xref: /linux/net/core/skbuff.c (revision 96c63fa7393d0a346acfe5a91e0c7d4c7782641b)
1 /*
2  *	Routines having to do with the 'struct sk_buff' memory handlers.
3  *
4  *	Authors:	Alan Cox <alan@lxorguk.ukuu.org.uk>
5  *			Florian La Roche <rzsfl@rz.uni-sb.de>
6  *
7  *	Fixes:
8  *		Alan Cox	:	Fixed the worst of the load
9  *					balancer bugs.
10  *		Dave Platt	:	Interrupt stacking fix.
11  *	Richard Kooijman	:	Timestamp fixes.
12  *		Alan Cox	:	Changed buffer format.
13  *		Alan Cox	:	destructor hook for AF_UNIX etc.
14  *		Linus Torvalds	:	Better skb_clone.
15  *		Alan Cox	:	Added skb_copy.
16  *		Alan Cox	:	Added all the changed routines Linus
17  *					only put in the headers
18  *		Ray VanTassle	:	Fixed --skb->lock in free
19  *		Alan Cox	:	skb_copy copy arp field
20  *		Andi Kleen	:	slabified it.
21  *		Robert Olsson	:	Removed skb_head_pool
22  *
23  *	NOTE:
24  *		The __skb_ routines should be called with interrupts
25  *	disabled, or you better be *real* sure that the operation is atomic
26  *	with respect to whatever list is being frobbed (e.g. via lock_sock()
27  *	or via disabling bottom half handlers, etc).
28  *
29  *	This program is free software; you can redistribute it and/or
30  *	modify it under the terms of the GNU General Public License
31  *	as published by the Free Software Foundation; either version
32  *	2 of the License, or (at your option) any later version.
33  */
34 
35 /*
36  *	The functions in this file will not compile correctly with gcc 2.4.x
37  */
38 
39 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
40 
41 #include <linux/module.h>
42 #include <linux/types.h>
43 #include <linux/kernel.h>
44 #include <linux/kmemcheck.h>
45 #include <linux/mm.h>
46 #include <linux/interrupt.h>
47 #include <linux/in.h>
48 #include <linux/inet.h>
49 #include <linux/slab.h>
50 #include <linux/tcp.h>
51 #include <linux/udp.h>
52 #include <linux/sctp.h>
53 #include <linux/netdevice.h>
54 #ifdef CONFIG_NET_CLS_ACT
55 #include <net/pkt_sched.h>
56 #endif
57 #include <linux/string.h>
58 #include <linux/skbuff.h>
59 #include <linux/splice.h>
60 #include <linux/cache.h>
61 #include <linux/rtnetlink.h>
62 #include <linux/init.h>
63 #include <linux/scatterlist.h>
64 #include <linux/errqueue.h>
65 #include <linux/prefetch.h>
66 #include <linux/if_vlan.h>
67 
68 #include <net/protocol.h>
69 #include <net/dst.h>
70 #include <net/sock.h>
71 #include <net/checksum.h>
72 #include <net/ip6_checksum.h>
73 #include <net/xfrm.h>
74 
75 #include <asm/uaccess.h>
76 #include <trace/events/skb.h>
77 #include <linux/highmem.h>
78 #include <linux/capability.h>
79 #include <linux/user_namespace.h>
80 
81 struct kmem_cache *skbuff_head_cache __read_mostly;
82 static struct kmem_cache *skbuff_fclone_cache __read_mostly;
83 int sysctl_max_skb_frags __read_mostly = MAX_SKB_FRAGS;
84 EXPORT_SYMBOL(sysctl_max_skb_frags);
85 
86 /**
87  *	skb_panic - private function for out-of-line support
88  *	@skb:	buffer
89  *	@sz:	size
90  *	@addr:	address
91  *	@msg:	skb_over_panic or skb_under_panic
92  *
93  *	Out-of-line support for skb_put() and skb_push().
94  *	Called via the wrapper skb_over_panic() or skb_under_panic().
95  *	Keep out of line to prevent kernel bloat.
96  *	__builtin_return_address is not used because it is not always reliable.
97  */
98 static void skb_panic(struct sk_buff *skb, unsigned int sz, void *addr,
99 		      const char msg[])
100 {
101 	pr_emerg("%s: text:%p len:%d put:%d head:%p data:%p tail:%#lx end:%#lx dev:%s\n",
102 		 msg, addr, skb->len, sz, skb->head, skb->data,
103 		 (unsigned long)skb->tail, (unsigned long)skb->end,
104 		 skb->dev ? skb->dev->name : "<NULL>");
105 	BUG();
106 }
107 
108 static void skb_over_panic(struct sk_buff *skb, unsigned int sz, void *addr)
109 {
110 	skb_panic(skb, sz, addr, __func__);
111 }
112 
113 static void skb_under_panic(struct sk_buff *skb, unsigned int sz, void *addr)
114 {
115 	skb_panic(skb, sz, addr, __func__);
116 }
117 
118 /*
119  * kmalloc_reserve is a wrapper around kmalloc_node_track_caller that tells
120  * the caller if emergency pfmemalloc reserves are being used. If it is and
121  * the socket is later found to be SOCK_MEMALLOC then PFMEMALLOC reserves
122  * may be used. Otherwise, the packet data may be discarded until enough
123  * memory is free
124  */
125 #define kmalloc_reserve(size, gfp, node, pfmemalloc) \
126 	 __kmalloc_reserve(size, gfp, node, _RET_IP_, pfmemalloc)
127 
128 static void *__kmalloc_reserve(size_t size, gfp_t flags, int node,
129 			       unsigned long ip, bool *pfmemalloc)
130 {
131 	void *obj;
132 	bool ret_pfmemalloc = false;
133 
134 	/*
135 	 * Try a regular allocation, when that fails and we're not entitled
136 	 * to the reserves, fail.
137 	 */
138 	obj = kmalloc_node_track_caller(size,
139 					flags | __GFP_NOMEMALLOC | __GFP_NOWARN,
140 					node);
141 	if (obj || !(gfp_pfmemalloc_allowed(flags)))
142 		goto out;
143 
144 	/* Try again but now we are using pfmemalloc reserves */
145 	ret_pfmemalloc = true;
146 	obj = kmalloc_node_track_caller(size, flags, node);
147 
148 out:
149 	if (pfmemalloc)
150 		*pfmemalloc = ret_pfmemalloc;
151 
152 	return obj;
153 }
154 
155 /* 	Allocate a new skbuff. We do this ourselves so we can fill in a few
156  *	'private' fields and also do memory statistics to find all the
157  *	[BEEP] leaks.
158  *
159  */
160 
161 struct sk_buff *__alloc_skb_head(gfp_t gfp_mask, int node)
162 {
163 	struct sk_buff *skb;
164 
165 	/* Get the HEAD */
166 	skb = kmem_cache_alloc_node(skbuff_head_cache,
167 				    gfp_mask & ~__GFP_DMA, node);
168 	if (!skb)
169 		goto out;
170 
171 	/*
172 	 * Only clear those fields we need to clear, not those that we will
173 	 * actually initialise below. Hence, don't put any more fields after
174 	 * the tail pointer in struct sk_buff!
175 	 */
176 	memset(skb, 0, offsetof(struct sk_buff, tail));
177 	skb->head = NULL;
178 	skb->truesize = sizeof(struct sk_buff);
179 	atomic_set(&skb->users, 1);
180 
181 	skb->mac_header = (typeof(skb->mac_header))~0U;
182 out:
183 	return skb;
184 }
185 
186 /**
187  *	__alloc_skb	-	allocate a network buffer
188  *	@size: size to allocate
189  *	@gfp_mask: allocation mask
190  *	@flags: If SKB_ALLOC_FCLONE is set, allocate from fclone cache
191  *		instead of head cache and allocate a cloned (child) skb.
192  *		If SKB_ALLOC_RX is set, __GFP_MEMALLOC will be used for
193  *		allocations in case the data is required for writeback
194  *	@node: numa node to allocate memory on
195  *
196  *	Allocate a new &sk_buff. The returned buffer has no headroom and a
197  *	tail room of at least size bytes. The object has a reference count
198  *	of one. The return is the buffer. On a failure the return is %NULL.
199  *
200  *	Buffers may only be allocated from interrupts using a @gfp_mask of
201  *	%GFP_ATOMIC.
202  */
203 struct sk_buff *__alloc_skb(unsigned int size, gfp_t gfp_mask,
204 			    int flags, int node)
205 {
206 	struct kmem_cache *cache;
207 	struct skb_shared_info *shinfo;
208 	struct sk_buff *skb;
209 	u8 *data;
210 	bool pfmemalloc;
211 
212 	cache = (flags & SKB_ALLOC_FCLONE)
213 		? skbuff_fclone_cache : skbuff_head_cache;
214 
215 	if (sk_memalloc_socks() && (flags & SKB_ALLOC_RX))
216 		gfp_mask |= __GFP_MEMALLOC;
217 
218 	/* Get the HEAD */
219 	skb = kmem_cache_alloc_node(cache, gfp_mask & ~__GFP_DMA, node);
220 	if (!skb)
221 		goto out;
222 	prefetchw(skb);
223 
224 	/* We do our best to align skb_shared_info on a separate cache
225 	 * line. It usually works because kmalloc(X > SMP_CACHE_BYTES) gives
226 	 * aligned memory blocks, unless SLUB/SLAB debug is enabled.
227 	 * Both skb->head and skb_shared_info are cache line aligned.
228 	 */
229 	size = SKB_DATA_ALIGN(size);
230 	size += SKB_DATA_ALIGN(sizeof(struct skb_shared_info));
231 	data = kmalloc_reserve(size, gfp_mask, node, &pfmemalloc);
232 	if (!data)
233 		goto nodata;
234 	/* kmalloc(size) might give us more room than requested.
235 	 * Put skb_shared_info exactly at the end of allocated zone,
236 	 * to allow max possible filling before reallocation.
237 	 */
238 	size = SKB_WITH_OVERHEAD(ksize(data));
239 	prefetchw(data + size);
240 
241 	/*
242 	 * Only clear those fields we need to clear, not those that we will
243 	 * actually initialise below. Hence, don't put any more fields after
244 	 * the tail pointer in struct sk_buff!
245 	 */
246 	memset(skb, 0, offsetof(struct sk_buff, tail));
247 	/* Account for allocated memory : skb + skb->head */
248 	skb->truesize = SKB_TRUESIZE(size);
249 	skb->pfmemalloc = pfmemalloc;
250 	atomic_set(&skb->users, 1);
251 	skb->head = data;
252 	skb->data = data;
253 	skb_reset_tail_pointer(skb);
254 	skb->end = skb->tail + size;
255 	skb->mac_header = (typeof(skb->mac_header))~0U;
256 	skb->transport_header = (typeof(skb->transport_header))~0U;
257 
258 	/* make sure we initialize shinfo sequentially */
259 	shinfo = skb_shinfo(skb);
260 	memset(shinfo, 0, offsetof(struct skb_shared_info, dataref));
261 	atomic_set(&shinfo->dataref, 1);
262 	kmemcheck_annotate_variable(shinfo->destructor_arg);
263 
264 	if (flags & SKB_ALLOC_FCLONE) {
265 		struct sk_buff_fclones *fclones;
266 
267 		fclones = container_of(skb, struct sk_buff_fclones, skb1);
268 
269 		kmemcheck_annotate_bitfield(&fclones->skb2, flags1);
270 		skb->fclone = SKB_FCLONE_ORIG;
271 		atomic_set(&fclones->fclone_ref, 1);
272 
273 		fclones->skb2.fclone = SKB_FCLONE_CLONE;
274 		fclones->skb2.pfmemalloc = pfmemalloc;
275 	}
276 out:
277 	return skb;
278 nodata:
279 	kmem_cache_free(cache, skb);
280 	skb = NULL;
281 	goto out;
282 }
283 EXPORT_SYMBOL(__alloc_skb);
284 
285 /**
286  * __build_skb - build a network buffer
287  * @data: data buffer provided by caller
288  * @frag_size: size of data, or 0 if head was kmalloced
289  *
290  * Allocate a new &sk_buff. Caller provides space holding head and
291  * skb_shared_info. @data must have been allocated by kmalloc() only if
292  * @frag_size is 0, otherwise data should come from the page allocator
293  *  or vmalloc()
294  * The return is the new skb buffer.
295  * On a failure the return is %NULL, and @data is not freed.
296  * Notes :
297  *  Before IO, driver allocates only data buffer where NIC put incoming frame
298  *  Driver should add room at head (NET_SKB_PAD) and
299  *  MUST add room at tail (SKB_DATA_ALIGN(skb_shared_info))
300  *  After IO, driver calls build_skb(), to allocate sk_buff and populate it
301  *  before giving packet to stack.
302  *  RX rings only contains data buffers, not full skbs.
303  */
304 struct sk_buff *__build_skb(void *data, unsigned int frag_size)
305 {
306 	struct skb_shared_info *shinfo;
307 	struct sk_buff *skb;
308 	unsigned int size = frag_size ? : ksize(data);
309 
310 	skb = kmem_cache_alloc(skbuff_head_cache, GFP_ATOMIC);
311 	if (!skb)
312 		return NULL;
313 
314 	size -= SKB_DATA_ALIGN(sizeof(struct skb_shared_info));
315 
316 	memset(skb, 0, offsetof(struct sk_buff, tail));
317 	skb->truesize = SKB_TRUESIZE(size);
318 	atomic_set(&skb->users, 1);
319 	skb->head = data;
320 	skb->data = data;
321 	skb_reset_tail_pointer(skb);
322 	skb->end = skb->tail + size;
323 	skb->mac_header = (typeof(skb->mac_header))~0U;
324 	skb->transport_header = (typeof(skb->transport_header))~0U;
325 
326 	/* make sure we initialize shinfo sequentially */
327 	shinfo = skb_shinfo(skb);
328 	memset(shinfo, 0, offsetof(struct skb_shared_info, dataref));
329 	atomic_set(&shinfo->dataref, 1);
330 	kmemcheck_annotate_variable(shinfo->destructor_arg);
331 
332 	return skb;
333 }
334 
335 /* build_skb() is wrapper over __build_skb(), that specifically
336  * takes care of skb->head and skb->pfmemalloc
337  * This means that if @frag_size is not zero, then @data must be backed
338  * by a page fragment, not kmalloc() or vmalloc()
339  */
340 struct sk_buff *build_skb(void *data, unsigned int frag_size)
341 {
342 	struct sk_buff *skb = __build_skb(data, frag_size);
343 
344 	if (skb && frag_size) {
345 		skb->head_frag = 1;
346 		if (page_is_pfmemalloc(virt_to_head_page(data)))
347 			skb->pfmemalloc = 1;
348 	}
349 	return skb;
350 }
351 EXPORT_SYMBOL(build_skb);
352 
353 #define NAPI_SKB_CACHE_SIZE	64
354 
355 struct napi_alloc_cache {
356 	struct page_frag_cache page;
357 	size_t skb_count;
358 	void *skb_cache[NAPI_SKB_CACHE_SIZE];
359 };
360 
361 static DEFINE_PER_CPU(struct page_frag_cache, netdev_alloc_cache);
362 static DEFINE_PER_CPU(struct napi_alloc_cache, napi_alloc_cache);
363 
364 static void *__netdev_alloc_frag(unsigned int fragsz, gfp_t gfp_mask)
365 {
366 	struct page_frag_cache *nc;
367 	unsigned long flags;
368 	void *data;
369 
370 	local_irq_save(flags);
371 	nc = this_cpu_ptr(&netdev_alloc_cache);
372 	data = __alloc_page_frag(nc, fragsz, gfp_mask);
373 	local_irq_restore(flags);
374 	return data;
375 }
376 
377 /**
378  * netdev_alloc_frag - allocate a page fragment
379  * @fragsz: fragment size
380  *
381  * Allocates a frag from a page for receive buffer.
382  * Uses GFP_ATOMIC allocations.
383  */
384 void *netdev_alloc_frag(unsigned int fragsz)
385 {
386 	return __netdev_alloc_frag(fragsz, GFP_ATOMIC | __GFP_COLD);
387 }
388 EXPORT_SYMBOL(netdev_alloc_frag);
389 
390 static void *__napi_alloc_frag(unsigned int fragsz, gfp_t gfp_mask)
391 {
392 	struct napi_alloc_cache *nc = this_cpu_ptr(&napi_alloc_cache);
393 
394 	return __alloc_page_frag(&nc->page, fragsz, gfp_mask);
395 }
396 
397 void *napi_alloc_frag(unsigned int fragsz)
398 {
399 	return __napi_alloc_frag(fragsz, GFP_ATOMIC | __GFP_COLD);
400 }
401 EXPORT_SYMBOL(napi_alloc_frag);
402 
403 /**
404  *	__netdev_alloc_skb - allocate an skbuff for rx on a specific device
405  *	@dev: network device to receive on
406  *	@len: length to allocate
407  *	@gfp_mask: get_free_pages mask, passed to alloc_skb
408  *
409  *	Allocate a new &sk_buff and assign it a usage count of one. The
410  *	buffer has NET_SKB_PAD headroom built in. Users should allocate
411  *	the headroom they think they need without accounting for the
412  *	built in space. The built in space is used for optimisations.
413  *
414  *	%NULL is returned if there is no free memory.
415  */
416 struct sk_buff *__netdev_alloc_skb(struct net_device *dev, unsigned int len,
417 				   gfp_t gfp_mask)
418 {
419 	struct page_frag_cache *nc;
420 	unsigned long flags;
421 	struct sk_buff *skb;
422 	bool pfmemalloc;
423 	void *data;
424 
425 	len += NET_SKB_PAD;
426 
427 	if ((len > SKB_WITH_OVERHEAD(PAGE_SIZE)) ||
428 	    (gfp_mask & (__GFP_DIRECT_RECLAIM | GFP_DMA))) {
429 		skb = __alloc_skb(len, gfp_mask, SKB_ALLOC_RX, NUMA_NO_NODE);
430 		if (!skb)
431 			goto skb_fail;
432 		goto skb_success;
433 	}
434 
435 	len += SKB_DATA_ALIGN(sizeof(struct skb_shared_info));
436 	len = SKB_DATA_ALIGN(len);
437 
438 	if (sk_memalloc_socks())
439 		gfp_mask |= __GFP_MEMALLOC;
440 
441 	local_irq_save(flags);
442 
443 	nc = this_cpu_ptr(&netdev_alloc_cache);
444 	data = __alloc_page_frag(nc, len, gfp_mask);
445 	pfmemalloc = nc->pfmemalloc;
446 
447 	local_irq_restore(flags);
448 
449 	if (unlikely(!data))
450 		return NULL;
451 
452 	skb = __build_skb(data, len);
453 	if (unlikely(!skb)) {
454 		skb_free_frag(data);
455 		return NULL;
456 	}
457 
458 	/* use OR instead of assignment to avoid clearing of bits in mask */
459 	if (pfmemalloc)
460 		skb->pfmemalloc = 1;
461 	skb->head_frag = 1;
462 
463 skb_success:
464 	skb_reserve(skb, NET_SKB_PAD);
465 	skb->dev = dev;
466 
467 skb_fail:
468 	return skb;
469 }
470 EXPORT_SYMBOL(__netdev_alloc_skb);
471 
472 /**
473  *	__napi_alloc_skb - allocate skbuff for rx in a specific NAPI instance
474  *	@napi: napi instance this buffer was allocated for
475  *	@len: length to allocate
476  *	@gfp_mask: get_free_pages mask, passed to alloc_skb and alloc_pages
477  *
478  *	Allocate a new sk_buff for use in NAPI receive.  This buffer will
479  *	attempt to allocate the head from a special reserved region used
480  *	only for NAPI Rx allocation.  By doing this we can save several
481  *	CPU cycles by avoiding having to disable and re-enable IRQs.
482  *
483  *	%NULL is returned if there is no free memory.
484  */
485 struct sk_buff *__napi_alloc_skb(struct napi_struct *napi, unsigned int len,
486 				 gfp_t gfp_mask)
487 {
488 	struct napi_alloc_cache *nc = this_cpu_ptr(&napi_alloc_cache);
489 	struct sk_buff *skb;
490 	void *data;
491 
492 	len += NET_SKB_PAD + NET_IP_ALIGN;
493 
494 	if ((len > SKB_WITH_OVERHEAD(PAGE_SIZE)) ||
495 	    (gfp_mask & (__GFP_DIRECT_RECLAIM | GFP_DMA))) {
496 		skb = __alloc_skb(len, gfp_mask, SKB_ALLOC_RX, NUMA_NO_NODE);
497 		if (!skb)
498 			goto skb_fail;
499 		goto skb_success;
500 	}
501 
502 	len += SKB_DATA_ALIGN(sizeof(struct skb_shared_info));
503 	len = SKB_DATA_ALIGN(len);
504 
505 	if (sk_memalloc_socks())
506 		gfp_mask |= __GFP_MEMALLOC;
507 
508 	data = __alloc_page_frag(&nc->page, len, gfp_mask);
509 	if (unlikely(!data))
510 		return NULL;
511 
512 	skb = __build_skb(data, len);
513 	if (unlikely(!skb)) {
514 		skb_free_frag(data);
515 		return NULL;
516 	}
517 
518 	/* use OR instead of assignment to avoid clearing of bits in mask */
519 	if (nc->page.pfmemalloc)
520 		skb->pfmemalloc = 1;
521 	skb->head_frag = 1;
522 
523 skb_success:
524 	skb_reserve(skb, NET_SKB_PAD + NET_IP_ALIGN);
525 	skb->dev = napi->dev;
526 
527 skb_fail:
528 	return skb;
529 }
530 EXPORT_SYMBOL(__napi_alloc_skb);
531 
532 void skb_add_rx_frag(struct sk_buff *skb, int i, struct page *page, int off,
533 		     int size, unsigned int truesize)
534 {
535 	skb_fill_page_desc(skb, i, page, off, size);
536 	skb->len += size;
537 	skb->data_len += size;
538 	skb->truesize += truesize;
539 }
540 EXPORT_SYMBOL(skb_add_rx_frag);
541 
542 void skb_coalesce_rx_frag(struct sk_buff *skb, int i, int size,
543 			  unsigned int truesize)
544 {
545 	skb_frag_t *frag = &skb_shinfo(skb)->frags[i];
546 
547 	skb_frag_size_add(frag, size);
548 	skb->len += size;
549 	skb->data_len += size;
550 	skb->truesize += truesize;
551 }
552 EXPORT_SYMBOL(skb_coalesce_rx_frag);
553 
554 static void skb_drop_list(struct sk_buff **listp)
555 {
556 	kfree_skb_list(*listp);
557 	*listp = NULL;
558 }
559 
560 static inline void skb_drop_fraglist(struct sk_buff *skb)
561 {
562 	skb_drop_list(&skb_shinfo(skb)->frag_list);
563 }
564 
565 static void skb_clone_fraglist(struct sk_buff *skb)
566 {
567 	struct sk_buff *list;
568 
569 	skb_walk_frags(skb, list)
570 		skb_get(list);
571 }
572 
573 static void skb_free_head(struct sk_buff *skb)
574 {
575 	unsigned char *head = skb->head;
576 
577 	if (skb->head_frag)
578 		skb_free_frag(head);
579 	else
580 		kfree(head);
581 }
582 
583 static void skb_release_data(struct sk_buff *skb)
584 {
585 	struct skb_shared_info *shinfo = skb_shinfo(skb);
586 	int i;
587 
588 	if (skb->cloned &&
589 	    atomic_sub_return(skb->nohdr ? (1 << SKB_DATAREF_SHIFT) + 1 : 1,
590 			      &shinfo->dataref))
591 		return;
592 
593 	for (i = 0; i < shinfo->nr_frags; i++)
594 		__skb_frag_unref(&shinfo->frags[i]);
595 
596 	/*
597 	 * If skb buf is from userspace, we need to notify the caller
598 	 * the lower device DMA has done;
599 	 */
600 	if (shinfo->tx_flags & SKBTX_DEV_ZEROCOPY) {
601 		struct ubuf_info *uarg;
602 
603 		uarg = shinfo->destructor_arg;
604 		if (uarg->callback)
605 			uarg->callback(uarg, true);
606 	}
607 
608 	if (shinfo->frag_list)
609 		kfree_skb_list(shinfo->frag_list);
610 
611 	skb_free_head(skb);
612 }
613 
614 /*
615  *	Free an skbuff by memory without cleaning the state.
616  */
617 static void kfree_skbmem(struct sk_buff *skb)
618 {
619 	struct sk_buff_fclones *fclones;
620 
621 	switch (skb->fclone) {
622 	case SKB_FCLONE_UNAVAILABLE:
623 		kmem_cache_free(skbuff_head_cache, skb);
624 		return;
625 
626 	case SKB_FCLONE_ORIG:
627 		fclones = container_of(skb, struct sk_buff_fclones, skb1);
628 
629 		/* We usually free the clone (TX completion) before original skb
630 		 * This test would have no chance to be true for the clone,
631 		 * while here, branch prediction will be good.
632 		 */
633 		if (atomic_read(&fclones->fclone_ref) == 1)
634 			goto fastpath;
635 		break;
636 
637 	default: /* SKB_FCLONE_CLONE */
638 		fclones = container_of(skb, struct sk_buff_fclones, skb2);
639 		break;
640 	}
641 	if (!atomic_dec_and_test(&fclones->fclone_ref))
642 		return;
643 fastpath:
644 	kmem_cache_free(skbuff_fclone_cache, fclones);
645 }
646 
647 static void skb_release_head_state(struct sk_buff *skb)
648 {
649 	skb_dst_drop(skb);
650 #ifdef CONFIG_XFRM
651 	secpath_put(skb->sp);
652 #endif
653 	if (skb->destructor) {
654 		WARN_ON(in_irq());
655 		skb->destructor(skb);
656 	}
657 #if IS_ENABLED(CONFIG_NF_CONNTRACK)
658 	nf_conntrack_put(skb->nfct);
659 #endif
660 #if IS_ENABLED(CONFIG_BRIDGE_NETFILTER)
661 	nf_bridge_put(skb->nf_bridge);
662 #endif
663 }
664 
665 /* Free everything but the sk_buff shell. */
666 static void skb_release_all(struct sk_buff *skb)
667 {
668 	skb_release_head_state(skb);
669 	if (likely(skb->head))
670 		skb_release_data(skb);
671 }
672 
673 /**
674  *	__kfree_skb - private function
675  *	@skb: buffer
676  *
677  *	Free an sk_buff. Release anything attached to the buffer.
678  *	Clean the state. This is an internal helper function. Users should
679  *	always call kfree_skb
680  */
681 
682 void __kfree_skb(struct sk_buff *skb)
683 {
684 	skb_release_all(skb);
685 	kfree_skbmem(skb);
686 }
687 EXPORT_SYMBOL(__kfree_skb);
688 
689 /**
690  *	kfree_skb - free an sk_buff
691  *	@skb: buffer to free
692  *
693  *	Drop a reference to the buffer and free it if the usage count has
694  *	hit zero.
695  */
696 void kfree_skb(struct sk_buff *skb)
697 {
698 	if (unlikely(!skb))
699 		return;
700 	if (likely(atomic_read(&skb->users) == 1))
701 		smp_rmb();
702 	else if (likely(!atomic_dec_and_test(&skb->users)))
703 		return;
704 	trace_kfree_skb(skb, __builtin_return_address(0));
705 	__kfree_skb(skb);
706 }
707 EXPORT_SYMBOL(kfree_skb);
708 
709 void kfree_skb_list(struct sk_buff *segs)
710 {
711 	while (segs) {
712 		struct sk_buff *next = segs->next;
713 
714 		kfree_skb(segs);
715 		segs = next;
716 	}
717 }
718 EXPORT_SYMBOL(kfree_skb_list);
719 
720 /**
721  *	skb_tx_error - report an sk_buff xmit error
722  *	@skb: buffer that triggered an error
723  *
724  *	Report xmit error if a device callback is tracking this skb.
725  *	skb must be freed afterwards.
726  */
727 void skb_tx_error(struct sk_buff *skb)
728 {
729 	if (skb_shinfo(skb)->tx_flags & SKBTX_DEV_ZEROCOPY) {
730 		struct ubuf_info *uarg;
731 
732 		uarg = skb_shinfo(skb)->destructor_arg;
733 		if (uarg->callback)
734 			uarg->callback(uarg, false);
735 		skb_shinfo(skb)->tx_flags &= ~SKBTX_DEV_ZEROCOPY;
736 	}
737 }
738 EXPORT_SYMBOL(skb_tx_error);
739 
740 /**
741  *	consume_skb - free an skbuff
742  *	@skb: buffer to free
743  *
744  *	Drop a ref to the buffer and free it if the usage count has hit zero
745  *	Functions identically to kfree_skb, but kfree_skb assumes that the frame
746  *	is being dropped after a failure and notes that
747  */
748 void consume_skb(struct sk_buff *skb)
749 {
750 	if (unlikely(!skb))
751 		return;
752 	if (likely(atomic_read(&skb->users) == 1))
753 		smp_rmb();
754 	else if (likely(!atomic_dec_and_test(&skb->users)))
755 		return;
756 	trace_consume_skb(skb);
757 	__kfree_skb(skb);
758 }
759 EXPORT_SYMBOL(consume_skb);
760 
761 void __kfree_skb_flush(void)
762 {
763 	struct napi_alloc_cache *nc = this_cpu_ptr(&napi_alloc_cache);
764 
765 	/* flush skb_cache if containing objects */
766 	if (nc->skb_count) {
767 		kmem_cache_free_bulk(skbuff_head_cache, nc->skb_count,
768 				     nc->skb_cache);
769 		nc->skb_count = 0;
770 	}
771 }
772 
773 static inline void _kfree_skb_defer(struct sk_buff *skb)
774 {
775 	struct napi_alloc_cache *nc = this_cpu_ptr(&napi_alloc_cache);
776 
777 	/* drop skb->head and call any destructors for packet */
778 	skb_release_all(skb);
779 
780 	/* record skb to CPU local list */
781 	nc->skb_cache[nc->skb_count++] = skb;
782 
783 #ifdef CONFIG_SLUB
784 	/* SLUB writes into objects when freeing */
785 	prefetchw(skb);
786 #endif
787 
788 	/* flush skb_cache if it is filled */
789 	if (unlikely(nc->skb_count == NAPI_SKB_CACHE_SIZE)) {
790 		kmem_cache_free_bulk(skbuff_head_cache, NAPI_SKB_CACHE_SIZE,
791 				     nc->skb_cache);
792 		nc->skb_count = 0;
793 	}
794 }
795 void __kfree_skb_defer(struct sk_buff *skb)
796 {
797 	_kfree_skb_defer(skb);
798 }
799 
800 void napi_consume_skb(struct sk_buff *skb, int budget)
801 {
802 	if (unlikely(!skb))
803 		return;
804 
805 	/* Zero budget indicate non-NAPI context called us, like netpoll */
806 	if (unlikely(!budget)) {
807 		dev_consume_skb_any(skb);
808 		return;
809 	}
810 
811 	if (likely(atomic_read(&skb->users) == 1))
812 		smp_rmb();
813 	else if (likely(!atomic_dec_and_test(&skb->users)))
814 		return;
815 	/* if reaching here SKB is ready to free */
816 	trace_consume_skb(skb);
817 
818 	/* if SKB is a clone, don't handle this case */
819 	if (skb->fclone != SKB_FCLONE_UNAVAILABLE) {
820 		__kfree_skb(skb);
821 		return;
822 	}
823 
824 	_kfree_skb_defer(skb);
825 }
826 EXPORT_SYMBOL(napi_consume_skb);
827 
828 /* Make sure a field is enclosed inside headers_start/headers_end section */
829 #define CHECK_SKB_FIELD(field) \
830 	BUILD_BUG_ON(offsetof(struct sk_buff, field) <		\
831 		     offsetof(struct sk_buff, headers_start));	\
832 	BUILD_BUG_ON(offsetof(struct sk_buff, field) >		\
833 		     offsetof(struct sk_buff, headers_end));	\
834 
835 static void __copy_skb_header(struct sk_buff *new, const struct sk_buff *old)
836 {
837 	new->tstamp		= old->tstamp;
838 	/* We do not copy old->sk */
839 	new->dev		= old->dev;
840 	memcpy(new->cb, old->cb, sizeof(old->cb));
841 	skb_dst_copy(new, old);
842 #ifdef CONFIG_XFRM
843 	new->sp			= secpath_get(old->sp);
844 #endif
845 	__nf_copy(new, old, false);
846 
847 	/* Note : this field could be in headers_start/headers_end section
848 	 * It is not yet because we do not want to have a 16 bit hole
849 	 */
850 	new->queue_mapping = old->queue_mapping;
851 
852 	memcpy(&new->headers_start, &old->headers_start,
853 	       offsetof(struct sk_buff, headers_end) -
854 	       offsetof(struct sk_buff, headers_start));
855 	CHECK_SKB_FIELD(protocol);
856 	CHECK_SKB_FIELD(csum);
857 	CHECK_SKB_FIELD(hash);
858 	CHECK_SKB_FIELD(priority);
859 	CHECK_SKB_FIELD(skb_iif);
860 	CHECK_SKB_FIELD(vlan_proto);
861 	CHECK_SKB_FIELD(vlan_tci);
862 	CHECK_SKB_FIELD(transport_header);
863 	CHECK_SKB_FIELD(network_header);
864 	CHECK_SKB_FIELD(mac_header);
865 	CHECK_SKB_FIELD(inner_protocol);
866 	CHECK_SKB_FIELD(inner_transport_header);
867 	CHECK_SKB_FIELD(inner_network_header);
868 	CHECK_SKB_FIELD(inner_mac_header);
869 	CHECK_SKB_FIELD(mark);
870 #ifdef CONFIG_NETWORK_SECMARK
871 	CHECK_SKB_FIELD(secmark);
872 #endif
873 #ifdef CONFIG_NET_RX_BUSY_POLL
874 	CHECK_SKB_FIELD(napi_id);
875 #endif
876 #ifdef CONFIG_XPS
877 	CHECK_SKB_FIELD(sender_cpu);
878 #endif
879 #ifdef CONFIG_NET_SCHED
880 	CHECK_SKB_FIELD(tc_index);
881 #ifdef CONFIG_NET_CLS_ACT
882 	CHECK_SKB_FIELD(tc_verd);
883 #endif
884 #endif
885 
886 }
887 
888 /*
889  * You should not add any new code to this function.  Add it to
890  * __copy_skb_header above instead.
891  */
892 static struct sk_buff *__skb_clone(struct sk_buff *n, struct sk_buff *skb)
893 {
894 #define C(x) n->x = skb->x
895 
896 	n->next = n->prev = NULL;
897 	n->sk = NULL;
898 	__copy_skb_header(n, skb);
899 
900 	C(len);
901 	C(data_len);
902 	C(mac_len);
903 	n->hdr_len = skb->nohdr ? skb_headroom(skb) : skb->hdr_len;
904 	n->cloned = 1;
905 	n->nohdr = 0;
906 	n->destructor = NULL;
907 	C(tail);
908 	C(end);
909 	C(head);
910 	C(head_frag);
911 	C(data);
912 	C(truesize);
913 	atomic_set(&n->users, 1);
914 
915 	atomic_inc(&(skb_shinfo(skb)->dataref));
916 	skb->cloned = 1;
917 
918 	return n;
919 #undef C
920 }
921 
922 /**
923  *	skb_morph	-	morph one skb into another
924  *	@dst: the skb to receive the contents
925  *	@src: the skb to supply the contents
926  *
927  *	This is identical to skb_clone except that the target skb is
928  *	supplied by the user.
929  *
930  *	The target skb is returned upon exit.
931  */
932 struct sk_buff *skb_morph(struct sk_buff *dst, struct sk_buff *src)
933 {
934 	skb_release_all(dst);
935 	return __skb_clone(dst, src);
936 }
937 EXPORT_SYMBOL_GPL(skb_morph);
938 
939 /**
940  *	skb_copy_ubufs	-	copy userspace skb frags buffers to kernel
941  *	@skb: the skb to modify
942  *	@gfp_mask: allocation priority
943  *
944  *	This must be called on SKBTX_DEV_ZEROCOPY skb.
945  *	It will copy all frags into kernel and drop the reference
946  *	to userspace pages.
947  *
948  *	If this function is called from an interrupt gfp_mask() must be
949  *	%GFP_ATOMIC.
950  *
951  *	Returns 0 on success or a negative error code on failure
952  *	to allocate kernel memory to copy to.
953  */
954 int skb_copy_ubufs(struct sk_buff *skb, gfp_t gfp_mask)
955 {
956 	int i;
957 	int num_frags = skb_shinfo(skb)->nr_frags;
958 	struct page *page, *head = NULL;
959 	struct ubuf_info *uarg = skb_shinfo(skb)->destructor_arg;
960 
961 	for (i = 0; i < num_frags; i++) {
962 		u8 *vaddr;
963 		skb_frag_t *f = &skb_shinfo(skb)->frags[i];
964 
965 		page = alloc_page(gfp_mask);
966 		if (!page) {
967 			while (head) {
968 				struct page *next = (struct page *)page_private(head);
969 				put_page(head);
970 				head = next;
971 			}
972 			return -ENOMEM;
973 		}
974 		vaddr = kmap_atomic(skb_frag_page(f));
975 		memcpy(page_address(page),
976 		       vaddr + f->page_offset, skb_frag_size(f));
977 		kunmap_atomic(vaddr);
978 		set_page_private(page, (unsigned long)head);
979 		head = page;
980 	}
981 
982 	/* skb frags release userspace buffers */
983 	for (i = 0; i < num_frags; i++)
984 		skb_frag_unref(skb, i);
985 
986 	uarg->callback(uarg, false);
987 
988 	/* skb frags point to kernel buffers */
989 	for (i = num_frags - 1; i >= 0; i--) {
990 		__skb_fill_page_desc(skb, i, head, 0,
991 				     skb_shinfo(skb)->frags[i].size);
992 		head = (struct page *)page_private(head);
993 	}
994 
995 	skb_shinfo(skb)->tx_flags &= ~SKBTX_DEV_ZEROCOPY;
996 	return 0;
997 }
998 EXPORT_SYMBOL_GPL(skb_copy_ubufs);
999 
1000 /**
1001  *	skb_clone	-	duplicate an sk_buff
1002  *	@skb: buffer to clone
1003  *	@gfp_mask: allocation priority
1004  *
1005  *	Duplicate an &sk_buff. The new one is not owned by a socket. Both
1006  *	copies share the same packet data but not structure. The new
1007  *	buffer has a reference count of 1. If the allocation fails the
1008  *	function returns %NULL otherwise the new buffer is returned.
1009  *
1010  *	If this function is called from an interrupt gfp_mask() must be
1011  *	%GFP_ATOMIC.
1012  */
1013 
1014 struct sk_buff *skb_clone(struct sk_buff *skb, gfp_t gfp_mask)
1015 {
1016 	struct sk_buff_fclones *fclones = container_of(skb,
1017 						       struct sk_buff_fclones,
1018 						       skb1);
1019 	struct sk_buff *n;
1020 
1021 	if (skb_orphan_frags(skb, gfp_mask))
1022 		return NULL;
1023 
1024 	if (skb->fclone == SKB_FCLONE_ORIG &&
1025 	    atomic_read(&fclones->fclone_ref) == 1) {
1026 		n = &fclones->skb2;
1027 		atomic_set(&fclones->fclone_ref, 2);
1028 	} else {
1029 		if (skb_pfmemalloc(skb))
1030 			gfp_mask |= __GFP_MEMALLOC;
1031 
1032 		n = kmem_cache_alloc(skbuff_head_cache, gfp_mask);
1033 		if (!n)
1034 			return NULL;
1035 
1036 		kmemcheck_annotate_bitfield(n, flags1);
1037 		n->fclone = SKB_FCLONE_UNAVAILABLE;
1038 	}
1039 
1040 	return __skb_clone(n, skb);
1041 }
1042 EXPORT_SYMBOL(skb_clone);
1043 
1044 static void skb_headers_offset_update(struct sk_buff *skb, int off)
1045 {
1046 	/* Only adjust this if it actually is csum_start rather than csum */
1047 	if (skb->ip_summed == CHECKSUM_PARTIAL)
1048 		skb->csum_start += off;
1049 	/* {transport,network,mac}_header and tail are relative to skb->head */
1050 	skb->transport_header += off;
1051 	skb->network_header   += off;
1052 	if (skb_mac_header_was_set(skb))
1053 		skb->mac_header += off;
1054 	skb->inner_transport_header += off;
1055 	skb->inner_network_header += off;
1056 	skb->inner_mac_header += off;
1057 }
1058 
1059 static void copy_skb_header(struct sk_buff *new, const struct sk_buff *old)
1060 {
1061 	__copy_skb_header(new, old);
1062 
1063 	skb_shinfo(new)->gso_size = skb_shinfo(old)->gso_size;
1064 	skb_shinfo(new)->gso_segs = skb_shinfo(old)->gso_segs;
1065 	skb_shinfo(new)->gso_type = skb_shinfo(old)->gso_type;
1066 }
1067 
1068 static inline int skb_alloc_rx_flag(const struct sk_buff *skb)
1069 {
1070 	if (skb_pfmemalloc(skb))
1071 		return SKB_ALLOC_RX;
1072 	return 0;
1073 }
1074 
1075 /**
1076  *	skb_copy	-	create private copy of an sk_buff
1077  *	@skb: buffer to copy
1078  *	@gfp_mask: allocation priority
1079  *
1080  *	Make a copy of both an &sk_buff and its data. This is used when the
1081  *	caller wishes to modify the data and needs a private copy of the
1082  *	data to alter. Returns %NULL on failure or the pointer to the buffer
1083  *	on success. The returned buffer has a reference count of 1.
1084  *
1085  *	As by-product this function converts non-linear &sk_buff to linear
1086  *	one, so that &sk_buff becomes completely private and caller is allowed
1087  *	to modify all the data of returned buffer. This means that this
1088  *	function is not recommended for use in circumstances when only
1089  *	header is going to be modified. Use pskb_copy() instead.
1090  */
1091 
1092 struct sk_buff *skb_copy(const struct sk_buff *skb, gfp_t gfp_mask)
1093 {
1094 	int headerlen = skb_headroom(skb);
1095 	unsigned int size = skb_end_offset(skb) + skb->data_len;
1096 	struct sk_buff *n = __alloc_skb(size, gfp_mask,
1097 					skb_alloc_rx_flag(skb), NUMA_NO_NODE);
1098 
1099 	if (!n)
1100 		return NULL;
1101 
1102 	/* Set the data pointer */
1103 	skb_reserve(n, headerlen);
1104 	/* Set the tail pointer and length */
1105 	skb_put(n, skb->len);
1106 
1107 	if (skb_copy_bits(skb, -headerlen, n->head, headerlen + skb->len))
1108 		BUG();
1109 
1110 	copy_skb_header(n, skb);
1111 	return n;
1112 }
1113 EXPORT_SYMBOL(skb_copy);
1114 
1115 /**
1116  *	__pskb_copy_fclone	-  create copy of an sk_buff with private head.
1117  *	@skb: buffer to copy
1118  *	@headroom: headroom of new skb
1119  *	@gfp_mask: allocation priority
1120  *	@fclone: if true allocate the copy of the skb from the fclone
1121  *	cache instead of the head cache; it is recommended to set this
1122  *	to true for the cases where the copy will likely be cloned
1123  *
1124  *	Make a copy of both an &sk_buff and part of its data, located
1125  *	in header. Fragmented data remain shared. This is used when
1126  *	the caller wishes to modify only header of &sk_buff and needs
1127  *	private copy of the header to alter. Returns %NULL on failure
1128  *	or the pointer to the buffer on success.
1129  *	The returned buffer has a reference count of 1.
1130  */
1131 
1132 struct sk_buff *__pskb_copy_fclone(struct sk_buff *skb, int headroom,
1133 				   gfp_t gfp_mask, bool fclone)
1134 {
1135 	unsigned int size = skb_headlen(skb) + headroom;
1136 	int flags = skb_alloc_rx_flag(skb) | (fclone ? SKB_ALLOC_FCLONE : 0);
1137 	struct sk_buff *n = __alloc_skb(size, gfp_mask, flags, NUMA_NO_NODE);
1138 
1139 	if (!n)
1140 		goto out;
1141 
1142 	/* Set the data pointer */
1143 	skb_reserve(n, headroom);
1144 	/* Set the tail pointer and length */
1145 	skb_put(n, skb_headlen(skb));
1146 	/* Copy the bytes */
1147 	skb_copy_from_linear_data(skb, n->data, n->len);
1148 
1149 	n->truesize += skb->data_len;
1150 	n->data_len  = skb->data_len;
1151 	n->len	     = skb->len;
1152 
1153 	if (skb_shinfo(skb)->nr_frags) {
1154 		int i;
1155 
1156 		if (skb_orphan_frags(skb, gfp_mask)) {
1157 			kfree_skb(n);
1158 			n = NULL;
1159 			goto out;
1160 		}
1161 		for (i = 0; i < skb_shinfo(skb)->nr_frags; i++) {
1162 			skb_shinfo(n)->frags[i] = skb_shinfo(skb)->frags[i];
1163 			skb_frag_ref(skb, i);
1164 		}
1165 		skb_shinfo(n)->nr_frags = i;
1166 	}
1167 
1168 	if (skb_has_frag_list(skb)) {
1169 		skb_shinfo(n)->frag_list = skb_shinfo(skb)->frag_list;
1170 		skb_clone_fraglist(n);
1171 	}
1172 
1173 	copy_skb_header(n, skb);
1174 out:
1175 	return n;
1176 }
1177 EXPORT_SYMBOL(__pskb_copy_fclone);
1178 
1179 /**
1180  *	pskb_expand_head - reallocate header of &sk_buff
1181  *	@skb: buffer to reallocate
1182  *	@nhead: room to add at head
1183  *	@ntail: room to add at tail
1184  *	@gfp_mask: allocation priority
1185  *
1186  *	Expands (or creates identical copy, if @nhead and @ntail are zero)
1187  *	header of @skb. &sk_buff itself is not changed. &sk_buff MUST have
1188  *	reference count of 1. Returns zero in the case of success or error,
1189  *	if expansion failed. In the last case, &sk_buff is not changed.
1190  *
1191  *	All the pointers pointing into skb header may change and must be
1192  *	reloaded after call to this function.
1193  */
1194 
1195 int pskb_expand_head(struct sk_buff *skb, int nhead, int ntail,
1196 		     gfp_t gfp_mask)
1197 {
1198 	int i;
1199 	u8 *data;
1200 	int size = nhead + skb_end_offset(skb) + ntail;
1201 	long off;
1202 
1203 	BUG_ON(nhead < 0);
1204 
1205 	if (skb_shared(skb))
1206 		BUG();
1207 
1208 	size = SKB_DATA_ALIGN(size);
1209 
1210 	if (skb_pfmemalloc(skb))
1211 		gfp_mask |= __GFP_MEMALLOC;
1212 	data = kmalloc_reserve(size + SKB_DATA_ALIGN(sizeof(struct skb_shared_info)),
1213 			       gfp_mask, NUMA_NO_NODE, NULL);
1214 	if (!data)
1215 		goto nodata;
1216 	size = SKB_WITH_OVERHEAD(ksize(data));
1217 
1218 	/* Copy only real data... and, alas, header. This should be
1219 	 * optimized for the cases when header is void.
1220 	 */
1221 	memcpy(data + nhead, skb->head, skb_tail_pointer(skb) - skb->head);
1222 
1223 	memcpy((struct skb_shared_info *)(data + size),
1224 	       skb_shinfo(skb),
1225 	       offsetof(struct skb_shared_info, frags[skb_shinfo(skb)->nr_frags]));
1226 
1227 	/*
1228 	 * if shinfo is shared we must drop the old head gracefully, but if it
1229 	 * is not we can just drop the old head and let the existing refcount
1230 	 * be since all we did is relocate the values
1231 	 */
1232 	if (skb_cloned(skb)) {
1233 		/* copy this zero copy skb frags */
1234 		if (skb_orphan_frags(skb, gfp_mask))
1235 			goto nofrags;
1236 		for (i = 0; i < skb_shinfo(skb)->nr_frags; i++)
1237 			skb_frag_ref(skb, i);
1238 
1239 		if (skb_has_frag_list(skb))
1240 			skb_clone_fraglist(skb);
1241 
1242 		skb_release_data(skb);
1243 	} else {
1244 		skb_free_head(skb);
1245 	}
1246 	off = (data + nhead) - skb->head;
1247 
1248 	skb->head     = data;
1249 	skb->head_frag = 0;
1250 	skb->data    += off;
1251 #ifdef NET_SKBUFF_DATA_USES_OFFSET
1252 	skb->end      = size;
1253 	off           = nhead;
1254 #else
1255 	skb->end      = skb->head + size;
1256 #endif
1257 	skb->tail	      += off;
1258 	skb_headers_offset_update(skb, nhead);
1259 	skb->cloned   = 0;
1260 	skb->hdr_len  = 0;
1261 	skb->nohdr    = 0;
1262 	atomic_set(&skb_shinfo(skb)->dataref, 1);
1263 	return 0;
1264 
1265 nofrags:
1266 	kfree(data);
1267 nodata:
1268 	return -ENOMEM;
1269 }
1270 EXPORT_SYMBOL(pskb_expand_head);
1271 
1272 /* Make private copy of skb with writable head and some headroom */
1273 
1274 struct sk_buff *skb_realloc_headroom(struct sk_buff *skb, unsigned int headroom)
1275 {
1276 	struct sk_buff *skb2;
1277 	int delta = headroom - skb_headroom(skb);
1278 
1279 	if (delta <= 0)
1280 		skb2 = pskb_copy(skb, GFP_ATOMIC);
1281 	else {
1282 		skb2 = skb_clone(skb, GFP_ATOMIC);
1283 		if (skb2 && pskb_expand_head(skb2, SKB_DATA_ALIGN(delta), 0,
1284 					     GFP_ATOMIC)) {
1285 			kfree_skb(skb2);
1286 			skb2 = NULL;
1287 		}
1288 	}
1289 	return skb2;
1290 }
1291 EXPORT_SYMBOL(skb_realloc_headroom);
1292 
1293 /**
1294  *	skb_copy_expand	-	copy and expand sk_buff
1295  *	@skb: buffer to copy
1296  *	@newheadroom: new free bytes at head
1297  *	@newtailroom: new free bytes at tail
1298  *	@gfp_mask: allocation priority
1299  *
1300  *	Make a copy of both an &sk_buff and its data and while doing so
1301  *	allocate additional space.
1302  *
1303  *	This is used when the caller wishes to modify the data and needs a
1304  *	private copy of the data to alter as well as more space for new fields.
1305  *	Returns %NULL on failure or the pointer to the buffer
1306  *	on success. The returned buffer has a reference count of 1.
1307  *
1308  *	You must pass %GFP_ATOMIC as the allocation priority if this function
1309  *	is called from an interrupt.
1310  */
1311 struct sk_buff *skb_copy_expand(const struct sk_buff *skb,
1312 				int newheadroom, int newtailroom,
1313 				gfp_t gfp_mask)
1314 {
1315 	/*
1316 	 *	Allocate the copy buffer
1317 	 */
1318 	struct sk_buff *n = __alloc_skb(newheadroom + skb->len + newtailroom,
1319 					gfp_mask, skb_alloc_rx_flag(skb),
1320 					NUMA_NO_NODE);
1321 	int oldheadroom = skb_headroom(skb);
1322 	int head_copy_len, head_copy_off;
1323 
1324 	if (!n)
1325 		return NULL;
1326 
1327 	skb_reserve(n, newheadroom);
1328 
1329 	/* Set the tail pointer and length */
1330 	skb_put(n, skb->len);
1331 
1332 	head_copy_len = oldheadroom;
1333 	head_copy_off = 0;
1334 	if (newheadroom <= head_copy_len)
1335 		head_copy_len = newheadroom;
1336 	else
1337 		head_copy_off = newheadroom - head_copy_len;
1338 
1339 	/* Copy the linear header and data. */
1340 	if (skb_copy_bits(skb, -head_copy_len, n->head + head_copy_off,
1341 			  skb->len + head_copy_len))
1342 		BUG();
1343 
1344 	copy_skb_header(n, skb);
1345 
1346 	skb_headers_offset_update(n, newheadroom - oldheadroom);
1347 
1348 	return n;
1349 }
1350 EXPORT_SYMBOL(skb_copy_expand);
1351 
1352 /**
1353  *	skb_pad			-	zero pad the tail of an skb
1354  *	@skb: buffer to pad
1355  *	@pad: space to pad
1356  *
1357  *	Ensure that a buffer is followed by a padding area that is zero
1358  *	filled. Used by network drivers which may DMA or transfer data
1359  *	beyond the buffer end onto the wire.
1360  *
1361  *	May return error in out of memory cases. The skb is freed on error.
1362  */
1363 
1364 int skb_pad(struct sk_buff *skb, int pad)
1365 {
1366 	int err;
1367 	int ntail;
1368 
1369 	/* If the skbuff is non linear tailroom is always zero.. */
1370 	if (!skb_cloned(skb) && skb_tailroom(skb) >= pad) {
1371 		memset(skb->data+skb->len, 0, pad);
1372 		return 0;
1373 	}
1374 
1375 	ntail = skb->data_len + pad - (skb->end - skb->tail);
1376 	if (likely(skb_cloned(skb) || ntail > 0)) {
1377 		err = pskb_expand_head(skb, 0, ntail, GFP_ATOMIC);
1378 		if (unlikely(err))
1379 			goto free_skb;
1380 	}
1381 
1382 	/* FIXME: The use of this function with non-linear skb's really needs
1383 	 * to be audited.
1384 	 */
1385 	err = skb_linearize(skb);
1386 	if (unlikely(err))
1387 		goto free_skb;
1388 
1389 	memset(skb->data + skb->len, 0, pad);
1390 	return 0;
1391 
1392 free_skb:
1393 	kfree_skb(skb);
1394 	return err;
1395 }
1396 EXPORT_SYMBOL(skb_pad);
1397 
1398 /**
1399  *	pskb_put - add data to the tail of a potentially fragmented buffer
1400  *	@skb: start of the buffer to use
1401  *	@tail: tail fragment of the buffer to use
1402  *	@len: amount of data to add
1403  *
1404  *	This function extends the used data area of the potentially
1405  *	fragmented buffer. @tail must be the last fragment of @skb -- or
1406  *	@skb itself. If this would exceed the total buffer size the kernel
1407  *	will panic. A pointer to the first byte of the extra data is
1408  *	returned.
1409  */
1410 
1411 unsigned char *pskb_put(struct sk_buff *skb, struct sk_buff *tail, int len)
1412 {
1413 	if (tail != skb) {
1414 		skb->data_len += len;
1415 		skb->len += len;
1416 	}
1417 	return skb_put(tail, len);
1418 }
1419 EXPORT_SYMBOL_GPL(pskb_put);
1420 
1421 /**
1422  *	skb_put - add data to a buffer
1423  *	@skb: buffer to use
1424  *	@len: amount of data to add
1425  *
1426  *	This function extends the used data area of the buffer. If this would
1427  *	exceed the total buffer size the kernel will panic. A pointer to the
1428  *	first byte of the extra data is returned.
1429  */
1430 unsigned char *skb_put(struct sk_buff *skb, unsigned int len)
1431 {
1432 	unsigned char *tmp = skb_tail_pointer(skb);
1433 	SKB_LINEAR_ASSERT(skb);
1434 	skb->tail += len;
1435 	skb->len  += len;
1436 	if (unlikely(skb->tail > skb->end))
1437 		skb_over_panic(skb, len, __builtin_return_address(0));
1438 	return tmp;
1439 }
1440 EXPORT_SYMBOL(skb_put);
1441 
1442 /**
1443  *	skb_push - add data to the start of a buffer
1444  *	@skb: buffer to use
1445  *	@len: amount of data to add
1446  *
1447  *	This function extends the used data area of the buffer at the buffer
1448  *	start. If this would exceed the total buffer headroom the kernel will
1449  *	panic. A pointer to the first byte of the extra data is returned.
1450  */
1451 unsigned char *skb_push(struct sk_buff *skb, unsigned int len)
1452 {
1453 	skb->data -= len;
1454 	skb->len  += len;
1455 	if (unlikely(skb->data<skb->head))
1456 		skb_under_panic(skb, len, __builtin_return_address(0));
1457 	return skb->data;
1458 }
1459 EXPORT_SYMBOL(skb_push);
1460 
1461 /**
1462  *	skb_pull - remove data from the start of a buffer
1463  *	@skb: buffer to use
1464  *	@len: amount of data to remove
1465  *
1466  *	This function removes data from the start of a buffer, returning
1467  *	the memory to the headroom. A pointer to the next data in the buffer
1468  *	is returned. Once the data has been pulled future pushes will overwrite
1469  *	the old data.
1470  */
1471 unsigned char *skb_pull(struct sk_buff *skb, unsigned int len)
1472 {
1473 	return skb_pull_inline(skb, len);
1474 }
1475 EXPORT_SYMBOL(skb_pull);
1476 
1477 /**
1478  *	skb_trim - remove end from a buffer
1479  *	@skb: buffer to alter
1480  *	@len: new length
1481  *
1482  *	Cut the length of a buffer down by removing data from the tail. If
1483  *	the buffer is already under the length specified it is not modified.
1484  *	The skb must be linear.
1485  */
1486 void skb_trim(struct sk_buff *skb, unsigned int len)
1487 {
1488 	if (skb->len > len)
1489 		__skb_trim(skb, len);
1490 }
1491 EXPORT_SYMBOL(skb_trim);
1492 
1493 /* Trims skb to length len. It can change skb pointers.
1494  */
1495 
1496 int ___pskb_trim(struct sk_buff *skb, unsigned int len)
1497 {
1498 	struct sk_buff **fragp;
1499 	struct sk_buff *frag;
1500 	int offset = skb_headlen(skb);
1501 	int nfrags = skb_shinfo(skb)->nr_frags;
1502 	int i;
1503 	int err;
1504 
1505 	if (skb_cloned(skb) &&
1506 	    unlikely((err = pskb_expand_head(skb, 0, 0, GFP_ATOMIC))))
1507 		return err;
1508 
1509 	i = 0;
1510 	if (offset >= len)
1511 		goto drop_pages;
1512 
1513 	for (; i < nfrags; i++) {
1514 		int end = offset + skb_frag_size(&skb_shinfo(skb)->frags[i]);
1515 
1516 		if (end < len) {
1517 			offset = end;
1518 			continue;
1519 		}
1520 
1521 		skb_frag_size_set(&skb_shinfo(skb)->frags[i++], len - offset);
1522 
1523 drop_pages:
1524 		skb_shinfo(skb)->nr_frags = i;
1525 
1526 		for (; i < nfrags; i++)
1527 			skb_frag_unref(skb, i);
1528 
1529 		if (skb_has_frag_list(skb))
1530 			skb_drop_fraglist(skb);
1531 		goto done;
1532 	}
1533 
1534 	for (fragp = &skb_shinfo(skb)->frag_list; (frag = *fragp);
1535 	     fragp = &frag->next) {
1536 		int end = offset + frag->len;
1537 
1538 		if (skb_shared(frag)) {
1539 			struct sk_buff *nfrag;
1540 
1541 			nfrag = skb_clone(frag, GFP_ATOMIC);
1542 			if (unlikely(!nfrag))
1543 				return -ENOMEM;
1544 
1545 			nfrag->next = frag->next;
1546 			consume_skb(frag);
1547 			frag = nfrag;
1548 			*fragp = frag;
1549 		}
1550 
1551 		if (end < len) {
1552 			offset = end;
1553 			continue;
1554 		}
1555 
1556 		if (end > len &&
1557 		    unlikely((err = pskb_trim(frag, len - offset))))
1558 			return err;
1559 
1560 		if (frag->next)
1561 			skb_drop_list(&frag->next);
1562 		break;
1563 	}
1564 
1565 done:
1566 	if (len > skb_headlen(skb)) {
1567 		skb->data_len -= skb->len - len;
1568 		skb->len       = len;
1569 	} else {
1570 		skb->len       = len;
1571 		skb->data_len  = 0;
1572 		skb_set_tail_pointer(skb, len);
1573 	}
1574 
1575 	return 0;
1576 }
1577 EXPORT_SYMBOL(___pskb_trim);
1578 
1579 /**
1580  *	__pskb_pull_tail - advance tail of skb header
1581  *	@skb: buffer to reallocate
1582  *	@delta: number of bytes to advance tail
1583  *
1584  *	The function makes a sense only on a fragmented &sk_buff,
1585  *	it expands header moving its tail forward and copying necessary
1586  *	data from fragmented part.
1587  *
1588  *	&sk_buff MUST have reference count of 1.
1589  *
1590  *	Returns %NULL (and &sk_buff does not change) if pull failed
1591  *	or value of new tail of skb in the case of success.
1592  *
1593  *	All the pointers pointing into skb header may change and must be
1594  *	reloaded after call to this function.
1595  */
1596 
1597 /* Moves tail of skb head forward, copying data from fragmented part,
1598  * when it is necessary.
1599  * 1. It may fail due to malloc failure.
1600  * 2. It may change skb pointers.
1601  *
1602  * It is pretty complicated. Luckily, it is called only in exceptional cases.
1603  */
1604 unsigned char *__pskb_pull_tail(struct sk_buff *skb, int delta)
1605 {
1606 	/* If skb has not enough free space at tail, get new one
1607 	 * plus 128 bytes for future expansions. If we have enough
1608 	 * room at tail, reallocate without expansion only if skb is cloned.
1609 	 */
1610 	int i, k, eat = (skb->tail + delta) - skb->end;
1611 
1612 	if (eat > 0 || skb_cloned(skb)) {
1613 		if (pskb_expand_head(skb, 0, eat > 0 ? eat + 128 : 0,
1614 				     GFP_ATOMIC))
1615 			return NULL;
1616 	}
1617 
1618 	if (skb_copy_bits(skb, skb_headlen(skb), skb_tail_pointer(skb), delta))
1619 		BUG();
1620 
1621 	/* Optimization: no fragments, no reasons to preestimate
1622 	 * size of pulled pages. Superb.
1623 	 */
1624 	if (!skb_has_frag_list(skb))
1625 		goto pull_pages;
1626 
1627 	/* Estimate size of pulled pages. */
1628 	eat = delta;
1629 	for (i = 0; i < skb_shinfo(skb)->nr_frags; i++) {
1630 		int size = skb_frag_size(&skb_shinfo(skb)->frags[i]);
1631 
1632 		if (size >= eat)
1633 			goto pull_pages;
1634 		eat -= size;
1635 	}
1636 
1637 	/* If we need update frag list, we are in troubles.
1638 	 * Certainly, it possible to add an offset to skb data,
1639 	 * but taking into account that pulling is expected to
1640 	 * be very rare operation, it is worth to fight against
1641 	 * further bloating skb head and crucify ourselves here instead.
1642 	 * Pure masohism, indeed. 8)8)
1643 	 */
1644 	if (eat) {
1645 		struct sk_buff *list = skb_shinfo(skb)->frag_list;
1646 		struct sk_buff *clone = NULL;
1647 		struct sk_buff *insp = NULL;
1648 
1649 		do {
1650 			BUG_ON(!list);
1651 
1652 			if (list->len <= eat) {
1653 				/* Eaten as whole. */
1654 				eat -= list->len;
1655 				list = list->next;
1656 				insp = list;
1657 			} else {
1658 				/* Eaten partially. */
1659 
1660 				if (skb_shared(list)) {
1661 					/* Sucks! We need to fork list. :-( */
1662 					clone = skb_clone(list, GFP_ATOMIC);
1663 					if (!clone)
1664 						return NULL;
1665 					insp = list->next;
1666 					list = clone;
1667 				} else {
1668 					/* This may be pulled without
1669 					 * problems. */
1670 					insp = list;
1671 				}
1672 				if (!pskb_pull(list, eat)) {
1673 					kfree_skb(clone);
1674 					return NULL;
1675 				}
1676 				break;
1677 			}
1678 		} while (eat);
1679 
1680 		/* Free pulled out fragments. */
1681 		while ((list = skb_shinfo(skb)->frag_list) != insp) {
1682 			skb_shinfo(skb)->frag_list = list->next;
1683 			kfree_skb(list);
1684 		}
1685 		/* And insert new clone at head. */
1686 		if (clone) {
1687 			clone->next = list;
1688 			skb_shinfo(skb)->frag_list = clone;
1689 		}
1690 	}
1691 	/* Success! Now we may commit changes to skb data. */
1692 
1693 pull_pages:
1694 	eat = delta;
1695 	k = 0;
1696 	for (i = 0; i < skb_shinfo(skb)->nr_frags; i++) {
1697 		int size = skb_frag_size(&skb_shinfo(skb)->frags[i]);
1698 
1699 		if (size <= eat) {
1700 			skb_frag_unref(skb, i);
1701 			eat -= size;
1702 		} else {
1703 			skb_shinfo(skb)->frags[k] = skb_shinfo(skb)->frags[i];
1704 			if (eat) {
1705 				skb_shinfo(skb)->frags[k].page_offset += eat;
1706 				skb_frag_size_sub(&skb_shinfo(skb)->frags[k], eat);
1707 				eat = 0;
1708 			}
1709 			k++;
1710 		}
1711 	}
1712 	skb_shinfo(skb)->nr_frags = k;
1713 
1714 	skb->tail     += delta;
1715 	skb->data_len -= delta;
1716 
1717 	return skb_tail_pointer(skb);
1718 }
1719 EXPORT_SYMBOL(__pskb_pull_tail);
1720 
1721 /**
1722  *	skb_copy_bits - copy bits from skb to kernel buffer
1723  *	@skb: source skb
1724  *	@offset: offset in source
1725  *	@to: destination buffer
1726  *	@len: number of bytes to copy
1727  *
1728  *	Copy the specified number of bytes from the source skb to the
1729  *	destination buffer.
1730  *
1731  *	CAUTION ! :
1732  *		If its prototype is ever changed,
1733  *		check arch/{*}/net/{*}.S files,
1734  *		since it is called from BPF assembly code.
1735  */
1736 int skb_copy_bits(const struct sk_buff *skb, int offset, void *to, int len)
1737 {
1738 	int start = skb_headlen(skb);
1739 	struct sk_buff *frag_iter;
1740 	int i, copy;
1741 
1742 	if (offset > (int)skb->len - len)
1743 		goto fault;
1744 
1745 	/* Copy header. */
1746 	if ((copy = start - offset) > 0) {
1747 		if (copy > len)
1748 			copy = len;
1749 		skb_copy_from_linear_data_offset(skb, offset, to, copy);
1750 		if ((len -= copy) == 0)
1751 			return 0;
1752 		offset += copy;
1753 		to     += copy;
1754 	}
1755 
1756 	for (i = 0; i < skb_shinfo(skb)->nr_frags; i++) {
1757 		int end;
1758 		skb_frag_t *f = &skb_shinfo(skb)->frags[i];
1759 
1760 		WARN_ON(start > offset + len);
1761 
1762 		end = start + skb_frag_size(f);
1763 		if ((copy = end - offset) > 0) {
1764 			u8 *vaddr;
1765 
1766 			if (copy > len)
1767 				copy = len;
1768 
1769 			vaddr = kmap_atomic(skb_frag_page(f));
1770 			memcpy(to,
1771 			       vaddr + f->page_offset + offset - start,
1772 			       copy);
1773 			kunmap_atomic(vaddr);
1774 
1775 			if ((len -= copy) == 0)
1776 				return 0;
1777 			offset += copy;
1778 			to     += copy;
1779 		}
1780 		start = end;
1781 	}
1782 
1783 	skb_walk_frags(skb, frag_iter) {
1784 		int end;
1785 
1786 		WARN_ON(start > offset + len);
1787 
1788 		end = start + frag_iter->len;
1789 		if ((copy = end - offset) > 0) {
1790 			if (copy > len)
1791 				copy = len;
1792 			if (skb_copy_bits(frag_iter, offset - start, to, copy))
1793 				goto fault;
1794 			if ((len -= copy) == 0)
1795 				return 0;
1796 			offset += copy;
1797 			to     += copy;
1798 		}
1799 		start = end;
1800 	}
1801 
1802 	if (!len)
1803 		return 0;
1804 
1805 fault:
1806 	return -EFAULT;
1807 }
1808 EXPORT_SYMBOL(skb_copy_bits);
1809 
1810 /*
1811  * Callback from splice_to_pipe(), if we need to release some pages
1812  * at the end of the spd in case we error'ed out in filling the pipe.
1813  */
1814 static void sock_spd_release(struct splice_pipe_desc *spd, unsigned int i)
1815 {
1816 	put_page(spd->pages[i]);
1817 }
1818 
1819 static struct page *linear_to_page(struct page *page, unsigned int *len,
1820 				   unsigned int *offset,
1821 				   struct sock *sk)
1822 {
1823 	struct page_frag *pfrag = sk_page_frag(sk);
1824 
1825 	if (!sk_page_frag_refill(sk, pfrag))
1826 		return NULL;
1827 
1828 	*len = min_t(unsigned int, *len, pfrag->size - pfrag->offset);
1829 
1830 	memcpy(page_address(pfrag->page) + pfrag->offset,
1831 	       page_address(page) + *offset, *len);
1832 	*offset = pfrag->offset;
1833 	pfrag->offset += *len;
1834 
1835 	return pfrag->page;
1836 }
1837 
1838 static bool spd_can_coalesce(const struct splice_pipe_desc *spd,
1839 			     struct page *page,
1840 			     unsigned int offset)
1841 {
1842 	return	spd->nr_pages &&
1843 		spd->pages[spd->nr_pages - 1] == page &&
1844 		(spd->partial[spd->nr_pages - 1].offset +
1845 		 spd->partial[spd->nr_pages - 1].len == offset);
1846 }
1847 
1848 /*
1849  * Fill page/offset/length into spd, if it can hold more pages.
1850  */
1851 static bool spd_fill_page(struct splice_pipe_desc *spd,
1852 			  struct pipe_inode_info *pipe, struct page *page,
1853 			  unsigned int *len, unsigned int offset,
1854 			  bool linear,
1855 			  struct sock *sk)
1856 {
1857 	if (unlikely(spd->nr_pages == MAX_SKB_FRAGS))
1858 		return true;
1859 
1860 	if (linear) {
1861 		page = linear_to_page(page, len, &offset, sk);
1862 		if (!page)
1863 			return true;
1864 	}
1865 	if (spd_can_coalesce(spd, page, offset)) {
1866 		spd->partial[spd->nr_pages - 1].len += *len;
1867 		return false;
1868 	}
1869 	get_page(page);
1870 	spd->pages[spd->nr_pages] = page;
1871 	spd->partial[spd->nr_pages].len = *len;
1872 	spd->partial[spd->nr_pages].offset = offset;
1873 	spd->nr_pages++;
1874 
1875 	return false;
1876 }
1877 
1878 static bool __splice_segment(struct page *page, unsigned int poff,
1879 			     unsigned int plen, unsigned int *off,
1880 			     unsigned int *len,
1881 			     struct splice_pipe_desc *spd, bool linear,
1882 			     struct sock *sk,
1883 			     struct pipe_inode_info *pipe)
1884 {
1885 	if (!*len)
1886 		return true;
1887 
1888 	/* skip this segment if already processed */
1889 	if (*off >= plen) {
1890 		*off -= plen;
1891 		return false;
1892 	}
1893 
1894 	/* ignore any bits we already processed */
1895 	poff += *off;
1896 	plen -= *off;
1897 	*off = 0;
1898 
1899 	do {
1900 		unsigned int flen = min(*len, plen);
1901 
1902 		if (spd_fill_page(spd, pipe, page, &flen, poff,
1903 				  linear, sk))
1904 			return true;
1905 		poff += flen;
1906 		plen -= flen;
1907 		*len -= flen;
1908 	} while (*len && plen);
1909 
1910 	return false;
1911 }
1912 
1913 /*
1914  * Map linear and fragment data from the skb to spd. It reports true if the
1915  * pipe is full or if we already spliced the requested length.
1916  */
1917 static bool __skb_splice_bits(struct sk_buff *skb, struct pipe_inode_info *pipe,
1918 			      unsigned int *offset, unsigned int *len,
1919 			      struct splice_pipe_desc *spd, struct sock *sk)
1920 {
1921 	int seg;
1922 	struct sk_buff *iter;
1923 
1924 	/* map the linear part :
1925 	 * If skb->head_frag is set, this 'linear' part is backed by a
1926 	 * fragment, and if the head is not shared with any clones then
1927 	 * we can avoid a copy since we own the head portion of this page.
1928 	 */
1929 	if (__splice_segment(virt_to_page(skb->data),
1930 			     (unsigned long) skb->data & (PAGE_SIZE - 1),
1931 			     skb_headlen(skb),
1932 			     offset, len, spd,
1933 			     skb_head_is_locked(skb),
1934 			     sk, pipe))
1935 		return true;
1936 
1937 	/*
1938 	 * then map the fragments
1939 	 */
1940 	for (seg = 0; seg < skb_shinfo(skb)->nr_frags; seg++) {
1941 		const skb_frag_t *f = &skb_shinfo(skb)->frags[seg];
1942 
1943 		if (__splice_segment(skb_frag_page(f),
1944 				     f->page_offset, skb_frag_size(f),
1945 				     offset, len, spd, false, sk, pipe))
1946 			return true;
1947 	}
1948 
1949 	skb_walk_frags(skb, iter) {
1950 		if (*offset >= iter->len) {
1951 			*offset -= iter->len;
1952 			continue;
1953 		}
1954 		/* __skb_splice_bits() only fails if the output has no room
1955 		 * left, so no point in going over the frag_list for the error
1956 		 * case.
1957 		 */
1958 		if (__skb_splice_bits(iter, pipe, offset, len, spd, sk))
1959 			return true;
1960 	}
1961 
1962 	return false;
1963 }
1964 
1965 ssize_t skb_socket_splice(struct sock *sk,
1966 			  struct pipe_inode_info *pipe,
1967 			  struct splice_pipe_desc *spd)
1968 {
1969 	int ret;
1970 
1971 	/* Drop the socket lock, otherwise we have reverse
1972 	 * locking dependencies between sk_lock and i_mutex
1973 	 * here as compared to sendfile(). We enter here
1974 	 * with the socket lock held, and splice_to_pipe() will
1975 	 * grab the pipe inode lock. For sendfile() emulation,
1976 	 * we call into ->sendpage() with the i_mutex lock held
1977 	 * and networking will grab the socket lock.
1978 	 */
1979 	release_sock(sk);
1980 	ret = splice_to_pipe(pipe, spd);
1981 	lock_sock(sk);
1982 
1983 	return ret;
1984 }
1985 
1986 /*
1987  * Map data from the skb to a pipe. Should handle both the linear part,
1988  * the fragments, and the frag list.
1989  */
1990 int skb_splice_bits(struct sk_buff *skb, struct sock *sk, unsigned int offset,
1991 		    struct pipe_inode_info *pipe, unsigned int tlen,
1992 		    unsigned int flags,
1993 		    ssize_t (*splice_cb)(struct sock *,
1994 					 struct pipe_inode_info *,
1995 					 struct splice_pipe_desc *))
1996 {
1997 	struct partial_page partial[MAX_SKB_FRAGS];
1998 	struct page *pages[MAX_SKB_FRAGS];
1999 	struct splice_pipe_desc spd = {
2000 		.pages = pages,
2001 		.partial = partial,
2002 		.nr_pages_max = MAX_SKB_FRAGS,
2003 		.flags = flags,
2004 		.ops = &nosteal_pipe_buf_ops,
2005 		.spd_release = sock_spd_release,
2006 	};
2007 	int ret = 0;
2008 
2009 	__skb_splice_bits(skb, pipe, &offset, &tlen, &spd, sk);
2010 
2011 	if (spd.nr_pages)
2012 		ret = splice_cb(sk, pipe, &spd);
2013 
2014 	return ret;
2015 }
2016 EXPORT_SYMBOL_GPL(skb_splice_bits);
2017 
2018 /**
2019  *	skb_store_bits - store bits from kernel buffer to skb
2020  *	@skb: destination buffer
2021  *	@offset: offset in destination
2022  *	@from: source buffer
2023  *	@len: number of bytes to copy
2024  *
2025  *	Copy the specified number of bytes from the source buffer to the
2026  *	destination skb.  This function handles all the messy bits of
2027  *	traversing fragment lists and such.
2028  */
2029 
2030 int skb_store_bits(struct sk_buff *skb, int offset, const void *from, int len)
2031 {
2032 	int start = skb_headlen(skb);
2033 	struct sk_buff *frag_iter;
2034 	int i, copy;
2035 
2036 	if (offset > (int)skb->len - len)
2037 		goto fault;
2038 
2039 	if ((copy = start - offset) > 0) {
2040 		if (copy > len)
2041 			copy = len;
2042 		skb_copy_to_linear_data_offset(skb, offset, from, copy);
2043 		if ((len -= copy) == 0)
2044 			return 0;
2045 		offset += copy;
2046 		from += copy;
2047 	}
2048 
2049 	for (i = 0; i < skb_shinfo(skb)->nr_frags; i++) {
2050 		skb_frag_t *frag = &skb_shinfo(skb)->frags[i];
2051 		int end;
2052 
2053 		WARN_ON(start > offset + len);
2054 
2055 		end = start + skb_frag_size(frag);
2056 		if ((copy = end - offset) > 0) {
2057 			u8 *vaddr;
2058 
2059 			if (copy > len)
2060 				copy = len;
2061 
2062 			vaddr = kmap_atomic(skb_frag_page(frag));
2063 			memcpy(vaddr + frag->page_offset + offset - start,
2064 			       from, copy);
2065 			kunmap_atomic(vaddr);
2066 
2067 			if ((len -= copy) == 0)
2068 				return 0;
2069 			offset += copy;
2070 			from += copy;
2071 		}
2072 		start = end;
2073 	}
2074 
2075 	skb_walk_frags(skb, frag_iter) {
2076 		int end;
2077 
2078 		WARN_ON(start > offset + len);
2079 
2080 		end = start + frag_iter->len;
2081 		if ((copy = end - offset) > 0) {
2082 			if (copy > len)
2083 				copy = len;
2084 			if (skb_store_bits(frag_iter, offset - start,
2085 					   from, copy))
2086 				goto fault;
2087 			if ((len -= copy) == 0)
2088 				return 0;
2089 			offset += copy;
2090 			from += copy;
2091 		}
2092 		start = end;
2093 	}
2094 	if (!len)
2095 		return 0;
2096 
2097 fault:
2098 	return -EFAULT;
2099 }
2100 EXPORT_SYMBOL(skb_store_bits);
2101 
2102 /* Checksum skb data. */
2103 __wsum __skb_checksum(const struct sk_buff *skb, int offset, int len,
2104 		      __wsum csum, const struct skb_checksum_ops *ops)
2105 {
2106 	int start = skb_headlen(skb);
2107 	int i, copy = start - offset;
2108 	struct sk_buff *frag_iter;
2109 	int pos = 0;
2110 
2111 	/* Checksum header. */
2112 	if (copy > 0) {
2113 		if (copy > len)
2114 			copy = len;
2115 		csum = ops->update(skb->data + offset, copy, csum);
2116 		if ((len -= copy) == 0)
2117 			return csum;
2118 		offset += copy;
2119 		pos	= copy;
2120 	}
2121 
2122 	for (i = 0; i < skb_shinfo(skb)->nr_frags; i++) {
2123 		int end;
2124 		skb_frag_t *frag = &skb_shinfo(skb)->frags[i];
2125 
2126 		WARN_ON(start > offset + len);
2127 
2128 		end = start + skb_frag_size(frag);
2129 		if ((copy = end - offset) > 0) {
2130 			__wsum csum2;
2131 			u8 *vaddr;
2132 
2133 			if (copy > len)
2134 				copy = len;
2135 			vaddr = kmap_atomic(skb_frag_page(frag));
2136 			csum2 = ops->update(vaddr + frag->page_offset +
2137 					    offset - start, copy, 0);
2138 			kunmap_atomic(vaddr);
2139 			csum = ops->combine(csum, csum2, pos, copy);
2140 			if (!(len -= copy))
2141 				return csum;
2142 			offset += copy;
2143 			pos    += copy;
2144 		}
2145 		start = end;
2146 	}
2147 
2148 	skb_walk_frags(skb, frag_iter) {
2149 		int end;
2150 
2151 		WARN_ON(start > offset + len);
2152 
2153 		end = start + frag_iter->len;
2154 		if ((copy = end - offset) > 0) {
2155 			__wsum csum2;
2156 			if (copy > len)
2157 				copy = len;
2158 			csum2 = __skb_checksum(frag_iter, offset - start,
2159 					       copy, 0, ops);
2160 			csum = ops->combine(csum, csum2, pos, copy);
2161 			if ((len -= copy) == 0)
2162 				return csum;
2163 			offset += copy;
2164 			pos    += copy;
2165 		}
2166 		start = end;
2167 	}
2168 	BUG_ON(len);
2169 
2170 	return csum;
2171 }
2172 EXPORT_SYMBOL(__skb_checksum);
2173 
2174 __wsum skb_checksum(const struct sk_buff *skb, int offset,
2175 		    int len, __wsum csum)
2176 {
2177 	const struct skb_checksum_ops ops = {
2178 		.update  = csum_partial_ext,
2179 		.combine = csum_block_add_ext,
2180 	};
2181 
2182 	return __skb_checksum(skb, offset, len, csum, &ops);
2183 }
2184 EXPORT_SYMBOL(skb_checksum);
2185 
2186 /* Both of above in one bottle. */
2187 
2188 __wsum skb_copy_and_csum_bits(const struct sk_buff *skb, int offset,
2189 				    u8 *to, int len, __wsum csum)
2190 {
2191 	int start = skb_headlen(skb);
2192 	int i, copy = start - offset;
2193 	struct sk_buff *frag_iter;
2194 	int pos = 0;
2195 
2196 	/* Copy header. */
2197 	if (copy > 0) {
2198 		if (copy > len)
2199 			copy = len;
2200 		csum = csum_partial_copy_nocheck(skb->data + offset, to,
2201 						 copy, csum);
2202 		if ((len -= copy) == 0)
2203 			return csum;
2204 		offset += copy;
2205 		to     += copy;
2206 		pos	= copy;
2207 	}
2208 
2209 	for (i = 0; i < skb_shinfo(skb)->nr_frags; i++) {
2210 		int end;
2211 
2212 		WARN_ON(start > offset + len);
2213 
2214 		end = start + skb_frag_size(&skb_shinfo(skb)->frags[i]);
2215 		if ((copy = end - offset) > 0) {
2216 			__wsum csum2;
2217 			u8 *vaddr;
2218 			skb_frag_t *frag = &skb_shinfo(skb)->frags[i];
2219 
2220 			if (copy > len)
2221 				copy = len;
2222 			vaddr = kmap_atomic(skb_frag_page(frag));
2223 			csum2 = csum_partial_copy_nocheck(vaddr +
2224 							  frag->page_offset +
2225 							  offset - start, to,
2226 							  copy, 0);
2227 			kunmap_atomic(vaddr);
2228 			csum = csum_block_add(csum, csum2, pos);
2229 			if (!(len -= copy))
2230 				return csum;
2231 			offset += copy;
2232 			to     += copy;
2233 			pos    += copy;
2234 		}
2235 		start = end;
2236 	}
2237 
2238 	skb_walk_frags(skb, frag_iter) {
2239 		__wsum csum2;
2240 		int end;
2241 
2242 		WARN_ON(start > offset + len);
2243 
2244 		end = start + frag_iter->len;
2245 		if ((copy = end - offset) > 0) {
2246 			if (copy > len)
2247 				copy = len;
2248 			csum2 = skb_copy_and_csum_bits(frag_iter,
2249 						       offset - start,
2250 						       to, copy, 0);
2251 			csum = csum_block_add(csum, csum2, pos);
2252 			if ((len -= copy) == 0)
2253 				return csum;
2254 			offset += copy;
2255 			to     += copy;
2256 			pos    += copy;
2257 		}
2258 		start = end;
2259 	}
2260 	BUG_ON(len);
2261 	return csum;
2262 }
2263 EXPORT_SYMBOL(skb_copy_and_csum_bits);
2264 
2265  /**
2266  *	skb_zerocopy_headlen - Calculate headroom needed for skb_zerocopy()
2267  *	@from: source buffer
2268  *
2269  *	Calculates the amount of linear headroom needed in the 'to' skb passed
2270  *	into skb_zerocopy().
2271  */
2272 unsigned int
2273 skb_zerocopy_headlen(const struct sk_buff *from)
2274 {
2275 	unsigned int hlen = 0;
2276 
2277 	if (!from->head_frag ||
2278 	    skb_headlen(from) < L1_CACHE_BYTES ||
2279 	    skb_shinfo(from)->nr_frags >= MAX_SKB_FRAGS)
2280 		hlen = skb_headlen(from);
2281 
2282 	if (skb_has_frag_list(from))
2283 		hlen = from->len;
2284 
2285 	return hlen;
2286 }
2287 EXPORT_SYMBOL_GPL(skb_zerocopy_headlen);
2288 
2289 /**
2290  *	skb_zerocopy - Zero copy skb to skb
2291  *	@to: destination buffer
2292  *	@from: source buffer
2293  *	@len: number of bytes to copy from source buffer
2294  *	@hlen: size of linear headroom in destination buffer
2295  *
2296  *	Copies up to `len` bytes from `from` to `to` by creating references
2297  *	to the frags in the source buffer.
2298  *
2299  *	The `hlen` as calculated by skb_zerocopy_headlen() specifies the
2300  *	headroom in the `to` buffer.
2301  *
2302  *	Return value:
2303  *	0: everything is OK
2304  *	-ENOMEM: couldn't orphan frags of @from due to lack of memory
2305  *	-EFAULT: skb_copy_bits() found some problem with skb geometry
2306  */
2307 int
2308 skb_zerocopy(struct sk_buff *to, struct sk_buff *from, int len, int hlen)
2309 {
2310 	int i, j = 0;
2311 	int plen = 0; /* length of skb->head fragment */
2312 	int ret;
2313 	struct page *page;
2314 	unsigned int offset;
2315 
2316 	BUG_ON(!from->head_frag && !hlen);
2317 
2318 	/* dont bother with small payloads */
2319 	if (len <= skb_tailroom(to))
2320 		return skb_copy_bits(from, 0, skb_put(to, len), len);
2321 
2322 	if (hlen) {
2323 		ret = skb_copy_bits(from, 0, skb_put(to, hlen), hlen);
2324 		if (unlikely(ret))
2325 			return ret;
2326 		len -= hlen;
2327 	} else {
2328 		plen = min_t(int, skb_headlen(from), len);
2329 		if (plen) {
2330 			page = virt_to_head_page(from->head);
2331 			offset = from->data - (unsigned char *)page_address(page);
2332 			__skb_fill_page_desc(to, 0, page, offset, plen);
2333 			get_page(page);
2334 			j = 1;
2335 			len -= plen;
2336 		}
2337 	}
2338 
2339 	to->truesize += len + plen;
2340 	to->len += len + plen;
2341 	to->data_len += len + plen;
2342 
2343 	if (unlikely(skb_orphan_frags(from, GFP_ATOMIC))) {
2344 		skb_tx_error(from);
2345 		return -ENOMEM;
2346 	}
2347 
2348 	for (i = 0; i < skb_shinfo(from)->nr_frags; i++) {
2349 		if (!len)
2350 			break;
2351 		skb_shinfo(to)->frags[j] = skb_shinfo(from)->frags[i];
2352 		skb_shinfo(to)->frags[j].size = min_t(int, skb_shinfo(to)->frags[j].size, len);
2353 		len -= skb_shinfo(to)->frags[j].size;
2354 		skb_frag_ref(to, j);
2355 		j++;
2356 	}
2357 	skb_shinfo(to)->nr_frags = j;
2358 
2359 	return 0;
2360 }
2361 EXPORT_SYMBOL_GPL(skb_zerocopy);
2362 
2363 void skb_copy_and_csum_dev(const struct sk_buff *skb, u8 *to)
2364 {
2365 	__wsum csum;
2366 	long csstart;
2367 
2368 	if (skb->ip_summed == CHECKSUM_PARTIAL)
2369 		csstart = skb_checksum_start_offset(skb);
2370 	else
2371 		csstart = skb_headlen(skb);
2372 
2373 	BUG_ON(csstart > skb_headlen(skb));
2374 
2375 	skb_copy_from_linear_data(skb, to, csstart);
2376 
2377 	csum = 0;
2378 	if (csstart != skb->len)
2379 		csum = skb_copy_and_csum_bits(skb, csstart, to + csstart,
2380 					      skb->len - csstart, 0);
2381 
2382 	if (skb->ip_summed == CHECKSUM_PARTIAL) {
2383 		long csstuff = csstart + skb->csum_offset;
2384 
2385 		*((__sum16 *)(to + csstuff)) = csum_fold(csum);
2386 	}
2387 }
2388 EXPORT_SYMBOL(skb_copy_and_csum_dev);
2389 
2390 /**
2391  *	skb_dequeue - remove from the head of the queue
2392  *	@list: list to dequeue from
2393  *
2394  *	Remove the head of the list. The list lock is taken so the function
2395  *	may be used safely with other locking list functions. The head item is
2396  *	returned or %NULL if the list is empty.
2397  */
2398 
2399 struct sk_buff *skb_dequeue(struct sk_buff_head *list)
2400 {
2401 	unsigned long flags;
2402 	struct sk_buff *result;
2403 
2404 	spin_lock_irqsave(&list->lock, flags);
2405 	result = __skb_dequeue(list);
2406 	spin_unlock_irqrestore(&list->lock, flags);
2407 	return result;
2408 }
2409 EXPORT_SYMBOL(skb_dequeue);
2410 
2411 /**
2412  *	skb_dequeue_tail - remove from the tail of the queue
2413  *	@list: list to dequeue from
2414  *
2415  *	Remove the tail of the list. The list lock is taken so the function
2416  *	may be used safely with other locking list functions. The tail item is
2417  *	returned or %NULL if the list is empty.
2418  */
2419 struct sk_buff *skb_dequeue_tail(struct sk_buff_head *list)
2420 {
2421 	unsigned long flags;
2422 	struct sk_buff *result;
2423 
2424 	spin_lock_irqsave(&list->lock, flags);
2425 	result = __skb_dequeue_tail(list);
2426 	spin_unlock_irqrestore(&list->lock, flags);
2427 	return result;
2428 }
2429 EXPORT_SYMBOL(skb_dequeue_tail);
2430 
2431 /**
2432  *	skb_queue_purge - empty a list
2433  *	@list: list to empty
2434  *
2435  *	Delete all buffers on an &sk_buff list. Each buffer is removed from
2436  *	the list and one reference dropped. This function takes the list
2437  *	lock and is atomic with respect to other list locking functions.
2438  */
2439 void skb_queue_purge(struct sk_buff_head *list)
2440 {
2441 	struct sk_buff *skb;
2442 	while ((skb = skb_dequeue(list)) != NULL)
2443 		kfree_skb(skb);
2444 }
2445 EXPORT_SYMBOL(skb_queue_purge);
2446 
2447 /**
2448  *	skb_queue_head - queue a buffer at the list head
2449  *	@list: list to use
2450  *	@newsk: buffer to queue
2451  *
2452  *	Queue a buffer at the start of the list. This function takes the
2453  *	list lock and can be used safely with other locking &sk_buff functions
2454  *	safely.
2455  *
2456  *	A buffer cannot be placed on two lists at the same time.
2457  */
2458 void skb_queue_head(struct sk_buff_head *list, struct sk_buff *newsk)
2459 {
2460 	unsigned long flags;
2461 
2462 	spin_lock_irqsave(&list->lock, flags);
2463 	__skb_queue_head(list, newsk);
2464 	spin_unlock_irqrestore(&list->lock, flags);
2465 }
2466 EXPORT_SYMBOL(skb_queue_head);
2467 
2468 /**
2469  *	skb_queue_tail - queue a buffer at the list tail
2470  *	@list: list to use
2471  *	@newsk: buffer to queue
2472  *
2473  *	Queue a buffer at the tail of the list. This function takes the
2474  *	list lock and can be used safely with other locking &sk_buff functions
2475  *	safely.
2476  *
2477  *	A buffer cannot be placed on two lists at the same time.
2478  */
2479 void skb_queue_tail(struct sk_buff_head *list, struct sk_buff *newsk)
2480 {
2481 	unsigned long flags;
2482 
2483 	spin_lock_irqsave(&list->lock, flags);
2484 	__skb_queue_tail(list, newsk);
2485 	spin_unlock_irqrestore(&list->lock, flags);
2486 }
2487 EXPORT_SYMBOL(skb_queue_tail);
2488 
2489 /**
2490  *	skb_unlink	-	remove a buffer from a list
2491  *	@skb: buffer to remove
2492  *	@list: list to use
2493  *
2494  *	Remove a packet from a list. The list locks are taken and this
2495  *	function is atomic with respect to other list locked calls
2496  *
2497  *	You must know what list the SKB is on.
2498  */
2499 void skb_unlink(struct sk_buff *skb, struct sk_buff_head *list)
2500 {
2501 	unsigned long flags;
2502 
2503 	spin_lock_irqsave(&list->lock, flags);
2504 	__skb_unlink(skb, list);
2505 	spin_unlock_irqrestore(&list->lock, flags);
2506 }
2507 EXPORT_SYMBOL(skb_unlink);
2508 
2509 /**
2510  *	skb_append	-	append a buffer
2511  *	@old: buffer to insert after
2512  *	@newsk: buffer to insert
2513  *	@list: list to use
2514  *
2515  *	Place a packet after a given packet in a list. The list locks are taken
2516  *	and this function is atomic with respect to other list locked calls.
2517  *	A buffer cannot be placed on two lists at the same time.
2518  */
2519 void skb_append(struct sk_buff *old, struct sk_buff *newsk, struct sk_buff_head *list)
2520 {
2521 	unsigned long flags;
2522 
2523 	spin_lock_irqsave(&list->lock, flags);
2524 	__skb_queue_after(list, old, newsk);
2525 	spin_unlock_irqrestore(&list->lock, flags);
2526 }
2527 EXPORT_SYMBOL(skb_append);
2528 
2529 /**
2530  *	skb_insert	-	insert a buffer
2531  *	@old: buffer to insert before
2532  *	@newsk: buffer to insert
2533  *	@list: list to use
2534  *
2535  *	Place a packet before a given packet in a list. The list locks are
2536  * 	taken and this function is atomic with respect to other list locked
2537  *	calls.
2538  *
2539  *	A buffer cannot be placed on two lists at the same time.
2540  */
2541 void skb_insert(struct sk_buff *old, struct sk_buff *newsk, struct sk_buff_head *list)
2542 {
2543 	unsigned long flags;
2544 
2545 	spin_lock_irqsave(&list->lock, flags);
2546 	__skb_insert(newsk, old->prev, old, list);
2547 	spin_unlock_irqrestore(&list->lock, flags);
2548 }
2549 EXPORT_SYMBOL(skb_insert);
2550 
2551 static inline void skb_split_inside_header(struct sk_buff *skb,
2552 					   struct sk_buff* skb1,
2553 					   const u32 len, const int pos)
2554 {
2555 	int i;
2556 
2557 	skb_copy_from_linear_data_offset(skb, len, skb_put(skb1, pos - len),
2558 					 pos - len);
2559 	/* And move data appendix as is. */
2560 	for (i = 0; i < skb_shinfo(skb)->nr_frags; i++)
2561 		skb_shinfo(skb1)->frags[i] = skb_shinfo(skb)->frags[i];
2562 
2563 	skb_shinfo(skb1)->nr_frags = skb_shinfo(skb)->nr_frags;
2564 	skb_shinfo(skb)->nr_frags  = 0;
2565 	skb1->data_len		   = skb->data_len;
2566 	skb1->len		   += skb1->data_len;
2567 	skb->data_len		   = 0;
2568 	skb->len		   = len;
2569 	skb_set_tail_pointer(skb, len);
2570 }
2571 
2572 static inline void skb_split_no_header(struct sk_buff *skb,
2573 				       struct sk_buff* skb1,
2574 				       const u32 len, int pos)
2575 {
2576 	int i, k = 0;
2577 	const int nfrags = skb_shinfo(skb)->nr_frags;
2578 
2579 	skb_shinfo(skb)->nr_frags = 0;
2580 	skb1->len		  = skb1->data_len = skb->len - len;
2581 	skb->len		  = len;
2582 	skb->data_len		  = len - pos;
2583 
2584 	for (i = 0; i < nfrags; i++) {
2585 		int size = skb_frag_size(&skb_shinfo(skb)->frags[i]);
2586 
2587 		if (pos + size > len) {
2588 			skb_shinfo(skb1)->frags[k] = skb_shinfo(skb)->frags[i];
2589 
2590 			if (pos < len) {
2591 				/* Split frag.
2592 				 * We have two variants in this case:
2593 				 * 1. Move all the frag to the second
2594 				 *    part, if it is possible. F.e.
2595 				 *    this approach is mandatory for TUX,
2596 				 *    where splitting is expensive.
2597 				 * 2. Split is accurately. We make this.
2598 				 */
2599 				skb_frag_ref(skb, i);
2600 				skb_shinfo(skb1)->frags[0].page_offset += len - pos;
2601 				skb_frag_size_sub(&skb_shinfo(skb1)->frags[0], len - pos);
2602 				skb_frag_size_set(&skb_shinfo(skb)->frags[i], len - pos);
2603 				skb_shinfo(skb)->nr_frags++;
2604 			}
2605 			k++;
2606 		} else
2607 			skb_shinfo(skb)->nr_frags++;
2608 		pos += size;
2609 	}
2610 	skb_shinfo(skb1)->nr_frags = k;
2611 }
2612 
2613 /**
2614  * skb_split - Split fragmented skb to two parts at length len.
2615  * @skb: the buffer to split
2616  * @skb1: the buffer to receive the second part
2617  * @len: new length for skb
2618  */
2619 void skb_split(struct sk_buff *skb, struct sk_buff *skb1, const u32 len)
2620 {
2621 	int pos = skb_headlen(skb);
2622 
2623 	skb_shinfo(skb1)->tx_flags = skb_shinfo(skb)->tx_flags & SKBTX_SHARED_FRAG;
2624 	if (len < pos)	/* Split line is inside header. */
2625 		skb_split_inside_header(skb, skb1, len, pos);
2626 	else		/* Second chunk has no header, nothing to copy. */
2627 		skb_split_no_header(skb, skb1, len, pos);
2628 }
2629 EXPORT_SYMBOL(skb_split);
2630 
2631 /* Shifting from/to a cloned skb is a no-go.
2632  *
2633  * Caller cannot keep skb_shinfo related pointers past calling here!
2634  */
2635 static int skb_prepare_for_shift(struct sk_buff *skb)
2636 {
2637 	return skb_cloned(skb) && pskb_expand_head(skb, 0, 0, GFP_ATOMIC);
2638 }
2639 
2640 /**
2641  * skb_shift - Shifts paged data partially from skb to another
2642  * @tgt: buffer into which tail data gets added
2643  * @skb: buffer from which the paged data comes from
2644  * @shiftlen: shift up to this many bytes
2645  *
2646  * Attempts to shift up to shiftlen worth of bytes, which may be less than
2647  * the length of the skb, from skb to tgt. Returns number bytes shifted.
2648  * It's up to caller to free skb if everything was shifted.
2649  *
2650  * If @tgt runs out of frags, the whole operation is aborted.
2651  *
2652  * Skb cannot include anything else but paged data while tgt is allowed
2653  * to have non-paged data as well.
2654  *
2655  * TODO: full sized shift could be optimized but that would need
2656  * specialized skb free'er to handle frags without up-to-date nr_frags.
2657  */
2658 int skb_shift(struct sk_buff *tgt, struct sk_buff *skb, int shiftlen)
2659 {
2660 	int from, to, merge, todo;
2661 	struct skb_frag_struct *fragfrom, *fragto;
2662 
2663 	BUG_ON(shiftlen > skb->len);
2664 	BUG_ON(skb_headlen(skb));	/* Would corrupt stream */
2665 
2666 	todo = shiftlen;
2667 	from = 0;
2668 	to = skb_shinfo(tgt)->nr_frags;
2669 	fragfrom = &skb_shinfo(skb)->frags[from];
2670 
2671 	/* Actual merge is delayed until the point when we know we can
2672 	 * commit all, so that we don't have to undo partial changes
2673 	 */
2674 	if (!to ||
2675 	    !skb_can_coalesce(tgt, to, skb_frag_page(fragfrom),
2676 			      fragfrom->page_offset)) {
2677 		merge = -1;
2678 	} else {
2679 		merge = to - 1;
2680 
2681 		todo -= skb_frag_size(fragfrom);
2682 		if (todo < 0) {
2683 			if (skb_prepare_for_shift(skb) ||
2684 			    skb_prepare_for_shift(tgt))
2685 				return 0;
2686 
2687 			/* All previous frag pointers might be stale! */
2688 			fragfrom = &skb_shinfo(skb)->frags[from];
2689 			fragto = &skb_shinfo(tgt)->frags[merge];
2690 
2691 			skb_frag_size_add(fragto, shiftlen);
2692 			skb_frag_size_sub(fragfrom, shiftlen);
2693 			fragfrom->page_offset += shiftlen;
2694 
2695 			goto onlymerged;
2696 		}
2697 
2698 		from++;
2699 	}
2700 
2701 	/* Skip full, not-fitting skb to avoid expensive operations */
2702 	if ((shiftlen == skb->len) &&
2703 	    (skb_shinfo(skb)->nr_frags - from) > (MAX_SKB_FRAGS - to))
2704 		return 0;
2705 
2706 	if (skb_prepare_for_shift(skb) || skb_prepare_for_shift(tgt))
2707 		return 0;
2708 
2709 	while ((todo > 0) && (from < skb_shinfo(skb)->nr_frags)) {
2710 		if (to == MAX_SKB_FRAGS)
2711 			return 0;
2712 
2713 		fragfrom = &skb_shinfo(skb)->frags[from];
2714 		fragto = &skb_shinfo(tgt)->frags[to];
2715 
2716 		if (todo >= skb_frag_size(fragfrom)) {
2717 			*fragto = *fragfrom;
2718 			todo -= skb_frag_size(fragfrom);
2719 			from++;
2720 			to++;
2721 
2722 		} else {
2723 			__skb_frag_ref(fragfrom);
2724 			fragto->page = fragfrom->page;
2725 			fragto->page_offset = fragfrom->page_offset;
2726 			skb_frag_size_set(fragto, todo);
2727 
2728 			fragfrom->page_offset += todo;
2729 			skb_frag_size_sub(fragfrom, todo);
2730 			todo = 0;
2731 
2732 			to++;
2733 			break;
2734 		}
2735 	}
2736 
2737 	/* Ready to "commit" this state change to tgt */
2738 	skb_shinfo(tgt)->nr_frags = to;
2739 
2740 	if (merge >= 0) {
2741 		fragfrom = &skb_shinfo(skb)->frags[0];
2742 		fragto = &skb_shinfo(tgt)->frags[merge];
2743 
2744 		skb_frag_size_add(fragto, skb_frag_size(fragfrom));
2745 		__skb_frag_unref(fragfrom);
2746 	}
2747 
2748 	/* Reposition in the original skb */
2749 	to = 0;
2750 	while (from < skb_shinfo(skb)->nr_frags)
2751 		skb_shinfo(skb)->frags[to++] = skb_shinfo(skb)->frags[from++];
2752 	skb_shinfo(skb)->nr_frags = to;
2753 
2754 	BUG_ON(todo > 0 && !skb_shinfo(skb)->nr_frags);
2755 
2756 onlymerged:
2757 	/* Most likely the tgt won't ever need its checksum anymore, skb on
2758 	 * the other hand might need it if it needs to be resent
2759 	 */
2760 	tgt->ip_summed = CHECKSUM_PARTIAL;
2761 	skb->ip_summed = CHECKSUM_PARTIAL;
2762 
2763 	/* Yak, is it really working this way? Some helper please? */
2764 	skb->len -= shiftlen;
2765 	skb->data_len -= shiftlen;
2766 	skb->truesize -= shiftlen;
2767 	tgt->len += shiftlen;
2768 	tgt->data_len += shiftlen;
2769 	tgt->truesize += shiftlen;
2770 
2771 	return shiftlen;
2772 }
2773 
2774 /**
2775  * skb_prepare_seq_read - Prepare a sequential read of skb data
2776  * @skb: the buffer to read
2777  * @from: lower offset of data to be read
2778  * @to: upper offset of data to be read
2779  * @st: state variable
2780  *
2781  * Initializes the specified state variable. Must be called before
2782  * invoking skb_seq_read() for the first time.
2783  */
2784 void skb_prepare_seq_read(struct sk_buff *skb, unsigned int from,
2785 			  unsigned int to, struct skb_seq_state *st)
2786 {
2787 	st->lower_offset = from;
2788 	st->upper_offset = to;
2789 	st->root_skb = st->cur_skb = skb;
2790 	st->frag_idx = st->stepped_offset = 0;
2791 	st->frag_data = NULL;
2792 }
2793 EXPORT_SYMBOL(skb_prepare_seq_read);
2794 
2795 /**
2796  * skb_seq_read - Sequentially read skb data
2797  * @consumed: number of bytes consumed by the caller so far
2798  * @data: destination pointer for data to be returned
2799  * @st: state variable
2800  *
2801  * Reads a block of skb data at @consumed relative to the
2802  * lower offset specified to skb_prepare_seq_read(). Assigns
2803  * the head of the data block to @data and returns the length
2804  * of the block or 0 if the end of the skb data or the upper
2805  * offset has been reached.
2806  *
2807  * The caller is not required to consume all of the data
2808  * returned, i.e. @consumed is typically set to the number
2809  * of bytes already consumed and the next call to
2810  * skb_seq_read() will return the remaining part of the block.
2811  *
2812  * Note 1: The size of each block of data returned can be arbitrary,
2813  *       this limitation is the cost for zerocopy sequential
2814  *       reads of potentially non linear data.
2815  *
2816  * Note 2: Fragment lists within fragments are not implemented
2817  *       at the moment, state->root_skb could be replaced with
2818  *       a stack for this purpose.
2819  */
2820 unsigned int skb_seq_read(unsigned int consumed, const u8 **data,
2821 			  struct skb_seq_state *st)
2822 {
2823 	unsigned int block_limit, abs_offset = consumed + st->lower_offset;
2824 	skb_frag_t *frag;
2825 
2826 	if (unlikely(abs_offset >= st->upper_offset)) {
2827 		if (st->frag_data) {
2828 			kunmap_atomic(st->frag_data);
2829 			st->frag_data = NULL;
2830 		}
2831 		return 0;
2832 	}
2833 
2834 next_skb:
2835 	block_limit = skb_headlen(st->cur_skb) + st->stepped_offset;
2836 
2837 	if (abs_offset < block_limit && !st->frag_data) {
2838 		*data = st->cur_skb->data + (abs_offset - st->stepped_offset);
2839 		return block_limit - abs_offset;
2840 	}
2841 
2842 	if (st->frag_idx == 0 && !st->frag_data)
2843 		st->stepped_offset += skb_headlen(st->cur_skb);
2844 
2845 	while (st->frag_idx < skb_shinfo(st->cur_skb)->nr_frags) {
2846 		frag = &skb_shinfo(st->cur_skb)->frags[st->frag_idx];
2847 		block_limit = skb_frag_size(frag) + st->stepped_offset;
2848 
2849 		if (abs_offset < block_limit) {
2850 			if (!st->frag_data)
2851 				st->frag_data = kmap_atomic(skb_frag_page(frag));
2852 
2853 			*data = (u8 *) st->frag_data + frag->page_offset +
2854 				(abs_offset - st->stepped_offset);
2855 
2856 			return block_limit - abs_offset;
2857 		}
2858 
2859 		if (st->frag_data) {
2860 			kunmap_atomic(st->frag_data);
2861 			st->frag_data = NULL;
2862 		}
2863 
2864 		st->frag_idx++;
2865 		st->stepped_offset += skb_frag_size(frag);
2866 	}
2867 
2868 	if (st->frag_data) {
2869 		kunmap_atomic(st->frag_data);
2870 		st->frag_data = NULL;
2871 	}
2872 
2873 	if (st->root_skb == st->cur_skb && skb_has_frag_list(st->root_skb)) {
2874 		st->cur_skb = skb_shinfo(st->root_skb)->frag_list;
2875 		st->frag_idx = 0;
2876 		goto next_skb;
2877 	} else if (st->cur_skb->next) {
2878 		st->cur_skb = st->cur_skb->next;
2879 		st->frag_idx = 0;
2880 		goto next_skb;
2881 	}
2882 
2883 	return 0;
2884 }
2885 EXPORT_SYMBOL(skb_seq_read);
2886 
2887 /**
2888  * skb_abort_seq_read - Abort a sequential read of skb data
2889  * @st: state variable
2890  *
2891  * Must be called if skb_seq_read() was not called until it
2892  * returned 0.
2893  */
2894 void skb_abort_seq_read(struct skb_seq_state *st)
2895 {
2896 	if (st->frag_data)
2897 		kunmap_atomic(st->frag_data);
2898 }
2899 EXPORT_SYMBOL(skb_abort_seq_read);
2900 
2901 #define TS_SKB_CB(state)	((struct skb_seq_state *) &((state)->cb))
2902 
2903 static unsigned int skb_ts_get_next_block(unsigned int offset, const u8 **text,
2904 					  struct ts_config *conf,
2905 					  struct ts_state *state)
2906 {
2907 	return skb_seq_read(offset, text, TS_SKB_CB(state));
2908 }
2909 
2910 static void skb_ts_finish(struct ts_config *conf, struct ts_state *state)
2911 {
2912 	skb_abort_seq_read(TS_SKB_CB(state));
2913 }
2914 
2915 /**
2916  * skb_find_text - Find a text pattern in skb data
2917  * @skb: the buffer to look in
2918  * @from: search offset
2919  * @to: search limit
2920  * @config: textsearch configuration
2921  *
2922  * Finds a pattern in the skb data according to the specified
2923  * textsearch configuration. Use textsearch_next() to retrieve
2924  * subsequent occurrences of the pattern. Returns the offset
2925  * to the first occurrence or UINT_MAX if no match was found.
2926  */
2927 unsigned int skb_find_text(struct sk_buff *skb, unsigned int from,
2928 			   unsigned int to, struct ts_config *config)
2929 {
2930 	struct ts_state state;
2931 	unsigned int ret;
2932 
2933 	config->get_next_block = skb_ts_get_next_block;
2934 	config->finish = skb_ts_finish;
2935 
2936 	skb_prepare_seq_read(skb, from, to, TS_SKB_CB(&state));
2937 
2938 	ret = textsearch_find(config, &state);
2939 	return (ret <= to - from ? ret : UINT_MAX);
2940 }
2941 EXPORT_SYMBOL(skb_find_text);
2942 
2943 /**
2944  * skb_append_datato_frags - append the user data to a skb
2945  * @sk: sock  structure
2946  * @skb: skb structure to be appended with user data.
2947  * @getfrag: call back function to be used for getting the user data
2948  * @from: pointer to user message iov
2949  * @length: length of the iov message
2950  *
2951  * Description: This procedure append the user data in the fragment part
2952  * of the skb if any page alloc fails user this procedure returns  -ENOMEM
2953  */
2954 int skb_append_datato_frags(struct sock *sk, struct sk_buff *skb,
2955 			int (*getfrag)(void *from, char *to, int offset,
2956 					int len, int odd, struct sk_buff *skb),
2957 			void *from, int length)
2958 {
2959 	int frg_cnt = skb_shinfo(skb)->nr_frags;
2960 	int copy;
2961 	int offset = 0;
2962 	int ret;
2963 	struct page_frag *pfrag = &current->task_frag;
2964 
2965 	do {
2966 		/* Return error if we don't have space for new frag */
2967 		if (frg_cnt >= MAX_SKB_FRAGS)
2968 			return -EMSGSIZE;
2969 
2970 		if (!sk_page_frag_refill(sk, pfrag))
2971 			return -ENOMEM;
2972 
2973 		/* copy the user data to page */
2974 		copy = min_t(int, length, pfrag->size - pfrag->offset);
2975 
2976 		ret = getfrag(from, page_address(pfrag->page) + pfrag->offset,
2977 			      offset, copy, 0, skb);
2978 		if (ret < 0)
2979 			return -EFAULT;
2980 
2981 		/* copy was successful so update the size parameters */
2982 		skb_fill_page_desc(skb, frg_cnt, pfrag->page, pfrag->offset,
2983 				   copy);
2984 		frg_cnt++;
2985 		pfrag->offset += copy;
2986 		get_page(pfrag->page);
2987 
2988 		skb->truesize += copy;
2989 		atomic_add(copy, &sk->sk_wmem_alloc);
2990 		skb->len += copy;
2991 		skb->data_len += copy;
2992 		offset += copy;
2993 		length -= copy;
2994 
2995 	} while (length > 0);
2996 
2997 	return 0;
2998 }
2999 EXPORT_SYMBOL(skb_append_datato_frags);
3000 
3001 int skb_append_pagefrags(struct sk_buff *skb, struct page *page,
3002 			 int offset, size_t size)
3003 {
3004 	int i = skb_shinfo(skb)->nr_frags;
3005 
3006 	if (skb_can_coalesce(skb, i, page, offset)) {
3007 		skb_frag_size_add(&skb_shinfo(skb)->frags[i - 1], size);
3008 	} else if (i < MAX_SKB_FRAGS) {
3009 		get_page(page);
3010 		skb_fill_page_desc(skb, i, page, offset, size);
3011 	} else {
3012 		return -EMSGSIZE;
3013 	}
3014 
3015 	return 0;
3016 }
3017 EXPORT_SYMBOL_GPL(skb_append_pagefrags);
3018 
3019 /**
3020  *	skb_push_rcsum - push skb and update receive checksum
3021  *	@skb: buffer to update
3022  *	@len: length of data pulled
3023  *
3024  *	This function performs an skb_push on the packet and updates
3025  *	the CHECKSUM_COMPLETE checksum.  It should be used on
3026  *	receive path processing instead of skb_push unless you know
3027  *	that the checksum difference is zero (e.g., a valid IP header)
3028  *	or you are setting ip_summed to CHECKSUM_NONE.
3029  */
3030 static unsigned char *skb_push_rcsum(struct sk_buff *skb, unsigned len)
3031 {
3032 	skb_push(skb, len);
3033 	skb_postpush_rcsum(skb, skb->data, len);
3034 	return skb->data;
3035 }
3036 
3037 /**
3038  *	skb_pull_rcsum - pull skb and update receive checksum
3039  *	@skb: buffer to update
3040  *	@len: length of data pulled
3041  *
3042  *	This function performs an skb_pull on the packet and updates
3043  *	the CHECKSUM_COMPLETE checksum.  It should be used on
3044  *	receive path processing instead of skb_pull unless you know
3045  *	that the checksum difference is zero (e.g., a valid IP header)
3046  *	or you are setting ip_summed to CHECKSUM_NONE.
3047  */
3048 unsigned char *skb_pull_rcsum(struct sk_buff *skb, unsigned int len)
3049 {
3050 	unsigned char *data = skb->data;
3051 
3052 	BUG_ON(len > skb->len);
3053 	__skb_pull(skb, len);
3054 	skb_postpull_rcsum(skb, data, len);
3055 	return skb->data;
3056 }
3057 EXPORT_SYMBOL_GPL(skb_pull_rcsum);
3058 
3059 /**
3060  *	skb_segment - Perform protocol segmentation on skb.
3061  *	@head_skb: buffer to segment
3062  *	@features: features for the output path (see dev->features)
3063  *
3064  *	This function performs segmentation on the given skb.  It returns
3065  *	a pointer to the first in a list of new skbs for the segments.
3066  *	In case of error it returns ERR_PTR(err).
3067  */
3068 struct sk_buff *skb_segment(struct sk_buff *head_skb,
3069 			    netdev_features_t features)
3070 {
3071 	struct sk_buff *segs = NULL;
3072 	struct sk_buff *tail = NULL;
3073 	struct sk_buff *list_skb = skb_shinfo(head_skb)->frag_list;
3074 	skb_frag_t *frag = skb_shinfo(head_skb)->frags;
3075 	unsigned int mss = skb_shinfo(head_skb)->gso_size;
3076 	unsigned int doffset = head_skb->data - skb_mac_header(head_skb);
3077 	struct sk_buff *frag_skb = head_skb;
3078 	unsigned int offset = doffset;
3079 	unsigned int tnl_hlen = skb_tnl_header_len(head_skb);
3080 	unsigned int partial_segs = 0;
3081 	unsigned int headroom;
3082 	unsigned int len = head_skb->len;
3083 	__be16 proto;
3084 	bool csum, sg;
3085 	int nfrags = skb_shinfo(head_skb)->nr_frags;
3086 	int err = -ENOMEM;
3087 	int i = 0;
3088 	int pos;
3089 	int dummy;
3090 
3091 	__skb_push(head_skb, doffset);
3092 	proto = skb_network_protocol(head_skb, &dummy);
3093 	if (unlikely(!proto))
3094 		return ERR_PTR(-EINVAL);
3095 
3096 	sg = !!(features & NETIF_F_SG);
3097 	csum = !!can_checksum_protocol(features, proto);
3098 
3099 	/* GSO partial only requires that we trim off any excess that
3100 	 * doesn't fit into an MSS sized block, so take care of that
3101 	 * now.
3102 	 */
3103 	if (sg && csum && (features & NETIF_F_GSO_PARTIAL)) {
3104 		partial_segs = len / mss;
3105 		if (partial_segs > 1)
3106 			mss *= partial_segs;
3107 		else
3108 			partial_segs = 0;
3109 	}
3110 
3111 	headroom = skb_headroom(head_skb);
3112 	pos = skb_headlen(head_skb);
3113 
3114 	do {
3115 		struct sk_buff *nskb;
3116 		skb_frag_t *nskb_frag;
3117 		int hsize;
3118 		int size;
3119 
3120 		if (unlikely(mss == GSO_BY_FRAGS)) {
3121 			len = list_skb->len;
3122 		} else {
3123 			len = head_skb->len - offset;
3124 			if (len > mss)
3125 				len = mss;
3126 		}
3127 
3128 		hsize = skb_headlen(head_skb) - offset;
3129 		if (hsize < 0)
3130 			hsize = 0;
3131 		if (hsize > len || !sg)
3132 			hsize = len;
3133 
3134 		if (!hsize && i >= nfrags && skb_headlen(list_skb) &&
3135 		    (skb_headlen(list_skb) == len || sg)) {
3136 			BUG_ON(skb_headlen(list_skb) > len);
3137 
3138 			i = 0;
3139 			nfrags = skb_shinfo(list_skb)->nr_frags;
3140 			frag = skb_shinfo(list_skb)->frags;
3141 			frag_skb = list_skb;
3142 			pos += skb_headlen(list_skb);
3143 
3144 			while (pos < offset + len) {
3145 				BUG_ON(i >= nfrags);
3146 
3147 				size = skb_frag_size(frag);
3148 				if (pos + size > offset + len)
3149 					break;
3150 
3151 				i++;
3152 				pos += size;
3153 				frag++;
3154 			}
3155 
3156 			nskb = skb_clone(list_skb, GFP_ATOMIC);
3157 			list_skb = list_skb->next;
3158 
3159 			if (unlikely(!nskb))
3160 				goto err;
3161 
3162 			if (unlikely(pskb_trim(nskb, len))) {
3163 				kfree_skb(nskb);
3164 				goto err;
3165 			}
3166 
3167 			hsize = skb_end_offset(nskb);
3168 			if (skb_cow_head(nskb, doffset + headroom)) {
3169 				kfree_skb(nskb);
3170 				goto err;
3171 			}
3172 
3173 			nskb->truesize += skb_end_offset(nskb) - hsize;
3174 			skb_release_head_state(nskb);
3175 			__skb_push(nskb, doffset);
3176 		} else {
3177 			nskb = __alloc_skb(hsize + doffset + headroom,
3178 					   GFP_ATOMIC, skb_alloc_rx_flag(head_skb),
3179 					   NUMA_NO_NODE);
3180 
3181 			if (unlikely(!nskb))
3182 				goto err;
3183 
3184 			skb_reserve(nskb, headroom);
3185 			__skb_put(nskb, doffset);
3186 		}
3187 
3188 		if (segs)
3189 			tail->next = nskb;
3190 		else
3191 			segs = nskb;
3192 		tail = nskb;
3193 
3194 		__copy_skb_header(nskb, head_skb);
3195 
3196 		skb_headers_offset_update(nskb, skb_headroom(nskb) - headroom);
3197 		skb_reset_mac_len(nskb);
3198 
3199 		skb_copy_from_linear_data_offset(head_skb, -tnl_hlen,
3200 						 nskb->data - tnl_hlen,
3201 						 doffset + tnl_hlen);
3202 
3203 		if (nskb->len == len + doffset)
3204 			goto perform_csum_check;
3205 
3206 		if (!sg) {
3207 			if (!nskb->remcsum_offload)
3208 				nskb->ip_summed = CHECKSUM_NONE;
3209 			SKB_GSO_CB(nskb)->csum =
3210 				skb_copy_and_csum_bits(head_skb, offset,
3211 						       skb_put(nskb, len),
3212 						       len, 0);
3213 			SKB_GSO_CB(nskb)->csum_start =
3214 				skb_headroom(nskb) + doffset;
3215 			continue;
3216 		}
3217 
3218 		nskb_frag = skb_shinfo(nskb)->frags;
3219 
3220 		skb_copy_from_linear_data_offset(head_skb, offset,
3221 						 skb_put(nskb, hsize), hsize);
3222 
3223 		skb_shinfo(nskb)->tx_flags = skb_shinfo(head_skb)->tx_flags &
3224 			SKBTX_SHARED_FRAG;
3225 
3226 		while (pos < offset + len) {
3227 			if (i >= nfrags) {
3228 				BUG_ON(skb_headlen(list_skb));
3229 
3230 				i = 0;
3231 				nfrags = skb_shinfo(list_skb)->nr_frags;
3232 				frag = skb_shinfo(list_skb)->frags;
3233 				frag_skb = list_skb;
3234 
3235 				BUG_ON(!nfrags);
3236 
3237 				list_skb = list_skb->next;
3238 			}
3239 
3240 			if (unlikely(skb_shinfo(nskb)->nr_frags >=
3241 				     MAX_SKB_FRAGS)) {
3242 				net_warn_ratelimited(
3243 					"skb_segment: too many frags: %u %u\n",
3244 					pos, mss);
3245 				goto err;
3246 			}
3247 
3248 			if (unlikely(skb_orphan_frags(frag_skb, GFP_ATOMIC)))
3249 				goto err;
3250 
3251 			*nskb_frag = *frag;
3252 			__skb_frag_ref(nskb_frag);
3253 			size = skb_frag_size(nskb_frag);
3254 
3255 			if (pos < offset) {
3256 				nskb_frag->page_offset += offset - pos;
3257 				skb_frag_size_sub(nskb_frag, offset - pos);
3258 			}
3259 
3260 			skb_shinfo(nskb)->nr_frags++;
3261 
3262 			if (pos + size <= offset + len) {
3263 				i++;
3264 				frag++;
3265 				pos += size;
3266 			} else {
3267 				skb_frag_size_sub(nskb_frag, pos + size - (offset + len));
3268 				goto skip_fraglist;
3269 			}
3270 
3271 			nskb_frag++;
3272 		}
3273 
3274 skip_fraglist:
3275 		nskb->data_len = len - hsize;
3276 		nskb->len += nskb->data_len;
3277 		nskb->truesize += nskb->data_len;
3278 
3279 perform_csum_check:
3280 		if (!csum) {
3281 			if (skb_has_shared_frag(nskb)) {
3282 				err = __skb_linearize(nskb);
3283 				if (err)
3284 					goto err;
3285 			}
3286 			if (!nskb->remcsum_offload)
3287 				nskb->ip_summed = CHECKSUM_NONE;
3288 			SKB_GSO_CB(nskb)->csum =
3289 				skb_checksum(nskb, doffset,
3290 					     nskb->len - doffset, 0);
3291 			SKB_GSO_CB(nskb)->csum_start =
3292 				skb_headroom(nskb) + doffset;
3293 		}
3294 	} while ((offset += len) < head_skb->len);
3295 
3296 	/* Some callers want to get the end of the list.
3297 	 * Put it in segs->prev to avoid walking the list.
3298 	 * (see validate_xmit_skb_list() for example)
3299 	 */
3300 	segs->prev = tail;
3301 
3302 	/* Update GSO info on first skb in partial sequence. */
3303 	if (partial_segs) {
3304 		int type = skb_shinfo(head_skb)->gso_type;
3305 
3306 		/* Update type to add partial and then remove dodgy if set */
3307 		type |= SKB_GSO_PARTIAL;
3308 		type &= ~SKB_GSO_DODGY;
3309 
3310 		/* Update GSO info and prepare to start updating headers on
3311 		 * our way back down the stack of protocols.
3312 		 */
3313 		skb_shinfo(segs)->gso_size = skb_shinfo(head_skb)->gso_size;
3314 		skb_shinfo(segs)->gso_segs = partial_segs;
3315 		skb_shinfo(segs)->gso_type = type;
3316 		SKB_GSO_CB(segs)->data_offset = skb_headroom(segs) + doffset;
3317 	}
3318 
3319 	/* Following permits correct backpressure, for protocols
3320 	 * using skb_set_owner_w().
3321 	 * Idea is to tranfert ownership from head_skb to last segment.
3322 	 */
3323 	if (head_skb->destructor == sock_wfree) {
3324 		swap(tail->truesize, head_skb->truesize);
3325 		swap(tail->destructor, head_skb->destructor);
3326 		swap(tail->sk, head_skb->sk);
3327 	}
3328 	return segs;
3329 
3330 err:
3331 	kfree_skb_list(segs);
3332 	return ERR_PTR(err);
3333 }
3334 EXPORT_SYMBOL_GPL(skb_segment);
3335 
3336 int skb_gro_receive(struct sk_buff **head, struct sk_buff *skb)
3337 {
3338 	struct skb_shared_info *pinfo, *skbinfo = skb_shinfo(skb);
3339 	unsigned int offset = skb_gro_offset(skb);
3340 	unsigned int headlen = skb_headlen(skb);
3341 	unsigned int len = skb_gro_len(skb);
3342 	struct sk_buff *lp, *p = *head;
3343 	unsigned int delta_truesize;
3344 
3345 	if (unlikely(p->len + len >= 65536))
3346 		return -E2BIG;
3347 
3348 	lp = NAPI_GRO_CB(p)->last;
3349 	pinfo = skb_shinfo(lp);
3350 
3351 	if (headlen <= offset) {
3352 		skb_frag_t *frag;
3353 		skb_frag_t *frag2;
3354 		int i = skbinfo->nr_frags;
3355 		int nr_frags = pinfo->nr_frags + i;
3356 
3357 		if (nr_frags > MAX_SKB_FRAGS)
3358 			goto merge;
3359 
3360 		offset -= headlen;
3361 		pinfo->nr_frags = nr_frags;
3362 		skbinfo->nr_frags = 0;
3363 
3364 		frag = pinfo->frags + nr_frags;
3365 		frag2 = skbinfo->frags + i;
3366 		do {
3367 			*--frag = *--frag2;
3368 		} while (--i);
3369 
3370 		frag->page_offset += offset;
3371 		skb_frag_size_sub(frag, offset);
3372 
3373 		/* all fragments truesize : remove (head size + sk_buff) */
3374 		delta_truesize = skb->truesize -
3375 				 SKB_TRUESIZE(skb_end_offset(skb));
3376 
3377 		skb->truesize -= skb->data_len;
3378 		skb->len -= skb->data_len;
3379 		skb->data_len = 0;
3380 
3381 		NAPI_GRO_CB(skb)->free = NAPI_GRO_FREE;
3382 		goto done;
3383 	} else if (skb->head_frag) {
3384 		int nr_frags = pinfo->nr_frags;
3385 		skb_frag_t *frag = pinfo->frags + nr_frags;
3386 		struct page *page = virt_to_head_page(skb->head);
3387 		unsigned int first_size = headlen - offset;
3388 		unsigned int first_offset;
3389 
3390 		if (nr_frags + 1 + skbinfo->nr_frags > MAX_SKB_FRAGS)
3391 			goto merge;
3392 
3393 		first_offset = skb->data -
3394 			       (unsigned char *)page_address(page) +
3395 			       offset;
3396 
3397 		pinfo->nr_frags = nr_frags + 1 + skbinfo->nr_frags;
3398 
3399 		frag->page.p	  = page;
3400 		frag->page_offset = first_offset;
3401 		skb_frag_size_set(frag, first_size);
3402 
3403 		memcpy(frag + 1, skbinfo->frags, sizeof(*frag) * skbinfo->nr_frags);
3404 		/* We dont need to clear skbinfo->nr_frags here */
3405 
3406 		delta_truesize = skb->truesize - SKB_DATA_ALIGN(sizeof(struct sk_buff));
3407 		NAPI_GRO_CB(skb)->free = NAPI_GRO_FREE_STOLEN_HEAD;
3408 		goto done;
3409 	}
3410 
3411 merge:
3412 	delta_truesize = skb->truesize;
3413 	if (offset > headlen) {
3414 		unsigned int eat = offset - headlen;
3415 
3416 		skbinfo->frags[0].page_offset += eat;
3417 		skb_frag_size_sub(&skbinfo->frags[0], eat);
3418 		skb->data_len -= eat;
3419 		skb->len -= eat;
3420 		offset = headlen;
3421 	}
3422 
3423 	__skb_pull(skb, offset);
3424 
3425 	if (NAPI_GRO_CB(p)->last == p)
3426 		skb_shinfo(p)->frag_list = skb;
3427 	else
3428 		NAPI_GRO_CB(p)->last->next = skb;
3429 	NAPI_GRO_CB(p)->last = skb;
3430 	__skb_header_release(skb);
3431 	lp = p;
3432 
3433 done:
3434 	NAPI_GRO_CB(p)->count++;
3435 	p->data_len += len;
3436 	p->truesize += delta_truesize;
3437 	p->len += len;
3438 	if (lp != p) {
3439 		lp->data_len += len;
3440 		lp->truesize += delta_truesize;
3441 		lp->len += len;
3442 	}
3443 	NAPI_GRO_CB(skb)->same_flow = 1;
3444 	return 0;
3445 }
3446 EXPORT_SYMBOL_GPL(skb_gro_receive);
3447 
3448 void __init skb_init(void)
3449 {
3450 	skbuff_head_cache = kmem_cache_create("skbuff_head_cache",
3451 					      sizeof(struct sk_buff),
3452 					      0,
3453 					      SLAB_HWCACHE_ALIGN|SLAB_PANIC,
3454 					      NULL);
3455 	skbuff_fclone_cache = kmem_cache_create("skbuff_fclone_cache",
3456 						sizeof(struct sk_buff_fclones),
3457 						0,
3458 						SLAB_HWCACHE_ALIGN|SLAB_PANIC,
3459 						NULL);
3460 }
3461 
3462 /**
3463  *	skb_to_sgvec - Fill a scatter-gather list from a socket buffer
3464  *	@skb: Socket buffer containing the buffers to be mapped
3465  *	@sg: The scatter-gather list to map into
3466  *	@offset: The offset into the buffer's contents to start mapping
3467  *	@len: Length of buffer space to be mapped
3468  *
3469  *	Fill the specified scatter-gather list with mappings/pointers into a
3470  *	region of the buffer space attached to a socket buffer.
3471  */
3472 static int
3473 __skb_to_sgvec(struct sk_buff *skb, struct scatterlist *sg, int offset, int len)
3474 {
3475 	int start = skb_headlen(skb);
3476 	int i, copy = start - offset;
3477 	struct sk_buff *frag_iter;
3478 	int elt = 0;
3479 
3480 	if (copy > 0) {
3481 		if (copy > len)
3482 			copy = len;
3483 		sg_set_buf(sg, skb->data + offset, copy);
3484 		elt++;
3485 		if ((len -= copy) == 0)
3486 			return elt;
3487 		offset += copy;
3488 	}
3489 
3490 	for (i = 0; i < skb_shinfo(skb)->nr_frags; i++) {
3491 		int end;
3492 
3493 		WARN_ON(start > offset + len);
3494 
3495 		end = start + skb_frag_size(&skb_shinfo(skb)->frags[i]);
3496 		if ((copy = end - offset) > 0) {
3497 			skb_frag_t *frag = &skb_shinfo(skb)->frags[i];
3498 
3499 			if (copy > len)
3500 				copy = len;
3501 			sg_set_page(&sg[elt], skb_frag_page(frag), copy,
3502 					frag->page_offset+offset-start);
3503 			elt++;
3504 			if (!(len -= copy))
3505 				return elt;
3506 			offset += copy;
3507 		}
3508 		start = end;
3509 	}
3510 
3511 	skb_walk_frags(skb, frag_iter) {
3512 		int end;
3513 
3514 		WARN_ON(start > offset + len);
3515 
3516 		end = start + frag_iter->len;
3517 		if ((copy = end - offset) > 0) {
3518 			if (copy > len)
3519 				copy = len;
3520 			elt += __skb_to_sgvec(frag_iter, sg+elt, offset - start,
3521 					      copy);
3522 			if ((len -= copy) == 0)
3523 				return elt;
3524 			offset += copy;
3525 		}
3526 		start = end;
3527 	}
3528 	BUG_ON(len);
3529 	return elt;
3530 }
3531 
3532 /* As compared with skb_to_sgvec, skb_to_sgvec_nomark only map skb to given
3533  * sglist without mark the sg which contain last skb data as the end.
3534  * So the caller can mannipulate sg list as will when padding new data after
3535  * the first call without calling sg_unmark_end to expend sg list.
3536  *
3537  * Scenario to use skb_to_sgvec_nomark:
3538  * 1. sg_init_table
3539  * 2. skb_to_sgvec_nomark(payload1)
3540  * 3. skb_to_sgvec_nomark(payload2)
3541  *
3542  * This is equivalent to:
3543  * 1. sg_init_table
3544  * 2. skb_to_sgvec(payload1)
3545  * 3. sg_unmark_end
3546  * 4. skb_to_sgvec(payload2)
3547  *
3548  * When mapping mutilple payload conditionally, skb_to_sgvec_nomark
3549  * is more preferable.
3550  */
3551 int skb_to_sgvec_nomark(struct sk_buff *skb, struct scatterlist *sg,
3552 			int offset, int len)
3553 {
3554 	return __skb_to_sgvec(skb, sg, offset, len);
3555 }
3556 EXPORT_SYMBOL_GPL(skb_to_sgvec_nomark);
3557 
3558 int skb_to_sgvec(struct sk_buff *skb, struct scatterlist *sg, int offset, int len)
3559 {
3560 	int nsg = __skb_to_sgvec(skb, sg, offset, len);
3561 
3562 	sg_mark_end(&sg[nsg - 1]);
3563 
3564 	return nsg;
3565 }
3566 EXPORT_SYMBOL_GPL(skb_to_sgvec);
3567 
3568 /**
3569  *	skb_cow_data - Check that a socket buffer's data buffers are writable
3570  *	@skb: The socket buffer to check.
3571  *	@tailbits: Amount of trailing space to be added
3572  *	@trailer: Returned pointer to the skb where the @tailbits space begins
3573  *
3574  *	Make sure that the data buffers attached to a socket buffer are
3575  *	writable. If they are not, private copies are made of the data buffers
3576  *	and the socket buffer is set to use these instead.
3577  *
3578  *	If @tailbits is given, make sure that there is space to write @tailbits
3579  *	bytes of data beyond current end of socket buffer.  @trailer will be
3580  *	set to point to the skb in which this space begins.
3581  *
3582  *	The number of scatterlist elements required to completely map the
3583  *	COW'd and extended socket buffer will be returned.
3584  */
3585 int skb_cow_data(struct sk_buff *skb, int tailbits, struct sk_buff **trailer)
3586 {
3587 	int copyflag;
3588 	int elt;
3589 	struct sk_buff *skb1, **skb_p;
3590 
3591 	/* If skb is cloned or its head is paged, reallocate
3592 	 * head pulling out all the pages (pages are considered not writable
3593 	 * at the moment even if they are anonymous).
3594 	 */
3595 	if ((skb_cloned(skb) || skb_shinfo(skb)->nr_frags) &&
3596 	    __pskb_pull_tail(skb, skb_pagelen(skb)-skb_headlen(skb)) == NULL)
3597 		return -ENOMEM;
3598 
3599 	/* Easy case. Most of packets will go this way. */
3600 	if (!skb_has_frag_list(skb)) {
3601 		/* A little of trouble, not enough of space for trailer.
3602 		 * This should not happen, when stack is tuned to generate
3603 		 * good frames. OK, on miss we reallocate and reserve even more
3604 		 * space, 128 bytes is fair. */
3605 
3606 		if (skb_tailroom(skb) < tailbits &&
3607 		    pskb_expand_head(skb, 0, tailbits-skb_tailroom(skb)+128, GFP_ATOMIC))
3608 			return -ENOMEM;
3609 
3610 		/* Voila! */
3611 		*trailer = skb;
3612 		return 1;
3613 	}
3614 
3615 	/* Misery. We are in troubles, going to mincer fragments... */
3616 
3617 	elt = 1;
3618 	skb_p = &skb_shinfo(skb)->frag_list;
3619 	copyflag = 0;
3620 
3621 	while ((skb1 = *skb_p) != NULL) {
3622 		int ntail = 0;
3623 
3624 		/* The fragment is partially pulled by someone,
3625 		 * this can happen on input. Copy it and everything
3626 		 * after it. */
3627 
3628 		if (skb_shared(skb1))
3629 			copyflag = 1;
3630 
3631 		/* If the skb is the last, worry about trailer. */
3632 
3633 		if (skb1->next == NULL && tailbits) {
3634 			if (skb_shinfo(skb1)->nr_frags ||
3635 			    skb_has_frag_list(skb1) ||
3636 			    skb_tailroom(skb1) < tailbits)
3637 				ntail = tailbits + 128;
3638 		}
3639 
3640 		if (copyflag ||
3641 		    skb_cloned(skb1) ||
3642 		    ntail ||
3643 		    skb_shinfo(skb1)->nr_frags ||
3644 		    skb_has_frag_list(skb1)) {
3645 			struct sk_buff *skb2;
3646 
3647 			/* Fuck, we are miserable poor guys... */
3648 			if (ntail == 0)
3649 				skb2 = skb_copy(skb1, GFP_ATOMIC);
3650 			else
3651 				skb2 = skb_copy_expand(skb1,
3652 						       skb_headroom(skb1),
3653 						       ntail,
3654 						       GFP_ATOMIC);
3655 			if (unlikely(skb2 == NULL))
3656 				return -ENOMEM;
3657 
3658 			if (skb1->sk)
3659 				skb_set_owner_w(skb2, skb1->sk);
3660 
3661 			/* Looking around. Are we still alive?
3662 			 * OK, link new skb, drop old one */
3663 
3664 			skb2->next = skb1->next;
3665 			*skb_p = skb2;
3666 			kfree_skb(skb1);
3667 			skb1 = skb2;
3668 		}
3669 		elt++;
3670 		*trailer = skb1;
3671 		skb_p = &skb1->next;
3672 	}
3673 
3674 	return elt;
3675 }
3676 EXPORT_SYMBOL_GPL(skb_cow_data);
3677 
3678 static void sock_rmem_free(struct sk_buff *skb)
3679 {
3680 	struct sock *sk = skb->sk;
3681 
3682 	atomic_sub(skb->truesize, &sk->sk_rmem_alloc);
3683 }
3684 
3685 /*
3686  * Note: We dont mem charge error packets (no sk_forward_alloc changes)
3687  */
3688 int sock_queue_err_skb(struct sock *sk, struct sk_buff *skb)
3689 {
3690 	if (atomic_read(&sk->sk_rmem_alloc) + skb->truesize >=
3691 	    (unsigned int)sk->sk_rcvbuf)
3692 		return -ENOMEM;
3693 
3694 	skb_orphan(skb);
3695 	skb->sk = sk;
3696 	skb->destructor = sock_rmem_free;
3697 	atomic_add(skb->truesize, &sk->sk_rmem_alloc);
3698 
3699 	/* before exiting rcu section, make sure dst is refcounted */
3700 	skb_dst_force(skb);
3701 
3702 	skb_queue_tail(&sk->sk_error_queue, skb);
3703 	if (!sock_flag(sk, SOCK_DEAD))
3704 		sk->sk_data_ready(sk);
3705 	return 0;
3706 }
3707 EXPORT_SYMBOL(sock_queue_err_skb);
3708 
3709 struct sk_buff *sock_dequeue_err_skb(struct sock *sk)
3710 {
3711 	struct sk_buff_head *q = &sk->sk_error_queue;
3712 	struct sk_buff *skb, *skb_next;
3713 	unsigned long flags;
3714 	int err = 0;
3715 
3716 	spin_lock_irqsave(&q->lock, flags);
3717 	skb = __skb_dequeue(q);
3718 	if (skb && (skb_next = skb_peek(q)))
3719 		err = SKB_EXT_ERR(skb_next)->ee.ee_errno;
3720 	spin_unlock_irqrestore(&q->lock, flags);
3721 
3722 	sk->sk_err = err;
3723 	if (err)
3724 		sk->sk_error_report(sk);
3725 
3726 	return skb;
3727 }
3728 EXPORT_SYMBOL(sock_dequeue_err_skb);
3729 
3730 /**
3731  * skb_clone_sk - create clone of skb, and take reference to socket
3732  * @skb: the skb to clone
3733  *
3734  * This function creates a clone of a buffer that holds a reference on
3735  * sk_refcnt.  Buffers created via this function are meant to be
3736  * returned using sock_queue_err_skb, or free via kfree_skb.
3737  *
3738  * When passing buffers allocated with this function to sock_queue_err_skb
3739  * it is necessary to wrap the call with sock_hold/sock_put in order to
3740  * prevent the socket from being released prior to being enqueued on
3741  * the sk_error_queue.
3742  */
3743 struct sk_buff *skb_clone_sk(struct sk_buff *skb)
3744 {
3745 	struct sock *sk = skb->sk;
3746 	struct sk_buff *clone;
3747 
3748 	if (!sk || !atomic_inc_not_zero(&sk->sk_refcnt))
3749 		return NULL;
3750 
3751 	clone = skb_clone(skb, GFP_ATOMIC);
3752 	if (!clone) {
3753 		sock_put(sk);
3754 		return NULL;
3755 	}
3756 
3757 	clone->sk = sk;
3758 	clone->destructor = sock_efree;
3759 
3760 	return clone;
3761 }
3762 EXPORT_SYMBOL(skb_clone_sk);
3763 
3764 static void __skb_complete_tx_timestamp(struct sk_buff *skb,
3765 					struct sock *sk,
3766 					int tstype)
3767 {
3768 	struct sock_exterr_skb *serr;
3769 	int err;
3770 
3771 	serr = SKB_EXT_ERR(skb);
3772 	memset(serr, 0, sizeof(*serr));
3773 	serr->ee.ee_errno = ENOMSG;
3774 	serr->ee.ee_origin = SO_EE_ORIGIN_TIMESTAMPING;
3775 	serr->ee.ee_info = tstype;
3776 	if (sk->sk_tsflags & SOF_TIMESTAMPING_OPT_ID) {
3777 		serr->ee.ee_data = skb_shinfo(skb)->tskey;
3778 		if (sk->sk_protocol == IPPROTO_TCP &&
3779 		    sk->sk_type == SOCK_STREAM)
3780 			serr->ee.ee_data -= sk->sk_tskey;
3781 	}
3782 
3783 	err = sock_queue_err_skb(sk, skb);
3784 
3785 	if (err)
3786 		kfree_skb(skb);
3787 }
3788 
3789 static bool skb_may_tx_timestamp(struct sock *sk, bool tsonly)
3790 {
3791 	bool ret;
3792 
3793 	if (likely(sysctl_tstamp_allow_data || tsonly))
3794 		return true;
3795 
3796 	read_lock_bh(&sk->sk_callback_lock);
3797 	ret = sk->sk_socket && sk->sk_socket->file &&
3798 	      file_ns_capable(sk->sk_socket->file, &init_user_ns, CAP_NET_RAW);
3799 	read_unlock_bh(&sk->sk_callback_lock);
3800 	return ret;
3801 }
3802 
3803 void skb_complete_tx_timestamp(struct sk_buff *skb,
3804 			       struct skb_shared_hwtstamps *hwtstamps)
3805 {
3806 	struct sock *sk = skb->sk;
3807 
3808 	if (!skb_may_tx_timestamp(sk, false))
3809 		return;
3810 
3811 	/* take a reference to prevent skb_orphan() from freeing the socket */
3812 	sock_hold(sk);
3813 
3814 	*skb_hwtstamps(skb) = *hwtstamps;
3815 	__skb_complete_tx_timestamp(skb, sk, SCM_TSTAMP_SND);
3816 
3817 	sock_put(sk);
3818 }
3819 EXPORT_SYMBOL_GPL(skb_complete_tx_timestamp);
3820 
3821 void __skb_tstamp_tx(struct sk_buff *orig_skb,
3822 		     struct skb_shared_hwtstamps *hwtstamps,
3823 		     struct sock *sk, int tstype)
3824 {
3825 	struct sk_buff *skb;
3826 	bool tsonly;
3827 
3828 	if (!sk)
3829 		return;
3830 
3831 	tsonly = sk->sk_tsflags & SOF_TIMESTAMPING_OPT_TSONLY;
3832 	if (!skb_may_tx_timestamp(sk, tsonly))
3833 		return;
3834 
3835 	if (tsonly)
3836 		skb = alloc_skb(0, GFP_ATOMIC);
3837 	else
3838 		skb = skb_clone(orig_skb, GFP_ATOMIC);
3839 	if (!skb)
3840 		return;
3841 
3842 	if (tsonly) {
3843 		skb_shinfo(skb)->tx_flags = skb_shinfo(orig_skb)->tx_flags;
3844 		skb_shinfo(skb)->tskey = skb_shinfo(orig_skb)->tskey;
3845 	}
3846 
3847 	if (hwtstamps)
3848 		*skb_hwtstamps(skb) = *hwtstamps;
3849 	else
3850 		skb->tstamp = ktime_get_real();
3851 
3852 	__skb_complete_tx_timestamp(skb, sk, tstype);
3853 }
3854 EXPORT_SYMBOL_GPL(__skb_tstamp_tx);
3855 
3856 void skb_tstamp_tx(struct sk_buff *orig_skb,
3857 		   struct skb_shared_hwtstamps *hwtstamps)
3858 {
3859 	return __skb_tstamp_tx(orig_skb, hwtstamps, orig_skb->sk,
3860 			       SCM_TSTAMP_SND);
3861 }
3862 EXPORT_SYMBOL_GPL(skb_tstamp_tx);
3863 
3864 void skb_complete_wifi_ack(struct sk_buff *skb, bool acked)
3865 {
3866 	struct sock *sk = skb->sk;
3867 	struct sock_exterr_skb *serr;
3868 	int err;
3869 
3870 	skb->wifi_acked_valid = 1;
3871 	skb->wifi_acked = acked;
3872 
3873 	serr = SKB_EXT_ERR(skb);
3874 	memset(serr, 0, sizeof(*serr));
3875 	serr->ee.ee_errno = ENOMSG;
3876 	serr->ee.ee_origin = SO_EE_ORIGIN_TXSTATUS;
3877 
3878 	/* take a reference to prevent skb_orphan() from freeing the socket */
3879 	sock_hold(sk);
3880 
3881 	err = sock_queue_err_skb(sk, skb);
3882 	if (err)
3883 		kfree_skb(skb);
3884 
3885 	sock_put(sk);
3886 }
3887 EXPORT_SYMBOL_GPL(skb_complete_wifi_ack);
3888 
3889 /**
3890  * skb_partial_csum_set - set up and verify partial csum values for packet
3891  * @skb: the skb to set
3892  * @start: the number of bytes after skb->data to start checksumming.
3893  * @off: the offset from start to place the checksum.
3894  *
3895  * For untrusted partially-checksummed packets, we need to make sure the values
3896  * for skb->csum_start and skb->csum_offset are valid so we don't oops.
3897  *
3898  * This function checks and sets those values and skb->ip_summed: if this
3899  * returns false you should drop the packet.
3900  */
3901 bool skb_partial_csum_set(struct sk_buff *skb, u16 start, u16 off)
3902 {
3903 	if (unlikely(start > skb_headlen(skb)) ||
3904 	    unlikely((int)start + off > skb_headlen(skb) - 2)) {
3905 		net_warn_ratelimited("bad partial csum: csum=%u/%u len=%u\n",
3906 				     start, off, skb_headlen(skb));
3907 		return false;
3908 	}
3909 	skb->ip_summed = CHECKSUM_PARTIAL;
3910 	skb->csum_start = skb_headroom(skb) + start;
3911 	skb->csum_offset = off;
3912 	skb_set_transport_header(skb, start);
3913 	return true;
3914 }
3915 EXPORT_SYMBOL_GPL(skb_partial_csum_set);
3916 
3917 static int skb_maybe_pull_tail(struct sk_buff *skb, unsigned int len,
3918 			       unsigned int max)
3919 {
3920 	if (skb_headlen(skb) >= len)
3921 		return 0;
3922 
3923 	/* If we need to pullup then pullup to the max, so we
3924 	 * won't need to do it again.
3925 	 */
3926 	if (max > skb->len)
3927 		max = skb->len;
3928 
3929 	if (__pskb_pull_tail(skb, max - skb_headlen(skb)) == NULL)
3930 		return -ENOMEM;
3931 
3932 	if (skb_headlen(skb) < len)
3933 		return -EPROTO;
3934 
3935 	return 0;
3936 }
3937 
3938 #define MAX_TCP_HDR_LEN (15 * 4)
3939 
3940 static __sum16 *skb_checksum_setup_ip(struct sk_buff *skb,
3941 				      typeof(IPPROTO_IP) proto,
3942 				      unsigned int off)
3943 {
3944 	switch (proto) {
3945 		int err;
3946 
3947 	case IPPROTO_TCP:
3948 		err = skb_maybe_pull_tail(skb, off + sizeof(struct tcphdr),
3949 					  off + MAX_TCP_HDR_LEN);
3950 		if (!err && !skb_partial_csum_set(skb, off,
3951 						  offsetof(struct tcphdr,
3952 							   check)))
3953 			err = -EPROTO;
3954 		return err ? ERR_PTR(err) : &tcp_hdr(skb)->check;
3955 
3956 	case IPPROTO_UDP:
3957 		err = skb_maybe_pull_tail(skb, off + sizeof(struct udphdr),
3958 					  off + sizeof(struct udphdr));
3959 		if (!err && !skb_partial_csum_set(skb, off,
3960 						  offsetof(struct udphdr,
3961 							   check)))
3962 			err = -EPROTO;
3963 		return err ? ERR_PTR(err) : &udp_hdr(skb)->check;
3964 	}
3965 
3966 	return ERR_PTR(-EPROTO);
3967 }
3968 
3969 /* This value should be large enough to cover a tagged ethernet header plus
3970  * maximally sized IP and TCP or UDP headers.
3971  */
3972 #define MAX_IP_HDR_LEN 128
3973 
3974 static int skb_checksum_setup_ipv4(struct sk_buff *skb, bool recalculate)
3975 {
3976 	unsigned int off;
3977 	bool fragment;
3978 	__sum16 *csum;
3979 	int err;
3980 
3981 	fragment = false;
3982 
3983 	err = skb_maybe_pull_tail(skb,
3984 				  sizeof(struct iphdr),
3985 				  MAX_IP_HDR_LEN);
3986 	if (err < 0)
3987 		goto out;
3988 
3989 	if (ip_hdr(skb)->frag_off & htons(IP_OFFSET | IP_MF))
3990 		fragment = true;
3991 
3992 	off = ip_hdrlen(skb);
3993 
3994 	err = -EPROTO;
3995 
3996 	if (fragment)
3997 		goto out;
3998 
3999 	csum = skb_checksum_setup_ip(skb, ip_hdr(skb)->protocol, off);
4000 	if (IS_ERR(csum))
4001 		return PTR_ERR(csum);
4002 
4003 	if (recalculate)
4004 		*csum = ~csum_tcpudp_magic(ip_hdr(skb)->saddr,
4005 					   ip_hdr(skb)->daddr,
4006 					   skb->len - off,
4007 					   ip_hdr(skb)->protocol, 0);
4008 	err = 0;
4009 
4010 out:
4011 	return err;
4012 }
4013 
4014 /* This value should be large enough to cover a tagged ethernet header plus
4015  * an IPv6 header, all options, and a maximal TCP or UDP header.
4016  */
4017 #define MAX_IPV6_HDR_LEN 256
4018 
4019 #define OPT_HDR(type, skb, off) \
4020 	(type *)(skb_network_header(skb) + (off))
4021 
4022 static int skb_checksum_setup_ipv6(struct sk_buff *skb, bool recalculate)
4023 {
4024 	int err;
4025 	u8 nexthdr;
4026 	unsigned int off;
4027 	unsigned int len;
4028 	bool fragment;
4029 	bool done;
4030 	__sum16 *csum;
4031 
4032 	fragment = false;
4033 	done = false;
4034 
4035 	off = sizeof(struct ipv6hdr);
4036 
4037 	err = skb_maybe_pull_tail(skb, off, MAX_IPV6_HDR_LEN);
4038 	if (err < 0)
4039 		goto out;
4040 
4041 	nexthdr = ipv6_hdr(skb)->nexthdr;
4042 
4043 	len = sizeof(struct ipv6hdr) + ntohs(ipv6_hdr(skb)->payload_len);
4044 	while (off <= len && !done) {
4045 		switch (nexthdr) {
4046 		case IPPROTO_DSTOPTS:
4047 		case IPPROTO_HOPOPTS:
4048 		case IPPROTO_ROUTING: {
4049 			struct ipv6_opt_hdr *hp;
4050 
4051 			err = skb_maybe_pull_tail(skb,
4052 						  off +
4053 						  sizeof(struct ipv6_opt_hdr),
4054 						  MAX_IPV6_HDR_LEN);
4055 			if (err < 0)
4056 				goto out;
4057 
4058 			hp = OPT_HDR(struct ipv6_opt_hdr, skb, off);
4059 			nexthdr = hp->nexthdr;
4060 			off += ipv6_optlen(hp);
4061 			break;
4062 		}
4063 		case IPPROTO_AH: {
4064 			struct ip_auth_hdr *hp;
4065 
4066 			err = skb_maybe_pull_tail(skb,
4067 						  off +
4068 						  sizeof(struct ip_auth_hdr),
4069 						  MAX_IPV6_HDR_LEN);
4070 			if (err < 0)
4071 				goto out;
4072 
4073 			hp = OPT_HDR(struct ip_auth_hdr, skb, off);
4074 			nexthdr = hp->nexthdr;
4075 			off += ipv6_authlen(hp);
4076 			break;
4077 		}
4078 		case IPPROTO_FRAGMENT: {
4079 			struct frag_hdr *hp;
4080 
4081 			err = skb_maybe_pull_tail(skb,
4082 						  off +
4083 						  sizeof(struct frag_hdr),
4084 						  MAX_IPV6_HDR_LEN);
4085 			if (err < 0)
4086 				goto out;
4087 
4088 			hp = OPT_HDR(struct frag_hdr, skb, off);
4089 
4090 			if (hp->frag_off & htons(IP6_OFFSET | IP6_MF))
4091 				fragment = true;
4092 
4093 			nexthdr = hp->nexthdr;
4094 			off += sizeof(struct frag_hdr);
4095 			break;
4096 		}
4097 		default:
4098 			done = true;
4099 			break;
4100 		}
4101 	}
4102 
4103 	err = -EPROTO;
4104 
4105 	if (!done || fragment)
4106 		goto out;
4107 
4108 	csum = skb_checksum_setup_ip(skb, nexthdr, off);
4109 	if (IS_ERR(csum))
4110 		return PTR_ERR(csum);
4111 
4112 	if (recalculate)
4113 		*csum = ~csum_ipv6_magic(&ipv6_hdr(skb)->saddr,
4114 					 &ipv6_hdr(skb)->daddr,
4115 					 skb->len - off, nexthdr, 0);
4116 	err = 0;
4117 
4118 out:
4119 	return err;
4120 }
4121 
4122 /**
4123  * skb_checksum_setup - set up partial checksum offset
4124  * @skb: the skb to set up
4125  * @recalculate: if true the pseudo-header checksum will be recalculated
4126  */
4127 int skb_checksum_setup(struct sk_buff *skb, bool recalculate)
4128 {
4129 	int err;
4130 
4131 	switch (skb->protocol) {
4132 	case htons(ETH_P_IP):
4133 		err = skb_checksum_setup_ipv4(skb, recalculate);
4134 		break;
4135 
4136 	case htons(ETH_P_IPV6):
4137 		err = skb_checksum_setup_ipv6(skb, recalculate);
4138 		break;
4139 
4140 	default:
4141 		err = -EPROTO;
4142 		break;
4143 	}
4144 
4145 	return err;
4146 }
4147 EXPORT_SYMBOL(skb_checksum_setup);
4148 
4149 /**
4150  * skb_checksum_maybe_trim - maybe trims the given skb
4151  * @skb: the skb to check
4152  * @transport_len: the data length beyond the network header
4153  *
4154  * Checks whether the given skb has data beyond the given transport length.
4155  * If so, returns a cloned skb trimmed to this transport length.
4156  * Otherwise returns the provided skb. Returns NULL in error cases
4157  * (e.g. transport_len exceeds skb length or out-of-memory).
4158  *
4159  * Caller needs to set the skb transport header and free any returned skb if it
4160  * differs from the provided skb.
4161  */
4162 static struct sk_buff *skb_checksum_maybe_trim(struct sk_buff *skb,
4163 					       unsigned int transport_len)
4164 {
4165 	struct sk_buff *skb_chk;
4166 	unsigned int len = skb_transport_offset(skb) + transport_len;
4167 	int ret;
4168 
4169 	if (skb->len < len)
4170 		return NULL;
4171 	else if (skb->len == len)
4172 		return skb;
4173 
4174 	skb_chk = skb_clone(skb, GFP_ATOMIC);
4175 	if (!skb_chk)
4176 		return NULL;
4177 
4178 	ret = pskb_trim_rcsum(skb_chk, len);
4179 	if (ret) {
4180 		kfree_skb(skb_chk);
4181 		return NULL;
4182 	}
4183 
4184 	return skb_chk;
4185 }
4186 
4187 /**
4188  * skb_checksum_trimmed - validate checksum of an skb
4189  * @skb: the skb to check
4190  * @transport_len: the data length beyond the network header
4191  * @skb_chkf: checksum function to use
4192  *
4193  * Applies the given checksum function skb_chkf to the provided skb.
4194  * Returns a checked and maybe trimmed skb. Returns NULL on error.
4195  *
4196  * If the skb has data beyond the given transport length, then a
4197  * trimmed & cloned skb is checked and returned.
4198  *
4199  * Caller needs to set the skb transport header and free any returned skb if it
4200  * differs from the provided skb.
4201  */
4202 struct sk_buff *skb_checksum_trimmed(struct sk_buff *skb,
4203 				     unsigned int transport_len,
4204 				     __sum16(*skb_chkf)(struct sk_buff *skb))
4205 {
4206 	struct sk_buff *skb_chk;
4207 	unsigned int offset = skb_transport_offset(skb);
4208 	__sum16 ret;
4209 
4210 	skb_chk = skb_checksum_maybe_trim(skb, transport_len);
4211 	if (!skb_chk)
4212 		goto err;
4213 
4214 	if (!pskb_may_pull(skb_chk, offset))
4215 		goto err;
4216 
4217 	skb_pull_rcsum(skb_chk, offset);
4218 	ret = skb_chkf(skb_chk);
4219 	skb_push_rcsum(skb_chk, offset);
4220 
4221 	if (ret)
4222 		goto err;
4223 
4224 	return skb_chk;
4225 
4226 err:
4227 	if (skb_chk && skb_chk != skb)
4228 		kfree_skb(skb_chk);
4229 
4230 	return NULL;
4231 
4232 }
4233 EXPORT_SYMBOL(skb_checksum_trimmed);
4234 
4235 void __skb_warn_lro_forwarding(const struct sk_buff *skb)
4236 {
4237 	net_warn_ratelimited("%s: received packets cannot be forwarded while LRO is enabled\n",
4238 			     skb->dev->name);
4239 }
4240 EXPORT_SYMBOL(__skb_warn_lro_forwarding);
4241 
4242 void kfree_skb_partial(struct sk_buff *skb, bool head_stolen)
4243 {
4244 	if (head_stolen) {
4245 		skb_release_head_state(skb);
4246 		kmem_cache_free(skbuff_head_cache, skb);
4247 	} else {
4248 		__kfree_skb(skb);
4249 	}
4250 }
4251 EXPORT_SYMBOL(kfree_skb_partial);
4252 
4253 /**
4254  * skb_try_coalesce - try to merge skb to prior one
4255  * @to: prior buffer
4256  * @from: buffer to add
4257  * @fragstolen: pointer to boolean
4258  * @delta_truesize: how much more was allocated than was requested
4259  */
4260 bool skb_try_coalesce(struct sk_buff *to, struct sk_buff *from,
4261 		      bool *fragstolen, int *delta_truesize)
4262 {
4263 	int i, delta, len = from->len;
4264 
4265 	*fragstolen = false;
4266 
4267 	if (skb_cloned(to))
4268 		return false;
4269 
4270 	if (len <= skb_tailroom(to)) {
4271 		if (len)
4272 			BUG_ON(skb_copy_bits(from, 0, skb_put(to, len), len));
4273 		*delta_truesize = 0;
4274 		return true;
4275 	}
4276 
4277 	if (skb_has_frag_list(to) || skb_has_frag_list(from))
4278 		return false;
4279 
4280 	if (skb_headlen(from) != 0) {
4281 		struct page *page;
4282 		unsigned int offset;
4283 
4284 		if (skb_shinfo(to)->nr_frags +
4285 		    skb_shinfo(from)->nr_frags >= MAX_SKB_FRAGS)
4286 			return false;
4287 
4288 		if (skb_head_is_locked(from))
4289 			return false;
4290 
4291 		delta = from->truesize - SKB_DATA_ALIGN(sizeof(struct sk_buff));
4292 
4293 		page = virt_to_head_page(from->head);
4294 		offset = from->data - (unsigned char *)page_address(page);
4295 
4296 		skb_fill_page_desc(to, skb_shinfo(to)->nr_frags,
4297 				   page, offset, skb_headlen(from));
4298 		*fragstolen = true;
4299 	} else {
4300 		if (skb_shinfo(to)->nr_frags +
4301 		    skb_shinfo(from)->nr_frags > MAX_SKB_FRAGS)
4302 			return false;
4303 
4304 		delta = from->truesize - SKB_TRUESIZE(skb_end_offset(from));
4305 	}
4306 
4307 	WARN_ON_ONCE(delta < len);
4308 
4309 	memcpy(skb_shinfo(to)->frags + skb_shinfo(to)->nr_frags,
4310 	       skb_shinfo(from)->frags,
4311 	       skb_shinfo(from)->nr_frags * sizeof(skb_frag_t));
4312 	skb_shinfo(to)->nr_frags += skb_shinfo(from)->nr_frags;
4313 
4314 	if (!skb_cloned(from))
4315 		skb_shinfo(from)->nr_frags = 0;
4316 
4317 	/* if the skb is not cloned this does nothing
4318 	 * since we set nr_frags to 0.
4319 	 */
4320 	for (i = 0; i < skb_shinfo(from)->nr_frags; i++)
4321 		skb_frag_ref(from, i);
4322 
4323 	to->truesize += delta;
4324 	to->len += len;
4325 	to->data_len += len;
4326 
4327 	*delta_truesize = delta;
4328 	return true;
4329 }
4330 EXPORT_SYMBOL(skb_try_coalesce);
4331 
4332 /**
4333  * skb_scrub_packet - scrub an skb
4334  *
4335  * @skb: buffer to clean
4336  * @xnet: packet is crossing netns
4337  *
4338  * skb_scrub_packet can be used after encapsulating or decapsulting a packet
4339  * into/from a tunnel. Some information have to be cleared during these
4340  * operations.
4341  * skb_scrub_packet can also be used to clean a skb before injecting it in
4342  * another namespace (@xnet == true). We have to clear all information in the
4343  * skb that could impact namespace isolation.
4344  */
4345 void skb_scrub_packet(struct sk_buff *skb, bool xnet)
4346 {
4347 	skb->tstamp.tv64 = 0;
4348 	skb->pkt_type = PACKET_HOST;
4349 	skb->skb_iif = 0;
4350 	skb->ignore_df = 0;
4351 	skb_dst_drop(skb);
4352 	secpath_reset(skb);
4353 	nf_reset(skb);
4354 	nf_reset_trace(skb);
4355 
4356 	if (!xnet)
4357 		return;
4358 
4359 	skb_orphan(skb);
4360 	skb->mark = 0;
4361 }
4362 EXPORT_SYMBOL_GPL(skb_scrub_packet);
4363 
4364 /**
4365  * skb_gso_transport_seglen - Return length of individual segments of a gso packet
4366  *
4367  * @skb: GSO skb
4368  *
4369  * skb_gso_transport_seglen is used to determine the real size of the
4370  * individual segments, including Layer4 headers (TCP/UDP).
4371  *
4372  * The MAC/L2 or network (IP, IPv6) headers are not accounted for.
4373  */
4374 unsigned int skb_gso_transport_seglen(const struct sk_buff *skb)
4375 {
4376 	const struct skb_shared_info *shinfo = skb_shinfo(skb);
4377 	unsigned int thlen = 0;
4378 
4379 	if (skb->encapsulation) {
4380 		thlen = skb_inner_transport_header(skb) -
4381 			skb_transport_header(skb);
4382 
4383 		if (likely(shinfo->gso_type & (SKB_GSO_TCPV4 | SKB_GSO_TCPV6)))
4384 			thlen += inner_tcp_hdrlen(skb);
4385 	} else if (likely(shinfo->gso_type & (SKB_GSO_TCPV4 | SKB_GSO_TCPV6))) {
4386 		thlen = tcp_hdrlen(skb);
4387 	} else if (unlikely(shinfo->gso_type & SKB_GSO_SCTP)) {
4388 		thlen = sizeof(struct sctphdr);
4389 	}
4390 	/* UFO sets gso_size to the size of the fragmentation
4391 	 * payload, i.e. the size of the L4 (UDP) header is already
4392 	 * accounted for.
4393 	 */
4394 	return thlen + shinfo->gso_size;
4395 }
4396 EXPORT_SYMBOL_GPL(skb_gso_transport_seglen);
4397 
4398 /**
4399  * skb_gso_validate_mtu - Return in case such skb fits a given MTU
4400  *
4401  * @skb: GSO skb
4402  * @mtu: MTU to validate against
4403  *
4404  * skb_gso_validate_mtu validates if a given skb will fit a wanted MTU
4405  * once split.
4406  */
4407 bool skb_gso_validate_mtu(const struct sk_buff *skb, unsigned int mtu)
4408 {
4409 	const struct skb_shared_info *shinfo = skb_shinfo(skb);
4410 	const struct sk_buff *iter;
4411 	unsigned int hlen;
4412 
4413 	hlen = skb_gso_network_seglen(skb);
4414 
4415 	if (shinfo->gso_size != GSO_BY_FRAGS)
4416 		return hlen <= mtu;
4417 
4418 	/* Undo this so we can re-use header sizes */
4419 	hlen -= GSO_BY_FRAGS;
4420 
4421 	skb_walk_frags(skb, iter) {
4422 		if (hlen + skb_headlen(iter) > mtu)
4423 			return false;
4424 	}
4425 
4426 	return true;
4427 }
4428 EXPORT_SYMBOL_GPL(skb_gso_validate_mtu);
4429 
4430 static struct sk_buff *skb_reorder_vlan_header(struct sk_buff *skb)
4431 {
4432 	if (skb_cow(skb, skb_headroom(skb)) < 0) {
4433 		kfree_skb(skb);
4434 		return NULL;
4435 	}
4436 
4437 	memmove(skb->data - ETH_HLEN, skb->data - skb->mac_len - VLAN_HLEN,
4438 		2 * ETH_ALEN);
4439 	skb->mac_header += VLAN_HLEN;
4440 	return skb;
4441 }
4442 
4443 struct sk_buff *skb_vlan_untag(struct sk_buff *skb)
4444 {
4445 	struct vlan_hdr *vhdr;
4446 	u16 vlan_tci;
4447 
4448 	if (unlikely(skb_vlan_tag_present(skb))) {
4449 		/* vlan_tci is already set-up so leave this for another time */
4450 		return skb;
4451 	}
4452 
4453 	skb = skb_share_check(skb, GFP_ATOMIC);
4454 	if (unlikely(!skb))
4455 		goto err_free;
4456 
4457 	if (unlikely(!pskb_may_pull(skb, VLAN_HLEN)))
4458 		goto err_free;
4459 
4460 	vhdr = (struct vlan_hdr *)skb->data;
4461 	vlan_tci = ntohs(vhdr->h_vlan_TCI);
4462 	__vlan_hwaccel_put_tag(skb, skb->protocol, vlan_tci);
4463 
4464 	skb_pull_rcsum(skb, VLAN_HLEN);
4465 	vlan_set_encap_proto(skb, vhdr);
4466 
4467 	skb = skb_reorder_vlan_header(skb);
4468 	if (unlikely(!skb))
4469 		goto err_free;
4470 
4471 	skb_reset_network_header(skb);
4472 	skb_reset_transport_header(skb);
4473 	skb_reset_mac_len(skb);
4474 
4475 	return skb;
4476 
4477 err_free:
4478 	kfree_skb(skb);
4479 	return NULL;
4480 }
4481 EXPORT_SYMBOL(skb_vlan_untag);
4482 
4483 int skb_ensure_writable(struct sk_buff *skb, int write_len)
4484 {
4485 	if (!pskb_may_pull(skb, write_len))
4486 		return -ENOMEM;
4487 
4488 	if (!skb_cloned(skb) || skb_clone_writable(skb, write_len))
4489 		return 0;
4490 
4491 	return pskb_expand_head(skb, 0, 0, GFP_ATOMIC);
4492 }
4493 EXPORT_SYMBOL(skb_ensure_writable);
4494 
4495 /* remove VLAN header from packet and update csum accordingly. */
4496 static int __skb_vlan_pop(struct sk_buff *skb, u16 *vlan_tci)
4497 {
4498 	struct vlan_hdr *vhdr;
4499 	unsigned int offset = skb->data - skb_mac_header(skb);
4500 	int err;
4501 
4502 	__skb_push(skb, offset);
4503 	err = skb_ensure_writable(skb, VLAN_ETH_HLEN);
4504 	if (unlikely(err))
4505 		goto pull;
4506 
4507 	skb_postpull_rcsum(skb, skb->data + (2 * ETH_ALEN), VLAN_HLEN);
4508 
4509 	vhdr = (struct vlan_hdr *)(skb->data + ETH_HLEN);
4510 	*vlan_tci = ntohs(vhdr->h_vlan_TCI);
4511 
4512 	memmove(skb->data + VLAN_HLEN, skb->data, 2 * ETH_ALEN);
4513 	__skb_pull(skb, VLAN_HLEN);
4514 
4515 	vlan_set_encap_proto(skb, vhdr);
4516 	skb->mac_header += VLAN_HLEN;
4517 
4518 	if (skb_network_offset(skb) < ETH_HLEN)
4519 		skb_set_network_header(skb, ETH_HLEN);
4520 
4521 	skb_reset_mac_len(skb);
4522 pull:
4523 	__skb_pull(skb, offset);
4524 
4525 	return err;
4526 }
4527 
4528 int skb_vlan_pop(struct sk_buff *skb)
4529 {
4530 	u16 vlan_tci;
4531 	__be16 vlan_proto;
4532 	int err;
4533 
4534 	if (likely(skb_vlan_tag_present(skb))) {
4535 		skb->vlan_tci = 0;
4536 	} else {
4537 		if (unlikely((skb->protocol != htons(ETH_P_8021Q) &&
4538 			      skb->protocol != htons(ETH_P_8021AD)) ||
4539 			     skb->len < VLAN_ETH_HLEN))
4540 			return 0;
4541 
4542 		err = __skb_vlan_pop(skb, &vlan_tci);
4543 		if (err)
4544 			return err;
4545 	}
4546 	/* move next vlan tag to hw accel tag */
4547 	if (likely((skb->protocol != htons(ETH_P_8021Q) &&
4548 		    skb->protocol != htons(ETH_P_8021AD)) ||
4549 		   skb->len < VLAN_ETH_HLEN))
4550 		return 0;
4551 
4552 	vlan_proto = skb->protocol;
4553 	err = __skb_vlan_pop(skb, &vlan_tci);
4554 	if (unlikely(err))
4555 		return err;
4556 
4557 	__vlan_hwaccel_put_tag(skb, vlan_proto, vlan_tci);
4558 	return 0;
4559 }
4560 EXPORT_SYMBOL(skb_vlan_pop);
4561 
4562 int skb_vlan_push(struct sk_buff *skb, __be16 vlan_proto, u16 vlan_tci)
4563 {
4564 	if (skb_vlan_tag_present(skb)) {
4565 		unsigned int offset = skb->data - skb_mac_header(skb);
4566 		int err;
4567 
4568 		/* __vlan_insert_tag expect skb->data pointing to mac header.
4569 		 * So change skb->data before calling it and change back to
4570 		 * original position later
4571 		 */
4572 		__skb_push(skb, offset);
4573 		err = __vlan_insert_tag(skb, skb->vlan_proto,
4574 					skb_vlan_tag_get(skb));
4575 		if (err) {
4576 			__skb_pull(skb, offset);
4577 			return err;
4578 		}
4579 
4580 		skb->protocol = skb->vlan_proto;
4581 		skb->mac_len += VLAN_HLEN;
4582 
4583 		skb_postpush_rcsum(skb, skb->data + (2 * ETH_ALEN), VLAN_HLEN);
4584 		__skb_pull(skb, offset);
4585 	}
4586 	__vlan_hwaccel_put_tag(skb, vlan_proto, vlan_tci);
4587 	return 0;
4588 }
4589 EXPORT_SYMBOL(skb_vlan_push);
4590 
4591 /**
4592  * alloc_skb_with_frags - allocate skb with page frags
4593  *
4594  * @header_len: size of linear part
4595  * @data_len: needed length in frags
4596  * @max_page_order: max page order desired.
4597  * @errcode: pointer to error code if any
4598  * @gfp_mask: allocation mask
4599  *
4600  * This can be used to allocate a paged skb, given a maximal order for frags.
4601  */
4602 struct sk_buff *alloc_skb_with_frags(unsigned long header_len,
4603 				     unsigned long data_len,
4604 				     int max_page_order,
4605 				     int *errcode,
4606 				     gfp_t gfp_mask)
4607 {
4608 	int npages = (data_len + (PAGE_SIZE - 1)) >> PAGE_SHIFT;
4609 	unsigned long chunk;
4610 	struct sk_buff *skb;
4611 	struct page *page;
4612 	gfp_t gfp_head;
4613 	int i;
4614 
4615 	*errcode = -EMSGSIZE;
4616 	/* Note this test could be relaxed, if we succeed to allocate
4617 	 * high order pages...
4618 	 */
4619 	if (npages > MAX_SKB_FRAGS)
4620 		return NULL;
4621 
4622 	gfp_head = gfp_mask;
4623 	if (gfp_head & __GFP_DIRECT_RECLAIM)
4624 		gfp_head |= __GFP_REPEAT;
4625 
4626 	*errcode = -ENOBUFS;
4627 	skb = alloc_skb(header_len, gfp_head);
4628 	if (!skb)
4629 		return NULL;
4630 
4631 	skb->truesize += npages << PAGE_SHIFT;
4632 
4633 	for (i = 0; npages > 0; i++) {
4634 		int order = max_page_order;
4635 
4636 		while (order) {
4637 			if (npages >= 1 << order) {
4638 				page = alloc_pages((gfp_mask & ~__GFP_DIRECT_RECLAIM) |
4639 						   __GFP_COMP |
4640 						   __GFP_NOWARN |
4641 						   __GFP_NORETRY,
4642 						   order);
4643 				if (page)
4644 					goto fill_page;
4645 				/* Do not retry other high order allocations */
4646 				order = 1;
4647 				max_page_order = 0;
4648 			}
4649 			order--;
4650 		}
4651 		page = alloc_page(gfp_mask);
4652 		if (!page)
4653 			goto failure;
4654 fill_page:
4655 		chunk = min_t(unsigned long, data_len,
4656 			      PAGE_SIZE << order);
4657 		skb_fill_page_desc(skb, i, page, 0, chunk);
4658 		data_len -= chunk;
4659 		npages -= 1 << order;
4660 	}
4661 	return skb;
4662 
4663 failure:
4664 	kfree_skb(skb);
4665 	return NULL;
4666 }
4667 EXPORT_SYMBOL(alloc_skb_with_frags);
4668 
4669 /* carve out the first off bytes from skb when off < headlen */
4670 static int pskb_carve_inside_header(struct sk_buff *skb, const u32 off,
4671 				    const int headlen, gfp_t gfp_mask)
4672 {
4673 	int i;
4674 	int size = skb_end_offset(skb);
4675 	int new_hlen = headlen - off;
4676 	u8 *data;
4677 
4678 	size = SKB_DATA_ALIGN(size);
4679 
4680 	if (skb_pfmemalloc(skb))
4681 		gfp_mask |= __GFP_MEMALLOC;
4682 	data = kmalloc_reserve(size +
4683 			       SKB_DATA_ALIGN(sizeof(struct skb_shared_info)),
4684 			       gfp_mask, NUMA_NO_NODE, NULL);
4685 	if (!data)
4686 		return -ENOMEM;
4687 
4688 	size = SKB_WITH_OVERHEAD(ksize(data));
4689 
4690 	/* Copy real data, and all frags */
4691 	skb_copy_from_linear_data_offset(skb, off, data, new_hlen);
4692 	skb->len -= off;
4693 
4694 	memcpy((struct skb_shared_info *)(data + size),
4695 	       skb_shinfo(skb),
4696 	       offsetof(struct skb_shared_info,
4697 			frags[skb_shinfo(skb)->nr_frags]));
4698 	if (skb_cloned(skb)) {
4699 		/* drop the old head gracefully */
4700 		if (skb_orphan_frags(skb, gfp_mask)) {
4701 			kfree(data);
4702 			return -ENOMEM;
4703 		}
4704 		for (i = 0; i < skb_shinfo(skb)->nr_frags; i++)
4705 			skb_frag_ref(skb, i);
4706 		if (skb_has_frag_list(skb))
4707 			skb_clone_fraglist(skb);
4708 		skb_release_data(skb);
4709 	} else {
4710 		/* we can reuse existing recount- all we did was
4711 		 * relocate values
4712 		 */
4713 		skb_free_head(skb);
4714 	}
4715 
4716 	skb->head = data;
4717 	skb->data = data;
4718 	skb->head_frag = 0;
4719 #ifdef NET_SKBUFF_DATA_USES_OFFSET
4720 	skb->end = size;
4721 #else
4722 	skb->end = skb->head + size;
4723 #endif
4724 	skb_set_tail_pointer(skb, skb_headlen(skb));
4725 	skb_headers_offset_update(skb, 0);
4726 	skb->cloned = 0;
4727 	skb->hdr_len = 0;
4728 	skb->nohdr = 0;
4729 	atomic_set(&skb_shinfo(skb)->dataref, 1);
4730 
4731 	return 0;
4732 }
4733 
4734 static int pskb_carve(struct sk_buff *skb, const u32 off, gfp_t gfp);
4735 
4736 /* carve out the first eat bytes from skb's frag_list. May recurse into
4737  * pskb_carve()
4738  */
4739 static int pskb_carve_frag_list(struct sk_buff *skb,
4740 				struct skb_shared_info *shinfo, int eat,
4741 				gfp_t gfp_mask)
4742 {
4743 	struct sk_buff *list = shinfo->frag_list;
4744 	struct sk_buff *clone = NULL;
4745 	struct sk_buff *insp = NULL;
4746 
4747 	do {
4748 		if (!list) {
4749 			pr_err("Not enough bytes to eat. Want %d\n", eat);
4750 			return -EFAULT;
4751 		}
4752 		if (list->len <= eat) {
4753 			/* Eaten as whole. */
4754 			eat -= list->len;
4755 			list = list->next;
4756 			insp = list;
4757 		} else {
4758 			/* Eaten partially. */
4759 			if (skb_shared(list)) {
4760 				clone = skb_clone(list, gfp_mask);
4761 				if (!clone)
4762 					return -ENOMEM;
4763 				insp = list->next;
4764 				list = clone;
4765 			} else {
4766 				/* This may be pulled without problems. */
4767 				insp = list;
4768 			}
4769 			if (pskb_carve(list, eat, gfp_mask) < 0) {
4770 				kfree_skb(clone);
4771 				return -ENOMEM;
4772 			}
4773 			break;
4774 		}
4775 	} while (eat);
4776 
4777 	/* Free pulled out fragments. */
4778 	while ((list = shinfo->frag_list) != insp) {
4779 		shinfo->frag_list = list->next;
4780 		kfree_skb(list);
4781 	}
4782 	/* And insert new clone at head. */
4783 	if (clone) {
4784 		clone->next = list;
4785 		shinfo->frag_list = clone;
4786 	}
4787 	return 0;
4788 }
4789 
4790 /* carve off first len bytes from skb. Split line (off) is in the
4791  * non-linear part of skb
4792  */
4793 static int pskb_carve_inside_nonlinear(struct sk_buff *skb, const u32 off,
4794 				       int pos, gfp_t gfp_mask)
4795 {
4796 	int i, k = 0;
4797 	int size = skb_end_offset(skb);
4798 	u8 *data;
4799 	const int nfrags = skb_shinfo(skb)->nr_frags;
4800 	struct skb_shared_info *shinfo;
4801 
4802 	size = SKB_DATA_ALIGN(size);
4803 
4804 	if (skb_pfmemalloc(skb))
4805 		gfp_mask |= __GFP_MEMALLOC;
4806 	data = kmalloc_reserve(size +
4807 			       SKB_DATA_ALIGN(sizeof(struct skb_shared_info)),
4808 			       gfp_mask, NUMA_NO_NODE, NULL);
4809 	if (!data)
4810 		return -ENOMEM;
4811 
4812 	size = SKB_WITH_OVERHEAD(ksize(data));
4813 
4814 	memcpy((struct skb_shared_info *)(data + size),
4815 	       skb_shinfo(skb), offsetof(struct skb_shared_info,
4816 					 frags[skb_shinfo(skb)->nr_frags]));
4817 	if (skb_orphan_frags(skb, gfp_mask)) {
4818 		kfree(data);
4819 		return -ENOMEM;
4820 	}
4821 	shinfo = (struct skb_shared_info *)(data + size);
4822 	for (i = 0; i < nfrags; i++) {
4823 		int fsize = skb_frag_size(&skb_shinfo(skb)->frags[i]);
4824 
4825 		if (pos + fsize > off) {
4826 			shinfo->frags[k] = skb_shinfo(skb)->frags[i];
4827 
4828 			if (pos < off) {
4829 				/* Split frag.
4830 				 * We have two variants in this case:
4831 				 * 1. Move all the frag to the second
4832 				 *    part, if it is possible. F.e.
4833 				 *    this approach is mandatory for TUX,
4834 				 *    where splitting is expensive.
4835 				 * 2. Split is accurately. We make this.
4836 				 */
4837 				shinfo->frags[0].page_offset += off - pos;
4838 				skb_frag_size_sub(&shinfo->frags[0], off - pos);
4839 			}
4840 			skb_frag_ref(skb, i);
4841 			k++;
4842 		}
4843 		pos += fsize;
4844 	}
4845 	shinfo->nr_frags = k;
4846 	if (skb_has_frag_list(skb))
4847 		skb_clone_fraglist(skb);
4848 
4849 	if (k == 0) {
4850 		/* split line is in frag list */
4851 		pskb_carve_frag_list(skb, shinfo, off - pos, gfp_mask);
4852 	}
4853 	skb_release_data(skb);
4854 
4855 	skb->head = data;
4856 	skb->head_frag = 0;
4857 	skb->data = data;
4858 #ifdef NET_SKBUFF_DATA_USES_OFFSET
4859 	skb->end = size;
4860 #else
4861 	skb->end = skb->head + size;
4862 #endif
4863 	skb_reset_tail_pointer(skb);
4864 	skb_headers_offset_update(skb, 0);
4865 	skb->cloned   = 0;
4866 	skb->hdr_len  = 0;
4867 	skb->nohdr    = 0;
4868 	skb->len -= off;
4869 	skb->data_len = skb->len;
4870 	atomic_set(&skb_shinfo(skb)->dataref, 1);
4871 	return 0;
4872 }
4873 
4874 /* remove len bytes from the beginning of the skb */
4875 static int pskb_carve(struct sk_buff *skb, const u32 len, gfp_t gfp)
4876 {
4877 	int headlen = skb_headlen(skb);
4878 
4879 	if (len < headlen)
4880 		return pskb_carve_inside_header(skb, len, headlen, gfp);
4881 	else
4882 		return pskb_carve_inside_nonlinear(skb, len, headlen, gfp);
4883 }
4884 
4885 /* Extract to_copy bytes starting at off from skb, and return this in
4886  * a new skb
4887  */
4888 struct sk_buff *pskb_extract(struct sk_buff *skb, int off,
4889 			     int to_copy, gfp_t gfp)
4890 {
4891 	struct sk_buff  *clone = skb_clone(skb, gfp);
4892 
4893 	if (!clone)
4894 		return NULL;
4895 
4896 	if (pskb_carve(clone, off, gfp) < 0 ||
4897 	    pskb_trim(clone, to_copy)) {
4898 		kfree_skb(clone);
4899 		return NULL;
4900 	}
4901 	return clone;
4902 }
4903 EXPORT_SYMBOL(pskb_extract);
4904