[SPARC64]: Use sun4v VIRQ interfaces as intended.
[platform/kernel/linux-starfive.git] / arch / sparc64 / kernel / irq.c
1 /* irq.c: UltraSparc IRQ handling/init/registry.
2  *
3  * Copyright (C) 1997, 2007  David S. Miller  (davem@davemloft.net)
4  * Copyright (C) 1998  Eddie C. Dost    (ecd@skynet.be)
5  * Copyright (C) 1998  Jakub Jelinek    (jj@ultra.linux.cz)
6  */
7
8 #include <linux/module.h>
9 #include <linux/sched.h>
10 #include <linux/ptrace.h>
11 #include <linux/errno.h>
12 #include <linux/kernel_stat.h>
13 #include <linux/signal.h>
14 #include <linux/mm.h>
15 #include <linux/interrupt.h>
16 #include <linux/slab.h>
17 #include <linux/random.h>
18 #include <linux/init.h>
19 #include <linux/delay.h>
20 #include <linux/proc_fs.h>
21 #include <linux/seq_file.h>
22 #include <linux/bootmem.h>
23 #include <linux/irq.h>
24
25 #include <asm/ptrace.h>
26 #include <asm/processor.h>
27 #include <asm/atomic.h>
28 #include <asm/system.h>
29 #include <asm/irq.h>
30 #include <asm/io.h>
31 #include <asm/sbus.h>
32 #include <asm/iommu.h>
33 #include <asm/upa.h>
34 #include <asm/oplib.h>
35 #include <asm/prom.h>
36 #include <asm/timer.h>
37 #include <asm/smp.h>
38 #include <asm/starfire.h>
39 #include <asm/uaccess.h>
40 #include <asm/cache.h>
41 #include <asm/cpudata.h>
42 #include <asm/auxio.h>
43 #include <asm/head.h>
44 #include <asm/hypervisor.h>
45
46 /* UPA nodes send interrupt packet to UltraSparc with first data reg
47  * value low 5 (7 on Starfire) bits holding the IRQ identifier being
48  * delivered.  We must translate this into a non-vector IRQ so we can
49  * set the softint on this cpu.
50  *
51  * To make processing these packets efficient and race free we use
52  * an array of irq buckets below.  The interrupt vector handler in
53  * entry.S feeds incoming packets into per-cpu pil-indexed lists.
54  *
55  * If you make changes to ino_bucket, please update hand coded assembler
56  * of the vectored interrupt trap handler(s) in entry.S and sun4v_ivec.S
57  */
58 struct ino_bucket {
59 /*0x00*/unsigned long irq_chain_pa;
60
61         /* Virtual interrupt number assigned to this INO.  */
62 /*0x08*/unsigned int virt_irq;
63 /*0x0c*/unsigned int __pad;
64 };
65
66 #define NUM_IVECS       (IMAP_INR + 1)
67 struct ino_bucket *ivector_table;
68 unsigned long ivector_table_pa;
69
70 #define __irq_ino(irq) \
71         (((struct ino_bucket *)(irq)) - &ivector_table[0])
72 #define __bucket(irq) ((struct ino_bucket *)(irq))
73 #define __irq(bucket) ((unsigned long)(bucket))
74
75 #define irq_work_pa(__cpu)      &(trap_block[(__cpu)].irq_worklist_pa)
76
77 static struct {
78         unsigned long irq;
79         unsigned int dev_handle;
80         unsigned int dev_ino;
81 } virt_to_real_irq_table[NR_IRQS];
82 static DEFINE_SPINLOCK(virt_irq_alloc_lock);
83
84 unsigned char virt_irq_alloc(unsigned long real_irq)
85 {
86         unsigned long flags;
87         unsigned char ent;
88
89         BUILD_BUG_ON(NR_IRQS >= 256);
90
91         spin_lock_irqsave(&virt_irq_alloc_lock, flags);
92
93         for (ent = 1; ent < NR_IRQS; ent++) {
94                 if (!virt_to_real_irq_table[ent].irq)
95                         break;
96         }
97         if (ent >= NR_IRQS) {
98                 printk(KERN_ERR "IRQ: Out of virtual IRQs.\n");
99                 ent = 0;
100         } else {
101                 virt_to_real_irq_table[ent].irq = real_irq;
102         }
103
104         spin_unlock_irqrestore(&virt_irq_alloc_lock, flags);
105
106         return ent;
107 }
108
109 #ifdef CONFIG_PCI_MSI
110 void virt_irq_free(unsigned int virt_irq)
111 {
112         unsigned long flags;
113
114         if (virt_irq >= NR_IRQS)
115                 return;
116
117         spin_lock_irqsave(&virt_irq_alloc_lock, flags);
118
119         virt_to_real_irq_table[virt_irq].irq = 0;
120
121         spin_unlock_irqrestore(&virt_irq_alloc_lock, flags);
122 }
123 #endif
124
125 static unsigned long virt_to_real_irq(unsigned char virt_irq)
126 {
127         return virt_to_real_irq_table[virt_irq].irq;
128 }
129
130 /*
131  * /proc/interrupts printing:
132  */
133
134 int show_interrupts(struct seq_file *p, void *v)
135 {
136         int i = *(loff_t *) v, j;
137         struct irqaction * action;
138         unsigned long flags;
139
140         if (i == 0) {
141                 seq_printf(p, "           ");
142                 for_each_online_cpu(j)
143                         seq_printf(p, "CPU%d       ",j);
144                 seq_putc(p, '\n');
145         }
146
147         if (i < NR_IRQS) {
148                 spin_lock_irqsave(&irq_desc[i].lock, flags);
149                 action = irq_desc[i].action;
150                 if (!action)
151                         goto skip;
152                 seq_printf(p, "%3d: ",i);
153 #ifndef CONFIG_SMP
154                 seq_printf(p, "%10u ", kstat_irqs(i));
155 #else
156                 for_each_online_cpu(j)
157                         seq_printf(p, "%10u ", kstat_cpu(j).irqs[i]);
158 #endif
159                 seq_printf(p, " %9s", irq_desc[i].chip->typename);
160                 seq_printf(p, "  %s", action->name);
161
162                 for (action=action->next; action; action = action->next)
163                         seq_printf(p, ", %s", action->name);
164
165                 seq_putc(p, '\n');
166 skip:
167                 spin_unlock_irqrestore(&irq_desc[i].lock, flags);
168         }
169         return 0;
170 }
171
172 static unsigned int sun4u_compute_tid(unsigned long imap, unsigned long cpuid)
173 {
174         unsigned int tid;
175
176         if (this_is_starfire) {
177                 tid = starfire_translate(imap, cpuid);
178                 tid <<= IMAP_TID_SHIFT;
179                 tid &= IMAP_TID_UPA;
180         } else {
181                 if (tlb_type == cheetah || tlb_type == cheetah_plus) {
182                         unsigned long ver;
183
184                         __asm__ ("rdpr %%ver, %0" : "=r" (ver));
185                         if ((ver >> 32UL) == __JALAPENO_ID ||
186                             (ver >> 32UL) == __SERRANO_ID) {
187                                 tid = cpuid << IMAP_TID_SHIFT;
188                                 tid &= IMAP_TID_JBUS;
189                         } else {
190                                 unsigned int a = cpuid & 0x1f;
191                                 unsigned int n = (cpuid >> 5) & 0x1f;
192
193                                 tid = ((a << IMAP_AID_SHIFT) |
194                                        (n << IMAP_NID_SHIFT));
195                                 tid &= (IMAP_AID_SAFARI |
196                                         IMAP_NID_SAFARI);;
197                         }
198                 } else {
199                         tid = cpuid << IMAP_TID_SHIFT;
200                         tid &= IMAP_TID_UPA;
201                 }
202         }
203
204         return tid;
205 }
206
207 struct irq_handler_data {
208         unsigned long   iclr;
209         unsigned long   imap;
210
211         void            (*pre_handler)(unsigned int, void *, void *);
212         void            *pre_handler_arg1;
213         void            *pre_handler_arg2;
214 };
215
216 static inline struct ino_bucket *virt_irq_to_bucket(unsigned int virt_irq)
217 {
218         unsigned long real_irq = virt_to_real_irq(virt_irq);
219         struct ino_bucket *bucket = NULL;
220
221         if (likely(real_irq))
222                 bucket = __bucket(real_irq);
223
224         return bucket;
225 }
226
227 #ifdef CONFIG_SMP
228 static int irq_choose_cpu(unsigned int virt_irq)
229 {
230         cpumask_t mask = irq_desc[virt_irq].affinity;
231         int cpuid;
232
233         if (cpus_equal(mask, CPU_MASK_ALL)) {
234                 static int irq_rover;
235                 static DEFINE_SPINLOCK(irq_rover_lock);
236                 unsigned long flags;
237
238                 /* Round-robin distribution... */
239         do_round_robin:
240                 spin_lock_irqsave(&irq_rover_lock, flags);
241
242                 while (!cpu_online(irq_rover)) {
243                         if (++irq_rover >= NR_CPUS)
244                                 irq_rover = 0;
245                 }
246                 cpuid = irq_rover;
247                 do {
248                         if (++irq_rover >= NR_CPUS)
249                                 irq_rover = 0;
250                 } while (!cpu_online(irq_rover));
251
252                 spin_unlock_irqrestore(&irq_rover_lock, flags);
253         } else {
254                 cpumask_t tmp;
255
256                 cpus_and(tmp, cpu_online_map, mask);
257
258                 if (cpus_empty(tmp))
259                         goto do_round_robin;
260
261                 cpuid = first_cpu(tmp);
262         }
263
264         return cpuid;
265 }
266 #else
267 static int irq_choose_cpu(unsigned int virt_irq)
268 {
269         return real_hard_smp_processor_id();
270 }
271 #endif
272
273 static void sun4u_irq_enable(unsigned int virt_irq)
274 {
275         struct irq_handler_data *data = get_irq_chip_data(virt_irq);
276
277         if (likely(data)) {
278                 unsigned long cpuid, imap, val;
279                 unsigned int tid;
280
281                 cpuid = irq_choose_cpu(virt_irq);
282                 imap = data->imap;
283
284                 tid = sun4u_compute_tid(imap, cpuid);
285
286                 val = upa_readq(imap);
287                 val &= ~(IMAP_TID_UPA | IMAP_TID_JBUS |
288                          IMAP_AID_SAFARI | IMAP_NID_SAFARI);
289                 val |= tid | IMAP_VALID;
290                 upa_writeq(val, imap);
291         }
292 }
293
294 static void sun4u_set_affinity(unsigned int virt_irq, cpumask_t mask)
295 {
296         sun4u_irq_enable(virt_irq);
297 }
298
299 static void sun4u_irq_disable(unsigned int virt_irq)
300 {
301         struct irq_handler_data *data = get_irq_chip_data(virt_irq);
302
303         if (likely(data)) {
304                 unsigned long imap = data->imap;
305                 unsigned long tmp = upa_readq(imap);
306
307                 tmp &= ~IMAP_VALID;
308                 upa_writeq(tmp, imap);
309         }
310 }
311
312 static void sun4u_irq_end(unsigned int virt_irq)
313 {
314         struct irq_handler_data *data = get_irq_chip_data(virt_irq);
315         struct irq_desc *desc = irq_desc + virt_irq;
316
317         if (unlikely(desc->status & (IRQ_DISABLED|IRQ_INPROGRESS)))
318                 return;
319
320         if (likely(data))
321                 upa_writeq(ICLR_IDLE, data->iclr);
322 }
323
324 static void sun4v_irq_enable(unsigned int virt_irq)
325 {
326         struct ino_bucket *bucket = virt_irq_to_bucket(virt_irq);
327         unsigned int ino = bucket - &ivector_table[0];
328
329         if (likely(bucket)) {
330                 unsigned long cpuid;
331                 int err;
332
333                 cpuid = irq_choose_cpu(virt_irq);
334
335                 err = sun4v_intr_settarget(ino, cpuid);
336                 if (err != HV_EOK)
337                         printk(KERN_ERR "sun4v_intr_settarget(%x,%lu): "
338                                "err(%d)\n", ino, cpuid, err);
339                 err = sun4v_intr_setstate(ino, HV_INTR_STATE_IDLE);
340                 if (err != HV_EOK)
341                         printk(KERN_ERR "sun4v_intr_setstate(%x): "
342                                "err(%d)\n", ino, err);
343                 err = sun4v_intr_setenabled(ino, HV_INTR_ENABLED);
344                 if (err != HV_EOK)
345                         printk(KERN_ERR "sun4v_intr_setenabled(%x): err(%d)\n",
346                                ino, err);
347         }
348 }
349
350 static void sun4v_set_affinity(unsigned int virt_irq, cpumask_t mask)
351 {
352         struct ino_bucket *bucket = virt_irq_to_bucket(virt_irq);
353         unsigned int ino = bucket - &ivector_table[0];
354
355         if (likely(bucket)) {
356                 unsigned long cpuid;
357                 int err;
358
359                 cpuid = irq_choose_cpu(virt_irq);
360
361                 err = sun4v_intr_settarget(ino, cpuid);
362                 if (err != HV_EOK)
363                         printk(KERN_ERR "sun4v_intr_settarget(%x,%lu): "
364                                "err(%d)\n", ino, cpuid, err);
365         }
366 }
367
368 static void sun4v_irq_disable(unsigned int virt_irq)
369 {
370         struct ino_bucket *bucket = virt_irq_to_bucket(virt_irq);
371         unsigned int ino = bucket - &ivector_table[0];
372
373         if (likely(bucket)) {
374                 int err;
375
376                 err = sun4v_intr_setenabled(ino, HV_INTR_DISABLED);
377                 if (err != HV_EOK)
378                         printk(KERN_ERR "sun4v_intr_setenabled(%x): "
379                                "err(%d)\n", ino, err);
380         }
381 }
382
383 static void sun4v_irq_end(unsigned int virt_irq)
384 {
385         struct ino_bucket *bucket = virt_irq_to_bucket(virt_irq);
386         unsigned int ino = bucket - &ivector_table[0];
387         struct irq_desc *desc = irq_desc + virt_irq;
388
389         if (unlikely(desc->status & (IRQ_DISABLED|IRQ_INPROGRESS)))
390                 return;
391
392         if (likely(bucket)) {
393                 int err;
394
395                 err = sun4v_intr_setstate(ino, HV_INTR_STATE_IDLE);
396                 if (err != HV_EOK)
397                         printk(KERN_ERR "sun4v_intr_setstate(%x): "
398                                "err(%d)\n", ino, err);
399         }
400 }
401
402 static void sun4v_virq_enable(unsigned int virt_irq)
403 {
404         struct ino_bucket *bucket = virt_irq_to_bucket(virt_irq);
405
406         if (likely(bucket)) {
407                 unsigned long cpuid, dev_handle, dev_ino;
408                 int err;
409
410                 cpuid = irq_choose_cpu(virt_irq);
411
412                 dev_handle = virt_to_real_irq_table[virt_irq].dev_handle;
413                 dev_ino = virt_to_real_irq_table[virt_irq].dev_ino;
414
415                 err = sun4v_vintr_set_target(dev_handle, dev_ino, cpuid);
416                 if (err != HV_EOK)
417                         printk(KERN_ERR "sun4v_vintr_set_target(%lx,%lx,%lu): "
418                                "err(%d)\n",
419                                dev_handle, dev_ino, cpuid, err);
420                 err = sun4v_vintr_set_state(dev_handle, dev_ino,
421                                             HV_INTR_STATE_IDLE);
422                 if (err != HV_EOK)
423                         printk(KERN_ERR "sun4v_vintr_set_state(%lx,%lx,"
424                                 "HV_INTR_STATE_IDLE): err(%d)\n",
425                                dev_handle, dev_ino, err);
426                 err = sun4v_vintr_set_valid(dev_handle, dev_ino,
427                                             HV_INTR_ENABLED);
428                 if (err != HV_EOK)
429                         printk(KERN_ERR "sun4v_vintr_set_state(%lx,%lx,"
430                                "HV_INTR_ENABLED): err(%d)\n",
431                                dev_handle, dev_ino, err);
432         }
433 }
434
435 static void sun4v_virt_set_affinity(unsigned int virt_irq, cpumask_t mask)
436 {
437         struct ino_bucket *bucket = virt_irq_to_bucket(virt_irq);
438
439         if (likely(bucket)) {
440                 unsigned long cpuid, dev_handle, dev_ino;
441                 int err;
442
443                 cpuid = irq_choose_cpu(virt_irq);
444
445                 dev_handle = virt_to_real_irq_table[virt_irq].dev_handle;
446                 dev_ino = virt_to_real_irq_table[virt_irq].dev_ino;
447
448                 err = sun4v_vintr_set_target(dev_handle, dev_ino, cpuid);
449                 if (err != HV_EOK)
450                         printk(KERN_ERR "sun4v_vintr_set_target(%lx,%lx,%lu): "
451                                "err(%d)\n",
452                                dev_handle, dev_ino, cpuid, err);
453         }
454 }
455
456 static void sun4v_virq_disable(unsigned int virt_irq)
457 {
458         struct ino_bucket *bucket = virt_irq_to_bucket(virt_irq);
459
460         if (likely(bucket)) {
461                 unsigned long dev_handle, dev_ino;
462                 int err;
463
464                 dev_handle = virt_to_real_irq_table[virt_irq].dev_handle;
465                 dev_ino = virt_to_real_irq_table[virt_irq].dev_ino;
466
467                 err = sun4v_vintr_set_valid(dev_handle, dev_ino,
468                                             HV_INTR_DISABLED);
469                 if (err != HV_EOK)
470                         printk(KERN_ERR "sun4v_vintr_set_state(%lx,%lx,"
471                                "HV_INTR_DISABLED): err(%d)\n",
472                                dev_handle, dev_ino, err);
473         }
474 }
475
476 static void sun4v_virq_end(unsigned int virt_irq)
477 {
478         struct ino_bucket *bucket = virt_irq_to_bucket(virt_irq);
479         struct irq_desc *desc = irq_desc + virt_irq;
480
481         if (unlikely(desc->status & (IRQ_DISABLED|IRQ_INPROGRESS)))
482                 return;
483
484         if (likely(bucket)) {
485                 unsigned long dev_handle, dev_ino;
486                 int err;
487
488                 dev_handle = virt_to_real_irq_table[virt_irq].dev_handle;
489                 dev_ino = virt_to_real_irq_table[virt_irq].dev_ino;
490
491                 err = sun4v_vintr_set_state(dev_handle, dev_ino,
492                                             HV_INTR_STATE_IDLE);
493                 if (err != HV_EOK)
494                         printk(KERN_ERR "sun4v_vintr_set_state(%lx,%lx,"
495                                 "HV_INTR_STATE_IDLE): err(%d)\n",
496                                dev_handle, dev_ino, err);
497         }
498 }
499
500 static void run_pre_handler(unsigned int virt_irq)
501 {
502         struct ino_bucket *bucket = virt_irq_to_bucket(virt_irq);
503         struct irq_handler_data *data = get_irq_chip_data(virt_irq);
504
505         if (likely(data->pre_handler)) {
506                 data->pre_handler(__irq_ino(__irq(bucket)),
507                                   data->pre_handler_arg1,
508                                   data->pre_handler_arg2);
509         }
510 }
511
512 static struct irq_chip sun4u_irq = {
513         .typename       = "sun4u",
514         .enable         = sun4u_irq_enable,
515         .disable        = sun4u_irq_disable,
516         .end            = sun4u_irq_end,
517         .set_affinity   = sun4u_set_affinity,
518 };
519
520 static struct irq_chip sun4u_irq_ack = {
521         .typename       = "sun4u+ack",
522         .enable         = sun4u_irq_enable,
523         .disable        = sun4u_irq_disable,
524         .ack            = run_pre_handler,
525         .end            = sun4u_irq_end,
526         .set_affinity   = sun4u_set_affinity,
527 };
528
529 static struct irq_chip sun4v_irq = {
530         .typename       = "sun4v",
531         .enable         = sun4v_irq_enable,
532         .disable        = sun4v_irq_disable,
533         .end            = sun4v_irq_end,
534         .set_affinity   = sun4v_set_affinity,
535 };
536
537 static struct irq_chip sun4v_virq = {
538         .typename       = "vsun4v",
539         .enable         = sun4v_virq_enable,
540         .disable        = sun4v_virq_disable,
541         .end            = sun4v_virq_end,
542         .set_affinity   = sun4v_virt_set_affinity,
543 };
544
545 void irq_install_pre_handler(int virt_irq,
546                              void (*func)(unsigned int, void *, void *),
547                              void *arg1, void *arg2)
548 {
549         struct irq_handler_data *data = get_irq_chip_data(virt_irq);
550         struct irq_chip *chip = get_irq_chip(virt_irq);
551
552         if (WARN_ON(chip == &sun4v_irq || chip == &sun4v_virq)) {
553                 printk(KERN_ERR "IRQ: Trying to install pre-handler on "
554                        "sun4v irq %u\n", virt_irq);
555                 return;
556         }
557
558         data->pre_handler = func;
559         data->pre_handler_arg1 = arg1;
560         data->pre_handler_arg2 = arg2;
561
562         if (chip == &sun4u_irq_ack)
563                 return;
564
565         set_irq_chip(virt_irq, &sun4u_irq_ack);
566 }
567
568 unsigned int build_irq(int inofixup, unsigned long iclr, unsigned long imap)
569 {
570         struct ino_bucket *bucket;
571         struct irq_handler_data *data;
572         int ino;
573
574         BUG_ON(tlb_type == hypervisor);
575
576         ino = (upa_readq(imap) & (IMAP_IGN | IMAP_INO)) + inofixup;
577         bucket = &ivector_table[ino];
578         if (!bucket->virt_irq) {
579                 bucket->virt_irq = virt_irq_alloc(__irq(bucket));
580                 set_irq_chip(bucket->virt_irq, &sun4u_irq);
581         }
582
583         data = get_irq_chip_data(bucket->virt_irq);
584         if (unlikely(data))
585                 goto out;
586
587         data = kzalloc(sizeof(struct irq_handler_data), GFP_ATOMIC);
588         if (unlikely(!data)) {
589                 prom_printf("IRQ: kzalloc(irq_handler_data) failed.\n");
590                 prom_halt();
591         }
592         set_irq_chip_data(bucket->virt_irq, data);
593
594         data->imap  = imap;
595         data->iclr  = iclr;
596
597 out:
598         return bucket->virt_irq;
599 }
600
601 static unsigned int sun4v_build_common(unsigned long sysino,
602                                        struct irq_chip *chip)
603 {
604         struct ino_bucket *bucket;
605         struct irq_handler_data *data;
606
607         BUG_ON(tlb_type != hypervisor);
608
609         bucket = &ivector_table[sysino];
610         if (!bucket->virt_irq) {
611                 bucket->virt_irq = virt_irq_alloc(__irq(bucket));
612                 set_irq_chip(bucket->virt_irq, chip);
613         }
614
615         data = get_irq_chip_data(bucket->virt_irq);
616         if (unlikely(data))
617                 goto out;
618
619         data = kzalloc(sizeof(struct irq_handler_data), GFP_ATOMIC);
620         if (unlikely(!data)) {
621                 prom_printf("IRQ: kzalloc(irq_handler_data) failed.\n");
622                 prom_halt();
623         }
624         set_irq_chip_data(bucket->virt_irq, data);
625
626         /* Catch accidental accesses to these things.  IMAP/ICLR handling
627          * is done by hypervisor calls on sun4v platforms, not by direct
628          * register accesses.
629          */
630         data->imap = ~0UL;
631         data->iclr = ~0UL;
632
633 out:
634         return bucket->virt_irq;
635 }
636
637 unsigned int sun4v_build_irq(u32 devhandle, unsigned int devino)
638 {
639         unsigned long sysino = sun4v_devino_to_sysino(devhandle, devino);
640
641         return sun4v_build_common(sysino, &sun4v_irq);
642 }
643
644 unsigned int sun4v_build_virq(u32 devhandle, unsigned int devino)
645 {
646         struct irq_handler_data *data;
647         struct ino_bucket *bucket;
648         unsigned long hv_err, cookie;
649
650         bucket = kzalloc(sizeof(struct ino_bucket), GFP_ATOMIC);
651         if (unlikely(!bucket))
652                 return 0;
653
654         bucket->virt_irq = virt_irq_alloc(__irq(bucket));
655         set_irq_chip(bucket->virt_irq, &sun4v_virq);
656
657         data = kzalloc(sizeof(struct irq_handler_data), GFP_ATOMIC);
658         if (unlikely(!data))
659                 return 0;
660
661         set_irq_chip_data(bucket->virt_irq, data);
662
663         /* Catch accidental accesses to these things.  IMAP/ICLR handling
664          * is done by hypervisor calls on sun4v platforms, not by direct
665          * register accesses.
666          */
667         data->imap = ~0UL;
668         data->iclr = ~0UL;
669
670         cookie = ~__pa(bucket);
671         hv_err = sun4v_vintr_set_cookie(devhandle, devino, cookie);
672         if (hv_err) {
673                 prom_printf("IRQ: Fatal, cannot set cookie for [%x:%x] "
674                             "err=%lu\n", devhandle, devino, hv_err);
675                 prom_halt();
676         }
677
678         virt_to_real_irq_table[bucket->virt_irq].dev_handle = devhandle;
679         virt_to_real_irq_table[bucket->virt_irq].dev_ino = devino;
680
681         return bucket->virt_irq;
682 }
683
684 void ack_bad_irq(unsigned int virt_irq)
685 {
686         struct ino_bucket *bucket = virt_irq_to_bucket(virt_irq);
687         unsigned int ino = 0xdeadbeef;
688
689         if (bucket)
690                 ino = bucket - &ivector_table[0];
691
692         printk(KERN_CRIT "Unexpected IRQ from ino[%x] virt_irq[%u]\n",
693                ino, virt_irq);
694 }
695
696 void handler_irq(int irq, struct pt_regs *regs)
697 {
698         unsigned long pstate, bucket_pa;
699         struct pt_regs *old_regs;
700
701         clear_softint(1 << irq);
702
703         old_regs = set_irq_regs(regs);
704         irq_enter();
705
706         /* Grab an atomic snapshot of the pending IVECs.  */
707         __asm__ __volatile__("rdpr      %%pstate, %0\n\t"
708                              "wrpr      %0, %3, %%pstate\n\t"
709                              "ldx       [%2], %1\n\t"
710                              "stx       %%g0, [%2]\n\t"
711                              "wrpr      %0, 0x0, %%pstate\n\t"
712                              : "=&r" (pstate), "=&r" (bucket_pa)
713                              : "r" (irq_work_pa(smp_processor_id())),
714                                "i" (PSTATE_IE)
715                              : "memory");
716
717         while (bucket_pa) {
718                 unsigned long next_pa;
719                 unsigned int virt_irq;
720
721                 __asm__ __volatile__("ldxa      [%2] %4, %0\n\t"
722                                      "lduwa     [%3] %4, %1\n\t"
723                                      "stxa      %%g0, [%2] %4"
724                                      : "=&r" (next_pa), "=&r" (virt_irq)
725                                      : "r" (bucket_pa +
726                                             offsetof(struct ino_bucket,
727                                                      irq_chain_pa)),
728                                        "r" (bucket_pa +
729                                             offsetof(struct ino_bucket,
730                                                      virt_irq)),
731                                        "i" (ASI_PHYS_USE_EC));
732
733                 __do_IRQ(virt_irq);
734
735                 bucket_pa = next_pa;
736         }
737
738         irq_exit();
739         set_irq_regs(old_regs);
740 }
741
742 #ifdef CONFIG_HOTPLUG_CPU
743 void fixup_irqs(void)
744 {
745         unsigned int irq;
746
747         for (irq = 0; irq < NR_IRQS; irq++) {
748                 unsigned long flags;
749
750                 spin_lock_irqsave(&irq_desc[irq].lock, flags);
751                 if (irq_desc[irq].action &&
752                     !(irq_desc[irq].status & IRQ_PER_CPU)) {
753                         if (irq_desc[irq].chip->set_affinity)
754                                 irq_desc[irq].chip->set_affinity(irq,
755                                         irq_desc[irq].affinity);
756                 }
757                 spin_unlock_irqrestore(&irq_desc[irq].lock, flags);
758         }
759 }
760 #endif
761
762 struct sun5_timer {
763         u64     count0;
764         u64     limit0;
765         u64     count1;
766         u64     limit1;
767 };
768
769 static struct sun5_timer *prom_timers;
770 static u64 prom_limit0, prom_limit1;
771
772 static void map_prom_timers(void)
773 {
774         struct device_node *dp;
775         const unsigned int *addr;
776
777         /* PROM timer node hangs out in the top level of device siblings... */
778         dp = of_find_node_by_path("/");
779         dp = dp->child;
780         while (dp) {
781                 if (!strcmp(dp->name, "counter-timer"))
782                         break;
783                 dp = dp->sibling;
784         }
785
786         /* Assume if node is not present, PROM uses different tick mechanism
787          * which we should not care about.
788          */
789         if (!dp) {
790                 prom_timers = (struct sun5_timer *) 0;
791                 return;
792         }
793
794         /* If PROM is really using this, it must be mapped by him. */
795         addr = of_get_property(dp, "address", NULL);
796         if (!addr) {
797                 prom_printf("PROM does not have timer mapped, trying to continue.\n");
798                 prom_timers = (struct sun5_timer *) 0;
799                 return;
800         }
801         prom_timers = (struct sun5_timer *) ((unsigned long)addr[0]);
802 }
803
804 static void kill_prom_timer(void)
805 {
806         if (!prom_timers)
807                 return;
808
809         /* Save them away for later. */
810         prom_limit0 = prom_timers->limit0;
811         prom_limit1 = prom_timers->limit1;
812
813         /* Just as in sun4c/sun4m PROM uses timer which ticks at IRQ 14.
814          * We turn both off here just to be paranoid.
815          */
816         prom_timers->limit0 = 0;
817         prom_timers->limit1 = 0;
818
819         /* Wheee, eat the interrupt packet too... */
820         __asm__ __volatile__(
821 "       mov     0x40, %%g2\n"
822 "       ldxa    [%%g0] %0, %%g1\n"
823 "       ldxa    [%%g2] %1, %%g1\n"
824 "       stxa    %%g0, [%%g0] %0\n"
825 "       membar  #Sync\n"
826         : /* no outputs */
827         : "i" (ASI_INTR_RECEIVE), "i" (ASI_INTR_R)
828         : "g1", "g2");
829 }
830
831 void init_irqwork_curcpu(void)
832 {
833         int cpu = hard_smp_processor_id();
834
835         trap_block[cpu].irq_worklist_pa = 0UL;
836 }
837
838 /* Please be very careful with register_one_mondo() and
839  * sun4v_register_mondo_queues().
840  *
841  * On SMP this gets invoked from the CPU trampoline before
842  * the cpu has fully taken over the trap table from OBP,
843  * and it's kernel stack + %g6 thread register state is
844  * not fully cooked yet.
845  *
846  * Therefore you cannot make any OBP calls, not even prom_printf,
847  * from these two routines.
848  */
849 static void __cpuinit register_one_mondo(unsigned long paddr, unsigned long type, unsigned long qmask)
850 {
851         unsigned long num_entries = (qmask + 1) / 64;
852         unsigned long status;
853
854         status = sun4v_cpu_qconf(type, paddr, num_entries);
855         if (status != HV_EOK) {
856                 prom_printf("SUN4V: sun4v_cpu_qconf(%lu:%lx:%lu) failed, "
857                             "err %lu\n", type, paddr, num_entries, status);
858                 prom_halt();
859         }
860 }
861
862 void __cpuinit sun4v_register_mondo_queues(int this_cpu)
863 {
864         struct trap_per_cpu *tb = &trap_block[this_cpu];
865
866         register_one_mondo(tb->cpu_mondo_pa, HV_CPU_QUEUE_CPU_MONDO,
867                            tb->cpu_mondo_qmask);
868         register_one_mondo(tb->dev_mondo_pa, HV_CPU_QUEUE_DEVICE_MONDO,
869                            tb->dev_mondo_qmask);
870         register_one_mondo(tb->resum_mondo_pa, HV_CPU_QUEUE_RES_ERROR,
871                            tb->resum_qmask);
872         register_one_mondo(tb->nonresum_mondo_pa, HV_CPU_QUEUE_NONRES_ERROR,
873                            tb->nonresum_qmask);
874 }
875
876 static void __init alloc_one_mondo(unsigned long *pa_ptr, unsigned long qmask)
877 {
878         unsigned long size = PAGE_ALIGN(qmask + 1);
879         void *p = __alloc_bootmem_low(size, size, 0);
880         if (!p) {
881                 prom_printf("SUN4V: Error, cannot allocate mondo queue.\n");
882                 prom_halt();
883         }
884
885         *pa_ptr = __pa(p);
886 }
887
888 static void __init alloc_one_kbuf(unsigned long *pa_ptr, unsigned long qmask)
889 {
890         unsigned long size = PAGE_ALIGN(qmask + 1);
891         void *p = __alloc_bootmem_low(size, size, 0);
892
893         if (!p) {
894                 prom_printf("SUN4V: Error, cannot allocate kbuf page.\n");
895                 prom_halt();
896         }
897
898         *pa_ptr = __pa(p);
899 }
900
901 static void __init init_cpu_send_mondo_info(struct trap_per_cpu *tb)
902 {
903 #ifdef CONFIG_SMP
904         void *page;
905
906         BUILD_BUG_ON((NR_CPUS * sizeof(u16)) > (PAGE_SIZE - 64));
907
908         page = alloc_bootmem_low_pages(PAGE_SIZE);
909         if (!page) {
910                 prom_printf("SUN4V: Error, cannot allocate cpu mondo page.\n");
911                 prom_halt();
912         }
913
914         tb->cpu_mondo_block_pa = __pa(page);
915         tb->cpu_list_pa = __pa(page + 64);
916 #endif
917 }
918
919 /* Allocate mondo and error queues for all possible cpus.  */
920 static void __init sun4v_init_mondo_queues(void)
921 {
922         int cpu;
923
924         for_each_possible_cpu(cpu) {
925                 struct trap_per_cpu *tb = &trap_block[cpu];
926
927                 alloc_one_mondo(&tb->cpu_mondo_pa, tb->cpu_mondo_qmask);
928                 alloc_one_mondo(&tb->dev_mondo_pa, tb->dev_mondo_qmask);
929                 alloc_one_mondo(&tb->resum_mondo_pa, tb->resum_qmask);
930                 alloc_one_kbuf(&tb->resum_kernel_buf_pa, tb->resum_qmask);
931                 alloc_one_mondo(&tb->nonresum_mondo_pa, tb->nonresum_qmask);
932                 alloc_one_kbuf(&tb->nonresum_kernel_buf_pa,
933                                tb->nonresum_qmask);
934
935                 init_cpu_send_mondo_info(tb);
936         }
937
938         /* Load up the boot cpu's entries.  */
939         sun4v_register_mondo_queues(hard_smp_processor_id());
940 }
941
942 static struct irqaction timer_irq_action = {
943         .name = "timer",
944 };
945
946 /* Only invoked on boot processor. */
947 void __init init_IRQ(void)
948 {
949         unsigned long size;
950
951         map_prom_timers();
952         kill_prom_timer();
953
954         size = sizeof(struct ino_bucket) * NUM_IVECS;
955         ivector_table = alloc_bootmem_low(size);
956         if (!ivector_table) {
957                 prom_printf("Fatal error, cannot allocate ivector_table\n");
958                 prom_halt();
959         }
960
961         ivector_table_pa = __pa(ivector_table);
962
963         if (tlb_type == hypervisor)
964                 sun4v_init_mondo_queues();
965
966         /* We need to clear any IRQ's pending in the soft interrupt
967          * registers, a spurious one could be left around from the
968          * PROM timer which we just disabled.
969          */
970         clear_softint(get_softint());
971
972         /* Now that ivector table is initialized, it is safe
973          * to receive IRQ vector traps.  We will normally take
974          * one or two right now, in case some device PROM used
975          * to boot us wants to speak to us.  We just ignore them.
976          */
977         __asm__ __volatile__("rdpr      %%pstate, %%g1\n\t"
978                              "or        %%g1, %0, %%g1\n\t"
979                              "wrpr      %%g1, 0x0, %%pstate"
980                              : /* No outputs */
981                              : "i" (PSTATE_IE)
982                              : "g1");
983
984         irq_desc[0].action = &timer_irq_action;
985 }