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subr_xcall.c revision 1.4.4.1
      1  1.4.4.1  mjf /*	$NetBSD: subr_xcall.c,v 1.4.4.1 2007/11/19 00:48:52 mjf Exp $	*/
      2      1.2   ad 
      3      1.2   ad /*-
      4      1.2   ad  * Copyright (c) 2007 The NetBSD Foundation, Inc.
      5      1.2   ad  * All rights reserved.
      6      1.2   ad  *
      7      1.2   ad  * This code is derived from software contributed to The NetBSD Foundation
      8      1.2   ad  * by Andrew Doran.
      9      1.2   ad  *
     10      1.2   ad  * Redistribution and use in source and binary forms, with or without
     11      1.2   ad  * modification, are permitted provided that the following conditions
     12      1.2   ad  * are met:
     13      1.2   ad  * 1. Redistributions of source code must retain the above copyright
     14      1.2   ad  *    notice, this list of conditions and the following disclaimer.
     15      1.2   ad  * 2. Redistributions in binary form must reproduce the above copyright
     16      1.2   ad  *    notice, this list of conditions and the following disclaimer in the
     17      1.2   ad  *    documentation and/or other materials provided with the distribution.
     18      1.2   ad  * 3. All advertising materials mentioning features or use of this software
     19      1.2   ad  *    must display the following acknowledgement:
     20      1.2   ad  *	This product includes software developed by the NetBSD
     21      1.2   ad  *	Foundation, Inc. and its contributors.
     22      1.2   ad  * 4. Neither the name of The NetBSD Foundation nor the names of its
     23      1.2   ad  *    contributors may be used to endorse or promote products derived
     24      1.2   ad  *    from this software without specific prior written permission.
     25      1.2   ad  *
     26      1.2   ad  * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
     27      1.2   ad  * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
     28      1.2   ad  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
     29      1.2   ad  * PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
     30      1.2   ad  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     31      1.2   ad  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     32      1.2   ad  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
     33      1.2   ad  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
     34      1.2   ad  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
     35      1.2   ad  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
     36      1.2   ad  * POSSIBILITY OF SUCH DAMAGE.
     37      1.2   ad  */
     38      1.2   ad 
     39      1.2   ad /*
     40      1.2   ad  * Cross call support
     41      1.2   ad  *
     42      1.2   ad  * Background
     43      1.2   ad  *
     44      1.2   ad  *	Sometimes it is necessary to modify hardware state that is tied
     45      1.2   ad  *	directly to individual CPUs (such as a CPU's local timer), and
     46      1.2   ad  *	these updates can not be done remotely by another CPU.  The LWP
     47      1.2   ad  *	requesting the update may be unable to guarantee that it will be
     48      1.2   ad  *	running on the CPU where the update must occur, when the update
     49      1.2   ad  *	occurs.
     50      1.2   ad  *
     51      1.2   ad  *	Additionally, it's sometimes necessary to modify per-CPU software
     52      1.2   ad  *	state from a remote CPU.  Where these update operations are so
     53      1.2   ad  *	rare or the access to the per-CPU data so frequent that the cost
     54      1.2   ad  *	of using locking or atomic operations to provide coherency is
     55      1.4   ad  *	prohibitive, another way must be found.
     56      1.2   ad  *
     57      1.2   ad  *	Cross calls help to solve these types of problem by allowing
     58      1.2   ad  *	any CPU in the system to request that an arbitrary function be
     59      1.2   ad  *	executed on any other CPU.
     60      1.2   ad  *
     61      1.2   ad  * Implementation
     62      1.2   ad  *
     63      1.2   ad  *	A slow mechanism for making 'low priority' cross calls is
     64      1.2   ad  *	provided.  The function to be executed runs on the remote CPU
     65      1.2   ad  *	within a bound kthread.  No queueing is provided, and the
     66      1.2   ad  *	implementation uses global state.  The function being called may
     67      1.2   ad  *	block briefly on locks, but in doing so must be careful to not
     68      1.2   ad  *	interfere with other cross calls in the system.  The function is
     69      1.2   ad  *	called with thread context and not from a soft interrupt, so it
     70      1.2   ad  *	can ensure that it is not interrupting other code running on the
     71      1.2   ad  *	CPU, and so has exclusive access to the CPU.  Since this facility
     72      1.2   ad  *	is heavyweight, it's expected that it will not be used often.
     73      1.2   ad  *
     74      1.4   ad  *	Cross calls must not allocate memory, as the pagedaemon uses
     75      1.4   ad  *	them (and memory allocation may need to wait on the pagedaemon).
     76      1.4   ad  *
     77      1.2   ad  * Future directions
     78      1.2   ad  *
     79      1.2   ad  *	Add a low-overhead mechanism to run cross calls in interrupt
     80      1.2   ad  *	context (XC_HIGHPRI).
     81      1.2   ad  */
     82      1.2   ad 
     83      1.2   ad #include <sys/cdefs.h>
     84  1.4.4.1  mjf __KERNEL_RCSID(0, "$NetBSD: subr_xcall.c,v 1.4.4.1 2007/11/19 00:48:52 mjf Exp $");
     85      1.2   ad 
     86      1.2   ad #include <sys/types.h>
     87      1.2   ad #include <sys/param.h>
     88      1.2   ad #include <sys/xcall.h>
     89      1.2   ad #include <sys/mutex.h>
     90      1.2   ad #include <sys/condvar.h>
     91      1.2   ad #include <sys/evcnt.h>
     92      1.2   ad #include <sys/kthread.h>
     93      1.3   ad #include <sys/cpu.h>
     94      1.2   ad 
     95      1.2   ad static void	xc_thread(void *);
     96      1.2   ad static uint64_t	xc_lowpri(u_int, xcfunc_t, void *, void *, struct cpu_info *);
     97      1.2   ad 
     98      1.2   ad static kmutex_t		xc_lock;
     99      1.2   ad static xcfunc_t		xc_func;
    100      1.2   ad static void		*xc_arg1;
    101      1.2   ad static void		*xc_arg2;
    102      1.2   ad static kcondvar_t	xc_busy;
    103      1.2   ad static struct evcnt	xc_unicast_ev;
    104      1.2   ad static struct evcnt	xc_broadcast_ev;
    105      1.2   ad static uint64_t		xc_headp;
    106      1.2   ad static uint64_t		xc_tailp;
    107      1.2   ad static uint64_t		xc_donep;
    108      1.2   ad 
    109      1.2   ad /*
    110      1.2   ad  * xc_init_cpu:
    111      1.2   ad  *
    112      1.2   ad  *	Initialize the cross-call subsystem.  Called once for each CPU
    113      1.2   ad  *	in the system as they are attached.
    114      1.2   ad  */
    115      1.2   ad void
    116      1.2   ad xc_init_cpu(struct cpu_info *ci)
    117      1.2   ad {
    118      1.2   ad 	static bool again;
    119      1.2   ad 	int error;
    120      1.2   ad 
    121      1.2   ad 	if (!again) {
    122      1.2   ad 		/* Autoconfiguration will prevent re-entry. */
    123      1.2   ad 		again = true;
    124      1.2   ad 		mutex_init(&xc_lock, MUTEX_DEFAULT, IPL_NONE);
    125      1.2   ad 		cv_init(&xc_busy, "xcallbsy");
    126      1.2   ad 		evcnt_attach_dynamic(&xc_unicast_ev, EVCNT_TYPE_MISC, NULL,
    127      1.2   ad 		   "crosscall", "unicast");
    128      1.2   ad 		evcnt_attach_dynamic(&xc_broadcast_ev, EVCNT_TYPE_MISC, NULL,
    129      1.2   ad 		   "crosscall", "broadcast");
    130      1.2   ad 	}
    131      1.2   ad 
    132      1.2   ad 	cv_init(&ci->ci_data.cpu_xcall, "xcall");
    133      1.2   ad 	error = kthread_create(PRI_XCALL, KTHREAD_MPSAFE, ci, xc_thread,
    134      1.2   ad 	    NULL, NULL, "xcall/%d", (int)ci->ci_cpuid);
    135      1.2   ad 	if (error != 0)
    136      1.2   ad 		panic("xc_init_cpu: error %d", error);
    137      1.2   ad }
    138      1.2   ad 
    139      1.2   ad /*
    140      1.2   ad  * xc_unicast:
    141      1.2   ad  *
    142      1.2   ad  *	Trigger a call on all CPUs in the system.
    143      1.2   ad  */
    144      1.2   ad uint64_t
    145      1.2   ad xc_broadcast(u_int flags, xcfunc_t func, void *arg1, void *arg2)
    146      1.2   ad {
    147      1.2   ad 
    148      1.2   ad 	if ((flags & XC_HIGHPRI) != 0) {
    149      1.2   ad 		panic("xc_unicast: no high priority crosscalls yet");
    150      1.2   ad 	} else {
    151      1.2   ad 		return xc_lowpri(flags, func, arg1, arg2, NULL);
    152      1.2   ad 	}
    153      1.2   ad }
    154      1.2   ad 
    155      1.2   ad /*
    156      1.2   ad  * xc_unicast:
    157      1.2   ad  *
    158      1.2   ad  *	Trigger a call on one CPU.
    159      1.2   ad  */
    160      1.2   ad uint64_t
    161      1.2   ad xc_unicast(u_int flags, xcfunc_t func, void *arg1, void *arg2,
    162      1.2   ad 	   struct cpu_info *ci)
    163      1.2   ad {
    164      1.2   ad 
    165      1.2   ad 	if ((flags & XC_HIGHPRI) != 0) {
    166      1.2   ad 		panic("xc_unicast: no high priority crosscalls yet");
    167      1.2   ad 	} else {
    168      1.2   ad 		KASSERT(ci != NULL);
    169      1.2   ad 		return xc_lowpri(flags, func, arg1, arg2, ci);
    170      1.2   ad 	}
    171      1.2   ad }
    172      1.2   ad 
    173      1.2   ad /*
    174      1.2   ad  * xc_lowpri:
    175      1.2   ad  *
    176      1.2   ad  *	Trigger a low priority call on one or more CPUs.
    177      1.2   ad  */
    178      1.2   ad static uint64_t
    179      1.2   ad xc_lowpri(u_int flags, xcfunc_t func, void *arg1, void *arg2,
    180      1.2   ad 	  struct cpu_info *ci)
    181      1.2   ad {
    182      1.2   ad 	CPU_INFO_ITERATOR cii;
    183      1.2   ad 	u_int where;
    184      1.2   ad 
    185      1.2   ad 	mutex_enter(&xc_lock);
    186      1.2   ad 	while (xc_headp != xc_tailp)
    187      1.2   ad 		cv_wait(&xc_busy, &xc_lock);
    188      1.2   ad 	xc_arg1 = arg1;
    189      1.2   ad 	xc_arg2 = arg2;
    190      1.2   ad 	xc_func = func;
    191      1.2   ad 	if (ci == NULL) {
    192      1.2   ad 		xc_broadcast_ev.ev_count++;
    193      1.2   ad 		for (CPU_INFO_FOREACH(cii, ci)) {
    194      1.2   ad 			xc_headp += 1;
    195      1.2   ad 			ci->ci_data.cpu_xcall_pending = true;
    196      1.2   ad 			cv_signal(&ci->ci_data.cpu_xcall);
    197      1.2   ad 		}
    198      1.2   ad 	} else {
    199      1.2   ad 		xc_unicast_ev.ev_count++;
    200      1.2   ad 		xc_headp += 1;
    201      1.2   ad 		ci->ci_data.cpu_xcall_pending = true;
    202      1.2   ad 		cv_signal(&ci->ci_data.cpu_xcall);
    203      1.2   ad 	}
    204      1.2   ad 	KASSERT(xc_tailp < xc_headp);
    205      1.2   ad 	where = xc_headp;
    206      1.2   ad 	mutex_exit(&xc_lock);
    207      1.2   ad 
    208      1.2   ad 	return where;
    209      1.2   ad }
    210      1.2   ad 
    211      1.2   ad /*
    212      1.2   ad  * xc_wait:
    213      1.2   ad  *
    214      1.2   ad  *	Wait for a cross call to complete.
    215      1.2   ad  */
    216      1.2   ad void
    217      1.2   ad xc_wait(uint64_t where)
    218      1.2   ad {
    219      1.2   ad 
    220      1.2   ad 	if (xc_donep >= where)
    221      1.2   ad 		return;
    222      1.2   ad 
    223      1.2   ad 	mutex_enter(&xc_lock);
    224      1.2   ad 	while (xc_donep < where)
    225      1.2   ad 		cv_wait(&xc_busy, &xc_lock);
    226      1.2   ad 	mutex_exit(&xc_lock);
    227      1.2   ad }
    228      1.2   ad 
    229      1.2   ad /*
    230      1.2   ad  * xc_thread:
    231      1.2   ad  *
    232      1.2   ad  *	One thread per-CPU to dispatch low priority calls.
    233      1.2   ad  */
    234      1.2   ad static void
    235      1.2   ad xc_thread(void *cookie)
    236      1.2   ad {
    237      1.2   ad 	void *arg1, *arg2;
    238      1.2   ad 	struct cpu_info *ci;
    239      1.2   ad 	xcfunc_t func;
    240      1.2   ad 
    241      1.2   ad 	ci = curcpu();
    242      1.2   ad 
    243      1.2   ad 	mutex_enter(&xc_lock);
    244      1.2   ad 	for (;;) {
    245      1.2   ad 		while (!ci->ci_data.cpu_xcall_pending) {
    246      1.2   ad 			if (xc_headp == xc_tailp)
    247      1.2   ad 				cv_broadcast(&xc_busy);
    248      1.2   ad 			cv_wait(&ci->ci_data.cpu_xcall, &xc_lock);
    249      1.2   ad 			KASSERT(ci == curcpu());
    250      1.2   ad 		}
    251      1.2   ad 		ci->ci_data.cpu_xcall_pending = false;
    252      1.2   ad 		func = xc_func;
    253      1.2   ad 		arg1 = xc_arg1;
    254      1.2   ad 		arg2 = xc_arg2;
    255      1.2   ad 		xc_tailp++;
    256      1.2   ad 		mutex_exit(&xc_lock);
    257      1.2   ad 
    258      1.2   ad 		(*func)(arg1, arg2);
    259      1.2   ad 
    260      1.2   ad 		mutex_enter(&xc_lock);
    261      1.2   ad 		xc_donep++;
    262      1.2   ad 	}
    263      1.2   ad 	/* NOTREACHED */
    264      1.2   ad }
    265