qemu/target-arm/kvm_arm.h
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   1/*
   2 * QEMU KVM support -- ARM specific functions.
   3 *
   4 * Copyright (c) 2012 Linaro Limited
   5 *
   6 * This work is licensed under the terms of the GNU GPL, version 2 or later.
   7 * See the COPYING file in the top-level directory.
   8 *
   9 */
  10
  11#ifndef QEMU_KVM_ARM_H
  12#define QEMU_KVM_ARM_H
  13
  14#include "sysemu/kvm.h"
  15#include "exec/memory.h"
  16#include "qemu/error-report.h"
  17
  18/**
  19 * kvm_arm_vcpu_init:
  20 * @cs: CPUState
  21 *
  22 * Initialize (or reinitialize) the VCPU by invoking the
  23 * KVM_ARM_VCPU_INIT ioctl with the CPU type and feature
  24 * bitmask specified in the CPUState.
  25 *
  26 * Returns: 0 if success else < 0 error code
  27 */
  28int kvm_arm_vcpu_init(CPUState *cs);
  29
  30/**
  31 * kvm_arm_register_device:
  32 * @mr: memory region for this device
  33 * @devid: the KVM device ID
  34 * @group: device control API group for setting addresses
  35 * @attr: device control API address type
  36 * @dev_fd: device control device file descriptor (or -1 if not supported)
  37 *
  38 * Remember the memory region @mr, and when it is mapped by the
  39 * machine model, tell the kernel that base address using the
  40 * KVM_ARM_SET_DEVICE_ADDRESS ioctl or the newer device control API.  @devid
  41 * should be the ID of the device as defined by KVM_ARM_SET_DEVICE_ADDRESS or
  42 * the arm-vgic device in the device control API.
  43 * The machine model may map
  44 * and unmap the device multiple times; the kernel will only be told the final
  45 * address at the point where machine init is complete.
  46 */
  47void kvm_arm_register_device(MemoryRegion *mr, uint64_t devid, uint64_t group,
  48                             uint64_t attr, int dev_fd);
  49
  50/**
  51 * kvm_arm_init_cpreg_list:
  52 * @cs: CPUState
  53 *
  54 * Initialize the CPUState's cpreg list according to the kernel's
  55 * definition of what CPU registers it knows about (and throw away
  56 * the previous TCG-created cpreg list).
  57 *
  58 * Returns: 0 if success, else < 0 error code
  59 */
  60int kvm_arm_init_cpreg_list(ARMCPU *cpu);
  61
  62/**
  63 * kvm_arm_reg_syncs_via_cpreg_list
  64 * regidx: KVM register index
  65 *
  66 * Return true if this KVM register should be synchronized via the
  67 * cpreg list of arbitrary system registers, false if it is synchronized
  68 * by hand using code in kvm_arch_get/put_registers().
  69 */
  70bool kvm_arm_reg_syncs_via_cpreg_list(uint64_t regidx);
  71
  72/**
  73 * kvm_arm_cpreg_level
  74 * regidx: KVM register index
  75 *
  76 * Return the level of this coprocessor/system register.  Return value is
  77 * either KVM_PUT_RUNTIME_STATE, KVM_PUT_RESET_STATE, or KVM_PUT_FULL_STATE.
  78 */
  79int kvm_arm_cpreg_level(uint64_t regidx);
  80
  81/**
  82 * write_list_to_kvmstate:
  83 * @cpu: ARMCPU
  84 * @level: the state level to sync
  85 *
  86 * For each register listed in the ARMCPU cpreg_indexes list, write
  87 * its value from the cpreg_values list into the kernel (via ioctl).
  88 * This updates KVM's working data structures from TCG data or
  89 * from incoming migration state.
  90 *
  91 * Returns: true if all register values were updated correctly,
  92 * false if some register was unknown to the kernel or could not
  93 * be written (eg constant register with the wrong value).
  94 * Note that we do not stop early on failure -- we will attempt
  95 * writing all registers in the list.
  96 */
  97bool write_list_to_kvmstate(ARMCPU *cpu, int level);
  98
  99/**
 100 * write_kvmstate_to_list:
 101 * @cpu: ARMCPU
 102 *
 103 * For each register listed in the ARMCPU cpreg_indexes list, write
 104 * its value from the kernel into the cpreg_values list. This is used to
 105 * copy info from KVM's working data structures into TCG or
 106 * for outbound migration.
 107 *
 108 * Returns: true if all register values were read correctly,
 109 * false if some register was unknown or could not be read.
 110 * Note that we do not stop early on failure -- we will attempt
 111 * reading all registers in the list.
 112 */
 113bool write_kvmstate_to_list(ARMCPU *cpu);
 114
 115/**
 116 * kvm_arm_reset_vcpu:
 117 * @cpu: ARMCPU
 118 *
 119 * Called at reset time to kernel registers to their initial values.
 120 */
 121void kvm_arm_reset_vcpu(ARMCPU *cpu);
 122
 123#ifdef CONFIG_KVM
 124/**
 125 * kvm_arm_create_scratch_host_vcpu:
 126 * @cpus_to_try: array of QEMU_KVM_ARM_TARGET_* values (terminated with
 127 * QEMU_KVM_ARM_TARGET_NONE) to try as fallback if the kernel does not
 128 * know the PREFERRED_TARGET ioctl. Passing NULL is the same as passing
 129 * an empty array.
 130 * @fdarray: filled in with kvmfd, vmfd, cpufd file descriptors in that order
 131 * @init: filled in with the necessary values for creating a host
 132 * vcpu. If NULL is provided, will not init the vCPU (though the cpufd
 133 * will still be set up).
 134 *
 135 * Create a scratch vcpu in its own VM of the type preferred by the host
 136 * kernel (as would be used for '-cpu host'), for purposes of probing it
 137 * for capabilities.
 138 *
 139 * Returns: true on success (and fdarray and init are filled in),
 140 * false on failure (and fdarray and init are not valid).
 141 */
 142bool kvm_arm_create_scratch_host_vcpu(const uint32_t *cpus_to_try,
 143                                      int *fdarray,
 144                                      struct kvm_vcpu_init *init);
 145
 146/**
 147 * kvm_arm_destroy_scratch_host_vcpu:
 148 * @fdarray: array of fds as set up by kvm_arm_create_scratch_host_vcpu
 149 *
 150 * Tear down the scratch vcpu created by kvm_arm_create_scratch_host_vcpu.
 151 */
 152void kvm_arm_destroy_scratch_host_vcpu(int *fdarray);
 153
 154#define TYPE_ARM_HOST_CPU "host-" TYPE_ARM_CPU
 155#define ARM_HOST_CPU_CLASS(klass) \
 156    OBJECT_CLASS_CHECK(ARMHostCPUClass, (klass), TYPE_ARM_HOST_CPU)
 157#define ARM_HOST_CPU_GET_CLASS(obj) \
 158    OBJECT_GET_CLASS(ARMHostCPUClass, (obj), TYPE_ARM_HOST_CPU)
 159
 160typedef struct ARMHostCPUClass {
 161    /*< private >*/
 162    ARMCPUClass parent_class;
 163    /*< public >*/
 164
 165    uint64_t features;
 166    uint32_t target;
 167    const char *dtb_compatible;
 168} ARMHostCPUClass;
 169
 170/**
 171 * kvm_arm_get_host_cpu_features:
 172 * @ahcc: ARMHostCPUClass to fill in
 173 *
 174 * Probe the capabilities of the host kernel's preferred CPU and fill
 175 * in the ARMHostCPUClass struct accordingly.
 176 */
 177bool kvm_arm_get_host_cpu_features(ARMHostCPUClass *ahcc);
 178
 179
 180/**
 181 * kvm_arm_sync_mpstate_to_kvm
 182 * @cpu: ARMCPU
 183 *
 184 * If supported set the KVM MP_STATE based on QEMU's model.
 185 */
 186int kvm_arm_sync_mpstate_to_kvm(ARMCPU *cpu);
 187
 188/**
 189 * kvm_arm_sync_mpstate_to_qemu
 190 * @cpu: ARMCPU
 191 *
 192 * If supported get the MP_STATE from KVM and store in QEMU's model.
 193 */
 194int kvm_arm_sync_mpstate_to_qemu(ARMCPU *cpu);
 195
 196int kvm_arm_vgic_probe(void);
 197
 198int kvm_arm_pmu_create(CPUState *cs, int irq);
 199
 200#else
 201
 202static inline int kvm_arm_vgic_probe(void)
 203{
 204    return 0;
 205}
 206
 207static inline int kvm_arm_pmu_create(CPUState *cs, int irq)
 208{
 209    return 0;
 210}
 211
 212#endif
 213
 214static inline const char *gic_class_name(void)
 215{
 216    return kvm_irqchip_in_kernel() ? "kvm-arm-gic" : "arm_gic";
 217}
 218
 219/**
 220 * gicv3_class_name
 221 *
 222 * Return name of GICv3 class to use depending on whether KVM acceleration is
 223 * in use. May throw an error if the chosen implementation is not available.
 224 *
 225 * Returns: class name to use
 226 */
 227static inline const char *gicv3_class_name(void)
 228{
 229    if (kvm_irqchip_in_kernel()) {
 230#ifdef TARGET_AARCH64
 231        return "kvm-arm-gicv3";
 232#else
 233        error_report("KVM GICv3 acceleration is not supported on this "
 234                     "platform");
 235        exit(1);
 236#endif
 237    } else {
 238        return "arm-gicv3";
 239    }
 240}
 241
 242/**
 243 * kvm_arm_handle_debug:
 244 * @cs: CPUState
 245 * @debug_exit: debug part of the KVM exit structure
 246 *
 247 * Returns: TRUE if the debug exception was handled.
 248 */
 249bool kvm_arm_handle_debug(CPUState *cs, struct kvm_debug_exit_arch *debug_exit);
 250
 251/**
 252 * kvm_arm_hw_debug_active:
 253 * @cs: CPU State
 254 *
 255 * Return: TRUE if any hardware breakpoints in use.
 256 */
 257
 258bool kvm_arm_hw_debug_active(CPUState *cs);
 259
 260/**
 261 * kvm_arm_copy_hw_debug_data:
 262 *
 263 * @ptr: kvm_guest_debug_arch structure
 264 *
 265 * Copy the architecture specific debug registers into the
 266 * kvm_guest_debug ioctl structure.
 267 */
 268struct kvm_guest_debug_arch;
 269
 270void kvm_arm_copy_hw_debug_data(struct kvm_guest_debug_arch *ptr);
 271
 272/**
 273 * its_class_name
 274 *
 275 * Return the ITS class name to use depending on whether KVM acceleration
 276 * and KVM CAP_SIGNAL_MSI are supported
 277 *
 278 * Returns: class name to use or NULL
 279 */
 280static inline const char *its_class_name(void)
 281{
 282    if (kvm_irqchip_in_kernel()) {
 283        /* KVM implementation requires this capability */
 284        return kvm_direct_msi_enabled() ? "arm-its-kvm" : NULL;
 285    } else {
 286        /* Software emulation is not implemented yet */
 287        return NULL;
 288    }
 289}
 290
 291#endif
 292