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uvm_glue.c revision 1.44.2.3
      1  1.44.2.3   nathanw /*	$NetBSD: uvm_glue.c,v 1.44.2.3 2001/04/09 01:59:14 nathanw Exp $	*/
      2       1.1       mrg 
      3       1.1       mrg /*
      4       1.1       mrg  * Copyright (c) 1997 Charles D. Cranor and Washington University.
      5       1.1       mrg  * Copyright (c) 1991, 1993, The Regents of the University of California.
      6       1.1       mrg  *
      7       1.1       mrg  * All rights reserved.
      8       1.1       mrg  *
      9       1.1       mrg  * This code is derived from software contributed to Berkeley by
     10       1.1       mrg  * The Mach Operating System project at Carnegie-Mellon University.
     11       1.1       mrg  *
     12       1.1       mrg  * Redistribution and use in source and binary forms, with or without
     13       1.1       mrg  * modification, are permitted provided that the following conditions
     14       1.1       mrg  * are met:
     15       1.1       mrg  * 1. Redistributions of source code must retain the above copyright
     16       1.1       mrg  *    notice, this list of conditions and the following disclaimer.
     17       1.1       mrg  * 2. Redistributions in binary form must reproduce the above copyright
     18       1.1       mrg  *    notice, this list of conditions and the following disclaimer in the
     19       1.1       mrg  *    documentation and/or other materials provided with the distribution.
     20       1.1       mrg  * 3. All advertising materials mentioning features or use of this software
     21       1.1       mrg  *    must display the following acknowledgement:
     22       1.1       mrg  *	This product includes software developed by Charles D. Cranor,
     23       1.1       mrg  *      Washington University, the University of California, Berkeley and
     24       1.1       mrg  *      its contributors.
     25       1.1       mrg  * 4. Neither the name of the University nor the names of its contributors
     26       1.1       mrg  *    may be used to endorse or promote products derived from this software
     27       1.1       mrg  *    without specific prior written permission.
     28       1.1       mrg  *
     29       1.1       mrg  * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
     30       1.1       mrg  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     31       1.1       mrg  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     32       1.1       mrg  * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
     33       1.1       mrg  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     34       1.1       mrg  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     35       1.1       mrg  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     36       1.1       mrg  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     37       1.1       mrg  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     38       1.1       mrg  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     39       1.1       mrg  * SUCH DAMAGE.
     40       1.1       mrg  *
     41       1.1       mrg  *	@(#)vm_glue.c	8.6 (Berkeley) 1/5/94
     42       1.4       mrg  * from: Id: uvm_glue.c,v 1.1.2.8 1998/02/07 01:16:54 chs Exp
     43       1.1       mrg  *
     44       1.1       mrg  *
     45       1.1       mrg  * Copyright (c) 1987, 1990 Carnegie-Mellon University.
     46       1.1       mrg  * All rights reserved.
     47       1.1       mrg  *
     48       1.1       mrg  * Permission to use, copy, modify and distribute this software and
     49       1.1       mrg  * its documentation is hereby granted, provided that both the copyright
     50       1.1       mrg  * notice and this permission notice appear in all copies of the
     51       1.1       mrg  * software, derivative works or modified versions, and any portions
     52       1.1       mrg  * thereof, and that both notices appear in supporting documentation.
     53       1.1       mrg  *
     54       1.1       mrg  * CARNEGIE MELLON ALLOWS FREE USE OF THIS SOFTWARE IN ITS "AS IS"
     55       1.1       mrg  * CONDITION.  CARNEGIE MELLON DISCLAIMS ANY LIABILITY OF ANY KIND
     56       1.1       mrg  * FOR ANY DAMAGES WHATSOEVER RESULTING FROM THE USE OF THIS SOFTWARE.
     57       1.1       mrg  *
     58       1.1       mrg  * Carnegie Mellon requests users of this software to return to
     59       1.1       mrg  *
     60       1.1       mrg  *  Software Distribution Coordinator  or  Software.Distribution (at) CS.CMU.EDU
     61       1.1       mrg  *  School of Computer Science
     62       1.1       mrg  *  Carnegie Mellon University
     63       1.1       mrg  *  Pittsburgh PA 15213-3890
     64       1.1       mrg  *
     65       1.1       mrg  * any improvements or extensions that they make and grant Carnegie the
     66       1.1       mrg  * rights to redistribute these changes.
     67       1.1       mrg  */
     68       1.1       mrg 
     69       1.5       mrg #include "opt_uvmhist.h"
     70      1.15      tron #include "opt_sysv.h"
     71       1.5       mrg 
     72       1.1       mrg /*
     73       1.1       mrg  * uvm_glue.c: glue functions
     74       1.1       mrg  */
     75       1.1       mrg 
     76       1.1       mrg #include <sys/param.h>
     77       1.1       mrg #include <sys/systm.h>
     78  1.44.2.1   nathanw #include <sys/lwp.h>
     79       1.1       mrg #include <sys/proc.h>
     80       1.1       mrg #include <sys/resourcevar.h>
     81       1.1       mrg #include <sys/buf.h>
     82       1.1       mrg #include <sys/user.h>
     83       1.1       mrg #ifdef SYSVSHM
     84       1.1       mrg #include <sys/shm.h>
     85       1.1       mrg #endif
     86       1.1       mrg 
     87       1.1       mrg #include <uvm/uvm.h>
     88       1.1       mrg 
     89       1.1       mrg #include <machine/cpu.h>
     90       1.1       mrg 
     91       1.1       mrg /*
     92       1.1       mrg  * local prototypes
     93       1.1       mrg  */
     94       1.1       mrg 
     95  1.44.2.1   nathanw static void uvm_swapout __P((struct lwp *));
     96       1.1       mrg 
     97       1.1       mrg /*
     98       1.1       mrg  * XXXCDC: do these really belong here?
     99       1.1       mrg  */
    100       1.1       mrg 
    101       1.1       mrg int readbuffers = 0;		/* allow KGDB to read kern buffer pool */
    102       1.1       mrg 				/* XXX: see uvm_kernacc */
    103       1.1       mrg 
    104      1.28   thorpej 
    105      1.28   thorpej /*
    106       1.1       mrg  * uvm_kernacc: can the kernel access a region of memory
    107       1.1       mrg  *
    108       1.1       mrg  * - called from malloc [DIAGNOSTIC], and /dev/kmem driver (mem.c)
    109       1.1       mrg  */
    110       1.1       mrg 
    111       1.6       mrg boolean_t
    112       1.6       mrg uvm_kernacc(addr, len, rw)
    113       1.6       mrg 	caddr_t addr;
    114      1.11    kleink 	size_t len;
    115      1.11    kleink 	int rw;
    116       1.6       mrg {
    117       1.6       mrg 	boolean_t rv;
    118      1.13       eeh 	vaddr_t saddr, eaddr;
    119       1.6       mrg 	vm_prot_t prot = rw == B_READ ? VM_PROT_READ : VM_PROT_WRITE;
    120       1.6       mrg 
    121      1.31    kleink 	saddr = trunc_page((vaddr_t)addr);
    122      1.43       chs 	eaddr = round_page((vaddr_t)addr + len);
    123       1.6       mrg 	vm_map_lock_read(kernel_map);
    124       1.6       mrg 	rv = uvm_map_checkprot(kernel_map, saddr, eaddr, prot);
    125       1.6       mrg 	vm_map_unlock_read(kernel_map);
    126       1.6       mrg 
    127       1.6       mrg 	/*
    128       1.6       mrg 	 * XXX there are still some things (e.g. the buffer cache) that
    129       1.6       mrg 	 * are managed behind the VM system's back so even though an
    130       1.6       mrg 	 * address is accessible in the mind of the VM system, there may
    131       1.6       mrg 	 * not be physical pages where the VM thinks there is.  This can
    132       1.6       mrg 	 * lead to bogus allocation of pages in the kernel address space
    133       1.6       mrg 	 * or worse, inconsistencies at the pmap level.  We only worry
    134       1.6       mrg 	 * about the buffer cache for now.
    135       1.6       mrg 	 */
    136      1.13       eeh 	if (!readbuffers && rv && (eaddr > (vaddr_t)buffers &&
    137      1.13       eeh 			     saddr < (vaddr_t)buffers + MAXBSIZE * nbuf))
    138       1.6       mrg 		rv = FALSE;
    139       1.6       mrg 	return(rv);
    140       1.1       mrg }
    141       1.1       mrg 
    142       1.1       mrg /*
    143       1.1       mrg  * uvm_useracc: can the user access it?
    144       1.1       mrg  *
    145       1.1       mrg  * - called from physio() and sys___sysctl().
    146       1.1       mrg  */
    147       1.1       mrg 
    148       1.6       mrg boolean_t
    149       1.6       mrg uvm_useracc(addr, len, rw)
    150       1.6       mrg 	caddr_t addr;
    151      1.11    kleink 	size_t len;
    152      1.11    kleink 	int rw;
    153       1.1       mrg {
    154      1.25   thorpej 	vm_map_t map;
    155       1.6       mrg 	boolean_t rv;
    156       1.6       mrg 	vm_prot_t prot = rw == B_READ ? VM_PROT_READ : VM_PROT_WRITE;
    157       1.1       mrg 
    158      1.25   thorpej 	/* XXX curproc */
    159  1.44.2.1   nathanw 	map = &curproc->l_proc->p_vmspace->vm_map;
    160      1.25   thorpej 
    161      1.25   thorpej 	vm_map_lock_read(map);
    162      1.31    kleink 	rv = uvm_map_checkprot(map, trunc_page((vaddr_t)addr),
    163      1.43       chs 	    round_page((vaddr_t)addr + len), prot);
    164      1.25   thorpej 	vm_map_unlock_read(map);
    165      1.25   thorpej 
    166       1.6       mrg 	return(rv);
    167       1.1       mrg }
    168       1.1       mrg 
    169       1.1       mrg #ifdef KGDB
    170       1.1       mrg /*
    171       1.1       mrg  * Change protections on kernel pages from addr to addr+len
    172       1.1       mrg  * (presumably so debugger can plant a breakpoint).
    173       1.1       mrg  *
    174       1.1       mrg  * We force the protection change at the pmap level.  If we were
    175       1.1       mrg  * to use vm_map_protect a change to allow writing would be lazily-
    176       1.1       mrg  * applied meaning we would still take a protection fault, something
    177       1.1       mrg  * we really don't want to do.  It would also fragment the kernel
    178       1.1       mrg  * map unnecessarily.  We cannot use pmap_protect since it also won't
    179       1.1       mrg  * enforce a write-enable request.  Using pmap_enter is the only way
    180       1.1       mrg  * we can ensure the change takes place properly.
    181       1.1       mrg  */
    182       1.6       mrg void
    183       1.6       mrg uvm_chgkprot(addr, len, rw)
    184      1.32  augustss 	caddr_t addr;
    185      1.11    kleink 	size_t len;
    186      1.11    kleink 	int rw;
    187       1.6       mrg {
    188       1.6       mrg 	vm_prot_t prot;
    189      1.13       eeh 	paddr_t pa;
    190      1.13       eeh 	vaddr_t sva, eva;
    191       1.6       mrg 
    192       1.6       mrg 	prot = rw == B_READ ? VM_PROT_READ : VM_PROT_READ|VM_PROT_WRITE;
    193      1.31    kleink 	eva = round_page((vaddr_t)addr + len);
    194      1.31    kleink 	for (sva = trunc_page((vaddr_t)addr); sva < eva; sva += PAGE_SIZE) {
    195       1.6       mrg 		/*
    196       1.6       mrg 		 * Extract physical address for the page.
    197       1.6       mrg 		 * We use a cheezy hack to differentiate physical
    198       1.6       mrg 		 * page 0 from an invalid mapping, not that it
    199       1.6       mrg 		 * really matters...
    200       1.6       mrg 		 */
    201      1.27   thorpej 		if (pmap_extract(pmap_kernel(), sva, &pa) == FALSE)
    202       1.6       mrg 			panic("chgkprot: invalid page");
    203      1.30   thorpej 		pmap_enter(pmap_kernel(), sva, pa, prot, PMAP_WIRED);
    204       1.6       mrg 	}
    205       1.1       mrg }
    206       1.1       mrg #endif
    207       1.1       mrg 
    208       1.1       mrg /*
    209       1.1       mrg  * vslock: wire user memory for I/O
    210       1.1       mrg  *
    211       1.1       mrg  * - called from physio and sys___sysctl
    212       1.1       mrg  * - XXXCDC: consider nuking this (or making it a macro?)
    213       1.1       mrg  */
    214       1.1       mrg 
    215      1.26   thorpej int
    216      1.22   thorpej uvm_vslock(p, addr, len, access_type)
    217       1.9   thorpej 	struct proc *p;
    218       1.6       mrg 	caddr_t	addr;
    219      1.11    kleink 	size_t	len;
    220      1.22   thorpej 	vm_prot_t access_type;
    221       1.1       mrg {
    222      1.26   thorpej 	vm_map_t map;
    223      1.26   thorpej 	vaddr_t start, end;
    224  1.44.2.3   nathanw 	int error;
    225      1.26   thorpej 
    226      1.26   thorpej 	map = &p->p_vmspace->vm_map;
    227      1.31    kleink 	start = trunc_page((vaddr_t)addr);
    228      1.31    kleink 	end = round_page((vaddr_t)addr + len);
    229  1.44.2.3   nathanw 	error = uvm_fault_wire(map, start, end, access_type);
    230  1.44.2.3   nathanw 	return error;
    231       1.1       mrg }
    232       1.1       mrg 
    233       1.1       mrg /*
    234       1.1       mrg  * vslock: wire user memory for I/O
    235       1.1       mrg  *
    236       1.1       mrg  * - called from physio and sys___sysctl
    237       1.1       mrg  * - XXXCDC: consider nuking this (or making it a macro?)
    238       1.1       mrg  */
    239       1.1       mrg 
    240       1.6       mrg void
    241       1.9   thorpej uvm_vsunlock(p, addr, len)
    242       1.9   thorpej 	struct proc *p;
    243       1.6       mrg 	caddr_t	addr;
    244      1.11    kleink 	size_t	len;
    245       1.1       mrg {
    246      1.43       chs 	uvm_fault_unwire(&p->p_vmspace->vm_map, trunc_page((vaddr_t)addr),
    247      1.43       chs 		round_page((vaddr_t)addr + len));
    248       1.1       mrg }
    249       1.1       mrg 
    250       1.1       mrg /*
    251  1.44.2.1   nathanw  * uvm_proc_fork: fork a virtual address space
    252       1.1       mrg  *
    253       1.1       mrg  * - the address space is copied as per parent map's inherit values
    254  1.44.2.1   nathanw  */
    255  1.44.2.1   nathanw void
    256  1.44.2.1   nathanw uvm_proc_fork(p1, p2, shared)
    257  1.44.2.1   nathanw 	struct proc *p1, *p2;
    258  1.44.2.1   nathanw 	boolean_t shared;
    259  1.44.2.1   nathanw {
    260  1.44.2.1   nathanw 
    261  1.44.2.1   nathanw 	if (shared == TRUE) {
    262  1.44.2.1   nathanw 		p2->p_vmspace = NULL;
    263  1.44.2.1   nathanw 		uvmspace_share(p1, p2);			/* share vmspace */
    264  1.44.2.1   nathanw 	} else {
    265  1.44.2.1   nathanw 		p2->p_vmspace = uvmspace_fork(p1->p_vmspace); /* fork vmspace */
    266  1.44.2.1   nathanw 	}
    267  1.44.2.1   nathanw }
    268  1.44.2.1   nathanw 
    269  1.44.2.1   nathanw 
    270  1.44.2.1   nathanw /*
    271  1.44.2.1   nathanw  * uvm_lwp_fork: fork a thread
    272  1.44.2.1   nathanw  *
    273       1.1       mrg  * - a new "user" structure is allocated for the child process
    274       1.1       mrg  *	[filled in by MD layer...]
    275      1.20   thorpej  * - if specified, the child gets a new user stack described by
    276      1.20   thorpej  *	stack and stacksize
    277       1.1       mrg  * - NOTE: the kernel stack may be at a different location in the child
    278       1.1       mrg  *	process, and thus addresses of automatic variables may be invalid
    279       1.1       mrg  *	after cpu_fork returns in the child process.  We do nothing here
    280       1.1       mrg  *	after cpu_fork returns.
    281       1.1       mrg  * - XXXCDC: we need a way for this to return a failure value rather
    282       1.1       mrg  *   than just hang
    283       1.1       mrg  */
    284       1.6       mrg void
    285  1.44.2.1   nathanw uvm_lwp_fork(l1, l2, stack, stacksize, func, arg)
    286  1.44.2.1   nathanw 	struct lwp *l1, *l2;
    287      1.20   thorpej 	void *stack;
    288      1.20   thorpej 	size_t stacksize;
    289      1.34   thorpej 	void (*func) __P((void *));
    290      1.34   thorpej 	void *arg;
    291       1.6       mrg {
    292  1.44.2.1   nathanw 	struct user *up = l2->l_addr;
    293  1.44.2.3   nathanw 	int error;
    294       1.6       mrg 
    295       1.6       mrg 	/*
    296       1.7   thorpej 	 * Wire down the U-area for the process, which contains the PCB
    297       1.7   thorpej 	 * and the kernel stack.  Wired state is stored in p->p_flag's
    298       1.7   thorpej 	 * P_INMEM bit rather than in the vm_map_entry's wired count
    299       1.7   thorpej 	 * to prevent kernel_map fragmentation.
    300      1.21   thorpej 	 *
    301      1.21   thorpej 	 * Note the kernel stack gets read/write accesses right off
    302      1.21   thorpej 	 * the bat.
    303       1.6       mrg 	 */
    304  1.44.2.3   nathanw 	error = uvm_fault_wire(kernel_map, (vaddr_t)up,
    305      1.21   thorpej 	    (vaddr_t)up + USPACE, VM_PROT_READ | VM_PROT_WRITE);
    306  1.44.2.3   nathanw 	if (error)
    307  1.44.2.3   nathanw 		panic("uvm_fork: uvm_fault_wire failed: %d", error);
    308       1.6       mrg 
    309       1.6       mrg 	/*
    310      1.34   thorpej 	 * cpu_fork() copy and update the pcb, and make the child ready
    311  1.44.2.1   nathanw  	 * to run.  If this is a normal user fork, the child will exit
    312      1.34   thorpej 	 * directly to user mode via child_return() on its first time
    313      1.34   thorpej 	 * slice and will not return here.  If this is a kernel thread,
    314      1.34   thorpej 	 * the specified entry point will be executed.
    315       1.6       mrg 	 */
    316  1.44.2.1   nathanw 	cpu_fork(l1, l2, stack, stacksize, func, arg);
    317      1.14   thorpej }
    318      1.14   thorpej 
    319      1.14   thorpej /*
    320      1.14   thorpej  * uvm_exit: exit a virtual address space
    321      1.14   thorpej  *
    322      1.14   thorpej  * - the process passed to us is a dead (pre-zombie) process; we
    323      1.14   thorpej  *   are running on a different context now (the reaper).
    324      1.14   thorpej  * - we must run in a separate thread because freeing the vmspace
    325      1.14   thorpej  *   of the dead process may block.
    326      1.14   thorpej  */
    327      1.14   thorpej void
    328  1.44.2.1   nathanw uvm_proc_exit(p)
    329      1.14   thorpej 	struct proc *p;
    330      1.14   thorpej {
    331      1.14   thorpej 	uvmspace_free(p->p_vmspace);
    332  1.44.2.1   nathanw }
    333  1.44.2.1   nathanw 
    334  1.44.2.1   nathanw void
    335  1.44.2.1   nathanw uvm_lwp_exit(l)
    336  1.44.2.1   nathanw 	struct lwp *l;
    337  1.44.2.1   nathanw {
    338  1.44.2.1   nathanw 	vaddr_t va = (vaddr_t)l->l_addr;
    339  1.44.2.1   nathanw 
    340      1.43       chs 	uvm_fault_unwire(kernel_map, va, va + USPACE);
    341      1.43       chs 	uvm_km_free(kernel_map, va, USPACE);
    342  1.44.2.1   nathanw 
    343  1.44.2.1   nathanw 	l->l_flag &= ~L_INMEM;
    344  1.44.2.1   nathanw 	l->l_addr = NULL;
    345       1.1       mrg }
    346       1.1       mrg 
    347       1.1       mrg /*
    348       1.1       mrg  * uvm_init_limit: init per-process VM limits
    349       1.1       mrg  *
    350       1.1       mrg  * - called for process 0 and then inherited by all others.
    351       1.1       mrg  */
    352       1.6       mrg void
    353       1.6       mrg uvm_init_limits(p)
    354       1.6       mrg 	struct proc *p;
    355       1.6       mrg {
    356       1.6       mrg 
    357       1.6       mrg 	/*
    358       1.6       mrg 	 * Set up the initial limits on process VM.  Set the maximum
    359       1.6       mrg 	 * resident set size to be all of (reasonably) available memory.
    360       1.6       mrg 	 * This causes any single, large process to start random page
    361       1.6       mrg 	 * replacement once it fills memory.
    362       1.6       mrg 	 */
    363       1.6       mrg 
    364       1.6       mrg 	p->p_rlimit[RLIMIT_STACK].rlim_cur = DFLSSIZ;
    365       1.6       mrg 	p->p_rlimit[RLIMIT_STACK].rlim_max = MAXSSIZ;
    366       1.6       mrg 	p->p_rlimit[RLIMIT_DATA].rlim_cur = DFLDSIZ;
    367       1.6       mrg 	p->p_rlimit[RLIMIT_DATA].rlim_max = MAXDSIZ;
    368       1.6       mrg 	p->p_rlimit[RLIMIT_RSS].rlim_cur = ptoa(uvmexp.free);
    369       1.1       mrg }
    370       1.1       mrg 
    371       1.1       mrg #ifdef DEBUG
    372       1.1       mrg int	enableswap = 1;
    373       1.1       mrg int	swapdebug = 0;
    374       1.1       mrg #define	SDB_FOLLOW	1
    375       1.1       mrg #define SDB_SWAPIN	2
    376       1.1       mrg #define SDB_SWAPOUT	4
    377       1.1       mrg #endif
    378       1.1       mrg 
    379       1.1       mrg /*
    380       1.1       mrg  * uvm_swapin: swap in a process's u-area.
    381       1.1       mrg  */
    382       1.1       mrg 
    383       1.6       mrg void
    384  1.44.2.1   nathanw uvm_swapin(l)
    385  1.44.2.1   nathanw 	struct lwp *l;
    386       1.6       mrg {
    387      1.13       eeh 	vaddr_t addr;
    388       1.6       mrg 	int s;
    389       1.6       mrg 
    390  1.44.2.1   nathanw 	addr = (vaddr_t)l->l_addr;
    391  1.44.2.1   nathanw 	/* make L_INMEM true */
    392      1.21   thorpej 	uvm_fault_wire(kernel_map, addr, addr + USPACE,
    393      1.21   thorpej 	    VM_PROT_READ | VM_PROT_WRITE);
    394       1.6       mrg 
    395       1.6       mrg 	/*
    396       1.6       mrg 	 * Some architectures need to be notified when the user area has
    397       1.6       mrg 	 * moved to new physical page(s) (e.g.  see mips/mips/vm_machdep.c).
    398       1.6       mrg 	 */
    399  1.44.2.1   nathanw 	cpu_swapin(l);
    400      1.41     enami 	SCHED_LOCK(s);
    401  1.44.2.1   nathanw 	if (l->l_stat == LSRUN)
    402  1.44.2.1   nathanw 		setrunqueue(l);
    403  1.44.2.1   nathanw 	l->l_flag |= L_INMEM;
    404      1.41     enami 	SCHED_UNLOCK(s);
    405  1.44.2.1   nathanw 	l->l_swtime = 0;
    406       1.6       mrg 	++uvmexp.swapins;
    407       1.1       mrg }
    408       1.1       mrg 
    409       1.1       mrg /*
    410       1.1       mrg  * uvm_scheduler: process zero main loop
    411       1.1       mrg  *
    412       1.1       mrg  * - attempt to swapin every swaped-out, runnable process in order of
    413       1.1       mrg  *	priority.
    414       1.1       mrg  * - if not enough memory, wake the pagedaemon and let it clear space.
    415       1.1       mrg  */
    416       1.1       mrg 
    417       1.6       mrg void
    418       1.6       mrg uvm_scheduler()
    419       1.1       mrg {
    420  1.44.2.1   nathanw 	struct lwp *l, *ll;
    421      1.32  augustss 	int pri;
    422       1.6       mrg 	int ppri;
    423       1.1       mrg 
    424       1.1       mrg loop:
    425       1.1       mrg #ifdef DEBUG
    426       1.6       mrg 	while (!enableswap)
    427      1.43       chs 		tsleep(&proc0, PVM, "noswap", 0);
    428       1.1       mrg #endif
    429  1.44.2.1   nathanw 	ll = NULL;		/* process to choose */
    430       1.6       mrg 	ppri = INT_MIN;	/* its priority */
    431      1.29   thorpej 	proclist_lock_read();
    432       1.6       mrg 
    433  1.44.2.1   nathanw 	LIST_FOREACH(l, &alllwp, l_list) {
    434       1.6       mrg 		/* is it a runnable swapped out process? */
    435  1.44.2.1   nathanw 		if (l->l_stat == LSRUN && (l->l_flag & L_INMEM) == 0) {
    436  1.44.2.1   nathanw 			pri = l->l_swtime + l->l_slptime -
    437  1.44.2.1   nathanw 			    (l->l_proc->p_nice - NZERO) * 8;
    438       1.6       mrg 			if (pri > ppri) {   /* higher priority?  remember it. */
    439  1.44.2.1   nathanw 				ll = l;
    440       1.6       mrg 				ppri = pri;
    441       1.6       mrg 			}
    442       1.6       mrg 		}
    443       1.6       mrg 	}
    444      1.39  sommerfe 	/*
    445      1.39  sommerfe 	 * XXXSMP: possible unlock/sleep race between here and the
    446      1.39  sommerfe 	 * "scheduler" tsleep below..
    447      1.39  sommerfe 	 */
    448      1.28   thorpej 	proclist_unlock_read();
    449       1.1       mrg 
    450       1.1       mrg #ifdef DEBUG
    451       1.6       mrg 	if (swapdebug & SDB_FOLLOW)
    452  1.44.2.1   nathanw 		printf("scheduler: running, procp %p pri %d\n", ll, ppri);
    453       1.1       mrg #endif
    454       1.6       mrg 	/*
    455       1.6       mrg 	 * Nothing to do, back to sleep
    456       1.6       mrg 	 */
    457  1.44.2.1   nathanw 	if ((l = ll) == NULL) {
    458      1.43       chs 		tsleep(&proc0, PVM, "scheduler", 0);
    459       1.6       mrg 		goto loop;
    460       1.6       mrg 	}
    461       1.6       mrg 
    462       1.6       mrg 	/*
    463       1.6       mrg 	 * we have found swapped out process which we would like to bring
    464       1.6       mrg 	 * back in.
    465       1.6       mrg 	 *
    466       1.6       mrg 	 * XXX: this part is really bogus cuz we could deadlock on memory
    467       1.6       mrg 	 * despite our feeble check
    468       1.6       mrg 	 */
    469       1.6       mrg 	if (uvmexp.free > atop(USPACE)) {
    470       1.1       mrg #ifdef DEBUG
    471       1.6       mrg 		if (swapdebug & SDB_SWAPIN)
    472       1.6       mrg 			printf("swapin: pid %d(%s)@%p, pri %d free %d\n",
    473  1.44.2.1   nathanw 	     l->l_proc->p_pid, l->l_proc->p_comm, l->l_addr, ppri, uvmexp.free);
    474       1.1       mrg #endif
    475  1.44.2.1   nathanw 		uvm_swapin(l);
    476       1.6       mrg 		goto loop;
    477       1.6       mrg 	}
    478       1.6       mrg 	/*
    479       1.6       mrg 	 * not enough memory, jab the pageout daemon and wait til the coast
    480       1.6       mrg 	 * is clear
    481       1.6       mrg 	 */
    482       1.1       mrg #ifdef DEBUG
    483       1.6       mrg 	if (swapdebug & SDB_FOLLOW)
    484       1.6       mrg 		printf("scheduler: no room for pid %d(%s), free %d\n",
    485  1.44.2.1   nathanw 	   l->l_proc->p_pid, l->l_proc->p_comm, uvmexp.free);
    486       1.1       mrg #endif
    487       1.6       mrg 	uvm_wait("schedpwait");
    488       1.1       mrg #ifdef DEBUG
    489       1.6       mrg 	if (swapdebug & SDB_FOLLOW)
    490       1.6       mrg 		printf("scheduler: room again, free %d\n", uvmexp.free);
    491       1.1       mrg #endif
    492       1.6       mrg 	goto loop;
    493       1.1       mrg }
    494       1.1       mrg 
    495       1.1       mrg /*
    496  1.44.2.1   nathanw  * swappable: is LWP "l" swappable?
    497       1.1       mrg  */
    498       1.1       mrg 
    499  1.44.2.1   nathanw #define	swappable(l)							\
    500  1.44.2.1   nathanw 	(((l)->l_flag & (L_INMEM)) &&					\
    501  1.44.2.1   nathanw 	 ((((l)->l_proc->p_flag) & (P_SYSTEM | P_WEXIT)) == 0) &&	\
    502  1.44.2.1   nathanw 	 (l)->l_holdcnt == 0)
    503       1.1       mrg 
    504       1.1       mrg /*
    505       1.1       mrg  * swapout_threads: find threads that can be swapped and unwire their
    506       1.1       mrg  *	u-areas.
    507       1.1       mrg  *
    508       1.1       mrg  * - called by the pagedaemon
    509       1.1       mrg  * - try and swap at least one processs
    510       1.1       mrg  * - processes that are sleeping or stopped for maxslp or more seconds
    511       1.1       mrg  *   are swapped... otherwise the longest-sleeping or stopped process
    512       1.1       mrg  *   is swapped, otherwise the longest resident process...
    513       1.1       mrg  */
    514       1.6       mrg void
    515       1.6       mrg uvm_swapout_threads()
    516       1.1       mrg {
    517  1.44.2.1   nathanw 	struct lwp *l;
    518  1.44.2.1   nathanw 	struct lwp *outl, *outl2;
    519       1.6       mrg 	int outpri, outpri2;
    520       1.6       mrg 	int didswap = 0;
    521       1.6       mrg 	extern int maxslp;
    522       1.6       mrg 	/* XXXCDC: should move off to uvmexp. or uvm., also in uvm_meter */
    523       1.1       mrg 
    524       1.1       mrg #ifdef DEBUG
    525       1.6       mrg 	if (!enableswap)
    526       1.6       mrg 		return;
    527       1.1       mrg #endif
    528       1.1       mrg 
    529       1.6       mrg 	/*
    530  1.44.2.1   nathanw 	 * outl/outpri  : stop/sleep thread with largest sleeptime < maxslp
    531  1.44.2.1   nathanw 	 * outl2/outpri2: the longest resident thread (its swap time)
    532       1.6       mrg 	 */
    533  1.44.2.1   nathanw 	outl = outl2 = NULL;
    534       1.6       mrg 	outpri = outpri2 = 0;
    535      1.29   thorpej 	proclist_lock_read();
    536  1.44.2.1   nathanw 	LIST_FOREACH(l, &alllwp, l_list) {
    537  1.44.2.1   nathanw 		if (!swappable(l))
    538       1.6       mrg 			continue;
    539  1.44.2.1   nathanw 		switch (l->l_stat) {
    540  1.44.2.1   nathanw 		case LSRUN:
    541  1.44.2.1   nathanw 		case LSONPROC:
    542  1.44.2.1   nathanw 			if (l->l_swtime > outpri2) {
    543  1.44.2.1   nathanw 				outl2 = l;
    544  1.44.2.1   nathanw 				outpri2 = l->l_swtime;
    545       1.6       mrg 			}
    546       1.6       mrg 			continue;
    547       1.1       mrg 
    548  1.44.2.1   nathanw 		case LSSLEEP:
    549  1.44.2.1   nathanw 		case LSSTOP:
    550  1.44.2.1   nathanw 			if (l->l_slptime >= maxslp) {
    551  1.44.2.1   nathanw 				uvm_swapout(l);
    552       1.6       mrg 				didswap++;
    553  1.44.2.1   nathanw 			} else if (l->l_slptime > outpri) {
    554  1.44.2.1   nathanw 				outl = l;
    555  1.44.2.1   nathanw 				outpri = l->l_slptime;
    556       1.6       mrg 			}
    557       1.6       mrg 			continue;
    558       1.6       mrg 		}
    559       1.6       mrg 	}
    560      1.28   thorpej 	proclist_unlock_read();
    561       1.6       mrg 
    562       1.6       mrg 	/*
    563       1.6       mrg 	 * If we didn't get rid of any real duds, toss out the next most
    564       1.6       mrg 	 * likely sleeping/stopped or running candidate.  We only do this
    565       1.6       mrg 	 * if we are real low on memory since we don't gain much by doing
    566       1.6       mrg 	 * it (USPACE bytes).
    567       1.6       mrg 	 */
    568       1.6       mrg 	if (didswap == 0 && uvmexp.free <= atop(round_page(USPACE))) {
    569  1.44.2.1   nathanw 		if ((l = outl) == NULL)
    570  1.44.2.1   nathanw 			l = outl2;
    571       1.1       mrg #ifdef DEBUG
    572       1.6       mrg 		if (swapdebug & SDB_SWAPOUT)
    573  1.44.2.1   nathanw 			printf("swapout_threads: no duds, try procp %p\n", l);
    574       1.1       mrg #endif
    575  1.44.2.1   nathanw 		if (l)
    576  1.44.2.1   nathanw 			uvm_swapout(l);
    577       1.6       mrg 	}
    578      1.43       chs 	pmap_update();
    579       1.1       mrg }
    580       1.1       mrg 
    581       1.1       mrg /*
    582  1.44.2.1   nathanw  * uvm_swapout: swap out lwp "l"
    583       1.1       mrg  *
    584       1.1       mrg  * - currently "swapout" means "unwire U-area" and "pmap_collect()"
    585       1.1       mrg  *   the pmap.
    586       1.1       mrg  * - XXXCDC: should deactivate all process' private anonymous memory
    587       1.1       mrg  */
    588       1.1       mrg 
    589       1.6       mrg static void
    590  1.44.2.1   nathanw uvm_swapout(l)
    591  1.44.2.1   nathanw 	struct lwp *l;
    592       1.1       mrg {
    593      1.13       eeh 	vaddr_t addr;
    594       1.6       mrg 	int s;
    595  1.44.2.1   nathanw 	struct proc *p = l->l_proc;
    596       1.1       mrg 
    597       1.1       mrg #ifdef DEBUG
    598       1.6       mrg 	if (swapdebug & SDB_SWAPOUT)
    599       1.6       mrg 		printf("swapout: pid %d(%s)@%p, stat %x pri %d free %d\n",
    600  1.44.2.1   nathanw 	   p->p_pid, p->p_comm, l->l_addr, l->l_stat,
    601  1.44.2.1   nathanw 	   l->l_slptime, uvmexp.free);
    602       1.1       mrg #endif
    603       1.1       mrg 
    604       1.6       mrg 	/*
    605       1.6       mrg 	 * Do any machine-specific actions necessary before swapout.
    606       1.6       mrg 	 * This can include saving floating point state, etc.
    607       1.6       mrg 	 */
    608  1.44.2.1   nathanw 	cpu_swapout(l);
    609       1.6       mrg 
    610       1.6       mrg 	/*
    611       1.6       mrg 	 * Mark it as (potentially) swapped out.
    612       1.6       mrg 	 */
    613      1.41     enami 	SCHED_LOCK(s);
    614  1.44.2.1   nathanw 	s = splstatclock();
    615  1.44.2.1   nathanw 	l->l_flag &= ~L_INMEM;
    616  1.44.2.1   nathanw 	if (l->l_stat == LSRUN)
    617  1.44.2.1   nathanw 		remrunqueue(l);
    618      1.41     enami 	SCHED_UNLOCK(s);
    619  1.44.2.1   nathanw 	l->l_swtime = 0;
    620       1.6       mrg 	++uvmexp.swapouts;
    621      1.43       chs 
    622      1.43       chs 	/*
    623      1.43       chs 	 * Unwire the to-be-swapped process's user struct and kernel stack.
    624      1.43       chs 	 */
    625  1.44.2.1   nathanw 	addr = (vaddr_t)l->l_addr;
    626      1.43       chs 	uvm_fault_unwire(kernel_map, addr, addr + USPACE); /* !P_INMEM */
    627      1.43       chs 	pmap_collect(vm_map_pmap(&p->p_vmspace->vm_map));
    628       1.1       mrg }
    629       1.1       mrg 
    630