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cpu.c revision 1.98
      1  1.98     rmind /*	$NetBSD: cpu.c,v 1.98 2012/04/20 22:23:24 rmind Exp $	*/
      2   1.2        ad 
      3   1.2        ad /*-
      4  1.98     rmind  * Copyright (c) 2000-2012 NetBSD Foundation, Inc.
      5   1.2        ad  * All rights reserved.
      6   1.2        ad  *
      7   1.2        ad  * This code is derived from software contributed to The NetBSD Foundation
      8  1.11        ad  * by Bill Sommerfeld of RedBack Networks Inc, and by Andrew Doran.
      9   1.2        ad  *
     10   1.2        ad  * Redistribution and use in source and binary forms, with or without
     11   1.2        ad  * modification, are permitted provided that the following conditions
     12   1.2        ad  * are met:
     13   1.2        ad  * 1. Redistributions of source code must retain the above copyright
     14   1.2        ad  *    notice, this list of conditions and the following disclaimer.
     15   1.2        ad  * 2. Redistributions in binary form must reproduce the above copyright
     16   1.2        ad  *    notice, this list of conditions and the following disclaimer in the
     17   1.2        ad  *    documentation and/or other materials provided with the distribution.
     18   1.2        ad  *
     19   1.2        ad  * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
     20   1.2        ad  * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
     21   1.2        ad  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
     22   1.2        ad  * PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
     23   1.2        ad  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     24   1.2        ad  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     25   1.2        ad  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
     26   1.2        ad  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
     27   1.2        ad  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
     28   1.2        ad  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
     29   1.2        ad  * POSSIBILITY OF SUCH DAMAGE.
     30   1.2        ad  */
     31   1.2        ad 
     32   1.2        ad /*
     33   1.2        ad  * Copyright (c) 1999 Stefan Grefen
     34   1.2        ad  *
     35   1.2        ad  * Redistribution and use in source and binary forms, with or without
     36   1.2        ad  * modification, are permitted provided that the following conditions
     37   1.2        ad  * are met:
     38   1.2        ad  * 1. Redistributions of source code must retain the above copyright
     39   1.2        ad  *    notice, this list of conditions and the following disclaimer.
     40   1.2        ad  * 2. Redistributions in binary form must reproduce the above copyright
     41   1.2        ad  *    notice, this list of conditions and the following disclaimer in the
     42   1.2        ad  *    documentation and/or other materials provided with the distribution.
     43   1.2        ad  * 3. All advertising materials mentioning features or use of this software
     44   1.2        ad  *    must display the following acknowledgement:
     45   1.2        ad  *      This product includes software developed by the NetBSD
     46   1.2        ad  *      Foundation, Inc. and its contributors.
     47   1.2        ad  * 4. Neither the name of The NetBSD Foundation nor the names of its
     48   1.2        ad  *    contributors may be used to endorse or promote products derived
     49   1.2        ad  *    from this software without specific prior written permission.
     50   1.2        ad  *
     51   1.2        ad  * THIS SOFTWARE IS PROVIDED BY AUTHOR AND CONTRIBUTORS ``AS IS'' AND ANY
     52   1.2        ad  * EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     53   1.2        ad  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     54   1.2        ad  * ARE DISCLAIMED.  IN NO EVENT SHALL THE AUTHOR AND CONTRIBUTORS BE LIABLE
     55   1.2        ad  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     56   1.2        ad  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     57   1.2        ad  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     58   1.2        ad  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     59   1.2        ad  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     60   1.2        ad  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     61   1.2        ad  * SUCH DAMAGE.
     62   1.2        ad  */
     63   1.2        ad 
     64   1.2        ad #include <sys/cdefs.h>
     65  1.98     rmind __KERNEL_RCSID(0, "$NetBSD: cpu.c,v 1.98 2012/04/20 22:23:24 rmind Exp $");
     66   1.2        ad 
     67   1.2        ad #include "opt_ddb.h"
     68   1.2        ad #include "opt_mpbios.h"		/* for MPDEBUG */
     69   1.2        ad #include "opt_mtrr.h"
     70   1.2        ad 
     71   1.2        ad #include "lapic.h"
     72   1.2        ad #include "ioapic.h"
     73   1.2        ad 
     74  1.62    bouyer #ifdef i386
     75  1.62    bouyer #include "npx.h"
     76  1.62    bouyer #endif
     77  1.62    bouyer 
     78   1.2        ad #include <sys/param.h>
     79   1.2        ad #include <sys/proc.h>
     80   1.2        ad #include <sys/systm.h>
     81   1.2        ad #include <sys/device.h>
     82  1.61    cegger #include <sys/kmem.h>
     83   1.9        ad #include <sys/cpu.h>
     84  1.93    jruoho #include <sys/cpufreq.h>
     85  1.98     rmind #include <sys/idle.h>
     86   1.9        ad #include <sys/atomic.h>
     87  1.35        ad #include <sys/reboot.h>
     88   1.2        ad 
     89  1.78  uebayasi #include <uvm/uvm.h>
     90   1.2        ad 
     91   1.2        ad #include <machine/cpufunc.h>
     92   1.2        ad #include <machine/cpuvar.h>
     93   1.2        ad #include <machine/pmap.h>
     94   1.2        ad #include <machine/vmparam.h>
     95   1.2        ad #include <machine/mpbiosvar.h>
     96   1.2        ad #include <machine/pcb.h>
     97   1.2        ad #include <machine/specialreg.h>
     98   1.2        ad #include <machine/segments.h>
     99   1.2        ad #include <machine/gdt.h>
    100   1.2        ad #include <machine/mtrr.h>
    101   1.2        ad #include <machine/pio.h>
    102  1.38        ad #include <machine/cpu_counter.h>
    103   1.2        ad 
    104   1.2        ad #ifdef i386
    105   1.2        ad #include <machine/tlog.h>
    106   1.2        ad #endif
    107   1.2        ad 
    108   1.2        ad #include <machine/apicvar.h>
    109   1.2        ad #include <machine/i82489reg.h>
    110   1.2        ad #include <machine/i82489var.h>
    111   1.2        ad 
    112   1.2        ad #include <dev/ic/mc146818reg.h>
    113   1.2        ad #include <i386/isa/nvram.h>
    114   1.2        ad #include <dev/isa/isareg.h>
    115   1.2        ad 
    116  1.38        ad #include "tsc.h"
    117  1.38        ad 
    118  1.87    jruoho static int	cpu_match(device_t, cfdata_t, void *);
    119  1.87    jruoho static void	cpu_attach(device_t, device_t, void *);
    120  1.87    jruoho static void	cpu_defer(device_t);
    121  1.87    jruoho static int	cpu_rescan(device_t, const char *, const int *);
    122  1.87    jruoho static void	cpu_childdetached(device_t, device_t);
    123  1.96    jruoho static bool	cpu_stop(device_t);
    124  1.69    dyoung static bool	cpu_suspend(device_t, const pmf_qual_t *);
    125  1.69    dyoung static bool	cpu_resume(device_t, const pmf_qual_t *);
    126  1.79    jruoho static bool	cpu_shutdown(device_t, int);
    127  1.12  jmcneill 
    128   1.2        ad struct cpu_softc {
    129  1.23      cube 	device_t sc_dev;		/* device tree glue */
    130   1.2        ad 	struct cpu_info *sc_info;	/* pointer to CPU info */
    131  1.20  jmcneill 	bool sc_wasonline;
    132   1.2        ad };
    133   1.2        ad 
    134  1.14     joerg int mp_cpu_start(struct cpu_info *, paddr_t);
    135   1.2        ad void mp_cpu_start_cleanup(struct cpu_info *);
    136   1.2        ad const struct cpu_functions mp_cpu_funcs = { mp_cpu_start, NULL,
    137   1.2        ad 					    mp_cpu_start_cleanup };
    138   1.2        ad 
    139   1.2        ad 
    140  1.81  jmcneill CFATTACH_DECL2_NEW(cpu, sizeof(struct cpu_softc),
    141  1.81  jmcneill     cpu_match, cpu_attach, NULL, NULL, cpu_rescan, cpu_childdetached);
    142   1.2        ad 
    143   1.2        ad /*
    144   1.2        ad  * Statically-allocated CPU info for the primary CPU (or the only
    145   1.2        ad  * CPU, on uniprocessors).  The CPU info list is initialized to
    146   1.2        ad  * point at it.
    147   1.2        ad  */
    148   1.2        ad #ifdef TRAPLOG
    149   1.2        ad struct tlog tlog_primary;
    150   1.2        ad #endif
    151  1.21        ad struct cpu_info cpu_info_primary __aligned(CACHE_LINE_SIZE) = {
    152   1.2        ad 	.ci_dev = 0,
    153   1.2        ad 	.ci_self = &cpu_info_primary,
    154   1.2        ad 	.ci_idepth = -1,
    155   1.2        ad 	.ci_curlwp = &lwp0,
    156  1.43        ad 	.ci_curldt = -1,
    157   1.2        ad #ifdef TRAPLOG
    158   1.2        ad 	.ci_tlog_base = &tlog_primary,
    159   1.2        ad #endif /* !TRAPLOG */
    160   1.2        ad };
    161   1.2        ad 
    162   1.2        ad struct cpu_info *cpu_info_list = &cpu_info_primary;
    163   1.2        ad 
    164  1.12  jmcneill static void	cpu_set_tss_gates(struct cpu_info *);
    165   1.2        ad 
    166   1.2        ad #ifdef i386
    167  1.15      yamt static void	tss_init(struct i386tss *, void *, void *);
    168   1.2        ad #endif
    169   1.2        ad 
    170  1.12  jmcneill static void	cpu_init_idle_lwp(struct cpu_info *);
    171  1.12  jmcneill 
    172  1.70       jym uint32_t cpu_feature[5]; /* X86 CPUID feature bits
    173  1.70       jym 			  *	[0] basic features %edx
    174  1.70       jym 			  *	[1] basic features %ecx
    175  1.70       jym 			  *	[2] extended features %edx
    176  1.70       jym 			  *	[3] extended features %ecx
    177  1.70       jym 			  *	[4] VIA padlock features
    178  1.70       jym 			  */
    179  1.70       jym 
    180   1.2        ad extern char x86_64_doubleflt_stack[];
    181   1.2        ad 
    182  1.12  jmcneill bool x86_mp_online;
    183  1.12  jmcneill paddr_t mp_trampoline_paddr = MP_TRAMPOLINE;
    184  1.14     joerg static vaddr_t cmos_data_mapping;
    185  1.45        ad struct cpu_info *cpu_starting;
    186   1.2        ad 
    187   1.2        ad void    	cpu_hatch(void *);
    188   1.2        ad static void    	cpu_boot_secondary(struct cpu_info *ci);
    189   1.2        ad static void    	cpu_start_secondary(struct cpu_info *ci);
    190   1.2        ad static void	cpu_copy_trampoline(void);
    191   1.2        ad 
    192   1.2        ad /*
    193   1.2        ad  * Runs once per boot once multiprocessor goo has been detected and
    194   1.2        ad  * the local APIC on the boot processor has been mapped.
    195   1.2        ad  *
    196   1.2        ad  * Called from lapic_boot_init() (from mpbios_scan()).
    197   1.2        ad  */
    198   1.2        ad void
    199   1.9        ad cpu_init_first(void)
    200   1.2        ad {
    201   1.2        ad 
    202  1.45        ad 	cpu_info_primary.ci_cpuid = lapic_cpu_number();
    203   1.2        ad 	cpu_copy_trampoline();
    204  1.14     joerg 
    205  1.14     joerg 	cmos_data_mapping = uvm_km_alloc(kernel_map, PAGE_SIZE, 0, UVM_KMF_VAONLY);
    206  1.14     joerg 	if (cmos_data_mapping == 0)
    207  1.14     joerg 		panic("No KVA for page 0");
    208  1.64    cegger 	pmap_kenter_pa(cmos_data_mapping, 0, VM_PROT_READ|VM_PROT_WRITE, 0);
    209  1.14     joerg 	pmap_update(pmap_kernel());
    210   1.2        ad }
    211   1.2        ad 
    212  1.87    jruoho static int
    213  1.23      cube cpu_match(device_t parent, cfdata_t match, void *aux)
    214   1.2        ad {
    215   1.2        ad 
    216   1.2        ad 	return 1;
    217   1.2        ad }
    218   1.2        ad 
    219   1.2        ad static void
    220   1.2        ad cpu_vm_init(struct cpu_info *ci)
    221   1.2        ad {
    222   1.2        ad 	int ncolors = 2, i;
    223   1.2        ad 
    224   1.2        ad 	for (i = CAI_ICACHE; i <= CAI_L2CACHE; i++) {
    225   1.2        ad 		struct x86_cache_info *cai;
    226   1.2        ad 		int tcolors;
    227   1.2        ad 
    228   1.2        ad 		cai = &ci->ci_cinfo[i];
    229   1.2        ad 
    230   1.2        ad 		tcolors = atop(cai->cai_totalsize);
    231   1.2        ad 		switch(cai->cai_associativity) {
    232   1.2        ad 		case 0xff:
    233   1.2        ad 			tcolors = 1; /* fully associative */
    234   1.2        ad 			break;
    235   1.2        ad 		case 0:
    236   1.2        ad 		case 1:
    237   1.2        ad 			break;
    238   1.2        ad 		default:
    239   1.2        ad 			tcolors /= cai->cai_associativity;
    240   1.2        ad 		}
    241   1.2        ad 		ncolors = max(ncolors, tcolors);
    242  1.32       tls 		/*
    243  1.32       tls 		 * If the desired number of colors is not a power of
    244  1.32       tls 		 * two, it won't be good.  Find the greatest power of
    245  1.32       tls 		 * two which is an even divisor of the number of colors,
    246  1.32       tls 		 * to preserve even coloring of pages.
    247  1.32       tls 		 */
    248  1.32       tls 		if (ncolors & (ncolors - 1) ) {
    249  1.32       tls 			int try, picked = 1;
    250  1.32       tls 			for (try = 1; try < ncolors; try *= 2) {
    251  1.32       tls 				if (ncolors % try == 0) picked = try;
    252  1.32       tls 			}
    253  1.32       tls 			if (picked == 1) {
    254  1.32       tls 				panic("desired number of cache colors %d is "
    255  1.32       tls 			      	" > 1, but not even!", ncolors);
    256  1.32       tls 			}
    257  1.32       tls 			ncolors = picked;
    258  1.32       tls 		}
    259   1.2        ad 	}
    260   1.2        ad 
    261   1.2        ad 	/*
    262  1.94       mrg 	 * Knowing the size of the largest cache on this CPU, potentially
    263  1.94       mrg 	 * re-color our pages.
    264   1.2        ad 	 */
    265  1.52        ad 	aprint_debug_dev(ci->ci_dev, "%d page colors\n", ncolors);
    266   1.2        ad 	uvm_page_recolor(ncolors);
    267  1.98     rmind 
    268  1.98     rmind 	pmap_tlb_cpu_init(ci);
    269   1.2        ad }
    270   1.2        ad 
    271  1.87    jruoho static void
    272  1.23      cube cpu_attach(device_t parent, device_t self, void *aux)
    273   1.2        ad {
    274  1.23      cube 	struct cpu_softc *sc = device_private(self);
    275   1.2        ad 	struct cpu_attach_args *caa = aux;
    276   1.2        ad 	struct cpu_info *ci;
    277  1.21        ad 	uintptr_t ptr;
    278   1.2        ad 	int cpunum = caa->cpu_number;
    279  1.51        ad 	static bool again;
    280   1.2        ad 
    281  1.23      cube 	sc->sc_dev = self;
    282  1.23      cube 
    283  1.98     rmind 	if (ncpu == maxcpus) {
    284  1.98     rmind #ifndef _LP64
    285  1.98     rmind 		aprint_error(": too many CPUs, please use NetBSD/amd64\n");
    286  1.98     rmind #else
    287  1.98     rmind 		aprint_error(": too many CPUs\n");
    288  1.98     rmind #endif
    289  1.48        ad 		return;
    290  1.48        ad 	}
    291  1.48        ad 
    292   1.2        ad 	/*
    293   1.2        ad 	 * If we're an Application Processor, allocate a cpu_info
    294   1.2        ad 	 * structure, otherwise use the primary's.
    295   1.2        ad 	 */
    296   1.2        ad 	if (caa->cpu_role == CPU_ROLE_AP) {
    297  1.36        ad 		if ((boothowto & RB_MD1) != 0) {
    298  1.35        ad 			aprint_error(": multiprocessor boot disabled\n");
    299  1.56  jmcneill 			if (!pmf_device_register(self, NULL, NULL))
    300  1.56  jmcneill 				aprint_error_dev(self,
    301  1.56  jmcneill 				    "couldn't establish power handler\n");
    302  1.35        ad 			return;
    303  1.35        ad 		}
    304   1.2        ad 		aprint_naive(": Application Processor\n");
    305  1.72     rmind 		ptr = (uintptr_t)kmem_zalloc(sizeof(*ci) + CACHE_LINE_SIZE - 1,
    306  1.61    cegger 		    KM_SLEEP);
    307  1.67       jym 		ci = (struct cpu_info *)roundup2(ptr, CACHE_LINE_SIZE);
    308  1.43        ad 		ci->ci_curldt = -1;
    309   1.2        ad #ifdef TRAPLOG
    310  1.61    cegger 		ci->ci_tlog_base = kmem_zalloc(sizeof(struct tlog), KM_SLEEP);
    311   1.2        ad #endif
    312   1.2        ad 	} else {
    313   1.2        ad 		aprint_naive(": %s Processor\n",
    314   1.2        ad 		    caa->cpu_role == CPU_ROLE_SP ? "Single" : "Boot");
    315   1.2        ad 		ci = &cpu_info_primary;
    316   1.2        ad 		if (cpunum != lapic_cpu_number()) {
    317  1.51        ad 			/* XXX should be done earlier. */
    318  1.39        ad 			uint32_t reg;
    319  1.39        ad 			aprint_verbose("\n");
    320  1.47        ad 			aprint_verbose_dev(self, "running CPU at apic %d"
    321  1.47        ad 			    " instead of at expected %d", lapic_cpu_number(),
    322  1.23      cube 			    cpunum);
    323  1.39        ad 			reg = i82489_readreg(LAPIC_ID);
    324  1.39        ad 			i82489_writereg(LAPIC_ID, (reg & ~LAPIC_ID_MASK) |
    325  1.39        ad 			    (cpunum << LAPIC_ID_SHIFT));
    326   1.2        ad 		}
    327  1.47        ad 		if (cpunum != lapic_cpu_number()) {
    328  1.47        ad 			aprint_error_dev(self, "unable to reset apic id\n");
    329  1.47        ad 		}
    330   1.2        ad 	}
    331   1.2        ad 
    332   1.2        ad 	ci->ci_self = ci;
    333   1.2        ad 	sc->sc_info = ci;
    334   1.2        ad 	ci->ci_dev = self;
    335  1.74    jruoho 	ci->ci_acpiid = caa->cpu_id;
    336  1.42        ad 	ci->ci_cpuid = caa->cpu_number;
    337   1.2        ad 	ci->ci_func = caa->cpu_func;
    338   1.2        ad 
    339  1.55        ad 	/* Must be before mi_cpu_attach(). */
    340  1.55        ad 	cpu_vm_init(ci);
    341  1.55        ad 
    342   1.2        ad 	if (caa->cpu_role == CPU_ROLE_AP) {
    343   1.2        ad 		int error;
    344   1.2        ad 
    345   1.2        ad 		error = mi_cpu_attach(ci);
    346   1.2        ad 		if (error != 0) {
    347   1.2        ad 			aprint_normal("\n");
    348  1.47        ad 			aprint_error_dev(self,
    349  1.30    cegger 			    "mi_cpu_attach failed with %d\n", error);
    350   1.2        ad 			return;
    351   1.2        ad 		}
    352  1.15      yamt 		cpu_init_tss(ci);
    353   1.2        ad 	} else {
    354   1.2        ad 		KASSERT(ci->ci_data.cpu_idlelwp != NULL);
    355   1.2        ad 	}
    356   1.2        ad 
    357   1.2        ad 	pmap_reference(pmap_kernel());
    358   1.2        ad 	ci->ci_pmap = pmap_kernel();
    359   1.2        ad 	ci->ci_tlbstate = TLBSTATE_STALE;
    360   1.2        ad 
    361  1.51        ad 	/*
    362  1.51        ad 	 * Boot processor may not be attached first, but the below
    363  1.51        ad 	 * must be done to allow booting other processors.
    364  1.51        ad 	 */
    365  1.51        ad 	if (!again) {
    366  1.51        ad 		atomic_or_32(&ci->ci_flags, CPUF_PRESENT | CPUF_PRIMARY);
    367  1.51        ad 		/* Basic init. */
    368   1.2        ad 		cpu_intr_init(ci);
    369  1.40        ad 		cpu_get_tsc_freq(ci);
    370   1.2        ad 		cpu_init(ci);
    371   1.2        ad 		cpu_set_tss_gates(ci);
    372   1.2        ad 		pmap_cpu_init_late(ci);
    373  1.51        ad 		if (caa->cpu_role != CPU_ROLE_SP) {
    374  1.51        ad 			/* Enable lapic. */
    375  1.51        ad 			lapic_enable();
    376  1.51        ad 			lapic_set_lvt();
    377  1.51        ad 			lapic_calibrate_timer(ci);
    378  1.51        ad 		}
    379  1.51        ad 		/* Make sure DELAY() is initialized. */
    380  1.51        ad 		DELAY(1);
    381  1.51        ad 		again = true;
    382  1.51        ad 	}
    383  1.51        ad 
    384  1.51        ad 	/* further PCB init done later. */
    385  1.51        ad 
    386  1.51        ad 	switch (caa->cpu_role) {
    387  1.51        ad 	case CPU_ROLE_SP:
    388  1.51        ad 		atomic_or_32(&ci->ci_flags, CPUF_SP);
    389  1.51        ad 		cpu_identify(ci);
    390  1.53        ad 		x86_errata();
    391  1.37     joerg 		x86_cpu_idle_init();
    392   1.2        ad 		break;
    393   1.2        ad 
    394   1.2        ad 	case CPU_ROLE_BP:
    395  1.51        ad 		atomic_or_32(&ci->ci_flags, CPUF_BSP);
    396  1.40        ad 		cpu_identify(ci);
    397  1.53        ad 		x86_errata();
    398  1.37     joerg 		x86_cpu_idle_init();
    399   1.2        ad 		break;
    400   1.2        ad 
    401   1.2        ad 	case CPU_ROLE_AP:
    402   1.2        ad 		/*
    403   1.2        ad 		 * report on an AP
    404   1.2        ad 		 */
    405   1.2        ad 		cpu_intr_init(ci);
    406   1.2        ad 		gdt_alloc_cpu(ci);
    407   1.2        ad 		cpu_set_tss_gates(ci);
    408   1.2        ad 		pmap_cpu_init_late(ci);
    409   1.2        ad 		cpu_start_secondary(ci);
    410   1.2        ad 		if (ci->ci_flags & CPUF_PRESENT) {
    411  1.59    cegger 			struct cpu_info *tmp;
    412  1.59    cegger 
    413  1.40        ad 			cpu_identify(ci);
    414  1.59    cegger 			tmp = cpu_info_list;
    415  1.59    cegger 			while (tmp->ci_next)
    416  1.59    cegger 				tmp = tmp->ci_next;
    417  1.59    cegger 
    418  1.59    cegger 			tmp->ci_next = ci;
    419   1.2        ad 		}
    420   1.2        ad 		break;
    421   1.2        ad 
    422   1.2        ad 	default:
    423  1.28    cegger 		aprint_normal("\n");
    424   1.2        ad 		panic("unknown processor type??\n");
    425   1.2        ad 	}
    426  1.51        ad 
    427  1.71    cegger 	pat_init(ci);
    428   1.2        ad 
    429  1.79    jruoho 	if (!pmf_device_register1(self, cpu_suspend, cpu_resume, cpu_shutdown))
    430  1.12  jmcneill 		aprint_error_dev(self, "couldn't establish power handler\n");
    431  1.12  jmcneill 
    432   1.2        ad 	if (mp_verbose) {
    433   1.2        ad 		struct lwp *l = ci->ci_data.cpu_idlelwp;
    434  1.65     rmind 		struct pcb *pcb = lwp_getpcb(l);
    435   1.2        ad 
    436  1.47        ad 		aprint_verbose_dev(self,
    437  1.28    cegger 		    "idle lwp at %p, idle sp at %p\n",
    438  1.28    cegger 		    l,
    439   1.2        ad #ifdef i386
    440  1.65     rmind 		    (void *)pcb->pcb_esp
    441   1.2        ad #else
    442  1.65     rmind 		    (void *)pcb->pcb_rsp
    443   1.2        ad #endif
    444   1.2        ad 		);
    445   1.2        ad 	}
    446  1.81  jmcneill 
    447  1.89    jruoho 	/*
    448  1.89    jruoho 	 * Postpone the "cpufeaturebus" scan.
    449  1.89    jruoho 	 * It is safe to scan the pseudo-bus
    450  1.89    jruoho 	 * only after all CPUs have attached.
    451  1.89    jruoho 	 */
    452  1.87    jruoho 	(void)config_defer(self, cpu_defer);
    453  1.87    jruoho }
    454  1.87    jruoho 
    455  1.87    jruoho static void
    456  1.87    jruoho cpu_defer(device_t self)
    457  1.87    jruoho {
    458  1.81  jmcneill 	cpu_rescan(self, NULL, NULL);
    459  1.81  jmcneill }
    460  1.81  jmcneill 
    461  1.87    jruoho static int
    462  1.81  jmcneill cpu_rescan(device_t self, const char *ifattr, const int *locators)
    463  1.81  jmcneill {
    464  1.83    jruoho 	struct cpu_softc *sc = device_private(self);
    465  1.81  jmcneill 	struct cpufeature_attach_args cfaa;
    466  1.81  jmcneill 	struct cpu_info *ci = sc->sc_info;
    467  1.81  jmcneill 
    468  1.81  jmcneill 	memset(&cfaa, 0, sizeof(cfaa));
    469  1.81  jmcneill 	cfaa.ci = ci;
    470  1.81  jmcneill 
    471  1.81  jmcneill 	if (ifattr_match(ifattr, "cpufeaturebus")) {
    472  1.82    jruoho 
    473  1.83    jruoho 		if (ci->ci_frequency == NULL) {
    474  1.86    jruoho 			cfaa.name = "frequency";
    475  1.84    jruoho 			ci->ci_frequency = config_found_ia(self,
    476  1.84    jruoho 			    "cpufeaturebus", &cfaa, NULL);
    477  1.84    jruoho 		}
    478  1.84    jruoho 
    479  1.81  jmcneill 		if (ci->ci_padlock == NULL) {
    480  1.81  jmcneill 			cfaa.name = "padlock";
    481  1.81  jmcneill 			ci->ci_padlock = config_found_ia(self,
    482  1.81  jmcneill 			    "cpufeaturebus", &cfaa, NULL);
    483  1.81  jmcneill 		}
    484  1.82    jruoho 
    485  1.86    jruoho 		if (ci->ci_temperature == NULL) {
    486  1.86    jruoho 			cfaa.name = "temperature";
    487  1.86    jruoho 			ci->ci_temperature = config_found_ia(self,
    488  1.85    jruoho 			    "cpufeaturebus", &cfaa, NULL);
    489  1.85    jruoho 		}
    490  1.95  jmcneill 
    491  1.95  jmcneill 		if (ci->ci_vm == NULL) {
    492  1.95  jmcneill 			cfaa.name = "vm";
    493  1.95  jmcneill 			ci->ci_vm = config_found_ia(self,
    494  1.95  jmcneill 			    "cpufeaturebus", &cfaa, NULL);
    495  1.95  jmcneill 		}
    496  1.81  jmcneill 	}
    497  1.81  jmcneill 
    498  1.81  jmcneill 	return 0;
    499  1.81  jmcneill }
    500  1.81  jmcneill 
    501  1.87    jruoho static void
    502  1.81  jmcneill cpu_childdetached(device_t self, device_t child)
    503  1.81  jmcneill {
    504  1.81  jmcneill 	struct cpu_softc *sc = device_private(self);
    505  1.81  jmcneill 	struct cpu_info *ci = sc->sc_info;
    506  1.81  jmcneill 
    507  1.83    jruoho 	if (ci->ci_frequency == child)
    508  1.83    jruoho 		ci->ci_frequency = NULL;
    509  1.82    jruoho 
    510  1.81  jmcneill 	if (ci->ci_padlock == child)
    511  1.81  jmcneill 		ci->ci_padlock = NULL;
    512  1.83    jruoho 
    513  1.86    jruoho 	if (ci->ci_temperature == child)
    514  1.86    jruoho 		ci->ci_temperature = NULL;
    515  1.95  jmcneill 
    516  1.95  jmcneill 	if (ci->ci_vm == child)
    517  1.95  jmcneill 		ci->ci_vm = NULL;
    518   1.2        ad }
    519   1.2        ad 
    520   1.2        ad /*
    521   1.2        ad  * Initialize the processor appropriately.
    522   1.2        ad  */
    523   1.2        ad 
    524   1.2        ad void
    525   1.9        ad cpu_init(struct cpu_info *ci)
    526   1.2        ad {
    527   1.2        ad 
    528   1.2        ad 	lcr0(rcr0() | CR0_WP);
    529   1.2        ad 
    530   1.2        ad 	/*
    531   1.2        ad 	 * On a P6 or above, enable global TLB caching if the
    532   1.2        ad 	 * hardware supports it.
    533   1.2        ad 	 */
    534  1.70       jym 	if (cpu_feature[0] & CPUID_PGE)
    535   1.2        ad 		lcr4(rcr4() | CR4_PGE);	/* enable global TLB caching */
    536   1.2        ad 
    537   1.2        ad 	/*
    538   1.2        ad 	 * If we have FXSAVE/FXRESTOR, use them.
    539   1.2        ad 	 */
    540  1.70       jym 	if (cpu_feature[0] & CPUID_FXSR) {
    541   1.2        ad 		lcr4(rcr4() | CR4_OSFXSR);
    542   1.2        ad 
    543   1.2        ad 		/*
    544   1.2        ad 		 * If we have SSE/SSE2, enable XMM exceptions.
    545   1.2        ad 		 */
    546  1.70       jym 		if (cpu_feature[0] & (CPUID_SSE|CPUID_SSE2))
    547   1.2        ad 			lcr4(rcr4() | CR4_OSXMMEXCPT);
    548   1.2        ad 	}
    549   1.2        ad 
    550   1.2        ad #ifdef MTRR
    551   1.2        ad 	/*
    552   1.2        ad 	 * On a P6 or above, initialize MTRR's if the hardware supports them.
    553   1.2        ad 	 */
    554  1.70       jym 	if (cpu_feature[0] & CPUID_MTRR) {
    555   1.2        ad 		if ((ci->ci_flags & CPUF_AP) == 0)
    556   1.2        ad 			i686_mtrr_init_first();
    557   1.2        ad 		mtrr_init_cpu(ci);
    558   1.2        ad 	}
    559   1.2        ad 
    560   1.2        ad #ifdef i386
    561   1.2        ad 	if (strcmp((char *)(ci->ci_vendor), "AuthenticAMD") == 0) {
    562   1.2        ad 		/*
    563   1.2        ad 		 * Must be a K6-2 Step >= 7 or a K6-III.
    564   1.2        ad 		 */
    565   1.2        ad 		if (CPUID2FAMILY(ci->ci_signature) == 5) {
    566   1.2        ad 			if (CPUID2MODEL(ci->ci_signature) > 8 ||
    567   1.2        ad 			    (CPUID2MODEL(ci->ci_signature) == 8 &&
    568   1.2        ad 			     CPUID2STEPPING(ci->ci_signature) >= 7)) {
    569   1.2        ad 				mtrr_funcs = &k6_mtrr_funcs;
    570   1.2        ad 				k6_mtrr_init_first();
    571   1.2        ad 				mtrr_init_cpu(ci);
    572   1.2        ad 			}
    573   1.2        ad 		}
    574   1.2        ad 	}
    575   1.2        ad #endif	/* i386 */
    576   1.2        ad #endif /* MTRR */
    577   1.2        ad 
    578  1.38        ad 	if (ci != &cpu_info_primary) {
    579  1.38        ad 		/* Synchronize TSC again, and check for drift. */
    580  1.38        ad 		wbinvd();
    581  1.38        ad 		atomic_or_32(&ci->ci_flags, CPUF_RUNNING);
    582  1.38        ad 		tsc_sync_ap(ci);
    583  1.38        ad 	} else {
    584  1.38        ad 		atomic_or_32(&ci->ci_flags, CPUF_RUNNING);
    585  1.38        ad 	}
    586   1.2        ad }
    587   1.2        ad 
    588   1.2        ad void
    589  1.12  jmcneill cpu_boot_secondary_processors(void)
    590   1.2        ad {
    591   1.2        ad 	struct cpu_info *ci;
    592   1.2        ad 	u_long i;
    593   1.2        ad 
    594   1.5        ad 	/* Now that we know the number of CPUs, patch the text segment. */
    595  1.60        ad 	x86_patch(false);
    596   1.5        ad 
    597  1.54        ad 	for (i=0; i < maxcpus; i++) {
    598  1.57        ad 		ci = cpu_lookup(i);
    599   1.2        ad 		if (ci == NULL)
    600   1.2        ad 			continue;
    601   1.2        ad 		if (ci->ci_data.cpu_idlelwp == NULL)
    602   1.2        ad 			continue;
    603   1.2        ad 		if ((ci->ci_flags & CPUF_PRESENT) == 0)
    604   1.2        ad 			continue;
    605   1.2        ad 		if (ci->ci_flags & (CPUF_BSP|CPUF_SP|CPUF_PRIMARY))
    606   1.2        ad 			continue;
    607   1.2        ad 		cpu_boot_secondary(ci);
    608   1.2        ad 	}
    609   1.2        ad 
    610   1.2        ad 	x86_mp_online = true;
    611  1.38        ad 
    612  1.38        ad 	/* Now that we know about the TSC, attach the timecounter. */
    613  1.38        ad 	tsc_tc_init();
    614  1.55        ad 
    615  1.55        ad 	/* Enable zeroing of pages in the idle loop if we have SSE2. */
    616  1.70       jym 	vm_page_zero_enable = ((cpu_feature[0] & CPUID_SSE2) != 0);
    617   1.2        ad }
    618   1.2        ad 
    619   1.2        ad static void
    620   1.2        ad cpu_init_idle_lwp(struct cpu_info *ci)
    621   1.2        ad {
    622   1.2        ad 	struct lwp *l = ci->ci_data.cpu_idlelwp;
    623  1.65     rmind 	struct pcb *pcb = lwp_getpcb(l);
    624   1.2        ad 
    625   1.2        ad 	pcb->pcb_cr0 = rcr0();
    626   1.2        ad }
    627   1.2        ad 
    628   1.2        ad void
    629  1.12  jmcneill cpu_init_idle_lwps(void)
    630   1.2        ad {
    631   1.2        ad 	struct cpu_info *ci;
    632   1.2        ad 	u_long i;
    633   1.2        ad 
    634  1.54        ad 	for (i = 0; i < maxcpus; i++) {
    635  1.57        ad 		ci = cpu_lookup(i);
    636   1.2        ad 		if (ci == NULL)
    637   1.2        ad 			continue;
    638   1.2        ad 		if (ci->ci_data.cpu_idlelwp == NULL)
    639   1.2        ad 			continue;
    640   1.2        ad 		if ((ci->ci_flags & CPUF_PRESENT) == 0)
    641   1.2        ad 			continue;
    642   1.2        ad 		cpu_init_idle_lwp(ci);
    643   1.2        ad 	}
    644   1.2        ad }
    645   1.2        ad 
    646   1.2        ad void
    647  1.12  jmcneill cpu_start_secondary(struct cpu_info *ci)
    648   1.2        ad {
    649  1.38        ad 	extern paddr_t mp_pdirpa;
    650  1.38        ad 	u_long psl;
    651   1.2        ad 	int i;
    652   1.2        ad 
    653  1.12  jmcneill 	mp_pdirpa = pmap_init_tmp_pgtbl(mp_trampoline_paddr);
    654   1.9        ad 	atomic_or_32(&ci->ci_flags, CPUF_AP);
    655   1.2        ad 	ci->ci_curlwp = ci->ci_data.cpu_idlelwp;
    656  1.45        ad 	if (CPU_STARTUP(ci, mp_trampoline_paddr) != 0) {
    657  1.25        ad 		return;
    658  1.45        ad 	}
    659   1.2        ad 
    660   1.2        ad 	/*
    661  1.50        ad 	 * Wait for it to become ready.   Setting cpu_starting opens the
    662  1.50        ad 	 * initial gate and allows the AP to start soft initialization.
    663   1.2        ad 	 */
    664  1.50        ad 	KASSERT(cpu_starting == NULL);
    665  1.50        ad 	cpu_starting = ci;
    666  1.26    cegger 	for (i = 100000; (!(ci->ci_flags & CPUF_PRESENT)) && i > 0; i--) {
    667  1.24        ad #ifdef MPDEBUG
    668  1.24        ad 		extern int cpu_trace[3];
    669  1.24        ad 		static int otrace[3];
    670  1.24        ad 		if (memcmp(otrace, cpu_trace, sizeof(otrace)) != 0) {
    671  1.26    cegger 			aprint_debug_dev(ci->ci_dev, "trace %02x %02x %02x\n",
    672  1.26    cegger 			    cpu_trace[0], cpu_trace[1], cpu_trace[2]);
    673  1.24        ad 			memcpy(otrace, cpu_trace, sizeof(otrace));
    674  1.24        ad 		}
    675  1.24        ad #endif
    676  1.11        ad 		i8254_delay(10);
    677   1.2        ad 	}
    678  1.38        ad 
    679   1.9        ad 	if ((ci->ci_flags & CPUF_PRESENT) == 0) {
    680  1.26    cegger 		aprint_error_dev(ci->ci_dev, "failed to become ready\n");
    681   1.2        ad #if defined(MPDEBUG) && defined(DDB)
    682   1.2        ad 		printf("dropping into debugger; continue from here to resume boot\n");
    683   1.2        ad 		Debugger();
    684   1.2        ad #endif
    685  1.38        ad 	} else {
    686  1.38        ad 		/*
    687  1.68       jym 		 * Synchronize time stamp counters. Invalidate cache and do
    688  1.68       jym 		 * twice to try and minimize possible cache effects. Disable
    689  1.68       jym 		 * interrupts to try and rule out any external interference.
    690  1.38        ad 		 */
    691  1.38        ad 		psl = x86_read_psl();
    692  1.38        ad 		x86_disable_intr();
    693  1.38        ad 		wbinvd();
    694  1.38        ad 		tsc_sync_bp(ci);
    695  1.38        ad 		x86_write_psl(psl);
    696   1.2        ad 	}
    697   1.2        ad 
    698   1.2        ad 	CPU_START_CLEANUP(ci);
    699  1.45        ad 	cpu_starting = NULL;
    700   1.2        ad }
    701   1.2        ad 
    702   1.2        ad void
    703  1.12  jmcneill cpu_boot_secondary(struct cpu_info *ci)
    704   1.2        ad {
    705  1.38        ad 	int64_t drift;
    706  1.38        ad 	u_long psl;
    707   1.2        ad 	int i;
    708   1.2        ad 
    709   1.9        ad 	atomic_or_32(&ci->ci_flags, CPUF_GO);
    710  1.26    cegger 	for (i = 100000; (!(ci->ci_flags & CPUF_RUNNING)) && i > 0; i--) {
    711  1.11        ad 		i8254_delay(10);
    712   1.2        ad 	}
    713   1.9        ad 	if ((ci->ci_flags & CPUF_RUNNING) == 0) {
    714  1.26    cegger 		aprint_error_dev(ci->ci_dev, "failed to start\n");
    715   1.2        ad #if defined(MPDEBUG) && defined(DDB)
    716   1.2        ad 		printf("dropping into debugger; continue from here to resume boot\n");
    717   1.2        ad 		Debugger();
    718   1.2        ad #endif
    719  1.38        ad 	} else {
    720  1.38        ad 		/* Synchronize TSC again, check for drift. */
    721  1.38        ad 		drift = ci->ci_data.cpu_cc_skew;
    722  1.38        ad 		psl = x86_read_psl();
    723  1.38        ad 		x86_disable_intr();
    724  1.38        ad 		wbinvd();
    725  1.38        ad 		tsc_sync_bp(ci);
    726  1.38        ad 		x86_write_psl(psl);
    727  1.38        ad 		drift -= ci->ci_data.cpu_cc_skew;
    728  1.38        ad 		aprint_debug_dev(ci->ci_dev, "TSC skew=%lld drift=%lld\n",
    729  1.38        ad 		    (long long)ci->ci_data.cpu_cc_skew, (long long)drift);
    730  1.38        ad 		tsc_sync_drift(drift);
    731   1.2        ad 	}
    732   1.2        ad }
    733   1.2        ad 
    734   1.2        ad /*
    735   1.2        ad  * The CPU ends up here when its ready to run
    736   1.2        ad  * This is called from code in mptramp.s; at this point, we are running
    737   1.2        ad  * in the idle pcb/idle stack of the new CPU.  When this function returns,
    738   1.2        ad  * this processor will enter the idle loop and start looking for work.
    739   1.2        ad  */
    740   1.2        ad void
    741   1.2        ad cpu_hatch(void *v)
    742   1.2        ad {
    743   1.2        ad 	struct cpu_info *ci = (struct cpu_info *)v;
    744  1.65     rmind 	struct pcb *pcb;
    745   1.6        ad 	int s, i;
    746   1.2        ad 
    747  1.12  jmcneill 	cpu_init_msrs(ci, true);
    748  1.40        ad 	cpu_probe(ci);
    749  1.46        ad 
    750  1.46        ad 	ci->ci_data.cpu_cc_freq = cpu_info_primary.ci_data.cpu_cc_freq;
    751  1.46        ad 	/* cpu_get_tsc_freq(ci); */
    752  1.38        ad 
    753   1.8        ad 	KDASSERT((ci->ci_flags & CPUF_PRESENT) == 0);
    754  1.38        ad 
    755  1.38        ad 	/*
    756  1.38        ad 	 * Synchronize time stamp counters.  Invalidate cache and do twice
    757  1.38        ad 	 * to try and minimize possible cache effects.  Note that interrupts
    758  1.38        ad 	 * are off at this point.
    759  1.38        ad 	 */
    760  1.38        ad 	wbinvd();
    761   1.9        ad 	atomic_or_32(&ci->ci_flags, CPUF_PRESENT);
    762  1.38        ad 	tsc_sync_ap(ci);
    763  1.38        ad 
    764  1.38        ad 	/*
    765  1.38        ad 	 * Wait to be brought online.  Use 'monitor/mwait' if available,
    766  1.38        ad 	 * in order to make the TSC drift as much as possible. so that
    767  1.38        ad 	 * we can detect it later.  If not available, try 'pause'.
    768  1.38        ad 	 * We'd like to use 'hlt', but we have interrupts off.
    769  1.38        ad 	 */
    770   1.6        ad 	while ((ci->ci_flags & CPUF_GO) == 0) {
    771  1.70       jym 		if ((cpu_feature[1] & CPUID2_MONITOR) != 0) {
    772  1.38        ad 			x86_monitor(&ci->ci_flags, 0, 0);
    773  1.38        ad 			if ((ci->ci_flags & CPUF_GO) != 0) {
    774  1.38        ad 				continue;
    775  1.38        ad 			}
    776  1.38        ad 			x86_mwait(0, 0);
    777  1.38        ad 		} else {
    778  1.38        ad 			for (i = 10000; i != 0; i--) {
    779  1.38        ad 				x86_pause();
    780  1.38        ad 			}
    781  1.38        ad 		}
    782   1.6        ad 	}
    783   1.5        ad 
    784  1.26    cegger 	/* Because the text may have been patched in x86_patch(). */
    785   1.5        ad 	wbinvd();
    786   1.5        ad 	x86_flush();
    787  1.88     rmind 	tlbflushg();
    788   1.5        ad 
    789   1.8        ad 	KASSERT((ci->ci_flags & CPUF_RUNNING) == 0);
    790   1.2        ad 
    791  1.73       jym #ifdef PAE
    792  1.73       jym 	pd_entry_t * l3_pd = ci->ci_pae_l3_pdir;
    793  1.73       jym 	for (i = 0 ; i < PDP_SIZE; i++) {
    794  1.73       jym 		l3_pd[i] = pmap_kernel()->pm_pdirpa[i] | PG_V;
    795  1.73       jym 	}
    796  1.73       jym 	lcr3(ci->ci_pae_l3_pdirpa);
    797  1.73       jym #else
    798  1.73       jym 	lcr3(pmap_pdirpa(pmap_kernel(), 0));
    799  1.73       jym #endif
    800  1.73       jym 
    801  1.65     rmind 	pcb = lwp_getpcb(curlwp);
    802  1.73       jym 	pcb->pcb_cr3 = rcr3();
    803  1.65     rmind 	pcb = lwp_getpcb(ci->ci_data.cpu_idlelwp);
    804  1.65     rmind 	lcr0(pcb->pcb_cr0);
    805  1.65     rmind 
    806   1.2        ad 	cpu_init_idt();
    807   1.8        ad 	gdt_init_cpu(ci);
    808   1.8        ad 	lapic_enable();
    809   1.2        ad 	lapic_set_lvt();
    810   1.8        ad 	lapic_initclocks();
    811   1.2        ad 
    812   1.2        ad #ifdef i386
    813  1.62    bouyer #if NNPX > 0
    814   1.2        ad 	npxinit(ci);
    815  1.62    bouyer #endif
    816   1.2        ad #else
    817   1.2        ad 	fpuinit(ci);
    818   1.4      yamt #endif
    819   1.2        ad 	lldt(GSYSSEL(GLDT_SEL, SEL_KPL));
    820  1.15      yamt 	ltr(ci->ci_tss_sel);
    821   1.2        ad 
    822   1.2        ad 	cpu_init(ci);
    823   1.7        ad 	cpu_get_tsc_freq(ci);
    824   1.2        ad 
    825   1.2        ad 	s = splhigh();
    826   1.2        ad #ifdef i386
    827   1.2        ad 	lapic_tpr = 0;
    828   1.2        ad #else
    829   1.2        ad 	lcr8(0);
    830   1.2        ad #endif
    831   1.3        ad 	x86_enable_intr();
    832   1.2        ad 	splx(s);
    833   1.6        ad 	x86_errata();
    834   1.2        ad 
    835  1.42        ad 	aprint_debug_dev(ci->ci_dev, "running\n");
    836  1.98     rmind 
    837  1.98     rmind 	idle_loop(NULL);
    838  1.98     rmind 	KASSERT(false);
    839   1.2        ad }
    840   1.2        ad 
    841   1.2        ad #if defined(DDB)
    842   1.2        ad 
    843   1.2        ad #include <ddb/db_output.h>
    844   1.2        ad #include <machine/db_machdep.h>
    845   1.2        ad 
    846   1.2        ad /*
    847   1.2        ad  * Dump CPU information from ddb.
    848   1.2        ad  */
    849   1.2        ad void
    850   1.2        ad cpu_debug_dump(void)
    851   1.2        ad {
    852   1.2        ad 	struct cpu_info *ci;
    853   1.2        ad 	CPU_INFO_ITERATOR cii;
    854   1.2        ad 
    855  1.29      yamt 	db_printf("addr		dev	id	flags	ipis	curlwp 		fpcurlwp\n");
    856   1.2        ad 	for (CPU_INFO_FOREACH(cii, ci)) {
    857   1.2        ad 		db_printf("%p	%s	%ld	%x	%x	%10p	%10p\n",
    858   1.2        ad 		    ci,
    859  1.27    cegger 		    ci->ci_dev == NULL ? "BOOT" : device_xname(ci->ci_dev),
    860   1.2        ad 		    (long)ci->ci_cpuid,
    861   1.2        ad 		    ci->ci_flags, ci->ci_ipis,
    862   1.2        ad 		    ci->ci_curlwp,
    863   1.2        ad 		    ci->ci_fpcurlwp);
    864   1.2        ad 	}
    865   1.2        ad }
    866   1.2        ad #endif
    867   1.2        ad 
    868   1.2        ad static void
    869  1.12  jmcneill cpu_copy_trampoline(void)
    870   1.2        ad {
    871   1.2        ad 	/*
    872   1.2        ad 	 * Copy boot code.
    873   1.2        ad 	 */
    874   1.2        ad 	extern u_char cpu_spinup_trampoline[];
    875   1.2        ad 	extern u_char cpu_spinup_trampoline_end[];
    876  1.12  jmcneill 
    877  1.12  jmcneill 	vaddr_t mp_trampoline_vaddr;
    878  1.12  jmcneill 
    879  1.12  jmcneill 	mp_trampoline_vaddr = uvm_km_alloc(kernel_map, PAGE_SIZE, 0,
    880  1.12  jmcneill 	    UVM_KMF_VAONLY);
    881  1.12  jmcneill 
    882  1.12  jmcneill 	pmap_kenter_pa(mp_trampoline_vaddr, mp_trampoline_paddr,
    883  1.64    cegger 	    VM_PROT_READ | VM_PROT_WRITE, 0);
    884   1.2        ad 	pmap_update(pmap_kernel());
    885  1.12  jmcneill 	memcpy((void *)mp_trampoline_vaddr,
    886   1.2        ad 	    cpu_spinup_trampoline,
    887  1.26    cegger 	    cpu_spinup_trampoline_end - cpu_spinup_trampoline);
    888  1.12  jmcneill 
    889  1.12  jmcneill 	pmap_kremove(mp_trampoline_vaddr, PAGE_SIZE);
    890  1.12  jmcneill 	pmap_update(pmap_kernel());
    891  1.12  jmcneill 	uvm_km_free(kernel_map, mp_trampoline_vaddr, PAGE_SIZE, UVM_KMF_VAONLY);
    892   1.2        ad }
    893   1.2        ad 
    894   1.2        ad #ifdef i386
    895   1.2        ad static void
    896  1.15      yamt tss_init(struct i386tss *tss, void *stack, void *func)
    897   1.2        ad {
    898  1.73       jym 	KASSERT(curcpu()->ci_pmap == pmap_kernel());
    899  1.73       jym 
    900   1.2        ad 	memset(tss, 0, sizeof *tss);
    901   1.2        ad 	tss->tss_esp0 = tss->tss_esp = (int)((char *)stack + USPACE - 16);
    902   1.2        ad 	tss->tss_ss0 = GSEL(GDATA_SEL, SEL_KPL);
    903   1.2        ad 	tss->__tss_cs = GSEL(GCODE_SEL, SEL_KPL);
    904   1.2        ad 	tss->tss_fs = GSEL(GCPU_SEL, SEL_KPL);
    905   1.2        ad 	tss->tss_gs = tss->__tss_es = tss->__tss_ds =
    906   1.2        ad 	    tss->__tss_ss = GSEL(GDATA_SEL, SEL_KPL);
    907  1.73       jym 	/* %cr3 contains the value associated to pmap_kernel */
    908  1.73       jym 	tss->tss_cr3 = rcr3();
    909   1.2        ad 	tss->tss_esp = (int)((char *)stack + USPACE - 16);
    910   1.2        ad 	tss->tss_ldt = GSEL(GLDT_SEL, SEL_KPL);
    911   1.2        ad 	tss->__tss_eflags = PSL_MBO | PSL_NT;	/* XXX not needed? */
    912   1.2        ad 	tss->__tss_eip = (int)func;
    913   1.2        ad }
    914   1.2        ad 
    915   1.2        ad /* XXX */
    916   1.2        ad #define IDTVEC(name)	__CONCAT(X, name)
    917   1.2        ad typedef void (vector)(void);
    918   1.2        ad extern vector IDTVEC(tss_trap08);
    919   1.2        ad #ifdef DDB
    920   1.2        ad extern vector Xintrddbipi;
    921   1.2        ad extern int ddb_vec;
    922   1.2        ad #endif
    923   1.2        ad 
    924   1.2        ad static void
    925   1.2        ad cpu_set_tss_gates(struct cpu_info *ci)
    926   1.2        ad {
    927   1.2        ad 	struct segment_descriptor sd;
    928   1.2        ad 
    929   1.2        ad 	ci->ci_doubleflt_stack = (char *)uvm_km_alloc(kernel_map, USPACE, 0,
    930   1.2        ad 	    UVM_KMF_WIRED);
    931  1.15      yamt 	tss_init(&ci->ci_doubleflt_tss, ci->ci_doubleflt_stack,
    932   1.2        ad 	    IDTVEC(tss_trap08));
    933   1.2        ad 	setsegment(&sd, &ci->ci_doubleflt_tss, sizeof(struct i386tss) - 1,
    934   1.2        ad 	    SDT_SYS386TSS, SEL_KPL, 0, 0);
    935   1.2        ad 	ci->ci_gdt[GTRAPTSS_SEL].sd = sd;
    936   1.2        ad 	setgate(&idt[8], NULL, 0, SDT_SYSTASKGT, SEL_KPL,
    937   1.2        ad 	    GSEL(GTRAPTSS_SEL, SEL_KPL));
    938   1.2        ad 
    939  1.44        ad #if defined(DDB)
    940   1.2        ad 	/*
    941   1.2        ad 	 * Set up separate handler for the DDB IPI, so that it doesn't
    942   1.2        ad 	 * stomp on a possibly corrupted stack.
    943   1.2        ad 	 *
    944   1.2        ad 	 * XXX overwriting the gate set in db_machine_init.
    945   1.2        ad 	 * Should rearrange the code so that it's set only once.
    946   1.2        ad 	 */
    947   1.2        ad 	ci->ci_ddbipi_stack = (char *)uvm_km_alloc(kernel_map, USPACE, 0,
    948   1.2        ad 	    UVM_KMF_WIRED);
    949  1.15      yamt 	tss_init(&ci->ci_ddbipi_tss, ci->ci_ddbipi_stack, Xintrddbipi);
    950   1.2        ad 
    951   1.2        ad 	setsegment(&sd, &ci->ci_ddbipi_tss, sizeof(struct i386tss) - 1,
    952   1.2        ad 	    SDT_SYS386TSS, SEL_KPL, 0, 0);
    953   1.2        ad 	ci->ci_gdt[GIPITSS_SEL].sd = sd;
    954   1.2        ad 
    955   1.2        ad 	setgate(&idt[ddb_vec], NULL, 0, SDT_SYSTASKGT, SEL_KPL,
    956   1.2        ad 	    GSEL(GIPITSS_SEL, SEL_KPL));
    957   1.2        ad #endif
    958   1.2        ad }
    959   1.2        ad #else
    960   1.2        ad static void
    961   1.2        ad cpu_set_tss_gates(struct cpu_info *ci)
    962   1.2        ad {
    963   1.2        ad 
    964   1.2        ad }
    965   1.2        ad #endif	/* i386 */
    966   1.2        ad 
    967   1.2        ad int
    968  1.14     joerg mp_cpu_start(struct cpu_info *ci, paddr_t target)
    969   1.2        ad {
    970  1.44        ad 	unsigned short dwordptr[2];
    971   1.2        ad 	int error;
    972  1.14     joerg 
    973  1.14     joerg 	/*
    974  1.14     joerg 	 * Bootstrap code must be addressable in real mode
    975  1.14     joerg 	 * and it must be page aligned.
    976  1.14     joerg 	 */
    977  1.14     joerg 	KASSERT(target < 0x10000 && target % PAGE_SIZE == 0);
    978   1.2        ad 
    979   1.2        ad 	/*
    980   1.2        ad 	 * "The BSP must initialize CMOS shutdown code to 0Ah ..."
    981   1.2        ad 	 */
    982   1.2        ad 
    983   1.2        ad 	outb(IO_RTC, NVRAM_RESET);
    984   1.2        ad 	outb(IO_RTC+1, NVRAM_RESET_JUMP);
    985   1.2        ad 
    986   1.2        ad 	/*
    987   1.2        ad 	 * "and the warm reset vector (DWORD based at 40:67) to point
    988   1.2        ad 	 * to the AP startup code ..."
    989   1.2        ad 	 */
    990   1.2        ad 
    991   1.2        ad 	dwordptr[0] = 0;
    992  1.14     joerg 	dwordptr[1] = target >> 4;
    993   1.2        ad 
    994  1.25        ad 	memcpy((uint8_t *)cmos_data_mapping + 0x467, dwordptr, 4);
    995   1.2        ad 
    996  1.70       jym 	if ((cpu_feature[0] & CPUID_APIC) == 0) {
    997  1.25        ad 		aprint_error("mp_cpu_start: CPU does not have APIC\n");
    998  1.25        ad 		return ENODEV;
    999  1.25        ad 	}
   1000  1.25        ad 
   1001   1.2        ad 	/*
   1002  1.51        ad 	 * ... prior to executing the following sequence:".  We'll also add in
   1003  1.51        ad 	 * local cache flush, in case the BIOS has left the AP with its cache
   1004  1.51        ad 	 * disabled.  It may not be able to cope with MP coherency.
   1005   1.2        ad 	 */
   1006  1.51        ad 	wbinvd();
   1007   1.2        ad 
   1008   1.2        ad 	if (ci->ci_flags & CPUF_AP) {
   1009  1.42        ad 		error = x86_ipi_init(ci->ci_cpuid);
   1010  1.26    cegger 		if (error != 0) {
   1011  1.26    cegger 			aprint_error_dev(ci->ci_dev, "%s: IPI not taken (1)\n",
   1012  1.50        ad 			    __func__);
   1013   1.2        ad 			return error;
   1014  1.25        ad 		}
   1015  1.11        ad 		i8254_delay(10000);
   1016   1.2        ad 
   1017  1.50        ad 		error = x86_ipi_startup(ci->ci_cpuid, target / PAGE_SIZE);
   1018  1.26    cegger 		if (error != 0) {
   1019  1.26    cegger 			aprint_error_dev(ci->ci_dev, "%s: IPI not taken (2)\n",
   1020  1.50        ad 			    __func__);
   1021  1.25        ad 			return error;
   1022  1.25        ad 		}
   1023  1.25        ad 		i8254_delay(200);
   1024   1.2        ad 
   1025  1.50        ad 		error = x86_ipi_startup(ci->ci_cpuid, target / PAGE_SIZE);
   1026  1.26    cegger 		if (error != 0) {
   1027  1.26    cegger 			aprint_error_dev(ci->ci_dev, "%s: IPI not taken (3)\n",
   1028  1.50        ad 			    __func__);
   1029  1.25        ad 			return error;
   1030   1.2        ad 		}
   1031  1.25        ad 		i8254_delay(200);
   1032   1.2        ad 	}
   1033  1.44        ad 
   1034   1.2        ad 	return 0;
   1035   1.2        ad }
   1036   1.2        ad 
   1037   1.2        ad void
   1038   1.2        ad mp_cpu_start_cleanup(struct cpu_info *ci)
   1039   1.2        ad {
   1040   1.2        ad 	/*
   1041   1.2        ad 	 * Ensure the NVRAM reset byte contains something vaguely sane.
   1042   1.2        ad 	 */
   1043   1.2        ad 
   1044   1.2        ad 	outb(IO_RTC, NVRAM_RESET);
   1045   1.2        ad 	outb(IO_RTC+1, NVRAM_RESET_RST);
   1046   1.2        ad }
   1047   1.2        ad 
   1048   1.2        ad #ifdef __x86_64__
   1049   1.2        ad typedef void (vector)(void);
   1050   1.2        ad extern vector Xsyscall, Xsyscall32;
   1051  1.70       jym #endif
   1052   1.2        ad 
   1053   1.2        ad void
   1054  1.12  jmcneill cpu_init_msrs(struct cpu_info *ci, bool full)
   1055   1.2        ad {
   1056  1.70       jym #ifdef __x86_64__
   1057   1.2        ad 	wrmsr(MSR_STAR,
   1058   1.2        ad 	    ((uint64_t)GSEL(GCODE_SEL, SEL_KPL) << 32) |
   1059   1.2        ad 	    ((uint64_t)LSEL(LSYSRETBASE_SEL, SEL_UPL) << 48));
   1060   1.2        ad 	wrmsr(MSR_LSTAR, (uint64_t)Xsyscall);
   1061   1.2        ad 	wrmsr(MSR_CSTAR, (uint64_t)Xsyscall32);
   1062   1.2        ad 	wrmsr(MSR_SFMASK, PSL_NT|PSL_T|PSL_I|PSL_C);
   1063   1.2        ad 
   1064  1.12  jmcneill 	if (full) {
   1065  1.12  jmcneill 		wrmsr(MSR_FSBASE, 0);
   1066  1.27    cegger 		wrmsr(MSR_GSBASE, (uint64_t)ci);
   1067  1.12  jmcneill 		wrmsr(MSR_KERNELGSBASE, 0);
   1068  1.12  jmcneill 	}
   1069  1.70       jym #endif	/* __x86_64__ */
   1070   1.2        ad 
   1071  1.70       jym 	if (cpu_feature[2] & CPUID_NOX)
   1072   1.2        ad 		wrmsr(MSR_EFER, rdmsr(MSR_EFER) | EFER_NXE);
   1073   1.2        ad }
   1074   1.7        ad 
   1075  1.18     joerg void
   1076  1.18     joerg cpu_offline_md(void)
   1077  1.18     joerg {
   1078  1.18     joerg 	int s;
   1079  1.18     joerg 
   1080  1.18     joerg 	s = splhigh();
   1081  1.62    bouyer #ifdef i386
   1082  1.62    bouyer #if NNPX > 0
   1083  1.18     joerg 	npxsave_cpu(true);
   1084  1.62    bouyer #endif
   1085  1.18     joerg #else
   1086  1.18     joerg 	fpusave_cpu(true);
   1087  1.18     joerg #endif
   1088  1.18     joerg 	splx(s);
   1089  1.18     joerg }
   1090  1.18     joerg 
   1091  1.12  jmcneill /* XXX joerg restructure and restart CPUs individually */
   1092  1.12  jmcneill static bool
   1093  1.96    jruoho cpu_stop(device_t dv)
   1094  1.12  jmcneill {
   1095  1.12  jmcneill 	struct cpu_softc *sc = device_private(dv);
   1096  1.12  jmcneill 	struct cpu_info *ci = sc->sc_info;
   1097  1.18     joerg 	int err;
   1098  1.12  jmcneill 
   1099  1.96    jruoho 	KASSERT((ci->ci_flags & CPUF_PRESENT) != 0);
   1100  1.93    jruoho 
   1101  1.93    jruoho 	if ((ci->ci_flags & CPUF_PRIMARY) != 0)
   1102  1.93    jruoho 		return true;
   1103  1.93    jruoho 
   1104  1.12  jmcneill 	if (ci->ci_data.cpu_idlelwp == NULL)
   1105  1.12  jmcneill 		return true;
   1106  1.12  jmcneill 
   1107  1.20  jmcneill 	sc->sc_wasonline = !(ci->ci_schedstate.spc_flags & SPCF_OFFLINE);
   1108  1.17     joerg 
   1109  1.20  jmcneill 	if (sc->sc_wasonline) {
   1110  1.20  jmcneill 		mutex_enter(&cpu_lock);
   1111  1.58     rmind 		err = cpu_setstate(ci, false);
   1112  1.20  jmcneill 		mutex_exit(&cpu_lock);
   1113  1.79    jruoho 
   1114  1.93    jruoho 		if (err != 0)
   1115  1.20  jmcneill 			return false;
   1116  1.20  jmcneill 	}
   1117  1.17     joerg 
   1118  1.17     joerg 	return true;
   1119  1.12  jmcneill }
   1120  1.12  jmcneill 
   1121  1.12  jmcneill static bool
   1122  1.96    jruoho cpu_suspend(device_t dv, const pmf_qual_t *qual)
   1123  1.96    jruoho {
   1124  1.96    jruoho 	struct cpu_softc *sc = device_private(dv);
   1125  1.96    jruoho 	struct cpu_info *ci = sc->sc_info;
   1126  1.96    jruoho 
   1127  1.96    jruoho 	if ((ci->ci_flags & CPUF_PRESENT) == 0)
   1128  1.96    jruoho 		return true;
   1129  1.96    jruoho 	else {
   1130  1.96    jruoho 		cpufreq_suspend(ci);
   1131  1.96    jruoho 	}
   1132  1.96    jruoho 
   1133  1.96    jruoho 	return cpu_stop(dv);
   1134  1.96    jruoho }
   1135  1.96    jruoho 
   1136  1.96    jruoho static bool
   1137  1.69    dyoung cpu_resume(device_t dv, const pmf_qual_t *qual)
   1138  1.12  jmcneill {
   1139  1.12  jmcneill 	struct cpu_softc *sc = device_private(dv);
   1140  1.12  jmcneill 	struct cpu_info *ci = sc->sc_info;
   1141  1.20  jmcneill 	int err = 0;
   1142  1.12  jmcneill 
   1143  1.93    jruoho 	if ((ci->ci_flags & CPUF_PRESENT) == 0)
   1144  1.12  jmcneill 		return true;
   1145  1.93    jruoho 
   1146  1.93    jruoho 	if ((ci->ci_flags & CPUF_PRIMARY) != 0)
   1147  1.93    jruoho 		goto out;
   1148  1.93    jruoho 
   1149  1.12  jmcneill 	if (ci->ci_data.cpu_idlelwp == NULL)
   1150  1.93    jruoho 		goto out;
   1151  1.12  jmcneill 
   1152  1.20  jmcneill 	if (sc->sc_wasonline) {
   1153  1.20  jmcneill 		mutex_enter(&cpu_lock);
   1154  1.58     rmind 		err = cpu_setstate(ci, true);
   1155  1.20  jmcneill 		mutex_exit(&cpu_lock);
   1156  1.20  jmcneill 	}
   1157  1.13     joerg 
   1158  1.93    jruoho out:
   1159  1.93    jruoho 	if (err != 0)
   1160  1.93    jruoho 		return false;
   1161  1.93    jruoho 
   1162  1.93    jruoho 	cpufreq_resume(ci);
   1163  1.93    jruoho 
   1164  1.93    jruoho 	return true;
   1165  1.12  jmcneill }
   1166  1.12  jmcneill 
   1167  1.79    jruoho static bool
   1168  1.79    jruoho cpu_shutdown(device_t dv, int how)
   1169  1.79    jruoho {
   1170  1.90    dyoung 	struct cpu_softc *sc = device_private(dv);
   1171  1.90    dyoung 	struct cpu_info *ci = sc->sc_info;
   1172  1.90    dyoung 
   1173  1.96    jruoho 	if ((ci->ci_flags & CPUF_BSP) != 0)
   1174  1.90    dyoung 		return false;
   1175  1.90    dyoung 
   1176  1.96    jruoho 	if ((ci->ci_flags & CPUF_PRESENT) == 0)
   1177  1.96    jruoho 		return true;
   1178  1.96    jruoho 
   1179  1.96    jruoho 	return cpu_stop(dv);
   1180  1.79    jruoho }
   1181  1.79    jruoho 
   1182   1.7        ad void
   1183   1.7        ad cpu_get_tsc_freq(struct cpu_info *ci)
   1184   1.7        ad {
   1185   1.7        ad 	uint64_t last_tsc;
   1186   1.7        ad 
   1187  1.70       jym 	if (cpu_hascounter()) {
   1188  1.80    bouyer 		last_tsc = cpu_counter_serializing();
   1189   1.7        ad 		i8254_delay(100000);
   1190  1.80    bouyer 		ci->ci_data.cpu_cc_freq =
   1191  1.80    bouyer 		    (cpu_counter_serializing() - last_tsc) * 10;
   1192   1.7        ad 	}
   1193   1.7        ad }
   1194  1.37     joerg 
   1195  1.37     joerg void
   1196  1.37     joerg x86_cpu_idle_mwait(void)
   1197  1.37     joerg {
   1198  1.37     joerg 	struct cpu_info *ci = curcpu();
   1199  1.37     joerg 
   1200  1.37     joerg 	KASSERT(ci->ci_ilevel == IPL_NONE);
   1201  1.37     joerg 
   1202  1.37     joerg 	x86_monitor(&ci->ci_want_resched, 0, 0);
   1203  1.37     joerg 	if (__predict_false(ci->ci_want_resched)) {
   1204  1.37     joerg 		return;
   1205  1.37     joerg 	}
   1206  1.37     joerg 	x86_mwait(0, 0);
   1207  1.37     joerg }
   1208  1.37     joerg 
   1209  1.37     joerg void
   1210  1.37     joerg x86_cpu_idle_halt(void)
   1211  1.37     joerg {
   1212  1.37     joerg 	struct cpu_info *ci = curcpu();
   1213  1.37     joerg 
   1214  1.37     joerg 	KASSERT(ci->ci_ilevel == IPL_NONE);
   1215  1.37     joerg 
   1216  1.37     joerg 	x86_disable_intr();
   1217  1.37     joerg 	if (!__predict_false(ci->ci_want_resched)) {
   1218  1.37     joerg 		x86_stihlt();
   1219  1.37     joerg 	} else {
   1220  1.37     joerg 		x86_enable_intr();
   1221  1.37     joerg 	}
   1222  1.37     joerg }
   1223  1.73       jym 
   1224  1.73       jym /*
   1225  1.73       jym  * Loads pmap for the current CPU.
   1226  1.73       jym  */
   1227  1.73       jym void
   1228  1.97    bouyer cpu_load_pmap(struct pmap *pmap, struct pmap *oldpmap)
   1229  1.73       jym {
   1230  1.73       jym #ifdef PAE
   1231  1.73       jym 	int i, s;
   1232  1.73       jym 	struct cpu_info *ci;
   1233  1.73       jym 
   1234  1.73       jym 	s = splvm(); /* just to be safe */
   1235  1.73       jym 	ci = curcpu();
   1236  1.73       jym 	pd_entry_t *l3_pd = ci->ci_pae_l3_pdir;
   1237  1.73       jym 	for (i = 0 ; i < PDP_SIZE; i++) {
   1238  1.73       jym 		l3_pd[i] = pmap->pm_pdirpa[i] | PG_V;
   1239  1.73       jym 	}
   1240  1.73       jym 	splx(s);
   1241  1.73       jym 	tlbflush();
   1242  1.73       jym #else /* PAE */
   1243  1.73       jym 	lcr3(pmap_pdirpa(pmap, 0));
   1244  1.73       jym #endif /* PAE */
   1245  1.73       jym }
   1246  1.91    cherry 
   1247  1.91    cherry /*
   1248  1.91    cherry  * Notify all other cpus to halt.
   1249  1.91    cherry  */
   1250  1.91    cherry 
   1251  1.91    cherry void
   1252  1.92    cherry cpu_broadcast_halt(void)
   1253  1.91    cherry {
   1254  1.91    cherry 	x86_broadcast_ipi(X86_IPI_HALT);
   1255  1.91    cherry }
   1256  1.91    cherry 
   1257  1.91    cherry /*
   1258  1.91    cherry  * Send a dummy ipi to a cpu to force it to run splraise()/spllower()
   1259  1.91    cherry  */
   1260  1.91    cherry 
   1261  1.91    cherry void
   1262  1.91    cherry cpu_kick(struct cpu_info *ci)
   1263  1.91    cherry {
   1264  1.91    cherry 	x86_send_ipi(ci, 0);
   1265  1.91    cherry }
   1266