1ae1fae34SPekka Enberg #include "kvm/kvm.h" 2ae1fae34SPekka Enberg 3c78b8713SAsias He #include "kvm/cpufeature.h" 4ce79f1caSPekka Enberg #include "kvm/interrupt.h" 5b3594ec7SCyrill Gorcunov #include "kvm/boot-protocol.h" 6f3150089SPekka Enberg #include "kvm/util.h" 70c7c14a7SCyrill Gorcunov #include "kvm/mptable.h" 8eda03319SPekka Enberg 96c7d8514SPekka Enberg #include <linux/kvm.h> 10f5ab5f67SPekka Enberg 11f5ab5f67SPekka Enberg #include <asm/bootparam.h> 12f5ab5f67SPekka Enberg 13ae1fae34SPekka Enberg #include <sys/ioctl.h> 141f9cff23SPekka Enberg #include <sys/mman.h> 15ce79f1caSPekka Enberg #include <sys/stat.h> 162da26a59SPekka Enberg #include <stdbool.h> 176e5e8b8dSPekka Enberg #include <assert.h> 1806e41eeaSPekka Enberg #include <limits.h> 19ce79f1caSPekka Enberg #include <signal.h> 20f5ab5f67SPekka Enberg #include <stdarg.h> 21b8f6afcdSPekka Enberg #include <stdlib.h> 22f5ab5f67SPekka Enberg #include <string.h> 230d1f17ecSPekka Enberg #include <unistd.h> 241f9cff23SPekka Enberg #include <stdio.h> 25b8f6afcdSPekka Enberg #include <fcntl.h> 26ce79f1caSPekka Enberg #include <time.h> 27b8f6afcdSPekka Enberg 28ae1fae34SPekka Enberg #define DEFINE_KVM_EXIT_REASON(reason) [reason] = #reason 290d1f17ecSPekka Enberg 30ae1fae34SPekka Enberg const char *kvm_exit_reasons[] = { 31ae1fae34SPekka Enberg DEFINE_KVM_EXIT_REASON(KVM_EXIT_UNKNOWN), 32ae1fae34SPekka Enberg DEFINE_KVM_EXIT_REASON(KVM_EXIT_EXCEPTION), 33ae1fae34SPekka Enberg DEFINE_KVM_EXIT_REASON(KVM_EXIT_IO), 34ae1fae34SPekka Enberg DEFINE_KVM_EXIT_REASON(KVM_EXIT_HYPERCALL), 35ae1fae34SPekka Enberg DEFINE_KVM_EXIT_REASON(KVM_EXIT_DEBUG), 36ae1fae34SPekka Enberg DEFINE_KVM_EXIT_REASON(KVM_EXIT_HLT), 37ae1fae34SPekka Enberg DEFINE_KVM_EXIT_REASON(KVM_EXIT_MMIO), 38ae1fae34SPekka Enberg DEFINE_KVM_EXIT_REASON(KVM_EXIT_IRQ_WINDOW_OPEN), 39ae1fae34SPekka Enberg DEFINE_KVM_EXIT_REASON(KVM_EXIT_SHUTDOWN), 40ae1fae34SPekka Enberg DEFINE_KVM_EXIT_REASON(KVM_EXIT_FAIL_ENTRY), 41ae1fae34SPekka Enberg DEFINE_KVM_EXIT_REASON(KVM_EXIT_INTR), 42ae1fae34SPekka Enberg DEFINE_KVM_EXIT_REASON(KVM_EXIT_SET_TPR), 43ae1fae34SPekka Enberg DEFINE_KVM_EXIT_REASON(KVM_EXIT_TPR_ACCESS), 44ae1fae34SPekka Enberg DEFINE_KVM_EXIT_REASON(KVM_EXIT_S390_SIEIC), 45ae1fae34SPekka Enberg DEFINE_KVM_EXIT_REASON(KVM_EXIT_S390_RESET), 46ae1fae34SPekka Enberg DEFINE_KVM_EXIT_REASON(KVM_EXIT_DCR), 47ae1fae34SPekka Enberg DEFINE_KVM_EXIT_REASON(KVM_EXIT_NMI), 48ae1fae34SPekka Enberg DEFINE_KVM_EXIT_REASON(KVM_EXIT_INTERNAL_ERROR), 499b1fb1c3SPekka Enberg }; 509b1fb1c3SPekka Enberg 5155e19624SCyrill Gorcunov #define DEFINE_KVM_EXT(ext) \ 5255e19624SCyrill Gorcunov .name = #ext, \ 5355e19624SCyrill Gorcunov .code = ext 5455e19624SCyrill Gorcunov 5555e19624SCyrill Gorcunov struct { 5655e19624SCyrill Gorcunov const char *name; 5755e19624SCyrill Gorcunov int code; 5855e19624SCyrill Gorcunov } kvm_req_ext[] = { 5955e19624SCyrill Gorcunov { DEFINE_KVM_EXT(KVM_CAP_COALESCED_MMIO) }, 6055e19624SCyrill Gorcunov { DEFINE_KVM_EXT(KVM_CAP_SET_TSS_ADDR) }, 6155e19624SCyrill Gorcunov { DEFINE_KVM_EXT(KVM_CAP_PIT2) }, 6255e19624SCyrill Gorcunov { DEFINE_KVM_EXT(KVM_CAP_USER_MEMORY) }, 6355e19624SCyrill Gorcunov { DEFINE_KVM_EXT(KVM_CAP_IRQ_ROUTING) }, 6455e19624SCyrill Gorcunov { DEFINE_KVM_EXT(KVM_CAP_IRQCHIP) }, 657c0ec28fSCyrill Gorcunov { DEFINE_KVM_EXT(KVM_CAP_HLT) }, 6655e19624SCyrill Gorcunov { DEFINE_KVM_EXT(KVM_CAP_IRQ_INJECT_STATUS) }, 67d38ad31aSCyrill Gorcunov { DEFINE_KVM_EXT(KVM_CAP_EXT_CPUID) }, 6855e19624SCyrill Gorcunov }; 6955e19624SCyrill Gorcunov 70ae1fae34SPekka Enberg static bool kvm__supports_extension(struct kvm *self, unsigned int extension) 71b8f6afcdSPekka Enberg { 7228fa19c0SPekka Enberg int ret; 73b8f6afcdSPekka Enberg 7473ac60e6SPekka Enberg ret = ioctl(self->sys_fd, KVM_CHECK_EXTENSION, extension); 754076b041SPekka Enberg if (ret < 0) 764076b041SPekka Enberg return false; 774076b041SPekka Enberg 784076b041SPekka Enberg return ret; 794076b041SPekka Enberg } 804076b041SPekka Enberg 8155e19624SCyrill Gorcunov static int kvm__check_extensions(struct kvm *self) 8255e19624SCyrill Gorcunov { 8355e19624SCyrill Gorcunov unsigned int i; 8455e19624SCyrill Gorcunov 8555e19624SCyrill Gorcunov for (i = 0; i < ARRAY_SIZE(kvm_req_ext); i++) { 8655e19624SCyrill Gorcunov if (!kvm__supports_extension(self, kvm_req_ext[i].code)) { 8755e19624SCyrill Gorcunov error("Unsuppored KVM extension detected: %s", 8855e19624SCyrill Gorcunov kvm_req_ext[i].name); 8955e19624SCyrill Gorcunov return (int)-i; 9055e19624SCyrill Gorcunov } 9155e19624SCyrill Gorcunov } 9255e19624SCyrill Gorcunov 9355e19624SCyrill Gorcunov return 0; 9455e19624SCyrill Gorcunov } 9555e19624SCyrill Gorcunov 964076b041SPekka Enberg static struct kvm *kvm__new(void) 974076b041SPekka Enberg { 984076b041SPekka Enberg struct kvm *self = calloc(1, sizeof *self); 994076b041SPekka Enberg 1004076b041SPekka Enberg if (!self) 1014076b041SPekka Enberg die("out of memory"); 1024076b041SPekka Enberg 1034076b041SPekka Enberg return self; 1044076b041SPekka Enberg } 1054076b041SPekka Enberg 1069ef4c68eSPekka Enberg void kvm__delete(struct kvm *self) 1079ef4c68eSPekka Enberg { 108fbfe68b7SSasha Levin kvm__stop_timer(self); 109fbfe68b7SSasha Levin 110839051d9SSasha Levin munmap(self->ram_start, self->ram_size); 1119ef4c68eSPekka Enberg free(self); 1129ef4c68eSPekka Enberg } 1139ef4c68eSPekka Enberg 114c78b8713SAsias He static bool kvm__cpu_supports_vm(void) 115c78b8713SAsias He { 116c78b8713SAsias He struct cpuid_regs regs; 1173fdf659dSSasha Levin u32 eax_base; 118831fbf23SPekka Enberg int feature; 119c78b8713SAsias He 120c78b8713SAsias He regs = (struct cpuid_regs) { 121831fbf23SPekka Enberg .eax = 0x00, 122c78b8713SAsias He }; 123c78b8713SAsias He host_cpuid(®s); 124c78b8713SAsias He 125ae87afbfSCyrill Gorcunov switch (regs.ebx) { 126ae87afbfSCyrill Gorcunov case CPUID_VENDOR_INTEL_1: 127831fbf23SPekka Enberg eax_base = 0x00; 128831fbf23SPekka Enberg feature = KVM__X86_FEATURE_VMX; 129ae87afbfSCyrill Gorcunov break; 13034649df9SPekka Enberg 131ae87afbfSCyrill Gorcunov case CPUID_VENDOR_AMD_1: 132831fbf23SPekka Enberg eax_base = 0x80000000; 133831fbf23SPekka Enberg feature = KVM__X86_FEATURE_SVM; 134ae87afbfSCyrill Gorcunov break; 13534649df9SPekka Enberg 13634649df9SPekka Enberg default: 13734649df9SPekka Enberg return false; 138ae87afbfSCyrill Gorcunov } 139ae87afbfSCyrill Gorcunov 140831fbf23SPekka Enberg regs = (struct cpuid_regs) { 141831fbf23SPekka Enberg .eax = eax_base, 142831fbf23SPekka Enberg }; 143831fbf23SPekka Enberg host_cpuid(®s); 144831fbf23SPekka Enberg 145831fbf23SPekka Enberg if (regs.eax < eax_base + 0x01) 146831fbf23SPekka Enberg return false; 147831fbf23SPekka Enberg 148831fbf23SPekka Enberg regs = (struct cpuid_regs) { 149831fbf23SPekka Enberg .eax = eax_base + 0x01 150831fbf23SPekka Enberg }; 151831fbf23SPekka Enberg host_cpuid(®s); 152831fbf23SPekka Enberg 153831fbf23SPekka Enberg return regs.ecx & (1 << feature); 154c78b8713SAsias He } 155c78b8713SAsias He 156839051d9SSasha Levin void kvm__init_ram(struct kvm *self) 1574076b041SPekka Enberg { 1582b0e3342SPekka Enberg struct kvm_userspace_memory_region mem; 159839051d9SSasha Levin int ret; 160839051d9SSasha Levin 161839051d9SSasha Levin mem = (struct kvm_userspace_memory_region) { 162839051d9SSasha Levin .slot = 0, 163839051d9SSasha Levin .guest_phys_addr = 0x0UL, 164839051d9SSasha Levin .memory_size = self->ram_size, 165839051d9SSasha Levin .userspace_addr = (unsigned long) self->ram_start, 166839051d9SSasha Levin }; 167839051d9SSasha Levin 168839051d9SSasha Levin ret = ioctl(self->vm_fd, KVM_SET_USER_MEMORY_REGION, &mem); 169839051d9SSasha Levin if (ret < 0) 170839051d9SSasha Levin die_perror("KVM_SET_USER_MEMORY_REGION ioctl"); 171839051d9SSasha Levin } 172839051d9SSasha Levin 173*384922b3SPekka Enberg int kvm__max_cpus(struct kvm *self) 174*384922b3SPekka Enberg { 175*384922b3SPekka Enberg int ret; 176*384922b3SPekka Enberg 177*384922b3SPekka Enberg ret = ioctl(self->sys_fd, KVM_CHECK_EXTENSION, KVM_CAP_NR_VCPUS); 178*384922b3SPekka Enberg if (ret < 0) 179*384922b3SPekka Enberg die_perror("KVM_CAP_NR_VCPUS"); 180*384922b3SPekka Enberg 181*384922b3SPekka Enberg return ret; 182*384922b3SPekka Enberg } 183*384922b3SPekka Enberg 184839051d9SSasha Levin struct kvm *kvm__init(const char *kvm_dev, unsigned long ram_size) 185839051d9SSasha Levin { 1869687927dSAsias He struct kvm_pit_config pit_config = { .flags = 0, }; 1874076b041SPekka Enberg struct kvm *self; 1884076b041SPekka Enberg int ret; 1894076b041SPekka Enberg 190c78b8713SAsias He if (!kvm__cpu_supports_vm()) 191c78b8713SAsias He die("Your CPU does not support hardware virtualization"); 192c78b8713SAsias He 1934076b041SPekka Enberg self = kvm__new(); 1944076b041SPekka Enberg 1956d7c36ceSPekka Enberg self->sys_fd = open(kvm_dev, O_RDWR); 1966d7c36ceSPekka Enberg if (self->sys_fd < 0) { 1976d7c36ceSPekka Enberg if (errno == ENOENT) 198e907b83fSPekka Enberg die("'%s' not found. Please make sure your kernel has CONFIG_KVM enabled and that the KVM modules are loaded.", kvm_dev); 199f8334800SIngo Molnar if (errno == ENODEV) 200f8334800SIngo Molnar die("'%s' KVM driver not available.\n # (If the KVM module is loaded then 'dmesg' may offer further clues about the failure.)", kvm_dev); 2016d7c36ceSPekka Enberg 202f8334800SIngo Molnar fprintf(stderr, " Fatal, could not open %s: ", kvm_dev); 203f8334800SIngo Molnar perror(NULL); 204f8334800SIngo Molnar exit(1); 2056d7c36ceSPekka Enberg } 206b8f6afcdSPekka Enberg 20773ac60e6SPekka Enberg ret = ioctl(self->sys_fd, KVM_GET_API_VERSION, 0); 2086c7d8514SPekka Enberg if (ret != KVM_API_VERSION) 209f5ab5f67SPekka Enberg die_perror("KVM_API_VERSION ioctl"); 2106c7d8514SPekka Enberg 21173ac60e6SPekka Enberg self->vm_fd = ioctl(self->sys_fd, KVM_CREATE_VM, 0); 21273ac60e6SPekka Enberg if (self->vm_fd < 0) 213f5ab5f67SPekka Enberg die_perror("KVM_CREATE_VM ioctl"); 21428fa19c0SPekka Enberg 21555e19624SCyrill Gorcunov if (kvm__check_extensions(self)) 21655e19624SCyrill Gorcunov die("A required KVM extention is not supported by OS"); 2179687927dSAsias He 2189687927dSAsias He ret = ioctl(self->vm_fd, KVM_SET_TSS_ADDR, 0xfffbd000); 2199687927dSAsias He if (ret < 0) 2209687927dSAsias He die_perror("KVM_SET_TSS_ADDR ioctl"); 2219687927dSAsias He 2229687927dSAsias He ret = ioctl(self->vm_fd, KVM_CREATE_PIT2, &pit_config); 2239687927dSAsias He if (ret < 0) 2249687927dSAsias He die_perror("KVM_CREATE_PIT2 ioctl"); 2259687927dSAsias He 226192a99d1SCyrill Gorcunov self->ram_size = ram_size; 2270d1f17ecSPekka Enberg 228839051d9SSasha Levin self->ram_start = mmap(NULL, ram_size, PROT_READ | PROT_WRITE, MAP_PRIVATE | MAP_ANONYMOUS | MAP_NORESERVE, -1, 0); 229839051d9SSasha Levin if (self->ram_start == MAP_FAILED) 2300d1f17ecSPekka Enberg die("out of memory"); 2310d1f17ecSPekka Enberg 2329687927dSAsias He ret = ioctl(self->vm_fd, KVM_CREATE_IRQCHIP); 233895c2fefSPekka Enberg if (ret < 0) 2349687927dSAsias He die_perror("KVM_CREATE_IRQCHIP ioctl"); 2359687927dSAsias He 2364076b041SPekka Enberg return self; 2374076b041SPekka Enberg } 2384076b041SPekka Enberg 2395f6772b8SCyrill Gorcunov #define BOOT_LOADER_SELECTOR 0x1000 240b08e9ec4SPekka Enberg #define BOOT_LOADER_IP 0x0000 241dbdb74c2SPekka Enberg #define BOOT_LOADER_SP 0x8000 2422dd4a4edSCyrill Gorcunov #define BOOT_CMDLINE_OFFSET 0x20000 2432dd4a4edSCyrill Gorcunov 2449a4ecdc5SPekka Enberg #define BOOT_PROTOCOL_REQUIRED 0x206 245a43f6460SCyrill Gorcunov #define LOAD_HIGH 0x01 246009b0758SPekka Enberg 247edc8a14dSPekka Enberg static int load_flat_binary(struct kvm *self, int fd) 248009b0758SPekka Enberg { 249009b0758SPekka Enberg void *p; 250009b0758SPekka Enberg int nr; 251009b0758SPekka Enberg 252009b0758SPekka Enberg if (lseek(fd, 0, SEEK_SET) < 0) 253009b0758SPekka Enberg die_perror("lseek"); 254009b0758SPekka Enberg 2556753ed2fSPekka Enberg p = guest_real_to_host(self, BOOT_LOADER_SELECTOR, BOOT_LOADER_IP); 256009b0758SPekka Enberg 257009b0758SPekka Enberg while ((nr = read(fd, p, 65536)) > 0) 258009b0758SPekka Enberg p += nr; 259009b0758SPekka Enberg 260dbdb74c2SPekka Enberg self->boot_selector = BOOT_LOADER_SELECTOR; 261edc8a14dSPekka Enberg self->boot_ip = BOOT_LOADER_IP; 262dbdb74c2SPekka Enberg self->boot_sp = BOOT_LOADER_SP; 263edc8a14dSPekka Enberg 2647fb218bdSPekka Enberg return true; 265009b0758SPekka Enberg } 266009b0758SPekka Enberg 267ae1fae34SPekka Enberg static const char *BZIMAGE_MAGIC = "HdrS"; 268ae1fae34SPekka Enberg 2692065a6f7SCyrill Gorcunov static bool load_bzimage(struct kvm *self, int fd_kernel, 2702065a6f7SCyrill Gorcunov int fd_initrd, const char *kernel_cmdline) 271ae1fae34SPekka Enberg { 272b9271160SPekka Enberg struct boot_params *kern_boot; 2734b62331fSPekka Enberg unsigned long setup_sects; 274b9271160SPekka Enberg struct boot_params boot; 2752dd4a4edSCyrill Gorcunov size_t cmdline_size; 2767fb218bdSPekka Enberg ssize_t setup_size; 27722489bb0SCyrill Gorcunov void *p; 278ae1fae34SPekka Enberg int nr; 279ae1fae34SPekka Enberg 2805d67eaf6SPekka Enberg /* 2815d67eaf6SPekka Enberg * See Documentation/x86/boot.txt for details no bzImage on-disk and 2825d67eaf6SPekka Enberg * memory layout. 2835d67eaf6SPekka Enberg */ 2845d67eaf6SPekka Enberg 2852065a6f7SCyrill Gorcunov if (lseek(fd_kernel, 0, SEEK_SET) < 0) 286009b0758SPekka Enberg die_perror("lseek"); 287009b0758SPekka Enberg 2880b62d2bbSPekka Enberg if (read(fd_kernel, &boot, sizeof(boot)) != sizeof(boot)) 2892346d461SPekka Enberg return false; 290ae1fae34SPekka Enberg 2910b62d2bbSPekka Enberg if (memcmp(&boot.hdr.header, BZIMAGE_MAGIC, strlen(BZIMAGE_MAGIC))) 2927fb218bdSPekka Enberg return false; 293ae1fae34SPekka Enberg 2940ea58e5bSPekka Enberg if (boot.hdr.version < BOOT_PROTOCOL_REQUIRED) 2950b62d2bbSPekka Enberg die("Too old kernel"); 296ad681038SCyrill Gorcunov 2972065a6f7SCyrill Gorcunov if (lseek(fd_kernel, 0, SEEK_SET) < 0) 298e93ab78aSPekka Enberg die_perror("lseek"); 299e93ab78aSPekka Enberg 3004cf542bbSCyrill Gorcunov if (!boot.hdr.setup_sects) 3014cf542bbSCyrill Gorcunov boot.hdr.setup_sects = BZ_DEFAULT_SETUP_SECTS; 30210943d14SPekka Enberg setup_sects = boot.hdr.setup_sects + 1; 30310943d14SPekka Enberg 30454d4a626SPekka Enberg setup_size = setup_sects << 9; 3056753ed2fSPekka Enberg p = guest_real_to_host(self, BOOT_LOADER_SELECTOR, BOOT_LOADER_IP); 306ae1fae34SPekka Enberg 3072065a6f7SCyrill Gorcunov /* copy setup.bin to mem*/ 3082065a6f7SCyrill Gorcunov if (read(fd_kernel, p, setup_size) != setup_size) 3097fb218bdSPekka Enberg die_perror("read"); 3107fb218bdSPekka Enberg 3112065a6f7SCyrill Gorcunov /* copy vmlinux.bin to BZ_KERNEL_START*/ 3126753ed2fSPekka Enberg p = guest_flat_to_host(self, BZ_KERNEL_START); 313ae1fae34SPekka Enberg 3142065a6f7SCyrill Gorcunov while ((nr = read(fd_kernel, p, 65536)) > 0) 315ae1fae34SPekka Enberg p += nr; 316ae1fae34SPekka Enberg 317a43f6460SCyrill Gorcunov p = guest_flat_to_host(self, BOOT_CMDLINE_OFFSET); 318debcfac0SCyrill Gorcunov if (kernel_cmdline) { 319debcfac0SCyrill Gorcunov cmdline_size = strlen(kernel_cmdline) + 1; 320debcfac0SCyrill Gorcunov if (cmdline_size > boot.hdr.cmdline_size) 321debcfac0SCyrill Gorcunov cmdline_size = boot.hdr.cmdline_size; 322ad681038SCyrill Gorcunov 3232dd4a4edSCyrill Gorcunov memset(p, 0, boot.hdr.cmdline_size); 3242dd4a4edSCyrill Gorcunov memcpy(p, kernel_cmdline, cmdline_size - 1); 325debcfac0SCyrill Gorcunov } 326debcfac0SCyrill Gorcunov 327b9271160SPekka Enberg kern_boot = guest_real_to_host(self, BOOT_LOADER_SELECTOR, 0x00); 328a43f6460SCyrill Gorcunov 329b9271160SPekka Enberg kern_boot->hdr.cmd_line_ptr = BOOT_CMDLINE_OFFSET; 330b9271160SPekka Enberg kern_boot->hdr.type_of_loader = 0xff; 331b9271160SPekka Enberg kern_boot->hdr.heap_end_ptr = 0xfe00; 332b9271160SPekka Enberg kern_boot->hdr.loadflags |= CAN_USE_HEAP; 333a43f6460SCyrill Gorcunov 3342065a6f7SCyrill Gorcunov /* 3352065a6f7SCyrill Gorcunov * Read initrd image into guest memory 3362065a6f7SCyrill Gorcunov */ 3372065a6f7SCyrill Gorcunov if (fd_initrd >= 0) { 3382065a6f7SCyrill Gorcunov struct stat initrd_stat; 3392065a6f7SCyrill Gorcunov unsigned long addr; 3402065a6f7SCyrill Gorcunov 3412065a6f7SCyrill Gorcunov if (fstat(fd_initrd, &initrd_stat)) 3422065a6f7SCyrill Gorcunov die_perror("fstat"); 3432065a6f7SCyrill Gorcunov 3442065a6f7SCyrill Gorcunov addr = boot.hdr.initrd_addr_max & ~0xfffff; 3452065a6f7SCyrill Gorcunov for (;;) { 3462065a6f7SCyrill Gorcunov if (addr < BZ_KERNEL_START) 3472065a6f7SCyrill Gorcunov die("Not enough memory for initrd"); 3482065a6f7SCyrill Gorcunov else if (addr < (self->ram_size - initrd_stat.st_size)) 3492065a6f7SCyrill Gorcunov break; 3502065a6f7SCyrill Gorcunov addr -= 0x100000; 3512065a6f7SCyrill Gorcunov } 3522065a6f7SCyrill Gorcunov 3532065a6f7SCyrill Gorcunov p = guest_flat_to_host(self, addr); 3542065a6f7SCyrill Gorcunov nr = read(fd_initrd, p, initrd_stat.st_size); 3552065a6f7SCyrill Gorcunov if (nr != initrd_stat.st_size) 3562065a6f7SCyrill Gorcunov die("Failed to read initrd"); 3572065a6f7SCyrill Gorcunov 3582065a6f7SCyrill Gorcunov kern_boot->hdr.ramdisk_image = addr; 3592065a6f7SCyrill Gorcunov kern_boot->hdr.ramdisk_size = initrd_stat.st_size; 3602065a6f7SCyrill Gorcunov } 3612065a6f7SCyrill Gorcunov 362dbdb74c2SPekka Enberg self->boot_selector = BOOT_LOADER_SELECTOR; 363edc8a14dSPekka Enberg /* 364edc8a14dSPekka Enberg * The real-mode setup code starts at offset 0x200 of a bzImage. See 365edc8a14dSPekka Enberg * Documentation/x86/boot.txt for details. 366edc8a14dSPekka Enberg */ 367edc8a14dSPekka Enberg self->boot_ip = BOOT_LOADER_IP + 0x200; 368dbdb74c2SPekka Enberg self->boot_sp = BOOT_LOADER_SP; 369edc8a14dSPekka Enberg 3707fb218bdSPekka Enberg return true; 371ae1fae34SPekka Enberg } 372ae1fae34SPekka Enberg 3736d1f350dSCyrill Gorcunov bool kvm__load_kernel(struct kvm *kvm, const char *kernel_filename, 3742065a6f7SCyrill Gorcunov const char *initrd_filename, const char *kernel_cmdline) 375ae1fae34SPekka Enberg { 3767fb218bdSPekka Enberg bool ret; 3772065a6f7SCyrill Gorcunov int fd_kernel = -1, fd_initrd = -1; 378ae1fae34SPekka Enberg 3792065a6f7SCyrill Gorcunov fd_kernel = open(kernel_filename, O_RDONLY); 3802065a6f7SCyrill Gorcunov if (fd_kernel < 0) 3810b62d2bbSPekka Enberg die("Unable to open kernel %s", kernel_filename); 382ae1fae34SPekka Enberg 3832065a6f7SCyrill Gorcunov if (initrd_filename) { 3842065a6f7SCyrill Gorcunov fd_initrd = open(initrd_filename, O_RDONLY); 3852065a6f7SCyrill Gorcunov if (fd_initrd < 0) 3860b62d2bbSPekka Enberg die("Unable to open initrd %s", initrd_filename); 3872065a6f7SCyrill Gorcunov } 3882065a6f7SCyrill Gorcunov 3892065a6f7SCyrill Gorcunov ret = load_bzimage(kvm, fd_kernel, fd_initrd, kernel_cmdline); 39028972750SCyrill Gorcunov 39128972750SCyrill Gorcunov if (initrd_filename) 39228972750SCyrill Gorcunov close(fd_initrd); 39328972750SCyrill Gorcunov 394009b0758SPekka Enberg if (ret) 395009b0758SPekka Enberg goto found_kernel; 396ae1fae34SPekka Enberg 3970b62d2bbSPekka Enberg warning("%s is not a bzImage. Trying to load it as a flat binary...", kernel_filename); 3980b62d2bbSPekka Enberg 3992065a6f7SCyrill Gorcunov ret = load_flat_binary(kvm, fd_kernel); 400009b0758SPekka Enberg if (ret) 401009b0758SPekka Enberg goto found_kernel; 402009b0758SPekka Enberg 4035a6ac675SSasha Levin close(fd_kernel); 4045a6ac675SSasha Levin 405009b0758SPekka Enberg die("%s is not a valid bzImage or flat binary", kernel_filename); 406009b0758SPekka Enberg 407009b0758SPekka Enberg found_kernel: 4085a6ac675SSasha Levin close(fd_kernel); 4095a6ac675SSasha Levin 410ae1fae34SPekka Enberg return ret; 411ae1fae34SPekka Enberg } 412ae1fae34SPekka Enberg 413b3594ec7SCyrill Gorcunov /** 414b3594ec7SCyrill Gorcunov * kvm__setup_bios - inject BIOS into guest system memory 415b3594ec7SCyrill Gorcunov * @self - guest system descriptor 416b3594ec7SCyrill Gorcunov * 417b3594ec7SCyrill Gorcunov * This function is a main routine where we poke guest memory 418b3594ec7SCyrill Gorcunov * and install BIOS there. 419b3594ec7SCyrill Gorcunov */ 420b3594ec7SCyrill Gorcunov void kvm__setup_bios(struct kvm *self) 4212f3976eeSPekka Enberg { 422b3594ec7SCyrill Gorcunov /* standart minimal configuration */ 423b3594ec7SCyrill Gorcunov setup_bios(self); 4242f3976eeSPekka Enberg 425b3594ec7SCyrill Gorcunov /* FIXME: SMP, ACPI and friends here */ 4260c7c14a7SCyrill Gorcunov 4270c7c14a7SCyrill Gorcunov /* MP table */ 4280c7c14a7SCyrill Gorcunov mptable_setup(self, self->nrcpus); 4292f3976eeSPekka Enberg } 4302f3976eeSPekka Enberg 431ce79f1caSPekka Enberg #define TIMER_INTERVAL_NS 1000000 /* 1 msec */ 432ce79f1caSPekka Enberg 433ce79f1caSPekka Enberg /* 434ce79f1caSPekka Enberg * This function sets up a timer that's used to inject interrupts from the 435ce79f1caSPekka Enberg * userspace hypervisor into the guest at periodical intervals. Please note 436ce79f1caSPekka Enberg * that clock interrupt, for example, is not handled here. 437ce79f1caSPekka Enberg */ 438ce79f1caSPekka Enberg void kvm__start_timer(struct kvm *self) 439ce79f1caSPekka Enberg { 440ce79f1caSPekka Enberg struct itimerspec its; 441ce79f1caSPekka Enberg struct sigevent sev; 442ce79f1caSPekka Enberg 443ce79f1caSPekka Enberg memset(&sev, 0, sizeof(struct sigevent)); 444ce79f1caSPekka Enberg sev.sigev_value.sival_int = 0; 445ce79f1caSPekka Enberg sev.sigev_notify = SIGEV_SIGNAL; 446ce79f1caSPekka Enberg sev.sigev_signo = SIGALRM; 447ce79f1caSPekka Enberg 448ce79f1caSPekka Enberg if (timer_create(CLOCK_REALTIME, &sev, &self->timerid) < 0) 449ce79f1caSPekka Enberg die("timer_create()"); 450ce79f1caSPekka Enberg 451ce79f1caSPekka Enberg its.it_value.tv_sec = TIMER_INTERVAL_NS / 1000000000; 452ce79f1caSPekka Enberg its.it_value.tv_nsec = TIMER_INTERVAL_NS % 1000000000; 453ce79f1caSPekka Enberg its.it_interval.tv_sec = its.it_value.tv_sec; 454ce79f1caSPekka Enberg its.it_interval.tv_nsec = its.it_value.tv_nsec; 455ce79f1caSPekka Enberg 456ce79f1caSPekka Enberg if (timer_settime(self->timerid, 0, &its, NULL) < 0) 457ce79f1caSPekka Enberg die("timer_settime()"); 458ce79f1caSPekka Enberg } 459ce79f1caSPekka Enberg 460fbfe68b7SSasha Levin void kvm__stop_timer(struct kvm *self) 461fbfe68b7SSasha Levin { 462fbfe68b7SSasha Levin if (self->timerid) 463fbfe68b7SSasha Levin if (timer_delete(self->timerid) < 0) 464fbfe68b7SSasha Levin die("timer_delete()"); 465fbfe68b7SSasha Levin 466fbfe68b7SSasha Levin self->timerid = 0; 467fbfe68b7SSasha Levin } 468fbfe68b7SSasha Levin 4698b1ff07eSPekka Enberg void kvm__irq_line(struct kvm *self, int irq, int level) 4708b1ff07eSPekka Enberg { 4718b1ff07eSPekka Enberg struct kvm_irq_level irq_level; 4728b1ff07eSPekka Enberg 4738b1ff07eSPekka Enberg irq_level = (struct kvm_irq_level) { 4748b1ff07eSPekka Enberg { 4758b1ff07eSPekka Enberg .irq = irq, 4768b1ff07eSPekka Enberg }, 4778b1ff07eSPekka Enberg .level = level, 4788b1ff07eSPekka Enberg }; 4798b1ff07eSPekka Enberg 4808b1ff07eSPekka Enberg if (ioctl(self->vm_fd, KVM_IRQ_LINE, &irq_level) < 0) 4818b1ff07eSPekka Enberg die_perror("KVM_IRQ_LINE failed"); 4828b1ff07eSPekka Enberg } 4838b1ff07eSPekka Enberg 484090f898eSCyrill Gorcunov void kvm__dump_mem(struct kvm *self, unsigned long addr, unsigned long size) 485090f898eSCyrill Gorcunov { 486090f898eSCyrill Gorcunov unsigned char *p; 487090f898eSCyrill Gorcunov unsigned long n; 488090f898eSCyrill Gorcunov 489090f898eSCyrill Gorcunov size &= ~7; /* mod 8 */ 490090f898eSCyrill Gorcunov if (!size) 491090f898eSCyrill Gorcunov return; 492090f898eSCyrill Gorcunov 4932a7d39a4SPekka Enberg p = guest_flat_to_host(self, addr); 494090f898eSCyrill Gorcunov 49548cf3877SPekka Enberg for (n = 0; n < size; n += 8) { 49648cf3877SPekka Enberg if (!host_ptr_in_ram(self, p + n)) 49748cf3877SPekka Enberg break; 49848cf3877SPekka Enberg 499090f898eSCyrill Gorcunov printf(" 0x%08lx: %02x %02x %02x %02x %02x %02x %02x %02x\n", 500090f898eSCyrill Gorcunov addr + n, p[n + 0], p[n + 1], p[n + 2], p[n + 3], 501090f898eSCyrill Gorcunov p[n + 4], p[n + 5], p[n + 6], p[n + 7]); 502090f898eSCyrill Gorcunov } 50348cf3877SPekka Enberg } 504