Expand PMF_FN_* macros.
[netbsd-mini2440.git] / sys / arch / xen / x86 / cpu.c
blob11711b2fd1db0bd54cacceb10d505b655747639e
1 /* $NetBSD: cpu.c,v 1.39 2009/11/27 03:23:15 rmind Exp $ */
2 /* NetBSD: cpu.c,v 1.18 2004/02/20 17:35:01 yamt Exp */
4 /*-
5 * Copyright (c) 2000 The NetBSD Foundation, Inc.
6 * Copyright (c) 2002, 2006, 2007 YAMAMOTO Takashi,
7 * All rights reserved.
9 * This code is derived from software contributed to The NetBSD Foundation
10 * by RedBack Networks Inc.
12 * Author: Bill Sommerfeld
14 * Redistribution and use in source and binary forms, with or without
15 * modification, are permitted provided that the following conditions
16 * are met:
17 * 1. Redistributions of source code must retain the above copyright
18 * notice, this list of conditions and the following disclaimer.
19 * 2. Redistributions in binary form must reproduce the above copyright
20 * notice, this list of conditions and the following disclaimer in the
21 * documentation and/or other materials provided with the distribution.
23 * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
24 * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
25 * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
26 * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
27 * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
28 * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
29 * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
30 * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
31 * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
32 * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
33 * POSSIBILITY OF SUCH DAMAGE.
37 * Copyright (c) 1999 Stefan Grefen
39 * Redistribution and use in source and binary forms, with or without
40 * modification, are permitted provided that the following conditions
41 * are met:
42 * 1. Redistributions of source code must retain the above copyright
43 * notice, this list of conditions and the following disclaimer.
44 * 2. Redistributions in binary form must reproduce the above copyright
45 * notice, this list of conditions and the following disclaimer in the
46 * documentation and/or other materials provided with the distribution.
47 * 3. All advertising materials mentioning features or use of this software
48 * must display the following acknowledgement:
49 * This product includes software developed by the NetBSD
50 * Foundation, Inc. and its contributors.
51 * 4. Neither the name of The NetBSD Foundation nor the names of its
52 * contributors may be used to endorse or promote products derived
53 * from this software without specific prior written permission.
55 * THIS SOFTWARE IS PROVIDED BY AUTHOR AND CONTRIBUTORS ``AS IS'' AND ANY
56 * EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
57 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
58 * ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR AND CONTRIBUTORS BE LIABLE
59 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
60 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
61 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
62 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
63 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
64 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
65 * SUCH DAMAGE.
68 #include <sys/cdefs.h>
69 __KERNEL_RCSID(0, "$NetBSD: cpu.c,v 1.39 2009/11/27 03:23:15 rmind Exp $");
71 #include "opt_ddb.h"
72 #include "opt_multiprocessor.h"
73 #include "opt_mpbios.h" /* for MPDEBUG */
74 #include "opt_mtrr.h"
75 #include "opt_xen.h"
77 #include "lapic.h"
78 #include "ioapic.h"
80 #include <sys/param.h>
81 #include <sys/proc.h>
82 #include <sys/systm.h>
83 #include <sys/device.h>
84 #include <sys/kmem.h>
85 #include <sys/cpu.h>
86 #include <sys/atomic.h>
87 #include <sys/reboot.h>
89 #include <uvm/uvm_extern.h>
91 #include <machine/cpufunc.h>
92 #include <machine/cpuvar.h>
93 #include <machine/pmap.h>
94 #include <machine/vmparam.h>
95 #include <machine/mpbiosvar.h>
96 #include <machine/pcb.h>
97 #include <machine/specialreg.h>
98 #include <machine/segments.h>
99 #include <machine/gdt.h>
100 #include <machine/mtrr.h>
101 #include <machine/pio.h>
103 #include <xen/vcpuvar.h>
105 #if NLAPIC > 0
106 #include <machine/apicvar.h>
107 #include <machine/i82489reg.h>
108 #include <machine/i82489var.h>
109 #endif
111 #include <dev/ic/mc146818reg.h>
112 #include <dev/isa/isareg.h>
114 #if MAXCPUS > 32
115 #error cpu_info contains 32bit bitmasks
116 #endif
118 int cpu_match(device_t, cfdata_t, void *);
119 void cpu_attach(device_t, device_t, void *);
120 int vcpu_match(device_t, cfdata_t, void *);
121 void vcpu_attach(device_t, device_t, void *);
122 void cpu_attach_common(device_t, device_t, void *);
123 void cpu_offline_md(void);
125 struct cpu_softc {
126 device_t sc_dev; /* device tree glue */
127 struct cpu_info *sc_info; /* pointer to CPU info */
128 bool sc_wasonline;
131 int mp_cpu_start(struct cpu_info *, paddr_t);
132 void mp_cpu_start_cleanup(struct cpu_info *);
133 const struct cpu_functions mp_cpu_funcs = { mp_cpu_start, NULL,
134 mp_cpu_start_cleanup };
136 CFATTACH_DECL_NEW(cpu, sizeof(struct cpu_softc),
137 cpu_match, cpu_attach, NULL, NULL);
138 CFATTACH_DECL_NEW(vcpu, sizeof(struct cpu_softc),
139 vcpu_match, vcpu_attach, NULL, NULL);
142 * Statically-allocated CPU info for the primary CPU (or the only
143 * CPU, on uniprocessors). The CPU info list is initialized to
144 * point at it.
146 #ifdef TRAPLOG
147 #include <machine/tlog.h>
148 struct tlog tlog_primary;
149 #endif
150 struct cpu_info cpu_info_primary __aligned(CACHE_LINE_SIZE) = {
151 .ci_dev = 0,
152 .ci_self = &cpu_info_primary,
153 .ci_idepth = -1,
154 .ci_curlwp = &lwp0,
155 .ci_curldt = -1,
156 #ifdef TRAPLOG
157 .ci_tlog = &tlog_primary,
158 #endif
161 struct cpu_info phycpu_info_primary __aligned(CACHE_LINE_SIZE) = {
162 .ci_dev = 0,
163 .ci_self = &phycpu_info_primary,
166 struct cpu_info *cpu_info_list = &cpu_info_primary;
167 struct cpu_info *phycpu_info_list = &phycpu_info_primary;
169 static void cpu_set_tss_gates(struct cpu_info *ci);
171 uint32_t cpus_attached = 0;
172 uint32_t cpus_running = 0;
174 uint32_t phycpus_attached = 0;
175 uint32_t phycpus_running = 0;
177 bool x86_mp_online;
178 paddr_t mp_trampoline_paddr = MP_TRAMPOLINE;
180 #if defined(MULTIPROCESSOR)
181 void cpu_hatch(void *);
182 static void cpu_boot_secondary(struct cpu_info *ci);
183 static void cpu_start_secondary(struct cpu_info *ci);
184 static void cpu_copy_trampoline(void);
187 * Runs once per boot once multiprocessor goo has been detected and
188 * the local APIC on the boot processor has been mapped.
190 * Called from lapic_boot_init() (from mpbios_scan()).
192 void
193 cpu_init_first(void)
196 cpu_info_primary.ci_cpuid = lapic_cpu_number();
197 cpu_copy_trampoline();
199 #endif /* MULTIPROCESSOR */
202 cpu_match(device_t parent, cfdata_t match, void *aux)
205 return 1;
208 void
209 cpu_attach(device_t parent, device_t self, void *aux)
211 struct cpu_softc *sc = device_private(self);
212 struct cpu_attach_args *caa = aux;
213 struct cpu_info *ci;
214 uintptr_t ptr;
215 static bool again = false;
217 sc->sc_dev = self;
219 if (phycpus_attached == ~0) {
220 aprint_error(": increase MAXCPUS\n");
221 return;
225 * If we're an Application Processor, allocate a cpu_info
226 * structure, otherwise use the primary's.
228 if (caa->cpu_role == CPU_ROLE_AP) {
229 if ((boothowto & RB_MD1) != 0) {
230 aprint_error(": multiprocessor boot disabled\n");
231 if (!pmf_device_register(self, NULL, NULL))
232 aprint_error_dev(self,
233 "couldn't establish power handler\n");
234 return;
236 aprint_naive(": Application Processor\n");
237 ptr = (uintptr_t)kmem_zalloc(sizeof(*ci) + CACHE_LINE_SIZE - 1,
238 KM_SLEEP);
239 ci = (struct cpu_info *)((ptr + CACHE_LINE_SIZE - 1) &
240 ~(CACHE_LINE_SIZE - 1));
241 ci->ci_curldt = -1;
242 } else {
243 aprint_naive(": %s Processor\n",
244 caa->cpu_role == CPU_ROLE_SP ? "Single" : "Boot");
245 ci = &phycpu_info_primary;
248 ci->ci_self = ci;
249 sc->sc_info = ci;
251 ci->ci_dev = self;
252 ci->ci_cpuid = caa->cpu_number;
253 ci->ci_vcpu = NULL;
256 * Boot processor may not be attached first, but the below
257 * must be done to allow booting other processors.
259 if (!again) {
260 atomic_or_32(&ci->ci_flags, CPUF_PRESENT | CPUF_PRIMARY);
261 /* Basic init */
262 again = true;
265 printf(": ");
266 switch (caa->cpu_role) {
267 case CPU_ROLE_SP:
268 printf("(uniprocessor)\n");
269 atomic_or_32(&ci->ci_flags, CPUF_SP);
270 break;
272 case CPU_ROLE_BP:
273 printf("(boot processor)\n");
274 atomic_or_32(&ci->ci_flags, CPUF_BSP);
275 break;
277 case CPU_ROLE_AP:
279 * report on an AP
281 printf("(application processor)\n");
282 if (ci->ci_flags & CPUF_PRESENT) {
283 struct cpu_info *tmp;
285 tmp = phycpu_info_list;
286 while (tmp->ci_next)
287 tmp = tmp->ci_next;
289 tmp->ci_next = ci;
291 break;
293 default:
294 panic("unknown processor type??\n");
297 atomic_or_32(&phycpus_attached, ci->ci_cpumask);
299 return;
303 vcpu_match(device_t parent, cfdata_t match, void *aux)
305 struct vcpu_attach_args *vcaa = aux;
307 if (strcmp(vcaa->vcaa_name, match->cf_name) == 0)
308 return 1;
309 return 0;
312 void
313 vcpu_attach(device_t parent, device_t self, void *aux)
315 struct vcpu_attach_args *vcaa = aux;
317 cpu_attach_common(parent, self, &vcaa->vcaa_caa);
320 static void
321 cpu_vm_init(struct cpu_info *ci)
323 int ncolors = 2, i;
325 for (i = CAI_ICACHE; i <= CAI_L2CACHE; i++) {
326 struct x86_cache_info *cai;
327 int tcolors;
329 cai = &ci->ci_cinfo[i];
331 tcolors = atop(cai->cai_totalsize);
332 switch(cai->cai_associativity) {
333 case 0xff:
334 tcolors = 1; /* fully associative */
335 break;
336 case 0:
337 case 1:
338 break;
339 default:
340 tcolors /= cai->cai_associativity;
342 ncolors = max(ncolors, tcolors);
346 * Knowing the size of the largest cache on this CPU, re-color
347 * our pages.
349 if (ncolors <= uvmexp.ncolors)
350 return;
351 aprint_debug_dev(ci->ci_dev, "%d page colors\n", ncolors);
352 uvm_page_recolor(ncolors);
355 void
356 cpu_attach_common(device_t parent, device_t self, void *aux)
358 struct cpu_softc *sc = device_private(self);
359 struct cpu_attach_args *caa = aux;
360 struct cpu_info *ci;
361 uintptr_t ptr;
362 int cpunum = caa->cpu_number;
363 static bool again = false;
365 sc->sc_dev = self;
368 * If we're an Application Processor, allocate a cpu_info
369 * structure, otherwise use the primary's.
371 if (caa->cpu_role == CPU_ROLE_AP) {
372 aprint_naive(": Application Processor\n");
373 ptr = (uintptr_t)kmem_alloc(sizeof(*ci) + CACHE_LINE_SIZE - 1,
374 KM_SLEEP);
375 ci = (struct cpu_info *)((ptr + CACHE_LINE_SIZE - 1) &
376 ~(CACHE_LINE_SIZE - 1));
377 memset(ci, 0, sizeof(*ci));
378 #ifdef TRAPLOG
379 ci->ci_tlog_base = kmem_zalloc(sizeof(struct tlog), KM_SLEEP);
380 #endif
381 } else {
382 aprint_naive(": %s Processor\n",
383 caa->cpu_role == CPU_ROLE_SP ? "Single" : "Boot");
384 ci = &cpu_info_primary;
385 #if NLAPIC > 0
386 if (cpunum != lapic_cpu_number()) {
387 /* XXX should be done earlier */
388 uint32_t reg;
389 aprint_verbose("\n");
390 aprint_verbose_dev(self, "running CPU at apic %d"
391 " instead of at expected %d", lapic_cpu_number(),
392 cpunum);
393 reg = i82489_readreg(LAPIC_ID);
394 i82489_writereg(LAPIC_ID, (reg & ~LAPIC_ID_MASK) |
395 (cpunum << LAPIC_ID_SHIFT));
397 if (cpunum != lapic_cpu_number()) {
398 aprint_error_dev(self, "unable to reset apic id\n");
400 #endif
403 ci->ci_self = ci;
404 sc->sc_info = ci;
405 ci->ci_dev = self;
406 ci->ci_cpuid = cpunum;
408 KASSERT(HYPERVISOR_shared_info != NULL);
409 ci->ci_vcpu = &HYPERVISOR_shared_info->vcpu_info[cpunum];
411 ci->ci_func = caa->cpu_func;
413 /* Must be called before mi_cpu_attach(). */
414 cpu_vm_init(ci);
416 if (caa->cpu_role == CPU_ROLE_AP) {
417 int error;
419 error = mi_cpu_attach(ci);
420 if (error != 0) {
421 aprint_normal("\n");
422 aprint_error_dev(self,
423 "mi_cpu_attach failed with %d\n", error);
424 return;
426 } else {
427 KASSERT(ci->ci_data.cpu_idlelwp != NULL);
430 ci->ci_cpumask = (1 << cpu_index(ci));
431 pmap_reference(pmap_kernel());
432 ci->ci_pmap = pmap_kernel();
433 ci->ci_tlbstate = TLBSTATE_STALE;
436 * Boot processor may not be attached first, but the below
437 * must be done to allow booting other processors.
439 if (!again) {
440 atomic_or_32(&ci->ci_flags, CPUF_PRESENT | CPUF_PRIMARY);
441 /* Basic init. */
442 cpu_intr_init(ci);
443 cpu_get_tsc_freq(ci);
444 cpu_init(ci);
445 cpu_set_tss_gates(ci);
446 pmap_cpu_init_late(ci);
447 #if NLAPIC > 0
448 if (caa->cpu_role != CPU_ROLE_SP) {
449 /* Enable lapic. */
450 lapic_enable();
451 lapic_set_lvt();
452 lapic_calibrate_timer();
454 #endif
455 /* Make sure DELAY() is initialized. */
456 DELAY(1);
457 again = true;
460 /* further PCB init done later. */
462 switch (caa->cpu_role) {
463 case CPU_ROLE_SP:
464 atomic_or_32(&ci->ci_flags, CPUF_SP);
465 cpu_identify(ci);
466 #if 0
467 x86_errata();
468 #endif
469 x86_cpu_idle_init();
470 break;
472 case CPU_ROLE_BP:
473 atomic_or_32(&ci->ci_flags, CPUF_BSP);
474 cpu_identify(ci);
475 cpu_init(ci);
476 #if 0
477 x86_errata();
478 #endif
479 x86_cpu_idle_init();
480 break;
482 case CPU_ROLE_AP:
484 * report on an AP
487 #if defined(MULTIPROCESSOR)
488 cpu_intr_init(ci);
489 gdt_alloc_cpu(ci);
490 cpu_set_tss_gates(ci);
491 pmap_cpu_init_early(ci);
492 pmap_cpu_init_late(ci);
493 cpu_start_secondary(ci);
494 if (ci->ci_flags & CPUF_PRESENT) {
495 struct cpu_info *tmp;
497 identifycpu(ci);
498 tmp = cpu_info_list;
499 while (tmp->ci_next)
500 tmp = tmp->ci_next;
502 tmp->ci_next = ci;
504 #else
505 aprint_error_dev(self, "not started\n");
506 #endif
507 break;
509 default:
510 aprint_normal("\n");
511 panic("unknown processor type??\n");
514 atomic_or_32(&cpus_attached, ci->ci_cpumask);
516 #if 0
517 if (!pmf_device_register(self, cpu_suspend, cpu_resume))
518 aprint_error_dev(self, "couldn't establish power handler\n");
519 #endif
521 #if defined(MULTIPROCESSOR)
522 if (mp_verbose) {
523 struct lwp *l = ci->ci_data.cpu_idlelwp;
524 struct pcb *pcb = lwp_getpcb(l);
526 aprint_verbose_dev(self,
527 "idle lwp at %p, idle sp at 0x%p\n",
529 #ifdef i386
530 (void *)pcb->pcb_esp
531 #else
532 (void *)pcb->pcb_rsp
533 #endif
537 #endif
541 * Initialize the processor appropriately.
544 void
545 cpu_init(struct cpu_info *ci)
549 * On a P6 or above, enable global TLB caching if the
550 * hardware supports it.
552 if (cpu_feature & CPUID_PGE)
553 lcr4(rcr4() | CR4_PGE); /* enable global TLB caching */
555 #ifdef XXXMTRR
557 * On a P6 or above, initialize MTRR's if the hardware supports them.
559 if (cpu_feature & CPUID_MTRR) {
560 if ((ci->ci_flags & CPUF_AP) == 0)
561 i686_mtrr_init_first();
562 mtrr_init_cpu(ci);
564 #endif
566 * If we have FXSAVE/FXRESTOR, use them.
568 if (cpu_feature & CPUID_FXSR) {
569 lcr4(rcr4() | CR4_OSFXSR);
572 * If we have SSE/SSE2, enable XMM exceptions.
574 if (cpu_feature & (CPUID_SSE|CPUID_SSE2))
575 lcr4(rcr4() | CR4_OSXMMEXCPT);
578 atomic_or_32(&cpus_running, ci->ci_cpumask);
579 atomic_or_32(&ci->ci_flags, CPUF_RUNNING);
583 #ifdef MULTIPROCESSOR
584 void
585 cpu_boot_secondary_processors(void)
587 struct cpu_info *ci;
588 u_long i;
590 for (i = 0; i < maxcpus; i++) {
591 ci = cpu_lookup(i);
592 if (ci == NULL)
593 continue;
594 if (ci->ci_data.cpu_idlelwp == NULL)
595 continue;
596 if ((ci->ci_flags & CPUF_PRESENT) == 0)
597 continue;
598 if (ci->ci_flags & (CPUF_BSP|CPUF_SP|CPUF_PRIMARY))
599 continue;
600 cpu_boot_secondary(ci);
603 x86_mp_online = true;
606 static void
607 cpu_init_idle_lwp(struct cpu_info *ci)
609 struct lwp *l = ci->ci_data.cpu_idlelwp;
610 struct pcb *pcb = lwp_getpcb(l);
612 pcb->pcb_cr0 = rcr0();
615 void
616 cpu_init_idle_lwps(void)
618 struct cpu_info *ci;
619 u_long i;
621 for (i = 0; i < maxcpus; i++) {
622 ci = cpu_lookup(i);
623 if (ci == NULL)
624 continue;
625 if (ci->ci_data.cpu_idlelwp == NULL)
626 continue;
627 if ((ci->ci_flags & CPUF_PRESENT) == 0)
628 continue;
629 cpu_init_idle_lwp(ci);
633 void
634 cpu_start_secondary(struct cpu_info *ci)
636 int i;
637 struct pmap *kpm = pmap_kernel();
638 extern uint32_t mp_pdirpa;
640 mp_pdirpa = kpm->pm_pdirpa; /* XXX move elsewhere, not per CPU. */
642 atomic_or_32(&ci->ci_flags, CPUF_AP);
644 aprint_debug_dev(ci->ci_dev, "starting\n");
646 ci->ci_curlwp = ci->ci_data.cpu_idlelwp;
647 if (CPU_STARTUP(ci, mp_trampoline_paddr) != 0)
648 return;
651 * wait for it to become ready
653 for (i = 100000; (!(ci->ci_flags & CPUF_PRESENT)) && i > 0; i--) {
654 #ifdef MPDEBUG
655 extern int cpu_trace[3];
656 static int otrace[3];
657 if (memcmp(otrace, cpu_trace, sizeof(otrace)) != 0) {
658 aprint_debug_dev(ci->ci_dev, "trace %02x %02x %02x\n",
659 cpu_trace[0], cpu_trace[1], cpu_trace[2]);
660 memcpy(otrace, cpu_trace, sizeof(otrace));
662 #endif
663 delay(10);
665 if ((ci->ci_flags & CPUF_PRESENT) == 0) {
666 aprint_error_dev(ci->ci_dev, "failed to become ready\n");
667 #if defined(MPDEBUG) && defined(DDB)
668 printf("dropping into debugger; continue from here to resume boot\n");
669 Debugger();
670 #endif
673 CPU_START_CLEANUP(ci);
676 void
677 cpu_boot_secondary(struct cpu_info *ci)
679 int i;
681 atomic_or_32(&ci->ci_flags, CPUF_GO);
682 for (i = 100000; (!(ci->ci_flags & CPUF_RUNNING)) && i > 0; i--) {
683 delay(10);
685 if ((ci->ci_flags & CPUF_RUNNING) == 0) {
686 aprint_error_dev(ci->ci_dev, "CPU failed to start\n");
687 #if defined(MPDEBUG) && defined(DDB)
688 printf("dropping into debugger; continue from here to resume boot\n");
689 Debugger();
690 #endif
695 * The CPU ends up here when its ready to run
696 * This is called from code in mptramp.s; at this point, we are running
697 * in the idle pcb/idle stack of the new CPU. When this function returns,
698 * this processor will enter the idle loop and start looking for work.
700 * XXX should share some of this with init386 in machdep.c
702 void
703 cpu_hatch(void *v)
705 struct cpu_info *ci = (struct cpu_info *)v;
706 struct pcb *pcb;
707 uint32_t blacklist_features;
708 int s, i;
710 #ifdef __x86_64__
711 cpu_init_msrs(ci, true);
712 #endif
714 cpu_probe(ci);
716 /* not on Xen... */
717 blacklist_features = ~(CPUID_PGE|CPUID_PSE|CPUID_MTRR|CPUID_FXSR|CPUID_NOX); /* XXX add CPUID_SVM */
719 cpu_feature &= blacklist_features;
721 KDASSERT((ci->ci_flags & CPUF_PRESENT) == 0);
722 atomic_or_32(&ci->ci_flags, CPUF_PRESENT);
723 while ((ci->ci_flags & CPUF_GO) == 0) {
724 /* Don't use delay, boot CPU may be patching the text. */
725 for (i = 10000; i != 0; i--)
726 x86_pause();
729 /* Because the text may have been patched in x86_patch(). */
730 wbinvd();
731 x86_flush();
733 KASSERT((ci->ci_flags & CPUF_RUNNING) == 0);
735 pcb = lwp_getpcb(curlwp);
736 lcr3(pmap_kernel()->pm_pdirpa);
737 pcb->pcb_cr3 = pmap_kernel()->pm_pdirpa;
738 pcb = lwp_getpcb(ci->ci_data.cpu_idlelwp);
739 lcr0(pcb->pcb_cr0);
741 cpu_init_idt();
742 gdt_init_cpu(ci);
743 lapic_enable();
744 lapic_set_lvt();
745 lapic_initclocks();
747 #ifdef i386
748 npxinit(ci);
749 #else
750 fpuinit(ci);
751 #endif
753 lldt(GSEL(GLDT_SEL, SEL_KPL));
754 ltr(ci->ci_tss_sel);
756 cpu_init(ci);
757 cpu_get_tsc_freq(ci);
759 s = splhigh();
760 #ifdef i386
761 lapic_tpr = 0;
762 #else
763 lcr8(0);
764 #endif
765 x86_enable_intr();
766 splx(s);
767 #if 0
768 x86_errata();
769 #endif
771 aprint_debug_dev(ci->ci_dev, "CPU %ld running\n",
772 (long)ci->ci_cpuid);
775 #if defined(DDB)
777 #include <ddb/db_output.h>
778 #include <machine/db_machdep.h>
781 * Dump CPU information from ddb.
783 void
784 cpu_debug_dump(void)
786 struct cpu_info *ci;
787 CPU_INFO_ITERATOR cii;
789 db_printf("addr dev id flags ipis curlwp fpcurlwp\n");
790 for (CPU_INFO_FOREACH(cii, ci)) {
791 db_printf("%p %s %ld %x %x %10p %10p\n",
793 ci->ci_dev == NULL ? "BOOT" : device_xname(ci->ci_dev),
794 (long)ci->ci_cpuid,
795 ci->ci_flags, ci->ci_ipis,
796 ci->ci_curlwp,
797 ci->ci_fpcurlwp);
800 #endif /* DDB */
802 static void
803 cpu_copy_trampoline(void)
806 * Copy boot code.
808 extern u_char cpu_spinup_trampoline[];
809 extern u_char cpu_spinup_trampoline_end[];
811 vaddr_t mp_trampoline_vaddr;
813 mp_trampoline_vaddr = uvm_km_alloc(kernel_map, PAGE_SIZE, 0,
814 UVM_KMF_VAONLY);
816 pmap_kenter_pa(mp_trampoline_vaddr, mp_trampoline_paddr,
817 VM_PROT_READ | VM_PROT_WRITE, 0);
818 pmap_update(pmap_kernel());
819 memcpy((void *)mp_trampoline_vaddr,
820 cpu_spinup_trampoline,
821 cpu_spinup_trampoline_end - cpu_spinup_trampoline);
823 pmap_kremove(mp_trampoline_vaddr, PAGE_SIZE);
824 pmap_update(pmap_kernel());
825 uvm_km_free(kernel_map, mp_trampoline_vaddr, PAGE_SIZE, UVM_KMF_VAONLY);
828 #endif /* MULTIPROCESSOR */
830 #ifdef i386
831 #if 0
832 static void
833 tss_init(struct i386tss *tss, void *stack, void *func)
835 memset(tss, 0, sizeof *tss);
836 tss->tss_esp0 = tss->tss_esp = (int)((char *)stack + USPACE - 16);
837 tss->tss_ss0 = GSEL(GDATA_SEL, SEL_KPL);
838 tss->__tss_cs = GSEL(GCODE_SEL, SEL_KPL);
839 tss->tss_fs = GSEL(GCPU_SEL, SEL_KPL);
840 tss->tss_gs = tss->__tss_es = tss->__tss_ds =
841 tss->__tss_ss = GSEL(GDATA_SEL, SEL_KPL);
842 tss->tss_cr3 = pmap_kernel()->pm_pdirpa;
843 tss->tss_esp = (int)((char *)stack + USPACE - 16);
844 tss->tss_ldt = GSEL(GLDT_SEL, SEL_KPL);
845 tss->__tss_eflags = PSL_MBO | PSL_NT; /* XXX not needed? */
846 tss->__tss_eip = (int)func;
848 #endif
850 /* XXX */
851 #define IDTVEC(name) __CONCAT(X, name)
852 typedef void (vector)(void);
853 extern vector IDTVEC(tss_trap08);
854 #ifdef DDB
855 extern vector Xintrddbipi;
856 extern int ddb_vec;
857 #endif
859 static void
860 cpu_set_tss_gates(struct cpu_info *ci)
862 #if 0
863 struct segment_descriptor sd;
865 ci->ci_doubleflt_stack = (char *)uvm_km_alloc(kernel_map, USPACE, 0,
866 UVM_KMF_WIRED);
867 tss_init(&ci->ci_doubleflt_tss, ci->ci_doubleflt_stack,
868 IDTVEC(tss_trap08));
869 setsegment(&sd, &ci->ci_doubleflt_tss, sizeof(struct i386tss) - 1,
870 SDT_SYS386TSS, SEL_KPL, 0, 0);
871 ci->ci_gdt[GTRAPTSS_SEL].sd = sd;
872 setgate(&idt[8], NULL, 0, SDT_SYSTASKGT, SEL_KPL,
873 GSEL(GTRAPTSS_SEL, SEL_KPL));
874 #endif
876 #if defined(DDB) && defined(MULTIPROCESSOR)
878 * Set up separate handler for the DDB IPI, so that it doesn't
879 * stomp on a possibly corrupted stack.
881 * XXX overwriting the gate set in db_machine_init.
882 * Should rearrange the code so that it's set only once.
884 ci->ci_ddbipi_stack = (char *)uvm_km_alloc(kernel_map, USPACE, 0,
885 UVM_KMF_WIRED);
886 tss_init(&ci->ci_ddbipi_tss, ci->ci_ddbipi_stack,
887 Xintrddbipi);
889 setsegment(&sd, &ci->ci_ddbipi_tss, sizeof(struct i386tss) - 1,
890 SDT_SYS386TSS, SEL_KPL, 0, 0);
891 ci->ci_gdt[GIPITSS_SEL].sd = sd;
893 setgate(&idt[ddb_vec], NULL, 0, SDT_SYSTASKGT, SEL_KPL,
894 GSEL(GIPITSS_SEL, SEL_KPL));
895 #endif
897 #else
898 static void
899 cpu_set_tss_gates(struct cpu_info *ci)
903 #endif /* i386 */
906 mp_cpu_start(struct cpu_info *ci, paddr_t target)
908 #if 0
909 #if NLAPIC > 0
910 int error;
911 #endif
912 unsigned short dwordptr[2];
915 * Bootstrap code must be addressable in real mode
916 * and it must be page aligned.
918 KASSERT(target < 0x10000 && target % PAGE_SIZE == 0);
921 * "The BSP must initialize CMOS shutdown code to 0Ah ..."
924 outb(IO_RTC, NVRAM_RESET);
925 outb(IO_RTC+1, NVRAM_RESET_JUMP);
928 * "and the warm reset vector (DWORD based at 40:67) to point
929 * to the AP startup code ..."
932 dwordptr[0] = 0;
933 dwordptr[1] = target >> 4;
935 pmap_kenter_pa (0, 0, VM_PROT_READ|VM_PROT_WRITE, 0);
936 memcpy ((uint8_t *) 0x467, dwordptr, 4);
937 pmap_kremove (0, PAGE_SIZE);
939 #if NLAPIC > 0
941 * ... prior to executing the following sequence:"
944 if (ci->ci_flags & CPUF_AP) {
945 if ((error = x86_ipi_init(ci->ci_cpuid)) != 0)
946 return error;
948 delay(10000);
950 if (cpu_feature & CPUID_APIC) {
951 error = x86_ipi_init(ci->ci_cpuid);
952 if (error != 0) {
953 aprint_error_dev(ci->ci_dev, "%s: IPI not taken (1)\n",
954 __func__);
955 return error;
958 delay(10000);
960 error = x86_ipi(target / PAGE_SIZE, ci->ci_cpuid,
961 LAPIC_DLMODE_STARTUP);
962 if (error != 0) {
963 aprint_error_dev(ci->ci_dev, "%s: IPI not taken (2)\n",
964 __func__);
965 return error;
967 delay(200);
969 error = x86_ipi(target / PAGE_SIZE, ci->ci_cpuid,
970 LAPIC_DLMODE_STARTUP);
971 if (error != 0) {
972 aprint_error_dev(ci->ci_dev, "%s: IPI not taken ((3)\n",
973 __func__);
974 return error;
976 delay(200);
979 #endif
980 #endif /* 0 */
981 return 0;
984 void
985 mp_cpu_start_cleanup(struct cpu_info *ci)
987 #if 0
989 * Ensure the NVRAM reset byte contains something vaguely sane.
992 outb(IO_RTC, NVRAM_RESET);
993 outb(IO_RTC+1, NVRAM_RESET_RST);
994 #endif
997 #ifdef __x86_64__
999 void
1000 cpu_init_msrs(struct cpu_info *ci, bool full)
1002 if (full) {
1003 HYPERVISOR_set_segment_base (SEGBASE_FS, 0);
1004 HYPERVISOR_set_segment_base (SEGBASE_GS_KERNEL, (uint64_t) ci);
1005 HYPERVISOR_set_segment_base (SEGBASE_GS_USER, 0);
1008 #endif /* __x86_64__ */
1010 void
1011 cpu_offline_md(void)
1013 int s;
1015 s = splhigh();
1016 #ifdef __i386__
1017 npxsave_cpu(true);
1018 #else
1019 fpusave_cpu(true);
1020 #endif
1021 splx(s);
1024 #if 0
1025 /* XXX joerg restructure and restart CPUs individually */
1026 static bool
1027 cpu_suspend(device_t dv, pmf_qual_t qual)
1029 struct cpu_softc *sc = device_private(dv);
1030 struct cpu_info *ci = sc->sc_info;
1031 int err;
1033 if (ci->ci_flags & CPUF_PRIMARY)
1034 return true;
1035 if (ci->ci_data.cpu_idlelwp == NULL)
1036 return true;
1037 if ((ci->ci_flags & CPUF_PRESENT) == 0)
1038 return true;
1040 sc->sc_wasonline = !(ci->ci_schedstate.spc_flags & SPCF_OFFLINE);
1042 if (sc->sc_wasonline) {
1043 mutex_enter(&cpu_lock);
1044 err = cpu_setstate(ci, false);
1045 mutex_exit(&cpu_lock);
1047 if (err)
1048 return false;
1051 return true;
1054 static bool
1055 cpu_resume(device_t dv, pmf_qual_t qual)
1057 struct cpu_softc *sc = device_private(dv);
1058 struct cpu_info *ci = sc->sc_info;
1059 int err = 0;
1061 if (ci->ci_flags & CPUF_PRIMARY)
1062 return true;
1063 if (ci->ci_data.cpu_idlelwp == NULL)
1064 return true;
1065 if ((ci->ci_flags & CPUF_PRESENT) == 0)
1066 return true;
1068 if (sc->sc_wasonline) {
1069 mutex_enter(&cpu_lock);
1070 err = cpu_setstate(ci, true);
1071 mutex_exit(&cpu_lock);
1074 return err == 0;
1076 #endif
1078 void
1079 cpu_get_tsc_freq(struct cpu_info *ci)
1081 const volatile vcpu_time_info_t *tinfo = &ci->ci_vcpu->time;
1082 delay(1000000);
1083 uint64_t freq = 1000000000ULL << 32;
1084 freq = freq / (uint64_t)tinfo->tsc_to_system_mul;
1085 if ( tinfo->tsc_shift < 0 )
1086 freq = freq << -tinfo->tsc_shift;
1087 else
1088 freq = freq >> tinfo->tsc_shift;
1089 ci->ci_data.cpu_cc_freq = freq;
1092 void
1093 x86_cpu_idle_xen(void)
1095 struct cpu_info *ci = curcpu();
1097 KASSERT(ci->ci_ilevel == IPL_NONE);
1099 x86_disable_intr();
1100 if (!__predict_false(ci->ci_want_resched)) {
1101 idle_block();
1102 } else {
1103 x86_enable_intr();