1ae1fae34SPekka Enberg #include "kvm/kvm.h" 2ae1fae34SPekka Enberg 3b3594ec7SCyrill Gorcunov #include "kvm/boot-protocol.h" 472811558SPekka Enberg #include "kvm/cpufeature.h" 572811558SPekka Enberg #include "kvm/read-write.h" 672811558SPekka Enberg #include "kvm/interrupt.h" 70c7c14a7SCyrill Gorcunov #include "kvm/mptable.h" 872811558SPekka Enberg #include "kvm/util.h" 94298ddadSSasha Levin #include "kvm/mutex.h" 104298ddadSSasha Levin #include "kvm/kvm-cpu.h" 11eda03319SPekka Enberg 126c7d8514SPekka Enberg #include <linux/kvm.h> 13f5ab5f67SPekka Enberg 14f5ab5f67SPekka Enberg #include <asm/bootparam.h> 15f5ab5f67SPekka Enberg 16ae1fae34SPekka Enberg #include <sys/ioctl.h> 171f9cff23SPekka Enberg #include <sys/mman.h> 18ce79f1caSPekka Enberg #include <sys/stat.h> 192da26a59SPekka Enberg #include <stdbool.h> 206e5e8b8dSPekka Enberg #include <assert.h> 2106e41eeaSPekka Enberg #include <limits.h> 22ce79f1caSPekka Enberg #include <signal.h> 23f5ab5f67SPekka Enberg #include <stdarg.h> 24b8f6afcdSPekka Enberg #include <stdlib.h> 25f5ab5f67SPekka Enberg #include <string.h> 260d1f17ecSPekka Enberg #include <unistd.h> 271f9cff23SPekka Enberg #include <stdio.h> 28b8f6afcdSPekka Enberg #include <fcntl.h> 29ce79f1caSPekka Enberg #include <time.h> 304298ddadSSasha Levin #include <sys/eventfd.h> 31b8f6afcdSPekka Enberg 32ae1fae34SPekka Enberg #define DEFINE_KVM_EXIT_REASON(reason) [reason] = #reason 330d1f17ecSPekka Enberg 34ae1fae34SPekka Enberg const char *kvm_exit_reasons[] = { 35ae1fae34SPekka Enberg DEFINE_KVM_EXIT_REASON(KVM_EXIT_UNKNOWN), 36ae1fae34SPekka Enberg DEFINE_KVM_EXIT_REASON(KVM_EXIT_EXCEPTION), 37ae1fae34SPekka Enberg DEFINE_KVM_EXIT_REASON(KVM_EXIT_IO), 38ae1fae34SPekka Enberg DEFINE_KVM_EXIT_REASON(KVM_EXIT_HYPERCALL), 39ae1fae34SPekka Enberg DEFINE_KVM_EXIT_REASON(KVM_EXIT_DEBUG), 40ae1fae34SPekka Enberg DEFINE_KVM_EXIT_REASON(KVM_EXIT_HLT), 41ae1fae34SPekka Enberg DEFINE_KVM_EXIT_REASON(KVM_EXIT_MMIO), 42ae1fae34SPekka Enberg DEFINE_KVM_EXIT_REASON(KVM_EXIT_IRQ_WINDOW_OPEN), 43ae1fae34SPekka Enberg DEFINE_KVM_EXIT_REASON(KVM_EXIT_SHUTDOWN), 44ae1fae34SPekka Enberg DEFINE_KVM_EXIT_REASON(KVM_EXIT_FAIL_ENTRY), 45ae1fae34SPekka Enberg DEFINE_KVM_EXIT_REASON(KVM_EXIT_INTR), 46ae1fae34SPekka Enberg DEFINE_KVM_EXIT_REASON(KVM_EXIT_SET_TPR), 47ae1fae34SPekka Enberg DEFINE_KVM_EXIT_REASON(KVM_EXIT_TPR_ACCESS), 48ae1fae34SPekka Enberg DEFINE_KVM_EXIT_REASON(KVM_EXIT_S390_SIEIC), 49ae1fae34SPekka Enberg DEFINE_KVM_EXIT_REASON(KVM_EXIT_S390_RESET), 50ae1fae34SPekka Enberg DEFINE_KVM_EXIT_REASON(KVM_EXIT_DCR), 51ae1fae34SPekka Enberg DEFINE_KVM_EXIT_REASON(KVM_EXIT_NMI), 52ae1fae34SPekka Enberg DEFINE_KVM_EXIT_REASON(KVM_EXIT_INTERNAL_ERROR), 539b1fb1c3SPekka Enberg }; 549b1fb1c3SPekka Enberg 5555e19624SCyrill Gorcunov #define DEFINE_KVM_EXT(ext) \ 5655e19624SCyrill Gorcunov .name = #ext, \ 5755e19624SCyrill Gorcunov .code = ext 5855e19624SCyrill Gorcunov 5955e19624SCyrill Gorcunov struct { 6055e19624SCyrill Gorcunov const char *name; 6155e19624SCyrill Gorcunov int code; 6255e19624SCyrill Gorcunov } kvm_req_ext[] = { 6355e19624SCyrill Gorcunov { DEFINE_KVM_EXT(KVM_CAP_COALESCED_MMIO) }, 6455e19624SCyrill Gorcunov { DEFINE_KVM_EXT(KVM_CAP_SET_TSS_ADDR) }, 6555e19624SCyrill Gorcunov { DEFINE_KVM_EXT(KVM_CAP_PIT2) }, 6655e19624SCyrill Gorcunov { DEFINE_KVM_EXT(KVM_CAP_USER_MEMORY) }, 6755e19624SCyrill Gorcunov { DEFINE_KVM_EXT(KVM_CAP_IRQ_ROUTING) }, 6855e19624SCyrill Gorcunov { DEFINE_KVM_EXT(KVM_CAP_IRQCHIP) }, 697c0ec28fSCyrill Gorcunov { DEFINE_KVM_EXT(KVM_CAP_HLT) }, 7055e19624SCyrill Gorcunov { DEFINE_KVM_EXT(KVM_CAP_IRQ_INJECT_STATUS) }, 71d38ad31aSCyrill Gorcunov { DEFINE_KVM_EXT(KVM_CAP_EXT_CPUID) }, 7255e19624SCyrill Gorcunov }; 7355e19624SCyrill Gorcunov 744298ddadSSasha Levin extern struct kvm *kvm; 754298ddadSSasha Levin extern struct kvm_cpu *kvm_cpus[KVM_NR_CPUS]; 764298ddadSSasha Levin static int pause_event; 774298ddadSSasha Levin static DEFINE_MUTEX(pause_lock); 784298ddadSSasha Levin 7943835ac9SSasha Levin static bool kvm__supports_extension(struct kvm *kvm, unsigned int extension) 80b8f6afcdSPekka Enberg { 8128fa19c0SPekka Enberg int ret; 82b8f6afcdSPekka Enberg 8343835ac9SSasha Levin ret = ioctl(kvm->sys_fd, KVM_CHECK_EXTENSION, extension); 844076b041SPekka Enberg if (ret < 0) 854076b041SPekka Enberg return false; 864076b041SPekka Enberg 874076b041SPekka Enberg return ret; 884076b041SPekka Enberg } 894076b041SPekka Enberg 9043835ac9SSasha Levin static int kvm__check_extensions(struct kvm *kvm) 9155e19624SCyrill Gorcunov { 9255e19624SCyrill Gorcunov unsigned int i; 9355e19624SCyrill Gorcunov 9455e19624SCyrill Gorcunov for (i = 0; i < ARRAY_SIZE(kvm_req_ext); i++) { 9543835ac9SSasha Levin if (!kvm__supports_extension(kvm, kvm_req_ext[i].code)) { 964542f276SCyrill Gorcunov pr_error("Unsuppored KVM extension detected: %s", 9755e19624SCyrill Gorcunov kvm_req_ext[i].name); 9855e19624SCyrill Gorcunov return (int)-i; 9955e19624SCyrill Gorcunov } 10055e19624SCyrill Gorcunov } 10155e19624SCyrill Gorcunov 10255e19624SCyrill Gorcunov return 0; 10355e19624SCyrill Gorcunov } 10455e19624SCyrill Gorcunov 1054076b041SPekka Enberg static struct kvm *kvm__new(void) 1064076b041SPekka Enberg { 10743835ac9SSasha Levin struct kvm *kvm = calloc(1, sizeof *kvm); 1084076b041SPekka Enberg 10943835ac9SSasha Levin if (!kvm) 1104076b041SPekka Enberg die("out of memory"); 1114076b041SPekka Enberg 11243835ac9SSasha Levin return kvm; 1134076b041SPekka Enberg } 1144076b041SPekka Enberg 11543835ac9SSasha Levin void kvm__delete(struct kvm *kvm) 1169ef4c68eSPekka Enberg { 11743835ac9SSasha Levin kvm__stop_timer(kvm); 118fbfe68b7SSasha Levin 11943835ac9SSasha Levin munmap(kvm->ram_start, kvm->ram_size); 12043835ac9SSasha Levin free(kvm); 1219ef4c68eSPekka Enberg } 1229ef4c68eSPekka Enberg 123c78b8713SAsias He static bool kvm__cpu_supports_vm(void) 124c78b8713SAsias He { 125c78b8713SAsias He struct cpuid_regs regs; 1263fdf659dSSasha Levin u32 eax_base; 127831fbf23SPekka Enberg int feature; 128c78b8713SAsias He 129c78b8713SAsias He regs = (struct cpuid_regs) { 130831fbf23SPekka Enberg .eax = 0x00, 131c78b8713SAsias He }; 132c78b8713SAsias He host_cpuid(®s); 133c78b8713SAsias He 134ae87afbfSCyrill Gorcunov switch (regs.ebx) { 135ae87afbfSCyrill Gorcunov case CPUID_VENDOR_INTEL_1: 136831fbf23SPekka Enberg eax_base = 0x00; 137831fbf23SPekka Enberg feature = KVM__X86_FEATURE_VMX; 138ae87afbfSCyrill Gorcunov break; 13934649df9SPekka Enberg 140ae87afbfSCyrill Gorcunov case CPUID_VENDOR_AMD_1: 141831fbf23SPekka Enberg eax_base = 0x80000000; 142831fbf23SPekka Enberg feature = KVM__X86_FEATURE_SVM; 143ae87afbfSCyrill Gorcunov break; 14434649df9SPekka Enberg 14534649df9SPekka Enberg default: 14634649df9SPekka Enberg return false; 147ae87afbfSCyrill Gorcunov } 148ae87afbfSCyrill Gorcunov 149831fbf23SPekka Enberg regs = (struct cpuid_regs) { 150831fbf23SPekka Enberg .eax = eax_base, 151831fbf23SPekka Enberg }; 152831fbf23SPekka Enberg host_cpuid(®s); 153831fbf23SPekka Enberg 154831fbf23SPekka Enberg if (regs.eax < eax_base + 0x01) 155831fbf23SPekka Enberg return false; 156831fbf23SPekka Enberg 157831fbf23SPekka Enberg regs = (struct cpuid_regs) { 158831fbf23SPekka Enberg .eax = eax_base + 0x01 159831fbf23SPekka Enberg }; 160831fbf23SPekka Enberg host_cpuid(®s); 161831fbf23SPekka Enberg 162831fbf23SPekka Enberg return regs.ecx & (1 << feature); 163c78b8713SAsias He } 164c78b8713SAsias He 16596feb589SPekka Enberg /* 16696feb589SPekka Enberg * Note: KVM_SET_USER_MEMORY_REGION assumes that we don't pass overlapping 16796feb589SPekka Enberg * memory regions to it. Therefore, be careful if you use this function for 16896feb589SPekka Enberg * registering memory regions for emulating hardware. 16996feb589SPekka Enberg */ 17096feb589SPekka Enberg void kvm__register_mem(struct kvm *kvm, u64 guest_phys, u64 size, void *userspace_addr) 1714076b041SPekka Enberg { 1722b0e3342SPekka Enberg struct kvm_userspace_memory_region mem; 173839051d9SSasha Levin int ret; 174839051d9SSasha Levin 175839051d9SSasha Levin mem = (struct kvm_userspace_memory_region) { 17696feb589SPekka Enberg .slot = kvm->mem_slots++, 177874467f8SSasha Levin .guest_phys_addr = guest_phys, 178874467f8SSasha Levin .memory_size = size, 179c4acb611SIngo Molnar .userspace_addr = (unsigned long)userspace_addr, 180839051d9SSasha Levin }; 181839051d9SSasha Levin 182874467f8SSasha Levin ret = ioctl(kvm->vm_fd, KVM_SET_USER_MEMORY_REGION, &mem); 183839051d9SSasha Levin if (ret < 0) 184839051d9SSasha Levin die_perror("KVM_SET_USER_MEMORY_REGION ioctl"); 185839051d9SSasha Levin } 186839051d9SSasha Levin 187874467f8SSasha Levin /* 188874467f8SSasha Levin * Allocating RAM size bigger than 4GB requires us to leave a gap 189874467f8SSasha Levin * in the RAM which is used for PCI MMIO, hotplug, and unconfigured 190874467f8SSasha Levin * devices (see documentation of e820_setup_gap() for details). 191874467f8SSasha Levin * 192874467f8SSasha Levin * If we're required to initialize RAM bigger than 4GB, we will create 193874467f8SSasha Levin * a gap between 0xe0000000 and 0x100000000 in the guest virtual mem space. 194874467f8SSasha Levin */ 195874467f8SSasha Levin 19643835ac9SSasha Levin void kvm__init_ram(struct kvm *kvm) 197874467f8SSasha Levin { 198874467f8SSasha Levin u64 phys_start, phys_size; 199874467f8SSasha Levin void *host_mem; 200874467f8SSasha Levin 20143835ac9SSasha Levin if (kvm->ram_size < KVM_32BIT_GAP_START) { 202874467f8SSasha Levin /* Use a single block of RAM for 32bit RAM */ 203874467f8SSasha Levin 204874467f8SSasha Levin phys_start = 0; 20543835ac9SSasha Levin phys_size = kvm->ram_size; 20643835ac9SSasha Levin host_mem = kvm->ram_start; 207874467f8SSasha Levin 20896feb589SPekka Enberg kvm__register_mem(kvm, phys_start, phys_size, host_mem); 209874467f8SSasha Levin } else { 210874467f8SSasha Levin /* First RAM range from zero to the PCI gap: */ 211874467f8SSasha Levin 212874467f8SSasha Levin phys_start = 0; 213874467f8SSasha Levin phys_size = KVM_32BIT_GAP_START; 21443835ac9SSasha Levin host_mem = kvm->ram_start; 215874467f8SSasha Levin 21696feb589SPekka Enberg kvm__register_mem(kvm, phys_start, phys_size, host_mem); 217874467f8SSasha Levin 218874467f8SSasha Levin /* Second RAM range from 4GB to the end of RAM: */ 219874467f8SSasha Levin 220874467f8SSasha Levin phys_start = 0x100000000ULL; 22143835ac9SSasha Levin phys_size = kvm->ram_size - phys_size; 22243835ac9SSasha Levin host_mem = kvm->ram_start + phys_start; 223874467f8SSasha Levin 22496feb589SPekka Enberg kvm__register_mem(kvm, phys_start, phys_size, host_mem); 225874467f8SSasha Levin } 226874467f8SSasha Levin } 227874467f8SSasha Levin 22843835ac9SSasha Levin int kvm__max_cpus(struct kvm *kvm) 229384922b3SPekka Enberg { 230384922b3SPekka Enberg int ret; 231384922b3SPekka Enberg 23243835ac9SSasha Levin ret = ioctl(kvm->sys_fd, KVM_CHECK_EXTENSION, KVM_CAP_NR_VCPUS); 233384922b3SPekka Enberg if (ret < 0) 234384922b3SPekka Enberg die_perror("KVM_CAP_NR_VCPUS"); 235384922b3SPekka Enberg 236384922b3SPekka Enberg return ret; 237384922b3SPekka Enberg } 238384922b3SPekka Enberg 239*06761c76SPekka Enberg struct kvm *kvm__init(const char *kvm_dev, u64 ram_size) 240839051d9SSasha Levin { 2419687927dSAsias He struct kvm_pit_config pit_config = { .flags = 0, }; 24243835ac9SSasha Levin struct kvm *kvm; 2434076b041SPekka Enberg int ret; 2444076b041SPekka Enberg 245c78b8713SAsias He if (!kvm__cpu_supports_vm()) 246c78b8713SAsias He die("Your CPU does not support hardware virtualization"); 247c78b8713SAsias He 24843835ac9SSasha Levin kvm = kvm__new(); 2494076b041SPekka Enberg 25043835ac9SSasha Levin kvm->sys_fd = open(kvm_dev, O_RDWR); 25143835ac9SSasha Levin if (kvm->sys_fd < 0) { 2526d7c36ceSPekka Enberg if (errno == ENOENT) 253e907b83fSPekka Enberg die("'%s' not found. Please make sure your kernel has CONFIG_KVM enabled and that the KVM modules are loaded.", kvm_dev); 254f8334800SIngo Molnar if (errno == ENODEV) 255f8334800SIngo 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); 2566d7c36ceSPekka Enberg 257f8334800SIngo Molnar fprintf(stderr, " Fatal, could not open %s: ", kvm_dev); 258f8334800SIngo Molnar perror(NULL); 259f8334800SIngo Molnar exit(1); 2606d7c36ceSPekka Enberg } 261b8f6afcdSPekka Enberg 26243835ac9SSasha Levin ret = ioctl(kvm->sys_fd, KVM_GET_API_VERSION, 0); 2636c7d8514SPekka Enberg if (ret != KVM_API_VERSION) 264f5ab5f67SPekka Enberg die_perror("KVM_API_VERSION ioctl"); 2656c7d8514SPekka Enberg 26643835ac9SSasha Levin kvm->vm_fd = ioctl(kvm->sys_fd, KVM_CREATE_VM, 0); 26743835ac9SSasha Levin if (kvm->vm_fd < 0) 268f5ab5f67SPekka Enberg die_perror("KVM_CREATE_VM ioctl"); 26928fa19c0SPekka Enberg 27043835ac9SSasha Levin if (kvm__check_extensions(kvm)) 27155e19624SCyrill Gorcunov die("A required KVM extention is not supported by OS"); 2729687927dSAsias He 27343835ac9SSasha Levin ret = ioctl(kvm->vm_fd, KVM_SET_TSS_ADDR, 0xfffbd000); 2749687927dSAsias He if (ret < 0) 2759687927dSAsias He die_perror("KVM_SET_TSS_ADDR ioctl"); 2769687927dSAsias He 27743835ac9SSasha Levin ret = ioctl(kvm->vm_fd, KVM_CREATE_PIT2, &pit_config); 2789687927dSAsias He if (ret < 0) 2799687927dSAsias He die_perror("KVM_CREATE_PIT2 ioctl"); 2809687927dSAsias He 28143835ac9SSasha Levin kvm->ram_size = ram_size; 2820d1f17ecSPekka Enberg 28343835ac9SSasha Levin if (kvm->ram_size < KVM_32BIT_GAP_START) { 28437c34ca8SSasha Levin kvm->ram_start = mmap(NULL, ram_size, PROT_RW, MAP_ANON_NORESERVE, -1, 0); 285874467f8SSasha Levin } else { 28637c34ca8SSasha Levin kvm->ram_start = mmap(NULL, ram_size + KVM_32BIT_GAP_SIZE, PROT_RW, MAP_ANON_NORESERVE, -1, 0); 28743835ac9SSasha Levin if (kvm->ram_start != MAP_FAILED) { 288874467f8SSasha Levin /* 289874467f8SSasha Levin * We mprotect the gap (see kvm__init_ram() for details) PROT_NONE so that 290874467f8SSasha Levin * if we accidently write to it, we will know. 291874467f8SSasha Levin */ 29243835ac9SSasha Levin mprotect(kvm->ram_start + KVM_32BIT_GAP_START, KVM_32BIT_GAP_SIZE, PROT_NONE); 293874467f8SSasha Levin } 294874467f8SSasha Levin } 29543835ac9SSasha Levin if (kvm->ram_start == MAP_FAILED) 2960d1f17ecSPekka Enberg die("out of memory"); 2970d1f17ecSPekka Enberg 29843835ac9SSasha Levin ret = ioctl(kvm->vm_fd, KVM_CREATE_IRQCHIP); 299895c2fefSPekka Enberg if (ret < 0) 3009687927dSAsias He die_perror("KVM_CREATE_IRQCHIP ioctl"); 3019687927dSAsias He 30243835ac9SSasha Levin return kvm; 3034076b041SPekka Enberg } 3044076b041SPekka Enberg 3055f6772b8SCyrill Gorcunov #define BOOT_LOADER_SELECTOR 0x1000 306b08e9ec4SPekka Enberg #define BOOT_LOADER_IP 0x0000 307dbdb74c2SPekka Enberg #define BOOT_LOADER_SP 0x8000 3082dd4a4edSCyrill Gorcunov #define BOOT_CMDLINE_OFFSET 0x20000 3092dd4a4edSCyrill Gorcunov 3109a4ecdc5SPekka Enberg #define BOOT_PROTOCOL_REQUIRED 0x206 311a43f6460SCyrill Gorcunov #define LOAD_HIGH 0x01 312009b0758SPekka Enberg 31343835ac9SSasha Levin static int load_flat_binary(struct kvm *kvm, int fd) 314009b0758SPekka Enberg { 315009b0758SPekka Enberg void *p; 316009b0758SPekka Enberg int nr; 317009b0758SPekka Enberg 318009b0758SPekka Enberg if (lseek(fd, 0, SEEK_SET) < 0) 319009b0758SPekka Enberg die_perror("lseek"); 320009b0758SPekka Enberg 32143835ac9SSasha Levin p = guest_real_to_host(kvm, BOOT_LOADER_SELECTOR, BOOT_LOADER_IP); 322009b0758SPekka Enberg 323009b0758SPekka Enberg while ((nr = read(fd, p, 65536)) > 0) 324009b0758SPekka Enberg p += nr; 325009b0758SPekka Enberg 32643835ac9SSasha Levin kvm->boot_selector = BOOT_LOADER_SELECTOR; 32743835ac9SSasha Levin kvm->boot_ip = BOOT_LOADER_IP; 32843835ac9SSasha Levin kvm->boot_sp = BOOT_LOADER_SP; 329edc8a14dSPekka Enberg 3307fb218bdSPekka Enberg return true; 331009b0758SPekka Enberg } 332009b0758SPekka Enberg 333ae1fae34SPekka Enberg static const char *BZIMAGE_MAGIC = "HdrS"; 334ae1fae34SPekka Enberg 33543835ac9SSasha Levin static bool load_bzimage(struct kvm *kvm, int fd_kernel, 33653861c74SJohn Floren int fd_initrd, const char *kernel_cmdline, u16 vidmode) 337ae1fae34SPekka Enberg { 338b9271160SPekka Enberg struct boot_params *kern_boot; 3394b62331fSPekka Enberg unsigned long setup_sects; 340b9271160SPekka Enberg struct boot_params boot; 3412dd4a4edSCyrill Gorcunov size_t cmdline_size; 3427fb218bdSPekka Enberg ssize_t setup_size; 34322489bb0SCyrill Gorcunov void *p; 344ae1fae34SPekka Enberg int nr; 345ae1fae34SPekka Enberg 3465d67eaf6SPekka Enberg /* 3475d67eaf6SPekka Enberg * See Documentation/x86/boot.txt for details no bzImage on-disk and 3485d67eaf6SPekka Enberg * memory layout. 3495d67eaf6SPekka Enberg */ 3505d67eaf6SPekka Enberg 3512065a6f7SCyrill Gorcunov if (lseek(fd_kernel, 0, SEEK_SET) < 0) 352009b0758SPekka Enberg die_perror("lseek"); 353009b0758SPekka Enberg 3540b62d2bbSPekka Enberg if (read(fd_kernel, &boot, sizeof(boot)) != sizeof(boot)) 3552346d461SPekka Enberg return false; 356ae1fae34SPekka Enberg 3570b62d2bbSPekka Enberg if (memcmp(&boot.hdr.header, BZIMAGE_MAGIC, strlen(BZIMAGE_MAGIC))) 3587fb218bdSPekka Enberg return false; 359ae1fae34SPekka Enberg 3600ea58e5bSPekka Enberg if (boot.hdr.version < BOOT_PROTOCOL_REQUIRED) 3610b62d2bbSPekka Enberg die("Too old kernel"); 362ad681038SCyrill Gorcunov 3632065a6f7SCyrill Gorcunov if (lseek(fd_kernel, 0, SEEK_SET) < 0) 364e93ab78aSPekka Enberg die_perror("lseek"); 365e93ab78aSPekka Enberg 3664cf542bbSCyrill Gorcunov if (!boot.hdr.setup_sects) 3674cf542bbSCyrill Gorcunov boot.hdr.setup_sects = BZ_DEFAULT_SETUP_SECTS; 36810943d14SPekka Enberg setup_sects = boot.hdr.setup_sects + 1; 36910943d14SPekka Enberg 37054d4a626SPekka Enberg setup_size = setup_sects << 9; 37143835ac9SSasha Levin p = guest_real_to_host(kvm, BOOT_LOADER_SELECTOR, BOOT_LOADER_IP); 372ae1fae34SPekka Enberg 3732065a6f7SCyrill Gorcunov /* copy setup.bin to mem*/ 3742065a6f7SCyrill Gorcunov if (read(fd_kernel, p, setup_size) != setup_size) 3757fb218bdSPekka Enberg die_perror("read"); 3767fb218bdSPekka Enberg 3772065a6f7SCyrill Gorcunov /* copy vmlinux.bin to BZ_KERNEL_START*/ 37843835ac9SSasha Levin p = guest_flat_to_host(kvm, BZ_KERNEL_START); 379ae1fae34SPekka Enberg 3802065a6f7SCyrill Gorcunov while ((nr = read(fd_kernel, p, 65536)) > 0) 381ae1fae34SPekka Enberg p += nr; 382ae1fae34SPekka Enberg 38343835ac9SSasha Levin p = guest_flat_to_host(kvm, BOOT_CMDLINE_OFFSET); 384debcfac0SCyrill Gorcunov if (kernel_cmdline) { 385debcfac0SCyrill Gorcunov cmdline_size = strlen(kernel_cmdline) + 1; 386debcfac0SCyrill Gorcunov if (cmdline_size > boot.hdr.cmdline_size) 387debcfac0SCyrill Gorcunov cmdline_size = boot.hdr.cmdline_size; 388ad681038SCyrill Gorcunov 3892dd4a4edSCyrill Gorcunov memset(p, 0, boot.hdr.cmdline_size); 3902dd4a4edSCyrill Gorcunov memcpy(p, kernel_cmdline, cmdline_size - 1); 391debcfac0SCyrill Gorcunov } 392debcfac0SCyrill Gorcunov 39343835ac9SSasha Levin kern_boot = guest_real_to_host(kvm, BOOT_LOADER_SELECTOR, 0x00); 394a43f6460SCyrill Gorcunov 395b9271160SPekka Enberg kern_boot->hdr.cmd_line_ptr = BOOT_CMDLINE_OFFSET; 396b9271160SPekka Enberg kern_boot->hdr.type_of_loader = 0xff; 397b9271160SPekka Enberg kern_boot->hdr.heap_end_ptr = 0xfe00; 398b9271160SPekka Enberg kern_boot->hdr.loadflags |= CAN_USE_HEAP; 39953861c74SJohn Floren kern_boot->hdr.vid_mode = vidmode; 400a43f6460SCyrill Gorcunov 4012065a6f7SCyrill Gorcunov /* 4022065a6f7SCyrill Gorcunov * Read initrd image into guest memory 4032065a6f7SCyrill Gorcunov */ 4042065a6f7SCyrill Gorcunov if (fd_initrd >= 0) { 4052065a6f7SCyrill Gorcunov struct stat initrd_stat; 4062065a6f7SCyrill Gorcunov unsigned long addr; 4072065a6f7SCyrill Gorcunov 4082065a6f7SCyrill Gorcunov if (fstat(fd_initrd, &initrd_stat)) 4092065a6f7SCyrill Gorcunov die_perror("fstat"); 4102065a6f7SCyrill Gorcunov 4112065a6f7SCyrill Gorcunov addr = boot.hdr.initrd_addr_max & ~0xfffff; 4122065a6f7SCyrill Gorcunov for (;;) { 4132065a6f7SCyrill Gorcunov if (addr < BZ_KERNEL_START) 4142065a6f7SCyrill Gorcunov die("Not enough memory for initrd"); 41543835ac9SSasha Levin else if (addr < (kvm->ram_size - initrd_stat.st_size)) 4162065a6f7SCyrill Gorcunov break; 4172065a6f7SCyrill Gorcunov addr -= 0x100000; 4182065a6f7SCyrill Gorcunov } 4192065a6f7SCyrill Gorcunov 42043835ac9SSasha Levin p = guest_flat_to_host(kvm, addr); 4212065a6f7SCyrill Gorcunov nr = read(fd_initrd, p, initrd_stat.st_size); 4222065a6f7SCyrill Gorcunov if (nr != initrd_stat.st_size) 4232065a6f7SCyrill Gorcunov die("Failed to read initrd"); 4242065a6f7SCyrill Gorcunov 4252065a6f7SCyrill Gorcunov kern_boot->hdr.ramdisk_image = addr; 4262065a6f7SCyrill Gorcunov kern_boot->hdr.ramdisk_size = initrd_stat.st_size; 4272065a6f7SCyrill Gorcunov } 4282065a6f7SCyrill Gorcunov 42943835ac9SSasha Levin kvm->boot_selector = BOOT_LOADER_SELECTOR; 430edc8a14dSPekka Enberg /* 431edc8a14dSPekka Enberg * The real-mode setup code starts at offset 0x200 of a bzImage. See 432edc8a14dSPekka Enberg * Documentation/x86/boot.txt for details. 433edc8a14dSPekka Enberg */ 43443835ac9SSasha Levin kvm->boot_ip = BOOT_LOADER_IP + 0x200; 43543835ac9SSasha Levin kvm->boot_sp = BOOT_LOADER_SP; 436edc8a14dSPekka Enberg 4377fb218bdSPekka Enberg return true; 438ae1fae34SPekka Enberg } 439ae1fae34SPekka Enberg 44072811558SPekka Enberg /* RFC 1952 */ 44172811558SPekka Enberg #define GZIP_ID1 0x1f 44272811558SPekka Enberg #define GZIP_ID2 0x8b 44372811558SPekka Enberg 44472811558SPekka Enberg static bool initrd_check(int fd) 44572811558SPekka Enberg { 44672811558SPekka Enberg unsigned char id[2]; 44772811558SPekka Enberg 44872811558SPekka Enberg if (read_in_full(fd, id, ARRAY_SIZE(id)) < 0) 44972811558SPekka Enberg return false; 45072811558SPekka Enberg 45172811558SPekka Enberg if (lseek(fd, 0, SEEK_SET) < 0) 45272811558SPekka Enberg die_perror("lseek"); 45372811558SPekka Enberg 45472811558SPekka Enberg return id[0] == GZIP_ID1 && id[1] == GZIP_ID2; 45572811558SPekka Enberg } 45672811558SPekka Enberg 4576d1f350dSCyrill Gorcunov bool kvm__load_kernel(struct kvm *kvm, const char *kernel_filename, 45853861c74SJohn Floren const char *initrd_filename, const char *kernel_cmdline, u16 vidmode) 459ae1fae34SPekka Enberg { 4607fb218bdSPekka Enberg bool ret; 4612065a6f7SCyrill Gorcunov int fd_kernel = -1, fd_initrd = -1; 462ae1fae34SPekka Enberg 4632065a6f7SCyrill Gorcunov fd_kernel = open(kernel_filename, O_RDONLY); 4642065a6f7SCyrill Gorcunov if (fd_kernel < 0) 4650b62d2bbSPekka Enberg die("Unable to open kernel %s", kernel_filename); 466ae1fae34SPekka Enberg 4672065a6f7SCyrill Gorcunov if (initrd_filename) { 4682065a6f7SCyrill Gorcunov fd_initrd = open(initrd_filename, O_RDONLY); 4692065a6f7SCyrill Gorcunov if (fd_initrd < 0) 4700b62d2bbSPekka Enberg die("Unable to open initrd %s", initrd_filename); 47172811558SPekka Enberg 47272811558SPekka Enberg if (!initrd_check(fd_initrd)) 47372811558SPekka Enberg die("%s is not an initrd", initrd_filename); 4742065a6f7SCyrill Gorcunov } 4752065a6f7SCyrill Gorcunov 47653861c74SJohn Floren ret = load_bzimage(kvm, fd_kernel, fd_initrd, kernel_cmdline, vidmode); 47728972750SCyrill Gorcunov 47828972750SCyrill Gorcunov if (initrd_filename) 47928972750SCyrill Gorcunov close(fd_initrd); 48028972750SCyrill Gorcunov 481009b0758SPekka Enberg if (ret) 482009b0758SPekka Enberg goto found_kernel; 483ae1fae34SPekka Enberg 4844542f276SCyrill Gorcunov pr_warning("%s is not a bzImage. Trying to load it as a flat binary...", kernel_filename); 4850b62d2bbSPekka Enberg 4862065a6f7SCyrill Gorcunov ret = load_flat_binary(kvm, fd_kernel); 487009b0758SPekka Enberg if (ret) 488009b0758SPekka Enberg goto found_kernel; 489009b0758SPekka Enberg 4905a6ac675SSasha Levin close(fd_kernel); 4915a6ac675SSasha Levin 492009b0758SPekka Enberg die("%s is not a valid bzImage or flat binary", kernel_filename); 493009b0758SPekka Enberg 494009b0758SPekka Enberg found_kernel: 4955a6ac675SSasha Levin close(fd_kernel); 4965a6ac675SSasha Levin 497ae1fae34SPekka Enberg return ret; 498ae1fae34SPekka Enberg } 499ae1fae34SPekka Enberg 500b3594ec7SCyrill Gorcunov /** 501b3594ec7SCyrill Gorcunov * kvm__setup_bios - inject BIOS into guest system memory 50243835ac9SSasha Levin * @kvm - guest system descriptor 503b3594ec7SCyrill Gorcunov * 504b3594ec7SCyrill Gorcunov * This function is a main routine where we poke guest memory 505b3594ec7SCyrill Gorcunov * and install BIOS there. 506b3594ec7SCyrill Gorcunov */ 50743835ac9SSasha Levin void kvm__setup_bios(struct kvm *kvm) 5082f3976eeSPekka Enberg { 509b3594ec7SCyrill Gorcunov /* standart minimal configuration */ 51043835ac9SSasha Levin setup_bios(kvm); 5112f3976eeSPekka Enberg 512b3594ec7SCyrill Gorcunov /* FIXME: SMP, ACPI and friends here */ 5130c7c14a7SCyrill Gorcunov 5140c7c14a7SCyrill Gorcunov /* MP table */ 51543835ac9SSasha Levin mptable_setup(kvm, kvm->nrcpus); 5162f3976eeSPekka Enberg } 5172f3976eeSPekka Enberg 518ce79f1caSPekka Enberg #define TIMER_INTERVAL_NS 1000000 /* 1 msec */ 519ce79f1caSPekka Enberg 520ce79f1caSPekka Enberg /* 521ce79f1caSPekka Enberg * This function sets up a timer that's used to inject interrupts from the 522ce79f1caSPekka Enberg * userspace hypervisor into the guest at periodical intervals. Please note 523ce79f1caSPekka Enberg * that clock interrupt, for example, is not handled here. 524ce79f1caSPekka Enberg */ 52543835ac9SSasha Levin void kvm__start_timer(struct kvm *kvm) 526ce79f1caSPekka Enberg { 527ce79f1caSPekka Enberg struct itimerspec its; 528ce79f1caSPekka Enberg struct sigevent sev; 529ce79f1caSPekka Enberg 530ce79f1caSPekka Enberg memset(&sev, 0, sizeof(struct sigevent)); 531ce79f1caSPekka Enberg sev.sigev_value.sival_int = 0; 532ce79f1caSPekka Enberg sev.sigev_notify = SIGEV_SIGNAL; 533ce79f1caSPekka Enberg sev.sigev_signo = SIGALRM; 534ce79f1caSPekka Enberg 53543835ac9SSasha Levin if (timer_create(CLOCK_REALTIME, &sev, &kvm->timerid) < 0) 536ce79f1caSPekka Enberg die("timer_create()"); 537ce79f1caSPekka Enberg 538ce79f1caSPekka Enberg its.it_value.tv_sec = TIMER_INTERVAL_NS / 1000000000; 539ce79f1caSPekka Enberg its.it_value.tv_nsec = TIMER_INTERVAL_NS % 1000000000; 540ce79f1caSPekka Enberg its.it_interval.tv_sec = its.it_value.tv_sec; 541ce79f1caSPekka Enberg its.it_interval.tv_nsec = its.it_value.tv_nsec; 542ce79f1caSPekka Enberg 54343835ac9SSasha Levin if (timer_settime(kvm->timerid, 0, &its, NULL) < 0) 544ce79f1caSPekka Enberg die("timer_settime()"); 545ce79f1caSPekka Enberg } 546ce79f1caSPekka Enberg 54743835ac9SSasha Levin void kvm__stop_timer(struct kvm *kvm) 548fbfe68b7SSasha Levin { 54943835ac9SSasha Levin if (kvm->timerid) 55043835ac9SSasha Levin if (timer_delete(kvm->timerid) < 0) 551fbfe68b7SSasha Levin die("timer_delete()"); 552fbfe68b7SSasha Levin 55343835ac9SSasha Levin kvm->timerid = 0; 554fbfe68b7SSasha Levin } 555fbfe68b7SSasha Levin 55643835ac9SSasha Levin void kvm__irq_line(struct kvm *kvm, int irq, int level) 5578b1ff07eSPekka Enberg { 5588b1ff07eSPekka Enberg struct kvm_irq_level irq_level; 5598b1ff07eSPekka Enberg 5608b1ff07eSPekka Enberg irq_level = (struct kvm_irq_level) { 5618b1ff07eSPekka Enberg { 5628b1ff07eSPekka Enberg .irq = irq, 5638b1ff07eSPekka Enberg }, 5648b1ff07eSPekka Enberg .level = level, 5658b1ff07eSPekka Enberg }; 5668b1ff07eSPekka Enberg 56743835ac9SSasha Levin if (ioctl(kvm->vm_fd, KVM_IRQ_LINE, &irq_level) < 0) 5688b1ff07eSPekka Enberg die_perror("KVM_IRQ_LINE failed"); 5698b1ff07eSPekka Enberg } 5708b1ff07eSPekka Enberg 57143835ac9SSasha Levin void kvm__dump_mem(struct kvm *kvm, unsigned long addr, unsigned long size) 572090f898eSCyrill Gorcunov { 573090f898eSCyrill Gorcunov unsigned char *p; 574090f898eSCyrill Gorcunov unsigned long n; 575090f898eSCyrill Gorcunov 576090f898eSCyrill Gorcunov size &= ~7; /* mod 8 */ 577090f898eSCyrill Gorcunov if (!size) 578090f898eSCyrill Gorcunov return; 579090f898eSCyrill Gorcunov 58043835ac9SSasha Levin p = guest_flat_to_host(kvm, addr); 581090f898eSCyrill Gorcunov 58248cf3877SPekka Enberg for (n = 0; n < size; n += 8) { 58343835ac9SSasha Levin if (!host_ptr_in_ram(kvm, p + n)) 58448cf3877SPekka Enberg break; 58548cf3877SPekka Enberg 586090f898eSCyrill Gorcunov printf(" 0x%08lx: %02x %02x %02x %02x %02x %02x %02x %02x\n", 587090f898eSCyrill Gorcunov addr + n, p[n + 0], p[n + 1], p[n + 2], p[n + 3], 588090f898eSCyrill Gorcunov p[n + 4], p[n + 5], p[n + 6], p[n + 7]); 589090f898eSCyrill Gorcunov } 59048cf3877SPekka Enberg } 5914298ddadSSasha Levin 5924298ddadSSasha Levin void kvm__pause(void) 5934298ddadSSasha Levin { 5944298ddadSSasha Levin int i, paused_vcpus = 0; 5954298ddadSSasha Levin 5964298ddadSSasha Levin /* Check if the guest is running */ 5974298ddadSSasha Levin if (!kvm_cpus[0] || kvm_cpus[0]->thread == 0) 5984298ddadSSasha Levin return; 5994298ddadSSasha Levin 6004298ddadSSasha Levin mutex_lock(&pause_lock); 6014298ddadSSasha Levin 6024298ddadSSasha Levin pause_event = eventfd(0, 0); 6034298ddadSSasha Levin if (pause_event < 0) 6044298ddadSSasha Levin die("Failed creating pause notification event"); 6054298ddadSSasha Levin for (i = 0; i < kvm->nrcpus; i++) 6064298ddadSSasha Levin pthread_kill(kvm_cpus[i]->thread, SIGKVMPAUSE); 6074298ddadSSasha Levin 6084298ddadSSasha Levin while (paused_vcpus < kvm->nrcpus) { 6094298ddadSSasha Levin u64 cur_read; 6104298ddadSSasha Levin 6114298ddadSSasha Levin if (read(pause_event, &cur_read, sizeof(cur_read)) < 0) 6124298ddadSSasha Levin die("Failed reading pause event"); 6134298ddadSSasha Levin paused_vcpus += cur_read; 6144298ddadSSasha Levin } 6154298ddadSSasha Levin close(pause_event); 6164298ddadSSasha Levin } 6174298ddadSSasha Levin 6184298ddadSSasha Levin void kvm__continue(void) 6194298ddadSSasha Levin { 6204298ddadSSasha Levin /* Check if the guest is running */ 6214298ddadSSasha Levin if (!kvm_cpus[0] || kvm_cpus[0]->thread == 0) 6224298ddadSSasha Levin return; 6234298ddadSSasha Levin 6244298ddadSSasha Levin mutex_unlock(&pause_lock); 6254298ddadSSasha Levin } 6264298ddadSSasha Levin 6274298ddadSSasha Levin void kvm__notify_paused(void) 6284298ddadSSasha Levin { 6294298ddadSSasha Levin u64 p = 1; 6304298ddadSSasha Levin 6314298ddadSSasha Levin if (write(pause_event, &p, sizeof(p)) < 0) 6324298ddadSSasha Levin die("Failed notifying of paused VCPU."); 6334298ddadSSasha Levin 6344298ddadSSasha Levin mutex_lock(&pause_lock); 6354298ddadSSasha Levin mutex_unlock(&pause_lock); 6364298ddadSSasha Levin } 637