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Fix build issue in IPv4.
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772db4bb 1/** @file\r
3e8c18da 2 IP4 input process.\r
3 \r
e5eed7d3
HT
4Copyright (c) 2005 - 2010, Intel Corporation. All rights reserved.<BR>\r
5This program and the accompanying materials\r
772db4bb 6are licensed and made available under the terms and conditions of the BSD License\r
7which accompanies this distribution. The full text of the license may be found at\r
8http://opensource.org/licenses/bsd-license.php\r
9\r
10THE PROGRAM IS DISTRIBUTED UNDER THE BSD LICENSE ON AN "AS IS" BASIS,\r
11WITHOUT WARRANTIES OR REPRESENTATIONS OF ANY KIND, EITHER EXPRESS OR IMPLIED.\r
12\r
772db4bb 13**/\r
14\r
15#include "Ip4Impl.h"\r
16\r
17\r
18/**\r
96e1079f 19 Create an empty assemble entry for the packet identified by\r
772db4bb 20 (Dst, Src, Id, Protocol). The default life for the packet is\r
21 120 seconds.\r
22\r
3e8c18da 23 @param[in] Dst The destination address\r
24 @param[in] Src The source address\r
25 @param[in] Id The ID field in IP header\r
26 @param[in] Protocol The protocol field in IP header\r
772db4bb 27\r
28 @return NULL if failed to allocate memory for the entry, otherwise\r
3e8c18da 29 the point to just created reassemble entry.\r
772db4bb 30\r
31**/\r
772db4bb 32IP4_ASSEMBLE_ENTRY *\r
33Ip4CreateAssembleEntry (\r
34 IN IP4_ADDR Dst,\r
35 IN IP4_ADDR Src,\r
36 IN UINT16 Id,\r
37 IN UINT8 Protocol\r
38 )\r
39{\r
40\r
41 IP4_ASSEMBLE_ENTRY *Assemble;\r
42\r
e48e37fc 43 Assemble = AllocatePool (sizeof (IP4_ASSEMBLE_ENTRY));\r
772db4bb 44\r
45 if (Assemble == NULL) {\r
46 return NULL;\r
47 }\r
48\r
e48e37fc 49 InitializeListHead (&Assemble->Link);\r
50 InitializeListHead (&Assemble->Fragments);\r
772db4bb 51\r
52 Assemble->Dst = Dst;\r
53 Assemble->Src = Src;\r
54 Assemble->Id = Id;\r
55 Assemble->Protocol = Protocol;\r
56 Assemble->TotalLen = 0;\r
57 Assemble->CurLen = 0;\r
58 Assemble->Head = NULL;\r
59 Assemble->Info = NULL;\r
60 Assemble->Life = IP4_FRAGMENT_LIFE;\r
61\r
62 return Assemble;\r
63}\r
64\r
65\r
66/**\r
96e1079f 67 Release all the fragments of a packet, then free the assemble entry.\r
772db4bb 68\r
3e8c18da 69 @param[in] Assemble The assemble entry to free\r
772db4bb 70\r
71**/\r
772db4bb 72VOID\r
73Ip4FreeAssembleEntry (\r
74 IN IP4_ASSEMBLE_ENTRY *Assemble\r
75 )\r
76{\r
e48e37fc 77 LIST_ENTRY *Entry;\r
78 LIST_ENTRY *Next;\r
772db4bb 79 NET_BUF *Fragment;\r
80\r
81 NET_LIST_FOR_EACH_SAFE (Entry, Next, &Assemble->Fragments) {\r
82 Fragment = NET_LIST_USER_STRUCT (Entry, NET_BUF, List);\r
83\r
e48e37fc 84 RemoveEntryList (Entry);\r
772db4bb 85 NetbufFree (Fragment);\r
86 }\r
87\r
766c7483 88 FreePool (Assemble);\r
772db4bb 89}\r
90\r
91\r
92/**\r
93 Initialize an already allocated assemble table. This is generally\r
94 the assemble table embedded in the IP4 service instance.\r
95\r
3e8c18da 96 @param[in, out] Table The assemble table to initialize.\r
772db4bb 97\r
98**/\r
99VOID\r
100Ip4InitAssembleTable (\r
96e1079f 101 IN OUT IP4_ASSEMBLE_TABLE *Table\r
772db4bb 102 )\r
103{\r
104 UINT32 Index;\r
105\r
106 for (Index = 0; Index < IP4_ASSEMLE_HASH_SIZE; Index++) {\r
e48e37fc 107 InitializeListHead (&Table->Bucket[Index]);\r
772db4bb 108 }\r
109}\r
110\r
111\r
112/**\r
113 Clean up the assemble table: remove all the fragments\r
114 and assemble entries.\r
115\r
3e8c18da 116 @param[in] Table The assemble table to clean up\r
772db4bb 117\r
118**/\r
119VOID\r
120Ip4CleanAssembleTable (\r
121 IN IP4_ASSEMBLE_TABLE *Table\r
122 )\r
123{\r
e48e37fc 124 LIST_ENTRY *Entry;\r
125 LIST_ENTRY *Next;\r
772db4bb 126 IP4_ASSEMBLE_ENTRY *Assemble;\r
127 UINT32 Index;\r
128\r
129 for (Index = 0; Index < IP4_ASSEMLE_HASH_SIZE; Index++) {\r
130 NET_LIST_FOR_EACH_SAFE (Entry, Next, &Table->Bucket[Index]) {\r
131 Assemble = NET_LIST_USER_STRUCT (Entry, IP4_ASSEMBLE_ENTRY, Link);\r
132\r
e48e37fc 133 RemoveEntryList (Entry);\r
772db4bb 134 Ip4FreeAssembleEntry (Assemble);\r
135 }\r
136 }\r
137}\r
138\r
139\r
140/**\r
141 Trim the packet to fit in [Start, End), and update the per\r
142 packet information.\r
143\r
144 @param Packet Packet to trim\r
145 @param Start The sequence of the first byte to fit in\r
146 @param End One beyond the sequence of last byte to fit in.\r
147\r
772db4bb 148**/\r
772db4bb 149VOID\r
150Ip4TrimPacket (\r
96e1079f 151 IN OUT NET_BUF *Packet,\r
152 IN INTN Start,\r
153 IN INTN End\r
772db4bb 154 )\r
155{\r
156 IP4_CLIP_INFO *Info;\r
157 INTN Len;\r
158\r
159 Info = IP4_GET_CLIP_INFO (Packet);\r
160\r
161 ASSERT (Info->Start + Info->Length == Info->End);\r
162 ASSERT ((Info->Start < End) && (Start < Info->End));\r
163\r
164 if (Info->Start < Start) {\r
165 Len = Start - Info->Start;\r
166\r
167 NetbufTrim (Packet, (UINT32) Len, NET_BUF_HEAD);\r
168 Info->Start = Start;\r
169 Info->Length -= Len;\r
170 }\r
171\r
172 if (End < Info->End) {\r
173 Len = End - Info->End;\r
174\r
175 NetbufTrim (Packet, (UINT32) Len, NET_BUF_TAIL);\r
176 Info->End = End;\r
177 Info->Length -= Len;\r
178 }\r
179}\r
180\r
181\r
182/**\r
183 Release all the fragments of the packet. This is the callback for\r
184 the assembled packet's OnFree. It will free the assemble entry,\r
185 which in turn will free all the fragments of the packet.\r
186\r
3e8c18da 187 @param[in] Arg The assemble entry to free\r
772db4bb 188\r
189**/\r
772db4bb 190VOID\r
e798cd87 191EFIAPI\r
772db4bb 192Ip4OnFreeFragments (\r
193 IN VOID *Arg\r
194 )\r
195{\r
196 Ip4FreeAssembleEntry ((IP4_ASSEMBLE_ENTRY *) Arg);\r
197}\r
198\r
199\r
200/**\r
201 Reassemble the IP fragments. If all the fragments of the packet\r
202 have been received, it will wrap the packet in a net buffer then\r
203 return it to caller. If the packet can't be assembled, NULL is\r
204 return.\r
205\r
96e1079f 206 @param Table The assemble table used. New assemble entry will be created\r
207 if the Packet is from a new chain of fragments.\r
208 @param Packet The fragment to assemble. It might be freed if the fragment\r
209 can't be re-assembled.\r
772db4bb 210\r
211 @return NULL if the packet can't be reassemble. The point to just assembled\r
96e1079f 212 packet if all the fragments of the packet have arrived.\r
772db4bb 213\r
214**/\r
772db4bb 215NET_BUF *\r
216Ip4Reassemble (\r
96e1079f 217 IN OUT IP4_ASSEMBLE_TABLE *Table,\r
218 IN OUT NET_BUF *Packet\r
772db4bb 219 )\r
220{\r
221 IP4_HEAD *IpHead;\r
222 IP4_CLIP_INFO *This;\r
223 IP4_CLIP_INFO *Node;\r
224 IP4_ASSEMBLE_ENTRY *Assemble;\r
e48e37fc 225 LIST_ENTRY *Head;\r
226 LIST_ENTRY *Prev;\r
227 LIST_ENTRY *Cur;\r
772db4bb 228 NET_BUF *Fragment;\r
229 NET_BUF *NewPacket;\r
230 INTN Index;\r
231\r
f6b7393c 232 IpHead = Packet->Ip.Ip4;\r
772db4bb 233 This = IP4_GET_CLIP_INFO (Packet);\r
234\r
235 ASSERT (IpHead != NULL);\r
236\r
237 //\r
238 // First: find the related assemble entry\r
239 //\r
240 Assemble = NULL;\r
241 Index = IP4_ASSEMBLE_HASH (IpHead->Dst, IpHead->Src, IpHead->Id, IpHead->Protocol);\r
242\r
243 NET_LIST_FOR_EACH (Cur, &Table->Bucket[Index]) {\r
244 Assemble = NET_LIST_USER_STRUCT (Cur, IP4_ASSEMBLE_ENTRY, Link);\r
245\r
246 if ((Assemble->Dst == IpHead->Dst) && (Assemble->Src == IpHead->Src) &&\r
247 (Assemble->Id == IpHead->Id) && (Assemble->Protocol == IpHead->Protocol)) {\r
248 break;\r
249 }\r
250 }\r
251\r
252 //\r
253 // Create a new assemble entry if no assemble entry is related to this packet\r
254 //\r
255 if (Cur == &Table->Bucket[Index]) {\r
256 Assemble = Ip4CreateAssembleEntry (\r
257 IpHead->Dst,\r
258 IpHead->Src,\r
259 IpHead->Id,\r
260 IpHead->Protocol\r
261 );\r
262\r
263 if (Assemble == NULL) {\r
264 goto DROP;\r
265 }\r
266\r
e48e37fc 267 InsertHeadList (&Table->Bucket[Index], &Assemble->Link);\r
772db4bb 268 }\r
894d038a 269 //\r
270 // Assemble shouldn't be NULL here\r
271 //\r
272 ASSERT (Assemble != NULL);\r
772db4bb 273\r
274 //\r
275 // Find the point to insert the packet: before the first\r
276 // fragment with THIS.Start < CUR.Start. the previous one\r
277 // has PREV.Start <= THIS.Start < CUR.Start.\r
278 //\r
279 Head = &Assemble->Fragments;\r
280\r
281 NET_LIST_FOR_EACH (Cur, Head) {\r
282 Fragment = NET_LIST_USER_STRUCT (Cur, NET_BUF, List);\r
283\r
284 if (This->Start < IP4_GET_CLIP_INFO (Fragment)->Start) {\r
285 break;\r
286 }\r
287 }\r
288\r
289 //\r
290 // Check whether the current fragment overlaps with the previous one.\r
291 // It holds that: PREV.Start <= THIS.Start < THIS.End. Only need to\r
292 // check whether THIS.Start < PREV.End for overlap. If two fragments\r
293 // overlaps, trim the overlapped part off THIS fragment.\r
294 //\r
a167ecb1 295 if ((Cur != Head) && ((Prev = Cur->BackLink) != Head)) {\r
772db4bb 296 Fragment = NET_LIST_USER_STRUCT (Prev, NET_BUF, List);\r
297 Node = IP4_GET_CLIP_INFO (Fragment);\r
298\r
299 if (This->Start < Node->End) {\r
300 if (This->End <= Node->End) {\r
301 NetbufFree (Packet);\r
302 return NULL;\r
303 }\r
304\r
305 Ip4TrimPacket (Packet, Node->End, This->End);\r
306 }\r
307 }\r
308\r
309 //\r
310 // Insert the fragment into the packet. The fragment may be removed\r
311 // from the list by the following checks.\r
312 //\r
313 NetListInsertBefore (Cur, &Packet->List);\r
314\r
315 //\r
316 // Check the packets after the insert point. It holds that:\r
317 // THIS.Start <= NODE.Start < NODE.End. The equality holds\r
318 // if PREV and NEXT are continuous. THIS fragment may fill\r
319 // several holes. Remove the completely overlapped fragments\r
320 //\r
321 while (Cur != Head) {\r
322 Fragment = NET_LIST_USER_STRUCT (Cur, NET_BUF, List);\r
323 Node = IP4_GET_CLIP_INFO (Fragment);\r
324\r
325 //\r
326 // Remove fragments completely overlapped by this fragment\r
327 //\r
328 if (Node->End <= This->End) {\r
329 Cur = Cur->ForwardLink;\r
330\r
e48e37fc 331 RemoveEntryList (&Fragment->List);\r
772db4bb 332 Assemble->CurLen -= Node->Length;\r
333\r
334 NetbufFree (Fragment);\r
335 continue;\r
336 }\r
337\r
338 //\r
339 // The conditions are: THIS.Start <= NODE.Start, and THIS.End <\r
340 // NODE.End. Two fragments overlaps if NODE.Start < THIS.End.\r
341 // If two fragments start at the same offset, remove THIS fragment\r
342 // because ((THIS.Start == NODE.Start) && (THIS.End < NODE.End)).\r
343 //\r
344 if (Node->Start < This->End) {\r
345 if (This->Start == Node->Start) {\r
e48e37fc 346 RemoveEntryList (&Packet->List);\r
772db4bb 347 goto DROP;\r
348 }\r
349\r
350 Ip4TrimPacket (Packet, This->Start, Node->Start);\r
351 }\r
352\r
353 break;\r
354 }\r
355\r
356 //\r
357 // Update the assemble info: increase the current length. If it is\r
358 // the frist fragment, update the packet's IP head and per packet\r
359 // info. If it is the last fragment, update the total length.\r
360 //\r
361 Assemble->CurLen += This->Length;\r
362\r
363 if (This->Start == 0) {\r
364 //\r
365 // Once the first fragment is enqueued, it can't be removed\r
366 // from the fragment list. So, Assemble->Head always point\r
367 // to valid memory area.\r
368 //\r
369 ASSERT (Assemble->Head == NULL);\r
370\r
371 Assemble->Head = IpHead;\r
372 Assemble->Info = IP4_GET_CLIP_INFO (Packet);\r
373 }\r
374\r
375 //\r
376 // Don't update the length more than once.\r
377 //\r
378 if (IP4_LAST_FRAGMENT (IpHead->Fragment) && (Assemble->TotalLen == 0)) {\r
379 Assemble->TotalLen = This->End;\r
380 }\r
381\r
382 //\r
383 // Deliver the whole packet if all the fragments received.\r
384 // All fragments received if:\r
96e1079f 385 // 1. received the last one, so, the total length is know\r
772db4bb 386 // 2. received all the data. If the last fragment on the\r
387 // queue ends at the total length, all data is received.\r
388 //\r
389 if ((Assemble->TotalLen != 0) && (Assemble->CurLen >= Assemble->TotalLen)) {\r
390\r
e48e37fc 391 RemoveEntryList (&Assemble->Link);\r
772db4bb 392\r
393 //\r
394 // If the packet is properly formated, the last fragment's End\r
395 // equals to the packet's total length. Otherwise, the packet\r
396 // is a fake, drop it now.\r
397 //\r
398 Fragment = NET_LIST_USER_STRUCT (Head->BackLink, NET_BUF, List);\r
399\r
400 if (IP4_GET_CLIP_INFO (Fragment)->End != Assemble->TotalLen) {\r
401 Ip4FreeAssembleEntry (Assemble);\r
402 return NULL;\r
403 }\r
404\r
405 //\r
406 // Wrap the packet in a net buffer then deliver it up\r
407 //\r
408 NewPacket = NetbufFromBufList (\r
409 &Assemble->Fragments,\r
410 0,\r
411 0,\r
412 Ip4OnFreeFragments,\r
413 Assemble\r
414 );\r
415\r
416 if (NewPacket == NULL) {\r
417 Ip4FreeAssembleEntry (Assemble);\r
418 return NULL;\r
419 }\r
420\r
f6b7393c 421 NewPacket->Ip.Ip4 = Assemble->Head;\r
687a2e5f 422 CopyMem (IP4_GET_CLIP_INFO (NewPacket), Assemble->Info, sizeof (*IP4_GET_CLIP_INFO (NewPacket)));\r
772db4bb 423 return NewPacket;\r
424 }\r
425\r
426 return NULL;\r
427\r
428DROP:\r
429 NetbufFree (Packet);\r
430 return NULL;\r
431}\r
432\r
a1503a32 433/**\r
434 The callback function for the net buffer which wraps the packet processed by \r
435 IPsec. It releases the wrap packet and also signals IPsec to free the resources. \r
436\r
437 @param[in] Arg The wrap context\r
438\r
439**/\r
440VOID\r
e798cd87 441EFIAPI\r
a1503a32 442Ip4IpSecFree (\r
443 IN VOID *Arg\r
444 )\r
445{\r
446 IP4_IPSEC_WRAP *Wrap;\r
447\r
448 Wrap = (IP4_IPSEC_WRAP *) Arg;\r
449\r
450 if (Wrap->IpSecRecycleSignal != NULL) {\r
451 gBS->SignalEvent (Wrap->IpSecRecycleSignal);\r
452 }\r
453\r
454 NetbufFree (Wrap->Packet);\r
455\r
456 FreePool (Wrap);\r
457\r
458 return;\r
459}\r
460\r
461/**\r
462 The work function to locate IPsec protocol to process the inbound or \r
463 outbound IP packets. The process routine handls the packet with following\r
464 actions: bypass the packet, discard the packet, or protect the packet. \r
465\r
705f53a9 466 @param[in] IpSb The IP4 service instance.\r
467 @param[in, out] Head The The caller supplied IP4 header.\r
468 @param[in, out] Netbuf The IP4 packet to be processed by IPsec.\r
469 @param[in, out] Options The caller supplied options.\r
470 @param[in, out] OptionsLen The length of the option.\r
a1503a32 471 @param[in] Direction The directionality in an SPD entry, \r
705f53a9 472 EfiIPsecInBound or EfiIPsecOutBound.\r
473 @param[in] Context The token's wrap.\r
a1503a32 474\r
475 @retval EFI_SUCCESS The IPsec protocol is not available or disabled.\r
476 @retval EFI_SUCCESS The packet was bypassed and all buffers remain the same.\r
477 @retval EFI_SUCCESS The packet was protected.\r
478 @retval EFI_ACCESS_DENIED The packet was discarded. \r
479 @retval EFI_OUT_OF_RESOURCES There is no suffcient resource to complete the operation.\r
480 @retval EFI_BUFFER_TOO_SMALL The number of non-empty block is bigger than the \r
481 number of input data blocks when build a fragment table.\r
482\r
483**/\r
484EFI_STATUS\r
485Ip4IpSecProcessPacket (\r
705f53a9 486 IN IP4_SERVICE *IpSb,\r
487 IN OUT IP4_HEAD **Head,\r
488 IN OUT NET_BUF **Netbuf,\r
489 IN OUT UINT8 **Options,\r
490 IN OUT UINT32 *OptionsLen,\r
491 IN EFI_IPSEC_TRAFFIC_DIR Direction,\r
492 IN VOID *Context\r
a1503a32 493 )\r
494{\r
495 NET_FRAGMENT *FragmentTable;\r
705f53a9 496 NET_FRAGMENT *OriginalFragmentTable;\r
a1503a32 497 UINT32 FragmentCount;\r
705f53a9 498 UINT32 OriginalFragmentCount;\r
a1503a32 499 EFI_EVENT RecycleEvent;\r
500 NET_BUF *Packet;\r
501 IP4_TXTOKEN_WRAP *TxWrap;\r
502 IP4_IPSEC_WRAP *IpSecWrap;\r
503 EFI_STATUS Status;\r
705f53a9 504 IP4_HEAD ZeroHead;\r
a1503a32 505\r
506 Status = EFI_SUCCESS;\r
507 Packet = *Netbuf;\r
508 RecycleEvent = NULL;\r
509 IpSecWrap = NULL;\r
510 FragmentTable = NULL;\r
511 TxWrap = (IP4_TXTOKEN_WRAP *) Context; \r
512 FragmentCount = Packet->BlockOpNum;\r
705f53a9 513\r
514 ZeroMem (&ZeroHead, sizeof (IP4_HEAD));\r
a1503a32 515 \r
516 if (mIpSec == NULL) {\r
517 gBS->LocateProtocol (&gEfiIpSecProtocolGuid, NULL, (VOID **) &mIpSec);\r
9e375eb1 518 if (mIpSec == NULL) {\r
519 goto ON_EXIT;\r
a1503a32 520 }\r
521 }\r
522\r
a1503a32 523 //\r
524 // Check whether the IPsec enable variable is set.\r
525 //\r
526 if (mIpSec->DisabledFlag) {\r
527 //\r
528 // If IPsec is disabled, restore the original MTU\r
529 // \r
530 IpSb->MaxPacketSize = IpSb->OldMaxPacketSize;\r
531 goto ON_EXIT;\r
532 } else {\r
533 //\r
534 // If IPsec is enabled, use the MTU which reduce the IPsec header length. \r
535 //\r
536 IpSb->MaxPacketSize = IpSb->OldMaxPacketSize - IP4_MAX_IPSEC_HEADLEN; \r
537 }\r
538\r
539 //\r
540 // Rebuild fragment table from netbuf to ease IPsec process.\r
541 //\r
542 FragmentTable = AllocateZeroPool (FragmentCount * sizeof (NET_FRAGMENT));\r
543\r
544 if (FragmentTable == NULL) {\r
545 Status = EFI_OUT_OF_RESOURCES;\r
546 goto ON_EXIT;\r
547 }\r
548 \r
549 Status = NetbufBuildExt (Packet, FragmentTable, &FragmentCount);\r
705f53a9 550 \r
551 //\r
552 // Record the original FragmentTable and count.\r
553 //\r
554 OriginalFragmentTable = FragmentTable;\r
555 OriginalFragmentCount = FragmentCount;\r
a1503a32 556\r
557 if (EFI_ERROR (Status)) {\r
558 FreePool (FragmentTable);\r
559 goto ON_EXIT;\r
560 }\r
561\r
562 //\r
563 // Convert host byte order to network byte order\r
564 //\r
705f53a9 565 Ip4NtohHead (*Head);\r
a1503a32 566 \r
705f53a9 567 Status = mIpSec->ProcessExt (\r
a1503a32 568 mIpSec,\r
569 IpSb->Controller,\r
570 IP_VERSION_4,\r
705f53a9 571 (VOID *) (*Head),\r
572 &(*Head)->Protocol,\r
da7ff698 573 (VOID **) Options,\r
705f53a9 574 OptionsLen,\r
a1503a32 575 (EFI_IPSEC_FRAGMENT_DATA **) (&FragmentTable),\r
576 &FragmentCount,\r
577 Direction,\r
578 &RecycleEvent\r
579 );\r
580 //\r
581 // Convert back to host byte order\r
582 //\r
705f53a9 583 Ip4NtohHead (*Head);\r
a1503a32 584 \r
585 if (EFI_ERROR (Status)) {\r
586 goto ON_EXIT;\r
587 }\r
588\r
705f53a9 589 if (OriginalFragmentTable == FragmentTable && OriginalFragmentCount == FragmentCount) {\r
590 goto ON_EXIT;\r
591 }\r
592\r
a1503a32 593 if (Direction == EfiIPsecOutBound && TxWrap != NULL) {\r
594 \r
595 TxWrap->IpSecRecycleSignal = RecycleEvent;\r
596 TxWrap->Packet = NetbufFromExt (\r
597 FragmentTable,\r
598 FragmentCount,\r
599 IP4_MAX_HEADLEN,\r
600 0,\r
601 Ip4FreeTxToken,\r
602 TxWrap\r
603 );\r
604 if (TxWrap->Packet == NULL) {\r
605 Status = EFI_OUT_OF_RESOURCES;\r
606 goto ON_EXIT;\r
607 }\r
608\r
705f53a9 609 //\r
610 // Free orginal Netbuf.\r
611 //\r
612 NetIpSecNetbufFree (*Netbuf);\r
a1503a32 613 *Netbuf = TxWrap->Packet;\r
614 \r
615 } else {\r
616 \r
617 IpSecWrap = AllocateZeroPool (sizeof (IP4_IPSEC_WRAP));\r
618 \r
619 if (IpSecWrap == NULL) {\r
620 goto ON_EXIT;\r
621 }\r
622 \r
623 IpSecWrap->IpSecRecycleSignal = RecycleEvent;\r
624 IpSecWrap->Packet = Packet;\r
625 Packet = NetbufFromExt (\r
626 FragmentTable, \r
627 FragmentCount, \r
628 IP4_MAX_HEADLEN, \r
629 0, \r
630 Ip4IpSecFree, \r
631 IpSecWrap\r
632 );\r
633 \r
634 if (Packet == NULL) {\r
635 Status = EFI_OUT_OF_RESOURCES;\r
636 goto ON_EXIT;\r
637 }\r
638\r
705f53a9 639 if (Direction == EfiIPsecInBound && 0 != CompareMem (*Head, &ZeroHead, sizeof (IP4_HEAD))) {\r
640 Ip4PrependHead (Packet, *Head, *Options, *OptionsLen);\r
a1503a32 641 Ip4NtohHead (Packet->Ip.Ip4);\r
705f53a9 642 NetbufTrim (Packet, ((*Head)->HeadLen << 2), TRUE);\r
a1503a32 643\r
644 CopyMem (\r
645 IP4_GET_CLIP_INFO (Packet),\r
646 IP4_GET_CLIP_INFO (IpSecWrap->Packet),\r
647 sizeof (IP4_CLIP_INFO)\r
648 );\r
649 }\r
a1503a32 650 *Netbuf = Packet;\r
651 }\r
652\r
653ON_EXIT:\r
654 return Status;\r
655}\r
772db4bb 656\r
657/**\r
705f53a9 658 Pre-process the IPv4 packet. First validates the IPv4 packet, and\r
659 then reassembles packet if it is necessary.\r
660 \r
661 @param[in] IpSb Pointer to IP4_SERVICE.\r
662 @param[in, out] Packet Pointer to the Packet to be processed.\r
663 @param[in] Head Pointer to the IP4_HEAD.\r
664 @param[in] Option Pointer to a buffer which contains the IPv4 option.\r
665 @param[in] OptionLen The length of Option in bytes.\r
666 @param[in] Flag The link layer flag for the packet received, such\r
667 as multicast.\r
772db4bb 668\r
705f53a9 669 @retval EFI_SEUCCESS The recieved packet is in well form.\r
670 @retval EFI_INVAILD_PARAMETER The recieved packet is malformed. \r
772db4bb 671\r
672**/\r
705f53a9 673EFI_STATUS\r
674Ip4PreProcessPacket (\r
675 IN IP4_SERVICE *IpSb,\r
676 IN OUT NET_BUF **Packet,\r
677 IN IP4_HEAD *Head,\r
678 IN UINT8 *Option,\r
679 IN UINT32 OptionLen, \r
680 IN UINT32 Flag\r
681 ) \r
772db4bb 682{\r
772db4bb 683 IP4_CLIP_INFO *Info;\r
772db4bb 684 UINT32 HeadLen;\r
772db4bb 685 UINT32 TotalLen;\r
686 UINT16 Checksum;\r
772db4bb 687\r
688 //\r
96e1079f 689 // Check that the IP4 header is correctly formatted\r
772db4bb 690 //\r
705f53a9 691 if ((*Packet)->TotalSize < IP4_MIN_HEADLEN) {\r
692 return EFI_INVALID_PARAMETER;\r
772db4bb 693 }\r
705f53a9 694 \r
772db4bb 695 HeadLen = (Head->HeadLen << 2);\r
696 TotalLen = NTOHS (Head->TotalLen);\r
697\r
698 //\r
699 // Mnp may deliver frame trailer sequence up, trim it off.\r
700 //\r
705f53a9 701 if (TotalLen < (*Packet)->TotalSize) {\r
702 NetbufTrim (*Packet, (*Packet)->TotalSize - TotalLen, FALSE);\r
772db4bb 703 }\r
704\r
705 if ((Head->Ver != 4) || (HeadLen < IP4_MIN_HEADLEN) ||\r
705f53a9 706 (TotalLen < HeadLen) || (TotalLen != (*Packet)->TotalSize)) {\r
707 return EFI_INVALID_PARAMETER;\r
772db4bb 708 }\r
709\r
710 //\r
711 // Some OS may send IP packets without checksum.\r
712 //\r
687a2e5f 713 Checksum = (UINT16) (~NetblockChecksum ((UINT8 *) Head, HeadLen));\r
772db4bb 714\r
715 if ((Head->Checksum != 0) && (Checksum != 0)) {\r
705f53a9 716 return EFI_INVALID_PARAMETER;\r
772db4bb 717 }\r
718\r
719 //\r
720 // Convert the IP header to host byte order, then get the per packet info.\r
721 //\r
705f53a9 722 (*Packet)->Ip.Ip4 = Ip4NtohHead (Head);\r
772db4bb 723\r
705f53a9 724 Info = IP4_GET_CLIP_INFO (*Packet);\r
772db4bb 725 Info->LinkFlag = Flag;\r
726 Info->CastType = Ip4GetHostCast (IpSb, Head->Dst, Head->Src);\r
727 Info->Start = (Head->Fragment & IP4_HEAD_OFFSET_MASK) << 3;\r
728 Info->Length = Head->TotalLen - HeadLen;\r
729 Info->End = Info->Start + Info->Length;\r
730 Info->Status = EFI_SUCCESS;\r
731\r
732 //\r
733 // The packet is destinated to us if the CastType is non-zero.\r
734 //\r
735 if ((Info->CastType == 0) || (Info->End > IP4_MAX_PACKET_SIZE)) {\r
705f53a9 736 return EFI_INVALID_PARAMETER;\r
772db4bb 737 }\r
738\r
739 //\r
740 // Validate the options. Don't call the Ip4OptionIsValid if\r
741 // there is no option to save some CPU process.\r
742 //\r
705f53a9 743 \r
744 if ((OptionLen > 0) && !Ip4OptionIsValid (Option, OptionLen, TRUE)) {\r
745 return EFI_INVALID_PARAMETER;\r
772db4bb 746 }\r
747\r
748 //\r
749 // Trim the head off, after this point, the packet is headless.\r
750 // and Packet->TotalLen == Info->Length.\r
751 //\r
705f53a9 752 NetbufTrim (*Packet, HeadLen, TRUE);\r
772db4bb 753\r
754 //\r
755 // Reassemble the packet if this is a fragment. The packet is a\r
756 // fragment if its head has MF (more fragment) set, or it starts\r
757 // at non-zero byte.\r
758 //\r
b2c0a175 759 if (((Head->Fragment & IP4_HEAD_MF_MASK) != 0) || (Info->Start != 0)) {\r
772db4bb 760 //\r
761 // Drop the fragment if DF is set but it is fragmented. Gateway\r
762 // need to send a type 4 destination unreache ICMP message here.\r
763 //\r
b2c0a175 764 if ((Head->Fragment & IP4_HEAD_DF_MASK) != 0) {\r
705f53a9 765 return EFI_INVALID_PARAMETER;\r
772db4bb 766 }\r
767\r
768 //\r
769 // The length of all but the last fragments is in the unit of 8 bytes.\r
770 //\r
b2c0a175 771 if (((Head->Fragment & IP4_HEAD_MF_MASK) != 0) && (Info->Length % 8 != 0)) {\r
705f53a9 772 return EFI_INVALID_PARAMETER;\r
772db4bb 773 }\r
774\r
705f53a9 775 *Packet = Ip4Reassemble (&IpSb->Assemble, *Packet);\r
772db4bb 776\r
777 //\r
778 // Packet assembly isn't complete, start receive more packet.\r
779 //\r
705f53a9 780 if (*Packet == NULL) {\r
781 return EFI_INVALID_PARAMETER;\r
772db4bb 782 }\r
783 }\r
705f53a9 784 \r
785 return EFI_SUCCESS;\r
786}\r
787\r
788/**\r
789 The IP4 input routine. It is called by the IP4_INTERFACE when a\r
790 IP4 fragment is received from MNP.\r
791\r
792 @param[in] Ip4Instance The IP4 child that request the receive, most like\r
793 it is NULL.\r
794 @param[in] Packet The IP4 packet received.\r
795 @param[in] IoStatus The return status of receive request.\r
796 @param[in] Flag The link layer flag for the packet received, such\r
797 as multicast.\r
798 @param[in] Context The IP4 service instance that own the MNP.\r
799\r
800**/\r
801VOID\r
802Ip4AccpetFrame (\r
803 IN IP4_PROTOCOL *Ip4Instance,\r
804 IN NET_BUF *Packet,\r
805 IN EFI_STATUS IoStatus,\r
806 IN UINT32 Flag,\r
807 IN VOID *Context\r
808 )\r
809{\r
810 IP4_SERVICE *IpSb;\r
811 IP4_HEAD *Head;\r
812 EFI_STATUS Status;\r
813 IP4_HEAD ZeroHead;\r
814 UINT8 *Option;\r
815 UINT32 OptionLen;\r
816 \r
817 IpSb = (IP4_SERVICE *) Context;\r
818 Option = NULL;\r
819\r
820 if (EFI_ERROR (IoStatus) || (IpSb->State == IP4_SERVICE_DESTORY)) {\r
821 goto DROP;\r
822 }\r
823\r
824 Head = (IP4_HEAD *) NetbufGetByte (Packet, 0, NULL); \r
825 OptionLen = (Head->HeadLen << 2) - IP4_MIN_HEADLEN;\r
826 if (OptionLen > 0) {\r
827 Option = (UINT8 *) (Head + 1);\r
828 }\r
829\r
830 //\r
831 // Validate packet format and reassemble packet if it is necessary.\r
832 //\r
833 Status = Ip4PreProcessPacket (\r
834 IpSb, \r
835 &Packet, \r
836 Head, \r
837 Option,\r
838 OptionLen, \r
839 Flag\r
840 );\r
841\r
842 if (EFI_ERROR (Status)) {\r
843 goto RESTART;\r
844 }\r
772db4bb 845\r
846 //\r
a1503a32 847 // After trim off, the packet is a esp/ah/udp/tcp/icmp6 net buffer,\r
848 // and no need consider any other ahead ext headers.\r
849 //\r
850 Status = Ip4IpSecProcessPacket (\r
851 IpSb, \r
705f53a9 852 &Head, \r
a1503a32 853 &Packet, \r
705f53a9 854 &Option,\r
855 &OptionLen, \r
a1503a32 856 EfiIPsecInBound,\r
857 NULL\r
858 );\r
859\r
705f53a9 860 if (EFI_ERROR (Status)) {\r
a1503a32 861 goto RESTART;\r
862 }\r
705f53a9 863 \r
864 //\r
865 // If the packet is protected by tunnel mode, parse the inner Ip Packet.\r
866 //\r
867 ZeroMem (&ZeroHead, sizeof (IP4_HEAD));\r
868 if (0 == CompareMem (Head, &ZeroHead, sizeof (IP4_HEAD))) {\r
772db4bb 869 // Packet may have been changed. Head, HeadLen, TotalLen, and\r
870 // info must be reloaded bofore use. The ownership of the packet\r
871 // is transfered to the packet process logic.\r
872 //\r
705f53a9 873 Head = (IP4_HEAD *) NetbufGetByte (Packet, 0, NULL);\r
874 Status = Ip4PreProcessPacket (\r
875 IpSb, \r
876 &Packet, \r
877 Head, \r
878 Option,\r
879 OptionLen, \r
880 Flag\r
881 );\r
882 if (EFI_ERROR (Status)) {\r
883 goto RESTART;\r
884 }\r
885 }\r
fbe12b79
ED
886 \r
887 ASSERT (Packet != NULL);\r
f6b7393c 888 Head = Packet->Ip.Ip4;\r
772db4bb 889 IP4_GET_CLIP_INFO (Packet)->Status = EFI_SUCCESS;\r
890\r
891 switch (Head->Protocol) {\r
f6b7393c 892 case EFI_IP_PROTO_ICMP:\r
772db4bb 893 Ip4IcmpHandle (IpSb, Head, Packet);\r
894 break;\r
895\r
896 case IP4_PROTO_IGMP:\r
897 Ip4IgmpHandle (IpSb, Head, Packet);\r
898 break;\r
899\r
900 default:\r
901 Ip4Demultiplex (IpSb, Head, Packet);\r
902 }\r
903\r
904 Packet = NULL;\r
905\r
36ee91ca 906 //\r
907 // Dispatch the DPCs queued by the NotifyFunction of the rx token's events\r
908 // which are signaled with received data.\r
909 //\r
d8d26fb2 910 DispatchDpc ();\r
36ee91ca 911\r
772db4bb 912RESTART:\r
913 Ip4ReceiveFrame (IpSb->DefaultInterface, NULL, Ip4AccpetFrame, IpSb);\r
914\r
915DROP:\r
916 if (Packet != NULL) {\r
917 NetbufFree (Packet);\r
918 }\r
919\r
920 return ;\r
921}\r
922\r
923\r
924/**\r
925 Check whether this IP child accepts the packet.\r
926\r
3e8c18da 927 @param[in] IpInstance The IP child to check\r
928 @param[in] Head The IP header of the packet\r
929 @param[in] Packet The data of the packet\r
772db4bb 930\r
96e1079f 931 @retval TRUE If the child wants to receive the packet.\r
932 @retval FALSE Otherwise.\r
772db4bb 933\r
934**/\r
935BOOLEAN\r
936Ip4InstanceFrameAcceptable (\r
937 IN IP4_PROTOCOL *IpInstance,\r
938 IN IP4_HEAD *Head,\r
939 IN NET_BUF *Packet\r
940 )\r
941{\r
942 IP4_ICMP_ERROR_HEAD Icmp;\r
943 EFI_IP4_CONFIG_DATA *Config;\r
944 IP4_CLIP_INFO *Info;\r
945 UINT16 Proto;\r
946 UINT32 Index;\r
947\r
948 Config = &IpInstance->ConfigData;\r
949\r
950 //\r
951 // Dirty trick for the Tiano UEFI network stack implmentation. If\r
952 // ReceiveTimeout == -1, the receive of the packet for this instance\r
96e1079f 953 // is disabled. The UEFI spec don't have such capability. We add\r
772db4bb 954 // this to improve the performance because IP will make a copy of\r
955 // the received packet for each accepting instance. Some IP instances\r
956 // used by UDP/TCP only send packets, they don't wants to receive.\r
957 //\r
958 if (Config->ReceiveTimeout == (UINT32)(-1)) {\r
959 return FALSE;\r
960 }\r
961\r
962 if (Config->AcceptPromiscuous) {\r
963 return TRUE;\r
964 }\r
965\r
966 //\r
967 // Use protocol from the IP header embedded in the ICMP error\r
968 // message to filter, instead of ICMP itself. ICMP handle will\r
9899d8b6 969 // call Ip4Demultiplex to deliver ICMP errors.\r
772db4bb 970 //\r
971 Proto = Head->Protocol;\r
972\r
9899d8b6 973 if ((Proto == EFI_IP_PROTO_ICMP) && (!Config->AcceptAnyProtocol) && (Proto != Config->DefaultProtocol)) {\r
772db4bb 974 NetbufCopy (Packet, 0, sizeof (Icmp.Head), (UINT8 *) &Icmp.Head);\r
975\r
976 if (mIcmpClass[Icmp.Head.Type].IcmpClass == ICMP_ERROR_MESSAGE) {\r
977 if (!Config->AcceptIcmpErrors) {\r
978 return FALSE;\r
979 }\r
980\r
981 NetbufCopy (Packet, 0, sizeof (Icmp), (UINT8 *) &Icmp);\r
982 Proto = Icmp.IpHead.Protocol;\r
983 }\r
984 }\r
985\r
986 //\r
987 // Match the protocol\r
988 //\r
989 if (!Config->AcceptAnyProtocol && (Proto != Config->DefaultProtocol)) {\r
990 return FALSE;\r
991 }\r
992\r
993 //\r
994 // Check for broadcast, the caller has computed the packet's\r
995 // cast type for this child's interface.\r
996 //\r
997 Info = IP4_GET_CLIP_INFO (Packet);\r
998\r
999 if (IP4_IS_BROADCAST (Info->CastType)) {\r
1000 return Config->AcceptBroadcast;\r
1001 }\r
1002\r
1003 //\r
1004 // If it is a multicast packet, check whether we are in the group.\r
1005 //\r
1006 if (Info->CastType == IP4_MULTICAST) {\r
1007 //\r
1008 // Receive the multicast if the instance wants to receive all packets.\r
1009 //\r
1010 if (!IpInstance->ConfigData.UseDefaultAddress && (IpInstance->Interface->Ip == 0)) {\r
1011 return TRUE;\r
1012 }\r
1013\r
1014 for (Index = 0; Index < IpInstance->GroupCount; Index++) {\r
1015 if (IpInstance->Groups[Index] == HTONL (Head->Dst)) {\r
1016 break;\r
1017 }\r
1018 }\r
1019\r
1020 return (BOOLEAN)(Index < IpInstance->GroupCount);\r
1021 }\r
1022\r
1023 return TRUE;\r
1024}\r
1025\r
1026\r
1027/**\r
1028 Enqueue a shared copy of the packet to the IP4 child if the\r
1029 packet is acceptable to it. Here the data of the packet is\r
1030 shared, but the net buffer isn't.\r
1031\r
3e8c18da 1032 @param[in] IpInstance The IP4 child to enqueue the packet to\r
1033 @param[in] Head The IP header of the received packet\r
1034 @param[in] Packet The data of the received packet\r
772db4bb 1035\r
1036 @retval EFI_NOT_STARTED The IP child hasn't been configured.\r
1037 @retval EFI_INVALID_PARAMETER The child doesn't want to receive the packet\r
1038 @retval EFI_OUT_OF_RESOURCES Failed to allocate some resource\r
1039 @retval EFI_SUCCESS A shared copy the packet is enqueued to the child.\r
1040\r
1041**/\r
1042EFI_STATUS\r
1043Ip4InstanceEnquePacket (\r
1044 IN IP4_PROTOCOL *IpInstance,\r
1045 IN IP4_HEAD *Head,\r
1046 IN NET_BUF *Packet\r
1047 )\r
1048{\r
1049 IP4_CLIP_INFO *Info;\r
1050 NET_BUF *Clone;\r
1051\r
1052 //\r
1053 // Check whether the packet is acceptable to this instance.\r
1054 //\r
1055 if (IpInstance->State != IP4_STATE_CONFIGED) {\r
1056 return EFI_NOT_STARTED;\r
1057 }\r
1058\r
1059 if (!Ip4InstanceFrameAcceptable (IpInstance, Head, Packet)) {\r
1060 return EFI_INVALID_PARAMETER;\r
1061 }\r
1062\r
1063 //\r
1064 // Enque a shared copy of the packet.\r
1065 //\r
1066 Clone = NetbufClone (Packet);\r
1067\r
1068 if (Clone == NULL) {\r
1069 return EFI_OUT_OF_RESOURCES;\r
1070 }\r
1071\r
1072 //\r
1073 // Set the receive time out for the assembled packet. If it expires,\r
1074 // packet will be removed from the queue.\r
1075 //\r
1076 Info = IP4_GET_CLIP_INFO (Clone);\r
1077 Info->Life = IP4_US_TO_SEC (IpInstance->ConfigData.ReceiveTimeout);\r
1078\r
e48e37fc 1079 InsertTailList (&IpInstance->Received, &Clone->List);\r
772db4bb 1080 return EFI_SUCCESS;\r
1081}\r
1082\r
1083\r
1084/**\r
1085 The signal handle of IP4's recycle event. It is called back\r
1086 when the upper layer release the packet.\r
1087\r
3e8c18da 1088 @param Event The IP4's recycle event.\r
1089 @param Context The context of the handle, which is a\r
1090 IP4_RXDATA_WRAP\r
772db4bb 1091\r
1092**/\r
772db4bb 1093VOID\r
1094EFIAPI\r
1095Ip4OnRecyclePacket (\r
1096 IN EFI_EVENT Event,\r
1097 IN VOID *Context\r
1098 )\r
1099{\r
1100 IP4_RXDATA_WRAP *Wrap;\r
1101\r
1102 Wrap = (IP4_RXDATA_WRAP *) Context;\r
1103\r
e48e37fc 1104 EfiAcquireLockOrFail (&Wrap->IpInstance->RecycleLock);\r
1105 RemoveEntryList (&Wrap->Link);\r
1106 EfiReleaseLock (&Wrap->IpInstance->RecycleLock);\r
772db4bb 1107\r
1108 ASSERT (!NET_BUF_SHARED (Wrap->Packet));\r
1109 NetbufFree (Wrap->Packet);\r
1110\r
1111 gBS->CloseEvent (Wrap->RxData.RecycleSignal);\r
766c7483 1112 FreePool (Wrap);\r
772db4bb 1113}\r
1114\r
1115\r
1116/**\r
1117 Wrap the received packet to a IP4_RXDATA_WRAP, which will be\r
1118 delivered to the upper layer. Each IP4 child that accepts the\r
1119 packet will get a not-shared copy of the packet which is wrapped\r
1120 in the IP4_RXDATA_WRAP. The IP4_RXDATA_WRAP->RxData is passed\r
1121 to the upper layer. Upper layer will signal the recycle event in\r
1122 it when it is done with the packet.\r
1123\r
3e8c18da 1124 @param[in] IpInstance The IP4 child to receive the packet\r
1125 @param[in] Packet The packet to deliver up.\r
772db4bb 1126\r
3e8c18da 1127 @retval Wrap if warp the packet succeed.\r
1128 @retval NULL failed to wrap the packet .\r
772db4bb 1129\r
1130**/\r
1131IP4_RXDATA_WRAP *\r
1132Ip4WrapRxData (\r
1133 IN IP4_PROTOCOL *IpInstance,\r
1134 IN NET_BUF *Packet\r
1135 )\r
1136{\r
1137 IP4_RXDATA_WRAP *Wrap;\r
1138 EFI_IP4_RECEIVE_DATA *RxData;\r
1139 EFI_STATUS Status;\r
1140\r
e48e37fc 1141 Wrap = AllocatePool (IP4_RXDATA_WRAP_SIZE (Packet->BlockOpNum));\r
772db4bb 1142\r
1143 if (Wrap == NULL) {\r
1144 return NULL;\r
1145 }\r
1146\r
e48e37fc 1147 InitializeListHead (&Wrap->Link);\r
772db4bb 1148\r
1149 Wrap->IpInstance = IpInstance;\r
1150 Wrap->Packet = Packet;\r
1151 RxData = &Wrap->RxData;\r
1152\r
e48e37fc 1153 ZeroMem (&RxData->TimeStamp, sizeof (EFI_TIME));\r
772db4bb 1154\r
1155 Status = gBS->CreateEvent (\r
1156 EVT_NOTIFY_SIGNAL,\r
e48e37fc 1157 TPL_NOTIFY,\r
772db4bb 1158 Ip4OnRecyclePacket,\r
1159 Wrap,\r
1160 &RxData->RecycleSignal\r
1161 );\r
1162\r
1163 if (EFI_ERROR (Status)) {\r
766c7483 1164 FreePool (Wrap);\r
772db4bb 1165 return NULL;\r
1166 }\r
1167\r
f6b7393c 1168 ASSERT (Packet->Ip.Ip4 != NULL);\r
772db4bb 1169\r
1170 //\r
1171 // The application expects a network byte order header.\r
1172 //\r
f6b7393c 1173 RxData->HeaderLength = (Packet->Ip.Ip4->HeadLen << 2);\r
1174 RxData->Header = (EFI_IP4_HEADER *) Ip4NtohHead (Packet->Ip.Ip4);\r
772db4bb 1175\r
1176 RxData->OptionsLength = RxData->HeaderLength - IP4_MIN_HEADLEN;\r
1177 RxData->Options = NULL;\r
1178\r
1179 if (RxData->OptionsLength != 0) {\r
1180 RxData->Options = (VOID *) (RxData->Header + 1);\r
1181 }\r
1182\r
1183 RxData->DataLength = Packet->TotalSize;\r
1184\r
1185 //\r
1186 // Build the fragment table to be delivered up.\r
1187 //\r
1188 RxData->FragmentCount = Packet->BlockOpNum;\r
1189 NetbufBuildExt (Packet, (NET_FRAGMENT *) RxData->FragmentTable, &RxData->FragmentCount);\r
1190\r
1191 return Wrap;\r
1192}\r
1193\r
1194\r
1195/**\r
1196 Deliver the received packets to upper layer if there are both received\r
1197 requests and enqueued packets. If the enqueued packet is shared, it will\r
1198 duplicate it to a non-shared packet, release the shared packet, then\r
1199 deliver the non-shared packet up.\r
1200\r
3e8c18da 1201 @param[in] IpInstance The IP child to deliver the packet up.\r
772db4bb 1202\r
1203 @retval EFI_OUT_OF_RESOURCES Failed to allocate resources to deliver the\r
1204 packets.\r
1205 @retval EFI_SUCCESS All the enqueued packets that can be delivered\r
1206 are delivered up.\r
1207\r
1208**/\r
1209EFI_STATUS\r
1210Ip4InstanceDeliverPacket (\r
1211 IN IP4_PROTOCOL *IpInstance\r
1212 )\r
1213{\r
1214 EFI_IP4_COMPLETION_TOKEN *Token;\r
1215 IP4_RXDATA_WRAP *Wrap;\r
1216 NET_BUF *Packet;\r
1217 NET_BUF *Dup;\r
1218 UINT8 *Head;\r
1219\r
1220 //\r
1221 // Deliver a packet if there are both a packet and a receive token.\r
1222 //\r
e48e37fc 1223 while (!IsListEmpty (&IpInstance->Received) &&\r
772db4bb 1224 !NetMapIsEmpty (&IpInstance->RxTokens)) {\r
1225\r
1226 Packet = NET_LIST_HEAD (&IpInstance->Received, NET_BUF, List);\r
1227\r
1228 if (!NET_BUF_SHARED (Packet)) {\r
1229 //\r
1230 // If this is the only instance that wants the packet, wrap it up.\r
1231 //\r
1232 Wrap = Ip4WrapRxData (IpInstance, Packet);\r
1233\r
1234 if (Wrap == NULL) {\r
1235 return EFI_OUT_OF_RESOURCES;\r
1236 }\r
1237\r
e48e37fc 1238 RemoveEntryList (&Packet->List);\r
772db4bb 1239\r
1240 } else {\r
1241 //\r
1242 // Create a duplicated packet if this packet is shared\r
1243 //\r
1244 Dup = NetbufDuplicate (Packet, NULL, IP4_MAX_HEADLEN);\r
1245\r
1246 if (Dup == NULL) {\r
1247 return EFI_OUT_OF_RESOURCES;\r
1248 }\r
1249\r
1250 //\r
1251 // Copy the IP head over. The packet to deliver up is\r
1252 // headless. Trim the head off after copy. The IP head\r
1253 // may be not continuous before the data.\r
1254 //\r
1255 Head = NetbufAllocSpace (Dup, IP4_MAX_HEADLEN, NET_BUF_HEAD);\r
f6b7393c 1256 Dup->Ip.Ip4 = (IP4_HEAD *) Head;\r
772db4bb 1257\r
f6b7393c 1258 CopyMem (Head, Packet->Ip.Ip4, Packet->Ip.Ip4->HeadLen << 2);\r
772db4bb 1259 NetbufTrim (Dup, IP4_MAX_HEADLEN, TRUE);\r
1260\r
1261 Wrap = Ip4WrapRxData (IpInstance, Dup);\r
1262\r
1263 if (Wrap == NULL) {\r
1264 NetbufFree (Dup);\r
1265 return EFI_OUT_OF_RESOURCES;\r
1266 }\r
1267\r
e48e37fc 1268 RemoveEntryList (&Packet->List);\r
772db4bb 1269 NetbufFree (Packet);\r
1270\r
1271 Packet = Dup;\r
1272 }\r
1273\r
1274 //\r
1275 // Insert it into the delivered packet, then get a user's\r
1276 // receive token, pass the wrapped packet up.\r
1277 //\r
e48e37fc 1278 EfiAcquireLockOrFail (&IpInstance->RecycleLock);\r
1279 InsertHeadList (&IpInstance->Delivered, &Wrap->Link);\r
1280 EfiReleaseLock (&IpInstance->RecycleLock);\r
772db4bb 1281\r
1282 Token = NetMapRemoveHead (&IpInstance->RxTokens, NULL);\r
1283 Token->Status = IP4_GET_CLIP_INFO (Packet)->Status;\r
1284 Token->Packet.RxData = &Wrap->RxData;\r
1285\r
1286 gBS->SignalEvent (Token->Event);\r
1287 }\r
1288\r
1289 return EFI_SUCCESS;\r
1290}\r
1291\r
1292\r
1293/**\r
1294 Enqueue a received packet to all the IP children that share\r
1295 the same interface.\r
1296\r
3e8c18da 1297 @param[in] IpSb The IP4 service instance that receive the packet\r
1298 @param[in] Head The header of the received packet\r
1299 @param[in] Packet The data of the received packet\r
1300 @param[in] IpIf The interface to enqueue the packet to\r
772db4bb 1301\r
1302 @return The number of the IP4 children that accepts the packet\r
1303\r
1304**/\r
1305INTN\r
1306Ip4InterfaceEnquePacket (\r
1307 IN IP4_SERVICE *IpSb,\r
1308 IN IP4_HEAD *Head,\r
1309 IN NET_BUF *Packet,\r
1310 IN IP4_INTERFACE *IpIf\r
1311 )\r
1312{\r
1313 IP4_PROTOCOL *IpInstance;\r
1314 IP4_CLIP_INFO *Info;\r
e48e37fc 1315 LIST_ENTRY *Entry;\r
772db4bb 1316 INTN Enqueued;\r
1317 INTN LocalType;\r
1318 INTN SavedType;\r
1319\r
1320 //\r
1321 // First, check that the packet is acceptable to this interface\r
1322 // and find the local cast type for the interface. A packet sent\r
1323 // to say 192.168.1.1 should NOT be delliever to 10.0.0.1 unless\r
1324 // promiscuous receiving.\r
1325 //\r
1326 LocalType = 0;\r
1327 Info = IP4_GET_CLIP_INFO (Packet);\r
1328\r
1329 if ((Info->CastType == IP4_MULTICAST) || (Info->CastType == IP4_LOCAL_BROADCAST)) {\r
1330 //\r
1331 // If the CastType is multicast, don't need to filter against\r
1332 // the group address here, Ip4InstanceFrameAcceptable will do\r
1333 // that later.\r
1334 //\r
1335 LocalType = Info->CastType;\r
1336\r
1337 } else {\r
1338 //\r
1339 // Check the destination againist local IP. If the station\r
1340 // address is 0.0.0.0, it means receiving all the IP destined\r
1341 // to local non-zero IP. Otherwise, it is necessary to compare\r
1342 // the destination to the interface's IP address.\r
1343 //\r
1344 if (IpIf->Ip == IP4_ALLZERO_ADDRESS) {\r
1345 LocalType = IP4_LOCAL_HOST;\r
1346\r
1347 } else {\r
1348 LocalType = Ip4GetNetCast (Head->Dst, IpIf);\r
1349\r
1350 if ((LocalType == 0) && IpIf->PromiscRecv) {\r
1351 LocalType = IP4_PROMISCUOUS;\r
1352 }\r
1353 }\r
1354 }\r
1355\r
1356 if (LocalType == 0) {\r
1357 return 0;\r
1358 }\r
1359\r
1360 //\r
1361 // Iterate through the ip instances on the interface, enqueue\r
1362 // the packet if filter passed. Save the original cast type,\r
1363 // and pass the local cast type to the IP children on the\r
1364 // interface. The global cast type will be restored later.\r
1365 //\r
1366 SavedType = Info->CastType;\r
1367 Info->CastType = LocalType;\r
1368\r
1369 Enqueued = 0;\r
1370\r
1371 NET_LIST_FOR_EACH (Entry, &IpIf->IpInstances) {\r
1372 IpInstance = NET_LIST_USER_STRUCT (Entry, IP4_PROTOCOL, AddrLink);\r
1373 NET_CHECK_SIGNATURE (IpInstance, IP4_PROTOCOL_SIGNATURE);\r
1374\r
1375 if (Ip4InstanceEnquePacket (IpInstance, Head, Packet) == EFI_SUCCESS) {\r
1376 Enqueued++;\r
1377 }\r
1378 }\r
1379\r
1380 Info->CastType = SavedType;\r
1381 return Enqueued;\r
1382}\r
1383\r
1384\r
1385/**\r
1386 Deliver the packet for each IP4 child on the interface.\r
1387\r
3e8c18da 1388 @param[in] IpSb The IP4 service instance that received the packet\r
1389 @param[in] IpIf The IP4 interface to deliver the packet.\r
772db4bb 1390\r
1391 @retval EFI_SUCCESS It always returns EFI_SUCCESS now\r
1392\r
1393**/\r
1394EFI_STATUS\r
1395Ip4InterfaceDeliverPacket (\r
1396 IN IP4_SERVICE *IpSb,\r
1397 IN IP4_INTERFACE *IpIf\r
1398 )\r
1399{\r
1400 IP4_PROTOCOL *Ip4Instance;\r
e48e37fc 1401 LIST_ENTRY *Entry;\r
772db4bb 1402\r
1403 NET_LIST_FOR_EACH (Entry, &IpIf->IpInstances) {\r
1404 Ip4Instance = NET_LIST_USER_STRUCT (Entry, IP4_PROTOCOL, AddrLink);\r
1405 Ip4InstanceDeliverPacket (Ip4Instance);\r
1406 }\r
1407\r
1408 return EFI_SUCCESS;\r
1409}\r
1410\r
1411\r
1412/**\r
1413 Demultiple the packet. the packet delivery is processed in two\r
1414 passes. The first pass will enque a shared copy of the packet\r
1415 to each IP4 child that accepts the packet. The second pass will\r
1416 deliver a non-shared copy of the packet to each IP4 child that\r
1417 has pending receive requests. Data is copied if more than one\r
96e1079f 1418 child wants to consume the packet because each IP child needs\r
772db4bb 1419 its own copy of the packet to make changes.\r
1420\r
3e8c18da 1421 @param[in] IpSb The IP4 service instance that received the packet\r
1422 @param[in] Head The header of the received packet\r
1423 @param[in] Packet The data of the received packet\r
772db4bb 1424\r
1425 @retval EFI_NOT_FOUND No IP child accepts the packet\r
1426 @retval EFI_SUCCESS The packet is enqueued or delivered to some IP\r
1427 children.\r
1428\r
1429**/\r
1430EFI_STATUS\r
1431Ip4Demultiplex (\r
1432 IN IP4_SERVICE *IpSb,\r
1433 IN IP4_HEAD *Head,\r
1434 IN NET_BUF *Packet\r
1435 )\r
1436{\r
e48e37fc 1437 LIST_ENTRY *Entry;\r
772db4bb 1438 IP4_INTERFACE *IpIf;\r
1439 INTN Enqueued;\r
1440\r
1441 //\r
1442 // Two pass delivery: first, enque a shared copy of the packet\r
1443 // to each instance that accept the packet.\r
1444 //\r
1445 Enqueued = 0;\r
1446\r
1447 NET_LIST_FOR_EACH (Entry, &IpSb->Interfaces) {\r
1448 IpIf = NET_LIST_USER_STRUCT (Entry, IP4_INTERFACE, Link);\r
1449\r
1450 if (IpIf->Configured) {\r
1451 Enqueued += Ip4InterfaceEnquePacket (IpSb, Head, Packet, IpIf);\r
1452 }\r
1453 }\r
1454\r
1455 //\r
1456 // Second: deliver a duplicate of the packet to each instance.\r
1457 // Release the local reference first, so that the last instance\r
1458 // getting the packet will not copy the data.\r
1459 //\r
1460 NetbufFree (Packet);\r
1461\r
1462 if (Enqueued == 0) {\r
1463 return EFI_NOT_FOUND;\r
1464 }\r
1465\r
1466 NET_LIST_FOR_EACH (Entry, &IpSb->Interfaces) {\r
1467 IpIf = NET_LIST_USER_STRUCT (Entry, IP4_INTERFACE, Link);\r
1468\r
1469 if (IpIf->Configured) {\r
1470 Ip4InterfaceDeliverPacket (IpSb, IpIf);\r
1471 }\r
1472 }\r
1473\r
1474 return EFI_SUCCESS;\r
1475}\r
1476\r
1477\r
1478/**\r
1479 Timeout the fragment and enqueued packets.\r
1480\r
3e8c18da 1481 @param[in] IpSb The IP4 service instance to timeout\r
772db4bb 1482\r
1483**/\r
1484VOID\r
1485Ip4PacketTimerTicking (\r
1486 IN IP4_SERVICE *IpSb\r
1487 )\r
1488{\r
e48e37fc 1489 LIST_ENTRY *InstanceEntry;\r
1490 LIST_ENTRY *Entry;\r
1491 LIST_ENTRY *Next;\r
772db4bb 1492 IP4_PROTOCOL *IpInstance;\r
1493 IP4_ASSEMBLE_ENTRY *Assemble;\r
1494 NET_BUF *Packet;\r
1495 IP4_CLIP_INFO *Info;\r
1496 UINT32 Index;\r
1497\r
1498 //\r
1499 // First, time out the fragments. The packet's life is counting down\r
1500 // once the first-arrived fragment was received.\r
1501 //\r
1502 for (Index = 0; Index < IP4_ASSEMLE_HASH_SIZE; Index++) {\r
1503 NET_LIST_FOR_EACH_SAFE (Entry, Next, &IpSb->Assemble.Bucket[Index]) {\r
1504 Assemble = NET_LIST_USER_STRUCT (Entry, IP4_ASSEMBLE_ENTRY, Link);\r
1505\r
1506 if ((Assemble->Life > 0) && (--Assemble->Life == 0)) {\r
e48e37fc 1507 RemoveEntryList (Entry);\r
772db4bb 1508 Ip4FreeAssembleEntry (Assemble);\r
1509 }\r
1510 }\r
1511 }\r
1512\r
1513 NET_LIST_FOR_EACH (InstanceEntry, &IpSb->Children) {\r
1514 IpInstance = NET_LIST_USER_STRUCT (InstanceEntry, IP4_PROTOCOL, Link);\r
1515\r
1516 //\r
1517 // Second, time out the assembled packets enqueued on each IP child.\r
1518 //\r
1519 NET_LIST_FOR_EACH_SAFE (Entry, Next, &IpInstance->Received) {\r
1520 Packet = NET_LIST_USER_STRUCT (Entry, NET_BUF, List);\r
1521 Info = IP4_GET_CLIP_INFO (Packet);\r
1522\r
1523 if ((Info->Life > 0) && (--Info->Life == 0)) {\r
e48e37fc 1524 RemoveEntryList (Entry);\r
772db4bb 1525 NetbufFree (Packet);\r
1526 }\r
1527 }\r
1528\r
1529 //\r
1530 // Third: time out the transmitted packets.\r
1531 //\r
1532 NetMapIterate (&IpInstance->TxTokens, Ip4SentPacketTicking, NULL);\r
1533 }\r
1534}\r