1 /* flow.c: Generic flow cache.
3 * Copyright (C) 2003 Alexey N. Kuznetsov (kuznet@ms2.inr.ac.ru)
4 * Copyright (C) 2003 David S. Miller (davem@redhat.com)
7 #include <linux/kernel.h>
8 #include <linux/module.h>
9 #include <linux/list.h>
10 #include <linux/jhash.h>
11 #include <linux/interrupt.h>
13 #include <linux/random.h>
14 #include <linux/init.h>
15 #include <linux/slab.h>
16 #include <linux/smp.h>
17 #include <linux/completion.h>
18 #include <linux/percpu.h>
19 #include <linux/bitops.h>
20 #include <linux/notifier.h>
21 #include <linux/cpu.h>
22 #include <linux/cpumask.h>
23 #include <linux/mutex.h>
25 #include <asm/atomic.h>
26 #include <linux/security.h>
28 struct flow_cache_entry
{
30 struct hlist_node hlist
;
31 struct list_head gc_list
;
37 struct flow_cache_object
*object
;
40 struct flow_cache_percpu
{
41 struct hlist_head
*hash_table
;
45 struct tasklet_struct flush_tasklet
;
48 struct flow_flush_info
{
49 struct flow_cache
*cache
;
51 struct completion completion
;
57 struct flow_cache_percpu
*percpu
;
58 struct notifier_block hotcpu_notifier
;
61 struct timer_list rnd_timer
;
64 atomic_t flow_cache_genid
= ATOMIC_INIT(0);
65 EXPORT_SYMBOL(flow_cache_genid
);
66 static struct flow_cache flow_cache_global
;
67 static struct kmem_cache
*flow_cachep
;
69 static DEFINE_SPINLOCK(flow_cache_gc_lock
);
70 static LIST_HEAD(flow_cache_gc_list
);
72 #define flow_cache_hash_size(cache) (1 << (cache)->hash_shift)
73 #define FLOW_HASH_RND_PERIOD (10 * 60 * HZ)
75 static void flow_cache_new_hashrnd(unsigned long arg
)
77 struct flow_cache
*fc
= (void *) arg
;
80 for_each_possible_cpu(i
)
81 per_cpu_ptr(fc
->percpu
, i
)->hash_rnd_recalc
= 1;
83 fc
->rnd_timer
.expires
= jiffies
+ FLOW_HASH_RND_PERIOD
;
84 add_timer(&fc
->rnd_timer
);
87 static int flow_entry_valid(struct flow_cache_entry
*fle
)
89 if (atomic_read(&flow_cache_genid
) != fle
->genid
)
91 if (fle
->object
&& !fle
->object
->ops
->check(fle
->object
))
96 static void flow_entry_kill(struct flow_cache_entry
*fle
)
99 fle
->object
->ops
->delete(fle
->object
);
100 kmem_cache_free(flow_cachep
, fle
);
103 static void flow_cache_gc_task(struct work_struct
*work
)
105 struct list_head gc_list
;
106 struct flow_cache_entry
*fce
, *n
;
108 INIT_LIST_HEAD(&gc_list
);
109 spin_lock_bh(&flow_cache_gc_lock
);
110 list_splice_tail_init(&flow_cache_gc_list
, &gc_list
);
111 spin_unlock_bh(&flow_cache_gc_lock
);
113 list_for_each_entry_safe(fce
, n
, &gc_list
, u
.gc_list
)
114 flow_entry_kill(fce
);
116 static DECLARE_WORK(flow_cache_gc_work
, flow_cache_gc_task
);
118 static void flow_cache_queue_garbage(struct flow_cache_percpu
*fcp
,
119 int deleted
, struct list_head
*gc_list
)
122 fcp
->hash_count
-= deleted
;
123 spin_lock_bh(&flow_cache_gc_lock
);
124 list_splice_tail(gc_list
, &flow_cache_gc_list
);
125 spin_unlock_bh(&flow_cache_gc_lock
);
126 schedule_work(&flow_cache_gc_work
);
130 static void __flow_cache_shrink(struct flow_cache
*fc
,
131 struct flow_cache_percpu
*fcp
,
134 struct flow_cache_entry
*fle
;
135 struct hlist_node
*entry
, *tmp
;
139 for (i
= 0; i
< flow_cache_hash_size(fc
); i
++) {
142 hlist_for_each_entry_safe(fle
, entry
, tmp
,
143 &fcp
->hash_table
[i
], u
.hlist
) {
144 if (saved
< shrink_to
&&
145 flow_entry_valid(fle
)) {
149 hlist_del(&fle
->u
.hlist
);
150 list_add_tail(&fle
->u
.gc_list
, &gc_list
);
155 flow_cache_queue_garbage(fcp
, deleted
, &gc_list
);
158 static void flow_cache_shrink(struct flow_cache
*fc
,
159 struct flow_cache_percpu
*fcp
)
161 int shrink_to
= fc
->low_watermark
/ flow_cache_hash_size(fc
);
163 __flow_cache_shrink(fc
, fcp
, shrink_to
);
166 static void flow_new_hash_rnd(struct flow_cache
*fc
,
167 struct flow_cache_percpu
*fcp
)
169 get_random_bytes(&fcp
->hash_rnd
, sizeof(u32
));
170 fcp
->hash_rnd_recalc
= 0;
171 __flow_cache_shrink(fc
, fcp
, 0);
174 static u32
flow_hash_code(struct flow_cache
*fc
,
175 struct flow_cache_percpu
*fcp
,
178 u32
*k
= (u32
*) key
;
180 return (jhash2(k
, (sizeof(*key
) / sizeof(u32
)), fcp
->hash_rnd
)
181 & (flow_cache_hash_size(fc
) - 1));
184 #if (BITS_PER_LONG == 64)
185 typedef u64 flow_compare_t
;
187 typedef u32 flow_compare_t
;
190 /* I hear what you're saying, use memcmp. But memcmp cannot make
191 * important assumptions that we can here, such as alignment and
194 static int flow_key_compare(struct flowi
*key1
, struct flowi
*key2
)
196 flow_compare_t
*k1
, *k1_lim
, *k2
;
197 const int n_elem
= sizeof(struct flowi
) / sizeof(flow_compare_t
);
199 BUILD_BUG_ON(sizeof(struct flowi
) % sizeof(flow_compare_t
));
201 k1
= (flow_compare_t
*) key1
;
202 k1_lim
= k1
+ n_elem
;
204 k2
= (flow_compare_t
*) key2
;
209 } while (k1
< k1_lim
);
214 struct flow_cache_object
*
215 flow_cache_lookup(struct net
*net
, struct flowi
*key
, u16 family
, u8 dir
,
216 flow_resolve_t resolver
, void *ctx
)
218 struct flow_cache
*fc
= &flow_cache_global
;
219 struct flow_cache_percpu
*fcp
;
220 struct flow_cache_entry
*fle
, *tfle
;
221 struct hlist_node
*entry
;
222 struct flow_cache_object
*flo
;
226 fcp
= this_cpu_ptr(fc
->percpu
);
230 /* Packet really early in init? Making flow_cache_init a
231 * pre-smp initcall would solve this. --RR */
232 if (!fcp
->hash_table
)
235 if (fcp
->hash_rnd_recalc
)
236 flow_new_hash_rnd(fc
, fcp
);
238 hash
= flow_hash_code(fc
, fcp
, key
);
239 hlist_for_each_entry(tfle
, entry
, &fcp
->hash_table
[hash
], u
.hlist
) {
240 if (tfle
->family
== family
&&
242 flow_key_compare(key
, &tfle
->key
) == 0) {
248 if (unlikely(!fle
)) {
249 if (fcp
->hash_count
> fc
->high_watermark
)
250 flow_cache_shrink(fc
, fcp
);
252 fle
= kmem_cache_alloc(flow_cachep
, GFP_ATOMIC
);
254 fle
->family
= family
;
256 memcpy(&fle
->key
, key
, sizeof(*key
));
258 hlist_add_head(&fle
->u
.hlist
, &fcp
->hash_table
[hash
]);
261 } else if (likely(fle
->genid
== atomic_read(&flow_cache_genid
))) {
265 flo
= flo
->ops
->get(flo
);
268 } else if (fle
->object
) {
270 flo
->ops
->delete(flo
);
280 flo
= resolver(net
, key
, family
, dir
, flo
, ctx
);
282 fle
->genid
= atomic_read(&flow_cache_genid
);
288 if (flo
&& !IS_ERR(flo
))
289 flo
->ops
->delete(flo
);
295 EXPORT_SYMBOL(flow_cache_lookup
);
297 static void flow_cache_flush_tasklet(unsigned long data
)
299 struct flow_flush_info
*info
= (void *)data
;
300 struct flow_cache
*fc
= info
->cache
;
301 struct flow_cache_percpu
*fcp
;
302 struct flow_cache_entry
*fle
;
303 struct hlist_node
*entry
, *tmp
;
307 fcp
= this_cpu_ptr(fc
->percpu
);
308 for (i
= 0; i
< flow_cache_hash_size(fc
); i
++) {
309 hlist_for_each_entry_safe(fle
, entry
, tmp
,
310 &fcp
->hash_table
[i
], u
.hlist
) {
311 if (flow_entry_valid(fle
))
315 hlist_del(&fle
->u
.hlist
);
316 list_add_tail(&fle
->u
.gc_list
, &gc_list
);
320 flow_cache_queue_garbage(fcp
, deleted
, &gc_list
);
322 if (atomic_dec_and_test(&info
->cpuleft
))
323 complete(&info
->completion
);
326 static void flow_cache_flush_per_cpu(void *data
)
328 struct flow_flush_info
*info
= data
;
330 struct tasklet_struct
*tasklet
;
332 cpu
= smp_processor_id();
333 tasklet
= &per_cpu_ptr(info
->cache
->percpu
, cpu
)->flush_tasklet
;
334 tasklet
->data
= (unsigned long)info
;
335 tasklet_schedule(tasklet
);
338 void flow_cache_flush(void)
340 struct flow_flush_info info
;
341 static DEFINE_MUTEX(flow_flush_sem
);
343 /* Don't want cpus going down or up during this. */
345 mutex_lock(&flow_flush_sem
);
346 info
.cache
= &flow_cache_global
;
347 atomic_set(&info
.cpuleft
, num_online_cpus());
348 init_completion(&info
.completion
);
351 smp_call_function(flow_cache_flush_per_cpu
, &info
, 0);
352 flow_cache_flush_tasklet((unsigned long)&info
);
355 wait_for_completion(&info
.completion
);
356 mutex_unlock(&flow_flush_sem
);
360 static void __init
flow_cache_cpu_prepare(struct flow_cache
*fc
,
361 struct flow_cache_percpu
*fcp
)
363 fcp
->hash_table
= (struct hlist_head
*)
364 __get_free_pages(GFP_KERNEL
|__GFP_ZERO
, fc
->order
);
365 if (!fcp
->hash_table
)
366 panic("NET: failed to allocate flow cache order %lu\n", fc
->order
);
368 fcp
->hash_rnd_recalc
= 1;
370 tasklet_init(&fcp
->flush_tasklet
, flow_cache_flush_tasklet
, 0);
373 static int flow_cache_cpu(struct notifier_block
*nfb
,
374 unsigned long action
,
377 struct flow_cache
*fc
= container_of(nfb
, struct flow_cache
, hotcpu_notifier
);
378 int cpu
= (unsigned long) hcpu
;
379 struct flow_cache_percpu
*fcp
= per_cpu_ptr(fc
->percpu
, cpu
);
381 if (action
== CPU_DEAD
|| action
== CPU_DEAD_FROZEN
)
382 __flow_cache_shrink(fc
, fcp
, 0);
386 static int flow_cache_init(struct flow_cache
*fc
)
392 fc
->low_watermark
= 2 * flow_cache_hash_size(fc
);
393 fc
->high_watermark
= 4 * flow_cache_hash_size(fc
);
396 (PAGE_SIZE
<< order
) <
397 (sizeof(struct hlist_head
)*flow_cache_hash_size(fc
));
401 fc
->percpu
= alloc_percpu(struct flow_cache_percpu
);
403 setup_timer(&fc
->rnd_timer
, flow_cache_new_hashrnd
,
405 fc
->rnd_timer
.expires
= jiffies
+ FLOW_HASH_RND_PERIOD
;
406 add_timer(&fc
->rnd_timer
);
408 for_each_possible_cpu(i
)
409 flow_cache_cpu_prepare(fc
, per_cpu_ptr(fc
->percpu
, i
));
411 fc
->hotcpu_notifier
= (struct notifier_block
){
412 .notifier_call
= flow_cache_cpu
,
414 register_hotcpu_notifier(&fc
->hotcpu_notifier
);
419 static int __init
flow_cache_init_global(void)
421 flow_cachep
= kmem_cache_create("flow_cache",
422 sizeof(struct flow_cache_entry
),
423 0, SLAB_PANIC
, NULL
);
425 return flow_cache_init(&flow_cache_global
);
428 module_init(flow_cache_init_global
);