Andrew Scull | b4b6d4a | 2019-01-02 15:54:55 +0000 | [diff] [blame^] | 1 | /* |
| 2 | * Copyright (C) 2015, 2016 ARM Ltd. |
| 3 | * |
| 4 | * This program is free software; you can redistribute it and/or modify |
| 5 | * it under the terms of the GNU General Public License version 2 as |
| 6 | * published by the Free Software Foundation. |
| 7 | * |
| 8 | * This program is distributed in the hope that it will be useful, |
| 9 | * but WITHOUT ANY WARRANTY; without even the implied warranty of |
| 10 | * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the |
| 11 | * GNU General Public License for more details. |
| 12 | * |
| 13 | * You should have received a copy of the GNU General Public License |
| 14 | * along with this program. If not, see <http://www.gnu.org/licenses/>. |
| 15 | */ |
| 16 | |
| 17 | #include <linux/uaccess.h> |
| 18 | #include <linux/interrupt.h> |
| 19 | #include <linux/cpu.h> |
| 20 | #include <linux/kvm_host.h> |
| 21 | #include <kvm/arm_vgic.h> |
| 22 | #include <asm/kvm_mmu.h> |
| 23 | #include "vgic.h" |
| 24 | |
| 25 | /* |
| 26 | * Initialization rules: there are multiple stages to the vgic |
| 27 | * initialization, both for the distributor and the CPU interfaces. The basic |
| 28 | * idea is that even though the VGIC is not functional or not requested from |
| 29 | * user space, the critical path of the run loop can still call VGIC functions |
| 30 | * that just won't do anything, without them having to check additional |
| 31 | * initialization flags to ensure they don't look at uninitialized data |
| 32 | * structures. |
| 33 | * |
| 34 | * Distributor: |
| 35 | * |
| 36 | * - kvm_vgic_early_init(): initialization of static data that doesn't |
| 37 | * depend on any sizing information or emulation type. No allocation |
| 38 | * is allowed there. |
| 39 | * |
| 40 | * - vgic_init(): allocation and initialization of the generic data |
| 41 | * structures that depend on sizing information (number of CPUs, |
| 42 | * number of interrupts). Also initializes the vcpu specific data |
| 43 | * structures. Can be executed lazily for GICv2. |
| 44 | * |
| 45 | * CPU Interface: |
| 46 | * |
| 47 | * - kvm_vgic_vcpu_init(): initialization of static data that |
| 48 | * doesn't depend on any sizing information or emulation type. No |
| 49 | * allocation is allowed there. |
| 50 | */ |
| 51 | |
| 52 | /* EARLY INIT */ |
| 53 | |
| 54 | /** |
| 55 | * kvm_vgic_early_init() - Initialize static VGIC VCPU data structures |
| 56 | * @kvm: The VM whose VGIC districutor should be initialized |
| 57 | * |
| 58 | * Only do initialization of static structures that don't require any |
| 59 | * allocation or sizing information from userspace. vgic_init() called |
| 60 | * kvm_vgic_dist_init() which takes care of the rest. |
| 61 | */ |
| 62 | void kvm_vgic_early_init(struct kvm *kvm) |
| 63 | { |
| 64 | struct vgic_dist *dist = &kvm->arch.vgic; |
| 65 | |
| 66 | INIT_LIST_HEAD(&dist->lpi_list_head); |
| 67 | spin_lock_init(&dist->lpi_list_lock); |
| 68 | } |
| 69 | |
| 70 | /* CREATION */ |
| 71 | |
| 72 | /** |
| 73 | * kvm_vgic_create: triggered by the instantiation of the VGIC device by |
| 74 | * user space, either through the legacy KVM_CREATE_IRQCHIP ioctl (v2 only) |
| 75 | * or through the generic KVM_CREATE_DEVICE API ioctl. |
| 76 | * irqchip_in_kernel() tells you if this function succeeded or not. |
| 77 | * @kvm: kvm struct pointer |
| 78 | * @type: KVM_DEV_TYPE_ARM_VGIC_V[23] |
| 79 | */ |
| 80 | int kvm_vgic_create(struct kvm *kvm, u32 type) |
| 81 | { |
| 82 | int i, vcpu_lock_idx = -1, ret; |
| 83 | struct kvm_vcpu *vcpu; |
| 84 | |
| 85 | if (irqchip_in_kernel(kvm)) |
| 86 | return -EEXIST; |
| 87 | |
| 88 | /* |
| 89 | * This function is also called by the KVM_CREATE_IRQCHIP handler, |
| 90 | * which had no chance yet to check the availability of the GICv2 |
| 91 | * emulation. So check this here again. KVM_CREATE_DEVICE does |
| 92 | * the proper checks already. |
| 93 | */ |
| 94 | if (type == KVM_DEV_TYPE_ARM_VGIC_V2 && |
| 95 | !kvm_vgic_global_state.can_emulate_gicv2) |
| 96 | return -ENODEV; |
| 97 | |
| 98 | /* |
| 99 | * Any time a vcpu is run, vcpu_load is called which tries to grab the |
| 100 | * vcpu->mutex. By grabbing the vcpu->mutex of all VCPUs we ensure |
| 101 | * that no other VCPUs are run while we create the vgic. |
| 102 | */ |
| 103 | ret = -EBUSY; |
| 104 | kvm_for_each_vcpu(i, vcpu, kvm) { |
| 105 | if (!mutex_trylock(&vcpu->mutex)) |
| 106 | goto out_unlock; |
| 107 | vcpu_lock_idx = i; |
| 108 | } |
| 109 | |
| 110 | kvm_for_each_vcpu(i, vcpu, kvm) { |
| 111 | if (vcpu->arch.has_run_once) |
| 112 | goto out_unlock; |
| 113 | } |
| 114 | ret = 0; |
| 115 | |
| 116 | if (type == KVM_DEV_TYPE_ARM_VGIC_V2) |
| 117 | kvm->arch.max_vcpus = VGIC_V2_MAX_CPUS; |
| 118 | else |
| 119 | kvm->arch.max_vcpus = VGIC_V3_MAX_CPUS; |
| 120 | |
| 121 | if (atomic_read(&kvm->online_vcpus) > kvm->arch.max_vcpus) { |
| 122 | ret = -E2BIG; |
| 123 | goto out_unlock; |
| 124 | } |
| 125 | |
| 126 | kvm->arch.vgic.in_kernel = true; |
| 127 | kvm->arch.vgic.vgic_model = type; |
| 128 | |
| 129 | kvm->arch.vgic.vgic_dist_base = VGIC_ADDR_UNDEF; |
| 130 | |
| 131 | if (type == KVM_DEV_TYPE_ARM_VGIC_V2) |
| 132 | kvm->arch.vgic.vgic_cpu_base = VGIC_ADDR_UNDEF; |
| 133 | else |
| 134 | INIT_LIST_HEAD(&kvm->arch.vgic.rd_regions); |
| 135 | |
| 136 | out_unlock: |
| 137 | for (; vcpu_lock_idx >= 0; vcpu_lock_idx--) { |
| 138 | vcpu = kvm_get_vcpu(kvm, vcpu_lock_idx); |
| 139 | mutex_unlock(&vcpu->mutex); |
| 140 | } |
| 141 | return ret; |
| 142 | } |
| 143 | |
| 144 | /* INIT/DESTROY */ |
| 145 | |
| 146 | /** |
| 147 | * kvm_vgic_dist_init: initialize the dist data structures |
| 148 | * @kvm: kvm struct pointer |
| 149 | * @nr_spis: number of spis, frozen by caller |
| 150 | */ |
| 151 | static int kvm_vgic_dist_init(struct kvm *kvm, unsigned int nr_spis) |
| 152 | { |
| 153 | struct vgic_dist *dist = &kvm->arch.vgic; |
| 154 | struct kvm_vcpu *vcpu0 = kvm_get_vcpu(kvm, 0); |
| 155 | int i; |
| 156 | |
| 157 | dist->spis = kcalloc(nr_spis, sizeof(struct vgic_irq), GFP_KERNEL); |
| 158 | if (!dist->spis) |
| 159 | return -ENOMEM; |
| 160 | |
| 161 | /* |
| 162 | * In the following code we do not take the irq struct lock since |
| 163 | * no other action on irq structs can happen while the VGIC is |
| 164 | * not initialized yet: |
| 165 | * If someone wants to inject an interrupt or does a MMIO access, we |
| 166 | * require prior initialization in case of a virtual GICv3 or trigger |
| 167 | * initialization when using a virtual GICv2. |
| 168 | */ |
| 169 | for (i = 0; i < nr_spis; i++) { |
| 170 | struct vgic_irq *irq = &dist->spis[i]; |
| 171 | |
| 172 | irq->intid = i + VGIC_NR_PRIVATE_IRQS; |
| 173 | INIT_LIST_HEAD(&irq->ap_list); |
| 174 | spin_lock_init(&irq->irq_lock); |
| 175 | irq->vcpu = NULL; |
| 176 | irq->target_vcpu = vcpu0; |
| 177 | kref_init(&irq->refcount); |
| 178 | if (dist->vgic_model == KVM_DEV_TYPE_ARM_VGIC_V2) { |
| 179 | irq->targets = 0; |
| 180 | irq->group = 0; |
| 181 | } else { |
| 182 | irq->mpidr = 0; |
| 183 | irq->group = 1; |
| 184 | } |
| 185 | } |
| 186 | return 0; |
| 187 | } |
| 188 | |
| 189 | /** |
| 190 | * kvm_vgic_vcpu_init() - Initialize static VGIC VCPU data |
| 191 | * structures and register VCPU-specific KVM iodevs |
| 192 | * |
| 193 | * @vcpu: pointer to the VCPU being created and initialized |
| 194 | * |
| 195 | * Only do initialization, but do not actually enable the |
| 196 | * VGIC CPU interface |
| 197 | */ |
| 198 | int kvm_vgic_vcpu_init(struct kvm_vcpu *vcpu) |
| 199 | { |
| 200 | struct vgic_cpu *vgic_cpu = &vcpu->arch.vgic_cpu; |
| 201 | struct vgic_dist *dist = &vcpu->kvm->arch.vgic; |
| 202 | int ret = 0; |
| 203 | int i; |
| 204 | |
| 205 | vgic_cpu->rd_iodev.base_addr = VGIC_ADDR_UNDEF; |
| 206 | vgic_cpu->sgi_iodev.base_addr = VGIC_ADDR_UNDEF; |
| 207 | |
| 208 | INIT_LIST_HEAD(&vgic_cpu->ap_list_head); |
| 209 | spin_lock_init(&vgic_cpu->ap_list_lock); |
| 210 | |
| 211 | /* |
| 212 | * Enable and configure all SGIs to be edge-triggered and |
| 213 | * configure all PPIs as level-triggered. |
| 214 | */ |
| 215 | for (i = 0; i < VGIC_NR_PRIVATE_IRQS; i++) { |
| 216 | struct vgic_irq *irq = &vgic_cpu->private_irqs[i]; |
| 217 | |
| 218 | INIT_LIST_HEAD(&irq->ap_list); |
| 219 | spin_lock_init(&irq->irq_lock); |
| 220 | irq->intid = i; |
| 221 | irq->vcpu = NULL; |
| 222 | irq->target_vcpu = vcpu; |
| 223 | irq->targets = 1U << vcpu->vcpu_id; |
| 224 | kref_init(&irq->refcount); |
| 225 | if (vgic_irq_is_sgi(i)) { |
| 226 | /* SGIs */ |
| 227 | irq->enabled = 1; |
| 228 | irq->config = VGIC_CONFIG_EDGE; |
| 229 | } else { |
| 230 | /* PPIs */ |
| 231 | irq->config = VGIC_CONFIG_LEVEL; |
| 232 | } |
| 233 | |
| 234 | /* |
| 235 | * GICv3 can only be created via the KVM_DEVICE_CREATE API and |
| 236 | * so we always know the emulation type at this point as it's |
| 237 | * either explicitly configured as GICv3, or explicitly |
| 238 | * configured as GICv2, or not configured yet which also |
| 239 | * implies GICv2. |
| 240 | */ |
| 241 | if (dist->vgic_model == KVM_DEV_TYPE_ARM_VGIC_V3) |
| 242 | irq->group = 1; |
| 243 | else |
| 244 | irq->group = 0; |
| 245 | } |
| 246 | |
| 247 | if (!irqchip_in_kernel(vcpu->kvm)) |
| 248 | return 0; |
| 249 | |
| 250 | /* |
| 251 | * If we are creating a VCPU with a GICv3 we must also register the |
| 252 | * KVM io device for the redistributor that belongs to this VCPU. |
| 253 | */ |
| 254 | if (dist->vgic_model == KVM_DEV_TYPE_ARM_VGIC_V3) { |
| 255 | mutex_lock(&vcpu->kvm->lock); |
| 256 | ret = vgic_register_redist_iodev(vcpu); |
| 257 | mutex_unlock(&vcpu->kvm->lock); |
| 258 | } |
| 259 | return ret; |
| 260 | } |
| 261 | |
| 262 | static void kvm_vgic_vcpu_enable(struct kvm_vcpu *vcpu) |
| 263 | { |
| 264 | if (kvm_vgic_global_state.type == VGIC_V2) |
| 265 | vgic_v2_enable(vcpu); |
| 266 | else |
| 267 | vgic_v3_enable(vcpu); |
| 268 | } |
| 269 | |
| 270 | /* |
| 271 | * vgic_init: allocates and initializes dist and vcpu data structures |
| 272 | * depending on two dimensioning parameters: |
| 273 | * - the number of spis |
| 274 | * - the number of vcpus |
| 275 | * The function is generally called when nr_spis has been explicitly set |
| 276 | * by the guest through the KVM DEVICE API. If not nr_spis is set to 256. |
| 277 | * vgic_initialized() returns true when this function has succeeded. |
| 278 | * Must be called with kvm->lock held! |
| 279 | */ |
| 280 | int vgic_init(struct kvm *kvm) |
| 281 | { |
| 282 | struct vgic_dist *dist = &kvm->arch.vgic; |
| 283 | struct kvm_vcpu *vcpu; |
| 284 | int ret = 0, i; |
| 285 | |
| 286 | if (vgic_initialized(kvm)) |
| 287 | return 0; |
| 288 | |
| 289 | /* Are we also in the middle of creating a VCPU? */ |
| 290 | if (kvm->created_vcpus != atomic_read(&kvm->online_vcpus)) |
| 291 | return -EBUSY; |
| 292 | |
| 293 | /* freeze the number of spis */ |
| 294 | if (!dist->nr_spis) |
| 295 | dist->nr_spis = VGIC_NR_IRQS_LEGACY - VGIC_NR_PRIVATE_IRQS; |
| 296 | |
| 297 | ret = kvm_vgic_dist_init(kvm, dist->nr_spis); |
| 298 | if (ret) |
| 299 | goto out; |
| 300 | |
| 301 | if (vgic_has_its(kvm)) { |
| 302 | ret = vgic_v4_init(kvm); |
| 303 | if (ret) |
| 304 | goto out; |
| 305 | } |
| 306 | |
| 307 | kvm_for_each_vcpu(i, vcpu, kvm) |
| 308 | kvm_vgic_vcpu_enable(vcpu); |
| 309 | |
| 310 | ret = kvm_vgic_setup_default_irq_routing(kvm); |
| 311 | if (ret) |
| 312 | goto out; |
| 313 | |
| 314 | vgic_debug_init(kvm); |
| 315 | |
| 316 | dist->implementation_rev = 2; |
| 317 | dist->initialized = true; |
| 318 | |
| 319 | out: |
| 320 | return ret; |
| 321 | } |
| 322 | |
| 323 | static void kvm_vgic_dist_destroy(struct kvm *kvm) |
| 324 | { |
| 325 | struct vgic_dist *dist = &kvm->arch.vgic; |
| 326 | struct vgic_redist_region *rdreg, *next; |
| 327 | |
| 328 | dist->ready = false; |
| 329 | dist->initialized = false; |
| 330 | |
| 331 | kfree(dist->spis); |
| 332 | dist->spis = NULL; |
| 333 | dist->nr_spis = 0; |
| 334 | |
| 335 | if (kvm->arch.vgic.vgic_model == KVM_DEV_TYPE_ARM_VGIC_V3) { |
| 336 | list_for_each_entry_safe(rdreg, next, &dist->rd_regions, list) { |
| 337 | list_del(&rdreg->list); |
| 338 | kfree(rdreg); |
| 339 | } |
| 340 | INIT_LIST_HEAD(&dist->rd_regions); |
| 341 | } |
| 342 | |
| 343 | if (vgic_supports_direct_msis(kvm)) |
| 344 | vgic_v4_teardown(kvm); |
| 345 | } |
| 346 | |
| 347 | void kvm_vgic_vcpu_destroy(struct kvm_vcpu *vcpu) |
| 348 | { |
| 349 | struct vgic_cpu *vgic_cpu = &vcpu->arch.vgic_cpu; |
| 350 | |
| 351 | INIT_LIST_HEAD(&vgic_cpu->ap_list_head); |
| 352 | } |
| 353 | |
| 354 | /* To be called with kvm->lock held */ |
| 355 | static void __kvm_vgic_destroy(struct kvm *kvm) |
| 356 | { |
| 357 | struct kvm_vcpu *vcpu; |
| 358 | int i; |
| 359 | |
| 360 | vgic_debug_destroy(kvm); |
| 361 | |
| 362 | kvm_vgic_dist_destroy(kvm); |
| 363 | |
| 364 | kvm_for_each_vcpu(i, vcpu, kvm) |
| 365 | kvm_vgic_vcpu_destroy(vcpu); |
| 366 | } |
| 367 | |
| 368 | void kvm_vgic_destroy(struct kvm *kvm) |
| 369 | { |
| 370 | mutex_lock(&kvm->lock); |
| 371 | __kvm_vgic_destroy(kvm); |
| 372 | mutex_unlock(&kvm->lock); |
| 373 | } |
| 374 | |
| 375 | /** |
| 376 | * vgic_lazy_init: Lazy init is only allowed if the GIC exposed to the guest |
| 377 | * is a GICv2. A GICv3 must be explicitly initialized by the guest using the |
| 378 | * KVM_DEV_ARM_VGIC_GRP_CTRL KVM_DEVICE group. |
| 379 | * @kvm: kvm struct pointer |
| 380 | */ |
| 381 | int vgic_lazy_init(struct kvm *kvm) |
| 382 | { |
| 383 | int ret = 0; |
| 384 | |
| 385 | if (unlikely(!vgic_initialized(kvm))) { |
| 386 | /* |
| 387 | * We only provide the automatic initialization of the VGIC |
| 388 | * for the legacy case of a GICv2. Any other type must |
| 389 | * be explicitly initialized once setup with the respective |
| 390 | * KVM device call. |
| 391 | */ |
| 392 | if (kvm->arch.vgic.vgic_model != KVM_DEV_TYPE_ARM_VGIC_V2) |
| 393 | return -EBUSY; |
| 394 | |
| 395 | mutex_lock(&kvm->lock); |
| 396 | ret = vgic_init(kvm); |
| 397 | mutex_unlock(&kvm->lock); |
| 398 | } |
| 399 | |
| 400 | return ret; |
| 401 | } |
| 402 | |
| 403 | /* RESOURCE MAPPING */ |
| 404 | |
| 405 | /** |
| 406 | * Map the MMIO regions depending on the VGIC model exposed to the guest |
| 407 | * called on the first VCPU run. |
| 408 | * Also map the virtual CPU interface into the VM. |
| 409 | * v2/v3 derivatives call vgic_init if not already done. |
| 410 | * vgic_ready() returns true if this function has succeeded. |
| 411 | * @kvm: kvm struct pointer |
| 412 | */ |
| 413 | int kvm_vgic_map_resources(struct kvm *kvm) |
| 414 | { |
| 415 | struct vgic_dist *dist = &kvm->arch.vgic; |
| 416 | int ret = 0; |
| 417 | |
| 418 | mutex_lock(&kvm->lock); |
| 419 | if (!irqchip_in_kernel(kvm)) |
| 420 | goto out; |
| 421 | |
| 422 | if (dist->vgic_model == KVM_DEV_TYPE_ARM_VGIC_V2) |
| 423 | ret = vgic_v2_map_resources(kvm); |
| 424 | else |
| 425 | ret = vgic_v3_map_resources(kvm); |
| 426 | |
| 427 | if (ret) |
| 428 | __kvm_vgic_destroy(kvm); |
| 429 | |
| 430 | out: |
| 431 | mutex_unlock(&kvm->lock); |
| 432 | return ret; |
| 433 | } |
| 434 | |
| 435 | /* GENERIC PROBE */ |
| 436 | |
| 437 | static int vgic_init_cpu_starting(unsigned int cpu) |
| 438 | { |
| 439 | enable_percpu_irq(kvm_vgic_global_state.maint_irq, 0); |
| 440 | return 0; |
| 441 | } |
| 442 | |
| 443 | |
| 444 | static int vgic_init_cpu_dying(unsigned int cpu) |
| 445 | { |
| 446 | disable_percpu_irq(kvm_vgic_global_state.maint_irq); |
| 447 | return 0; |
| 448 | } |
| 449 | |
| 450 | static irqreturn_t vgic_maintenance_handler(int irq, void *data) |
| 451 | { |
| 452 | /* |
| 453 | * We cannot rely on the vgic maintenance interrupt to be |
| 454 | * delivered synchronously. This means we can only use it to |
| 455 | * exit the VM, and we perform the handling of EOIed |
| 456 | * interrupts on the exit path (see vgic_fold_lr_state). |
| 457 | */ |
| 458 | return IRQ_HANDLED; |
| 459 | } |
| 460 | |
| 461 | /** |
| 462 | * kvm_vgic_init_cpu_hardware - initialize the GIC VE hardware |
| 463 | * |
| 464 | * For a specific CPU, initialize the GIC VE hardware. |
| 465 | */ |
| 466 | void kvm_vgic_init_cpu_hardware(void) |
| 467 | { |
| 468 | BUG_ON(preemptible()); |
| 469 | |
| 470 | /* |
| 471 | * We want to make sure the list registers start out clear so that we |
| 472 | * only have the program the used registers. |
| 473 | */ |
| 474 | if (kvm_vgic_global_state.type == VGIC_V2) |
| 475 | vgic_v2_init_lrs(); |
| 476 | else |
| 477 | kvm_call_hyp(__vgic_v3_init_lrs); |
| 478 | } |
| 479 | |
| 480 | /** |
| 481 | * kvm_vgic_hyp_init: populates the kvm_vgic_global_state variable |
| 482 | * according to the host GIC model. Accordingly calls either |
| 483 | * vgic_v2/v3_probe which registers the KVM_DEVICE that can be |
| 484 | * instantiated by a guest later on . |
| 485 | */ |
| 486 | int kvm_vgic_hyp_init(void) |
| 487 | { |
| 488 | const struct gic_kvm_info *gic_kvm_info; |
| 489 | int ret; |
| 490 | |
| 491 | gic_kvm_info = gic_get_kvm_info(); |
| 492 | if (!gic_kvm_info) |
| 493 | return -ENODEV; |
| 494 | |
| 495 | if (!gic_kvm_info->maint_irq) { |
| 496 | kvm_err("No vgic maintenance irq\n"); |
| 497 | return -ENXIO; |
| 498 | } |
| 499 | |
| 500 | switch (gic_kvm_info->type) { |
| 501 | case GIC_V2: |
| 502 | ret = vgic_v2_probe(gic_kvm_info); |
| 503 | break; |
| 504 | case GIC_V3: |
| 505 | ret = vgic_v3_probe(gic_kvm_info); |
| 506 | if (!ret) { |
| 507 | static_branch_enable(&kvm_vgic_global_state.gicv3_cpuif); |
| 508 | kvm_info("GIC system register CPU interface enabled\n"); |
| 509 | } |
| 510 | break; |
| 511 | default: |
| 512 | ret = -ENODEV; |
| 513 | }; |
| 514 | |
| 515 | if (ret) |
| 516 | return ret; |
| 517 | |
| 518 | kvm_vgic_global_state.maint_irq = gic_kvm_info->maint_irq; |
| 519 | ret = request_percpu_irq(kvm_vgic_global_state.maint_irq, |
| 520 | vgic_maintenance_handler, |
| 521 | "vgic", kvm_get_running_vcpus()); |
| 522 | if (ret) { |
| 523 | kvm_err("Cannot register interrupt %d\n", |
| 524 | kvm_vgic_global_state.maint_irq); |
| 525 | return ret; |
| 526 | } |
| 527 | |
| 528 | ret = cpuhp_setup_state(CPUHP_AP_KVM_ARM_VGIC_INIT_STARTING, |
| 529 | "kvm/arm/vgic:starting", |
| 530 | vgic_init_cpu_starting, vgic_init_cpu_dying); |
| 531 | if (ret) { |
| 532 | kvm_err("Cannot register vgic CPU notifier\n"); |
| 533 | goto out_free_irq; |
| 534 | } |
| 535 | |
| 536 | kvm_info("vgic interrupt IRQ%d\n", kvm_vgic_global_state.maint_irq); |
| 537 | return 0; |
| 538 | |
| 539 | out_free_irq: |
| 540 | free_percpu_irq(kvm_vgic_global_state.maint_irq, |
| 541 | kvm_get_running_vcpus()); |
| 542 | return ret; |
| 543 | } |