Make binary stripping conditional (Riku Voipio)
[qemu-kvm/fedora.git] / hw / apic.c
bloba394da97729251f4c71d245a637c9932eed8d1c2
1 /*
2 * APIC support
4 * Copyright (c) 2004-2005 Fabrice Bellard
6 * This library is free software; you can redistribute it and/or
7 * modify it under the terms of the GNU Lesser General Public
8 * License as published by the Free Software Foundation; either
9 * version 2 of the License, or (at your option) any later version.
11 * This library is distributed in the hope that it will be useful,
12 * but WITHOUT ANY WARRANTY; without even the implied warranty of
13 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
14 * Lesser General Public License for more details.
16 * You should have received a copy of the GNU Lesser General Public
17 * License along with this library; if not, write to the Free Software
18 * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston MA 02110-1301 USA
20 #include "hw.h"
21 #include "pc.h"
22 #include "qemu-timer.h"
23 #include "host-utils.h"
25 #include "qemu-kvm.h"
27 //#define DEBUG_APIC
28 //#define DEBUG_IOAPIC
30 /* APIC Local Vector Table */
31 #define APIC_LVT_TIMER 0
32 #define APIC_LVT_THERMAL 1
33 #define APIC_LVT_PERFORM 2
34 #define APIC_LVT_LINT0 3
35 #define APIC_LVT_LINT1 4
36 #define APIC_LVT_ERROR 5
37 #define APIC_LVT_NB 6
39 /* APIC delivery modes */
40 #define APIC_DM_FIXED 0
41 #define APIC_DM_LOWPRI 1
42 #define APIC_DM_SMI 2
43 #define APIC_DM_NMI 4
44 #define APIC_DM_INIT 5
45 #define APIC_DM_SIPI 6
46 #define APIC_DM_EXTINT 7
48 /* APIC destination mode */
49 #define APIC_DESTMODE_FLAT 0xf
50 #define APIC_DESTMODE_CLUSTER 1
52 #define APIC_TRIGGER_EDGE 0
53 #define APIC_TRIGGER_LEVEL 1
55 #define APIC_LVT_TIMER_PERIODIC (1<<17)
56 #define APIC_LVT_MASKED (1<<16)
57 #define APIC_LVT_LEVEL_TRIGGER (1<<15)
58 #define APIC_LVT_REMOTE_IRR (1<<14)
59 #define APIC_INPUT_POLARITY (1<<13)
60 #define APIC_SEND_PENDING (1<<12)
62 /* FIXME: it's now hard coded to be equal with KVM_IOAPIC_NUM_PINS */
63 #define IOAPIC_NUM_PINS 0x18
64 #define IOAPIC_DEFAULT_BASE_ADDRESS 0xfec00000
66 #define ESR_ILLEGAL_ADDRESS (1 << 7)
68 #define APIC_SV_ENABLE (1 << 8)
70 #define MAX_APICS 255
71 #define MAX_APIC_WORDS 8
73 typedef struct APICState {
74 CPUState *cpu_env;
75 uint32_t apicbase;
76 uint8_t id;
77 uint8_t arb_id;
78 uint8_t tpr;
79 uint32_t spurious_vec;
80 uint8_t log_dest;
81 uint8_t dest_mode;
82 uint32_t isr[8]; /* in service register */
83 uint32_t tmr[8]; /* trigger mode register */
84 uint32_t irr[8]; /* interrupt request register */
85 uint32_t lvt[APIC_LVT_NB];
86 uint32_t esr; /* error register */
87 uint32_t icr[2];
89 uint32_t divide_conf;
90 int count_shift;
91 uint32_t initial_count;
92 int64_t initial_count_load_time, next_time;
93 QEMUTimer *timer;
94 } APICState;
96 struct IOAPICState {
97 uint8_t id;
98 uint8_t ioregsel;
99 uint64_t base_address;
101 uint32_t irr;
102 uint64_t ioredtbl[IOAPIC_NUM_PINS];
105 static int apic_io_memory;
106 static APICState *local_apics[MAX_APICS + 1];
107 static int last_apic_id = 0;
108 static int apic_irq_delivered;
111 static void apic_init_ipi(APICState *s);
112 static void apic_set_irq(APICState *s, int vector_num, int trigger_mode);
113 static void apic_update_irq(APICState *s);
115 /* Find first bit starting from msb */
116 static int fls_bit(uint32_t value)
118 return 31 - clz32(value);
121 /* Find first bit starting from lsb */
122 static int ffs_bit(uint32_t value)
124 return ctz32(value);
127 static inline void set_bit(uint32_t *tab, int index)
129 int i, mask;
130 i = index >> 5;
131 mask = 1 << (index & 0x1f);
132 tab[i] |= mask;
135 static inline void reset_bit(uint32_t *tab, int index)
137 int i, mask;
138 i = index >> 5;
139 mask = 1 << (index & 0x1f);
140 tab[i] &= ~mask;
143 static inline int get_bit(uint32_t *tab, int index)
145 int i, mask;
146 i = index >> 5;
147 mask = 1 << (index & 0x1f);
148 return !!(tab[i] & mask);
151 static void apic_local_deliver(CPUState *env, int vector)
153 APICState *s = env->apic_state;
154 uint32_t lvt = s->lvt[vector];
155 int trigger_mode;
157 if (lvt & APIC_LVT_MASKED)
158 return;
160 switch ((lvt >> 8) & 7) {
161 case APIC_DM_SMI:
162 cpu_interrupt(env, CPU_INTERRUPT_SMI);
163 break;
165 case APIC_DM_NMI:
166 cpu_interrupt(env, CPU_INTERRUPT_NMI);
167 break;
169 case APIC_DM_EXTINT:
170 cpu_interrupt(env, CPU_INTERRUPT_HARD);
171 break;
173 case APIC_DM_FIXED:
174 trigger_mode = APIC_TRIGGER_EDGE;
175 if ((vector == APIC_LVT_LINT0 || vector == APIC_LVT_LINT1) &&
176 (lvt & APIC_LVT_LEVEL_TRIGGER))
177 trigger_mode = APIC_TRIGGER_LEVEL;
178 apic_set_irq(s, lvt & 0xff, trigger_mode);
182 void apic_deliver_pic_intr(CPUState *env, int level)
184 if (level)
185 apic_local_deliver(env, APIC_LVT_LINT0);
186 else {
187 APICState *s = env->apic_state;
188 uint32_t lvt = s->lvt[APIC_LVT_LINT0];
190 switch ((lvt >> 8) & 7) {
191 case APIC_DM_FIXED:
192 if (!(lvt & APIC_LVT_LEVEL_TRIGGER))
193 break;
194 reset_bit(s->irr, lvt & 0xff);
195 /* fall through */
196 case APIC_DM_EXTINT:
197 cpu_reset_interrupt(env, CPU_INTERRUPT_HARD);
198 break;
203 #define foreach_apic(apic, deliver_bitmask, code) \
205 int __i, __j, __mask;\
206 for(__i = 0; __i < MAX_APIC_WORDS; __i++) {\
207 __mask = deliver_bitmask[__i];\
208 if (__mask) {\
209 for(__j = 0; __j < 32; __j++) {\
210 if (__mask & (1 << __j)) {\
211 apic = local_apics[__i * 32 + __j];\
212 if (apic) {\
213 code;\
221 static void apic_bus_deliver(const uint32_t *deliver_bitmask,
222 uint8_t delivery_mode,
223 uint8_t vector_num, uint8_t polarity,
224 uint8_t trigger_mode)
226 APICState *apic_iter;
228 switch (delivery_mode) {
229 case APIC_DM_LOWPRI:
230 /* XXX: search for focus processor, arbitration */
232 int i, d;
233 d = -1;
234 for(i = 0; i < MAX_APIC_WORDS; i++) {
235 if (deliver_bitmask[i]) {
236 d = i * 32 + ffs_bit(deliver_bitmask[i]);
237 break;
240 if (d >= 0) {
241 apic_iter = local_apics[d];
242 if (apic_iter) {
243 apic_set_irq(apic_iter, vector_num, trigger_mode);
247 return;
249 case APIC_DM_FIXED:
250 break;
252 case APIC_DM_SMI:
253 foreach_apic(apic_iter, deliver_bitmask,
254 cpu_interrupt(apic_iter->cpu_env, CPU_INTERRUPT_SMI) );
255 return;
257 case APIC_DM_NMI:
258 foreach_apic(apic_iter, deliver_bitmask,
259 cpu_interrupt(apic_iter->cpu_env, CPU_INTERRUPT_NMI) );
260 return;
262 case APIC_DM_INIT:
263 /* normal INIT IPI sent to processors */
264 foreach_apic(apic_iter, deliver_bitmask,
265 apic_init_ipi(apic_iter) );
266 return;
268 case APIC_DM_EXTINT:
269 /* handled in I/O APIC code */
270 break;
272 default:
273 return;
276 foreach_apic(apic_iter, deliver_bitmask,
277 apic_set_irq(apic_iter, vector_num, trigger_mode) );
280 void cpu_set_apic_base(CPUState *env, uint64_t val)
282 APICState *s = env->apic_state;
283 #ifdef DEBUG_APIC
284 printf("cpu_set_apic_base: %016" PRIx64 "\n", val);
285 #endif
286 if (kvm_enabled() && qemu_kvm_irqchip_in_kernel())
287 s->apicbase = val;
288 else
289 s->apicbase = (val & 0xfffff000) |
290 (s->apicbase & (MSR_IA32_APICBASE_BSP | MSR_IA32_APICBASE_ENABLE));
291 /* if disabled, cannot be enabled again */
292 if (!(val & MSR_IA32_APICBASE_ENABLE)) {
293 s->apicbase &= ~MSR_IA32_APICBASE_ENABLE;
294 env->cpuid_features &= ~CPUID_APIC;
295 s->spurious_vec &= ~APIC_SV_ENABLE;
299 uint64_t cpu_get_apic_base(CPUState *env)
301 APICState *s = env->apic_state;
302 #ifdef DEBUG_APIC
303 printf("cpu_get_apic_base: %016" PRIx64 "\n", (uint64_t)s->apicbase);
304 #endif
305 return s->apicbase;
308 void cpu_set_apic_tpr(CPUX86State *env, uint8_t val)
310 APICState *s = env->apic_state;
311 s->tpr = (val & 0x0f) << 4;
312 apic_update_irq(s);
315 uint8_t cpu_get_apic_tpr(CPUX86State *env)
317 APICState *s = env->apic_state;
318 return s->tpr >> 4;
321 /* return -1 if no bit is set */
322 static int get_highest_priority_int(uint32_t *tab)
324 int i;
325 for(i = 7; i >= 0; i--) {
326 if (tab[i] != 0) {
327 return i * 32 + fls_bit(tab[i]);
330 return -1;
333 static int apic_get_ppr(APICState *s)
335 int tpr, isrv, ppr;
337 tpr = (s->tpr >> 4);
338 isrv = get_highest_priority_int(s->isr);
339 if (isrv < 0)
340 isrv = 0;
341 isrv >>= 4;
342 if (tpr >= isrv)
343 ppr = s->tpr;
344 else
345 ppr = isrv << 4;
346 return ppr;
349 static int apic_get_arb_pri(APICState *s)
351 /* XXX: arbitration */
352 return 0;
355 /* signal the CPU if an irq is pending */
356 static void apic_update_irq(APICState *s)
358 int irrv, ppr;
359 if (!(s->spurious_vec & APIC_SV_ENABLE))
360 return;
361 irrv = get_highest_priority_int(s->irr);
362 if (irrv < 0)
363 return;
364 ppr = apic_get_ppr(s);
365 if (ppr && (irrv & 0xf0) <= (ppr & 0xf0))
366 return;
367 cpu_interrupt(s->cpu_env, CPU_INTERRUPT_HARD);
370 void apic_reset_irq_delivered(void)
372 apic_irq_delivered = 0;
375 int apic_get_irq_delivered(void)
377 return apic_irq_delivered;
380 void apic_set_irq_delivered(void)
382 apic_irq_delivered = 1;
385 static void apic_set_irq(APICState *s, int vector_num, int trigger_mode)
387 apic_irq_delivered += !get_bit(s->irr, vector_num);
389 set_bit(s->irr, vector_num);
390 if (trigger_mode)
391 set_bit(s->tmr, vector_num);
392 else
393 reset_bit(s->tmr, vector_num);
394 apic_update_irq(s);
397 static void apic_eoi(APICState *s)
399 int isrv;
400 isrv = get_highest_priority_int(s->isr);
401 if (isrv < 0)
402 return;
403 reset_bit(s->isr, isrv);
404 /* XXX: send the EOI packet to the APIC bus to allow the I/O APIC to
405 set the remote IRR bit for level triggered interrupts. */
406 apic_update_irq(s);
409 static void apic_get_delivery_bitmask(uint32_t *deliver_bitmask,
410 uint8_t dest, uint8_t dest_mode)
412 APICState *apic_iter;
413 int i;
415 if (dest_mode == 0) {
416 if (dest == 0xff) {
417 memset(deliver_bitmask, 0xff, MAX_APIC_WORDS * sizeof(uint32_t));
418 } else {
419 memset(deliver_bitmask, 0x00, MAX_APIC_WORDS * sizeof(uint32_t));
420 set_bit(deliver_bitmask, dest);
422 } else {
423 /* XXX: cluster mode */
424 memset(deliver_bitmask, 0x00, MAX_APIC_WORDS * sizeof(uint32_t));
425 for(i = 0; i < MAX_APICS; i++) {
426 apic_iter = local_apics[i];
427 if (apic_iter) {
428 if (apic_iter->dest_mode == 0xf) {
429 if (dest & apic_iter->log_dest)
430 set_bit(deliver_bitmask, i);
431 } else if (apic_iter->dest_mode == 0x0) {
432 if ((dest & 0xf0) == (apic_iter->log_dest & 0xf0) &&
433 (dest & apic_iter->log_dest & 0x0f)) {
434 set_bit(deliver_bitmask, i);
443 static void apic_init_ipi(APICState *s)
445 int i;
447 s->tpr = 0;
448 s->spurious_vec = 0xff;
449 s->log_dest = 0;
450 s->dest_mode = 0xf;
451 memset(s->isr, 0, sizeof(s->isr));
452 memset(s->tmr, 0, sizeof(s->tmr));
453 memset(s->irr, 0, sizeof(s->irr));
454 for(i = 0; i < APIC_LVT_NB; i++)
455 s->lvt[i] = 1 << 16; /* mask LVT */
456 s->esr = 0;
457 memset(s->icr, 0, sizeof(s->icr));
458 s->divide_conf = 0;
459 s->count_shift = 0;
460 s->initial_count = 0;
461 s->initial_count_load_time = 0;
462 s->next_time = 0;
464 cpu_reset(s->cpu_env);
466 if (!(s->apicbase & MSR_IA32_APICBASE_BSP) &&
467 (!kvm_enabled() || !qemu_kvm_irqchip_in_kernel()))
468 s->cpu_env->halted = 1;
470 if (kvm_enabled() && !qemu_kvm_irqchip_in_kernel())
471 if (s->cpu_env)
472 kvm_apic_init(s->cpu_env);
475 /* send a SIPI message to the CPU to start it */
476 static void apic_startup(APICState *s, int vector_num)
478 CPUState *env = s->cpu_env;
479 if (!env->halted)
480 return;
481 env->eip = 0;
482 cpu_x86_load_seg_cache(env, R_CS, vector_num << 8, vector_num << 12,
483 0xffff, 0);
484 env->halted = 0;
485 if (kvm_enabled() && !qemu_kvm_irqchip_in_kernel())
486 kvm_update_after_sipi(env);
489 static void apic_deliver(APICState *s, uint8_t dest, uint8_t dest_mode,
490 uint8_t delivery_mode, uint8_t vector_num,
491 uint8_t polarity, uint8_t trigger_mode)
493 uint32_t deliver_bitmask[MAX_APIC_WORDS];
494 int dest_shorthand = (s->icr[0] >> 18) & 3;
495 APICState *apic_iter;
497 switch (dest_shorthand) {
498 case 0:
499 apic_get_delivery_bitmask(deliver_bitmask, dest, dest_mode);
500 break;
501 case 1:
502 memset(deliver_bitmask, 0x00, sizeof(deliver_bitmask));
503 set_bit(deliver_bitmask, s->id);
504 break;
505 case 2:
506 memset(deliver_bitmask, 0xff, sizeof(deliver_bitmask));
507 break;
508 case 3:
509 memset(deliver_bitmask, 0xff, sizeof(deliver_bitmask));
510 reset_bit(deliver_bitmask, s->id);
511 break;
514 switch (delivery_mode) {
515 case APIC_DM_INIT:
517 int trig_mode = (s->icr[0] >> 15) & 1;
518 int level = (s->icr[0] >> 14) & 1;
519 if (level == 0 && trig_mode == 1) {
520 foreach_apic(apic_iter, deliver_bitmask,
521 apic_iter->arb_id = apic_iter->id );
522 return;
525 break;
527 case APIC_DM_SIPI:
528 foreach_apic(apic_iter, deliver_bitmask,
529 apic_startup(apic_iter, vector_num) );
530 return;
533 apic_bus_deliver(deliver_bitmask, delivery_mode, vector_num, polarity,
534 trigger_mode);
537 int apic_get_interrupt(CPUState *env)
539 APICState *s = env->apic_state;
540 int intno;
542 /* if the APIC is installed or enabled, we let the 8259 handle the
543 IRQs */
544 if (!s)
545 return -1;
546 if (!(s->spurious_vec & APIC_SV_ENABLE))
547 return -1;
549 /* XXX: spurious IRQ handling */
550 intno = get_highest_priority_int(s->irr);
551 if (intno < 0)
552 return -1;
553 if (s->tpr && intno <= s->tpr)
554 return s->spurious_vec & 0xff;
555 reset_bit(s->irr, intno);
556 set_bit(s->isr, intno);
557 apic_update_irq(s);
558 return intno;
561 int apic_accept_pic_intr(CPUState *env)
563 APICState *s = env->apic_state;
564 uint32_t lvt0;
566 if (!s)
567 return -1;
569 lvt0 = s->lvt[APIC_LVT_LINT0];
571 if ((s->apicbase & MSR_IA32_APICBASE_ENABLE) == 0 ||
572 (lvt0 & APIC_LVT_MASKED) == 0)
573 return 1;
575 return 0;
578 static uint32_t apic_get_current_count(APICState *s)
580 int64_t d;
581 uint32_t val;
582 d = (qemu_get_clock(vm_clock) - s->initial_count_load_time) >>
583 s->count_shift;
584 if (s->lvt[APIC_LVT_TIMER] & APIC_LVT_TIMER_PERIODIC) {
585 /* periodic */
586 val = s->initial_count - (d % ((uint64_t)s->initial_count + 1));
587 } else {
588 if (d >= s->initial_count)
589 val = 0;
590 else
591 val = s->initial_count - d;
593 return val;
596 static void apic_timer_update(APICState *s, int64_t current_time)
598 int64_t next_time, d;
600 if (!(s->lvt[APIC_LVT_TIMER] & APIC_LVT_MASKED)) {
601 d = (current_time - s->initial_count_load_time) >>
602 s->count_shift;
603 if (s->lvt[APIC_LVT_TIMER] & APIC_LVT_TIMER_PERIODIC) {
604 if (!s->initial_count)
605 goto no_timer;
606 d = ((d / ((uint64_t)s->initial_count + 1)) + 1) * ((uint64_t)s->initial_count + 1);
607 } else {
608 if (d >= s->initial_count)
609 goto no_timer;
610 d = (uint64_t)s->initial_count + 1;
612 next_time = s->initial_count_load_time + (d << s->count_shift);
613 qemu_mod_timer(s->timer, next_time);
614 s->next_time = next_time;
615 } else {
616 no_timer:
617 qemu_del_timer(s->timer);
621 static void apic_timer(void *opaque)
623 APICState *s = opaque;
625 apic_local_deliver(s->cpu_env, APIC_LVT_TIMER);
626 apic_timer_update(s, s->next_time);
629 static uint32_t apic_mem_readb(void *opaque, target_phys_addr_t addr)
631 return 0;
634 static uint32_t apic_mem_readw(void *opaque, target_phys_addr_t addr)
636 return 0;
639 static void apic_mem_writeb(void *opaque, target_phys_addr_t addr, uint32_t val)
643 static void apic_mem_writew(void *opaque, target_phys_addr_t addr, uint32_t val)
647 static uint32_t apic_mem_readl(void *opaque, target_phys_addr_t addr)
649 CPUState *env;
650 APICState *s;
651 uint32_t val;
652 int index;
654 env = cpu_single_env;
655 if (!env)
656 return 0;
657 s = env->apic_state;
659 index = (addr >> 4) & 0xff;
660 switch(index) {
661 case 0x02: /* id */
662 val = s->id << 24;
663 break;
664 case 0x03: /* version */
665 val = 0x11 | ((APIC_LVT_NB - 1) << 16); /* version 0x11 */
666 break;
667 case 0x08:
668 val = s->tpr;
669 break;
670 case 0x09:
671 val = apic_get_arb_pri(s);
672 break;
673 case 0x0a:
674 /* ppr */
675 val = apic_get_ppr(s);
676 break;
677 case 0x0b:
678 val = 0;
679 break;
680 case 0x0d:
681 val = s->log_dest << 24;
682 break;
683 case 0x0e:
684 val = s->dest_mode << 28;
685 break;
686 case 0x0f:
687 val = s->spurious_vec;
688 break;
689 case 0x10 ... 0x17:
690 val = s->isr[index & 7];
691 break;
692 case 0x18 ... 0x1f:
693 val = s->tmr[index & 7];
694 break;
695 case 0x20 ... 0x27:
696 val = s->irr[index & 7];
697 break;
698 case 0x28:
699 val = s->esr;
700 break;
701 case 0x30:
702 case 0x31:
703 val = s->icr[index & 1];
704 break;
705 case 0x32 ... 0x37:
706 val = s->lvt[index - 0x32];
707 break;
708 case 0x38:
709 val = s->initial_count;
710 break;
711 case 0x39:
712 val = apic_get_current_count(s);
713 break;
714 case 0x3e:
715 val = s->divide_conf;
716 break;
717 default:
718 s->esr |= ESR_ILLEGAL_ADDRESS;
719 val = 0;
720 break;
722 #ifdef DEBUG_APIC
723 printf("APIC read: %08x = %08x\n", (uint32_t)addr, val);
724 #endif
725 return val;
728 static void apic_mem_writel(void *opaque, target_phys_addr_t addr, uint32_t val)
730 CPUState *env;
731 APICState *s;
732 int index;
734 env = cpu_single_env;
735 if (!env)
736 return;
737 s = env->apic_state;
739 #ifdef DEBUG_APIC
740 printf("APIC write: %08x = %08x\n", (uint32_t)addr, val);
741 #endif
743 index = (addr >> 4) & 0xff;
744 switch(index) {
745 case 0x02:
746 s->id = (val >> 24);
747 break;
748 case 0x03:
749 break;
750 case 0x08:
751 s->tpr = val;
752 apic_update_irq(s);
753 break;
754 case 0x09:
755 case 0x0a:
756 break;
757 case 0x0b: /* EOI */
758 apic_eoi(s);
759 break;
760 case 0x0d:
761 s->log_dest = val >> 24;
762 break;
763 case 0x0e:
764 s->dest_mode = val >> 28;
765 break;
766 case 0x0f:
767 s->spurious_vec = val & 0x1ff;
768 apic_update_irq(s);
769 break;
770 case 0x10 ... 0x17:
771 case 0x18 ... 0x1f:
772 case 0x20 ... 0x27:
773 case 0x28:
774 break;
775 case 0x30:
776 s->icr[0] = val;
777 apic_deliver(s, (s->icr[1] >> 24) & 0xff, (s->icr[0] >> 11) & 1,
778 (s->icr[0] >> 8) & 7, (s->icr[0] & 0xff),
779 (s->icr[0] >> 14) & 1, (s->icr[0] >> 15) & 1);
780 break;
781 case 0x31:
782 s->icr[1] = val;
783 break;
784 case 0x32 ... 0x37:
786 int n = index - 0x32;
787 s->lvt[n] = val;
788 if (n == APIC_LVT_TIMER)
789 apic_timer_update(s, qemu_get_clock(vm_clock));
791 break;
792 case 0x38:
793 s->initial_count = val;
794 s->initial_count_load_time = qemu_get_clock(vm_clock);
795 apic_timer_update(s, s->initial_count_load_time);
796 break;
797 case 0x39:
798 break;
799 case 0x3e:
801 int v;
802 s->divide_conf = val & 0xb;
803 v = (s->divide_conf & 3) | ((s->divide_conf >> 1) & 4);
804 s->count_shift = (v + 1) & 7;
806 break;
807 default:
808 s->esr |= ESR_ILLEGAL_ADDRESS;
809 break;
813 #ifdef KVM_CAP_IRQCHIP
815 static inline uint32_t kapic_reg(struct kvm_lapic_state *kapic, int reg_id)
817 return *((uint32_t *) (kapic->regs + (reg_id << 4)));
820 static inline void kapic_set_reg(struct kvm_lapic_state *kapic,
821 int reg_id, uint32_t val)
823 *((uint32_t *) (kapic->regs + (reg_id << 4))) = val;
826 static void kvm_kernel_lapic_save_to_user(APICState *s)
828 struct kvm_lapic_state apic;
829 struct kvm_lapic_state *kapic = &apic;
830 int i, v;
832 kvm_get_lapic(kvm_context, s->cpu_env->cpu_index, kapic);
834 s->id = kapic_reg(kapic, 0x2) >> 24;
835 s->tpr = kapic_reg(kapic, 0x8);
836 s->arb_id = kapic_reg(kapic, 0x9);
837 s->log_dest = kapic_reg(kapic, 0xd) >> 24;
838 s->dest_mode = kapic_reg(kapic, 0xe) >> 28;
839 s->spurious_vec = kapic_reg(kapic, 0xf);
840 for (i = 0; i < 8; i++) {
841 s->isr[i] = kapic_reg(kapic, 0x10 + i);
842 s->tmr[i] = kapic_reg(kapic, 0x18 + i);
843 s->irr[i] = kapic_reg(kapic, 0x20 + i);
845 s->esr = kapic_reg(kapic, 0x28);
846 s->icr[0] = kapic_reg(kapic, 0x30);
847 s->icr[1] = kapic_reg(kapic, 0x31);
848 for (i = 0; i < APIC_LVT_NB; i++)
849 s->lvt[i] = kapic_reg(kapic, 0x32 + i);
850 s->initial_count = kapic_reg(kapic, 0x38);
851 s->divide_conf = kapic_reg(kapic, 0x3e);
853 v = (s->divide_conf & 3) | ((s->divide_conf >> 1) & 4);
854 s->count_shift = (v + 1) & 7;
856 s->initial_count_load_time = qemu_get_clock(vm_clock);
857 apic_timer_update(s, s->initial_count_load_time);
860 static void kvm_kernel_lapic_load_from_user(APICState *s)
862 struct kvm_lapic_state apic;
863 struct kvm_lapic_state *klapic = &apic;
864 int i;
866 memset(klapic, 0, sizeof apic);
867 kapic_set_reg(klapic, 0x2, s->id << 24);
868 kapic_set_reg(klapic, 0x8, s->tpr);
869 kapic_set_reg(klapic, 0xd, s->log_dest << 24);
870 kapic_set_reg(klapic, 0xe, s->dest_mode << 28 | 0x0fffffff);
871 kapic_set_reg(klapic, 0xf, s->spurious_vec);
872 for (i = 0; i < 8; i++) {
873 kapic_set_reg(klapic, 0x10 + i, s->isr[i]);
874 kapic_set_reg(klapic, 0x18 + i, s->tmr[i]);
875 kapic_set_reg(klapic, 0x20 + i, s->irr[i]);
877 kapic_set_reg(klapic, 0x28, s->esr);
878 kapic_set_reg(klapic, 0x30, s->icr[0]);
879 kapic_set_reg(klapic, 0x31, s->icr[1]);
880 for (i = 0; i < APIC_LVT_NB; i++)
881 kapic_set_reg(klapic, 0x32 + i, s->lvt[i]);
882 kapic_set_reg(klapic, 0x38, s->initial_count);
883 kapic_set_reg(klapic, 0x3e, s->divide_conf);
885 kvm_set_lapic(kvm_context, s->cpu_env->cpu_index, klapic);
888 #endif
890 static void apic_save(QEMUFile *f, void *opaque)
892 APICState *s = opaque;
893 int i;
895 #ifdef KVM_CAP_IRQCHIP
896 if (kvm_enabled() && qemu_kvm_irqchip_in_kernel()) {
897 kvm_kernel_lapic_save_to_user(s);
899 #endif
901 qemu_put_be32s(f, &s->apicbase);
902 qemu_put_8s(f, &s->id);
903 qemu_put_8s(f, &s->arb_id);
904 qemu_put_8s(f, &s->tpr);
905 qemu_put_be32s(f, &s->spurious_vec);
906 qemu_put_8s(f, &s->log_dest);
907 qemu_put_8s(f, &s->dest_mode);
908 for (i = 0; i < 8; i++) {
909 qemu_put_be32s(f, &s->isr[i]);
910 qemu_put_be32s(f, &s->tmr[i]);
911 qemu_put_be32s(f, &s->irr[i]);
913 for (i = 0; i < APIC_LVT_NB; i++) {
914 qemu_put_be32s(f, &s->lvt[i]);
916 qemu_put_be32s(f, &s->esr);
917 qemu_put_be32s(f, &s->icr[0]);
918 qemu_put_be32s(f, &s->icr[1]);
919 qemu_put_be32s(f, &s->divide_conf);
920 qemu_put_be32(f, s->count_shift);
921 qemu_put_be32s(f, &s->initial_count);
922 qemu_put_be64(f, s->initial_count_load_time);
923 qemu_put_be64(f, s->next_time);
925 qemu_put_timer(f, s->timer);
928 static int apic_load(QEMUFile *f, void *opaque, int version_id)
930 APICState *s = opaque;
931 int i;
933 if (version_id > 2)
934 return -EINVAL;
936 /* XXX: what if the base changes? (registered memory regions) */
937 qemu_get_be32s(f, &s->apicbase);
938 qemu_get_8s(f, &s->id);
939 qemu_get_8s(f, &s->arb_id);
940 qemu_get_8s(f, &s->tpr);
941 qemu_get_be32s(f, &s->spurious_vec);
942 qemu_get_8s(f, &s->log_dest);
943 qemu_get_8s(f, &s->dest_mode);
944 for (i = 0; i < 8; i++) {
945 qemu_get_be32s(f, &s->isr[i]);
946 qemu_get_be32s(f, &s->tmr[i]);
947 qemu_get_be32s(f, &s->irr[i]);
949 for (i = 0; i < APIC_LVT_NB; i++) {
950 qemu_get_be32s(f, &s->lvt[i]);
952 qemu_get_be32s(f, &s->esr);
953 qemu_get_be32s(f, &s->icr[0]);
954 qemu_get_be32s(f, &s->icr[1]);
955 qemu_get_be32s(f, &s->divide_conf);
956 s->count_shift=qemu_get_be32(f);
957 qemu_get_be32s(f, &s->initial_count);
958 s->initial_count_load_time=qemu_get_be64(f);
959 s->next_time=qemu_get_be64(f);
961 if (version_id >= 2)
962 qemu_get_timer(f, s->timer);
964 #ifdef KVM_CAP_IRQCHIP
965 if (kvm_enabled() && qemu_kvm_irqchip_in_kernel()) {
966 kvm_kernel_lapic_load_from_user(s);
968 #endif
970 return 0;
973 static void apic_reset(void *opaque)
975 APICState *s = opaque;
977 s->apicbase = 0xfee00000 |
978 (s->id ? 0 : MSR_IA32_APICBASE_BSP) | MSR_IA32_APICBASE_ENABLE;
980 apic_init_ipi(s);
982 if (s->id == 0) {
984 * LINT0 delivery mode on CPU #0 is set to ExtInt at initialization
985 * time typically by BIOS, so PIC interrupt can be delivered to the
986 * processor when local APIC is enabled.
988 s->lvt[APIC_LVT_LINT0] = 0x700;
990 #ifdef KVM_CAP_IRQCHIP
991 if (kvm_enabled() && qemu_kvm_irqchip_in_kernel()) {
992 kvm_kernel_lapic_load_from_user(s);
994 #endif
997 static CPUReadMemoryFunc *apic_mem_read[3] = {
998 apic_mem_readb,
999 apic_mem_readw,
1000 apic_mem_readl,
1003 static CPUWriteMemoryFunc *apic_mem_write[3] = {
1004 apic_mem_writeb,
1005 apic_mem_writew,
1006 apic_mem_writel,
1009 int apic_init(CPUState *env)
1011 APICState *s;
1013 if (last_apic_id >= MAX_APICS)
1014 return -1;
1015 s = qemu_mallocz(sizeof(APICState));
1016 env->apic_state = s;
1017 s->id = last_apic_id++;
1018 env->cpuid_apic_id = s->id;
1019 s->cpu_env = env;
1021 apic_reset(s);
1023 /* XXX: mapping more APICs at the same memory location */
1024 if (apic_io_memory == 0) {
1025 /* NOTE: the APIC is directly connected to the CPU - it is not
1026 on the global memory bus. */
1027 apic_io_memory = cpu_register_io_memory(0, apic_mem_read,
1028 apic_mem_write, NULL);
1029 cpu_register_physical_memory(s->apicbase & ~0xfff, 0x1000,
1030 apic_io_memory);
1032 s->timer = qemu_new_timer(vm_clock, apic_timer, s);
1034 register_savevm("apic", s->id, 2, apic_save, apic_load, s);
1035 qemu_register_reset(apic_reset, s);
1037 local_apics[s->id] = s;
1038 return 0;
1041 static void ioapic_service(IOAPICState *s)
1043 uint8_t i;
1044 uint8_t trig_mode;
1045 uint8_t vector;
1046 uint8_t delivery_mode;
1047 uint32_t mask;
1048 uint64_t entry;
1049 uint8_t dest;
1050 uint8_t dest_mode;
1051 uint8_t polarity;
1052 uint32_t deliver_bitmask[MAX_APIC_WORDS];
1054 for (i = 0; i < IOAPIC_NUM_PINS; i++) {
1055 mask = 1 << i;
1056 if (s->irr & mask) {
1057 entry = s->ioredtbl[i];
1058 if (!(entry & APIC_LVT_MASKED)) {
1059 trig_mode = ((entry >> 15) & 1);
1060 dest = entry >> 56;
1061 dest_mode = (entry >> 11) & 1;
1062 delivery_mode = (entry >> 8) & 7;
1063 polarity = (entry >> 13) & 1;
1064 if (trig_mode == APIC_TRIGGER_EDGE)
1065 s->irr &= ~mask;
1066 if (delivery_mode == APIC_DM_EXTINT)
1067 vector = pic_read_irq(isa_pic);
1068 else
1069 vector = entry & 0xff;
1071 apic_get_delivery_bitmask(deliver_bitmask, dest, dest_mode);
1072 apic_bus_deliver(deliver_bitmask, delivery_mode,
1073 vector, polarity, trig_mode);
1079 void ioapic_set_irq(void *opaque, int vector, int level)
1081 IOAPICState *s = opaque;
1083 #if 0
1084 /* ISA IRQs map to GSI 1-1 except for IRQ0 which maps
1085 * to GSI 2. GSI maps to ioapic 1-1. This is not
1086 * the cleanest way of doing it but it should work. */
1088 if (vector == 0)
1089 vector = 2;
1090 #endif
1092 if (vector >= 0 && vector < IOAPIC_NUM_PINS) {
1093 uint32_t mask = 1 << vector;
1094 uint64_t entry = s->ioredtbl[vector];
1096 if ((entry >> 15) & 1) {
1097 /* level triggered */
1098 if (level) {
1099 s->irr |= mask;
1100 ioapic_service(s);
1101 } else {
1102 s->irr &= ~mask;
1104 } else {
1105 /* edge triggered */
1106 if (level) {
1107 s->irr |= mask;
1108 ioapic_service(s);
1114 static uint32_t ioapic_mem_readl(void *opaque, target_phys_addr_t addr)
1116 IOAPICState *s = opaque;
1117 int index;
1118 uint32_t val = 0;
1120 addr &= 0xff;
1121 if (addr == 0x00) {
1122 val = s->ioregsel;
1123 } else if (addr == 0x10) {
1124 switch (s->ioregsel) {
1125 case 0x00:
1126 val = s->id << 24;
1127 break;
1128 case 0x01:
1129 val = 0x11 | ((IOAPIC_NUM_PINS - 1) << 16); /* version 0x11 */
1130 break;
1131 case 0x02:
1132 val = 0;
1133 break;
1134 default:
1135 index = (s->ioregsel - 0x10) >> 1;
1136 if (index >= 0 && index < IOAPIC_NUM_PINS) {
1137 if (s->ioregsel & 1)
1138 val = s->ioredtbl[index] >> 32;
1139 else
1140 val = s->ioredtbl[index] & 0xffffffff;
1143 #ifdef DEBUG_IOAPIC
1144 printf("I/O APIC read: %08x = %08x\n", s->ioregsel, val);
1145 #endif
1147 return val;
1150 static void ioapic_mem_writel(void *opaque, target_phys_addr_t addr, uint32_t val)
1152 IOAPICState *s = opaque;
1153 int index;
1155 addr &= 0xff;
1156 if (addr == 0x00) {
1157 s->ioregsel = val;
1158 return;
1159 } else if (addr == 0x10) {
1160 #ifdef DEBUG_IOAPIC
1161 printf("I/O APIC write: %08x = %08x\n", s->ioregsel, val);
1162 #endif
1163 switch (s->ioregsel) {
1164 case 0x00:
1165 s->id = (val >> 24) & 0xff;
1166 return;
1167 case 0x01:
1168 case 0x02:
1169 return;
1170 default:
1171 index = (s->ioregsel - 0x10) >> 1;
1172 if (index >= 0 && index < IOAPIC_NUM_PINS) {
1173 if (s->ioregsel & 1) {
1174 s->ioredtbl[index] &= 0xffffffff;
1175 s->ioredtbl[index] |= (uint64_t)val << 32;
1176 } else {
1177 s->ioredtbl[index] &= ~0xffffffffULL;
1178 s->ioredtbl[index] |= val;
1180 ioapic_service(s);
1186 static void kvm_kernel_ioapic_save_to_user(IOAPICState *s)
1188 #if defined(KVM_CAP_IRQCHIP) && defined(TARGET_I386)
1189 struct kvm_irqchip chip;
1190 struct kvm_ioapic_state *kioapic;
1191 int i;
1193 chip.chip_id = KVM_IRQCHIP_IOAPIC;
1194 kvm_get_irqchip(kvm_context, &chip);
1195 kioapic = &chip.chip.ioapic;
1197 s->id = kioapic->id;
1198 s->ioregsel = kioapic->ioregsel;
1199 s->base_address = kioapic->base_address;
1200 s->irr = kioapic->irr;
1201 for (i = 0; i < IOAPIC_NUM_PINS; i++) {
1202 s->ioredtbl[i] = kioapic->redirtbl[i].bits;
1204 #endif
1207 static void kvm_kernel_ioapic_load_from_user(IOAPICState *s)
1209 #if defined(KVM_CAP_IRQCHIP) && defined(TARGET_I386)
1210 struct kvm_irqchip chip;
1211 struct kvm_ioapic_state *kioapic;
1212 int i;
1214 chip.chip_id = KVM_IRQCHIP_IOAPIC;
1215 kioapic = &chip.chip.ioapic;
1217 kioapic->id = s->id;
1218 kioapic->ioregsel = s->ioregsel;
1219 kioapic->base_address = s->base_address;
1220 kioapic->irr = s->irr;
1221 for (i = 0; i < IOAPIC_NUM_PINS; i++) {
1222 kioapic->redirtbl[i].bits = s->ioredtbl[i];
1225 kvm_set_irqchip(kvm_context, &chip);
1226 #endif
1229 static void ioapic_save(QEMUFile *f, void *opaque)
1231 IOAPICState *s = opaque;
1232 int i;
1234 if (kvm_enabled() && qemu_kvm_irqchip_in_kernel()) {
1235 kvm_kernel_ioapic_save_to_user(s);
1238 qemu_put_8s(f, &s->id);
1239 qemu_put_8s(f, &s->ioregsel);
1240 qemu_put_be64s(f, &s->base_address);
1241 qemu_put_be32s(f, &s->irr);
1242 for (i = 0; i < IOAPIC_NUM_PINS; i++) {
1243 qemu_put_be64s(f, &s->ioredtbl[i]);
1247 static int ioapic_load(QEMUFile *f, void *opaque, int version_id)
1249 IOAPICState *s = opaque;
1250 int i;
1252 if (version_id < 1 || version_id > 2)
1253 return -EINVAL;
1255 qemu_get_8s(f, &s->id);
1256 qemu_get_8s(f, &s->ioregsel);
1257 if (version_id == 2) {
1258 /* for version 2, we get this data off of the wire */
1259 qemu_get_be64s(f, &s->base_address);
1260 qemu_get_be32s(f, &s->irr);
1262 else {
1263 /* in case we are doing version 1, we just set these to sane values */
1264 s->base_address = IOAPIC_DEFAULT_BASE_ADDRESS;
1265 s->irr = 0;
1267 for (i = 0; i < IOAPIC_NUM_PINS; i++) {
1268 qemu_get_be64s(f, &s->ioredtbl[i]);
1271 if (kvm_enabled() && qemu_kvm_irqchip_in_kernel()) {
1272 kvm_kernel_ioapic_load_from_user(s);
1275 return 0;
1278 static void ioapic_reset(void *opaque)
1280 IOAPICState *s = opaque;
1281 int i;
1283 memset(s, 0, sizeof(*s));
1284 s->base_address = IOAPIC_DEFAULT_BASE_ADDRESS;
1285 for(i = 0; i < IOAPIC_NUM_PINS; i++)
1286 s->ioredtbl[i] = 1 << 16; /* mask LVT */
1287 #ifdef KVM_CAP_IRQCHIP
1288 if (kvm_enabled() && qemu_kvm_irqchip_in_kernel()) {
1289 kvm_kernel_ioapic_load_from_user(s);
1291 #endif
1294 static CPUReadMemoryFunc *ioapic_mem_read[3] = {
1295 ioapic_mem_readl,
1296 ioapic_mem_readl,
1297 ioapic_mem_readl,
1300 static CPUWriteMemoryFunc *ioapic_mem_write[3] = {
1301 ioapic_mem_writel,
1302 ioapic_mem_writel,
1303 ioapic_mem_writel,
1306 IOAPICState *ioapic_init(void)
1308 IOAPICState *s;
1309 int io_memory;
1311 s = qemu_mallocz(sizeof(IOAPICState));
1312 ioapic_reset(s);
1313 s->id = last_apic_id++;
1315 io_memory = cpu_register_io_memory(0, ioapic_mem_read,
1316 ioapic_mem_write, s);
1317 cpu_register_physical_memory(0xfec00000, 0x1000, io_memory);
1319 register_savevm("ioapic", 0, 2, ioapic_save, ioapic_load, s);
1320 qemu_register_reset(ioapic_reset, s);
1322 return s;