACR_EL1, 0, CPACR_EL1_E0POE);
2489 }
2490 #endif
2491 
2492 #ifdef CONFIG_ARM64_GCS
cpu_enable_gcs(const struct arm64_cpu_capabilities * __unused)2493 static void cpu_enable_gcs(const struct arm64_cpu_capabilities *__unused)
2494 {
2495 	/* GCSPR_EL0 is always readable */
2496 	write_sysreg_s(GCSCRE0_EL1_nTR, SYS_GCSCRE0_EL1);
2497 }
2498 #endif
2499 
2500 /* Internal helper functions to match cpu capability type */
2501 static bool
cpucap_late_cpu_optional(const struct arm64_cpu_capabilities * cap)2502 cpucap_late_cpu_optional(const struct arm64_cpu_capabilities *cap)
2503 {
2504 	return !!(cap->type & ARM64_CPUCAP_OPTIONAL_FOR_LATE_CPU);
2505 }
2506 
2507 static bool
cpucap_late_cpu_permitted(const struct arm64_cpu_capabilities * cap)2508 cpucap_late_cpu_permitted(const struct arm64_cpu_capabilities *cap)
2509 {
2510 	return !!(cap->type & ARM64_CPUCAP_PERMITTED_FOR_LATE_CPU);
2511 }
2512 
2513 static bool
cpucap_panic_on_conflict(const struct arm64_cpu_capabilities * cap)2514 cpucap_panic_on_conflict(const struct arm64_cpu_capabilities *cap)
2515 {
2516 	return !!(cap->type & ARM64_CPUCAP_PANIC_ON_CONFLICT);
2517 }
2518 
2519 static bool
test_has_mpam(const struct arm64_cpu_capabilities * entry,int scope)2520 test_has_mpam(const struct arm64_cpu_capabilities *entry, int scope)
2521 {
2522 	if (!detect_ftr_has_mpam())
2523 		return false;
2524 
2525 	/* Check firmware actually enabled MPAM on this cpu. */
2526 	return (read_sysreg_s(SYS_MPAM1_EL1) & MPAM1_EL1_MPAMEN);
2527 }
2528 
2529 static void
cpu_enable_mpam(const struct arm64_cpu_capabilities * entry)2530 cpu_enable_mpam(const struct arm64_cpu_capabilities *entry)
2531 {
2532 	int cpu = smp_processor_id();
2533 	u64 regval = 0;
2534 
2535 	if (IS_ENABLED(CONFIG_ARM64_MPAM) && static_branch_likely(&mpam_enabled))
2536 		regval = READ_ONCE(per_cpu(arm64_mpam_current, cpu));
2537 
2538 	write_sysreg_s(regval | MPAM1_EL1_MPAMEN, SYS_MPAM1_EL1);
2539 	if (cpus_have_cap(ARM64_SME))
2540 		write_sysreg_s(regval & (MPAMSM_EL1_PARTID_D | MPAMSM_EL1_PMG_D), SYS_MPAMSM_EL1);
2541 	isb();
2542 
2543 	/* Synchronising the EL0 write is left until the ERET to EL0 */
2544 	write_sysreg_s(regval, SYS_MPAM0_EL1);
2545 }
2546 
2547 static bool
test_has_mpam_hcr(const struct arm64_cpu_capabilities * entry,int scope)2548 test_has_mpam_hcr(const struct arm64_cpu_capabilities *entry, int scope)
2549 {
2550 	u64 idr = read_sanitised_ftr_reg(SYS_MPAMIDR_EL1);
2551 
2552 	return idr & MPAMIDR_EL1_HAS_HCR;
2553 }
2554 
2555 static bool
test_has_gicv5_legacy(const struct arm64_cpu_capabilities * entry,int scope)2556 test_has_gicv5_legacy(const struct arm64_cpu_capabilities *entry, int scope)
2557 {
2558 	if (!this_cpu_has_cap(ARM64_HAS_GICV5_CPUIF))
2559 		return false;
2560 
2561 	return !!(read_sysreg_s(SYS_ICC_IDR0_EL1) & ICC_IDR0_EL1_GCIE_LEGACY);
2562 }
2563 
2564 static const struct arm64_cpu_capabilities arm64_features[] = {
2565 	{
2566 		.capability = ARM64_ALWAYS_BOOT,
2567 		.type = ARM64_CPUCAP_BOOT_CPU_FEATURE,
2568 		.matches = has_always,
2569 	},
2570 	{
2571 		.capability = ARM64_ALWAYS_SYSTEM,
2572 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
2573 		.matches = has_always,
2574 	},
2575 	{
2576 		.desc = "GICv3 CPU interface",
2577 		.capability = ARM64_HAS_GICV3_CPUIF,
2578 		.type = ARM64_CPUCAP_STRICT_BOOT_CPU_FEATURE,
2579 		.matches = has_useable_gicv3_cpuif,
2580 		ARM64_CPUID_FIELDS(ID_AA64PFR0_EL1, GIC, IMP)
2581 	},
2582 	{
2583 		.desc = "Enhanced Counter Virtualization",
2584 		.capability = ARM64_HAS_ECV,
2585 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
2586 		.matches = has_cpuid_feature,
2587 		ARM64_CPUID_FIELDS(ID_AA64MMFR0_EL1, ECV, IMP)
2588 	},
2589 	{
2590 		.desc = "Enhanced Counter Virtualization (CNTPOFF)",
2591 		.capability = ARM64_HAS_ECV_CNTPOFF,
2592 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
2593 		.matches = has_cpuid_feature,
2594 		ARM64_CPUID_FIELDS(ID_AA64MMFR0_EL1, ECV, CNTPOFF)
2595 	},
2596 	{
2597 		.desc = "Privileged Access Never",
2598 		.capability = ARM64_HAS_PAN,
2599 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
2600 		.matches = has_cpuid_feature,
2601 		.cpu_enable = cpu_enable_pan,
2602 		ARM64_CPUID_FIELDS(ID_AA64MMFR1_EL1, PAN, IMP)
2603 	},
2604 #ifdef CONFIG_ARM64_EPAN
2605 	{
2606 		.desc = "Enhanced Privileged Access Never",
2607 		.capability = ARM64_HAS_EPAN,
2608 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
2609 		.matches = has_cpuid_feature,
2610 		ARM64_CPUID_FIELDS(ID_AA64MMFR1_EL1, PAN, PAN3)
2611 	},
2612 #endif /* CONFIG_ARM64_EPAN */
2613 	{
2614 		.desc = "LSE atomic instructions",
2615 		.capability = ARM64_HAS_LSE_ATOMICS,
2616 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
2617 		.matches = has_cpuid_feature,
2618 		ARM64_CPUID_FIELDS(ID_AA64ISAR0_EL1, ATOMIC, IMP)
2619 	},
2620 	{
2621 		.desc = "Virtualization Host Extensions",
2622 		.capability = ARM64_HAS_VIRT_HOST_EXTN,
2623 		.type = ARM64_CPUCAP_STRICT_BOOT_CPU_FEATURE,
2624 		.matches = runs_at_el2,
2625 		.cpu_enable = cpu_copy_el2regs,
2626 	},
2627 	{
2628 		.desc = "Nested Virtualization Support",
2629 		.capability = ARM64_HAS_NESTED_VIRT,
2630 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
2631 		.matches = has_nested_virt_support,
2632 		.match_list = (const struct arm64_cpu_capabilities []){
2633 			{
2634 				.matches = has_cpuid_feature,
2635 				ARM64_CPUID_FIELDS(ID_AA64MMFR2_EL1, NV, NV2)
2636 			},
2637 			{
2638 				.matches = has_cpuid_feature,
2639 				ARM64_CPUID_FIELDS(ID_AA64MMFR4_EL1, NV_frac, NV2_ONLY)
2640 			},
2641 			{ /* Sentinel */ }
2642 		},
2643 	},
2644 	{
2645 		.desc = "FEAT_NV2p1",
2646 		.capability = ARM64_HAS_NV2P1,
2647 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
2648 		.matches = has_cpuid_feature,
2649 		ARM64_CPUID_FIELDS(ID_AA64MMFR4_EL1, NV_frac, NV2P1)
2650 	},
2651 	{
2652 		.desc = "FEAT_NV3",
2653 		.capability = ARM64_HAS_NV3,
2654 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
2655 		.matches = has_cpuid_feature,
2656 		ARM64_CPUID_FIELDS(ID_AA64MMFR4_EL1, NV_frac, NV3)
2657 	},
2658 	{
2659 		.capability = ARM64_HAS_32BIT_EL0_DO_NOT_USE,
2660 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
2661 		.matches = has_32bit_el0,
2662 		ARM64_CPUID_FIELDS(ID_AA64PFR0_EL1, EL0, AARCH32)
2663 	},
2664 #ifdef CONFIG_KVM
2665 	{
2666 		.desc = "32-bit EL1 Support",
2667 		.capability = ARM64_HAS_32BIT_EL1,
2668 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
2669 		.matches = has_cpuid_feature,
2670 		ARM64_CPUID_FIELDS(ID_AA64PFR0_EL1, EL1, AARCH32)
2671 	},
2672 	{
2673 		.desc = "Protected KVM",
2674 		.capability = ARM64_KVM_PROTECTED_MODE,
2675 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
2676 		.matches = is_kvm_protected_mode,
2677 	},
2678 	{
2679 		.desc = "HCRX_EL2 register",
2680 		.capability = ARM64_HAS_HCX,
2681 		.type = ARM64_CPUCAP_STRICT_BOOT_CPU_FEATURE,
2682 		.matches = has_cpuid_feature,
2683 		ARM64_CPUID_FIELDS(ID_AA64MMFR1_EL1, HCX, IMP)
2684 	},
2685 #endif
2686 	{
2687 		.desc = "Kernel page table isolation (KPTI)",
2688 		.capability = ARM64_UNMAP_KERNEL_AT_EL0,
2689 		.type = ARM64_CPUCAP_BOOT_RESTRICTED_CPU_LOCAL_FEATURE,
2690 		.cpu_enable = cpu_enable_kpti,
2691 		.matches = unmap_kernel_at_el0,
2692 		/*
2693 		 * The ID feature fields below are used to indicate that
2694 		 * the CPU doesn't need KPTI. See unmap_kernel_at_el0 for
2695 		 * more details.
2696 		 */
2697 		ARM64_CPUID_FIELDS(ID_AA64PFR0_EL1, CSV3, IMP)
2698 	},
2699 	{
2700 		.capability = ARM64_HAS_FPSIMD,
2701 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
2702 		.matches = has_cpuid_feature,
2703 		.cpu_enable = cpu_enable_fpsimd,
2704 		ARM64_CPUID_FIELDS(ID_AA64PFR0_EL1, FP, IMP)
2705 	},
2706 #ifdef CONFIG_ARM64_PMEM
2707 	{
2708 		.desc = "Data cache clean to Point of Persistence",
2709 		.capability = ARM64_HAS_DCPOP,
2710 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
2711 		.matches = has_cpuid_feature,
2712 		ARM64_CPUID_FIELDS(ID_AA64ISAR1_EL1, DPB, IMP)
2713 	},
2714 	{
2715 		.desc = "Data cache clean to Point of Deep Persistence",
2716 		.capability = ARM64_HAS_DCPODP,
2717 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
2718 		.matches = has_cpuid_feature,
2719 		ARM64_CPUID_FIELDS(ID_AA64ISAR1_EL1, DPB, DPB2)
2720 	},
2721 #endif
2722 #ifdef CONFIG_ARM64_SVE
2723 	{
2724 		.desc = "Scalable Vector Extension",
2725 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
2726 		.capability = ARM64_SVE,
2727 		.cpu_enable = cpu_enable_sve,
2728 		.matches = has_cpuid_feature,
2729 		ARM64_CPUID_FIELDS(ID_AA64PFR0_EL1, SVE, IMP)
2730 	},
2731 #endif /* CONFIG_ARM64_SVE */
2732 #ifdef CONFIG_ARM64_RAS_EXTN
2733 	{
2734 		.desc = "RAS Extension Support",
2735 		.capability = ARM64_HAS_RAS_EXTN,
2736 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
2737 		.matches = has_cpuid_feature,
2738 		.cpu_enable = cpu_clear_disr,
2739 		ARM64_CPUID_FIELDS(ID_AA64PFR0_EL1, RAS, IMP)
2740 	},
2741 	{
2742 		.desc = "RASv1p1 Extension Support",
2743 		.capability = ARM64_HAS_RASV1P1_EXTN,
2744 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
2745 		.matches = has_rasv1p1,
2746 	},
2747 #endif /* CONFIG_ARM64_RAS_EXTN */
2748 #ifdef CONFIG_ARM64_AMU_EXTN
2749 	{
2750 		.desc = "Activity Monitors Unit (AMU)",
2751 		.capability = ARM64_HAS_AMU_EXTN,
2752 		.type = ARM64_CPUCAP_WEAK_LOCAL_CPU_FEATURE,
2753 		.matches = has_amu,
2754 		.cpu_enable = cpu_amu_enable,
2755 		.cpus = &amu_cpus,
2756 		ARM64_CPUID_FIELDS(ID_AA64PFR0_EL1, AMU, IMP)
2757 	},
2758 #endif /* CONFIG_ARM64_AMU_EXTN */
2759 	{
2760 		.desc = "Data cache clean to the PoU not required for I/D coherence",
2761 		.capability = ARM64_HAS_CACHE_IDC,
2762 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
2763 		.matches = has_cache_idc,
2764 		.cpu_enable = cpu_emulate_effective_ctr,
2765 	},
2766 	{
2767 		.desc = "Instruction cache invalidation not required for I/D coherence",
2768 		.capability = ARM64_HAS_CACHE_DIC,
2769 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
2770 		.matches = has_cache_dic,
2771 	},
2772 	{
2773 		.desc = "Stage-2 Force Write-Back",
2774 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
2775 		.capability = ARM64_HAS_STAGE2_FWB,
2776 		.matches = has_cpuid_feature,
2777 		ARM64_CPUID_FIELDS(ID_AA64MMFR2_EL1, FWB, IMP)
2778 	},
2779 	{
2780 		.desc = "ARMv8.4 Translation Table Level",
2781 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
2782 		.capability = ARM64_HAS_ARMv8_4_TTL,
2783 		.matches = has_cpuid_feature,
2784 		ARM64_CPUID_FIELDS(ID_AA64MMFR2_EL1, TTL, IMP)
2785 	},
2786 	{
2787 		.desc = "TLB range maintenance instructions",
2788 		.capability = ARM64_HAS_TLB_RANGE,
2789 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
2790 		.matches = has_cpuid_feature,
2791 		ARM64_CPUID_FIELDS(ID_AA64ISAR0_EL1, TLB, RANGE)
2792 	},
2793 #ifdef CONFIG_ARM64_HW_AFDBM
2794 	{
2795 		.desc = "Hardware dirty bit management",
2796 		.type = ARM64_CPUCAP_WEAK_LOCAL_CPU_FEATURE,
2797 		.capability = ARM64_HW_DBM,
2798 		.matches = has_hw_dbm,
2799 		.cpu_enable = cpu_enable_hw_dbm,
2800 		.cpus = &dbm_cpus,
2801 		ARM64_CPUID_FIELDS(ID_AA64MMFR1_EL1, HAFDBS, DBM)
2802 	},
2803 #endif
2804 #ifdef CONFIG_ARM64_HAFT
2805 	{
2806 		.desc = "Hardware managed Access Flag for Table Descriptors",
2807 		/*
2808 		 * Contrary to the page/block access flag, the table access flag
2809 		 * cannot be emulated in software (no access fault will occur).
2810 		 * Therefore this should be used only if it's supported system
2811 		 * wide.
2812 		 */
2813 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
2814 		.capability = ARM64_HAFT,
2815 		.matches = has_cpuid_feature,
2816 		ARM64_CPUID_FIELDS(ID_AA64MMFR1_EL1, HAFDBS, HAFT)
2817 	},
2818 #endif
2819 	{
2820 		.desc = "CRC32 instructions",
2821 		.capability = ARM64_HAS_CRC32,
2822 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
2823 		.matches = has_cpuid_feature,
2824 		ARM64_CPUID_FIELDS(ID_AA64ISAR0_EL1, CRC32, IMP)
2825 	},
2826 	{
2827 		.desc = "Speculative Store Bypassing Safe (SSBS)",
2828 		.capability = ARM64_SSBS,
2829 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
2830 		.matches = has_cpuid_feature,
2831 		ARM64_CPUID_FIELDS(ID_AA64PFR1_EL1, SSBS, IMP)
2832 	},
2833 #ifdef CONFIG_ARM64_CNP
2834 	{
2835 		.desc = "Common not Private translations",
2836 		.capability = ARM64_HAS_CNP,
2837 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
2838 		.matches = has_useable_cnp,
2839 		.cpu_enable = cpu_enable_cnp,
2840 		ARM64_CPUID_FIELDS(ID_AA64MMFR2_EL1, CnP, IMP)
2841 	},
2842 #endif
2843 	{
2844 		.desc = "Speculation barrier (SB)",
2845 		.capability = ARM64_HAS_SB,
2846 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
2847 		.matches = has_cpuid_feature,
2848 		ARM64_CPUID_FIELDS(ID_AA64ISAR1_EL1, SB, IMP)
2849 	},
2850 #ifdef CONFIG_ARM64_PTR_AUTH
2851 	{
2852 		.desc = "Address authentication (architected QARMA5 algorithm)",
2853 		.capability = ARM64_HAS_ADDRESS_AUTH_ARCH_QARMA5,
2854 		.type = ARM64_CPUCAP_BOOT_CPU_FEATURE,
2855 		.matches = has_address_auth_cpucap,
2856 		ARM64_CPUID_FIELDS(ID_AA64ISAR1_EL1, APA, PAuth)
2857 	},
2858 	{
2859 		.desc = "Address authentication (architected QARMA3 algorithm)",
2860 		.capability = ARM64_HAS_ADDRESS_AUTH_ARCH_QARMA3,
2861 		.type = ARM64_CPUCAP_BOOT_CPU_FEATURE,
2862 		.matches = has_address_auth_cpucap,
2863 		ARM64_CPUID_FIELDS(ID_AA64ISAR2_EL1, APA3, PAuth)
2864 	},
2865 	{
2866 		.desc = "Address authentication (IMP DEF algorithm)",
2867 		.capability = ARM64_HAS_ADDRESS_AUTH_IMP_DEF,
2868 		.type = ARM64_CPUCAP_BOOT_CPU_FEATURE,
2869 		.matches = has_address_auth_cpucap,
2870 		ARM64_CPUID_FIELDS(ID_AA64ISAR1_EL1, API, PAuth)
2871 	},
2872 	{
2873 		.capability = ARM64_HAS_ADDRESS_AUTH,
2874 		.type = ARM64_CPUCAP_BOOT_CPU_FEATURE,
2875 		.matches = has_address_auth_metacap,
2876 	},
2877 	{
2878 		.desc = "Generic authentication (architected QARMA5 algorithm)",
2879 		.capability = ARM64_HAS_GENERIC_AUTH_ARCH_QARMA5,
2880 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
2881 		.matches = has_cpuid_feature,
2882 		ARM64_CPUID_FIELDS(ID_AA64ISAR1_EL1, GPA, IMP)
2883 	},
2884 	{
2885 		.desc = "Generic authentication (architected QARMA3 algorithm)",
2886 		.capability = ARM64_HAS_GENERIC_AUTH_ARCH_QARMA3,
2887 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
2888 		.matches = has_cpuid_feature,
2889 		ARM64_CPUID_FIELDS(ID_AA64ISAR2_EL1, GPA3, IMP)
2890 	},
2891 	{
2892 		.desc = "Generic authentication (IMP DEF algorithm)",
2893 		.capability = ARM64_HAS_GENERIC_AUTH_IMP_DEF,
2894 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
2895 		.matches = has_cpuid_feature,
2896 		ARM64_CPUID_FIELDS(ID_AA64ISAR1_EL1, GPI, IMP)
2897 	},
2898 	{
2899 		.capability = ARM64_HAS_GENERIC_AUTH,
2900 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
2901 		.matches = has_generic_auth,
2902 	},
2903 #endif /* CONFIG_ARM64_PTR_AUTH */
2904 #ifdef CONFIG_ARM64_PSEUDO_NMI
2905 	{
2906 		/*
2907 		 * Depends on having GICv3
2908 		 */
2909 		.desc = "IRQ priority masking",
2910 		.capability = ARM64_HAS_GIC_PRIO_MASKING,
2911 		.type = ARM64_CPUCAP_STRICT_BOOT_CPU_FEATURE,
2912 		.matches = can_use_gic_priorities,
2913 	},
2914 	{
2915 		/*
2916 		 * Depends on ARM64_HAS_GIC_PRIO_MASKING
2917 		 */
2918 		.capability = ARM64_HAS_GIC_PRIO_RELAXED_SYNC,
2919 		.type = ARM64_CPUCAP_STRICT_BOOT_CPU_FEATURE,
2920 		.matches = has_gic_prio_relaxed_sync,
2921 	},
2922 #endif
2923 	{
2924 		/*
2925 		 * Depends on having GICv3
2926 		 */
2927 		.desc = "ICV_DIR_EL1 trapping",
2928 		.capability = ARM64_HAS_ICH_HCR_EL2_TDIR,
2929 		.type = ARM64_CPUCAP_EARLY_LOCAL_CPU_FEATURE,
2930 		.matches = can_trap_icv_dir_el1,
2931 	},
2932 #ifdef CONFIG_ARM64_E0PD
2933 	{
2934 		.desc = "E0PD",
2935 		.capability = ARM64_HAS_E0PD,
2936 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
2937 		.cpu_enable = cpu_enable_e0pd,
2938 		.matches = has_cpuid_feature,
2939 		ARM64_CPUID_FIELDS(ID_AA64MMFR2_EL1, E0PD, IMP)
2940 	},
2941 #endif
2942 	{
2943 		.desc = "Random Number Generator",
2944 		.capability = ARM64_HAS_RNG,
2945 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
2946 		.matches = has_cpuid_feature,
2947 		ARM64_CPUID_FIELDS(ID_AA64ISAR0_EL1, RNDR, IMP)
2948 	},
2949 #ifdef CONFIG_ARM64_BTI
2950 	{
2951 		.desc = "Branch Target Identification",
2952 		.capability = ARM64_BTI,
2953 #ifdef CONFIG_ARM64_BTI_KERNEL
2954 		.type = ARM64_CPUCAP_STRICT_BOOT_CPU_FEATURE,
2955 #else
2956 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
2957 #endif
2958 		.matches = has_cpuid_feature,
2959 		.cpu_enable = bti_enable,
2960 		ARM64_CPUID_FIELDS(ID_AA64PFR1_EL1, BT, IMP)
2961 	},
2962 #endif
2963 #ifdef CONFIG_ARM64_MTE
2964 	{
2965 		.desc = "Memory Tagging Extension",
2966 		.capability = ARM64_MTE,
2967 		.type = ARM64_CPUCAP_STRICT_BOOT_CPU_FEATURE,
2968 		.matches = has_cpuid_feature,
2969 		.cpu_enable = cpu_enable_mte,
2970 		ARM64_CPUID_FIELDS(ID_AA64PFR1_EL1, MTE, MTE2)
2971 	},
2972 	{
2973 		.desc = "Asymmetric MTE Tag Check Fault",
2974 		.capability = ARM64_MTE_ASYMM,
2975 		.type = ARM64_CPUCAP_BOOT_CPU_FEATURE,
2976 		.matches = has_cpuid_feature,
2977 		ARM64_CPUID_FIELDS(ID_AA64PFR1_EL1, MTE, MTE3)
2978 	},
2979 	{
2980 		.desc = "FAR on MTE Tag Check Fault",
2981 		.capability = ARM64_MTE_FAR,
2982 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
2983 		.matches = has_cpuid_feature,
2984 		ARM64_CPUID_FIELDS(ID_AA64PFR2_EL1, MTEFAR, IMP)
2985 	},
2986 	{
2987 		.desc = "Store Only MTE Tag Check",
2988 		.capability = ARM64_MTE_STORE_ONLY,
2989 		.type = ARM64_CPUCAP_BOOT_CPU_FEATURE,
2990 		.matches = has_cpuid_feature,
2991 		ARM64_CPUID_FIELDS(ID_AA64PFR2_EL1, MTESTOREONLY, IMP)
2992 	},
2993 #endif /* CONFIG_ARM64_MTE */
2994 	{
2995 		.desc = "RCpc load-acquire (LDAPR)",
2996 		.capability = ARM64_HAS_LDAPR,
2997 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
2998 		.matches = has_cpuid_feature,
2999 		ARM64_CPUID_FIELDS(ID_AA64ISAR1_EL1, LRCPC, IMP)
3000 	},
3001 	{
3002 		.desc = "Fine Grained Traps",
3003 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
3004 		.capability = ARM64_HAS_FGT,
3005 		.matches = has_cpuid_feature,
3006 		ARM64_CPUID_FIELDS(ID_AA64MMFR0_EL1, FGT, IMP)
3007 	},
3008 	{
3009 		.desc = "Fine Grained Traps 2",
3010 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
3011 		.capability = ARM64_HAS_FGT2,
3012 		.matches = has_cpuid_feature,
3013 		ARM64_CPUID_FIELDS(ID_AA64MMFR0_EL1, FGT, FGT2)
3014 	},
3015 #ifdef CONFIG_ARM64_SME
3016 	{
3017 		.desc = "Scalable Matrix Extension",
3018 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
3019 		.capability = ARM64_SME,
3020 		.matches = has_cpuid_feature,
3021 		.cpu_enable = cpu_enable_sme,
3022 		ARM64_CPUID_FIELDS(ID_AA64PFR1_EL1, SME, IMP)
3023 	},
3024 	/* FA64 should be sorted after the base SME capability */
3025 	{
3026 		.desc = "FA64",
3027 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
3028 		.capability = ARM64_SME_FA64,
3029 		.matches = has_cpuid_feature,
3030 		.cpu_enable = cpu_enable_fa64,
3031 		ARM64_CPUID_FIELDS(ID_AA64SMFR0_EL1, FA64, IMP)
3032 	},
3033 	{
3034 		.desc = "SME2",
3035 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
3036 		.capability = ARM64_SME2,
3037 		.matches = has_cpuid_feature,
3038 		.cpu_enable = cpu_enable_sme2,
3039 		ARM64_CPUID_FIELDS(ID_AA64PFR1_EL1, SME, SME2)
3040 	},
3041 #endif /* CONFIG_ARM64_SME */
3042 	{
3043 		.desc = "WFx with timeout",
3044 		.capability = ARM64_HAS_WFXT,
3045 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
3046 		.matches = has_cpuid_feature,
3047 		ARM64_CPUID_FIELDS(ID_AA64ISAR2_EL1, WFxT, IMP)
3048 	},
3049 	{
3050 		.desc = "Trap EL0 IMPLEMENTATION DEFINED functionality",
3051 		.capability = ARM64_HAS_TIDCP1,
3052 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
3053 		.matches = has_cpuid_feature,
3054 		.cpu_enable = cpu_trap_el0_impdef,
3055 		ARM64_CPUID_FIELDS(ID_AA64MMFR1_EL1, TIDCP1, IMP)
3056 	},
3057 	{
3058 		.desc = "Data independent timing control (DIT)",
3059 		.capability = ARM64_HAS_DIT,
3060 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
3061 		.matches = has_cpuid_feature,
3062 		.cpu_enable = cpu_enable_dit,
3063 		ARM64_CPUID_FIELDS(ID_AA64PFR0_EL1, DIT, IMP)
3064 	},
3065 	{
3066 		.desc = "Memory Copy and Memory Set instructions",
3067 		.capability = ARM64_HAS_MOPS,
3068 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
3069 		.matches = has_cpuid_feature,
3070 		.cpu_enable = cpu_enable_mops,
3071 		ARM64_CPUID_FIELDS(ID_AA64ISAR2_EL1, MOPS, IMP)
3072 	},
3073 	{
3074 		.capability = ARM64_HAS_TCR2,
3075 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
3076 		.matches = has_cpuid_feature,
3077 		ARM64_CPUID_FIELDS(ID_AA64MMFR3_EL1, TCRX, IMP)
3078 	},
3079 	{
3080 		.desc = "Stage-1 Permission Indirection Extension (S1PIE)",
3081 		.capability = ARM64_HAS_S1PIE,
3082 		.type = ARM64_CPUCAP_BOOT_CPU_FEATURE,
3083 		.matches = has_cpuid_feature,
3084 		ARM64_CPUID_FIELDS(ID_AA64MMFR3_EL1, S1PIE, IMP)
3085 	},
3086 	{
3087 		.desc = "VHE for hypervisor only",
3088 		.capability = ARM64_KVM_HVHE,
3089 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
3090 		.matches = hvhe_possible,
3091 	},
3092 	{
3093 		.desc = "Enhanced Virtualization Traps",
3094 		.capability = ARM64_HAS_EVT,
3095 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
3096 		.matches = has_cpuid_feature,
3097 		ARM64_CPUID_FIELDS(ID_AA64MMFR2_EL1, EVT, IMP)
3098 	},
3099 	{
3100 		.desc = "BBM Level 3",
3101 		.capability = ARM64_HAS_BBML3,
3102 		.type = ARM64_CPUCAP_EARLY_LOCAL_CPU_FEATURE,
3103 		.matches = has_bbml3,
3104 	},
3105 	{
3106 		.desc = "52-bit Virtual Addressing for KVM (LPA2)",
3107 		.capability = ARM64_HAS_LPA2,
3108 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
3109 		.matches = has_lpa2,
3110 	},
3111 	{
3112 		.desc = "FPMR",
3113 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
3114 		.capability = ARM64_HAS_FPMR,
3115 		.matches = has_cpuid_feature,
3116 		.cpu_enable = cpu_enable_fpmr,
3117 		ARM64_CPUID_FIELDS(ID_AA64PFR2_EL1, FPMR, IMP)
3118 	},
3119 #ifdef CONFIG_ARM64_VA_BITS_52
3120 	{
3121 		.capability = ARM64_HAS_VA52,
3122 		.type = ARM64_CPUCAP_BOOT_CPU_FEATURE,
3123 		.matches = has_cpuid_feature,
3124 #ifdef CONFIG_ARM64_64K_PAGES
3125 		.desc = "52-bit Virtual Addressing (LVA)",
3126 		ARM64_CPUID_FIELDS(ID_AA64MMFR2_EL1, VARange, 52)
3127 #else
3128 		.desc = "52-bit Virtual Addressing (LPA2)",
3129 #ifdef CONFIG_ARM64_4K_PAGES
3130 		ARM64_CPUID_FIELDS(ID_AA64MMFR0_EL1, TGRAN4, 52_BIT)
3131 #else
3132 		ARM64_CPUID_FIELDS(ID_AA64MMFR0_EL1, TGRAN16, 52_BIT)
3133 #endif
3134 #endif
3135 	},
3136 #endif
3137 	{
3138 		.desc = "Memory Partitioning And Monitoring",
3139 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
3140 		.capability = ARM64_MPAM,
3141 		.matches = test_has_mpam,
3142 		.cpu_enable = cpu_enable_mpam,
3143 	},
3144 	{
3145 		.desc = "Memory Partitioning And Monitoring Virtualisation",
3146 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
3147 		.capability = ARM64_MPAM_HCR,
3148 		.matches = test_has_mpam_hcr,
3149 	},
3150 	{
3151 		.desc = "NV1",
3152 		.capability = ARM64_HAS_HCR_NV1,
3153 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
3154 		.matches = has_nv1,
3155 		ARM64_CPUID_FIELDS_NEG(ID_AA64MMFR4_EL1, E2H0, NI_NV1)
3156 	},
3157 #ifdef CONFIG_ARM64_POE
3158 	{
3159 		.desc = "Stage-1 Permission Overlay Extension (S1POE)",
3160 		.capability = ARM64_HAS_S1POE,
3161 		.type = ARM64_CPUCAP_BOOT_CPU_FEATURE,
3162 		.matches = has_cpuid_feature,
3163 		.cpu_enable = cpu_enable_poe,
3164 		ARM64_CPUID_FIELDS(ID_AA64MMFR3_EL1, S1POE, IMP)
3165 	},
3166 #endif
3167 #ifdef CONFIG_ARM64_GCS
3168 	{
3169 		.desc = "Guarded Control Stack (GCS)",
3170 		.capability = ARM64_HAS_GCS,
3171 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
3172 		.cpu_enable = cpu_enable_gcs,
3173 		.matches = has_cpuid_feature,
3174 		ARM64_CPUID_FIELDS(ID_AA64PFR1_EL1, GCS, IMP)
3175 	},
3176 #endif
3177 #ifdef CONFIG_HW_PERF_EVENTS
3178 	{
3179 		.desc = "PMUv3",
3180 		.capability = ARM64_HAS_PMUV3,
3181 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
3182 		.matches = has_pmuv3,
3183 	},
3184 #endif
3185 	{
3186 		.desc = "SCTLR2",
3187 		.capability = ARM64_HAS_SCTLR2,
3188 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
3189 		.matches = has_cpuid_feature,
3190 		ARM64_CPUID_FIELDS(ID_AA64MMFR3_EL1, SCTLRX, IMP)
3191 	},
3192 	{
3193 		.desc = "GICv5 CPU interface",
3194 		.type = ARM64_CPUCAP_STRICT_BOOT_CPU_FEATURE,
3195 		.capability = ARM64_HAS_GICV5_CPUIF,
3196 		.matches = has_cpuid_feature,
3197 		ARM64_CPUID_FIELDS(ID_AA64PFR2_EL1, GCIE, IMP)
3198 	},
3199 	{
3200 		.desc = "GICv5 Legacy vCPU interface",
3201 		.type = ARM64_CPUCAP_EARLY_LOCAL_CPU_FEATURE,
3202 		.capability = ARM64_HAS_GICV5_LEGACY,
3203 		.matches = test_has_gicv5_legacy,
3204 	},
3205 	{
3206 		.desc = "XNX",
3207 		.capability = ARM64_HAS_XNX,
3208 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
3209 		.matches = has_cpuid_feature,
3210 		ARM64_CPUID_FIELDS(ID_AA64MMFR1_EL1, XNX, IMP)
3211 	},
3212 	{
3213 		.desc = "LS64",
3214 		.capability = ARM64_HAS_LS64,
3215 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
3216 		.matches = has_cpuid_feature,
3217 		.cpu_enable = cpu_enable_ls64,
3218 		ARM64_CPUID_FIELDS(ID_AA64ISAR1_EL1, LS64, LS64)
3219 	},
3220 	{
3221 		.desc = "LS64_V",
3222 		.capability = ARM64_HAS_LS64_V,
3223 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
3224 		.matches = has_cpuid_feature,
3225 		.cpu_enable = cpu_enable_ls64_v,
3226 		ARM64_CPUID_FIELDS(ID_AA64ISAR1_EL1, LS64, LS64_V)
3227 	},
3228 #ifdef CONFIG_ARM64_LSUI
3229 	{
3230 		.desc = "Unprivileged Load Store Instructions (LSUI)",
3231 		.capability = ARM64_HAS_LSUI,
3232 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,
3233 		.matches = has_cpuid_feature,
3234 		ARM64_CPUID_FIELDS(ID_AA64ISAR3_EL1, LSUI, IMP)
3235 	},
3236 #endif
3237 	{},
3238 };
3239 
3240 #define HWCAP_CPUID_MATCH(reg, field, min_value)			\
3241 		.matches = has_user_cpuid_feature,			\
3242 		ARM64_CPUID_FIELDS(reg, field, min_value)
3243 
3244 #define __HWCAP_CAP(name, cap_type, cap)					\
3245 		.desc = name,							\
3246 		.type = ARM64_CPUCAP_SYSTEM_FEATURE,				\
3247 		.hwcap_type = cap_type,						\
3248 		.hwcap = cap,							\
3249 
3250 #define HWCAP_CAP(reg, field, min_value, cap_type, cap)		\
3251 	{									\
3252 		__HWCAP_CAP(#cap, cap_type, cap)				\
3253 		HWCAP_CPUID_MATCH(reg, field, min_value) 		\
3254 	}
3255 
3256 #define HWCAP_MULTI_CAP(list, cap_type, cap)					\
3257 	{									\
3258 		__HWCAP_CAP(#cap, cap_type, cap)				\
3259 		.matches = cpucap_multi_entry_cap_matches,			\
3260 		.match_list = list,						\
3261 	}
3262 
3263 #define HWCAP_CAP_MATCH(match, cap_type, cap)					\
3264 	{									\
3265 		__HWCAP_CAP(#cap, cap_type, cap)				\
3266 		.matches = match,						\
3267 	}
3268 
3269 #define HWCAP_CAP_MATCH_ID(match, reg, field, min_value, cap_type, cap)		\
3270 	{									\
3271 		__HWCAP_CAP(#cap, cap_type, cap)				\
3272 		HWCAP_CPUID_MATCH(reg, field, min_value) 			\
3273 		.matches = match,						\
3274 	}
3275 
3276 #ifdef CONFIG_ARM64_PTR_AUTH
3277 static const struct arm64_cpu_capabilities ptr_auth_hwcap_addr_matches[] = {
3278 	{
3279 		HWCAP_CPUID_MATCH(ID_AA64ISAR1_EL1, APA, PAuth)
3280 	},
3281 	{
3282 		HWCAP_CPUID_MATCH(ID_AA64ISAR2_EL1, APA3, PAuth)
3283 	},
3284 	{
3285 		HWCAP_CPUID_MATCH(ID_AA64ISAR1_EL1, API, PAuth)
3286 	},
3287 	{},
3288 };
3289 
3290 static const struct arm64_cpu_capabilities ptr_auth_hwcap_gen_matches[] = {
3291 	{
3292 		HWCAP_CPUID_MATCH(ID_AA64ISAR1_EL1, GPA, IMP)
3293 	},
3294 	{
3295 		HWCAP_CPUID_MATCH(ID_AA64ISAR2_EL1, GPA3, IMP)
3296 	},
3297 	{
3298 		HWCAP_CPUID_MATCH(ID_AA64ISAR1_EL1, GPI, IMP)
3299 	},
3300 	{},
3301 };
3302 #endif
3303 
3304 #ifdef CONFIG_ARM64_SVE
has_sve_feature(const struct arm64_cpu_capabilities * cap,int scope)3305 static bool has_sve_feature(const struct arm64_cpu_capabilities *cap, int scope)
3306 {
3307 	return system_supports_sve() && has_user_cpuid_feature(cap, scope);
3308 }
3309 #endif
3310 
3311 #ifdef CONFIG_ARM64_SME
has_sme_feature(const struct arm64_cpu_capabilities * cap,int scope)3312 static bool has_sme_feature(const struct arm64_cpu_capabilities *cap, int scope)
3313 {
3314 	return system_supports_sme() && has_user_cpuid_feature(cap, scope);
3315 }
3316 #endif
3317 
3318 static const struct arm64_cpu_capabilities arm64_elf_hwcaps[] = {
3319 	HWCAP_CAP(ID_AA64ISAR0_EL1, AES, PMULL, CAP_HWCAP, KERNEL_HWCAP_PMULL),
3320 	HWCAP_CAP(ID_AA64ISAR0_EL1, AES, AES, CAP_HWCAP, KERNEL_HWCAP_AES),
3321 	HWCAP_CAP(ID_AA64ISAR0_EL1, SHA1, IMP, CAP_HWCAP, KERNEL_HWCAP_SHA1),
3322 	HWCAP_CAP(ID_AA64ISAR0_EL1, SHA2, SHA256, CAP_HWCAP, KERNEL_HWCAP_SHA2),
3323 	HWCAP_CAP(ID_AA64ISAR0_EL1, SHA2, SHA512, CAP_HWCAP, KERNEL_HWCAP_SHA512),
3324 	HWCAP_CAP(ID_AA64ISAR0_EL1, CRC32, IMP, CAP_HWCAP, KERNEL_HWCAP_CRC32),
3325 	HWCAP_CAP(ID_AA64ISAR0_EL1, ATOMIC, IMP, CAP_HWCAP, KERNEL_HWCAP_ATOMICS),
3326 	HWCAP_CAP(ID_AA64ISAR0_EL1, ATOMIC, FEAT_LSE128, CAP_HWCAP, KERNEL_HWCAP_LSE128),
3327 	HWCAP_CAP(ID_AA64ISAR0_EL1, RDM, IMP, CAP_HWCAP, KERNEL_HWCAP_ASIMDRDM),
3328 	HWCAP_CAP(ID_AA64ISAR0_EL1, SHA3, IMP, CAP_HWCAP, KERNEL_HWCAP_SHA3),
3329 	HWCAP_CAP(ID_AA64ISAR0_EL1, SM3, IMP, CAP_HWCAP, KERNEL_HWCAP_SM3),
3330 	HWCAP_CAP(ID_AA64ISAR0_EL1, SM4, IMP, CAP_HWCAP, KERNEL_HWCAP_SM4),
3331 	HWCAP_CAP(ID_AA64ISAR0_EL1, DP, IMP, CAP_HWCAP, KERNEL_HWCAP_ASIMDDP),
3332 	HWCAP_CAP(ID_AA64ISAR0_EL1, FHM, IMP, CAP_HWCAP, KERNEL_HWCAP_ASIMDFHM),
3333 	HWCAP_CAP(ID_AA64ISAR0_EL1, FHM, F16F32DOT, CAP_HWCAP, KERNEL_HWCAP_F16F32DOT),
3334 	HWCAP_CAP(ID_AA64ISAR0_EL1, FHM, F16F32MM, CAP_HWCAP, KERNEL_HWCAP_F16F32MM),
3335 	HWCAP_CAP(ID_AA64ISAR0_EL1, TS, FLAGM, CAP_HWCAP, KERNEL_HWCAP_FLAGM),
3336 	HWCAP_CAP(ID_AA64ISAR0_EL1, TS, FLAGM2, CAP_HWCAP, KERNEL_HWCAP_FLAGM2),
3337 	HWCAP_CAP(ID_AA64ISAR0_EL1, RNDR, IMP, CAP_HWCAP, KERNEL_HWCAP_RNG),
3338 	HWCAP_CAP(ID_AA64ISAR3_EL1, FPRCVT, IMP, CAP_HWCAP, KERNEL_HWCAP_FPRCVT),
3339 	HWCAP_CAP(ID_AA64PFR0_EL1, FP, IMP, CAP_HWCAP, KERNEL_HWCAP_FP),
3340 	HWCAP_CAP(ID_AA64PFR0_EL1, FP, FP16, CAP_HWCAP, KERNEL_HWCAP_FPHP),
3341 	HWCAP_CAP(ID_AA64PFR0_EL1, AdvSIMD, IMP, CAP_HWCAP, KERNEL_HWCAP_ASIMD),
3342 	HWCAP_CAP(ID_AA64PFR0_EL1, AdvSIMD, FP16, CAP_HWCAP, KERNEL_HWCAP_ASIMDHP),
3343 	HWCAP_CAP(ID_AA64PFR0_EL1, DIT, IMP, CAP_HWCAP, KERNEL_HWCAP_DIT),
3344 	HWCAP_CAP(ID_AA64PFR2_EL1, FPMR, IMP, CAP_HWCAP, KERNEL_HWCAP_FPMR),
3345 	HWCAP_CAP(ID_AA64ISAR1_EL1, DPB, IMP, CAP_HWCAP, KERNEL_HWCAP_DCPOP),
3346 	HWCAP_CAP(ID_AA64ISAR1_EL1, DPB, DPB2, CAP_HWCAP, KERNEL_HWCAP_DCPODP),
3347 	HWCAP_CAP(ID_AA64ISAR1_EL1, JSCVT, IMP, CAP_HWCAP, KERNEL_HWCAP_JSCVT),
3348 	HWCAP_CAP(ID_AA64ISAR1_EL1, FCMA, IMP, CAP_HWCAP, KERNEL_HWCAP_FCMA),
3349 	HWCAP_CAP(ID_AA64ISAR1_EL1, LRCPC, IMP, CAP_HWCAP, KERNEL_HWCAP_LRCPC),
3350 	HWCAP_CAP(ID_AA64ISAR1_EL1, LRCPC, LRCPC2, CAP_HWCAP, KERNEL_HWCAP_ILRCPC),
3351 	HWCAP_CAP(ID_AA64ISAR1_EL1, LRCPC, LRCPC3, CAP_HWCAP, KERNEL_HWCAP_LRCPC3),
3352 	HWCAP_CAP(ID_AA64ISAR1_EL1, FRINTTS, IMP, CAP_HWCAP, KERNEL_HWCAP_FRINT),
3353 	HWCAP_CAP(ID_AA64ISAR1_EL1, SB, IMP, CAP_HWCAP, KERNEL_HWCAP_SB),
3354 	HWCAP_CAP(ID_AA64ISAR1_EL1, BF16, IMP, CAP_HWCAP, KERNEL_HWCAP_BF16),
3355 	HWCAP_CAP(ID_AA64ISAR1_EL1, BF16, EBF16, CAP_HWCAP, KERNEL_HWCAP_EBF16),
3356 	HWCAP_CAP(ID_AA64ISAR1_EL1, DGH, IMP, CAP_HWCAP, KERNEL_HWCAP_DGH),
3357 	HWCAP_CAP(ID_AA64ISAR1_EL1, I8MM, IMP, CAP_HWCAP, KERNEL_HWCAP_I8MM),
3358 	HWCAP_CAP(ID_AA64ISAR1_EL1, LS64, LS64, CAP_HWCAP, KERNEL_HWCAP_LS64),
3359 	HWCAP_CAP(ID_AA64ISAR2_EL1, LUT, IMP, CAP_HWCAP, KERNEL_HWCAP_LUT),
3360 	HWCAP_CAP(ID_AA64ISAR3_EL1, FAMINMAX, IMP, CAP_HWCAP, KERNEL_HWCAP_FAMINMAX),
3361 	HWCAP_CAP(ID_AA64ISAR3_EL1, LSFE, IMP, CAP_HWCAP, KERNEL_HWCAP_LSFE),
3362 	HWCAP_CAP(ID_AA64MMFR2_EL1, AT, IMP, CAP_HWCAP, KERNEL_HWCAP_USCAT),
3363 #ifdef CONFIG_ARM64_SVE
3364 	HWCAP_CAP_MATCH_ID(has_sve_feature, ID_AA64ISAR2_EL1, LUT, LUT6, CAP_HWCAP, KERNEL_HWCAP_SVE_LUT6),
3365 	HWCAP_CAP(ID_AA64PFR0_EL1, SVE, IMP, CAP_HWCAP, KERNEL_HWCAP_SVE),
3366 	HWCAP_CAP_MATCH_ID(has_sve_feature, ID_AA64ZFR0_EL1, SVEver, SVE2p3, CAP_HWCAP, KERNEL_HWCAP_SVE2P3),
3367 	HWCAP_CAP_MATCH_ID(has_sve_feature, ID_AA64ZFR0_EL1, SVEver, SVE2p2, CAP_HWCAP, KERNEL_HWCAP_SVE2P2),
3368 	HWCAP_CAP_MATCH_ID(has_sve_feature, ID_AA64ZFR0_EL1, SVEver, SVE2p1, CAP_HWCAP, KERNEL_HWCAP_SVE2P1),
3369 	HWCAP_CAP_MATCH_ID(has_sve_feature, ID_AA64ZFR0_EL1, SVEver, SVE2, CAP_HWCAP, KERNEL_HWCAP_SVE2),
3370 	HWCAP_CAP_MATCH_ID(has_sve_feature, ID_AA64ZFR0_EL1, AES, IMP, CAP_HWCAP, KERNEL_HWCAP_SVEAES),
3371 	HWCAP_CAP_MATCH_ID(has_sve_feature, ID_AA64ZFR0_EL1, AES, PMULL128, CAP_HWCAP, KERNEL_HWCAP_SVEPMULL),
3372 	HWCAP_CAP_MATCH_ID(has_sve_feature, ID_AA64ZFR0_EL1, AES, AES2, CAP_HWCAP, KERNEL_HWCAP_SVE_AES2),
3373 	HWCAP_CAP_MATCH_ID(has_sve_feature, ID_AA64ZFR0_EL1, BitPerm, IMP, CAP_HWCAP, KERNEL_HWCAP_SVEBITPERM),
3374 	HWCAP_CAP_MATCH_ID(has_sve_feature, ID_AA64ZFR0_EL1, B16B16, IMP, CAP_HWCAP, KERNEL_HWCAP_SVE_B16B16),
3375 	HWCAP_CAP_MATCH_ID(has_sve_feature, ID_AA64ZFR0_EL1, B16B16, BFSCALE, CAP_HWCAP, KERNEL_HWCAP_SVE_BFSCALE),
3376 	HWCAP_CAP_MATCH_ID(has_sve_feature, ID_AA64ZFR0_EL1, B16B16, B16MM, CAP_HWCAP, KERNEL_HWCAP_SVE_B16MM),
3377 	HWCAP_CAP_MATCH_ID(has_sve_feature, ID_AA64ZFR0_EL1, BF16, IMP, CAP_HWCAP, KERNEL_HWCAP_SVEBF16),
3378 	HWCAP_CAP_MATCH_ID(has_sve_feature, ID_AA64ZFR0_EL1, BF16, EBF16, CAP_HWCAP, KERNEL_HWCAP_SVE_EBF16),
3379 	HWCAP_CAP_MATCH_ID(has_sve_feature, ID_AA64ZFR0_EL1, SHA3, IMP, CAP_HWCAP, KERNEL_HWCAP_SVESHA3),
3380 	HWCAP_CAP_MATCH_ID(has_sve_feature, ID_AA64ZFR0_EL1, SM4, IMP, CAP_HWCAP, KERNEL_HWCAP_SVESM4),
3381 	HWCAP_CAP_MATCH_ID(has_sve_feature, ID_AA64ZFR0_EL1, I8MM, IMP, CAP_HWCAP, KERNEL_HWCAP_SVEI8MM),
3382 	HWCAP_CAP_MATCH_ID(has_sve_feature, ID_AA64ZFR0_EL1, F32MM, IMP, CAP_HWCAP, KERNEL_HWCAP_SVEF32MM),
3383 	HWCAP_CAP_MATCH_ID(has_sve_feature, ID_AA64ZFR0_EL1, F64MM, IMP, CAP_HWCAP, KERNEL_HWCAP_SVEF64MM),
3384 	HWCAP_CAP_MATCH_ID(has_sve_feature, ID_AA64ZFR0_EL1, F16MM, IMP, CAP_HWCAP, KERNEL_HWCAP_SVE_F16MM),
3385 	HWCAP_CAP_MATCH_ID(has_sve_feature, ID_AA64ZFR0_EL1, EltPerm, IMP, CAP_HWCAP, KERNEL_HWCAP_SVE_ELTPERM),
3386 #endif
3387 #ifdef CONFIG_ARM64_GCS
3388 	HWCAP_CAP(ID_AA64PFR1_EL1, GCS, IMP, CAP_HWCAP, KERNEL_HWCAP_GCS),
3389 #endif
3390 	HWCAP_CAP(ID_AA64PFR1_EL1, SSBS, SSBS2, CAP_HWCAP, KERNEL_HWCAP_SSBS),
3391 #ifdef CONFIG_ARM64_BTI
3392 	HWCAP_CAP(ID_AA64PFR1_EL1, BT, IMP, CAP_HWCAP, KERNEL_HWCAP_BTI),
3393 #endif
3394 #ifdef CONFIG_ARM64_PTR_AUTH
3395 	HWCAP_MULTI_CAP(ptr_auth_hwcap_addr_matches, CAP_HWCAP, KERNEL_HWCAP_PACA),
3396 	HWCAP_MULTI_CAP(ptr_auth_hwcap_gen_matches, CAP_HWCAP, KERNEL_HWCAP_PACG),
3397 #endif
3398 #ifdef CONFIG_ARM64_MTE
3399 	HWCAP_CAP(ID_AA64PFR1_EL1, MTE, MTE2, CAP_HWCAP, KERNEL_HWCAP_MTE),
3400 	HWCAP_CAP(ID_AA64PFR1_EL1, MTE, MTE3, CAP_HWCAP, KERNEL_HWCAP_MTE3),
3401 	HWCAP_CAP(ID_AA64PFR2_EL1, MTEFAR, IMP, CAP_HWCAP, KERNEL_HWCAP_MTE_FAR),
3402 	HWCAP_CAP(ID_AA64PFR2_EL1, MTESTOREONLY, IMP, CAP_HWCAP , KERNEL_HWCAP_MTE_STORE_ONLY),
3403 #endif /* CONFIG_ARM64_MTE */
3404 	HWCAP_CAP(ID_AA64MMFR0_EL1, ECV, IMP, CAP_HWCAP, KERNEL_HWCAP_ECV),
3405 	HWCAP_CAP(ID_AA64MMFR1_EL1, AFP, IMP, CAP_HWCAP, KERNEL_HWCAP_AFP),
3406 	HWCAP_CAP(ID_AA64ISAR2_EL1, CSSC, IMP, CAP_HWCAP, KERNEL_HWCAP_CSSC),
3407 	HWCAP_CAP(ID_AA64ISAR2_EL1, CSSC, CMPBR, CAP_HWCAP, KERNEL_HWCAP_CMPBR),
3408 	HWCAP_CAP(ID_AA64ISAR2_EL1, RPRFM, IMP, CAP_HWCAP, KERNEL_HWCAP_RPRFM),
3409 	HWCAP_CAP(ID_AA64ISAR2_EL1, RPRES, IMP, CAP_HWCAP, KERNEL_HWCAP_RPRES),
3410 	HWCAP_CAP(ID_AA64ISAR2_EL1, WFxT, IMP, CAP_HWCAP, KERNEL_HWCAP_WFXT),
3411 	HWCAP_CAP(ID_AA64ISAR2_EL1, MOPS, IMP, CAP_HWCAP, KERNEL_HWCAP_MOPS),
3412 	HWCAP_CAP(ID_AA64ISAR2_EL1, BC, IMP, CAP_HWCAP, KERNEL_HWCAP_HBC),
3413 #ifdef CONFIG_ARM64_SME
3414 	HWCAP_CAP(ID_AA64PFR1_EL1, SME, IMP, CAP_HWCAP, KERNEL_HWCAP_SME),
3415 	HWCAP_CAP_MATCH_ID(has_sme_feature, ID_AA64SMFR0_EL1, FA64, IMP, CAP_HWCAP, KERNEL_HWCAP_SME_FA64),
3416 	HWCAP_CAP_MATCH_ID(has_sme_feature, ID_AA64SMFR0_EL1, LUT6, IMP, CAP_HWCAP, KERNEL_HWCAP_SME_LUT6),
3417 	HWCAP_CAP_MATCH_ID(has_sme_feature, ID_AA64SMFR0_EL1, LUTv2, IMP, CAP_HWCAP, KERNEL_HWCAP_SME_LUTV2),
3418 	HWCAP_CAP_MATCH_ID(has_sme_feature, ID_AA64SMFR0_EL1, SMEver, SME2p3, CAP_HWCAP, KERNEL_HWCAP_SME2P3),
3419 	HWCAP_CAP_MATCH_ID(has_sme_feature, ID_AA64SMFR0_EL1, SMEver, SME2p2, CAP_HWCAP, KERNEL_HWCAP_SME2P2),
3420 	HWCAP_CAP_MATCH_ID(has_sme_feature, ID_AA64SMFR0_EL1, SMEver, SME2p1, CAP_HWCAP, KERNEL_HWCAP_SME2P1),
3421 	HWCAP_CAP_MATCH_ID(has_sme_feature, ID_AA64SMFR0_EL1, SMEver, SME2, CAP_HWCAP, KERNEL_HWCAP_SME2),
3422 	HWCAP_CAP_MATCH_ID(has_sme_feature, ID_AA64SMFR0_EL1, I16I64, IMP, CAP_HWCAP, KERNEL_HWCAP_SME_I16I64),
3423 	HWCAP_CAP_MATCH_ID(has_sme_feature, ID_AA64SMFR0_EL1, F64F64, IMP, CAP_HWCAP, KERNEL_HWCAP_SME_F64F64),
3424 	HWCAP_CAP_MATCH_ID(has_sme_feature, ID_AA64SMFR0_EL1, I16I32, IMP, CAP_HWCAP, KERNEL_HWCAP_SME_I16I32),
3425 	HWCAP_CAP_MATCH_ID(has_sme_feature, ID_AA64SMFR0_EL1, B16B16, IMP, CAP_HWCAP, KERNEL_HWCAP_SME_B16B16),
3426 	HWCAP_CAP_MATCH_ID(has_sme_feature, ID_AA64SMFR0_EL1, F16F16, IMP, CAP_HWCAP, KERNEL_HWCAP_SME_F16F16),
3427 	HWCAP_CAP_MATCH_ID(has_sme_feature, ID_AA64SMFR0_EL1, F8F16, IMP, CAP_HWCAP, KERNEL_HWCAP_SME_F8F16),
3428 	HWCAP_CAP_MATCH_ID(has_sme_feature, ID_AA64SMFR0_EL1, F8F32, IMP, CAP_HWCAP, KERNEL_HWCAP_SME_F8F32),
3429 	HWCAP_CAP_MATCH_ID(has_sme_feature, ID_AA64SMFR0_EL1, I8I32, IMP, CAP_HWCAP, KERNEL_HWCAP_SME_I8I32),
3430 	HWCAP_CAP_MATCH_ID(has_sme_feature, ID_AA64SMFR0_EL1, F16F32, IMP, CAP_HWCAP, KERNEL_HWCAP_SME_F16F32),
3431 	HWCAP_CAP_MATCH_ID(has_sme_feature, ID_AA64SMFR0_EL1, B16F32, IMP, CAP_HWCAP, KERNEL_HWCAP_SME_B16F32),
3432 	HWCAP_CAP_MATCH_ID(has_sme_feature, ID_AA64SMFR0_EL1, BI32I32, IMP, CAP_HWCAP, KERNEL_HWCAP_SME_BI32I32),
3433 	HWCAP_CAP_MATCH_ID(has_sme_feature, ID_AA64SMFR0_EL1, F32F32, IMP, CAP_HWCAP, KERNEL_HWCAP_SME_F32F32),
3434 	HWCAP_CAP_MATCH_ID(has_sme_feature, ID_AA64SMFR0_EL1, SF8FMA, IMP, CAP_HWCAP, KERNEL_HWCAP_SME_SF8FMA),
3435 	HWCAP_CAP_MATCH_ID(has_sme_feature, ID_AA64SMFR0_EL1, SF8DP4, IMP, CAP_HWCAP, KERNEL_HWCAP_SME_SF8DP4),
3436 	HWCAP_CAP_MATCH_ID(has_sme_feature, ID_AA64SMFR0_EL1, SF8DP2, IMP, CAP_HWCAP, KERNEL_HWCAP_SME_SF8DP2),
3437 	HWCAP_CAP_MATCH_ID(has_sme_feature, ID_AA64SMFR0_EL1, SBitPerm, IMP, CAP_HWCAP, KERNEL_HWCAP_SME_SBITPERM),
3438 	HWCAP_CAP_MATCH_ID(has_sme_feature, ID_AA64SMFR0_EL1, AES, IMP, CAP_HWCAP, KERNEL_HWCAP_SME_AES),
3439 	HWCAP_CAP_MATCH_ID(has_sme_feature, ID_AA64SMFR0_EL1, SFEXPA, IMP, CAP_HWCAP, KERNEL_HWCAP_SME_SFEXPA),
3440 	HWCAP_CAP_MATCH_ID(has_sme_feature, ID_AA64SMFR0_EL1, STMOP, IMP, CAP_HWCAP, KERNEL_HWCAP_SME_STMOP),
3441 	HWCAP_CAP_MATCH_ID(has_sme_feature, ID_AA64SMFR0_EL1, SMOP4, IMP, CAP_HWCAP, KERNEL_HWCAP_SME_SMOP4),
3442 #endif /* CONFIG_ARM64_SME */
3443 	HWCAP_CAP(ID_AA64FPFR0_EL1, F8CVT, IMP, CAP_HWCAP, KERNEL_HWCAP_F8CVT),
3444 	HWCAP_CAP(ID_AA64FPFR0_EL1, F8FMA, IMP, CAP_HWCAP, KERNEL_HWCAP_F8FMA),
3445 	HWCAP_CAP(ID_AA64FPFR0_EL1, F8DP4, IMP, CAP_HWCAP, KERNEL_HWCAP_F8DP4),
3446 	HWCAP_CAP(ID_AA64FPFR0_EL1, F8DP2, IMP, CAP_HWCAP, KERNEL_HWCAP_F8DP2),
3447 	HWCAP_CAP(ID_AA64FPFR0_EL1, F8MM8, IMP, CAP_HWCAP, KERNEL_HWCAP_F8MM8),
3448 	HWCAP_CAP(ID_AA64FPFR0_EL1, F8MM4, IMP, CAP_HWCAP, KERNEL_HWCAP_F8MM4),
3449 	HWCAP_CAP(ID_AA64FPFR0_EL1, F16MM2, IMP, CAP_HWCAP, KERNEL_HWCAP_F16MM),
3450 	HWCAP_CAP(ID_AA64FPFR0_EL1, F8E4M3, IMP, CAP_HWCAP, KERNEL_HWCAP_F8E4M3),
3451 	HWCAP_CAP(ID_AA64FPFR0_EL1, F8E5M2, IMP, CAP_HWCAP, KERNEL_HWCAP_F8E5M2),
3452 #ifdef CONFIG_ARM64_POE
3453 	HWCAP_CAP(ID_AA64MMFR3_EL1, S1POE, IMP, CAP_HWCAP, KERNEL_HWCAP_POE),
3454 #endif
3455 	{},
3456 };
3457 
3458 #ifdef CONFIG_COMPAT
compat_has_neon(const struct arm64_cpu_capabilities * cap,int scope)3459 static bool compat_has_neon(const struct arm64_cpu_capabilities *cap, int scope)
3460 {
3461 	/*
3462 	 * Check that all of MVFR1_EL1.{SIMDSP, SIMDInt, SIMDLS} are available,
3463 	 * in line with that of arm32 as in vfp_init(). We make sure that the
3464 	 * check is future proof, by making sure value is non-zero.
3465 	 */
3466 	u32 mvfr1;
3467 
3468 	WARN_ON(scope == SCOPE_LOCAL_CPU && preemptible());
3469 	if (scope == SCOPE_SYSTEM)
3470 		mvfr1 = read_sanitised_ftr_reg(SYS_MVFR1_EL1);
3471 	else
3472 		mvfr1 = read_sysreg_s(SYS_MVFR1_EL1);
3473 
3474 	return cpuid_feature_extract_unsigned_field(mvfr1, MVFR1_EL1_SIMDSP_SHIFT) &&
3475 		cpuid_feature_extract_unsigned_field(mvfr1, MVFR1_EL1_SIMDInt_SHIFT) &&
3476 		cpuid_feature_extract_unsigned_field(mvfr1, MVFR1_EL1_SIMDLS_SHIFT);
3477 }
3478 #endif
3479 
3480 static const struct arm64_cpu_capabilities compat_elf_hwcaps[] = {
3481 #ifdef CONFIG_COMPAT
3482 	HWCAP_CAP_MATCH(compat_has_neon, CAP_COMPAT_HWCAP, COMPAT_HWCAP_NEON),
3483 	HWCAP_CAP(MVFR1_EL1, SIMDFMAC, IMP, CAP_COMPAT_HWCAP, COMPAT_HWCAP_VFPv4),
3484 	/* Arm v8 mandates MVFR0.FPDP == {0, 2}. So, piggy back on this for the presence of VFP support */
3485 	HWCAP_CAP(MVFR0_EL1, FPDP, VFPv3, CAP_COMPAT_HWCAP, COMPAT_HWCAP_VFP),
3486 	HWCAP_CAP(MVFR0_EL1, FPDP, VFPv3, CAP_COMPAT_HWCAP, COMPAT_HWCAP_VFPv3),
3487 	HWCAP_CAP(MVFR1_EL1, FPHP, FP16, CAP_COMPAT_HWCAP, COMPAT_HWCAP_FPHP),
3488 	HWCAP_CAP(MVFR1_EL1, SIMDHP, SIMDHP_FLOAT, CAP_COMPAT_HWCAP, COMPAT_HWCAP_ASIMDHP),
3489 	HWCAP_CAP(ID_ISAR5_EL1, AES, VMULL, CAP_COMPAT_HWCAP2, COMPAT_HWCAP2_PMULL),
3490 	HWCAP_CAP(ID_ISAR5_EL1, AES, IMP, CAP_COMPAT_HWCAP2, COMPAT_HWCAP2_AES),
3491 	HWCAP_CAP(ID_ISAR5_EL1, SHA1, IMP, CAP_COMPAT_HWCAP2, COMPAT_HWCAP2_SHA1),
3492 	HWCAP_CAP(ID_ISAR5_EL1, SHA2, IMP, CAP_COMPAT_HWCAP2, COMPAT_HWCAP2_SHA2),
3493 	HWCAP_CAP(ID_ISAR5_EL1, CRC32, IMP, CAP_COMPAT_HWCAP2, COMPAT_HWCAP2_CRC32),
3494 	HWCAP_CAP(ID_ISAR6_EL1, DP, IMP, CAP_COMPAT_HWCAP, COMPAT_HWCAP_ASIMDDP),
3495 	HWCAP_CAP(ID_ISAR6_EL1, FHM, IMP, CAP_COMPAT_HWCAP, COMPAT_HWCAP_ASIMDFHM),
3496 	HWCAP_CAP(ID_ISAR6_EL1, SB, IMP, CAP_COMPAT_HWCAP2, COMPAT_HWCAP2_SB),
3497 	HWCAP_CAP(ID_ISAR6_EL1, BF16, IMP, CAP_COMPAT_HWCAP, COMPAT_HWCAP_ASIMDBF16),
3498 	HWCAP_CAP(ID_ISAR6_EL1, I8MM, IMP, CAP_COMPAT_HWCAP, COMPAT_HWCAP_I8MM),
3499 	HWCAP_CAP(ID_PFR2_EL1, SSBS, IMP, CAP_COMPAT_HWCAP2, COMPAT_HWCAP2_SSBS),
3500 #endif
3501 	{},
3502 };
3503 
cap_set_elf_hwcap(const struct arm64_cpu_capabilities * cap)3504 static void cap_set_elf_hwcap(const struct arm64_cpu_capabilities *cap)
3505 {
3506 	switch (cap->hwcap_type) {
3507 	case CAP_HWCAP:
3508 		cpu_set_feature(cap->hwcap);
3509 		break;
3510 #ifdef CONFIG_COMPAT
3511 	case CAP_COMPAT_HWCAP:
3512 		compat_elf_hwcap |= (u32)cap->hwcap;
3513 		break;
3514 	case CAP_COMPAT_HWCAP2:
3515 		compat_elf_hwcap2 |= (u32)cap->hwcap;
3516 		break;
3517 #endif
3518 	default:
3519 		WARN_ON(1);
3520 		break;
3521 	}
3522 }
3523 
3524 /* Check if we have a particular HWCAP enabled */
cpus_have_elf_hwcap(const struct arm64_cpu_capabilities * cap)3525 static bool cpus_have_elf_hwcap(const struct arm64_cpu_capabilities *cap)
3526 {
3527 	bool rc;
3528 
3529 	switch (cap->hwcap_type) {
3530 	case CAP_HWCAP:
3531 		rc = cpu_have_feature(cap->hwcap);
3532 		break;
3533 #ifdef CONFIG_COMPAT
3534 	case CAP_COMPAT_HWCAP:
3535 		rc = (compat_elf_hwcap & (u32)cap->hwcap) != 0;
3536 		break;
3537 	case CAP_COMPAT_HWCAP2:
3538 		rc = (compat_elf_hwcap2 & (u32)cap->hwcap) != 0;
3539 		break;
3540 #endif
3541 	default:
3542 		WARN_ON(1);
3543 		rc = false;
3544 	}
3545 
3546 	return rc;
3547 }
3548 
setup_elf_hwcaps(const struct arm64_cpu_capabilities * hwcaps)3549 static void setup_elf_hwcaps(const struct arm64_cpu_capabilities *hwcaps)
3550 {
3551 	/* We support emulation of accesses to CPU ID feature registers */
3552 	cpu_set_named_feature(CPUID);
3553 	for (; hwcaps->matches; hwcaps++)
3554 		if (hwcaps->matches(hwcaps, cpucap_default_scope(hwcaps)))
3555 			cap_set_elf_hwcap(hwcaps);
3556 }
3557 
update_cpu_capabilities(u16 scope_mask)3558 static void update_cpu_capabilities(u16 scope_mask)
3559 {
3560 	int i;
3561 	const struct arm64_cpu_capabilities *caps;
3562 
3563 	scope_mask &= ARM64_CPUCAP_SCOPE_MASK;
3564 	for (i = 0; i < ARM64_NCAPS; i++) {
3565 		bool match_all = false;
3566 		bool caps_set = false;
3567 		bool boot_cpu = false;
3568 
3569 		caps = cpucap_ptrs[i];
3570 		if (!caps || !(caps->type & scope_mask))
3571 			continue;
3572 
3573 		match_all = cpucap_match_all_early_cpus(caps);
3574 		caps_set = cpus_have_cap(caps->capability);
3575 		boot_cpu = scope_mask & SCOPE_BOOT_CPU;
3576 
3577 		/*
3578 		 * Unless it's a match-all CPUs feature, avoid probing if
3579 		 * already detected.
3580 		 */
3581 		if (!match_all && caps_set)
3582 			continue;
3583 
3584 		/*
3585 		 * A match-all CPUs capability is only set when probing the
3586 		 * boot CPU. It may be cleared subsequently if not detected on
3587 		 * secondary ones.
3588 		 */
3589 		if (match_all && !caps_set && !boot_cpu)
3590 			continue;
3591 
3592 		if (!caps->matches(caps, cpucap_default_scope(caps))) {
3593 			if (match_all)
3594 				__clear_bit(caps->capability, system_cpucaps);
3595 			continue;
3596 		}
3597 
3598 		/*
3599 		 * Match-all CPUs capabilities are logged later when the
3600 		 * system capabilities are finalised.
3601 		 */
3602 		if (!match_all && caps->desc && !caps->cpus)
3603 			pr_info("detected: %s\n", caps->desc);
3604 
3605 		__set_bit(caps->capability, system_cpucaps);
3606 
3607 		if (boot_cpu && (caps->type & SCOPE_BOOT_CPU))
3608 			set_bit(caps->capability, boot_cpucaps);
3609 	}
3610 }
3611 
3612 /*
3613  * Enable all the available capabilities on this CPU. The capabilities
3614  * with BOOT_CPU scope are handled separately and hence skipped here.
3615  */
cpu_enable_non_boot_scope_capabilities(void * __unused)3616 static int cpu_enable_non_boot_scope_capabilities(void *__unused)
3617 {
3618 	int i;
3619 	u16 non_boot_scope = SCOPE_ALL & ~SCOPE_BOOT_CPU;
3620 
3621 	for_each_available_cap(i) {
3622 		const struct arm64_cpu_capabilities *cap = cpucap_ptrs[i];
3623 
3624 		if (WARN_ON(!cap))
3625 			continue;
3626 
3627 		if (!(cap->type & non_boot_scope))
3628 			continue;
3629 
3630 		if (cap->cpu_enable)
3631 			cap->cpu_enable(cap);
3632 	}
3633 	return 0;
3634 }
3635 
3636 /*
3637  * Run through the enabled capabilities and enable() it on all active
3638  * CPUs
3639  */
enable_cpu_capabilities(u16 scope_mask)3640 static void __init enable_cpu_capabilities(u16 scope_mask)
3641 {
3642 	int i;
3643 	const struct arm64_cpu_capabilities *caps;
3644 	bool boot_scope;
3645 
3646 	scope_mask &= ARM64_CPUCAP_SCOPE_MASK;
3647 	boot_scope = !!(scope_mask & SCOPE_BOOT_CPU);
3648 
3649 	for (i = 0; i < ARM64_NCAPS; i++) {
3650 		caps = cpucap_ptrs[i];
3651 		if (!caps || !(caps->type & scope_mask) ||
3652 		    !cpus_have_cap(caps->capability))
3653 			continue;
3654 
3655 		if (boot_scope && caps->cpu_enable)
3656 			/*
3657 			 * Capabilities with SCOPE_BOOT_CPU scope are finalised
3658 			 * before any secondary CPU boots. Thus, each secondary
3659 			 * will enable the capability as appropriate via
3660 			 * check_local_cpu_capabilities(). The only exception is
3661 			 * the boot CPU, for which the capability must be
3662 			 * enabled here. This approach avoids costly
3663 			 * stop_machine() calls for this case.
3664 			 */
3665 			caps->cpu_enable(caps);
3666 	}
3667 
3668 	/*
3669 	 * For all non-boot scope capabilities, use stop_machine()
3670 	 * as it schedules the work allowing us to modify PSTATE,
3671 	 * instead of on_each_cpu() which uses an IPI, giving us a
3672 	 * PSTATE that disappears when we return.
3673 	 */
3674 	if (!boot_scope)
3675 		stop_machine(cpu_enable_non_boot_scope_capabilities,
3676 			     NULL, cpu_online_mask);
3677 }
3678 
3679 /*
3680  * Run through the list of capabilities to check for conflicts.
3681  * If the system has already detected a capability, take necessary
3682  * action on this CPU.
3683  */
verify_local_cpu_caps(u16 scope_mask)3684 static void verify_local_cpu_caps(u16 scope_mask)
3685 {
3686 	int i;
3687 	bool cpu_has_cap, system_has_cap;
3688 	const struct arm64_cpu_capabilities *caps;
3689 
3690 	scope_mask &= ARM64_CPUCAP_SCOPE_MASK;
3691 
3692 	for (i = 0; i < ARM64_NCAPS; i++) {
3693 		caps = cpucap_ptrs[i];
3694 		if (!caps || !(caps->type & scope_mask))
3695 			continue;
3696 
3697 		cpu_has_cap = caps->matches(caps, SCOPE_LOCAL_CPU);
3698 		system_has_cap = cpus_have_cap(caps->capability);
3699 
3700 		if (system_has_cap) {
3701 			/*
3702 			 * Check if the new CPU misses an advertised feature,
3703 			 * which is not safe to miss.
3704 			 */
3705 			if (!cpu_has_cap && !cpucap_late_cpu_optional(caps))
3706 				break;
3707 			/*
3708 			 * We have to issue cpu_enable() irrespective of
3709 			 * whether the CPU has it or not, as it is enabeld
3710 			 * system wide. It is upto the call back to take
3711 			 * appropriate action on this CPU.
3712 			 */
3713 			if (caps->cpu_enable)
3714 				caps->cpu_enable(caps);
3715 		} else {
3716 			/*
3717 			 * Check if the CPU has this capability if it isn't
3718 			 * safe to have when the system doesn't.
3719 			 */
3720 			if (cpu_has_cap && !cpucap_late_cpu_permitted(caps))
3721 				break;
3722 		}
3723 	}
3724 
3725 	if (i < ARM64_NCAPS) {
3726 		pr_crit("CPU%d: Detected conflict for capability %d (%s), System: %d, CPU: %d\n",
3727 			smp_processor_id(), caps->capability,
3728 			caps->desc, system_has_cap, cpu_has_cap);
3729 
3730 		if (cpucap_panic_on_conflict(caps))
3731 			cpu_panic_kernel();
3732 		else
3733 			cpu_die_early();
3734 	}
3735 }
3736 
3737 /*
3738  * Check for CPU features that are used in early boot
3739  * based on the Boot CPU value.
3740  */
check_early_cpu_features(void)3741 static void check_early_cpu_features(void)
3742 {
3743 	verify_cpu_asid_bits();
3744 
3745 	verify_local_cpu_caps(SCOPE_BOOT_CPU);
3746 }
3747 
3748 static void
__verify_local_elf_hwcaps(const struct arm64_cpu_capabilities * caps)3749 __verify_local_elf_hwcaps(const struct arm64_cpu_capabilities *caps)
3750 {
3751 
3752 	for (; caps->matches; caps++)
3753 		if (cpus_have_elf_hwcap(caps) && !caps->matches(caps, SCOPE_LOCAL_CPU)) {
3754 			pr_crit("CPU%d: missing HWCAP: %s\n",
3755 					smp_processor_id(), caps->desc);
3756 			cpu_die_early();
3757 		}
3758 }
3759 
verify_local_elf_hwcaps(void)3760 static void verify_local_elf_hwcaps(void)
3761 {
3762 	__verify_local_elf_hwcaps(arm64_elf_hwcaps);
3763 
3764 	if (id_aa64pfr0_32bit_el0(read_cpuid(ID_AA64PFR0_EL1)))
3765 		__verify_local_elf_hwcaps(compat_elf_hwcaps);
3766 }
3767 
verify_sve_features(void)3768 static void verify_sve_features(void)
3769 {
3770 	unsigned long cpacr = cpacr_save_enable_kernel_sve();
3771 
3772 	if (vec_verify_vq_map(ARM64_VEC_SVE)) {
3773 		pr_crit("CPU%d: SVE: vector length support mismatch\n",
3774 			smp_processor_id());
3775 		cpu_die_early();
3776 	}
3777 
3778 	cpacr_restore(cpacr);
3779 }
3780 
verify_sme_features(void)3781 static void verify_sme_features(void)
3782 {
3783 	unsigned long cpacr = cpacr_save_enable_kernel_sme();
3784 
3785 	if (vec_verify_vq_map(ARM64_VEC_SME)) {
3786 		pr_crit("CPU%d: SME: vector length support mismatch\n",
3787 			smp_processor_id());
3788 		cpu_die_early();
3789 	}
3790 
3791 	cpacr_restore(cpacr);
3792 }
3793 
verify_hyp_capabilities(void)3794 static void verify_hyp_capabilities(void)
3795 {
3796 	u64 safe_mmfr1, mmfr0, mmfr1;
3797 	int parange, ipa_max;
3798 	unsigned int safe_vmid_bits, vmid_bits;
3799 
3800 	if (!IS_ENABLED(CONFIG_KVM))
3801 		return;
3802 
3803 	safe_mmfr1 = read_sanitised_ftr_reg(SYS_ID_AA64MMFR1_EL1);
3804 	mmfr0 = read_sanitised_ftr_reg(SYS_ID_AA64MMFR0_EL1);
3805 	mmfr1 = read_cpuid(ID_AA64MMFR1_EL1);
3806 
3807 	/* Verify VMID bits */
3808 	safe_vmid_bits = get_vmid_bits(safe_mmfr1);
3809 	vmid_bits = get_vmid_bits(mmfr1);
3810 	if (vmid_bits < safe_vmid_bits) {
3811 		pr_crit("CPU%d: VMID width mismatch\n", smp_processor_id());
3812 		cpu_die_early();
3813 	}
3814 
3815 	/* Verify IPA range */
3816 	parange = cpuid_feature_extract_unsigned_field(mmfr0,
3817 				ID_AA64MMFR0_EL1_PARANGE_SHIFT);
3818 	ipa_max = id_aa64mmfr0_parange_to_phys_shift(parange);
3819 	if (ipa_max < get_kvm_ipa_limit()) {
3820 		pr_crit("CPU%d: IPA range mismatch\n", smp_processor_id());
3821 		cpu_die_early();
3822 	}
3823 }
3824 
verify_mpam_capabilities(void)3825 static void verify_mpam_capabilities(void)
3826 {
3827 	u64 cpu_idr = read_cpuid(ID_AA64PFR0_EL1);
3828 	u64 sys_idr = read_sanitised_ftr_reg(SYS_ID_AA64PFR0_EL1);
3829 	u16 cpu_partid_max, cpu_pmg_max, sys_partid_max, sys_pmg_max;
3830 
3831 	if (FIELD_GET(ID_AA64PFR0_EL1_MPAM_MASK, cpu_idr) !=
3832 	    FIELD_GET(ID_AA64PFR0_EL1_MPAM_MASK, sys_idr)) {
3833 		pr_crit("CPU%d: MPAM version mismatch\n", smp_processor_id());
3834 		cpu_die_early();
3835 	}
3836 
3837 	cpu_idr = read_cpuid(MPAMIDR_EL1);
3838 	sys_idr = read_sanitised_ftr_reg(SYS_MPAMIDR_EL1);
3839 	if (FIELD_GET(MPAMIDR_EL1_HAS_HCR, cpu_idr) !=
3840 	    FIELD_GET(MPAMIDR_EL1_HAS_HCR, sys_idr)) {
3841 		pr_crit("CPU%d: Missing MPAM HCR\n", smp_processor_id());
3842 		cpu_die_early();
3843 	}
3844 
3845 	cpu_partid_max = FIELD_GET(MPAMIDR_EL1_PARTID_MAX, cpu_idr);
3846 	cpu_pmg_max = FIELD_GET(MPAMIDR_EL1_PMG_MAX, cpu_idr);
3847 	sys_partid_max = FIELD_GET(MPAMIDR_EL1_PARTID_MAX, sys_idr);
3848 	sys_pmg_max = FIELD_GET(MPAMIDR_EL1_PMG_MAX, sys_idr);
3849 	if (cpu_partid_max < sys_partid_max || cpu_pmg_max < sys_pmg_max) {
3850 		pr_crit("CPU%d: MPAM PARTID/PMG max values are mismatched\n", smp_processor_id());
3851 		cpu_die_early();
3852 	}
3853 }
3854 
3855 /*
3856  * Run through the enabled system capabilities and enable() it on this CPU.
3857  * The capabilities were decided based on the available CPUs at the boot time.
3858  * Any new CPU should match the system wide status of the capability. If the
3859  * new CPU doesn't have a capability which the system now has enabled, we
3860  * cannot do anything to fix it up and could cause unexpected failures. So
3861  * we park the CPU.
3862  */
verify_local_cpu_capabilities(void)3863 static void verify_local_cpu_capabilities(void)
3864 {
3865 	/*
3866 	 * The capabilities with SCOPE_BOOT_CPU are checked from
3867 	 * check_early_cpu_features(), as they need to be verified
3868 	 * on all secondary CPUs.
3869 	 */
3870 	verify_local_cpu_caps(SCOPE_ALL & ~SCOPE_BOOT_CPU);
3871 	verify_local_elf_hwcaps();
3872 
3873 	if (system_supports_sve())
3874 		verify_sve_features();
3875 
3876 	if (system_supports_sme())
3877 		verify_sme_features();
3878 
3879 	if (is_hyp_mode_available())
3880 		verify_hyp_capabilities();
3881 
3882 	if (system_supports_mpam())
3883 		verify_mpam_capabilities();
3884 }
3885 
check_local_cpu_capabilities(void)3886 void check_local_cpu_capabilities(void)
3887 {
3888 	/*
3889 	 * All secondary CPUs should conform to the early CPU features
3890 	 * in use by the kernel based on boot CPU.
3891 	 */
3892 	check_early_cpu_features();
3893 
3894 	/*
3895 	 * If we haven't finalised the system capabilities, this CPU gets
3896 	 * a chance to update the errata work arounds and local features.
3897 	 * Otherwise, this CPU should verify that it has all the system
3898 	 * advertised capabilities.
3899 	 */
3900 	if (!system_capabilities_finalized())
3901 		update_cpu_capabilities(SCOPE_LOCAL_CPU);
3902 	else
3903 		verify_local_cpu_capabilities();
3904 }
3905 
this_cpu_has_cap(unsigned int n)3906 bool this_cpu_has_cap(unsigned int n)
3907 {
3908 	if (!WARN_ON(preemptible()) && n < ARM64_NCAPS) {
3909 		const struct arm64_cpu_capabilities *cap = cpucap_ptrs[n];
3910 
3911 		if (cap)
3912 			return cap->matches(cap, SCOPE_LOCAL_CPU);
3913 	}
3914 
3915 	return false;
3916 }
3917 EXPORT_SYMBOL_GPL(this_cpu_has_cap);
3918 
3919 /*
3920  * This helper function is used in a narrow window when,
3921  * - The system wide safe registers are set with all the SMP CPUs and,
3922  * - The SYSTEM_FEATURE system_cpucaps may not have been set.
3923  */
__system_matches_cap(unsigned int n)3924 static bool __maybe_unused __system_matches_cap(unsigned int n)
3925 {
3926 	if (n < ARM64_NCAPS) {
3927 		const struct arm64_cpu_capabilities *cap = cpucap_ptrs[n];
3928 
3929 		if (cap)
3930 			return cap->matches(cap, SCOPE_SYSTEM);
3931 	}
3932 	return false;
3933 }
3934 
cpu_set_feature(unsigned int num)3935 void cpu_set_feature(unsigned int num)
3936 {
3937 	set_bit(num, elf_hwcap);
3938 }
3939 
cpu_have_feature(unsigned int num)3940 bool cpu_have_feature(unsigned int num)
3941 {
3942 	return test_bit(num, elf_hwcap);
3943 }
3944 EXPORT_SYMBOL_GPL(cpu_have_feature);
3945 
cpu_get_elf_hwcap(void)3946 unsigned long cpu_get_elf_hwcap(void)
3947 {
3948 	/*
3949 	 * We currently only populate the first 32 bits of AT_HWCAP. Please
3950 	 * note that for userspace compatibility we guarantee that bits 62
3951 	 * and 63 will always be returned as 0.
3952 	 */
3953 	return elf_hwcap[0];
3954 }
3955 
cpu_get_elf_hwcap2(void)3956 unsigned long cpu_get_elf_hwcap2(void)
3957 {
3958 	return elf_hwcap[1];
3959 }
3960 
cpu_get_elf_hwcap3(void)3961 unsigned long cpu_get_elf_hwcap3(void)
3962 {
3963 	return elf_hwcap[2];
3964 }
3965 
setup_boot_cpu_capabilities(void)3966 static void __init setup_boot_cpu_capabilities(void)
3967 {
3968 	kvm_arm_target_impl_cpu_init();
3969 	/*
3970 	 * The boot CPU's feature register values have been recorded. Detect
3971 	 * boot cpucaps and local cpucaps for the boot CPU, then enable and
3972 	 * patch alternatives for the available boot cpucaps.
3973 	 */
3974 	update_cpu_capabilities(SCOPE_BOOT_CPU | SCOPE_LOCAL_CPU);
3975 	enable_cpu_capabilities(SCOPE_BOOT_CPU);
3976 	apply_boot_alternatives();
3977 }
3978 
setup_boot_cpu_features(void)3979 void __init setup_boot_cpu_features(void)
3980 {
3981 	/*
3982 	 * Initialize the indirect array of CPU capabilities pointers before we
3983 	 * handle the boot CPU.
3984 	 */
3985 	init_cpucap_indirect_list();
3986 
3987 	/*
3988 	 * Detect broken pseudo-NMI. Must be called _before_ the call to
3989 	 * setup_boot_cpu_capabilities() since it interacts with
3990 	 * can_use_gic_priorities().
3991 	 */
3992 	detect_system_supports_pseudo_nmi();
3993 
3994 	setup_boot_cpu_capabilities();
3995 }
3996 
setup_system_capabilities(void)3997 static void __init setup_system_capabilities(void)
3998 {
3999 	/*
4000 	 * The system-wide safe feature register values have been finalized.
4001 	 * Detect, enable, and patch alternatives for the available system
4002 	 * cpucaps.
4003 	 */
4004 	update_cpu_capabilities(SCOPE_SYSTEM);
4005 	enable_cpu_capabilities(SCOPE_ALL & ~SCOPE_BOOT_CPU);
4006 	apply_alternatives_all();
4007 
4008 	for (int i = 0; i < ARM64_NCAPS; i++) {
4009 		const struct arm64_cpu_capabilities *caps = cpucap_ptrs[i];
4010 
4011 		if (!caps || !caps->desc)
4012 			continue;
4013 
4014 		/*
4015 		 * Log any cpucaps with a cpumask as these aren't logged by
4016 		 * update_cpu_capabilities().
4017 		 */
4018 		if (caps->cpus && cpumask_any(caps->cpus) < nr_cpu_ids)
4019 			pr_info("detected: %s on CPU%*pbl\n",
4020 				caps->desc, cpumask_pr_args(caps->cpus));
4021 
4022 		/* Log match-all CPUs capabilities */
4023 		if (cpucap_match_all_early_cpus(caps) &&
4024 		    cpus_have_cap(caps->capability))
4025 			pr_info("detected: %s\n", caps->desc);
4026 	}
4027 
4028 	/*
4029 	 * TTBR0 PAN doesn't have its own cpucap, so log it manually.
4030 	 */
4031 	if (system_uses_ttbr0_pan())
4032 		pr_info("emulated: Privileged Access Never (PAN) using TTBR0_EL1 switching\n");
4033 
4034 	/*
4035 	 * Report Spectre mitigations status.
4036 	 */
4037 	spectre_print_disabled_mitigations();
4038 }
4039 
setup_system_features(void)4040 void __init setup_system_features(void)
4041 {
4042 	setup_system_capabilities();
4043 
4044 	linear_map_maybe_split_to_ptes();
4045 	kpti_install_ng_mappings();
4046 
4047 	sve_setup();
4048 	sme_setup();
4049 
4050 	/*
4051 	 * Check for sane CTR_EL0.CWG value.
4052 	 */
4053 	if (!cache_type_cwg())
4054 		pr_warn("No Cache Writeback Granule information, assuming %d\n",
4055 			ARCH_DMA_MINALIGN);
4056 }
4057 
setup_user_features(void)4058 void __init setup_user_features(void)
4059 {
4060 	user_feature_fixup();
4061 
4062 	setup_elf_hwcaps(arm64_elf_hwcaps);
4063 
4064 	if (system_supports_32bit_el0()) {
4065 		setup_elf_hwcaps(compat_elf_hwcaps);
4066 		elf_hwcap_fixup();
4067 	}
4068 
4069 	minsigstksz_setup();
4070 }
4071 
enable_mismatched_32bit_el0(unsigned int cpu)4072 static int enable_mismatched_32bit_el0(unsigned int cpu)
4073 {
4074 	/*
4075 	 * The first 32-bit-capable CPU we detected and so can no longer
4076 	 * be offlined by userspace. -1 indicates we haven't yet onlined
4077 	 * a 32-bit-capable CPU.
4078 	 */
4079 	static int lucky_winner = -1;
4080 
4081 	struct cpuinfo_arm64 *info = &per_cpu(cpu_data, cpu);
4082 	bool cpu_32bit = false;
4083 
4084 	if (id_aa64pfr0_32bit_el0(info->reg_id_aa64pfr0)) {
4085 		if (!housekeeping_cpu(cpu, HK_TYPE_DOMAIN))
4086 			pr_info("Treating domain isolated CPU %u as 64-bit only\n", cpu);
4087 		else
4088 			cpu_32bit = true;
4089 	}
4090 
4091 	if (cpu_32bit) {
4092 		cpumask_set_cpu(cpu, cpu_32bit_el0_mask);
4093 		static_branch_enable_cpuslocked(&arm64_mismatched_32bit_el0);
4094 	}
4095 
4096 	if (cpumask_test_cpu(0, cpu_32bit_el0_mask) == cpu_32bit)
4097 		return 0;
4098 
4099 	if (lucky_winner >= 0)
4100 		return 0;
4101 
4102 	/*
4103 	 * We've detected a mismatch. We need to keep one of our CPUs with
4104 	 * 32-bit EL0 online so that is_cpu_allowed() doesn't end up rejecting
4105 	 * every CPU in the system for a 32-bit task.
4106 	 */
4107 	lucky_winner = cpu_32bit ? cpu : cpumask_any_and(cpu_32bit_el0_mask,
4108 							 cpu_active_mask);
4109 	dev_set_offline_disabled(get_cpu_device(lucky_winner));
4110 	setup_elf_hwcaps(compat_elf_hwcaps);
4111 	elf_hwcap_fixup();
4112 	pr_info("Asymmetric 32-bit EL0 support detected on CPU %u; CPU hot-unplug disabled on CPU %u\n",
4113 		cpu, lucky_winner);
4114 	return 0;
4115 }
4116 
init_32bit_el0_mask(void)4117 static int __init init_32bit_el0_mask(void)
4118 {
4119 	if (!allow_mismatched_32bit_el0)
4120 		return 0;
4121 
4122 	if (!zalloc_cpumask_var(&cpu_32bit_el0_mask, GFP_KERNEL))
4123 		return -ENOMEM;
4124 
4125 	return cpuhp_setup_state(CPUHP_AP_ONLINE_DYN,
4126 				 "arm64/mismatched_32bit_el0:online",
4127 				 enable_mismatched_32bit_el0, NULL);
4128 }
4129 subsys_initcall_sync(init_32bit_el0_mask);
4130 
cpu_enable_cnp(struct arm64_cpu_capabilities const * cap)4131 static void __maybe_unused cpu_enable_cnp(struct arm64_cpu_capabilities const *cap)
4132 {
4133 	cpu_enable_swapper_cnp();
4134 }
4135 
4136 /*
4137  * We emulate only the following system register space.
4138  * Op0 = 0x3, CRn = 0x0, Op1 = 0x0, CRm = [0, 2 - 7]
4139  * See Table C5-6 System instruction encodings for System register accesses,
4140  * ARMv8 ARM(ARM DDI 0487A.f) for more details.
4141  */
is_emulated(u32 id)4142 static inline bool __attribute_const__ is_emulated(u32 id)
4143 {
4144 	return (sys_reg_Op0(id) == 0x3 &&
4145 		sys_reg_CRn(id) == 0x0 &&
4146 		sys_reg_Op1(id) == 0x0 &&
4147 		(sys_reg_CRm(id) == 0 ||
4148 		 ((sys_reg_CRm(id) >= 2) && (sys_reg_CRm(id) <= 7))));
4149 }
4150 
4151 /*
4152  * With CRm == 0, reg should be one of :
4153  * MIDR_EL1, MPIDR_EL1 or REVIDR_EL1.
4154  */
emulate_id_reg(u32 id,u64 * valp)4155 static inline int emulate_id_reg(u32 id, u64 *valp)
4156 {
4157 	switch (id) {
4158 	case SYS_MIDR_EL1:
4159 		*valp = read_cpuid_id();
4160 		break;
4161 	case SYS_MPIDR_EL1:
4162 		*valp = SYS_MPIDR_SAFE_VAL;
4163 		break;
4164 	case SYS_REVIDR_EL1:
4165 		/* IMPLEMENTATION DEFINED values are emulated with 0 */
4166 		*valp = 0;
4167 		break;
4168 	default:
4169 		return -EINVAL;
4170 	}
4171 
4172 	return 0;
4173 }
4174 
emulate_sys_reg(u32 id,u64 * valp)4175 static int emulate_sys_reg(u32 id, u64 *valp)
4176 {
4177 	struct arm64_ftr_reg *regp;
4178 
4179 	if (!is_emulated(id))
4180 		return -EINVAL;
4181 
4182 	if (sys_reg_CRm(id) == 0)
4183 		return emulate_id_reg(id, valp);
4184 
4185 	regp = get_arm64_ftr_reg_nowarn(id);
4186 	if (regp)
4187 		*valp = arm64_ftr_reg_user_value(regp);
4188 	else
4189 		/*
4190 		 * The untracked registers are either IMPLEMENTATION DEFINED
4191 		 * (e.g, ID_AFR0_EL1) or reserved RAZ.
4192 		 */
4193 		*valp = 0;
4194 	return 0;
4195 }
4196 
do_emulate_mrs(struct pt_regs * regs,u32 sys_reg,u32 rt)4197 int do_emulate_mrs(struct pt_regs *regs, u32 sys_reg, u32 rt)
4198 {
4199 	int rc;
4200 	u64 val;
4201 
4202 	rc = emulate_sys_reg(sys_reg, &val);
4203 	if (!rc) {
4204 		pt_regs_write_reg(regs, rt, val);
4205 		arm64_skip_faulting_instruction(regs, AARCH64_INSN_SIZE);
4206 	}
4207 	return rc;
4208 }
4209 
try_emulate_mrs(struct pt_regs * regs,u32 insn)4210 bool try_emulate_mrs(struct pt_regs *regs, u32 insn)
4211 {
4212 	u32 sys_reg, rt;
4213 
4214 	if (compat_user_mode(regs) || !aarch64_insn_is_mrs(insn))
4215 		return false;
4216 
4217 	/*
4218 	 * sys_reg values are defined as used in mrs/msr instruction.
4219 	 * shift the imm value to get the encoding.
4220 	 */
4221 	sys_reg = (u32)aarch64_insn_decode_immediate(AARCH64_INSN_IMM_16, insn) << 5;
4222 	rt = aarch64_insn_decode_register(AARCH64_INSN_REGTYPE_RT, insn);
4223 	return do_emulate_mrs(regs, sys_reg, rt) == 0;
4224 }
4225 
arm64_get_meltdown_state(void)4226 enum mitigation_state arm64_get_meltdown_state(void)
4227 {
4228 	if (__meltdown_safe)
4229 		return SPECTRE_UNAFFECTED;
4230 
4231 	if (arm64_kernel_unmapped_at_el0())
4232 		return SPECTRE_MITIGATED;
4233 
4234 	return SPECTRE_VULNERABLE;
4235 }
4236 
cpu_show_meltdown(struct device * dev,struct device_attribute * attr,char * buf)4237 ssize_t cpu_show_meltdown(struct device *dev, struct device_attribute *attr,
4238 			  char *buf)
4239 {
4240 	switch (arm64_get_meltdown_state()) {
4241 	case SPECTRE_UNAFFECTED:
4242 		return sprintf(buf, "Not affected\n");
4243 
4244 	case SPECTRE_MITIGATED:
4245 		return sprintf(buf, "Mitigation: PTI\n");
4246 
4247 	default:
4248 		return sprintf(buf, "Vulnerable\n");
4249 	}
4250 }
4251