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sysproxy.c revision 1.5
      1  1.5  ozaki /*	$NetBSD: sysproxy.c,v 1.5 2019/04/18 08:31:44 ozaki-r Exp $	*/
      2  1.1  pooka 
      3  1.1  pooka /*
      4  1.1  pooka  * Copyright (c) 2010, 2011 Antti Kantee.  All Rights Reserved.
      5  1.1  pooka  *
      6  1.1  pooka  * Redistribution and use in source and binary forms, with or without
      7  1.1  pooka  * modification, are permitted provided that the following conditions
      8  1.1  pooka  * are met:
      9  1.1  pooka  * 1. Redistributions of source code must retain the above copyright
     10  1.1  pooka  *    notice, this list of conditions and the following disclaimer.
     11  1.1  pooka  * 2. Redistributions in binary form must reproduce the above copyright
     12  1.1  pooka  *    notice, this list of conditions and the following disclaimer in the
     13  1.1  pooka  *    documentation and/or other materials provided with the distribution.
     14  1.1  pooka  *
     15  1.1  pooka  * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS
     16  1.1  pooka  * OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED
     17  1.1  pooka  * WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE
     18  1.1  pooka  * DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
     19  1.1  pooka  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     20  1.1  pooka  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR
     21  1.1  pooka  * SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     22  1.1  pooka  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     23  1.1  pooka  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     24  1.1  pooka  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     25  1.1  pooka  * SUCH DAMAGE.
     26  1.1  pooka  */
     27  1.1  pooka 
     28  1.1  pooka #include <sys/cdefs.h>
     29  1.5  ozaki __KERNEL_RCSID(0, "$NetBSD: sysproxy.c,v 1.5 2019/04/18 08:31:44 ozaki-r Exp $");
     30  1.1  pooka 
     31  1.1  pooka #include <sys/param.h>
     32  1.1  pooka #include <sys/filedesc.h>
     33  1.1  pooka #include <sys/kmem.h>
     34  1.1  pooka #include <sys/syscall.h>
     35  1.1  pooka #include <sys/syscallvar.h>
     36  1.1  pooka #include <sys/systm.h>
     37  1.1  pooka #include <sys/xcall.h>
     38  1.5  ozaki #include <sys/lockdebug.h>
     39  1.1  pooka 
     40  1.1  pooka #define _RUMP_SYSPROXY
     41  1.1  pooka #include <rump/rumpuser.h>
     42  1.1  pooka 
     43  1.4  pooka #include <rump-sys/kern.h>
     44  1.1  pooka 
     45  1.1  pooka int
     46  1.1  pooka rump_init_server(const char *url)
     47  1.1  pooka {
     48  1.1  pooka 
     49  1.1  pooka 	return rumpuser_sp_init(url, ostype, osrelease, MACHINE);
     50  1.1  pooka }
     51  1.1  pooka 
     52  1.1  pooka static pid_t
     53  1.1  pooka hyp_getpid(void)
     54  1.1  pooka {
     55  1.1  pooka 
     56  1.1  pooka 	return curproc->p_pid;
     57  1.1  pooka }
     58  1.1  pooka 
     59  1.1  pooka static int
     60  1.1  pooka hyp_syscall(int num, void *arg, long *retval)
     61  1.1  pooka {
     62  1.1  pooka 	register_t regrv[2] = {0, 0};
     63  1.1  pooka 	struct lwp *l;
     64  1.1  pooka 	struct sysent *callp;
     65  1.1  pooka 	int rv;
     66  1.1  pooka 
     67  1.1  pooka 	if (__predict_false(num >= SYS_NSYSENT))
     68  1.1  pooka 		return ENOSYS;
     69  1.1  pooka 
     70  1.1  pooka 	/* XXX: always uses native syscall vector */
     71  1.1  pooka 	callp = rump_sysent + num;
     72  1.1  pooka 	l = curlwp;
     73  1.1  pooka 	rv = sy_invoke(callp, l, (void *)arg, regrv, num);
     74  1.1  pooka 	retval[0] = regrv[0];
     75  1.1  pooka 	retval[1] = regrv[1];
     76  1.1  pooka 
     77  1.5  ozaki 	/* Sanity checks (from mi_userret) */
     78  1.5  ozaki 	LOCKDEBUG_BARRIER(NULL, 0);
     79  1.5  ozaki 	KASSERT(l->l_nopreempt == 0);
     80  1.5  ozaki 
     81  1.1  pooka 	return rv;
     82  1.1  pooka }
     83  1.1  pooka 
     84  1.3  pooka static struct pmap remotepmap;
     85  1.3  pooka 
     86  1.1  pooka static int
     87  1.1  pooka hyp_rfork(void *priv, int flags, const char *comm)
     88  1.1  pooka {
     89  1.3  pooka 	struct rump_spctl *spctl;
     90  1.2  pooka 	struct vmspace *vm;
     91  1.1  pooka 	struct proc *p;
     92  1.1  pooka 	struct lwp *l;
     93  1.1  pooka 	int error;
     94  1.1  pooka 	bool initfds;
     95  1.1  pooka 
     96  1.1  pooka 	/*
     97  1.1  pooka 	 * If we are forking off of pid 1, initialize file descriptors.
     98  1.1  pooka 	 */
     99  1.1  pooka 	l = curlwp;
    100  1.1  pooka 	if (l->l_proc->p_pid == 1) {
    101  1.1  pooka 		KASSERT(flags == RUMP_RFFD_CLEAR);
    102  1.1  pooka 		initfds = true;
    103  1.1  pooka 	} else {
    104  1.1  pooka 		initfds = false;
    105  1.1  pooka 	}
    106  1.1  pooka 
    107  1.2  pooka 	/*
    108  1.3  pooka 	 * Since it's a proxy proc, we create a vmspace for it.
    109  1.2  pooka 	 */
    110  1.3  pooka 	spctl = kmem_zalloc(sizeof(*spctl), KM_SLEEP);
    111  1.3  pooka 	vm = &spctl->spctl_vm;
    112  1.3  pooka 	uvmspace_init(vm, &remotepmap, 0, 0, false);
    113  1.3  pooka 	spctl->spctl = priv;
    114  1.2  pooka 
    115  1.2  pooka 	if ((error = rump_lwproc_rfork_vmspace(vm, flags)) != 0) {
    116  1.2  pooka 		kmem_free(vm, sizeof(*vm));
    117  1.1  pooka 		return error;
    118  1.2  pooka 	}
    119  1.1  pooka 
    120  1.1  pooka 	/*
    121  1.1  pooka 	 * We forked in this routine, so cannot use curlwp (const)
    122  1.1  pooka 	 */
    123  1.1  pooka 	l = rump_lwproc_curlwp();
    124  1.1  pooka 	p = l->l_proc;
    125  1.1  pooka 
    126  1.1  pooka 	if (comm)
    127  1.1  pooka 		strlcpy(p->p_comm, comm, sizeof(p->p_comm));
    128  1.1  pooka 	if (initfds)
    129  1.1  pooka 		rump_consdev_init();
    130  1.1  pooka 
    131  1.1  pooka 	return 0;
    132  1.1  pooka }
    133  1.1  pooka 
    134  1.1  pooka /*
    135  1.1  pooka  * Order all lwps in a process to exit.  does *not* wait for them to drain.
    136  1.1  pooka  */
    137  1.1  pooka static void
    138  1.1  pooka hyp_lwpexit(void)
    139  1.1  pooka {
    140  1.1  pooka 	struct proc *p = curproc;
    141  1.1  pooka 	uint64_t where;
    142  1.1  pooka 	struct lwp *l;
    143  1.1  pooka 
    144  1.1  pooka 	mutex_enter(p->p_lock);
    145  1.1  pooka 	/*
    146  1.1  pooka 	 * First pass: mark all lwps in the process with LW_RUMP_QEXIT
    147  1.1  pooka 	 * so that they know they should exit.
    148  1.1  pooka 	 */
    149  1.1  pooka 	LIST_FOREACH(l, &p->p_lwps, l_sibling) {
    150  1.1  pooka 		if (l == curlwp)
    151  1.1  pooka 			continue;
    152  1.1  pooka 		l->l_flag |= LW_RUMP_QEXIT;
    153  1.1  pooka 	}
    154  1.1  pooka 	mutex_exit(p->p_lock);
    155  1.1  pooka 
    156  1.1  pooka 	/*
    157  1.1  pooka 	 * Next, make sure everyone on all CPUs sees our status
    158  1.1  pooka 	 * update.  This keeps threads inside cv_wait() and makes
    159  1.1  pooka 	 * sure we don't access a stale cv pointer later when
    160  1.1  pooka 	 * we wake up the threads.
    161  1.1  pooka 	 */
    162  1.1  pooka 
    163  1.1  pooka 	where = xc_broadcast(0, (xcfunc_t)nullop, NULL, NULL);
    164  1.1  pooka 	xc_wait(where);
    165  1.1  pooka 
    166  1.1  pooka 	/*
    167  1.1  pooka 	 * Ok, all lwps are either:
    168  1.1  pooka 	 *  1) not in the cv code
    169  1.1  pooka 	 *  2) sleeping on l->l_private
    170  1.1  pooka 	 *  3) sleeping on p->p_waitcv
    171  1.1  pooka 	 *
    172  1.1  pooka 	 * Either way, l_private is stable until we set PS_RUMP_LWPEXIT
    173  1.1  pooka 	 * in p->p_sflag.
    174  1.1  pooka 	 */
    175  1.1  pooka 
    176  1.1  pooka 	mutex_enter(p->p_lock);
    177  1.1  pooka 	LIST_FOREACH(l, &p->p_lwps, l_sibling) {
    178  1.1  pooka 		if (l->l_private)
    179  1.1  pooka 			cv_broadcast(l->l_private);
    180  1.1  pooka 	}
    181  1.1  pooka 	p->p_sflag |= PS_RUMP_LWPEXIT;
    182  1.1  pooka 	cv_broadcast(&p->p_waitcv);
    183  1.1  pooka 	mutex_exit(p->p_lock);
    184  1.1  pooka }
    185  1.1  pooka 
    186  1.1  pooka /*
    187  1.1  pooka  * Notify process that all threads have been drained and exec is complete.
    188  1.1  pooka  */
    189  1.1  pooka static void
    190  1.1  pooka hyp_execnotify(const char *comm)
    191  1.1  pooka {
    192  1.1  pooka 	struct proc *p = curproc;
    193  1.1  pooka 
    194  1.1  pooka 	fd_closeexec();
    195  1.1  pooka 	mutex_enter(p->p_lock);
    196  1.1  pooka 	KASSERT(p->p_nlwps == 1 && p->p_sflag & PS_RUMP_LWPEXIT);
    197  1.1  pooka 	p->p_sflag &= ~PS_RUMP_LWPEXIT;
    198  1.1  pooka 	mutex_exit(p->p_lock);
    199  1.1  pooka 	strlcpy(p->p_comm, comm, sizeof(p->p_comm));
    200  1.1  pooka }
    201  1.1  pooka 
    202  1.1  pooka /*
    203  1.1  pooka  * Initialize interface pointers since component is present.
    204  1.1  pooka  */
    205  1.1  pooka RUMP_COMPONENT(RUMP_COMPONENT_KERN)
    206  1.1  pooka {
    207  1.1  pooka 
    208  1.1  pooka 	rump_sysproxy_ops.rspo_copyin		= rumpuser_sp_copyin;
    209  1.1  pooka 	rump_sysproxy_ops.rspo_copyinstr	= rumpuser_sp_copyinstr;
    210  1.1  pooka 	rump_sysproxy_ops.rspo_copyout		= rumpuser_sp_copyout;
    211  1.1  pooka 	rump_sysproxy_ops.rspo_copyoutstr	= rumpuser_sp_copyoutstr;
    212  1.1  pooka 	rump_sysproxy_ops.rspo_anonmmap		= rumpuser_sp_anonmmap;
    213  1.1  pooka 	rump_sysproxy_ops.rspo_raise		= rumpuser_sp_raise;
    214  1.1  pooka 	rump_sysproxy_ops.rspo_fini		= rumpuser_sp_fini;
    215  1.1  pooka 
    216  1.1  pooka 	rump_sysproxy_ops.rspo_hyp_getpid	= hyp_getpid;
    217  1.1  pooka 	rump_sysproxy_ops.rspo_hyp_syscall	= hyp_syscall;
    218  1.1  pooka 	rump_sysproxy_ops.rspo_hyp_rfork	= hyp_rfork;
    219  1.1  pooka 	rump_sysproxy_ops.rspo_hyp_lwpexit	= hyp_lwpexit;
    220  1.1  pooka 	rump_sysproxy_ops.rspo_hyp_execnotify	= hyp_execnotify;
    221  1.1  pooka }
    222