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https://git.kernel.org/pub/scm/linux/kernel/git/torvalds/linux.git
synced 2026-05-16 14:51:51 -04:00
Replace all variations of "paddr" variables in KVM selftests with "gpa", with the exception of the ELF structures, as those fields are not specific to guest virtual addresses, to complete the conversion from vm_paddr_t to gpa_t. No functional change intended. Link: https://patch.msgid.link/20260420212004.3938325-20-seanjc@google.com Signed-off-by: Sean Christopherson <seanjc@google.com>
403 lines
10 KiB
C
403 lines
10 KiB
C
// SPDX-License-Identifier: GPL-2.0
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#include <assert.h>
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#include <linux/compiler.h>
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#include <asm/kvm.h>
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#include "kvm_util.h"
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#include "pmu.h"
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#include "processor.h"
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#include "ucall_common.h"
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#define LOONGARCH_PAGE_TABLE_PHYS_MIN 0x200000
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#define LOONGARCH_GUEST_STACK_VADDR_MIN 0x200000
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static gpa_t invalid_pgtable[4];
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static gva_t exception_handlers;
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static u64 virt_pte_index(struct kvm_vm *vm, gva_t gva, int level)
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{
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unsigned int shift;
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u64 mask;
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shift = level * (vm->page_shift - 3) + vm->page_shift;
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mask = (1UL << (vm->page_shift - 3)) - 1;
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return (gva >> shift) & mask;
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}
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static u64 pte_addr(struct kvm_vm *vm, u64 entry)
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{
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return entry & ~((0x1UL << vm->page_shift) - 1);
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}
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static u64 ptrs_per_pte(struct kvm_vm *vm)
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{
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return 1 << (vm->page_shift - 3);
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}
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static void virt_set_pgtable(struct kvm_vm *vm, gpa_t table, gpa_t child)
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{
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u64 *ptep;
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int i, ptrs_per_pte;
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ptep = addr_gpa2hva(vm, table);
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ptrs_per_pte = 1 << (vm->page_shift - 3);
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for (i = 0; i < ptrs_per_pte; i++)
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WRITE_ONCE(*(ptep + i), child);
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}
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void virt_arch_pgd_alloc(struct kvm_vm *vm)
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{
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int i;
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gpa_t child, table;
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if (vm->mmu.pgd_created)
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return;
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child = table = 0;
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for (i = 0; i < vm->mmu.pgtable_levels; i++) {
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invalid_pgtable[i] = child;
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table = vm_phy_page_alloc(vm, LOONGARCH_PAGE_TABLE_PHYS_MIN,
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vm->memslots[MEM_REGION_PT]);
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TEST_ASSERT(table, "Fail to allocate page tale at level %d\n", i);
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virt_set_pgtable(vm, table, child);
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child = table;
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}
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vm->mmu.pgd = table;
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vm->mmu.pgd_created = true;
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}
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static int virt_pte_none(u64 *ptep, int level)
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{
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return *ptep == invalid_pgtable[level];
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}
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static u64 *virt_populate_pte(struct kvm_vm *vm, gva_t gva, int alloc)
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{
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int level;
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u64 *ptep;
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gpa_t child;
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if (!vm->mmu.pgd_created)
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goto unmapped_gva;
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child = vm->mmu.pgd;
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level = vm->mmu.pgtable_levels - 1;
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while (level > 0) {
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ptep = addr_gpa2hva(vm, child) + virt_pte_index(vm, gva, level) * 8;
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if (virt_pte_none(ptep, level)) {
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if (alloc) {
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child = vm_alloc_page_table(vm);
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virt_set_pgtable(vm, child, invalid_pgtable[level - 1]);
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WRITE_ONCE(*ptep, child);
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} else
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goto unmapped_gva;
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} else
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child = pte_addr(vm, *ptep);
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level--;
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}
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ptep = addr_gpa2hva(vm, child) + virt_pte_index(vm, gva, level) * 8;
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return ptep;
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unmapped_gva:
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TEST_FAIL("No mapping for vm virtual address, gva: 0x%lx", gva);
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exit(EXIT_FAILURE);
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}
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gpa_t addr_arch_gva2gpa(struct kvm_vm *vm, gva_t gva)
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{
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u64 *ptep;
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ptep = virt_populate_pte(vm, gva, 0);
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TEST_ASSERT(*ptep != 0, "Virtual address gva: 0x%lx not mapped\n", gva);
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return pte_addr(vm, *ptep) + (gva & (vm->page_size - 1));
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}
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void virt_arch_pg_map(struct kvm_vm *vm, gva_t gva, gpa_t gpa)
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{
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u32 prot_bits;
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u64 *ptep;
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TEST_ASSERT((gva % vm->page_size) == 0,
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"Virtual address not on page boundary,\n"
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"gva: 0x%lx vm->page_size: 0x%x", gva, vm->page_size);
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TEST_ASSERT(sparsebit_is_set(vm->vpages_valid, (gva >> vm->page_shift)),
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"Invalid virtual address, gva: 0x%lx", gva);
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TEST_ASSERT((gpa % vm->page_size) == 0,
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"Physical address not on page boundary,\n"
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"gpa: 0x%lx vm->page_size: 0x%x", gpa, vm->page_size);
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TEST_ASSERT((gpa >> vm->page_shift) <= vm->max_gfn,
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"Physical address beyond maximum supported,\n"
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"gpa: 0x%lx vm->max_gfn: 0x%lx vm->page_size: 0x%x",
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gpa, vm->max_gfn, vm->page_size);
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ptep = virt_populate_pte(vm, gva, 1);
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prot_bits = _PAGE_PRESENT | __READABLE | __WRITEABLE | _CACHE_CC | _PAGE_USER;
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WRITE_ONCE(*ptep, gpa | prot_bits);
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}
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static void pte_dump(FILE *stream, struct kvm_vm *vm, u8 indent, u64 page, int level)
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{
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u64 pte, *ptep;
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static const char * const type[] = { "pte", "pmd", "pud", "pgd"};
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if (level < 0)
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return;
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for (pte = page; pte < page + ptrs_per_pte(vm) * 8; pte += 8) {
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ptep = addr_gpa2hva(vm, pte);
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if (virt_pte_none(ptep, level))
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continue;
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fprintf(stream, "%*s%s: %lx: %lx at %p\n",
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indent, "", type[level], pte, *ptep, ptep);
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pte_dump(stream, vm, indent + 1, pte_addr(vm, *ptep), level--);
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}
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}
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void virt_arch_dump(FILE *stream, struct kvm_vm *vm, u8 indent)
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{
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int level;
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if (!vm->mmu.pgd_created)
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return;
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level = vm->mmu.pgtable_levels - 1;
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pte_dump(stream, vm, indent, vm->mmu.pgd, level);
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}
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void vcpu_arch_dump(FILE *stream, struct kvm_vcpu *vcpu, u8 indent)
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{
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}
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void assert_on_unhandled_exception(struct kvm_vcpu *vcpu)
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{
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struct ucall uc;
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if (get_ucall(vcpu, &uc) != UCALL_UNHANDLED)
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return;
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TEST_FAIL("Unexpected exception (pc:0x%lx, estat:0x%lx, badv:0x%lx)",
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uc.args[0], uc.args[1], uc.args[2]);
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}
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void route_exception(struct ex_regs *regs)
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{
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int vector;
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unsigned long pc, estat, badv;
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struct handlers *handlers;
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handlers = (struct handlers *)exception_handlers;
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vector = (regs->estat & CSR_ESTAT_EXC) >> CSR_ESTAT_EXC_SHIFT;
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if (handlers && handlers->exception_handlers[vector])
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return handlers->exception_handlers[vector](regs);
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pc = regs->pc;
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badv = regs->badv;
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estat = regs->estat;
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ucall(UCALL_UNHANDLED, 3, pc, estat, badv);
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while (1) ;
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}
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void vm_init_descriptor_tables(struct kvm_vm *vm)
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{
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void *addr;
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vm->handlers = __vm_alloc(vm, sizeof(struct handlers),
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LOONGARCH_GUEST_STACK_VADDR_MIN,
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MEM_REGION_DATA);
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addr = addr_gva2hva(vm, vm->handlers);
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memset(addr, 0, vm->page_size);
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exception_handlers = vm->handlers;
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sync_global_to_guest(vm, exception_handlers);
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}
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void vm_install_exception_handler(struct kvm_vm *vm, int vector, handler_fn handler)
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{
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struct handlers *handlers = addr_gva2hva(vm, vm->handlers);
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assert(vector < VECTOR_NUM);
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handlers->exception_handlers[vector] = handler;
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}
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u32 guest_get_vcpuid(void)
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{
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return csr_read(LOONGARCH_CSR_CPUID);
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}
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void vcpu_args_set(struct kvm_vcpu *vcpu, unsigned int num, ...)
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{
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int i;
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va_list ap;
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struct kvm_regs regs;
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TEST_ASSERT(num >= 1 && num <= 8, "Unsupported number of args,\n"
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"num: %u\n", num);
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vcpu_regs_get(vcpu, ®s);
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va_start(ap, num);
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for (i = 0; i < num; i++)
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regs.gpr[i + 4] = va_arg(ap, u64);
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va_end(ap);
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vcpu_regs_set(vcpu, ®s);
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}
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static void loongarch_set_reg(struct kvm_vcpu *vcpu, u64 id, u64 val)
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{
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__vcpu_set_reg(vcpu, id, val);
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}
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static void loongarch_set_cpucfg(struct kvm_vcpu *vcpu, u64 id, u64 val)
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{
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u64 cfgid;
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cfgid = KVM_REG_LOONGARCH_CPUCFG | KVM_REG_SIZE_U64 | 8 * id;
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__vcpu_set_reg(vcpu, cfgid, val);
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}
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static void loongarch_get_csr(struct kvm_vcpu *vcpu, u64 id, void *addr)
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{
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u64 csrid;
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csrid = KVM_REG_LOONGARCH_CSR | KVM_REG_SIZE_U64 | 8 * id;
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__vcpu_get_reg(vcpu, csrid, addr);
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}
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static void loongarch_set_csr(struct kvm_vcpu *vcpu, u64 id, u64 val)
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{
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u64 csrid;
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csrid = KVM_REG_LOONGARCH_CSR | KVM_REG_SIZE_U64 | 8 * id;
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__vcpu_set_reg(vcpu, csrid, val);
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}
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void loongarch_vcpu_setup(struct kvm_vcpu *vcpu)
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{
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int width;
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unsigned int cfg;
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unsigned long val;
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struct kvm_vm *vm = vcpu->vm;
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switch (vm->mode) {
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case VM_MODE_P36V47_16K:
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case VM_MODE_P47V47_16K:
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break;
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default:
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TEST_FAIL("Unknown guest mode, mode: 0x%x", vm->mode);
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}
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cfg = read_cpucfg(LOONGARCH_CPUCFG6);
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loongarch_set_cpucfg(vcpu, LOONGARCH_CPUCFG6, cfg);
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/* kernel mode and page enable mode */
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val = PLV_KERN | CSR_CRMD_PG;
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loongarch_set_csr(vcpu, LOONGARCH_CSR_CRMD, val);
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loongarch_set_csr(vcpu, LOONGARCH_CSR_PRMD, val);
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loongarch_set_csr(vcpu, LOONGARCH_CSR_EUEN, 1);
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loongarch_set_csr(vcpu, LOONGARCH_CSR_ECFG, 0);
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loongarch_set_csr(vcpu, LOONGARCH_CSR_TCFG, 0);
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loongarch_set_csr(vcpu, LOONGARCH_CSR_ASID, 1);
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/* time count start from 0 */
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val = 0;
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loongarch_set_reg(vcpu, KVM_REG_LOONGARCH_COUNTER, val);
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width = vm->page_shift - 3;
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switch (vm->mmu.pgtable_levels) {
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case 4:
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/* pud page shift and width */
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val = (vm->page_shift + width * 2) << 20 | (width << 25);
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/* fall throuth */
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case 3:
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/* pmd page shift and width */
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val |= (vm->page_shift + width) << 10 | (width << 15);
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/* pte page shift and width */
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val |= vm->page_shift | width << 5;
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break;
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default:
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TEST_FAIL("Got %u page table levels, expected 3 or 4", vm->mmu.pgtable_levels);
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}
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loongarch_set_csr(vcpu, LOONGARCH_CSR_PWCTL0, val);
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/* PGD page shift and width */
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val = (vm->page_shift + width * (vm->mmu.pgtable_levels - 1)) | width << 6;
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loongarch_set_csr(vcpu, LOONGARCH_CSR_PWCTL1, val);
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loongarch_set_csr(vcpu, LOONGARCH_CSR_PGDL, vm->mmu.pgd);
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/*
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* Refill exception runs on real mode
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* Entry address should be physical address
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*/
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val = addr_gva2gpa(vm, (unsigned long)handle_tlb_refill);
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loongarch_set_csr(vcpu, LOONGARCH_CSR_TLBRENTRY, val);
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/*
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* General exception runs on page-enabled mode
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* Entry address should be virtual address
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*/
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val = (unsigned long)handle_exception;
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loongarch_set_csr(vcpu, LOONGARCH_CSR_EENTRY, val);
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loongarch_get_csr(vcpu, LOONGARCH_CSR_TLBIDX, &val);
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val &= ~CSR_TLBIDX_SIZEM;
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val |= PS_DEFAULT_SIZE << CSR_TLBIDX_SIZE;
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loongarch_set_csr(vcpu, LOONGARCH_CSR_TLBIDX, val);
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loongarch_set_csr(vcpu, LOONGARCH_CSR_STLBPGSIZE, PS_DEFAULT_SIZE);
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/* LOONGARCH_CSR_KS1 is used for exception stack */
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val = __vm_alloc(vm, vm->page_size, LOONGARCH_GUEST_STACK_VADDR_MIN,
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MEM_REGION_DATA);
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TEST_ASSERT(val != 0, "No memory for exception stack");
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val = val + vm->page_size;
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loongarch_set_csr(vcpu, LOONGARCH_CSR_KS1, val);
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loongarch_get_csr(vcpu, LOONGARCH_CSR_TLBREHI, &val);
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val &= ~CSR_TLBREHI_PS;
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val |= PS_DEFAULT_SIZE << CSR_TLBREHI_PS_SHIFT;
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loongarch_set_csr(vcpu, LOONGARCH_CSR_TLBREHI, val);
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loongarch_set_csr(vcpu, LOONGARCH_CSR_CPUID, vcpu->id);
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loongarch_set_csr(vcpu, LOONGARCH_CSR_TMID, vcpu->id);
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}
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struct kvm_vcpu *vm_arch_vcpu_add(struct kvm_vm *vm, u32 vcpu_id)
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{
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size_t stack_size;
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u64 stack_gva;
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struct kvm_regs regs;
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struct kvm_vcpu *vcpu;
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vcpu = __vm_vcpu_add(vm, vcpu_id);
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stack_size = vm->page_size;
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stack_gva = __vm_alloc(vm, stack_size,
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LOONGARCH_GUEST_STACK_VADDR_MIN, MEM_REGION_DATA);
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TEST_ASSERT(stack_gva != 0, "No memory for vm stack");
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loongarch_vcpu_setup(vcpu);
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/* Setup guest general purpose registers */
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vcpu_regs_get(vcpu, ®s);
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regs.gpr[3] = stack_gva + stack_size;
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vcpu_regs_set(vcpu, ®s);
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return vcpu;
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}
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void vcpu_arch_set_entry_point(struct kvm_vcpu *vcpu, void *guest_code)
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{
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struct kvm_regs regs;
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/* Setup guest PC register */
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vcpu_regs_get(vcpu, ®s);
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regs.pc = (u64)guest_code;
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vcpu_regs_set(vcpu, ®s);
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}
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