1 /*
2 * Intel IO-APIC support for multi-Pentium hosts.
3 *
4 * Copyright (C) 1997, 1998, 1999, 2000, 2009 Ingo Molnar, Hajnalka Szabo
5 *
6 * Many thanks to Stig Venaas for trying out countless experimental
7 * patches and reporting/debugging problems patiently!
8 *
9 * (c) 1999, Multiple IO-APIC support, developed by
10 * Ken-ichi Yaku <yaku@css1.kbnes.nec.co.jp> and
11 * Hidemi Kishimoto <kisimoto@css1.kbnes.nec.co.jp>,
12 * further tested and cleaned up by Zach Brown <zab@redhat.com>
13 * and Ingo Molnar <mingo@redhat.com>
14 *
15 * Fixes
16 * Maciej W. Rozycki : Bits for genuine 82489DX APICs;
17 * thanks to Eric Gilmore
18 * and Rolf G. Tews
19 * for testing these extensively
20 * Paul Diefenbaugh : Added full ACPI support
21 *
22 * Historical information which is worth to be preserved:
23 *
24 * - SiS APIC rmw bug:
25 *
26 * We used to have a workaround for a bug in SiS chips which
27 * required to rewrite the index register for a read-modify-write
28 * operation as the chip lost the index information which was
29 * setup for the read already. We cache the data now, so that
30 * workaround has been removed.
31 */
32
33 #include <linux/mm.h>
34 #include <linux/interrupt.h>
35 #include <linux/init.h>
36 #include <linux/delay.h>
37 #include <linux/sched.h>
38 #include <linux/pci.h>
39 #include <linux/mc146818rtc.h>
40 #include <linux/compiler.h>
41 #include <linux/acpi.h>
42 #include <linux/export.h>
43 #include <linux/syscore_ops.h>
44 #include <linux/freezer.h>
45 #include <linux/kthread.h>
46 #include <linux/jiffies.h> /* time_after() */
47 #include <linux/slab.h>
48 #include <linux/bootmem.h>
49
50 #include <asm/irqdomain.h>
51 #include <asm/idle.h>
52 #include <asm/io.h>
53 #include <asm/smp.h>
54 #include <asm/cpu.h>
55 #include <asm/desc.h>
56 #include <asm/proto.h>
57 #include <asm/acpi.h>
58 #include <asm/dma.h>
59 #include <asm/timer.h>
60 #include <asm/i8259.h>
61 #include <asm/setup.h>
62 #include <asm/irq_remapping.h>
63 #include <asm/hw_irq.h>
64
65 #include <asm/apic.h>
66
67 #define for_each_ioapic(idx) \
68 for ((idx) = 0; (idx) < nr_ioapics; (idx)++)
69 #define for_each_ioapic_reverse(idx) \
70 for ((idx) = nr_ioapics - 1; (idx) >= 0; (idx)--)
71 #define for_each_pin(idx, pin) \
72 for ((pin) = 0; (pin) < ioapics[(idx)].nr_registers; (pin)++)
73 #define for_each_ioapic_pin(idx, pin) \
74 for_each_ioapic((idx)) \
75 for_each_pin((idx), (pin))
76 #define for_each_irq_pin(entry, head) \
77 list_for_each_entry(entry, &head, list)
78
79 static DEFINE_RAW_SPINLOCK(ioapic_lock);
80 static DEFINE_MUTEX(ioapic_mutex);
81 static unsigned int ioapic_dynirq_base;
82 static int ioapic_initialized;
83
84 struct irq_pin_list {
85 struct list_head list;
86 int apic, pin;
87 };
88
89 struct mp_chip_data {
90 struct list_head irq_2_pin;
91 struct IO_APIC_route_entry entry;
92 int trigger;
93 int polarity;
94 u32 count;
95 bool isa_irq;
96 };
97
98 struct mp_ioapic_gsi {
99 u32 gsi_base;
100 u32 gsi_end;
101 };
102
103 static struct ioapic {
104 /*
105 * # of IRQ routing registers
106 */
107 int nr_registers;
108 /*
109 * Saved state during suspend/resume, or while enabling intr-remap.
110 */
111 struct IO_APIC_route_entry *saved_registers;
112 /* I/O APIC config */
113 struct mpc_ioapic mp_config;
114 /* IO APIC gsi routing info */
115 struct mp_ioapic_gsi gsi_config;
116 struct ioapic_domain_cfg irqdomain_cfg;
117 struct irq_domain *irqdomain;
118 struct resource *iomem_res;
119 } ioapics[MAX_IO_APICS];
120
121 #define mpc_ioapic_ver(ioapic_idx) ioapics[ioapic_idx].mp_config.apicver
122
mpc_ioapic_id(int ioapic_idx)123 int mpc_ioapic_id(int ioapic_idx)
124 {
125 return ioapics[ioapic_idx].mp_config.apicid;
126 }
127
mpc_ioapic_addr(int ioapic_idx)128 unsigned int mpc_ioapic_addr(int ioapic_idx)
129 {
130 return ioapics[ioapic_idx].mp_config.apicaddr;
131 }
132
mp_ioapic_gsi_routing(int ioapic_idx)133 static inline struct mp_ioapic_gsi *mp_ioapic_gsi_routing(int ioapic_idx)
134 {
135 return &ioapics[ioapic_idx].gsi_config;
136 }
137
mp_ioapic_pin_count(int ioapic)138 static inline int mp_ioapic_pin_count(int ioapic)
139 {
140 struct mp_ioapic_gsi *gsi_cfg = mp_ioapic_gsi_routing(ioapic);
141
142 return gsi_cfg->gsi_end - gsi_cfg->gsi_base + 1;
143 }
144
mp_pin_to_gsi(int ioapic,int pin)145 static inline u32 mp_pin_to_gsi(int ioapic, int pin)
146 {
147 return mp_ioapic_gsi_routing(ioapic)->gsi_base + pin;
148 }
149
mp_is_legacy_irq(int irq)150 static inline bool mp_is_legacy_irq(int irq)
151 {
152 return irq >= 0 && irq < nr_legacy_irqs();
153 }
154
155 /*
156 * Initialize all legacy IRQs and all pins on the first IOAPIC
157 * if we have legacy interrupt controller. Kernel boot option "pirq="
158 * may rely on non-legacy pins on the first IOAPIC.
159 */
mp_init_irq_at_boot(int ioapic,int irq)160 static inline int mp_init_irq_at_boot(int ioapic, int irq)
161 {
162 if (!nr_legacy_irqs())
163 return 0;
164
165 return ioapic == 0 || mp_is_legacy_irq(irq);
166 }
167
mp_ioapic_irqdomain(int ioapic)168 static inline struct irq_domain *mp_ioapic_irqdomain(int ioapic)
169 {
170 return ioapics[ioapic].irqdomain;
171 }
172
173 int nr_ioapics;
174
175 /* The one past the highest gsi number used */
176 u32 gsi_top;
177
178 /* MP IRQ source entries */
179 struct mpc_intsrc mp_irqs[MAX_IRQ_SOURCES];
180
181 /* # of MP IRQ source entries */
182 int mp_irq_entries;
183
184 #ifdef CONFIG_EISA
185 int mp_bus_id_to_type[MAX_MP_BUSSES];
186 #endif
187
188 DECLARE_BITMAP(mp_bus_not_pci, MAX_MP_BUSSES);
189
190 int skip_ioapic_setup;
191
192 /**
193 * disable_ioapic_support() - disables ioapic support at runtime
194 */
disable_ioapic_support(void)195 void disable_ioapic_support(void)
196 {
197 #ifdef CONFIG_PCI
198 noioapicquirk = 1;
199 noioapicreroute = -1;
200 #endif
201 skip_ioapic_setup = 1;
202 }
203
parse_noapic(char * str)204 static int __init parse_noapic(char *str)
205 {
206 /* disable IO-APIC */
207 disable_ioapic_support();
208 return 0;
209 }
210 early_param("noapic", parse_noapic);
211
212 /* Will be called in mpparse/acpi/sfi codes for saving IRQ info */
mp_save_irq(struct mpc_intsrc * m)213 void mp_save_irq(struct mpc_intsrc *m)
214 {
215 int i;
216
217 apic_printk(APIC_VERBOSE, "Int: type %d, pol %d, trig %d, bus %02x,"
218 " IRQ %02x, APIC ID %x, APIC INT %02x\n",
219 m->irqtype, m->irqflag & 3, (m->irqflag >> 2) & 3, m->srcbus,
220 m->srcbusirq, m->dstapic, m->dstirq);
221
222 for (i = 0; i < mp_irq_entries; i++) {
223 if (!memcmp(&mp_irqs[i], m, sizeof(*m)))
224 return;
225 }
226
227 memcpy(&mp_irqs[mp_irq_entries], m, sizeof(*m));
228 if (++mp_irq_entries == MAX_IRQ_SOURCES)
229 panic("Max # of irq sources exceeded!!\n");
230 }
231
alloc_ioapic_saved_registers(int idx)232 static void alloc_ioapic_saved_registers(int idx)
233 {
234 size_t size;
235
236 if (ioapics[idx].saved_registers)
237 return;
238
239 size = sizeof(struct IO_APIC_route_entry) * ioapics[idx].nr_registers;
240 ioapics[idx].saved_registers = kzalloc(size, GFP_KERNEL);
241 if (!ioapics[idx].saved_registers)
242 pr_err("IOAPIC %d: suspend/resume impossible!\n", idx);
243 }
244
free_ioapic_saved_registers(int idx)245 static void free_ioapic_saved_registers(int idx)
246 {
247 kfree(ioapics[idx].saved_registers);
248 ioapics[idx].saved_registers = NULL;
249 }
250
arch_early_ioapic_init(void)251 int __init arch_early_ioapic_init(void)
252 {
253 int i;
254
255 if (!nr_legacy_irqs())
256 io_apic_irqs = ~0UL;
257
258 for_each_ioapic(i)
259 alloc_ioapic_saved_registers(i);
260
261 return 0;
262 }
263
264 struct io_apic {
265 unsigned int index;
266 unsigned int unused[3];
267 unsigned int data;
268 unsigned int unused2[11];
269 unsigned int eoi;
270 };
271
io_apic_base(int idx)272 static __attribute_const__ struct io_apic __iomem *io_apic_base(int idx)
273 {
274 return (void __iomem *) __fix_to_virt(FIX_IO_APIC_BASE_0 + idx)
275 + (mpc_ioapic_addr(idx) & ~PAGE_MASK);
276 }
277
io_apic_eoi(unsigned int apic,unsigned int vector)278 static inline void io_apic_eoi(unsigned int apic, unsigned int vector)
279 {
280 struct io_apic __iomem *io_apic = io_apic_base(apic);
281 writel(vector, &io_apic->eoi);
282 }
283
native_io_apic_read(unsigned int apic,unsigned int reg)284 unsigned int native_io_apic_read(unsigned int apic, unsigned int reg)
285 {
286 struct io_apic __iomem *io_apic = io_apic_base(apic);
287 writel(reg, &io_apic->index);
288 return readl(&io_apic->data);
289 }
290
io_apic_write(unsigned int apic,unsigned int reg,unsigned int value)291 static void io_apic_write(unsigned int apic, unsigned int reg,
292 unsigned int value)
293 {
294 struct io_apic __iomem *io_apic = io_apic_base(apic);
295
296 writel(reg, &io_apic->index);
297 writel(value, &io_apic->data);
298 }
299
300 union entry_union {
301 struct { u32 w1, w2; };
302 struct IO_APIC_route_entry entry;
303 };
304
__ioapic_read_entry(int apic,int pin)305 static struct IO_APIC_route_entry __ioapic_read_entry(int apic, int pin)
306 {
307 union entry_union eu;
308
309 eu.w1 = io_apic_read(apic, 0x10 + 2 * pin);
310 eu.w2 = io_apic_read(apic, 0x11 + 2 * pin);
311
312 return eu.entry;
313 }
314
ioapic_read_entry(int apic,int pin)315 static struct IO_APIC_route_entry ioapic_read_entry(int apic, int pin)
316 {
317 union entry_union eu;
318 unsigned long flags;
319
320 raw_spin_lock_irqsave(&ioapic_lock, flags);
321 eu.entry = __ioapic_read_entry(apic, pin);
322 raw_spin_unlock_irqrestore(&ioapic_lock, flags);
323
324 return eu.entry;
325 }
326
327 /*
328 * When we write a new IO APIC routing entry, we need to write the high
329 * word first! If the mask bit in the low word is clear, we will enable
330 * the interrupt, and we need to make sure the entry is fully populated
331 * before that happens.
332 */
__ioapic_write_entry(int apic,int pin,struct IO_APIC_route_entry e)333 static void __ioapic_write_entry(int apic, int pin, struct IO_APIC_route_entry e)
334 {
335 union entry_union eu = {{0, 0}};
336
337 eu.entry = e;
338 io_apic_write(apic, 0x11 + 2*pin, eu.w2);
339 io_apic_write(apic, 0x10 + 2*pin, eu.w1);
340 }
341
ioapic_write_entry(int apic,int pin,struct IO_APIC_route_entry e)342 static void ioapic_write_entry(int apic, int pin, struct IO_APIC_route_entry e)
343 {
344 unsigned long flags;
345
346 raw_spin_lock_irqsave(&ioapic_lock, flags);
347 __ioapic_write_entry(apic, pin, e);
348 raw_spin_unlock_irqrestore(&ioapic_lock, flags);
349 }
350
351 /*
352 * When we mask an IO APIC routing entry, we need to write the low
353 * word first, in order to set the mask bit before we change the
354 * high bits!
355 */
ioapic_mask_entry(int apic,int pin)356 static void ioapic_mask_entry(int apic, int pin)
357 {
358 unsigned long flags;
359 union entry_union eu = { .entry.mask = IOAPIC_MASKED };
360
361 raw_spin_lock_irqsave(&ioapic_lock, flags);
362 io_apic_write(apic, 0x10 + 2*pin, eu.w1);
363 io_apic_write(apic, 0x11 + 2*pin, eu.w2);
364 raw_spin_unlock_irqrestore(&ioapic_lock, flags);
365 }
366
367 /*
368 * The common case is 1:1 IRQ<->pin mappings. Sometimes there are
369 * shared ISA-space IRQs, so we have to support them. We are super
370 * fast in the common case, and fast for shared ISA-space IRQs.
371 */
__add_pin_to_irq_node(struct mp_chip_data * data,int node,int apic,int pin)372 static int __add_pin_to_irq_node(struct mp_chip_data *data,
373 int node, int apic, int pin)
374 {
375 struct irq_pin_list *entry;
376
377 /* don't allow duplicates */
378 for_each_irq_pin(entry, data->irq_2_pin)
379 if (entry->apic == apic && entry->pin == pin)
380 return 0;
381
382 entry = kzalloc_node(sizeof(struct irq_pin_list), GFP_ATOMIC, node);
383 if (!entry) {
384 pr_err("can not alloc irq_pin_list (%d,%d,%d)\n",
385 node, apic, pin);
386 return -ENOMEM;
387 }
388 entry->apic = apic;
389 entry->pin = pin;
390 list_add_tail(&entry->list, &data->irq_2_pin);
391
392 return 0;
393 }
394
__remove_pin_from_irq(struct mp_chip_data * data,int apic,int pin)395 static void __remove_pin_from_irq(struct mp_chip_data *data, int apic, int pin)
396 {
397 struct irq_pin_list *tmp, *entry;
398
399 list_for_each_entry_safe(entry, tmp, &data->irq_2_pin, list)
400 if (entry->apic == apic && entry->pin == pin) {
401 list_del(&entry->list);
402 kfree(entry);
403 return;
404 }
405 }
406
add_pin_to_irq_node(struct mp_chip_data * data,int node,int apic,int pin)407 static void add_pin_to_irq_node(struct mp_chip_data *data,
408 int node, int apic, int pin)
409 {
410 if (__add_pin_to_irq_node(data, node, apic, pin))
411 panic("IO-APIC: failed to add irq-pin. Can not proceed\n");
412 }
413
414 /*
415 * Reroute an IRQ to a different pin.
416 */
replace_pin_at_irq_node(struct mp_chip_data * data,int node,int oldapic,int oldpin,int newapic,int newpin)417 static void __init replace_pin_at_irq_node(struct mp_chip_data *data, int node,
418 int oldapic, int oldpin,
419 int newapic, int newpin)
420 {
421 struct irq_pin_list *entry;
422
423 for_each_irq_pin(entry, data->irq_2_pin) {
424 if (entry->apic == oldapic && entry->pin == oldpin) {
425 entry->apic = newapic;
426 entry->pin = newpin;
427 /* every one is different, right? */
428 return;
429 }
430 }
431
432 /* old apic/pin didn't exist, so just add new ones */
433 add_pin_to_irq_node(data, node, newapic, newpin);
434 }
435
io_apic_modify_irq(struct mp_chip_data * data,int mask_and,int mask_or,void (* final)(struct irq_pin_list * entry))436 static void io_apic_modify_irq(struct mp_chip_data *data,
437 int mask_and, int mask_or,
438 void (*final)(struct irq_pin_list *entry))
439 {
440 union entry_union eu;
441 struct irq_pin_list *entry;
442
443 eu.entry = data->entry;
444 eu.w1 &= mask_and;
445 eu.w1 |= mask_or;
446 data->entry = eu.entry;
447
448 for_each_irq_pin(entry, data->irq_2_pin) {
449 io_apic_write(entry->apic, 0x10 + 2 * entry->pin, eu.w1);
450 if (final)
451 final(entry);
452 }
453 }
454
io_apic_sync(struct irq_pin_list * entry)455 static void io_apic_sync(struct irq_pin_list *entry)
456 {
457 /*
458 * Synchronize the IO-APIC and the CPU by doing
459 * a dummy read from the IO-APIC
460 */
461 struct io_apic __iomem *io_apic;
462
463 io_apic = io_apic_base(entry->apic);
464 readl(&io_apic->data);
465 }
466
mask_ioapic_irq(struct irq_data * irq_data)467 static void mask_ioapic_irq(struct irq_data *irq_data)
468 {
469 struct mp_chip_data *data = irq_data->chip_data;
470 unsigned long flags;
471
472 raw_spin_lock_irqsave(&ioapic_lock, flags);
473 io_apic_modify_irq(data, ~0, IO_APIC_REDIR_MASKED, &io_apic_sync);
474 raw_spin_unlock_irqrestore(&ioapic_lock, flags);
475 }
476
__unmask_ioapic(struct mp_chip_data * data)477 static void __unmask_ioapic(struct mp_chip_data *data)
478 {
479 io_apic_modify_irq(data, ~IO_APIC_REDIR_MASKED, 0, NULL);
480 }
481
unmask_ioapic_irq(struct irq_data * irq_data)482 static void unmask_ioapic_irq(struct irq_data *irq_data)
483 {
484 struct mp_chip_data *data = irq_data->chip_data;
485 unsigned long flags;
486
487 raw_spin_lock_irqsave(&ioapic_lock, flags);
488 __unmask_ioapic(data);
489 raw_spin_unlock_irqrestore(&ioapic_lock, flags);
490 }
491
492 /*
493 * IO-APIC versions below 0x20 don't support EOI register.
494 * For the record, here is the information about various versions:
495 * 0Xh 82489DX
496 * 1Xh I/OAPIC or I/O(x)APIC which are not PCI 2.2 Compliant
497 * 2Xh I/O(x)APIC which is PCI 2.2 Compliant
498 * 30h-FFh Reserved
499 *
500 * Some of the Intel ICH Specs (ICH2 to ICH5) documents the io-apic
501 * version as 0x2. This is an error with documentation and these ICH chips
502 * use io-apic's of version 0x20.
503 *
504 * For IO-APIC's with EOI register, we use that to do an explicit EOI.
505 * Otherwise, we simulate the EOI message manually by changing the trigger
506 * mode to edge and then back to level, with RTE being masked during this.
507 */
__eoi_ioapic_pin(int apic,int pin,int vector)508 static void __eoi_ioapic_pin(int apic, int pin, int vector)
509 {
510 if (mpc_ioapic_ver(apic) >= 0x20) {
511 io_apic_eoi(apic, vector);
512 } else {
513 struct IO_APIC_route_entry entry, entry1;
514
515 entry = entry1 = __ioapic_read_entry(apic, pin);
516
517 /*
518 * Mask the entry and change the trigger mode to edge.
519 */
520 entry1.mask = IOAPIC_MASKED;
521 entry1.trigger = IOAPIC_EDGE;
522
523 __ioapic_write_entry(apic, pin, entry1);
524
525 /*
526 * Restore the previous level triggered entry.
527 */
528 __ioapic_write_entry(apic, pin, entry);
529 }
530 }
531
eoi_ioapic_pin(int vector,struct mp_chip_data * data)532 static void eoi_ioapic_pin(int vector, struct mp_chip_data *data)
533 {
534 unsigned long flags;
535 struct irq_pin_list *entry;
536
537 raw_spin_lock_irqsave(&ioapic_lock, flags);
538 for_each_irq_pin(entry, data->irq_2_pin)
539 __eoi_ioapic_pin(entry->apic, entry->pin, vector);
540 raw_spin_unlock_irqrestore(&ioapic_lock, flags);
541 }
542
clear_IO_APIC_pin(unsigned int apic,unsigned int pin)543 static void clear_IO_APIC_pin(unsigned int apic, unsigned int pin)
544 {
545 struct IO_APIC_route_entry entry;
546
547 /* Check delivery_mode to be sure we're not clearing an SMI pin */
548 entry = ioapic_read_entry(apic, pin);
549 if (entry.delivery_mode == dest_SMI)
550 return;
551
552 /*
553 * Make sure the entry is masked and re-read the contents to check
554 * if it is a level triggered pin and if the remote-IRR is set.
555 */
556 if (entry.mask == IOAPIC_UNMASKED) {
557 entry.mask = IOAPIC_MASKED;
558 ioapic_write_entry(apic, pin, entry);
559 entry = ioapic_read_entry(apic, pin);
560 }
561
562 if (entry.irr) {
563 unsigned long flags;
564
565 /*
566 * Make sure the trigger mode is set to level. Explicit EOI
567 * doesn't clear the remote-IRR if the trigger mode is not
568 * set to level.
569 */
570 if (entry.trigger == IOAPIC_EDGE) {
571 entry.trigger = IOAPIC_LEVEL;
572 ioapic_write_entry(apic, pin, entry);
573 }
574 raw_spin_lock_irqsave(&ioapic_lock, flags);
575 __eoi_ioapic_pin(apic, pin, entry.vector);
576 raw_spin_unlock_irqrestore(&ioapic_lock, flags);
577 }
578
579 /*
580 * Clear the rest of the bits in the IO-APIC RTE except for the mask
581 * bit.
582 */
583 ioapic_mask_entry(apic, pin);
584 entry = ioapic_read_entry(apic, pin);
585 if (entry.irr)
586 pr_err("Unable to reset IRR for apic: %d, pin :%d\n",
587 mpc_ioapic_id(apic), pin);
588 }
589
clear_IO_APIC(void)590 static void clear_IO_APIC (void)
591 {
592 int apic, pin;
593
594 for_each_ioapic_pin(apic, pin)
595 clear_IO_APIC_pin(apic, pin);
596 }
597
598 #ifdef CONFIG_X86_32
599 /*
600 * support for broken MP BIOSs, enables hand-redirection of PIRQ0-7 to
601 * specific CPU-side IRQs.
602 */
603
604 #define MAX_PIRQS 8
605 static int pirq_entries[MAX_PIRQS] = {
606 [0 ... MAX_PIRQS - 1] = -1
607 };
608
ioapic_pirq_setup(char * str)609 static int __init ioapic_pirq_setup(char *str)
610 {
611 int i, max;
612 int ints[MAX_PIRQS+1];
613
614 get_options(str, ARRAY_SIZE(ints), ints);
615
616 apic_printk(APIC_VERBOSE, KERN_INFO
617 "PIRQ redirection, working around broken MP-BIOS.\n");
618 max = MAX_PIRQS;
619 if (ints[0] < MAX_PIRQS)
620 max = ints[0];
621
622 for (i = 0; i < max; i++) {
623 apic_printk(APIC_VERBOSE, KERN_DEBUG
624 "... PIRQ%d -> IRQ %d\n", i, ints[i+1]);
625 /*
626 * PIRQs are mapped upside down, usually.
627 */
628 pirq_entries[MAX_PIRQS-i-1] = ints[i+1];
629 }
630 return 1;
631 }
632
633 __setup("pirq=", ioapic_pirq_setup);
634 #endif /* CONFIG_X86_32 */
635
636 /*
637 * Saves all the IO-APIC RTE's
638 */
save_ioapic_entries(void)639 int save_ioapic_entries(void)
640 {
641 int apic, pin;
642 int err = 0;
643
644 for_each_ioapic(apic) {
645 if (!ioapics[apic].saved_registers) {
646 err = -ENOMEM;
647 continue;
648 }
649
650 for_each_pin(apic, pin)
651 ioapics[apic].saved_registers[pin] =
652 ioapic_read_entry(apic, pin);
653 }
654
655 return err;
656 }
657
658 /*
659 * Mask all IO APIC entries.
660 */
mask_ioapic_entries(void)661 void mask_ioapic_entries(void)
662 {
663 int apic, pin;
664
665 for_each_ioapic(apic) {
666 if (!ioapics[apic].saved_registers)
667 continue;
668
669 for_each_pin(apic, pin) {
670 struct IO_APIC_route_entry entry;
671
672 entry = ioapics[apic].saved_registers[pin];
673 if (entry.mask == IOAPIC_UNMASKED) {
674 entry.mask = IOAPIC_MASKED;
675 ioapic_write_entry(apic, pin, entry);
676 }
677 }
678 }
679 }
680
681 /*
682 * Restore IO APIC entries which was saved in the ioapic structure.
683 */
restore_ioapic_entries(void)684 int restore_ioapic_entries(void)
685 {
686 int apic, pin;
687
688 for_each_ioapic(apic) {
689 if (!ioapics[apic].saved_registers)
690 continue;
691
692 for_each_pin(apic, pin)
693 ioapic_write_entry(apic, pin,
694 ioapics[apic].saved_registers[pin]);
695 }
696 return 0;
697 }
698
699 /*
700 * Find the IRQ entry number of a certain pin.
701 */
find_irq_entry(int ioapic_idx,int pin,int type)702 static int find_irq_entry(int ioapic_idx, int pin, int type)
703 {
704 int i;
705
706 for (i = 0; i < mp_irq_entries; i++)
707 if (mp_irqs[i].irqtype == type &&
708 (mp_irqs[i].dstapic == mpc_ioapic_id(ioapic_idx) ||
709 mp_irqs[i].dstapic == MP_APIC_ALL) &&
710 mp_irqs[i].dstirq == pin)
711 return i;
712
713 return -1;
714 }
715
716 /*
717 * Find the pin to which IRQ[irq] (ISA) is connected
718 */
find_isa_irq_pin(int irq,int type)719 static int __init find_isa_irq_pin(int irq, int type)
720 {
721 int i;
722
723 for (i = 0; i < mp_irq_entries; i++) {
724 int lbus = mp_irqs[i].srcbus;
725
726 if (test_bit(lbus, mp_bus_not_pci) &&
727 (mp_irqs[i].irqtype == type) &&
728 (mp_irqs[i].srcbusirq == irq))
729
730 return mp_irqs[i].dstirq;
731 }
732 return -1;
733 }
734
find_isa_irq_apic(int irq,int type)735 static int __init find_isa_irq_apic(int irq, int type)
736 {
737 int i;
738
739 for (i = 0; i < mp_irq_entries; i++) {
740 int lbus = mp_irqs[i].srcbus;
741
742 if (test_bit(lbus, mp_bus_not_pci) &&
743 (mp_irqs[i].irqtype == type) &&
744 (mp_irqs[i].srcbusirq == irq))
745 break;
746 }
747
748 if (i < mp_irq_entries) {
749 int ioapic_idx;
750
751 for_each_ioapic(ioapic_idx)
752 if (mpc_ioapic_id(ioapic_idx) == mp_irqs[i].dstapic)
753 return ioapic_idx;
754 }
755
756 return -1;
757 }
758
759 #ifdef CONFIG_EISA
760 /*
761 * EISA Edge/Level control register, ELCR
762 */
EISA_ELCR(unsigned int irq)763 static int EISA_ELCR(unsigned int irq)
764 {
765 if (irq < nr_legacy_irqs()) {
766 unsigned int port = 0x4d0 + (irq >> 3);
767 return (inb(port) >> (irq & 7)) & 1;
768 }
769 apic_printk(APIC_VERBOSE, KERN_INFO
770 "Broken MPtable reports ISA irq %d\n", irq);
771 return 0;
772 }
773
774 #endif
775
776 /* ISA interrupts are always active high edge triggered,
777 * when listed as conforming in the MP table. */
778
779 #define default_ISA_trigger(idx) (IOAPIC_EDGE)
780 #define default_ISA_polarity(idx) (IOAPIC_POL_HIGH)
781
782 /* EISA interrupts are always polarity zero and can be edge or level
783 * trigger depending on the ELCR value. If an interrupt is listed as
784 * EISA conforming in the MP table, that means its trigger type must
785 * be read in from the ELCR */
786
787 #define default_EISA_trigger(idx) (EISA_ELCR(mp_irqs[idx].srcbusirq))
788 #define default_EISA_polarity(idx) default_ISA_polarity(idx)
789
790 /* PCI interrupts are always active low level triggered,
791 * when listed as conforming in the MP table. */
792
793 #define default_PCI_trigger(idx) (IOAPIC_LEVEL)
794 #define default_PCI_polarity(idx) (IOAPIC_POL_LOW)
795
irq_polarity(int idx)796 static int irq_polarity(int idx)
797 {
798 int bus = mp_irqs[idx].srcbus;
799
800 /*
801 * Determine IRQ line polarity (high active or low active):
802 */
803 switch (mp_irqs[idx].irqflag & 0x03) {
804 case 0:
805 /* conforms to spec, ie. bus-type dependent polarity */
806 if (test_bit(bus, mp_bus_not_pci))
807 return default_ISA_polarity(idx);
808 else
809 return default_PCI_polarity(idx);
810 case 1:
811 return IOAPIC_POL_HIGH;
812 case 2:
813 pr_warn("IOAPIC: Invalid polarity: 2, defaulting to low\n");
814 case 3:
815 default: /* Pointless default required due to do gcc stupidity */
816 return IOAPIC_POL_LOW;
817 }
818 }
819
820 #ifdef CONFIG_EISA
eisa_irq_trigger(int idx,int bus,int trigger)821 static int eisa_irq_trigger(int idx, int bus, int trigger)
822 {
823 switch (mp_bus_id_to_type[bus]) {
824 case MP_BUS_PCI:
825 case MP_BUS_ISA:
826 return trigger;
827 case MP_BUS_EISA:
828 return default_EISA_trigger(idx);
829 }
830 pr_warn("IOAPIC: Invalid srcbus: %d defaulting to level\n", bus);
831 return IOAPIC_LEVEL;
832 }
833 #else
eisa_irq_trigger(int idx,int bus,int trigger)834 static inline int eisa_irq_trigger(int idx, int bus, int trigger)
835 {
836 return trigger;
837 }
838 #endif
839
irq_trigger(int idx)840 static int irq_trigger(int idx)
841 {
842 int bus = mp_irqs[idx].srcbus;
843 int trigger;
844
845 /*
846 * Determine IRQ trigger mode (edge or level sensitive):
847 */
848 switch ((mp_irqs[idx].irqflag >> 2) & 0x03) {
849 case 0:
850 /* conforms to spec, ie. bus-type dependent trigger mode */
851 if (test_bit(bus, mp_bus_not_pci))
852 trigger = default_ISA_trigger(idx);
853 else
854 trigger = default_PCI_trigger(idx);
855 /* Take EISA into account */
856 return eisa_irq_trigger(idx, bus, trigger);
857 case 1:
858 return IOAPIC_EDGE;
859 case 2:
860 pr_warn("IOAPIC: Invalid trigger mode 2 defaulting to level\n");
861 case 3:
862 default: /* Pointless default required due to do gcc stupidity */
863 return IOAPIC_LEVEL;
864 }
865 }
866
ioapic_set_alloc_attr(struct irq_alloc_info * info,int node,int trigger,int polarity)867 void ioapic_set_alloc_attr(struct irq_alloc_info *info, int node,
868 int trigger, int polarity)
869 {
870 init_irq_alloc_info(info, NULL);
871 info->type = X86_IRQ_ALLOC_TYPE_IOAPIC;
872 info->ioapic_node = node;
873 info->ioapic_trigger = trigger;
874 info->ioapic_polarity = polarity;
875 info->ioapic_valid = 1;
876 }
877
878 #ifndef CONFIG_ACPI
879 int acpi_get_override_irq(u32 gsi, int *trigger, int *polarity);
880 #endif
881
ioapic_copy_alloc_attr(struct irq_alloc_info * dst,struct irq_alloc_info * src,u32 gsi,int ioapic_idx,int pin)882 static void ioapic_copy_alloc_attr(struct irq_alloc_info *dst,
883 struct irq_alloc_info *src,
884 u32 gsi, int ioapic_idx, int pin)
885 {
886 int trigger, polarity;
887
888 copy_irq_alloc_info(dst, src);
889 dst->type = X86_IRQ_ALLOC_TYPE_IOAPIC;
890 dst->ioapic_id = mpc_ioapic_id(ioapic_idx);
891 dst->ioapic_pin = pin;
892 dst->ioapic_valid = 1;
893 if (src && src->ioapic_valid) {
894 dst->ioapic_node = src->ioapic_node;
895 dst->ioapic_trigger = src->ioapic_trigger;
896 dst->ioapic_polarity = src->ioapic_polarity;
897 } else {
898 dst->ioapic_node = NUMA_NO_NODE;
899 if (acpi_get_override_irq(gsi, &trigger, &polarity) >= 0) {
900 dst->ioapic_trigger = trigger;
901 dst->ioapic_polarity = polarity;
902 } else {
903 /*
904 * PCI interrupts are always active low level
905 * triggered.
906 */
907 dst->ioapic_trigger = IOAPIC_LEVEL;
908 dst->ioapic_polarity = IOAPIC_POL_LOW;
909 }
910 }
911 }
912
ioapic_alloc_attr_node(struct irq_alloc_info * info)913 static int ioapic_alloc_attr_node(struct irq_alloc_info *info)
914 {
915 return (info && info->ioapic_valid) ? info->ioapic_node : NUMA_NO_NODE;
916 }
917
mp_register_handler(unsigned int irq,unsigned long trigger)918 static void mp_register_handler(unsigned int irq, unsigned long trigger)
919 {
920 irq_flow_handler_t hdl;
921 bool fasteoi;
922
923 if (trigger) {
924 irq_set_status_flags(irq, IRQ_LEVEL);
925 fasteoi = true;
926 } else {
927 irq_clear_status_flags(irq, IRQ_LEVEL);
928 fasteoi = false;
929 }
930
931 hdl = fasteoi ? handle_fasteoi_irq : handle_edge_irq;
932 __irq_set_handler(irq, hdl, 0, fasteoi ? "fasteoi" : "edge");
933 }
934
mp_check_pin_attr(int irq,struct irq_alloc_info * info)935 static bool mp_check_pin_attr(int irq, struct irq_alloc_info *info)
936 {
937 struct mp_chip_data *data = irq_get_chip_data(irq);
938
939 /*
940 * setup_IO_APIC_irqs() programs all legacy IRQs with default trigger
941 * and polarity attirbutes. So allow the first user to reprogram the
942 * pin with real trigger and polarity attributes.
943 */
944 if (irq < nr_legacy_irqs() && data->count == 1) {
945 if (info->ioapic_trigger != data->trigger)
946 mp_register_handler(irq, info->ioapic_trigger);
947 data->entry.trigger = data->trigger = info->ioapic_trigger;
948 data->entry.polarity = data->polarity = info->ioapic_polarity;
949 }
950
951 return data->trigger == info->ioapic_trigger &&
952 data->polarity == info->ioapic_polarity;
953 }
954
alloc_irq_from_domain(struct irq_domain * domain,int ioapic,u32 gsi,struct irq_alloc_info * info)955 static int alloc_irq_from_domain(struct irq_domain *domain, int ioapic, u32 gsi,
956 struct irq_alloc_info *info)
957 {
958 bool legacy = false;
959 int irq = -1;
960 int type = ioapics[ioapic].irqdomain_cfg.type;
961
962 switch (type) {
963 case IOAPIC_DOMAIN_LEGACY:
964 /*
965 * Dynamically allocate IRQ number for non-ISA IRQs in the first
966 * 16 GSIs on some weird platforms.
967 */
968 if (!ioapic_initialized || gsi >= nr_legacy_irqs())
969 irq = gsi;
970 legacy = mp_is_legacy_irq(irq);
971 break;
972 case IOAPIC_DOMAIN_STRICT:
973 irq = gsi;
974 break;
975 case IOAPIC_DOMAIN_DYNAMIC:
976 break;
977 default:
978 WARN(1, "ioapic: unknown irqdomain type %d\n", type);
979 return -1;
980 }
981
982 return __irq_domain_alloc_irqs(domain, irq, 1,
983 ioapic_alloc_attr_node(info),
984 info, legacy, NULL);
985 }
986
987 /*
988 * Need special handling for ISA IRQs because there may be multiple IOAPIC pins
989 * sharing the same ISA IRQ number and irqdomain only supports 1:1 mapping
990 * between IOAPIC pin and IRQ number. A typical IOAPIC has 24 pins, pin 0-15 are
991 * used for legacy IRQs and pin 16-23 are used for PCI IRQs (PIRQ A-H).
992 * When ACPI is disabled, only legacy IRQ numbers (IRQ0-15) are available, and
993 * some BIOSes may use MP Interrupt Source records to override IRQ numbers for
994 * PIRQs instead of reprogramming the interrupt routing logic. Thus there may be
995 * multiple pins sharing the same legacy IRQ number when ACPI is disabled.
996 */
alloc_isa_irq_from_domain(struct irq_domain * domain,int irq,int ioapic,int pin,struct irq_alloc_info * info)997 static int alloc_isa_irq_from_domain(struct irq_domain *domain,
998 int irq, int ioapic, int pin,
999 struct irq_alloc_info *info)
1000 {
1001 struct mp_chip_data *data;
1002 struct irq_data *irq_data = irq_get_irq_data(irq);
1003 int node = ioapic_alloc_attr_node(info);
1004
1005 /*
1006 * Legacy ISA IRQ has already been allocated, just add pin to
1007 * the pin list assoicated with this IRQ and program the IOAPIC
1008 * entry. The IOAPIC entry
1009 */
1010 if (irq_data && irq_data->parent_data) {
1011 if (!mp_check_pin_attr(irq, info))
1012 return -EBUSY;
1013 if (__add_pin_to_irq_node(irq_data->chip_data, node, ioapic,
1014 info->ioapic_pin))
1015 return -ENOMEM;
1016 } else {
1017 irq = __irq_domain_alloc_irqs(domain, irq, 1, node, info, true,
1018 NULL);
1019 if (irq >= 0) {
1020 irq_data = irq_domain_get_irq_data(domain, irq);
1021 data = irq_data->chip_data;
1022 data->isa_irq = true;
1023 }
1024 }
1025
1026 return irq;
1027 }
1028
mp_map_pin_to_irq(u32 gsi,int idx,int ioapic,int pin,unsigned int flags,struct irq_alloc_info * info)1029 static int mp_map_pin_to_irq(u32 gsi, int idx, int ioapic, int pin,
1030 unsigned int flags, struct irq_alloc_info *info)
1031 {
1032 int irq;
1033 bool legacy = false;
1034 struct irq_alloc_info tmp;
1035 struct mp_chip_data *data;
1036 struct irq_domain *domain = mp_ioapic_irqdomain(ioapic);
1037
1038 if (!domain)
1039 return -ENOSYS;
1040
1041 if (idx >= 0 && test_bit(mp_irqs[idx].srcbus, mp_bus_not_pci)) {
1042 irq = mp_irqs[idx].srcbusirq;
1043 legacy = mp_is_legacy_irq(irq);
1044 }
1045
1046 mutex_lock(&ioapic_mutex);
1047 if (!(flags & IOAPIC_MAP_ALLOC)) {
1048 if (!legacy) {
1049 irq = irq_find_mapping(domain, pin);
1050 if (irq == 0)
1051 irq = -ENOENT;
1052 }
1053 } else {
1054 ioapic_copy_alloc_attr(&tmp, info, gsi, ioapic, pin);
1055 if (legacy)
1056 irq = alloc_isa_irq_from_domain(domain, irq,
1057 ioapic, pin, &tmp);
1058 else if ((irq = irq_find_mapping(domain, pin)) == 0)
1059 irq = alloc_irq_from_domain(domain, ioapic, gsi, &tmp);
1060 else if (!mp_check_pin_attr(irq, &tmp))
1061 irq = -EBUSY;
1062 if (irq >= 0) {
1063 data = irq_get_chip_data(irq);
1064 data->count++;
1065 }
1066 }
1067 mutex_unlock(&ioapic_mutex);
1068
1069 return irq;
1070 }
1071
pin_2_irq(int idx,int ioapic,int pin,unsigned int flags)1072 static int pin_2_irq(int idx, int ioapic, int pin, unsigned int flags)
1073 {
1074 u32 gsi = mp_pin_to_gsi(ioapic, pin);
1075
1076 /*
1077 * Debugging check, we are in big trouble if this message pops up!
1078 */
1079 if (mp_irqs[idx].dstirq != pin)
1080 pr_err("broken BIOS or MPTABLE parser, ayiee!!\n");
1081
1082 #ifdef CONFIG_X86_32
1083 /*
1084 * PCI IRQ command line redirection. Yes, limits are hardcoded.
1085 */
1086 if ((pin >= 16) && (pin <= 23)) {
1087 if (pirq_entries[pin-16] != -1) {
1088 if (!pirq_entries[pin-16]) {
1089 apic_printk(APIC_VERBOSE, KERN_DEBUG
1090 "disabling PIRQ%d\n", pin-16);
1091 } else {
1092 int irq = pirq_entries[pin-16];
1093 apic_printk(APIC_VERBOSE, KERN_DEBUG
1094 "using PIRQ%d -> IRQ %d\n",
1095 pin-16, irq);
1096 return irq;
1097 }
1098 }
1099 }
1100 #endif
1101
1102 return mp_map_pin_to_irq(gsi, idx, ioapic, pin, flags, NULL);
1103 }
1104
mp_map_gsi_to_irq(u32 gsi,unsigned int flags,struct irq_alloc_info * info)1105 int mp_map_gsi_to_irq(u32 gsi, unsigned int flags, struct irq_alloc_info *info)
1106 {
1107 int ioapic, pin, idx;
1108
1109 ioapic = mp_find_ioapic(gsi);
1110 if (ioapic < 0)
1111 return -1;
1112
1113 pin = mp_find_ioapic_pin(ioapic, gsi);
1114 idx = find_irq_entry(ioapic, pin, mp_INT);
1115 if ((flags & IOAPIC_MAP_CHECK) && idx < 0)
1116 return -1;
1117
1118 return mp_map_pin_to_irq(gsi, idx, ioapic, pin, flags, info);
1119 }
1120
mp_unmap_irq(int irq)1121 void mp_unmap_irq(int irq)
1122 {
1123 struct irq_data *irq_data = irq_get_irq_data(irq);
1124 struct mp_chip_data *data;
1125
1126 if (!irq_data || !irq_data->domain)
1127 return;
1128
1129 data = irq_data->chip_data;
1130 if (!data || data->isa_irq)
1131 return;
1132
1133 mutex_lock(&ioapic_mutex);
1134 if (--data->count == 0)
1135 irq_domain_free_irqs(irq, 1);
1136 mutex_unlock(&ioapic_mutex);
1137 }
1138
1139 /*
1140 * Find a specific PCI IRQ entry.
1141 * Not an __init, possibly needed by modules
1142 */
IO_APIC_get_PCI_irq_vector(int bus,int slot,int pin)1143 int IO_APIC_get_PCI_irq_vector(int bus, int slot, int pin)
1144 {
1145 int irq, i, best_ioapic = -1, best_idx = -1;
1146
1147 apic_printk(APIC_DEBUG,
1148 "querying PCI -> IRQ mapping bus:%d, slot:%d, pin:%d.\n",
1149 bus, slot, pin);
1150 if (test_bit(bus, mp_bus_not_pci)) {
1151 apic_printk(APIC_VERBOSE,
1152 "PCI BIOS passed nonexistent PCI bus %d!\n", bus);
1153 return -1;
1154 }
1155
1156 for (i = 0; i < mp_irq_entries; i++) {
1157 int lbus = mp_irqs[i].srcbus;
1158 int ioapic_idx, found = 0;
1159
1160 if (bus != lbus || mp_irqs[i].irqtype != mp_INT ||
1161 slot != ((mp_irqs[i].srcbusirq >> 2) & 0x1f))
1162 continue;
1163
1164 for_each_ioapic(ioapic_idx)
1165 if (mpc_ioapic_id(ioapic_idx) == mp_irqs[i].dstapic ||
1166 mp_irqs[i].dstapic == MP_APIC_ALL) {
1167 found = 1;
1168 break;
1169 }
1170 if (!found)
1171 continue;
1172
1173 /* Skip ISA IRQs */
1174 irq = pin_2_irq(i, ioapic_idx, mp_irqs[i].dstirq, 0);
1175 if (irq > 0 && !IO_APIC_IRQ(irq))
1176 continue;
1177
1178 if (pin == (mp_irqs[i].srcbusirq & 3)) {
1179 best_idx = i;
1180 best_ioapic = ioapic_idx;
1181 goto out;
1182 }
1183
1184 /*
1185 * Use the first all-but-pin matching entry as a
1186 * best-guess fuzzy result for broken mptables.
1187 */
1188 if (best_idx < 0) {
1189 best_idx = i;
1190 best_ioapic = ioapic_idx;
1191 }
1192 }
1193 if (best_idx < 0)
1194 return -1;
1195
1196 out:
1197 return pin_2_irq(best_idx, best_ioapic, mp_irqs[best_idx].dstirq,
1198 IOAPIC_MAP_ALLOC);
1199 }
1200 EXPORT_SYMBOL(IO_APIC_get_PCI_irq_vector);
1201
1202 static struct irq_chip ioapic_chip, ioapic_ir_chip;
1203
1204 #ifdef CONFIG_X86_32
IO_APIC_irq_trigger(int irq)1205 static inline int IO_APIC_irq_trigger(int irq)
1206 {
1207 int apic, idx, pin;
1208
1209 for_each_ioapic_pin(apic, pin) {
1210 idx = find_irq_entry(apic, pin, mp_INT);
1211 if ((idx != -1) && (irq == pin_2_irq(idx, apic, pin, 0)))
1212 return irq_trigger(idx);
1213 }
1214 /*
1215 * nonexistent IRQs are edge default
1216 */
1217 return 0;
1218 }
1219 #else
IO_APIC_irq_trigger(int irq)1220 static inline int IO_APIC_irq_trigger(int irq)
1221 {
1222 return 1;
1223 }
1224 #endif
1225
setup_IO_APIC_irqs(void)1226 static void __init setup_IO_APIC_irqs(void)
1227 {
1228 unsigned int ioapic, pin;
1229 int idx;
1230
1231 apic_printk(APIC_VERBOSE, KERN_DEBUG "init IO_APIC IRQs\n");
1232
1233 for_each_ioapic_pin(ioapic, pin) {
1234 idx = find_irq_entry(ioapic, pin, mp_INT);
1235 if (idx < 0)
1236 apic_printk(APIC_VERBOSE,
1237 KERN_DEBUG " apic %d pin %d not connected\n",
1238 mpc_ioapic_id(ioapic), pin);
1239 else
1240 pin_2_irq(idx, ioapic, pin,
1241 ioapic ? 0 : IOAPIC_MAP_ALLOC);
1242 }
1243 }
1244
ioapic_zap_locks(void)1245 void ioapic_zap_locks(void)
1246 {
1247 raw_spin_lock_init(&ioapic_lock);
1248 }
1249
io_apic_print_entries(unsigned int apic,unsigned int nr_entries)1250 static void io_apic_print_entries(unsigned int apic, unsigned int nr_entries)
1251 {
1252 int i;
1253 char buf[256];
1254 struct IO_APIC_route_entry entry;
1255 struct IR_IO_APIC_route_entry *ir_entry = (void *)&entry;
1256
1257 printk(KERN_DEBUG "IOAPIC %d:\n", apic);
1258 for (i = 0; i <= nr_entries; i++) {
1259 entry = ioapic_read_entry(apic, i);
1260 snprintf(buf, sizeof(buf),
1261 " pin%02x, %s, %s, %s, V(%02X), IRR(%1d), S(%1d)",
1262 i,
1263 entry.mask == IOAPIC_MASKED ? "disabled" : "enabled ",
1264 entry.trigger == IOAPIC_LEVEL ? "level" : "edge ",
1265 entry.polarity == IOAPIC_POL_LOW ? "low " : "high",
1266 entry.vector, entry.irr, entry.delivery_status);
1267 if (ir_entry->format)
1268 printk(KERN_DEBUG "%s, remapped, I(%04X), Z(%X)\n",
1269 buf, (ir_entry->index << 15) | ir_entry->index,
1270 ir_entry->zero);
1271 else
1272 printk(KERN_DEBUG "%s, %s, D(%02X), M(%1d)\n",
1273 buf,
1274 entry.dest_mode == IOAPIC_DEST_MODE_LOGICAL ?
1275 "logical " : "physical",
1276 entry.dest, entry.delivery_mode);
1277 }
1278 }
1279
print_IO_APIC(int ioapic_idx)1280 static void __init print_IO_APIC(int ioapic_idx)
1281 {
1282 union IO_APIC_reg_00 reg_00;
1283 union IO_APIC_reg_01 reg_01;
1284 union IO_APIC_reg_02 reg_02;
1285 union IO_APIC_reg_03 reg_03;
1286 unsigned long flags;
1287
1288 raw_spin_lock_irqsave(&ioapic_lock, flags);
1289 reg_00.raw = io_apic_read(ioapic_idx, 0);
1290 reg_01.raw = io_apic_read(ioapic_idx, 1);
1291 if (reg_01.bits.version >= 0x10)
1292 reg_02.raw = io_apic_read(ioapic_idx, 2);
1293 if (reg_01.bits.version >= 0x20)
1294 reg_03.raw = io_apic_read(ioapic_idx, 3);
1295 raw_spin_unlock_irqrestore(&ioapic_lock, flags);
1296
1297 printk(KERN_DEBUG "IO APIC #%d......\n", mpc_ioapic_id(ioapic_idx));
1298 printk(KERN_DEBUG ".... register #00: %08X\n", reg_00.raw);
1299 printk(KERN_DEBUG "....... : physical APIC id: %02X\n", reg_00.bits.ID);
1300 printk(KERN_DEBUG "....... : Delivery Type: %X\n", reg_00.bits.delivery_type);
1301 printk(KERN_DEBUG "....... : LTS : %X\n", reg_00.bits.LTS);
1302
1303 printk(KERN_DEBUG ".... register #01: %08X\n", *(int *)®_01);
1304 printk(KERN_DEBUG "....... : max redirection entries: %02X\n",
1305 reg_01.bits.entries);
1306
1307 printk(KERN_DEBUG "....... : PRQ implemented: %X\n", reg_01.bits.PRQ);
1308 printk(KERN_DEBUG "....... : IO APIC version: %02X\n",
1309 reg_01.bits.version);
1310
1311 /*
1312 * Some Intel chipsets with IO APIC VERSION of 0x1? don't have reg_02,
1313 * but the value of reg_02 is read as the previous read register
1314 * value, so ignore it if reg_02 == reg_01.
1315 */
1316 if (reg_01.bits.version >= 0x10 && reg_02.raw != reg_01.raw) {
1317 printk(KERN_DEBUG ".... register #02: %08X\n", reg_02.raw);
1318 printk(KERN_DEBUG "....... : arbitration: %02X\n", reg_02.bits.arbitration);
1319 }
1320
1321 /*
1322 * Some Intel chipsets with IO APIC VERSION of 0x2? don't have reg_02
1323 * or reg_03, but the value of reg_0[23] is read as the previous read
1324 * register value, so ignore it if reg_03 == reg_0[12].
1325 */
1326 if (reg_01.bits.version >= 0x20 && reg_03.raw != reg_02.raw &&
1327 reg_03.raw != reg_01.raw) {
1328 printk(KERN_DEBUG ".... register #03: %08X\n", reg_03.raw);
1329 printk(KERN_DEBUG "....... : Boot DT : %X\n", reg_03.bits.boot_DT);
1330 }
1331
1332 printk(KERN_DEBUG ".... IRQ redirection table:\n");
1333 io_apic_print_entries(ioapic_idx, reg_01.bits.entries);
1334 }
1335
print_IO_APICs(void)1336 void __init print_IO_APICs(void)
1337 {
1338 int ioapic_idx;
1339 unsigned int irq;
1340
1341 printk(KERN_DEBUG "number of MP IRQ sources: %d.\n", mp_irq_entries);
1342 for_each_ioapic(ioapic_idx)
1343 printk(KERN_DEBUG "number of IO-APIC #%d registers: %d.\n",
1344 mpc_ioapic_id(ioapic_idx),
1345 ioapics[ioapic_idx].nr_registers);
1346
1347 /*
1348 * We are a bit conservative about what we expect. We have to
1349 * know about every hardware change ASAP.
1350 */
1351 printk(KERN_INFO "testing the IO APIC.......................\n");
1352
1353 for_each_ioapic(ioapic_idx)
1354 print_IO_APIC(ioapic_idx);
1355
1356 printk(KERN_DEBUG "IRQ to pin mappings:\n");
1357 for_each_active_irq(irq) {
1358 struct irq_pin_list *entry;
1359 struct irq_chip *chip;
1360 struct mp_chip_data *data;
1361
1362 chip = irq_get_chip(irq);
1363 if (chip != &ioapic_chip && chip != &ioapic_ir_chip)
1364 continue;
1365 data = irq_get_chip_data(irq);
1366 if (!data)
1367 continue;
1368 if (list_empty(&data->irq_2_pin))
1369 continue;
1370
1371 printk(KERN_DEBUG "IRQ%d ", irq);
1372 for_each_irq_pin(entry, data->irq_2_pin)
1373 pr_cont("-> %d:%d", entry->apic, entry->pin);
1374 pr_cont("\n");
1375 }
1376
1377 printk(KERN_INFO ".................................... done.\n");
1378 }
1379
1380 /* Where if anywhere is the i8259 connect in external int mode */
1381 static struct { int pin, apic; } ioapic_i8259 = { -1, -1 };
1382
enable_IO_APIC(void)1383 void __init enable_IO_APIC(void)
1384 {
1385 int i8259_apic, i8259_pin;
1386 int apic, pin;
1387
1388 if (skip_ioapic_setup)
1389 nr_ioapics = 0;
1390
1391 if (!nr_legacy_irqs() || !nr_ioapics)
1392 return;
1393
1394 for_each_ioapic_pin(apic, pin) {
1395 /* See if any of the pins is in ExtINT mode */
1396 struct IO_APIC_route_entry entry = ioapic_read_entry(apic, pin);
1397
1398 /* If the interrupt line is enabled and in ExtInt mode
1399 * I have found the pin where the i8259 is connected.
1400 */
1401 if ((entry.mask == 0) && (entry.delivery_mode == dest_ExtINT)) {
1402 ioapic_i8259.apic = apic;
1403 ioapic_i8259.pin = pin;
1404 goto found_i8259;
1405 }
1406 }
1407 found_i8259:
1408 /* Look to see what if the MP table has reported the ExtINT */
1409 /* If we could not find the appropriate pin by looking at the ioapic
1410 * the i8259 probably is not connected the ioapic but give the
1411 * mptable a chance anyway.
1412 */
1413 i8259_pin = find_isa_irq_pin(0, mp_ExtINT);
1414 i8259_apic = find_isa_irq_apic(0, mp_ExtINT);
1415 /* Trust the MP table if nothing is setup in the hardware */
1416 if ((ioapic_i8259.pin == -1) && (i8259_pin >= 0)) {
1417 printk(KERN_WARNING "ExtINT not setup in hardware but reported by MP table\n");
1418 ioapic_i8259.pin = i8259_pin;
1419 ioapic_i8259.apic = i8259_apic;
1420 }
1421 /* Complain if the MP table and the hardware disagree */
1422 if (((ioapic_i8259.apic != i8259_apic) || (ioapic_i8259.pin != i8259_pin)) &&
1423 (i8259_pin >= 0) && (ioapic_i8259.pin >= 0))
1424 {
1425 printk(KERN_WARNING "ExtINT in hardware and MP table differ\n");
1426 }
1427
1428 /*
1429 * Do not trust the IO-APIC being empty at bootup
1430 */
1431 clear_IO_APIC();
1432 }
1433
native_disable_io_apic(void)1434 void native_disable_io_apic(void)
1435 {
1436 /*
1437 * If the i8259 is routed through an IOAPIC
1438 * Put that IOAPIC in virtual wire mode
1439 * so legacy interrupts can be delivered.
1440 */
1441 if (ioapic_i8259.pin != -1) {
1442 struct IO_APIC_route_entry entry;
1443
1444 memset(&entry, 0, sizeof(entry));
1445 entry.mask = IOAPIC_UNMASKED;
1446 entry.trigger = IOAPIC_EDGE;
1447 entry.polarity = IOAPIC_POL_HIGH;
1448 entry.dest_mode = IOAPIC_DEST_MODE_PHYSICAL;
1449 entry.delivery_mode = dest_ExtINT;
1450 entry.dest = read_apic_id();
1451
1452 /*
1453 * Add it to the IO-APIC irq-routing table:
1454 */
1455 ioapic_write_entry(ioapic_i8259.apic, ioapic_i8259.pin, entry);
1456 }
1457
1458 if (boot_cpu_has(X86_FEATURE_APIC) || apic_from_smp_config())
1459 disconnect_bsp_APIC(ioapic_i8259.pin != -1);
1460 }
1461
1462 /*
1463 * Not an __init, needed by the reboot code
1464 */
disable_IO_APIC(void)1465 void disable_IO_APIC(void)
1466 {
1467 /*
1468 * Clear the IO-APIC before rebooting:
1469 */
1470 clear_IO_APIC();
1471
1472 if (!nr_legacy_irqs())
1473 return;
1474
1475 x86_io_apic_ops.disable();
1476 }
1477
1478 #ifdef CONFIG_X86_32
1479 /*
1480 * function to set the IO-APIC physical IDs based on the
1481 * values stored in the MPC table.
1482 *
1483 * by Matt Domsch <Matt_Domsch@dell.com> Tue Dec 21 12:25:05 CST 1999
1484 */
setup_ioapic_ids_from_mpc_nocheck(void)1485 void __init setup_ioapic_ids_from_mpc_nocheck(void)
1486 {
1487 union IO_APIC_reg_00 reg_00;
1488 physid_mask_t phys_id_present_map;
1489 int ioapic_idx;
1490 int i;
1491 unsigned char old_id;
1492 unsigned long flags;
1493
1494 /*
1495 * This is broken; anything with a real cpu count has to
1496 * circumvent this idiocy regardless.
1497 */
1498 apic->ioapic_phys_id_map(&phys_cpu_present_map, &phys_id_present_map);
1499
1500 /*
1501 * Set the IOAPIC ID to the value stored in the MPC table.
1502 */
1503 for_each_ioapic(ioapic_idx) {
1504 /* Read the register 0 value */
1505 raw_spin_lock_irqsave(&ioapic_lock, flags);
1506 reg_00.raw = io_apic_read(ioapic_idx, 0);
1507 raw_spin_unlock_irqrestore(&ioapic_lock, flags);
1508
1509 old_id = mpc_ioapic_id(ioapic_idx);
1510
1511 if (mpc_ioapic_id(ioapic_idx) >= get_physical_broadcast()) {
1512 printk(KERN_ERR "BIOS bug, IO-APIC#%d ID is %d in the MPC table!...\n",
1513 ioapic_idx, mpc_ioapic_id(ioapic_idx));
1514 printk(KERN_ERR "... fixing up to %d. (tell your hw vendor)\n",
1515 reg_00.bits.ID);
1516 ioapics[ioapic_idx].mp_config.apicid = reg_00.bits.ID;
1517 }
1518
1519 /*
1520 * Sanity check, is the ID really free? Every APIC in a
1521 * system must have a unique ID or we get lots of nice
1522 * 'stuck on smp_invalidate_needed IPI wait' messages.
1523 */
1524 if (apic->check_apicid_used(&phys_id_present_map,
1525 mpc_ioapic_id(ioapic_idx))) {
1526 printk(KERN_ERR "BIOS bug, IO-APIC#%d ID %d is already used!...\n",
1527 ioapic_idx, mpc_ioapic_id(ioapic_idx));
1528 for (i = 0; i < get_physical_broadcast(); i++)
1529 if (!physid_isset(i, phys_id_present_map))
1530 break;
1531 if (i >= get_physical_broadcast())
1532 panic("Max APIC ID exceeded!\n");
1533 printk(KERN_ERR "... fixing up to %d. (tell your hw vendor)\n",
1534 i);
1535 physid_set(i, phys_id_present_map);
1536 ioapics[ioapic_idx].mp_config.apicid = i;
1537 } else {
1538 physid_mask_t tmp;
1539 apic->apicid_to_cpu_present(mpc_ioapic_id(ioapic_idx),
1540 &tmp);
1541 apic_printk(APIC_VERBOSE, "Setting %d in the "
1542 "phys_id_present_map\n",
1543 mpc_ioapic_id(ioapic_idx));
1544 physids_or(phys_id_present_map, phys_id_present_map, tmp);
1545 }
1546
1547 /*
1548 * We need to adjust the IRQ routing table
1549 * if the ID changed.
1550 */
1551 if (old_id != mpc_ioapic_id(ioapic_idx))
1552 for (i = 0; i < mp_irq_entries; i++)
1553 if (mp_irqs[i].dstapic == old_id)
1554 mp_irqs[i].dstapic
1555 = mpc_ioapic_id(ioapic_idx);
1556
1557 /*
1558 * Update the ID register according to the right value
1559 * from the MPC table if they are different.
1560 */
1561 if (mpc_ioapic_id(ioapic_idx) == reg_00.bits.ID)
1562 continue;
1563
1564 apic_printk(APIC_VERBOSE, KERN_INFO
1565 "...changing IO-APIC physical APIC ID to %d ...",
1566 mpc_ioapic_id(ioapic_idx));
1567
1568 reg_00.bits.ID = mpc_ioapic_id(ioapic_idx);
1569 raw_spin_lock_irqsave(&ioapic_lock, flags);
1570 io_apic_write(ioapic_idx, 0, reg_00.raw);
1571 raw_spin_unlock_irqrestore(&ioapic_lock, flags);
1572
1573 /*
1574 * Sanity check
1575 */
1576 raw_spin_lock_irqsave(&ioapic_lock, flags);
1577 reg_00.raw = io_apic_read(ioapic_idx, 0);
1578 raw_spin_unlock_irqrestore(&ioapic_lock, flags);
1579 if (reg_00.bits.ID != mpc_ioapic_id(ioapic_idx))
1580 pr_cont("could not set ID!\n");
1581 else
1582 apic_printk(APIC_VERBOSE, " ok.\n");
1583 }
1584 }
1585
setup_ioapic_ids_from_mpc(void)1586 void __init setup_ioapic_ids_from_mpc(void)
1587 {
1588
1589 if (acpi_ioapic)
1590 return;
1591 /*
1592 * Don't check I/O APIC IDs for xAPIC systems. They have
1593 * no meaning without the serial APIC bus.
1594 */
1595 if (!(boot_cpu_data.x86_vendor == X86_VENDOR_INTEL)
1596 || APIC_XAPIC(boot_cpu_apic_version))
1597 return;
1598 setup_ioapic_ids_from_mpc_nocheck();
1599 }
1600 #endif
1601
1602 int no_timer_check __initdata;
1603
notimercheck(char * s)1604 static int __init notimercheck(char *s)
1605 {
1606 no_timer_check = 1;
1607 return 1;
1608 }
1609 __setup("no_timer_check", notimercheck);
1610
1611 /*
1612 * There is a nasty bug in some older SMP boards, their mptable lies
1613 * about the timer IRQ. We do the following to work around the situation:
1614 *
1615 * - timer IRQ defaults to IO-APIC IRQ
1616 * - if this function detects that timer IRQs are defunct, then we fall
1617 * back to ISA timer IRQs
1618 */
timer_irq_works(void)1619 static int __init timer_irq_works(void)
1620 {
1621 unsigned long t1 = jiffies;
1622 unsigned long flags;
1623
1624 if (no_timer_check)
1625 return 1;
1626
1627 local_save_flags(flags);
1628 local_irq_enable();
1629 /* Let ten ticks pass... */
1630 mdelay((10 * 1000) / HZ);
1631 local_irq_restore(flags);
1632
1633 /*
1634 * Expect a few ticks at least, to be sure some possible
1635 * glue logic does not lock up after one or two first
1636 * ticks in a non-ExtINT mode. Also the local APIC
1637 * might have cached one ExtINT interrupt. Finally, at
1638 * least one tick may be lost due to delays.
1639 */
1640
1641 /* jiffies wrap? */
1642 if (time_after(jiffies, t1 + 4))
1643 return 1;
1644 return 0;
1645 }
1646
1647 /*
1648 * In the SMP+IOAPIC case it might happen that there are an unspecified
1649 * number of pending IRQ events unhandled. These cases are very rare,
1650 * so we 'resend' these IRQs via IPIs, to the same CPU. It's much
1651 * better to do it this way as thus we do not have to be aware of
1652 * 'pending' interrupts in the IRQ path, except at this point.
1653 */
1654 /*
1655 * Edge triggered needs to resend any interrupt
1656 * that was delayed but this is now handled in the device
1657 * independent code.
1658 */
1659
1660 /*
1661 * Starting up a edge-triggered IO-APIC interrupt is
1662 * nasty - we need to make sure that we get the edge.
1663 * If it is already asserted for some reason, we need
1664 * return 1 to indicate that is was pending.
1665 *
1666 * This is not complete - we should be able to fake
1667 * an edge even if it isn't on the 8259A...
1668 */
startup_ioapic_irq(struct irq_data * data)1669 static unsigned int startup_ioapic_irq(struct irq_data *data)
1670 {
1671 int was_pending = 0, irq = data->irq;
1672 unsigned long flags;
1673
1674 raw_spin_lock_irqsave(&ioapic_lock, flags);
1675 if (irq < nr_legacy_irqs()) {
1676 legacy_pic->mask(irq);
1677 if (legacy_pic->irq_pending(irq))
1678 was_pending = 1;
1679 }
1680 __unmask_ioapic(data->chip_data);
1681 raw_spin_unlock_irqrestore(&ioapic_lock, flags);
1682
1683 return was_pending;
1684 }
1685
1686 atomic_t irq_mis_count;
1687
1688 #ifdef CONFIG_GENERIC_PENDING_IRQ
io_apic_level_ack_pending(struct mp_chip_data * data)1689 static bool io_apic_level_ack_pending(struct mp_chip_data *data)
1690 {
1691 struct irq_pin_list *entry;
1692 unsigned long flags;
1693
1694 raw_spin_lock_irqsave(&ioapic_lock, flags);
1695 for_each_irq_pin(entry, data->irq_2_pin) {
1696 unsigned int reg;
1697 int pin;
1698
1699 pin = entry->pin;
1700 reg = io_apic_read(entry->apic, 0x10 + pin*2);
1701 /* Is the remote IRR bit set? */
1702 if (reg & IO_APIC_REDIR_REMOTE_IRR) {
1703 raw_spin_unlock_irqrestore(&ioapic_lock, flags);
1704 return true;
1705 }
1706 }
1707 raw_spin_unlock_irqrestore(&ioapic_lock, flags);
1708
1709 return false;
1710 }
1711
ioapic_irqd_mask(struct irq_data * data)1712 static inline bool ioapic_irqd_mask(struct irq_data *data)
1713 {
1714 /* If we are moving the irq we need to mask it */
1715 if (unlikely(irqd_is_setaffinity_pending(data))) {
1716 mask_ioapic_irq(data);
1717 return true;
1718 }
1719 return false;
1720 }
1721
ioapic_irqd_unmask(struct irq_data * data,bool masked)1722 static inline void ioapic_irqd_unmask(struct irq_data *data, bool masked)
1723 {
1724 if (unlikely(masked)) {
1725 /* Only migrate the irq if the ack has been received.
1726 *
1727 * On rare occasions the broadcast level triggered ack gets
1728 * delayed going to ioapics, and if we reprogram the
1729 * vector while Remote IRR is still set the irq will never
1730 * fire again.
1731 *
1732 * To prevent this scenario we read the Remote IRR bit
1733 * of the ioapic. This has two effects.
1734 * - On any sane system the read of the ioapic will
1735 * flush writes (and acks) going to the ioapic from
1736 * this cpu.
1737 * - We get to see if the ACK has actually been delivered.
1738 *
1739 * Based on failed experiments of reprogramming the
1740 * ioapic entry from outside of irq context starting
1741 * with masking the ioapic entry and then polling until
1742 * Remote IRR was clear before reprogramming the
1743 * ioapic I don't trust the Remote IRR bit to be
1744 * completey accurate.
1745 *
1746 * However there appears to be no other way to plug
1747 * this race, so if the Remote IRR bit is not
1748 * accurate and is causing problems then it is a hardware bug
1749 * and you can go talk to the chipset vendor about it.
1750 */
1751 if (!io_apic_level_ack_pending(data->chip_data))
1752 irq_move_masked_irq(data);
1753 unmask_ioapic_irq(data);
1754 }
1755 }
1756 #else
ioapic_irqd_mask(struct irq_data * data)1757 static inline bool ioapic_irqd_mask(struct irq_data *data)
1758 {
1759 return false;
1760 }
ioapic_irqd_unmask(struct irq_data * data,bool masked)1761 static inline void ioapic_irqd_unmask(struct irq_data *data, bool masked)
1762 {
1763 }
1764 #endif
1765
ioapic_ack_level(struct irq_data * irq_data)1766 static void ioapic_ack_level(struct irq_data *irq_data)
1767 {
1768 struct irq_cfg *cfg = irqd_cfg(irq_data);
1769 unsigned long v;
1770 bool masked;
1771 int i;
1772
1773 irq_complete_move(cfg);
1774 masked = ioapic_irqd_mask(irq_data);
1775
1776 /*
1777 * It appears there is an erratum which affects at least version 0x11
1778 * of I/O APIC (that's the 82093AA and cores integrated into various
1779 * chipsets). Under certain conditions a level-triggered interrupt is
1780 * erroneously delivered as edge-triggered one but the respective IRR
1781 * bit gets set nevertheless. As a result the I/O unit expects an EOI
1782 * message but it will never arrive and further interrupts are blocked
1783 * from the source. The exact reason is so far unknown, but the
1784 * phenomenon was observed when two consecutive interrupt requests
1785 * from a given source get delivered to the same CPU and the source is
1786 * temporarily disabled in between.
1787 *
1788 * A workaround is to simulate an EOI message manually. We achieve it
1789 * by setting the trigger mode to edge and then to level when the edge
1790 * trigger mode gets detected in the TMR of a local APIC for a
1791 * level-triggered interrupt. We mask the source for the time of the
1792 * operation to prevent an edge-triggered interrupt escaping meanwhile.
1793 * The idea is from Manfred Spraul. --macro
1794 *
1795 * Also in the case when cpu goes offline, fixup_irqs() will forward
1796 * any unhandled interrupt on the offlined cpu to the new cpu
1797 * destination that is handling the corresponding interrupt. This
1798 * interrupt forwarding is done via IPI's. Hence, in this case also
1799 * level-triggered io-apic interrupt will be seen as an edge
1800 * interrupt in the IRR. And we can't rely on the cpu's EOI
1801 * to be broadcasted to the IO-APIC's which will clear the remoteIRR
1802 * corresponding to the level-triggered interrupt. Hence on IO-APIC's
1803 * supporting EOI register, we do an explicit EOI to clear the
1804 * remote IRR and on IO-APIC's which don't have an EOI register,
1805 * we use the above logic (mask+edge followed by unmask+level) from
1806 * Manfred Spraul to clear the remote IRR.
1807 */
1808 i = cfg->vector;
1809 v = apic_read(APIC_TMR + ((i & ~0x1f) >> 1));
1810
1811 /*
1812 * We must acknowledge the irq before we move it or the acknowledge will
1813 * not propagate properly.
1814 */
1815 ack_APIC_irq();
1816
1817 /*
1818 * Tail end of clearing remote IRR bit (either by delivering the EOI
1819 * message via io-apic EOI register write or simulating it using
1820 * mask+edge followed by unnask+level logic) manually when the
1821 * level triggered interrupt is seen as the edge triggered interrupt
1822 * at the cpu.
1823 */
1824 if (!(v & (1 << (i & 0x1f)))) {
1825 atomic_inc(&irq_mis_count);
1826 eoi_ioapic_pin(cfg->vector, irq_data->chip_data);
1827 }
1828
1829 ioapic_irqd_unmask(irq_data, masked);
1830 }
1831
ioapic_ir_ack_level(struct irq_data * irq_data)1832 static void ioapic_ir_ack_level(struct irq_data *irq_data)
1833 {
1834 struct mp_chip_data *data = irq_data->chip_data;
1835
1836 /*
1837 * Intr-remapping uses pin number as the virtual vector
1838 * in the RTE. Actual vector is programmed in
1839 * intr-remapping table entry. Hence for the io-apic
1840 * EOI we use the pin number.
1841 */
1842 ack_APIC_irq();
1843 eoi_ioapic_pin(data->entry.vector, data);
1844 }
1845
ioapic_set_affinity(struct irq_data * irq_data,const struct cpumask * mask,bool force)1846 static int ioapic_set_affinity(struct irq_data *irq_data,
1847 const struct cpumask *mask, bool force)
1848 {
1849 struct irq_data *parent = irq_data->parent_data;
1850 struct mp_chip_data *data = irq_data->chip_data;
1851 struct irq_pin_list *entry;
1852 struct irq_cfg *cfg;
1853 unsigned long flags;
1854 int ret;
1855
1856 ret = parent->chip->irq_set_affinity(parent, mask, force);
1857 raw_spin_lock_irqsave(&ioapic_lock, flags);
1858 if (ret >= 0 && ret != IRQ_SET_MASK_OK_DONE) {
1859 cfg = irqd_cfg(irq_data);
1860 data->entry.dest = cfg->dest_apicid;
1861 data->entry.vector = cfg->vector;
1862 for_each_irq_pin(entry, data->irq_2_pin)
1863 __ioapic_write_entry(entry->apic, entry->pin,
1864 data->entry);
1865 }
1866 raw_spin_unlock_irqrestore(&ioapic_lock, flags);
1867
1868 return ret;
1869 }
1870
1871 static struct irq_chip ioapic_chip __read_mostly = {
1872 .name = "IO-APIC",
1873 .irq_startup = startup_ioapic_irq,
1874 .irq_mask = mask_ioapic_irq,
1875 .irq_unmask = unmask_ioapic_irq,
1876 .irq_ack = irq_chip_ack_parent,
1877 .irq_eoi = ioapic_ack_level,
1878 .irq_set_affinity = ioapic_set_affinity,
1879 .irq_retrigger = irq_chip_retrigger_hierarchy,
1880 .flags = IRQCHIP_SKIP_SET_WAKE,
1881 };
1882
1883 static struct irq_chip ioapic_ir_chip __read_mostly = {
1884 .name = "IR-IO-APIC",
1885 .irq_startup = startup_ioapic_irq,
1886 .irq_mask = mask_ioapic_irq,
1887 .irq_unmask = unmask_ioapic_irq,
1888 .irq_ack = irq_chip_ack_parent,
1889 .irq_eoi = ioapic_ir_ack_level,
1890 .irq_set_affinity = ioapic_set_affinity,
1891 .irq_retrigger = irq_chip_retrigger_hierarchy,
1892 .flags = IRQCHIP_SKIP_SET_WAKE,
1893 };
1894
init_IO_APIC_traps(void)1895 static inline void init_IO_APIC_traps(void)
1896 {
1897 struct irq_cfg *cfg;
1898 unsigned int irq;
1899
1900 for_each_active_irq(irq) {
1901 cfg = irq_cfg(irq);
1902 if (IO_APIC_IRQ(irq) && cfg && !cfg->vector) {
1903 /*
1904 * Hmm.. We don't have an entry for this,
1905 * so default to an old-fashioned 8259
1906 * interrupt if we can..
1907 */
1908 if (irq < nr_legacy_irqs())
1909 legacy_pic->make_irq(irq);
1910 else
1911 /* Strange. Oh, well.. */
1912 irq_set_chip(irq, &no_irq_chip);
1913 }
1914 }
1915 }
1916
1917 /*
1918 * The local APIC irq-chip implementation:
1919 */
1920
mask_lapic_irq(struct irq_data * data)1921 static void mask_lapic_irq(struct irq_data *data)
1922 {
1923 unsigned long v;
1924
1925 v = apic_read(APIC_LVT0);
1926 apic_write(APIC_LVT0, v | APIC_LVT_MASKED);
1927 }
1928
unmask_lapic_irq(struct irq_data * data)1929 static void unmask_lapic_irq(struct irq_data *data)
1930 {
1931 unsigned long v;
1932
1933 v = apic_read(APIC_LVT0);
1934 apic_write(APIC_LVT0, v & ~APIC_LVT_MASKED);
1935 }
1936
ack_lapic_irq(struct irq_data * data)1937 static void ack_lapic_irq(struct irq_data *data)
1938 {
1939 ack_APIC_irq();
1940 }
1941
1942 static struct irq_chip lapic_chip __read_mostly = {
1943 .name = "local-APIC",
1944 .irq_mask = mask_lapic_irq,
1945 .irq_unmask = unmask_lapic_irq,
1946 .irq_ack = ack_lapic_irq,
1947 };
1948
lapic_register_intr(int irq)1949 static void lapic_register_intr(int irq)
1950 {
1951 irq_clear_status_flags(irq, IRQ_LEVEL);
1952 irq_set_chip_and_handler_name(irq, &lapic_chip, handle_edge_irq,
1953 "edge");
1954 }
1955
1956 /*
1957 * This looks a bit hackish but it's about the only one way of sending
1958 * a few INTA cycles to 8259As and any associated glue logic. ICR does
1959 * not support the ExtINT mode, unfortunately. We need to send these
1960 * cycles as some i82489DX-based boards have glue logic that keeps the
1961 * 8259A interrupt line asserted until INTA. --macro
1962 */
unlock_ExtINT_logic(void)1963 static inline void __init unlock_ExtINT_logic(void)
1964 {
1965 int apic, pin, i;
1966 struct IO_APIC_route_entry entry0, entry1;
1967 unsigned char save_control, save_freq_select;
1968
1969 pin = find_isa_irq_pin(8, mp_INT);
1970 if (pin == -1) {
1971 WARN_ON_ONCE(1);
1972 return;
1973 }
1974 apic = find_isa_irq_apic(8, mp_INT);
1975 if (apic == -1) {
1976 WARN_ON_ONCE(1);
1977 return;
1978 }
1979
1980 entry0 = ioapic_read_entry(apic, pin);
1981 clear_IO_APIC_pin(apic, pin);
1982
1983 memset(&entry1, 0, sizeof(entry1));
1984
1985 entry1.dest_mode = IOAPIC_DEST_MODE_PHYSICAL;
1986 entry1.mask = IOAPIC_UNMASKED;
1987 entry1.dest = hard_smp_processor_id();
1988 entry1.delivery_mode = dest_ExtINT;
1989 entry1.polarity = entry0.polarity;
1990 entry1.trigger = IOAPIC_EDGE;
1991 entry1.vector = 0;
1992
1993 ioapic_write_entry(apic, pin, entry1);
1994
1995 save_control = CMOS_READ(RTC_CONTROL);
1996 save_freq_select = CMOS_READ(RTC_FREQ_SELECT);
1997 CMOS_WRITE((save_freq_select & ~RTC_RATE_SELECT) | 0x6,
1998 RTC_FREQ_SELECT);
1999 CMOS_WRITE(save_control | RTC_PIE, RTC_CONTROL);
2000
2001 i = 100;
2002 while (i-- > 0) {
2003 mdelay(10);
2004 if ((CMOS_READ(RTC_INTR_FLAGS) & RTC_PF) == RTC_PF)
2005 i -= 10;
2006 }
2007
2008 CMOS_WRITE(save_control, RTC_CONTROL);
2009 CMOS_WRITE(save_freq_select, RTC_FREQ_SELECT);
2010 clear_IO_APIC_pin(apic, pin);
2011
2012 ioapic_write_entry(apic, pin, entry0);
2013 }
2014
2015 static int disable_timer_pin_1 __initdata;
2016 /* Actually the next is obsolete, but keep it for paranoid reasons -AK */
disable_timer_pin_setup(char * arg)2017 static int __init disable_timer_pin_setup(char *arg)
2018 {
2019 disable_timer_pin_1 = 1;
2020 return 0;
2021 }
2022 early_param("disable_timer_pin_1", disable_timer_pin_setup);
2023
mp_alloc_timer_irq(int ioapic,int pin)2024 static int mp_alloc_timer_irq(int ioapic, int pin)
2025 {
2026 int irq = -1;
2027 struct irq_domain *domain = mp_ioapic_irqdomain(ioapic);
2028
2029 if (domain) {
2030 struct irq_alloc_info info;
2031
2032 ioapic_set_alloc_attr(&info, NUMA_NO_NODE, 0, 0);
2033 info.ioapic_id = mpc_ioapic_id(ioapic);
2034 info.ioapic_pin = pin;
2035 mutex_lock(&ioapic_mutex);
2036 irq = alloc_isa_irq_from_domain(domain, 0, ioapic, pin, &info);
2037 mutex_unlock(&ioapic_mutex);
2038 }
2039
2040 return irq;
2041 }
2042
2043 /*
2044 * This code may look a bit paranoid, but it's supposed to cooperate with
2045 * a wide range of boards and BIOS bugs. Fortunately only the timer IRQ
2046 * is so screwy. Thanks to Brian Perkins for testing/hacking this beast
2047 * fanatically on his truly buggy board.
2048 *
2049 * FIXME: really need to revamp this for all platforms.
2050 */
check_timer(void)2051 static inline void __init check_timer(void)
2052 {
2053 struct irq_data *irq_data = irq_get_irq_data(0);
2054 struct mp_chip_data *data = irq_data->chip_data;
2055 struct irq_cfg *cfg = irqd_cfg(irq_data);
2056 int node = cpu_to_node(0);
2057 int apic1, pin1, apic2, pin2;
2058 unsigned long flags;
2059 int no_pin1 = 0;
2060
2061 local_irq_save(flags);
2062
2063 /*
2064 * get/set the timer IRQ vector:
2065 */
2066 legacy_pic->mask(0);
2067
2068 /*
2069 * As IRQ0 is to be enabled in the 8259A, the virtual
2070 * wire has to be disabled in the local APIC. Also
2071 * timer interrupts need to be acknowledged manually in
2072 * the 8259A for the i82489DX when using the NMI
2073 * watchdog as that APIC treats NMIs as level-triggered.
2074 * The AEOI mode will finish them in the 8259A
2075 * automatically.
2076 */
2077 apic_write(APIC_LVT0, APIC_LVT_MASKED | APIC_DM_EXTINT);
2078 legacy_pic->init(1);
2079
2080 pin1 = find_isa_irq_pin(0, mp_INT);
2081 apic1 = find_isa_irq_apic(0, mp_INT);
2082 pin2 = ioapic_i8259.pin;
2083 apic2 = ioapic_i8259.apic;
2084
2085 apic_printk(APIC_QUIET, KERN_INFO "..TIMER: vector=0x%02X "
2086 "apic1=%d pin1=%d apic2=%d pin2=%d\n",
2087 cfg->vector, apic1, pin1, apic2, pin2);
2088
2089 /*
2090 * Some BIOS writers are clueless and report the ExtINTA
2091 * I/O APIC input from the cascaded 8259A as the timer
2092 * interrupt input. So just in case, if only one pin
2093 * was found above, try it both directly and through the
2094 * 8259A.
2095 */
2096 if (pin1 == -1) {
2097 panic_if_irq_remap("BIOS bug: timer not connected to IO-APIC");
2098 pin1 = pin2;
2099 apic1 = apic2;
2100 no_pin1 = 1;
2101 } else if (pin2 == -1) {
2102 pin2 = pin1;
2103 apic2 = apic1;
2104 }
2105
2106 if (pin1 != -1) {
2107 /* Ok, does IRQ0 through the IOAPIC work? */
2108 if (no_pin1) {
2109 mp_alloc_timer_irq(apic1, pin1);
2110 } else {
2111 /*
2112 * for edge trigger, it's already unmasked,
2113 * so only need to unmask if it is level-trigger
2114 * do we really have level trigger timer?
2115 */
2116 int idx;
2117 idx = find_irq_entry(apic1, pin1, mp_INT);
2118 if (idx != -1 && irq_trigger(idx))
2119 unmask_ioapic_irq(irq_get_irq_data(0));
2120 }
2121 irq_domain_deactivate_irq(irq_data);
2122 irq_domain_activate_irq(irq_data);
2123 if (timer_irq_works()) {
2124 if (disable_timer_pin_1 > 0)
2125 clear_IO_APIC_pin(0, pin1);
2126 goto out;
2127 }
2128 panic_if_irq_remap("timer doesn't work through Interrupt-remapped IO-APIC");
2129 local_irq_disable();
2130 clear_IO_APIC_pin(apic1, pin1);
2131 if (!no_pin1)
2132 apic_printk(APIC_QUIET, KERN_ERR "..MP-BIOS bug: "
2133 "8254 timer not connected to IO-APIC\n");
2134
2135 apic_printk(APIC_QUIET, KERN_INFO "...trying to set up timer "
2136 "(IRQ0) through the 8259A ...\n");
2137 apic_printk(APIC_QUIET, KERN_INFO
2138 "..... (found apic %d pin %d) ...\n", apic2, pin2);
2139 /*
2140 * legacy devices should be connected to IO APIC #0
2141 */
2142 replace_pin_at_irq_node(data, node, apic1, pin1, apic2, pin2);
2143 irq_domain_deactivate_irq(irq_data);
2144 irq_domain_activate_irq(irq_data);
2145 legacy_pic->unmask(0);
2146 if (timer_irq_works()) {
2147 apic_printk(APIC_QUIET, KERN_INFO "....... works.\n");
2148 goto out;
2149 }
2150 /*
2151 * Cleanup, just in case ...
2152 */
2153 local_irq_disable();
2154 legacy_pic->mask(0);
2155 clear_IO_APIC_pin(apic2, pin2);
2156 apic_printk(APIC_QUIET, KERN_INFO "....... failed.\n");
2157 }
2158
2159 apic_printk(APIC_QUIET, KERN_INFO
2160 "...trying to set up timer as Virtual Wire IRQ...\n");
2161
2162 lapic_register_intr(0);
2163 apic_write(APIC_LVT0, APIC_DM_FIXED | cfg->vector); /* Fixed mode */
2164 legacy_pic->unmask(0);
2165
2166 if (timer_irq_works()) {
2167 apic_printk(APIC_QUIET, KERN_INFO "..... works.\n");
2168 goto out;
2169 }
2170 local_irq_disable();
2171 legacy_pic->mask(0);
2172 apic_write(APIC_LVT0, APIC_LVT_MASKED | APIC_DM_FIXED | cfg->vector);
2173 apic_printk(APIC_QUIET, KERN_INFO "..... failed.\n");
2174
2175 apic_printk(APIC_QUIET, KERN_INFO
2176 "...trying to set up timer as ExtINT IRQ...\n");
2177
2178 legacy_pic->init(0);
2179 legacy_pic->make_irq(0);
2180 apic_write(APIC_LVT0, APIC_DM_EXTINT);
2181
2182 unlock_ExtINT_logic();
2183
2184 if (timer_irq_works()) {
2185 apic_printk(APIC_QUIET, KERN_INFO "..... works.\n");
2186 goto out;
2187 }
2188 local_irq_disable();
2189 apic_printk(APIC_QUIET, KERN_INFO "..... failed :(.\n");
2190 if (apic_is_x2apic_enabled())
2191 apic_printk(APIC_QUIET, KERN_INFO
2192 "Perhaps problem with the pre-enabled x2apic mode\n"
2193 "Try booting with x2apic and interrupt-remapping disabled in the bios.\n");
2194 panic("IO-APIC + timer doesn't work! Boot with apic=debug and send a "
2195 "report. Then try booting with the 'noapic' option.\n");
2196 out:
2197 local_irq_restore(flags);
2198 }
2199
2200 /*
2201 * Traditionally ISA IRQ2 is the cascade IRQ, and is not available
2202 * to devices. However there may be an I/O APIC pin available for
2203 * this interrupt regardless. The pin may be left unconnected, but
2204 * typically it will be reused as an ExtINT cascade interrupt for
2205 * the master 8259A. In the MPS case such a pin will normally be
2206 * reported as an ExtINT interrupt in the MP table. With ACPI
2207 * there is no provision for ExtINT interrupts, and in the absence
2208 * of an override it would be treated as an ordinary ISA I/O APIC
2209 * interrupt, that is edge-triggered and unmasked by default. We
2210 * used to do this, but it caused problems on some systems because
2211 * of the NMI watchdog and sometimes IRQ0 of the 8254 timer using
2212 * the same ExtINT cascade interrupt to drive the local APIC of the
2213 * bootstrap processor. Therefore we refrain from routing IRQ2 to
2214 * the I/O APIC in all cases now. No actual device should request
2215 * it anyway. --macro
2216 */
2217 #define PIC_IRQS (1UL << PIC_CASCADE_IR)
2218
mp_irqdomain_create(int ioapic)2219 static int mp_irqdomain_create(int ioapic)
2220 {
2221 struct irq_alloc_info info;
2222 struct irq_domain *parent;
2223 int hwirqs = mp_ioapic_pin_count(ioapic);
2224 struct ioapic *ip = &ioapics[ioapic];
2225 struct ioapic_domain_cfg *cfg = &ip->irqdomain_cfg;
2226 struct mp_ioapic_gsi *gsi_cfg = mp_ioapic_gsi_routing(ioapic);
2227
2228 if (cfg->type == IOAPIC_DOMAIN_INVALID)
2229 return 0;
2230
2231 init_irq_alloc_info(&info, NULL);
2232 info.type = X86_IRQ_ALLOC_TYPE_IOAPIC;
2233 info.ioapic_id = mpc_ioapic_id(ioapic);
2234 parent = irq_remapping_get_ir_irq_domain(&info);
2235 if (!parent)
2236 parent = x86_vector_domain;
2237
2238 ip->irqdomain = irq_domain_add_linear(cfg->dev, hwirqs, cfg->ops,
2239 (void *)(long)ioapic);
2240 if (!ip->irqdomain)
2241 return -ENOMEM;
2242
2243 ip->irqdomain->parent = parent;
2244
2245 if (cfg->type == IOAPIC_DOMAIN_LEGACY ||
2246 cfg->type == IOAPIC_DOMAIN_STRICT)
2247 ioapic_dynirq_base = max(ioapic_dynirq_base,
2248 gsi_cfg->gsi_end + 1);
2249
2250 return 0;
2251 }
2252
ioapic_destroy_irqdomain(int idx)2253 static void ioapic_destroy_irqdomain(int idx)
2254 {
2255 if (ioapics[idx].irqdomain) {
2256 irq_domain_remove(ioapics[idx].irqdomain);
2257 ioapics[idx].irqdomain = NULL;
2258 }
2259 }
2260
setup_IO_APIC(void)2261 void __init setup_IO_APIC(void)
2262 {
2263 int ioapic;
2264
2265 if (skip_ioapic_setup || !nr_ioapics)
2266 return;
2267
2268 io_apic_irqs = nr_legacy_irqs() ? ~PIC_IRQS : ~0UL;
2269
2270 apic_printk(APIC_VERBOSE, "ENABLING IO-APIC IRQs\n");
2271 for_each_ioapic(ioapic)
2272 BUG_ON(mp_irqdomain_create(ioapic));
2273
2274 /*
2275 * Set up IO-APIC IRQ routing.
2276 */
2277 x86_init.mpparse.setup_ioapic_ids();
2278
2279 sync_Arb_IDs();
2280 setup_IO_APIC_irqs();
2281 init_IO_APIC_traps();
2282 if (nr_legacy_irqs())
2283 check_timer();
2284
2285 ioapic_initialized = 1;
2286 }
2287
resume_ioapic_id(int ioapic_idx)2288 static void resume_ioapic_id(int ioapic_idx)
2289 {
2290 unsigned long flags;
2291 union IO_APIC_reg_00 reg_00;
2292
2293 raw_spin_lock_irqsave(&ioapic_lock, flags);
2294 reg_00.raw = io_apic_read(ioapic_idx, 0);
2295 if (reg_00.bits.ID != mpc_ioapic_id(ioapic_idx)) {
2296 reg_00.bits.ID = mpc_ioapic_id(ioapic_idx);
2297 io_apic_write(ioapic_idx, 0, reg_00.raw);
2298 }
2299 raw_spin_unlock_irqrestore(&ioapic_lock, flags);
2300 }
2301
ioapic_resume(void)2302 static void ioapic_resume(void)
2303 {
2304 int ioapic_idx;
2305
2306 for_each_ioapic_reverse(ioapic_idx)
2307 resume_ioapic_id(ioapic_idx);
2308
2309 restore_ioapic_entries();
2310 }
2311
2312 static struct syscore_ops ioapic_syscore_ops = {
2313 .suspend = save_ioapic_entries,
2314 .resume = ioapic_resume,
2315 };
2316
ioapic_init_ops(void)2317 static int __init ioapic_init_ops(void)
2318 {
2319 register_syscore_ops(&ioapic_syscore_ops);
2320
2321 return 0;
2322 }
2323
2324 device_initcall(ioapic_init_ops);
2325
io_apic_get_redir_entries(int ioapic)2326 static int io_apic_get_redir_entries(int ioapic)
2327 {
2328 union IO_APIC_reg_01 reg_01;
2329 unsigned long flags;
2330
2331 raw_spin_lock_irqsave(&ioapic_lock, flags);
2332 reg_01.raw = io_apic_read(ioapic, 1);
2333 raw_spin_unlock_irqrestore(&ioapic_lock, flags);
2334
2335 /* The register returns the maximum index redir index
2336 * supported, which is one less than the total number of redir
2337 * entries.
2338 */
2339 return reg_01.bits.entries + 1;
2340 }
2341
arch_dynirq_lower_bound(unsigned int from)2342 unsigned int arch_dynirq_lower_bound(unsigned int from)
2343 {
2344 /*
2345 * dmar_alloc_hwirq() may be called before setup_IO_APIC(), so use
2346 * gsi_top if ioapic_dynirq_base hasn't been initialized yet.
2347 */
2348 return ioapic_initialized ? ioapic_dynirq_base : gsi_top;
2349 }
2350
2351 #ifdef CONFIG_X86_32
io_apic_get_unique_id(int ioapic,int apic_id)2352 static int io_apic_get_unique_id(int ioapic, int apic_id)
2353 {
2354 union IO_APIC_reg_00 reg_00;
2355 static physid_mask_t apic_id_map = PHYSID_MASK_NONE;
2356 physid_mask_t tmp;
2357 unsigned long flags;
2358 int i = 0;
2359
2360 /*
2361 * The P4 platform supports up to 256 APIC IDs on two separate APIC
2362 * buses (one for LAPICs, one for IOAPICs), where predecessors only
2363 * supports up to 16 on one shared APIC bus.
2364 *
2365 * TBD: Expand LAPIC/IOAPIC support on P4-class systems to take full
2366 * advantage of new APIC bus architecture.
2367 */
2368
2369 if (physids_empty(apic_id_map))
2370 apic->ioapic_phys_id_map(&phys_cpu_present_map, &apic_id_map);
2371
2372 raw_spin_lock_irqsave(&ioapic_lock, flags);
2373 reg_00.raw = io_apic_read(ioapic, 0);
2374 raw_spin_unlock_irqrestore(&ioapic_lock, flags);
2375
2376 if (apic_id >= get_physical_broadcast()) {
2377 printk(KERN_WARNING "IOAPIC[%d]: Invalid apic_id %d, trying "
2378 "%d\n", ioapic, apic_id, reg_00.bits.ID);
2379 apic_id = reg_00.bits.ID;
2380 }
2381
2382 /*
2383 * Every APIC in a system must have a unique ID or we get lots of nice
2384 * 'stuck on smp_invalidate_needed IPI wait' messages.
2385 */
2386 if (apic->check_apicid_used(&apic_id_map, apic_id)) {
2387
2388 for (i = 0; i < get_physical_broadcast(); i++) {
2389 if (!apic->check_apicid_used(&apic_id_map, i))
2390 break;
2391 }
2392
2393 if (i == get_physical_broadcast())
2394 panic("Max apic_id exceeded!\n");
2395
2396 printk(KERN_WARNING "IOAPIC[%d]: apic_id %d already used, "
2397 "trying %d\n", ioapic, apic_id, i);
2398
2399 apic_id = i;
2400 }
2401
2402 apic->apicid_to_cpu_present(apic_id, &tmp);
2403 physids_or(apic_id_map, apic_id_map, tmp);
2404
2405 if (reg_00.bits.ID != apic_id) {
2406 reg_00.bits.ID = apic_id;
2407
2408 raw_spin_lock_irqsave(&ioapic_lock, flags);
2409 io_apic_write(ioapic, 0, reg_00.raw);
2410 reg_00.raw = io_apic_read(ioapic, 0);
2411 raw_spin_unlock_irqrestore(&ioapic_lock, flags);
2412
2413 /* Sanity check */
2414 if (reg_00.bits.ID != apic_id) {
2415 pr_err("IOAPIC[%d]: Unable to change apic_id!\n",
2416 ioapic);
2417 return -1;
2418 }
2419 }
2420
2421 apic_printk(APIC_VERBOSE, KERN_INFO
2422 "IOAPIC[%d]: Assigned apic_id %d\n", ioapic, apic_id);
2423
2424 return apic_id;
2425 }
2426
io_apic_unique_id(int idx,u8 id)2427 static u8 io_apic_unique_id(int idx, u8 id)
2428 {
2429 if ((boot_cpu_data.x86_vendor == X86_VENDOR_INTEL) &&
2430 !APIC_XAPIC(boot_cpu_apic_version))
2431 return io_apic_get_unique_id(idx, id);
2432 else
2433 return id;
2434 }
2435 #else
io_apic_unique_id(int idx,u8 id)2436 static u8 io_apic_unique_id(int idx, u8 id)
2437 {
2438 union IO_APIC_reg_00 reg_00;
2439 DECLARE_BITMAP(used, 256);
2440 unsigned long flags;
2441 u8 new_id;
2442 int i;
2443
2444 bitmap_zero(used, 256);
2445 for_each_ioapic(i)
2446 __set_bit(mpc_ioapic_id(i), used);
2447
2448 /* Hand out the requested id if available */
2449 if (!test_bit(id, used))
2450 return id;
2451
2452 /*
2453 * Read the current id from the ioapic and keep it if
2454 * available.
2455 */
2456 raw_spin_lock_irqsave(&ioapic_lock, flags);
2457 reg_00.raw = io_apic_read(idx, 0);
2458 raw_spin_unlock_irqrestore(&ioapic_lock, flags);
2459 new_id = reg_00.bits.ID;
2460 if (!test_bit(new_id, used)) {
2461 apic_printk(APIC_VERBOSE, KERN_INFO
2462 "IOAPIC[%d]: Using reg apic_id %d instead of %d\n",
2463 idx, new_id, id);
2464 return new_id;
2465 }
2466
2467 /*
2468 * Get the next free id and write it to the ioapic.
2469 */
2470 new_id = find_first_zero_bit(used, 256);
2471 reg_00.bits.ID = new_id;
2472 raw_spin_lock_irqsave(&ioapic_lock, flags);
2473 io_apic_write(idx, 0, reg_00.raw);
2474 reg_00.raw = io_apic_read(idx, 0);
2475 raw_spin_unlock_irqrestore(&ioapic_lock, flags);
2476 /* Sanity check */
2477 BUG_ON(reg_00.bits.ID != new_id);
2478
2479 return new_id;
2480 }
2481 #endif
2482
io_apic_get_version(int ioapic)2483 static int io_apic_get_version(int ioapic)
2484 {
2485 union IO_APIC_reg_01 reg_01;
2486 unsigned long flags;
2487
2488 raw_spin_lock_irqsave(&ioapic_lock, flags);
2489 reg_01.raw = io_apic_read(ioapic, 1);
2490 raw_spin_unlock_irqrestore(&ioapic_lock, flags);
2491
2492 return reg_01.bits.version;
2493 }
2494
acpi_get_override_irq(u32 gsi,int * trigger,int * polarity)2495 int acpi_get_override_irq(u32 gsi, int *trigger, int *polarity)
2496 {
2497 int ioapic, pin, idx;
2498
2499 if (skip_ioapic_setup)
2500 return -1;
2501
2502 ioapic = mp_find_ioapic(gsi);
2503 if (ioapic < 0)
2504 return -1;
2505
2506 pin = mp_find_ioapic_pin(ioapic, gsi);
2507 if (pin < 0)
2508 return -1;
2509
2510 idx = find_irq_entry(ioapic, pin, mp_INT);
2511 if (idx < 0)
2512 return -1;
2513
2514 *trigger = irq_trigger(idx);
2515 *polarity = irq_polarity(idx);
2516 return 0;
2517 }
2518
2519 /*
2520 * This function currently is only a helper for the i386 smp boot process where
2521 * we need to reprogram the ioredtbls to cater for the cpus which have come online
2522 * so mask in all cases should simply be apic->target_cpus()
2523 */
2524 #ifdef CONFIG_SMP
setup_ioapic_dest(void)2525 void __init setup_ioapic_dest(void)
2526 {
2527 int pin, ioapic, irq, irq_entry;
2528 const struct cpumask *mask;
2529 struct irq_desc *desc;
2530 struct irq_data *idata;
2531 struct irq_chip *chip;
2532
2533 if (skip_ioapic_setup == 1)
2534 return;
2535
2536 for_each_ioapic_pin(ioapic, pin) {
2537 irq_entry = find_irq_entry(ioapic, pin, mp_INT);
2538 if (irq_entry == -1)
2539 continue;
2540
2541 irq = pin_2_irq(irq_entry, ioapic, pin, 0);
2542 if (irq < 0 || !mp_init_irq_at_boot(ioapic, irq))
2543 continue;
2544
2545 desc = irq_to_desc(irq);
2546 raw_spin_lock_irq(&desc->lock);
2547 idata = irq_desc_get_irq_data(desc);
2548
2549 /*
2550 * Honour affinities which have been set in early boot
2551 */
2552 if (!irqd_can_balance(idata) || irqd_affinity_was_set(idata))
2553 mask = irq_data_get_affinity_mask(idata);
2554 else
2555 mask = apic->target_cpus();
2556
2557 chip = irq_data_get_irq_chip(idata);
2558 /* Might be lapic_chip for irq 0 */
2559 if (chip->irq_set_affinity)
2560 chip->irq_set_affinity(idata, mask, false);
2561 raw_spin_unlock_irq(&desc->lock);
2562 }
2563 }
2564 #endif
2565
2566 #define IOAPIC_RESOURCE_NAME_SIZE 11
2567
2568 static struct resource *ioapic_resources;
2569
ioapic_setup_resources(void)2570 static struct resource * __init ioapic_setup_resources(void)
2571 {
2572 unsigned long n;
2573 struct resource *res;
2574 char *mem;
2575 int i;
2576
2577 if (nr_ioapics == 0)
2578 return NULL;
2579
2580 n = IOAPIC_RESOURCE_NAME_SIZE + sizeof(struct resource);
2581 n *= nr_ioapics;
2582
2583 mem = alloc_bootmem(n);
2584 res = (void *)mem;
2585
2586 mem += sizeof(struct resource) * nr_ioapics;
2587
2588 for_each_ioapic(i) {
2589 res[i].name = mem;
2590 res[i].flags = IORESOURCE_MEM | IORESOURCE_BUSY;
2591 snprintf(mem, IOAPIC_RESOURCE_NAME_SIZE, "IOAPIC %u", i);
2592 mem += IOAPIC_RESOURCE_NAME_SIZE;
2593 ioapics[i].iomem_res = &res[i];
2594 }
2595
2596 ioapic_resources = res;
2597
2598 return res;
2599 }
2600
io_apic_init_mappings(void)2601 void __init io_apic_init_mappings(void)
2602 {
2603 unsigned long ioapic_phys, idx = FIX_IO_APIC_BASE_0;
2604 struct resource *ioapic_res;
2605 int i;
2606
2607 ioapic_res = ioapic_setup_resources();
2608 for_each_ioapic(i) {
2609 if (smp_found_config) {
2610 ioapic_phys = mpc_ioapic_addr(i);
2611 #ifdef CONFIG_X86_32
2612 if (!ioapic_phys) {
2613 printk(KERN_ERR
2614 "WARNING: bogus zero IO-APIC "
2615 "address found in MPTABLE, "
2616 "disabling IO/APIC support!\n");
2617 smp_found_config = 0;
2618 skip_ioapic_setup = 1;
2619 goto fake_ioapic_page;
2620 }
2621 #endif
2622 } else {
2623 #ifdef CONFIG_X86_32
2624 fake_ioapic_page:
2625 #endif
2626 ioapic_phys = (unsigned long)alloc_bootmem_pages(PAGE_SIZE);
2627 ioapic_phys = __pa(ioapic_phys);
2628 }
2629 set_fixmap_nocache(idx, ioapic_phys);
2630 apic_printk(APIC_VERBOSE, "mapped IOAPIC to %08lx (%08lx)\n",
2631 __fix_to_virt(idx) + (ioapic_phys & ~PAGE_MASK),
2632 ioapic_phys);
2633 idx++;
2634
2635 ioapic_res->start = ioapic_phys;
2636 ioapic_res->end = ioapic_phys + IO_APIC_SLOT_SIZE - 1;
2637 ioapic_res++;
2638 }
2639 }
2640
ioapic_insert_resources(void)2641 void __init ioapic_insert_resources(void)
2642 {
2643 int i;
2644 struct resource *r = ioapic_resources;
2645
2646 if (!r) {
2647 if (nr_ioapics > 0)
2648 printk(KERN_ERR
2649 "IO APIC resources couldn't be allocated.\n");
2650 return;
2651 }
2652
2653 for_each_ioapic(i) {
2654 insert_resource(&iomem_resource, r);
2655 r++;
2656 }
2657 }
2658
mp_find_ioapic(u32 gsi)2659 int mp_find_ioapic(u32 gsi)
2660 {
2661 int i;
2662
2663 if (nr_ioapics == 0)
2664 return -1;
2665
2666 /* Find the IOAPIC that manages this GSI. */
2667 for_each_ioapic(i) {
2668 struct mp_ioapic_gsi *gsi_cfg = mp_ioapic_gsi_routing(i);
2669 if (gsi >= gsi_cfg->gsi_base && gsi <= gsi_cfg->gsi_end)
2670 return i;
2671 }
2672
2673 printk(KERN_ERR "ERROR: Unable to locate IOAPIC for GSI %d\n", gsi);
2674 return -1;
2675 }
2676
mp_find_ioapic_pin(int ioapic,u32 gsi)2677 int mp_find_ioapic_pin(int ioapic, u32 gsi)
2678 {
2679 struct mp_ioapic_gsi *gsi_cfg;
2680
2681 if (WARN_ON(ioapic < 0))
2682 return -1;
2683
2684 gsi_cfg = mp_ioapic_gsi_routing(ioapic);
2685 if (WARN_ON(gsi > gsi_cfg->gsi_end))
2686 return -1;
2687
2688 return gsi - gsi_cfg->gsi_base;
2689 }
2690
bad_ioapic_register(int idx)2691 static int bad_ioapic_register(int idx)
2692 {
2693 union IO_APIC_reg_00 reg_00;
2694 union IO_APIC_reg_01 reg_01;
2695 union IO_APIC_reg_02 reg_02;
2696
2697 reg_00.raw = io_apic_read(idx, 0);
2698 reg_01.raw = io_apic_read(idx, 1);
2699 reg_02.raw = io_apic_read(idx, 2);
2700
2701 if (reg_00.raw == -1 && reg_01.raw == -1 && reg_02.raw == -1) {
2702 pr_warn("I/O APIC 0x%x registers return all ones, skipping!\n",
2703 mpc_ioapic_addr(idx));
2704 return 1;
2705 }
2706
2707 return 0;
2708 }
2709
find_free_ioapic_entry(void)2710 static int find_free_ioapic_entry(void)
2711 {
2712 int idx;
2713
2714 for (idx = 0; idx < MAX_IO_APICS; idx++)
2715 if (ioapics[idx].nr_registers == 0)
2716 return idx;
2717
2718 return MAX_IO_APICS;
2719 }
2720
2721 /**
2722 * mp_register_ioapic - Register an IOAPIC device
2723 * @id: hardware IOAPIC ID
2724 * @address: physical address of IOAPIC register area
2725 * @gsi_base: base of GSI associated with the IOAPIC
2726 * @cfg: configuration information for the IOAPIC
2727 */
mp_register_ioapic(int id,u32 address,u32 gsi_base,struct ioapic_domain_cfg * cfg)2728 int mp_register_ioapic(int id, u32 address, u32 gsi_base,
2729 struct ioapic_domain_cfg *cfg)
2730 {
2731 bool hotplug = !!ioapic_initialized;
2732 struct mp_ioapic_gsi *gsi_cfg;
2733 int idx, ioapic, entries;
2734 u32 gsi_end;
2735
2736 if (!address) {
2737 pr_warn("Bogus (zero) I/O APIC address found, skipping!\n");
2738 return -EINVAL;
2739 }
2740 for_each_ioapic(ioapic)
2741 if (ioapics[ioapic].mp_config.apicaddr == address) {
2742 pr_warn("address 0x%x conflicts with IOAPIC%d\n",
2743 address, ioapic);
2744 return -EEXIST;
2745 }
2746
2747 idx = find_free_ioapic_entry();
2748 if (idx >= MAX_IO_APICS) {
2749 pr_warn("Max # of I/O APICs (%d) exceeded (found %d), skipping\n",
2750 MAX_IO_APICS, idx);
2751 return -ENOSPC;
2752 }
2753
2754 ioapics[idx].mp_config.type = MP_IOAPIC;
2755 ioapics[idx].mp_config.flags = MPC_APIC_USABLE;
2756 ioapics[idx].mp_config.apicaddr = address;
2757
2758 set_fixmap_nocache(FIX_IO_APIC_BASE_0 + idx, address);
2759 if (bad_ioapic_register(idx)) {
2760 clear_fixmap(FIX_IO_APIC_BASE_0 + idx);
2761 return -ENODEV;
2762 }
2763
2764 ioapics[idx].mp_config.apicid = io_apic_unique_id(idx, id);
2765 ioapics[idx].mp_config.apicver = io_apic_get_version(idx);
2766
2767 /*
2768 * Build basic GSI lookup table to facilitate gsi->io_apic lookups
2769 * and to prevent reprogramming of IOAPIC pins (PCI GSIs).
2770 */
2771 entries = io_apic_get_redir_entries(idx);
2772 gsi_end = gsi_base + entries - 1;
2773 for_each_ioapic(ioapic) {
2774 gsi_cfg = mp_ioapic_gsi_routing(ioapic);
2775 if ((gsi_base >= gsi_cfg->gsi_base &&
2776 gsi_base <= gsi_cfg->gsi_end) ||
2777 (gsi_end >= gsi_cfg->gsi_base &&
2778 gsi_end <= gsi_cfg->gsi_end)) {
2779 pr_warn("GSI range [%u-%u] for new IOAPIC conflicts with GSI[%u-%u]\n",
2780 gsi_base, gsi_end,
2781 gsi_cfg->gsi_base, gsi_cfg->gsi_end);
2782 clear_fixmap(FIX_IO_APIC_BASE_0 + idx);
2783 return -ENOSPC;
2784 }
2785 }
2786 gsi_cfg = mp_ioapic_gsi_routing(idx);
2787 gsi_cfg->gsi_base = gsi_base;
2788 gsi_cfg->gsi_end = gsi_end;
2789
2790 ioapics[idx].irqdomain = NULL;
2791 ioapics[idx].irqdomain_cfg = *cfg;
2792
2793 /*
2794 * If mp_register_ioapic() is called during early boot stage when
2795 * walking ACPI/SFI/DT tables, it's too early to create irqdomain,
2796 * we are still using bootmem allocator. So delay it to setup_IO_APIC().
2797 */
2798 if (hotplug) {
2799 if (mp_irqdomain_create(idx)) {
2800 clear_fixmap(FIX_IO_APIC_BASE_0 + idx);
2801 return -ENOMEM;
2802 }
2803 alloc_ioapic_saved_registers(idx);
2804 }
2805
2806 if (gsi_cfg->gsi_end >= gsi_top)
2807 gsi_top = gsi_cfg->gsi_end + 1;
2808 if (nr_ioapics <= idx)
2809 nr_ioapics = idx + 1;
2810
2811 /* Set nr_registers to mark entry present */
2812 ioapics[idx].nr_registers = entries;
2813
2814 pr_info("IOAPIC[%d]: apic_id %d, version %d, address 0x%x, GSI %d-%d\n",
2815 idx, mpc_ioapic_id(idx),
2816 mpc_ioapic_ver(idx), mpc_ioapic_addr(idx),
2817 gsi_cfg->gsi_base, gsi_cfg->gsi_end);
2818
2819 return 0;
2820 }
2821
mp_unregister_ioapic(u32 gsi_base)2822 int mp_unregister_ioapic(u32 gsi_base)
2823 {
2824 int ioapic, pin;
2825 int found = 0;
2826
2827 for_each_ioapic(ioapic)
2828 if (ioapics[ioapic].gsi_config.gsi_base == gsi_base) {
2829 found = 1;
2830 break;
2831 }
2832 if (!found) {
2833 pr_warn("can't find IOAPIC for GSI %d\n", gsi_base);
2834 return -ENODEV;
2835 }
2836
2837 for_each_pin(ioapic, pin) {
2838 u32 gsi = mp_pin_to_gsi(ioapic, pin);
2839 int irq = mp_map_gsi_to_irq(gsi, 0, NULL);
2840 struct mp_chip_data *data;
2841
2842 if (irq >= 0) {
2843 data = irq_get_chip_data(irq);
2844 if (data && data->count) {
2845 pr_warn("pin%d on IOAPIC%d is still in use.\n",
2846 pin, ioapic);
2847 return -EBUSY;
2848 }
2849 }
2850 }
2851
2852 /* Mark entry not present */
2853 ioapics[ioapic].nr_registers = 0;
2854 ioapic_destroy_irqdomain(ioapic);
2855 free_ioapic_saved_registers(ioapic);
2856 if (ioapics[ioapic].iomem_res)
2857 release_resource(ioapics[ioapic].iomem_res);
2858 clear_fixmap(FIX_IO_APIC_BASE_0 + ioapic);
2859 memset(&ioapics[ioapic], 0, sizeof(ioapics[ioapic]));
2860
2861 return 0;
2862 }
2863
mp_ioapic_registered(u32 gsi_base)2864 int mp_ioapic_registered(u32 gsi_base)
2865 {
2866 int ioapic;
2867
2868 for_each_ioapic(ioapic)
2869 if (ioapics[ioapic].gsi_config.gsi_base == gsi_base)
2870 return 1;
2871
2872 return 0;
2873 }
2874
mp_irqdomain_get_attr(u32 gsi,struct mp_chip_data * data,struct irq_alloc_info * info)2875 static void mp_irqdomain_get_attr(u32 gsi, struct mp_chip_data *data,
2876 struct irq_alloc_info *info)
2877 {
2878 if (info && info->ioapic_valid) {
2879 data->trigger = info->ioapic_trigger;
2880 data->polarity = info->ioapic_polarity;
2881 } else if (acpi_get_override_irq(gsi, &data->trigger,
2882 &data->polarity) < 0) {
2883 /* PCI interrupts are always active low level triggered. */
2884 data->trigger = IOAPIC_LEVEL;
2885 data->polarity = IOAPIC_POL_LOW;
2886 }
2887 }
2888
mp_setup_entry(struct irq_cfg * cfg,struct mp_chip_data * data,struct IO_APIC_route_entry * entry)2889 static void mp_setup_entry(struct irq_cfg *cfg, struct mp_chip_data *data,
2890 struct IO_APIC_route_entry *entry)
2891 {
2892 memset(entry, 0, sizeof(*entry));
2893 entry->delivery_mode = apic->irq_delivery_mode;
2894 entry->dest_mode = apic->irq_dest_mode;
2895 entry->dest = cfg->dest_apicid;
2896 entry->vector = cfg->vector;
2897 entry->trigger = data->trigger;
2898 entry->polarity = data->polarity;
2899 /*
2900 * Mask level triggered irqs. Edge triggered irqs are masked
2901 * by the irq core code in case they fire.
2902 */
2903 if (data->trigger == IOAPIC_LEVEL)
2904 entry->mask = IOAPIC_MASKED;
2905 else
2906 entry->mask = IOAPIC_UNMASKED;
2907 }
2908
mp_irqdomain_alloc(struct irq_domain * domain,unsigned int virq,unsigned int nr_irqs,void * arg)2909 int mp_irqdomain_alloc(struct irq_domain *domain, unsigned int virq,
2910 unsigned int nr_irqs, void *arg)
2911 {
2912 int ret, ioapic, pin;
2913 struct irq_cfg *cfg;
2914 struct irq_data *irq_data;
2915 struct mp_chip_data *data;
2916 struct irq_alloc_info *info = arg;
2917 unsigned long flags;
2918
2919 if (!info || nr_irqs > 1)
2920 return -EINVAL;
2921 irq_data = irq_domain_get_irq_data(domain, virq);
2922 if (!irq_data)
2923 return -EINVAL;
2924
2925 ioapic = mp_irqdomain_ioapic_idx(domain);
2926 pin = info->ioapic_pin;
2927 if (irq_find_mapping(domain, (irq_hw_number_t)pin) > 0)
2928 return -EEXIST;
2929
2930 data = kzalloc(sizeof(*data), GFP_KERNEL);
2931 if (!data)
2932 return -ENOMEM;
2933
2934 info->ioapic_entry = &data->entry;
2935 ret = irq_domain_alloc_irqs_parent(domain, virq, nr_irqs, info);
2936 if (ret < 0) {
2937 kfree(data);
2938 return ret;
2939 }
2940
2941 INIT_LIST_HEAD(&data->irq_2_pin);
2942 irq_data->hwirq = info->ioapic_pin;
2943 irq_data->chip = (domain->parent == x86_vector_domain) ?
2944 &ioapic_chip : &ioapic_ir_chip;
2945 irq_data->chip_data = data;
2946 mp_irqdomain_get_attr(mp_pin_to_gsi(ioapic, pin), data, info);
2947
2948 cfg = irqd_cfg(irq_data);
2949 add_pin_to_irq_node(data, ioapic_alloc_attr_node(info), ioapic, pin);
2950
2951 local_irq_save(flags);
2952 if (info->ioapic_entry)
2953 mp_setup_entry(cfg, data, info->ioapic_entry);
2954 mp_register_handler(virq, data->trigger);
2955 if (virq < nr_legacy_irqs())
2956 legacy_pic->mask(virq);
2957 local_irq_restore(flags);
2958
2959 apic_printk(APIC_VERBOSE, KERN_DEBUG
2960 "IOAPIC[%d]: Set routing entry (%d-%d -> 0x%x -> IRQ %d Mode:%i Active:%i Dest:%d)\n",
2961 ioapic, mpc_ioapic_id(ioapic), pin, cfg->vector,
2962 virq, data->trigger, data->polarity, cfg->dest_apicid);
2963
2964 return 0;
2965 }
2966
mp_irqdomain_free(struct irq_domain * domain,unsigned int virq,unsigned int nr_irqs)2967 void mp_irqdomain_free(struct irq_domain *domain, unsigned int virq,
2968 unsigned int nr_irqs)
2969 {
2970 struct irq_data *irq_data;
2971 struct mp_chip_data *data;
2972
2973 BUG_ON(nr_irqs != 1);
2974 irq_data = irq_domain_get_irq_data(domain, virq);
2975 if (irq_data && irq_data->chip_data) {
2976 data = irq_data->chip_data;
2977 __remove_pin_from_irq(data, mp_irqdomain_ioapic_idx(domain),
2978 (int)irq_data->hwirq);
2979 WARN_ON(!list_empty(&data->irq_2_pin));
2980 kfree(irq_data->chip_data);
2981 }
2982 irq_domain_free_irqs_top(domain, virq, nr_irqs);
2983 }
2984
mp_irqdomain_activate(struct irq_domain * domain,struct irq_data * irq_data)2985 void mp_irqdomain_activate(struct irq_domain *domain,
2986 struct irq_data *irq_data)
2987 {
2988 unsigned long flags;
2989 struct irq_pin_list *entry;
2990 struct mp_chip_data *data = irq_data->chip_data;
2991
2992 raw_spin_lock_irqsave(&ioapic_lock, flags);
2993 for_each_irq_pin(entry, data->irq_2_pin)
2994 __ioapic_write_entry(entry->apic, entry->pin, data->entry);
2995 raw_spin_unlock_irqrestore(&ioapic_lock, flags);
2996 }
2997
mp_irqdomain_deactivate(struct irq_domain * domain,struct irq_data * irq_data)2998 void mp_irqdomain_deactivate(struct irq_domain *domain,
2999 struct irq_data *irq_data)
3000 {
3001 /* It won't be called for IRQ with multiple IOAPIC pins associated */
3002 ioapic_mask_entry(mp_irqdomain_ioapic_idx(domain),
3003 (int)irq_data->hwirq);
3004 }
3005
mp_irqdomain_ioapic_idx(struct irq_domain * domain)3006 int mp_irqdomain_ioapic_idx(struct irq_domain *domain)
3007 {
3008 return (int)(long)domain->host_data;
3009 }
3010
3011 const struct irq_domain_ops mp_ioapic_irqdomain_ops = {
3012 .alloc = mp_irqdomain_alloc,
3013 .free = mp_irqdomain_free,
3014 .activate = mp_irqdomain_activate,
3015 .deactivate = mp_irqdomain_deactivate,
3016 };
3017