Home | History | Annotate | Line # | Download | only in kern
subr_percpu.c revision 1.24
      1  1.24   thorpej /*	$NetBSD: subr_percpu.c,v 1.24 2020/02/07 11:55:22 thorpej Exp $	*/
      2   1.1      yamt 
      3   1.1      yamt /*-
      4   1.1      yamt  * Copyright (c)2007,2008 YAMAMOTO Takashi,
      5   1.1      yamt  * All rights reserved.
      6   1.1      yamt  *
      7   1.1      yamt  * Redistribution and use in source and binary forms, with or without
      8   1.1      yamt  * modification, are permitted provided that the following conditions
      9   1.1      yamt  * are met:
     10   1.1      yamt  * 1. Redistributions of source code must retain the above copyright
     11   1.1      yamt  *    notice, this list of conditions and the following disclaimer.
     12   1.1      yamt  * 2. Redistributions in binary form must reproduce the above copyright
     13   1.1      yamt  *    notice, this list of conditions and the following disclaimer in the
     14   1.1      yamt  *    documentation and/or other materials provided with the distribution.
     15   1.1      yamt  *
     16   1.1      yamt  * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
     17   1.1      yamt  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     18   1.1      yamt  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     19   1.1      yamt  * ARE DISCLAIMED.  IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
     20   1.1      yamt  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     21   1.1      yamt  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     22   1.1      yamt  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     23   1.1      yamt  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     24   1.1      yamt  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     25   1.1      yamt  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     26   1.1      yamt  * SUCH DAMAGE.
     27   1.1      yamt  */
     28   1.1      yamt 
     29   1.1      yamt /*
     30   1.1      yamt  * per-cpu storage.
     31   1.1      yamt  */
     32   1.1      yamt 
     33   1.1      yamt #include <sys/cdefs.h>
     34  1.24   thorpej __KERNEL_RCSID(0, "$NetBSD: subr_percpu.c,v 1.24 2020/02/07 11:55:22 thorpej Exp $");
     35   1.1      yamt 
     36   1.1      yamt #include <sys/param.h>
     37   1.1      yamt #include <sys/cpu.h>
     38  1.23  riastrad #include <sys/kernel.h>
     39   1.1      yamt #include <sys/kmem.h>
     40   1.1      yamt #include <sys/mutex.h>
     41   1.1      yamt #include <sys/percpu.h>
     42   1.1      yamt #include <sys/rwlock.h>
     43   1.1      yamt #include <sys/vmem.h>
     44   1.1      yamt #include <sys/xcall.h>
     45   1.1      yamt 
     46   1.1      yamt #define	PERCPU_QUANTUM_SIZE	(ALIGNBYTES + 1)
     47   1.1      yamt #define	PERCPU_QCACHE_MAX	0
     48   1.1      yamt #define	PERCPU_IMPORT_SIZE	2048
     49   1.1      yamt 
     50  1.21  riastrad struct percpu {
     51  1.21  riastrad 	unsigned		pc_offset;
     52  1.21  riastrad 	size_t			pc_size;
     53  1.21  riastrad 	percpu_callback_t	pc_dtor;
     54  1.21  riastrad 	void			*pc_cookie;
     55  1.21  riastrad };
     56   1.8      yamt 
     57  1.13     rmind static krwlock_t	percpu_swap_lock	__cacheline_aligned;
     58  1.22  riastrad static vmem_t *		percpu_offset_arena	__read_mostly;
     59  1.22  riastrad static struct {
     60  1.22  riastrad 	kmutex_t	lock;
     61  1.22  riastrad 	unsigned int	nextoff;
     62  1.22  riastrad } percpu_allocation __cacheline_aligned;
     63   1.9        ad 
     64   1.1      yamt static percpu_cpu_t *
     65   1.1      yamt cpu_percpu(struct cpu_info *ci)
     66   1.1      yamt {
     67   1.1      yamt 
     68   1.1      yamt 	return &ci->ci_data.cpu_percpu;
     69   1.1      yamt }
     70   1.1      yamt 
     71   1.1      yamt static unsigned int
     72   1.1      yamt percpu_offset(percpu_t *pc)
     73   1.1      yamt {
     74  1.21  riastrad 	const unsigned int off = pc->pc_offset;
     75   1.1      yamt 
     76  1.22  riastrad 	KASSERT(off < percpu_allocation.nextoff);
     77   1.8      yamt 	return off;
     78   1.1      yamt }
     79   1.1      yamt 
     80   1.1      yamt /*
     81   1.1      yamt  * percpu_cpu_swap: crosscall handler for percpu_cpu_enlarge
     82   1.1      yamt  */
     83  1.19     kamil __noubsan
     84   1.1      yamt static void
     85   1.1      yamt percpu_cpu_swap(void *p1, void *p2)
     86   1.1      yamt {
     87   1.1      yamt 	struct cpu_info * const ci = p1;
     88   1.1      yamt 	percpu_cpu_t * const newpcc = p2;
     89   1.1      yamt 	percpu_cpu_t * const pcc = cpu_percpu(ci);
     90   1.1      yamt 
     91  1.12    martin 	KASSERT(ci == curcpu() || !mp_online);
     92  1.11      matt 
     93   1.1      yamt 	/*
     94   1.1      yamt 	 * swap *pcc and *newpcc unless anyone has beaten us.
     95   1.1      yamt 	 */
     96   1.1      yamt 	rw_enter(&percpu_swap_lock, RW_WRITER);
     97   1.1      yamt 	if (newpcc->pcc_size > pcc->pcc_size) {
     98   1.1      yamt 		percpu_cpu_t tmp;
     99   1.1      yamt 		int s;
    100   1.1      yamt 
    101   1.1      yamt 		tmp = *pcc;
    102   1.1      yamt 
    103   1.1      yamt 		/*
    104   1.1      yamt 		 * block interrupts so that we don't lose their modifications.
    105   1.1      yamt 		 */
    106   1.1      yamt 
    107   1.1      yamt 		s = splhigh();
    108   1.1      yamt 
    109   1.1      yamt 		/*
    110   1.1      yamt 		 * copy data to new storage.
    111   1.1      yamt 		 */
    112   1.1      yamt 
    113   1.1      yamt 		memcpy(newpcc->pcc_data, pcc->pcc_data, pcc->pcc_size);
    114   1.1      yamt 
    115   1.1      yamt 		/*
    116   1.1      yamt 		 * this assignment needs to be atomic for percpu_getptr_remote.
    117   1.1      yamt 		 */
    118   1.1      yamt 
    119   1.1      yamt 		pcc->pcc_data = newpcc->pcc_data;
    120   1.1      yamt 
    121   1.1      yamt 		splx(s);
    122   1.1      yamt 
    123   1.1      yamt 		pcc->pcc_size = newpcc->pcc_size;
    124   1.1      yamt 		*newpcc = tmp;
    125   1.1      yamt 	}
    126   1.1      yamt 	rw_exit(&percpu_swap_lock);
    127   1.1      yamt }
    128   1.1      yamt 
    129   1.1      yamt /*
    130   1.1      yamt  * percpu_cpu_enlarge: ensure that percpu_cpu_t of each cpus have enough space
    131   1.1      yamt  */
    132   1.1      yamt 
    133   1.1      yamt static void
    134   1.1      yamt percpu_cpu_enlarge(size_t size)
    135   1.1      yamt {
    136   1.1      yamt 	CPU_INFO_ITERATOR cii;
    137   1.1      yamt 	struct cpu_info *ci;
    138   1.1      yamt 
    139   1.1      yamt 	for (CPU_INFO_FOREACH(cii, ci)) {
    140   1.1      yamt 		percpu_cpu_t pcc;
    141   1.1      yamt 
    142   1.1      yamt 		pcc.pcc_data = kmem_alloc(size, KM_SLEEP); /* XXX cacheline */
    143   1.1      yamt 		pcc.pcc_size = size;
    144   1.1      yamt 		if (!mp_online) {
    145   1.1      yamt 			percpu_cpu_swap(ci, &pcc);
    146   1.1      yamt 		} else {
    147   1.1      yamt 			uint64_t where;
    148   1.1      yamt 
    149   1.1      yamt 			where = xc_unicast(0, percpu_cpu_swap, ci, &pcc, ci);
    150   1.1      yamt 			xc_wait(where);
    151   1.1      yamt 		}
    152  1.20  riastrad 		KASSERT(pcc.pcc_size <= size);
    153   1.1      yamt 		if (pcc.pcc_data != NULL) {
    154   1.1      yamt 			kmem_free(pcc.pcc_data, pcc.pcc_size);
    155   1.1      yamt 		}
    156   1.1      yamt 	}
    157   1.1      yamt }
    158   1.1      yamt 
    159   1.1      yamt /*
    160   1.1      yamt  * percpu_backend_alloc: vmem import callback for percpu_offset_arena
    161   1.1      yamt  */
    162   1.1      yamt 
    163  1.15    dyoung static int
    164  1.16      para percpu_backend_alloc(vmem_t *dummy, vmem_size_t size, vmem_size_t *resultsize,
    165  1.15    dyoung     vm_flag_t vmflags, vmem_addr_t *addrp)
    166   1.1      yamt {
    167   1.1      yamt 	unsigned int offset;
    168   1.1      yamt 	unsigned int nextoff;
    169   1.1      yamt 
    170   1.3      yamt 	ASSERT_SLEEPABLE();
    171   1.1      yamt 	KASSERT(dummy == NULL);
    172   1.1      yamt 
    173   1.1      yamt 	if ((vmflags & VM_NOSLEEP) != 0)
    174  1.15    dyoung 		return ENOMEM;
    175   1.1      yamt 
    176   1.1      yamt 	size = roundup(size, PERCPU_IMPORT_SIZE);
    177  1.22  riastrad 	mutex_enter(&percpu_allocation.lock);
    178  1.22  riastrad 	offset = percpu_allocation.nextoff;
    179  1.22  riastrad 	percpu_allocation.nextoff = nextoff = percpu_allocation.nextoff + size;
    180  1.22  riastrad 	mutex_exit(&percpu_allocation.lock);
    181   1.1      yamt 
    182   1.1      yamt 	percpu_cpu_enlarge(nextoff);
    183   1.1      yamt 
    184   1.1      yamt 	*resultsize = size;
    185  1.15    dyoung 	*addrp = (vmem_addr_t)offset;
    186  1.15    dyoung 	return 0;
    187   1.1      yamt }
    188   1.1      yamt 
    189   1.2      yamt static void
    190   1.2      yamt percpu_zero_cb(void *vp, void *vp2, struct cpu_info *ci)
    191   1.2      yamt {
    192   1.2      yamt 	size_t sz = (uintptr_t)vp2;
    193   1.2      yamt 
    194   1.2      yamt 	memset(vp, 0, sz);
    195   1.2      yamt }
    196   1.2      yamt 
    197   1.2      yamt /*
    198   1.2      yamt  * percpu_zero: initialize percpu storage with zero.
    199   1.2      yamt  */
    200   1.2      yamt 
    201   1.2      yamt static void
    202   1.2      yamt percpu_zero(percpu_t *pc, size_t sz)
    203   1.2      yamt {
    204   1.2      yamt 
    205   1.2      yamt 	percpu_foreach(pc, percpu_zero_cb, (void *)(uintptr_t)sz);
    206   1.2      yamt }
    207   1.2      yamt 
    208   1.1      yamt /*
    209   1.1      yamt  * percpu_init: subsystem initialization
    210   1.1      yamt  */
    211   1.1      yamt 
    212   1.1      yamt void
    213   1.1      yamt percpu_init(void)
    214   1.1      yamt {
    215   1.1      yamt 
    216   1.3      yamt 	ASSERT_SLEEPABLE();
    217   1.1      yamt 	rw_init(&percpu_swap_lock);
    218  1.22  riastrad 	mutex_init(&percpu_allocation.lock, MUTEX_DEFAULT, IPL_NONE);
    219  1.22  riastrad 	percpu_allocation.nextoff = PERCPU_QUANTUM_SIZE;
    220   1.1      yamt 
    221  1.16      para 	percpu_offset_arena = vmem_xcreate("percpu", 0, 0, PERCPU_QUANTUM_SIZE,
    222   1.1      yamt 	    percpu_backend_alloc, NULL, NULL, PERCPU_QCACHE_MAX, VM_SLEEP,
    223   1.1      yamt 	    IPL_NONE);
    224   1.1      yamt }
    225   1.1      yamt 
    226   1.1      yamt /*
    227   1.1      yamt  * percpu_init_cpu: cpu initialization
    228   1.1      yamt  *
    229   1.1      yamt  * => should be called before the cpu appears on the list for CPU_INFO_FOREACH.
    230   1.1      yamt  */
    231   1.1      yamt 
    232   1.1      yamt void
    233   1.1      yamt percpu_init_cpu(struct cpu_info *ci)
    234   1.1      yamt {
    235   1.1      yamt 	percpu_cpu_t * const pcc = cpu_percpu(ci);
    236  1.22  riastrad 	size_t size = percpu_allocation.nextoff; /* XXX racy */
    237   1.1      yamt 
    238   1.3      yamt 	ASSERT_SLEEPABLE();
    239   1.1      yamt 	pcc->pcc_size = size;
    240   1.1      yamt 	if (size) {
    241   1.1      yamt 		pcc->pcc_data = kmem_zalloc(pcc->pcc_size, KM_SLEEP);
    242   1.1      yamt 	}
    243   1.1      yamt }
    244   1.1      yamt 
    245   1.1      yamt /*
    246   1.1      yamt  * percpu_alloc: allocate percpu storage
    247   1.1      yamt  *
    248   1.1      yamt  * => called in thread context.
    249   1.1      yamt  * => considered as an expensive and rare operation.
    250   1.2      yamt  * => allocated storage is initialized with zeros.
    251   1.1      yamt  */
    252   1.1      yamt 
    253   1.1      yamt percpu_t *
    254   1.1      yamt percpu_alloc(size_t size)
    255   1.1      yamt {
    256  1.21  riastrad 
    257  1.21  riastrad 	return percpu_create(size, NULL, NULL, NULL);
    258  1.21  riastrad }
    259  1.21  riastrad 
    260  1.21  riastrad /*
    261  1.21  riastrad  * percpu_create: allocate percpu storage and associate ctor/dtor with it
    262  1.21  riastrad  *
    263  1.21  riastrad  * => called in thread context.
    264  1.21  riastrad  * => considered as an expensive and rare operation.
    265  1.21  riastrad  * => allocated storage is initialized by ctor, or zeros if ctor is null
    266  1.21  riastrad  * => percpu_free will call dtor first, if dtor is nonnull
    267  1.21  riastrad  * => ctor or dtor may sleep, even on allocation
    268  1.21  riastrad  */
    269  1.21  riastrad 
    270  1.21  riastrad percpu_t *
    271  1.21  riastrad percpu_create(size_t size, percpu_callback_t ctor, percpu_callback_t dtor,
    272  1.21  riastrad     void *cookie)
    273  1.21  riastrad {
    274  1.15    dyoung 	vmem_addr_t offset;
    275   1.1      yamt 	percpu_t *pc;
    276   1.1      yamt 
    277   1.3      yamt 	ASSERT_SLEEPABLE();
    278  1.18       chs 	(void)vmem_alloc(percpu_offset_arena, size, VM_SLEEP | VM_BESTFIT,
    279  1.18       chs 	    &offset);
    280  1.21  riastrad 
    281  1.21  riastrad 	pc = kmem_alloc(sizeof(*pc), KM_SLEEP);
    282  1.21  riastrad 	pc->pc_offset = offset;
    283  1.21  riastrad 	pc->pc_size = size;
    284  1.21  riastrad 	pc->pc_dtor = dtor;
    285  1.21  riastrad 	pc->pc_cookie = cookie;
    286  1.21  riastrad 
    287  1.21  riastrad 	if (ctor) {
    288  1.21  riastrad 		CPU_INFO_ITERATOR cii;
    289  1.21  riastrad 		struct cpu_info *ci;
    290  1.21  riastrad 		void *buf;
    291  1.21  riastrad 
    292  1.21  riastrad 		buf = kmem_alloc(size, KM_SLEEP);
    293  1.21  riastrad 		for (CPU_INFO_FOREACH(cii, ci)) {
    294  1.21  riastrad 			memset(buf, 0, size);
    295  1.21  riastrad 			(*ctor)(buf, cookie, ci);
    296  1.21  riastrad 			percpu_traverse_enter();
    297  1.21  riastrad 			memcpy(percpu_getptr_remote(pc, ci), buf, size);
    298  1.21  riastrad 			percpu_traverse_exit();
    299  1.21  riastrad 		}
    300  1.21  riastrad 		explicit_memset(buf, 0, size);
    301  1.21  riastrad 		kmem_free(buf, size);
    302  1.21  riastrad 	} else {
    303  1.21  riastrad 		percpu_zero(pc, size);
    304  1.21  riastrad 	}
    305  1.21  riastrad 
    306   1.1      yamt 	return pc;
    307   1.1      yamt }
    308   1.1      yamt 
    309   1.1      yamt /*
    310   1.5      yamt  * percpu_free: free percpu storage
    311   1.1      yamt  *
    312   1.1      yamt  * => called in thread context.
    313   1.1      yamt  * => considered as an expensive and rare operation.
    314   1.1      yamt  */
    315   1.1      yamt 
    316   1.1      yamt void
    317   1.1      yamt percpu_free(percpu_t *pc, size_t size)
    318   1.1      yamt {
    319   1.1      yamt 
    320   1.3      yamt 	ASSERT_SLEEPABLE();
    321  1.21  riastrad 	KASSERT(size == pc->pc_size);
    322  1.21  riastrad 
    323  1.21  riastrad 	if (pc->pc_dtor) {
    324  1.21  riastrad 		CPU_INFO_ITERATOR cii;
    325  1.21  riastrad 		struct cpu_info *ci;
    326  1.21  riastrad 		void *buf;
    327  1.21  riastrad 
    328  1.21  riastrad 		buf = kmem_alloc(size, KM_SLEEP);
    329  1.21  riastrad 		for (CPU_INFO_FOREACH(cii, ci)) {
    330  1.21  riastrad 			percpu_traverse_enter();
    331  1.21  riastrad 			memcpy(buf, percpu_getptr_remote(pc, ci), size);
    332  1.21  riastrad 			explicit_memset(percpu_getptr_remote(pc, ci), 0, size);
    333  1.21  riastrad 			percpu_traverse_exit();
    334  1.21  riastrad 			(*pc->pc_dtor)(buf, pc->pc_cookie, ci);
    335  1.21  riastrad 		}
    336  1.21  riastrad 		explicit_memset(buf, 0, size);
    337  1.21  riastrad 		kmem_free(buf, size);
    338  1.21  riastrad 	}
    339  1.21  riastrad 
    340   1.1      yamt 	vmem_free(percpu_offset_arena, (vmem_addr_t)percpu_offset(pc), size);
    341  1.21  riastrad 	kmem_free(pc, sizeof(*pc));
    342   1.1      yamt }
    343   1.1      yamt 
    344   1.1      yamt /*
    345   1.4   thorpej  * percpu_getref:
    346   1.1      yamt  *
    347   1.1      yamt  * => safe to be used in either thread or interrupt context
    348   1.4   thorpej  * => disables preemption; must be bracketed with a percpu_putref()
    349   1.1      yamt  */
    350   1.1      yamt 
    351   1.1      yamt void *
    352   1.4   thorpej percpu_getref(percpu_t *pc)
    353   1.1      yamt {
    354   1.1      yamt 
    355  1.17  uebayasi 	kpreempt_disable();
    356   1.1      yamt 	return percpu_getptr_remote(pc, curcpu());
    357   1.1      yamt }
    358   1.1      yamt 
    359   1.1      yamt /*
    360   1.4   thorpej  * percpu_putref:
    361   1.4   thorpej  *
    362   1.4   thorpej  * => drops the preemption-disabled count after caller is done with per-cpu
    363   1.4   thorpej  *    data
    364   1.4   thorpej  */
    365   1.4   thorpej 
    366   1.4   thorpej void
    367   1.4   thorpej percpu_putref(percpu_t *pc)
    368   1.4   thorpej {
    369   1.4   thorpej 
    370  1.17  uebayasi 	kpreempt_enable();
    371   1.4   thorpej }
    372   1.4   thorpej 
    373   1.4   thorpej /*
    374   1.1      yamt  * percpu_traverse_enter, percpu_traverse_exit, percpu_getptr_remote:
    375   1.1      yamt  * helpers to access remote cpu's percpu data.
    376   1.1      yamt  *
    377   1.1      yamt  * => called in thread context.
    378   1.2      yamt  * => percpu_traverse_enter can block low-priority xcalls.
    379   1.1      yamt  * => typical usage would be:
    380   1.1      yamt  *
    381   1.1      yamt  *	sum = 0;
    382   1.1      yamt  *	percpu_traverse_enter();
    383   1.1      yamt  *	for (CPU_INFO_FOREACH(cii, ci)) {
    384   1.1      yamt  *		unsigned int *p = percpu_getptr_remote(pc, ci);
    385   1.1      yamt  *		sum += *p;
    386   1.1      yamt  *	}
    387   1.1      yamt  *	percpu_traverse_exit();
    388   1.1      yamt  */
    389   1.1      yamt 
    390   1.1      yamt void
    391   1.1      yamt percpu_traverse_enter(void)
    392   1.1      yamt {
    393   1.1      yamt 
    394   1.3      yamt 	ASSERT_SLEEPABLE();
    395   1.1      yamt 	rw_enter(&percpu_swap_lock, RW_READER);
    396   1.1      yamt }
    397   1.1      yamt 
    398   1.1      yamt void
    399   1.1      yamt percpu_traverse_exit(void)
    400   1.1      yamt {
    401   1.1      yamt 
    402   1.1      yamt 	rw_exit(&percpu_swap_lock);
    403   1.1      yamt }
    404   1.1      yamt 
    405   1.1      yamt void *
    406   1.1      yamt percpu_getptr_remote(percpu_t *pc, struct cpu_info *ci)
    407   1.1      yamt {
    408   1.1      yamt 
    409   1.1      yamt 	return &((char *)cpu_percpu(ci)->pcc_data)[percpu_offset(pc)];
    410   1.1      yamt }
    411   1.1      yamt 
    412   1.1      yamt /*
    413   1.1      yamt  * percpu_foreach: call the specified callback function for each cpus.
    414   1.1      yamt  *
    415  1.24   thorpej  * => must be called from thread context.
    416  1.24   thorpej  * => callback executes on **current** CPU (or, really, arbitrary CPU,
    417  1.24   thorpej  *    in case of preemption)
    418   1.1      yamt  * => caller should not rely on the cpu iteration order.
    419   1.2      yamt  * => the callback function should be minimum because it is executed with
    420   1.2      yamt  *    holding a global lock, which can block low-priority xcalls.
    421   1.2      yamt  *    eg. it's illegal for a callback function to sleep for memory allocation.
    422   1.1      yamt  */
    423   1.1      yamt void
    424   1.1      yamt percpu_foreach(percpu_t *pc, percpu_callback_t cb, void *arg)
    425   1.1      yamt {
    426   1.1      yamt 	CPU_INFO_ITERATOR cii;
    427   1.1      yamt 	struct cpu_info *ci;
    428   1.1      yamt 
    429   1.1      yamt 	percpu_traverse_enter();
    430   1.1      yamt 	for (CPU_INFO_FOREACH(cii, ci)) {
    431   1.2      yamt 		(*cb)(percpu_getptr_remote(pc, ci), arg, ci);
    432   1.1      yamt 	}
    433   1.1      yamt 	percpu_traverse_exit();
    434   1.1      yamt }
    435  1.24   thorpej 
    436  1.24   thorpej struct percpu_xcall_ctx {
    437  1.24   thorpej 	percpu_callback_t  ctx_cb;
    438  1.24   thorpej 	void		  *ctx_arg;
    439  1.24   thorpej };
    440  1.24   thorpej 
    441  1.24   thorpej static void
    442  1.24   thorpej percpu_xcfunc(void * const v1, void * const v2)
    443  1.24   thorpej {
    444  1.24   thorpej 	percpu_t * const pc = v1;
    445  1.24   thorpej 	struct percpu_xcall_ctx * const ctx = v2;
    446  1.24   thorpej 
    447  1.24   thorpej 	(*ctx->ctx_cb)(percpu_getref(pc), ctx->ctx_arg, curcpu());
    448  1.24   thorpej 	percpu_putref(pc);
    449  1.24   thorpej }
    450  1.24   thorpej 
    451  1.24   thorpej /*
    452  1.24   thorpej  * percpu_foreach_xcall: call the specified callback function for each
    453  1.24   thorpej  * cpu.  This version uses an xcall to run the callback on each cpu.
    454  1.24   thorpej  *
    455  1.24   thorpej  * => must be called from thread context.
    456  1.24   thorpej  * => callback executes on **remote** CPU in soft-interrupt context
    457  1.24   thorpej  *    (at the specified soft interrupt priority).
    458  1.24   thorpej  * => caller should not rely on the cpu iteration order.
    459  1.24   thorpej  * => the callback function should be minimum because it may be
    460  1.24   thorpej  *    executed in soft-interrupt context.  eg. it's illegal for
    461  1.24   thorpej  *    a callback function to sleep for memory allocation.
    462  1.24   thorpej  */
    463  1.24   thorpej void
    464  1.24   thorpej percpu_foreach_xcall(percpu_t *pc, u_int xcflags, percpu_callback_t cb,
    465  1.24   thorpej 		     void *arg)
    466  1.24   thorpej {
    467  1.24   thorpej 	struct percpu_xcall_ctx ctx = {
    468  1.24   thorpej 		.ctx_cb = cb,
    469  1.24   thorpej 		.ctx_arg = arg,
    470  1.24   thorpej 	};
    471  1.24   thorpej 	CPU_INFO_ITERATOR cii;
    472  1.24   thorpej 	struct cpu_info *ci;
    473  1.24   thorpej 
    474  1.24   thorpej 	for (CPU_INFO_FOREACH(cii, ci)) {
    475  1.24   thorpej 		xc_wait(xc_unicast(xcflags, percpu_xcfunc, pc, &ctx, ci));
    476  1.24   thorpej 	}
    477  1.24   thorpej }
    478