cpufeature.c 41.3 KB
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/*
 * Contains CPU feature definitions
 *
 * Copyright (C) 2015 ARM Ltd.
 *
 * This program is free software; you can redistribute it and/or modify
 * it under the terms of the GNU General Public License version 2 as
 * published by the Free Software Foundation.
 *
 * This program is distributed in the hope that it will be useful,
 * but WITHOUT ANY WARRANTY; without even the implied warranty of
 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
 * GNU General Public License for more details.
 *
 * You should have received a copy of the GNU General Public License
 * along with this program.  If not, see <http://www.gnu.org/licenses/>.
 */

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#define pr_fmt(fmt) "CPU features: " fmt
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#include <linux/bsearch.h>
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#include <linux/cpumask.h>
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#include <linux/sort.h>
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#include <linux/stop_machine.h>
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#include <linux/types.h>
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#include <linux/mm.h>
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#include <asm/cpu.h>
#include <asm/cpufeature.h>
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#include <asm/cpu_ops.h>
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#include <asm/mmu_context.h>
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#include <asm/processor.h>
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#include <asm/sysreg.h>
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#include <asm/traps.h>
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#include <asm/virt.h>
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unsigned long elf_hwcap __read_mostly;
EXPORT_SYMBOL_GPL(elf_hwcap);

#ifdef CONFIG_COMPAT
#define COMPAT_ELF_HWCAP_DEFAULT	\
				(COMPAT_HWCAP_HALF|COMPAT_HWCAP_THUMB|\
				 COMPAT_HWCAP_FAST_MULT|COMPAT_HWCAP_EDSP|\
				 COMPAT_HWCAP_TLS|COMPAT_HWCAP_VFP|\
				 COMPAT_HWCAP_VFPv3|COMPAT_HWCAP_VFPv4|\
				 COMPAT_HWCAP_NEON|COMPAT_HWCAP_IDIV|\
				 COMPAT_HWCAP_LPAE)
unsigned int compat_elf_hwcap __read_mostly = COMPAT_ELF_HWCAP_DEFAULT;
unsigned int compat_elf_hwcap2 __read_mostly;
#endif

DECLARE_BITMAP(cpu_hwcaps, ARM64_NCAPS);
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EXPORT_SYMBOL(cpu_hwcaps);
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static int dump_cpu_hwcaps(struct notifier_block *self, unsigned long v, void *p)
{
	/* file-wide pr_fmt adds "CPU features: " prefix */
	pr_emerg("0x%*pb\n", ARM64_NCAPS, &cpu_hwcaps);
	return 0;
}

static struct notifier_block cpu_hwcaps_notifier = {
	.notifier_call = dump_cpu_hwcaps
};

static int __init register_cpu_hwcaps_dumper(void)
{
	atomic_notifier_chain_register(&panic_notifier_list,
				       &cpu_hwcaps_notifier);
	return 0;
}
__initcall(register_cpu_hwcaps_dumper);

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DEFINE_STATIC_KEY_ARRAY_FALSE(cpu_hwcap_keys, ARM64_NCAPS);
EXPORT_SYMBOL(cpu_hwcap_keys);

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#define __ARM64_FTR_BITS(SIGNED, VISIBLE, STRICT, TYPE, SHIFT, WIDTH, SAFE_VAL) \
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	{						\
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		.sign = SIGNED,				\
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		.visible = VISIBLE,			\
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		.strict = STRICT,			\
		.type = TYPE,				\
		.shift = SHIFT,				\
		.width = WIDTH,				\
		.safe_val = SAFE_VAL,			\
	}

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/* Define a feature with unsigned values */
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#define ARM64_FTR_BITS(VISIBLE, STRICT, TYPE, SHIFT, WIDTH, SAFE_VAL) \
	__ARM64_FTR_BITS(FTR_UNSIGNED, VISIBLE, STRICT, TYPE, SHIFT, WIDTH, SAFE_VAL)
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/* Define a feature with a signed value */
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#define S_ARM64_FTR_BITS(VISIBLE, STRICT, TYPE, SHIFT, WIDTH, SAFE_VAL) \
	__ARM64_FTR_BITS(FTR_SIGNED, VISIBLE, STRICT, TYPE, SHIFT, WIDTH, SAFE_VAL)
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#define ARM64_FTR_END					\
	{						\
		.width = 0,				\
	}

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/* meta feature for alternatives */
static bool __maybe_unused
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cpufeature_pan_not_uao(const struct arm64_cpu_capabilities *entry, int __unused);

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/*
 * NOTE: Any changes to the visibility of features should be kept in
 * sync with the documentation of the CPU feature register ABI.
 */
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static const struct arm64_ftr_bits ftr_id_aa64isar0[] = {
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	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_EXACT, ID_AA64ISAR0_RDM_SHIFT, 4, 0),
	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ISAR0_ATOMICS_SHIFT, 4, 0),
	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ISAR0_CRC32_SHIFT, 4, 0),
	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ISAR0_SHA2_SHIFT, 4, 0),
	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ISAR0_SHA1_SHIFT, 4, 0),
	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ISAR0_AES_SHIFT, 4, 0),
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	ARM64_FTR_END,
};

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static const struct arm64_ftr_bits ftr_id_aa64isar1[] = {
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	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_EXACT, ID_AA64ISAR1_LRCPC_SHIFT, 4, 0),
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	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_EXACT, ID_AA64ISAR1_FCMA_SHIFT, 4, 0),
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	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_EXACT, ID_AA64ISAR1_JSCVT_SHIFT, 4, 0),
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	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_EXACT, ID_AA64ISAR1_DPB_SHIFT, 4, 0),
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	ARM64_FTR_END,
};

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static const struct arm64_ftr_bits ftr_id_aa64pfr0[] = {
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	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_EXACT, ID_AA64PFR0_GIC_SHIFT, 4, 0),
	S_ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64PFR0_ASIMD_SHIFT, 4, ID_AA64PFR0_ASIMD_NI),
	S_ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64PFR0_FP_SHIFT, 4, ID_AA64PFR0_FP_NI),
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	/* Linux doesn't care about the EL3 */
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	ARM64_FTR_BITS(FTR_HIDDEN, FTR_NONSTRICT, FTR_EXACT, ID_AA64PFR0_EL3_SHIFT, 4, 0),
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_EXACT, ID_AA64PFR0_EL2_SHIFT, 4, 0),
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_EXACT, ID_AA64PFR0_EL1_SHIFT, 4, ID_AA64PFR0_EL1_64BIT_ONLY),
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_EXACT, ID_AA64PFR0_EL0_SHIFT, 4, ID_AA64PFR0_EL0_64BIT_ONLY),
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	ARM64_FTR_END,
};

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static const struct arm64_ftr_bits ftr_id_aa64mmfr0[] = {
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	S_ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_EXACT, ID_AA64MMFR0_TGRAN4_SHIFT, 4, ID_AA64MMFR0_TGRAN4_NI),
	S_ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_EXACT, ID_AA64MMFR0_TGRAN64_SHIFT, 4, ID_AA64MMFR0_TGRAN64_NI),
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_EXACT, ID_AA64MMFR0_TGRAN16_SHIFT, 4, ID_AA64MMFR0_TGRAN16_NI),
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_EXACT, ID_AA64MMFR0_BIGENDEL0_SHIFT, 4, 0),
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	/* Linux shouldn't care about secure memory */
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	ARM64_FTR_BITS(FTR_HIDDEN, FTR_NONSTRICT, FTR_EXACT, ID_AA64MMFR0_SNSMEM_SHIFT, 4, 0),
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_EXACT, ID_AA64MMFR0_BIGENDEL_SHIFT, 4, 0),
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_EXACT, ID_AA64MMFR0_ASID_SHIFT, 4, 0),
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	/*
	 * Differing PARange is fine as long as all peripherals and memory are mapped
	 * within the minimum PARange of all CPUs
	 */
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	ARM64_FTR_BITS(FTR_HIDDEN, FTR_NONSTRICT, FTR_LOWER_SAFE, ID_AA64MMFR0_PARANGE_SHIFT, 4, 0),
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	ARM64_FTR_END,
};

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static const struct arm64_ftr_bits ftr_id_aa64mmfr1[] = {
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	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64MMFR1_PAN_SHIFT, 4, 0),
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_EXACT, ID_AA64MMFR1_LOR_SHIFT, 4, 0),
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_EXACT, ID_AA64MMFR1_HPD_SHIFT, 4, 0),
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_EXACT, ID_AA64MMFR1_VHE_SHIFT, 4, 0),
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_EXACT, ID_AA64MMFR1_VMIDBITS_SHIFT, 4, 0),
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_EXACT, ID_AA64MMFR1_HADBS_SHIFT, 4, 0),
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	ARM64_FTR_END,
};

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static const struct arm64_ftr_bits ftr_id_aa64mmfr2[] = {
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	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_EXACT, ID_AA64MMFR2_LVA_SHIFT, 4, 0),
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_EXACT, ID_AA64MMFR2_IESB_SHIFT, 4, 0),
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_EXACT, ID_AA64MMFR2_LSM_SHIFT, 4, 0),
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_EXACT, ID_AA64MMFR2_UAO_SHIFT, 4, 0),
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_EXACT, ID_AA64MMFR2_CNP_SHIFT, 4, 0),
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	ARM64_FTR_END,
};

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static const struct arm64_ftr_bits ftr_ctr[] = {
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	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_EXACT, 31, 1, 1),	/* RAO */
	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_HIGHER_SAFE, 24, 4, 0),	/* CWG */
	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, 20, 4, 0),	/* ERG */
	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, 16, 4, 1),	/* DminLine */
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	/*
	 * Linux can handle differing I-cache policies. Userspace JITs will
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	 * make use of *minLine.
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	 * If we have differing I-cache policies, report it as the weakest - VIPT.
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	 */
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	ARM64_FTR_BITS(FTR_VISIBLE, FTR_NONSTRICT, FTR_EXACT, 14, 2, ICACHE_POLICY_VIPT),	/* L1Ip */
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	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, 0, 4, 0),	/* IminLine */
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	ARM64_FTR_END,
};

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struct arm64_ftr_reg arm64_ftr_reg_ctrel0 = {
	.name		= "SYS_CTR_EL0",
	.ftr_bits	= ftr_ctr
};

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static const struct arm64_ftr_bits ftr_id_mmfr0[] = {
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	S_ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_EXACT, 28, 4, 0xf),	/* InnerShr */
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_EXACT, 24, 4, 0),	/* FCSE */
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_NONSTRICT, FTR_LOWER_SAFE, 20, 4, 0),	/* AuxReg */
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_EXACT, 16, 4, 0),	/* TCM */
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_EXACT, 12, 4, 0),	/* ShareLvl */
	S_ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_EXACT, 8, 4, 0xf),	/* OuterShr */
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_EXACT, 4, 4, 0),	/* PMSA */
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_EXACT, 0, 4, 0),	/* VMSA */
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	ARM64_FTR_END,
};

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static const struct arm64_ftr_bits ftr_id_aa64dfr0[] = {
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	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_EXACT, 36, 28, 0),
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_NONSTRICT, FTR_LOWER_SAFE, ID_AA64DFR0_PMSVER_SHIFT, 4, 0),
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64DFR0_CTX_CMPS_SHIFT, 4, 0),
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64DFR0_WRPS_SHIFT, 4, 0),
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, ID_AA64DFR0_BRPS_SHIFT, 4, 0),
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	/*
	 * We can instantiate multiple PMU instances with different levels
	 * of support.
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	 */
	S_ARM64_FTR_BITS(FTR_HIDDEN, FTR_NONSTRICT, FTR_EXACT, ID_AA64DFR0_PMUVER_SHIFT, 4, 0),
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_EXACT, ID_AA64DFR0_TRACEVER_SHIFT, 4, 0),
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_EXACT, ID_AA64DFR0_DEBUGVER_SHIFT, 4, 0x6),
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	ARM64_FTR_END,
};

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static const struct arm64_ftr_bits ftr_mvfr2[] = {
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	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_EXACT, 4, 4, 0),		/* FPMisc */
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_EXACT, 0, 4, 0),		/* SIMDMisc */
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	ARM64_FTR_END,
};

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static const struct arm64_ftr_bits ftr_dczid[] = {
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	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_EXACT, 4, 1, 1),		/* DZP */
	ARM64_FTR_BITS(FTR_VISIBLE, FTR_STRICT, FTR_LOWER_SAFE, 0, 4, 0),	/* BS */
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	ARM64_FTR_END,
};


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static const struct arm64_ftr_bits ftr_id_isar5[] = {
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	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_EXACT, ID_ISAR5_RDM_SHIFT, 4, 0),
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_EXACT, ID_ISAR5_CRC32_SHIFT, 4, 0),
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_EXACT, ID_ISAR5_SHA2_SHIFT, 4, 0),
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_EXACT, ID_ISAR5_SHA1_SHIFT, 4, 0),
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_EXACT, ID_ISAR5_AES_SHIFT, 4, 0),
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_EXACT, ID_ISAR5_SEVL_SHIFT, 4, 0),
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	ARM64_FTR_END,
};

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static const struct arm64_ftr_bits ftr_id_mmfr4[] = {
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	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_EXACT, 4, 4, 0),		/* ac2 */
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	ARM64_FTR_END,
};

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static const struct arm64_ftr_bits ftr_id_pfr0[] = {
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	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_EXACT, 12, 4, 0),	/* State3 */
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_EXACT, 8, 4, 0),		/* State2 */
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_EXACT, 4, 4, 0),		/* State1 */
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_EXACT, 0, 4, 0),		/* State0 */
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	ARM64_FTR_END,
};

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static const struct arm64_ftr_bits ftr_id_dfr0[] = {
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	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, 28, 4, 0),
	S_ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, 24, 4, 0xf),	/* PerfMon */
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, 20, 4, 0),
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, 16, 4, 0),
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, 12, 4, 0),
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, 8, 4, 0),
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, 4, 4, 0),
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, 0, 4, 0),
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	ARM64_FTR_END,
};

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/*
 * Common ftr bits for a 32bit register with all hidden, strict
 * attributes, with 4bit feature fields and a default safe value of
 * 0. Covers the following 32bit registers:
 * id_isar[0-4], id_mmfr[1-3], id_pfr1, mvfr[0-1]
 */
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static const struct arm64_ftr_bits ftr_generic_32bits[] = {
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	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, 28, 4, 0),
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, 24, 4, 0),
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, 20, 4, 0),
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, 16, 4, 0),
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, 12, 4, 0),
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, 8, 4, 0),
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, 4, 4, 0),
	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_LOWER_SAFE, 0, 4, 0),
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	ARM64_FTR_END,
};

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/* Table for a single 32bit feature value */
static const struct arm64_ftr_bits ftr_single32[] = {
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	ARM64_FTR_BITS(FTR_HIDDEN, FTR_STRICT, FTR_EXACT, 0, 32, 0),
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	ARM64_FTR_END,
};

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static const struct arm64_ftr_bits ftr_raz[] = {
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	ARM64_FTR_END,
};

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#define ARM64_FTR_REG(id, table) {		\
	.sys_id = id,				\
	.reg = 	&(struct arm64_ftr_reg){	\
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		.name = #id,			\
		.ftr_bits = &((table)[0]),	\
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	}}
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static const struct __ftr_reg_entry {
	u32			sys_id;
	struct arm64_ftr_reg 	*reg;
} arm64_ftr_regs[] = {
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	/* Op1 = 0, CRn = 0, CRm = 1 */
	ARM64_FTR_REG(SYS_ID_PFR0_EL1, ftr_id_pfr0),
	ARM64_FTR_REG(SYS_ID_PFR1_EL1, ftr_generic_32bits),
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	ARM64_FTR_REG(SYS_ID_DFR0_EL1, ftr_id_dfr0),
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	ARM64_FTR_REG(SYS_ID_MMFR0_EL1, ftr_id_mmfr0),
	ARM64_FTR_REG(SYS_ID_MMFR1_EL1, ftr_generic_32bits),
	ARM64_FTR_REG(SYS_ID_MMFR2_EL1, ftr_generic_32bits),
	ARM64_FTR_REG(SYS_ID_MMFR3_EL1, ftr_generic_32bits),

	/* Op1 = 0, CRn = 0, CRm = 2 */
	ARM64_FTR_REG(SYS_ID_ISAR0_EL1, ftr_generic_32bits),
	ARM64_FTR_REG(SYS_ID_ISAR1_EL1, ftr_generic_32bits),
	ARM64_FTR_REG(SYS_ID_ISAR2_EL1, ftr_generic_32bits),
	ARM64_FTR_REG(SYS_ID_ISAR3_EL1, ftr_generic_32bits),
	ARM64_FTR_REG(SYS_ID_ISAR4_EL1, ftr_generic_32bits),
	ARM64_FTR_REG(SYS_ID_ISAR5_EL1, ftr_id_isar5),
	ARM64_FTR_REG(SYS_ID_MMFR4_EL1, ftr_id_mmfr4),

	/* Op1 = 0, CRn = 0, CRm = 3 */
	ARM64_FTR_REG(SYS_MVFR0_EL1, ftr_generic_32bits),
	ARM64_FTR_REG(SYS_MVFR1_EL1, ftr_generic_32bits),
	ARM64_FTR_REG(SYS_MVFR2_EL1, ftr_mvfr2),

	/* Op1 = 0, CRn = 0, CRm = 4 */
	ARM64_FTR_REG(SYS_ID_AA64PFR0_EL1, ftr_id_aa64pfr0),
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	ARM64_FTR_REG(SYS_ID_AA64PFR1_EL1, ftr_raz),
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	/* Op1 = 0, CRn = 0, CRm = 5 */
	ARM64_FTR_REG(SYS_ID_AA64DFR0_EL1, ftr_id_aa64dfr0),
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	ARM64_FTR_REG(SYS_ID_AA64DFR1_EL1, ftr_raz),
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	/* Op1 = 0, CRn = 0, CRm = 6 */
	ARM64_FTR_REG(SYS_ID_AA64ISAR0_EL1, ftr_id_aa64isar0),
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	ARM64_FTR_REG(SYS_ID_AA64ISAR1_EL1, ftr_id_aa64isar1),
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	/* Op1 = 0, CRn = 0, CRm = 7 */
	ARM64_FTR_REG(SYS_ID_AA64MMFR0_EL1, ftr_id_aa64mmfr0),
	ARM64_FTR_REG(SYS_ID_AA64MMFR1_EL1, ftr_id_aa64mmfr1),
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	ARM64_FTR_REG(SYS_ID_AA64MMFR2_EL1, ftr_id_aa64mmfr2),
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	/* Op1 = 3, CRn = 0, CRm = 0 */
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	{ SYS_CTR_EL0, &arm64_ftr_reg_ctrel0 },
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	ARM64_FTR_REG(SYS_DCZID_EL0, ftr_dczid),

	/* Op1 = 3, CRn = 14, CRm = 0 */
356
	ARM64_FTR_REG(SYS_CNTFRQ_EL0, ftr_single32),
357 358 359 360
};

static int search_cmp_ftr_reg(const void *id, const void *regp)
{
361
	return (int)(unsigned long)id - (int)((const struct __ftr_reg_entry *)regp)->sys_id;
362 363 364 365 366 367 368 369 370 371 372 373 374 375
}

/*
 * get_arm64_ftr_reg - Lookup a feature register entry using its
 * sys_reg() encoding. With the array arm64_ftr_regs sorted in the
 * ascending order of sys_id , we use binary search to find a matching
 * entry.
 *
 * returns - Upon success,  matching ftr_reg entry for id.
 *         - NULL on failure. It is upto the caller to decide
 *	     the impact of a failure.
 */
static struct arm64_ftr_reg *get_arm64_ftr_reg(u32 sys_id)
{
376 377 378
	const struct __ftr_reg_entry *ret;

	ret = bsearch((const void *)(unsigned long)sys_id,
379 380 381 382
			arm64_ftr_regs,
			ARRAY_SIZE(arm64_ftr_regs),
			sizeof(arm64_ftr_regs[0]),
			search_cmp_ftr_reg);
383 384 385
	if (ret)
		return ret->reg;
	return NULL;
386 387
}

388 389
static u64 arm64_ftr_set_value(const struct arm64_ftr_bits *ftrp, s64 reg,
			       s64 ftr_val)
390 391 392 393 394 395 396 397
{
	u64 mask = arm64_ftr_mask(ftrp);

	reg &= ~mask;
	reg |= (ftr_val << ftrp->shift) & mask;
	return reg;
}

398 399
static s64 arm64_ftr_safe_value(const struct arm64_ftr_bits *ftrp, s64 new,
				s64 cur)
400 401 402 403 404 405 406 407 408 409 410 411 412 413 414 415 416 417 418 419 420 421
{
	s64 ret = 0;

	switch (ftrp->type) {
	case FTR_EXACT:
		ret = ftrp->safe_val;
		break;
	case FTR_LOWER_SAFE:
		ret = new < cur ? new : cur;
		break;
	case FTR_HIGHER_SAFE:
		ret = new > cur ? new : cur;
		break;
	default:
		BUG();
	}

	return ret;
}

static void __init sort_ftr_regs(void)
{
422 423 424 425 426
	int i;

	/* Check that the array is sorted so that we can do the binary search */
	for (i = 1; i < ARRAY_SIZE(arm64_ftr_regs); i++)
		BUG_ON(arm64_ftr_regs[i].sys_id < arm64_ftr_regs[i - 1].sys_id);
427 428 429 430 431
}

/*
 * Initialise the CPU feature register from Boot CPU values.
 * Also initiliases the strict_mask for the register.
432 433
 * Any bits that are not covered by an arm64_ftr_bits entry are considered
 * RES0 for the system-wide value, and must strictly match.
434 435 436 437 438
 */
static void __init init_cpu_ftr_reg(u32 sys_reg, u64 new)
{
	u64 val = 0;
	u64 strict_mask = ~0x0ULL;
439
	u64 user_mask = 0;
440 441
	u64 valid_mask = 0;

442
	const struct arm64_ftr_bits *ftrp;
443 444 445 446 447
	struct arm64_ftr_reg *reg = get_arm64_ftr_reg(sys_reg);

	BUG_ON(!reg);

	for (ftrp  = reg->ftr_bits; ftrp->width; ftrp++) {
448
		u64 ftr_mask = arm64_ftr_mask(ftrp);
449 450 451
		s64 ftr_new = arm64_ftr_value(ftrp, new);

		val = arm64_ftr_set_value(ftrp, val, ftr_new);
452 453

		valid_mask |= ftr_mask;
454
		if (!ftrp->strict)
455
			strict_mask &= ~ftr_mask;
456 457 458 459 460 461
		if (ftrp->visible)
			user_mask |= ftr_mask;
		else
			reg->user_val = arm64_ftr_set_value(ftrp,
							    reg->user_val,
							    ftrp->safe_val);
462
	}
463 464 465

	val &= valid_mask;

466 467
	reg->sys_val = val;
	reg->strict_mask = strict_mask;
468
	reg->user_mask = user_mask;
469 470 471 472 473 474 475 476 477 478 479 480 481 482 483 484
}

void __init init_cpu_features(struct cpuinfo_arm64 *info)
{
	/* Before we start using the tables, make sure it is sorted */
	sort_ftr_regs();

	init_cpu_ftr_reg(SYS_CTR_EL0, info->reg_ctr);
	init_cpu_ftr_reg(SYS_DCZID_EL0, info->reg_dczid);
	init_cpu_ftr_reg(SYS_CNTFRQ_EL0, info->reg_cntfrq);
	init_cpu_ftr_reg(SYS_ID_AA64DFR0_EL1, info->reg_id_aa64dfr0);
	init_cpu_ftr_reg(SYS_ID_AA64DFR1_EL1, info->reg_id_aa64dfr1);
	init_cpu_ftr_reg(SYS_ID_AA64ISAR0_EL1, info->reg_id_aa64isar0);
	init_cpu_ftr_reg(SYS_ID_AA64ISAR1_EL1, info->reg_id_aa64isar1);
	init_cpu_ftr_reg(SYS_ID_AA64MMFR0_EL1, info->reg_id_aa64mmfr0);
	init_cpu_ftr_reg(SYS_ID_AA64MMFR1_EL1, info->reg_id_aa64mmfr1);
485
	init_cpu_ftr_reg(SYS_ID_AA64MMFR2_EL1, info->reg_id_aa64mmfr2);
486 487
	init_cpu_ftr_reg(SYS_ID_AA64PFR0_EL1, info->reg_id_aa64pfr0);
	init_cpu_ftr_reg(SYS_ID_AA64PFR1_EL1, info->reg_id_aa64pfr1);
488 489 490 491 492 493 494 495 496 497 498 499 500 501 502 503 504 505 506 507

	if (id_aa64pfr0_32bit_el0(info->reg_id_aa64pfr0)) {
		init_cpu_ftr_reg(SYS_ID_DFR0_EL1, info->reg_id_dfr0);
		init_cpu_ftr_reg(SYS_ID_ISAR0_EL1, info->reg_id_isar0);
		init_cpu_ftr_reg(SYS_ID_ISAR1_EL1, info->reg_id_isar1);
		init_cpu_ftr_reg(SYS_ID_ISAR2_EL1, info->reg_id_isar2);
		init_cpu_ftr_reg(SYS_ID_ISAR3_EL1, info->reg_id_isar3);
		init_cpu_ftr_reg(SYS_ID_ISAR4_EL1, info->reg_id_isar4);
		init_cpu_ftr_reg(SYS_ID_ISAR5_EL1, info->reg_id_isar5);
		init_cpu_ftr_reg(SYS_ID_MMFR0_EL1, info->reg_id_mmfr0);
		init_cpu_ftr_reg(SYS_ID_MMFR1_EL1, info->reg_id_mmfr1);
		init_cpu_ftr_reg(SYS_ID_MMFR2_EL1, info->reg_id_mmfr2);
		init_cpu_ftr_reg(SYS_ID_MMFR3_EL1, info->reg_id_mmfr3);
		init_cpu_ftr_reg(SYS_ID_PFR0_EL1, info->reg_id_pfr0);
		init_cpu_ftr_reg(SYS_ID_PFR1_EL1, info->reg_id_pfr1);
		init_cpu_ftr_reg(SYS_MVFR0_EL1, info->reg_mvfr0);
		init_cpu_ftr_reg(SYS_MVFR1_EL1, info->reg_mvfr1);
		init_cpu_ftr_reg(SYS_MVFR2_EL1, info->reg_mvfr2);
	}

508 509
}

510
static void update_cpu_ftr_reg(struct arm64_ftr_reg *reg, u64 new)
511
{
512
	const struct arm64_ftr_bits *ftrp;
513 514 515 516 517 518 519 520 521 522 523 524 525 526

	for (ftrp = reg->ftr_bits; ftrp->width; ftrp++) {
		s64 ftr_cur = arm64_ftr_value(ftrp, reg->sys_val);
		s64 ftr_new = arm64_ftr_value(ftrp, new);

		if (ftr_cur == ftr_new)
			continue;
		/* Find a safe value */
		ftr_new = arm64_ftr_safe_value(ftrp, ftr_new, ftr_cur);
		reg->sys_val = arm64_ftr_set_value(ftrp, reg->sys_val, ftr_new);
	}

}

527
static int check_update_ftr_reg(u32 sys_id, int cpu, u64 val, u64 boot)
528
{
529 530 531 532 533 534 535 536 537 538 539 540 541 542 543 544 545 546 547 548 549 550 551 552 553 554 555 556 557 558 559 560 561 562 563 564 565 566 567 568 569 570 571 572 573 574 575 576 577 578 579 580 581 582 583 584 585 586 587 588 589 590 591 592 593 594 595 596 597 598
	struct arm64_ftr_reg *regp = get_arm64_ftr_reg(sys_id);

	BUG_ON(!regp);
	update_cpu_ftr_reg(regp, val);
	if ((boot & regp->strict_mask) == (val & regp->strict_mask))
		return 0;
	pr_warn("SANITY CHECK: Unexpected variation in %s. Boot CPU: %#016llx, CPU%d: %#016llx\n",
			regp->name, boot, cpu, val);
	return 1;
}

/*
 * Update system wide CPU feature registers with the values from a
 * non-boot CPU. Also performs SANITY checks to make sure that there
 * aren't any insane variations from that of the boot CPU.
 */
void update_cpu_features(int cpu,
			 struct cpuinfo_arm64 *info,
			 struct cpuinfo_arm64 *boot)
{
	int taint = 0;

	/*
	 * The kernel can handle differing I-cache policies, but otherwise
	 * caches should look identical. Userspace JITs will make use of
	 * *minLine.
	 */
	taint |= check_update_ftr_reg(SYS_CTR_EL0, cpu,
				      info->reg_ctr, boot->reg_ctr);

	/*
	 * Userspace may perform DC ZVA instructions. Mismatched block sizes
	 * could result in too much or too little memory being zeroed if a
	 * process is preempted and migrated between CPUs.
	 */
	taint |= check_update_ftr_reg(SYS_DCZID_EL0, cpu,
				      info->reg_dczid, boot->reg_dczid);

	/* If different, timekeeping will be broken (especially with KVM) */
	taint |= check_update_ftr_reg(SYS_CNTFRQ_EL0, cpu,
				      info->reg_cntfrq, boot->reg_cntfrq);

	/*
	 * The kernel uses self-hosted debug features and expects CPUs to
	 * support identical debug features. We presently need CTX_CMPs, WRPs,
	 * and BRPs to be identical.
	 * ID_AA64DFR1 is currently RES0.
	 */
	taint |= check_update_ftr_reg(SYS_ID_AA64DFR0_EL1, cpu,
				      info->reg_id_aa64dfr0, boot->reg_id_aa64dfr0);
	taint |= check_update_ftr_reg(SYS_ID_AA64DFR1_EL1, cpu,
				      info->reg_id_aa64dfr1, boot->reg_id_aa64dfr1);
	/*
	 * Even in big.LITTLE, processors should be identical instruction-set
	 * wise.
	 */
	taint |= check_update_ftr_reg(SYS_ID_AA64ISAR0_EL1, cpu,
				      info->reg_id_aa64isar0, boot->reg_id_aa64isar0);
	taint |= check_update_ftr_reg(SYS_ID_AA64ISAR1_EL1, cpu,
				      info->reg_id_aa64isar1, boot->reg_id_aa64isar1);

	/*
	 * Differing PARange support is fine as long as all peripherals and
	 * memory are mapped within the minimum PARange of all CPUs.
	 * Linux should not care about secure memory.
	 */
	taint |= check_update_ftr_reg(SYS_ID_AA64MMFR0_EL1, cpu,
				      info->reg_id_aa64mmfr0, boot->reg_id_aa64mmfr0);
	taint |= check_update_ftr_reg(SYS_ID_AA64MMFR1_EL1, cpu,
				      info->reg_id_aa64mmfr1, boot->reg_id_aa64mmfr1);
599 600
	taint |= check_update_ftr_reg(SYS_ID_AA64MMFR2_EL1, cpu,
				      info->reg_id_aa64mmfr2, boot->reg_id_aa64mmfr2);
601 602 603 604 605 606 607 608 609 610 611

	/*
	 * EL3 is not our concern.
	 * ID_AA64PFR1 is currently RES0.
	 */
	taint |= check_update_ftr_reg(SYS_ID_AA64PFR0_EL1, cpu,
				      info->reg_id_aa64pfr0, boot->reg_id_aa64pfr0);
	taint |= check_update_ftr_reg(SYS_ID_AA64PFR1_EL1, cpu,
				      info->reg_id_aa64pfr1, boot->reg_id_aa64pfr1);

	/*
612 613
	 * If we have AArch32, we care about 32-bit features for compat.
	 * If the system doesn't support AArch32, don't update them.
614
	 */
615
	if (id_aa64pfr0_32bit_el0(read_sanitised_ftr_reg(SYS_ID_AA64PFR0_EL1)) &&
616 617 618
		id_aa64pfr0_32bit_el0(info->reg_id_aa64pfr0)) {

		taint |= check_update_ftr_reg(SYS_ID_DFR0_EL1, cpu,
619
					info->reg_id_dfr0, boot->reg_id_dfr0);
620
		taint |= check_update_ftr_reg(SYS_ID_ISAR0_EL1, cpu,
621
					info->reg_id_isar0, boot->reg_id_isar0);
622
		taint |= check_update_ftr_reg(SYS_ID_ISAR1_EL1, cpu,
623
					info->reg_id_isar1, boot->reg_id_isar1);
624
		taint |= check_update_ftr_reg(SYS_ID_ISAR2_EL1, cpu,
625
					info->reg_id_isar2, boot->reg_id_isar2);
626
		taint |= check_update_ftr_reg(SYS_ID_ISAR3_EL1, cpu,
627
					info->reg_id_isar3, boot->reg_id_isar3);
628
		taint |= check_update_ftr_reg(SYS_ID_ISAR4_EL1, cpu,
629
					info->reg_id_isar4, boot->reg_id_isar4);
630
		taint |= check_update_ftr_reg(SYS_ID_ISAR5_EL1, cpu,
631 632
					info->reg_id_isar5, boot->reg_id_isar5);

633 634 635 636 637 638
		/*
		 * Regardless of the value of the AuxReg field, the AIFSR, ADFSR, and
		 * ACTLR formats could differ across CPUs and therefore would have to
		 * be trapped for virtualization anyway.
		 */
		taint |= check_update_ftr_reg(SYS_ID_MMFR0_EL1, cpu,
639
					info->reg_id_mmfr0, boot->reg_id_mmfr0);
640
		taint |= check_update_ftr_reg(SYS_ID_MMFR1_EL1, cpu,
641
					info->reg_id_mmfr1, boot->reg_id_mmfr1);
642
		taint |= check_update_ftr_reg(SYS_ID_MMFR2_EL1, cpu,
643
					info->reg_id_mmfr2, boot->reg_id_mmfr2);
644
		taint |= check_update_ftr_reg(SYS_ID_MMFR3_EL1, cpu,
645
					info->reg_id_mmfr3, boot->reg_id_mmfr3);
646
		taint |= check_update_ftr_reg(SYS_ID_PFR0_EL1, cpu,
647
					info->reg_id_pfr0, boot->reg_id_pfr0);
648
		taint |= check_update_ftr_reg(SYS_ID_PFR1_EL1, cpu,
649
					info->reg_id_pfr1, boot->reg_id_pfr1);
650
		taint |= check_update_ftr_reg(SYS_MVFR0_EL1, cpu,
651
					info->reg_mvfr0, boot->reg_mvfr0);
652
		taint |= check_update_ftr_reg(SYS_MVFR1_EL1, cpu,
653
					info->reg_mvfr1, boot->reg_mvfr1);
654
		taint |= check_update_ftr_reg(SYS_MVFR2_EL1, cpu,
655
					info->reg_mvfr2, boot->reg_mvfr2);
656
	}
657 658 659 660 661

	/*
	 * Mismatched CPU features are a recipe for disaster. Don't even
	 * pretend to support them.
	 */
662 663 664 665
	if (taint) {
		pr_warn_once("Unsupported CPU feature variation detected.\n");
		add_taint(TAINT_CPU_OUT_OF_SPEC, LOCKDEP_STILL_OK);
	}
666 667
}

668
u64 read_sanitised_ftr_reg(u32 id)
669 670 671 672 673 674 675
{
	struct arm64_ftr_reg *regp = get_arm64_ftr_reg(id);

	/* We shouldn't get a request for an unsupported register */
	BUG_ON(!regp);
	return regp->sys_val;
}
676

677 678 679
#define read_sysreg_case(r)	\
	case r:		return read_sysreg_s(r)

680
/*
681
 * __read_sysreg_by_encoding() - Used by a STARTING cpu before cpuinfo is populated.
682 683
 * Read the system register on the current CPU
 */
684
static u64 __read_sysreg_by_encoding(u32 sys_id)
685 686
{
	switch (sys_id) {
687 688 689 690 691 692 693 694 695 696 697 698 699 700 701 702 703 704 705 706 707 708 709 710 711 712 713 714 715 716 717
	read_sysreg_case(SYS_ID_PFR0_EL1);
	read_sysreg_case(SYS_ID_PFR1_EL1);
	read_sysreg_case(SYS_ID_DFR0_EL1);
	read_sysreg_case(SYS_ID_MMFR0_EL1);
	read_sysreg_case(SYS_ID_MMFR1_EL1);
	read_sysreg_case(SYS_ID_MMFR2_EL1);
	read_sysreg_case(SYS_ID_MMFR3_EL1);
	read_sysreg_case(SYS_ID_ISAR0_EL1);
	read_sysreg_case(SYS_ID_ISAR1_EL1);
	read_sysreg_case(SYS_ID_ISAR2_EL1);
	read_sysreg_case(SYS_ID_ISAR3_EL1);
	read_sysreg_case(SYS_ID_ISAR4_EL1);
	read_sysreg_case(SYS_ID_ISAR5_EL1);
	read_sysreg_case(SYS_MVFR0_EL1);
	read_sysreg_case(SYS_MVFR1_EL1);
	read_sysreg_case(SYS_MVFR2_EL1);

	read_sysreg_case(SYS_ID_AA64PFR0_EL1);
	read_sysreg_case(SYS_ID_AA64PFR1_EL1);
	read_sysreg_case(SYS_ID_AA64DFR0_EL1);
	read_sysreg_case(SYS_ID_AA64DFR1_EL1);
	read_sysreg_case(SYS_ID_AA64MMFR0_EL1);
	read_sysreg_case(SYS_ID_AA64MMFR1_EL1);
	read_sysreg_case(SYS_ID_AA64MMFR2_EL1);
	read_sysreg_case(SYS_ID_AA64ISAR0_EL1);
	read_sysreg_case(SYS_ID_AA64ISAR1_EL1);

	read_sysreg_case(SYS_CNTFRQ_EL0);
	read_sysreg_case(SYS_CTR_EL0);
	read_sysreg_case(SYS_DCZID_EL0);

718 719 720 721 722 723
	default:
		BUG();
		return 0;
	}
}

724 725
#include <linux/irqchip/arm-gic-v3.h>

726 727 728
static bool
feature_matches(u64 reg, const struct arm64_cpu_capabilities *entry)
{
729
	int val = cpuid_feature_extract_field(reg, entry->field_pos, entry->sign);
730 731 732 733

	return val >= entry->min_field_value;
}

734
static bool
735
has_cpuid_feature(const struct arm64_cpu_capabilities *entry, int scope)
736 737
{
	u64 val;
738

739 740
	WARN_ON(scope == SCOPE_LOCAL_CPU && preemptible());
	if (scope == SCOPE_SYSTEM)
741
		val = read_sanitised_ftr_reg(entry->sys_reg);
742
	else
743
		val = __read_sysreg_by_encoding(entry->sys_reg);
744

745 746
	return feature_matches(val, entry);
}
747

748
static bool has_useable_gicv3_cpuif(const struct arm64_cpu_capabilities *entry, int scope)
749 750 751
{
	bool has_sre;

752
	if (!has_cpuid_feature(entry, scope))
753 754 755 756 757 758 759 760 761 762
		return false;

	has_sre = gic_enable_sre();
	if (!has_sre)
		pr_warn_once("%s present but disabled by higher exception level\n",
			     entry->desc);

	return has_sre;
}

763
static bool has_no_hw_prefetch(const struct arm64_cpu_capabilities *entry, int __unused)
764 765 766 767
{
	u32 midr = read_cpuid_id();

	/* Cavium ThunderX pass 1.x and 2.x */
768 769 770
	return MIDR_IS_CPU_MODEL_RANGE(midr, MIDR_THUNDERX,
		MIDR_CPU_VAR_REV(0, 0),
		MIDR_CPU_VAR_REV(1, MIDR_REVISION_MASK));
771 772
}

773
static bool runs_at_el2(const struct arm64_cpu_capabilities *entry, int __unused)
774 775 776 777
{
	return is_kernel_in_hyp_mode();
}

778 779 780
static bool hyp_offset_low(const struct arm64_cpu_capabilities *entry,
			   int __unused)
{
781
	phys_addr_t idmap_addr = __pa_symbol(__hyp_idmap_text_start);
782 783 784 785 786 787 788 789 790

	/*
	 * Activate the lower HYP offset only if:
	 * - the idmap doesn't clash with it,
	 * - the kernel is not running at EL2.
	 */
	return idmap_addr > GENMASK(VA_BITS - 2, 0) && !is_kernel_in_hyp_mode();
}

791 792
static bool has_no_fpsimd(const struct arm64_cpu_capabilities *entry, int __unused)
{
793
	u64 pfr0 = read_sanitised_ftr_reg(SYS_ID_AA64PFR0_EL1);
794 795 796 797 798

	return cpuid_feature_extract_signed_field(pfr0,
					ID_AA64PFR0_FP_SHIFT) < 0;
}

799
static const struct arm64_cpu_capabilities arm64_features[] = {
800 801 802
	{
		.desc = "GIC system register CPU interface",
		.capability = ARM64_HAS_SYSREG_GIC_CPUIF,
803
		.def_scope = SCOPE_SYSTEM,
804
		.matches = has_useable_gicv3_cpuif,
805 806
		.sys_reg = SYS_ID_AA64PFR0_EL1,
		.field_pos = ID_AA64PFR0_GIC_SHIFT,
807
		.sign = FTR_UNSIGNED,
808
		.min_field_value = 1,
809
	},
810 811 812 813
#ifdef CONFIG_ARM64_PAN
	{
		.desc = "Privileged Access Never",
		.capability = ARM64_HAS_PAN,
814
		.def_scope = SCOPE_SYSTEM,
815 816 817
		.matches = has_cpuid_feature,
		.sys_reg = SYS_ID_AA64MMFR1_EL1,
		.field_pos = ID_AA64MMFR1_PAN_SHIFT,
818
		.sign = FTR_UNSIGNED,
819 820 821 822
		.min_field_value = 1,
		.enable = cpu_enable_pan,
	},
#endif /* CONFIG_ARM64_PAN */
823 824 825 826
#if defined(CONFIG_AS_LSE) && defined(CONFIG_ARM64_LSE_ATOMICS)
	{
		.desc = "LSE atomic instructions",
		.capability = ARM64_HAS_LSE_ATOMICS,
827
		.def_scope = SCOPE_SYSTEM,
828 829 830
		.matches = has_cpuid_feature,
		.sys_reg = SYS_ID_AA64ISAR0_EL1,
		.field_pos = ID_AA64ISAR0_ATOMICS_SHIFT,
831
		.sign = FTR_UNSIGNED,
832 833 834
		.min_field_value = 2,
	},
#endif /* CONFIG_AS_LSE && CONFIG_ARM64_LSE_ATOMICS */
835 836 837
	{
		.desc = "Software prefetching using PRFM",
		.capability = ARM64_HAS_NO_HW_PREFETCH,
838
		.def_scope = SCOPE_SYSTEM,
839 840
		.matches = has_no_hw_prefetch,
	},
841 842 843 844
#ifdef CONFIG_ARM64_UAO
	{
		.desc = "User Access Override",
		.capability = ARM64_HAS_UAO,
845
		.def_scope = SCOPE_SYSTEM,
846 847 848 849
		.matches = has_cpuid_feature,
		.sys_reg = SYS_ID_AA64MMFR2_EL1,
		.field_pos = ID_AA64MMFR2_UAO_SHIFT,
		.min_field_value = 1,
850 851 852 853
		/*
		 * We rely on stop_machine() calling uao_thread_switch() to set
		 * UAO immediately after patching.
		 */
854 855
	},
#endif /* CONFIG_ARM64_UAO */
856 857 858
#ifdef CONFIG_ARM64_PAN
	{
		.capability = ARM64_ALT_PAN_NOT_UAO,
859
		.def_scope = SCOPE_SYSTEM,
860 861 862
		.matches = cpufeature_pan_not_uao,
	},
#endif /* CONFIG_ARM64_PAN */
863 864 865
	{
		.desc = "Virtualization Host Extensions",
		.capability = ARM64_HAS_VIRT_HOST_EXTN,
866
		.def_scope = SCOPE_SYSTEM,
867 868
		.matches = runs_at_el2,
	},
869 870 871
	{
		.desc = "32-bit EL0 Support",
		.capability = ARM64_HAS_32BIT_EL0,
872
		.def_scope = SCOPE_SYSTEM,
873 874 875 876 877 878
		.matches = has_cpuid_feature,
		.sys_reg = SYS_ID_AA64PFR0_EL1,
		.sign = FTR_UNSIGNED,
		.field_pos = ID_AA64PFR0_EL0_SHIFT,
		.min_field_value = ID_AA64PFR0_EL0_32BIT_64BIT,
	},
879 880 881 882 883 884
	{
		.desc = "Reduced HYP mapping offset",
		.capability = ARM64_HYP_OFFSET_LOW,
		.def_scope = SCOPE_SYSTEM,
		.matches = hyp_offset_low,
	},
885 886 887 888 889 890 891
	{
		/* FP/SIMD is not implemented */
		.capability = ARM64_HAS_NO_FPSIMD,
		.def_scope = SCOPE_SYSTEM,
		.min_field_value = 0,
		.matches = has_no_fpsimd,
	},
892 893 894
	{},
};

895
#define HWCAP_CAP(reg, field, s, min_value, type, cap)	\
896 897
	{							\
		.desc = #cap,					\
898
		.def_scope = SCOPE_SYSTEM,			\
899 900 901
		.matches = has_cpuid_feature,			\
		.sys_reg = reg,					\
		.field_pos = field,				\
902
		.sign = s,					\
903 904 905 906 907
		.min_field_value = min_value,			\
		.hwcap_type = type,				\
		.hwcap = cap,					\
	}

S
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908
static const struct arm64_cpu_capabilities arm64_elf_hwcaps[] = {
909 910 911 912 913 914
	HWCAP_CAP(SYS_ID_AA64ISAR0_EL1, ID_AA64ISAR0_AES_SHIFT, FTR_UNSIGNED, 2, CAP_HWCAP, HWCAP_PMULL),
	HWCAP_CAP(SYS_ID_AA64ISAR0_EL1, ID_AA64ISAR0_AES_SHIFT, FTR_UNSIGNED, 1, CAP_HWCAP, HWCAP_AES),
	HWCAP_CAP(SYS_ID_AA64ISAR0_EL1, ID_AA64ISAR0_SHA1_SHIFT, FTR_UNSIGNED, 1, CAP_HWCAP, HWCAP_SHA1),
	HWCAP_CAP(SYS_ID_AA64ISAR0_EL1, ID_AA64ISAR0_SHA2_SHIFT, FTR_UNSIGNED, 1, CAP_HWCAP, HWCAP_SHA2),
	HWCAP_CAP(SYS_ID_AA64ISAR0_EL1, ID_AA64ISAR0_CRC32_SHIFT, FTR_UNSIGNED, 1, CAP_HWCAP, HWCAP_CRC32),
	HWCAP_CAP(SYS_ID_AA64ISAR0_EL1, ID_AA64ISAR0_ATOMICS_SHIFT, FTR_UNSIGNED, 2, CAP_HWCAP, HWCAP_ATOMICS),
915
	HWCAP_CAP(SYS_ID_AA64ISAR0_EL1, ID_AA64ISAR0_RDM_SHIFT, FTR_UNSIGNED, 1, CAP_HWCAP, HWCAP_ASIMDRDM),
916
	HWCAP_CAP(SYS_ID_AA64PFR0_EL1, ID_AA64PFR0_FP_SHIFT, FTR_SIGNED, 0, CAP_HWCAP, HWCAP_FP),
917
	HWCAP_CAP(SYS_ID_AA64PFR0_EL1, ID_AA64PFR0_FP_SHIFT, FTR_SIGNED, 1, CAP_HWCAP, HWCAP_FPHP),
918
	HWCAP_CAP(SYS_ID_AA64PFR0_EL1, ID_AA64PFR0_ASIMD_SHIFT, FTR_SIGNED, 0, CAP_HWCAP, HWCAP_ASIMD),
919
	HWCAP_CAP(SYS_ID_AA64PFR0_EL1, ID_AA64PFR0_ASIMD_SHIFT, FTR_SIGNED, 1, CAP_HWCAP, HWCAP_ASIMDHP),
920
	HWCAP_CAP(SYS_ID_AA64ISAR1_EL1, ID_AA64ISAR1_DPB_SHIFT, FTR_UNSIGNED, 1, CAP_HWCAP, HWCAP_DCPOP),
921
	HWCAP_CAP(SYS_ID_AA64ISAR1_EL1, ID_AA64ISAR1_JSCVT_SHIFT, FTR_UNSIGNED, 1, CAP_HWCAP, HWCAP_JSCVT),
922
	HWCAP_CAP(SYS_ID_AA64ISAR1_EL1, ID_AA64ISAR1_FCMA_SHIFT, FTR_UNSIGNED, 1, CAP_HWCAP, HWCAP_FCMA),
923
	HWCAP_CAP(SYS_ID_AA64ISAR1_EL1, ID_AA64ISAR1_LRCPC_SHIFT, FTR_UNSIGNED, 1, CAP_HWCAP, HWCAP_LRCPC),
924 925 926 927
	{},
};

static const struct arm64_cpu_capabilities compat_elf_hwcaps[] = {
928
#ifdef CONFIG_COMPAT
929 930 931 932 933
	HWCAP_CAP(SYS_ID_ISAR5_EL1, ID_ISAR5_AES_SHIFT, FTR_UNSIGNED, 2, CAP_COMPAT_HWCAP2, COMPAT_HWCAP2_PMULL),
	HWCAP_CAP(SYS_ID_ISAR5_EL1, ID_ISAR5_AES_SHIFT, FTR_UNSIGNED, 1, CAP_COMPAT_HWCAP2, COMPAT_HWCAP2_AES),
	HWCAP_CAP(SYS_ID_ISAR5_EL1, ID_ISAR5_SHA1_SHIFT, FTR_UNSIGNED, 1, CAP_COMPAT_HWCAP2, COMPAT_HWCAP2_SHA1),
	HWCAP_CAP(SYS_ID_ISAR5_EL1, ID_ISAR5_SHA2_SHIFT, FTR_UNSIGNED, 1, CAP_COMPAT_HWCAP2, COMPAT_HWCAP2_SHA2),
	HWCAP_CAP(SYS_ID_ISAR5_EL1, ID_ISAR5_CRC32_SHIFT, FTR_UNSIGNED, 1, CAP_COMPAT_HWCAP2, COMPAT_HWCAP2_CRC32),
934 935 936 937
#endif
	{},
};

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Suzuki K Poulose 已提交
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static void __init cap_set_elf_hwcap(const struct arm64_cpu_capabilities *cap)
939 940 941 942 943 944 945 946 947 948 949 950 951 952 953 954 955 956 957 958
{
	switch (cap->hwcap_type) {
	case CAP_HWCAP:
		elf_hwcap |= cap->hwcap;
		break;
#ifdef CONFIG_COMPAT
	case CAP_COMPAT_HWCAP:
		compat_elf_hwcap |= (u32)cap->hwcap;
		break;
	case CAP_COMPAT_HWCAP2:
		compat_elf_hwcap2 |= (u32)cap->hwcap;
		break;
#endif
	default:
		WARN_ON(1);
		break;
	}
}

/* Check if we have a particular HWCAP enabled */
S
Suzuki K Poulose 已提交
959
static bool cpus_have_elf_hwcap(const struct arm64_cpu_capabilities *cap)
960 961 962 963 964 965 966 967 968 969 970 971 972 973 974 975 976 977 978 979 980 981 982
{
	bool rc;

	switch (cap->hwcap_type) {
	case CAP_HWCAP:
		rc = (elf_hwcap & cap->hwcap) != 0;
		break;
#ifdef CONFIG_COMPAT
	case CAP_COMPAT_HWCAP:
		rc = (compat_elf_hwcap & (u32)cap->hwcap) != 0;
		break;
	case CAP_COMPAT_HWCAP2:
		rc = (compat_elf_hwcap2 & (u32)cap->hwcap) != 0;
		break;
#endif
	default:
		WARN_ON(1);
		rc = false;
	}

	return rc;
}

983
static void __init setup_elf_hwcaps(const struct arm64_cpu_capabilities *hwcaps)
984
{
985 986
	/* We support emulation of accesses to CPU ID feature registers */
	elf_hwcap |= HWCAP_CPUID;
987
	for (; hwcaps->matches; hwcaps++)
988
		if (hwcaps->matches(hwcaps, hwcaps->def_scope))
989
			cap_set_elf_hwcap(hwcaps);
990 991
}

992
void update_cpu_capabilities(const struct arm64_cpu_capabilities *caps,
993 994
			    const char *info)
{
995
	for (; caps->matches; caps++) {
996
		if (!caps->matches(caps, caps->def_scope))
997 998
			continue;

999 1000 1001
		if (!cpus_have_cap(caps->capability) && caps->desc)
			pr_info("%s %s\n", info, caps->desc);
		cpus_set_cap(caps->capability);
1002
	}
1003 1004 1005
}

/*
1006 1007
 * Run through the enabled capabilities and enable() it on all active
 * CPUs
1008
 */
1009
void __init enable_cpu_capabilities(const struct arm64_cpu_capabilities *caps)
1010
{
1011 1012 1013 1014 1015 1016 1017 1018 1019 1020
	for (; caps->matches; caps++) {
		unsigned int num = caps->capability;

		if (!cpus_have_cap(num))
			continue;

		/* Ensure cpus_have_const_cap(num) works */
		static_branch_enable(&cpu_hwcap_keys[num]);

		if (caps->enable) {
1021 1022 1023 1024 1025 1026 1027
			/*
			 * Use stop_machine() as it schedules the work allowing
			 * us to modify PSTATE, instead of on_each_cpu() which
			 * uses an IPI, giving us a PSTATE that disappears when
			 * we return.
			 */
			stop_machine(caps->enable, NULL, cpu_online_mask);
1028 1029
		}
	}
1030 1031 1032 1033 1034 1035 1036 1037 1038 1039 1040 1041 1042 1043 1044 1045 1046 1047
}

/*
 * Flag to indicate if we have computed the system wide
 * capabilities based on the boot time active CPUs. This
 * will be used to determine if a new booting CPU should
 * go through the verification process to make sure that it
 * supports the system capabilities, without using a hotplug
 * notifier.
 */
static bool sys_caps_initialised;

static inline void set_sys_caps_initialised(void)
{
	sys_caps_initialised = true;
}

/*
1048 1049
 * Check for CPU features that are used in early boot
 * based on the Boot CPU value.
1050
 */
1051
static void check_early_cpu_features(void)
1052
{
1053
	verify_cpu_run_el();
1054
	verify_cpu_asid_bits();
1055
}
1056

1057 1058 1059 1060
static void
verify_local_elf_hwcaps(const struct arm64_cpu_capabilities *caps)
{

1061 1062
	for (; caps->matches; caps++)
		if (cpus_have_elf_hwcap(caps) && !caps->matches(caps, SCOPE_LOCAL_CPU)) {
1063 1064 1065 1066 1067 1068 1069 1070 1071 1072
			pr_crit("CPU%d: missing HWCAP: %s\n",
					smp_processor_id(), caps->desc);
			cpu_die_early();
		}
}

static void
verify_local_cpu_features(const struct arm64_cpu_capabilities *caps)
{
	for (; caps->matches; caps++) {
1073
		if (!cpus_have_cap(caps->capability))
1074 1075 1076 1077 1078
			continue;
		/*
		 * If the new CPU misses an advertised feature, we cannot proceed
		 * further, park the cpu.
		 */
1079
		if (!caps->matches(caps, SCOPE_LOCAL_CPU)) {
1080 1081 1082 1083 1084 1085 1086 1087 1088
			pr_crit("CPU%d: missing feature: %s\n",
					smp_processor_id(), caps->desc);
			cpu_die_early();
		}
		if (caps->enable)
			caps->enable(NULL);
	}
}

1089 1090 1091 1092 1093 1094 1095 1096
/*
 * Run through the enabled system capabilities and enable() it on this CPU.
 * The capabilities were decided based on the available CPUs at the boot time.
 * Any new CPU should match the system wide status of the capability. If the
 * new CPU doesn't have a capability which the system now has enabled, we
 * cannot do anything to fix it up and could cause unexpected failures. So
 * we park the CPU.
 */
1097
static void verify_local_cpu_capabilities(void)
1098
{
1099 1100 1101 1102 1103 1104
	verify_local_cpu_errata_workarounds();
	verify_local_cpu_features(arm64_features);
	verify_local_elf_hwcaps(arm64_elf_hwcaps);
	if (system_supports_32bit_el0())
		verify_local_elf_hwcaps(compat_elf_hwcaps);
}
1105

1106 1107 1108 1109 1110 1111
void check_local_cpu_capabilities(void)
{
	/*
	 * All secondary CPUs should conform to the early CPU features
	 * in use by the kernel based on boot CPU.
	 */
1112 1113
	check_early_cpu_features();

1114
	/*
1115 1116 1117 1118
	 * If we haven't finalised the system capabilities, this CPU gets
	 * a chance to update the errata work arounds.
	 * Otherwise, this CPU should verify that it has all the system
	 * advertised capabilities.
1119 1120
	 */
	if (!sys_caps_initialised)
1121 1122 1123
		update_cpu_errata_workarounds();
	else
		verify_local_cpu_capabilities();
1124 1125
}

1126
static void __init setup_feature_capabilities(void)
1127
{
1128 1129
	update_cpu_capabilities(arm64_features, "detected feature:");
	enable_cpu_capabilities(arm64_features);
1130 1131
}

1132 1133 1134 1135 1136 1137 1138 1139
DEFINE_STATIC_KEY_FALSE(arm64_const_caps_ready);
EXPORT_SYMBOL(arm64_const_caps_ready);

static void __init mark_const_caps_ready(void)
{
	static_branch_enable(&arm64_const_caps_ready);
}

1140 1141 1142 1143
/*
 * Check if the current CPU has a given feature capability.
 * Should be called from non-preemptible context.
 */
1144 1145
static bool __this_cpu_has_cap(const struct arm64_cpu_capabilities *cap_array,
			       unsigned int cap)
1146 1147 1148 1149 1150 1151
{
	const struct arm64_cpu_capabilities *caps;

	if (WARN_ON(preemptible()))
		return false;

1152
	for (caps = cap_array; caps->desc; caps++)
1153 1154 1155 1156 1157 1158
		if (caps->capability == cap && caps->matches)
			return caps->matches(caps, SCOPE_LOCAL_CPU);

	return false;
}

1159 1160 1161 1162 1163 1164 1165 1166
extern const struct arm64_cpu_capabilities arm64_errata[];

bool this_cpu_has_cap(unsigned int cap)
{
	return (__this_cpu_has_cap(arm64_features, cap) ||
		__this_cpu_has_cap(arm64_errata, cap));
}

1167
void __init setup_cpu_features(void)
1168
{
1169 1170 1171
	u32 cwg;
	int cls;

1172 1173
	/* Set the CPU feature capabilies */
	setup_feature_capabilities();
1174
	enable_errata_workarounds();
1175
	mark_const_caps_ready();
1176
	setup_elf_hwcaps(arm64_elf_hwcaps);
1177 1178 1179

	if (system_supports_32bit_el0())
		setup_elf_hwcaps(compat_elf_hwcaps);
1180 1181 1182 1183

	/* Advertise that we have computed the system capabilities */
	set_sys_caps_initialised();

1184 1185 1186 1187 1188 1189 1190 1191 1192 1193 1194
	/*
	 * Check for sane CTR_EL0.CWG value.
	 */
	cwg = cache_type_cwg();
	cls = cache_line_size();
	if (!cwg)
		pr_warn("No Cache Writeback Granule information, assuming cache line size %d\n",
			cls);
	if (L1_CACHE_BYTES < cls)
		pr_warn("L1_CACHE_BYTES smaller than the Cache Writeback Granule (%d < %d)\n",
			L1_CACHE_BYTES, cls);
1195
}
1196 1197

static bool __maybe_unused
1198
cpufeature_pan_not_uao(const struct arm64_cpu_capabilities *entry, int __unused)
1199
{
1200
	return (cpus_have_const_cap(ARM64_HAS_PAN) && !cpus_have_const_cap(ARM64_HAS_UAO));
1201
}
1202 1203 1204 1205 1206 1207 1208 1209 1210 1211 1212 1213 1214 1215 1216 1217 1218 1219 1220 1221 1222 1223 1224 1225 1226 1227 1228 1229 1230 1231 1232 1233 1234 1235 1236 1237 1238 1239 1240 1241 1242 1243 1244 1245 1246 1247 1248 1249 1250 1251 1252 1253 1254 1255 1256 1257 1258 1259 1260 1261 1262 1263 1264 1265 1266 1267 1268 1269 1270 1271 1272 1273 1274 1275 1276 1277

/*
 * We emulate only the following system register space.
 * Op0 = 0x3, CRn = 0x0, Op1 = 0x0, CRm = [0, 4 - 7]
 * See Table C5-6 System instruction encodings for System register accesses,
 * ARMv8 ARM(ARM DDI 0487A.f) for more details.
 */
static inline bool __attribute_const__ is_emulated(u32 id)
{
	return (sys_reg_Op0(id) == 0x3 &&
		sys_reg_CRn(id) == 0x0 &&
		sys_reg_Op1(id) == 0x0 &&
		(sys_reg_CRm(id) == 0 ||
		 ((sys_reg_CRm(id) >= 4) && (sys_reg_CRm(id) <= 7))));
}

/*
 * With CRm == 0, reg should be one of :
 * MIDR_EL1, MPIDR_EL1 or REVIDR_EL1.
 */
static inline int emulate_id_reg(u32 id, u64 *valp)
{
	switch (id) {
	case SYS_MIDR_EL1:
		*valp = read_cpuid_id();
		break;
	case SYS_MPIDR_EL1:
		*valp = SYS_MPIDR_SAFE_VAL;
		break;
	case SYS_REVIDR_EL1:
		/* IMPLEMENTATION DEFINED values are emulated with 0 */
		*valp = 0;
		break;
	default:
		return -EINVAL;
	}

	return 0;
}

static int emulate_sys_reg(u32 id, u64 *valp)
{
	struct arm64_ftr_reg *regp;

	if (!is_emulated(id))
		return -EINVAL;

	if (sys_reg_CRm(id) == 0)
		return emulate_id_reg(id, valp);

	regp = get_arm64_ftr_reg(id);
	if (regp)
		*valp = arm64_ftr_reg_user_value(regp);
	else
		/*
		 * The untracked registers are either IMPLEMENTATION DEFINED
		 * (e.g, ID_AFR0_EL1) or reserved RAZ.
		 */
		*valp = 0;
	return 0;
}

static int emulate_mrs(struct pt_regs *regs, u32 insn)
{
	int rc;
	u32 sys_reg, dst;
	u64 val;

	/*
	 * sys_reg values are defined as used in mrs/msr instruction.
	 * shift the imm value to get the encoding.
	 */
	sys_reg = (u32)aarch64_insn_decode_immediate(AARCH64_INSN_IMM_16, insn) << 5;
	rc = emulate_sys_reg(sys_reg, &val);
	if (!rc) {
		dst = aarch64_insn_decode_register(AARCH64_INSN_REGTYPE_RT, insn);
1278
		pt_regs_write_reg(regs, dst, val);
1279 1280 1281 1282 1283 1284 1285 1286 1287 1288 1289 1290 1291 1292 1293 1294 1295 1296 1297 1298 1299
		regs->pc += 4;
	}

	return rc;
}

static struct undef_hook mrs_hook = {
	.instr_mask = 0xfff00000,
	.instr_val  = 0xd5300000,
	.pstate_mask = COMPAT_PSR_MODE_MASK,
	.pstate_val = PSR_MODE_EL0t,
	.fn = emulate_mrs,
};

static int __init enable_mrs_emulation(void)
{
	register_undef_hook(&mrs_hook);
	return 0;
}

late_initcall(enable_mrs_emulation);