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UPSTREAM: KVM: arm64: Move FP state ownership from flag to a tristate
The KVM FP code uses a pair of flags to denote three states:
- FP_ENABLED set: the guest owns the FP state
- FP_HOST set: the host owns the FP state
- FP_ENABLED and FP_HOST clear: nobody owns the FP state at all
and both flags set is an illegal state, which nothing ever checks
for...
As it turns out, this isn't really a good match for flags, and
we'd be better off if this was a simpler tristate, each state
having a name that actually reflect the state:
- FP_STATE_FREE
- FP_STATE_HOST_OWNED
- FP_STATE_GUEST_OWNED
Kill the two flags, and move over to an enum encoding these
three states. This results in less confusing code, and less risk of
ending up in the uncharted territory of a 4th state if we forget
to clear one of the two flags.
Signed-off-by: Marc Zyngier <maz@kernel.org>
Reviewed-by: Mark Brown <broonie@kernel.org>
Reviewed-by: Reiji Watanabe <reijiw@google.com>
(cherry picked from commit f8077b0d59)
Signed-off-by: Will Deacon <willdeacon@google.com>
Bug: 233587962
Bug: 233588291
Change-Id: I4623ccea6aaa9d0cb3a9dc3502483c9628a67ca6
This commit is contained in:
committed by
Quentin Perret
parent
a61ffd556e
commit
883fb02fd2
@@ -328,6 +328,13 @@ struct kvm_vcpu_arch {
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/* Exception Information */
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struct kvm_vcpu_fault_info fault;
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/* Ownership of the FP regs */
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enum {
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FP_STATE_FREE,
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FP_STATE_HOST_OWNED,
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FP_STATE_GUEST_OWNED,
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} fp_state;
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/* Miscellaneous vcpu state flags */
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u64 flags;
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@@ -428,8 +435,6 @@ struct kvm_vcpu_arch {
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/* vcpu_arch flags field values: */
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#define KVM_ARM64_DEBUG_DIRTY (1 << 0)
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#define KVM_ARM64_FP_ENABLED (1 << 1) /* guest FP regs loaded */
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#define KVM_ARM64_FP_HOST (1 << 2) /* host FP regs loaded */
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#define KVM_ARM64_HOST_SVE_ENABLED (1 << 4) /* SVE enabled for EL0 */
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#define KVM_ARM64_GUEST_HAS_SVE (1 << 5) /* SVE exposed to guest */
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#define KVM_ARM64_VCPU_SVE_FINALIZED (1 << 6) /* SVE config completed */
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@@ -77,8 +77,7 @@ void kvm_arch_vcpu_load_fp(struct kvm_vcpu *vcpu)
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BUG_ON(!current->mm);
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BUG_ON(test_thread_flag(TIF_SVE));
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vcpu->arch.flags &= ~KVM_ARM64_FP_ENABLED;
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vcpu->arch.flags |= KVM_ARM64_FP_HOST;
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vcpu->arch.fp_state = FP_STATE_HOST_OWNED;
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vcpu->arch.flags &= ~KVM_ARM64_HOST_SVE_ENABLED;
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if (read_sysreg(cpacr_el1) & CPACR_EL1_ZEN_EL0EN)
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@@ -98,9 +97,8 @@ void kvm_arch_vcpu_load_fp(struct kvm_vcpu *vcpu)
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if (read_sysreg(cpacr_el1) & CPACR_EL1_SMEN_EL0EN)
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vcpu->arch.flags |= KVM_ARM64_HOST_SME_ENABLED;
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if (read_sysreg_s(SYS_SVCR) &
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(SVCR_SM_MASK | SVCR_ZA_MASK)) {
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vcpu->arch.flags &= ~KVM_ARM64_FP_HOST;
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if (read_sysreg_s(SYS_SVCR) & (SVCR_SM_MASK | SVCR_ZA_MASK)) {
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vcpu->arch.fp_state = FP_STATE_FREE;
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fpsimd_save_and_flush_cpu_state();
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}
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}
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@@ -119,7 +117,7 @@ void kvm_arch_vcpu_load_fp(struct kvm_vcpu *vcpu)
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void kvm_arch_vcpu_ctxflush_fp(struct kvm_vcpu *vcpu)
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{
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if (!system_supports_fpsimd() || test_thread_flag(TIF_FOREIGN_FPSTATE))
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vcpu->arch.flags &= ~(KVM_ARM64_FP_ENABLED | KVM_ARM64_FP_HOST);
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vcpu->arch.fp_state = FP_STATE_FREE;
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}
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/*
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@@ -133,7 +131,7 @@ void kvm_arch_vcpu_ctxsync_fp(struct kvm_vcpu *vcpu)
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{
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WARN_ON_ONCE(!irqs_disabled());
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if (vcpu->arch.flags & KVM_ARM64_FP_ENABLED) {
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if (vcpu->arch.fp_state == FP_STATE_GUEST_OWNED) {
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/*
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* Currently we do not support SME guests so SVCR is
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* always 0 and we just need a variable to point to.
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@@ -176,7 +174,7 @@ void kvm_arch_vcpu_put_fp(struct kvm_vcpu *vcpu)
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CPACR_EL1_SMEN_EL1EN);
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}
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if (vcpu->arch.flags & KVM_ARM64_FP_ENABLED) {
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if (vcpu->arch.fp_state == FP_STATE_GUEST_OWNED) {
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if (vcpu_has_sve(vcpu)) {
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__vcpu_sys_reg(vcpu, ZCR_EL1) = read_sysreg_el1(SYS_ZCR);
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@@ -36,7 +36,7 @@ extern struct exception_table_entry __stop___kvm_ex_table;
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/* Check whether the FP regs are owned by the guest */
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static inline bool guest_owns_fp_regs(struct kvm_vcpu *vcpu)
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{
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return !!(vcpu->arch.flags & KVM_ARM64_FP_ENABLED);
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return vcpu->arch.fp_state == FP_STATE_GUEST_OWNED;
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}
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/* Save the 32-bit only FPSIMD system register state */
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@@ -175,10 +175,8 @@ static bool kvm_hyp_handle_fpsimd(struct kvm_vcpu *vcpu, u64 *exit_code)
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isb();
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/* Write out the host state if it's in the registers */
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if (vcpu->arch.flags & KVM_ARM64_FP_HOST) {
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if (vcpu->arch.fp_state == FP_STATE_HOST_OWNED)
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__fpsimd_save_state(vcpu->arch.host_fpsimd_state);
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vcpu->arch.flags &= ~KVM_ARM64_FP_HOST;
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}
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/* Restore the guest state */
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if (sve_guest)
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@@ -190,7 +188,7 @@ static bool kvm_hyp_handle_fpsimd(struct kvm_vcpu *vcpu, u64 *exit_code)
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if (!(read_sysreg(hcr_el2) & HCR_RW))
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write_sysreg(__vcpu_sys_reg(vcpu, FPEXC32_EL2), fpexc32_el2);
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vcpu->arch.flags |= KVM_ARM64_FP_ENABLED;
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vcpu->arch.fp_state = FP_STATE_GUEST_OWNED;
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return true;
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}
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@@ -123,7 +123,7 @@ static void __deactivate_traps(struct kvm_vcpu *vcpu)
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}
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cptr = CPTR_EL2_DEFAULT;
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if (vcpu_has_sve(vcpu) && (vcpu->arch.flags & KVM_ARM64_FP_ENABLED))
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if (vcpu_has_sve(vcpu) && (vcpu->arch.fp_state == FP_STATE_GUEST_OWNED))
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cptr |= CPTR_EL2_TZ;
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if (cpus_have_final_cap(ARM64_SME))
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cptr &= ~CPTR_EL2_TSM;
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@@ -335,7 +335,7 @@ int __kvm_vcpu_run(struct kvm_vcpu *vcpu)
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__sysreg_restore_state_nvhe(host_ctxt);
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if (vcpu->arch.flags & KVM_ARM64_FP_ENABLED)
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if (vcpu->arch.fp_state == FP_STATE_GUEST_OWNED)
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__fpsimd_save_fpexc32(vcpu);
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__debug_switch_to_host(vcpu);
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@@ -175,7 +175,7 @@ static int __kvm_vcpu_run_vhe(struct kvm_vcpu *vcpu)
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sysreg_restore_host_state_vhe(host_ctxt);
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if (vcpu->arch.flags & KVM_ARM64_FP_ENABLED)
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if (vcpu->arch.fp_state == FP_STATE_GUEST_OWNED)
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__fpsimd_save_fpexc32(vcpu);
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__debug_switch_to_host(vcpu);
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