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machdep.c revision 1.60
      1  1.60       cgd /*	$NetBSD: machdep.c,v 1.60 1996/12/03 19:52:58 cgd Exp $	*/
      2   1.1       cgd 
      3   1.1       cgd /*
      4  1.16       cgd  * Copyright (c) 1994, 1995, 1996 Carnegie-Mellon University.
      5   1.1       cgd  * All rights reserved.
      6   1.1       cgd  *
      7   1.1       cgd  * Author: Chris G. Demetriou
      8   1.1       cgd  *
      9   1.1       cgd  * Permission to use, copy, modify and distribute this software and
     10   1.1       cgd  * its documentation is hereby granted, provided that both the copyright
     11   1.1       cgd  * notice and this permission notice appear in all copies of the
     12   1.1       cgd  * software, derivative works or modified versions, and any portions
     13   1.1       cgd  * thereof, and that both notices appear in supporting documentation.
     14   1.1       cgd  *
     15   1.1       cgd  * CARNEGIE MELLON ALLOWS FREE USE OF THIS SOFTWARE IN ITS "AS IS"
     16   1.1       cgd  * CONDITION.  CARNEGIE MELLON DISCLAIMS ANY LIABILITY OF ANY KIND
     17   1.1       cgd  * FOR ANY DAMAGES WHATSOEVER RESULTING FROM THE USE OF THIS SOFTWARE.
     18   1.1       cgd  *
     19   1.1       cgd  * Carnegie Mellon requests users of this software to return to
     20   1.1       cgd  *
     21   1.1       cgd  *  Software Distribution Coordinator  or  Software.Distribution (at) CS.CMU.EDU
     22   1.1       cgd  *  School of Computer Science
     23   1.1       cgd  *  Carnegie Mellon University
     24   1.1       cgd  *  Pittsburgh PA 15213-3890
     25   1.1       cgd  *
     26   1.1       cgd  * any improvements or extensions that they make and grant Carnegie the
     27   1.1       cgd  * rights to redistribute these changes.
     28   1.1       cgd  */
     29   1.1       cgd 
     30   1.1       cgd #include <sys/param.h>
     31   1.1       cgd #include <sys/systm.h>
     32   1.1       cgd #include <sys/signalvar.h>
     33   1.1       cgd #include <sys/kernel.h>
     34   1.1       cgd #include <sys/map.h>
     35   1.1       cgd #include <sys/proc.h>
     36   1.1       cgd #include <sys/buf.h>
     37   1.1       cgd #include <sys/reboot.h>
     38  1.28       cgd #include <sys/device.h>
     39   1.1       cgd #include <sys/conf.h>
     40   1.1       cgd #include <sys/file.h>
     41   1.1       cgd #ifdef REAL_CLISTS
     42   1.1       cgd #include <sys/clist.h>
     43   1.1       cgd #endif
     44   1.1       cgd #include <sys/callout.h>
     45   1.1       cgd #include <sys/malloc.h>
     46   1.1       cgd #include <sys/mbuf.h>
     47   1.1       cgd #include <sys/msgbuf.h>
     48   1.1       cgd #include <sys/ioctl.h>
     49   1.1       cgd #include <sys/tty.h>
     50   1.1       cgd #include <sys/user.h>
     51   1.1       cgd #include <sys/exec.h>
     52   1.1       cgd #include <sys/exec_ecoff.h>
     53   1.1       cgd #include <sys/sysctl.h>
     54  1.43       cgd #include <sys/core.h>
     55  1.43       cgd #include <sys/kcore.h>
     56  1.43       cgd #include <machine/kcore.h>
     57   1.1       cgd #ifdef SYSVMSG
     58   1.1       cgd #include <sys/msg.h>
     59   1.1       cgd #endif
     60   1.1       cgd #ifdef SYSVSEM
     61   1.1       cgd #include <sys/sem.h>
     62   1.1       cgd #endif
     63   1.1       cgd #ifdef SYSVSHM
     64   1.1       cgd #include <sys/shm.h>
     65   1.1       cgd #endif
     66   1.1       cgd 
     67   1.1       cgd #include <sys/mount.h>
     68   1.1       cgd #include <sys/syscallargs.h>
     69   1.1       cgd 
     70   1.1       cgd #include <vm/vm_kern.h>
     71   1.1       cgd 
     72   1.1       cgd #include <dev/cons.h>
     73   1.1       cgd 
     74   1.1       cgd #include <machine/cpu.h>
     75   1.1       cgd #include <machine/reg.h>
     76   1.1       cgd #include <machine/rpb.h>
     77   1.1       cgd #include <machine/prom.h>
     78  1.54       cgd #include <machine/cpuconf.h>
     79   1.8       cgd 
     80  1.49       cgd #include <net/netisr.h>
     81  1.33       cgd #include <net/if.h>
     82  1.49       cgd 
     83  1.49       cgd #ifdef INET
     84  1.33       cgd #include <netinet/in.h>
     85  1.49       cgd #include <netinet/if_ether.h>
     86  1.33       cgd #include <netinet/ip_var.h>
     87  1.49       cgd #endif
     88  1.49       cgd #ifdef NS
     89  1.49       cgd #include <netns/ns_var.h>
     90  1.49       cgd #endif
     91  1.49       cgd #ifdef ISO
     92  1.49       cgd #include <netiso/iso.h>
     93  1.49       cgd #include <netiso/clnp.h>
     94  1.49       cgd #endif
     95  1.55       cgd #ifdef CCITT
     96  1.55       cgd #include <netccitt/x25.h>
     97  1.55       cgd #include <netccitt/pk.h>
     98  1.55       cgd #include <netccitt/pk_extern.h>
     99  1.55       cgd #endif
    100  1.55       cgd #ifdef NATM
    101  1.55       cgd #include <netnatm/natm.h>
    102  1.55       cgd #endif
    103  1.49       cgd #include "ppp.h"
    104  1.49       cgd #if NPPP > 0
    105  1.49       cgd #include <net/ppp_defs.h>
    106  1.49       cgd #include <net/if_ppp.h>
    107  1.49       cgd #endif
    108   1.1       cgd 
    109  1.17       cgd #include "le_ioasic.h"			/* for le_iomem creation */
    110   1.1       cgd 
    111   1.1       cgd vm_map_t buffer_map;
    112   1.1       cgd 
    113   1.1       cgd /*
    114   1.1       cgd  * Declare these as initialized data so we can patch them.
    115   1.1       cgd  */
    116   1.1       cgd int	nswbuf = 0;
    117   1.1       cgd #ifdef	NBUF
    118   1.1       cgd int	nbuf = NBUF;
    119   1.1       cgd #else
    120   1.1       cgd int	nbuf = 0;
    121   1.1       cgd #endif
    122   1.1       cgd #ifdef	BUFPAGES
    123   1.1       cgd int	bufpages = BUFPAGES;
    124   1.1       cgd #else
    125   1.1       cgd int	bufpages = 0;
    126   1.1       cgd #endif
    127   1.1       cgd int	msgbufmapped = 0;	/* set when safe to use msgbuf */
    128   1.1       cgd int	maxmem;			/* max memory per process */
    129   1.7       cgd 
    130   1.7       cgd int	totalphysmem;		/* total amount of physical memory in system */
    131   1.7       cgd int	physmem;		/* physical memory used by NetBSD + some rsvd */
    132   1.7       cgd int	firstusablepage;	/* first usable memory page */
    133   1.7       cgd int	lastusablepage;		/* last usable memory page */
    134   1.1       cgd int	resvmem;		/* amount of memory reserved for PROM */
    135   1.7       cgd int	unusedmem;		/* amount of memory for OS that we don't use */
    136   1.7       cgd int	unknownmem;		/* amount of memory with an unknown use */
    137   1.1       cgd 
    138   1.1       cgd int	cputype;		/* system type, from the RPB */
    139   1.1       cgd 
    140   1.1       cgd /*
    141   1.1       cgd  * XXX We need an address to which we can assign things so that they
    142   1.1       cgd  * won't be optimized away because we didn't use the value.
    143   1.1       cgd  */
    144   1.1       cgd u_int32_t no_optimize;
    145   1.1       cgd 
    146   1.1       cgd /* the following is used externally (sysctl_hw) */
    147   1.1       cgd char	machine[] = "alpha";
    148  1.29       cgd char	cpu_model[128];
    149  1.54       cgd const struct cpusw *cpu_fn_switch;		/* function switch */
    150   1.1       cgd 
    151   1.1       cgd struct	user *proc0paddr;
    152   1.1       cgd 
    153   1.1       cgd /* Number of machine cycles per microsecond */
    154   1.1       cgd u_int64_t	cycles_per_usec;
    155   1.1       cgd 
    156   1.1       cgd /* some memory areas for device DMA.  "ick." */
    157   1.1       cgd caddr_t		le_iomem;		/* XXX iomem for LANCE DMA */
    158   1.1       cgd 
    159   1.7       cgd /* number of cpus in the box.  really! */
    160   1.7       cgd int		ncpus;
    161   1.7       cgd 
    162  1.25       cgd char boot_flags[64];
    163   1.8       cgd 
    164  1.30       cgd /* for cpu_sysctl() */
    165  1.36       cgd char	root_device[17];
    166  1.36       cgd int	alpha_unaligned_print = 1;	/* warn about unaligned accesses */
    167  1.36       cgd int	alpha_unaligned_fix = 1;	/* fix up unaligned accesses */
    168  1.36       cgd int	alpha_unaligned_sigbus = 0;	/* don't SIGBUS on fixed-up accesses */
    169  1.30       cgd 
    170  1.55       cgd int	cpu_dump __P((void));
    171  1.55       cgd int	cpu_dumpsize __P((void));
    172  1.55       cgd void	dumpsys __P((void));
    173  1.55       cgd void	identifycpu __P((void));
    174  1.55       cgd void	netintr __P((void));
    175  1.55       cgd void	printregs __P((struct reg *));
    176  1.33       cgd 
    177  1.55       cgd void
    178  1.25       cgd alpha_init(pfn, ptb)
    179   1.1       cgd 	u_long pfn;		/* first free PFN number */
    180   1.1       cgd 	u_long ptb;		/* PFN of current level 1 page table */
    181   1.1       cgd {
    182   1.2       cgd 	extern char _end[];
    183   1.1       cgd 	caddr_t start, v;
    184   1.1       cgd 	struct mddt *mddtp;
    185   1.7       cgd 	int i, mddtweird;
    186   1.1       cgd 	char *p;
    187   1.1       cgd 
    188   1.1       cgd 	/*
    189   1.1       cgd 	 * Turn off interrupts and floating point.
    190   1.1       cgd 	 * Make sure the instruction and data streams are consistent.
    191   1.1       cgd 	 */
    192   1.1       cgd 	(void)splhigh();
    193  1.32       cgd 	alpha_pal_wrfen(0);
    194  1.37       cgd 	ALPHA_TBIA();
    195  1.32       cgd 	alpha_pal_imb();
    196   1.1       cgd 
    197   1.1       cgd 	/*
    198   1.1       cgd 	 * get address of the restart block, while we the bootstrap
    199   1.1       cgd 	 * mapping is still around.
    200   1.1       cgd 	 */
    201  1.32       cgd 	hwrpb = (struct rpb *)ALPHA_PHYS_TO_K0SEG(
    202  1.32       cgd 	    (vm_offset_t)(*(struct rpb **)HWRPB_ADDR));
    203   1.1       cgd 
    204   1.1       cgd 	/*
    205   1.1       cgd 	 * Remember how many cycles there are per microsecond,
    206   1.7       cgd 	 * so that we can use delay().  Round up, for safety.
    207   1.1       cgd 	 */
    208   1.7       cgd 	cycles_per_usec = (hwrpb->rpb_cc_freq + 999999) / 1000000;
    209   1.1       cgd 
    210   1.1       cgd 	/*
    211   1.1       cgd 	 * Init the PROM interface, so we can use printf
    212   1.1       cgd 	 * until PROM mappings go away in consinit.
    213   1.1       cgd 	 */
    214   1.1       cgd 	init_prom_interface();
    215   1.1       cgd 
    216   1.1       cgd 	/*
    217   1.1       cgd 	 * Point interrupt/exception vectors to our own.
    218   1.1       cgd 	 */
    219  1.36       cgd 	alpha_pal_wrent(XentInt, ALPHA_KENTRY_INT);
    220  1.36       cgd 	alpha_pal_wrent(XentArith, ALPHA_KENTRY_ARITH);
    221  1.36       cgd 	alpha_pal_wrent(XentMM, ALPHA_KENTRY_MM);
    222  1.36       cgd 	alpha_pal_wrent(XentIF, ALPHA_KENTRY_IF);
    223  1.36       cgd 	alpha_pal_wrent(XentUna, ALPHA_KENTRY_UNA);
    224  1.36       cgd 	alpha_pal_wrent(XentSys, ALPHA_KENTRY_SYS);
    225  1.36       cgd 
    226  1.36       cgd 	/*
    227  1.36       cgd 	 * Disable System and Processor Correctable Error reporting.
    228  1.36       cgd 	 * Clear pending machine checks and error reports, etc.
    229  1.36       cgd 	 */
    230  1.40       cgd 	alpha_pal_wrmces(alpha_pal_rdmces() | ALPHA_MCES_DSC | ALPHA_MCES_DPC);
    231   1.1       cgd 
    232   1.1       cgd 	/*
    233   1.1       cgd 	 * Find out how much memory is available, by looking at
    234   1.7       cgd 	 * the memory cluster descriptors.  This also tries to do
    235   1.7       cgd 	 * its best to detect things things that have never been seen
    236   1.7       cgd 	 * before...
    237   1.7       cgd 	 *
    238   1.1       cgd 	 * XXX Assumes that the first "system" cluster is the
    239   1.7       cgd 	 * only one we can use. Is the second (etc.) system cluster
    240   1.7       cgd 	 * (if one happens to exist) guaranteed to be contiguous?  or...?
    241   1.1       cgd 	 */
    242   1.1       cgd 	mddtp = (struct mddt *)(((caddr_t)hwrpb) + hwrpb->rpb_memdat_off);
    243   1.7       cgd 
    244   1.7       cgd 	/*
    245   1.7       cgd 	 * BEGIN MDDT WEIRDNESS CHECKING
    246   1.7       cgd 	 */
    247   1.7       cgd 	mddtweird = 0;
    248   1.7       cgd 
    249   1.7       cgd #define cnt	 mddtp->mddt_cluster_cnt
    250   1.7       cgd #define	usage(n) mddtp->mddt_clusters[(n)].mddt_usage
    251   1.7       cgd 	if (cnt != 2 && cnt != 3) {
    252  1.46  christos 		printf("WARNING: weird number (%ld) of mem clusters\n", cnt);
    253   1.7       cgd 		mddtweird = 1;
    254   1.7       cgd 	} else if (usage(0) != MDDT_PALCODE ||
    255   1.7       cgd 		   usage(1) != MDDT_SYSTEM ||
    256   1.7       cgd 	           (cnt == 3 && usage(2) != MDDT_PALCODE)) {
    257   1.7       cgd 		mddtweird = 1;
    258  1.46  christos 		printf("WARNING: %ld mem clusters, but weird config\n", cnt);
    259   1.7       cgd 	}
    260   1.7       cgd 
    261   1.7       cgd 	for (i = 0; i < cnt; i++) {
    262   1.7       cgd 		if ((usage(i) & MDDT_mbz) != 0) {
    263  1.46  christos 			printf("WARNING: mem cluster %d has weird usage %lx\n",
    264   1.7       cgd 			    i, usage(i));
    265   1.7       cgd 			mddtweird = 1;
    266   1.7       cgd 		}
    267   1.7       cgd 		if (mddtp->mddt_clusters[i].mddt_pg_cnt == 0) {
    268  1.46  christos 			printf("WARNING: mem cluster %d has pg cnt == 0\n", i);
    269   1.7       cgd 			mddtweird = 1;
    270   1.7       cgd 		}
    271   1.7       cgd 		/* XXX other things to check? */
    272   1.7       cgd 	}
    273   1.7       cgd #undef cnt
    274   1.7       cgd #undef usage
    275   1.7       cgd 
    276   1.7       cgd 	if (mddtweird) {
    277  1.46  christos 		printf("\n");
    278  1.46  christos 		printf("complete memory cluster information:\n");
    279   1.2       cgd 		for (i = 0; i < mddtp->mddt_cluster_cnt; i++) {
    280  1.46  christos 			printf("mddt %d:\n", i);
    281  1.46  christos 			printf("\tpfn %lx\n",
    282   1.2       cgd 			    mddtp->mddt_clusters[i].mddt_pfn);
    283  1.46  christos 			printf("\tcnt %lx\n",
    284   1.2       cgd 			    mddtp->mddt_clusters[i].mddt_pg_cnt);
    285  1.46  christos 			printf("\ttest %lx\n",
    286   1.2       cgd 			    mddtp->mddt_clusters[i].mddt_pg_test);
    287  1.46  christos 			printf("\tbva %lx\n",
    288   1.2       cgd 			    mddtp->mddt_clusters[i].mddt_v_bitaddr);
    289  1.46  christos 			printf("\tbpa %lx\n",
    290   1.2       cgd 			    mddtp->mddt_clusters[i].mddt_p_bitaddr);
    291  1.46  christos 			printf("\tbcksum %lx\n",
    292   1.2       cgd 			    mddtp->mddt_clusters[i].mddt_bit_cksum);
    293  1.46  christos 			printf("\tusage %lx\n",
    294   1.2       cgd 			    mddtp->mddt_clusters[i].mddt_usage);
    295   1.2       cgd 		}
    296  1.46  christos 		printf("\n");
    297   1.2       cgd 	}
    298   1.7       cgd 	/*
    299   1.7       cgd 	 * END MDDT WEIRDNESS CHECKING
    300   1.7       cgd 	 */
    301   1.2       cgd 
    302   1.1       cgd 	for (i = 0; i < mddtp->mddt_cluster_cnt; i++) {
    303   1.7       cgd 		totalphysmem += mddtp->mddt_clusters[i].mddt_pg_cnt;
    304   1.7       cgd #define	usage(n) mddtp->mddt_clusters[(n)].mddt_usage
    305   1.7       cgd #define	pgcnt(n) mddtp->mddt_clusters[(n)].mddt_pg_cnt
    306   1.7       cgd 		if ((usage(i) & MDDT_mbz) != 0)
    307   1.7       cgd 			unknownmem += pgcnt(i);
    308   1.7       cgd 		else if ((usage(i) & ~MDDT_mbz) == MDDT_PALCODE)
    309   1.7       cgd 			resvmem += pgcnt(i);
    310   1.7       cgd 		else if ((usage(i) & ~MDDT_mbz) == MDDT_SYSTEM) {
    311   1.7       cgd 			/*
    312   1.7       cgd 			 * assumes that the system cluster listed is
    313   1.7       cgd 			 * one we're in...
    314   1.7       cgd 			 */
    315   1.7       cgd 			if (physmem != resvmem) {
    316   1.7       cgd 				physmem += pgcnt(i);
    317   1.7       cgd 				firstusablepage =
    318   1.7       cgd 				    mddtp->mddt_clusters[i].mddt_pfn;
    319   1.7       cgd 				lastusablepage = firstusablepage + pgcnt(i) - 1;
    320   1.7       cgd 			} else
    321   1.7       cgd 				unusedmem += pgcnt(i);
    322   1.7       cgd 		}
    323   1.7       cgd #undef usage
    324   1.7       cgd #undef pgcnt
    325   1.1       cgd 	}
    326   1.7       cgd 	if (totalphysmem == 0)
    327   1.1       cgd 		panic("can't happen: system seems to have no memory!");
    328   1.1       cgd 	maxmem = physmem;
    329   1.1       cgd 
    330   1.7       cgd #if 0
    331  1.46  christos 	printf("totalphysmem = %d\n", totalphysmem);
    332  1.46  christos 	printf("physmem = %d\n", physmem);
    333  1.46  christos 	printf("firstusablepage = %d\n", firstusablepage);
    334  1.46  christos 	printf("lastusablepage = %d\n", lastusablepage);
    335  1.46  christos 	printf("resvmem = %d\n", resvmem);
    336  1.46  christos 	printf("unusedmem = %d\n", unusedmem);
    337  1.46  christos 	printf("unknownmem = %d\n", unknownmem);
    338   1.7       cgd #endif
    339   1.7       cgd 
    340   1.1       cgd 	/*
    341   1.1       cgd 	 * find out this CPU's page size
    342   1.1       cgd 	 */
    343   1.1       cgd 	PAGE_SIZE = hwrpb->rpb_page_size;
    344  1.12       cgd 	if (PAGE_SIZE != 8192)
    345  1.12       cgd 		panic("page size %d != 8192?!", PAGE_SIZE);
    346   1.1       cgd 
    347   1.2       cgd 	v = (caddr_t)alpha_round_page(_end);
    348   1.1       cgd 	/*
    349   1.1       cgd 	 * Init mapping for u page(s) for proc 0
    350   1.1       cgd 	 */
    351   1.1       cgd 	start = v;
    352   1.1       cgd 	curproc->p_addr = proc0paddr = (struct user *)v;
    353   1.1       cgd 	v += UPAGES * NBPG;
    354   1.1       cgd 
    355   1.1       cgd 	/*
    356   1.1       cgd 	 * Find out what hardware we're on, and remember its type name.
    357   1.1       cgd 	 */
    358   1.1       cgd 	cputype = hwrpb->rpb_type;
    359  1.54       cgd 	if (cputype < 0 || cputype > ncpusw) {
    360  1.54       cgd unknown_cputype:
    361  1.54       cgd 		printf("\n");
    362  1.54       cgd 		printf("Unknown system type %d.\n", cputype);
    363  1.54       cgd 		printf("\n");
    364  1.54       cgd 		panic("unknown system type");
    365  1.54       cgd 	}
    366  1.54       cgd 	cpu_fn_switch = &cpusw[cputype];
    367  1.54       cgd 	if (cpu_fn_switch->family == NULL)
    368  1.54       cgd 		goto unknown_cputype;
    369  1.54       cgd 	if (cpu_fn_switch->option == NULL) {
    370  1.54       cgd 		printf("\n");
    371  1.54       cgd 		printf("NetBSD does not currently support system type %d\n",
    372  1.54       cgd 		    cputype);
    373  1.54       cgd 		printf("(%s family).\n", cpu_fn_switch->family);
    374  1.54       cgd 		printf("\n");
    375  1.54       cgd 		panic("unsupported system type");
    376  1.54       cgd 	}
    377  1.54       cgd 	if (!cpu_fn_switch->present) {
    378  1.54       cgd 		printf("\n");
    379  1.54       cgd 		printf("Support for system type %d (%s family) is\n", cputype,
    380  1.54       cgd 		    cpu_fn_switch->family);
    381  1.57       cgd 		printf("not present in this kernel.  Build a kernel with \"options %s\"\n",
    382  1.54       cgd 		    cpu_fn_switch->option);
    383  1.57       cgd 		printf("to include support for this system type.\n");
    384  1.54       cgd 		printf("\n");
    385  1.54       cgd 		panic("support for system not present");
    386  1.54       cgd 	}
    387  1.54       cgd 
    388  1.54       cgd 	if ((*cpu_fn_switch->model_name)() != NULL)
    389  1.54       cgd 		strncpy(cpu_model, (*cpu_fn_switch->model_name)(),
    390  1.54       cgd 		    sizeof cpu_model - 1);
    391  1.54       cgd 	else {
    392  1.54       cgd 		strncpy(cpu_model, cpu_fn_switch->family, sizeof cpu_model - 1);
    393  1.54       cgd 		strcat(cpu_model, " family");		/* XXX */
    394  1.54       cgd 	}
    395  1.29       cgd 	cpu_model[sizeof cpu_model - 1] = '\0';
    396   1.1       cgd 
    397  1.17       cgd #if NLE_IOASIC > 0
    398   1.1       cgd 	/*
    399   1.1       cgd 	 * Grab 128K at the top of physical memory for the lance chip
    400   1.1       cgd 	 * on machines where it does dma through the I/O ASIC.
    401   1.1       cgd 	 * It must be physically contiguous and aligned on a 128K boundary.
    402  1.17       cgd 	 *
    403  1.17       cgd 	 * Note that since this is conditional on the presence of
    404  1.17       cgd 	 * IOASIC-attached 'le' units in the kernel config, the
    405  1.17       cgd 	 * message buffer may move on these systems.  This shouldn't
    406  1.17       cgd 	 * be a problem, because once people have a kernel config that
    407  1.17       cgd 	 * they use, they're going to stick with it.
    408   1.1       cgd 	 */
    409   1.1       cgd 	if (cputype == ST_DEC_3000_500 ||
    410   1.1       cgd 	    cputype == ST_DEC_3000_300) {	/* XXX possibly others? */
    411   1.7       cgd 		lastusablepage -= btoc(128 * 1024);
    412  1.32       cgd 		le_iomem =
    413  1.32       cgd 		    (caddr_t)ALPHA_PHYS_TO_K0SEG(ctob(lastusablepage + 1));
    414   1.1       cgd 	}
    415  1.17       cgd #endif /* NLE_IOASIC */
    416   1.1       cgd 
    417   1.1       cgd 	/*
    418   1.1       cgd 	 * Initialize error message buffer (at end of core).
    419   1.1       cgd 	 */
    420   1.7       cgd 	lastusablepage -= btoc(sizeof (struct msgbuf));
    421  1.32       cgd 	msgbufp =
    422  1.32       cgd 	    (struct msgbuf *)ALPHA_PHYS_TO_K0SEG(ctob(lastusablepage + 1));
    423   1.1       cgd 	msgbufmapped = 1;
    424   1.1       cgd 
    425   1.1       cgd 	/*
    426   1.1       cgd 	 * Allocate space for system data structures.
    427   1.1       cgd 	 * The first available kernel virtual address is in "v".
    428   1.1       cgd 	 * As pages of kernel virtual memory are allocated, "v" is incremented.
    429   1.1       cgd 	 *
    430   1.1       cgd 	 * These data structures are allocated here instead of cpu_startup()
    431   1.1       cgd 	 * because physical memory is directly addressable. We don't have
    432   1.1       cgd 	 * to map these into virtual address space.
    433   1.1       cgd 	 */
    434   1.1       cgd #define valloc(name, type, num) \
    435  1.12       cgd 	    (name) = (type *)v; v = (caddr_t)ALIGN((name)+(num))
    436   1.1       cgd #define valloclim(name, type, num, lim) \
    437  1.12       cgd 	    (name) = (type *)v; v = (caddr_t)ALIGN((lim) = ((name)+(num)))
    438   1.1       cgd #ifdef REAL_CLISTS
    439   1.1       cgd 	valloc(cfree, struct cblock, nclist);
    440   1.1       cgd #endif
    441   1.1       cgd 	valloc(callout, struct callout, ncallout);
    442   1.1       cgd 	valloc(swapmap, struct map, nswapmap = maxproc * 2);
    443   1.1       cgd #ifdef SYSVSHM
    444   1.1       cgd 	valloc(shmsegs, struct shmid_ds, shminfo.shmmni);
    445   1.1       cgd #endif
    446   1.1       cgd #ifdef SYSVSEM
    447   1.1       cgd 	valloc(sema, struct semid_ds, seminfo.semmni);
    448   1.1       cgd 	valloc(sem, struct sem, seminfo.semmns);
    449   1.1       cgd 	/* This is pretty disgusting! */
    450   1.1       cgd 	valloc(semu, int, (seminfo.semmnu * seminfo.semusz) / sizeof(int));
    451   1.1       cgd #endif
    452   1.1       cgd #ifdef SYSVMSG
    453   1.1       cgd 	valloc(msgpool, char, msginfo.msgmax);
    454   1.1       cgd 	valloc(msgmaps, struct msgmap, msginfo.msgseg);
    455   1.1       cgd 	valloc(msghdrs, struct msg, msginfo.msgtql);
    456   1.1       cgd 	valloc(msqids, struct msqid_ds, msginfo.msgmni);
    457   1.1       cgd #endif
    458   1.1       cgd 
    459   1.1       cgd 	/*
    460   1.1       cgd 	 * Determine how many buffers to allocate.
    461  1.31       cgd 	 * We allocate 10% of memory for buffer space.  Insure a
    462   1.1       cgd 	 * minimum of 16 buffers.  We allocate 1/2 as many swap buffer
    463   1.1       cgd 	 * headers as file i/o buffers.
    464   1.1       cgd 	 */
    465   1.1       cgd 	if (bufpages == 0)
    466  1.31       cgd 		bufpages = (physmem * 10) / (CLSIZE * 100);
    467   1.1       cgd 	if (nbuf == 0) {
    468   1.1       cgd 		nbuf = bufpages;
    469   1.1       cgd 		if (nbuf < 16)
    470   1.1       cgd 			nbuf = 16;
    471   1.1       cgd 	}
    472   1.1       cgd 	if (nswbuf == 0) {
    473   1.1       cgd 		nswbuf = (nbuf / 2) &~ 1;	/* force even */
    474   1.1       cgd 		if (nswbuf > 256)
    475   1.1       cgd 			nswbuf = 256;		/* sanity */
    476   1.1       cgd 	}
    477   1.1       cgd 	valloc(swbuf, struct buf, nswbuf);
    478   1.1       cgd 	valloc(buf, struct buf, nbuf);
    479   1.1       cgd 
    480   1.1       cgd 	/*
    481   1.1       cgd 	 * Clear allocated memory.
    482   1.1       cgd 	 */
    483   1.1       cgd 	bzero(start, v - start);
    484   1.1       cgd 
    485   1.1       cgd 	/*
    486   1.1       cgd 	 * Initialize the virtual memory system, and set the
    487   1.1       cgd 	 * page table base register in proc 0's PCB.
    488   1.1       cgd 	 */
    489  1.40       cgd #ifndef NEW_PMAP
    490  1.32       cgd 	pmap_bootstrap((vm_offset_t)v, ALPHA_PHYS_TO_K0SEG(ptb << PGSHIFT));
    491  1.40       cgd #else
    492  1.40       cgd 	pmap_bootstrap((vm_offset_t)v, ALPHA_PHYS_TO_K0SEG(ptb << PGSHIFT),
    493  1.40       cgd 	    hwrpb->rpb_max_asn);
    494  1.40       cgd #endif
    495   1.1       cgd 
    496   1.1       cgd 	/*
    497   1.3       cgd 	 * Initialize the rest of proc 0's PCB, and cache its physical
    498   1.3       cgd 	 * address.
    499   1.3       cgd 	 */
    500   1.3       cgd 	proc0.p_md.md_pcbpaddr =
    501  1.32       cgd 	    (struct pcb *)ALPHA_K0SEG_TO_PHYS((vm_offset_t)&proc0paddr->u_pcb);
    502   1.3       cgd 
    503   1.3       cgd 	/*
    504   1.3       cgd 	 * Set the kernel sp, reserving space for an (empty) trapframe,
    505   1.3       cgd 	 * and make proc0's trapframe pointer point to it for sanity.
    506   1.3       cgd 	 */
    507  1.33       cgd 	proc0paddr->u_pcb.pcb_hw.apcb_ksp =
    508   1.3       cgd 	    (u_int64_t)proc0paddr + USPACE - sizeof(struct trapframe);
    509  1.33       cgd 	proc0.p_md.md_tf = (struct trapframe *)proc0paddr->u_pcb.pcb_hw.apcb_ksp;
    510  1.38       cgd 
    511  1.40       cgd #ifdef NEW_PMAP
    512  1.40       cgd 	pmap_activate(kernel_pmap, &proc0paddr->u_pcb.pcb_hw, 0);
    513  1.38       cgd #endif
    514   1.1       cgd 
    515   1.1       cgd 	/*
    516  1.25       cgd 	 * Look at arguments passed to us and compute boothowto.
    517   1.8       cgd 	 */
    518  1.25       cgd 	prom_getenv(PROM_E_BOOTED_OSFLAGS, boot_flags, sizeof(boot_flags));
    519  1.25       cgd #if 0
    520  1.46  christos 	printf("boot flags = \"%s\"\n", boot_flags);
    521  1.25       cgd #endif
    522   1.1       cgd 
    523   1.8       cgd 	boothowto = RB_SINGLE;
    524   1.1       cgd #ifdef KADB
    525   1.1       cgd 	boothowto |= RB_KDB;
    526   1.1       cgd #endif
    527   1.8       cgd 	for (p = boot_flags; p && *p != '\0'; p++) {
    528  1.26       cgd 		/*
    529  1.26       cgd 		 * Note that we'd really like to differentiate case here,
    530  1.26       cgd 		 * but the Alpha AXP Architecture Reference Manual
    531  1.26       cgd 		 * says that we shouldn't.
    532  1.26       cgd 		 */
    533   1.8       cgd 		switch (*p) {
    534  1.26       cgd 		case 'a': /* autoboot */
    535  1.26       cgd 		case 'A':
    536  1.26       cgd 			boothowto &= ~RB_SINGLE;
    537  1.21       cgd 			break;
    538  1.21       cgd 
    539  1.43       cgd #ifdef DEBUG
    540  1.43       cgd 		case 'c': /* crash dump immediately after autoconfig */
    541  1.43       cgd 		case 'C':
    542  1.43       cgd 			boothowto |= RB_DUMP;
    543  1.43       cgd 			break;
    544  1.43       cgd #endif
    545  1.43       cgd 
    546  1.36       cgd 		case 'h': /* always halt, never reboot */
    547  1.36       cgd 		case 'H':
    548  1.36       cgd 			boothowto |= RB_HALT;
    549   1.8       cgd 			break;
    550   1.8       cgd 
    551  1.21       cgd #if 0
    552   1.8       cgd 		case 'm': /* mini root present in memory */
    553  1.26       cgd 		case 'M':
    554   1.8       cgd 			boothowto |= RB_MINIROOT;
    555   1.8       cgd 			break;
    556  1.21       cgd #endif
    557  1.36       cgd 
    558  1.36       cgd 		case 'n': /* askname */
    559  1.36       cgd 		case 'N':
    560  1.36       cgd 			boothowto |= RB_ASKNAME;
    561  1.36       cgd 			break;
    562   1.1       cgd 		}
    563   1.1       cgd 	}
    564   1.1       cgd 
    565   1.7       cgd 	/*
    566   1.7       cgd 	 * Figure out the number of cpus in the box, from RPB fields.
    567   1.7       cgd 	 * Really.  We mean it.
    568   1.7       cgd 	 */
    569   1.7       cgd 	for (i = 0; i < hwrpb->rpb_pcs_cnt; i++) {
    570   1.7       cgd 		struct pcs *pcsp;
    571   1.7       cgd 
    572   1.7       cgd 		pcsp = (struct pcs *)((char *)hwrpb + hwrpb->rpb_pcs_off +
    573   1.7       cgd 		    (i * hwrpb->rpb_pcs_size));
    574   1.7       cgd 		if ((pcsp->pcs_flags & PCS_PP) != 0)
    575   1.7       cgd 			ncpus++;
    576   1.7       cgd 	}
    577   1.1       cgd }
    578   1.1       cgd 
    579  1.18       cgd void
    580   1.1       cgd consinit()
    581   1.1       cgd {
    582   1.1       cgd 
    583  1.54       cgd 	(*cpu_fn_switch->cons_init)();
    584   1.1       cgd 	pmap_unmap_prom();
    585   1.1       cgd }
    586   1.1       cgd 
    587  1.18       cgd void
    588   1.1       cgd cpu_startup()
    589   1.1       cgd {
    590   1.1       cgd 	register unsigned i;
    591   1.1       cgd 	int base, residual;
    592   1.1       cgd 	vm_offset_t minaddr, maxaddr;
    593   1.1       cgd 	vm_size_t size;
    594  1.40       cgd #if defined(DEBUG)
    595   1.1       cgd 	extern int pmapdebug;
    596   1.1       cgd 	int opmapdebug = pmapdebug;
    597   1.1       cgd 
    598   1.1       cgd 	pmapdebug = 0;
    599   1.1       cgd #endif
    600   1.1       cgd 
    601   1.1       cgd 	/*
    602   1.1       cgd 	 * Good {morning,afternoon,evening,night}.
    603   1.1       cgd 	 */
    604  1.46  christos 	printf(version);
    605   1.1       cgd 	identifycpu();
    606  1.46  christos 	printf("real mem = %d (%d reserved for PROM, %d used by NetBSD)\n",
    607   1.7       cgd 	    ctob(totalphysmem), ctob(resvmem), ctob(physmem));
    608   1.7       cgd 	if (unusedmem)
    609  1.46  christos 		printf("WARNING: unused memory = %d bytes\n", ctob(unusedmem));
    610   1.7       cgd 	if (unknownmem)
    611  1.46  christos 		printf("WARNING: %d bytes of memory with unknown purpose\n",
    612   1.7       cgd 		    ctob(unknownmem));
    613   1.1       cgd 
    614   1.1       cgd 	/*
    615   1.1       cgd 	 * Allocate virtual address space for file I/O buffers.
    616   1.1       cgd 	 * Note they are different than the array of headers, 'buf',
    617   1.1       cgd 	 * and usually occupy more virtual memory than physical.
    618   1.1       cgd 	 */
    619   1.1       cgd 	size = MAXBSIZE * nbuf;
    620   1.1       cgd 	buffer_map = kmem_suballoc(kernel_map, (vm_offset_t *)&buffers,
    621   1.1       cgd 	    &maxaddr, size, TRUE);
    622   1.1       cgd 	minaddr = (vm_offset_t)buffers;
    623   1.1       cgd 	if (vm_map_find(buffer_map, vm_object_allocate(size), (vm_offset_t)0,
    624   1.1       cgd 			&minaddr, size, FALSE) != KERN_SUCCESS)
    625   1.1       cgd 		panic("startup: cannot allocate buffers");
    626   1.1       cgd 	base = bufpages / nbuf;
    627   1.1       cgd 	residual = bufpages % nbuf;
    628   1.1       cgd 	for (i = 0; i < nbuf; i++) {
    629   1.1       cgd 		vm_size_t curbufsize;
    630   1.1       cgd 		vm_offset_t curbuf;
    631   1.1       cgd 
    632   1.1       cgd 		/*
    633   1.1       cgd 		 * First <residual> buffers get (base+1) physical pages
    634   1.1       cgd 		 * allocated for them.  The rest get (base) physical pages.
    635   1.1       cgd 		 *
    636   1.1       cgd 		 * The rest of each buffer occupies virtual space,
    637   1.1       cgd 		 * but has no physical memory allocated for it.
    638   1.1       cgd 		 */
    639   1.1       cgd 		curbuf = (vm_offset_t)buffers + i * MAXBSIZE;
    640   1.1       cgd 		curbufsize = CLBYTES * (i < residual ? base+1 : base);
    641   1.1       cgd 		vm_map_pageable(buffer_map, curbuf, curbuf+curbufsize, FALSE);
    642   1.1       cgd 		vm_map_simplify(buffer_map, curbuf);
    643   1.1       cgd 	}
    644   1.1       cgd 	/*
    645   1.1       cgd 	 * Allocate a submap for exec arguments.  This map effectively
    646   1.1       cgd 	 * limits the number of processes exec'ing at any time.
    647   1.1       cgd 	 */
    648   1.1       cgd 	exec_map = kmem_suballoc(kernel_map, &minaddr, &maxaddr,
    649   1.1       cgd 				 16 * NCARGS, TRUE);
    650   1.1       cgd 
    651   1.1       cgd 	/*
    652   1.1       cgd 	 * Allocate a submap for physio
    653   1.1       cgd 	 */
    654   1.1       cgd 	phys_map = kmem_suballoc(kernel_map, &minaddr, &maxaddr,
    655   1.1       cgd 				 VM_PHYS_SIZE, TRUE);
    656   1.1       cgd 
    657   1.1       cgd 	/*
    658   1.1       cgd 	 * Finally, allocate mbuf pool.  Since mclrefcnt is an off-size
    659   1.1       cgd 	 * we use the more space efficient malloc in place of kmem_alloc.
    660   1.1       cgd 	 */
    661   1.1       cgd 	mclrefcnt = (char *)malloc(NMBCLUSTERS+CLBYTES/MCLBYTES,
    662   1.1       cgd 	    M_MBUF, M_NOWAIT);
    663   1.1       cgd 	bzero(mclrefcnt, NMBCLUSTERS+CLBYTES/MCLBYTES);
    664   1.1       cgd 	mb_map = kmem_suballoc(kernel_map, (vm_offset_t *)&mbutl, &maxaddr,
    665   1.1       cgd 	    VM_MBUF_SIZE, FALSE);
    666   1.1       cgd 	/*
    667   1.1       cgd 	 * Initialize callouts
    668   1.1       cgd 	 */
    669   1.1       cgd 	callfree = callout;
    670   1.1       cgd 	for (i = 1; i < ncallout; i++)
    671   1.1       cgd 		callout[i-1].c_next = &callout[i];
    672   1.1       cgd 	callout[i-1].c_next = NULL;
    673   1.1       cgd 
    674  1.40       cgd #if defined(DEBUG)
    675   1.1       cgd 	pmapdebug = opmapdebug;
    676   1.1       cgd #endif
    677  1.46  christos 	printf("avail mem = %ld\n", (long)ptoa(cnt.v_free_count));
    678  1.46  christos 	printf("using %ld buffers containing %ld bytes of memory\n",
    679   1.1       cgd 		(long)nbuf, (long)(bufpages * CLBYTES));
    680   1.1       cgd 
    681   1.1       cgd 	/*
    682   1.1       cgd 	 * Set up buffers, so they can be used to read disk labels.
    683   1.1       cgd 	 */
    684   1.1       cgd 	bufinit();
    685   1.1       cgd 
    686   1.1       cgd 	/*
    687   1.1       cgd 	 * Configure the system.
    688   1.1       cgd 	 */
    689   1.1       cgd 	configure();
    690  1.48       cgd 
    691  1.48       cgd 	/*
    692  1.48       cgd 	 * Note that bootstrapping is finished, and set the HWRPB up
    693  1.48       cgd 	 * to do restarts.
    694  1.48       cgd 	 */
    695  1.55       cgd 	hwrpb_restart_setup();
    696   1.1       cgd }
    697   1.1       cgd 
    698  1.33       cgd void
    699   1.1       cgd identifycpu()
    700   1.1       cgd {
    701   1.1       cgd 
    702   1.7       cgd 	/*
    703   1.7       cgd 	 * print out CPU identification information.
    704   1.7       cgd 	 */
    705  1.46  christos 	printf("%s, %ldMHz\n", cpu_model,
    706   1.7       cgd 	    hwrpb->rpb_cc_freq / 1000000);	/* XXX true for 21164? */
    707  1.46  christos 	printf("%ld byte page size, %d processor%s.\n",
    708   1.7       cgd 	    hwrpb->rpb_page_size, ncpus, ncpus == 1 ? "" : "s");
    709   1.7       cgd #if 0
    710   1.7       cgd 	/* this isn't defined for any systems that we run on? */
    711  1.46  christos 	printf("serial number 0x%lx 0x%lx\n",
    712   1.1       cgd 	    ((long *)hwrpb->rpb_ssn)[0], ((long *)hwrpb->rpb_ssn)[1]);
    713   1.7       cgd 
    714   1.7       cgd 	/* and these aren't particularly useful! */
    715  1.46  christos 	printf("variation: 0x%lx, revision 0x%lx\n",
    716   1.1       cgd 	    hwrpb->rpb_variation, *(long *)hwrpb->rpb_revision);
    717   1.7       cgd #endif
    718   1.1       cgd }
    719   1.1       cgd 
    720   1.1       cgd int	waittime = -1;
    721   1.7       cgd struct pcb dumppcb;
    722   1.1       cgd 
    723  1.18       cgd void
    724  1.39       mrg boot(howto, bootstr)
    725   1.1       cgd 	int howto;
    726  1.39       mrg 	char *bootstr;
    727   1.1       cgd {
    728   1.1       cgd 	extern int cold;
    729   1.1       cgd 
    730   1.1       cgd 	/* If system is cold, just halt. */
    731   1.1       cgd 	if (cold) {
    732   1.1       cgd 		howto |= RB_HALT;
    733   1.1       cgd 		goto haltsys;
    734   1.1       cgd 	}
    735   1.1       cgd 
    736  1.36       cgd 	/* If "always halt" was specified as a boot flag, obey. */
    737  1.36       cgd 	if ((boothowto & RB_HALT) != 0)
    738  1.36       cgd 		howto |= RB_HALT;
    739  1.36       cgd 
    740   1.7       cgd 	boothowto = howto;
    741   1.7       cgd 	if ((howto & RB_NOSYNC) == 0 && waittime < 0) {
    742   1.1       cgd 		waittime = 0;
    743   1.7       cgd 		vfs_shutdown();
    744   1.1       cgd 		/*
    745   1.1       cgd 		 * If we've been adjusting the clock, the todr
    746   1.1       cgd 		 * will be out of synch; adjust it now.
    747   1.1       cgd 		 */
    748   1.1       cgd 		resettodr();
    749   1.1       cgd 	}
    750   1.1       cgd 
    751   1.1       cgd 	/* Disable interrupts. */
    752   1.1       cgd 	splhigh();
    753   1.1       cgd 
    754   1.7       cgd 	/* If rebooting and a dump is requested do it. */
    755  1.42       cgd #if 0
    756  1.42       cgd 	if ((howto & (RB_DUMP | RB_HALT)) == RB_DUMP)
    757  1.42       cgd #else
    758  1.42       cgd 	if (howto & RB_DUMP)
    759  1.42       cgd #endif
    760   1.1       cgd 		dumpsys();
    761   1.6       cgd 
    762  1.12       cgd haltsys:
    763  1.12       cgd 
    764   1.6       cgd 	/* run any shutdown hooks */
    765   1.6       cgd 	doshutdownhooks();
    766   1.1       cgd 
    767   1.7       cgd #ifdef BOOTKEY
    768  1.46  christos 	printf("hit any key to %s...\n", howto & RB_HALT ? "halt" : "reboot");
    769   1.7       cgd 	cngetc();
    770  1.46  christos 	printf("\n");
    771   1.7       cgd #endif
    772   1.7       cgd 
    773   1.1       cgd 	/* Finally, halt/reboot the system. */
    774  1.46  christos 	printf("%s\n\n", howto & RB_HALT ? "halted." : "rebooting...");
    775   1.1       cgd 	prom_halt(howto & RB_HALT);
    776   1.1       cgd 	/*NOTREACHED*/
    777   1.1       cgd }
    778   1.1       cgd 
    779   1.7       cgd /*
    780   1.7       cgd  * These variables are needed by /sbin/savecore
    781   1.7       cgd  */
    782   1.7       cgd u_long	dumpmag = 0x8fca0101;	/* magic number */
    783   1.7       cgd int 	dumpsize = 0;		/* pages */
    784   1.7       cgd long	dumplo = 0; 		/* blocks */
    785   1.7       cgd 
    786   1.7       cgd /*
    787  1.43       cgd  * cpu_dumpsize: calculate size of machine-dependent kernel core dump headers.
    788  1.43       cgd  */
    789  1.43       cgd int
    790  1.43       cgd cpu_dumpsize()
    791  1.43       cgd {
    792  1.43       cgd 	int size;
    793  1.43       cgd 
    794  1.43       cgd 	size = ALIGN(sizeof(kcore_seg_t)) + ALIGN(sizeof(cpu_kcore_hdr_t));
    795  1.43       cgd 	if (roundup(size, dbtob(1)) != dbtob(1))
    796  1.43       cgd 		return -1;
    797  1.43       cgd 
    798  1.43       cgd 	return (1);
    799  1.43       cgd }
    800  1.43       cgd 
    801  1.43       cgd /*
    802  1.43       cgd  * cpu_dump: dump machine-dependent kernel core dump headers.
    803  1.43       cgd  */
    804  1.43       cgd int
    805  1.43       cgd cpu_dump()
    806  1.43       cgd {
    807  1.43       cgd 	int (*dump) __P((dev_t, daddr_t, caddr_t, size_t));
    808  1.43       cgd 	long buf[dbtob(1) / sizeof (long)];
    809  1.43       cgd 	kcore_seg_t	*segp;
    810  1.43       cgd 	cpu_kcore_hdr_t	*cpuhdrp;
    811  1.43       cgd 
    812  1.43       cgd         dump = bdevsw[major(dumpdev)].d_dump;
    813  1.43       cgd 
    814  1.43       cgd 	segp = (kcore_seg_t *)buf;
    815  1.43       cgd 	cpuhdrp =
    816  1.43       cgd 	    (cpu_kcore_hdr_t *)&buf[ALIGN(sizeof(*segp)) / sizeof (long)];
    817  1.43       cgd 
    818  1.43       cgd 	/*
    819  1.43       cgd 	 * Generate a segment header.
    820  1.43       cgd 	 */
    821  1.43       cgd 	CORE_SETMAGIC(*segp, KCORE_MAGIC, MID_MACHINE, CORE_CPU);
    822  1.43       cgd 	segp->c_size = dbtob(1) - ALIGN(sizeof(*segp));
    823  1.43       cgd 
    824  1.43       cgd 	/*
    825  1.43       cgd 	 * Add the machine-dependent header info
    826  1.43       cgd 	 */
    827  1.44       cgd 	cpuhdrp->lev1map_pa = ALPHA_K0SEG_TO_PHYS((vm_offset_t)Lev1map);
    828  1.43       cgd 	cpuhdrp->page_size = PAGE_SIZE;
    829  1.43       cgd 	cpuhdrp->core_seg.start = ctob(firstusablepage);
    830  1.43       cgd 	cpuhdrp->core_seg.size = ctob(physmem);
    831  1.43       cgd 
    832  1.43       cgd 	return (dump(dumpdev, dumplo, (caddr_t)buf, dbtob(1)));
    833  1.43       cgd }
    834  1.43       cgd 
    835  1.43       cgd /*
    836   1.7       cgd  * This is called by configure to set dumplo and dumpsize.
    837   1.7       cgd  * Dumps always skip the first CLBYTES of disk space
    838   1.7       cgd  * in case there might be a disk label stored there.
    839   1.7       cgd  * If there is extra space, put dump at the end to
    840   1.7       cgd  * reduce the chance that swapping trashes it.
    841   1.7       cgd  */
    842   1.7       cgd void
    843   1.7       cgd dumpconf()
    844   1.7       cgd {
    845  1.43       cgd 	int nblks, dumpblks;	/* size of dump area */
    846   1.7       cgd 	int maj;
    847   1.7       cgd 
    848   1.7       cgd 	if (dumpdev == NODEV)
    849  1.43       cgd 		goto bad;
    850   1.7       cgd 	maj = major(dumpdev);
    851   1.7       cgd 	if (maj < 0 || maj >= nblkdev)
    852   1.7       cgd 		panic("dumpconf: bad dumpdev=0x%x", dumpdev);
    853   1.7       cgd 	if (bdevsw[maj].d_psize == NULL)
    854  1.43       cgd 		goto bad;
    855   1.7       cgd 	nblks = (*bdevsw[maj].d_psize)(dumpdev);
    856   1.7       cgd 	if (nblks <= ctod(1))
    857  1.43       cgd 		goto bad;
    858  1.43       cgd 
    859  1.43       cgd 	dumpblks = cpu_dumpsize();
    860  1.43       cgd 	if (dumpblks < 0)
    861  1.43       cgd 		goto bad;
    862  1.43       cgd 	dumpblks += ctod(physmem);
    863  1.43       cgd 
    864  1.43       cgd 	/* If dump won't fit (incl. room for possible label), punt. */
    865  1.43       cgd 	if (dumpblks > (nblks - ctod(1)))
    866  1.43       cgd 		goto bad;
    867  1.43       cgd 
    868  1.43       cgd 	/* Put dump at end of partition */
    869  1.43       cgd 	dumplo = nblks - dumpblks;
    870   1.7       cgd 
    871  1.43       cgd 	/* dumpsize is in page units, and doesn't include headers. */
    872   1.7       cgd 	dumpsize = physmem;
    873  1.43       cgd 	return;
    874   1.7       cgd 
    875  1.43       cgd bad:
    876  1.43       cgd 	dumpsize = 0;
    877  1.43       cgd 	return;
    878   1.7       cgd }
    879   1.7       cgd 
    880   1.7       cgd /*
    881  1.42       cgd  * Dump the kernel's image to the swap partition.
    882   1.7       cgd  */
    883  1.42       cgd #define	BYTES_PER_DUMP	NBPG
    884  1.42       cgd 
    885   1.7       cgd void
    886   1.7       cgd dumpsys()
    887   1.7       cgd {
    888  1.42       cgd 	unsigned bytes, i, n;
    889  1.42       cgd 	int maddr, psize;
    890  1.42       cgd 	daddr_t blkno;
    891  1.42       cgd 	int (*dump) __P((dev_t, daddr_t, caddr_t, size_t));
    892  1.42       cgd 	int error;
    893  1.42       cgd 
    894  1.42       cgd 	/* Save registers. */
    895  1.42       cgd 	savectx(&dumppcb);
    896   1.7       cgd 
    897  1.42       cgd 	msgbufmapped = 0;	/* don't record dump msgs in msgbuf */
    898   1.7       cgd 	if (dumpdev == NODEV)
    899   1.7       cgd 		return;
    900  1.42       cgd 
    901  1.42       cgd 	/*
    902  1.42       cgd 	 * For dumps during autoconfiguration,
    903  1.42       cgd 	 * if dump device has already configured...
    904  1.42       cgd 	 */
    905  1.42       cgd 	if (dumpsize == 0)
    906   1.7       cgd 		dumpconf();
    907  1.47       cgd 	if (dumplo <= 0) {
    908  1.46  christos 		printf("\ndump to dev %x not possible\n", dumpdev);
    909  1.42       cgd 		return;
    910  1.43       cgd 	}
    911  1.46  christos 	printf("\ndumping to dev %x, offset %ld\n", dumpdev, dumplo);
    912   1.7       cgd 
    913  1.42       cgd 	psize = (*bdevsw[major(dumpdev)].d_psize)(dumpdev);
    914  1.46  christos 	printf("dump ");
    915  1.42       cgd 	if (psize == -1) {
    916  1.46  christos 		printf("area unavailable\n");
    917  1.42       cgd 		return;
    918  1.42       cgd 	}
    919  1.42       cgd 
    920  1.42       cgd 	/* XXX should purge all outstanding keystrokes. */
    921  1.42       cgd 
    922  1.43       cgd 	if ((error = cpu_dump()) != 0)
    923  1.43       cgd 		goto err;
    924  1.43       cgd 
    925  1.43       cgd 	bytes = ctob(physmem);
    926  1.42       cgd 	maddr = ctob(firstusablepage);
    927  1.43       cgd 	blkno = dumplo + cpu_dumpsize();
    928  1.42       cgd 	dump = bdevsw[major(dumpdev)].d_dump;
    929  1.42       cgd 	error = 0;
    930  1.42       cgd 	for (i = 0; i < bytes; i += n) {
    931  1.42       cgd 
    932  1.42       cgd 		/* Print out how many MBs we to go. */
    933  1.42       cgd 		n = bytes - i;
    934  1.42       cgd 		if (n && (n % (1024*1024)) == 0)
    935  1.46  christos 			printf("%d ", n / (1024 * 1024));
    936  1.42       cgd 
    937  1.42       cgd 		/* Limit size for next transfer. */
    938  1.42       cgd 		if (n > BYTES_PER_DUMP)
    939  1.42       cgd 			n =  BYTES_PER_DUMP;
    940  1.42       cgd 
    941  1.42       cgd 		error = (*dump)(dumpdev, blkno,
    942  1.42       cgd 		    (caddr_t)ALPHA_PHYS_TO_K0SEG(maddr), n);
    943  1.42       cgd 		if (error)
    944  1.42       cgd 			break;
    945  1.42       cgd 		maddr += n;
    946  1.42       cgd 		blkno += btodb(n);			/* XXX? */
    947  1.42       cgd 
    948  1.42       cgd 		/* XXX should look for keystrokes, to cancel. */
    949  1.42       cgd 	}
    950  1.42       cgd 
    951  1.43       cgd err:
    952  1.42       cgd 	switch (error) {
    953   1.7       cgd 
    954   1.7       cgd 	case ENXIO:
    955  1.46  christos 		printf("device bad\n");
    956   1.7       cgd 		break;
    957   1.7       cgd 
    958   1.7       cgd 	case EFAULT:
    959  1.46  christos 		printf("device not ready\n");
    960   1.7       cgd 		break;
    961   1.7       cgd 
    962   1.7       cgd 	case EINVAL:
    963  1.46  christos 		printf("area improper\n");
    964   1.7       cgd 		break;
    965   1.7       cgd 
    966   1.7       cgd 	case EIO:
    967  1.46  christos 		printf("i/o error\n");
    968   1.7       cgd 		break;
    969   1.7       cgd 
    970   1.7       cgd 	case EINTR:
    971  1.46  christos 		printf("aborted from console\n");
    972   1.7       cgd 		break;
    973   1.7       cgd 
    974  1.42       cgd 	case 0:
    975  1.46  christos 		printf("succeeded\n");
    976  1.42       cgd 		break;
    977  1.42       cgd 
    978   1.7       cgd 	default:
    979  1.46  christos 		printf("error %d\n", error);
    980   1.7       cgd 		break;
    981   1.7       cgd 	}
    982  1.46  christos 	printf("\n\n");
    983   1.7       cgd 	delay(1000);
    984   1.7       cgd }
    985   1.7       cgd 
    986   1.1       cgd void
    987   1.1       cgd frametoreg(framep, regp)
    988   1.1       cgd 	struct trapframe *framep;
    989   1.1       cgd 	struct reg *regp;
    990   1.1       cgd {
    991   1.1       cgd 
    992   1.1       cgd 	regp->r_regs[R_V0] = framep->tf_regs[FRAME_V0];
    993   1.1       cgd 	regp->r_regs[R_T0] = framep->tf_regs[FRAME_T0];
    994   1.1       cgd 	regp->r_regs[R_T1] = framep->tf_regs[FRAME_T1];
    995   1.1       cgd 	regp->r_regs[R_T2] = framep->tf_regs[FRAME_T2];
    996   1.1       cgd 	regp->r_regs[R_T3] = framep->tf_regs[FRAME_T3];
    997   1.1       cgd 	regp->r_regs[R_T4] = framep->tf_regs[FRAME_T4];
    998   1.1       cgd 	regp->r_regs[R_T5] = framep->tf_regs[FRAME_T5];
    999   1.1       cgd 	regp->r_regs[R_T6] = framep->tf_regs[FRAME_T6];
   1000   1.1       cgd 	regp->r_regs[R_T7] = framep->tf_regs[FRAME_T7];
   1001   1.1       cgd 	regp->r_regs[R_S0] = framep->tf_regs[FRAME_S0];
   1002   1.1       cgd 	regp->r_regs[R_S1] = framep->tf_regs[FRAME_S1];
   1003   1.1       cgd 	regp->r_regs[R_S2] = framep->tf_regs[FRAME_S2];
   1004   1.1       cgd 	regp->r_regs[R_S3] = framep->tf_regs[FRAME_S3];
   1005   1.1       cgd 	regp->r_regs[R_S4] = framep->tf_regs[FRAME_S4];
   1006   1.1       cgd 	regp->r_regs[R_S5] = framep->tf_regs[FRAME_S5];
   1007   1.1       cgd 	regp->r_regs[R_S6] = framep->tf_regs[FRAME_S6];
   1008  1.34       cgd 	regp->r_regs[R_A0] = framep->tf_regs[FRAME_A0];
   1009  1.34       cgd 	regp->r_regs[R_A1] = framep->tf_regs[FRAME_A1];
   1010  1.34       cgd 	regp->r_regs[R_A2] = framep->tf_regs[FRAME_A2];
   1011   1.1       cgd 	regp->r_regs[R_A3] = framep->tf_regs[FRAME_A3];
   1012   1.1       cgd 	regp->r_regs[R_A4] = framep->tf_regs[FRAME_A4];
   1013   1.1       cgd 	regp->r_regs[R_A5] = framep->tf_regs[FRAME_A5];
   1014   1.1       cgd 	regp->r_regs[R_T8] = framep->tf_regs[FRAME_T8];
   1015   1.1       cgd 	regp->r_regs[R_T9] = framep->tf_regs[FRAME_T9];
   1016   1.1       cgd 	regp->r_regs[R_T10] = framep->tf_regs[FRAME_T10];
   1017   1.1       cgd 	regp->r_regs[R_T11] = framep->tf_regs[FRAME_T11];
   1018   1.1       cgd 	regp->r_regs[R_RA] = framep->tf_regs[FRAME_RA];
   1019   1.1       cgd 	regp->r_regs[R_T12] = framep->tf_regs[FRAME_T12];
   1020   1.1       cgd 	regp->r_regs[R_AT] = framep->tf_regs[FRAME_AT];
   1021  1.34       cgd 	regp->r_regs[R_GP] = framep->tf_regs[FRAME_GP];
   1022  1.35       cgd 	/* regp->r_regs[R_SP] = framep->tf_regs[FRAME_SP]; XXX */
   1023   1.1       cgd 	regp->r_regs[R_ZERO] = 0;
   1024   1.1       cgd }
   1025   1.1       cgd 
   1026   1.1       cgd void
   1027   1.1       cgd regtoframe(regp, framep)
   1028   1.1       cgd 	struct reg *regp;
   1029   1.1       cgd 	struct trapframe *framep;
   1030   1.1       cgd {
   1031   1.1       cgd 
   1032   1.1       cgd 	framep->tf_regs[FRAME_V0] = regp->r_regs[R_V0];
   1033   1.1       cgd 	framep->tf_regs[FRAME_T0] = regp->r_regs[R_T0];
   1034   1.1       cgd 	framep->tf_regs[FRAME_T1] = regp->r_regs[R_T1];
   1035   1.1       cgd 	framep->tf_regs[FRAME_T2] = regp->r_regs[R_T2];
   1036   1.1       cgd 	framep->tf_regs[FRAME_T3] = regp->r_regs[R_T3];
   1037   1.1       cgd 	framep->tf_regs[FRAME_T4] = regp->r_regs[R_T4];
   1038   1.1       cgd 	framep->tf_regs[FRAME_T5] = regp->r_regs[R_T5];
   1039   1.1       cgd 	framep->tf_regs[FRAME_T6] = regp->r_regs[R_T6];
   1040   1.1       cgd 	framep->tf_regs[FRAME_T7] = regp->r_regs[R_T7];
   1041   1.1       cgd 	framep->tf_regs[FRAME_S0] = regp->r_regs[R_S0];
   1042   1.1       cgd 	framep->tf_regs[FRAME_S1] = regp->r_regs[R_S1];
   1043   1.1       cgd 	framep->tf_regs[FRAME_S2] = regp->r_regs[R_S2];
   1044   1.1       cgd 	framep->tf_regs[FRAME_S3] = regp->r_regs[R_S3];
   1045   1.1       cgd 	framep->tf_regs[FRAME_S4] = regp->r_regs[R_S4];
   1046   1.1       cgd 	framep->tf_regs[FRAME_S5] = regp->r_regs[R_S5];
   1047   1.1       cgd 	framep->tf_regs[FRAME_S6] = regp->r_regs[R_S6];
   1048  1.34       cgd 	framep->tf_regs[FRAME_A0] = regp->r_regs[R_A0];
   1049  1.34       cgd 	framep->tf_regs[FRAME_A1] = regp->r_regs[R_A1];
   1050  1.34       cgd 	framep->tf_regs[FRAME_A2] = regp->r_regs[R_A2];
   1051   1.1       cgd 	framep->tf_regs[FRAME_A3] = regp->r_regs[R_A3];
   1052   1.1       cgd 	framep->tf_regs[FRAME_A4] = regp->r_regs[R_A4];
   1053   1.1       cgd 	framep->tf_regs[FRAME_A5] = regp->r_regs[R_A5];
   1054   1.1       cgd 	framep->tf_regs[FRAME_T8] = regp->r_regs[R_T8];
   1055   1.1       cgd 	framep->tf_regs[FRAME_T9] = regp->r_regs[R_T9];
   1056   1.1       cgd 	framep->tf_regs[FRAME_T10] = regp->r_regs[R_T10];
   1057   1.1       cgd 	framep->tf_regs[FRAME_T11] = regp->r_regs[R_T11];
   1058   1.1       cgd 	framep->tf_regs[FRAME_RA] = regp->r_regs[R_RA];
   1059   1.1       cgd 	framep->tf_regs[FRAME_T12] = regp->r_regs[R_T12];
   1060   1.1       cgd 	framep->tf_regs[FRAME_AT] = regp->r_regs[R_AT];
   1061  1.34       cgd 	framep->tf_regs[FRAME_GP] = regp->r_regs[R_GP];
   1062  1.35       cgd 	/* framep->tf_regs[FRAME_SP] = regp->r_regs[R_SP]; XXX */
   1063   1.1       cgd 	/* ??? = regp->r_regs[R_ZERO]; */
   1064   1.1       cgd }
   1065   1.1       cgd 
   1066   1.1       cgd void
   1067   1.1       cgd printregs(regp)
   1068   1.1       cgd 	struct reg *regp;
   1069   1.1       cgd {
   1070   1.1       cgd 	int i;
   1071   1.1       cgd 
   1072   1.1       cgd 	for (i = 0; i < 32; i++)
   1073  1.46  christos 		printf("R%d:\t0x%016lx%s", i, regp->r_regs[i],
   1074   1.1       cgd 		   i & 1 ? "\n" : "\t");
   1075   1.1       cgd }
   1076   1.1       cgd 
   1077   1.1       cgd void
   1078   1.1       cgd regdump(framep)
   1079   1.1       cgd 	struct trapframe *framep;
   1080   1.1       cgd {
   1081   1.1       cgd 	struct reg reg;
   1082   1.1       cgd 
   1083   1.1       cgd 	frametoreg(framep, &reg);
   1084  1.35       cgd 	reg.r_regs[R_SP] = alpha_pal_rdusp();
   1085  1.35       cgd 
   1086  1.46  christos 	printf("REGISTERS:\n");
   1087   1.1       cgd 	printregs(&reg);
   1088   1.1       cgd }
   1089   1.1       cgd 
   1090   1.1       cgd #ifdef DEBUG
   1091   1.1       cgd int sigdebug = 0;
   1092   1.1       cgd int sigpid = 0;
   1093   1.1       cgd #define	SDB_FOLLOW	0x01
   1094   1.1       cgd #define	SDB_KSTACK	0x02
   1095   1.1       cgd #endif
   1096   1.1       cgd 
   1097   1.1       cgd /*
   1098   1.1       cgd  * Send an interrupt to process.
   1099   1.1       cgd  */
   1100   1.1       cgd void
   1101   1.1       cgd sendsig(catcher, sig, mask, code)
   1102   1.1       cgd 	sig_t catcher;
   1103   1.1       cgd 	int sig, mask;
   1104   1.1       cgd 	u_long code;
   1105   1.1       cgd {
   1106   1.1       cgd 	struct proc *p = curproc;
   1107   1.1       cgd 	struct sigcontext *scp, ksc;
   1108   1.1       cgd 	struct trapframe *frame;
   1109   1.1       cgd 	struct sigacts *psp = p->p_sigacts;
   1110   1.1       cgd 	int oonstack, fsize, rndfsize;
   1111   1.1       cgd 	extern char sigcode[], esigcode[];
   1112   1.1       cgd 	extern struct proc *fpcurproc;
   1113   1.1       cgd 
   1114   1.1       cgd 	frame = p->p_md.md_tf;
   1115   1.9   mycroft 	oonstack = psp->ps_sigstk.ss_flags & SS_ONSTACK;
   1116   1.1       cgd 	fsize = sizeof ksc;
   1117   1.1       cgd 	rndfsize = ((fsize + 15) / 16) * 16;
   1118   1.1       cgd 	/*
   1119   1.1       cgd 	 * Allocate and validate space for the signal handler
   1120   1.1       cgd 	 * context. Note that if the stack is in P0 space, the
   1121   1.1       cgd 	 * call to grow() is a nop, and the useracc() check
   1122   1.1       cgd 	 * will fail if the process has not already allocated
   1123   1.1       cgd 	 * the space with a `brk'.
   1124   1.1       cgd 	 */
   1125   1.1       cgd 	if ((psp->ps_flags & SAS_ALTSTACK) && !oonstack &&
   1126   1.1       cgd 	    (psp->ps_sigonstack & sigmask(sig))) {
   1127  1.14       jtc 		scp = (struct sigcontext *)(psp->ps_sigstk.ss_sp +
   1128   1.1       cgd 		    psp->ps_sigstk.ss_size - rndfsize);
   1129   1.9   mycroft 		psp->ps_sigstk.ss_flags |= SS_ONSTACK;
   1130   1.1       cgd 	} else
   1131  1.35       cgd 		scp = (struct sigcontext *)(alpha_pal_rdusp() - rndfsize);
   1132   1.1       cgd 	if ((u_long)scp <= USRSTACK - ctob(p->p_vmspace->vm_ssize))
   1133   1.1       cgd 		(void)grow(p, (u_long)scp);
   1134   1.1       cgd #ifdef DEBUG
   1135   1.1       cgd 	if ((sigdebug & SDB_KSTACK) && p->p_pid == sigpid)
   1136  1.46  christos 		printf("sendsig(%d): sig %d ssp %p usp %p\n", p->p_pid,
   1137   1.1       cgd 		    sig, &oonstack, scp);
   1138   1.1       cgd #endif
   1139   1.1       cgd 	if (useracc((caddr_t)scp, fsize, B_WRITE) == 0) {
   1140   1.1       cgd #ifdef DEBUG
   1141   1.1       cgd 		if ((sigdebug & SDB_KSTACK) && p->p_pid == sigpid)
   1142  1.46  christos 			printf("sendsig(%d): useracc failed on sig %d\n",
   1143   1.1       cgd 			    p->p_pid, sig);
   1144   1.1       cgd #endif
   1145   1.1       cgd 		/*
   1146   1.1       cgd 		 * Process has trashed its stack; give it an illegal
   1147   1.1       cgd 		 * instruction to halt it in its tracks.
   1148   1.1       cgd 		 */
   1149   1.1       cgd 		SIGACTION(p, SIGILL) = SIG_DFL;
   1150   1.1       cgd 		sig = sigmask(SIGILL);
   1151   1.1       cgd 		p->p_sigignore &= ~sig;
   1152   1.1       cgd 		p->p_sigcatch &= ~sig;
   1153   1.1       cgd 		p->p_sigmask &= ~sig;
   1154   1.1       cgd 		psignal(p, SIGILL);
   1155   1.1       cgd 		return;
   1156   1.1       cgd 	}
   1157   1.1       cgd 
   1158   1.1       cgd 	/*
   1159   1.1       cgd 	 * Build the signal context to be used by sigreturn.
   1160   1.1       cgd 	 */
   1161   1.1       cgd 	ksc.sc_onstack = oonstack;
   1162   1.1       cgd 	ksc.sc_mask = mask;
   1163  1.34       cgd 	ksc.sc_pc = frame->tf_regs[FRAME_PC];
   1164  1.34       cgd 	ksc.sc_ps = frame->tf_regs[FRAME_PS];
   1165   1.1       cgd 
   1166   1.1       cgd 	/* copy the registers. */
   1167   1.1       cgd 	frametoreg(frame, (struct reg *)ksc.sc_regs);
   1168   1.1       cgd 	ksc.sc_regs[R_ZERO] = 0xACEDBADE;		/* magic number */
   1169  1.35       cgd 	ksc.sc_regs[R_SP] = alpha_pal_rdusp();
   1170   1.1       cgd 
   1171   1.1       cgd 	/* save the floating-point state, if necessary, then copy it. */
   1172   1.1       cgd 	if (p == fpcurproc) {
   1173  1.32       cgd 		alpha_pal_wrfen(1);
   1174   1.1       cgd 		savefpstate(&p->p_addr->u_pcb.pcb_fp);
   1175  1.32       cgd 		alpha_pal_wrfen(0);
   1176   1.1       cgd 		fpcurproc = NULL;
   1177   1.1       cgd 	}
   1178   1.1       cgd 	ksc.sc_ownedfp = p->p_md.md_flags & MDP_FPUSED;
   1179   1.1       cgd 	bcopy(&p->p_addr->u_pcb.pcb_fp, (struct fpreg *)ksc.sc_fpregs,
   1180   1.1       cgd 	    sizeof(struct fpreg));
   1181   1.1       cgd 	ksc.sc_fp_control = 0;					/* XXX ? */
   1182   1.1       cgd 	bzero(ksc.sc_reserved, sizeof ksc.sc_reserved);		/* XXX */
   1183   1.1       cgd 	bzero(ksc.sc_xxx, sizeof ksc.sc_xxx);			/* XXX */
   1184   1.1       cgd 
   1185   1.1       cgd 
   1186   1.1       cgd #ifdef COMPAT_OSF1
   1187   1.1       cgd 	/*
   1188   1.1       cgd 	 * XXX Create an OSF/1-style sigcontext and associated goo.
   1189   1.1       cgd 	 */
   1190   1.1       cgd #endif
   1191   1.1       cgd 
   1192   1.1       cgd 	/*
   1193   1.1       cgd 	 * copy the frame out to userland.
   1194   1.1       cgd 	 */
   1195   1.1       cgd 	(void) copyout((caddr_t)&ksc, (caddr_t)scp, fsize);
   1196   1.1       cgd #ifdef DEBUG
   1197   1.1       cgd 	if (sigdebug & SDB_FOLLOW)
   1198  1.46  christos 		printf("sendsig(%d): sig %d scp %p code %lx\n", p->p_pid, sig,
   1199   1.1       cgd 		    scp, code);
   1200   1.1       cgd #endif
   1201   1.1       cgd 
   1202   1.1       cgd 	/*
   1203   1.1       cgd 	 * Set up the registers to return to sigcode.
   1204   1.1       cgd 	 */
   1205  1.34       cgd 	frame->tf_regs[FRAME_PC] =
   1206  1.34       cgd 	    (u_int64_t)PS_STRINGS - (esigcode - sigcode);
   1207  1.34       cgd 	frame->tf_regs[FRAME_A0] = sig;
   1208  1.34       cgd 	frame->tf_regs[FRAME_A1] = code;
   1209  1.34       cgd 	frame->tf_regs[FRAME_A2] = (u_int64_t)scp;
   1210   1.1       cgd 	frame->tf_regs[FRAME_T12] = (u_int64_t)catcher;		/* t12 is pv */
   1211  1.35       cgd 	alpha_pal_wrusp((unsigned long)scp);
   1212   1.1       cgd 
   1213   1.1       cgd #ifdef DEBUG
   1214   1.1       cgd 	if (sigdebug & SDB_FOLLOW)
   1215  1.46  christos 		printf("sendsig(%d): pc %lx, catcher %lx\n", p->p_pid,
   1216  1.34       cgd 		    frame->tf_regs[FRAME_PC], frame->tf_regs[FRAME_A3]);
   1217   1.1       cgd 	if ((sigdebug & SDB_KSTACK) && p->p_pid == sigpid)
   1218  1.46  christos 		printf("sendsig(%d): sig %d returns\n",
   1219   1.1       cgd 		    p->p_pid, sig);
   1220   1.1       cgd #endif
   1221   1.1       cgd }
   1222   1.1       cgd 
   1223   1.1       cgd /*
   1224   1.1       cgd  * System call to cleanup state after a signal
   1225   1.1       cgd  * has been taken.  Reset signal mask and
   1226   1.1       cgd  * stack state from context left by sendsig (above).
   1227   1.1       cgd  * Return to previous pc and psl as specified by
   1228   1.1       cgd  * context left by sendsig. Check carefully to
   1229   1.1       cgd  * make sure that the user has not modified the
   1230   1.1       cgd  * psl to gain improper priviledges or to cause
   1231   1.1       cgd  * a machine fault.
   1232   1.1       cgd  */
   1233   1.1       cgd /* ARGSUSED */
   1234  1.11   mycroft int
   1235  1.11   mycroft sys_sigreturn(p, v, retval)
   1236   1.1       cgd 	struct proc *p;
   1237  1.10   thorpej 	void *v;
   1238  1.10   thorpej 	register_t *retval;
   1239  1.10   thorpej {
   1240  1.11   mycroft 	struct sys_sigreturn_args /* {
   1241   1.1       cgd 		syscallarg(struct sigcontext *) sigcntxp;
   1242  1.10   thorpej 	} */ *uap = v;
   1243   1.1       cgd 	struct sigcontext *scp, ksc;
   1244   1.1       cgd 	extern struct proc *fpcurproc;
   1245   1.1       cgd 
   1246   1.1       cgd 	scp = SCARG(uap, sigcntxp);
   1247   1.1       cgd #ifdef DEBUG
   1248   1.1       cgd 	if (sigdebug & SDB_FOLLOW)
   1249  1.46  christos 	    printf("sigreturn: pid %d, scp %p\n", p->p_pid, scp);
   1250   1.1       cgd #endif
   1251   1.1       cgd 
   1252   1.1       cgd 	if (ALIGN(scp) != (u_int64_t)scp)
   1253   1.1       cgd 		return (EINVAL);
   1254   1.1       cgd 
   1255   1.1       cgd 	/*
   1256   1.1       cgd 	 * Test and fetch the context structure.
   1257   1.1       cgd 	 * We grab it all at once for speed.
   1258   1.1       cgd 	 */
   1259   1.1       cgd 	if (useracc((caddr_t)scp, sizeof (*scp), B_WRITE) == 0 ||
   1260   1.1       cgd 	    copyin((caddr_t)scp, (caddr_t)&ksc, sizeof ksc))
   1261   1.1       cgd 		return (EINVAL);
   1262   1.1       cgd 
   1263   1.1       cgd 	if (ksc.sc_regs[R_ZERO] != 0xACEDBADE)		/* magic number */
   1264   1.1       cgd 		return (EINVAL);
   1265   1.1       cgd 	/*
   1266   1.1       cgd 	 * Restore the user-supplied information
   1267   1.1       cgd 	 */
   1268   1.1       cgd 	if (ksc.sc_onstack)
   1269   1.9   mycroft 		p->p_sigacts->ps_sigstk.ss_flags |= SS_ONSTACK;
   1270   1.1       cgd 	else
   1271   1.9   mycroft 		p->p_sigacts->ps_sigstk.ss_flags &= ~SS_ONSTACK;
   1272   1.1       cgd 	p->p_sigmask = ksc.sc_mask &~ sigcantmask;
   1273   1.1       cgd 
   1274  1.34       cgd 	p->p_md.md_tf->tf_regs[FRAME_PC] = ksc.sc_pc;
   1275  1.34       cgd 	p->p_md.md_tf->tf_regs[FRAME_PS] =
   1276  1.32       cgd 	    (ksc.sc_ps | ALPHA_PSL_USERSET) & ~ALPHA_PSL_USERCLR;
   1277   1.1       cgd 
   1278   1.1       cgd 	regtoframe((struct reg *)ksc.sc_regs, p->p_md.md_tf);
   1279  1.35       cgd 	alpha_pal_wrusp(ksc.sc_regs[R_SP]);
   1280   1.1       cgd 
   1281   1.1       cgd 	/* XXX ksc.sc_ownedfp ? */
   1282   1.1       cgd 	if (p == fpcurproc)
   1283   1.1       cgd 		fpcurproc = NULL;
   1284   1.1       cgd 	bcopy((struct fpreg *)ksc.sc_fpregs, &p->p_addr->u_pcb.pcb_fp,
   1285   1.1       cgd 	    sizeof(struct fpreg));
   1286   1.1       cgd 	/* XXX ksc.sc_fp_control ? */
   1287   1.1       cgd 
   1288   1.1       cgd #ifdef DEBUG
   1289   1.1       cgd 	if (sigdebug & SDB_FOLLOW)
   1290  1.46  christos 		printf("sigreturn(%d): returns\n", p->p_pid);
   1291   1.1       cgd #endif
   1292   1.1       cgd 	return (EJUSTRETURN);
   1293   1.1       cgd }
   1294   1.1       cgd 
   1295   1.1       cgd /*
   1296   1.1       cgd  * machine dependent system variables.
   1297   1.1       cgd  */
   1298  1.33       cgd int
   1299   1.1       cgd cpu_sysctl(name, namelen, oldp, oldlenp, newp, newlen, p)
   1300   1.1       cgd 	int *name;
   1301   1.1       cgd 	u_int namelen;
   1302   1.1       cgd 	void *oldp;
   1303   1.1       cgd 	size_t *oldlenp;
   1304   1.1       cgd 	void *newp;
   1305   1.1       cgd 	size_t newlen;
   1306   1.1       cgd 	struct proc *p;
   1307   1.1       cgd {
   1308   1.1       cgd 	dev_t consdev;
   1309   1.1       cgd 
   1310   1.1       cgd 	/* all sysctl names at this level are terminal */
   1311   1.1       cgd 	if (namelen != 1)
   1312   1.1       cgd 		return (ENOTDIR);		/* overloaded */
   1313   1.1       cgd 
   1314   1.1       cgd 	switch (name[0]) {
   1315   1.1       cgd 	case CPU_CONSDEV:
   1316   1.1       cgd 		if (cn_tab != NULL)
   1317   1.1       cgd 			consdev = cn_tab->cn_dev;
   1318   1.1       cgd 		else
   1319   1.1       cgd 			consdev = NODEV;
   1320   1.1       cgd 		return (sysctl_rdstruct(oldp, oldlenp, newp, &consdev,
   1321   1.1       cgd 			sizeof consdev));
   1322  1.30       cgd 
   1323  1.30       cgd 	case CPU_ROOT_DEVICE:
   1324  1.30       cgd 		return (sysctl_rdstring(oldp, oldlenp, newp, root_device));
   1325  1.36       cgd 
   1326  1.36       cgd 	case CPU_UNALIGNED_PRINT:
   1327  1.36       cgd 		return (sysctl_int(oldp, oldlenp, newp, newlen,
   1328  1.36       cgd 		    &alpha_unaligned_print));
   1329  1.36       cgd 
   1330  1.36       cgd 	case CPU_UNALIGNED_FIX:
   1331  1.36       cgd 		return (sysctl_int(oldp, oldlenp, newp, newlen,
   1332  1.36       cgd 		    &alpha_unaligned_fix));
   1333  1.36       cgd 
   1334  1.36       cgd 	case CPU_UNALIGNED_SIGBUS:
   1335  1.36       cgd 		return (sysctl_int(oldp, oldlenp, newp, newlen,
   1336  1.36       cgd 		    &alpha_unaligned_sigbus));
   1337  1.30       cgd 
   1338   1.1       cgd 	default:
   1339   1.1       cgd 		return (EOPNOTSUPP);
   1340   1.1       cgd 	}
   1341   1.1       cgd 	/* NOTREACHED */
   1342   1.1       cgd }
   1343   1.1       cgd 
   1344   1.1       cgd /*
   1345   1.1       cgd  * Set registers on exec.
   1346   1.1       cgd  */
   1347   1.1       cgd void
   1348   1.5  christos setregs(p, pack, stack, retval)
   1349   1.1       cgd 	register struct proc *p;
   1350   1.5  christos 	struct exec_package *pack;
   1351   1.1       cgd 	u_long stack;
   1352   1.1       cgd 	register_t *retval;
   1353   1.1       cgd {
   1354   1.1       cgd 	struct trapframe *tfp = p->p_md.md_tf;
   1355  1.56       cgd 	extern struct proc *fpcurproc;
   1356  1.56       cgd #ifdef DEBUG
   1357   1.1       cgd 	int i;
   1358  1.56       cgd #endif
   1359  1.43       cgd 
   1360  1.43       cgd #ifdef DEBUG
   1361  1.43       cgd 	/*
   1362  1.43       cgd 	 * Crash and dump, if the user requested it.
   1363  1.43       cgd 	 */
   1364  1.43       cgd 	if (boothowto & RB_DUMP)
   1365  1.43       cgd 		panic("crash requested by boot flags");
   1366  1.43       cgd #endif
   1367   1.1       cgd 
   1368   1.1       cgd #ifdef DEBUG
   1369  1.34       cgd 	for (i = 0; i < FRAME_SIZE; i++)
   1370   1.1       cgd 		tfp->tf_regs[i] = 0xbabefacedeadbeef;
   1371   1.1       cgd #else
   1372  1.34       cgd 	bzero(tfp->tf_regs, FRAME_SIZE * sizeof tfp->tf_regs[0]);
   1373   1.1       cgd #endif
   1374   1.1       cgd 	bzero(&p->p_addr->u_pcb.pcb_fp, sizeof p->p_addr->u_pcb.pcb_fp);
   1375   1.7       cgd #define FP_RN 2 /* XXX */
   1376   1.7       cgd 	p->p_addr->u_pcb.pcb_fp.fpr_cr = (long)FP_RN << 58;
   1377  1.35       cgd 	alpha_pal_wrusp(stack);
   1378  1.34       cgd 	tfp->tf_regs[FRAME_PS] = ALPHA_PSL_USERSET;
   1379  1.34       cgd 	tfp->tf_regs[FRAME_PC] = pack->ep_entry & ~3;
   1380  1.41       cgd 
   1381  1.41       cgd 	tfp->tf_regs[FRAME_A0] = stack;
   1382  1.41       cgd 	/* a1 and a2 already zeroed */
   1383  1.41       cgd 	tfp->tf_regs[FRAME_T12] = tfp->tf_regs[FRAME_PC];	/* a.k.a. PV */
   1384   1.1       cgd 
   1385  1.33       cgd 	p->p_md.md_flags &= ~MDP_FPUSED;
   1386   1.1       cgd 	if (fpcurproc == p)
   1387   1.1       cgd 		fpcurproc = NULL;
   1388   1.1       cgd 
   1389   1.1       cgd 	retval[0] = retval[1] = 0;
   1390   1.1       cgd }
   1391   1.1       cgd 
   1392   1.1       cgd void
   1393   1.1       cgd netintr()
   1394   1.1       cgd {
   1395  1.49       cgd 	int n, s;
   1396  1.49       cgd 
   1397  1.49       cgd 	s = splhigh();
   1398  1.49       cgd 	n = netisr;
   1399  1.49       cgd 	netisr = 0;
   1400  1.49       cgd 	splx(s);
   1401  1.49       cgd 
   1402  1.49       cgd #define	DONETISR(bit, fn)						\
   1403  1.49       cgd 	do {								\
   1404  1.49       cgd 		if (n & (1 << (bit)))					\
   1405  1.49       cgd 			fn;						\
   1406  1.49       cgd 	} while (0)
   1407  1.49       cgd 
   1408   1.1       cgd #ifdef INET
   1409  1.49       cgd 	DONETISR(NETISR_ARP, arpintr());
   1410  1.49       cgd 	DONETISR(NETISR_IP, ipintr());
   1411   1.1       cgd #endif
   1412   1.1       cgd #ifdef NS
   1413  1.49       cgd 	DONETISR(NETISR_NS, nsintr());
   1414   1.1       cgd #endif
   1415   1.1       cgd #ifdef ISO
   1416  1.49       cgd 	DONETISR(NETISR_ISO, clnlintr());
   1417   1.1       cgd #endif
   1418   1.1       cgd #ifdef CCITT
   1419  1.49       cgd 	DONETISR(NETISR_CCITT, ccittintr());
   1420  1.49       cgd #endif
   1421  1.49       cgd #ifdef NATM
   1422  1.49       cgd 	DONETISR(NETISR_NATM, natmintr());
   1423   1.1       cgd #endif
   1424  1.49       cgd #if NPPP > 1
   1425  1.49       cgd 	DONETISR(NETISR_PPP, pppintr());
   1426   1.8       cgd #endif
   1427  1.49       cgd 
   1428  1.49       cgd #undef DONETISR
   1429   1.1       cgd }
   1430   1.1       cgd 
   1431   1.1       cgd void
   1432   1.1       cgd do_sir()
   1433   1.1       cgd {
   1434  1.58       cgd 	u_int64_t n;
   1435   1.1       cgd 
   1436  1.59       cgd 	do {
   1437  1.60       cgd 		(void)splhigh();
   1438  1.58       cgd 		n = ssir;
   1439  1.58       cgd 		ssir = 0;
   1440  1.60       cgd 		splsoft();		/* don't recurse through spl0() */
   1441  1.59       cgd 
   1442  1.59       cgd #define	DO_SIR(bit, fn)							\
   1443  1.59       cgd 		do {							\
   1444  1.60       cgd 			if (n & (bit)) {				\
   1445  1.59       cgd 				cnt.v_soft++;				\
   1446  1.59       cgd 				fn;					\
   1447  1.59       cgd 			}						\
   1448  1.59       cgd 		} while (0)
   1449  1.59       cgd 
   1450  1.60       cgd 		DO_SIR(SIR_NET, netintr());
   1451  1.60       cgd 		DO_SIR(SIR_CLOCK, softclock());
   1452  1.60       cgd 
   1453  1.60       cgd #undef DO_SIR
   1454  1.59       cgd 	} while (ssir != 0);
   1455   1.1       cgd }
   1456   1.1       cgd 
   1457   1.1       cgd int
   1458   1.1       cgd spl0()
   1459   1.1       cgd {
   1460   1.1       cgd 
   1461  1.59       cgd 	if (ssir)
   1462  1.59       cgd 		do_sir();		/* it lowers the IPL itself */
   1463   1.1       cgd 
   1464  1.32       cgd 	return (alpha_pal_swpipl(ALPHA_PSL_IPL_0));
   1465   1.1       cgd }
   1466   1.1       cgd 
   1467   1.1       cgd /*
   1468   1.1       cgd  * The following primitives manipulate the run queues.  _whichqs tells which
   1469   1.1       cgd  * of the 32 queues _qs have processes in them.  Setrunqueue puts processes
   1470  1.52       cgd  * into queues, Remrunqueue removes them from queues.  The running process is
   1471  1.52       cgd  * on no queue, other processes are on a queue related to p->p_priority,
   1472  1.52       cgd  * divided by 4 actually to shrink the 0-127 range of priorities into the 32
   1473  1.52       cgd  * available queues.
   1474   1.1       cgd  */
   1475   1.1       cgd /*
   1476   1.1       cgd  * setrunqueue(p)
   1477   1.1       cgd  *	proc *p;
   1478   1.1       cgd  *
   1479   1.1       cgd  * Call should be made at splclock(), and p->p_stat should be SRUN.
   1480   1.1       cgd  */
   1481   1.1       cgd 
   1482   1.1       cgd void
   1483   1.1       cgd setrunqueue(p)
   1484   1.1       cgd 	struct proc *p;
   1485   1.1       cgd {
   1486   1.1       cgd 	int bit;
   1487   1.1       cgd 
   1488   1.1       cgd 	/* firewall: p->p_back must be NULL */
   1489   1.1       cgd 	if (p->p_back != NULL)
   1490   1.1       cgd 		panic("setrunqueue");
   1491   1.1       cgd 
   1492   1.1       cgd 	bit = p->p_priority >> 2;
   1493   1.1       cgd 	whichqs |= (1 << bit);
   1494   1.1       cgd 	p->p_forw = (struct proc *)&qs[bit];
   1495   1.1       cgd 	p->p_back = qs[bit].ph_rlink;
   1496   1.1       cgd 	p->p_back->p_forw = p;
   1497   1.1       cgd 	qs[bit].ph_rlink = p;
   1498   1.1       cgd }
   1499   1.1       cgd 
   1500   1.1       cgd /*
   1501  1.52       cgd  * remrunqueue(p)
   1502   1.1       cgd  *
   1503   1.1       cgd  * Call should be made at splclock().
   1504   1.1       cgd  */
   1505   1.1       cgd void
   1506  1.52       cgd remrunqueue(p)
   1507   1.1       cgd 	struct proc *p;
   1508   1.1       cgd {
   1509   1.1       cgd 	int bit;
   1510   1.1       cgd 
   1511   1.1       cgd 	bit = p->p_priority >> 2;
   1512   1.1       cgd 	if ((whichqs & (1 << bit)) == 0)
   1513  1.52       cgd 		panic("remrunqueue");
   1514   1.1       cgd 
   1515   1.1       cgd 	p->p_back->p_forw = p->p_forw;
   1516   1.1       cgd 	p->p_forw->p_back = p->p_back;
   1517   1.1       cgd 	p->p_back = NULL;	/* for firewall checking. */
   1518   1.1       cgd 
   1519   1.1       cgd 	if ((struct proc *)&qs[bit] == qs[bit].ph_link)
   1520   1.1       cgd 		whichqs &= ~(1 << bit);
   1521   1.1       cgd }
   1522   1.1       cgd 
   1523   1.1       cgd /*
   1524   1.1       cgd  * Return the best possible estimate of the time in the timeval
   1525   1.1       cgd  * to which tvp points.  Unfortunately, we can't read the hardware registers.
   1526   1.1       cgd  * We guarantee that the time will be greater than the value obtained by a
   1527   1.1       cgd  * previous call.
   1528   1.1       cgd  */
   1529   1.1       cgd void
   1530   1.1       cgd microtime(tvp)
   1531   1.1       cgd 	register struct timeval *tvp;
   1532   1.1       cgd {
   1533   1.1       cgd 	int s = splclock();
   1534   1.1       cgd 	static struct timeval lasttime;
   1535   1.1       cgd 
   1536   1.1       cgd 	*tvp = time;
   1537   1.1       cgd #ifdef notdef
   1538   1.1       cgd 	tvp->tv_usec += clkread();
   1539   1.1       cgd 	while (tvp->tv_usec > 1000000) {
   1540   1.1       cgd 		tvp->tv_sec++;
   1541   1.1       cgd 		tvp->tv_usec -= 1000000;
   1542   1.1       cgd 	}
   1543   1.1       cgd #endif
   1544   1.1       cgd 	if (tvp->tv_sec == lasttime.tv_sec &&
   1545   1.1       cgd 	    tvp->tv_usec <= lasttime.tv_usec &&
   1546   1.1       cgd 	    (tvp->tv_usec = lasttime.tv_usec + 1) > 1000000) {
   1547   1.1       cgd 		tvp->tv_sec++;
   1548   1.1       cgd 		tvp->tv_usec -= 1000000;
   1549   1.1       cgd 	}
   1550   1.1       cgd 	lasttime = *tvp;
   1551   1.1       cgd 	splx(s);
   1552  1.15       cgd }
   1553  1.15       cgd 
   1554  1.15       cgd /*
   1555  1.15       cgd  * Wait "n" microseconds.
   1556  1.15       cgd  */
   1557  1.32       cgd void
   1558  1.15       cgd delay(n)
   1559  1.32       cgd 	unsigned long n;
   1560  1.15       cgd {
   1561  1.15       cgd 	long N = cycles_per_usec * (n);
   1562  1.15       cgd 
   1563  1.15       cgd 	while (N > 0)				/* XXX */
   1564  1.15       cgd 		N -= 3;				/* XXX */
   1565   1.1       cgd }
   1566   1.1       cgd 
   1567   1.8       cgd #if defined(COMPAT_OSF1) || 1		/* XXX */
   1568  1.55       cgd void	cpu_exec_ecoff_setregs __P((struct proc *, struct exec_package *,
   1569  1.55       cgd 	    u_long, register_t *));
   1570  1.55       cgd 
   1571   1.1       cgd void
   1572  1.19       cgd cpu_exec_ecoff_setregs(p, epp, stack, retval)
   1573   1.1       cgd 	struct proc *p;
   1574  1.19       cgd 	struct exec_package *epp;
   1575   1.5  christos 	u_long stack;
   1576   1.5  christos 	register_t *retval;
   1577   1.1       cgd {
   1578  1.19       cgd 	struct ecoff_exechdr *execp = (struct ecoff_exechdr *)epp->ep_hdr;
   1579   1.1       cgd 
   1580  1.19       cgd 	setregs(p, epp, stack, retval);
   1581  1.34       cgd 	p->p_md.md_tf->tf_regs[FRAME_GP] = execp->a.gp_value;
   1582   1.1       cgd }
   1583   1.1       cgd 
   1584   1.1       cgd /*
   1585   1.1       cgd  * cpu_exec_ecoff_hook():
   1586   1.1       cgd  *	cpu-dependent ECOFF format hook for execve().
   1587   1.1       cgd  *
   1588   1.1       cgd  * Do any machine-dependent diddling of the exec package when doing ECOFF.
   1589   1.1       cgd  *
   1590   1.1       cgd  */
   1591   1.1       cgd int
   1592  1.19       cgd cpu_exec_ecoff_hook(p, epp)
   1593   1.1       cgd 	struct proc *p;
   1594   1.1       cgd 	struct exec_package *epp;
   1595   1.1       cgd {
   1596  1.19       cgd 	struct ecoff_exechdr *execp = (struct ecoff_exechdr *)epp->ep_hdr;
   1597   1.5  christos 	extern struct emul emul_netbsd;
   1598   1.5  christos #ifdef COMPAT_OSF1
   1599   1.5  christos 	extern struct emul emul_osf1;
   1600   1.5  christos #endif
   1601   1.1       cgd 
   1602  1.19       cgd 	switch (execp->f.f_magic) {
   1603   1.5  christos #ifdef COMPAT_OSF1
   1604   1.1       cgd 	case ECOFF_MAGIC_ALPHA:
   1605   1.5  christos 		epp->ep_emul = &emul_osf1;
   1606   1.1       cgd 		break;
   1607   1.5  christos #endif
   1608   1.1       cgd 
   1609   1.1       cgd 	case ECOFF_MAGIC_NETBSD_ALPHA:
   1610   1.5  christos 		epp->ep_emul = &emul_netbsd;
   1611   1.1       cgd 		break;
   1612   1.1       cgd 
   1613   1.1       cgd 	default:
   1614  1.12       cgd 		return ENOEXEC;
   1615   1.1       cgd 	}
   1616   1.1       cgd 	return 0;
   1617   1.1       cgd }
   1618   1.1       cgd #endif
   1619  1.50       cgd 
   1620  1.50       cgd /* XXX XXX BEGIN XXX XXX */
   1621  1.50       cgd vm_offset_t alpha_XXX_dmamap_or;				/* XXX */
   1622  1.50       cgd 								/* XXX */
   1623  1.50       cgd vm_offset_t							/* XXX */
   1624  1.50       cgd alpha_XXX_dmamap(v)						/* XXX */
   1625  1.51       cgd 	vm_offset_t v;						/* XXX */
   1626  1.50       cgd {								/* XXX */
   1627  1.50       cgd 								/* XXX */
   1628  1.51       cgd 	return (vtophys(v) | alpha_XXX_dmamap_or);		/* XXX */
   1629  1.50       cgd }								/* XXX */
   1630  1.50       cgd /* XXX XXX END XXX XXX */
   1631