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MdeModulePkg/Ip4Dxe: Add Ip/Netmask pair check for Ip4Config2
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1 /** @file
2
3 Copyright (c) 2005 - 2017, Intel Corporation. All rights reserved.<BR>
4 This program and the accompanying materials
5 are licensed and made available under the terms and conditions of the BSD License
6 which accompanies this distribution. The full text of the license may be found at
7 http://opensource.org/licenses/bsd-license.php
8
9 THE PROGRAM IS DISTRIBUTED UNDER THE BSD LICENSE ON AN "AS IS" BASIS,
10 WITHOUT WARRANTIES OR REPRESENTATIONS OF ANY KIND, EITHER EXPRESS OR IMPLIED.
11
12 **/
13
14 #include "Ip4Impl.h"
15
16 EFI_IPSEC2_PROTOCOL *mIpSec = NULL;
17
18 /**
19 Gets the current operational settings for this instance of the EFI IPv4 Protocol driver.
20
21 The GetModeData() function returns the current operational mode data for this
22 driver instance. The data fields in EFI_IP4_MODE_DATA are read only. This
23 function is used optionally to retrieve the operational mode data of underlying
24 networks or drivers.
25
26 @param[in] This Pointer to the EFI_IP4_PROTOCOL instance.
27 @param[out] Ip4ModeData Pointer to the EFI IPv4 Protocol mode data structure.
28 @param[out] MnpConfigData Pointer to the managed network configuration data structure.
29 @param[out] SnpModeData Pointer to the simple network mode data structure.
30
31 @retval EFI_SUCCESS The operation completed successfully.
32 @retval EFI_INVALID_PARAMETER This is NULL.
33 @retval EFI_OUT_OF_RESOURCES The required mode data could not be allocated.
34
35 **/
36 EFI_STATUS
37 EFIAPI
38 EfiIp4GetModeData (
39 IN CONST EFI_IP4_PROTOCOL *This,
40 OUT EFI_IP4_MODE_DATA *Ip4ModeData OPTIONAL,
41 OUT EFI_MANAGED_NETWORK_CONFIG_DATA *MnpConfigData OPTIONAL,
42 OUT EFI_SIMPLE_NETWORK_MODE *SnpModeData OPTIONAL
43 );
44
45 /**
46 Assigns an IPv4 address and subnet mask to this EFI IPv4 Protocol driver instance.
47
48 The Configure() function is used to set, change, or reset the operational
49 parameters and filter settings for this EFI IPv4 Protocol instance. Until these
50 parameters have been set, no network traffic can be sent or received by this
51 instance. Once the parameters have been reset (by calling this function with
52 IpConfigData set to NULL), no more traffic can be sent or received until these
53 parameters have been set again. Each EFI IPv4 Protocol instance can be started
54 and stopped independently of each other by enabling or disabling their receive
55 filter settings with the Configure() function.
56
57 When IpConfigData.UseDefaultAddress is set to FALSE, the new station address will
58 be appended as an alias address into the addresses list in the EFI IPv4 Protocol
59 driver. While set to TRUE, Configure() will trigger the EFI_IP4_CONFIG_PROTOCOL
60 to retrieve the default IPv4 address if it is not available yet. Clients could
61 frequently call GetModeData() to check the status to ensure that the default IPv4
62 address is ready.
63
64 If operational parameters are reset or changed, any pending transmit and receive
65 requests will be cancelled. Their completion token status will be set to EFI_ABORTED
66 and their events will be signaled.
67
68 @param[in] This Pointer to the EFI_IP4_PROTOCOL instance.
69 @param[in] IpConfigData Pointer to the EFI IPv4 Protocol configuration data structure.
70
71 @retval EFI_SUCCESS The driver instance was successfully opened.
72 @retval EFI_NO_MAPPING When using the default address, configuration (DHCP, BOOTP,
73 RARP, etc.) is not finished yet.
74 @retval EFI_INVALID_PARAMETER One or more of the following conditions is TRUE:
75 @retval EFI_UNSUPPORTED One or more of the following conditions is TRUE:
76 A configuration protocol (DHCP, BOOTP, RARP, etc.) could
77 not be located when clients choose to use the default IPv4
78 address. This EFI IPv4 Protocol implementation does not
79 support this requested filter or timeout setting.
80 @retval EFI_OUT_OF_RESOURCES The EFI IPv4 Protocol driver instance data could not be allocated.
81 @retval EFI_ALREADY_STARTED The interface is already open and must be stopped before the
82 IPv4 address or subnet mask can be changed. The interface must
83 also be stopped when switching to/from raw packet mode.
84 @retval EFI_DEVICE_ERROR An unexpected system or network error occurred. The EFI IPv4
85 Protocol driver instance is not opened.
86
87 **/
88 EFI_STATUS
89 EFIAPI
90 EfiIp4Configure (
91 IN EFI_IP4_PROTOCOL *This,
92 IN EFI_IP4_CONFIG_DATA *IpConfigData OPTIONAL
93 );
94
95 /**
96 Joins and leaves multicast groups.
97
98 The Groups() function is used to join and leave multicast group sessions. Joining
99 a group will enable reception of matching multicast packets. Leaving a group will
100 disable the multicast packet reception.
101
102 If JoinFlag is FALSE and GroupAddress is NULL, all joined groups will be left.
103
104 @param[in] This Pointer to the EFI_IP4_PROTOCOL instance.
105 @param[in] JoinFlag Set to TRUE to join the multicast group session and FALSE to leave.
106 @param[in] GroupAddress Pointer to the IPv4 multicast address.
107
108 @retval EFI_SUCCESS The operation completed successfully.
109 @retval EFI_INVALID_PARAMETER One or more of the following is TRUE:
110 - This is NULL.
111 - JoinFlag is TRUE and GroupAddress is NULL.
112 - GroupAddress is not NULL and *GroupAddress is
113 not a multicast IPv4 address.
114 @retval EFI_NOT_STARTED This instance has not been started.
115 @retval EFI_NO_MAPPING When using the default address, configuration (DHCP, BOOTP,
116 RARP, etc.) is not finished yet.
117 @retval EFI_OUT_OF_RESOURCES System resources could not be allocated.
118 @retval EFI_UNSUPPORTED This EFI IPv4 Protocol implementation does not support multicast groups.
119 @retval EFI_ALREADY_STARTED The group address is already in the group table (when
120 JoinFlag is TRUE).
121 @retval EFI_NOT_FOUND The group address is not in the group table (when JoinFlag is FALSE).
122 @retval EFI_DEVICE_ERROR An unexpected system or network error occurred.
123
124 **/
125 EFI_STATUS
126 EFIAPI
127 EfiIp4Groups (
128 IN EFI_IP4_PROTOCOL *This,
129 IN BOOLEAN JoinFlag,
130 IN EFI_IPv4_ADDRESS *GroupAddress OPTIONAL
131 );
132
133 /**
134 Adds and deletes routing table entries.
135
136 The Routes() function adds a route to or deletes a route from the routing table.
137
138 Routes are determined by comparing the SubnetAddress with the destination IPv4
139 address arithmetically AND-ed with the SubnetMask. The gateway address must be
140 on the same subnet as the configured station address.
141
142 The default route is added with SubnetAddress and SubnetMask both set to 0.0.0.0.
143 The default route matches all destination IPv4 addresses that do not match any
144 other routes.
145
146 A GatewayAddress that is zero is a nonroute. Packets are sent to the destination
147 IP address if it can be found in the ARP cache or on the local subnet. One automatic
148 nonroute entry will be inserted into the routing table for outgoing packets that
149 are addressed to a local subnet (gateway address of 0.0.0.0).
150
151 Each EFI IPv4 Protocol instance has its own independent routing table. Those EFI
152 IPv4 Protocol instances that use the default IPv4 address will also have copies
153 of the routing table that was provided by the EFI_IP4_CONFIG_PROTOCOL, and these
154 copies will be updated whenever the EIF IPv4 Protocol driver reconfigures its
155 instances. As a result, client modification to the routing table will be lost.
156
157 @param[in] This Pointer to the EFI_IP4_PROTOCOL instance.
158 @param[in] DeleteRoute Set to TRUE to delete this route from the routing table. Set to
159 FALSE to add this route to the routing table. SubnetAddress
160 and SubnetMask are used as the key to each route entry.
161 @param[in] SubnetAddress The address of the subnet that needs to be routed.
162 @param[in] SubnetMask The subnet mask of SubnetAddress.
163 @param[in] GatewayAddress The unicast gateway IPv4 address for this route.
164
165 @retval EFI_SUCCESS The operation completed successfully.
166 @retval EFI_NOT_STARTED The driver instance has not been started.
167 @retval EFI_NO_MAPPING When using the default address, configuration (DHCP, BOOTP,
168 RARP, etc.) is not finished yet.
169 @retval EFI_INVALID_PARAMETER One or more of the following conditions is TRUE:
170 - This is NULL.
171 - SubnetAddress is NULL.
172 - SubnetMask is NULL.
173 - GatewayAddress is NULL.
174 - *SubnetAddress is not a valid subnet address.
175 - *SubnetMask is not a valid subnet mask.
176 - *GatewayAddress is not a valid unicast IPv4 address.
177 @retval EFI_OUT_OF_RESOURCES Could not add the entry to the routing table.
178 @retval EFI_NOT_FOUND This route is not in the routing table (when DeleteRoute is TRUE).
179 @retval EFI_ACCESS_DENIED The route is already defined in the routing table (when
180 DeleteRoute is FALSE).
181
182 **/
183 EFI_STATUS
184 EFIAPI
185 EfiIp4Routes (
186 IN EFI_IP4_PROTOCOL *This,
187 IN BOOLEAN DeleteRoute,
188 IN EFI_IPv4_ADDRESS *SubnetAddress,
189 IN EFI_IPv4_ADDRESS *SubnetMask,
190 IN EFI_IPv4_ADDRESS *GatewayAddress
191 );
192
193 /**
194 Places outgoing data packets into the transmit queue.
195
196 The Transmit() function places a sending request in the transmit queue of this
197 EFI IPv4 Protocol instance. Whenever the packet in the token is sent out or some
198 errors occur, the event in the token will be signaled and the status is updated.
199
200 @param[in] This Pointer to the EFI_IP4_PROTOCOL instance.
201 @param[in] Token Pointer to the transmit token.
202
203 @retval EFI_SUCCESS The data has been queued for transmission.
204 @retval EFI_NOT_STARTED This instance has not been started.
205 @retval EFI_NO_MAPPING When using the default address, configuration (DHCP, BOOTP,
206 RARP, etc.) is not finished yet.
207 @retval EFI_INVALID_PARAMETER One or more pameters are invalid.
208 @retval EFI_ACCESS_DENIED The transmit completion token with the same Token.Event
209 was already in the transmit queue.
210 @retval EFI_NOT_READY The completion token could not be queued because the transmit
211 queue is full.
212 @retval EFI_NOT_FOUND Not route is found to destination address.
213 @retval EFI_OUT_OF_RESOURCES Could not queue the transmit data.
214 @retval EFI_BUFFER_TOO_SMALL Token.Packet.TxData.TotalDataLength is too
215 short to transmit.
216 @retval EFI_BAD_BUFFER_SIZE The length of the IPv4 header + option length + total data length is
217 greater than MTU (or greater than the maximum packet size if
218 Token.Packet.TxData.OverrideData.
219 DoNotFragment is TRUE.)
220
221 **/
222 EFI_STATUS
223 EFIAPI
224 EfiIp4Transmit (
225 IN EFI_IP4_PROTOCOL *This,
226 IN EFI_IP4_COMPLETION_TOKEN *Token
227 );
228
229 /**
230 Places a receiving request into the receiving queue.
231
232 The Receive() function places a completion token into the receive packet queue.
233 This function is always asynchronous.
234
235 The Token.Event field in the completion token must be filled in by the caller
236 and cannot be NULL. When the receive operation completes, the EFI IPv4 Protocol
237 driver updates the Token.Status and Token.Packet.RxData fields and the Token.Event
238 is signaled.
239
240 @param[in] This Pointer to the EFI_IP4_PROTOCOL instance.
241 @param[in] Token Pointer to a token that is associated with the receive data descriptor.
242
243 @retval EFI_SUCCESS The receive completion token was cached.
244 @retval EFI_NOT_STARTED This EFI IPv4 Protocol instance has not been started.
245 @retval EFI_NO_MAPPING When using the default address, configuration (DHCP, BOOTP, RARP, etc.)
246 is not finished yet.
247 @retval EFI_INVALID_PARAMETER One or more of the following conditions is TRUE:
248 - This is NULL.
249 - Token is NULL.
250 - Token.Event is NULL.
251 @retval EFI_OUT_OF_RESOURCES The receive completion token could not be queued due to a lack of system
252 resources (usually memory).
253 @retval EFI_DEVICE_ERROR An unexpected system or network error occurred.
254 The EFI IPv4 Protocol instance has been reset to startup defaults.
255 EFI_ACCESS_DENIED The receive completion token with the same Token.Event was already
256 in the receive queue.
257 @retval EFI_NOT_READY The receive request could not be queued because the receive queue is full.
258 @retval EFI_ICMP_ERROR An ICMP error packet was received.
259
260 **/
261 EFI_STATUS
262 EFIAPI
263 EfiIp4Receive (
264 IN EFI_IP4_PROTOCOL *This,
265 IN EFI_IP4_COMPLETION_TOKEN *Token
266 );
267
268 /**
269 Abort an asynchronous transmit or receive request.
270
271 The Cancel() function is used to abort a pending transmit or receive request.
272 If the token is in the transmit or receive request queues, after calling this
273 function, Token->Status will be set to EFI_ABORTED and then Token->Event will
274 be signaled. If the token is not in one of the queues, which usually means the
275 asynchronous operation has completed, this function will not signal the token
276 and EFI_NOT_FOUND is returned.
277
278 @param[in] This Pointer to the EFI_IP4_PROTOCOL instance.
279 @param[in] Token Pointer to a token that has been issued by
280 EFI_IP4_PROTOCOL.Transmit() or
281 EFI_IP4_PROTOCOL.Receive(). If NULL, all pending
282 tokens are aborted. Type EFI_IP4_COMPLETION_TOKEN is
283 defined in EFI_IP4_PROTOCOL.Transmit().
284
285 @retval EFI_SUCCESS The asynchronous I/O request was aborted and
286 Token.->Event was signaled. When Token is NULL, all
287 pending requests were aborted and their events were signaled.
288 @retval EFI_INVALID_PARAMETER This is NULL.
289 @retval EFI_NOT_STARTED This instance has not been started.
290 @retval EFI_NO_MAPPING When using the default address, configuration (DHCP, BOOTP,
291 RARP, etc.) is not finished yet.
292 @retval EFI_NOT_FOUND When Token is not NULL, the asynchronous I/O request was
293 not found in the transmit or receive queue. It has either completed
294 or was not issued by Transmit() and Receive().
295
296 **/
297 EFI_STATUS
298 EFIAPI
299 EfiIp4Cancel (
300 IN EFI_IP4_PROTOCOL *This,
301 IN EFI_IP4_COMPLETION_TOKEN *Token OPTIONAL
302 );
303
304 /**
305 Polls for incoming data packets and processes outgoing data packets.
306
307 The Poll() function polls for incoming data packets and processes outgoing data
308 packets. Network drivers and applications can call the EFI_IP4_PROTOCOL.Poll()
309 function to increase the rate that data packets are moved between the communications
310 device and the transmit and receive queues.
311
312 In some systems the periodic timer event may not poll the underlying communications
313 device fast enough to transmit and/or receive all data packets without missing
314 incoming packets or dropping outgoing packets. Drivers and applications that are
315 experiencing packet loss should try calling the EFI_IP4_PROTOCOL.Poll() function
316 more often.
317
318 @param[in] This Pointer to the EFI_IP4_PROTOCOL instance.
319
320 @retval EFI_SUCCESS Incoming or outgoing data was processed.
321 @retval EFI_NOT_STARTED This EFI IPv4 Protocol instance has not been started.
322 @retval EFI_NO_MAPPING When using the default address, configuration (DHCP, BOOTP,
323 RARP, etc.) is not finished yet.
324 @retval EFI_INVALID_PARAMETER This is NULL.
325 @retval EFI_DEVICE_ERROR An unexpected system or network error occurred.
326 @retval EFI_NOT_READY No incoming or outgoing data is processed.
327 @retval EFI_TIMEOUT Data was dropped out of the transmit and/or receive queue.
328 Consider increasing the polling rate.
329
330 **/
331 EFI_STATUS
332 EFIAPI
333 EfiIp4Poll (
334 IN EFI_IP4_PROTOCOL *This
335 );
336
337 EFI_IP4_PROTOCOL
338 mEfiIp4ProtocolTemplete = {
339 EfiIp4GetModeData,
340 EfiIp4Configure,
341 EfiIp4Groups,
342 EfiIp4Routes,
343 EfiIp4Transmit,
344 EfiIp4Receive,
345 EfiIp4Cancel,
346 EfiIp4Poll
347 };
348
349 /**
350 Gets the current operational settings for this instance of the EFI IPv4 Protocol driver.
351
352 The GetModeData() function returns the current operational mode data for this
353 driver instance. The data fields in EFI_IP4_MODE_DATA are read only. This
354 function is used optionally to retrieve the operational mode data of underlying
355 networks or drivers.
356
357 @param[in] This Pointer to the EFI_IP4_PROTOCOL instance.
358 @param[out] Ip4ModeData Pointer to the EFI IPv4 Protocol mode data structure.
359 @param[out] MnpConfigData Pointer to the managed network configuration data structure.
360 @param[out] SnpModeData Pointer to the simple network mode data structure.
361
362 @retval EFI_SUCCESS The operation completed successfully.
363 @retval EFI_INVALID_PARAMETER This is NULL.
364 @retval EFI_OUT_OF_RESOURCES The required mode data could not be allocated.
365
366 **/
367 EFI_STATUS
368 EFIAPI
369 EfiIp4GetModeData (
370 IN CONST EFI_IP4_PROTOCOL *This,
371 OUT EFI_IP4_MODE_DATA *Ip4ModeData OPTIONAL,
372 OUT EFI_MANAGED_NETWORK_CONFIG_DATA *MnpConfigData OPTIONAL,
373 OUT EFI_SIMPLE_NETWORK_MODE *SnpModeData OPTIONAL
374 )
375 {
376 IP4_PROTOCOL *IpInstance;
377 IP4_SERVICE *IpSb;
378 EFI_IP4_CONFIG_DATA *Config;
379 EFI_STATUS Status;
380 EFI_TPL OldTpl;
381 IP4_ADDR Ip;
382
383 if (This == NULL) {
384 return EFI_INVALID_PARAMETER;
385 }
386
387 OldTpl = gBS->RaiseTPL (TPL_CALLBACK);
388 IpInstance = IP4_INSTANCE_FROM_PROTOCOL (This);
389 IpSb = IpInstance->Service;
390
391 if (Ip4ModeData != NULL) {
392 //
393 // IsStarted is "whether the EfiIp4Configure has been called".
394 // IsConfigured is "whether the station address has been configured"
395 //
396 Ip4ModeData->IsStarted = (BOOLEAN)(IpInstance->State == IP4_STATE_CONFIGED);
397 CopyMem (&Ip4ModeData->ConfigData, &IpInstance->ConfigData, sizeof (Ip4ModeData->ConfigData));
398 Ip4ModeData->IsConfigured = FALSE;
399
400 Ip4ModeData->GroupCount = IpInstance->GroupCount;
401 Ip4ModeData->GroupTable = (EFI_IPv4_ADDRESS *) IpInstance->Groups;
402
403 Ip4ModeData->IcmpTypeCount = 23;
404 Ip4ModeData->IcmpTypeList = mIp4SupportedIcmp;
405
406 Ip4ModeData->RouteTable = NULL;
407 Ip4ModeData->RouteCount = 0;
408
409 Ip4ModeData->MaxPacketSize = IpSb->MaxPacketSize;
410
411 //
412 // return the current station address for this IP child. So,
413 // the user can get the default address through this. Some
414 // application wants to know it station address even it is
415 // using the default one, such as a ftp server.
416 //
417 if (Ip4ModeData->IsStarted) {
418 Config = &Ip4ModeData->ConfigData;
419
420 Ip = HTONL (IpInstance->Interface->Ip);
421 CopyMem (&Config->StationAddress, &Ip, sizeof (EFI_IPv4_ADDRESS));
422
423 Ip = HTONL (IpInstance->Interface->SubnetMask);
424 CopyMem (&Config->SubnetMask, &Ip, sizeof (EFI_IPv4_ADDRESS));
425
426 Ip4ModeData->IsConfigured = IpInstance->Interface->Configured;
427
428 //
429 // Build a EFI route table for user from the internal route table.
430 //
431 Status = Ip4BuildEfiRouteTable (IpInstance);
432
433 if (EFI_ERROR (Status)) {
434 gBS->RestoreTPL (OldTpl);
435 return Status;
436 }
437
438 Ip4ModeData->RouteTable = IpInstance->EfiRouteTable;
439 Ip4ModeData->RouteCount = IpInstance->EfiRouteCount;
440 }
441 }
442
443 //
444 // Get fresh mode data from MNP, since underlying media status may change
445 //
446 Status = IpSb->Mnp->GetModeData (IpSb->Mnp, MnpConfigData, SnpModeData);
447
448 gBS->RestoreTPL (OldTpl);
449 return Status;
450 }
451
452
453 /**
454 Config the MNP parameter used by IP. The IP driver use one MNP
455 child to transmit/receive frames. By default, it configures MNP
456 to receive unicast/multicast/broadcast. And it will enable/disable
457 the promiscous receive according to whether there is IP child
458 enable that or not. If Force is FALSE, it will iterate through
459 all the IP children to check whether the promiscuous receive
460 setting has been changed. If it hasn't been changed, it won't
461 reconfigure the MNP. If Force is TRUE, the MNP is configured no
462 matter whether that is changed or not.
463
464 @param[in] IpSb The IP4 service instance that is to be changed.
465 @param[in] Force Force the configuration or not.
466
467 @retval EFI_SUCCESS The MNP is successfully configured/reconfigured.
468 @retval Others Configuration failed.
469
470 **/
471 EFI_STATUS
472 Ip4ServiceConfigMnp (
473 IN IP4_SERVICE *IpSb,
474 IN BOOLEAN Force
475 )
476 {
477 LIST_ENTRY *Entry;
478 LIST_ENTRY *ProtoEntry;
479 IP4_INTERFACE *IpIf;
480 IP4_PROTOCOL *IpInstance;
481 BOOLEAN Reconfig;
482 BOOLEAN PromiscReceive;
483 EFI_STATUS Status;
484
485 Reconfig = FALSE;
486 PromiscReceive = FALSE;
487
488 if (!Force) {
489 //
490 // Iterate through the IP children to check whether promiscuous
491 // receive setting has been changed. Update the interface's receive
492 // filter also.
493 //
494 NET_LIST_FOR_EACH (Entry, &IpSb->Interfaces) {
495
496 IpIf = NET_LIST_USER_STRUCT (Entry, IP4_INTERFACE, Link);
497 IpIf->PromiscRecv = FALSE;
498
499 NET_LIST_FOR_EACH (ProtoEntry, &IpIf->IpInstances) {
500 IpInstance = NET_LIST_USER_STRUCT (ProtoEntry, IP4_PROTOCOL, AddrLink);
501
502 if (IpInstance->ConfigData.AcceptPromiscuous) {
503 IpIf->PromiscRecv = TRUE;
504 PromiscReceive = TRUE;
505 }
506 }
507 }
508
509 //
510 // If promiscuous receive isn't changed, it isn't necessary to reconfigure.
511 //
512 if (PromiscReceive == IpSb->MnpConfigData.EnablePromiscuousReceive) {
513 return EFI_SUCCESS;
514 }
515
516 Reconfig = TRUE;
517 IpSb->MnpConfigData.EnablePromiscuousReceive = PromiscReceive;
518 }
519
520 Status = IpSb->Mnp->Configure (IpSb->Mnp, &IpSb->MnpConfigData);
521
522 //
523 // recover the original configuration if failed to set the configure.
524 //
525 if (EFI_ERROR (Status) && Reconfig) {
526 IpSb->MnpConfigData.EnablePromiscuousReceive = (BOOLEAN) !PromiscReceive;
527 }
528
529 return Status;
530 }
531
532
533 /**
534 Intiialize the IP4_PROTOCOL structure to the unconfigured states.
535
536 @param IpSb The IP4 service instance.
537 @param IpInstance The IP4 child instance.
538
539 **/
540 VOID
541 Ip4InitProtocol (
542 IN IP4_SERVICE *IpSb,
543 IN OUT IP4_PROTOCOL *IpInstance
544 )
545 {
546 ASSERT ((IpSb != NULL) && (IpInstance != NULL));
547
548 ZeroMem (IpInstance, sizeof (IP4_PROTOCOL));
549
550 IpInstance->Signature = IP4_PROTOCOL_SIGNATURE;
551 CopyMem (&IpInstance->Ip4Proto, &mEfiIp4ProtocolTemplete, sizeof (IpInstance->Ip4Proto));
552 IpInstance->State = IP4_STATE_UNCONFIGED;
553 IpInstance->Service = IpSb;
554
555 InitializeListHead (&IpInstance->Link);
556 NetMapInit (&IpInstance->RxTokens);
557 NetMapInit (&IpInstance->TxTokens);
558 InitializeListHead (&IpInstance->Received);
559 InitializeListHead (&IpInstance->Delivered);
560 InitializeListHead (&IpInstance->AddrLink);
561
562 EfiInitializeLock (&IpInstance->RecycleLock, TPL_NOTIFY);
563 }
564
565
566 /**
567 Configure the IP4 child. If the child is already configured,
568 change the configuration parameter. Otherwise configure it
569 for the first time. The caller should validate the configuration
570 before deliver them to it. It also don't do configure NULL.
571
572 @param[in, out] IpInstance The IP4 child to configure.
573 @param[in] Config The configure data.
574
575 @retval EFI_SUCCESS The IP4 child is successfully configured.
576 @retval EFI_DEVICE_ERROR Failed to free the pending transive or to
577 configure underlying MNP or other errors.
578 @retval EFI_NO_MAPPING The IP4 child is configured to use default
579 address, but the default address hasn't been
580 configured. The IP4 child doesn't need to be
581 reconfigured when default address is configured.
582 @retval EFI_OUT_OF_RESOURCES No more memory space is available.
583 @retval other Other error occurs.
584
585 **/
586 EFI_STATUS
587 Ip4ConfigProtocol (
588 IN OUT IP4_PROTOCOL *IpInstance,
589 IN EFI_IP4_CONFIG_DATA *Config
590 )
591 {
592 IP4_SERVICE *IpSb;
593 IP4_INTERFACE *IpIf;
594 EFI_STATUS Status;
595 IP4_ADDR Ip;
596 IP4_ADDR Netmask;
597 EFI_ARP_PROTOCOL *Arp;
598
599 IpSb = IpInstance->Service;
600
601 //
602 // User is changing packet filters. It must be stopped
603 // before the station address can be changed.
604 //
605 if (IpInstance->State == IP4_STATE_CONFIGED) {
606 //
607 // Cancel all the pending transmit/receive from upper layer
608 //
609 Status = Ip4Cancel (IpInstance, NULL);
610
611 if (EFI_ERROR (Status)) {
612 return EFI_DEVICE_ERROR;
613 }
614
615 CopyMem (&IpInstance->ConfigData, Config, sizeof (IpInstance->ConfigData));
616 return EFI_SUCCESS;
617 }
618
619 //
620 // Configure a fresh IP4 protocol instance. Create a route table.
621 // Each IP child has its own route table, which may point to the
622 // default table if it is using default address.
623 //
624 Status = EFI_OUT_OF_RESOURCES;
625 IpInstance->RouteTable = Ip4CreateRouteTable ();
626
627 if (IpInstance->RouteTable == NULL) {
628 return Status;
629 }
630
631 //
632 // Set up the interface.
633 //
634 CopyMem (&Ip, &Config->StationAddress, sizeof (IP4_ADDR));
635 CopyMem (&Netmask, &Config->SubnetMask, sizeof (IP4_ADDR));
636
637 Ip = NTOHL (Ip);
638 Netmask = NTOHL (Netmask);
639
640 if (!Config->UseDefaultAddress) {
641 //
642 // Find whether there is already an interface with the same
643 // station address. All the instances with the same station
644 // address shares one interface.
645 //
646 IpIf = Ip4FindStationAddress (IpSb, Ip, Netmask);
647
648 if (IpIf != NULL) {
649 NET_GET_REF (IpIf);
650
651 } else {
652 IpIf = Ip4CreateInterface (IpSb->Mnp, IpSb->Controller, IpSb->Image);
653
654 if (IpIf == NULL) {
655 goto ON_ERROR;
656 }
657
658 Status = Ip4SetAddress (IpIf, Ip, Netmask);
659
660 if (EFI_ERROR (Status)) {
661 Status = EFI_DEVICE_ERROR;
662 Ip4FreeInterface (IpIf, IpInstance);
663 goto ON_ERROR;
664 }
665
666 InsertTailList (&IpSb->Interfaces, &IpIf->Link);
667 }
668
669 //
670 // Add a route to this connected network in the route table
671 //
672 Ip4AddRoute (IpInstance->RouteTable, Ip, Netmask, IP4_ALLZERO_ADDRESS);
673
674 } else {
675 //
676 // Use the default address. Check the state.
677 //
678 if (IpSb->State == IP4_SERVICE_UNSTARTED) {
679 Status = Ip4StartAutoConfig (&IpSb->Ip4Config2Instance);
680
681 if (EFI_ERROR (Status)) {
682 goto ON_ERROR;
683 }
684 }
685
686 IpIf = IpSb->DefaultInterface;
687 NET_GET_REF (IpSb->DefaultInterface);
688
689 //
690 // If default address is used, so is the default route table.
691 // Any route set by the instance has the precedence over the
692 // routes in the default route table. Link the default table
693 // after the instance's table. Routing will search the local
694 // table first.
695 //
696 NET_GET_REF (IpSb->DefaultRouteTable);
697 IpInstance->RouteTable->Next = IpSb->DefaultRouteTable;
698 }
699
700 IpInstance->Interface = IpIf;
701 if (IpIf->Arp != NULL) {
702 Arp = NULL;
703 Status = gBS->OpenProtocol (
704 IpIf->ArpHandle,
705 &gEfiArpProtocolGuid,
706 (VOID **) &Arp,
707 gIp4DriverBinding.DriverBindingHandle,
708 IpInstance->Handle,
709 EFI_OPEN_PROTOCOL_BY_CHILD_CONTROLLER
710 );
711 if (EFI_ERROR (Status)) {
712 goto ON_ERROR;
713 }
714 }
715 InsertTailList (&IpIf->IpInstances, &IpInstance->AddrLink);
716
717 CopyMem (&IpInstance->ConfigData, Config, sizeof (IpInstance->ConfigData));
718 IpInstance->State = IP4_STATE_CONFIGED;
719
720 //
721 // Although EFI_NO_MAPPING is an error code, the IP child has been
722 // successfully configured and doesn't need reconfiguration when
723 // default address is acquired.
724 //
725 if (Config->UseDefaultAddress && IP4_NO_MAPPING (IpInstance)) {
726 return EFI_NO_MAPPING;
727 }
728
729 return EFI_SUCCESS;
730
731 ON_ERROR:
732 Ip4FreeRouteTable (IpInstance->RouteTable);
733 IpInstance->RouteTable = NULL;
734 return Status;
735 }
736
737
738 /**
739 Clean up the IP4 child, release all the resources used by it.
740
741 @param[in] IpInstance The IP4 child to clean up.
742
743 @retval EFI_SUCCESS The IP4 child is cleaned up.
744 @retval EFI_DEVICE_ERROR Some resources failed to be released.
745
746 **/
747 EFI_STATUS
748 Ip4CleanProtocol (
749 IN IP4_PROTOCOL *IpInstance
750 )
751 {
752 if (EFI_ERROR (Ip4Cancel (IpInstance, NULL))) {
753 return EFI_DEVICE_ERROR;
754 }
755
756 if (EFI_ERROR (Ip4Groups (IpInstance, FALSE, NULL))) {
757 return EFI_DEVICE_ERROR;
758 }
759
760 //
761 // Some packets haven't been recycled. It is because either the
762 // user forgets to recycle the packets, or because the callback
763 // hasn't been called. Just leave it alone.
764 //
765 if (!IsListEmpty (&IpInstance->Delivered)) {
766 ;
767 }
768
769 if (IpInstance->Interface != NULL) {
770 RemoveEntryList (&IpInstance->AddrLink);
771 if (IpInstance->Interface->Arp != NULL) {
772 gBS->CloseProtocol (
773 IpInstance->Interface->ArpHandle,
774 &gEfiArpProtocolGuid,
775 gIp4DriverBinding.DriverBindingHandle,
776 IpInstance->Handle
777 );
778 }
779 Ip4FreeInterface (IpInstance->Interface, IpInstance);
780 IpInstance->Interface = NULL;
781 }
782
783 if (IpInstance->RouteTable != NULL) {
784 if (IpInstance->RouteTable->Next != NULL) {
785 Ip4FreeRouteTable (IpInstance->RouteTable->Next);
786 }
787
788 Ip4FreeRouteTable (IpInstance->RouteTable);
789 IpInstance->RouteTable = NULL;
790 }
791
792 if (IpInstance->EfiRouteTable != NULL) {
793 FreePool (IpInstance->EfiRouteTable);
794 IpInstance->EfiRouteTable = NULL;
795 IpInstance->EfiRouteCount = 0;
796 }
797
798 if (IpInstance->Groups != NULL) {
799 FreePool (IpInstance->Groups);
800 IpInstance->Groups = NULL;
801 IpInstance->GroupCount = 0;
802 }
803
804 NetMapClean (&IpInstance->TxTokens);
805
806 NetMapClean (&IpInstance->RxTokens);
807
808 return EFI_SUCCESS;
809 }
810
811
812 /**
813 Assigns an IPv4 address and subnet mask to this EFI IPv4 Protocol driver instance.
814
815 The Configure() function is used to set, change, or reset the operational
816 parameters and filter settings for this EFI IPv4 Protocol instance. Until these
817 parameters have been set, no network traffic can be sent or received by this
818 instance. Once the parameters have been reset (by calling this function with
819 IpConfigData set to NULL), no more traffic can be sent or received until these
820 parameters have been set again. Each EFI IPv4 Protocol instance can be started
821 and stopped independently of each other by enabling or disabling their receive
822 filter settings with the Configure() function.
823
824 When IpConfigData.UseDefaultAddress is set to FALSE, the new station address will
825 be appended as an alias address into the addresses list in the EFI IPv4 Protocol
826 driver. While set to TRUE, Configure() will trigger the EFI_IP4_CONFIG_PROTOCOL
827 to retrieve the default IPv4 address if it is not available yet. Clients could
828 frequently call GetModeData() to check the status to ensure that the default IPv4
829 address is ready.
830
831 If operational parameters are reset or changed, any pending transmit and receive
832 requests will be cancelled. Their completion token status will be set to EFI_ABORTED
833 and their events will be signaled.
834
835 @param[in] This Pointer to the EFI_IP4_PROTOCOL instance.
836 @param[in] IpConfigData Pointer to the EFI IPv4 Protocol configuration data structure.
837
838 @retval EFI_SUCCESS The driver instance was successfully opened.
839 @retval EFI_NO_MAPPING When using the default address, configuration (DHCP, BOOTP,
840 RARP, etc.) is not finished yet.
841 @retval EFI_INVALID_PARAMETER One or more of the following conditions is TRUE:
842 @retval EFI_UNSUPPORTED One or more of the following conditions is TRUE:
843 A configuration protocol (DHCP, BOOTP, RARP, etc.) could
844 not be located when clients choose to use the default IPv4
845 address. This EFI IPv4 Protocol implementation does not
846 support this requested filter or timeout setting.
847 @retval EFI_OUT_OF_RESOURCES The EFI IPv4 Protocol driver instance data could not be allocated.
848 @retval EFI_ALREADY_STARTED The interface is already open and must be stopped before the
849 IPv4 address or subnet mask can be changed. The interface must
850 also be stopped when switching to/from raw packet mode.
851 @retval EFI_DEVICE_ERROR An unexpected system or network error occurred. The EFI IPv4
852 Protocol driver instance is not opened.
853
854 **/
855 EFI_STATUS
856 EFIAPI
857 EfiIp4Configure (
858 IN EFI_IP4_PROTOCOL *This,
859 IN EFI_IP4_CONFIG_DATA *IpConfigData OPTIONAL
860 )
861 {
862 IP4_PROTOCOL *IpInstance;
863 EFI_IP4_CONFIG_DATA *Current;
864 EFI_TPL OldTpl;
865 EFI_STATUS Status;
866 BOOLEAN AddrOk;
867 IP4_ADDR IpAddress;
868 IP4_ADDR SubnetMask;
869
870 //
871 // First, validate the parameters
872 //
873 if (This == NULL) {
874 return EFI_INVALID_PARAMETER;
875 }
876
877 IpInstance = IP4_INSTANCE_FROM_PROTOCOL (This);
878 OldTpl = gBS->RaiseTPL (TPL_CALLBACK);
879
880 //
881 // Validate the configuration first.
882 //
883 if (IpConfigData != NULL) {
884
885 CopyMem (&IpAddress, &IpConfigData->StationAddress, sizeof (IP4_ADDR));
886 CopyMem (&SubnetMask, &IpConfigData->SubnetMask, sizeof (IP4_ADDR));
887
888 IpAddress = NTOHL (IpAddress);
889 SubnetMask = NTOHL (SubnetMask);
890
891 //
892 // Check whether the station address is a valid unicast address
893 //
894 if (!IpConfigData->UseDefaultAddress) {
895 AddrOk = Ip4StationAddressValid (IpAddress, SubnetMask);
896
897 if (!AddrOk) {
898 Status = EFI_INVALID_PARAMETER;
899 goto ON_EXIT;
900 }
901 }
902
903 //
904 // User can only update packet filters when already configured.
905 // If it wants to change the station address, it must configure(NULL)
906 // the instance first.
907 //
908 if (IpInstance->State == IP4_STATE_CONFIGED) {
909 Current = &IpInstance->ConfigData;
910
911 if (Current->UseDefaultAddress != IpConfigData->UseDefaultAddress) {
912 Status = EFI_ALREADY_STARTED;
913 goto ON_EXIT;
914 }
915
916 if (!Current->UseDefaultAddress &&
917 (!EFI_IP4_EQUAL (&Current->StationAddress, &IpConfigData->StationAddress) ||
918 !EFI_IP4_EQUAL (&Current->SubnetMask, &IpConfigData->SubnetMask))) {
919 Status = EFI_ALREADY_STARTED;
920 goto ON_EXIT;
921 }
922
923 if (Current->UseDefaultAddress && IP4_NO_MAPPING (IpInstance)) {
924 Status = EFI_NO_MAPPING;
925 goto ON_EXIT;
926 }
927 }
928 }
929
930 //
931 // Configure the instance or clean it up.
932 //
933 if (IpConfigData != NULL) {
934 Status = Ip4ConfigProtocol (IpInstance, IpConfigData);
935 } else {
936 Status = Ip4CleanProtocol (IpInstance);
937
938 //
939 // Don't change the state if it is DESTROY, consider the following
940 // valid sequence: Mnp is unloaded-->Ip Stopped-->Udp Stopped,
941 // Configure (ThisIp, NULL). If the state is changed to UNCONFIGED,
942 // the unload fails miserably.
943 //
944 if (IpInstance->State == IP4_STATE_CONFIGED) {
945 IpInstance->State = IP4_STATE_UNCONFIGED;
946 }
947 }
948
949 //
950 // Update the MNP's configure data. Ip4ServiceConfigMnp will check
951 // whether it is necessary to reconfigure the MNP.
952 //
953 Ip4ServiceConfigMnp (IpInstance->Service, FALSE);
954
955 ON_EXIT:
956 gBS->RestoreTPL (OldTpl);
957 return Status;
958
959 }
960
961
962 /**
963 Change the IP4 child's multicast setting. The caller
964 should make sure that the parameters is valid.
965
966 @param[in] IpInstance The IP4 child to change the setting.
967 @param[in] JoinFlag TRUE to join the group, otherwise leave it.
968 @param[in] GroupAddress The target group address.
969
970 @retval EFI_ALREADY_STARTED Want to join the group, but already a member of it.
971 @retval EFI_OUT_OF_RESOURCES Failed to allocate some resources.
972 @retval EFI_DEVICE_ERROR Failed to set the group configuraton.
973 @retval EFI_SUCCESS Successfully updated the group setting.
974 @retval EFI_NOT_FOUND Try to leave the group which it isn't a member.
975
976 **/
977 EFI_STATUS
978 Ip4Groups (
979 IN IP4_PROTOCOL *IpInstance,
980 IN BOOLEAN JoinFlag,
981 IN EFI_IPv4_ADDRESS *GroupAddress OPTIONAL
982 )
983 {
984 IP4_ADDR *Members;
985 IP4_ADDR Group;
986 UINT32 Index;
987
988 //
989 // Add it to the instance's Groups, and join the group by IGMP.
990 // IpInstance->Groups is in network byte order. IGMP operates in
991 // host byte order
992 //
993 if (JoinFlag) {
994 //
995 // When JoinFlag is TRUE, GroupAddress shouldn't be NULL.
996 //
997 ASSERT (GroupAddress != NULL);
998 CopyMem (&Group, GroupAddress, sizeof (IP4_ADDR));
999
1000 for (Index = 0; Index < IpInstance->GroupCount; Index++) {
1001 if (IpInstance->Groups[Index] == Group) {
1002 return EFI_ALREADY_STARTED;
1003 }
1004 }
1005
1006 Members = Ip4CombineGroups (IpInstance->Groups, IpInstance->GroupCount, Group);
1007
1008 if (Members == NULL) {
1009 return EFI_OUT_OF_RESOURCES;
1010 }
1011
1012 if (EFI_ERROR (Ip4JoinGroup (IpInstance, NTOHL (Group)))) {
1013 FreePool (Members);
1014 return EFI_DEVICE_ERROR;
1015 }
1016
1017 if (IpInstance->Groups != NULL) {
1018 FreePool (IpInstance->Groups);
1019 }
1020
1021 IpInstance->Groups = Members;
1022 IpInstance->GroupCount++;
1023
1024 return EFI_SUCCESS;
1025 }
1026
1027 //
1028 // Leave the group. Leave all the groups if GroupAddress is NULL.
1029 // Must iterate from the end to the beginning because the GroupCount
1030 // is decreamented each time an address is removed..
1031 //
1032 for (Index = IpInstance->GroupCount; Index > 0 ; Index--) {
1033 Group = IpInstance->Groups[Index - 1];
1034
1035 if ((GroupAddress == NULL) || EFI_IP4_EQUAL (&Group, GroupAddress)) {
1036 if (EFI_ERROR (Ip4LeaveGroup (IpInstance, NTOHL (Group)))) {
1037 return EFI_DEVICE_ERROR;
1038 }
1039
1040 Ip4RemoveGroupAddr (IpInstance->Groups, IpInstance->GroupCount, Group);
1041 IpInstance->GroupCount--;
1042
1043 if (IpInstance->GroupCount == 0) {
1044 ASSERT (Index == 1);
1045
1046 FreePool (IpInstance->Groups);
1047 IpInstance->Groups = NULL;
1048 }
1049
1050 if (GroupAddress != NULL) {
1051 return EFI_SUCCESS;
1052 }
1053 }
1054 }
1055
1056 return ((GroupAddress != NULL) ? EFI_NOT_FOUND : EFI_SUCCESS);
1057 }
1058
1059
1060 /**
1061 Joins and leaves multicast groups.
1062
1063 The Groups() function is used to join and leave multicast group sessions. Joining
1064 a group will enable reception of matching multicast packets. Leaving a group will
1065 disable the multicast packet reception.
1066
1067 If JoinFlag is FALSE and GroupAddress is NULL, all joined groups will be left.
1068
1069 @param[in] This Pointer to the EFI_IP4_PROTOCOL instance.
1070 @param[in] JoinFlag Set to TRUE to join the multicast group session and FALSE to leave.
1071 @param[in] GroupAddress Pointer to the IPv4 multicast address.
1072
1073 @retval EFI_SUCCESS The operation completed successfully.
1074 @retval EFI_INVALID_PARAMETER One or more of the following is TRUE:
1075 - This is NULL.
1076 - JoinFlag is TRUE and GroupAddress is NULL.
1077 - GroupAddress is not NULL and *GroupAddress is
1078 not a multicast IPv4 address.
1079 @retval EFI_NOT_STARTED This instance has not been started.
1080 @retval EFI_NO_MAPPING When using the default address, configuration (DHCP, BOOTP,
1081 RARP, etc.) is not finished yet.
1082 @retval EFI_OUT_OF_RESOURCES System resources could not be allocated.
1083 @retval EFI_UNSUPPORTED This EFI IPv4 Protocol implementation does not support multicast groups.
1084 @retval EFI_ALREADY_STARTED The group address is already in the group table (when
1085 JoinFlag is TRUE).
1086 @retval EFI_NOT_FOUND The group address is not in the group table (when JoinFlag is FALSE).
1087 @retval EFI_DEVICE_ERROR An unexpected system or network error occurred.
1088
1089 **/
1090 EFI_STATUS
1091 EFIAPI
1092 EfiIp4Groups (
1093 IN EFI_IP4_PROTOCOL *This,
1094 IN BOOLEAN JoinFlag,
1095 IN EFI_IPv4_ADDRESS *GroupAddress OPTIONAL
1096 )
1097 {
1098 IP4_PROTOCOL *IpInstance;
1099 EFI_STATUS Status;
1100 EFI_TPL OldTpl;
1101 IP4_ADDR McastIp;
1102
1103 if ((This == NULL) || (JoinFlag && (GroupAddress == NULL))) {
1104 return EFI_INVALID_PARAMETER;
1105 }
1106
1107 if (GroupAddress != NULL) {
1108 CopyMem (&McastIp, GroupAddress, sizeof (IP4_ADDR));
1109
1110 if (!IP4_IS_MULTICAST (NTOHL (McastIp))) {
1111 return EFI_INVALID_PARAMETER;
1112 }
1113 }
1114
1115 IpInstance = IP4_INSTANCE_FROM_PROTOCOL (This);
1116 OldTpl = gBS->RaiseTPL (TPL_CALLBACK);
1117
1118 if (IpInstance->State != IP4_STATE_CONFIGED) {
1119 Status = EFI_NOT_STARTED;
1120 goto ON_EXIT;
1121 }
1122
1123 if (IpInstance->ConfigData.UseDefaultAddress && IP4_NO_MAPPING (IpInstance)) {
1124 Status = EFI_NO_MAPPING;
1125 goto ON_EXIT;
1126 }
1127
1128 Status = Ip4Groups (IpInstance, JoinFlag, GroupAddress);
1129
1130 ON_EXIT:
1131 gBS->RestoreTPL (OldTpl);
1132 return Status;
1133 }
1134
1135
1136 /**
1137 Adds and deletes routing table entries.
1138
1139 The Routes() function adds a route to or deletes a route from the routing table.
1140
1141 Routes are determined by comparing the SubnetAddress with the destination IPv4
1142 address arithmetically AND-ed with the SubnetMask. The gateway address must be
1143 on the same subnet as the configured station address.
1144
1145 The default route is added with SubnetAddress and SubnetMask both set to 0.0.0.0.
1146 The default route matches all destination IPv4 addresses that do not match any
1147 other routes.
1148
1149 A GatewayAddress that is zero is a nonroute. Packets are sent to the destination
1150 IP address if it can be found in the ARP cache or on the local subnet. One automatic
1151 nonroute entry will be inserted into the routing table for outgoing packets that
1152 are addressed to a local subnet (gateway address of 0.0.0.0).
1153
1154 Each EFI IPv4 Protocol instance has its own independent routing table. Those EFI
1155 IPv4 Protocol instances that use the default IPv4 address will also have copies
1156 of the routing table that was provided by the EFI_IP4_CONFIG_PROTOCOL, and these
1157 copies will be updated whenever the EIF IPv4 Protocol driver reconfigures its
1158 instances. As a result, client modification to the routing table will be lost.
1159
1160 @param[in] This Pointer to the EFI_IP4_PROTOCOL instance.
1161 @param[in] DeleteRoute Set to TRUE to delete this route from the routing table. Set to
1162 FALSE to add this route to the routing table. SubnetAddress
1163 and SubnetMask are used as the key to each route entry.
1164 @param[in] SubnetAddress The address of the subnet that needs to be routed.
1165 @param[in] SubnetMask The subnet mask of SubnetAddress.
1166 @param[in] GatewayAddress The unicast gateway IPv4 address for this route.
1167
1168 @retval EFI_SUCCESS The operation completed successfully.
1169 @retval EFI_NOT_STARTED The driver instance has not been started.
1170 @retval EFI_NO_MAPPING When using the default address, configuration (DHCP, BOOTP,
1171 RARP, etc.) is not finished yet.
1172 @retval EFI_INVALID_PARAMETER One or more of the following conditions is TRUE:
1173 - This is NULL.
1174 - SubnetAddress is NULL.
1175 - SubnetMask is NULL.
1176 - GatewayAddress is NULL.
1177 - *SubnetAddress is not a valid subnet address.
1178 - *SubnetMask is not a valid subnet mask.
1179 - *GatewayAddress is not a valid unicast IPv4 address.
1180 @retval EFI_OUT_OF_RESOURCES Could not add the entry to the routing table.
1181 @retval EFI_NOT_FOUND This route is not in the routing table (when DeleteRoute is TRUE).
1182 @retval EFI_ACCESS_DENIED The route is already defined in the routing table (when
1183 DeleteRoute is FALSE).
1184
1185 **/
1186 EFI_STATUS
1187 EFIAPI
1188 EfiIp4Routes (
1189 IN EFI_IP4_PROTOCOL *This,
1190 IN BOOLEAN DeleteRoute,
1191 IN EFI_IPv4_ADDRESS *SubnetAddress,
1192 IN EFI_IPv4_ADDRESS *SubnetMask,
1193 IN EFI_IPv4_ADDRESS *GatewayAddress
1194 )
1195 {
1196 IP4_PROTOCOL *IpInstance;
1197 IP4_INTERFACE *IpIf;
1198 IP4_ADDR Dest;
1199 IP4_ADDR Netmask;
1200 IP4_ADDR Nexthop;
1201 EFI_STATUS Status;
1202 EFI_TPL OldTpl;
1203
1204 //
1205 // First, validate the parameters
1206 //
1207 if ((This == NULL) || (SubnetAddress == NULL) ||
1208 (SubnetMask == NULL) || (GatewayAddress == NULL)) {
1209 return EFI_INVALID_PARAMETER;
1210 }
1211
1212 IpInstance = IP4_INSTANCE_FROM_PROTOCOL (This);
1213 OldTpl = gBS->RaiseTPL (TPL_CALLBACK);
1214
1215 if (IpInstance->State != IP4_STATE_CONFIGED) {
1216 Status = EFI_NOT_STARTED;
1217 goto ON_EXIT;
1218 }
1219
1220 if (IpInstance->ConfigData.UseDefaultAddress && IP4_NO_MAPPING (IpInstance)) {
1221 Status = EFI_NO_MAPPING;
1222 goto ON_EXIT;
1223 }
1224
1225 CopyMem (&Dest, SubnetAddress, sizeof (IP4_ADDR));
1226 CopyMem (&Netmask, SubnetMask, sizeof (IP4_ADDR));
1227 CopyMem (&Nexthop, GatewayAddress, sizeof (IP4_ADDR));
1228
1229 Dest = NTOHL (Dest);
1230 Netmask = NTOHL (Netmask);
1231 Nexthop = NTOHL (Nexthop);
1232
1233 IpIf = IpInstance->Interface;
1234
1235 if (!IP4_IS_VALID_NETMASK (Netmask)) {
1236 Status = EFI_INVALID_PARAMETER;
1237 goto ON_EXIT;
1238 }
1239
1240 //
1241 // the gateway address must be a unicast on the connected network if not zero.
1242 //
1243 if ((Nexthop != IP4_ALLZERO_ADDRESS) &&
1244 (!IP4_NET_EQUAL (Nexthop, IpIf->Ip, IpIf->SubnetMask) ||
1245 IP4_IS_BROADCAST (Ip4GetNetCast (Nexthop, IpIf)))) {
1246
1247 Status = EFI_INVALID_PARAMETER;
1248 goto ON_EXIT;
1249 }
1250
1251 if (DeleteRoute) {
1252 Status = Ip4DelRoute (IpInstance->RouteTable, Dest, Netmask, Nexthop);
1253 } else {
1254 Status = Ip4AddRoute (IpInstance->RouteTable, Dest, Netmask, Nexthop);
1255 }
1256
1257 ON_EXIT:
1258 gBS->RestoreTPL (OldTpl);
1259 return Status;
1260 }
1261
1262
1263 /**
1264 Check whether the user's token or event has already
1265 been enqueued on IP4's list.
1266
1267 @param[in] Map The container of either user's transmit or receive
1268 token.
1269 @param[in] Item Current item to check against.
1270 @param[in] Context The Token to check againist.
1271
1272 @retval EFI_ACCESS_DENIED The token or event has already been enqueued in IP.
1273 @retval EFI_SUCCESS The current item isn't the same token/event as the
1274 context.
1275
1276 **/
1277 EFI_STATUS
1278 EFIAPI
1279 Ip4TokenExist (
1280 IN NET_MAP *Map,
1281 IN NET_MAP_ITEM *Item,
1282 IN VOID *Context
1283 )
1284 {
1285 EFI_IP4_COMPLETION_TOKEN *Token;
1286 EFI_IP4_COMPLETION_TOKEN *TokenInItem;
1287
1288 Token = (EFI_IP4_COMPLETION_TOKEN *) Context;
1289 TokenInItem = (EFI_IP4_COMPLETION_TOKEN *) Item->Key;
1290
1291 if ((Token == TokenInItem) || (Token->Event == TokenInItem->Event)) {
1292 return EFI_ACCESS_DENIED;
1293 }
1294
1295 return EFI_SUCCESS;
1296 }
1297
1298 /**
1299 Validate the user's token against current station address.
1300
1301 @param[in] Token User's token to validate.
1302 @param[in] IpIf The IP4 child's interface.
1303 @param[in] RawData Set to TRUE to send unformatted packets.
1304
1305 @retval EFI_INVALID_PARAMETER Some parameters are invalid.
1306 @retval EFI_BAD_BUFFER_SIZE The user's option/data is too long.
1307 @retval EFI_SUCCESS The token is valid.
1308
1309 **/
1310 EFI_STATUS
1311 Ip4TxTokenValid (
1312 IN EFI_IP4_COMPLETION_TOKEN *Token,
1313 IN IP4_INTERFACE *IpIf,
1314 IN BOOLEAN RawData
1315 )
1316 {
1317 EFI_IP4_TRANSMIT_DATA *TxData;
1318 EFI_IP4_OVERRIDE_DATA *Override;
1319 IP4_ADDR Src;
1320 IP4_ADDR Gateway;
1321 UINT32 Offset;
1322 UINT32 Index;
1323 UINT32 HeadLen;
1324
1325 if ((Token == NULL) || (Token->Event == NULL) || (Token->Packet.TxData == NULL)) {
1326 return EFI_INVALID_PARAMETER;
1327 }
1328
1329 TxData = Token->Packet.TxData;
1330
1331 //
1332 // Check the fragment table: no empty fragment, and length isn't bogus.
1333 //
1334 if ((TxData->TotalDataLength == 0) || (TxData->FragmentCount == 0)) {
1335 return EFI_INVALID_PARAMETER;
1336 }
1337
1338 Offset = TxData->TotalDataLength;
1339
1340 if (Offset > IP4_MAX_PACKET_SIZE) {
1341 return EFI_BAD_BUFFER_SIZE;
1342 }
1343
1344 for (Index = 0; Index < TxData->FragmentCount; Index++) {
1345 if ((TxData->FragmentTable[Index].FragmentBuffer == NULL) ||
1346 (TxData->FragmentTable[Index].FragmentLength == 0)) {
1347
1348 return EFI_INVALID_PARAMETER;
1349 }
1350
1351 Offset -= TxData->FragmentTable[Index].FragmentLength;
1352 }
1353
1354 if (Offset != 0) {
1355 return EFI_INVALID_PARAMETER;
1356 }
1357
1358 //
1359 // NOTE that OptionsLength/OptionsBuffer/OverrideData are ignored if RawData
1360 // is TRUE.
1361 //
1362 if (RawData) {
1363 return EFI_SUCCESS;
1364 }
1365
1366 //
1367 // Check the IP options: no more than 40 bytes and format is OK
1368 //
1369 if (TxData->OptionsLength != 0) {
1370 if ((TxData->OptionsLength > 40) || (TxData->OptionsBuffer == NULL)) {
1371 return EFI_INVALID_PARAMETER;
1372 }
1373
1374 if (!Ip4OptionIsValid (TxData->OptionsBuffer, TxData->OptionsLength, FALSE)) {
1375 return EFI_INVALID_PARAMETER;
1376 }
1377 }
1378
1379 //
1380 // Check the source and gateway: they must be a valid unicast.
1381 // Gateway must also be on the connected network.
1382 //
1383 if (TxData->OverrideData != NULL) {
1384 Override = TxData->OverrideData;
1385
1386 CopyMem (&Src, &Override->SourceAddress, sizeof (IP4_ADDR));
1387 CopyMem (&Gateway, &Override->GatewayAddress, sizeof (IP4_ADDR));
1388
1389 Src = NTOHL (Src);
1390 Gateway = NTOHL (Gateway);
1391
1392 if ((NetGetIpClass (Src) > IP4_ADDR_CLASSC) ||
1393 (Src == IP4_ALLONE_ADDRESS) ||
1394 IP4_IS_BROADCAST (Ip4GetNetCast (Src, IpIf))) {
1395
1396 return EFI_INVALID_PARAMETER;
1397 }
1398
1399 //
1400 // If gateway isn't zero, it must be a unicast address, and
1401 // on the connected network.
1402 //
1403 if ((Gateway != IP4_ALLZERO_ADDRESS) &&
1404 ((NetGetIpClass (Gateway) > IP4_ADDR_CLASSC) ||
1405 !IP4_NET_EQUAL (Gateway, IpIf->Ip, IpIf->SubnetMask) ||
1406 IP4_IS_BROADCAST (Ip4GetNetCast (Gateway, IpIf)))) {
1407
1408 return EFI_INVALID_PARAMETER;
1409 }
1410 }
1411
1412 //
1413 // Check the packet length: Head length and packet length all has a limit
1414 //
1415 HeadLen = sizeof (IP4_HEAD) + ((TxData->OptionsLength + 3) &~0x03);
1416
1417 if ((HeadLen > IP4_MAX_HEADLEN) ||
1418 (TxData->TotalDataLength + HeadLen > IP4_MAX_PACKET_SIZE)) {
1419
1420 return EFI_BAD_BUFFER_SIZE;
1421 }
1422
1423 return EFI_SUCCESS;
1424 }
1425
1426
1427 /**
1428 The callback function for the net buffer which wraps the user's
1429 transmit token. Although it seems this function is pretty simple,
1430 there are some subtle things.
1431 When user requests the IP to transmit a packet by passing it a
1432 token, the token is wrapped in an IP4_TXTOKEN_WRAP and the data
1433 is wrapped in an net buffer. the net buffer's Free function is
1434 set to Ip4FreeTxToken. The Token and token wrap are added to the
1435 IP child's TxToken map. Then the buffer is passed to Ip4Output for
1436 transmission. If something error happened before that, the buffer
1437 is freed, which in turn will free the token wrap. The wrap may
1438 have been added to the TxToken map or not, and the user's event
1439 shouldn't be fired because we are still in the EfiIp4Transmit. If
1440 the buffer has been sent by Ip4Output, it should be removed from
1441 the TxToken map and user's event signaled. The token wrap and buffer
1442 are bound together. Check the comments in Ip4Output for information
1443 about IP fragmentation.
1444
1445 @param[in] Context The token's wrap.
1446
1447 **/
1448 VOID
1449 EFIAPI
1450 Ip4FreeTxToken (
1451 IN VOID *Context
1452 )
1453 {
1454 IP4_TXTOKEN_WRAP *Wrap;
1455 NET_MAP_ITEM *Item;
1456
1457 Wrap = (IP4_TXTOKEN_WRAP *) Context;
1458
1459 //
1460 // Signal IpSecRecycleEvent to inform IPsec free the memory
1461 //
1462 if (Wrap->IpSecRecycleSignal != NULL) {
1463 gBS->SignalEvent (Wrap->IpSecRecycleSignal);
1464 }
1465
1466 //
1467 // Find the token in the instance's map. EfiIp4Transmit put the
1468 // token to the map. If that failed, NetMapFindKey will return NULL.
1469 //
1470 Item = NetMapFindKey (&Wrap->IpInstance->TxTokens, Wrap->Token);
1471
1472 if (Item != NULL) {
1473 NetMapRemoveItem (&Wrap->IpInstance->TxTokens, Item, NULL);
1474 }
1475
1476 if (Wrap->Sent) {
1477 gBS->SignalEvent (Wrap->Token->Event);
1478
1479 //
1480 // Dispatch the DPC queued by the NotifyFunction of Token->Event.
1481 //
1482 DispatchDpc ();
1483 }
1484
1485 FreePool (Wrap);
1486 }
1487
1488
1489 /**
1490 The callback function to Ip4Output to update the transmit status.
1491
1492 @param Ip4Instance The Ip4Instance that request the transmit.
1493 @param Packet The user's transmit request.
1494 @param IoStatus The result of the transmission.
1495 @param Flag Not used during transmission.
1496 @param Context The token's wrap.
1497
1498 **/
1499 VOID
1500 Ip4OnPacketSent (
1501 IP4_PROTOCOL *Ip4Instance,
1502 NET_BUF *Packet,
1503 EFI_STATUS IoStatus,
1504 UINT32 Flag,
1505 VOID *Context
1506 )
1507 {
1508 IP4_TXTOKEN_WRAP *Wrap;
1509
1510 //
1511 // This is the transmission request from upper layer,
1512 // not the IP4 driver itself.
1513 //
1514 ASSERT (Ip4Instance != NULL);
1515
1516 //
1517 // The first fragment of the packet has been sent. Update
1518 // the token's status. That is, if fragmented, the transmit's
1519 // status is the first fragment's status. The Wrap will be
1520 // release when all the fragments are release. Check the comments
1521 // in Ip4FreeTxToken and Ip4Output for information.
1522 //
1523 Wrap = (IP4_TXTOKEN_WRAP *) Context;
1524 Wrap->Token->Status = IoStatus;
1525
1526 NetbufFree (Wrap->Packet);
1527 }
1528
1529
1530 /**
1531 Places outgoing data packets into the transmit queue.
1532
1533 The Transmit() function places a sending request in the transmit queue of this
1534 EFI IPv4 Protocol instance. Whenever the packet in the token is sent out or some
1535 errors occur, the event in the token will be signaled and the status is updated.
1536
1537 @param[in] This Pointer to the EFI_IP4_PROTOCOL instance.
1538 @param[in] Token Pointer to the transmit token.
1539
1540 @retval EFI_SUCCESS The data has been queued for transmission.
1541 @retval EFI_NOT_STARTED This instance has not been started.
1542 @retval EFI_NO_MAPPING When using the default address, configuration (DHCP, BOOTP,
1543 RARP, etc.) is not finished yet.
1544 @retval EFI_INVALID_PARAMETER One or more pameters are invalid.
1545 @retval EFI_ACCESS_DENIED The transmit completion token with the same Token.Event
1546 was already in the transmit queue.
1547 @retval EFI_NOT_READY The completion token could not be queued because the transmit
1548 queue is full.
1549 @retval EFI_NOT_FOUND Not route is found to destination address.
1550 @retval EFI_OUT_OF_RESOURCES Could not queue the transmit data.
1551 @retval EFI_BUFFER_TOO_SMALL Token.Packet.TxData.TotalDataLength is too
1552 short to transmit.
1553 @retval EFI_BAD_BUFFER_SIZE The length of the IPv4 header + option length + total data length is
1554 greater than MTU (or greater than the maximum packet size if
1555 Token.Packet.TxData.OverrideData.
1556 DoNotFragment is TRUE).
1557
1558 **/
1559 EFI_STATUS
1560 EFIAPI
1561 EfiIp4Transmit (
1562 IN EFI_IP4_PROTOCOL *This,
1563 IN EFI_IP4_COMPLETION_TOKEN *Token
1564 )
1565 {
1566 IP4_SERVICE *IpSb;
1567 IP4_PROTOCOL *IpInstance;
1568 IP4_INTERFACE *IpIf;
1569 IP4_TXTOKEN_WRAP *Wrap;
1570 EFI_IP4_TRANSMIT_DATA *TxData;
1571 EFI_IP4_CONFIG_DATA *Config;
1572 EFI_IP4_OVERRIDE_DATA *Override;
1573 IP4_HEAD Head;
1574 IP4_ADDR GateWay;
1575 EFI_STATUS Status;
1576 EFI_TPL OldTpl;
1577 BOOLEAN DontFragment;
1578 UINT32 HeadLen;
1579 UINT8 RawHdrLen;
1580 UINT32 OptionsLength;
1581 UINT8 *OptionsBuffer;
1582 VOID *FirstFragment;
1583
1584 if (This == NULL) {
1585 return EFI_INVALID_PARAMETER;
1586 }
1587
1588 IpInstance = IP4_INSTANCE_FROM_PROTOCOL (This);
1589
1590 if (IpInstance->State != IP4_STATE_CONFIGED) {
1591 return EFI_NOT_STARTED;
1592 }
1593
1594 OldTpl = gBS->RaiseTPL (TPL_CALLBACK);
1595
1596 IpSb = IpInstance->Service;
1597 IpIf = IpInstance->Interface;
1598 Config = &IpInstance->ConfigData;
1599
1600 if (Config->UseDefaultAddress && IP4_NO_MAPPING (IpInstance)) {
1601 Status = EFI_NO_MAPPING;
1602 goto ON_EXIT;
1603 }
1604
1605 //
1606 // make sure that token is properly formated
1607 //
1608 Status = Ip4TxTokenValid (Token, IpIf, Config->RawData);
1609
1610 if (EFI_ERROR (Status)) {
1611 goto ON_EXIT;
1612 }
1613
1614 //
1615 // Check whether the token or signal already existed.
1616 //
1617 if (EFI_ERROR (NetMapIterate (&IpInstance->TxTokens, Ip4TokenExist, Token))) {
1618 Status = EFI_ACCESS_DENIED;
1619 goto ON_EXIT;
1620 }
1621
1622 //
1623 // Build the IP header, need to fill in the Tos, TotalLen, Id,
1624 // fragment, Ttl, protocol, Src, and Dst.
1625 //
1626 TxData = Token->Packet.TxData;
1627
1628 FirstFragment = NULL;
1629
1630 if (Config->RawData) {
1631 //
1632 // When RawData is TRUE, first buffer in FragmentTable points to a raw
1633 // IPv4 fragment including IPv4 header and options.
1634 //
1635 FirstFragment = TxData->FragmentTable[0].FragmentBuffer;
1636 CopyMem (&RawHdrLen, FirstFragment, sizeof (UINT8));
1637
1638 RawHdrLen = (UINT8) (RawHdrLen & 0x0f);
1639 if (RawHdrLen < 5) {
1640 Status = EFI_INVALID_PARAMETER;
1641 goto ON_EXIT;
1642 }
1643
1644 RawHdrLen = (UINT8) (RawHdrLen << 2);
1645
1646 CopyMem (&Head, FirstFragment, IP4_MIN_HEADLEN);
1647
1648 Ip4NtohHead (&Head);
1649 HeadLen = 0;
1650 DontFragment = IP4_DO_NOT_FRAGMENT (Head.Fragment);
1651
1652 if (!DontFragment) {
1653 Status = EFI_INVALID_PARAMETER;
1654 goto ON_EXIT;
1655 }
1656
1657 GateWay = IP4_ALLZERO_ADDRESS;
1658
1659 //
1660 // Get IPv4 options from first fragment.
1661 //
1662 if (RawHdrLen == IP4_MIN_HEADLEN) {
1663 OptionsLength = 0;
1664 OptionsBuffer = NULL;
1665 } else {
1666 OptionsLength = RawHdrLen - IP4_MIN_HEADLEN;
1667 OptionsBuffer = (UINT8 *) FirstFragment + IP4_MIN_HEADLEN;
1668 }
1669
1670 //
1671 // Trim off IPv4 header and options from first fragment.
1672 //
1673 TxData->FragmentTable[0].FragmentBuffer = (UINT8 *) FirstFragment + RawHdrLen;
1674 TxData->FragmentTable[0].FragmentLength = TxData->FragmentTable[0].FragmentLength - RawHdrLen;
1675 } else {
1676 CopyMem (&Head.Dst, &TxData->DestinationAddress, sizeof (IP4_ADDR));
1677 Head.Dst = NTOHL (Head.Dst);
1678
1679 if (TxData->OverrideData != NULL) {
1680 Override = TxData->OverrideData;
1681 Head.Protocol = Override->Protocol;
1682 Head.Tos = Override->TypeOfService;
1683 Head.Ttl = Override->TimeToLive;
1684 DontFragment = Override->DoNotFragment;
1685
1686 CopyMem (&Head.Src, &Override->SourceAddress, sizeof (IP4_ADDR));
1687 CopyMem (&GateWay, &Override->GatewayAddress, sizeof (IP4_ADDR));
1688
1689 Head.Src = NTOHL (Head.Src);
1690 GateWay = NTOHL (GateWay);
1691 } else {
1692 Head.Src = IpIf->Ip;
1693 GateWay = IP4_ALLZERO_ADDRESS;
1694 Head.Protocol = Config->DefaultProtocol;
1695 Head.Tos = Config->TypeOfService;
1696 Head.Ttl = Config->TimeToLive;
1697 DontFragment = Config->DoNotFragment;
1698 }
1699
1700 Head.Fragment = IP4_HEAD_FRAGMENT_FIELD (DontFragment, FALSE, 0);
1701 HeadLen = (TxData->OptionsLength + 3) & (~0x03);
1702
1703 OptionsLength = TxData->OptionsLength;
1704 OptionsBuffer = (UINT8 *) (TxData->OptionsBuffer);
1705 }
1706
1707 //
1708 // If don't fragment and fragment needed, return error
1709 //
1710 if (DontFragment && (TxData->TotalDataLength + HeadLen > IpSb->MaxPacketSize)) {
1711 Status = EFI_BAD_BUFFER_SIZE;
1712 goto ON_EXIT;
1713 }
1714
1715 //
1716 // OK, it survives all the validation check. Wrap the token in
1717 // a IP4_TXTOKEN_WRAP and the data in a netbuf
1718 //
1719 Status = EFI_OUT_OF_RESOURCES;
1720 Wrap = AllocateZeroPool (sizeof (IP4_TXTOKEN_WRAP));
1721 if (Wrap == NULL) {
1722 goto ON_EXIT;
1723 }
1724
1725 Wrap->IpInstance = IpInstance;
1726 Wrap->Token = Token;
1727 Wrap->Sent = FALSE;
1728 Wrap->Life = IP4_US_TO_SEC (Config->TransmitTimeout);
1729 Wrap->Packet = NetbufFromExt (
1730 (NET_FRAGMENT *) TxData->FragmentTable,
1731 TxData->FragmentCount,
1732 IP4_MAX_HEADLEN,
1733 0,
1734 Ip4FreeTxToken,
1735 Wrap
1736 );
1737
1738 if (Wrap->Packet == NULL) {
1739 FreePool (Wrap);
1740 goto ON_EXIT;
1741 }
1742
1743 Token->Status = EFI_NOT_READY;
1744
1745 if (EFI_ERROR (NetMapInsertTail (&IpInstance->TxTokens, Token, Wrap))) {
1746 //
1747 // NetbufFree will call Ip4FreeTxToken, which in turn will
1748 // free the IP4_TXTOKEN_WRAP. Now, the token wrap hasn't been
1749 // enqueued.
1750 //
1751 if (Config->RawData) {
1752 //
1753 // Restore pointer of first fragment in RawData mode.
1754 //
1755 TxData->FragmentTable[0].FragmentBuffer = (UINT8 *) FirstFragment;
1756 }
1757
1758 NetbufFree (Wrap->Packet);
1759 goto ON_EXIT;
1760 }
1761
1762 //
1763 // Mark the packet sent before output it. Mark it not sent again if the
1764 // returned status is not EFI_SUCCESS;
1765 //
1766 Wrap->Sent = TRUE;
1767
1768 Status = Ip4Output (
1769 IpSb,
1770 IpInstance,
1771 Wrap->Packet,
1772 &Head,
1773 OptionsBuffer,
1774 OptionsLength,
1775 GateWay,
1776 Ip4OnPacketSent,
1777 Wrap
1778 );
1779
1780 if (EFI_ERROR (Status)) {
1781 Wrap->Sent = FALSE;
1782
1783 if (Config->RawData) {
1784 //
1785 // Restore pointer of first fragment in RawData mode.
1786 //
1787 TxData->FragmentTable[0].FragmentBuffer = (UINT8 *) FirstFragment;
1788 }
1789
1790 NetbufFree (Wrap->Packet);
1791 }
1792
1793 if (Config->RawData) {
1794 //
1795 // Restore pointer of first fragment in RawData mode.
1796 //
1797 TxData->FragmentTable[0].FragmentBuffer = (UINT8 *) FirstFragment;
1798 }
1799
1800 ON_EXIT:
1801 gBS->RestoreTPL (OldTpl);
1802 return Status;
1803 }
1804
1805
1806 /**
1807 Places a receiving request into the receiving queue.
1808
1809 The Receive() function places a completion token into the receive packet queue.
1810 This function is always asynchronous.
1811
1812 The Token.Event field in the completion token must be filled in by the caller
1813 and cannot be NULL. When the receive operation completes, the EFI IPv4 Protocol
1814 driver updates the Token.Status and Token.Packet.RxData fields and the Token.Event
1815 is signaled.
1816
1817 @param[in] This Pointer to the EFI_IP4_PROTOCOL instance.
1818 @param[in] Token Pointer to a token that is associated with the receive data descriptor.
1819
1820 @retval EFI_SUCCESS The receive completion token was cached.
1821 @retval EFI_NOT_STARTED This EFI IPv4 Protocol instance has not been started.
1822 @retval EFI_NO_MAPPING When using the default address, configuration (DHCP, BOOTP, RARP, etc.)
1823 is not finished yet.
1824 @retval EFI_INVALID_PARAMETER One or more of the following conditions is TRUE:
1825 - This is NULL.
1826 - Token is NULL.
1827 - Token.Event is NULL.
1828 @retval EFI_OUT_OF_RESOURCES The receive completion token could not be queued due to a lack of system
1829 resources (usually memory).
1830 @retval EFI_DEVICE_ERROR An unexpected system or network error occurred.
1831 The EFI IPv4 Protocol instance has been reset to startup defaults.
1832 EFI_ACCESS_DENIED The receive completion token with the same Token.Event was already
1833 in the receive queue.
1834 @retval EFI_NOT_READY The receive request could not be queued because the receive queue is full.
1835 @retval EFI_ICMP_ERROR An ICMP error packet was received.
1836
1837 **/
1838 EFI_STATUS
1839 EFIAPI
1840 EfiIp4Receive (
1841 IN EFI_IP4_PROTOCOL *This,
1842 IN EFI_IP4_COMPLETION_TOKEN *Token
1843 )
1844 {
1845 IP4_PROTOCOL *IpInstance;
1846 EFI_STATUS Status;
1847 EFI_TPL OldTpl;
1848
1849 //
1850 // First validate the parameters
1851 //
1852 if ((This == NULL) || (Token == NULL) || (Token->Event == NULL)) {
1853 return EFI_INVALID_PARAMETER;
1854 }
1855
1856 IpInstance = IP4_INSTANCE_FROM_PROTOCOL (This);
1857
1858 OldTpl = gBS->RaiseTPL (TPL_CALLBACK);
1859
1860 if (IpInstance->State != IP4_STATE_CONFIGED) {
1861 Status = EFI_NOT_STARTED;
1862 goto ON_EXIT;
1863 }
1864
1865 //
1866 // Check whether the toke is already on the receive queue.
1867 //
1868 Status = NetMapIterate (&IpInstance->RxTokens, Ip4TokenExist, Token);
1869
1870 if (EFI_ERROR (Status)) {
1871 Status = EFI_ACCESS_DENIED;
1872 goto ON_EXIT;
1873 }
1874
1875 //
1876 // Queue the token then check whether there is pending received packet.
1877 //
1878 Status = NetMapInsertTail (&IpInstance->RxTokens, Token, NULL);
1879
1880 if (EFI_ERROR (Status)) {
1881 goto ON_EXIT;
1882 }
1883
1884 Status = Ip4InstanceDeliverPacket (IpInstance);
1885
1886 //
1887 // Dispatch the DPC queued by the NotifyFunction of this instane's receive
1888 // event.
1889 //
1890 DispatchDpc ();
1891
1892 ON_EXIT:
1893 gBS->RestoreTPL (OldTpl);
1894 return Status;
1895 }
1896
1897
1898 /**
1899 Cancel the transmitted but not recycled packet. If a matching
1900 token is found, it will call Ip4CancelPacket to cancel the
1901 packet. Ip4CancelPacket will cancel all the fragments of the
1902 packet. When all the fragments are freed, the IP4_TXTOKEN_WRAP
1903 will be deleted from the Map, and user's event signalled.
1904 Because Ip4CancelPacket and other functions are all called in
1905 line, so, after Ip4CancelPacket returns, the Item has been freed.
1906
1907 @param[in] Map The IP4 child's transmit queue.
1908 @param[in] Item The current transmitted packet to test.
1909 @param[in] Context The user's token to cancel.
1910
1911 @retval EFI_SUCCESS Continue to check the next Item.
1912 @retval EFI_ABORTED The user's Token (Token != NULL) is cancelled.
1913
1914 **/
1915 EFI_STATUS
1916 EFIAPI
1917 Ip4CancelTxTokens (
1918 IN NET_MAP *Map,
1919 IN NET_MAP_ITEM *Item,
1920 IN VOID *Context
1921 )
1922 {
1923 EFI_IP4_COMPLETION_TOKEN *Token;
1924 IP4_TXTOKEN_WRAP *Wrap;
1925
1926 Token = (EFI_IP4_COMPLETION_TOKEN *) Context;
1927
1928 //
1929 // Return EFI_SUCCESS to check the next item in the map if
1930 // this one doesn't match.
1931 //
1932 if ((Token != NULL) && (Token != Item->Key)) {
1933 return EFI_SUCCESS;
1934 }
1935
1936 Wrap = (IP4_TXTOKEN_WRAP *) Item->Value;
1937 ASSERT (Wrap != NULL);
1938
1939 //
1940 // Don't access the Item, Wrap and Token's members after this point.
1941 // Item and wrap has been freed. And we no longer own the Token.
1942 //
1943 Ip4CancelPacket (Wrap->IpInstance->Interface, Wrap->Packet, EFI_ABORTED);
1944
1945 //
1946 // If only one item is to be cancel, return EFI_ABORTED to stop
1947 // iterating the map any more.
1948 //
1949 if (Token != NULL) {
1950 return EFI_ABORTED;
1951 }
1952
1953 return EFI_SUCCESS;
1954 }
1955
1956
1957 /**
1958 Cancel the receive request. This is quiet simple, because
1959 it is only enqueued in our local receive map.
1960
1961 @param[in] Map The IP4 child's receive queue.
1962 @param[in] Item Current receive request to cancel.
1963 @param[in] Context The user's token to cancel.
1964
1965 @retval EFI_SUCCESS Continue to check the next receive request on the
1966 queue.
1967 @retval EFI_ABORTED The user's token (token != NULL) has been
1968 cancelled.
1969
1970 **/
1971 EFI_STATUS
1972 EFIAPI
1973 Ip4CancelRxTokens (
1974 IN NET_MAP *Map,
1975 IN NET_MAP_ITEM *Item,
1976 IN VOID *Context
1977 )
1978 {
1979 EFI_IP4_COMPLETION_TOKEN *Token;
1980 EFI_IP4_COMPLETION_TOKEN *This;
1981
1982 Token = (EFI_IP4_COMPLETION_TOKEN *) Context;
1983 This = Item->Key;
1984
1985 if ((Token != NULL) && (Token != This)) {
1986 return EFI_SUCCESS;
1987 }
1988
1989 NetMapRemoveItem (Map, Item, NULL);
1990
1991 This->Status = EFI_ABORTED;
1992 This->Packet.RxData = NULL;
1993 gBS->SignalEvent (This->Event);
1994
1995 if (Token != NULL) {
1996 return EFI_ABORTED;
1997 }
1998
1999 return EFI_SUCCESS;
2000 }
2001
2002
2003 /**
2004 Cancel the user's receive/transmit request.
2005
2006 @param[in] IpInstance The IP4 child.
2007 @param[in] Token The token to cancel. If NULL, all token will be
2008 cancelled.
2009
2010 @retval EFI_SUCCESS The token is cancelled.
2011 @retval EFI_NOT_FOUND The token isn't found on either the
2012 transmit/receive queue.
2013 @retval EFI_DEVICE_ERROR Not all token is cancelled when Token is NULL.
2014
2015 **/
2016 EFI_STATUS
2017 Ip4Cancel (
2018 IN IP4_PROTOCOL *IpInstance,
2019 IN EFI_IP4_COMPLETION_TOKEN *Token OPTIONAL
2020 )
2021 {
2022 EFI_STATUS Status;
2023
2024 //
2025 // First check the transmitted packet. Ip4CancelTxTokens returns
2026 // EFI_ABORTED to mean that the token has been cancelled when
2027 // token != NULL. So, return EFI_SUCCESS for this condition.
2028 //
2029 Status = NetMapIterate (&IpInstance->TxTokens, Ip4CancelTxTokens, Token);
2030
2031 if (EFI_ERROR (Status)) {
2032 if ((Token != NULL) && (Status == EFI_ABORTED)) {
2033 return EFI_SUCCESS;
2034 }
2035
2036 return Status;
2037 }
2038
2039 //
2040 // Check the receive queue. Ip4CancelRxTokens also returns EFI_ABORT
2041 // for Token!=NULL and it is cancelled.
2042 //
2043 Status = NetMapIterate (&IpInstance->RxTokens, Ip4CancelRxTokens, Token);
2044 //
2045 // Dispatch the DPCs queued by the NotifyFunction of the canceled rx token's
2046 // events.
2047 //
2048 DispatchDpc ();
2049 if (EFI_ERROR (Status)) {
2050 if ((Token != NULL) && (Status == EFI_ABORTED)) {
2051 return EFI_SUCCESS;
2052 }
2053
2054 return Status;
2055 }
2056
2057 //
2058 // OK, if the Token is found when Token != NULL, the NetMapIterate
2059 // will return EFI_ABORTED, which has been interrupted as EFI_SUCCESS.
2060 //
2061 if (Token != NULL) {
2062 return EFI_NOT_FOUND;
2063 }
2064
2065 //
2066 // If Token == NULL, cancel all the tokens. return error if no
2067 // all of them are cancelled.
2068 //
2069 if (!NetMapIsEmpty (&IpInstance->TxTokens) ||
2070 !NetMapIsEmpty (&IpInstance->RxTokens)) {
2071
2072 return EFI_DEVICE_ERROR;
2073 }
2074
2075 return EFI_SUCCESS;
2076 }
2077
2078
2079 /**
2080 Abort an asynchronous transmit or receive request.
2081
2082 The Cancel() function is used to abort a pending transmit or receive request.
2083 If the token is in the transmit or receive request queues, after calling this
2084 function, Token->Status will be set to EFI_ABORTED and then Token->Event will
2085 be signaled. If the token is not in one of the queues, which usually means the
2086 asynchronous operation has completed, this function will not signal the token
2087 and EFI_NOT_FOUND is returned.
2088
2089 @param[in] This Pointer to the EFI_IP4_PROTOCOL instance.
2090 @param[in] Token Pointer to a token that has been issued by
2091 EFI_IP4_PROTOCOL.Transmit() or
2092 EFI_IP4_PROTOCOL.Receive(). If NULL, all pending
2093 tokens are aborted. Type EFI_IP4_COMPLETION_TOKEN is
2094 defined in EFI_IP4_PROTOCOL.Transmit().
2095
2096 @retval EFI_SUCCESS The asynchronous I/O request was aborted and
2097 Token.->Event was signaled. When Token is NULL, all
2098 pending requests were aborted and their events were signaled.
2099 @retval EFI_INVALID_PARAMETER This is NULL.
2100 @retval EFI_NOT_STARTED This instance has not been started.
2101 @retval EFI_NO_MAPPING When using the default address, configuration (DHCP, BOOTP,
2102 RARP, etc.) is not finished yet.
2103 @retval EFI_NOT_FOUND When Token is not NULL, the asynchronous I/O request was
2104 not found in the transmit or receive queue. It has either completed
2105 or was not issued by Transmit() and Receive().
2106
2107 **/
2108 EFI_STATUS
2109 EFIAPI
2110 EfiIp4Cancel (
2111 IN EFI_IP4_PROTOCOL *This,
2112 IN EFI_IP4_COMPLETION_TOKEN *Token OPTIONAL
2113 )
2114 {
2115 IP4_PROTOCOL *IpInstance;
2116 EFI_STATUS Status;
2117 EFI_TPL OldTpl;
2118
2119 if (This == NULL) {
2120 return EFI_INVALID_PARAMETER;
2121 }
2122
2123 IpInstance = IP4_INSTANCE_FROM_PROTOCOL (This);
2124
2125 OldTpl = gBS->RaiseTPL (TPL_CALLBACK);
2126
2127 if (IpInstance->State != IP4_STATE_CONFIGED) {
2128 Status = EFI_NOT_STARTED;
2129 goto ON_EXIT;
2130 }
2131
2132 if (IpInstance->ConfigData.UseDefaultAddress && IP4_NO_MAPPING (IpInstance)) {
2133 Status = EFI_NO_MAPPING;
2134 goto ON_EXIT;
2135 }
2136
2137 Status = Ip4Cancel (IpInstance, Token);
2138
2139 ON_EXIT:
2140 gBS->RestoreTPL (OldTpl);
2141 return Status;
2142 }
2143
2144
2145 /**
2146 Polls for incoming data packets and processes outgoing data packets.
2147
2148 The Poll() function polls for incoming data packets and processes outgoing data
2149 packets. Network drivers and applications can call the EFI_IP4_PROTOCOL.Poll()
2150 function to increase the rate that data packets are moved between the communications
2151 device and the transmit and receive queues.
2152
2153 In some systems the periodic timer event may not poll the underlying communications
2154 device fast enough to transmit and/or receive all data packets without missing
2155 incoming packets or dropping outgoing packets. Drivers and applications that are
2156 experiencing packet loss should try calling the EFI_IP4_PROTOCOL.Poll() function
2157 more often.
2158
2159 @param[in] This Pointer to the EFI_IP4_PROTOCOL instance.
2160
2161 @retval EFI_SUCCESS Incoming or outgoing data was processed.
2162 @retval EFI_NOT_STARTED This EFI IPv4 Protocol instance has not been started.
2163 @retval EFI_NO_MAPPING When using the default address, configuration (DHCP, BOOTP,
2164 RARP, etc.) is not finished yet.
2165 @retval EFI_INVALID_PARAMETER This is NULL.
2166 @retval EFI_DEVICE_ERROR An unexpected system or network error occurred.
2167 @retval EFI_NOT_READY No incoming or outgoing data is processed.
2168 @retval EFI_TIMEOUT Data was dropped out of the transmit and/or receive queue.
2169 Consider increasing the polling rate.
2170
2171 **/
2172 EFI_STATUS
2173 EFIAPI
2174 EfiIp4Poll (
2175 IN EFI_IP4_PROTOCOL *This
2176 )
2177 {
2178 IP4_PROTOCOL *IpInstance;
2179 EFI_MANAGED_NETWORK_PROTOCOL *Mnp;
2180
2181 if (This == NULL) {
2182 return EFI_INVALID_PARAMETER;
2183 }
2184
2185 IpInstance = IP4_INSTANCE_FROM_PROTOCOL (This);
2186
2187 if (IpInstance->State == IP4_STATE_UNCONFIGED) {
2188 return EFI_NOT_STARTED;
2189 }
2190
2191 Mnp = IpInstance->Service->Mnp;
2192
2193 //
2194 // Don't lock the Poll function to enable the deliver of
2195 // the packet polled up.
2196 //
2197 return Mnp->Poll (Mnp);
2198 }
2199
2200 /**
2201 Decrease the life of the transmitted packets. If it is
2202 decreased to zero, cancel the packet. This function is
2203 called by Ip4PacketTimerTicking which time out both the
2204 received-but-not-delivered and transmitted-but-not-recycle
2205 packets.
2206
2207 @param[in] Map The IP4 child's transmit map.
2208 @param[in] Item Current transmitted packet.
2209 @param[in] Context Not used.
2210
2211 @retval EFI_SUCCESS Always returns EFI_SUCCESS.
2212
2213 **/
2214 EFI_STATUS
2215 EFIAPI
2216 Ip4SentPacketTicking (
2217 IN NET_MAP *Map,
2218 IN NET_MAP_ITEM *Item,
2219 IN VOID *Context
2220 )
2221 {
2222 IP4_TXTOKEN_WRAP *Wrap;
2223
2224 Wrap = (IP4_TXTOKEN_WRAP *) Item->Value;
2225 ASSERT (Wrap != NULL);
2226
2227 if ((Wrap->Life > 0) && (--Wrap->Life == 0)) {
2228 Ip4CancelPacket (Wrap->IpInstance->Interface, Wrap->Packet, EFI_ABORTED);
2229 }
2230
2231 return EFI_SUCCESS;
2232 }
2233
2234
2235 /**
2236 There are two steps for this the heart beat timer of IP4 service instance.
2237 First, it times out all of its IP4 children's received-but-not-delivered
2238 and transmitted-but-not-recycle packets, and provides time input for its
2239 IGMP protocol.
2240 Second, a dedicated timer is used to poll underlying media status. In case
2241 of cable swap, a new round auto configuration will be initiated. The timer
2242 will signal the IP4 to run DHCP configuration again. IP4 driver will free
2243 old IP address related resource, such as route table and Interface, then
2244 initiate a DHCP process to acquire new IP, eventually create route table
2245 for new IP address.
2246
2247 @param[in] Event The IP4 service instance's heart beat timer.
2248 @param[in] Context The IP4 service instance.
2249
2250 **/
2251 VOID
2252 EFIAPI
2253 Ip4TimerTicking (
2254 IN EFI_EVENT Event,
2255 IN VOID *Context
2256 )
2257 {
2258 IP4_SERVICE *IpSb;
2259 BOOLEAN OldMediaPresent;
2260 EFI_STATUS Status;
2261 EFI_SIMPLE_NETWORK_MODE SnpModeData;
2262
2263 IpSb = (IP4_SERVICE *) Context;
2264 NET_CHECK_SIGNATURE (IpSb, IP4_SERVICE_SIGNATURE);
2265
2266 OldMediaPresent = IpSb->MediaPresent;
2267
2268 Ip4PacketTimerTicking (IpSb);
2269 Ip4IgmpTicking (IpSb);
2270
2271 //
2272 // Get fresh mode data from MNP, since underlying media status may change.
2273 // Here, it needs to mention that the MediaPresent can also be checked even if
2274 // EFI_NOT_STARTED returned while this MNP child driver instance isn't configured.
2275 //
2276 Status = IpSb->Mnp->GetModeData (IpSb->Mnp, NULL, &SnpModeData);
2277 if (EFI_ERROR (Status) && (Status != EFI_NOT_STARTED)) {
2278 return;
2279 }
2280
2281 IpSb->MediaPresent = SnpModeData.MediaPresent;
2282 //
2283 // Media transimit Unpresent to Present means new link movement is detected.
2284 //
2285 if (!OldMediaPresent && IpSb->MediaPresent && (IpSb->Ip4Config2Instance.Policy == Ip4Config2PolicyDhcp)) {
2286 //
2287 // Signal the IP4 to run the dhcp configuration again. IP4 driver will free
2288 // old IP address related resource, such as route table and Interface, then
2289 // initiate a DHCP round to acquire new IP, eventually
2290 // create route table for new IP address.
2291 //
2292 if (IpSb->ReconfigEvent != NULL) {
2293 Status = gBS->SignalEvent (IpSb->ReconfigEvent);
2294 DispatchDpc ();
2295 }
2296 }
2297 }