1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3 * Copyright (C) 2013-2017 ARM Limited, All Rights Reserved.
4 * Author: Marc Zyngier <marc.zyngier@arm.com>
5 */
6
7 #include <linux/acpi.h>
8 #include <linux/acpi_iort.h>
9 #include <linux/bitfield.h>
10 #include <linux/bitmap.h>
11 #include <linux/cpu.h>
12 #include <linux/crash_dump.h>
13 #include <linux/delay.h>
14 #include <linux/efi.h>
15 #include <linux/genalloc.h>
16 #include <linux/interrupt.h>
17 #include <linux/iommu.h>
18 #include <linux/iopoll.h>
19 #include <linux/irqdomain.h>
20 #include <linux/list.h>
21 #include <linux/log2.h>
22 #include <linux/mem_encrypt.h>
23 #include <linux/memblock.h>
24 #include <linux/mm.h>
25 #include <linux/msi.h>
26 #include <linux/of.h>
27 #include <linux/of_address.h>
28 #include <linux/of_irq.h>
29 #include <linux/of_pci.h>
30 #include <linux/of_platform.h>
31 #include <linux/percpu.h>
32 #include <linux/set_memory.h>
33 #include <linux/slab.h>
34 #include <linux/syscore_ops.h>
35
36 #include <linux/irqchip.h>
37 #include <linux/irqchip/arm-gic-v3.h>
38 #include <linux/irqchip/arm-gic-v4.h>
39
40 #include <asm/cputype.h>
41 #include <asm/exception.h>
42
43 #include "irq-gic-common.h"
44 #include "irq-gic-its-msi-parent.h"
45 #include <linux/irqchip/irq-msi-lib.h>
46
47 #define ITS_FLAGS_CMDQ_NEEDS_FLUSHING (1ULL << 0)
48 #define ITS_FLAGS_WORKAROUND_CAVIUM_22375 (1ULL << 1)
49 #define ITS_FLAGS_WORKAROUND_CAVIUM_23144 (1ULL << 2)
50 #define ITS_FLAGS_FORCE_NON_SHAREABLE (1ULL << 3)
51 #define ITS_FLAGS_WORKAROUND_HISILICON_162100801 (1ULL << 4)
52
53 #define RD_LOCAL_LPI_ENABLED BIT(0)
54 #define RD_LOCAL_PENDTABLE_PREALLOCATED BIT(1)
55 #define RD_LOCAL_MEMRESERVE_DONE BIT(2)
56
57 static u32 lpi_id_bits;
58
59 /*
60 * We allocate memory for PROPBASE to cover 2 ^ lpi_id_bits LPIs to
61 * deal with (one configuration byte per interrupt). PENDBASE has to
62 * be 64kB aligned (one bit per LPI, plus 8192 bits for SPI/PPI/SGI).
63 */
64 #define LPI_NRBITS lpi_id_bits
65 #define LPI_PROPBASE_SZ ALIGN(BIT(LPI_NRBITS), SZ_64K)
66 #define LPI_PENDBASE_SZ ALIGN(BIT(LPI_NRBITS) / 8, SZ_64K)
67
68 static u8 __ro_after_init lpi_prop_prio;
69 static struct its_node *find_4_1_its(void);
70
71 /*
72 * Collection structure - just an ID, and a redistributor address to
73 * ping. We use one per CPU as a bag of interrupts assigned to this
74 * CPU.
75 */
76 struct its_collection {
77 u64 target_address;
78 u16 col_id;
79 };
80
81 /*
82 * The ITS_BASER structure - contains memory information, cached
83 * value of BASER register configuration and ITS page size.
84 */
85 struct its_baser {
86 void *base;
87 u64 val;
88 u32 order;
89 u32 psz;
90 };
91
92 struct its_device;
93
94 /*
95 * The ITS structure - contains most of the infrastructure, with the
96 * top-level MSI domain, the command queue, the collections, and the
97 * list of devices writing to it.
98 *
99 * dev_alloc_lock has to be taken for device allocations, while the
100 * spinlock must be taken to parse data structures such as the device
101 * list.
102 */
103 struct its_node {
104 raw_spinlock_t lock;
105 struct mutex dev_alloc_lock;
106 struct list_head entry;
107 void __iomem *base;
108 void __iomem *sgir_base;
109 phys_addr_t phys_base;
110 struct its_cmd_block *cmd_base;
111 struct its_cmd_block *cmd_write;
112 struct its_baser tables[GITS_BASER_NR_REGS];
113 struct its_collection *collections;
114 struct fwnode_handle *fwnode_handle;
115 u64 (*get_msi_base)(struct its_device *its_dev);
116 u64 typer;
117 u64 cbaser_save;
118 u32 ctlr_save;
119 u32 mpidr;
120 struct list_head its_device_list;
121 u64 flags;
122 unsigned long list_nr;
123 int numa_node;
124 unsigned int msi_domain_flags;
125 u32 pre_its_base; /* for Socionext Synquacer */
126 int vlpi_redist_offset;
127 };
128
129 static DEFINE_PER_CPU(struct its_node *, local_4_1_its);
130
131 #define is_v4(its) (!!((its)->typer & GITS_TYPER_VLPIS))
132 #define is_v4_1(its) (!!((its)->typer & GITS_TYPER_VMAPP))
133 #define device_ids(its) (FIELD_GET(GITS_TYPER_DEVBITS, (its)->typer) + 1)
134
135 #define ITS_ITT_ALIGN SZ_256
136
137 /* The maximum number of VPEID bits supported by VLPI commands */
138 #define ITS_MAX_VPEID_BITS \
139 ({ \
140 int nvpeid = 16; \
141 if (gic_rdists->has_rvpeid && \
142 gic_rdists->gicd_typer2 & GICD_TYPER2_VIL) \
143 nvpeid = 1 + (gic_rdists->gicd_typer2 & \
144 GICD_TYPER2_VID); \
145 \
146 nvpeid; \
147 })
148 #define ITS_MAX_VPEID (1 << (ITS_MAX_VPEID_BITS))
149
150 /* Convert page order to size in bytes */
151 #define PAGE_ORDER_TO_SIZE(o) (PAGE_SIZE << (o))
152
153 struct event_lpi_map {
154 unsigned long *lpi_map;
155 u16 *col_map;
156 irq_hw_number_t lpi_base;
157 int nr_lpis;
158 raw_spinlock_t vlpi_lock;
159 struct its_vm *vm;
160 struct its_vlpi_map *vlpi_maps;
161 int nr_vlpis;
162 };
163
164 /*
165 * The ITS view of a device - belongs to an ITS, owns an interrupt
166 * translation table, and a list of interrupts. If some of its
167 * LPIs are injected into a guest (GICv4), the event_map.vm field
168 * indicates which one.
169 */
170 struct its_device {
171 struct list_head entry;
172 struct its_node *its;
173 struct event_lpi_map event_map;
174 void *itt;
175 u32 itt_sz;
176 u32 nr_ites;
177 u32 device_id;
178 bool shared;
179 };
180
181 static struct {
182 raw_spinlock_t lock;
183 struct its_device *dev;
184 struct its_vpe **vpes;
185 int next_victim;
186 } vpe_proxy;
187
188 struct cpu_lpi_count {
189 atomic_t managed;
190 atomic_t unmanaged;
191 };
192
193 static DEFINE_PER_CPU(struct cpu_lpi_count, cpu_lpi_count);
194
195 static LIST_HEAD(its_nodes);
196 static DEFINE_RAW_SPINLOCK(its_lock);
197 static struct rdists *gic_rdists;
198 static struct irq_domain *its_parent;
199
200 static unsigned long its_list_map;
201 static u16 vmovp_seq_num;
202 static DEFINE_RAW_SPINLOCK(vmovp_lock);
203
204 static DEFINE_IDA(its_vpeid_ida);
205
206 #define gic_data_rdist() (raw_cpu_ptr(gic_rdists->rdist))
207 #define gic_data_rdist_cpu(cpu) (per_cpu_ptr(gic_rdists->rdist, cpu))
208 #define gic_data_rdist_rd_base() (gic_data_rdist()->rd_base)
209 #define gic_data_rdist_vlpi_base() (gic_data_rdist_rd_base() + SZ_128K)
210
211 static gfp_t gfp_flags_quirk;
212
its_alloc_pages_node(int node,gfp_t gfp,unsigned int order)213 static struct page *its_alloc_pages_node(int node, gfp_t gfp,
214 unsigned int order)
215 {
216 struct page *page;
217 int ret = 0;
218
219 page = alloc_pages_node(node, gfp | gfp_flags_quirk, order);
220
221 if (!page)
222 return NULL;
223
224 ret = set_memory_decrypted((unsigned long)page_address(page),
225 1 << order);
226 /*
227 * If set_memory_decrypted() fails then we don't know what state the
228 * page is in, so we can't free it. Instead we leak it.
229 * set_memory_decrypted() will already have WARNed.
230 */
231 if (ret)
232 return NULL;
233
234 return page;
235 }
236
its_alloc_pages(gfp_t gfp,unsigned int order)237 static struct page *its_alloc_pages(gfp_t gfp, unsigned int order)
238 {
239 return its_alloc_pages_node(NUMA_NO_NODE, gfp, order);
240 }
241
its_free_pages(void * addr,unsigned int order)242 static void its_free_pages(void *addr, unsigned int order)
243 {
244 /*
245 * If the memory cannot be encrypted again then we must leak the pages.
246 * set_memory_encrypted() will already have WARNed.
247 */
248 if (set_memory_encrypted((unsigned long)addr, 1 << order))
249 return;
250 free_pages((unsigned long)addr, order);
251 }
252
253 static struct gen_pool *itt_pool;
254
itt_alloc_pool(int node,int size)255 static void *itt_alloc_pool(int node, int size)
256 {
257 unsigned long addr;
258 struct page *page;
259
260 if (size >= PAGE_SIZE) {
261 page = its_alloc_pages_node(node, GFP_KERNEL | __GFP_ZERO, get_order(size));
262
263 return page ? page_address(page) : NULL;
264 }
265
266 do {
267 addr = gen_pool_alloc(itt_pool, size);
268 if (addr)
269 break;
270
271 page = its_alloc_pages_node(node, GFP_KERNEL | __GFP_ZERO, 0);
272 if (!page)
273 break;
274
275 gen_pool_add(itt_pool, (unsigned long)page_address(page), PAGE_SIZE, node);
276 } while (!addr);
277
278 return (void *)addr;
279 }
280
itt_free_pool(void * addr,int size)281 static void itt_free_pool(void *addr, int size)
282 {
283 if (!addr)
284 return;
285
286 if (size >= PAGE_SIZE) {
287 its_free_pages(addr, get_order(size));
288 return;
289 }
290
291 gen_pool_free(itt_pool, (unsigned long)addr, size);
292 }
293
294 /*
295 * Skip ITSs that have no vLPIs mapped, unless we're on GICv4.1, as we
296 * always have vSGIs mapped.
297 */
require_its_list_vmovp(struct its_vm * vm,struct its_node * its)298 static bool require_its_list_vmovp(struct its_vm *vm, struct its_node *its)
299 {
300 return (gic_rdists->has_rvpeid || vm->vlpi_count[its->list_nr]);
301 }
302
rdists_support_shareable(void)303 static bool rdists_support_shareable(void)
304 {
305 return !(gic_rdists->flags & RDIST_FLAGS_FORCE_NON_SHAREABLE);
306 }
307
get_its_list(struct its_vm * vm)308 static u16 get_its_list(struct its_vm *vm)
309 {
310 struct its_node *its;
311 unsigned long its_list = 0;
312
313 list_for_each_entry(its, &its_nodes, entry) {
314 if (!is_v4(its))
315 continue;
316
317 if (require_its_list_vmovp(vm, its))
318 __set_bit(its->list_nr, &its_list);
319 }
320
321 return (u16)its_list;
322 }
323
its_get_event_id(struct irq_data * d)324 static inline u32 its_get_event_id(struct irq_data *d)
325 {
326 struct its_device *its_dev = irq_data_get_irq_chip_data(d);
327 return d->hwirq - its_dev->event_map.lpi_base;
328 }
329
dev_event_to_col(struct its_device * its_dev,u32 event)330 static struct its_collection *dev_event_to_col(struct its_device *its_dev,
331 u32 event)
332 {
333 struct its_node *its = its_dev->its;
334
335 return its->collections + its_dev->event_map.col_map[event];
336 }
337
dev_event_to_vlpi_map(struct its_device * its_dev,u32 event)338 static struct its_vlpi_map *dev_event_to_vlpi_map(struct its_device *its_dev,
339 u32 event)
340 {
341 if (WARN_ON_ONCE(event >= its_dev->event_map.nr_lpis))
342 return NULL;
343
344 return &its_dev->event_map.vlpi_maps[event];
345 }
346
get_vlpi_map(struct irq_data * d)347 static struct its_vlpi_map *get_vlpi_map(struct irq_data *d)
348 {
349 if (irqd_is_forwarded_to_vcpu(d)) {
350 struct its_device *its_dev = irq_data_get_irq_chip_data(d);
351 u32 event = its_get_event_id(d);
352
353 return dev_event_to_vlpi_map(its_dev, event);
354 }
355
356 return NULL;
357 }
358
vpe_to_cpuid_lock(struct its_vpe * vpe,unsigned long * flags)359 static int vpe_to_cpuid_lock(struct its_vpe *vpe, unsigned long *flags)
360 {
361 raw_spin_lock_irqsave(&vpe->vpe_lock, *flags);
362 return vpe->col_idx;
363 }
364
vpe_to_cpuid_unlock(struct its_vpe * vpe,unsigned long flags)365 static void vpe_to_cpuid_unlock(struct its_vpe *vpe, unsigned long flags)
366 {
367 raw_spin_unlock_irqrestore(&vpe->vpe_lock, flags);
368 }
369
370 static struct irq_chip its_vpe_irq_chip;
371
irq_to_cpuid_lock(struct irq_data * d,unsigned long * flags)372 static int irq_to_cpuid_lock(struct irq_data *d, unsigned long *flags)
373 {
374 struct its_vpe *vpe = NULL;
375 int cpu;
376
377 if (d->chip == &its_vpe_irq_chip) {
378 vpe = irq_data_get_irq_chip_data(d);
379 } else {
380 struct its_vlpi_map *map = get_vlpi_map(d);
381 if (map)
382 vpe = map->vpe;
383 }
384
385 if (vpe) {
386 cpu = vpe_to_cpuid_lock(vpe, flags);
387 } else {
388 /* Physical LPIs are already locked via the irq_desc lock */
389 struct its_device *its_dev = irq_data_get_irq_chip_data(d);
390 cpu = its_dev->event_map.col_map[its_get_event_id(d)];
391 /* Keep GCC quiet... */
392 *flags = 0;
393 }
394
395 return cpu;
396 }
397
irq_to_cpuid_unlock(struct irq_data * d,unsigned long flags)398 static void irq_to_cpuid_unlock(struct irq_data *d, unsigned long flags)
399 {
400 struct its_vpe *vpe = NULL;
401
402 if (d->chip == &its_vpe_irq_chip) {
403 vpe = irq_data_get_irq_chip_data(d);
404 } else {
405 struct its_vlpi_map *map = get_vlpi_map(d);
406 if (map)
407 vpe = map->vpe;
408 }
409
410 if (vpe)
411 vpe_to_cpuid_unlock(vpe, flags);
412 }
413
valid_col(struct its_collection * col)414 static struct its_collection *valid_col(struct its_collection *col)
415 {
416 if (WARN_ON_ONCE(col->target_address & GENMASK_ULL(15, 0)))
417 return NULL;
418
419 return col;
420 }
421
valid_vpe(struct its_node * its,struct its_vpe * vpe)422 static struct its_vpe *valid_vpe(struct its_node *its, struct its_vpe *vpe)
423 {
424 if (valid_col(its->collections + vpe->col_idx))
425 return vpe;
426
427 return NULL;
428 }
429
430 /*
431 * ITS command descriptors - parameters to be encoded in a command
432 * block.
433 */
434 struct its_cmd_desc {
435 union {
436 struct {
437 struct its_device *dev;
438 u32 event_id;
439 } its_inv_cmd;
440
441 struct {
442 struct its_device *dev;
443 u32 event_id;
444 } its_clear_cmd;
445
446 struct {
447 struct its_device *dev;
448 u32 event_id;
449 } its_int_cmd;
450
451 struct {
452 struct its_device *dev;
453 int valid;
454 } its_mapd_cmd;
455
456 struct {
457 struct its_collection *col;
458 int valid;
459 } its_mapc_cmd;
460
461 struct {
462 struct its_device *dev;
463 u32 phys_id;
464 u32 event_id;
465 } its_mapti_cmd;
466
467 struct {
468 struct its_device *dev;
469 struct its_collection *col;
470 u32 event_id;
471 } its_movi_cmd;
472
473 struct {
474 struct its_device *dev;
475 u32 event_id;
476 } its_discard_cmd;
477
478 struct {
479 struct its_collection *col;
480 } its_invall_cmd;
481
482 struct {
483 struct its_vpe *vpe;
484 } its_vinvall_cmd;
485
486 struct {
487 struct its_vpe *vpe;
488 struct its_collection *col;
489 bool valid;
490 } its_vmapp_cmd;
491
492 struct {
493 struct its_vpe *vpe;
494 struct its_device *dev;
495 u32 virt_id;
496 u32 event_id;
497 bool db_enabled;
498 } its_vmapti_cmd;
499
500 struct {
501 struct its_vpe *vpe;
502 struct its_device *dev;
503 u32 event_id;
504 bool db_enabled;
505 } its_vmovi_cmd;
506
507 struct {
508 struct its_vpe *vpe;
509 struct its_collection *col;
510 u16 seq_num;
511 u16 its_list;
512 } its_vmovp_cmd;
513
514 struct {
515 struct its_vpe *vpe;
516 } its_invdb_cmd;
517
518 struct {
519 struct its_vpe *vpe;
520 u8 sgi;
521 u8 priority;
522 bool enable;
523 bool group;
524 bool clear;
525 } its_vsgi_cmd;
526 };
527 };
528
529 /*
530 * The ITS command block, which is what the ITS actually parses.
531 */
532 struct its_cmd_block {
533 union {
534 u64 raw_cmd[4];
535 __le64 raw_cmd_le[4];
536 };
537 };
538
539 #define ITS_CMD_QUEUE_SZ SZ_64K
540 #define ITS_CMD_QUEUE_NR_ENTRIES (ITS_CMD_QUEUE_SZ / sizeof(struct its_cmd_block))
541
542 typedef struct its_collection *(*its_cmd_builder_t)(struct its_node *,
543 struct its_cmd_block *,
544 struct its_cmd_desc *);
545
546 typedef struct its_vpe *(*its_cmd_vbuilder_t)(struct its_node *,
547 struct its_cmd_block *,
548 struct its_cmd_desc *);
549
its_mask_encode(u64 * raw_cmd,u64 val,int h,int l)550 static void its_mask_encode(u64 *raw_cmd, u64 val, int h, int l)
551 {
552 u64 mask = GENMASK_ULL(h, l);
553 *raw_cmd &= ~mask;
554 *raw_cmd |= (val << l) & mask;
555 }
556
its_encode_cmd(struct its_cmd_block * cmd,u8 cmd_nr)557 static void its_encode_cmd(struct its_cmd_block *cmd, u8 cmd_nr)
558 {
559 its_mask_encode(&cmd->raw_cmd[0], cmd_nr, 7, 0);
560 }
561
its_encode_devid(struct its_cmd_block * cmd,u32 devid)562 static void its_encode_devid(struct its_cmd_block *cmd, u32 devid)
563 {
564 its_mask_encode(&cmd->raw_cmd[0], devid, 63, 32);
565 }
566
its_encode_event_id(struct its_cmd_block * cmd,u32 id)567 static void its_encode_event_id(struct its_cmd_block *cmd, u32 id)
568 {
569 its_mask_encode(&cmd->raw_cmd[1], id, 31, 0);
570 }
571
its_encode_phys_id(struct its_cmd_block * cmd,u32 phys_id)572 static void its_encode_phys_id(struct its_cmd_block *cmd, u32 phys_id)
573 {
574 its_mask_encode(&cmd->raw_cmd[1], phys_id, 63, 32);
575 }
576
its_encode_size(struct its_cmd_block * cmd,u8 size)577 static void its_encode_size(struct its_cmd_block *cmd, u8 size)
578 {
579 its_mask_encode(&cmd->raw_cmd[1], size, 4, 0);
580 }
581
its_encode_itt(struct its_cmd_block * cmd,u64 itt_addr)582 static void its_encode_itt(struct its_cmd_block *cmd, u64 itt_addr)
583 {
584 its_mask_encode(&cmd->raw_cmd[2], itt_addr >> 8, 51, 8);
585 }
586
its_encode_valid(struct its_cmd_block * cmd,int valid)587 static void its_encode_valid(struct its_cmd_block *cmd, int valid)
588 {
589 its_mask_encode(&cmd->raw_cmd[2], !!valid, 63, 63);
590 }
591
its_encode_target(struct its_cmd_block * cmd,u64 target_addr)592 static void its_encode_target(struct its_cmd_block *cmd, u64 target_addr)
593 {
594 its_mask_encode(&cmd->raw_cmd[2], target_addr >> 16, 51, 16);
595 }
596
its_encode_collection(struct its_cmd_block * cmd,u16 col)597 static void its_encode_collection(struct its_cmd_block *cmd, u16 col)
598 {
599 its_mask_encode(&cmd->raw_cmd[2], col, 15, 0);
600 }
601
its_encode_vpeid(struct its_cmd_block * cmd,u16 vpeid)602 static void its_encode_vpeid(struct its_cmd_block *cmd, u16 vpeid)
603 {
604 its_mask_encode(&cmd->raw_cmd[1], vpeid, 47, 32);
605 }
606
its_encode_virt_id(struct its_cmd_block * cmd,u32 virt_id)607 static void its_encode_virt_id(struct its_cmd_block *cmd, u32 virt_id)
608 {
609 its_mask_encode(&cmd->raw_cmd[2], virt_id, 31, 0);
610 }
611
its_encode_db_phys_id(struct its_cmd_block * cmd,u32 db_phys_id)612 static void its_encode_db_phys_id(struct its_cmd_block *cmd, u32 db_phys_id)
613 {
614 its_mask_encode(&cmd->raw_cmd[2], db_phys_id, 63, 32);
615 }
616
its_encode_db_valid(struct its_cmd_block * cmd,bool db_valid)617 static void its_encode_db_valid(struct its_cmd_block *cmd, bool db_valid)
618 {
619 its_mask_encode(&cmd->raw_cmd[2], db_valid, 0, 0);
620 }
621
its_encode_seq_num(struct its_cmd_block * cmd,u16 seq_num)622 static void its_encode_seq_num(struct its_cmd_block *cmd, u16 seq_num)
623 {
624 its_mask_encode(&cmd->raw_cmd[0], seq_num, 47, 32);
625 }
626
its_encode_its_list(struct its_cmd_block * cmd,u16 its_list)627 static void its_encode_its_list(struct its_cmd_block *cmd, u16 its_list)
628 {
629 its_mask_encode(&cmd->raw_cmd[1], its_list, 15, 0);
630 }
631
its_encode_vpt_addr(struct its_cmd_block * cmd,u64 vpt_pa)632 static void its_encode_vpt_addr(struct its_cmd_block *cmd, u64 vpt_pa)
633 {
634 its_mask_encode(&cmd->raw_cmd[3], vpt_pa >> 16, 51, 16);
635 }
636
its_encode_vpt_size(struct its_cmd_block * cmd,u8 vpt_size)637 static void its_encode_vpt_size(struct its_cmd_block *cmd, u8 vpt_size)
638 {
639 its_mask_encode(&cmd->raw_cmd[3], vpt_size, 4, 0);
640 }
641
its_encode_vconf_addr(struct its_cmd_block * cmd,u64 vconf_pa)642 static void its_encode_vconf_addr(struct its_cmd_block *cmd, u64 vconf_pa)
643 {
644 its_mask_encode(&cmd->raw_cmd[0], vconf_pa >> 16, 51, 16);
645 }
646
its_encode_alloc(struct its_cmd_block * cmd,bool alloc)647 static void its_encode_alloc(struct its_cmd_block *cmd, bool alloc)
648 {
649 its_mask_encode(&cmd->raw_cmd[0], alloc, 8, 8);
650 }
651
its_encode_ptz(struct its_cmd_block * cmd,bool ptz)652 static void its_encode_ptz(struct its_cmd_block *cmd, bool ptz)
653 {
654 its_mask_encode(&cmd->raw_cmd[0], ptz, 9, 9);
655 }
656
its_encode_vmapp_default_db(struct its_cmd_block * cmd,u32 vpe_db_lpi)657 static void its_encode_vmapp_default_db(struct its_cmd_block *cmd,
658 u32 vpe_db_lpi)
659 {
660 its_mask_encode(&cmd->raw_cmd[1], vpe_db_lpi, 31, 0);
661 }
662
its_encode_vmovp_default_db(struct its_cmd_block * cmd,u32 vpe_db_lpi)663 static void its_encode_vmovp_default_db(struct its_cmd_block *cmd,
664 u32 vpe_db_lpi)
665 {
666 its_mask_encode(&cmd->raw_cmd[3], vpe_db_lpi, 31, 0);
667 }
668
its_encode_db(struct its_cmd_block * cmd,bool db)669 static void its_encode_db(struct its_cmd_block *cmd, bool db)
670 {
671 its_mask_encode(&cmd->raw_cmd[2], db, 63, 63);
672 }
673
its_encode_sgi_intid(struct its_cmd_block * cmd,u8 sgi)674 static void its_encode_sgi_intid(struct its_cmd_block *cmd, u8 sgi)
675 {
676 its_mask_encode(&cmd->raw_cmd[0], sgi, 35, 32);
677 }
678
its_encode_sgi_priority(struct its_cmd_block * cmd,u8 prio)679 static void its_encode_sgi_priority(struct its_cmd_block *cmd, u8 prio)
680 {
681 its_mask_encode(&cmd->raw_cmd[0], prio >> 4, 23, 20);
682 }
683
its_encode_sgi_group(struct its_cmd_block * cmd,bool grp)684 static void its_encode_sgi_group(struct its_cmd_block *cmd, bool grp)
685 {
686 its_mask_encode(&cmd->raw_cmd[0], grp, 10, 10);
687 }
688
its_encode_sgi_clear(struct its_cmd_block * cmd,bool clr)689 static void its_encode_sgi_clear(struct its_cmd_block *cmd, bool clr)
690 {
691 its_mask_encode(&cmd->raw_cmd[0], clr, 9, 9);
692 }
693
its_encode_sgi_enable(struct its_cmd_block * cmd,bool en)694 static void its_encode_sgi_enable(struct its_cmd_block *cmd, bool en)
695 {
696 its_mask_encode(&cmd->raw_cmd[0], en, 8, 8);
697 }
698
its_fixup_cmd(struct its_cmd_block * cmd)699 static inline void its_fixup_cmd(struct its_cmd_block *cmd)
700 {
701 /* Let's fixup BE commands */
702 cmd->raw_cmd_le[0] = cpu_to_le64(cmd->raw_cmd[0]);
703 cmd->raw_cmd_le[1] = cpu_to_le64(cmd->raw_cmd[1]);
704 cmd->raw_cmd_le[2] = cpu_to_le64(cmd->raw_cmd[2]);
705 cmd->raw_cmd_le[3] = cpu_to_le64(cmd->raw_cmd[3]);
706 }
707
its_build_mapd_cmd(struct its_node * its,struct its_cmd_block * cmd,struct its_cmd_desc * desc)708 static struct its_collection *its_build_mapd_cmd(struct its_node *its,
709 struct its_cmd_block *cmd,
710 struct its_cmd_desc *desc)
711 {
712 phys_addr_t itt_addr;
713 u8 size = ilog2(desc->its_mapd_cmd.dev->nr_ites);
714
715 itt_addr = virt_to_phys(desc->its_mapd_cmd.dev->itt);
716
717 its_encode_cmd(cmd, GITS_CMD_MAPD);
718 its_encode_devid(cmd, desc->its_mapd_cmd.dev->device_id);
719 its_encode_size(cmd, size - 1);
720 its_encode_itt(cmd, itt_addr);
721 its_encode_valid(cmd, desc->its_mapd_cmd.valid);
722
723 its_fixup_cmd(cmd);
724
725 return NULL;
726 }
727
its_build_mapc_cmd(struct its_node * its,struct its_cmd_block * cmd,struct its_cmd_desc * desc)728 static struct its_collection *its_build_mapc_cmd(struct its_node *its,
729 struct its_cmd_block *cmd,
730 struct its_cmd_desc *desc)
731 {
732 its_encode_cmd(cmd, GITS_CMD_MAPC);
733 its_encode_collection(cmd, desc->its_mapc_cmd.col->col_id);
734 its_encode_target(cmd, desc->its_mapc_cmd.col->target_address);
735 its_encode_valid(cmd, desc->its_mapc_cmd.valid);
736
737 its_fixup_cmd(cmd);
738
739 return desc->its_mapc_cmd.col;
740 }
741
its_build_mapti_cmd(struct its_node * its,struct its_cmd_block * cmd,struct its_cmd_desc * desc)742 static struct its_collection *its_build_mapti_cmd(struct its_node *its,
743 struct its_cmd_block *cmd,
744 struct its_cmd_desc *desc)
745 {
746 struct its_collection *col;
747
748 col = dev_event_to_col(desc->its_mapti_cmd.dev,
749 desc->its_mapti_cmd.event_id);
750
751 its_encode_cmd(cmd, GITS_CMD_MAPTI);
752 its_encode_devid(cmd, desc->its_mapti_cmd.dev->device_id);
753 its_encode_event_id(cmd, desc->its_mapti_cmd.event_id);
754 its_encode_phys_id(cmd, desc->its_mapti_cmd.phys_id);
755 its_encode_collection(cmd, col->col_id);
756
757 its_fixup_cmd(cmd);
758
759 return valid_col(col);
760 }
761
its_build_movi_cmd(struct its_node * its,struct its_cmd_block * cmd,struct its_cmd_desc * desc)762 static struct its_collection *its_build_movi_cmd(struct its_node *its,
763 struct its_cmd_block *cmd,
764 struct its_cmd_desc *desc)
765 {
766 struct its_collection *col;
767
768 col = dev_event_to_col(desc->its_movi_cmd.dev,
769 desc->its_movi_cmd.event_id);
770
771 its_encode_cmd(cmd, GITS_CMD_MOVI);
772 its_encode_devid(cmd, desc->its_movi_cmd.dev->device_id);
773 its_encode_event_id(cmd, desc->its_movi_cmd.event_id);
774 its_encode_collection(cmd, desc->its_movi_cmd.col->col_id);
775
776 its_fixup_cmd(cmd);
777
778 return valid_col(col);
779 }
780
its_build_discard_cmd(struct its_node * its,struct its_cmd_block * cmd,struct its_cmd_desc * desc)781 static struct its_collection *its_build_discard_cmd(struct its_node *its,
782 struct its_cmd_block *cmd,
783 struct its_cmd_desc *desc)
784 {
785 struct its_collection *col;
786
787 col = dev_event_to_col(desc->its_discard_cmd.dev,
788 desc->its_discard_cmd.event_id);
789
790 its_encode_cmd(cmd, GITS_CMD_DISCARD);
791 its_encode_devid(cmd, desc->its_discard_cmd.dev->device_id);
792 its_encode_event_id(cmd, desc->its_discard_cmd.event_id);
793
794 its_fixup_cmd(cmd);
795
796 return valid_col(col);
797 }
798
its_build_inv_cmd(struct its_node * its,struct its_cmd_block * cmd,struct its_cmd_desc * desc)799 static struct its_collection *its_build_inv_cmd(struct its_node *its,
800 struct its_cmd_block *cmd,
801 struct its_cmd_desc *desc)
802 {
803 struct its_collection *col;
804
805 col = dev_event_to_col(desc->its_inv_cmd.dev,
806 desc->its_inv_cmd.event_id);
807
808 its_encode_cmd(cmd, GITS_CMD_INV);
809 its_encode_devid(cmd, desc->its_inv_cmd.dev->device_id);
810 its_encode_event_id(cmd, desc->its_inv_cmd.event_id);
811
812 its_fixup_cmd(cmd);
813
814 return valid_col(col);
815 }
816
its_build_int_cmd(struct its_node * its,struct its_cmd_block * cmd,struct its_cmd_desc * desc)817 static struct its_collection *its_build_int_cmd(struct its_node *its,
818 struct its_cmd_block *cmd,
819 struct its_cmd_desc *desc)
820 {
821 struct its_collection *col;
822
823 col = dev_event_to_col(desc->its_int_cmd.dev,
824 desc->its_int_cmd.event_id);
825
826 its_encode_cmd(cmd, GITS_CMD_INT);
827 its_encode_devid(cmd, desc->its_int_cmd.dev->device_id);
828 its_encode_event_id(cmd, desc->its_int_cmd.event_id);
829
830 its_fixup_cmd(cmd);
831
832 return valid_col(col);
833 }
834
its_build_clear_cmd(struct its_node * its,struct its_cmd_block * cmd,struct its_cmd_desc * desc)835 static struct its_collection *its_build_clear_cmd(struct its_node *its,
836 struct its_cmd_block *cmd,
837 struct its_cmd_desc *desc)
838 {
839 struct its_collection *col;
840
841 col = dev_event_to_col(desc->its_clear_cmd.dev,
842 desc->its_clear_cmd.event_id);
843
844 its_encode_cmd(cmd, GITS_CMD_CLEAR);
845 its_encode_devid(cmd, desc->its_clear_cmd.dev->device_id);
846 its_encode_event_id(cmd, desc->its_clear_cmd.event_id);
847
848 its_fixup_cmd(cmd);
849
850 return valid_col(col);
851 }
852
its_build_invall_cmd(struct its_node * its,struct its_cmd_block * cmd,struct its_cmd_desc * desc)853 static struct its_collection *its_build_invall_cmd(struct its_node *its,
854 struct its_cmd_block *cmd,
855 struct its_cmd_desc *desc)
856 {
857 its_encode_cmd(cmd, GITS_CMD_INVALL);
858 its_encode_collection(cmd, desc->its_invall_cmd.col->col_id);
859
860 its_fixup_cmd(cmd);
861
862 return desc->its_invall_cmd.col;
863 }
864
its_build_vinvall_cmd(struct its_node * its,struct its_cmd_block * cmd,struct its_cmd_desc * desc)865 static struct its_vpe *its_build_vinvall_cmd(struct its_node *its,
866 struct its_cmd_block *cmd,
867 struct its_cmd_desc *desc)
868 {
869 its_encode_cmd(cmd, GITS_CMD_VINVALL);
870 its_encode_vpeid(cmd, desc->its_vinvall_cmd.vpe->vpe_id);
871
872 its_fixup_cmd(cmd);
873
874 return valid_vpe(its, desc->its_vinvall_cmd.vpe);
875 }
876
its_build_vmapp_cmd(struct its_node * its,struct its_cmd_block * cmd,struct its_cmd_desc * desc)877 static struct its_vpe *its_build_vmapp_cmd(struct its_node *its,
878 struct its_cmd_block *cmd,
879 struct its_cmd_desc *desc)
880 {
881 struct its_vpe *vpe = valid_vpe(its, desc->its_vmapp_cmd.vpe);
882 phys_addr_t vpt_addr, vconf_addr;
883 u64 target;
884 bool alloc;
885
886 its_encode_cmd(cmd, GITS_CMD_VMAPP);
887 its_encode_vpeid(cmd, desc->its_vmapp_cmd.vpe->vpe_id);
888 its_encode_valid(cmd, desc->its_vmapp_cmd.valid);
889
890 if (!desc->its_vmapp_cmd.valid) {
891 alloc = !atomic_dec_return(&desc->its_vmapp_cmd.vpe->vmapp_count);
892 if (is_v4_1(its)) {
893 its_encode_alloc(cmd, alloc);
894 /*
895 * Unmapping a VPE is self-synchronizing on GICv4.1,
896 * no need to issue a VSYNC.
897 */
898 vpe = NULL;
899 }
900
901 goto out;
902 }
903
904 vpt_addr = virt_to_phys(page_address(desc->its_vmapp_cmd.vpe->vpt_page));
905 target = desc->its_vmapp_cmd.col->target_address + its->vlpi_redist_offset;
906
907 its_encode_target(cmd, target);
908 its_encode_vpt_addr(cmd, vpt_addr);
909 its_encode_vpt_size(cmd, LPI_NRBITS - 1);
910
911 alloc = !atomic_fetch_inc(&desc->its_vmapp_cmd.vpe->vmapp_count);
912
913 if (!is_v4_1(its))
914 goto out;
915
916 vconf_addr = virt_to_phys(page_address(desc->its_vmapp_cmd.vpe->its_vm->vprop_page));
917
918 its_encode_alloc(cmd, alloc);
919
920 /*
921 * GICv4.1 provides a way to get the VLPI state, which needs the vPE
922 * to be unmapped first, and in this case, we may remap the vPE
923 * back while the VPT is not empty. So we can't assume that the
924 * VPT is empty on map. This is why we never advertise PTZ.
925 */
926 its_encode_ptz(cmd, false);
927 its_encode_vconf_addr(cmd, vconf_addr);
928 its_encode_vmapp_default_db(cmd, desc->its_vmapp_cmd.vpe->vpe_db_lpi);
929
930 out:
931 its_fixup_cmd(cmd);
932
933 return vpe;
934 }
935
its_build_vmapti_cmd(struct its_node * its,struct its_cmd_block * cmd,struct its_cmd_desc * desc)936 static struct its_vpe *its_build_vmapti_cmd(struct its_node *its,
937 struct its_cmd_block *cmd,
938 struct its_cmd_desc *desc)
939 {
940 u32 db;
941
942 if (!is_v4_1(its) && desc->its_vmapti_cmd.db_enabled)
943 db = desc->its_vmapti_cmd.vpe->vpe_db_lpi;
944 else
945 db = 1023;
946
947 its_encode_cmd(cmd, GITS_CMD_VMAPTI);
948 its_encode_devid(cmd, desc->its_vmapti_cmd.dev->device_id);
949 its_encode_vpeid(cmd, desc->its_vmapti_cmd.vpe->vpe_id);
950 its_encode_event_id(cmd, desc->its_vmapti_cmd.event_id);
951 its_encode_db_phys_id(cmd, db);
952 its_encode_virt_id(cmd, desc->its_vmapti_cmd.virt_id);
953
954 its_fixup_cmd(cmd);
955
956 return valid_vpe(its, desc->its_vmapti_cmd.vpe);
957 }
958
its_build_vmovi_cmd(struct its_node * its,struct its_cmd_block * cmd,struct its_cmd_desc * desc)959 static struct its_vpe *its_build_vmovi_cmd(struct its_node *its,
960 struct its_cmd_block *cmd,
961 struct its_cmd_desc *desc)
962 {
963 u32 db;
964
965 if (!is_v4_1(its) && desc->its_vmovi_cmd.db_enabled)
966 db = desc->its_vmovi_cmd.vpe->vpe_db_lpi;
967 else
968 db = 1023;
969
970 its_encode_cmd(cmd, GITS_CMD_VMOVI);
971 its_encode_devid(cmd, desc->its_vmovi_cmd.dev->device_id);
972 its_encode_vpeid(cmd, desc->its_vmovi_cmd.vpe->vpe_id);
973 its_encode_event_id(cmd, desc->its_vmovi_cmd.event_id);
974 its_encode_db_phys_id(cmd, db);
975 its_encode_db_valid(cmd, true);
976
977 its_fixup_cmd(cmd);
978
979 return valid_vpe(its, desc->its_vmovi_cmd.vpe);
980 }
981
its_build_vmovp_cmd(struct its_node * its,struct its_cmd_block * cmd,struct its_cmd_desc * desc)982 static struct its_vpe *its_build_vmovp_cmd(struct its_node *its,
983 struct its_cmd_block *cmd,
984 struct its_cmd_desc *desc)
985 {
986 u64 target;
987
988 target = desc->its_vmovp_cmd.col->target_address + its->vlpi_redist_offset;
989 its_encode_cmd(cmd, GITS_CMD_VMOVP);
990 its_encode_seq_num(cmd, desc->its_vmovp_cmd.seq_num);
991 its_encode_its_list(cmd, desc->its_vmovp_cmd.its_list);
992 its_encode_vpeid(cmd, desc->its_vmovp_cmd.vpe->vpe_id);
993 its_encode_target(cmd, target);
994
995 if (is_v4_1(its)) {
996 its_encode_db(cmd, true);
997 its_encode_vmovp_default_db(cmd, desc->its_vmovp_cmd.vpe->vpe_db_lpi);
998 }
999
1000 its_fixup_cmd(cmd);
1001
1002 return valid_vpe(its, desc->its_vmovp_cmd.vpe);
1003 }
1004
its_build_vinv_cmd(struct its_node * its,struct its_cmd_block * cmd,struct its_cmd_desc * desc)1005 static struct its_vpe *its_build_vinv_cmd(struct its_node *its,
1006 struct its_cmd_block *cmd,
1007 struct its_cmd_desc *desc)
1008 {
1009 struct its_vlpi_map *map;
1010
1011 map = dev_event_to_vlpi_map(desc->its_inv_cmd.dev,
1012 desc->its_inv_cmd.event_id);
1013
1014 its_encode_cmd(cmd, GITS_CMD_INV);
1015 its_encode_devid(cmd, desc->its_inv_cmd.dev->device_id);
1016 its_encode_event_id(cmd, desc->its_inv_cmd.event_id);
1017
1018 its_fixup_cmd(cmd);
1019
1020 return valid_vpe(its, map->vpe);
1021 }
1022
its_build_vint_cmd(struct its_node * its,struct its_cmd_block * cmd,struct its_cmd_desc * desc)1023 static struct its_vpe *its_build_vint_cmd(struct its_node *its,
1024 struct its_cmd_block *cmd,
1025 struct its_cmd_desc *desc)
1026 {
1027 struct its_vlpi_map *map;
1028
1029 map = dev_event_to_vlpi_map(desc->its_int_cmd.dev,
1030 desc->its_int_cmd.event_id);
1031
1032 its_encode_cmd(cmd, GITS_CMD_INT);
1033 its_encode_devid(cmd, desc->its_int_cmd.dev->device_id);
1034 its_encode_event_id(cmd, desc->its_int_cmd.event_id);
1035
1036 its_fixup_cmd(cmd);
1037
1038 return valid_vpe(its, map->vpe);
1039 }
1040
its_build_vclear_cmd(struct its_node * its,struct its_cmd_block * cmd,struct its_cmd_desc * desc)1041 static struct its_vpe *its_build_vclear_cmd(struct its_node *its,
1042 struct its_cmd_block *cmd,
1043 struct its_cmd_desc *desc)
1044 {
1045 struct its_vlpi_map *map;
1046
1047 map = dev_event_to_vlpi_map(desc->its_clear_cmd.dev,
1048 desc->its_clear_cmd.event_id);
1049
1050 its_encode_cmd(cmd, GITS_CMD_CLEAR);
1051 its_encode_devid(cmd, desc->its_clear_cmd.dev->device_id);
1052 its_encode_event_id(cmd, desc->its_clear_cmd.event_id);
1053
1054 its_fixup_cmd(cmd);
1055
1056 return valid_vpe(its, map->vpe);
1057 }
1058
its_build_invdb_cmd(struct its_node * its,struct its_cmd_block * cmd,struct its_cmd_desc * desc)1059 static struct its_vpe *its_build_invdb_cmd(struct its_node *its,
1060 struct its_cmd_block *cmd,
1061 struct its_cmd_desc *desc)
1062 {
1063 if (WARN_ON(!is_v4_1(its)))
1064 return NULL;
1065
1066 its_encode_cmd(cmd, GITS_CMD_INVDB);
1067 its_encode_vpeid(cmd, desc->its_invdb_cmd.vpe->vpe_id);
1068
1069 its_fixup_cmd(cmd);
1070
1071 return valid_vpe(its, desc->its_invdb_cmd.vpe);
1072 }
1073
its_build_vsgi_cmd(struct its_node * its,struct its_cmd_block * cmd,struct its_cmd_desc * desc)1074 static struct its_vpe *its_build_vsgi_cmd(struct its_node *its,
1075 struct its_cmd_block *cmd,
1076 struct its_cmd_desc *desc)
1077 {
1078 if (WARN_ON(!is_v4_1(its)))
1079 return NULL;
1080
1081 its_encode_cmd(cmd, GITS_CMD_VSGI);
1082 its_encode_vpeid(cmd, desc->its_vsgi_cmd.vpe->vpe_id);
1083 its_encode_sgi_intid(cmd, desc->its_vsgi_cmd.sgi);
1084 its_encode_sgi_priority(cmd, desc->its_vsgi_cmd.priority);
1085 its_encode_sgi_group(cmd, desc->its_vsgi_cmd.group);
1086 its_encode_sgi_clear(cmd, desc->its_vsgi_cmd.clear);
1087 its_encode_sgi_enable(cmd, desc->its_vsgi_cmd.enable);
1088
1089 its_fixup_cmd(cmd);
1090
1091 return valid_vpe(its, desc->its_vsgi_cmd.vpe);
1092 }
1093
its_cmd_ptr_to_offset(struct its_node * its,struct its_cmd_block * ptr)1094 static u64 its_cmd_ptr_to_offset(struct its_node *its,
1095 struct its_cmd_block *ptr)
1096 {
1097 return (ptr - its->cmd_base) * sizeof(*ptr);
1098 }
1099
its_queue_full(struct its_node * its)1100 static int its_queue_full(struct its_node *its)
1101 {
1102 int widx;
1103 int ridx;
1104
1105 widx = its->cmd_write - its->cmd_base;
1106 ridx = readl_relaxed(its->base + GITS_CREADR) / sizeof(struct its_cmd_block);
1107
1108 /* This is incredibly unlikely to happen, unless the ITS locks up. */
1109 if (((widx + 1) % ITS_CMD_QUEUE_NR_ENTRIES) == ridx)
1110 return 1;
1111
1112 return 0;
1113 }
1114
its_allocate_entry(struct its_node * its)1115 static struct its_cmd_block *its_allocate_entry(struct its_node *its)
1116 {
1117 struct its_cmd_block *cmd;
1118 u32 count = 1000000; /* 1s! */
1119
1120 while (its_queue_full(its)) {
1121 count--;
1122 if (!count) {
1123 pr_err_ratelimited("ITS queue not draining\n");
1124 return NULL;
1125 }
1126 cpu_relax();
1127 udelay(1);
1128 }
1129
1130 cmd = its->cmd_write++;
1131
1132 /* Handle queue wrapping */
1133 if (its->cmd_write == (its->cmd_base + ITS_CMD_QUEUE_NR_ENTRIES))
1134 its->cmd_write = its->cmd_base;
1135
1136 /* Clear command */
1137 cmd->raw_cmd[0] = 0;
1138 cmd->raw_cmd[1] = 0;
1139 cmd->raw_cmd[2] = 0;
1140 cmd->raw_cmd[3] = 0;
1141
1142 return cmd;
1143 }
1144
its_post_commands(struct its_node * its)1145 static struct its_cmd_block *its_post_commands(struct its_node *its)
1146 {
1147 u64 wr = its_cmd_ptr_to_offset(its, its->cmd_write);
1148
1149 writel_relaxed(wr, its->base + GITS_CWRITER);
1150
1151 return its->cmd_write;
1152 }
1153
its_flush_cmd(struct its_node * its,struct its_cmd_block * cmd)1154 static void its_flush_cmd(struct its_node *its, struct its_cmd_block *cmd)
1155 {
1156 /*
1157 * Make sure the commands written to memory are observable by
1158 * the ITS.
1159 */
1160 if (its->flags & ITS_FLAGS_CMDQ_NEEDS_FLUSHING)
1161 gic_flush_dcache_to_poc(cmd, sizeof(*cmd));
1162 else
1163 dsb(ishst);
1164 }
1165
its_wait_for_range_completion(struct its_node * its,u64 prev_idx,struct its_cmd_block * to)1166 static int its_wait_for_range_completion(struct its_node *its,
1167 u64 prev_idx,
1168 struct its_cmd_block *to)
1169 {
1170 u64 rd_idx, to_idx, linear_idx;
1171 u32 count = 1000000; /* 1s! */
1172
1173 /* Linearize to_idx if the command set has wrapped around */
1174 to_idx = its_cmd_ptr_to_offset(its, to);
1175 if (to_idx < prev_idx)
1176 to_idx += ITS_CMD_QUEUE_SZ;
1177
1178 linear_idx = prev_idx;
1179
1180 while (1) {
1181 s64 delta;
1182
1183 rd_idx = readl_relaxed(its->base + GITS_CREADR);
1184
1185 /*
1186 * Compute the read pointer progress, taking the
1187 * potential wrap-around into account.
1188 */
1189 delta = rd_idx - prev_idx;
1190 if (rd_idx < prev_idx)
1191 delta += ITS_CMD_QUEUE_SZ;
1192
1193 linear_idx += delta;
1194 if (linear_idx >= to_idx)
1195 break;
1196
1197 count--;
1198 if (!count) {
1199 pr_err_ratelimited("ITS queue timeout (%llu %llu)\n",
1200 to_idx, linear_idx);
1201 return -1;
1202 }
1203 prev_idx = rd_idx;
1204 cpu_relax();
1205 udelay(1);
1206 }
1207
1208 return 0;
1209 }
1210
1211 /* Warning, macro hell follows */
1212 #define BUILD_SINGLE_CMD_FUNC(name, buildtype, synctype, buildfn) \
1213 void name(struct its_node *its, \
1214 buildtype builder, \
1215 struct its_cmd_desc *desc) \
1216 { \
1217 struct its_cmd_block *cmd, *sync_cmd, *next_cmd; \
1218 synctype *sync_obj; \
1219 unsigned long flags; \
1220 u64 rd_idx; \
1221 \
1222 raw_spin_lock_irqsave(&its->lock, flags); \
1223 \
1224 cmd = its_allocate_entry(its); \
1225 if (!cmd) { /* We're soooooo screewed... */ \
1226 raw_spin_unlock_irqrestore(&its->lock, flags); \
1227 return; \
1228 } \
1229 sync_obj = builder(its, cmd, desc); \
1230 its_flush_cmd(its, cmd); \
1231 \
1232 if (sync_obj) { \
1233 sync_cmd = its_allocate_entry(its); \
1234 if (!sync_cmd) \
1235 goto post; \
1236 \
1237 buildfn(its, sync_cmd, sync_obj); \
1238 its_flush_cmd(its, sync_cmd); \
1239 } \
1240 \
1241 post: \
1242 rd_idx = readl_relaxed(its->base + GITS_CREADR); \
1243 next_cmd = its_post_commands(its); \
1244 raw_spin_unlock_irqrestore(&its->lock, flags); \
1245 \
1246 if (its_wait_for_range_completion(its, rd_idx, next_cmd)) \
1247 pr_err_ratelimited("ITS cmd %ps failed\n", builder); \
1248 }
1249
its_build_sync_cmd(struct its_node * its,struct its_cmd_block * sync_cmd,struct its_collection * sync_col)1250 static void its_build_sync_cmd(struct its_node *its,
1251 struct its_cmd_block *sync_cmd,
1252 struct its_collection *sync_col)
1253 {
1254 its_encode_cmd(sync_cmd, GITS_CMD_SYNC);
1255 its_encode_target(sync_cmd, sync_col->target_address);
1256
1257 its_fixup_cmd(sync_cmd);
1258 }
1259
BUILD_SINGLE_CMD_FUNC(its_send_single_command,its_cmd_builder_t,struct its_collection,its_build_sync_cmd)1260 static BUILD_SINGLE_CMD_FUNC(its_send_single_command, its_cmd_builder_t,
1261 struct its_collection, its_build_sync_cmd)
1262
1263 static void its_build_vsync_cmd(struct its_node *its,
1264 struct its_cmd_block *sync_cmd,
1265 struct its_vpe *sync_vpe)
1266 {
1267 its_encode_cmd(sync_cmd, GITS_CMD_VSYNC);
1268 its_encode_vpeid(sync_cmd, sync_vpe->vpe_id);
1269
1270 its_fixup_cmd(sync_cmd);
1271 }
1272
BUILD_SINGLE_CMD_FUNC(its_send_single_vcommand,its_cmd_vbuilder_t,struct its_vpe,its_build_vsync_cmd)1273 static BUILD_SINGLE_CMD_FUNC(its_send_single_vcommand, its_cmd_vbuilder_t,
1274 struct its_vpe, its_build_vsync_cmd)
1275
1276 static void its_send_int(struct its_device *dev, u32 event_id)
1277 {
1278 struct its_cmd_desc desc;
1279
1280 desc.its_int_cmd.dev = dev;
1281 desc.its_int_cmd.event_id = event_id;
1282
1283 its_send_single_command(dev->its, its_build_int_cmd, &desc);
1284 }
1285
its_send_clear(struct its_device * dev,u32 event_id)1286 static void its_send_clear(struct its_device *dev, u32 event_id)
1287 {
1288 struct its_cmd_desc desc;
1289
1290 desc.its_clear_cmd.dev = dev;
1291 desc.its_clear_cmd.event_id = event_id;
1292
1293 its_send_single_command(dev->its, its_build_clear_cmd, &desc);
1294 }
1295
its_send_inv(struct its_device * dev,u32 event_id)1296 static void its_send_inv(struct its_device *dev, u32 event_id)
1297 {
1298 struct its_cmd_desc desc;
1299
1300 desc.its_inv_cmd.dev = dev;
1301 desc.its_inv_cmd.event_id = event_id;
1302
1303 its_send_single_command(dev->its, its_build_inv_cmd, &desc);
1304 }
1305
its_send_mapd(struct its_device * dev,int valid)1306 static void its_send_mapd(struct its_device *dev, int valid)
1307 {
1308 struct its_cmd_desc desc;
1309
1310 desc.its_mapd_cmd.dev = dev;
1311 desc.its_mapd_cmd.valid = !!valid;
1312
1313 its_send_single_command(dev->its, its_build_mapd_cmd, &desc);
1314 }
1315
its_send_mapc(struct its_node * its,struct its_collection * col,int valid)1316 static void its_send_mapc(struct its_node *its, struct its_collection *col,
1317 int valid)
1318 {
1319 struct its_cmd_desc desc;
1320
1321 desc.its_mapc_cmd.col = col;
1322 desc.its_mapc_cmd.valid = !!valid;
1323
1324 its_send_single_command(its, its_build_mapc_cmd, &desc);
1325 }
1326
its_send_mapti(struct its_device * dev,u32 irq_id,u32 id)1327 static void its_send_mapti(struct its_device *dev, u32 irq_id, u32 id)
1328 {
1329 struct its_cmd_desc desc;
1330
1331 desc.its_mapti_cmd.dev = dev;
1332 desc.its_mapti_cmd.phys_id = irq_id;
1333 desc.its_mapti_cmd.event_id = id;
1334
1335 its_send_single_command(dev->its, its_build_mapti_cmd, &desc);
1336 }
1337
its_send_movi(struct its_device * dev,struct its_collection * col,u32 id)1338 static void its_send_movi(struct its_device *dev,
1339 struct its_collection *col, u32 id)
1340 {
1341 struct its_cmd_desc desc;
1342
1343 desc.its_movi_cmd.dev = dev;
1344 desc.its_movi_cmd.col = col;
1345 desc.its_movi_cmd.event_id = id;
1346
1347 its_send_single_command(dev->its, its_build_movi_cmd, &desc);
1348 }
1349
its_send_discard(struct its_device * dev,u32 id)1350 static void its_send_discard(struct its_device *dev, u32 id)
1351 {
1352 struct its_cmd_desc desc;
1353
1354 desc.its_discard_cmd.dev = dev;
1355 desc.its_discard_cmd.event_id = id;
1356
1357 its_send_single_command(dev->its, its_build_discard_cmd, &desc);
1358 }
1359
its_send_invall(struct its_node * its,struct its_collection * col)1360 static void its_send_invall(struct its_node *its, struct its_collection *col)
1361 {
1362 struct its_cmd_desc desc;
1363
1364 desc.its_invall_cmd.col = col;
1365
1366 its_send_single_command(its, its_build_invall_cmd, &desc);
1367 }
1368
its_send_vmapti(struct its_device * dev,u32 id)1369 static void its_send_vmapti(struct its_device *dev, u32 id)
1370 {
1371 struct its_vlpi_map *map = dev_event_to_vlpi_map(dev, id);
1372 struct its_cmd_desc desc;
1373
1374 desc.its_vmapti_cmd.vpe = map->vpe;
1375 desc.its_vmapti_cmd.dev = dev;
1376 desc.its_vmapti_cmd.virt_id = map->vintid;
1377 desc.its_vmapti_cmd.event_id = id;
1378 desc.its_vmapti_cmd.db_enabled = map->db_enabled;
1379
1380 its_send_single_vcommand(dev->its, its_build_vmapti_cmd, &desc);
1381 }
1382
its_send_vmovi(struct its_device * dev,u32 id)1383 static void its_send_vmovi(struct its_device *dev, u32 id)
1384 {
1385 struct its_vlpi_map *map = dev_event_to_vlpi_map(dev, id);
1386 struct its_cmd_desc desc;
1387
1388 desc.its_vmovi_cmd.vpe = map->vpe;
1389 desc.its_vmovi_cmd.dev = dev;
1390 desc.its_vmovi_cmd.event_id = id;
1391 desc.its_vmovi_cmd.db_enabled = map->db_enabled;
1392
1393 its_send_single_vcommand(dev->its, its_build_vmovi_cmd, &desc);
1394 }
1395
its_send_vmapp(struct its_node * its,struct its_vpe * vpe,bool valid)1396 static void its_send_vmapp(struct its_node *its,
1397 struct its_vpe *vpe, bool valid)
1398 {
1399 struct its_cmd_desc desc;
1400
1401 desc.its_vmapp_cmd.vpe = vpe;
1402 desc.its_vmapp_cmd.valid = valid;
1403 desc.its_vmapp_cmd.col = &its->collections[vpe->col_idx];
1404
1405 its_send_single_vcommand(its, its_build_vmapp_cmd, &desc);
1406 }
1407
its_send_vmovp(struct its_vpe * vpe)1408 static void its_send_vmovp(struct its_vpe *vpe)
1409 {
1410 struct its_cmd_desc desc = {};
1411 struct its_node *its;
1412 int col_id = vpe->col_idx;
1413
1414 desc.its_vmovp_cmd.vpe = vpe;
1415
1416 if (!its_list_map) {
1417 its = list_first_entry(&its_nodes, struct its_node, entry);
1418 desc.its_vmovp_cmd.col = &its->collections[col_id];
1419 its_send_single_vcommand(its, its_build_vmovp_cmd, &desc);
1420 return;
1421 }
1422
1423 /*
1424 * Yet another marvel of the architecture. If using the
1425 * its_list "feature", we need to make sure that all ITSs
1426 * receive all VMOVP commands in the same order. The only way
1427 * to guarantee this is to make vmovp a serialization point.
1428 *
1429 * Wall <-- Head.
1430 */
1431 guard(raw_spinlock)(&vmovp_lock);
1432 desc.its_vmovp_cmd.seq_num = vmovp_seq_num++;
1433 desc.its_vmovp_cmd.its_list = get_its_list(vpe->its_vm);
1434
1435 /* Emit VMOVPs */
1436 list_for_each_entry(its, &its_nodes, entry) {
1437 if (!is_v4(its))
1438 continue;
1439
1440 if (!require_its_list_vmovp(vpe->its_vm, its))
1441 continue;
1442
1443 desc.its_vmovp_cmd.col = &its->collections[col_id];
1444 its_send_single_vcommand(its, its_build_vmovp_cmd, &desc);
1445 }
1446 }
1447
its_send_vinvall(struct its_node * its,struct its_vpe * vpe)1448 static void its_send_vinvall(struct its_node *its, struct its_vpe *vpe)
1449 {
1450 struct its_cmd_desc desc;
1451
1452 desc.its_vinvall_cmd.vpe = vpe;
1453 its_send_single_vcommand(its, its_build_vinvall_cmd, &desc);
1454 }
1455
its_send_vinv(struct its_device * dev,u32 event_id)1456 static void its_send_vinv(struct its_device *dev, u32 event_id)
1457 {
1458 struct its_cmd_desc desc;
1459
1460 /*
1461 * There is no real VINV command. This is just a normal INV,
1462 * with a VSYNC instead of a SYNC.
1463 */
1464 desc.its_inv_cmd.dev = dev;
1465 desc.its_inv_cmd.event_id = event_id;
1466
1467 its_send_single_vcommand(dev->its, its_build_vinv_cmd, &desc);
1468 }
1469
its_send_vint(struct its_device * dev,u32 event_id)1470 static void its_send_vint(struct its_device *dev, u32 event_id)
1471 {
1472 struct its_cmd_desc desc;
1473
1474 /*
1475 * There is no real VINT command. This is just a normal INT,
1476 * with a VSYNC instead of a SYNC.
1477 */
1478 desc.its_int_cmd.dev = dev;
1479 desc.its_int_cmd.event_id = event_id;
1480
1481 its_send_single_vcommand(dev->its, its_build_vint_cmd, &desc);
1482 }
1483
its_send_vclear(struct its_device * dev,u32 event_id)1484 static void its_send_vclear(struct its_device *dev, u32 event_id)
1485 {
1486 struct its_cmd_desc desc;
1487
1488 /*
1489 * There is no real VCLEAR command. This is just a normal CLEAR,
1490 * with a VSYNC instead of a SYNC.
1491 */
1492 desc.its_clear_cmd.dev = dev;
1493 desc.its_clear_cmd.event_id = event_id;
1494
1495 its_send_single_vcommand(dev->its, its_build_vclear_cmd, &desc);
1496 }
1497
its_send_invdb(struct its_node * its,struct its_vpe * vpe)1498 static void its_send_invdb(struct its_node *its, struct its_vpe *vpe)
1499 {
1500 struct its_cmd_desc desc;
1501
1502 desc.its_invdb_cmd.vpe = vpe;
1503 its_send_single_vcommand(its, its_build_invdb_cmd, &desc);
1504 }
1505
1506 /*
1507 * irqchip functions - assumes MSI, mostly.
1508 */
lpi_write_config(struct irq_data * d,u8 clr,u8 set)1509 static void lpi_write_config(struct irq_data *d, u8 clr, u8 set)
1510 {
1511 struct its_vlpi_map *map = get_vlpi_map(d);
1512 irq_hw_number_t hwirq;
1513 void *va;
1514 u8 *cfg;
1515
1516 if (map) {
1517 va = page_address(map->vm->vprop_page);
1518 hwirq = map->vintid;
1519
1520 /* Remember the updated property */
1521 map->properties &= ~clr;
1522 map->properties |= set | LPI_PROP_GROUP1;
1523 } else {
1524 va = gic_rdists->prop_table_va;
1525 hwirq = d->hwirq;
1526 }
1527
1528 cfg = va + hwirq - 8192;
1529 *cfg &= ~clr;
1530 *cfg |= set | LPI_PROP_GROUP1;
1531
1532 /*
1533 * Make the above write visible to the redistributors.
1534 * And yes, we're flushing exactly: One. Single. Byte.
1535 * Humpf...
1536 */
1537 if (gic_rdists->flags & RDIST_FLAGS_PROPBASE_NEEDS_FLUSHING)
1538 gic_flush_dcache_to_poc(cfg, sizeof(*cfg));
1539 else
1540 dsb(ishst);
1541 }
1542
wait_for_syncr(void __iomem * rdbase)1543 static void wait_for_syncr(void __iomem *rdbase)
1544 {
1545 while (readl_relaxed(rdbase + GICR_SYNCR) & 1)
1546 cpu_relax();
1547 }
1548
__direct_lpi_inv(struct irq_data * d,u64 val)1549 static void __direct_lpi_inv(struct irq_data *d, u64 val)
1550 {
1551 void __iomem *rdbase;
1552 unsigned long flags;
1553 int cpu;
1554
1555 /* Target the redistributor this LPI is currently routed to */
1556 cpu = irq_to_cpuid_lock(d, &flags);
1557 raw_spin_lock(&gic_data_rdist_cpu(cpu)->rd_lock);
1558
1559 rdbase = per_cpu_ptr(gic_rdists->rdist, cpu)->rd_base;
1560 gic_write_lpir(val, rdbase + GICR_INVLPIR);
1561 wait_for_syncr(rdbase);
1562
1563 raw_spin_unlock(&gic_data_rdist_cpu(cpu)->rd_lock);
1564 irq_to_cpuid_unlock(d, flags);
1565 }
1566
direct_lpi_inv(struct irq_data * d)1567 static void direct_lpi_inv(struct irq_data *d)
1568 {
1569 struct its_vlpi_map *map = get_vlpi_map(d);
1570 u64 val;
1571
1572 if (map) {
1573 struct its_device *its_dev = irq_data_get_irq_chip_data(d);
1574
1575 WARN_ON(!is_v4_1(its_dev->its));
1576
1577 val = GICR_INVLPIR_V;
1578 val |= FIELD_PREP(GICR_INVLPIR_VPEID, map->vpe->vpe_id);
1579 val |= FIELD_PREP(GICR_INVLPIR_INTID, map->vintid);
1580 } else {
1581 val = d->hwirq;
1582 }
1583
1584 __direct_lpi_inv(d, val);
1585 }
1586
lpi_update_config(struct irq_data * d,u8 clr,u8 set)1587 static void lpi_update_config(struct irq_data *d, u8 clr, u8 set)
1588 {
1589 struct its_device *its_dev = irq_data_get_irq_chip_data(d);
1590
1591 lpi_write_config(d, clr, set);
1592 if (gic_rdists->has_direct_lpi &&
1593 (is_v4_1(its_dev->its) || !irqd_is_forwarded_to_vcpu(d)))
1594 direct_lpi_inv(d);
1595 else if (!irqd_is_forwarded_to_vcpu(d))
1596 its_send_inv(its_dev, its_get_event_id(d));
1597 else
1598 its_send_vinv(its_dev, its_get_event_id(d));
1599 }
1600
its_vlpi_set_doorbell(struct irq_data * d,bool enable)1601 static void its_vlpi_set_doorbell(struct irq_data *d, bool enable)
1602 {
1603 struct its_device *its_dev = irq_data_get_irq_chip_data(d);
1604 u32 event = its_get_event_id(d);
1605 struct its_vlpi_map *map;
1606
1607 /*
1608 * GICv4.1 does away with the per-LPI nonsense, nothing to do
1609 * here.
1610 */
1611 if (is_v4_1(its_dev->its))
1612 return;
1613
1614 map = dev_event_to_vlpi_map(its_dev, event);
1615
1616 if (map->db_enabled == enable)
1617 return;
1618
1619 map->db_enabled = enable;
1620
1621 /*
1622 * More fun with the architecture:
1623 *
1624 * Ideally, we'd issue a VMAPTI to set the doorbell to its LPI
1625 * value or to 1023, depending on the enable bit. But that
1626 * would be issuing a mapping for an /existing/ DevID+EventID
1627 * pair, which is UNPREDICTABLE. Instead, let's issue a VMOVI
1628 * to the /same/ vPE, using this opportunity to adjust the
1629 * doorbell. Mouahahahaha. We loves it, Precious.
1630 */
1631 its_send_vmovi(its_dev, event);
1632 }
1633
its_mask_irq(struct irq_data * d)1634 static void its_mask_irq(struct irq_data *d)
1635 {
1636 if (irqd_is_forwarded_to_vcpu(d))
1637 its_vlpi_set_doorbell(d, false);
1638
1639 lpi_update_config(d, LPI_PROP_ENABLED, 0);
1640 }
1641
its_unmask_irq(struct irq_data * d)1642 static void its_unmask_irq(struct irq_data *d)
1643 {
1644 if (irqd_is_forwarded_to_vcpu(d))
1645 its_vlpi_set_doorbell(d, true);
1646
1647 lpi_update_config(d, 0, LPI_PROP_ENABLED);
1648 }
1649
its_read_lpi_count(struct irq_data * d,int cpu)1650 static __maybe_unused u32 its_read_lpi_count(struct irq_data *d, int cpu)
1651 {
1652 if (irqd_affinity_is_managed(d))
1653 return atomic_read(&per_cpu_ptr(&cpu_lpi_count, cpu)->managed);
1654
1655 return atomic_read(&per_cpu_ptr(&cpu_lpi_count, cpu)->unmanaged);
1656 }
1657
its_inc_lpi_count(struct irq_data * d,int cpu)1658 static void its_inc_lpi_count(struct irq_data *d, int cpu)
1659 {
1660 if (irqd_affinity_is_managed(d))
1661 atomic_inc(&per_cpu_ptr(&cpu_lpi_count, cpu)->managed);
1662 else
1663 atomic_inc(&per_cpu_ptr(&cpu_lpi_count, cpu)->unmanaged);
1664 }
1665
its_dec_lpi_count(struct irq_data * d,int cpu)1666 static void its_dec_lpi_count(struct irq_data *d, int cpu)
1667 {
1668 if (irqd_affinity_is_managed(d))
1669 atomic_dec(&per_cpu_ptr(&cpu_lpi_count, cpu)->managed);
1670 else
1671 atomic_dec(&per_cpu_ptr(&cpu_lpi_count, cpu)->unmanaged);
1672 }
1673
cpumask_pick_least_loaded(struct irq_data * d,const struct cpumask * cpu_mask)1674 static unsigned int cpumask_pick_least_loaded(struct irq_data *d,
1675 const struct cpumask *cpu_mask)
1676 {
1677 unsigned int cpu = nr_cpu_ids, tmp;
1678 int count = S32_MAX;
1679
1680 for_each_cpu(tmp, cpu_mask) {
1681 int this_count = its_read_lpi_count(d, tmp);
1682 if (this_count < count) {
1683 cpu = tmp;
1684 count = this_count;
1685 }
1686 }
1687
1688 return cpu;
1689 }
1690
1691 /*
1692 * As suggested by Thomas Gleixner in:
1693 * https://lore.kernel.org/r/87h80q2aoc.fsf@nanos.tec.linutronix.de
1694 */
its_select_cpu(struct irq_data * d,const struct cpumask * aff_mask)1695 static int its_select_cpu(struct irq_data *d,
1696 const struct cpumask *aff_mask)
1697 {
1698 struct its_device *its_dev = irq_data_get_irq_chip_data(d);
1699 static DEFINE_RAW_SPINLOCK(tmpmask_lock);
1700 static struct cpumask __tmpmask;
1701 struct cpumask *tmpmask;
1702 unsigned long flags;
1703 int cpu, node;
1704 node = its_dev->its->numa_node;
1705 tmpmask = &__tmpmask;
1706
1707 raw_spin_lock_irqsave(&tmpmask_lock, flags);
1708
1709 if (!irqd_affinity_is_managed(d)) {
1710 /* First try the NUMA node */
1711 if (node != NUMA_NO_NODE) {
1712 /*
1713 * Try the intersection of the affinity mask and the
1714 * node mask (and the online mask, just to be safe).
1715 */
1716 cpumask_and(tmpmask, cpumask_of_node(node), aff_mask);
1717 cpumask_and(tmpmask, tmpmask, cpu_online_mask);
1718
1719 /*
1720 * Ideally, we would check if the mask is empty, and
1721 * try again on the full node here.
1722 *
1723 * But it turns out that the way ACPI describes the
1724 * affinity for ITSs only deals about memory, and
1725 * not target CPUs, so it cannot describe a single
1726 * ITS placed next to two NUMA nodes.
1727 *
1728 * Instead, just fallback on the online mask. This
1729 * diverges from Thomas' suggestion above.
1730 */
1731 cpu = cpumask_pick_least_loaded(d, tmpmask);
1732 if (cpu < nr_cpu_ids)
1733 goto out;
1734
1735 /* If we can't cross sockets, give up */
1736 if ((its_dev->its->flags & ITS_FLAGS_WORKAROUND_CAVIUM_23144))
1737 goto out;
1738
1739 /* If the above failed, expand the search */
1740 }
1741
1742 /* Try the intersection of the affinity and online masks */
1743 cpumask_and(tmpmask, aff_mask, cpu_online_mask);
1744
1745 /* If that doesn't fly, the online mask is the last resort */
1746 if (cpumask_empty(tmpmask))
1747 cpumask_copy(tmpmask, cpu_online_mask);
1748
1749 cpu = cpumask_pick_least_loaded(d, tmpmask);
1750 } else {
1751 cpumask_copy(tmpmask, aff_mask);
1752
1753 /* If we cannot cross sockets, limit the search to that node */
1754 if ((its_dev->its->flags & ITS_FLAGS_WORKAROUND_CAVIUM_23144) &&
1755 node != NUMA_NO_NODE)
1756 cpumask_and(tmpmask, tmpmask, cpumask_of_node(node));
1757
1758 cpu = cpumask_pick_least_loaded(d, tmpmask);
1759 }
1760 out:
1761 raw_spin_unlock_irqrestore(&tmpmask_lock, flags);
1762
1763 pr_debug("IRQ%d -> %*pbl CPU%d\n", d->irq, cpumask_pr_args(aff_mask), cpu);
1764 return cpu;
1765 }
1766
its_set_affinity(struct irq_data * d,const struct cpumask * mask_val,bool force)1767 static int its_set_affinity(struct irq_data *d, const struct cpumask *mask_val,
1768 bool force)
1769 {
1770 struct its_device *its_dev = irq_data_get_irq_chip_data(d);
1771 struct its_collection *target_col;
1772 u32 id = its_get_event_id(d);
1773 int cpu, prev_cpu;
1774
1775 /* A forwarded interrupt should use irq_set_vcpu_affinity */
1776 if (irqd_is_forwarded_to_vcpu(d))
1777 return -EINVAL;
1778
1779 prev_cpu = its_dev->event_map.col_map[id];
1780 its_dec_lpi_count(d, prev_cpu);
1781
1782 if (!force)
1783 cpu = its_select_cpu(d, mask_val);
1784 else
1785 cpu = cpumask_pick_least_loaded(d, mask_val);
1786
1787 if (cpu < 0 || cpu >= nr_cpu_ids)
1788 goto err;
1789
1790 /* don't set the affinity when the target cpu is same as current one */
1791 if (cpu != prev_cpu) {
1792 target_col = &its_dev->its->collections[cpu];
1793 its_send_movi(its_dev, target_col, id);
1794 its_dev->event_map.col_map[id] = cpu;
1795 irq_data_update_effective_affinity(d, cpumask_of(cpu));
1796 }
1797
1798 its_inc_lpi_count(d, cpu);
1799
1800 return IRQ_SET_MASK_OK_DONE;
1801
1802 err:
1803 its_inc_lpi_count(d, prev_cpu);
1804 return -EINVAL;
1805 }
1806
its_irq_get_msi_base(struct its_device * its_dev)1807 static u64 its_irq_get_msi_base(struct its_device *its_dev)
1808 {
1809 struct its_node *its = its_dev->its;
1810
1811 return its->phys_base + GITS_TRANSLATER;
1812 }
1813
its_irq_compose_msi_msg(struct irq_data * d,struct msi_msg * msg)1814 static void its_irq_compose_msi_msg(struct irq_data *d, struct msi_msg *msg)
1815 {
1816 struct its_device *its_dev = irq_data_get_irq_chip_data(d);
1817
1818 msg->data = its_get_event_id(d);
1819 msi_msg_set_addr(irq_data_get_msi_desc(d), msg,
1820 its_dev->its->get_msi_base(its_dev));
1821 }
1822
its_irq_set_irqchip_state(struct irq_data * d,enum irqchip_irq_state which,bool state)1823 static int its_irq_set_irqchip_state(struct irq_data *d,
1824 enum irqchip_irq_state which,
1825 bool state)
1826 {
1827 struct its_device *its_dev = irq_data_get_irq_chip_data(d);
1828 u32 event = its_get_event_id(d);
1829
1830 if (which != IRQCHIP_STATE_PENDING)
1831 return -EINVAL;
1832
1833 if (irqd_is_forwarded_to_vcpu(d)) {
1834 if (state)
1835 its_send_vint(its_dev, event);
1836 else
1837 its_send_vclear(its_dev, event);
1838 } else {
1839 if (state)
1840 its_send_int(its_dev, event);
1841 else
1842 its_send_clear(its_dev, event);
1843 }
1844
1845 return 0;
1846 }
1847
its_irq_retrigger(struct irq_data * d)1848 static int its_irq_retrigger(struct irq_data *d)
1849 {
1850 return !its_irq_set_irqchip_state(d, IRQCHIP_STATE_PENDING, true);
1851 }
1852
1853 /*
1854 * Two favourable cases:
1855 *
1856 * (a) Either we have a GICv4.1, and all vPEs have to be mapped at all times
1857 * for vSGI delivery
1858 *
1859 * (b) Or the ITSs do not use a list map, meaning that VMOVP is cheap enough
1860 * and we're better off mapping all VPEs always
1861 *
1862 * If neither (a) nor (b) is true, then we map vPEs on demand.
1863 *
1864 */
gic_requires_eager_mapping(void)1865 static bool gic_requires_eager_mapping(void)
1866 {
1867 if (!its_list_map || gic_rdists->has_rvpeid)
1868 return true;
1869
1870 return false;
1871 }
1872
its_map_vm(struct its_node * its,struct its_vm * vm)1873 static void its_map_vm(struct its_node *its, struct its_vm *vm)
1874 {
1875 if (gic_requires_eager_mapping())
1876 return;
1877
1878 guard(raw_spinlock_irqsave)(&vm->vmapp_lock);
1879
1880 /*
1881 * If the VM wasn't mapped yet, iterate over the vpes and get
1882 * them mapped now.
1883 */
1884 vm->vlpi_count[its->list_nr]++;
1885
1886 if (vm->vlpi_count[its->list_nr] == 1) {
1887 int i;
1888
1889 for (i = 0; i < vm->nr_vpes; i++) {
1890 struct its_vpe *vpe = vm->vpes[i];
1891
1892 scoped_guard(raw_spinlock, &vpe->vpe_lock)
1893 its_send_vmapp(its, vpe, true);
1894
1895 its_send_vinvall(its, vpe);
1896 }
1897 }
1898 }
1899
its_unmap_vm(struct its_node * its,struct its_vm * vm)1900 static void its_unmap_vm(struct its_node *its, struct its_vm *vm)
1901 {
1902 /* Not using the ITS list? Everything is always mapped. */
1903 if (gic_requires_eager_mapping())
1904 return;
1905
1906 guard(raw_spinlock_irqsave)(&vm->vmapp_lock);
1907
1908 if (!--vm->vlpi_count[its->list_nr]) {
1909 int i;
1910
1911 for (i = 0; i < vm->nr_vpes; i++) {
1912 guard(raw_spinlock)(&vm->vpes[i]->vpe_lock);
1913 its_send_vmapp(its, vm->vpes[i], false);
1914 }
1915 }
1916 }
1917
its_vlpi_map(struct irq_data * d,struct its_cmd_info * info)1918 static int its_vlpi_map(struct irq_data *d, struct its_cmd_info *info)
1919 {
1920 struct its_device *its_dev = irq_data_get_irq_chip_data(d);
1921 u32 event = its_get_event_id(d);
1922
1923 if (!info->map)
1924 return -EINVAL;
1925
1926 if (!its_dev->event_map.vm) {
1927 struct its_vlpi_map *maps;
1928
1929 maps = kzalloc_objs(*maps, its_dev->event_map.nr_lpis,
1930 GFP_ATOMIC);
1931 if (!maps)
1932 return -ENOMEM;
1933
1934 its_dev->event_map.vm = info->map->vm;
1935 its_dev->event_map.vlpi_maps = maps;
1936 } else if (its_dev->event_map.vm != info->map->vm) {
1937 return -EINVAL;
1938 }
1939
1940 /* Get our private copy of the mapping information */
1941 its_dev->event_map.vlpi_maps[event] = *info->map;
1942
1943 if (irqd_is_forwarded_to_vcpu(d)) {
1944 /* Already mapped, move it around */
1945 its_send_vmovi(its_dev, event);
1946 } else {
1947 /* Ensure all the VPEs are mapped on this ITS */
1948 its_map_vm(its_dev->its, info->map->vm);
1949
1950 /*
1951 * Flag the interrupt as forwarded so that we can
1952 * start poking the virtual property table.
1953 */
1954 irqd_set_forwarded_to_vcpu(d);
1955
1956 /* Write out the property to the prop table */
1957 lpi_write_config(d, 0xff, info->map->properties);
1958
1959 /* Drop the physical mapping */
1960 its_send_discard(its_dev, event);
1961
1962 /* and install the virtual one */
1963 its_send_vmapti(its_dev, event);
1964
1965 /* Increment the number of VLPIs */
1966 its_dev->event_map.nr_vlpis++;
1967 }
1968
1969 return 0;
1970 }
1971
its_vlpi_get(struct irq_data * d,struct its_cmd_info * info)1972 static int its_vlpi_get(struct irq_data *d, struct its_cmd_info *info)
1973 {
1974 struct its_device *its_dev = irq_data_get_irq_chip_data(d);
1975 struct its_vlpi_map *map;
1976
1977 map = get_vlpi_map(d);
1978
1979 if (!its_dev->event_map.vm || !map)
1980 return -EINVAL;
1981
1982 /* Copy our mapping information to the incoming request */
1983 *info->map = *map;
1984
1985 return 0;
1986 }
1987
its_vlpi_unmap(struct irq_data * d)1988 static int its_vlpi_unmap(struct irq_data *d)
1989 {
1990 struct its_device *its_dev = irq_data_get_irq_chip_data(d);
1991 u32 event = its_get_event_id(d);
1992
1993 if (!its_dev->event_map.vm || !irqd_is_forwarded_to_vcpu(d))
1994 return -EINVAL;
1995
1996 /* Drop the virtual mapping */
1997 its_send_discard(its_dev, event);
1998
1999 /* and restore the physical one */
2000 irqd_clr_forwarded_to_vcpu(d);
2001 its_send_mapti(its_dev, d->hwirq, event);
2002 lpi_update_config(d, 0xff, (lpi_prop_prio |
2003 LPI_PROP_ENABLED |
2004 LPI_PROP_GROUP1));
2005
2006 /* Potentially unmap the VM from this ITS */
2007 its_unmap_vm(its_dev->its, its_dev->event_map.vm);
2008
2009 /*
2010 * Drop the refcount and make the device available again if
2011 * this was the last VLPI.
2012 */
2013 if (!--its_dev->event_map.nr_vlpis) {
2014 its_dev->event_map.vm = NULL;
2015 kfree(its_dev->event_map.vlpi_maps);
2016 }
2017
2018 return 0;
2019 }
2020
its_vlpi_prop_update(struct irq_data * d,struct its_cmd_info * info)2021 static int its_vlpi_prop_update(struct irq_data *d, struct its_cmd_info *info)
2022 {
2023 struct its_device *its_dev = irq_data_get_irq_chip_data(d);
2024
2025 if (!its_dev->event_map.vm || !irqd_is_forwarded_to_vcpu(d))
2026 return -EINVAL;
2027
2028 if (info->cmd_type == PROP_UPDATE_AND_INV_VLPI)
2029 lpi_update_config(d, 0xff, info->config);
2030 else
2031 lpi_write_config(d, 0xff, info->config);
2032 its_vlpi_set_doorbell(d, !!(info->config & LPI_PROP_ENABLED));
2033
2034 return 0;
2035 }
2036
its_irq_set_vcpu_affinity(struct irq_data * d,void * vcpu_info)2037 static int its_irq_set_vcpu_affinity(struct irq_data *d, void *vcpu_info)
2038 {
2039 struct its_device *its_dev = irq_data_get_irq_chip_data(d);
2040 struct its_cmd_info *info = vcpu_info;
2041
2042 /* Need a v4 ITS */
2043 if (!is_v4(its_dev->its))
2044 return -EINVAL;
2045
2046 guard(raw_spinlock)(&its_dev->event_map.vlpi_lock);
2047
2048 /* Unmap request? */
2049 if (!info)
2050 return its_vlpi_unmap(d);
2051
2052 switch (info->cmd_type) {
2053 case MAP_VLPI:
2054 return its_vlpi_map(d, info);
2055
2056 case GET_VLPI:
2057 return its_vlpi_get(d, info);
2058
2059 case PROP_UPDATE_VLPI:
2060 case PROP_UPDATE_AND_INV_VLPI:
2061 return its_vlpi_prop_update(d, info);
2062
2063 default:
2064 return -EINVAL;
2065 }
2066 }
2067
2068 static struct irq_chip its_irq_chip = {
2069 .name = "ITS",
2070 .irq_mask = its_mask_irq,
2071 .irq_unmask = its_unmask_irq,
2072 .irq_eoi = irq_chip_eoi_parent,
2073 .irq_set_affinity = its_set_affinity,
2074 .irq_compose_msi_msg = its_irq_compose_msi_msg,
2075 .irq_set_irqchip_state = its_irq_set_irqchip_state,
2076 .irq_retrigger = its_irq_retrigger,
2077 .irq_set_vcpu_affinity = its_irq_set_vcpu_affinity,
2078 };
2079
2080
2081 /*
2082 * How we allocate LPIs:
2083 *
2084 * lpi_range_list contains ranges of LPIs that are to available to
2085 * allocate from. To allocate LPIs, just pick the first range that
2086 * fits the required allocation, and reduce it by the required
2087 * amount. Once empty, remove the range from the list.
2088 *
2089 * To free a range of LPIs, add a free range to the list, sort it and
2090 * merge the result if the new range happens to be adjacent to an
2091 * already free block.
2092 *
2093 * The consequence of the above is that allocation is cost is low, but
2094 * freeing is expensive. We assumes that freeing rarely occurs.
2095 */
2096 #define ITS_MAX_LPI_NRBITS 16 /* 64K LPIs */
2097
2098 static DEFINE_MUTEX(lpi_range_lock);
2099 static LIST_HEAD(lpi_range_list);
2100
2101 struct lpi_range {
2102 struct list_head entry;
2103 u32 base_id;
2104 u32 span;
2105 };
2106
mk_lpi_range(u32 base,u32 span)2107 static struct lpi_range *mk_lpi_range(u32 base, u32 span)
2108 {
2109 struct lpi_range *range;
2110
2111 range = kmalloc_obj(*range);
2112 if (range) {
2113 range->base_id = base;
2114 range->span = span;
2115 }
2116
2117 return range;
2118 }
2119
alloc_lpi_range(u32 nr_lpis,u32 * base)2120 static int alloc_lpi_range(u32 nr_lpis, u32 *base)
2121 {
2122 struct lpi_range *range, *tmp;
2123 int err = -ENOSPC;
2124
2125 mutex_lock(&lpi_range_lock);
2126
2127 list_for_each_entry_safe(range, tmp, &lpi_range_list, entry) {
2128 if (range->span >= nr_lpis) {
2129 *base = range->base_id;
2130 range->base_id += nr_lpis;
2131 range->span -= nr_lpis;
2132
2133 if (range->span == 0) {
2134 list_del(&range->entry);
2135 kfree(range);
2136 }
2137
2138 err = 0;
2139 break;
2140 }
2141 }
2142
2143 mutex_unlock(&lpi_range_lock);
2144
2145 pr_debug("ITS: alloc %u:%u\n", *base, nr_lpis);
2146 return err;
2147 }
2148
merge_lpi_ranges(struct lpi_range * a,struct lpi_range * b)2149 static void merge_lpi_ranges(struct lpi_range *a, struct lpi_range *b)
2150 {
2151 if (&a->entry == &lpi_range_list || &b->entry == &lpi_range_list)
2152 return;
2153 if (a->base_id + a->span != b->base_id)
2154 return;
2155 b->base_id = a->base_id;
2156 b->span += a->span;
2157 list_del(&a->entry);
2158 kfree(a);
2159 }
2160
free_lpi_range(u32 base,u32 nr_lpis)2161 static int free_lpi_range(u32 base, u32 nr_lpis)
2162 {
2163 struct lpi_range *new, *old;
2164
2165 new = mk_lpi_range(base, nr_lpis);
2166 if (!new)
2167 return -ENOMEM;
2168
2169 mutex_lock(&lpi_range_lock);
2170
2171 list_for_each_entry_reverse(old, &lpi_range_list, entry) {
2172 if (old->base_id < base)
2173 break;
2174 }
2175 /*
2176 * old is the last element with ->base_id smaller than base,
2177 * so new goes right after it. If there are no elements with
2178 * ->base_id smaller than base, &old->entry ends up pointing
2179 * at the head of the list, and inserting new it the start of
2180 * the list is the right thing to do in that case as well.
2181 */
2182 list_add(&new->entry, &old->entry);
2183 /*
2184 * Now check if we can merge with the preceding and/or
2185 * following ranges.
2186 */
2187 merge_lpi_ranges(old, new);
2188 merge_lpi_ranges(new, list_next_entry(new, entry));
2189
2190 mutex_unlock(&lpi_range_lock);
2191 return 0;
2192 }
2193
its_lpi_init(u32 id_bits)2194 static int __init its_lpi_init(u32 id_bits)
2195 {
2196 u32 lpis = (1UL << id_bits) - 8192;
2197 u32 numlpis;
2198 int err;
2199
2200 numlpis = 1UL << GICD_TYPER_NUM_LPIS(gic_rdists->gicd_typer);
2201
2202 if (numlpis > 2 && !WARN_ON(numlpis > lpis)) {
2203 lpis = numlpis;
2204 pr_info("ITS: Using hypervisor restricted LPI range [%u]\n",
2205 lpis);
2206 }
2207
2208 /*
2209 * Initializing the allocator is just the same as freeing the
2210 * full range of LPIs.
2211 */
2212 err = free_lpi_range(8192, lpis);
2213 pr_debug("ITS: Allocator initialized for %u LPIs\n", lpis);
2214 return err;
2215 }
2216
its_lpi_alloc(int nr_irqs,u32 * base,int * nr_ids)2217 static unsigned long *its_lpi_alloc(int nr_irqs, u32 *base, int *nr_ids)
2218 {
2219 unsigned long *bitmap = NULL;
2220 int err = 0;
2221
2222 do {
2223 err = alloc_lpi_range(nr_irqs, base);
2224 if (!err)
2225 break;
2226
2227 nr_irqs /= 2;
2228 } while (nr_irqs > 0);
2229
2230 if (!nr_irqs)
2231 err = -ENOSPC;
2232
2233 if (err)
2234 goto out;
2235
2236 bitmap = bitmap_zalloc(nr_irqs, GFP_ATOMIC);
2237 if (!bitmap)
2238 goto out;
2239
2240 *nr_ids = nr_irqs;
2241
2242 out:
2243 if (!bitmap)
2244 *base = *nr_ids = 0;
2245
2246 return bitmap;
2247 }
2248
its_lpi_free(unsigned long * bitmap,u32 base,u32 nr_ids)2249 static void its_lpi_free(unsigned long *bitmap, u32 base, u32 nr_ids)
2250 {
2251 WARN_ON(free_lpi_range(base, nr_ids));
2252 bitmap_free(bitmap);
2253 }
2254
gic_reset_prop_table(void * va)2255 static void gic_reset_prop_table(void *va)
2256 {
2257 /* Regular IRQ priority, Group-1, disabled */
2258 memset(va, lpi_prop_prio | LPI_PROP_GROUP1, LPI_PROPBASE_SZ);
2259
2260 /* Make sure the GIC will observe the written configuration */
2261 gic_flush_dcache_to_poc(va, LPI_PROPBASE_SZ);
2262 }
2263
its_allocate_prop_table(gfp_t gfp_flags)2264 static struct page *its_allocate_prop_table(gfp_t gfp_flags)
2265 {
2266 struct page *prop_page;
2267
2268 prop_page = its_alloc_pages(gfp_flags,
2269 get_order(LPI_PROPBASE_SZ));
2270 if (!prop_page)
2271 return NULL;
2272
2273 gic_reset_prop_table(page_address(prop_page));
2274
2275 return prop_page;
2276 }
2277
its_free_prop_table(struct page * prop_page)2278 static void its_free_prop_table(struct page *prop_page)
2279 {
2280 its_free_pages(page_address(prop_page), get_order(LPI_PROPBASE_SZ));
2281 }
2282
gic_check_reserved_range(phys_addr_t addr,unsigned long size)2283 static bool gic_check_reserved_range(phys_addr_t addr, unsigned long size)
2284 {
2285 phys_addr_t start, end, addr_end;
2286 u64 i;
2287
2288 /*
2289 * We don't bother checking for a kdump kernel as by
2290 * construction, the LPI tables are out of this kernel's
2291 * memory map.
2292 */
2293 if (is_kdump_kernel())
2294 return true;
2295
2296 addr_end = addr + size - 1;
2297
2298 for_each_reserved_mem_range(i, &start, &end) {
2299 if (addr >= start && addr_end <= end)
2300 return true;
2301 }
2302
2303 /* Not found, not a good sign... */
2304 pr_warn("GICv3: Expected reserved range [%pa:%pa], not found\n",
2305 &addr, &addr_end);
2306 add_taint(TAINT_CRAP, LOCKDEP_STILL_OK);
2307 return false;
2308 }
2309
gic_reserve_range(phys_addr_t addr,unsigned long size)2310 static int gic_reserve_range(phys_addr_t addr, unsigned long size)
2311 {
2312 if (efi_enabled(EFI_CONFIG_TABLES))
2313 return efi_mem_reserve_persistent(addr, size);
2314
2315 return 0;
2316 }
2317
its_setup_lpi_prop_table(void)2318 static int __init its_setup_lpi_prop_table(void)
2319 {
2320 if (gic_rdists->flags & RDIST_FLAGS_RD_TABLES_PREALLOCATED) {
2321 u64 val;
2322
2323 val = gicr_read_propbaser(gic_data_rdist_rd_base() + GICR_PROPBASER);
2324 lpi_id_bits = (val & GICR_PROPBASER_IDBITS_MASK) + 1;
2325
2326 gic_rdists->prop_table_pa = val & GENMASK_ULL(51, 12);
2327 gic_rdists->prop_table_va = memremap(gic_rdists->prop_table_pa,
2328 LPI_PROPBASE_SZ,
2329 MEMREMAP_WB);
2330 gic_reset_prop_table(gic_rdists->prop_table_va);
2331 } else {
2332 struct page *page;
2333
2334 lpi_id_bits = min_t(u32,
2335 GICD_TYPER_ID_BITS(gic_rdists->gicd_typer),
2336 ITS_MAX_LPI_NRBITS);
2337 page = its_allocate_prop_table(GFP_NOWAIT);
2338 if (!page) {
2339 pr_err("Failed to allocate PROPBASE\n");
2340 return -ENOMEM;
2341 }
2342
2343 gic_rdists->prop_table_pa = page_to_phys(page);
2344 gic_rdists->prop_table_va = page_address(page);
2345 WARN_ON(gic_reserve_range(gic_rdists->prop_table_pa,
2346 LPI_PROPBASE_SZ));
2347 }
2348
2349 pr_info("GICv3: using LPI property table @%pa\n",
2350 &gic_rdists->prop_table_pa);
2351
2352 return its_lpi_init(lpi_id_bits);
2353 }
2354
2355 static const char *its_base_type_string[] = {
2356 [GITS_BASER_TYPE_DEVICE] = "Devices",
2357 [GITS_BASER_TYPE_VCPU] = "Virtual CPUs",
2358 [GITS_BASER_TYPE_RESERVED3] = "Reserved (3)",
2359 [GITS_BASER_TYPE_COLLECTION] = "Interrupt Collections",
2360 [GITS_BASER_TYPE_RESERVED5] = "Reserved (5)",
2361 [GITS_BASER_TYPE_RESERVED6] = "Reserved (6)",
2362 [GITS_BASER_TYPE_RESERVED7] = "Reserved (7)",
2363 };
2364
its_read_baser(struct its_node * its,struct its_baser * baser)2365 static u64 its_read_baser(struct its_node *its, struct its_baser *baser)
2366 {
2367 u32 idx = baser - its->tables;
2368
2369 return gits_read_baser(its->base + GITS_BASER + (idx << 3));
2370 }
2371
its_write_baser(struct its_node * its,struct its_baser * baser,u64 val)2372 static void its_write_baser(struct its_node *its, struct its_baser *baser,
2373 u64 val)
2374 {
2375 u32 idx = baser - its->tables;
2376
2377 gits_write_baser(val, its->base + GITS_BASER + (idx << 3));
2378 baser->val = its_read_baser(its, baser);
2379 }
2380
its_setup_baser(struct its_node * its,struct its_baser * baser,u64 cache,u64 shr,u32 order,bool indirect)2381 static int its_setup_baser(struct its_node *its, struct its_baser *baser,
2382 u64 cache, u64 shr, u32 order, bool indirect)
2383 {
2384 u64 val = its_read_baser(its, baser);
2385 u64 esz = GITS_BASER_ENTRY_SIZE(val);
2386 u64 type = GITS_BASER_TYPE(val);
2387 u64 baser_phys, tmp;
2388 u32 alloc_pages, psz;
2389 struct page *page;
2390 void *base;
2391
2392 psz = baser->psz;
2393 alloc_pages = (PAGE_ORDER_TO_SIZE(order) / psz);
2394 if (alloc_pages > GITS_BASER_PAGES_MAX) {
2395 pr_warn("ITS@%pa: %s too large, reduce ITS pages %u->%u\n",
2396 &its->phys_base, its_base_type_string[type],
2397 alloc_pages, GITS_BASER_PAGES_MAX);
2398 alloc_pages = GITS_BASER_PAGES_MAX;
2399 order = get_order(GITS_BASER_PAGES_MAX * psz);
2400 }
2401
2402 page = its_alloc_pages_node(its->numa_node, GFP_KERNEL | __GFP_ZERO, order);
2403 if (!page)
2404 return -ENOMEM;
2405
2406 base = (void *)page_address(page);
2407 baser_phys = virt_to_phys(base);
2408
2409 /* Check if the physical address of the memory is above 48bits */
2410 if (IS_ENABLED(CONFIG_ARM64_64K_PAGES) && (baser_phys >> 48)) {
2411
2412 /* 52bit PA is supported only when PageSize=64K */
2413 if (psz != SZ_64K) {
2414 pr_err("ITS: no 52bit PA support when psz=%d\n", psz);
2415 its_free_pages(base, order);
2416 return -ENXIO;
2417 }
2418
2419 /* Convert 52bit PA to 48bit field */
2420 baser_phys = GITS_BASER_PHYS_52_to_48(baser_phys);
2421 }
2422
2423 retry_baser:
2424 val = (baser_phys |
2425 (type << GITS_BASER_TYPE_SHIFT) |
2426 ((esz - 1) << GITS_BASER_ENTRY_SIZE_SHIFT) |
2427 ((alloc_pages - 1) << GITS_BASER_PAGES_SHIFT) |
2428 cache |
2429 shr |
2430 GITS_BASER_VALID);
2431
2432 val |= indirect ? GITS_BASER_INDIRECT : 0x0;
2433
2434 switch (psz) {
2435 case SZ_4K:
2436 val |= GITS_BASER_PAGE_SIZE_4K;
2437 break;
2438 case SZ_16K:
2439 val |= GITS_BASER_PAGE_SIZE_16K;
2440 break;
2441 case SZ_64K:
2442 val |= GITS_BASER_PAGE_SIZE_64K;
2443 break;
2444 }
2445
2446 if (!shr)
2447 gic_flush_dcache_to_poc(base, PAGE_ORDER_TO_SIZE(order));
2448
2449 its_write_baser(its, baser, val);
2450 tmp = baser->val;
2451
2452 if ((val ^ tmp) & GITS_BASER_SHAREABILITY_MASK) {
2453 /*
2454 * Shareability didn't stick. Just use
2455 * whatever the read reported, which is likely
2456 * to be the only thing this redistributor
2457 * supports. If that's zero, make it
2458 * non-cacheable as well.
2459 */
2460 shr = tmp & GITS_BASER_SHAREABILITY_MASK;
2461 if (!shr)
2462 cache = GITS_BASER_nC;
2463
2464 goto retry_baser;
2465 }
2466
2467 if (val != tmp) {
2468 pr_err("ITS@%pa: %s doesn't stick: %llx %llx\n",
2469 &its->phys_base, its_base_type_string[type],
2470 val, tmp);
2471 its_free_pages(base, order);
2472 return -ENXIO;
2473 }
2474
2475 baser->order = order;
2476 baser->base = base;
2477 baser->psz = psz;
2478 tmp = indirect ? GITS_LVL1_ENTRY_SIZE : esz;
2479
2480 pr_info("ITS@%pa: allocated %d %s @%llx (%s, esz %d, psz %dK, shr %d)\n",
2481 &its->phys_base, (int)(PAGE_ORDER_TO_SIZE(order) / (int)tmp),
2482 its_base_type_string[type],
2483 (u64)virt_to_phys(base),
2484 indirect ? "indirect" : "flat", (int)esz,
2485 psz / SZ_1K, (int)shr >> GITS_BASER_SHAREABILITY_SHIFT);
2486
2487 return 0;
2488 }
2489
its_parse_indirect_baser(struct its_node * its,struct its_baser * baser,u32 * order,u32 ids)2490 static bool its_parse_indirect_baser(struct its_node *its,
2491 struct its_baser *baser,
2492 u32 *order, u32 ids)
2493 {
2494 u64 tmp = its_read_baser(its, baser);
2495 u64 type = GITS_BASER_TYPE(tmp);
2496 u64 esz = GITS_BASER_ENTRY_SIZE(tmp);
2497 u64 val = GITS_BASER_InnerShareable | GITS_BASER_RaWaWb;
2498 u32 new_order = *order;
2499 u32 psz = baser->psz;
2500 bool indirect = false;
2501
2502 /* No need to enable Indirection if memory requirement < (psz*2)bytes */
2503 if ((esz << ids) > (psz * 2)) {
2504 /* Find out whether the hardware supports a single or two-level table */
2505 its_write_baser(its, baser, val | GITS_BASER_INDIRECT);
2506 indirect = !!(baser->val & GITS_BASER_INDIRECT);
2507
2508 if (indirect) {
2509 /*
2510 * The size of the lvl2 table is equal to ITS page size
2511 * which is 'psz'. For computing lvl1 table size,
2512 * subtract ID bits that sparse lvl2 table from 'ids'
2513 * which is reported by ITS hardware times lvl1 table
2514 * entry size.
2515 */
2516 ids -= ilog2(psz / (int)esz);
2517 esz = GITS_LVL1_ENTRY_SIZE;
2518 }
2519 }
2520
2521 /*
2522 * Allocate as many entries as required to fit the
2523 * range of device IDs that the ITS can grok... The ID
2524 * space being incredibly sparse, this results in a
2525 * massive waste of memory if two-level device table
2526 * feature is not supported by hardware.
2527 */
2528 new_order = max_t(u32, get_order(esz << ids), new_order);
2529 if (new_order > MAX_PAGE_ORDER) {
2530 new_order = MAX_PAGE_ORDER;
2531 ids = ilog2(PAGE_ORDER_TO_SIZE(new_order) / (int)esz);
2532 pr_warn("ITS@%pa: %s Table too large, reduce ids %llu->%u\n",
2533 &its->phys_base, its_base_type_string[type],
2534 device_ids(its), ids);
2535 }
2536
2537 *order = new_order;
2538
2539 return indirect;
2540 }
2541
compute_common_aff(u64 val)2542 static u32 compute_common_aff(u64 val)
2543 {
2544 u32 aff, clpiaff;
2545
2546 aff = FIELD_GET(GICR_TYPER_AFFINITY, val);
2547 clpiaff = FIELD_GET(GICR_TYPER_COMMON_LPI_AFF, val);
2548
2549 return aff & ~(GENMASK(31, 0) >> (clpiaff * 8));
2550 }
2551
compute_its_aff(struct its_node * its)2552 static u32 compute_its_aff(struct its_node *its)
2553 {
2554 u64 val;
2555 u32 svpet;
2556
2557 /*
2558 * Reencode the ITS SVPET and MPIDR as a GICR_TYPER, and compute
2559 * the resulting affinity. We then use that to see if this match
2560 * our own affinity.
2561 */
2562 svpet = FIELD_GET(GITS_TYPER_SVPET, its->typer);
2563 val = FIELD_PREP(GICR_TYPER_COMMON_LPI_AFF, svpet);
2564 val |= FIELD_PREP(GICR_TYPER_AFFINITY, its->mpidr);
2565 return compute_common_aff(val);
2566 }
2567
find_sibling_its(struct its_node * cur_its)2568 static struct its_node *find_sibling_its(struct its_node *cur_its)
2569 {
2570 struct its_node *its;
2571 u32 aff;
2572
2573 if (!FIELD_GET(GITS_TYPER_SVPET, cur_its->typer))
2574 return NULL;
2575
2576 aff = compute_its_aff(cur_its);
2577
2578 list_for_each_entry(its, &its_nodes, entry) {
2579 u64 baser;
2580
2581 if (!is_v4_1(its) || its == cur_its)
2582 continue;
2583
2584 if (!FIELD_GET(GITS_TYPER_SVPET, its->typer))
2585 continue;
2586
2587 if (aff != compute_its_aff(its))
2588 continue;
2589
2590 /* GICv4.1 guarantees that the vPE table is GITS_BASER2 */
2591 baser = its->tables[2].val;
2592 if (!(baser & GITS_BASER_VALID))
2593 continue;
2594
2595 return its;
2596 }
2597
2598 return NULL;
2599 }
2600
its_free_tables(struct its_node * its)2601 static void its_free_tables(struct its_node *its)
2602 {
2603 int i;
2604
2605 for (i = 0; i < GITS_BASER_NR_REGS; i++) {
2606 if (its->tables[i].base) {
2607 its_free_pages(its->tables[i].base, its->tables[i].order);
2608 its->tables[i].base = NULL;
2609 }
2610 }
2611 }
2612
its_probe_baser_psz(struct its_node * its,struct its_baser * baser)2613 static int its_probe_baser_psz(struct its_node *its, struct its_baser *baser)
2614 {
2615 u64 psz = SZ_64K;
2616
2617 while (psz) {
2618 u64 val, gpsz;
2619
2620 val = its_read_baser(its, baser);
2621 val &= ~GITS_BASER_PAGE_SIZE_MASK;
2622
2623 switch (psz) {
2624 case SZ_64K:
2625 gpsz = GITS_BASER_PAGE_SIZE_64K;
2626 break;
2627 case SZ_16K:
2628 gpsz = GITS_BASER_PAGE_SIZE_16K;
2629 break;
2630 case SZ_4K:
2631 default:
2632 gpsz = GITS_BASER_PAGE_SIZE_4K;
2633 break;
2634 }
2635
2636 gpsz >>= GITS_BASER_PAGE_SIZE_SHIFT;
2637
2638 val |= FIELD_PREP(GITS_BASER_PAGE_SIZE_MASK, gpsz);
2639 its_write_baser(its, baser, val);
2640
2641 if (FIELD_GET(GITS_BASER_PAGE_SIZE_MASK, baser->val) == gpsz)
2642 break;
2643
2644 switch (psz) {
2645 case SZ_64K:
2646 psz = SZ_16K;
2647 break;
2648 case SZ_16K:
2649 psz = SZ_4K;
2650 break;
2651 case SZ_4K:
2652 default:
2653 return -1;
2654 }
2655 }
2656
2657 baser->psz = psz;
2658 return 0;
2659 }
2660
its_alloc_tables(struct its_node * its)2661 static int its_alloc_tables(struct its_node *its)
2662 {
2663 u64 shr = GITS_BASER_InnerShareable;
2664 u64 cache = GITS_BASER_RaWaWb;
2665 int err, i;
2666
2667 if (its->flags & ITS_FLAGS_WORKAROUND_CAVIUM_22375)
2668 /* erratum 24313: ignore memory access type */
2669 cache = GITS_BASER_nCnB;
2670
2671 if (its->flags & ITS_FLAGS_FORCE_NON_SHAREABLE) {
2672 cache = GITS_BASER_nC;
2673 shr = 0;
2674 }
2675
2676 for (i = 0; i < GITS_BASER_NR_REGS; i++) {
2677 struct its_baser *baser = its->tables + i;
2678 u64 val = its_read_baser(its, baser);
2679 u64 type = GITS_BASER_TYPE(val);
2680 bool indirect = false;
2681 u32 order;
2682
2683 if (type == GITS_BASER_TYPE_NONE)
2684 continue;
2685
2686 if (its_probe_baser_psz(its, baser)) {
2687 its_free_tables(its);
2688 return -ENXIO;
2689 }
2690
2691 order = get_order(baser->psz);
2692
2693 switch (type) {
2694 case GITS_BASER_TYPE_DEVICE:
2695 indirect = its_parse_indirect_baser(its, baser, &order,
2696 device_ids(its));
2697 break;
2698
2699 case GITS_BASER_TYPE_VCPU:
2700 if (is_v4_1(its)) {
2701 struct its_node *sibling;
2702
2703 WARN_ON(i != 2);
2704 if ((sibling = find_sibling_its(its))) {
2705 *baser = sibling->tables[2];
2706 its_write_baser(its, baser, baser->val);
2707 continue;
2708 }
2709 }
2710
2711 indirect = its_parse_indirect_baser(its, baser, &order,
2712 ITS_MAX_VPEID_BITS);
2713 break;
2714 }
2715
2716 err = its_setup_baser(its, baser, cache, shr, order, indirect);
2717 if (err < 0) {
2718 its_free_tables(its);
2719 return err;
2720 }
2721
2722 /* Update settings which will be used for next BASERn */
2723 cache = baser->val & GITS_BASER_CACHEABILITY_MASK;
2724 shr = baser->val & GITS_BASER_SHAREABILITY_MASK;
2725 }
2726
2727 return 0;
2728 }
2729
inherit_vpe_l1_table_from_its(void)2730 static u64 inherit_vpe_l1_table_from_its(void)
2731 {
2732 struct its_node *its;
2733 u64 val;
2734 u32 aff;
2735
2736 val = gic_read_typer(gic_data_rdist_rd_base() + GICR_TYPER);
2737 aff = compute_common_aff(val);
2738
2739 list_for_each_entry(its, &its_nodes, entry) {
2740 u64 baser, addr;
2741
2742 if (!is_v4_1(its))
2743 continue;
2744
2745 if (!FIELD_GET(GITS_TYPER_SVPET, its->typer))
2746 continue;
2747
2748 if (aff != compute_its_aff(its))
2749 continue;
2750
2751 /* GICv4.1 guarantees that the vPE table is GITS_BASER2 */
2752 baser = its->tables[2].val;
2753 if (!(baser & GITS_BASER_VALID))
2754 continue;
2755
2756 /* We have a winner! */
2757 gic_data_rdist()->vpe_l1_base = its->tables[2].base;
2758
2759 val = GICR_VPROPBASER_4_1_VALID;
2760 if (baser & GITS_BASER_INDIRECT)
2761 val |= GICR_VPROPBASER_4_1_INDIRECT;
2762 val |= FIELD_PREP(GICR_VPROPBASER_4_1_PAGE_SIZE,
2763 FIELD_GET(GITS_BASER_PAGE_SIZE_MASK, baser));
2764 switch (FIELD_GET(GITS_BASER_PAGE_SIZE_MASK, baser)) {
2765 case GIC_PAGE_SIZE_64K:
2766 addr = GITS_BASER_ADDR_48_to_52(baser);
2767 break;
2768 default:
2769 addr = baser & GENMASK_ULL(47, 12);
2770 break;
2771 }
2772 val |= FIELD_PREP(GICR_VPROPBASER_4_1_ADDR, addr >> 12);
2773 if (rdists_support_shareable()) {
2774 val |= FIELD_PREP(GICR_VPROPBASER_SHAREABILITY_MASK,
2775 FIELD_GET(GITS_BASER_SHAREABILITY_MASK, baser));
2776 val |= FIELD_PREP(GICR_VPROPBASER_INNER_CACHEABILITY_MASK,
2777 FIELD_GET(GITS_BASER_INNER_CACHEABILITY_MASK, baser));
2778 }
2779 val |= FIELD_PREP(GICR_VPROPBASER_4_1_SIZE, GITS_BASER_NR_PAGES(baser) - 1);
2780
2781 *this_cpu_ptr(&local_4_1_its) = its;
2782 return val;
2783 }
2784
2785 return 0;
2786 }
2787
inherit_vpe_l1_table_from_rd(cpumask_t ** mask)2788 static u64 inherit_vpe_l1_table_from_rd(cpumask_t **mask)
2789 {
2790 u32 aff;
2791 u64 val;
2792 int cpu;
2793
2794 val = gic_read_typer(gic_data_rdist_rd_base() + GICR_TYPER);
2795 aff = compute_common_aff(val);
2796
2797 for_each_possible_cpu(cpu) {
2798 void __iomem *base = gic_data_rdist_cpu(cpu)->rd_base;
2799
2800 if (!base || cpu == smp_processor_id())
2801 continue;
2802
2803 val = gic_read_typer(base + GICR_TYPER);
2804 if (aff != compute_common_aff(val))
2805 continue;
2806
2807 /*
2808 * At this point, we have a victim. This particular CPU
2809 * has already booted, and has an affinity that matches
2810 * ours wrt CommonLPIAff. Let's use its own VPROPBASER.
2811 * Make sure we don't write the Z bit in that case.
2812 */
2813 val = gicr_read_vpropbaser(base + SZ_128K + GICR_VPROPBASER);
2814 val &= ~GICR_VPROPBASER_4_1_Z;
2815
2816 gic_data_rdist()->vpe_l1_base = gic_data_rdist_cpu(cpu)->vpe_l1_base;
2817 *mask = gic_data_rdist_cpu(cpu)->vpe_table_mask;
2818
2819 *this_cpu_ptr(&local_4_1_its) = *per_cpu_ptr(&local_4_1_its, cpu);
2820 return val;
2821 }
2822
2823 return 0;
2824 }
2825
allocate_vpe_l2_table(int cpu,u32 id)2826 static bool allocate_vpe_l2_table(int cpu, u32 id)
2827 {
2828 void __iomem *base = gic_data_rdist_cpu(cpu)->rd_base;
2829 unsigned int psz, esz, idx, npg, gpsz;
2830 u64 val;
2831 struct page *page;
2832 __le64 *table;
2833
2834 if (!gic_rdists->has_rvpeid)
2835 return true;
2836
2837 /* Skip non-present CPUs */
2838 if (!base)
2839 return true;
2840
2841 val = gicr_read_vpropbaser(base + SZ_128K + GICR_VPROPBASER);
2842
2843 esz = FIELD_GET(GICR_VPROPBASER_4_1_ENTRY_SIZE, val) + 1;
2844 gpsz = FIELD_GET(GICR_VPROPBASER_4_1_PAGE_SIZE, val);
2845 npg = FIELD_GET(GICR_VPROPBASER_4_1_SIZE, val) + 1;
2846
2847 switch (gpsz) {
2848 default:
2849 WARN_ON(1);
2850 fallthrough;
2851 case GIC_PAGE_SIZE_4K:
2852 psz = SZ_4K;
2853 break;
2854 case GIC_PAGE_SIZE_16K:
2855 psz = SZ_16K;
2856 break;
2857 case GIC_PAGE_SIZE_64K:
2858 psz = SZ_64K;
2859 break;
2860 }
2861
2862 /* Don't allow vpe_id that exceeds single, flat table limit */
2863 if (!(val & GICR_VPROPBASER_4_1_INDIRECT))
2864 return (id < (npg * psz / (esz * SZ_8)));
2865
2866 /* Compute 1st level table index & check if that exceeds table limit */
2867 idx = id >> ilog2(psz / (esz * SZ_8));
2868 if (idx >= (npg * psz / GITS_LVL1_ENTRY_SIZE))
2869 return false;
2870
2871 table = gic_data_rdist_cpu(cpu)->vpe_l1_base;
2872
2873 /* Allocate memory for 2nd level table */
2874 if (!table[idx]) {
2875 page = its_alloc_pages(GFP_KERNEL | __GFP_ZERO, get_order(psz));
2876 if (!page)
2877 return false;
2878
2879 /* Flush Lvl2 table to PoC if hw doesn't support coherency */
2880 if (!(val & GICR_VPROPBASER_SHAREABILITY_MASK))
2881 gic_flush_dcache_to_poc(page_address(page), psz);
2882
2883 table[idx] = cpu_to_le64(page_to_phys(page) | GITS_BASER_VALID);
2884
2885 /* Flush Lvl1 entry to PoC if hw doesn't support coherency */
2886 if (!(val & GICR_VPROPBASER_SHAREABILITY_MASK))
2887 gic_flush_dcache_to_poc(table + idx, GITS_LVL1_ENTRY_SIZE);
2888
2889 /* Ensure updated table contents are visible to RD hardware */
2890 dsb(sy);
2891 }
2892
2893 return true;
2894 }
2895
allocate_vpe_l1_table(void)2896 static int allocate_vpe_l1_table(void)
2897 {
2898 void __iomem *vlpi_base = gic_data_rdist_vlpi_base();
2899 u64 val, gpsz, npg, pa;
2900 unsigned int psz = SZ_64K;
2901 unsigned int np, epp, esz;
2902 struct page *page;
2903
2904 if (!gic_rdists->has_rvpeid)
2905 return 0;
2906
2907 /*
2908 * if VPENDBASER.Valid is set, disable any previously programmed
2909 * VPE by setting PendingLast while clearing Valid. This has the
2910 * effect of making sure no doorbell will be generated and we can
2911 * then safely clear VPROPBASER.Valid.
2912 */
2913 if (gicr_read_vpendbaser(vlpi_base + GICR_VPENDBASER) & GICR_VPENDBASER_Valid)
2914 gicr_write_vpendbaser(GICR_VPENDBASER_PendingLast,
2915 vlpi_base + GICR_VPENDBASER);
2916
2917 /*
2918 * If we can inherit the configuration from another RD, let's do
2919 * so. Otherwise, we have to go through the allocation process. We
2920 * assume that all RDs have the exact same requirements, as
2921 * nothing will work otherwise.
2922 */
2923 val = inherit_vpe_l1_table_from_rd(&gic_data_rdist()->vpe_table_mask);
2924 if (val & GICR_VPROPBASER_4_1_VALID)
2925 goto out;
2926
2927 gic_data_rdist()->vpe_table_mask = kzalloc_obj(cpumask_t, GFP_ATOMIC);
2928 if (!gic_data_rdist()->vpe_table_mask)
2929 return -ENOMEM;
2930
2931 val = inherit_vpe_l1_table_from_its();
2932 if (val & GICR_VPROPBASER_4_1_VALID)
2933 goto out;
2934
2935 /* First probe the page size */
2936 val = FIELD_PREP(GICR_VPROPBASER_4_1_PAGE_SIZE, GIC_PAGE_SIZE_64K);
2937 gicr_write_vpropbaser(val, vlpi_base + GICR_VPROPBASER);
2938 val = gicr_read_vpropbaser(vlpi_base + GICR_VPROPBASER);
2939 gpsz = FIELD_GET(GICR_VPROPBASER_4_1_PAGE_SIZE, val);
2940 esz = FIELD_GET(GICR_VPROPBASER_4_1_ENTRY_SIZE, val);
2941
2942 switch (gpsz) {
2943 default:
2944 gpsz = GIC_PAGE_SIZE_4K;
2945 fallthrough;
2946 case GIC_PAGE_SIZE_4K:
2947 psz = SZ_4K;
2948 break;
2949 case GIC_PAGE_SIZE_16K:
2950 psz = SZ_16K;
2951 break;
2952 case GIC_PAGE_SIZE_64K:
2953 psz = SZ_64K;
2954 break;
2955 }
2956
2957 /*
2958 * Start populating the register from scratch, including RO fields
2959 * (which we want to print in debug cases...)
2960 */
2961 val = 0;
2962 val |= FIELD_PREP(GICR_VPROPBASER_4_1_PAGE_SIZE, gpsz);
2963 val |= FIELD_PREP(GICR_VPROPBASER_4_1_ENTRY_SIZE, esz);
2964
2965 /* How many entries per GIC page? */
2966 esz++;
2967 epp = psz / (esz * SZ_8);
2968
2969 /*
2970 * If we need more than just a single L1 page, flag the table
2971 * as indirect and compute the number of required L1 pages.
2972 */
2973 if (epp < ITS_MAX_VPEID) {
2974 int nl2;
2975
2976 val |= GICR_VPROPBASER_4_1_INDIRECT;
2977
2978 /* Number of L2 pages required to cover the VPEID space */
2979 nl2 = DIV_ROUND_UP(ITS_MAX_VPEID, epp);
2980
2981 /* Number of L1 pages to point to the L2 pages */
2982 npg = DIV_ROUND_UP(nl2 * SZ_8, psz);
2983 } else {
2984 npg = 1;
2985 }
2986
2987 val |= FIELD_PREP(GICR_VPROPBASER_4_1_SIZE, npg - 1);
2988
2989 /* Right, that's the number of CPU pages we need for L1 */
2990 np = DIV_ROUND_UP(npg * psz, PAGE_SIZE);
2991
2992 pr_debug("np = %d, npg = %lld, psz = %d, epp = %d, esz = %d\n",
2993 np, npg, psz, epp, esz);
2994 page = its_alloc_pages(GFP_ATOMIC | __GFP_ZERO, get_order(np * PAGE_SIZE));
2995 if (!page)
2996 return -ENOMEM;
2997
2998 gic_data_rdist()->vpe_l1_base = page_address(page);
2999 pa = virt_to_phys(page_address(page));
3000 WARN_ON(!IS_ALIGNED(pa, psz));
3001
3002 val |= FIELD_PREP(GICR_VPROPBASER_4_1_ADDR, pa >> 12);
3003 if (rdists_support_shareable()) {
3004 val |= GICR_VPROPBASER_RaWb;
3005 val |= GICR_VPROPBASER_InnerShareable;
3006 }
3007 val |= GICR_VPROPBASER_4_1_Z;
3008 val |= GICR_VPROPBASER_4_1_VALID;
3009
3010 out:
3011 gicr_write_vpropbaser(val, vlpi_base + GICR_VPROPBASER);
3012 cpumask_set_cpu(smp_processor_id(), gic_data_rdist()->vpe_table_mask);
3013
3014 pr_debug("CPU%d: VPROPBASER = %llx %*pbl\n",
3015 smp_processor_id(), val,
3016 cpumask_pr_args(gic_data_rdist()->vpe_table_mask));
3017
3018 return 0;
3019 }
3020
its_alloc_collections(struct its_node * its)3021 static int its_alloc_collections(struct its_node *its)
3022 {
3023 int i;
3024
3025 its->collections = kzalloc_objs(*its->collections, nr_cpu_ids);
3026 if (!its->collections)
3027 return -ENOMEM;
3028
3029 for (i = 0; i < nr_cpu_ids; i++)
3030 its->collections[i].target_address = ~0ULL;
3031
3032 return 0;
3033 }
3034
its_allocate_pending_table(gfp_t gfp_flags)3035 static struct page *its_allocate_pending_table(gfp_t gfp_flags)
3036 {
3037 struct page *pend_page;
3038
3039 pend_page = its_alloc_pages(gfp_flags | __GFP_ZERO, get_order(LPI_PENDBASE_SZ));
3040 if (!pend_page)
3041 return NULL;
3042
3043 /* Make sure the GIC will observe the zero-ed page */
3044 gic_flush_dcache_to_poc(page_address(pend_page), LPI_PENDBASE_SZ);
3045
3046 return pend_page;
3047 }
3048
its_free_pending_table(struct page * pt)3049 static void its_free_pending_table(struct page *pt)
3050 {
3051 its_free_pages(page_address(pt), get_order(LPI_PENDBASE_SZ));
3052 }
3053
3054 /*
3055 * Booting with kdump and LPIs enabled is generally fine. Any other
3056 * case is wrong in the absence of firmware/EFI support.
3057 */
enabled_lpis_allowed(void)3058 static bool enabled_lpis_allowed(void)
3059 {
3060 phys_addr_t addr;
3061 u64 val;
3062
3063 /* Check whether the property table is in a reserved region */
3064 val = gicr_read_propbaser(gic_data_rdist_rd_base() + GICR_PROPBASER);
3065 addr = val & GENMASK_ULL(51, 12);
3066
3067 return gic_check_reserved_range(addr, LPI_PROPBASE_SZ);
3068 }
3069
allocate_lpi_tables(void)3070 static int __init allocate_lpi_tables(void)
3071 {
3072 u64 val;
3073 int err, cpu;
3074
3075 /*
3076 * If LPIs are enabled while we run this from the boot CPU,
3077 * flag the RD tables as pre-allocated if the stars do align.
3078 */
3079 val = readl_relaxed(gic_data_rdist_rd_base() + GICR_CTLR);
3080 if ((val & GICR_CTLR_ENABLE_LPIS) && enabled_lpis_allowed()) {
3081 gic_rdists->flags |= (RDIST_FLAGS_RD_TABLES_PREALLOCATED |
3082 RDIST_FLAGS_PROPBASE_NEEDS_FLUSHING);
3083 pr_info("GICv3: Using preallocated redistributor tables\n");
3084 }
3085
3086 err = its_setup_lpi_prop_table();
3087 if (err)
3088 return err;
3089
3090 /*
3091 * We allocate all the pending tables anyway, as we may have a
3092 * mix of RDs that have had LPIs enabled, and some that
3093 * don't. We'll free the unused ones as each CPU comes online.
3094 */
3095 for_each_possible_cpu(cpu) {
3096 struct page *pend_page;
3097
3098 pend_page = its_allocate_pending_table(GFP_NOWAIT);
3099 if (!pend_page) {
3100 pr_err("Failed to allocate PENDBASE for CPU%d\n", cpu);
3101 return -ENOMEM;
3102 }
3103
3104 gic_data_rdist_cpu(cpu)->pend_page = pend_page;
3105 }
3106
3107 return 0;
3108 }
3109
read_vpend_dirty_clear(void __iomem * vlpi_base)3110 static u64 read_vpend_dirty_clear(void __iomem *vlpi_base)
3111 {
3112 u32 count = 1000000; /* 1s! */
3113 bool clean;
3114 u64 val;
3115
3116 do {
3117 val = gicr_read_vpendbaser(vlpi_base + GICR_VPENDBASER);
3118 clean = !(val & GICR_VPENDBASER_Dirty);
3119 if (!clean) {
3120 count--;
3121 cpu_relax();
3122 udelay(1);
3123 }
3124 } while (!clean && count);
3125
3126 if (unlikely(!clean))
3127 pr_err_ratelimited("ITS virtual pending table not cleaning\n");
3128
3129 return val;
3130 }
3131
its_clear_vpend_valid(void __iomem * vlpi_base,u64 clr,u64 set)3132 static u64 its_clear_vpend_valid(void __iomem *vlpi_base, u64 clr, u64 set)
3133 {
3134 u64 val;
3135
3136 /* Make sure we wait until the RD is done with the initial scan */
3137 val = read_vpend_dirty_clear(vlpi_base);
3138 val &= ~GICR_VPENDBASER_Valid;
3139 val &= ~clr;
3140 val |= set;
3141 gicr_write_vpendbaser(val, vlpi_base + GICR_VPENDBASER);
3142
3143 val = read_vpend_dirty_clear(vlpi_base);
3144 if (unlikely(val & GICR_VPENDBASER_Dirty))
3145 val |= GICR_VPENDBASER_PendingLast;
3146
3147 return val;
3148 }
3149
its_cpu_init_lpis(void)3150 static void its_cpu_init_lpis(void)
3151 {
3152 void __iomem *rbase = gic_data_rdist_rd_base();
3153 struct page *pend_page;
3154 phys_addr_t paddr;
3155 u64 val, tmp;
3156
3157 if (gic_data_rdist()->flags & RD_LOCAL_LPI_ENABLED)
3158 return;
3159
3160 val = readl_relaxed(rbase + GICR_CTLR);
3161 if ((gic_rdists->flags & RDIST_FLAGS_RD_TABLES_PREALLOCATED) &&
3162 (val & GICR_CTLR_ENABLE_LPIS)) {
3163 /*
3164 * Check that we get the same property table on all
3165 * RDs. If we don't, this is hopeless.
3166 */
3167 paddr = gicr_read_propbaser(rbase + GICR_PROPBASER);
3168 paddr &= GENMASK_ULL(51, 12);
3169 if (WARN_ON(gic_rdists->prop_table_pa != paddr))
3170 add_taint(TAINT_CRAP, LOCKDEP_STILL_OK);
3171
3172 paddr = gicr_read_pendbaser(rbase + GICR_PENDBASER);
3173 paddr &= GENMASK_ULL(51, 16);
3174
3175 WARN_ON(!gic_check_reserved_range(paddr, LPI_PENDBASE_SZ));
3176 gic_data_rdist()->flags |= RD_LOCAL_PENDTABLE_PREALLOCATED;
3177
3178 goto out;
3179 }
3180
3181 pend_page = gic_data_rdist()->pend_page;
3182 paddr = page_to_phys(pend_page);
3183
3184 /* set PROPBASE */
3185 val = (gic_rdists->prop_table_pa |
3186 GICR_PROPBASER_InnerShareable |
3187 GICR_PROPBASER_RaWaWb |
3188 ((LPI_NRBITS - 1) & GICR_PROPBASER_IDBITS_MASK));
3189
3190 gicr_write_propbaser(val, rbase + GICR_PROPBASER);
3191 tmp = gicr_read_propbaser(rbase + GICR_PROPBASER);
3192
3193 if (!rdists_support_shareable())
3194 tmp &= ~GICR_PROPBASER_SHAREABILITY_MASK;
3195
3196 if ((tmp ^ val) & GICR_PROPBASER_SHAREABILITY_MASK) {
3197 if (!(tmp & GICR_PROPBASER_SHAREABILITY_MASK)) {
3198 /*
3199 * The HW reports non-shareable, we must
3200 * remove the cacheability attributes as
3201 * well.
3202 */
3203 val &= ~(GICR_PROPBASER_SHAREABILITY_MASK |
3204 GICR_PROPBASER_CACHEABILITY_MASK);
3205 val |= GICR_PROPBASER_nC;
3206 gicr_write_propbaser(val, rbase + GICR_PROPBASER);
3207 }
3208 pr_info_once("GIC: using cache flushing for LPI property table\n");
3209 gic_rdists->flags |= RDIST_FLAGS_PROPBASE_NEEDS_FLUSHING;
3210 }
3211
3212 /* set PENDBASE */
3213 val = (page_to_phys(pend_page) |
3214 GICR_PENDBASER_InnerShareable |
3215 GICR_PENDBASER_RaWaWb);
3216
3217 gicr_write_pendbaser(val, rbase + GICR_PENDBASER);
3218 tmp = gicr_read_pendbaser(rbase + GICR_PENDBASER);
3219
3220 if (!rdists_support_shareable())
3221 tmp &= ~GICR_PENDBASER_SHAREABILITY_MASK;
3222
3223 if (!(tmp & GICR_PENDBASER_SHAREABILITY_MASK)) {
3224 /*
3225 * The HW reports non-shareable, we must remove the
3226 * cacheability attributes as well.
3227 */
3228 val &= ~(GICR_PENDBASER_SHAREABILITY_MASK |
3229 GICR_PENDBASER_CACHEABILITY_MASK);
3230 val |= GICR_PENDBASER_nC;
3231 gicr_write_pendbaser(val, rbase + GICR_PENDBASER);
3232 }
3233
3234 /* Enable LPIs */
3235 val = readl_relaxed(rbase + GICR_CTLR);
3236 val |= GICR_CTLR_ENABLE_LPIS;
3237 writel_relaxed(val, rbase + GICR_CTLR);
3238
3239 out:
3240 if (gic_rdists->has_vlpis && !gic_rdists->has_rvpeid) {
3241 void __iomem *vlpi_base = gic_data_rdist_vlpi_base();
3242
3243 /*
3244 * It's possible for CPU to receive VLPIs before it is
3245 * scheduled as a vPE, especially for the first CPU, and the
3246 * VLPI with INTID larger than 2^(IDbits+1) will be considered
3247 * as out of range and dropped by GIC.
3248 * So we initialize IDbits to known value to avoid VLPI drop.
3249 */
3250 val = (LPI_NRBITS - 1) & GICR_VPROPBASER_IDBITS_MASK;
3251 pr_debug("GICv4: CPU%d: Init IDbits to 0x%llx for GICR_VPROPBASER\n",
3252 smp_processor_id(), val);
3253 gicr_write_vpropbaser(val, vlpi_base + GICR_VPROPBASER);
3254
3255 /*
3256 * Also clear Valid bit of GICR_VPENDBASER, in case some
3257 * ancient programming gets left in and has possibility of
3258 * corrupting memory.
3259 */
3260 val = its_clear_vpend_valid(vlpi_base, 0, 0);
3261 }
3262
3263 if (allocate_vpe_l1_table()) {
3264 /*
3265 * If the allocation has failed, we're in massive trouble.
3266 * Disable direct injection, and pray that no VM was
3267 * already running...
3268 */
3269 gic_rdists->has_rvpeid = false;
3270 gic_rdists->has_vlpis = false;
3271 }
3272
3273 /* Make sure the GIC has seen the above */
3274 dsb(sy);
3275 gic_data_rdist()->flags |= RD_LOCAL_LPI_ENABLED;
3276 pr_info("GICv3: CPU%d: using %s LPI pending table @%pa\n",
3277 smp_processor_id(),
3278 gic_data_rdist()->flags & RD_LOCAL_PENDTABLE_PREALLOCATED ?
3279 "reserved" : "allocated",
3280 &paddr);
3281 }
3282
its_cpu_init_collection(struct its_node * its)3283 static void its_cpu_init_collection(struct its_node *its)
3284 {
3285 int cpu = smp_processor_id();
3286 u64 target;
3287
3288 /* avoid cross node collections and its mapping */
3289 if (its->flags & ITS_FLAGS_WORKAROUND_CAVIUM_23144) {
3290 struct device_node *cpu_node __free(device_node) = of_get_cpu_node(cpu, NULL);
3291
3292 if (its->numa_node != NUMA_NO_NODE && its->numa_node != of_node_to_nid(cpu_node))
3293 return;
3294 }
3295
3296 /*
3297 * We now have to bind each collection to its target
3298 * redistributor.
3299 */
3300 if (gic_read_typer(its->base + GITS_TYPER) & GITS_TYPER_PTA) {
3301 /*
3302 * This ITS wants the physical address of the
3303 * redistributor.
3304 */
3305 target = gic_data_rdist()->phys_base;
3306 } else {
3307 /* This ITS wants a linear CPU number. */
3308 target = gic_read_typer(gic_data_rdist_rd_base() + GICR_TYPER);
3309 target = GICR_TYPER_CPU_NUMBER(target) << 16;
3310 }
3311
3312 /* Perform collection mapping */
3313 its->collections[cpu].target_address = target;
3314 its->collections[cpu].col_id = cpu;
3315
3316 its_send_mapc(its, &its->collections[cpu], 1);
3317 its_send_invall(its, &its->collections[cpu]);
3318 }
3319
its_cpu_init_collections(void)3320 static void its_cpu_init_collections(void)
3321 {
3322 struct its_node *its;
3323
3324 raw_spin_lock(&its_lock);
3325
3326 list_for_each_entry(its, &its_nodes, entry)
3327 its_cpu_init_collection(its);
3328
3329 raw_spin_unlock(&its_lock);
3330 }
3331
its_find_device(struct its_node * its,u32 dev_id)3332 static struct its_device *its_find_device(struct its_node *its, u32 dev_id)
3333 {
3334 struct its_device *its_dev = NULL, *tmp;
3335 unsigned long flags;
3336
3337 raw_spin_lock_irqsave(&its->lock, flags);
3338
3339 list_for_each_entry(tmp, &its->its_device_list, entry) {
3340 if (tmp->device_id == dev_id) {
3341 its_dev = tmp;
3342 break;
3343 }
3344 }
3345
3346 raw_spin_unlock_irqrestore(&its->lock, flags);
3347
3348 return its_dev;
3349 }
3350
its_get_baser(struct its_node * its,u32 type)3351 static struct its_baser *its_get_baser(struct its_node *its, u32 type)
3352 {
3353 int i;
3354
3355 for (i = 0; i < GITS_BASER_NR_REGS; i++) {
3356 if (GITS_BASER_TYPE(its->tables[i].val) == type)
3357 return &its->tables[i];
3358 }
3359
3360 return NULL;
3361 }
3362
its_alloc_table_entry(struct its_node * its,struct its_baser * baser,u32 id)3363 static bool its_alloc_table_entry(struct its_node *its,
3364 struct its_baser *baser, u32 id)
3365 {
3366 struct page *page;
3367 u32 esz, idx;
3368 __le64 *table;
3369
3370 /* Don't allow device id that exceeds single, flat table limit */
3371 esz = GITS_BASER_ENTRY_SIZE(baser->val);
3372 if (!(baser->val & GITS_BASER_INDIRECT))
3373 return (id < (PAGE_ORDER_TO_SIZE(baser->order) / esz));
3374
3375 /* Compute 1st level table index & check if that exceeds table limit */
3376 idx = id >> ilog2(baser->psz / esz);
3377 if (idx >= (PAGE_ORDER_TO_SIZE(baser->order) / GITS_LVL1_ENTRY_SIZE))
3378 return false;
3379
3380 table = baser->base;
3381
3382 /* Allocate memory for 2nd level table */
3383 if (!table[idx]) {
3384 page = its_alloc_pages_node(its->numa_node, GFP_KERNEL | __GFP_ZERO,
3385 get_order(baser->psz));
3386 if (!page)
3387 return false;
3388
3389 /* Flush Lvl2 table to PoC if hw doesn't support coherency */
3390 if (!(baser->val & GITS_BASER_SHAREABILITY_MASK))
3391 gic_flush_dcache_to_poc(page_address(page), baser->psz);
3392
3393 table[idx] = cpu_to_le64(page_to_phys(page) | GITS_BASER_VALID);
3394
3395 /* Flush Lvl1 entry to PoC if hw doesn't support coherency */
3396 if (!(baser->val & GITS_BASER_SHAREABILITY_MASK))
3397 gic_flush_dcache_to_poc(table + idx, GITS_LVL1_ENTRY_SIZE);
3398
3399 /* Ensure updated table contents are visible to ITS hardware */
3400 dsb(sy);
3401 }
3402
3403 return true;
3404 }
3405
its_alloc_device_table(struct its_node * its,u32 dev_id)3406 static bool its_alloc_device_table(struct its_node *its, u32 dev_id)
3407 {
3408 struct its_baser *baser;
3409
3410 baser = its_get_baser(its, GITS_BASER_TYPE_DEVICE);
3411
3412 /* Don't allow device id that exceeds ITS hardware limit */
3413 if (!baser)
3414 return (ilog2(dev_id) < device_ids(its));
3415
3416 return its_alloc_table_entry(its, baser, dev_id);
3417 }
3418
its_alloc_vpe_table(u32 vpe_id)3419 static bool its_alloc_vpe_table(u32 vpe_id)
3420 {
3421 struct its_node *its;
3422 int cpu;
3423
3424 /*
3425 * Make sure the L2 tables are allocated on *all* v4 ITSs. We
3426 * could try and only do it on ITSs corresponding to devices
3427 * that have interrupts targeted at this VPE, but the
3428 * complexity becomes crazy (and you have tons of memory
3429 * anyway, right?).
3430 */
3431 list_for_each_entry(its, &its_nodes, entry) {
3432 struct its_baser *baser;
3433
3434 if (!is_v4(its))
3435 continue;
3436
3437 baser = its_get_baser(its, GITS_BASER_TYPE_VCPU);
3438 if (!baser)
3439 return false;
3440
3441 if (!its_alloc_table_entry(its, baser, vpe_id))
3442 return false;
3443 }
3444
3445 /* Non v4.1? No need to iterate RDs and go back early. */
3446 if (!gic_rdists->has_rvpeid)
3447 return true;
3448
3449 /*
3450 * Make sure the L2 tables are allocated for all copies of
3451 * the L1 table on *all* v4.1 RDs.
3452 */
3453 for_each_possible_cpu(cpu) {
3454 if (!allocate_vpe_l2_table(cpu, vpe_id))
3455 return false;
3456 }
3457
3458 return true;
3459 }
3460
its_create_device(struct its_node * its,u32 dev_id,int nvecs,bool alloc_lpis)3461 static struct its_device *its_create_device(struct its_node *its, u32 dev_id,
3462 int nvecs, bool alloc_lpis)
3463 {
3464 struct its_device *dev;
3465 unsigned long *lpi_map = NULL;
3466 unsigned long flags;
3467 u16 *col_map = NULL;
3468 void *itt;
3469 int lpi_base;
3470 int nr_lpis;
3471 int nr_ites;
3472 int id_bits;
3473 int sz;
3474
3475 if (!its_alloc_device_table(its, dev_id))
3476 return NULL;
3477
3478 if (WARN_ON(!is_power_of_2(nvecs)))
3479 nvecs = roundup_pow_of_two(nvecs);
3480
3481 /*
3482 * Even if the device wants a single LPI, the ITT must be
3483 * sized as a power of two (and you need at least one bit...).
3484 * Also honor the ITS's own EID limit.
3485 */
3486 id_bits = FIELD_GET(GITS_TYPER_IDBITS, its->typer) + 1;
3487 nvecs = min_t(unsigned int, nvecs, BIT(id_bits));
3488 nr_ites = max(2, nvecs);
3489 sz = nr_ites * (FIELD_GET(GITS_TYPER_ITT_ENTRY_SIZE, its->typer) + 1);
3490 sz = max(sz, ITS_ITT_ALIGN);
3491
3492 itt = itt_alloc_pool(its->numa_node, sz);
3493
3494 dev = kzalloc_obj(*dev);
3495
3496 if (alloc_lpis) {
3497 lpi_map = its_lpi_alloc(nvecs, &lpi_base, &nr_lpis);
3498 if (lpi_map)
3499 col_map = kcalloc(nr_lpis, sizeof(*col_map),
3500 GFP_KERNEL);
3501 } else {
3502 col_map = kcalloc(nr_ites, sizeof(*col_map), GFP_KERNEL);
3503 nr_lpis = 0;
3504 lpi_base = 0;
3505 }
3506
3507 if (!dev || !itt || !col_map || (!lpi_map && alloc_lpis)) {
3508 kfree(dev);
3509 itt_free_pool(itt, sz);
3510 bitmap_free(lpi_map);
3511 kfree(col_map);
3512 return NULL;
3513 }
3514
3515 gic_flush_dcache_to_poc(itt, sz);
3516
3517 dev->its = its;
3518 dev->itt = itt;
3519 dev->itt_sz = sz;
3520 dev->nr_ites = nr_ites;
3521 dev->event_map.lpi_map = lpi_map;
3522 dev->event_map.col_map = col_map;
3523 dev->event_map.lpi_base = lpi_base;
3524 dev->event_map.nr_lpis = nr_lpis;
3525 raw_spin_lock_init(&dev->event_map.vlpi_lock);
3526 dev->device_id = dev_id;
3527 INIT_LIST_HEAD(&dev->entry);
3528
3529 raw_spin_lock_irqsave(&its->lock, flags);
3530 list_add(&dev->entry, &its->its_device_list);
3531 raw_spin_unlock_irqrestore(&its->lock, flags);
3532
3533 /* Map device to its ITT */
3534 its_send_mapd(dev, 1);
3535
3536 return dev;
3537 }
3538
its_free_device(struct its_device * its_dev)3539 static void its_free_device(struct its_device *its_dev)
3540 {
3541 unsigned long flags;
3542
3543 raw_spin_lock_irqsave(&its_dev->its->lock, flags);
3544 list_del(&its_dev->entry);
3545 raw_spin_unlock_irqrestore(&its_dev->its->lock, flags);
3546 kfree(its_dev->event_map.col_map);
3547 itt_free_pool(its_dev->itt, its_dev->itt_sz);
3548 kfree(its_dev);
3549 }
3550
its_alloc_device_irq(struct its_device * dev,int nvecs,irq_hw_number_t * hwirq)3551 static int its_alloc_device_irq(struct its_device *dev, int nvecs, irq_hw_number_t *hwirq)
3552 {
3553 int idx;
3554
3555 /* Find a free LPI region in lpi_map and allocate them. */
3556 idx = bitmap_find_free_region(dev->event_map.lpi_map,
3557 dev->event_map.nr_lpis,
3558 get_count_order(nvecs));
3559 if (idx < 0)
3560 return -ENOSPC;
3561
3562 *hwirq = dev->event_map.lpi_base + idx;
3563
3564 return 0;
3565 }
3566
its_msi_prepare(struct irq_domain * domain,struct device * dev,int nvec,msi_alloc_info_t * info)3567 static int its_msi_prepare(struct irq_domain *domain, struct device *dev,
3568 int nvec, msi_alloc_info_t *info)
3569 {
3570 struct its_node *its;
3571 struct its_device *its_dev;
3572 struct msi_domain_info *msi_info;
3573 u32 dev_id;
3574 int err = 0;
3575
3576 /*
3577 * We ignore "dev" entirely, and rely on the dev_id that has
3578 * been passed via the scratchpad. This limits this domain's
3579 * usefulness to upper layers that definitely know that they
3580 * are built on top of the ITS.
3581 */
3582 dev_id = info->scratchpad[0].ul;
3583
3584 msi_info = msi_get_domain_info(domain);
3585 its = msi_info->data;
3586
3587 if (!gic_rdists->has_direct_lpi &&
3588 vpe_proxy.dev &&
3589 vpe_proxy.dev->its == its &&
3590 dev_id == vpe_proxy.dev->device_id) {
3591 /* Bad luck. Get yourself a better implementation */
3592 WARN_ONCE(1, "DevId %x clashes with GICv4 VPE proxy device\n",
3593 dev_id);
3594 return -EINVAL;
3595 }
3596
3597 mutex_lock(&its->dev_alloc_lock);
3598 its_dev = its_find_device(its, dev_id);
3599 if (its_dev) {
3600 /*
3601 * We already have seen this ID, probably through
3602 * another alias (PCI bridge of some sort). No need to
3603 * create the device.
3604 */
3605 its_dev->shared = true;
3606 pr_debug("Reusing ITT for devID %x\n", dev_id);
3607 goto out;
3608 }
3609
3610 its_dev = its_create_device(its, dev_id, nvec, true);
3611 if (!its_dev) {
3612 err = -ENOMEM;
3613 goto out;
3614 }
3615
3616 if (info->flags & MSI_ALLOC_FLAGS_PROXY_DEVICE)
3617 its_dev->shared = true;
3618
3619 pr_debug("ITT %d entries, %d bits\n", nvec, ilog2(nvec));
3620 out:
3621 mutex_unlock(&its->dev_alloc_lock);
3622 info->scratchpad[0].ptr = its_dev;
3623 return err;
3624 }
3625
its_msi_teardown(struct irq_domain * domain,msi_alloc_info_t * info)3626 static void its_msi_teardown(struct irq_domain *domain, msi_alloc_info_t *info)
3627 {
3628 struct its_device *its_dev = info->scratchpad[0].ptr;
3629
3630 guard(mutex)(&its_dev->its->dev_alloc_lock);
3631
3632 /* If the device is shared, keep everything around */
3633 if (its_dev->shared)
3634 return;
3635
3636 /* LPIs should have been already unmapped at this stage */
3637 if (WARN_ON_ONCE(!bitmap_empty(its_dev->event_map.lpi_map,
3638 its_dev->event_map.nr_lpis)))
3639 return;
3640
3641 its_lpi_free(its_dev->event_map.lpi_map,
3642 its_dev->event_map.lpi_base,
3643 its_dev->event_map.nr_lpis);
3644
3645 /* Unmap device/itt, and get rid of the tracking */
3646 its_send_mapd(its_dev, 0);
3647 its_free_device(its_dev);
3648 }
3649
3650 static struct msi_domain_ops its_msi_domain_ops = {
3651 .msi_prepare = its_msi_prepare,
3652 .msi_teardown = its_msi_teardown,
3653 };
3654
its_irq_gic_domain_alloc(struct irq_domain * domain,unsigned int virq,irq_hw_number_t hwirq)3655 static int its_irq_gic_domain_alloc(struct irq_domain *domain,
3656 unsigned int virq,
3657 irq_hw_number_t hwirq)
3658 {
3659 struct irq_fwspec fwspec;
3660
3661 if (irq_domain_get_of_node(domain->parent)) {
3662 fwspec.fwnode = domain->parent->fwnode;
3663 fwspec.param_count = 3;
3664 fwspec.param[0] = GIC_IRQ_TYPE_LPI;
3665 fwspec.param[1] = hwirq;
3666 fwspec.param[2] = IRQ_TYPE_EDGE_RISING;
3667 } else if (is_fwnode_irqchip(domain->parent->fwnode)) {
3668 fwspec.fwnode = domain->parent->fwnode;
3669 fwspec.param_count = 2;
3670 fwspec.param[0] = hwirq;
3671 fwspec.param[1] = IRQ_TYPE_EDGE_RISING;
3672 } else {
3673 return -EINVAL;
3674 }
3675
3676 return irq_domain_alloc_irqs_parent(domain, virq, 1, &fwspec);
3677 }
3678
its_irq_domain_alloc(struct irq_domain * domain,unsigned int virq,unsigned int nr_irqs,void * args)3679 static int its_irq_domain_alloc(struct irq_domain *domain, unsigned int virq,
3680 unsigned int nr_irqs, void *args)
3681 {
3682 msi_alloc_info_t *info = args;
3683 struct its_device *its_dev = info->scratchpad[0].ptr;
3684 struct its_node *its = its_dev->its;
3685 struct irq_data *irqd;
3686 irq_hw_number_t hwirq;
3687 int err;
3688 int i;
3689
3690 err = its_alloc_device_irq(its_dev, nr_irqs, &hwirq);
3691 if (err)
3692 return err;
3693
3694 err = iommu_dma_prepare_msi(info->desc, its->get_msi_base(its_dev));
3695 if (err)
3696 return err;
3697
3698 for (i = 0; i < nr_irqs; i++) {
3699 err = its_irq_gic_domain_alloc(domain, virq + i, hwirq + i);
3700 if (err)
3701 return err;
3702
3703 irq_domain_set_hwirq_and_chip(domain, virq + i,
3704 hwirq + i, &its_irq_chip, its_dev);
3705 irqd = irq_get_irq_data(virq + i);
3706 irqd_set_single_target(irqd);
3707 irqd_set_affinity_on_activate(irqd);
3708 irqd_set_resend_when_in_progress(irqd);
3709 pr_debug("ID:%d pID:%d vID:%d\n",
3710 (int)(hwirq + i - its_dev->event_map.lpi_base),
3711 (int)(hwirq + i), virq + i);
3712 }
3713
3714 return 0;
3715 }
3716
its_irq_domain_activate(struct irq_domain * domain,struct irq_data * d,bool reserve)3717 static int its_irq_domain_activate(struct irq_domain *domain,
3718 struct irq_data *d, bool reserve)
3719 {
3720 struct its_device *its_dev = irq_data_get_irq_chip_data(d);
3721 u32 event = its_get_event_id(d);
3722 int cpu;
3723
3724 cpu = its_select_cpu(d, cpu_online_mask);
3725 if (cpu < 0 || cpu >= nr_cpu_ids)
3726 return -EINVAL;
3727
3728 its_inc_lpi_count(d, cpu);
3729 its_dev->event_map.col_map[event] = cpu;
3730 irq_data_update_effective_affinity(d, cpumask_of(cpu));
3731
3732 /* Map the GIC IRQ and event to the device */
3733 its_send_mapti(its_dev, d->hwirq, event);
3734 return 0;
3735 }
3736
its_irq_domain_deactivate(struct irq_domain * domain,struct irq_data * d)3737 static void its_irq_domain_deactivate(struct irq_domain *domain,
3738 struct irq_data *d)
3739 {
3740 struct its_device *its_dev = irq_data_get_irq_chip_data(d);
3741 u32 event = its_get_event_id(d);
3742
3743 its_dec_lpi_count(d, its_dev->event_map.col_map[event]);
3744 /* Stop the delivery of interrupts */
3745 its_send_discard(its_dev, event);
3746 }
3747
its_irq_domain_free(struct irq_domain * domain,unsigned int virq,unsigned int nr_irqs)3748 static void its_irq_domain_free(struct irq_domain *domain, unsigned int virq,
3749 unsigned int nr_irqs)
3750 {
3751 struct irq_data *d = irq_domain_get_irq_data(domain, virq);
3752 struct its_device *its_dev = irq_data_get_irq_chip_data(d);
3753 int i;
3754
3755 bitmap_release_region(its_dev->event_map.lpi_map,
3756 its_get_event_id(irq_domain_get_irq_data(domain, virq)),
3757 get_count_order(nr_irqs));
3758
3759 for (i = 0; i < nr_irqs; i++) {
3760 struct irq_data *data = irq_domain_get_irq_data(domain,
3761 virq + i);
3762 /* Nuke the entry in the domain */
3763 irq_domain_reset_irq_data(data);
3764 }
3765
3766 irq_domain_free_irqs_parent(domain, virq, nr_irqs);
3767 }
3768
3769 static const struct irq_domain_ops its_domain_ops = {
3770 .select = msi_lib_irq_domain_select,
3771 .alloc = its_irq_domain_alloc,
3772 .free = its_irq_domain_free,
3773 .activate = its_irq_domain_activate,
3774 .deactivate = its_irq_domain_deactivate,
3775 };
3776
3777 /*
3778 * This is insane.
3779 *
3780 * If a GICv4.0 doesn't implement Direct LPIs (which is extremely
3781 * likely), the only way to perform an invalidate is to use a fake
3782 * device to issue an INV command, implying that the LPI has first
3783 * been mapped to some event on that device. Since this is not exactly
3784 * cheap, we try to keep that mapping around as long as possible, and
3785 * only issue an UNMAP if we're short on available slots.
3786 *
3787 * Broken by design(tm).
3788 *
3789 * GICv4.1, on the other hand, mandates that we're able to invalidate
3790 * by writing to a MMIO register. It doesn't implement the whole of
3791 * DirectLPI, but that's good enough. And most of the time, we don't
3792 * even have to invalidate anything, as the redistributor can be told
3793 * whether to generate a doorbell or not (we thus leave it enabled,
3794 * always).
3795 */
its_vpe_db_proxy_unmap_locked(struct its_vpe * vpe)3796 static void its_vpe_db_proxy_unmap_locked(struct its_vpe *vpe)
3797 {
3798 /* GICv4.1 doesn't use a proxy, so nothing to do here */
3799 if (gic_rdists->has_rvpeid)
3800 return;
3801
3802 /* Already unmapped? */
3803 if (vpe->vpe_proxy_event == -1)
3804 return;
3805
3806 its_send_discard(vpe_proxy.dev, vpe->vpe_proxy_event);
3807 vpe_proxy.vpes[vpe->vpe_proxy_event] = NULL;
3808
3809 /*
3810 * We don't track empty slots at all, so let's move the
3811 * next_victim pointer if we can quickly reuse that slot
3812 * instead of nuking an existing entry. Not clear that this is
3813 * always a win though, and this might just generate a ripple
3814 * effect... Let's just hope VPEs don't migrate too often.
3815 */
3816 if (vpe_proxy.vpes[vpe_proxy.next_victim])
3817 vpe_proxy.next_victim = vpe->vpe_proxy_event;
3818
3819 vpe->vpe_proxy_event = -1;
3820 }
3821
its_vpe_db_proxy_unmap(struct its_vpe * vpe)3822 static void its_vpe_db_proxy_unmap(struct its_vpe *vpe)
3823 {
3824 /* GICv4.1 doesn't use a proxy, so nothing to do here */
3825 if (gic_rdists->has_rvpeid)
3826 return;
3827
3828 if (!gic_rdists->has_direct_lpi) {
3829 unsigned long flags;
3830
3831 raw_spin_lock_irqsave(&vpe_proxy.lock, flags);
3832 its_vpe_db_proxy_unmap_locked(vpe);
3833 raw_spin_unlock_irqrestore(&vpe_proxy.lock, flags);
3834 }
3835 }
3836
its_vpe_db_proxy_map_locked(struct its_vpe * vpe)3837 static void its_vpe_db_proxy_map_locked(struct its_vpe *vpe)
3838 {
3839 /* GICv4.1 doesn't use a proxy, so nothing to do here */
3840 if (gic_rdists->has_rvpeid)
3841 return;
3842
3843 /* Already mapped? */
3844 if (vpe->vpe_proxy_event != -1)
3845 return;
3846
3847 /* This slot was already allocated. Kick the other VPE out. */
3848 if (vpe_proxy.vpes[vpe_proxy.next_victim])
3849 its_vpe_db_proxy_unmap_locked(vpe_proxy.vpes[vpe_proxy.next_victim]);
3850
3851 /* Map the new VPE instead */
3852 vpe_proxy.vpes[vpe_proxy.next_victim] = vpe;
3853 vpe->vpe_proxy_event = vpe_proxy.next_victim;
3854 vpe_proxy.next_victim = (vpe_proxy.next_victim + 1) % vpe_proxy.dev->nr_ites;
3855
3856 vpe_proxy.dev->event_map.col_map[vpe->vpe_proxy_event] = vpe->col_idx;
3857 its_send_mapti(vpe_proxy.dev, vpe->vpe_db_lpi, vpe->vpe_proxy_event);
3858 }
3859
its_vpe_db_proxy_move(struct its_vpe * vpe,int from,int to)3860 static void its_vpe_db_proxy_move(struct its_vpe *vpe, int from, int to)
3861 {
3862 unsigned long flags;
3863 struct its_collection *target_col;
3864
3865 /* GICv4.1 doesn't use a proxy, so nothing to do here */
3866 if (gic_rdists->has_rvpeid)
3867 return;
3868
3869 if (gic_rdists->has_direct_lpi) {
3870 void __iomem *rdbase;
3871
3872 rdbase = per_cpu_ptr(gic_rdists->rdist, from)->rd_base;
3873 gic_write_lpir(vpe->vpe_db_lpi, rdbase + GICR_CLRLPIR);
3874 wait_for_syncr(rdbase);
3875
3876 return;
3877 }
3878
3879 raw_spin_lock_irqsave(&vpe_proxy.lock, flags);
3880
3881 its_vpe_db_proxy_map_locked(vpe);
3882
3883 target_col = &vpe_proxy.dev->its->collections[to];
3884 its_send_movi(vpe_proxy.dev, target_col, vpe->vpe_proxy_event);
3885 vpe_proxy.dev->event_map.col_map[vpe->vpe_proxy_event] = to;
3886
3887 raw_spin_unlock_irqrestore(&vpe_proxy.lock, flags);
3888 }
3889
its_vpe_4_1_invall_locked(int cpu,struct its_vpe * vpe)3890 static void its_vpe_4_1_invall_locked(int cpu, struct its_vpe *vpe)
3891 {
3892 void __iomem *rdbase;
3893 u64 val;
3894
3895 val = GICR_INVALLR_V;
3896 val |= FIELD_PREP(GICR_INVALLR_VPEID, vpe->vpe_id);
3897
3898 guard(raw_spinlock)(&gic_data_rdist_cpu(cpu)->rd_lock);
3899 rdbase = per_cpu_ptr(gic_rdists->rdist, cpu)->rd_base;
3900 gic_write_lpir(val, rdbase + GICR_INVALLR);
3901 wait_for_syncr(rdbase);
3902 }
3903
its_vpe_set_affinity(struct irq_data * d,const struct cpumask * mask_val,bool force)3904 static int its_vpe_set_affinity(struct irq_data *d,
3905 const struct cpumask *mask_val,
3906 bool force)
3907 {
3908 struct its_vpe *vpe = irq_data_get_irq_chip_data(d);
3909 unsigned int from, cpu = nr_cpu_ids;
3910 struct cpumask *table_mask;
3911 struct its_node *its;
3912 unsigned long flags;
3913
3914 /*
3915 * Check if we're racing against a VPE being destroyed, for
3916 * which we don't want to allow a VMOVP.
3917 */
3918 if (!atomic_read(&vpe->vmapp_count)) {
3919 if (gic_requires_eager_mapping())
3920 return -EINVAL;
3921
3922 /*
3923 * If we lazily map the VPEs, this isn't an error and
3924 * we can exit cleanly.
3925 */
3926 cpu = cpumask_first(mask_val);
3927 irq_data_update_effective_affinity(d, cpumask_of(cpu));
3928 return IRQ_SET_MASK_OK_DONE;
3929 }
3930
3931 /*
3932 * Changing affinity is mega expensive, so let's be as lazy as
3933 * we can and only do it if we really have to. Also, if mapped
3934 * into the proxy device, we need to move the doorbell
3935 * interrupt to its new location.
3936 *
3937 * Another thing is that changing the affinity of a vPE affects
3938 * *other interrupts* such as all the vLPIs that are routed to
3939 * this vPE. This means that the irq_desc lock is not enough to
3940 * protect us, and that we must ensure nobody samples vpe->col_idx
3941 * during the update, hence the lock below which must also be
3942 * taken on any vLPI handling path that evaluates vpe->col_idx.
3943 *
3944 * Finally, we must protect ourselves against concurrent updates of
3945 * the mapping state on this VM should the ITS list be in use (see
3946 * the shortcut in its_send_vmovp() otherewise).
3947 */
3948 if (its_list_map)
3949 raw_spin_lock(&vpe->its_vm->vmapp_lock);
3950
3951 from = vpe_to_cpuid_lock(vpe, &flags);
3952 table_mask = gic_data_rdist_cpu(from)->vpe_table_mask;
3953
3954 /*
3955 * If we are offered another CPU in the same GICv4.1 ITS
3956 * affinity, pick this one. Otherwise, any CPU will do.
3957 */
3958 if (table_mask)
3959 cpu = cpumask_any_and(mask_val, table_mask);
3960 if (cpu < nr_cpu_ids) {
3961 if (cpumask_test_cpu(from, mask_val) &&
3962 cpumask_test_cpu(from, table_mask))
3963 cpu = from;
3964 } else {
3965 cpu = cpumask_first(mask_val);
3966 }
3967
3968 if (from == cpu)
3969 goto out;
3970
3971 vpe->col_idx = cpu;
3972
3973 its_send_vmovp(vpe);
3974
3975 its = find_4_1_its();
3976 if (its && its->flags & ITS_FLAGS_WORKAROUND_HISILICON_162100801)
3977 its_vpe_4_1_invall_locked(cpu, vpe);
3978
3979 its_vpe_db_proxy_move(vpe, from, cpu);
3980
3981 out:
3982 irq_data_update_effective_affinity(d, cpumask_of(cpu));
3983 vpe_to_cpuid_unlock(vpe, flags);
3984
3985 if (its_list_map)
3986 raw_spin_unlock(&vpe->its_vm->vmapp_lock);
3987
3988 return IRQ_SET_MASK_OK_DONE;
3989 }
3990
its_wait_vpt_parse_complete(void)3991 static void its_wait_vpt_parse_complete(void)
3992 {
3993 void __iomem *vlpi_base = gic_data_rdist_vlpi_base();
3994 u64 val;
3995
3996 if (!gic_rdists->has_vpend_valid_dirty)
3997 return;
3998
3999 WARN_ON_ONCE(readq_relaxed_poll_timeout_atomic(vlpi_base + GICR_VPENDBASER,
4000 val,
4001 !(val & GICR_VPENDBASER_Dirty),
4002 1, 500));
4003 }
4004
its_vpe_schedule(struct its_vpe * vpe)4005 static void its_vpe_schedule(struct its_vpe *vpe)
4006 {
4007 void __iomem *vlpi_base = gic_data_rdist_vlpi_base();
4008 u64 val;
4009
4010 /* Schedule the VPE */
4011 val = virt_to_phys(page_address(vpe->its_vm->vprop_page)) &
4012 GENMASK_ULL(51, 12);
4013 val |= (LPI_NRBITS - 1) & GICR_VPROPBASER_IDBITS_MASK;
4014 if (rdists_support_shareable()) {
4015 val |= GICR_VPROPBASER_RaWb;
4016 val |= GICR_VPROPBASER_InnerShareable;
4017 }
4018 gicr_write_vpropbaser(val, vlpi_base + GICR_VPROPBASER);
4019
4020 val = virt_to_phys(page_address(vpe->vpt_page)) &
4021 GENMASK_ULL(51, 16);
4022 if (rdists_support_shareable()) {
4023 val |= GICR_VPENDBASER_RaWaWb;
4024 val |= GICR_VPENDBASER_InnerShareable;
4025 }
4026 /*
4027 * There is no good way of finding out if the pending table is
4028 * empty as we can race against the doorbell interrupt very
4029 * easily. So in the end, vpe->pending_last is only an
4030 * indication that the vcpu has something pending, not one
4031 * that the pending table is empty. A good implementation
4032 * would be able to read its coarse map pretty quickly anyway,
4033 * making this a tolerable issue.
4034 */
4035 val |= GICR_VPENDBASER_PendingLast;
4036 val |= vpe->idai ? GICR_VPENDBASER_IDAI : 0;
4037 val |= GICR_VPENDBASER_Valid;
4038 gicr_write_vpendbaser(val, vlpi_base + GICR_VPENDBASER);
4039 }
4040
its_vpe_deschedule(struct its_vpe * vpe)4041 static void its_vpe_deschedule(struct its_vpe *vpe)
4042 {
4043 void __iomem *vlpi_base = gic_data_rdist_vlpi_base();
4044 u64 val;
4045
4046 val = its_clear_vpend_valid(vlpi_base, 0, 0);
4047
4048 vpe->idai = !!(val & GICR_VPENDBASER_IDAI);
4049 vpe->pending_last = !!(val & GICR_VPENDBASER_PendingLast);
4050 }
4051
its_vpe_invall(struct its_vpe * vpe)4052 static void its_vpe_invall(struct its_vpe *vpe)
4053 {
4054 struct its_node *its;
4055
4056 guard(raw_spinlock_irqsave)(&vpe->its_vm->vmapp_lock);
4057
4058 list_for_each_entry(its, &its_nodes, entry) {
4059 if (!is_v4(its))
4060 continue;
4061
4062 if (its_list_map && !vpe->its_vm->vlpi_count[its->list_nr])
4063 continue;
4064
4065 /*
4066 * Sending a VINVALL to a single ITS is enough, as all
4067 * we need is to reach the redistributors.
4068 */
4069 its_send_vinvall(its, vpe);
4070 return;
4071 }
4072 }
4073
its_vpe_set_vcpu_affinity(struct irq_data * d,void * vcpu_info)4074 static int its_vpe_set_vcpu_affinity(struct irq_data *d, void *vcpu_info)
4075 {
4076 struct its_vpe *vpe = irq_data_get_irq_chip_data(d);
4077 struct its_cmd_info *info = vcpu_info;
4078
4079 switch (info->cmd_type) {
4080 case SCHEDULE_VPE:
4081 its_vpe_schedule(vpe);
4082 return 0;
4083
4084 case DESCHEDULE_VPE:
4085 its_vpe_deschedule(vpe);
4086 return 0;
4087
4088 case COMMIT_VPE:
4089 its_wait_vpt_parse_complete();
4090 return 0;
4091
4092 case INVALL_VPE:
4093 its_vpe_invall(vpe);
4094 return 0;
4095
4096 default:
4097 return -EINVAL;
4098 }
4099 }
4100
its_vpe_send_cmd(struct its_vpe * vpe,void (* cmd)(struct its_device *,u32))4101 static void its_vpe_send_cmd(struct its_vpe *vpe,
4102 void (*cmd)(struct its_device *, u32))
4103 {
4104 unsigned long flags;
4105
4106 raw_spin_lock_irqsave(&vpe_proxy.lock, flags);
4107
4108 its_vpe_db_proxy_map_locked(vpe);
4109 cmd(vpe_proxy.dev, vpe->vpe_proxy_event);
4110
4111 raw_spin_unlock_irqrestore(&vpe_proxy.lock, flags);
4112 }
4113
its_vpe_send_inv(struct irq_data * d)4114 static void its_vpe_send_inv(struct irq_data *d)
4115 {
4116 struct its_vpe *vpe = irq_data_get_irq_chip_data(d);
4117
4118 if (gic_rdists->has_direct_lpi)
4119 __direct_lpi_inv(d, d->parent_data->hwirq);
4120 else
4121 its_vpe_send_cmd(vpe, its_send_inv);
4122 }
4123
its_vpe_mask_irq(struct irq_data * d)4124 static void its_vpe_mask_irq(struct irq_data *d)
4125 {
4126 /*
4127 * We need to unmask the LPI, which is described by the parent
4128 * irq_data. Instead of calling into the parent (which won't
4129 * exactly do the right thing, let's simply use the
4130 * parent_data pointer. Yes, I'm naughty.
4131 */
4132 lpi_write_config(d->parent_data, LPI_PROP_ENABLED, 0);
4133 its_vpe_send_inv(d);
4134 }
4135
its_vpe_unmask_irq(struct irq_data * d)4136 static void its_vpe_unmask_irq(struct irq_data *d)
4137 {
4138 /* Same hack as above... */
4139 lpi_write_config(d->parent_data, 0, LPI_PROP_ENABLED);
4140 its_vpe_send_inv(d);
4141 }
4142
its_vpe_set_irqchip_state(struct irq_data * d,enum irqchip_irq_state which,bool state)4143 static int its_vpe_set_irqchip_state(struct irq_data *d,
4144 enum irqchip_irq_state which,
4145 bool state)
4146 {
4147 struct its_vpe *vpe = irq_data_get_irq_chip_data(d);
4148
4149 if (which != IRQCHIP_STATE_PENDING)
4150 return -EINVAL;
4151
4152 if (gic_rdists->has_direct_lpi) {
4153 void __iomem *rdbase;
4154
4155 rdbase = per_cpu_ptr(gic_rdists->rdist, vpe->col_idx)->rd_base;
4156 if (state) {
4157 gic_write_lpir(vpe->vpe_db_lpi, rdbase + GICR_SETLPIR);
4158 } else {
4159 gic_write_lpir(vpe->vpe_db_lpi, rdbase + GICR_CLRLPIR);
4160 wait_for_syncr(rdbase);
4161 }
4162 } else {
4163 if (state)
4164 its_vpe_send_cmd(vpe, its_send_int);
4165 else
4166 its_vpe_send_cmd(vpe, its_send_clear);
4167 }
4168
4169 return 0;
4170 }
4171
its_vpe_retrigger(struct irq_data * d)4172 static int its_vpe_retrigger(struct irq_data *d)
4173 {
4174 return !its_vpe_set_irqchip_state(d, IRQCHIP_STATE_PENDING, true);
4175 }
4176
4177 static struct irq_chip its_vpe_irq_chip = {
4178 .name = "GICv4-vpe",
4179 .irq_mask = its_vpe_mask_irq,
4180 .irq_unmask = its_vpe_unmask_irq,
4181 .irq_eoi = irq_chip_eoi_parent,
4182 .irq_set_affinity = its_vpe_set_affinity,
4183 .irq_retrigger = its_vpe_retrigger,
4184 .irq_set_irqchip_state = its_vpe_set_irqchip_state,
4185 .irq_set_vcpu_affinity = its_vpe_set_vcpu_affinity,
4186 };
4187
find_4_1_its(void)4188 static struct its_node *find_4_1_its(void)
4189 {
4190 struct its_node *its = *this_cpu_ptr(&local_4_1_its);
4191
4192 if (!its) {
4193 list_for_each_entry(its, &its_nodes, entry) {
4194 if (is_v4_1(its))
4195 return its;
4196 }
4197
4198 /* Oops? */
4199 its = NULL;
4200 }
4201
4202 return its;
4203 }
4204
its_vpe_4_1_send_inv(struct irq_data * d)4205 static void its_vpe_4_1_send_inv(struct irq_data *d)
4206 {
4207 struct its_vpe *vpe = irq_data_get_irq_chip_data(d);
4208 struct its_node *its;
4209
4210 /*
4211 * GICv4.1 wants doorbells to be invalidated using the
4212 * INVDB command in order to be broadcast to all RDs. Send
4213 * it to the first valid ITS, and let the HW do its magic.
4214 */
4215 its = find_4_1_its();
4216 if (its)
4217 its_send_invdb(its, vpe);
4218 }
4219
its_vpe_4_1_mask_irq(struct irq_data * d)4220 static void its_vpe_4_1_mask_irq(struct irq_data *d)
4221 {
4222 lpi_write_config(d->parent_data, LPI_PROP_ENABLED, 0);
4223 its_vpe_4_1_send_inv(d);
4224 }
4225
its_vpe_4_1_unmask_irq(struct irq_data * d)4226 static void its_vpe_4_1_unmask_irq(struct irq_data *d)
4227 {
4228 lpi_write_config(d->parent_data, 0, LPI_PROP_ENABLED);
4229 its_vpe_4_1_send_inv(d);
4230 }
4231
its_vpe_4_1_schedule(struct its_vpe * vpe,struct its_cmd_info * info)4232 static void its_vpe_4_1_schedule(struct its_vpe *vpe,
4233 struct its_cmd_info *info)
4234 {
4235 void __iomem *vlpi_base = gic_data_rdist_vlpi_base();
4236 u64 val = 0;
4237
4238 /* Schedule the VPE */
4239 val |= GICR_VPENDBASER_Valid;
4240 val |= info->g0en ? GICR_VPENDBASER_4_1_VGRP0EN : 0;
4241 val |= info->g1en ? GICR_VPENDBASER_4_1_VGRP1EN : 0;
4242 val |= FIELD_PREP(GICR_VPENDBASER_4_1_VPEID, vpe->vpe_id);
4243
4244 gicr_write_vpendbaser(val, vlpi_base + GICR_VPENDBASER);
4245 }
4246
its_vpe_4_1_deschedule(struct its_vpe * vpe,struct its_cmd_info * info)4247 static void its_vpe_4_1_deschedule(struct its_vpe *vpe,
4248 struct its_cmd_info *info)
4249 {
4250 void __iomem *vlpi_base = gic_data_rdist_vlpi_base();
4251 u64 val;
4252
4253 if (info->req_db) {
4254 unsigned long flags;
4255
4256 /*
4257 * vPE is going to block: make the vPE non-resident with
4258 * PendingLast clear and DB set. The GIC guarantees that if
4259 * we read-back PendingLast clear, then a doorbell will be
4260 * delivered when an interrupt comes.
4261 *
4262 * Note the locking to deal with the concurrent update of
4263 * pending_last from the doorbell interrupt handler that can
4264 * run concurrently.
4265 */
4266 raw_spin_lock_irqsave(&vpe->vpe_lock, flags);
4267 val = its_clear_vpend_valid(vlpi_base,
4268 GICR_VPENDBASER_PendingLast,
4269 GICR_VPENDBASER_4_1_DB);
4270 vpe->pending_last = !!(val & GICR_VPENDBASER_PendingLast);
4271 raw_spin_unlock_irqrestore(&vpe->vpe_lock, flags);
4272 } else {
4273 /*
4274 * We're not blocking, so just make the vPE non-resident
4275 * with PendingLast set, indicating that we'll be back.
4276 */
4277 val = its_clear_vpend_valid(vlpi_base,
4278 0,
4279 GICR_VPENDBASER_PendingLast);
4280 vpe->pending_last = true;
4281 }
4282 }
4283
its_vpe_4_1_invall(struct its_vpe * vpe)4284 static void its_vpe_4_1_invall(struct its_vpe *vpe)
4285 {
4286 unsigned long flags;
4287 int cpu;
4288
4289 /* Target the redistributor this vPE is currently known on */
4290 cpu = vpe_to_cpuid_lock(vpe, &flags);
4291 its_vpe_4_1_invall_locked(cpu, vpe);
4292 vpe_to_cpuid_unlock(vpe, flags);
4293 }
4294
its_vpe_4_1_set_vcpu_affinity(struct irq_data * d,void * vcpu_info)4295 static int its_vpe_4_1_set_vcpu_affinity(struct irq_data *d, void *vcpu_info)
4296 {
4297 struct its_vpe *vpe = irq_data_get_irq_chip_data(d);
4298 struct its_cmd_info *info = vcpu_info;
4299
4300 switch (info->cmd_type) {
4301 case SCHEDULE_VPE:
4302 its_vpe_4_1_schedule(vpe, info);
4303 return 0;
4304
4305 case DESCHEDULE_VPE:
4306 its_vpe_4_1_deschedule(vpe, info);
4307 return 0;
4308
4309 case COMMIT_VPE:
4310 its_wait_vpt_parse_complete();
4311 return 0;
4312
4313 case INVALL_VPE:
4314 its_vpe_4_1_invall(vpe);
4315 return 0;
4316
4317 default:
4318 return -EINVAL;
4319 }
4320 }
4321
4322 static struct irq_chip its_vpe_4_1_irq_chip = {
4323 .name = "GICv4.1-vpe",
4324 .irq_mask = its_vpe_4_1_mask_irq,
4325 .irq_unmask = its_vpe_4_1_unmask_irq,
4326 .irq_eoi = irq_chip_eoi_parent,
4327 .irq_set_affinity = its_vpe_set_affinity,
4328 .irq_set_vcpu_affinity = its_vpe_4_1_set_vcpu_affinity,
4329 };
4330
its_configure_sgi(struct irq_data * d,bool clear)4331 static void its_configure_sgi(struct irq_data *d, bool clear)
4332 {
4333 struct its_vpe *vpe = irq_data_get_irq_chip_data(d);
4334 struct its_cmd_desc desc;
4335
4336 desc.its_vsgi_cmd.vpe = vpe;
4337 desc.its_vsgi_cmd.sgi = d->hwirq;
4338 desc.its_vsgi_cmd.priority = vpe->sgi_config[d->hwirq].priority;
4339 desc.its_vsgi_cmd.enable = vpe->sgi_config[d->hwirq].enabled;
4340 desc.its_vsgi_cmd.group = vpe->sgi_config[d->hwirq].group;
4341 desc.its_vsgi_cmd.clear = clear;
4342
4343 /*
4344 * GICv4.1 allows us to send VSGI commands to any ITS as long as the
4345 * destination VPE is mapped there. Since we map them eagerly at
4346 * activation time, we're pretty sure the first GICv4.1 ITS will do.
4347 */
4348 its_send_single_vcommand(find_4_1_its(), its_build_vsgi_cmd, &desc);
4349 }
4350
its_sgi_mask_irq(struct irq_data * d)4351 static void its_sgi_mask_irq(struct irq_data *d)
4352 {
4353 struct its_vpe *vpe = irq_data_get_irq_chip_data(d);
4354
4355 vpe->sgi_config[d->hwirq].enabled = false;
4356 its_configure_sgi(d, false);
4357 }
4358
its_sgi_unmask_irq(struct irq_data * d)4359 static void its_sgi_unmask_irq(struct irq_data *d)
4360 {
4361 struct its_vpe *vpe = irq_data_get_irq_chip_data(d);
4362
4363 vpe->sgi_config[d->hwirq].enabled = true;
4364 its_configure_sgi(d, false);
4365 }
4366
its_sgi_set_affinity(struct irq_data * d,const struct cpumask * mask_val,bool force)4367 static int its_sgi_set_affinity(struct irq_data *d,
4368 const struct cpumask *mask_val,
4369 bool force)
4370 {
4371 /*
4372 * There is no notion of affinity for virtual SGIs, at least
4373 * not on the host (since they can only be targeting a vPE).
4374 * Tell the kernel we've done whatever it asked for.
4375 */
4376 irq_data_update_effective_affinity(d, mask_val);
4377 return IRQ_SET_MASK_OK;
4378 }
4379
its_sgi_set_irqchip_state(struct irq_data * d,enum irqchip_irq_state which,bool state)4380 static int its_sgi_set_irqchip_state(struct irq_data *d,
4381 enum irqchip_irq_state which,
4382 bool state)
4383 {
4384 if (which != IRQCHIP_STATE_PENDING)
4385 return -EINVAL;
4386
4387 if (state) {
4388 struct its_vpe *vpe = irq_data_get_irq_chip_data(d);
4389 struct its_node *its = find_4_1_its();
4390 u64 val;
4391
4392 val = FIELD_PREP(GITS_SGIR_VPEID, vpe->vpe_id);
4393 val |= FIELD_PREP(GITS_SGIR_VINTID, d->hwirq);
4394 writeq_relaxed(val, its->sgir_base + GITS_SGIR - SZ_128K);
4395 } else {
4396 its_configure_sgi(d, true);
4397 }
4398
4399 return 0;
4400 }
4401
its_sgi_get_irqchip_state(struct irq_data * d,enum irqchip_irq_state which,bool * val)4402 static int its_sgi_get_irqchip_state(struct irq_data *d,
4403 enum irqchip_irq_state which, bool *val)
4404 {
4405 struct its_vpe *vpe = irq_data_get_irq_chip_data(d);
4406 void __iomem *base;
4407 unsigned long flags;
4408 u32 count = 1000000; /* 1s! */
4409 u32 status;
4410 int cpu;
4411
4412 if (which != IRQCHIP_STATE_PENDING)
4413 return -EINVAL;
4414
4415 /*
4416 * Locking galore! We can race against two different events:
4417 *
4418 * - Concurrent vPE affinity change: we must make sure it cannot
4419 * happen, or we'll talk to the wrong redistributor. This is
4420 * identical to what happens with vLPIs.
4421 *
4422 * - Concurrent VSGIPENDR access: As it involves accessing two
4423 * MMIO registers, this must be made atomic one way or another.
4424 */
4425 cpu = vpe_to_cpuid_lock(vpe, &flags);
4426 raw_spin_lock(&gic_data_rdist_cpu(cpu)->rd_lock);
4427 base = gic_data_rdist_cpu(cpu)->rd_base + SZ_128K;
4428 writel_relaxed(vpe->vpe_id, base + GICR_VSGIR);
4429 do {
4430 status = readl_relaxed(base + GICR_VSGIPENDR);
4431 if (!(status & GICR_VSGIPENDR_BUSY))
4432 goto out;
4433
4434 count--;
4435 if (!count) {
4436 pr_err_ratelimited("Unable to get SGI status\n");
4437 goto out;
4438 }
4439 cpu_relax();
4440 udelay(1);
4441 } while (count);
4442
4443 out:
4444 raw_spin_unlock(&gic_data_rdist_cpu(cpu)->rd_lock);
4445 vpe_to_cpuid_unlock(vpe, flags);
4446
4447 if (!count)
4448 return -ENXIO;
4449
4450 *val = !!(status & (1 << d->hwirq));
4451
4452 return 0;
4453 }
4454
its_sgi_set_vcpu_affinity(struct irq_data * d,void * vcpu_info)4455 static int its_sgi_set_vcpu_affinity(struct irq_data *d, void *vcpu_info)
4456 {
4457 struct its_vpe *vpe = irq_data_get_irq_chip_data(d);
4458 struct its_cmd_info *info = vcpu_info;
4459
4460 switch (info->cmd_type) {
4461 case PROP_UPDATE_VSGI:
4462 vpe->sgi_config[d->hwirq].priority = info->priority;
4463 vpe->sgi_config[d->hwirq].group = info->group;
4464 its_configure_sgi(d, false);
4465 return 0;
4466
4467 default:
4468 return -EINVAL;
4469 }
4470 }
4471
4472 static struct irq_chip its_sgi_irq_chip = {
4473 .name = "GICv4.1-sgi",
4474 .irq_mask = its_sgi_mask_irq,
4475 .irq_unmask = its_sgi_unmask_irq,
4476 .irq_set_affinity = its_sgi_set_affinity,
4477 .irq_set_irqchip_state = its_sgi_set_irqchip_state,
4478 .irq_get_irqchip_state = its_sgi_get_irqchip_state,
4479 .irq_set_vcpu_affinity = its_sgi_set_vcpu_affinity,
4480 };
4481
its_sgi_irq_domain_alloc(struct irq_domain * domain,unsigned int virq,unsigned int nr_irqs,void * args)4482 static int its_sgi_irq_domain_alloc(struct irq_domain *domain,
4483 unsigned int virq, unsigned int nr_irqs,
4484 void *args)
4485 {
4486 struct its_vpe *vpe = args;
4487 int i;
4488
4489 /* Yes, we do want 16 SGIs */
4490 WARN_ON(nr_irqs != 16);
4491
4492 for (i = 0; i < 16; i++) {
4493 vpe->sgi_config[i].priority = 0;
4494 vpe->sgi_config[i].enabled = false;
4495 vpe->sgi_config[i].group = false;
4496
4497 irq_domain_set_hwirq_and_chip(domain, virq + i, i,
4498 &its_sgi_irq_chip, vpe);
4499 irq_set_status_flags(virq + i, IRQ_DISABLE_UNLAZY);
4500 }
4501
4502 return 0;
4503 }
4504
its_sgi_irq_domain_free(struct irq_domain * domain,unsigned int virq,unsigned int nr_irqs)4505 static void its_sgi_irq_domain_free(struct irq_domain *domain,
4506 unsigned int virq,
4507 unsigned int nr_irqs)
4508 {
4509 /* Nothing to do */
4510 }
4511
its_sgi_irq_domain_activate(struct irq_domain * domain,struct irq_data * d,bool reserve)4512 static int its_sgi_irq_domain_activate(struct irq_domain *domain,
4513 struct irq_data *d, bool reserve)
4514 {
4515 /* Write out the initial SGI configuration */
4516 its_configure_sgi(d, false);
4517 return 0;
4518 }
4519
its_sgi_irq_domain_deactivate(struct irq_domain * domain,struct irq_data * d)4520 static void its_sgi_irq_domain_deactivate(struct irq_domain *domain,
4521 struct irq_data *d)
4522 {
4523 struct its_vpe *vpe = irq_data_get_irq_chip_data(d);
4524
4525 /*
4526 * The VSGI command is awkward:
4527 *
4528 * - To change the configuration, CLEAR must be set to false,
4529 * leaving the pending bit unchanged.
4530 * - To clear the pending bit, CLEAR must be set to true, leaving
4531 * the configuration unchanged.
4532 *
4533 * You just can't do both at once, hence the two commands below.
4534 */
4535 vpe->sgi_config[d->hwirq].enabled = false;
4536 its_configure_sgi(d, false);
4537 its_configure_sgi(d, true);
4538 }
4539
4540 static const struct irq_domain_ops its_sgi_domain_ops = {
4541 .alloc = its_sgi_irq_domain_alloc,
4542 .free = its_sgi_irq_domain_free,
4543 .activate = its_sgi_irq_domain_activate,
4544 .deactivate = its_sgi_irq_domain_deactivate,
4545 };
4546
its_vpe_id_alloc(void)4547 static int its_vpe_id_alloc(void)
4548 {
4549 return ida_alloc_max(&its_vpeid_ida, ITS_MAX_VPEID - 1, GFP_KERNEL);
4550 }
4551
its_vpe_id_free(u16 id)4552 static void its_vpe_id_free(u16 id)
4553 {
4554 ida_free(&its_vpeid_ida, id);
4555 }
4556
its_vpe_init(struct its_vpe * vpe)4557 static int its_vpe_init(struct its_vpe *vpe)
4558 {
4559 struct page *vpt_page;
4560 int vpe_id;
4561
4562 /* Allocate vpe_id */
4563 vpe_id = its_vpe_id_alloc();
4564 if (vpe_id < 0)
4565 return vpe_id;
4566
4567 /* Allocate VPT */
4568 vpt_page = its_allocate_pending_table(GFP_KERNEL);
4569 if (!vpt_page) {
4570 its_vpe_id_free(vpe_id);
4571 return -ENOMEM;
4572 }
4573
4574 if (!its_alloc_vpe_table(vpe_id)) {
4575 its_vpe_id_free(vpe_id);
4576 its_free_pending_table(vpt_page);
4577 return -ENOMEM;
4578 }
4579
4580 raw_spin_lock_init(&vpe->vpe_lock);
4581 vpe->vpe_id = vpe_id;
4582 vpe->vpt_page = vpt_page;
4583 atomic_set(&vpe->vmapp_count, 0);
4584 if (!gic_rdists->has_rvpeid)
4585 vpe->vpe_proxy_event = -1;
4586
4587 return 0;
4588 }
4589
its_vpe_teardown(struct its_vpe * vpe)4590 static void its_vpe_teardown(struct its_vpe *vpe)
4591 {
4592 /*
4593 * If vpt_page is NULL, then its_vpe_init() has failed, and
4594 * there is nothing to do as no resource has been allocated.
4595 */
4596 if (vpe->vpt_page == NULL)
4597 return;
4598
4599 its_vpe_db_proxy_unmap(vpe);
4600 its_vpe_id_free(vpe->vpe_id);
4601 its_free_pending_table(vpe->vpt_page);
4602 }
4603
its_vpe_irq_domain_free(struct irq_domain * domain,unsigned int virq,unsigned int nr_irqs)4604 static void its_vpe_irq_domain_free(struct irq_domain *domain,
4605 unsigned int virq,
4606 unsigned int nr_irqs)
4607 {
4608 struct its_vm *vm = domain->host_data;
4609 int i;
4610
4611 irq_domain_free_irqs_parent(domain, virq, nr_irqs);
4612
4613 for (i = 0; i < nr_irqs; i++) {
4614 struct irq_data *data = irq_domain_get_irq_data(domain,
4615 virq + i);
4616 struct its_vpe *vpe = irq_data_get_irq_chip_data(data);
4617
4618 BUG_ON(vm != vpe->its_vm);
4619
4620 clear_bit(data->hwirq, vm->db_bitmap);
4621 its_vpe_teardown(vpe);
4622 irq_domain_reset_irq_data(data);
4623 }
4624
4625 if (bitmap_empty(vm->db_bitmap, vm->nr_db_lpis)) {
4626 its_lpi_free(vm->db_bitmap, vm->db_lpi_base, vm->nr_db_lpis);
4627 its_free_prop_table(vm->vprop_page);
4628 }
4629 }
4630
its_vpe_irq_domain_alloc(struct irq_domain * domain,unsigned int virq,unsigned int nr_irqs,void * args)4631 static int its_vpe_irq_domain_alloc(struct irq_domain *domain, unsigned int virq,
4632 unsigned int nr_irqs, void *args)
4633 {
4634 struct irq_chip *irqchip = &its_vpe_irq_chip;
4635 struct its_vm *vm = args;
4636 unsigned long *bitmap;
4637 struct page *vprop_page;
4638 int base, nr_ids, i, err = 0;
4639
4640 bitmap = its_lpi_alloc(roundup_pow_of_two(nr_irqs), &base, &nr_ids);
4641 if (!bitmap)
4642 return -ENOMEM;
4643
4644 if (nr_ids < nr_irqs) {
4645 its_lpi_free(bitmap, base, nr_ids);
4646 return -ENOMEM;
4647 }
4648
4649 vprop_page = its_allocate_prop_table(GFP_KERNEL);
4650 if (!vprop_page) {
4651 its_lpi_free(bitmap, base, nr_ids);
4652 return -ENOMEM;
4653 }
4654
4655 vm->db_bitmap = bitmap;
4656 vm->db_lpi_base = base;
4657 vm->nr_db_lpis = nr_ids;
4658 vm->vprop_page = vprop_page;
4659 raw_spin_lock_init(&vm->vmapp_lock);
4660
4661 if (gic_rdists->has_rvpeid)
4662 irqchip = &its_vpe_4_1_irq_chip;
4663
4664 for (i = 0; i < nr_irqs; i++) {
4665 vm->vpes[i]->vpe_db_lpi = base + i;
4666 err = its_vpe_init(vm->vpes[i]);
4667 if (err)
4668 break;
4669 err = its_irq_gic_domain_alloc(domain, virq + i,
4670 vm->vpes[i]->vpe_db_lpi);
4671 if (err)
4672 break;
4673 irq_domain_set_hwirq_and_chip(domain, virq + i, i,
4674 irqchip, vm->vpes[i]);
4675 set_bit(i, bitmap);
4676 irqd_set_resend_when_in_progress(irq_get_irq_data(virq + i));
4677 }
4678
4679 if (err) {
4680 its_vpe_teardown(vm->vpes[i]);
4681 its_vpe_irq_domain_free(domain, virq, i);
4682 }
4683
4684 return err;
4685 }
4686
its_vpe_irq_domain_activate(struct irq_domain * domain,struct irq_data * d,bool reserve)4687 static int its_vpe_irq_domain_activate(struct irq_domain *domain,
4688 struct irq_data *d, bool reserve)
4689 {
4690 struct its_vpe *vpe = irq_data_get_irq_chip_data(d);
4691 struct its_node *its;
4692
4693 /* Map the VPE to the first possible CPU */
4694 vpe->col_idx = cpumask_first(cpu_online_mask);
4695 irq_data_update_effective_affinity(d, cpumask_of(vpe->col_idx));
4696
4697 /*
4698 * If we use the list map, we issue VMAPP on demand... Unless
4699 * we're on a GICv4.1 and we eagerly map the VPE on all ITSs
4700 * so that VSGIs can work.
4701 */
4702 if (!gic_requires_eager_mapping())
4703 return 0;
4704
4705 list_for_each_entry(its, &its_nodes, entry) {
4706 if (!is_v4(its))
4707 continue;
4708
4709 its_send_vmapp(its, vpe, true);
4710 its_send_vinvall(its, vpe);
4711 }
4712
4713 return 0;
4714 }
4715
its_vpe_irq_domain_deactivate(struct irq_domain * domain,struct irq_data * d)4716 static void its_vpe_irq_domain_deactivate(struct irq_domain *domain,
4717 struct irq_data *d)
4718 {
4719 struct its_vpe *vpe = irq_data_get_irq_chip_data(d);
4720 struct its_node *its;
4721
4722 /*
4723 * If we use the list map on GICv4.0, we unmap the VPE once no
4724 * VLPIs are associated with the VM.
4725 */
4726 if (!gic_requires_eager_mapping())
4727 return;
4728
4729 list_for_each_entry(its, &its_nodes, entry) {
4730 if (!is_v4(its))
4731 continue;
4732
4733 its_send_vmapp(its, vpe, false);
4734 }
4735
4736 /*
4737 * There may be a direct read to the VPT after unmapping the
4738 * vPE, to guarantee the validity of this, we make the VPT
4739 * memory coherent with the CPU caches here.
4740 */
4741 if (find_4_1_its() && !atomic_read(&vpe->vmapp_count))
4742 gic_flush_dcache_to_poc(page_address(vpe->vpt_page),
4743 LPI_PENDBASE_SZ);
4744 }
4745
4746 static const struct irq_domain_ops its_vpe_domain_ops = {
4747 .alloc = its_vpe_irq_domain_alloc,
4748 .free = its_vpe_irq_domain_free,
4749 .activate = its_vpe_irq_domain_activate,
4750 .deactivate = its_vpe_irq_domain_deactivate,
4751 };
4752
its_force_quiescent(void __iomem * base)4753 static int its_force_quiescent(void __iomem *base)
4754 {
4755 u32 count = 1000000; /* 1s */
4756 u32 val;
4757
4758 val = readl_relaxed(base + GITS_CTLR);
4759 /*
4760 * GIC architecture specification requires the ITS to be both
4761 * disabled and quiescent for writes to GITS_BASER<n> or
4762 * GITS_CBASER to not have UNPREDICTABLE results.
4763 */
4764 if ((val & GITS_CTLR_QUIESCENT) && !(val & GITS_CTLR_ENABLE))
4765 return 0;
4766
4767 /* Disable the generation of all interrupts to this ITS */
4768 val &= ~(GITS_CTLR_ENABLE | GITS_CTLR_ImDe);
4769 writel_relaxed(val, base + GITS_CTLR);
4770
4771 /* Poll GITS_CTLR and wait until ITS becomes quiescent */
4772 while (1) {
4773 val = readl_relaxed(base + GITS_CTLR);
4774 if (val & GITS_CTLR_QUIESCENT)
4775 return 0;
4776
4777 count--;
4778 if (!count)
4779 return -EBUSY;
4780
4781 cpu_relax();
4782 udelay(1);
4783 }
4784 }
4785
its_enable_quirk_cavium_22375(void * data)4786 static bool __maybe_unused its_enable_quirk_cavium_22375(void *data)
4787 {
4788 struct its_node *its = data;
4789
4790 /* erratum 22375: only alloc 8MB table size (20 bits) */
4791 FIELD_MODIFY(GITS_TYPER_DEVBITS, &its->typer, 20 - 1);
4792 its->flags |= ITS_FLAGS_WORKAROUND_CAVIUM_22375;
4793
4794 return true;
4795 }
4796
its_enable_quirk_cavium_23144(void * data)4797 static bool __maybe_unused its_enable_quirk_cavium_23144(void *data)
4798 {
4799 struct its_node *its = data;
4800
4801 its->flags |= ITS_FLAGS_WORKAROUND_CAVIUM_23144;
4802
4803 return true;
4804 }
4805
its_enable_quirk_qdf2400_e0065(void * data)4806 static bool __maybe_unused its_enable_quirk_qdf2400_e0065(void *data)
4807 {
4808 struct its_node *its = data;
4809
4810 /* On QDF2400, the size of the ITE is 16Bytes */
4811 FIELD_MODIFY(GITS_TYPER_ITT_ENTRY_SIZE, &its->typer, 16 - 1);
4812
4813 return true;
4814 }
4815
its_irq_get_msi_base_pre_its(struct its_device * its_dev)4816 static u64 its_irq_get_msi_base_pre_its(struct its_device *its_dev)
4817 {
4818 struct its_node *its = its_dev->its;
4819
4820 /*
4821 * The Socionext Synquacer SoC has a so-called 'pre-ITS',
4822 * which maps 32-bit writes targeted at a separate window of
4823 * size '4 << device_id_bits' onto writes to GITS_TRANSLATER
4824 * with device ID taken from bits [device_id_bits + 1:2] of
4825 * the window offset.
4826 */
4827 return its->pre_its_base + (its_dev->device_id << 2);
4828 }
4829
its_enable_quirk_socionext_synquacer(void * data)4830 static bool __maybe_unused its_enable_quirk_socionext_synquacer(void *data)
4831 {
4832 struct its_node *its = data;
4833 u32 pre_its_window[2];
4834 u32 ids;
4835
4836 if (!fwnode_property_read_u32_array(its->fwnode_handle,
4837 "socionext,synquacer-pre-its",
4838 pre_its_window,
4839 ARRAY_SIZE(pre_its_window))) {
4840
4841 its->pre_its_base = pre_its_window[0];
4842 its->get_msi_base = its_irq_get_msi_base_pre_its;
4843
4844 ids = ilog2(pre_its_window[1]) - 2;
4845 if (device_ids(its) > ids)
4846 FIELD_MODIFY(GITS_TYPER_DEVBITS, &its->typer, ids - 1);
4847
4848 /* the pre-ITS breaks isolation, so disable MSI remapping */
4849 its->msi_domain_flags &= ~IRQ_DOMAIN_FLAG_ISOLATED_MSI;
4850 return true;
4851 }
4852 return false;
4853 }
4854
its_enable_quirk_hip07_161600802(void * data)4855 static bool __maybe_unused its_enable_quirk_hip07_161600802(void *data)
4856 {
4857 struct its_node *its = data;
4858
4859 /*
4860 * Hip07 insists on using the wrong address for the VLPI
4861 * page. Trick it into doing the right thing...
4862 */
4863 its->vlpi_redist_offset = SZ_128K;
4864 return true;
4865 }
4866
its_enable_rk3588001(void * data)4867 static bool __maybe_unused its_enable_rk3588001(void *data)
4868 {
4869 struct its_node *its = data;
4870
4871 if (!of_machine_is_compatible("rockchip,rk3588") &&
4872 !of_machine_is_compatible("rockchip,rk3588s"))
4873 return false;
4874
4875 its->flags |= ITS_FLAGS_FORCE_NON_SHAREABLE;
4876 gic_rdists->flags |= RDIST_FLAGS_FORCE_NON_SHAREABLE;
4877
4878 return true;
4879 }
4880
its_set_non_coherent(void * data)4881 static bool its_set_non_coherent(void *data)
4882 {
4883 struct its_node *its = data;
4884
4885 its->flags |= ITS_FLAGS_FORCE_NON_SHAREABLE;
4886 return true;
4887 }
4888
its_enable_quirk_hip09_162100801(void * data)4889 static bool __maybe_unused its_enable_quirk_hip09_162100801(void *data)
4890 {
4891 struct its_node *its = data;
4892
4893 its->flags |= ITS_FLAGS_WORKAROUND_HISILICON_162100801;
4894 return true;
4895 }
4896
4897 static const char * const dma_32bit_impaired_platforms[] = {
4898 #ifdef CONFIG_RENESAS_ERRATUM_GEN4GICITS1
4899 "renesas,r8a779f0",
4900 "renesas,r8a779g0",
4901 "renesas,r8a779h0",
4902 #endif
4903 #ifdef CONFIG_ROCKCHIP_ERRATUM_3568002
4904 "rockchip,rk3566",
4905 "rockchip,rk3568",
4906 #endif
4907 NULL,
4908 };
4909
its_enable_dma32(void * data)4910 static bool its_enable_dma32(void *data)
4911 {
4912 if (!of_machine_compatible_match(dma_32bit_impaired_platforms))
4913 return false;
4914
4915 gfp_flags_quirk |= GFP_DMA32;
4916
4917 return true;
4918 }
4919
4920 static const struct gic_quirk its_quirks[] = {
4921 #ifdef CONFIG_CAVIUM_ERRATUM_22375
4922 {
4923 .desc = "ITS: Cavium errata 22375, 24313",
4924 .iidr = 0xa100034c, /* ThunderX pass 1.x */
4925 .mask = 0xffff0fff,
4926 .init = its_enable_quirk_cavium_22375,
4927 },
4928 #endif
4929 #ifdef CONFIG_CAVIUM_ERRATUM_23144
4930 {
4931 .desc = "ITS: Cavium erratum 23144",
4932 .iidr = 0xa100034c, /* ThunderX pass 1.x */
4933 .mask = 0xffff0fff,
4934 .init = its_enable_quirk_cavium_23144,
4935 },
4936 #endif
4937 #ifdef CONFIG_QCOM_QDF2400_ERRATUM_0065
4938 {
4939 .desc = "ITS: QDF2400 erratum 0065",
4940 .iidr = 0x00001070, /* QDF2400 ITS rev 1.x */
4941 .mask = 0xffffffff,
4942 .init = its_enable_quirk_qdf2400_e0065,
4943 },
4944 #endif
4945 #ifdef CONFIG_SOCIONEXT_SYNQUACER_PREITS
4946 {
4947 /*
4948 * The Socionext Synquacer SoC incorporates ARM's own GIC-500
4949 * implementation, but with a 'pre-ITS' added that requires
4950 * special handling in software.
4951 */
4952 .desc = "ITS: Socionext Synquacer pre-ITS",
4953 .iidr = 0x0001143b,
4954 .mask = 0xffffffff,
4955 .init = its_enable_quirk_socionext_synquacer,
4956 },
4957 #endif
4958 #ifdef CONFIG_HISILICON_ERRATUM_161600802
4959 {
4960 .desc = "ITS: Hip07 erratum 161600802",
4961 .iidr = 0x00000004,
4962 .mask = 0xffffffff,
4963 .init = its_enable_quirk_hip07_161600802,
4964 },
4965 #endif
4966 #ifdef CONFIG_HISILICON_ERRATUM_162100801
4967 {
4968 .desc = "ITS: Hip09 erratum 162100801",
4969 .iidr = 0x00051736,
4970 .mask = 0xffffffff,
4971 .init = its_enable_quirk_hip09_162100801,
4972 },
4973 #endif
4974 #ifdef CONFIG_ROCKCHIP_ERRATUM_3588001
4975 {
4976 .desc = "ITS: Rockchip erratum RK3588001",
4977 .iidr = 0x0201743b,
4978 .mask = 0xffffffff,
4979 .init = its_enable_rk3588001,
4980 },
4981 #endif
4982 {
4983 .desc = "ITS: non-coherent attribute",
4984 .property = "dma-noncoherent",
4985 .init = its_set_non_coherent,
4986 },
4987 {
4988 .desc = "ITS: Broken GIC600 integration limited to 32bit PA",
4989 .iidr = 0x0201743b,
4990 .mask = 0xffffffff,
4991 .init = its_enable_dma32,
4992 },
4993 {
4994 }
4995 };
4996
its_enable_quirks(struct its_node * its)4997 static void its_enable_quirks(struct its_node *its)
4998 {
4999 u32 iidr = readl_relaxed(its->base + GITS_IIDR);
5000
5001 gic_enable_quirks(iidr, its_quirks, its);
5002
5003 if (is_of_node(its->fwnode_handle))
5004 gic_enable_of_quirks(to_of_node(its->fwnode_handle),
5005 its_quirks, its);
5006 }
5007
its_save_disable(void * data)5008 static int its_save_disable(void *data)
5009 {
5010 struct its_node *its;
5011 int err = 0;
5012
5013 raw_spin_lock(&its_lock);
5014 list_for_each_entry(its, &its_nodes, entry) {
5015 void __iomem *base;
5016
5017 base = its->base;
5018 its->ctlr_save = readl_relaxed(base + GITS_CTLR);
5019 err = its_force_quiescent(base);
5020 if (err) {
5021 pr_err("ITS@%pa: failed to quiesce: %d\n",
5022 &its->phys_base, err);
5023 writel_relaxed(its->ctlr_save, base + GITS_CTLR);
5024 goto err;
5025 }
5026
5027 its->cbaser_save = gits_read_cbaser(base + GITS_CBASER);
5028 }
5029
5030 err:
5031 if (err) {
5032 list_for_each_entry_continue_reverse(its, &its_nodes, entry) {
5033 void __iomem *base;
5034
5035 base = its->base;
5036 writel_relaxed(its->ctlr_save, base + GITS_CTLR);
5037 }
5038 }
5039 raw_spin_unlock(&its_lock);
5040
5041 return err;
5042 }
5043
its_restore_enable(void * data)5044 static void its_restore_enable(void *data)
5045 {
5046 struct its_node *its;
5047 int ret;
5048
5049 raw_spin_lock(&its_lock);
5050 list_for_each_entry(its, &its_nodes, entry) {
5051 void __iomem *base;
5052 int i;
5053
5054 base = its->base;
5055
5056 /*
5057 * Make sure that the ITS is disabled. If it fails to quiesce,
5058 * don't restore it since writing to CBASER or BASER<n>
5059 * registers is undefined according to the GIC v3 ITS
5060 * Specification.
5061 *
5062 * Firmware resuming with the ITS enabled is terminally broken.
5063 */
5064 WARN_ON(readl_relaxed(base + GITS_CTLR) & GITS_CTLR_ENABLE);
5065 ret = its_force_quiescent(base);
5066 if (ret) {
5067 pr_err("ITS@%pa: failed to quiesce on resume: %d\n",
5068 &its->phys_base, ret);
5069 continue;
5070 }
5071
5072 gits_write_cbaser(its->cbaser_save, base + GITS_CBASER);
5073
5074 /*
5075 * Writing CBASER resets CREADR to 0, so make CWRITER and
5076 * cmd_write line up with it.
5077 */
5078 its->cmd_write = its->cmd_base;
5079 gits_write_cwriter(0, base + GITS_CWRITER);
5080
5081 /* Restore GITS_BASER from the value cache. */
5082 for (i = 0; i < GITS_BASER_NR_REGS; i++) {
5083 struct its_baser *baser = &its->tables[i];
5084
5085 if (!(baser->val & GITS_BASER_VALID))
5086 continue;
5087
5088 its_write_baser(its, baser, baser->val);
5089 }
5090 writel_relaxed(its->ctlr_save, base + GITS_CTLR);
5091
5092 /*
5093 * Reinit the collection if it's stored in the ITS. This is
5094 * indicated by the col_id being less than the HCC field.
5095 * CID < HCC as specified in the GIC v3 Documentation.
5096 */
5097 if (its->collections[smp_processor_id()].col_id <
5098 GITS_TYPER_HCC(gic_read_typer(base + GITS_TYPER)))
5099 its_cpu_init_collection(its);
5100 }
5101 raw_spin_unlock(&its_lock);
5102 }
5103
5104 static const struct syscore_ops its_syscore_ops = {
5105 .suspend = its_save_disable,
5106 .resume = its_restore_enable,
5107 };
5108
5109 static struct syscore its_syscore = {
5110 .ops = &its_syscore_ops,
5111 };
5112
its_map_one(struct resource * res,int * err)5113 static void __init __iomem *its_map_one(struct resource *res, int *err)
5114 {
5115 void __iomem *its_base;
5116 u32 val;
5117
5118 its_base = ioremap(res->start, SZ_64K);
5119 if (!its_base) {
5120 pr_warn("ITS@%pa: Unable to map ITS registers\n", &res->start);
5121 *err = -ENOMEM;
5122 return NULL;
5123 }
5124
5125 val = readl_relaxed(its_base + GITS_PIDR2) & GIC_PIDR2_ARCH_MASK;
5126 if (val != 0x30 && val != 0x40) {
5127 pr_warn("ITS@%pa: No ITS detected, giving up\n", &res->start);
5128 *err = -ENODEV;
5129 goto out_unmap;
5130 }
5131
5132 *err = its_force_quiescent(its_base);
5133 if (*err) {
5134 pr_warn("ITS@%pa: Failed to quiesce, giving up\n", &res->start);
5135 goto out_unmap;
5136 }
5137
5138 return its_base;
5139
5140 out_unmap:
5141 iounmap(its_base);
5142 return NULL;
5143 }
5144
its_init_domain(struct its_node * its)5145 static int its_init_domain(struct its_node *its)
5146 {
5147 struct irq_domain_info dom_info = {
5148 .fwnode = its->fwnode_handle,
5149 .ops = &its_domain_ops,
5150 .domain_flags = its->msi_domain_flags,
5151 .parent = its_parent,
5152 };
5153 struct msi_domain_info *info;
5154
5155 info = kzalloc_obj(*info);
5156 if (!info)
5157 return -ENOMEM;
5158
5159 info->ops = &its_msi_domain_ops;
5160 info->data = its;
5161 dom_info.host_data = info;
5162
5163 if (!msi_create_parent_irq_domain(&dom_info, &gic_v3_its_msi_parent_ops)) {
5164 kfree(info);
5165 return -ENOMEM;
5166 }
5167 return 0;
5168 }
5169
its_init_vpe_domain(void)5170 static int its_init_vpe_domain(void)
5171 {
5172 struct its_node *its;
5173 u32 devid;
5174 int entries;
5175
5176 if (gic_rdists->has_direct_lpi) {
5177 pr_info("ITS: Using DirectLPI for VPE invalidation\n");
5178 return 0;
5179 }
5180
5181 /* Any ITS will do, even if not v4 */
5182 its = list_first_entry(&its_nodes, struct its_node, entry);
5183
5184 entries = roundup_pow_of_two(nr_cpu_ids);
5185 vpe_proxy.vpes = kzalloc_objs(*vpe_proxy.vpes, entries);
5186 if (!vpe_proxy.vpes)
5187 return -ENOMEM;
5188
5189 /* Use the last possible DevID */
5190 devid = GENMASK(device_ids(its) - 1, 0);
5191 vpe_proxy.dev = its_create_device(its, devid, entries, false);
5192 if (!vpe_proxy.dev) {
5193 kfree(vpe_proxy.vpes);
5194 pr_err("ITS: Can't allocate GICv4 proxy device\n");
5195 return -ENOMEM;
5196 }
5197
5198 BUG_ON(entries > vpe_proxy.dev->nr_ites);
5199
5200 raw_spin_lock_init(&vpe_proxy.lock);
5201 vpe_proxy.next_victim = 0;
5202 pr_info("ITS: Allocated DevID %x as GICv4 proxy device (%d slots)\n",
5203 devid, vpe_proxy.dev->nr_ites);
5204
5205 return 0;
5206 }
5207
its_compute_its_list_map(struct its_node * its)5208 static int __init its_compute_its_list_map(struct its_node *its)
5209 {
5210 int its_number;
5211 u32 ctlr;
5212
5213 /*
5214 * This is assumed to be done early enough that we're
5215 * guaranteed to be single-threaded, hence no
5216 * locking. Should this change, we should address
5217 * this.
5218 */
5219 its_number = find_first_zero_bit(&its_list_map, GICv4_ITS_LIST_MAX);
5220 if (its_number >= GICv4_ITS_LIST_MAX) {
5221 pr_err("ITS@%pa: No ITSList entry available!\n",
5222 &its->phys_base);
5223 return -EINVAL;
5224 }
5225
5226 ctlr = readl_relaxed(its->base + GITS_CTLR);
5227 ctlr &= ~GITS_CTLR_ITS_NUMBER;
5228 ctlr |= its_number << GITS_CTLR_ITS_NUMBER_SHIFT;
5229 writel_relaxed(ctlr, its->base + GITS_CTLR);
5230 ctlr = readl_relaxed(its->base + GITS_CTLR);
5231 if ((ctlr & GITS_CTLR_ITS_NUMBER) != (its_number << GITS_CTLR_ITS_NUMBER_SHIFT)) {
5232 its_number = ctlr & GITS_CTLR_ITS_NUMBER;
5233 its_number >>= GITS_CTLR_ITS_NUMBER_SHIFT;
5234 }
5235
5236 if (test_and_set_bit(its_number, &its_list_map)) {
5237 pr_err("ITS@%pa: Duplicate ITSList entry %d\n",
5238 &its->phys_base, its_number);
5239 return -EINVAL;
5240 }
5241
5242 return its_number;
5243 }
5244
its_probe_one(struct its_node * its)5245 static int __init its_probe_one(struct its_node *its)
5246 {
5247 u64 baser, tmp;
5248 struct page *page;
5249 u32 ctlr;
5250 int err;
5251
5252 its_enable_quirks(its);
5253
5254 if (is_v4(its)) {
5255 if (!(its->typer & GITS_TYPER_VMOVP)) {
5256 err = its_compute_its_list_map(its);
5257 if (err < 0)
5258 goto out;
5259
5260 its->list_nr = err;
5261
5262 pr_info("ITS@%pa: Using ITS number %d\n",
5263 &its->phys_base, err);
5264 } else {
5265 pr_info("ITS@%pa: Single VMOVP capable\n", &its->phys_base);
5266 }
5267
5268 if (is_v4_1(its)) {
5269 u32 svpet = FIELD_GET(GITS_TYPER_SVPET, its->typer);
5270
5271 its->sgir_base = ioremap(its->phys_base + SZ_128K, SZ_64K);
5272 if (!its->sgir_base) {
5273 err = -ENOMEM;
5274 goto out;
5275 }
5276
5277 its->mpidr = readl_relaxed(its->base + GITS_MPIDR);
5278
5279 pr_info("ITS@%pa: Using GICv4.1 mode %08x %08x\n",
5280 &its->phys_base, its->mpidr, svpet);
5281 }
5282 }
5283
5284 page = its_alloc_pages_node(its->numa_node,
5285 GFP_KERNEL | __GFP_ZERO,
5286 get_order(ITS_CMD_QUEUE_SZ));
5287 if (!page) {
5288 err = -ENOMEM;
5289 goto out_unmap_sgir;
5290 }
5291 its->cmd_base = (void *)page_address(page);
5292 its->cmd_write = its->cmd_base;
5293
5294 err = its_alloc_tables(its);
5295 if (err)
5296 goto out_free_cmd;
5297
5298 err = its_alloc_collections(its);
5299 if (err)
5300 goto out_free_tables;
5301
5302 baser = (virt_to_phys(its->cmd_base) |
5303 GITS_CBASER_RaWaWb |
5304 GITS_CBASER_InnerShareable |
5305 (ITS_CMD_QUEUE_SZ / SZ_4K - 1) |
5306 GITS_CBASER_VALID);
5307
5308 gits_write_cbaser(baser, its->base + GITS_CBASER);
5309 tmp = gits_read_cbaser(its->base + GITS_CBASER);
5310
5311 if (its->flags & ITS_FLAGS_FORCE_NON_SHAREABLE)
5312 tmp &= ~GITS_CBASER_SHAREABILITY_MASK;
5313
5314 if ((tmp ^ baser) & GITS_CBASER_SHAREABILITY_MASK) {
5315 if (!(tmp & GITS_CBASER_SHAREABILITY_MASK)) {
5316 /*
5317 * The HW reports non-shareable, we must
5318 * remove the cacheability attributes as
5319 * well.
5320 */
5321 baser &= ~(GITS_CBASER_SHAREABILITY_MASK |
5322 GITS_CBASER_CACHEABILITY_MASK);
5323 baser |= GITS_CBASER_nC;
5324 gits_write_cbaser(baser, its->base + GITS_CBASER);
5325 }
5326 pr_info("ITS: using cache flushing for cmd queue\n");
5327 its->flags |= ITS_FLAGS_CMDQ_NEEDS_FLUSHING;
5328 }
5329
5330 gits_write_cwriter(0, its->base + GITS_CWRITER);
5331 ctlr = readl_relaxed(its->base + GITS_CTLR);
5332 ctlr |= GITS_CTLR_ENABLE;
5333 if (is_v4(its))
5334 ctlr |= GITS_CTLR_ImDe;
5335 writel_relaxed(ctlr, its->base + GITS_CTLR);
5336
5337 err = its_init_domain(its);
5338 if (err)
5339 goto out_free_collection;
5340
5341 raw_spin_lock(&its_lock);
5342 list_add(&its->entry, &its_nodes);
5343 raw_spin_unlock(&its_lock);
5344
5345 return 0;
5346
5347 out_free_collection:
5348 kfree(its->collections);
5349 out_free_tables:
5350 its_free_tables(its);
5351 out_free_cmd:
5352 its_free_pages(its->cmd_base, get_order(ITS_CMD_QUEUE_SZ));
5353 out_unmap_sgir:
5354 if (its->sgir_base)
5355 iounmap(its->sgir_base);
5356 out:
5357 pr_err("ITS@%pa: failed probing (%d)\n", &its->phys_base, err);
5358 return err;
5359 }
5360
gic_rdists_supports_plpis(void)5361 static bool gic_rdists_supports_plpis(void)
5362 {
5363 return !!(gic_read_typer(gic_data_rdist_rd_base() + GICR_TYPER) & GICR_TYPER_PLPIS);
5364 }
5365
redist_disable_lpis(void)5366 static int redist_disable_lpis(void)
5367 {
5368 void __iomem *rbase = gic_data_rdist_rd_base();
5369 u64 timeout = USEC_PER_SEC;
5370 u64 val;
5371
5372 if (!gic_rdists_supports_plpis()) {
5373 pr_info("CPU%d: LPIs not supported\n", smp_processor_id());
5374 return -ENXIO;
5375 }
5376
5377 val = readl_relaxed(rbase + GICR_CTLR);
5378 if (!(val & GICR_CTLR_ENABLE_LPIS))
5379 return 0;
5380
5381 /*
5382 * If coming via a CPU hotplug event, we don't need to disable
5383 * LPIs before trying to re-enable them. They are already
5384 * configured and all is well in the world.
5385 *
5386 * If running with preallocated tables, there is nothing to do.
5387 */
5388 if ((gic_data_rdist()->flags & RD_LOCAL_LPI_ENABLED) ||
5389 (gic_rdists->flags & RDIST_FLAGS_RD_TABLES_PREALLOCATED))
5390 return 0;
5391
5392 /*
5393 * From that point on, we only try to do some damage control.
5394 */
5395 pr_warn("GICv3: CPU%d: Booted with LPIs enabled, memory probably corrupted\n",
5396 smp_processor_id());
5397 add_taint(TAINT_CRAP, LOCKDEP_STILL_OK);
5398
5399 /* Disable LPIs */
5400 val &= ~GICR_CTLR_ENABLE_LPIS;
5401 writel_relaxed(val, rbase + GICR_CTLR);
5402
5403 /* Make sure any change to GICR_CTLR is observable by the GIC */
5404 dsb(sy);
5405
5406 /*
5407 * Software must observe RWP==0 after clearing GICR_CTLR.EnableLPIs
5408 * from 1 to 0 before programming GICR_PEND{PROP}BASER registers.
5409 * Error out if we time out waiting for RWP to clear.
5410 */
5411 while (readl_relaxed(rbase + GICR_CTLR) & GICR_CTLR_RWP) {
5412 if (!timeout) {
5413 pr_err("CPU%d: Timeout while disabling LPIs\n",
5414 smp_processor_id());
5415 return -ETIMEDOUT;
5416 }
5417 udelay(1);
5418 timeout--;
5419 }
5420
5421 /*
5422 * After it has been written to 1, it is IMPLEMENTATION
5423 * DEFINED whether GICR_CTLR.EnableLPI becomes RES1 or can be
5424 * cleared to 0. Error out if clearing the bit failed.
5425 */
5426 if (readl_relaxed(rbase + GICR_CTLR) & GICR_CTLR_ENABLE_LPIS) {
5427 pr_err("CPU%d: Failed to disable LPIs\n", smp_processor_id());
5428 return -EBUSY;
5429 }
5430
5431 return 0;
5432 }
5433
its_cpu_init(void)5434 int its_cpu_init(void)
5435 {
5436 if (!list_empty(&its_nodes)) {
5437 int ret;
5438
5439 ret = redist_disable_lpis();
5440 if (ret)
5441 return ret;
5442
5443 its_cpu_init_lpis();
5444 its_cpu_init_collections();
5445 }
5446
5447 return 0;
5448 }
5449
rdist_memreserve_cpuhp_cleanup_workfn(struct work_struct * work)5450 static void rdist_memreserve_cpuhp_cleanup_workfn(struct work_struct *work)
5451 {
5452 cpuhp_remove_state_nocalls(gic_rdists->cpuhp_memreserve_state);
5453 gic_rdists->cpuhp_memreserve_state = CPUHP_INVALID;
5454 }
5455
5456 static DECLARE_WORK(rdist_memreserve_cpuhp_cleanup_work,
5457 rdist_memreserve_cpuhp_cleanup_workfn);
5458
its_cpu_memreserve_lpi(unsigned int cpu)5459 static int its_cpu_memreserve_lpi(unsigned int cpu)
5460 {
5461 struct page *pend_page;
5462 int ret = 0;
5463
5464 /* This gets to run exactly once per CPU */
5465 if (gic_data_rdist()->flags & RD_LOCAL_MEMRESERVE_DONE)
5466 return 0;
5467
5468 pend_page = gic_data_rdist()->pend_page;
5469 if (WARN_ON(!pend_page)) {
5470 ret = -ENOMEM;
5471 goto out;
5472 }
5473 /*
5474 * If the pending table was pre-programmed, free the memory we
5475 * preemptively allocated. Otherwise, reserve that memory for
5476 * later kexecs.
5477 */
5478 if (gic_data_rdist()->flags & RD_LOCAL_PENDTABLE_PREALLOCATED) {
5479 its_free_pending_table(pend_page);
5480 gic_data_rdist()->pend_page = NULL;
5481 } else {
5482 phys_addr_t paddr = page_to_phys(pend_page);
5483 WARN_ON(gic_reserve_range(paddr, LPI_PENDBASE_SZ));
5484 }
5485
5486 out:
5487 /* Last CPU being brought up gets to issue the cleanup */
5488 if (!IS_ENABLED(CONFIG_SMP) ||
5489 cpumask_equal(&cpus_booted_once_mask, cpu_possible_mask))
5490 schedule_work(&rdist_memreserve_cpuhp_cleanup_work);
5491
5492 gic_data_rdist()->flags |= RD_LOCAL_MEMRESERVE_DONE;
5493 return ret;
5494 }
5495
5496 /* Mark all the BASER registers as invalid before they get reprogrammed */
its_reset_one(struct resource * res)5497 static int __init its_reset_one(struct resource *res)
5498 {
5499 void __iomem *its_base;
5500 int err, i;
5501
5502 its_base = its_map_one(res, &err);
5503 if (!its_base)
5504 return err;
5505
5506 for (i = 0; i < GITS_BASER_NR_REGS; i++)
5507 gits_write_baser(0, its_base + GITS_BASER + (i << 3));
5508
5509 iounmap(its_base);
5510 return 0;
5511 }
5512
5513 static const struct of_device_id its_device_id[] = {
5514 { .compatible = "arm,gic-v3-its", },
5515 {},
5516 };
5517
its_node_init(struct resource * res,struct fwnode_handle * handle,int numa_node)5518 static struct its_node __init *its_node_init(struct resource *res,
5519 struct fwnode_handle *handle, int numa_node)
5520 {
5521 void __iomem *its_base;
5522 struct its_node *its;
5523 int err;
5524
5525 its_base = its_map_one(res, &err);
5526 if (!its_base)
5527 return NULL;
5528
5529 pr_info("ITS %pR\n", res);
5530
5531 its = kzalloc_obj(*its);
5532 if (!its)
5533 goto out_unmap;
5534
5535 raw_spin_lock_init(&its->lock);
5536 mutex_init(&its->dev_alloc_lock);
5537 INIT_LIST_HEAD(&its->entry);
5538 INIT_LIST_HEAD(&its->its_device_list);
5539
5540 its->typer = gic_read_typer(its_base + GITS_TYPER);
5541 its->base = its_base;
5542 its->phys_base = res->start;
5543 its->get_msi_base = its_irq_get_msi_base;
5544 its->msi_domain_flags = IRQ_DOMAIN_FLAG_ISOLATED_MSI | IRQ_DOMAIN_FLAG_MSI_IMMUTABLE;
5545
5546 its->numa_node = numa_node;
5547 its->fwnode_handle = handle;
5548
5549 return its;
5550
5551 out_unmap:
5552 iounmap(its_base);
5553 return NULL;
5554 }
5555
its_node_destroy(struct its_node * its)5556 static void its_node_destroy(struct its_node *its)
5557 {
5558 iounmap(its->base);
5559 kfree(its);
5560 }
5561
its_of_probe(struct device_node * node)5562 static int __init its_of_probe(struct device_node *node)
5563 {
5564 struct device_node *np;
5565 struct resource res;
5566 int err;
5567
5568 /*
5569 * Make sure *all* the ITS are reset before we probe any, as
5570 * they may be sharing memory. If any of the ITS fails to
5571 * reset, don't even try to go any further, as this could
5572 * result in something even worse.
5573 */
5574 for (np = of_find_matching_node(node, its_device_id); np;
5575 np = of_find_matching_node(np, its_device_id)) {
5576 if (!of_device_is_available(np) ||
5577 !of_property_read_bool(np, "msi-controller") ||
5578 of_address_to_resource(np, 0, &res))
5579 continue;
5580
5581 err = its_reset_one(&res);
5582 if (err)
5583 return err;
5584 }
5585
5586 for (np = of_find_matching_node(node, its_device_id); np;
5587 np = of_find_matching_node(np, its_device_id)) {
5588 struct its_node *its;
5589
5590 if (!of_device_is_available(np))
5591 continue;
5592 if (!of_property_read_bool(np, "msi-controller")) {
5593 pr_warn("%pOF: no msi-controller property, ITS ignored\n",
5594 np);
5595 continue;
5596 }
5597
5598 if (of_address_to_resource(np, 0, &res)) {
5599 pr_warn("%pOF: no regs?\n", np);
5600 continue;
5601 }
5602
5603
5604 its = its_node_init(&res, &np->fwnode, of_node_to_nid(np));
5605 if (!its)
5606 return -ENOMEM;
5607
5608 err = its_probe_one(its);
5609 if (err) {
5610 its_node_destroy(its);
5611 return err;
5612 }
5613 }
5614 return 0;
5615 }
5616
5617 #ifdef CONFIG_ACPI
5618
5619 #define ACPI_GICV3_ITS_MEM_SIZE (SZ_128K)
5620
5621 #ifdef CONFIG_ACPI_NUMA
5622 struct its_srat_map {
5623 /* numa node id */
5624 u32 numa_node;
5625 /* GIC ITS ID */
5626 u32 its_id;
5627 };
5628
5629 static struct its_srat_map *its_srat_maps __initdata;
5630 static int its_in_srat __initdata;
5631
acpi_get_its_numa_node(u32 its_id)5632 static int __init acpi_get_its_numa_node(u32 its_id)
5633 {
5634 int i;
5635
5636 for (i = 0; i < its_in_srat; i++) {
5637 if (its_id == its_srat_maps[i].its_id)
5638 return its_srat_maps[i].numa_node;
5639 }
5640 return NUMA_NO_NODE;
5641 }
5642
gic_acpi_match_srat_its(union acpi_subtable_headers * header,const unsigned long end)5643 static int __init gic_acpi_match_srat_its(union acpi_subtable_headers *header,
5644 const unsigned long end)
5645 {
5646 return 0;
5647 }
5648
gic_acpi_parse_srat_its(union acpi_subtable_headers * header,const unsigned long end)5649 static int __init gic_acpi_parse_srat_its(union acpi_subtable_headers *header,
5650 const unsigned long end)
5651 {
5652 int node;
5653 struct acpi_srat_gic_its_affinity *its_affinity;
5654
5655 its_affinity = (struct acpi_srat_gic_its_affinity *)header;
5656 if (!its_affinity)
5657 return -EINVAL;
5658
5659 if (its_affinity->header.length < sizeof(*its_affinity)) {
5660 pr_err("SRAT: Invalid header length %d in ITS affinity\n",
5661 its_affinity->header.length);
5662 return -EINVAL;
5663 }
5664
5665 /*
5666 * Note that in theory a new proximity node could be created by this
5667 * entry as it is an SRAT resource allocation structure.
5668 * We do not currently support doing so.
5669 */
5670 node = pxm_to_node(its_affinity->proximity_domain);
5671
5672 if (node == NUMA_NO_NODE || node >= MAX_NUMNODES) {
5673 pr_err("SRAT: Invalid NUMA node %d in ITS affinity\n", node);
5674 return 0;
5675 }
5676
5677 its_srat_maps[its_in_srat].numa_node = node;
5678 its_srat_maps[its_in_srat].its_id = its_affinity->its_id;
5679 its_in_srat++;
5680 pr_info("SRAT: PXM %d -> ITS %d -> Node %d\n",
5681 its_affinity->proximity_domain, its_affinity->its_id, node);
5682
5683 return 0;
5684 }
5685
acpi_table_parse_srat_its(void)5686 static void __init acpi_table_parse_srat_its(void)
5687 {
5688 int count;
5689
5690 count = acpi_table_parse_entries(ACPI_SIG_SRAT,
5691 sizeof(struct acpi_table_srat),
5692 ACPI_SRAT_TYPE_GIC_ITS_AFFINITY,
5693 gic_acpi_match_srat_its, 0);
5694 if (count <= 0)
5695 return;
5696
5697 its_srat_maps = kmalloc_objs(struct its_srat_map, count);
5698 if (!its_srat_maps)
5699 return;
5700
5701 acpi_table_parse_entries(ACPI_SIG_SRAT,
5702 sizeof(struct acpi_table_srat),
5703 ACPI_SRAT_TYPE_GIC_ITS_AFFINITY,
5704 gic_acpi_parse_srat_its, 0);
5705 }
5706
5707 /* free the its_srat_maps after ITS probing */
acpi_its_srat_maps_free(void)5708 static void __init acpi_its_srat_maps_free(void)
5709 {
5710 kfree(its_srat_maps);
5711 }
5712 #else
acpi_table_parse_srat_its(void)5713 static void __init acpi_table_parse_srat_its(void) { }
acpi_get_its_numa_node(u32 its_id)5714 static int __init acpi_get_its_numa_node(u32 its_id) { return NUMA_NO_NODE; }
acpi_its_srat_maps_free(void)5715 static void __init acpi_its_srat_maps_free(void) { }
5716 #endif
5717
gic_acpi_parse_madt_its(union acpi_subtable_headers * header,const unsigned long end)5718 static int __init gic_acpi_parse_madt_its(union acpi_subtable_headers *header,
5719 const unsigned long end)
5720 {
5721 struct acpi_madt_generic_translator *its_entry;
5722 struct fwnode_handle *dom_handle;
5723 struct its_node *its;
5724 struct resource res;
5725 int err;
5726
5727 its_entry = (struct acpi_madt_generic_translator *)header;
5728 memset(&res, 0, sizeof(res));
5729 res.start = its_entry->base_address;
5730 res.end = its_entry->base_address + ACPI_GICV3_ITS_MEM_SIZE - 1;
5731 res.flags = IORESOURCE_MEM;
5732
5733 dom_handle = irq_domain_alloc_fwnode(&res.start);
5734 if (!dom_handle) {
5735 pr_err("ITS@%pa: Unable to allocate GICv3 ITS domain token\n",
5736 &res.start);
5737 return -ENOMEM;
5738 }
5739
5740 err = iort_register_domain_token(its_entry->translation_id, res.start,
5741 dom_handle);
5742 if (err) {
5743 pr_err("ITS@%pa: Unable to register GICv3 ITS domain token (ITS ID %d) to IORT\n",
5744 &res.start, its_entry->translation_id);
5745 goto dom_err;
5746 }
5747
5748 its = its_node_init(&res, dom_handle,
5749 acpi_get_its_numa_node(its_entry->translation_id));
5750 if (!its) {
5751 err = -ENOMEM;
5752 goto node_err;
5753 }
5754
5755 if (acpi_get_madt_revision() >= 7 &&
5756 (its_entry->flags & ACPI_MADT_ITS_NON_COHERENT))
5757 its->flags |= ITS_FLAGS_FORCE_NON_SHAREABLE;
5758
5759 err = its_probe_one(its);
5760 if (err)
5761 goto probe_err;
5762
5763 return 0;
5764
5765 probe_err:
5766 its_node_destroy(its);
5767 node_err:
5768 iort_deregister_domain_token(its_entry->translation_id);
5769 dom_err:
5770 irq_domain_free_fwnode(dom_handle);
5771 return err;
5772 }
5773
its_acpi_reset(union acpi_subtable_headers * header,const unsigned long end)5774 static int __init its_acpi_reset(union acpi_subtable_headers *header,
5775 const unsigned long end)
5776 {
5777 struct acpi_madt_generic_translator *its_entry;
5778 struct resource res;
5779
5780 its_entry = (struct acpi_madt_generic_translator *)header;
5781 res = (struct resource) {
5782 .start = its_entry->base_address,
5783 .end = its_entry->base_address + ACPI_GICV3_ITS_MEM_SIZE - 1,
5784 .flags = IORESOURCE_MEM,
5785 };
5786
5787 return its_reset_one(&res);
5788 }
5789
its_acpi_probe(void)5790 static void __init its_acpi_probe(void)
5791 {
5792 acpi_table_parse_srat_its();
5793 /*
5794 * Make sure *all* the ITS are reset before we probe any, as
5795 * they may be sharing memory. If any of the ITS fails to
5796 * reset, don't even try to go any further, as this could
5797 * result in something even worse.
5798 */
5799 if (acpi_table_parse_madt(ACPI_MADT_TYPE_GENERIC_TRANSLATOR,
5800 its_acpi_reset, 0) > 0)
5801 acpi_table_parse_madt(ACPI_MADT_TYPE_GENERIC_TRANSLATOR,
5802 gic_acpi_parse_madt_its, 0);
5803 acpi_its_srat_maps_free();
5804 }
5805 #else
its_acpi_probe(void)5806 static void __init its_acpi_probe(void) { }
5807 #endif
5808
its_lpi_memreserve_init(void)5809 int __init its_lpi_memreserve_init(void)
5810 {
5811 int state;
5812
5813 if (!efi_enabled(EFI_CONFIG_TABLES))
5814 return 0;
5815
5816 if (list_empty(&its_nodes))
5817 return 0;
5818
5819 gic_rdists->cpuhp_memreserve_state = CPUHP_INVALID;
5820 state = cpuhp_setup_state(CPUHP_AP_ONLINE_DYN,
5821 "irqchip/arm/gicv3/memreserve:online",
5822 its_cpu_memreserve_lpi,
5823 NULL);
5824 if (state < 0)
5825 return state;
5826
5827 gic_rdists->cpuhp_memreserve_state = state;
5828
5829 return 0;
5830 }
5831
its_init(struct fwnode_handle * handle,struct rdists * rdists,struct irq_domain * parent_domain,u8 irq_prio)5832 int __init its_init(struct fwnode_handle *handle, struct rdists *rdists,
5833 struct irq_domain *parent_domain, u8 irq_prio)
5834 {
5835 struct device_node *of_node;
5836 struct its_node *its;
5837 bool has_v4 = false;
5838 bool has_v4_1 = false;
5839 int err;
5840
5841 itt_pool = gen_pool_create(get_order(ITS_ITT_ALIGN), -1);
5842 if (!itt_pool)
5843 return -ENOMEM;
5844
5845 gic_rdists = rdists;
5846
5847 lpi_prop_prio = irq_prio;
5848 its_parent = parent_domain;
5849 of_node = to_of_node(handle);
5850 if (of_node)
5851 its_of_probe(of_node);
5852 else
5853 its_acpi_probe();
5854
5855 if (list_empty(&its_nodes)) {
5856 rdists->has_vlpis = false;
5857 pr_warn("ITS: No ITS available, not enabling LPIs\n");
5858 return -ENXIO;
5859 }
5860
5861 err = allocate_lpi_tables();
5862 if (err)
5863 return err;
5864
5865 list_for_each_entry(its, &its_nodes, entry) {
5866 has_v4 |= is_v4(its);
5867 has_v4_1 |= is_v4_1(its);
5868 }
5869
5870 /* Don't bother with inconsistent systems */
5871 if (WARN_ON(!has_v4_1 && rdists->has_rvpeid))
5872 rdists->has_rvpeid = false;
5873
5874 if (has_v4 & rdists->has_vlpis) {
5875 const struct irq_domain_ops *sgi_ops;
5876
5877 if (has_v4_1)
5878 sgi_ops = &its_sgi_domain_ops;
5879 else
5880 sgi_ops = NULL;
5881
5882 if (its_init_vpe_domain() ||
5883 its_init_v4(parent_domain, &its_vpe_domain_ops, sgi_ops)) {
5884 rdists->has_vlpis = false;
5885 pr_err("ITS: Disabling GICv4 support\n");
5886 }
5887 }
5888
5889 register_syscore(&its_syscore);
5890
5891 return 0;
5892 }
5893