2 * Copyright (c) 2004-2009 University of Zagreb
3 * Copyright (c) 2006-2009 FreeBSD Foundation
6 * This software was developed by the University of Zagreb and the
7 * FreeBSD Foundation under sponsorship by the Stichting NLnet and the
10 * Copyright (c) 2009 Jeffrey Roberson <jeff@freebsd.org>
11 * Copyright (c) 2009 Robert N. M. Watson
12 * All rights reserved.
14 * Redistribution and use in source and binary forms, with or without
15 * modification, are permitted provided that the following conditions
17 * 1. Redistributions of source code must retain the above copyright
18 * notice, this list of conditions and the following disclaimer.
19 * 2. Redistributions in binary form must reproduce the above copyright
20 * notice, this list of conditions and the following disclaimer in the
21 * documentation and/or other materials provided with the distribution.
23 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
24 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
25 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
26 * ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
27 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
28 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
29 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
30 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
31 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
32 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
36 #include <sys/cdefs.h>
37 __FBSDID("$FreeBSD$");
42 #include <sys/param.h>
44 #include <sys/kernel.h>
47 #include <sys/systm.h>
48 #include <sys/sysctl.h>
49 #include <sys/eventhandler.h>
51 #include <sys/malloc.h>
53 #include <sys/socket.h>
55 #include <sys/sysctl.h>
57 #include <machine/stdarg.h>
61 #include <ddb/db_sym.h>
65 #include <net/if_var.h>
69 * This file implements core functions for virtual network stacks:
71 * - Virtual network stack management functions.
73 * - Virtual network stack memory allocator, which virtualizes global
74 * variables in the network stack
76 * - Virtualized SYSINIT's/SYSUNINIT's, which allow network stack subsystems
77 * to register startup/shutdown events to be run for each virtual network
81 FEATURE(vimage
, "VIMAGE kernel virtualization");
83 static MALLOC_DEFINE(M_VNET
, "vnet", "network stack control block");
86 * The virtual network stack list has two read-write locks, one sleepable and
87 * the other not, so that the list can be stablized and walked in a variety
88 * of network stack contexts. Both must be acquired exclusively to modify
89 * the list, but a read lock of either lock is sufficient to walk the list.
91 struct rwlock vnet_rwlock
;
92 struct sx vnet_sxlock
;
94 #define VNET_LIST_WLOCK() do { \
95 sx_xlock(&vnet_sxlock); \
96 rw_wlock(&vnet_rwlock); \
99 #define VNET_LIST_WUNLOCK() do { \
100 rw_wunlock(&vnet_rwlock); \
101 sx_xunlock(&vnet_sxlock); \
104 struct vnet_list_head vnet_head
;
108 * The virtual network stack allocator provides storage for virtualized
109 * global variables. These variables are defined/declared using the
110 * VNET_DEFINE()/VNET_DECLARE() macros, which place them in the 'set_vnet'
111 * linker set. The details of the implementation are somewhat subtle, but
112 * allow the majority of most network subsystems to maintain
113 * virtualization-agnostic.
115 * The virtual network stack allocator handles variables in the base kernel
116 * vs. modules in similar but different ways. In both cases, virtualized
117 * global variables are marked as such by being declared to be part of the
118 * vnet linker set. These "master" copies of global variables serve two
121 * (1) They contain static initialization or "default" values for global
122 * variables which will be propagated to each virtual network stack
123 * instance when created. As with normal global variables, they default
126 * (2) They act as unique global names by which the variable can be referred
127 * to, regardless of network stack instance. The single global symbol
128 * will be used to calculate the location of a per-virtual instance
129 * variable at run-time.
131 * Each virtual network stack instance has a complete copy of each
132 * virtualized global variable, stored in a malloc'd block of memory
133 * referred to by vnet->vnet_data_mem. Critical to the design is that each
134 * per-instance memory block is laid out identically to the master block so
135 * that the offset of each global variable is the same across all blocks. To
136 * optimize run-time access, a precalculated 'base' address,
137 * vnet->vnet_data_base, is stored in each vnet, and is the amount that can
138 * be added to the address of a 'master' instance of a variable to get to the
141 * Virtualized global variables are handled in a similar manner, but as each
142 * module has its own 'set_vnet' linker set, and we want to keep all
143 * virtualized globals togther, we reserve space in the kernel's linker set
144 * for potential module variables using a per-vnet character array,
145 * 'modspace'. The virtual network stack allocator maintains a free list to
146 * track what space in the array is free (all, initially) and as modules are
147 * linked, allocates portions of the space to specific globals. The kernel
148 * module linker queries the virtual network stack allocator and will
149 * bind references of the global to the location during linking. It also
150 * calls into the virtual network stack allocator, once the memory is
151 * initialized, in order to propagate the new static initializations to all
152 * existing virtual network stack instances so that the soon-to-be executing
153 * module will find every network stack instance with proper default values.
157 * Number of bytes of data in the 'set_vnet' linker set, and hence the total
158 * size of all kernel virtualized global variables, and the malloc(9) type
159 * that will be used to allocate it.
161 #define VNET_BYTES (VNET_STOP - VNET_START)
163 static MALLOC_DEFINE(M_VNET_DATA
, "vnet_data", "VNET data");
166 * VNET_MODMIN is the minimum number of bytes we will reserve for the sum of
167 * global variables across all loaded modules. As this actually sizes an
168 * array declared as a virtualized global variable in the kernel itself, and
169 * we want the virtualized global variable space to be page-sized, we may
170 * have more space than that in practice.
172 #define VNET_MODMIN 8192
173 #define VNET_SIZE roundup2(VNET_BYTES, PAGE_SIZE)
176 * Space to store virtualized global variables from loadable kernel modules,
177 * and the free list to manage it.
179 static VNET_DEFINE(char, modspace
[VNET_MODMIN
]);
182 * Global lists of subsystem constructor and destructors for vnets. They are
183 * registered via VNET_SYSINIT() and VNET_SYSUNINIT(). Both lists are
184 * protected by the vnet_sysinit_sxlock global lock.
186 static TAILQ_HEAD(vnet_sysinit_head
, vnet_sysinit
) vnet_constructors
=
187 TAILQ_HEAD_INITIALIZER(vnet_constructors
);
188 static TAILQ_HEAD(vnet_sysuninit_head
, vnet_sysinit
) vnet_destructors
=
189 TAILQ_HEAD_INITIALIZER(vnet_destructors
);
191 struct sx vnet_sysinit_sxlock
;
193 #define VNET_SYSINIT_WLOCK() sx_xlock(&vnet_sysinit_sxlock);
194 #define VNET_SYSINIT_WUNLOCK() sx_xunlock(&vnet_sysinit_sxlock);
195 #define VNET_SYSINIT_RLOCK() sx_slock(&vnet_sysinit_sxlock);
196 #define VNET_SYSINIT_RUNLOCK() sx_sunlock(&vnet_sysinit_sxlock);
198 struct vnet_data_free
{
201 TAILQ_ENTRY(vnet_data_free
) vnd_link
;
204 static MALLOC_DEFINE(M_VNET_DATA_FREE
, "vnet_data_free",
205 "VNET resource accounting");
206 static TAILQ_HEAD(, vnet_data_free
) vnet_data_free_head
=
207 TAILQ_HEAD_INITIALIZER(vnet_data_free_head
);
208 static struct sx vnet_data_free_lock
;
210 SDT_PROVIDER_DEFINE(vnet
);
211 SDT_PROBE_DEFINE1(vnet
, functions
, vnet_alloc
, entry
, "int");
212 SDT_PROBE_DEFINE2(vnet
, functions
, vnet_alloc
, alloc
, "int",
214 SDT_PROBE_DEFINE2(vnet
, functions
, vnet_alloc
, return,
215 "int", "struct vnet *");
216 SDT_PROBE_DEFINE2(vnet
, functions
, vnet_destroy
, entry
,
217 "int", "struct vnet *");
218 SDT_PROBE_DEFINE1(vnet
, functions
, vnet_destroy
, return,
222 static void db_show_vnet_print_vs(struct vnet_sysinit
*, int);
226 * Allocate a virtual network stack.
233 SDT_PROBE1(vnet
, functions
, vnet_alloc
, entry
, __LINE__
);
234 vnet
= malloc(sizeof(struct vnet
), M_VNET
, M_WAITOK
| M_ZERO
);
235 vnet
->vnet_magic_n
= VNET_MAGIC_N
;
236 vnet
->vnet_state
= 0;
237 SDT_PROBE2(vnet
, functions
, vnet_alloc
, alloc
, __LINE__
, vnet
);
240 * Allocate storage for virtualized global variables and copy in
241 * initial values form our 'master' copy.
243 vnet
->vnet_data_mem
= malloc(VNET_SIZE
, M_VNET_DATA
, M_WAITOK
);
244 memcpy(vnet
->vnet_data_mem
, (void *)VNET_START
, VNET_BYTES
);
247 * All use of vnet-specific data will immediately subtract VNET_START
248 * from the base memory pointer, so pre-calculate that now to avoid
251 vnet
->vnet_data_base
= (uintptr_t)vnet
->vnet_data_mem
- VNET_START
;
253 /* Initialize / attach vnet module instances. */
254 CURVNET_SET_QUIET(vnet
);
259 LIST_INSERT_HEAD(&vnet_head
, vnet
, vnet_le
);
262 SDT_PROBE2(vnet
, functions
, vnet_alloc
, return, __LINE__
, vnet
);
267 * Destroy a virtual network stack.
270 vnet_destroy(struct vnet
*vnet
)
273 SDT_PROBE2(vnet
, functions
, vnet_destroy
, entry
, __LINE__
, vnet
);
274 KASSERT(vnet
->vnet_sockcnt
== 0,
275 ("%s: vnet still has sockets", __func__
));
278 LIST_REMOVE(vnet
, vnet_le
);
281 CURVNET_SET_QUIET(vnet
);
286 * Release storage for the virtual network stack instance.
288 free(vnet
->vnet_data_mem
, M_VNET_DATA
);
289 vnet
->vnet_data_mem
= NULL
;
290 vnet
->vnet_data_base
= 0;
291 vnet
->vnet_magic_n
= 0xdeadbeef;
293 SDT_PROBE1(vnet
, functions
, vnet_destroy
, return, __LINE__
);
297 * Boot time initialization and allocation of virtual network stacks.
300 vnet_init_prelink(void *arg __unused
)
303 rw_init(&vnet_rwlock
, "vnet_rwlock");
304 sx_init(&vnet_sxlock
, "vnet_sxlock");
305 sx_init(&vnet_sysinit_sxlock
, "vnet_sysinit_sxlock");
306 LIST_INIT(&vnet_head
);
308 SYSINIT(vnet_init_prelink
, SI_SUB_VNET_PRELINK
, SI_ORDER_FIRST
,
309 vnet_init_prelink
, NULL
);
312 vnet0_init(void *arg __unused
)
315 /* Warn people before take off - in case we crash early. */
316 printf("WARNING: VIMAGE (virtualized network stack) is a highly "
317 "experimental feature.\n");
320 * We MUST clear curvnet in vi_init_done() before going SMP,
321 * otherwise CURVNET_SET() macros would scream about unnecessary
322 * curvnet recursions.
324 curvnet
= prison0
.pr_vnet
= vnet0
= vnet_alloc();
326 SYSINIT(vnet0_init
, SI_SUB_VNET
, SI_ORDER_FIRST
, vnet0_init
, NULL
);
329 vnet_init_done(void *unused __unused
)
335 SYSINIT(vnet_init_done
, SI_SUB_VNET_DONE
, SI_ORDER_FIRST
, vnet_init_done
,
339 * Once on boot, initialize the modspace freelist to entirely cover modspace.
342 vnet_data_startup(void *dummy __unused
)
344 struct vnet_data_free
*df
;
346 df
= malloc(sizeof(*df
), M_VNET_DATA_FREE
, M_WAITOK
| M_ZERO
);
347 df
->vnd_start
= (uintptr_t)&VNET_NAME(modspace
);
348 df
->vnd_len
= VNET_MODMIN
;
349 TAILQ_INSERT_HEAD(&vnet_data_free_head
, df
, vnd_link
);
350 sx_init(&vnet_data_free_lock
, "vnet_data alloc lock");
352 SYSINIT(vnet_data
, SI_SUB_KLD
, SI_ORDER_FIRST
, vnet_data_startup
, 0);
354 /* Dummy VNET_SYSINIT to make sure we always reach the final end state. */
356 vnet_sysinit_done(void *unused __unused
)
361 VNET_SYSINIT(vnet_sysinit_done
, SI_SUB_VNET_DONE
, SI_ORDER_ANY
,
362 vnet_sysinit_done
, NULL
);
365 * When a module is loaded and requires storage for a virtualized global
366 * variable, allocate space from the modspace free list. This interface
367 * should be used only by the kernel linker.
370 vnet_data_alloc(int size
)
372 struct vnet_data_free
*df
;
376 size
= roundup2(size
, sizeof(void *));
377 sx_xlock(&vnet_data_free_lock
);
378 TAILQ_FOREACH(df
, &vnet_data_free_head
, vnd_link
) {
379 if (df
->vnd_len
< size
)
381 if (df
->vnd_len
== size
) {
382 s
= (void *)df
->vnd_start
;
383 TAILQ_REMOVE(&vnet_data_free_head
, df
, vnd_link
);
384 free(df
, M_VNET_DATA_FREE
);
387 s
= (void *)df
->vnd_start
;
389 df
->vnd_start
= df
->vnd_start
+ size
;
392 sx_xunlock(&vnet_data_free_lock
);
398 * Free space for a virtualized global variable on module unload.
401 vnet_data_free(void *start_arg
, int size
)
403 struct vnet_data_free
*df
;
404 struct vnet_data_free
*dn
;
408 size
= roundup2(size
, sizeof(void *));
409 start
= (uintptr_t)start_arg
;
412 * Free a region of space and merge it with as many neighbors as
413 * possible. Keeping the list sorted simplifies this operation.
415 sx_xlock(&vnet_data_free_lock
);
416 TAILQ_FOREACH(df
, &vnet_data_free_head
, vnd_link
) {
417 if (df
->vnd_start
> end
)
420 * If we expand at the end of an entry we may have to merge
421 * it with the one following it as well.
423 if (df
->vnd_start
+ df
->vnd_len
== start
) {
425 dn
= TAILQ_NEXT(df
, vnd_link
);
426 if (df
->vnd_start
+ df
->vnd_len
== dn
->vnd_start
) {
427 df
->vnd_len
+= dn
->vnd_len
;
428 TAILQ_REMOVE(&vnet_data_free_head
, dn
,
430 free(dn
, M_VNET_DATA_FREE
);
432 sx_xunlock(&vnet_data_free_lock
);
435 if (df
->vnd_start
== end
) {
436 df
->vnd_start
= start
;
438 sx_xunlock(&vnet_data_free_lock
);
442 dn
= malloc(sizeof(*df
), M_VNET_DATA_FREE
, M_WAITOK
| M_ZERO
);
443 dn
->vnd_start
= start
;
446 TAILQ_INSERT_BEFORE(df
, dn
, vnd_link
);
448 TAILQ_INSERT_TAIL(&vnet_data_free_head
, dn
, vnd_link
);
449 sx_xunlock(&vnet_data_free_lock
);
453 * When a new virtualized global variable has been allocated, propagate its
454 * initial value to each already-allocated virtual network stack instance.
457 vnet_data_copy(void *start
, int size
)
462 LIST_FOREACH(vnet
, &vnet_head
, vnet_le
)
463 memcpy((void *)((uintptr_t)vnet
->vnet_data_base
+
464 (uintptr_t)start
), start
, size
);
469 * Support for special SYSINIT handlers registered via VNET_SYSINIT()
470 * and VNET_SYSUNINIT().
473 vnet_register_sysinit(void *arg
)
475 struct vnet_sysinit
*vs
, *vs2
;
479 KASSERT(vs
->subsystem
> SI_SUB_VNET
, ("vnet sysinit too early"));
481 /* Add the constructor to the global list of vnet constructors. */
482 VNET_SYSINIT_WLOCK();
483 TAILQ_FOREACH(vs2
, &vnet_constructors
, link
) {
484 if (vs2
->subsystem
> vs
->subsystem
)
486 if (vs2
->subsystem
== vs
->subsystem
&& vs2
->order
> vs
->order
)
490 TAILQ_INSERT_BEFORE(vs2
, vs
, link
);
492 TAILQ_INSERT_TAIL(&vnet_constructors
, vs
, link
);
495 * Invoke the constructor on all the existing vnets when it is
499 CURVNET_SET_QUIET(vnet
);
503 VNET_SYSINIT_WUNLOCK();
507 vnet_deregister_sysinit(void *arg
)
509 struct vnet_sysinit
*vs
;
513 /* Remove the constructor from the global list of vnet constructors. */
514 VNET_SYSINIT_WLOCK();
515 TAILQ_REMOVE(&vnet_constructors
, vs
, link
);
516 VNET_SYSINIT_WUNLOCK();
520 vnet_register_sysuninit(void *arg
)
522 struct vnet_sysinit
*vs
, *vs2
;
526 /* Add the destructor to the global list of vnet destructors. */
527 VNET_SYSINIT_WLOCK();
528 TAILQ_FOREACH(vs2
, &vnet_destructors
, link
) {
529 if (vs2
->subsystem
> vs
->subsystem
)
531 if (vs2
->subsystem
== vs
->subsystem
&& vs2
->order
> vs
->order
)
535 TAILQ_INSERT_BEFORE(vs2
, vs
, link
);
537 TAILQ_INSERT_TAIL(&vnet_destructors
, vs
, link
);
538 VNET_SYSINIT_WUNLOCK();
542 vnet_deregister_sysuninit(void *arg
)
544 struct vnet_sysinit
*vs
;
550 * Invoke the destructor on all the existing vnets when it is
553 VNET_SYSINIT_WLOCK();
555 CURVNET_SET_QUIET(vnet
);
560 /* Remove the destructor from the global list of vnet destructors. */
561 TAILQ_REMOVE(&vnet_destructors
, vs
, link
);
562 VNET_SYSINIT_WUNLOCK();
566 * Invoke all registered vnet constructors on the current vnet. Used during
567 * vnet construction. The caller is responsible for ensuring the new vnet is
568 * the current vnet and that the vnet_sysinit_sxlock lock is locked.
573 struct vnet_sysinit
*vs
;
575 VNET_SYSINIT_RLOCK();
576 TAILQ_FOREACH(vs
, &vnet_constructors
, link
) {
577 curvnet
->vnet_state
= vs
->subsystem
;
580 VNET_SYSINIT_RUNLOCK();
584 * Invoke all registered vnet destructors on the current vnet. Used during
585 * vnet destruction. The caller is responsible for ensuring the dying vnet
586 * the current vnet and that the vnet_sysinit_sxlock lock is locked.
591 struct vnet_sysinit
*vs
;
593 VNET_SYSINIT_RLOCK();
594 TAILQ_FOREACH_REVERSE(vs
, &vnet_destructors
, vnet_sysuninit_head
,
596 curvnet
->vnet_state
= vs
->subsystem
;
599 VNET_SYSINIT_RUNLOCK();
603 * EVENTHANDLER(9) extensions.
606 * Invoke the eventhandler function originally registered with the possibly
607 * registered argument for all virtual network stack instances.
609 * This iterator can only be used for eventhandlers that do not take any
610 * additional arguments, as we do ignore the variadic arguments from the
611 * EVENTHANDLER_INVOKE() call.
614 vnet_global_eventhandler_iterator_func(void *arg
, ...)
616 VNET_ITERATOR_DECL(vnet_iter
);
617 struct eventhandler_entry_vimage
*v_ee
;
620 * There is a bug here in that we should actually cast things to
621 * (struct eventhandler_entry_ ## name *) but that's not easily
622 * possible in here so just re-using the variadic version we
623 * defined for the generic vimage case.
627 VNET_FOREACH(vnet_iter
) {
628 CURVNET_SET(vnet_iter
);
629 ((vimage_iterator_func_t
)v_ee
->func
)(v_ee
->ee_arg
);
636 struct vnet_recursion
{
637 SLIST_ENTRY(vnet_recursion
) vnr_le
;
639 const char *where_fn
;
641 struct vnet
*old_vnet
;
642 struct vnet
*new_vnet
;
645 static SLIST_HEAD(, vnet_recursion
) vnet_recursions
=
646 SLIST_HEAD_INITIALIZER(vnet_recursions
);
649 vnet_print_recursion(struct vnet_recursion
*vnr
, int brief
)
653 printf("CURVNET_SET() recursion in ");
654 printf("%s() line %d, prev in %s()", vnr
->where_fn
, vnr
->where_line
,
660 printf("%p -> %p\n", vnr
->old_vnet
, vnr
->new_vnet
);
664 vnet_log_recursion(struct vnet
*old_vnet
, const char *old_fn
, int line
)
666 struct vnet_recursion
*vnr
;
668 /* Skip already logged recursion events. */
669 SLIST_FOREACH(vnr
, &vnet_recursions
, vnr_le
)
670 if (vnr
->prev_fn
== old_fn
&&
671 vnr
->where_fn
== curthread
->td_vnet_lpush
&&
672 vnr
->where_line
== line
&&
673 (vnr
->old_vnet
== vnr
->new_vnet
) == (curvnet
== old_vnet
))
676 vnr
= malloc(sizeof(*vnr
), M_VNET
, M_NOWAIT
| M_ZERO
);
678 panic("%s: malloc failed", __func__
);
679 vnr
->prev_fn
= old_fn
;
680 vnr
->where_fn
= curthread
->td_vnet_lpush
;
681 vnr
->where_line
= line
;
682 vnr
->old_vnet
= old_vnet
;
683 vnr
->new_vnet
= curvnet
;
685 SLIST_INSERT_HEAD(&vnet_recursions
, vnr
, vnr_le
);
687 vnet_print_recursion(vnr
, 0);
692 #endif /* VNET_DEBUG */
699 db_vnet_print(struct vnet
*vnet
)
702 db_printf("vnet = %p\n", vnet
);
703 db_printf(" vnet_magic_n = %#08x (%s, orig %#08x)\n",
705 (vnet
->vnet_magic_n
== VNET_MAGIC_N
) ?
706 "ok" : "mismatch", VNET_MAGIC_N
);
707 db_printf(" vnet_ifcnt = %u\n", vnet
->vnet_ifcnt
);
708 db_printf(" vnet_sockcnt = %u\n", vnet
->vnet_sockcnt
);
709 db_printf(" vnet_data_mem = %p\n", vnet
->vnet_data_mem
);
710 db_printf(" vnet_data_base = %#jx\n",
711 (uintmax_t)vnet
->vnet_data_base
);
712 db_printf(" vnet_state = %#08x\n", vnet
->vnet_state
);
716 DB_SHOW_ALL_COMMAND(vnets
, db_show_all_vnets
)
718 VNET_ITERATOR_DECL(vnet_iter
);
720 VNET_FOREACH(vnet_iter
) {
721 db_vnet_print(vnet_iter
);
727 DB_SHOW_COMMAND(vnet
, db_show_vnet
)
731 db_printf("usage: show vnet <struct vnet *>\n");
735 db_vnet_print((struct vnet
*)addr
);
739 db_show_vnet_print_vs(struct vnet_sysinit
*vs
, int ddb
)
741 const char *vsname
, *funcname
;
745 #define xprint(...) \
747 db_printf(__VA_ARGS__); \
752 xprint("%s: no vnet_sysinit * given\n", __func__
);
756 sym
= db_search_symbol((vm_offset_t
)vs
, DB_STGY_ANY
, &offset
);
757 db_symbol_values(sym
, &vsname
, NULL
);
758 sym
= db_search_symbol((vm_offset_t
)vs
->func
, DB_STGY_PROC
, &offset
);
759 db_symbol_values(sym
, &funcname
, NULL
);
760 xprint("%s(%p)\n", (vsname
!= NULL
) ? vsname
: "", vs
);
761 xprint(" %#08x %#08x\n", vs
->subsystem
, vs
->order
);
762 xprint(" %p(%s)(%p)\n",
763 vs
->func
, (funcname
!= NULL
) ? funcname
: "", vs
->arg
);
767 DB_SHOW_COMMAND(vnet_sysinit
, db_show_vnet_sysinit
)
769 struct vnet_sysinit
*vs
;
771 db_printf("VNET_SYSINIT vs Name(Ptr)\n");
772 db_printf(" Subsystem Order\n");
773 db_printf(" Function(Name)(Arg)\n");
774 TAILQ_FOREACH(vs
, &vnet_constructors
, link
) {
775 db_show_vnet_print_vs(vs
, 1);
781 DB_SHOW_COMMAND(vnet_sysuninit
, db_show_vnet_sysuninit
)
783 struct vnet_sysinit
*vs
;
785 db_printf("VNET_SYSUNINIT vs Name(Ptr)\n");
786 db_printf(" Subsystem Order\n");
787 db_printf(" Function(Name)(Arg)\n");
788 TAILQ_FOREACH_REVERSE(vs
, &vnet_destructors
, vnet_sysuninit_head
,
790 db_show_vnet_print_vs(vs
, 1);
797 DB_SHOW_COMMAND(vnetrcrs
, db_show_vnetrcrs
)
799 struct vnet_recursion
*vnr
;
801 SLIST_FOREACH(vnr
, &vnet_recursions
, vnr_le
)
802 vnet_print_recursion(vnr
, 1);