/* Translate address of a vmalloc'd thing to a linear map address */ staticvoid *real_vmalloc_addr(void *addr)
{ return __va(ppc_find_vmap_phys((unsignedlong)addr));
}
/* Return 1 if we need to do a global tlbie, 0 if we can use tlbiel */ staticint global_invalidates(struct kvm *kvm)
{ int global; int cpu;
/* *Ifthereisonlyonevcore,andit'scurrentlyrunning, *asindicatedbylocal_paca->kvm_hstate.kvm_vcpubeingset, *wecanusetlbielaslongaswemarkallotherphysical *coresaspotentiallyhavingstaleTLBentriesforthislpid. *Otherwise,don'tusetlbiel.
*/ if (kvm->arch.online_vcores == 1 && local_paca->kvm_hstate.kvm_vcpu)
global = 0; else
global = 1;
/* LPID has been switched to host if in virt mode so can't do local */ if (!global && (mfmsr() & (MSR_IR|MSR_DR)))
global = 1;
if (!global) { /* any other core might now have stale TLB entries... */
smp_wmb();
cpumask_setall(&kvm->arch.need_tlb_flush);
cpu = local_paca->kvm_hstate.kvm_vcore->pcpu;
cpumask_clear_cpu(cpu, &kvm->arch.need_tlb_flush);
}
if (kvm_is_radix(kvm)) return H_FUNCTION; /* *TheHPTEgetsusedbycompute_tlbie_rb()tosetTLBIEbits,so *thesefunctionsshouldworktogether--mustensureaguestcannot *causeproblemswiththeTLBIEthatKVMexecutes.
*/ if ((pteh >> HPTE_V_SSIZE_SHIFT) & 0x2) { /* B=0b1x is a reserved value, disallow it. */ return H_PARAMETER;
}
psize = kvmppc_actual_pgsz(pteh, ptel); if (!psize) return H_PARAMETER;
writing = hpte_is_writable(ptel);
pteh &= ~(HPTE_V_HVLOCK | HPTE_V_ABSENT | HPTE_V_VALID);
ptel &= ~HPTE_GR_RESERVED;
g_ptel = ptel;
/* used later to detect if we might have been invalidated */
mmu_seq = kvm->mmu_invalidate_seq;
smp_rmb();
/* Find the memslot (if any) for this address */
gpa = (ptel & HPTE_R_RPN) & ~(psize - 1);
gfn = gpa >> PAGE_SHIFT;
memslot = __gfn_to_memslot(kvm_memslots_raw(kvm), gfn);
pa = 0;
is_ci = false;
rmap = NULL; if (!(memslot && !(memslot->flags & KVM_MEMSLOT_INVALID))) { /* Emulated MMIO - mark this with key=31 */
pteh |= HPTE_V_ABSENT;
ptel |= HPTE_R_KEY_HI | HPTE_R_KEY_LO; goto do_insert;
}
/* Check if the requested page fits entirely in the memslot. */ if (!slot_is_aligned(memslot, psize)) return H_PARAMETER;
slot_fn = gfn - memslot->base_gfn;
rmap = &memslot->arch.rmap[slot_fn];
/* Translate to host virtual address */
hva = __gfn_to_hva_memslot(memslot, gfn);
/* Save away the guest's idea of the second HPTE dword */
rev = &kvm->arch.hpt.rev[pte_index]; if (realmode)
rev = real_vmalloc_addr(rev); if (rev) {
rev->guest_rpte = g_ptel;
note_hpte_modification(kvm, rev);
}
/* Link HPTE into reverse-map chain */ if (pteh & HPTE_V_VALID) { if (realmode)
rmap = real_vmalloc_addr(rmap);
lock_rmap(rmap); /* Check for pending invalidations under the rmap chain lock */ if (mmu_invalidate_retry(kvm, mmu_seq)) { /* inval in progress, write a non-present HPTE */
pteh |= HPTE_V_ABSENT;
pteh &= ~HPTE_V_VALID;
ptel &= ~(HPTE_R_KEY_HI | HPTE_R_KEY_LO);
unlock_rmap(rmap);
} else {
kvmppc_add_revmap_chain(kvm, rev, rmap, pte_index,
realmode); /* Only set R/C in real HPTE if already set in *rmap */
rcbits = *rmap >> KVMPPC_RMAP_RC_SHIFT;
ptel &= rcbits | ~(HPTE_R_R | HPTE_R_C);
}
}
/* Convert to new format on P9 */ if (cpu_has_feature(CPU_FTR_ARCH_300)) {
ptel = hpte_old_to_new_r(pteh, ptel);
pteh = hpte_old_to_new_v(pteh);
}
hpte[1] = cpu_to_be64(ptel);
/* Write the first HPTE dword, unlocking the HPTE and making it valid */
eieio();
__unlock_hpte(hpte, pteh); asmvolatile("ptesync" : : : "memory");
long kvmppc_h_read(struct kvm_vcpu *vcpu, unsignedlong flags, unsignedlong pte_index)
{ struct kvm *kvm = vcpu->kvm;
__be64 *hpte; unsignedlong v, r; int i, n = 1; struct revmap_entry *rev = NULL;
if (kvm_is_radix(kvm)) return H_FUNCTION; if (pte_index >= kvmppc_hpt_npte(&kvm->arch.hpt)) return H_PARAMETER; if (flags & H_READ_4) {
pte_index &= ~3;
n = 4;
}
rev = real_vmalloc_addr(&kvm->arch.hpt.rev[pte_index]); for (i = 0; i < n; ++i, ++pte_index) {
hpte = (__be64 *)(kvm->arch.hpt.virt + (pte_index << 4));
v = be64_to_cpu(hpte[0]) & ~HPTE_V_HVLOCK;
r = be64_to_cpu(hpte[1]); if (cpu_has_feature(CPU_FTR_ARCH_300)) {
v = hpte_new_to_old_v(v, r);
r = hpte_new_to_old_r(r);
} if (v & HPTE_V_ABSENT) {
v &= ~HPTE_V_ABSENT;
v |= HPTE_V_VALID;
} if (v & HPTE_V_VALID) {
r = rev[i].guest_rpte | (r & (HPTE_R_R | HPTE_R_C));
r &= ~HPTE_GR_RESERVED;
}
kvmppc_set_gpr(vcpu, 4 + i * 2, v);
kvmppc_set_gpr(vcpu, 5 + i * 2, r);
} return H_SUCCESS;
}
EXPORT_SYMBOL_GPL(kvmppc_h_read);
long kvmppc_h_clear_ref(struct kvm_vcpu *vcpu, unsignedlong flags, unsignedlong pte_index)
{ struct kvm *kvm = vcpu->kvm;
__be64 *hpte; unsignedlong v, r, gr; struct revmap_entry *rev; unsignedlong *rmap; long ret = H_NOT_FOUND;
if (kvm_is_radix(kvm)) return H_FUNCTION; if (pte_index >= kvmppc_hpt_npte(&kvm->arch.hpt)) return H_PARAMETER;
rev = real_vmalloc_addr(&kvm->arch.hpt.rev[pte_index]);
hpte = (__be64 *)(kvm->arch.hpt.virt + (pte_index << 4)); while (!try_lock_hpte(hpte, HPTE_V_HVLOCK))
cpu_relax();
v = be64_to_cpu(hpte[0]);
r = be64_to_cpu(hpte[1]); if (!(v & (HPTE_V_VALID | HPTE_V_ABSENT))) goto out;
gr = rev->guest_rpte; if (rev->guest_rpte & HPTE_R_R) {
rev->guest_rpte &= ~HPTE_R_R;
note_hpte_modification(kvm, rev);
} if (v & HPTE_V_VALID) {
gr |= r & (HPTE_R_R | HPTE_R_C); if (r & HPTE_R_R) {
kvmppc_clear_ref_hpte(kvm, hpte, pte_index);
rmap = revmap_for_hpte(kvm, v, gr, NULL, NULL); if (rmap) {
lock_rmap(rmap);
*rmap |= KVMPPC_RMAP_REFERENCED;
unlock_rmap(rmap);
}
}
}
kvmppc_set_gpr(vcpu, 4, gr);
ret = H_SUCCESS;
out:
unlock_hpte(hpte, v & ~HPTE_V_HVLOCK); return ret;
}
EXPORT_SYMBOL_GPL(kvmppc_h_clear_ref);
long kvmppc_h_clear_mod(struct kvm_vcpu *vcpu, unsignedlong flags, unsignedlong pte_index)
{ struct kvm *kvm = vcpu->kvm;
__be64 *hpte; unsignedlong v, r, gr; struct revmap_entry *rev; long ret = H_NOT_FOUND;
if (kvm_is_radix(kvm)) return H_FUNCTION; if (pte_index >= kvmppc_hpt_npte(&kvm->arch.hpt)) return H_PARAMETER;
rev = real_vmalloc_addr(&kvm->arch.hpt.rev[pte_index]);
hpte = (__be64 *)(kvm->arch.hpt.virt + (pte_index << 4)); while (!try_lock_hpte(hpte, HPTE_V_HVLOCK))
cpu_relax();
v = be64_to_cpu(hpte[0]);
r = be64_to_cpu(hpte[1]); if (!(v & (HPTE_V_VALID | HPTE_V_ABSENT))) goto out;
gr = rev->guest_rpte; if (gr & HPTE_R_C) {
rev->guest_rpte &= ~HPTE_R_C;
note_hpte_modification(kvm, rev);
} if (v & HPTE_V_VALID) { /* need to make it temporarily absent so C is stable */
hpte[0] |= cpu_to_be64(HPTE_V_ABSENT);
kvmppc_invalidate_hpte(kvm, hpte, pte_index);
r = be64_to_cpu(hpte[1]);
gr |= r & (HPTE_R_R | HPTE_R_C); if (r & HPTE_R_C) {
hpte[1] = cpu_to_be64(r & ~HPTE_R_C);
eieio();
kvmppc_set_dirty_from_hpte(kvm, v, gr);
}
}
kvmppc_set_gpr(vcpu, 4, gr);
ret = H_SUCCESS;
out:
unlock_hpte(hpte, v & ~HPTE_V_HVLOCK); return ret;
}
EXPORT_SYMBOL_GPL(kvmppc_h_clear_mod);
/* Find the memslot for this address */
gfn = gpa >> PAGE_SHIFT;
memslot = __gfn_to_memslot(kvm_memslots_raw(kvm), gfn); if (!memslot || (memslot->flags & KVM_MEMSLOT_INVALID)) return H_PARAMETER;
/* Translate to host virtual address */
hva = __gfn_to_hva_memslot(memslot, gfn);
/* Try to find the host pte for that virtual address */
ptep = find_kvm_host_pte(kvm, mmu_seq, hva, &shift); if (!ptep) return H_TOO_HARD;
pte = kvmppc_read_update_linux_pte(ptep, writing); if (!pte_present(pte)) return H_TOO_HARD;
/* Convert to a physical address */ if (shift)
psize = 1UL << shift;
pa = pte_pfn(pte) << PAGE_SHIFT;
pa |= hva & (psize - 1);
pa |= gpa & ~PAGE_MASK;
if (hpa)
*hpa = pa; if (memslot_p)
*memslot_p = memslot;
return H_SUCCESS;
}
staticlong kvmppc_do_h_page_init_zero(struct kvm_vcpu *vcpu, unsignedlong dest)
{ struct kvm_memory_slot *memslot; struct kvm *kvm = vcpu->kvm; unsignedlong pa, mmu_seq; long ret = H_SUCCESS; int i;
/* Used later to detect if we might have been invalidated */
mmu_seq = kvm->mmu_invalidate_seq;
smp_rmb();
arch_spin_lock(&kvm->mmu_lock.rlock.raw_lock);
ret = kvmppc_get_hpa(vcpu, mmu_seq, dest, 1, &pa, &memslot); if (ret != H_SUCCESS) goto out_unlock;
/* Zero the page */ for (i = 0; i < SZ_4K; i += L1_CACHE_BYTES, pa += L1_CACHE_BYTES)
dcbz((void *)pa);
kvmppc_update_dirty_map(memslot, dest >> PAGE_SHIFT, PAGE_SIZE);
/* Don't handle radix mode here, go up to the virtual mode handler */ if (kvm_is_radix(kvm)) return H_TOO_HARD;
/* Check for invalid flags (H_PAGE_SET_LOANED covers all CMO flags) */ if (flags & ~(H_ICACHE_INVALIDATE | H_ICACHE_SYNCHRONIZE |
H_ZERO_PAGE | H_COPY_PAGE | H_PAGE_SET_LOANED)) return H_PARAMETER;
/* dest (and src if copy_page flag set) must be page aligned */ if ((dest & pg_mask) || ((flags & H_COPY_PAGE) && (src & pg_mask))) return H_PARAMETER;
/* zero and/or copy the page as determined by the flags */ if (flags & H_COPY_PAGE)
ret = kvmppc_do_h_page_init_copy(vcpu, dest, src); elseif (flags & H_ZERO_PAGE)
ret = kvmppc_do_h_page_init_zero(vcpu, dest);
for (i = 0; i < 16; i += 2) { /* Read the PTE racily */
v = be64_to_cpu(hpte[i]) & ~HPTE_V_HVLOCK; if (cpu_has_feature(CPU_FTR_ARCH_300))
v = hpte_new_to_old_v(v, be64_to_cpu(hpte[i+1]));
/* Check valid/absent, hash, segment size and AVPN */ if (!(v & valid) || (v & mask) != val) continue;
/* Lock the PTE and read it under the lock */ while (!try_lock_hpte(&hpte[i], HPTE_V_HVLOCK))
cpu_relax();
v = orig_v = be64_to_cpu(hpte[i]) & ~HPTE_V_HVLOCK;
r = be64_to_cpu(hpte[i+1]); if (cpu_has_feature(CPU_FTR_ARCH_300)) {
v = hpte_new_to_old_v(v, r);
r = hpte_new_to_old_r(r);
}
/* *ChecktheHPTEagain,includingbasepagesize
*/ if ((v & valid) && (v & mask) == val &&
kvmppc_hpte_base_page_shift(v, r) == pshift) /* Return with the HPTE still locked */ return (hash << 3) + (i >> 1);
__unlock_hpte(&hpte[i], orig_v);
}
if (val & HPTE_V_SECONDARY) break;
val |= HPTE_V_SECONDARY;
hash = hash ^ kvmppc_hpt_mask(&kvm->arch.hpt);
} return -1;
}
EXPORT_SYMBOL(kvmppc_hv_find_lock_hpte);
/* For protection fault, expect to find a valid HPTE */
valid = HPTE_V_VALID; if (status & DSISR_NOHPTE) {
valid |= HPTE_V_ABSENT;
mmio_update = atomic64_read(&kvm->arch.mmio_update);
cache_entry = mmio_cache_search(vcpu, addr, slb_v, mmio_update);
} if (cache_entry) {
index = cache_entry->pte_index;
v = cache_entry->hpte_v;
r = cache_entry->hpte_r;
gr = cache_entry->rpte;
} else {
index = kvmppc_hv_find_lock_hpte(kvm, addr, slb_v, valid); if (index < 0) { if (status & DSISR_NOHPTE) return status; /* there really was no HPTE */ return0; /* for prot fault, HPTE disappeared */
}
hpte = (__be64 *)(kvm->arch.hpt.virt + (index << 4));
v = orig_v = be64_to_cpu(hpte[0]) & ~HPTE_V_HVLOCK;
r = be64_to_cpu(hpte[1]); if (cpu_has_feature(CPU_FTR_ARCH_300)) {
v = hpte_new_to_old_v(v, r);
r = hpte_new_to_old_r(r);
}
rev = real_vmalloc_addr(&kvm->arch.hpt.rev[index]);
gr = rev->guest_rpte;
unlock_hpte(hpte, orig_v);
}
/* For not found, if the HPTE is valid by now, retry the instruction */ if ((status & DSISR_NOHPTE) && (v & HPTE_V_VALID)) return0;
/* Check access permissions to the page */
pp = gr & (HPTE_R_PP0 | HPTE_R_PP);
key = (vcpu->arch.shregs.msr & MSR_PR) ? SLB_VSID_KP : SLB_VSID_KS;
status &= ~DSISR_NOHPTE; /* DSISR_NOHPTE == SRR1_ISI_NOPT */ if (!data) { if (gr & (HPTE_R_N | HPTE_R_G)) return status | SRR1_ISI_N_G_OR_CIP; if (!hpte_read_permission(pp, slb_v & key)) return status | SRR1_ISI_PROT;
} elseif (status & DSISR_ISSTORE) { /* check write permission */ if (!hpte_write_permission(pp, slb_v & key)) return status | DSISR_PROTFAULT;
} else { if (!hpte_read_permission(pp, slb_v & key)) return status | DSISR_PROTFAULT;
}
/* Check storage key, if applicable */ if (data && (vcpu->arch.shregs.msr & MSR_DR)) { unsignedint perm = hpte_get_skey_perm(gr, vcpu->arch.amr); if (status & DSISR_ISSTORE)
perm >>= 1; if (perm & 1) return status | DSISR_KEYFAULT;
}
/* Save HPTE info for virtual-mode handler */
vcpu->arch.pgfault_addr = addr;
vcpu->arch.pgfault_index = index;
vcpu->arch.pgfault_hpte[0] = v;
vcpu->arch.pgfault_hpte[1] = r;
vcpu->arch.pgfault_cache = cache_entry;
/* Check the storage key to see if it is possibly emulated MMIO */ if ((r & (HPTE_R_KEY_HI | HPTE_R_KEY_LO)) ==
(HPTE_R_KEY_HI | HPTE_R_KEY_LO)) { if (!cache_entry) { unsignedint pshift = 12; unsignedint pshift_index;
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