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machdep.c revision 1.29
      1  1.29  sakamoto /*	$NetBSD: machdep.c,v 1.29 1998/10/06 03:48:12 sakamoto Exp $	*/
      2   1.1        ws 
      3   1.1        ws /*
      4   1.1        ws  * Copyright (C) 1995, 1996 Wolfgang Solfrank.
      5   1.1        ws  * Copyright (C) 1995, 1996 TooLs GmbH.
      6   1.1        ws  * All rights reserved.
      7   1.1        ws  *
      8   1.1        ws  * Redistribution and use in source and binary forms, with or without
      9   1.1        ws  * modification, are permitted provided that the following conditions
     10   1.1        ws  * are met:
     11   1.1        ws  * 1. Redistributions of source code must retain the above copyright
     12   1.1        ws  *    notice, this list of conditions and the following disclaimer.
     13   1.1        ws  * 2. Redistributions in binary form must reproduce the above copyright
     14   1.1        ws  *    notice, this list of conditions and the following disclaimer in the
     15   1.1        ws  *    documentation and/or other materials provided with the distribution.
     16   1.1        ws  * 3. All advertising materials mentioning features or use of this software
     17   1.1        ws  *    must display the following acknowledgement:
     18   1.1        ws  *	This product includes software developed by TooLs GmbH.
     19   1.1        ws  * 4. The name of TooLs GmbH may not be used to endorse or promote products
     20   1.1        ws  *    derived from this software without specific prior written permission.
     21   1.1        ws  *
     22   1.1        ws  * THIS SOFTWARE IS PROVIDED BY TOOLS GMBH ``AS IS'' AND ANY EXPRESS OR
     23   1.1        ws  * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
     24   1.1        ws  * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
     25   1.1        ws  * IN NO EVENT SHALL TOOLS GMBH BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
     26   1.1        ws  * SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO,
     27   1.1        ws  * PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS;
     28   1.1        ws  * OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY,
     29   1.1        ws  * WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR
     30   1.1        ws  * OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF
     31   1.1        ws  * ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
     32   1.1        ws  */
     33  1.21  jonathan 
     34  1.27   thorpej #include "opt_compat_netbsd.h"
     35  1.21  jonathan #include "opt_ddb.h"
     36  1.22  jonathan #include "opt_inet.h"
     37  1.23  jonathan #include "opt_ccitt.h"
     38  1.24  jonathan #include "opt_iso.h"
     39  1.25  jonathan #include "opt_ns.h"
     40  1.19  sakamoto #include "opt_uvm.h"
     41   1.4        ws #include "ipkdb.h"
     42   1.1        ws 
     43   1.1        ws #include <sys/param.h>
     44   1.1        ws #include <sys/buf.h>
     45   1.1        ws #include <sys/callout.h>
     46   1.1        ws #include <sys/exec.h>
     47   1.1        ws #include <sys/malloc.h>
     48   1.1        ws #include <sys/map.h>
     49   1.1        ws #include <sys/mbuf.h>
     50   1.1        ws #include <sys/mount.h>
     51   1.1        ws #include <sys/msgbuf.h>
     52   1.1        ws #include <sys/proc.h>
     53   1.1        ws #include <sys/reboot.h>
     54   1.1        ws #include <sys/syscallargs.h>
     55   1.1        ws #include <sys/syslog.h>
     56   1.1        ws #include <sys/systm.h>
     57   1.1        ws #include <sys/user.h>
     58   1.1        ws 
     59   1.1        ws #include <vm/vm.h>
     60   1.1        ws #include <vm/vm_kern.h>
     61   1.1        ws 
     62  1.19  sakamoto #if defined(UVM)
     63  1.19  sakamoto #include <uvm/uvm_extern.h>
     64  1.19  sakamoto #endif
     65  1.19  sakamoto 
     66   1.1        ws #include <net/netisr.h>
     67   1.1        ws 
     68   1.1        ws #include <machine/bat.h>
     69   1.1        ws #include <machine/pmap.h>
     70   1.1        ws #include <machine/powerpc.h>
     71   1.1        ws #include <machine/trap.h>
     72   1.1        ws 
     73   1.1        ws /*
     74   1.1        ws  * Global variables used here and there
     75   1.1        ws  */
     76  1.19  sakamoto #if defined(UVM)
     77  1.19  sakamoto vm_map_t exec_map = NULL;
     78  1.19  sakamoto vm_map_t mb_map = NULL;
     79  1.19  sakamoto vm_map_t phys_map = NULL;
     80  1.19  sakamoto #endif
     81  1.19  sakamoto 
     82   1.1        ws struct pcb *curpcb;
     83   1.1        ws struct pmap *curpm;
     84   1.1        ws struct proc *fpuproc;
     85   1.1        ws 
     86   1.1        ws extern struct user *proc0paddr;
     87   1.1        ws 
     88   1.1        ws struct bat battable[16];
     89   1.1        ws 
     90   1.1        ws int astpending;
     91   1.1        ws 
     92   1.1        ws char *bootpath;
     93   1.1        ws 
     94  1.18  sakamoto #define MSGBUFADDR 0x3000
     95  1.18  sakamoto 
     96   1.1        ws caddr_t allocsys __P((caddr_t));
     97   1.1        ws 
     98   1.7   thorpej static int fake_spl __P((void));
     99   1.7   thorpej static int fake_splx __P((int));
    100   1.7   thorpej static void fake_setsoft __P((void));
    101   1.7   thorpej static void fake_clock_return __P((struct clockframe *, int));
    102   1.1        ws static void fake_irq_establish __P((int, int, void (*)(void *), void *));
    103   1.1        ws 
    104   1.1        ws struct machvec machine_interface = {
    105   1.7   thorpej 	fake_spl,
    106   1.7   thorpej 	fake_spl,
    107   1.7   thorpej 	fake_spl,
    108   1.7   thorpej 	fake_spl,
    109   1.7   thorpej 	fake_spl,
    110   1.7   thorpej 	fake_spl,
    111   1.7   thorpej 	fake_spl,
    112   1.7   thorpej 	fake_spl,
    113   1.7   thorpej 	fake_spl,
    114   1.1        ws 	fake_splx,
    115   1.7   thorpej 	fake_setsoft,
    116   1.7   thorpej 	fake_setsoft,
    117   1.7   thorpej 	fake_clock_return,
    118   1.1        ws 	fake_irq_establish,
    119   1.1        ws };
    120   1.1        ws 
    121   1.1        ws int cold = 1;
    122   1.1        ws 
    123   1.1        ws void
    124   1.1        ws initppc(startkernel, endkernel, args)
    125   1.1        ws 	u_int startkernel, endkernel;
    126   1.1        ws 	char *args;
    127   1.1        ws {
    128   1.1        ws 	int phandle, qhandle;
    129   1.1        ws 	char name[32];
    130   1.1        ws 	struct machvec *mp;
    131   1.1        ws 	extern trapcode, trapsize;
    132   1.1        ws 	extern dsitrap, dsisize;
    133   1.1        ws 	extern isitrap, isisize;
    134   1.1        ws 	extern decrint, decrsize;
    135   1.1        ws 	extern tlbimiss, tlbimsize;
    136   1.1        ws 	extern tlbdlmiss, tlbdlmsize;
    137   1.1        ws 	extern tlbdsmiss, tlbdsmsize;
    138  1.14  sakamoto #ifdef DDB
    139  1.14  sakamoto 	extern ddblow, ddbsize;
    140  1.14  sakamoto 	extern void *startsym, *endsym;
    141  1.14  sakamoto #endif
    142   1.4        ws #if NIPKDB > 0
    143   1.4        ws 	extern ipkdblow, ipkdbsize;
    144   1.1        ws #endif
    145   1.1        ws 	extern void consinit __P((void));
    146   1.1        ws 	extern void callback __P((void *));
    147   1.1        ws 	int exc, scratch;
    148   1.1        ws 
    149   1.1        ws 	proc0.p_addr = proc0paddr;
    150   1.1        ws 	bzero(proc0.p_addr, sizeof *proc0.p_addr);
    151  1.29  sakamoto 
    152   1.1        ws 	curpcb = &proc0paddr->u_pcb;
    153  1.29  sakamoto 
    154   1.1        ws 	curpm = curpcb->pcb_pmreal = curpcb->pcb_pm = pmap_kernel();
    155  1.29  sakamoto 
    156   1.1        ws 	/*
    157   1.1        ws 	 * i386 port says, that this shouldn't be here,
    158   1.1        ws 	 * but I really think the console should be initialized
    159   1.1        ws 	 * as early as possible.
    160   1.1        ws 	 */
    161   1.1        ws 	consinit();
    162   1.1        ws 
    163   1.1        ws #ifdef	__notyet__		/* Needs some rethinking regarding real/virtual OFW */
    164   1.1        ws 	OF_set_callback(callback);
    165   1.1        ws #endif
    166   1.1        ws 	/*
    167   1.1        ws 	 * Initialize BAT registers to unmapped to not generate
    168   1.1        ws 	 * overlapping mappings below.
    169   1.1        ws 	 */
    170   1.1        ws 	asm volatile ("mtibatu 0,%0" :: "r"(0));
    171   1.1        ws 	asm volatile ("mtibatu 1,%0" :: "r"(0));
    172   1.1        ws 	asm volatile ("mtibatu 2,%0" :: "r"(0));
    173   1.1        ws 	asm volatile ("mtibatu 3,%0" :: "r"(0));
    174   1.1        ws 	asm volatile ("mtdbatu 0,%0" :: "r"(0));
    175   1.1        ws 	asm volatile ("mtdbatu 1,%0" :: "r"(0));
    176   1.1        ws 	asm volatile ("mtdbatu 2,%0" :: "r"(0));
    177   1.1        ws 	asm volatile ("mtdbatu 3,%0" :: "r"(0));
    178  1.29  sakamoto 
    179   1.1        ws 	/*
    180   1.1        ws 	 * Set up initial BAT table to only map the lowest 256 MB area
    181   1.1        ws 	 */
    182   1.1        ws 	battable[0].batl = BATL(0x00000000, BAT_M);
    183   1.1        ws 	battable[0].batu = BATU(0x00000000);
    184   1.1        ws 
    185   1.1        ws 	/*
    186   1.1        ws 	 * Now setup fixed bat registers
    187   1.1        ws 	 *
    188   1.1        ws 	 * Note that we still run in real mode, and the BAT
    189   1.1        ws 	 * registers were cleared above.
    190   1.1        ws 	 */
    191   1.1        ws 	/* IBAT0 used for initial 256 MB segment */
    192   1.1        ws 	asm volatile ("mtibatl 0,%0; mtibatu 0,%1"
    193   1.1        ws 		      :: "r"(battable[0].batl), "r"(battable[0].batu));
    194   1.1        ws 	/* DBAT0 used similar */
    195   1.1        ws 	asm volatile ("mtdbatl 0,%0; mtdbatu 0,%1"
    196   1.1        ws 		      :: "r"(battable[0].batl), "r"(battable[0].batu));
    197  1.29  sakamoto 
    198   1.1        ws 	/*
    199   1.1        ws 	 * Set up trap vectors
    200   1.1        ws 	 */
    201   1.1        ws 	for (exc = EXC_RSVD; exc <= EXC_LAST; exc += 0x100)
    202   1.1        ws 		switch (exc) {
    203   1.1        ws 		default:
    204   1.1        ws 			bcopy(&trapcode, (void *)exc, (size_t)&trapsize);
    205   1.1        ws 			break;
    206   1.1        ws 		case EXC_EXI:
    207   1.1        ws 			/*
    208   1.1        ws 			 * This one is (potentially) installed during autoconf
    209   1.1        ws 			 */
    210   1.1        ws 			break;
    211   1.1        ws 		case EXC_DSI:
    212   1.1        ws 			bcopy(&dsitrap, (void *)EXC_DSI, (size_t)&dsisize);
    213   1.1        ws 			break;
    214   1.1        ws 		case EXC_ISI:
    215   1.1        ws 			bcopy(&isitrap, (void *)EXC_ISI, (size_t)&isisize);
    216   1.1        ws 			break;
    217   1.1        ws 		case EXC_DECR:
    218   1.1        ws 			bcopy(&decrint, (void *)EXC_DECR, (size_t)&decrsize);
    219   1.1        ws 			break;
    220   1.1        ws 		case EXC_IMISS:
    221   1.1        ws 			bcopy(&tlbimiss, (void *)EXC_IMISS, (size_t)&tlbimsize);
    222   1.1        ws 			break;
    223   1.1        ws 		case EXC_DLMISS:
    224   1.1        ws 			bcopy(&tlbdlmiss, (void *)EXC_DLMISS, (size_t)&tlbdlmsize);
    225   1.1        ws 			break;
    226   1.1        ws 		case EXC_DSMISS:
    227   1.1        ws 			bcopy(&tlbdsmiss, (void *)EXC_DSMISS, (size_t)&tlbdsmsize);
    228   1.1        ws 			break;
    229  1.15   thorpej #if defined(DDB) || NIPKDB > 0
    230  1.14  sakamoto 		case EXC_PGM:
    231  1.14  sakamoto 		case EXC_TRC:
    232  1.14  sakamoto 		case EXC_BPT:
    233  1.15   thorpej #if defined(DDB)
    234  1.14  sakamoto 			bcopy(&ddblow, (void *)exc, (size_t)&ddbsize);
    235  1.15   thorpej #else
    236  1.15   thorpej 			bcopy(&ipkdblow, (void *)exc, (size_t)&ipkdbsize);
    237  1.14  sakamoto #endif
    238   1.1        ws 			break;
    239  1.15   thorpej #endif /* DDB || NIPKDB > 0 */
    240   1.1        ws 		}
    241   1.1        ws 
    242   1.1        ws 	syncicache((void *)EXC_RST, EXC_LAST - EXC_RST + 0x100);
    243   1.1        ws 
    244   1.1        ws 	/*
    245   1.1        ws 	 * Now enable translation (and machine checks/recoverable interrupts).
    246   1.1        ws 	 */
    247   1.1        ws 	asm volatile ("mfmsr %0; ori %0,%0,%1; mtmsr %0; isync"
    248   1.1        ws 		      : "=r"(scratch) : "K"(PSL_IR|PSL_DR|PSL_ME|PSL_RI));
    249   1.1        ws 
    250   1.1        ws 	/*
    251   1.1        ws 	 * Parse arg string.
    252   1.1        ws 	 */
    253   1.1        ws 	bootpath = args;
    254   1.7   thorpej 	while (*++args && *args != ' ');
    255   1.1        ws 	if (*args) {
    256   1.1        ws 		*args++ = 0;
    257   1.1        ws 		while (*args) {
    258   1.1        ws 			switch (*args++) {
    259   1.1        ws 			case 'a':
    260   1.1        ws 				boothowto |= RB_ASKNAME;
    261   1.1        ws 				break;
    262   1.1        ws 			case 's':
    263   1.1        ws 				boothowto |= RB_SINGLE;
    264   1.1        ws 				break;
    265   1.1        ws 			case 'd':
    266   1.1        ws 				boothowto |= RB_KDB;
    267   1.1        ws 				break;
    268   1.1        ws 			}
    269   1.1        ws 		}
    270  1.29  sakamoto 	}
    271   1.1        ws 
    272  1.14  sakamoto #ifdef DDB
    273  1.14  sakamoto 	/* ddb_init(startsym, endsym); */
    274  1.14  sakamoto #endif
    275   1.4        ws #if NIPKDB > 0
    276   1.1        ws 	/*
    277   1.4        ws 	 * Now trap to IPKDB
    278   1.1        ws 	 */
    279   1.4        ws 	ipkdb_init();
    280   1.1        ws 	if (boothowto & RB_KDB)
    281   1.4        ws 		ipkdb_connect(0);
    282   1.1        ws #endif
    283  1.16   thorpej 
    284  1.16   thorpej 	/*
    285  1.16   thorpej 	 * Set the page size.
    286  1.16   thorpej 	 */
    287  1.19  sakamoto #if defined(UVM)
    288  1.19  sakamoto 	uvm_setpagesize();
    289  1.19  sakamoto #else
    290  1.16   thorpej 	vm_set_page_size();
    291  1.19  sakamoto #endif
    292   1.1        ws 
    293   1.1        ws 	/*
    294   1.1        ws 	 * Initialize pmap module.
    295   1.1        ws 	 */
    296   1.1        ws 	pmap_bootstrap(startkernel, endkernel);
    297   1.1        ws }
    298   1.1        ws 
    299   1.1        ws /*
    300   1.1        ws  * This should probably be in autoconf!				XXX
    301   1.1        ws  */
    302   1.1        ws int cpu;
    303   1.1        ws char cpu_model[80];
    304   1.9     veego char machine[] = MACHINE;		/* from <machine/param.h> */
    305   1.9     veego char machine_arch[] = MACHINE_ARCH;	/* from <machine/param.h> */
    306   1.1        ws 
    307   1.1        ws void
    308   1.1        ws identifycpu()
    309   1.1        ws {
    310   1.1        ws 	int phandle, pvr;
    311   1.1        ws 	char name[32];
    312   1.1        ws 
    313   1.1        ws 	/*
    314   1.1        ws 	 * Find cpu type (Do it by OpenFirmware?)
    315   1.1        ws 	 */
    316   1.1        ws 	asm ("mfpvr %0" : "=r"(pvr));
    317   1.1        ws 	cpu = pvr >> 16;
    318   1.1        ws 	switch (cpu) {
    319   1.1        ws 	case 1:
    320   1.3  christos 		sprintf(cpu_model, "601");
    321   1.1        ws 		break;
    322   1.1        ws 	case 3:
    323   1.3  christos 		sprintf(cpu_model, "603");
    324   1.1        ws 		break;
    325   1.1        ws 	case 4:
    326   1.3  christos 		sprintf(cpu_model, "604");
    327   1.1        ws 		break;
    328   1.1        ws 	case 5:
    329   1.3  christos 		sprintf(cpu_model, "602");
    330   1.1        ws 		break;
    331   1.1        ws 	case 6:
    332   1.3  christos 		sprintf(cpu_model, "603e");
    333   1.1        ws 		break;
    334   1.1        ws 	case 7:
    335   1.3  christos 		sprintf(cpu_model, "603ev");
    336   1.1        ws 		break;
    337   1.1        ws 	case 9:
    338   1.3  christos 		sprintf(cpu_model, "604ev");
    339   1.1        ws 		break;
    340   1.1        ws 	case 20:
    341   1.3  christos 		sprintf(cpu_model, "620");
    342   1.1        ws 		break;
    343   1.1        ws 	default:
    344   1.3  christos 		sprintf(cpu_model, "Version %x", cpu);
    345   1.1        ws 		break;
    346   1.1        ws 	}
    347   1.1        ws 	sprintf(cpu_model + strlen(cpu_model), " (Revision %x)", pvr & 0xffff);
    348   1.3  christos 	printf("CPU: %s\n", cpu_model);
    349   1.1        ws }
    350   1.1        ws 
    351   1.1        ws void
    352   1.1        ws install_extint(handler)
    353   1.1        ws 	void (*handler) __P((void));
    354   1.1        ws {
    355   1.1        ws 	extern extint, extsize;
    356   1.1        ws 	extern u_long extint_call;
    357   1.1        ws 	u_long offset = (u_long)handler - (u_long)&extint_call;
    358   1.1        ws 	int omsr, msr;
    359  1.29  sakamoto 
    360   1.1        ws #ifdef	DIAGNOSTIC
    361   1.1        ws 	if (offset > 0x1ffffff)
    362   1.1        ws 		panic("install_extint: too far away");
    363   1.1        ws #endif
    364   1.7   thorpej 	asm volatile ("mfmsr %0; andi. %1,%0,%2; mtmsr %1"
    365   1.1        ws 		      : "=r"(omsr), "=r"(msr) : "K"((u_short)~PSL_EE));
    366   1.1        ws 	extint_call = (extint_call & 0xfc000003) | offset;
    367   1.1        ws 	bcopy(&extint, (void *)EXC_EXI, (size_t)&extsize);
    368   1.1        ws 	syncicache((void *)&extint_call, sizeof extint_call);
    369   1.1        ws 	syncicache((void *)EXC_EXI, (int)&extsize);
    370   1.1        ws 	asm volatile ("mtmsr %0" :: "r"(omsr));
    371   1.1        ws }
    372   1.1        ws 
    373   1.1        ws /*
    374   1.1        ws  * Machine dependent startup code.
    375   1.1        ws  */
    376   1.1        ws void
    377   1.1        ws cpu_startup()
    378   1.1        ws {
    379   1.1        ws 	int sz, i;
    380   1.1        ws 	caddr_t v;
    381  1.26  sakamoto 	paddr_t minaddr, maxaddr;
    382   1.1        ws 	int base, residual;
    383  1.18  sakamoto 
    384  1.18  sakamoto 	/*
    385  1.18  sakamoto 	 * Initialize error message buffer (at end of core).
    386  1.18  sakamoto 	 */
    387  1.18  sakamoto 	initmsgbuf((caddr_t)MSGBUFADDR, round_page(MSGBUFSIZE));
    388  1.18  sakamoto 
    389   1.1        ws 	proc0.p_addr = proc0paddr;
    390   1.1        ws 	v = (caddr_t)proc0paddr + USPACE;
    391   1.1        ws 
    392   1.3  christos 	printf("%s", version);
    393   1.1        ws 	identifycpu();
    394  1.29  sakamoto 
    395   1.3  christos 	printf("real mem = %d\n", ctob(physmem));
    396  1.19  sakamoto 
    397   1.1        ws 	/*
    398   1.1        ws 	 * Find out how much space we need, allocate it,
    399   1.1        ws 	 * and then give everything true virtual addresses.
    400   1.1        ws 	 */
    401   1.1        ws 	sz = (int)allocsys((caddr_t)0);
    402  1.19  sakamoto #if defined(UVM)
    403  1.19  sakamoto 	if ((v = (caddr_t)uvm_km_zalloc(kernel_map, round_page(sz))) == 0)
    404  1.19  sakamoto 		panic("startup: no room for tables");
    405  1.19  sakamoto #else
    406   1.1        ws 	if ((v = (caddr_t)kmem_alloc(kernel_map, round_page(sz))) == 0)
    407   1.1        ws 		panic("startup: no room for tables");
    408  1.19  sakamoto #endif
    409   1.1        ws 	if (allocsys(v) - v != sz)
    410   1.1        ws 		panic("startup: table size inconsistency");
    411  1.19  sakamoto 
    412   1.1        ws 	/*
    413   1.1        ws 	 * Now allocate buffers proper.  They are different than the above
    414   1.1        ws 	 * in that they usually occupy more virtual memory than physical.
    415   1.1        ws 	 */
    416   1.1        ws 	sz = MAXBSIZE * nbuf;
    417  1.19  sakamoto #if defined(UVM)
    418  1.26  sakamoto 	if (uvm_map(kernel_map, (vaddr_t *)&buffers, round_page(sz),
    419  1.19  sakamoto 		    NULL, UVM_UNKNOWN_OFFSET,
    420  1.19  sakamoto 		    UVM_MAPFLAG(UVM_PROT_NONE, UVM_PROT_NONE, UVM_INH_NONE,
    421  1.19  sakamoto 				UVM_ADV_NORMAL, 0)) != KERN_SUCCESS)
    422  1.19  sakamoto 		panic("startup: cannot allocate VM for buffers");
    423  1.29  sakamoto 	minaddr = (vaddr_t)buffers;
    424  1.19  sakamoto #else
    425   1.1        ws 	buffer_map = kmem_suballoc(kernel_map, &minaddr, &maxaddr, sz, TRUE);
    426   1.1        ws 	buffers = (char *)minaddr;
    427  1.26  sakamoto 	if (vm_map_find(buffer_map, vm_object_allocate(sz), (vaddr_t)0,
    428   1.1        ws 			&minaddr, sz, FALSE) != KERN_SUCCESS)
    429   1.1        ws 		panic("startup: cannot allocate buffers");
    430  1.19  sakamoto #endif
    431   1.1        ws 	base = bufpages / nbuf;
    432   1.1        ws 	residual = bufpages % nbuf;
    433   1.1        ws 	if (base >= MAXBSIZE) {
    434   1.1        ws 		/* Don't want to alloc more physical mem than ever needed */
    435   1.1        ws 		base = MAXBSIZE;
    436   1.1        ws 		residual = 0;
    437   1.1        ws 	}
    438   1.1        ws 	for (i = 0; i < nbuf; i++) {
    439  1.19  sakamoto #if defined(UVM)
    440  1.26  sakamoto 		vsize_t curbufsize;
    441  1.26  sakamoto 		vaddr_t curbuf;
    442  1.19  sakamoto 		struct vm_page *pg;
    443  1.19  sakamoto 
    444  1.19  sakamoto 		/*
    445  1.19  sakamoto 		 * Each buffer has MAXBSIZE bytes of VM space allocated.  Of
    446  1.19  sakamoto 		 * that MAXBSIZE space, we allocate and map (base+1) pages
    447  1.19  sakamoto 		 * for the first "residual" buffers, and then we allocate
    448  1.19  sakamoto 		 * "base" pages for the rest.
    449  1.19  sakamoto 		 */
    450  1.26  sakamoto 		curbuf = (vaddr_t) buffers + (i * MAXBSIZE);
    451  1.19  sakamoto 		curbufsize = CLBYTES * ((i < residual) ? (base+1) : base);
    452  1.19  sakamoto 
    453  1.19  sakamoto 		while (curbufsize) {
    454  1.19  sakamoto 			pg = uvm_pagealloc(NULL, 0, NULL);
    455  1.19  sakamoto 			if (pg == NULL)
    456  1.19  sakamoto 				panic("startup: not enough memory for "
    457  1.19  sakamoto 					"buffer cache");
    458  1.19  sakamoto 			pmap_enter(kernel_map->pmap, curbuf,
    459  1.19  sakamoto 				   VM_PAGE_TO_PHYS(pg), VM_PROT_ALL, TRUE);
    460  1.19  sakamoto 			curbuf += PAGE_SIZE;
    461  1.19  sakamoto 			curbufsize -= PAGE_SIZE;
    462  1.19  sakamoto 		}
    463  1.19  sakamoto #else
    464  1.26  sakamoto 		vsize_t curbufsize;
    465  1.26  sakamoto 		vaddr_t curbuf;
    466  1.29  sakamoto 
    467  1.26  sakamoto 		curbuf = (vaddr_t)buffers + i * MAXBSIZE;
    468   1.1        ws 		curbufsize = CLBYTES * (i < residual ? base + 1 : base);
    469   1.1        ws 		vm_map_pageable(buffer_map, curbuf, curbuf + curbufsize, FALSE);
    470   1.1        ws 		vm_map_simplify(buffer_map, curbuf);
    471  1.19  sakamoto #endif
    472   1.1        ws 	}
    473   1.1        ws 
    474   1.1        ws 	/*
    475   1.1        ws 	 * Allocate a submap for exec arguments.  This map effectively
    476   1.1        ws 	 * limits the number of processes exec'ing at any time.
    477   1.1        ws 	 */
    478  1.19  sakamoto #if defined(UVM)
    479  1.19  sakamoto 	exec_map = uvm_km_suballoc(kernel_map, &minaddr, &maxaddr,
    480  1.19  sakamoto 				 16*NCARGS, TRUE, FALSE, NULL);
    481  1.19  sakamoto #else
    482   1.1        ws 	exec_map = kmem_suballoc(kernel_map, &minaddr, &maxaddr,
    483   1.1        ws 				 16*NCARGS, TRUE);
    484  1.19  sakamoto #endif
    485   1.1        ws 
    486   1.1        ws 	/*
    487   1.1        ws 	 * Allocate a submap for physio
    488   1.1        ws 	 */
    489  1.19  sakamoto #if defined(UVM)
    490  1.19  sakamoto 	phys_map = uvm_km_suballoc(kernel_map, &minaddr, &maxaddr,
    491  1.19  sakamoto 				 VM_PHYS_SIZE, TRUE, FALSE, NULL);
    492  1.19  sakamoto #else
    493   1.1        ws 	phys_map = kmem_suballoc(kernel_map, &minaddr, &maxaddr,
    494   1.1        ws 				 VM_PHYS_SIZE, TRUE);
    495  1.19  sakamoto #endif
    496  1.19  sakamoto 
    497   1.1        ws 	/*
    498   1.6   thorpej 	 * Finally, allocate mbuf cluster submap.
    499   1.1        ws 	 */
    500  1.19  sakamoto #if defined(UVM)
    501  1.26  sakamoto 	mb_map = uvm_km_suballoc(kernel_map, (vaddr_t *)&mbutl, &maxaddr,
    502  1.19  sakamoto 			       VM_MBUF_SIZE, FALSE, FALSE, NULL);
    503  1.19  sakamoto #else
    504  1.26  sakamoto 	mb_map = kmem_suballoc(kernel_map, (vaddr_t *)&mbutl, &maxaddr,
    505   1.1        ws 			       VM_MBUF_SIZE, FALSE);
    506  1.19  sakamoto #endif
    507  1.19  sakamoto 
    508   1.1        ws 	/*
    509   1.1        ws 	 * Initialize callouts.
    510   1.1        ws 	 */
    511   1.1        ws 	callfree = callout;
    512   1.1        ws 	for (i = 1; i < ncallout; i++)
    513   1.1        ws 		callout[i - 1].c_next = &callout[i];
    514  1.19  sakamoto 
    515  1.19  sakamoto #if defined(UVM)
    516  1.20  sakamoto 	printf("avail memory = %d\n", ptoa(uvmexp.free));
    517  1.19  sakamoto #else
    518  1.20  sakamoto 	printf("avail memory = %d\n", ptoa(cnt.v_free_count));
    519  1.19  sakamoto #endif
    520   1.3  christos 	printf("using %d buffers containing %d bytes of memory\n",
    521   1.1        ws 	       nbuf, bufpages * CLBYTES);
    522  1.29  sakamoto 
    523   1.1        ws 	/*
    524   1.1        ws 	 * Set up the buffers.
    525   1.1        ws 	 */
    526   1.1        ws 	bufinit();
    527   1.1        ws 
    528   1.1        ws 	/*
    529   1.7   thorpej 	 * For now, use soft spl handling.
    530   1.7   thorpej 	 */
    531   1.7   thorpej 	{
    532   1.7   thorpej 		extern struct machvec soft_machvec;
    533   1.7   thorpej 
    534   1.7   thorpej 		machine_interface = soft_machvec;
    535   1.7   thorpej 	}
    536   1.7   thorpej 
    537   1.7   thorpej 	/*
    538   1.1        ws 	 * Now allow hardware interrupts.
    539   1.1        ws 	 */
    540   1.1        ws 	{
    541   1.1        ws 		int msr;
    542  1.29  sakamoto 
    543   1.1        ws 		splhigh();
    544   1.7   thorpej 		asm volatile ("mfmsr %0; ori %0,%0,%1; mtmsr %0"
    545   1.7   thorpej 			      : "=r"(msr) : "K"((u_short)(PSL_EE|PSL_RI)));
    546   1.1        ws 	}
    547  1.29  sakamoto 
    548   1.1        ws 	/*
    549   1.1        ws 	 * Configure devices.
    550   1.1        ws 	 */
    551   1.1        ws 	configure();
    552   1.1        ws }
    553   1.1        ws 
    554   1.1        ws /*
    555   1.1        ws  * Allocate space for system data structures.
    556   1.1        ws  */
    557   1.1        ws caddr_t
    558   1.1        ws allocsys(v)
    559   1.1        ws 	caddr_t v;
    560   1.1        ws {
    561   1.1        ws #define	valloc(name, type, num) \
    562   1.1        ws 	v = (caddr_t)(((name) = (type *)v) + (num))
    563   1.1        ws 
    564   1.1        ws 	valloc(callout, struct callout, ncallout);
    565   1.1        ws #ifdef	SYSVSHM
    566   1.1        ws 	valloc(shmsegs, struct shmid_ds, shminfo.shmmni);
    567   1.1        ws #endif
    568   1.1        ws #ifdef	SYSVSEM
    569   1.1        ws 	valloc(sema, struct semid_ds, seminfo.semmni);
    570   1.1        ws 	valloc(sem, struct sem, seminfo.semmns);
    571  1.29  sakamoto 	valloc(semu, int, (seminfo.semmnu * seminfo.semusz) / sizeof (int));
    572   1.1        ws #endif
    573   1.1        ws #ifdef	SYSVMSG
    574   1.1        ws 	valloc(msgpool, char, msginfo.msgmax);
    575   1.1        ws 	valloc(msgmaps, struct msgmap, msginfo.msgseg);
    576   1.1        ws 	valloc(msghdrs, struct msg, msginfo.msgtql);
    577   1.1        ws 	valloc(msqids, struct msqid_ds, msginfo.msgmni);
    578   1.1        ws #endif
    579   1.1        ws 
    580   1.1        ws 	/*
    581   1.1        ws 	 * Decide on buffer space to use.
    582   1.1        ws 	 */
    583   1.1        ws 	if (bufpages == 0)
    584   1.1        ws 		bufpages = (physmem / 20) / CLSIZE;
    585   1.1        ws 	if (nbuf == 0) {
    586   1.1        ws 		nbuf = bufpages;
    587   1.1        ws 		if (nbuf < 16)
    588   1.1        ws 			nbuf = 16;
    589   1.1        ws 	}
    590   1.1        ws 	if (nswbuf == 0) {
    591   1.1        ws 		nswbuf = (nbuf / 2) & ~1;
    592   1.1        ws 		if (nswbuf > 256)
    593   1.1        ws 			nswbuf = 256;
    594   1.1        ws 	}
    595  1.19  sakamoto #if !defined(UVM)
    596   1.1        ws 	valloc(swbuf, struct buf, nswbuf);
    597  1.19  sakamoto #endif
    598   1.1        ws 	valloc(buf, struct buf, nbuf);
    599  1.29  sakamoto 
    600  1.29  sakamoto 	return (v);
    601   1.1        ws }
    602   1.1        ws 
    603   1.1        ws /*
    604   1.1        ws  * consinit
    605   1.1        ws  * Initialize system console.
    606   1.1        ws  */
    607   1.1        ws void
    608   1.1        ws consinit()
    609   1.1        ws {
    610   1.1        ws 	static int initted;
    611  1.29  sakamoto 
    612   1.1        ws 	if (initted)
    613   1.1        ws 		return;
    614   1.1        ws 	initted = 1;
    615   1.1        ws 	cninit();
    616   1.1        ws }
    617   1.1        ws 
    618   1.1        ws /*
    619   1.7   thorpej  * Set set up registers on exec.
    620   1.1        ws  */
    621   1.1        ws void
    622  1.11   mycroft setregs(p, pack, stack)
    623   1.1        ws 	struct proc *p;
    624   1.1        ws 	struct exec_package *pack;
    625   1.1        ws 	u_long stack;
    626   1.1        ws {
    627   1.1        ws 	struct trapframe *tf = trapframe(p);
    628   1.7   thorpej 	struct ps_strings arginfo;
    629   1.1        ws 
    630   1.1        ws 	bzero(tf, sizeof *tf);
    631   1.1        ws 	tf->fixreg[1] = -roundup(-stack + 8, 16);
    632   1.7   thorpej 
    633   1.7   thorpej 	/*
    634   1.7   thorpej 	 * XXX Machine-independent code has already copied arguments and
    635   1.7   thorpej 	 * XXX environment to userland.  Get them back here.
    636   1.7   thorpej 	 */
    637  1.29  sakamoto 	(void)copyin((char *)PS_STRINGS, &arginfo, sizeof (arginfo));
    638   1.7   thorpej 
    639   1.7   thorpej 	/*
    640   1.7   thorpej 	 * Set up arguments for _start():
    641   1.7   thorpej 	 *	_start(argc, argv, envp, obj, cleanup, ps_strings);
    642   1.7   thorpej 	 *
    643   1.7   thorpej 	 * Notes:
    644   1.7   thorpej 	 *	- obj and cleanup are the auxilliary and termination
    645   1.7   thorpej 	 *	  vectors.  They are fixed up by ld.elf_so.
    646   1.7   thorpej 	 *	- ps_strings is a NetBSD extention, and will be
    647   1.7   thorpej 	 * 	  ignored by executables which are strictly
    648   1.7   thorpej 	 *	  compliant with the SVR4 ABI.
    649   1.7   thorpej 	 *
    650   1.7   thorpej 	 * XXX We have to set both regs and retval here due to different
    651   1.7   thorpej 	 * XXX calling convention in trap.c and init_main.c.
    652   1.7   thorpej 	 */
    653  1.12   mycroft 	tf->fixreg[3] = arginfo.ps_nargvstr;
    654  1.12   mycroft 	tf->fixreg[4] = (register_t)arginfo.ps_argvstr;
    655   1.7   thorpej 	tf->fixreg[5] = (register_t)arginfo.ps_envstr;
    656   1.7   thorpej 	tf->fixreg[6] = 0;			/* auxillary vector */
    657   1.7   thorpej 	tf->fixreg[7] = 0;			/* termination vector */
    658   1.7   thorpej 	tf->fixreg[8] = (register_t)PS_STRINGS;	/* NetBSD extension */
    659   1.7   thorpej 
    660   1.1        ws 	tf->srr0 = pack->ep_entry;
    661   1.1        ws 	tf->srr1 = PSL_MBO | PSL_USERSET | PSL_FE_DFLT;
    662   1.1        ws 	p->p_addr->u_pcb.pcb_flags = 0;
    663   1.1        ws }
    664   1.1        ws 
    665   1.1        ws /*
    666   1.1        ws  * Send a signal to process.
    667   1.1        ws  */
    668   1.1        ws void
    669   1.1        ws sendsig(catcher, sig, mask, code)
    670   1.1        ws 	sig_t catcher;
    671  1.27   thorpej 	int sig;
    672  1.27   thorpej 	sigset_t *mask;
    673   1.1        ws 	u_long code;
    674   1.1        ws {
    675   1.1        ws 	struct proc *p = curproc;
    676   1.1        ws 	struct trapframe *tf;
    677   1.1        ws 	struct sigframe *fp, frame;
    678   1.1        ws 	struct sigacts *psp = p->p_sigacts;
    679  1.27   thorpej 	int onstack;
    680  1.27   thorpej 
    681   1.1        ws 	tf = trapframe(p);
    682  1.27   thorpej 
    683  1.27   thorpej 	/* Do we need to jump onto the signal stack? */
    684  1.27   thorpej 	onstack =
    685  1.27   thorpej 	    (psp->ps_sigstk.ss_flags & (SS_DISABLE | SS_ONSTACK)) == 0 &&
    686  1.27   thorpej 	    (psp->ps_sigact[sig].sa_flags & SA_ONSTACK) != 0;
    687  1.27   thorpej 
    688  1.27   thorpej 	/* Allocate space for the signal handler context. */
    689  1.27   thorpej 	if (onstack)
    690  1.27   thorpej 		fp = (struct sigframe *)((caddr_t)psp->ps_sigstk.ss_sp +
    691  1.27   thorpej 						  psp->ps_sigstk.ss_size);
    692  1.27   thorpej 	else
    693   1.1        ws 		fp = (struct sigframe *)tf->fixreg[1];
    694   1.1        ws 	fp = (struct sigframe *)((int)(fp - 1) & ~0xf);
    695  1.27   thorpej 
    696  1.27   thorpej 	/* Build stack frame for signal trampoline. */
    697  1.27   thorpej 	frame.sf_signum = sig;
    698   1.1        ws 	frame.sf_code = code;
    699  1.27   thorpej 
    700  1.27   thorpej 	/* Save register context. */
    701  1.27   thorpej 	bcopy(tf, &frame.sf_sc.sc_frame, sizeof *tf);
    702  1.27   thorpej 
    703  1.27   thorpej 	/* Save signal stack. */
    704  1.27   thorpej 	frame.sf_sc.sc_onstack = psp->ps_sigstk.ss_flags & SS_ONSTACK;
    705  1.27   thorpej 
    706  1.27   thorpej 	/* Save signal mask. */
    707  1.27   thorpej 	frame.sf_sc.sc_mask = *mask;
    708  1.27   thorpej 
    709  1.27   thorpej #ifdef COMPAT_13
    710   1.1        ws 	/*
    711  1.27   thorpej 	 * XXX We always have to save an old style signal mask because
    712  1.27   thorpej 	 * XXX we might be delivering a signal to a process which will
    713  1.27   thorpej 	 * XXX escape from the signal in a non-standard way and invoke
    714  1.27   thorpej 	 * XXX sigreturn() directly.
    715   1.1        ws 	 */
    716  1.27   thorpej 	native_sigset_to_sigset13(mask, &frame.sf_sc.__sc_mask13);
    717  1.27   thorpej #endif
    718  1.27   thorpej 
    719  1.27   thorpej 	if (copyout(&frame, fp, sizeof frame) != 0) {
    720  1.27   thorpej 		/*
    721  1.27   thorpej 		 * Process has trashed its stack; give it an illegal
    722  1.27   thorpej 		 * instructoin to halt it in its tracks.
    723  1.27   thorpej 		 */
    724   1.1        ws 		sigexit(p, SIGILL);
    725  1.28   mycroft 		/* NOTREACHED */
    726  1.27   thorpej 	}
    727  1.27   thorpej 
    728  1.27   thorpej 	/*
    729  1.27   thorpej 	 * Build context to run handler in.
    730  1.27   thorpej 	 */
    731   1.1        ws 	tf->fixreg[1] = (int)fp;
    732   1.1        ws 	tf->lr = (int)catcher;
    733   1.1        ws 	tf->fixreg[3] = (int)sig;
    734   1.1        ws 	tf->fixreg[4] = (int)code;
    735   1.1        ws 	tf->fixreg[5] = (int)&frame.sf_sc;
    736  1.28   mycroft 	tf->srr0 = (int)psp->ps_sigcode;
    737  1.28   mycroft 
    738  1.28   mycroft 	/* Remember that we're now on the signal stack. */
    739  1.28   mycroft 	if (onstack)
    740  1.28   mycroft 		psp->ps_sigstk.ss_flags |= SS_ONSTACK;
    741   1.1        ws }
    742   1.1        ws 
    743   1.1        ws /*
    744   1.1        ws  * System call to cleanup state after a signal handler returns.
    745   1.1        ws  */
    746   1.1        ws int
    747  1.27   thorpej sys___sigreturn14(p, v, retval)
    748   1.1        ws 	struct proc *p;
    749   1.1        ws 	void *v;
    750   1.1        ws 	register_t *retval;
    751   1.1        ws {
    752  1.27   thorpej 	struct sys___sigreturn14_args /* {
    753   1.1        ws 		syscallarg(struct sigcontext *) sigcntxp;
    754   1.1        ws 	} */ *uap = v;
    755   1.1        ws 	struct sigcontext sc;
    756   1.1        ws 	struct trapframe *tf;
    757   1.1        ws 	int error;
    758  1.27   thorpej 
    759  1.27   thorpej 	/*
    760  1.27   thorpej 	 * The trampoline hands us the context.
    761  1.27   thorpej 	 * It is unsafe to keep track of it ourselves, in the event that a
    762  1.27   thorpej 	 * program jumps out of a signal hander.
    763  1.27   thorpej 	 */
    764  1.27   thorpej 	if ((error = copyin(SCARG(uap, sigcntxp), &sc, sizeof sc)) != 0)
    765  1.27   thorpej 		return (error);
    766  1.27   thorpej 
    767  1.27   thorpej 	/* Restore the register context. */
    768   1.1        ws 	tf = trapframe(p);
    769   1.1        ws 	if ((sc.sc_frame.srr1 & PSL_USERSTATIC) != (tf->srr1 & PSL_USERSTATIC))
    770  1.27   thorpej 		return (EINVAL);
    771   1.1        ws 	bcopy(&sc.sc_frame, tf, sizeof *tf);
    772  1.27   thorpej 
    773  1.27   thorpej 	/* Restore signal stack. */
    774  1.27   thorpej 	if (sc.sc_onstack & SS_ONSTACK)
    775   1.1        ws 		p->p_sigacts->ps_sigstk.ss_flags |= SS_ONSTACK;
    776   1.1        ws 	else
    777   1.1        ws 		p->p_sigacts->ps_sigstk.ss_flags &= ~SS_ONSTACK;
    778  1.27   thorpej 
    779  1.27   thorpej 	/* Restore signal mask. */
    780  1.27   thorpej 	(void) sigprocmask1(p, SIG_SETMASK, &sc.sc_mask, 0);
    781  1.27   thorpej 
    782  1.27   thorpej 	return (EJUSTRETURN);
    783   1.1        ws }
    784   1.1        ws 
    785   1.1        ws /*
    786   1.1        ws  * Machine dependent system variables.
    787   1.1        ws  * None for now.
    788   1.1        ws  */
    789   1.1        ws int
    790   1.1        ws cpu_sysctl(name, namelen, oldp, oldlenp, newp, newlen, p)
    791   1.1        ws 	int *name;
    792   1.1        ws 	u_int namelen;
    793   1.1        ws 	void *oldp;
    794   1.1        ws 	size_t *oldlenp;
    795   1.1        ws 	void *newp;
    796   1.1        ws 	size_t newlen;
    797   1.1        ws 	struct proc *p;
    798   1.1        ws {
    799   1.1        ws 	/* all sysctl names at this level are terminal */
    800   1.1        ws 	if (namelen != 1)
    801  1.29  sakamoto 		return (ENOTDIR);
    802   1.1        ws 	switch (name[0]) {
    803   1.1        ws 	default:
    804  1.29  sakamoto 		return (EOPNOTSUPP);
    805   1.1        ws 	}
    806   1.1        ws }
    807   1.1        ws 
    808   1.1        ws /*
    809   1.1        ws  * Crash dump handling.
    810   1.1        ws  */
    811   1.1        ws u_long dumpmag = 0x8fca0101;		/* magic number */
    812   1.1        ws int dumpsize = 0;			/* size of dump in pages */
    813   1.1        ws long dumplo = -1;			/* blocks */
    814   1.1        ws 
    815   1.1        ws void
    816   1.1        ws dumpsys()
    817   1.1        ws {
    818   1.3  christos 	printf("dumpsys: TBD\n");
    819   1.1        ws }
    820   1.1        ws 
    821   1.1        ws /*
    822   1.1        ws  * Soft networking interrupts.
    823   1.1        ws  */
    824   1.1        ws void
    825   1.1        ws softnet()
    826   1.1        ws {
    827   1.1        ws 	int isr = netisr;
    828   1.1        ws 
    829   1.1        ws 	netisr = 0;
    830   1.1        ws #ifdef	INET
    831  1.13     veego #include "arp.h"
    832  1.13     veego #if NARP > 0
    833   1.1        ws 	if (isr & (1 << NETISR_ARP))
    834   1.1        ws 		arpintr();
    835   1.1        ws #endif
    836   1.1        ws 	if (isr & (1 << NETISR_IP))
    837   1.1        ws 		ipintr();
    838   1.1        ws #endif
    839   1.1        ws #ifdef	IMP
    840   1.1        ws 	if (isr & (1 << NETISR_IMP))
    841   1.1        ws 		impintr();
    842   1.1        ws #endif
    843   1.1        ws #ifdef	NS
    844   1.1        ws 	if (isr & (1 << NETISR_NS))
    845   1.1        ws 		nsintr();
    846   1.1        ws #endif
    847   1.1        ws #ifdef	ISO
    848   1.1        ws 	if (isr & (1 << NETISR_ISO))
    849   1.1        ws 		clnlintr();
    850   1.1        ws #endif
    851   1.1        ws #ifdef	CCITT
    852   1.1        ws 	if (isr & (1 << NETISR_CCITT))
    853   1.1        ws 		ccittintr();
    854   1.1        ws #endif
    855   1.1        ws #include "ppp.h"
    856   1.1        ws #if NPPP > 0
    857   1.1        ws 	if (isr & (1 << NETISR_PPP))
    858   1.1        ws 		pppintr();
    859   1.1        ws #endif
    860   1.1        ws }
    861   1.1        ws 
    862   1.1        ws /*
    863   1.1        ws  * Stray interrupts.
    864   1.1        ws  */
    865   1.1        ws void
    866   1.1        ws strayintr(irq)
    867   1.1        ws 	int irq;
    868   1.1        ws {
    869   1.1        ws 	log(LOG_ERR, "stray interrupt %d\n", irq);
    870   1.1        ws }
    871   1.1        ws 
    872   1.1        ws /*
    873   1.1        ws  * Halt or reboot the machine after syncing/dumping according to howto.
    874   1.1        ws  */
    875   1.1        ws void
    876   1.5       gwr cpu_reboot(howto, what)
    877   1.1        ws 	int howto;
    878   1.1        ws 	char *what;
    879   1.1        ws {
    880   1.1        ws 	static int syncing;
    881   1.1        ws 	static char str[256];
    882   1.1        ws 	char *ap = str, *ap1 = ap;
    883   1.1        ws 
    884   1.1        ws 	boothowto = howto;
    885   1.1        ws 	if (!cold && !(howto & RB_NOSYNC) && !syncing) {
    886   1.1        ws 		syncing = 1;
    887   1.1        ws 		vfs_shutdown();		/* sync */
    888   1.1        ws 		resettodr();		/* set wall clock */
    889   1.1        ws 	}
    890   1.1        ws 	splhigh();
    891   1.1        ws 	if (howto & RB_HALT) {
    892   1.1        ws 		doshutdownhooks();
    893   1.3  christos 		printf("halted\n\n");
    894   1.1        ws 		ppc_exit();
    895   1.1        ws 	}
    896   1.1        ws 	if (!cold && (howto & RB_DUMP))
    897   1.1        ws 		dumpsys();
    898   1.1        ws 	doshutdownhooks();
    899   1.3  christos 	printf("rebooting\n\n");
    900   1.1        ws 	if (what && *what) {
    901   1.1        ws 		if (strlen(what) > sizeof str - 5)
    902   1.3  christos 			printf("boot string too large, ignored\n");
    903   1.1        ws 		else {
    904   1.1        ws 			strcpy(str, what);
    905   1.1        ws 			ap1 = ap = str + strlen(str);
    906   1.1        ws 			*ap++ = ' ';
    907   1.1        ws 		}
    908   1.1        ws 	}
    909   1.1        ws 	*ap++ = '-';
    910   1.1        ws 	if (howto & RB_SINGLE)
    911   1.1        ws 		*ap++ = 's';
    912   1.1        ws 	if (howto & RB_KDB)
    913   1.1        ws 		*ap++ = 'd';
    914   1.1        ws 	*ap++ = 0;
    915   1.1        ws 	if (ap[-2] == '-')
    916   1.1        ws 		*ap1 = 0;
    917   1.1        ws 	ppc_boot(str);
    918   1.1        ws }
    919   1.1        ws 
    920   1.1        ws /*
    921   1.1        ws  * OpenFirmware callback routine
    922   1.1        ws  */
    923   1.1        ws void
    924   1.1        ws callback(p)
    925   1.1        ws 	void *p;
    926   1.1        ws {
    927   1.1        ws 	panic("callback");	/* for now			XXX */
    928   1.1        ws }
    929   1.1        ws 
    930   1.1        ws /*
    931   1.7   thorpej  * Initial Machine Interface.
    932   1.1        ws  */
    933   1.7   thorpej static int
    934   1.7   thorpej fake_spl()
    935   1.7   thorpej {
    936   1.7   thorpej 	int scratch;
    937   1.7   thorpej 
    938   1.7   thorpej 	asm volatile ("mfmsr %0; andi. %0,%0,%1; mtmsr %0; isync"
    939   1.7   thorpej 	    : "=r"(scratch) : "K"((u_short)~(PSL_EE|PSL_ME)));
    940  1.29  sakamoto 	return (-1);
    941   1.7   thorpej }
    942   1.7   thorpej 
    943   1.1        ws static void
    944   1.7   thorpej fake_setsoft()
    945   1.7   thorpej {
    946   1.7   thorpej 	/* Do nothing */
    947   1.7   thorpej }
    948   1.7   thorpej 
    949   1.7   thorpej static int
    950   1.1        ws fake_splx(new)
    951   1.1        ws 	int new;
    952   1.1        ws {
    953  1.29  sakamoto 	return (fake_spl());
    954   1.7   thorpej }
    955   1.7   thorpej 
    956   1.7   thorpej static void
    957   1.7   thorpej fake_clock_return(frame, nticks)
    958   1.7   thorpej 	struct clockframe *frame;
    959   1.7   thorpej 	int nticks;
    960   1.7   thorpej {
    961   1.7   thorpej 	/* Do nothing */
    962   1.1        ws }
    963   1.1        ws 
    964   1.1        ws static void
    965   1.1        ws fake_irq_establish(irq, level, handler, arg)
    966   1.1        ws 	int irq, level;
    967   1.1        ws 	void (*handler) __P((void *));
    968   1.1        ws 	void *arg;
    969   1.1        ws {
    970   1.1        ws 	panic("fake_irq_establish");
    971   1.1        ws }
    972