linux/drivers/irqchip/irq-gic.c
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   1/*
   2 *  Copyright (C) 2002 ARM Limited, All Rights Reserved.
   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 * Interrupt architecture for the GIC:
   9 *
  10 * o There is one Interrupt Distributor, which receives interrupts
  11 *   from system devices and sends them to the Interrupt Controllers.
  12 *
  13 * o There is one CPU Interface per CPU, which sends interrupts sent
  14 *   by the Distributor, and interrupts generated locally, to the
  15 *   associated CPU. The base address of the CPU interface is usually
  16 *   aliased so that the same address points to different chips depending
  17 *   on the CPU it is accessed from.
  18 *
  19 * Note that IRQs 0-31 are special - they are local to each CPU.
  20 * As such, the enable set/clear, pending set/clear and active bit
  21 * registers are banked per-cpu for these sources.
  22 */
  23#include <linux/init.h>
  24#include <linux/kernel.h>
  25#include <linux/err.h>
  26#include <linux/module.h>
  27#include <linux/list.h>
  28#include <linux/smp.h>
  29#include <linux/cpu.h>
  30#include <linux/cpu_pm.h>
  31#include <linux/cpumask.h>
  32#include <linux/io.h>
  33#include <linux/of.h>
  34#include <linux/of_address.h>
  35#include <linux/of_irq.h>
  36#include <linux/acpi.h>
  37#include <linux/irqdomain.h>
  38#include <linux/interrupt.h>
  39#include <linux/percpu.h>
  40#include <linux/slab.h>
  41#include <linux/irqchip.h>
  42#include <linux/irqchip/chained_irq.h>
  43#include <linux/irqchip/arm-gic.h>
  44
  45#include <asm/cputype.h>
  46#include <asm/irq.h>
  47#include <asm/exception.h>
  48#include <asm/smp_plat.h>
  49#include <asm/virt.h>
  50
  51#include "irq-gic-common.h"
  52
  53#ifdef CONFIG_ARM64
  54#include <asm/cpufeature.h>
  55
  56static void gic_check_cpu_features(void)
  57{
  58        WARN_TAINT_ONCE(this_cpu_has_cap(ARM64_HAS_SYSREG_GIC_CPUIF),
  59                        TAINT_CPU_OUT_OF_SPEC,
  60                        "GICv3 system registers enabled, broken firmware!\n");
  61}
  62#else
  63#define gic_check_cpu_features()        do { } while(0)
  64#endif
  65
  66union gic_base {
  67        void __iomem *common_base;
  68        void __percpu * __iomem *percpu_base;
  69};
  70
  71struct gic_chip_data {
  72        struct irq_chip chip;
  73        union gic_base dist_base;
  74        union gic_base cpu_base;
  75        void __iomem *raw_dist_base;
  76        void __iomem *raw_cpu_base;
  77        u32 percpu_offset;
  78#if defined(CONFIG_CPU_PM) || defined(CONFIG_ARM_GIC_PM)
  79        u32 saved_spi_enable[DIV_ROUND_UP(1020, 32)];
  80        u32 saved_spi_active[DIV_ROUND_UP(1020, 32)];
  81        u32 saved_spi_conf[DIV_ROUND_UP(1020, 16)];
  82        u32 saved_spi_target[DIV_ROUND_UP(1020, 4)];
  83        u32 __percpu *saved_ppi_enable;
  84        u32 __percpu *saved_ppi_active;
  85        u32 __percpu *saved_ppi_conf;
  86#endif
  87        struct irq_domain *domain;
  88        unsigned int gic_irqs;
  89#ifdef CONFIG_GIC_NON_BANKED
  90        void __iomem *(*get_base)(union gic_base *);
  91#endif
  92};
  93
  94#ifdef CONFIG_BL_SWITCHER
  95
  96static DEFINE_RAW_SPINLOCK(cpu_map_lock);
  97
  98#define gic_lock_irqsave(f)             \
  99        raw_spin_lock_irqsave(&cpu_map_lock, (f))
 100#define gic_unlock_irqrestore(f)        \
 101        raw_spin_unlock_irqrestore(&cpu_map_lock, (f))
 102
 103#define gic_lock()                      raw_spin_lock(&cpu_map_lock)
 104#define gic_unlock()                    raw_spin_unlock(&cpu_map_lock)
 105
 106#else
 107
 108#define gic_lock_irqsave(f)             do { (void)(f); } while(0)
 109#define gic_unlock_irqrestore(f)        do { (void)(f); } while(0)
 110
 111#define gic_lock()                      do { } while(0)
 112#define gic_unlock()                    do { } while(0)
 113
 114#endif
 115
 116/*
 117 * The GIC mapping of CPU interfaces does not necessarily match
 118 * the logical CPU numbering.  Let's use a mapping as returned
 119 * by the GIC itself.
 120 */
 121#define NR_GIC_CPU_IF 8
 122static u8 gic_cpu_map[NR_GIC_CPU_IF] __read_mostly;
 123
 124static struct static_key supports_deactivate = STATIC_KEY_INIT_TRUE;
 125
 126static struct gic_chip_data gic_data[CONFIG_ARM_GIC_MAX_NR] __read_mostly;
 127
 128static struct gic_kvm_info gic_v2_kvm_info;
 129
 130#ifdef CONFIG_GIC_NON_BANKED
 131static void __iomem *gic_get_percpu_base(union gic_base *base)
 132{
 133        return raw_cpu_read(*base->percpu_base);
 134}
 135
 136static void __iomem *gic_get_common_base(union gic_base *base)
 137{
 138        return base->common_base;
 139}
 140
 141static inline void __iomem *gic_data_dist_base(struct gic_chip_data *data)
 142{
 143        return data->get_base(&data->dist_base);
 144}
 145
 146static inline void __iomem *gic_data_cpu_base(struct gic_chip_data *data)
 147{
 148        return data->get_base(&data->cpu_base);
 149}
 150
 151static inline void gic_set_base_accessor(struct gic_chip_data *data,
 152                                         void __iomem *(*f)(union gic_base *))
 153{
 154        data->get_base = f;
 155}
 156#else
 157#define gic_data_dist_base(d)   ((d)->dist_base.common_base)
 158#define gic_data_cpu_base(d)    ((d)->cpu_base.common_base)
 159#define gic_set_base_accessor(d, f)
 160#endif
 161
 162static inline void __iomem *gic_dist_base(struct irq_data *d)
 163{
 164        struct gic_chip_data *gic_data = irq_data_get_irq_chip_data(d);
 165        return gic_data_dist_base(gic_data);
 166}
 167
 168static inline void __iomem *gic_cpu_base(struct irq_data *d)
 169{
 170        struct gic_chip_data *gic_data = irq_data_get_irq_chip_data(d);
 171        return gic_data_cpu_base(gic_data);
 172}
 173
 174static inline unsigned int gic_irq(struct irq_data *d)
 175{
 176        return d->hwirq;
 177}
 178
 179static inline bool cascading_gic_irq(struct irq_data *d)
 180{
 181        void *data = irq_data_get_irq_handler_data(d);
 182
 183        /*
 184         * If handler_data is set, this is a cascading interrupt, and
 185         * it cannot possibly be forwarded.
 186         */
 187        return data != NULL;
 188}
 189
 190/*
 191 * Routines to acknowledge, disable and enable interrupts
 192 */
 193static void gic_poke_irq(struct irq_data *d, u32 offset)
 194{
 195        u32 mask = 1 << (gic_irq(d) % 32);
 196        writel_relaxed(mask, gic_dist_base(d) + offset + (gic_irq(d) / 32) * 4);
 197}
 198
 199static int gic_peek_irq(struct irq_data *d, u32 offset)
 200{
 201        u32 mask = 1 << (gic_irq(d) % 32);
 202        return !!(readl_relaxed(gic_dist_base(d) + offset + (gic_irq(d) / 32) * 4) & mask);
 203}
 204
 205static void gic_mask_irq(struct irq_data *d)
 206{
 207        gic_poke_irq(d, GIC_DIST_ENABLE_CLEAR);
 208}
 209
 210static void gic_eoimode1_mask_irq(struct irq_data *d)
 211{
 212        gic_mask_irq(d);
 213        /*
 214         * When masking a forwarded interrupt, make sure it is
 215         * deactivated as well.
 216         *
 217         * This ensures that an interrupt that is getting
 218         * disabled/masked will not get "stuck", because there is
 219         * noone to deactivate it (guest is being terminated).
 220         */
 221        if (irqd_is_forwarded_to_vcpu(d))
 222                gic_poke_irq(d, GIC_DIST_ACTIVE_CLEAR);
 223}
 224
 225static void gic_unmask_irq(struct irq_data *d)
 226{
 227        gic_poke_irq(d, GIC_DIST_ENABLE_SET);
 228}
 229
 230static void gic_eoi_irq(struct irq_data *d)
 231{
 232        writel_relaxed(gic_irq(d), gic_cpu_base(d) + GIC_CPU_EOI);
 233}
 234
 235static void gic_eoimode1_eoi_irq(struct irq_data *d)
 236{
 237        /* Do not deactivate an IRQ forwarded to a vcpu. */
 238        if (irqd_is_forwarded_to_vcpu(d))
 239                return;
 240
 241        writel_relaxed(gic_irq(d), gic_cpu_base(d) + GIC_CPU_DEACTIVATE);
 242}
 243
 244static int gic_irq_set_irqchip_state(struct irq_data *d,
 245                                     enum irqchip_irq_state which, bool val)
 246{
 247        u32 reg;
 248
 249        switch (which) {
 250        case IRQCHIP_STATE_PENDING:
 251                reg = val ? GIC_DIST_PENDING_SET : GIC_DIST_PENDING_CLEAR;
 252                break;
 253
 254        case IRQCHIP_STATE_ACTIVE:
 255                reg = val ? GIC_DIST_ACTIVE_SET : GIC_DIST_ACTIVE_CLEAR;
 256                break;
 257
 258        case IRQCHIP_STATE_MASKED:
 259                reg = val ? GIC_DIST_ENABLE_CLEAR : GIC_DIST_ENABLE_SET;
 260                break;
 261
 262        default:
 263                return -EINVAL;
 264        }
 265
 266        gic_poke_irq(d, reg);
 267        return 0;
 268}
 269
 270static int gic_irq_get_irqchip_state(struct irq_data *d,
 271                                      enum irqchip_irq_state which, bool *val)
 272{
 273        switch (which) {
 274        case IRQCHIP_STATE_PENDING:
 275                *val = gic_peek_irq(d, GIC_DIST_PENDING_SET);
 276                break;
 277
 278        case IRQCHIP_STATE_ACTIVE:
 279                *val = gic_peek_irq(d, GIC_DIST_ACTIVE_SET);
 280                break;
 281
 282        case IRQCHIP_STATE_MASKED:
 283                *val = !gic_peek_irq(d, GIC_DIST_ENABLE_SET);
 284                break;
 285
 286        default:
 287                return -EINVAL;
 288        }
 289
 290        return 0;
 291}
 292
 293static int gic_set_type(struct irq_data *d, unsigned int type)
 294{
 295        void __iomem *base = gic_dist_base(d);
 296        unsigned int gicirq = gic_irq(d);
 297
 298        /* Interrupt configuration for SGIs can't be changed */
 299        if (gicirq < 16)
 300                return -EINVAL;
 301
 302        /* SPIs have restrictions on the supported types */
 303        if (gicirq >= 32 && type != IRQ_TYPE_LEVEL_HIGH &&
 304                            type != IRQ_TYPE_EDGE_RISING)
 305                return -EINVAL;
 306
 307        return gic_configure_irq(gicirq, type, base, NULL);
 308}
 309
 310static int gic_irq_set_vcpu_affinity(struct irq_data *d, void *vcpu)
 311{
 312        /* Only interrupts on the primary GIC can be forwarded to a vcpu. */
 313        if (cascading_gic_irq(d))
 314                return -EINVAL;
 315
 316        if (vcpu)
 317                irqd_set_forwarded_to_vcpu(d);
 318        else
 319                irqd_clr_forwarded_to_vcpu(d);
 320        return 0;
 321}
 322
 323#ifdef CONFIG_SMP
 324static int gic_set_affinity(struct irq_data *d, const struct cpumask *mask_val,
 325                            bool force)
 326{
 327        void __iomem *reg = gic_dist_base(d) + GIC_DIST_TARGET + (gic_irq(d) & ~3);
 328        unsigned int cpu, shift = (gic_irq(d) % 4) * 8;
 329        u32 val, mask, bit;
 330        unsigned long flags;
 331
 332        if (!force)
 333                cpu = cpumask_any_and(mask_val, cpu_online_mask);
 334        else
 335                cpu = cpumask_first(mask_val);
 336
 337        if (cpu >= NR_GIC_CPU_IF || cpu >= nr_cpu_ids)
 338                return -EINVAL;
 339
 340        gic_lock_irqsave(flags);
 341        mask = 0xff << shift;
 342        bit = gic_cpu_map[cpu] << shift;
 343        val = readl_relaxed(reg) & ~mask;
 344        writel_relaxed(val | bit, reg);
 345        gic_unlock_irqrestore(flags);
 346
 347        irq_data_update_effective_affinity(d, cpumask_of(cpu));
 348
 349        return IRQ_SET_MASK_OK_DONE;
 350}
 351
 352void gic_set_cpu(unsigned int cpu, unsigned int irq)
 353{
 354        struct irq_data *d = irq_get_irq_data(irq);
 355        struct cpumask mask;
 356
 357        cpumask_clear(&mask);
 358        cpumask_set_cpu(cpu, &mask);
 359        gic_set_affinity(d, &mask, true);
 360}
 361EXPORT_SYMBOL(gic_set_cpu);
 362#endif
 363
 364static void __exception_irq_entry gic_handle_irq(struct pt_regs *regs)
 365{
 366        u32 irqstat, irqnr;
 367        struct gic_chip_data *gic = &gic_data[0];
 368        void __iomem *cpu_base = gic_data_cpu_base(gic);
 369
 370        do {
 371                irqstat = readl_relaxed(cpu_base + GIC_CPU_INTACK);
 372                irqnr = irqstat & GICC_IAR_INT_ID_MASK;
 373
 374                if (likely(irqnr > 15 && irqnr < 1020)) {
 375                        if (static_key_true(&supports_deactivate))
 376                                writel_relaxed(irqstat, cpu_base + GIC_CPU_EOI);
 377                        isb();
 378                        handle_domain_irq(gic->domain, irqnr, regs);
 379                        continue;
 380                }
 381                if (irqnr < 16) {
 382                        writel_relaxed(irqstat, cpu_base + GIC_CPU_EOI);
 383                        if (static_key_true(&supports_deactivate))
 384                                writel_relaxed(irqstat, cpu_base + GIC_CPU_DEACTIVATE);
 385#ifdef CONFIG_SMP
 386                        /*
 387                         * Ensure any shared data written by the CPU sending
 388                         * the IPI is read after we've read the ACK register
 389                         * on the GIC.
 390                         *
 391                         * Pairs with the write barrier in gic_raise_softirq
 392                         */
 393                        smp_rmb();
 394                        handle_IPI(irqnr, regs);
 395#endif
 396                        continue;
 397                }
 398                break;
 399        } while (1);
 400}
 401
 402static void gic_handle_cascade_irq(struct irq_desc *desc)
 403{
 404        struct gic_chip_data *chip_data = irq_desc_get_handler_data(desc);
 405        struct irq_chip *chip = irq_desc_get_chip(desc);
 406        unsigned int cascade_irq, gic_irq;
 407        unsigned long status;
 408
 409        chained_irq_enter(chip, desc);
 410
 411        status = readl_relaxed(gic_data_cpu_base(chip_data) + GIC_CPU_INTACK);
 412
 413        gic_irq = (status & GICC_IAR_INT_ID_MASK);
 414        if (gic_irq == GICC_INT_SPURIOUS)
 415                goto out;
 416
 417        cascade_irq = irq_find_mapping(chip_data->domain, gic_irq);
 418        if (unlikely(gic_irq < 32 || gic_irq > 1020)) {
 419                handle_bad_irq(desc);
 420        } else {
 421                isb();
 422                generic_handle_irq(cascade_irq);
 423        }
 424
 425 out:
 426        chained_irq_exit(chip, desc);
 427}
 428
 429static const struct irq_chip gic_chip = {
 430        .irq_mask               = gic_mask_irq,
 431        .irq_unmask             = gic_unmask_irq,
 432        .irq_eoi                = gic_eoi_irq,
 433        .irq_set_type           = gic_set_type,
 434        .irq_get_irqchip_state  = gic_irq_get_irqchip_state,
 435        .irq_set_irqchip_state  = gic_irq_set_irqchip_state,
 436        .flags                  = IRQCHIP_SET_TYPE_MASKED |
 437                                  IRQCHIP_SKIP_SET_WAKE |
 438                                  IRQCHIP_MASK_ON_SUSPEND,
 439};
 440
 441void __init gic_cascade_irq(unsigned int gic_nr, unsigned int irq)
 442{
 443        BUG_ON(gic_nr >= CONFIG_ARM_GIC_MAX_NR);
 444        irq_set_chained_handler_and_data(irq, gic_handle_cascade_irq,
 445                                         &gic_data[gic_nr]);
 446}
 447
 448static u8 gic_get_cpumask(struct gic_chip_data *gic)
 449{
 450        void __iomem *base = gic_data_dist_base(gic);
 451        u32 mask, i;
 452
 453        for (i = mask = 0; i < 32; i += 4) {
 454                mask = readl_relaxed(base + GIC_DIST_TARGET + i);
 455                mask |= mask >> 16;
 456                mask |= mask >> 8;
 457                if (mask)
 458                        break;
 459        }
 460
 461        if (!mask && num_possible_cpus() > 1)
 462                pr_crit("GIC CPU mask not found - kernel will fail to boot.\n");
 463
 464        return mask;
 465}
 466
 467static void gic_cpu_if_up(struct gic_chip_data *gic)
 468{
 469        void __iomem *cpu_base = gic_data_cpu_base(gic);
 470        u32 bypass = 0;
 471        u32 mode = 0;
 472
 473        if (gic == &gic_data[0] && static_key_true(&supports_deactivate))
 474                mode = GIC_CPU_CTRL_EOImodeNS;
 475
 476        /*
 477        * Preserve bypass disable bits to be written back later
 478        */
 479        bypass = readl(cpu_base + GIC_CPU_CTRL);
 480        bypass &= GICC_DIS_BYPASS_MASK;
 481
 482        writel_relaxed(bypass | mode | GICC_ENABLE, cpu_base + GIC_CPU_CTRL);
 483}
 484
 485
 486static void gic_dist_init(struct gic_chip_data *gic)
 487{
 488        unsigned int i;
 489        u32 cpumask;
 490        unsigned int gic_irqs = gic->gic_irqs;
 491        void __iomem *base = gic_data_dist_base(gic);
 492
 493        writel_relaxed(GICD_DISABLE, base + GIC_DIST_CTRL);
 494
 495        /*
 496         * Set all global interrupts to this CPU only.
 497         */
 498        cpumask = gic_get_cpumask(gic);
 499        cpumask |= cpumask << 8;
 500        cpumask |= cpumask << 16;
 501        for (i = 32; i < gic_irqs; i += 4)
 502                writel_relaxed(cpumask, base + GIC_DIST_TARGET + i * 4 / 4);
 503
 504        gic_dist_config(base, gic_irqs, NULL);
 505
 506        writel_relaxed(GICD_ENABLE, base + GIC_DIST_CTRL);
 507}
 508
 509static int gic_cpu_init(struct gic_chip_data *gic)
 510{
 511        void __iomem *dist_base = gic_data_dist_base(gic);
 512        void __iomem *base = gic_data_cpu_base(gic);
 513        unsigned int cpu_mask, cpu = smp_processor_id();
 514        int i;
 515
 516        /*
 517         * Setting up the CPU map is only relevant for the primary GIC
 518         * because any nested/secondary GICs do not directly interface
 519         * with the CPU(s).
 520         */
 521        if (gic == &gic_data[0]) {
 522                /*
 523                 * Get what the GIC says our CPU mask is.
 524                 */
 525                if (WARN_ON(cpu >= NR_GIC_CPU_IF))
 526                        return -EINVAL;
 527
 528                gic_check_cpu_features();
 529                cpu_mask = gic_get_cpumask(gic);
 530                gic_cpu_map[cpu] = cpu_mask;
 531
 532                /*
 533                 * Clear our mask from the other map entries in case they're
 534                 * still undefined.
 535                 */
 536                for (i = 0; i < NR_GIC_CPU_IF; i++)
 537                        if (i != cpu)
 538                                gic_cpu_map[i] &= ~cpu_mask;
 539        }
 540
 541        gic_cpu_config(dist_base, NULL);
 542
 543        writel_relaxed(GICC_INT_PRI_THRESHOLD, base + GIC_CPU_PRIMASK);
 544        gic_cpu_if_up(gic);
 545
 546        return 0;
 547}
 548
 549int gic_cpu_if_down(unsigned int gic_nr)
 550{
 551        void __iomem *cpu_base;
 552        u32 val = 0;
 553
 554        if (gic_nr >= CONFIG_ARM_GIC_MAX_NR)
 555                return -EINVAL;
 556
 557        cpu_base = gic_data_cpu_base(&gic_data[gic_nr]);
 558        val = readl(cpu_base + GIC_CPU_CTRL);
 559        val &= ~GICC_ENABLE;
 560        writel_relaxed(val, cpu_base + GIC_CPU_CTRL);
 561
 562        return 0;
 563}
 564
 565#if defined(CONFIG_CPU_PM) || defined(CONFIG_ARM_GIC_PM)
 566/*
 567 * Saves the GIC distributor registers during suspend or idle.  Must be called
 568 * with interrupts disabled but before powering down the GIC.  After calling
 569 * this function, no interrupts will be delivered by the GIC, and another
 570 * platform-specific wakeup source must be enabled.
 571 */
 572void gic_dist_save(struct gic_chip_data *gic)
 573{
 574        unsigned int gic_irqs;
 575        void __iomem *dist_base;
 576        int i;
 577
 578        if (WARN_ON(!gic))
 579                return;
 580
 581        gic_irqs = gic->gic_irqs;
 582        dist_base = gic_data_dist_base(gic);
 583
 584        if (!dist_base)
 585                return;
 586
 587        for (i = 0; i < DIV_ROUND_UP(gic_irqs, 16); i++)
 588                gic->saved_spi_conf[i] =
 589                        readl_relaxed(dist_base + GIC_DIST_CONFIG + i * 4);
 590
 591        for (i = 0; i < DIV_ROUND_UP(gic_irqs, 4); i++)
 592                gic->saved_spi_target[i] =
 593                        readl_relaxed(dist_base + GIC_DIST_TARGET + i * 4);
 594
 595        for (i = 0; i < DIV_ROUND_UP(gic_irqs, 32); i++)
 596                gic->saved_spi_enable[i] =
 597                        readl_relaxed(dist_base + GIC_DIST_ENABLE_SET + i * 4);
 598
 599        for (i = 0; i < DIV_ROUND_UP(gic_irqs, 32); i++)
 600                gic->saved_spi_active[i] =
 601                        readl_relaxed(dist_base + GIC_DIST_ACTIVE_SET + i * 4);
 602}
 603
 604/*
 605 * Restores the GIC distributor registers during resume or when coming out of
 606 * idle.  Must be called before enabling interrupts.  If a level interrupt
 607 * that occured while the GIC was suspended is still present, it will be
 608 * handled normally, but any edge interrupts that occured will not be seen by
 609 * the GIC and need to be handled by the platform-specific wakeup source.
 610 */
 611void gic_dist_restore(struct gic_chip_data *gic)
 612{
 613        unsigned int gic_irqs;
 614        unsigned int i;
 615        void __iomem *dist_base;
 616
 617        if (WARN_ON(!gic))
 618                return;
 619
 620        gic_irqs = gic->gic_irqs;
 621        dist_base = gic_data_dist_base(gic);
 622
 623        if (!dist_base)
 624                return;
 625
 626        writel_relaxed(GICD_DISABLE, dist_base + GIC_DIST_CTRL);
 627
 628        for (i = 0; i < DIV_ROUND_UP(gic_irqs, 16); i++)
 629                writel_relaxed(gic->saved_spi_conf[i],
 630                        dist_base + GIC_DIST_CONFIG + i * 4);
 631
 632        for (i = 0; i < DIV_ROUND_UP(gic_irqs, 4); i++)
 633                writel_relaxed(GICD_INT_DEF_PRI_X4,
 634                        dist_base + GIC_DIST_PRI + i * 4);
 635
 636        for (i = 0; i < DIV_ROUND_UP(gic_irqs, 4); i++)
 637                writel_relaxed(gic->saved_spi_target[i],
 638                        dist_base + GIC_DIST_TARGET + i * 4);
 639
 640        for (i = 0; i < DIV_ROUND_UP(gic_irqs, 32); i++) {
 641                writel_relaxed(GICD_INT_EN_CLR_X32,
 642                        dist_base + GIC_DIST_ENABLE_CLEAR + i * 4);
 643                writel_relaxed(gic->saved_spi_enable[i],
 644                        dist_base + GIC_DIST_ENABLE_SET + i * 4);
 645        }
 646
 647        for (i = 0; i < DIV_ROUND_UP(gic_irqs, 32); i++) {
 648                writel_relaxed(GICD_INT_EN_CLR_X32,
 649                        dist_base + GIC_DIST_ACTIVE_CLEAR + i * 4);
 650                writel_relaxed(gic->saved_spi_active[i],
 651                        dist_base + GIC_DIST_ACTIVE_SET + i * 4);
 652        }
 653
 654        writel_relaxed(GICD_ENABLE, dist_base + GIC_DIST_CTRL);
 655}
 656
 657void gic_cpu_save(struct gic_chip_data *gic)
 658{
 659        int i;
 660        u32 *ptr;
 661        void __iomem *dist_base;
 662        void __iomem *cpu_base;
 663
 664        if (WARN_ON(!gic))
 665                return;
 666
 667        dist_base = gic_data_dist_base(gic);
 668        cpu_base = gic_data_cpu_base(gic);
 669
 670        if (!dist_base || !cpu_base)
 671                return;
 672
 673        ptr = raw_cpu_ptr(gic->saved_ppi_enable);
 674        for (i = 0; i < DIV_ROUND_UP(32, 32); i++)
 675                ptr[i] = readl_relaxed(dist_base + GIC_DIST_ENABLE_SET + i * 4);
 676
 677        ptr = raw_cpu_ptr(gic->saved_ppi_active);
 678        for (i = 0; i < DIV_ROUND_UP(32, 32); i++)
 679                ptr[i] = readl_relaxed(dist_base + GIC_DIST_ACTIVE_SET + i * 4);
 680
 681        ptr = raw_cpu_ptr(gic->saved_ppi_conf);
 682        for (i = 0; i < DIV_ROUND_UP(32, 16); i++)
 683                ptr[i] = readl_relaxed(dist_base + GIC_DIST_CONFIG + i * 4);
 684
 685}
 686
 687void gic_cpu_restore(struct gic_chip_data *gic)
 688{
 689        int i;
 690        u32 *ptr;
 691        void __iomem *dist_base;
 692        void __iomem *cpu_base;
 693
 694        if (WARN_ON(!gic))
 695                return;
 696
 697        dist_base = gic_data_dist_base(gic);
 698        cpu_base = gic_data_cpu_base(gic);
 699
 700        if (!dist_base || !cpu_base)
 701                return;
 702
 703        ptr = raw_cpu_ptr(gic->saved_ppi_enable);
 704        for (i = 0; i < DIV_ROUND_UP(32, 32); i++) {
 705                writel_relaxed(GICD_INT_EN_CLR_X32,
 706                               dist_base + GIC_DIST_ENABLE_CLEAR + i * 4);
 707                writel_relaxed(ptr[i], dist_base + GIC_DIST_ENABLE_SET + i * 4);
 708        }
 709
 710        ptr = raw_cpu_ptr(gic->saved_ppi_active);
 711        for (i = 0; i < DIV_ROUND_UP(32, 32); i++) {
 712                writel_relaxed(GICD_INT_EN_CLR_X32,
 713                               dist_base + GIC_DIST_ACTIVE_CLEAR + i * 4);
 714                writel_relaxed(ptr[i], dist_base + GIC_DIST_ACTIVE_SET + i * 4);
 715        }
 716
 717        ptr = raw_cpu_ptr(gic->saved_ppi_conf);
 718        for (i = 0; i < DIV_ROUND_UP(32, 16); i++)
 719                writel_relaxed(ptr[i], dist_base + GIC_DIST_CONFIG + i * 4);
 720
 721        for (i = 0; i < DIV_ROUND_UP(32, 4); i++)
 722                writel_relaxed(GICD_INT_DEF_PRI_X4,
 723                                        dist_base + GIC_DIST_PRI + i * 4);
 724
 725        writel_relaxed(GICC_INT_PRI_THRESHOLD, cpu_base + GIC_CPU_PRIMASK);
 726        gic_cpu_if_up(gic);
 727}
 728
 729static int gic_notifier(struct notifier_block *self, unsigned long cmd, void *v)
 730{
 731        int i;
 732
 733        for (i = 0; i < CONFIG_ARM_GIC_MAX_NR; i++) {
 734#ifdef CONFIG_GIC_NON_BANKED
 735                /* Skip over unused GICs */
 736                if (!gic_data[i].get_base)
 737                        continue;
 738#endif
 739                switch (cmd) {
 740                case CPU_PM_ENTER:
 741                        gic_cpu_save(&gic_data[i]);
 742                        break;
 743                case CPU_PM_ENTER_FAILED:
 744                case CPU_PM_EXIT:
 745                        gic_cpu_restore(&gic_data[i]);
 746                        break;
 747                case CPU_CLUSTER_PM_ENTER:
 748                        gic_dist_save(&gic_data[i]);
 749                        break;
 750                case CPU_CLUSTER_PM_ENTER_FAILED:
 751                case CPU_CLUSTER_PM_EXIT:
 752                        gic_dist_restore(&gic_data[i]);
 753                        break;
 754                }
 755        }
 756
 757        return NOTIFY_OK;
 758}
 759
 760static struct notifier_block gic_notifier_block = {
 761        .notifier_call = gic_notifier,
 762};
 763
 764static int gic_pm_init(struct gic_chip_data *gic)
 765{
 766        gic->saved_ppi_enable = __alloc_percpu(DIV_ROUND_UP(32, 32) * 4,
 767                sizeof(u32));
 768        if (WARN_ON(!gic->saved_ppi_enable))
 769                return -ENOMEM;
 770
 771        gic->saved_ppi_active = __alloc_percpu(DIV_ROUND_UP(32, 32) * 4,
 772                sizeof(u32));
 773        if (WARN_ON(!gic->saved_ppi_active))
 774                goto free_ppi_enable;
 775
 776        gic->saved_ppi_conf = __alloc_percpu(DIV_ROUND_UP(32, 16) * 4,
 777                sizeof(u32));
 778        if (WARN_ON(!gic->saved_ppi_conf))
 779                goto free_ppi_active;
 780
 781        if (gic == &gic_data[0])
 782                cpu_pm_register_notifier(&gic_notifier_block);
 783
 784        return 0;
 785
 786free_ppi_active:
 787        free_percpu(gic->saved_ppi_active);
 788free_ppi_enable:
 789        free_percpu(gic->saved_ppi_enable);
 790
 791        return -ENOMEM;
 792}
 793#else
 794static int gic_pm_init(struct gic_chip_data *gic)
 795{
 796        return 0;
 797}
 798#endif
 799
 800#ifdef CONFIG_SMP
 801void gic_raise_softirq(const struct cpumask *mask, unsigned int irq)
 802{
 803        int cpu;
 804        unsigned long flags, map = 0;
 805
 806#if 0
 807        if (unlikely(nr_cpu_ids == 1)) {
 808                /* Only one CPU? let's do a self-IPI... */
 809                writel_relaxed(2 << 24 | irq,
 810                               gic_data_dist_base(&gic_data[0]) + GIC_DIST_SOFTINT);
 811                return;
 812        }
 813#endif
 814        gic_lock_irqsave(flags);
 815
 816        /* Convert our logical CPU mask into a physical one. */
 817        for_each_cpu(cpu, mask)
 818                map |= gic_cpu_map[cpu];
 819
 820        /*
 821         * Ensure that stores to Normal memory are visible to the
 822         * other CPUs before they observe us issuing the IPI.
 823         */
 824        dmb(ishst);
 825
 826        /* this always happens on GIC0 */
 827        writel_relaxed(map << 16 | irq, gic_data_dist_base(&gic_data[0]) + GIC_DIST_SOFTINT);
 828
 829        gic_unlock_irqrestore(flags);
 830}
 831EXPORT_SYMBOL(gic_raise_softirq);
 832#endif
 833
 834#ifdef CONFIG_BL_SWITCHER
 835/*
 836 * gic_send_sgi - send a SGI directly to given CPU interface number
 837 *
 838 * cpu_id: the ID for the destination CPU interface
 839 * irq: the IPI number to send a SGI for
 840 */
 841void gic_send_sgi(unsigned int cpu_id, unsigned int irq)
 842{
 843        BUG_ON(cpu_id >= NR_GIC_CPU_IF);
 844        cpu_id = 1 << cpu_id;
 845        /* this always happens on GIC0 */
 846        writel_relaxed((cpu_id << 16) | irq, gic_data_dist_base(&gic_data[0]) + GIC_DIST_SOFTINT);
 847}
 848
 849/*
 850 * gic_get_cpu_id - get the CPU interface ID for the specified CPU
 851 *
 852 * @cpu: the logical CPU number to get the GIC ID for.
 853 *
 854 * Return the CPU interface ID for the given logical CPU number,
 855 * or -1 if the CPU number is too large or the interface ID is
 856 * unknown (more than one bit set).
 857 */
 858int gic_get_cpu_id(unsigned int cpu)
 859{
 860        unsigned int cpu_bit;
 861
 862        if (cpu >= NR_GIC_CPU_IF)
 863                return -1;
 864        cpu_bit = gic_cpu_map[cpu];
 865        if (cpu_bit & (cpu_bit - 1))
 866                return -1;
 867        return __ffs(cpu_bit);
 868}
 869
 870/*
 871 * gic_migrate_target - migrate IRQs to another CPU interface
 872 *
 873 * @new_cpu_id: the CPU target ID to migrate IRQs to
 874 *
 875 * Migrate all peripheral interrupts with a target matching the current CPU
 876 * to the interface corresponding to @new_cpu_id.  The CPU interface mapping
 877 * is also updated.  Targets to other CPU interfaces are unchanged.
 878 * This must be called with IRQs locally disabled.
 879 */
 880void gic_migrate_target(unsigned int new_cpu_id)
 881{
 882        unsigned int cur_cpu_id, gic_irqs, gic_nr = 0;
 883        void __iomem *dist_base;
 884        int i, ror_val, cpu = smp_processor_id();
 885        u32 val, cur_target_mask, active_mask;
 886
 887        BUG_ON(gic_nr >= CONFIG_ARM_GIC_MAX_NR);
 888
 889        dist_base = gic_data_dist_base(&gic_data[gic_nr]);
 890        if (!dist_base)
 891                return;
 892        gic_irqs = gic_data[gic_nr].gic_irqs;
 893
 894        cur_cpu_id = __ffs(gic_cpu_map[cpu]);
 895        cur_target_mask = 0x01010101 << cur_cpu_id;
 896        ror_val = (cur_cpu_id - new_cpu_id) & 31;
 897
 898        gic_lock();
 899
 900        /* Update the target interface for this logical CPU */
 901        gic_cpu_map[cpu] = 1 << new_cpu_id;
 902
 903        /*
 904         * Find all the peripheral interrupts targetting the current
 905         * CPU interface and migrate them to the new CPU interface.
 906         * We skip DIST_TARGET 0 to 7 as they are read-only.
 907         */
 908        for (i = 8; i < DIV_ROUND_UP(gic_irqs, 4); i++) {
 909                val = readl_relaxed(dist_base + GIC_DIST_TARGET + i * 4);
 910                active_mask = val & cur_target_mask;
 911                if (active_mask) {
 912                        val &= ~active_mask;
 913                        val |= ror32(active_mask, ror_val);
 914                        writel_relaxed(val, dist_base + GIC_DIST_TARGET + i*4);
 915                }
 916        }
 917
 918        gic_unlock();
 919
 920        /*
 921         * Now let's migrate and clear any potential SGIs that might be
 922         * pending for us (cur_cpu_id).  Since GIC_DIST_SGI_PENDING_SET
 923         * is a banked register, we can only forward the SGI using
 924         * GIC_DIST_SOFTINT.  The original SGI source is lost but Linux
 925         * doesn't use that information anyway.
 926         *
 927         * For the same reason we do not adjust SGI source information
 928         * for previously sent SGIs by us to other CPUs either.
 929         */
 930        for (i = 0; i < 16; i += 4) {
 931                int j;
 932                val = readl_relaxed(dist_base + GIC_DIST_SGI_PENDING_SET + i);
 933                if (!val)
 934                        continue;
 935                writel_relaxed(val, dist_base + GIC_DIST_SGI_PENDING_CLEAR + i);
 936                for (j = i; j < i + 4; j++) {
 937                        if (val & 0xff)
 938                                writel_relaxed((1 << (new_cpu_id + 16)) | j,
 939                                                dist_base + GIC_DIST_SOFTINT);
 940                        val >>= 8;
 941                }
 942        }
 943}
 944
 945/*
 946 * gic_get_sgir_physaddr - get the physical address for the SGI register
 947 *
 948 * REturn the physical address of the SGI register to be used
 949 * by some early assembly code when the kernel is not yet available.
 950 */
 951static unsigned long gic_dist_physaddr;
 952
 953unsigned long gic_get_sgir_physaddr(void)
 954{
 955        if (!gic_dist_physaddr)
 956                return 0;
 957        return gic_dist_physaddr + GIC_DIST_SOFTINT;
 958}
 959
 960static void __init gic_init_physaddr(struct device_node *node)
 961{
 962        struct resource res;
 963        if (of_address_to_resource(node, 0, &res) == 0) {
 964                gic_dist_physaddr = res.start;
 965                pr_info("GIC physical location is %#lx\n", gic_dist_physaddr);
 966        }
 967}
 968
 969#else
 970#define gic_init_physaddr(node)  do { } while (0)
 971#endif
 972
 973static int gic_irq_domain_map(struct irq_domain *d, unsigned int irq,
 974                                irq_hw_number_t hw)
 975{
 976        struct gic_chip_data *gic = d->host_data;
 977
 978        if (hw < 32) {
 979                irq_set_percpu_devid(irq);
 980                irq_domain_set_info(d, irq, hw, &gic->chip, d->host_data,
 981                                    handle_percpu_devid_irq, NULL, NULL);
 982                irq_set_status_flags(irq, IRQ_NOAUTOEN);
 983        } else {
 984                irq_domain_set_info(d, irq, hw, &gic->chip, d->host_data,
 985                                    handle_fasteoi_irq, NULL, NULL);
 986                irq_set_probe(irq);
 987                irqd_set_single_target(irq_desc_get_irq_data(irq_to_desc(irq)));
 988        }
 989        return 0;
 990}
 991
 992static void gic_irq_domain_unmap(struct irq_domain *d, unsigned int irq)
 993{
 994}
 995
 996static int gic_irq_domain_translate(struct irq_domain *d,
 997                                    struct irq_fwspec *fwspec,
 998                                    unsigned long *hwirq,
 999                                    unsigned int *type)
1000{
1001        if (is_of_node(fwspec->fwnode)) {
1002                if (fwspec->param_count < 3)
1003                        return -EINVAL;
1004
1005                /* Get the interrupt number and add 16 to skip over SGIs */
1006                *hwirq = fwspec->param[1] + 16;
1007
1008                /*
1009                 * For SPIs, we need to add 16 more to get the GIC irq
1010                 * ID number
1011                 */
1012                if (!fwspec->param[0])
1013                        *hwirq += 16;
1014
1015                *type = fwspec->param[2] & IRQ_TYPE_SENSE_MASK;
1016                return 0;
1017        }
1018
1019        if (is_fwnode_irqchip(fwspec->fwnode)) {
1020                if(fwspec->param_count != 2)
1021                        return -EINVAL;
1022
1023                *hwirq = fwspec->param[0];
1024                *type = fwspec->param[1];
1025                return 0;
1026        }
1027
1028        return -EINVAL;
1029}
1030
1031static int gic_starting_cpu(unsigned int cpu)
1032{
1033        gic_cpu_init(&gic_data[0]);
1034        return 0;
1035}
1036
1037static int gic_irq_domain_alloc(struct irq_domain *domain, unsigned int virq,
1038                                unsigned int nr_irqs, void *arg)
1039{
1040        int i, ret;
1041        irq_hw_number_t hwirq;
1042        unsigned int type = IRQ_TYPE_NONE;
1043        struct irq_fwspec *fwspec = arg;
1044
1045        ret = gic_irq_domain_translate(domain, fwspec, &hwirq, &type);
1046        if (ret)
1047                return ret;
1048
1049        for (i = 0; i < nr_irqs; i++) {
1050                ret = gic_irq_domain_map(domain, virq + i, hwirq + i);
1051                if (ret)
1052                        return ret;
1053        }
1054
1055        return 0;
1056}
1057
1058static const struct irq_domain_ops gic_irq_domain_hierarchy_ops = {
1059        .translate = gic_irq_domain_translate,
1060        .alloc = gic_irq_domain_alloc,
1061        .free = irq_domain_free_irqs_top,
1062};
1063
1064static const struct irq_domain_ops gic_irq_domain_ops = {
1065        .map = gic_irq_domain_map,
1066        .unmap = gic_irq_domain_unmap,
1067};
1068
1069static void gic_init_chip(struct gic_chip_data *gic, struct device *dev,
1070                          const char *name, bool use_eoimode1)
1071{
1072        /* Initialize irq_chip */
1073        gic->chip = gic_chip;
1074        gic->chip.name = name;
1075        gic->chip.parent_device = dev;
1076
1077        if (use_eoimode1) {
1078                gic->chip.irq_mask = gic_eoimode1_mask_irq;
1079                gic->chip.irq_eoi = gic_eoimode1_eoi_irq;
1080                gic->chip.irq_set_vcpu_affinity = gic_irq_set_vcpu_affinity;
1081        }
1082
1083#ifdef CONFIG_SMP
1084        if (gic == &gic_data[0])
1085                gic->chip.irq_set_affinity = gic_set_affinity;
1086#endif
1087}
1088
1089static int gic_init_bases(struct gic_chip_data *gic, int irq_start,
1090                          struct fwnode_handle *handle)
1091{
1092        irq_hw_number_t hwirq_base;
1093        int gic_irqs, irq_base, ret;
1094
1095        if (IS_ENABLED(CONFIG_GIC_NON_BANKED) && gic->percpu_offset) {
1096                /* Frankein-GIC without banked registers... */
1097                unsigned int cpu;
1098
1099                gic->dist_base.percpu_base = alloc_percpu(void __iomem *);
1100                gic->cpu_base.percpu_base = alloc_percpu(void __iomem *);
1101                if (WARN_ON(!gic->dist_base.percpu_base ||
1102                            !gic->cpu_base.percpu_base)) {
1103                        ret = -ENOMEM;
1104                        goto error;
1105                }
1106
1107                for_each_possible_cpu(cpu) {
1108                        u32 mpidr = cpu_logical_map(cpu);
1109                        u32 core_id = MPIDR_AFFINITY_LEVEL(mpidr, 0);
1110                        unsigned long offset = gic->percpu_offset * core_id;
1111                        *per_cpu_ptr(gic->dist_base.percpu_base, cpu) =
1112                                gic->raw_dist_base + offset;
1113                        *per_cpu_ptr(gic->cpu_base.percpu_base, cpu) =
1114                                gic->raw_cpu_base + offset;
1115                }
1116
1117                gic_set_base_accessor(gic, gic_get_percpu_base);
1118        } else {
1119                /* Normal, sane GIC... */
1120                WARN(gic->percpu_offset,
1121                     "GIC_NON_BANKED not enabled, ignoring %08x offset!",
1122                     gic->percpu_offset);
1123                gic->dist_base.common_base = gic->raw_dist_base;
1124                gic->cpu_base.common_base = gic->raw_cpu_base;
1125                gic_set_base_accessor(gic, gic_get_common_base);
1126        }
1127
1128        /*
1129         * Find out how many interrupts are supported.
1130         * The GIC only supports up to 1020 interrupt sources.
1131         */
1132        gic_irqs = readl_relaxed(gic_data_dist_base(gic) + GIC_DIST_CTR) & 0x1f;
1133        gic_irqs = (gic_irqs + 1) * 32;
1134        if (gic_irqs > 1020)
1135                gic_irqs = 1020;
1136        gic->gic_irqs = gic_irqs;
1137
1138        if (handle) {           /* DT/ACPI */
1139                gic->domain = irq_domain_create_linear(handle, gic_irqs,
1140                                                       &gic_irq_domain_hierarchy_ops,
1141                                                       gic);
1142        } else {                /* Legacy support */
1143                /*
1144                 * For primary GICs, skip over SGIs.
1145                 * For secondary GICs, skip over PPIs, too.
1146                 */
1147                if (gic == &gic_data[0] && (irq_start & 31) > 0) {
1148                        hwirq_base = 16;
1149                        if (irq_start != -1)
1150                                irq_start = (irq_start & ~31) + 16;
1151                } else {
1152                        hwirq_base = 32;
1153                }
1154
1155                gic_irqs -= hwirq_base; /* calculate # of irqs to allocate */
1156
1157                irq_base = irq_alloc_descs(irq_start, 16, gic_irqs,
1158                                           numa_node_id());
1159                if (irq_base < 0) {
1160                        WARN(1, "Cannot allocate irq_descs @ IRQ%d, assuming pre-allocated\n",
1161                             irq_start);
1162                        irq_base = irq_start;
1163                }
1164
1165                gic->domain = irq_domain_add_legacy(NULL, gic_irqs, irq_base,
1166                                        hwirq_base, &gic_irq_domain_ops, gic);
1167        }
1168
1169        if (WARN_ON(!gic->domain)) {
1170                ret = -ENODEV;
1171                goto error;
1172        }
1173
1174        gic_dist_init(gic);
1175        ret = gic_cpu_init(gic);
1176        if (ret)
1177                goto error;
1178
1179        ret = gic_pm_init(gic);
1180        if (ret)
1181                goto error;
1182
1183        return 0;
1184
1185error:
1186        if (IS_ENABLED(CONFIG_GIC_NON_BANKED) && gic->percpu_offset) {
1187                free_percpu(gic->dist_base.percpu_base);
1188                free_percpu(gic->cpu_base.percpu_base);
1189        }
1190
1191        return ret;
1192}
1193
1194static int __init __gic_init_bases(struct gic_chip_data *gic,
1195                                   int irq_start,
1196                                   struct fwnode_handle *handle)
1197{
1198        char *name;
1199        int i, ret;
1200
1201        if (WARN_ON(!gic || gic->domain))
1202                return -EINVAL;
1203
1204        if (gic == &gic_data[0]) {
1205                /*
1206                 * Initialize the CPU interface map to all CPUs.
1207                 * It will be refined as each CPU probes its ID.
1208                 * This is only necessary for the primary GIC.
1209                 */
1210                for (i = 0; i < NR_GIC_CPU_IF; i++)
1211                        gic_cpu_map[i] = 0xff;
1212#ifdef CONFIG_SMP
1213                set_smp_cross_call(gic_raise_softirq);
1214#endif
1215                cpuhp_setup_state_nocalls(CPUHP_AP_IRQ_GIC_STARTING,
1216                                          "irqchip/arm/gic:starting",
1217                                          gic_starting_cpu, NULL);
1218                set_handle_irq(gic_handle_irq);
1219                if (static_key_true(&supports_deactivate))
1220                        pr_info("GIC: Using split EOI/Deactivate mode\n");
1221        }
1222
1223        if (static_key_true(&supports_deactivate) && gic == &gic_data[0]) {
1224                name = kasprintf(GFP_KERNEL, "GICv2");
1225                gic_init_chip(gic, NULL, name, true);
1226        } else {
1227                name = kasprintf(GFP_KERNEL, "GIC-%d", (int)(gic-&gic_data[0]));
1228                gic_init_chip(gic, NULL, name, false);
1229        }
1230
1231        ret = gic_init_bases(gic, irq_start, handle);
1232        if (ret)
1233                kfree(name);
1234
1235        return ret;
1236}
1237
1238void __init gic_init(unsigned int gic_nr, int irq_start,
1239                     void __iomem *dist_base, void __iomem *cpu_base)
1240{
1241        struct gic_chip_data *gic;
1242
1243        if (WARN_ON(gic_nr >= CONFIG_ARM_GIC_MAX_NR))
1244                return;
1245
1246        /*
1247         * Non-DT/ACPI systems won't run a hypervisor, so let's not
1248         * bother with these...
1249         */
1250        static_key_slow_dec(&supports_deactivate);
1251
1252        gic = &gic_data[gic_nr];
1253        gic->raw_dist_base = dist_base;
1254        gic->raw_cpu_base = cpu_base;
1255
1256        __gic_init_bases(gic, irq_start, NULL);
1257}
1258
1259static void gic_teardown(struct gic_chip_data *gic)
1260{
1261        if (WARN_ON(!gic))
1262                return;
1263
1264        if (gic->raw_dist_base)
1265                iounmap(gic->raw_dist_base);
1266        if (gic->raw_cpu_base)
1267                iounmap(gic->raw_cpu_base);
1268}
1269
1270#ifdef CONFIG_OF
1271static int gic_cnt __initdata;
1272
1273static bool gic_check_eoimode(struct device_node *node, void __iomem **base)
1274{
1275        struct resource cpuif_res;
1276
1277        of_address_to_resource(node, 1, &cpuif_res);
1278
1279        if (!is_hyp_mode_available())
1280                return false;
1281        if (resource_size(&cpuif_res) < SZ_8K)
1282                return false;
1283        if (resource_size(&cpuif_res) == SZ_128K) {
1284                u32 val_low, val_high;
1285
1286                /*
1287                 * Verify that we have the first 4kB of a GIC400
1288                 * aliased over the first 64kB by checking the
1289                 * GICC_IIDR register on both ends.
1290                 */
1291                val_low = readl_relaxed(*base + GIC_CPU_IDENT);
1292                val_high = readl_relaxed(*base + GIC_CPU_IDENT + 0xf000);
1293                if ((val_low & 0xffff0fff) != 0x0202043B ||
1294                    val_low != val_high)
1295                        return false;
1296
1297                /*
1298                 * Move the base up by 60kB, so that we have a 8kB
1299                 * contiguous region, which allows us to use GICC_DIR
1300                 * at its normal offset. Please pass me that bucket.
1301                 */
1302                *base += 0xf000;
1303                cpuif_res.start += 0xf000;
1304                pr_warn("GIC: Adjusting CPU interface base to %pa\n",
1305                        &cpuif_res.start);
1306        }
1307
1308        return true;
1309}
1310
1311static int gic_of_setup(struct gic_chip_data *gic, struct device_node *node)
1312{
1313        if (!gic || !node)
1314                return -EINVAL;
1315
1316        gic->raw_dist_base = of_iomap(node, 0);
1317        if (WARN(!gic->raw_dist_base, "unable to map gic dist registers\n"))
1318                goto error;
1319
1320        gic->raw_cpu_base = of_iomap(node, 1);
1321        if (WARN(!gic->raw_cpu_base, "unable to map gic cpu registers\n"))
1322                goto error;
1323
1324        if (of_property_read_u32(node, "cpu-offset", &gic->percpu_offset))
1325                gic->percpu_offset = 0;
1326
1327        return 0;
1328
1329error:
1330        gic_teardown(gic);
1331
1332        return -ENOMEM;
1333}
1334
1335int gic_of_init_child(struct device *dev, struct gic_chip_data **gic, int irq)
1336{
1337        int ret;
1338
1339        if (!dev || !dev->of_node || !gic || !irq)
1340                return -EINVAL;
1341
1342        *gic = devm_kzalloc(dev, sizeof(**gic), GFP_KERNEL);
1343        if (!*gic)
1344                return -ENOMEM;
1345
1346        gic_init_chip(*gic, dev, dev->of_node->name, false);
1347
1348        ret = gic_of_setup(*gic, dev->of_node);
1349        if (ret)
1350                return ret;
1351
1352        ret = gic_init_bases(*gic, -1, &dev->of_node->fwnode);
1353        if (ret) {
1354                gic_teardown(*gic);
1355                return ret;
1356        }
1357
1358        irq_set_chained_handler_and_data(irq, gic_handle_cascade_irq, *gic);
1359
1360        return 0;
1361}
1362
1363static void __init gic_of_setup_kvm_info(struct device_node *node)
1364{
1365        int ret;
1366        struct resource *vctrl_res = &gic_v2_kvm_info.vctrl;
1367        struct resource *vcpu_res = &gic_v2_kvm_info.vcpu;
1368
1369        gic_v2_kvm_info.type = GIC_V2;
1370
1371        gic_v2_kvm_info.maint_irq = irq_of_parse_and_map(node, 0);
1372        if (!gic_v2_kvm_info.maint_irq)
1373                return;
1374
1375        ret = of_address_to_resource(node, 2, vctrl_res);
1376        if (ret)
1377                return;
1378
1379        ret = of_address_to_resource(node, 3, vcpu_res);
1380        if (ret)
1381                return;
1382
1383        gic_set_kvm_info(&gic_v2_kvm_info);
1384}
1385
1386int __init
1387gic_of_init(struct device_node *node, struct device_node *parent)
1388{
1389        struct gic_chip_data *gic;
1390        int irq, ret;
1391
1392        if (WARN_ON(!node))
1393                return -ENODEV;
1394
1395        if (WARN_ON(gic_cnt >= CONFIG_ARM_GIC_MAX_NR))
1396                return -EINVAL;
1397
1398        gic = &gic_data[gic_cnt];
1399
1400        ret = gic_of_setup(gic, node);
1401        if (ret)
1402                return ret;
1403
1404        /*
1405         * Disable split EOI/Deactivate if either HYP is not available
1406         * or the CPU interface is too small.
1407         */
1408        if (gic_cnt == 0 && !gic_check_eoimode(node, &gic->raw_cpu_base))
1409                static_key_slow_dec(&supports_deactivate);
1410
1411        ret = __gic_init_bases(gic, -1, &node->fwnode);
1412        if (ret) {
1413                gic_teardown(gic);
1414                return ret;
1415        }
1416
1417        if (!gic_cnt) {
1418                gic_init_physaddr(node);
1419                gic_of_setup_kvm_info(node);
1420        }
1421
1422        if (parent) {
1423                irq = irq_of_parse_and_map(node, 0);
1424                gic_cascade_irq(gic_cnt, irq);
1425        }
1426
1427        if (IS_ENABLED(CONFIG_ARM_GIC_V2M))
1428                gicv2m_init(&node->fwnode, gic_data[gic_cnt].domain);
1429
1430        gic_cnt++;
1431        return 0;
1432}
1433IRQCHIP_DECLARE(gic_400, "arm,gic-400", gic_of_init);
1434IRQCHIP_DECLARE(arm11mp_gic, "arm,arm11mp-gic", gic_of_init);
1435IRQCHIP_DECLARE(arm1176jzf_dc_gic, "arm,arm1176jzf-devchip-gic", gic_of_init);
1436IRQCHIP_DECLARE(cortex_a15_gic, "arm,cortex-a15-gic", gic_of_init);
1437IRQCHIP_DECLARE(cortex_a9_gic, "arm,cortex-a9-gic", gic_of_init);
1438IRQCHIP_DECLARE(cortex_a7_gic, "arm,cortex-a7-gic", gic_of_init);
1439IRQCHIP_DECLARE(msm_8660_qgic, "qcom,msm-8660-qgic", gic_of_init);
1440IRQCHIP_DECLARE(msm_qgic2, "qcom,msm-qgic2", gic_of_init);
1441IRQCHIP_DECLARE(pl390, "arm,pl390", gic_of_init);
1442#else
1443int gic_of_init_child(struct device *dev, struct gic_chip_data **gic, int irq)
1444{
1445        return -ENOTSUPP;
1446}
1447#endif
1448
1449#ifdef CONFIG_ACPI
1450static struct
1451{
1452        phys_addr_t cpu_phys_base;
1453        u32 maint_irq;
1454        int maint_irq_mode;
1455        phys_addr_t vctrl_base;
1456        phys_addr_t vcpu_base;
1457} acpi_data __initdata;
1458
1459static int __init
1460gic_acpi_parse_madt_cpu(struct acpi_subtable_header *header,
1461                        const unsigned long end)
1462{
1463        struct acpi_madt_generic_interrupt *processor;
1464        phys_addr_t gic_cpu_base;
1465        static int cpu_base_assigned;
1466
1467        processor = (struct acpi_madt_generic_interrupt *)header;
1468
1469        if (BAD_MADT_GICC_ENTRY(processor, end))
1470                return -EINVAL;
1471
1472        /*
1473         * There is no support for non-banked GICv1/2 register in ACPI spec.
1474         * All CPU interface addresses have to be the same.
1475         */
1476        gic_cpu_base = processor->base_address;
1477        if (cpu_base_assigned && gic_cpu_base != acpi_data.cpu_phys_base)
1478                return -EINVAL;
1479
1480        acpi_data.cpu_phys_base = gic_cpu_base;
1481        acpi_data.maint_irq = processor->vgic_interrupt;
1482        acpi_data.maint_irq_mode = (processor->flags & ACPI_MADT_VGIC_IRQ_MODE) ?
1483                                    ACPI_EDGE_SENSITIVE : ACPI_LEVEL_SENSITIVE;
1484        acpi_data.vctrl_base = processor->gich_base_address;
1485        acpi_data.vcpu_base = processor->gicv_base_address;
1486
1487        cpu_base_assigned = 1;
1488        return 0;
1489}
1490
1491/* The things you have to do to just *count* something... */
1492static int __init acpi_dummy_func(struct acpi_subtable_header *header,
1493                                  const unsigned long end)
1494{
1495        return 0;
1496}
1497
1498static bool __init acpi_gic_redist_is_present(void)
1499{
1500        return acpi_table_parse_madt(ACPI_MADT_TYPE_GENERIC_REDISTRIBUTOR,
1501                                     acpi_dummy_func, 0) > 0;
1502}
1503
1504static bool __init gic_validate_dist(struct acpi_subtable_header *header,
1505                                     struct acpi_probe_entry *ape)
1506{
1507        struct acpi_madt_generic_distributor *dist;
1508        dist = (struct acpi_madt_generic_distributor *)header;
1509
1510        return (dist->version == ape->driver_data &&
1511                (dist->version != ACPI_MADT_GIC_VERSION_NONE ||
1512                 !acpi_gic_redist_is_present()));
1513}
1514
1515#define ACPI_GICV2_DIST_MEM_SIZE        (SZ_4K)
1516#define ACPI_GIC_CPU_IF_MEM_SIZE        (SZ_8K)
1517#define ACPI_GICV2_VCTRL_MEM_SIZE       (SZ_4K)
1518#define ACPI_GICV2_VCPU_MEM_SIZE        (SZ_8K)
1519
1520static void __init gic_acpi_setup_kvm_info(void)
1521{
1522        int irq;
1523        struct resource *vctrl_res = &gic_v2_kvm_info.vctrl;
1524        struct resource *vcpu_res = &gic_v2_kvm_info.vcpu;
1525
1526        gic_v2_kvm_info.type = GIC_V2;
1527
1528        if (!acpi_data.vctrl_base)
1529                return;
1530
1531        vctrl_res->flags = IORESOURCE_MEM;
1532        vctrl_res->start = acpi_data.vctrl_base;
1533        vctrl_res->end = vctrl_res->start + ACPI_GICV2_VCTRL_MEM_SIZE - 1;
1534
1535        if (!acpi_data.vcpu_base)
1536                return;
1537
1538        vcpu_res->flags = IORESOURCE_MEM;
1539        vcpu_res->start = acpi_data.vcpu_base;
1540        vcpu_res->end = vcpu_res->start + ACPI_GICV2_VCPU_MEM_SIZE - 1;
1541
1542        irq = acpi_register_gsi(NULL, acpi_data.maint_irq,
1543                                acpi_data.maint_irq_mode,
1544                                ACPI_ACTIVE_HIGH);
1545        if (irq <= 0)
1546                return;
1547
1548        gic_v2_kvm_info.maint_irq = irq;
1549
1550        gic_set_kvm_info(&gic_v2_kvm_info);
1551}
1552
1553static int __init gic_v2_acpi_init(struct acpi_subtable_header *header,
1554                                   const unsigned long end)
1555{
1556        struct acpi_madt_generic_distributor *dist;
1557        struct fwnode_handle *domain_handle;
1558        struct gic_chip_data *gic = &gic_data[0];
1559        int count, ret;
1560
1561        /* Collect CPU base addresses */
1562        count = acpi_table_parse_madt(ACPI_MADT_TYPE_GENERIC_INTERRUPT,
1563                                      gic_acpi_parse_madt_cpu, 0);
1564        if (count <= 0) {
1565                pr_err("No valid GICC entries exist\n");
1566                return -EINVAL;
1567        }
1568
1569        gic->raw_cpu_base = ioremap(acpi_data.cpu_phys_base, ACPI_GIC_CPU_IF_MEM_SIZE);
1570        if (!gic->raw_cpu_base) {
1571                pr_err("Unable to map GICC registers\n");
1572                return -ENOMEM;
1573        }
1574
1575        dist = (struct acpi_madt_generic_distributor *)header;
1576        gic->raw_dist_base = ioremap(dist->base_address,
1577                                     ACPI_GICV2_DIST_MEM_SIZE);
1578        if (!gic->raw_dist_base) {
1579                pr_err("Unable to map GICD registers\n");
1580                gic_teardown(gic);
1581                return -ENOMEM;
1582        }
1583
1584        /*
1585         * Disable split EOI/Deactivate if HYP is not available. ACPI
1586         * guarantees that we'll always have a GICv2, so the CPU
1587         * interface will always be the right size.
1588         */
1589        if (!is_hyp_mode_available())
1590                static_key_slow_dec(&supports_deactivate);
1591
1592        /*
1593         * Initialize GIC instance zero (no multi-GIC support).
1594         */
1595        domain_handle = irq_domain_alloc_fwnode(gic->raw_dist_base);
1596        if (!domain_handle) {
1597                pr_err("Unable to allocate domain handle\n");
1598                gic_teardown(gic);
1599                return -ENOMEM;
1600        }
1601
1602        ret = __gic_init_bases(gic, -1, domain_handle);
1603        if (ret) {
1604                pr_err("Failed to initialise GIC\n");
1605                irq_domain_free_fwnode(domain_handle);
1606                gic_teardown(gic);
1607                return ret;
1608        }
1609
1610        acpi_set_irq_model(ACPI_IRQ_MODEL_GIC, domain_handle);
1611
1612        if (IS_ENABLED(CONFIG_ARM_GIC_V2M))
1613                gicv2m_init(NULL, gic_data[0].domain);
1614
1615        gic_acpi_setup_kvm_info();
1616
1617        return 0;
1618}
1619IRQCHIP_ACPI_DECLARE(gic_v2, ACPI_MADT_TYPE_GENERIC_DISTRIBUTOR,
1620                     gic_validate_dist, ACPI_MADT_GIC_VERSION_V2,
1621                     gic_v2_acpi_init);
1622IRQCHIP_ACPI_DECLARE(gic_v2_maybe, ACPI_MADT_TYPE_GENERIC_DISTRIBUTOR,
1623                     gic_validate_dist, ACPI_MADT_GIC_VERSION_NONE,
1624                     gic_v2_acpi_init);
1625#endif
1626