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97b38d4e 1/** @file\r
1204fe83 2 This library is only intended to be used by UEFI network stack modules.\r
e9b67286 3 It provides basic functions for the UEFI network stack.\r
97b38d4e 4\r
a57cdf33 5Copyright (c) 2005 - 2016, Intel Corporation. All rights reserved.<BR>\r
cd5ebaa0 6This program and the accompanying materials\r
97b38d4e 7are licensed and made available under the terms and conditions of the BSD License\r
64a80549 8which accompanies this distribution. The full text of the license may be found at<BR>\r
97b38d4e 9http://opensource.org/licenses/bsd-license.php\r
10\r
11THE PROGRAM IS DISTRIBUTED UNDER THE BSD LICENSE ON AN "AS IS" BASIS,\r
12WITHOUT WARRANTIES OR REPRESENTATIONS OF ANY KIND, EITHER EXPRESS OR IMPLIED.\r
13\r
14**/\r
15\r
16#ifndef _NET_LIB_H_\r
17#define _NET_LIB_H_\r
18\r
fb115c61 19#include <Protocol/Ip6.h>\r
20\r
1204fe83 21#include <Library/BaseLib.h>\r
7b126c2e 22#include <Library/BaseMemoryLib.h>\r
1204fe83 23\r
97b38d4e 24typedef UINT32 IP4_ADDR;\r
25typedef UINT32 TCP_SEQNO;\r
26typedef UINT16 TCP_PORTNO;\r
27\r
b45b45b2 28\r
29#define NET_ETHER_ADDR_LEN 6\r
30#define NET_IFTYPE_ETHERNET 0x01\r
31\r
779ae357 32#define NET_VLAN_TAG_LEN 4\r
33#define ETHER_TYPE_VLAN 0x8100\r
34\r
b45b45b2 35#define EFI_IP_PROTO_UDP 0x11\r
36#define EFI_IP_PROTO_TCP 0x06\r
37#define EFI_IP_PROTO_ICMP 0x01\r
f6b7393c 38#define IP4_PROTO_IGMP 0x02\r
39#define IP6_ICMP 58\r
dba6e9a9
JW
40#define DNS_MAX_NAME_SIZE 255\r
41#define DNS_MAX_MESSAGE_SIZE 512\r
b45b45b2 42\r
43//\r
44// The address classification\r
45//\r
3289dcba
FS
46#define IP4_ADDR_CLASSA 1 // Deprecated\r
47#define IP4_ADDR_CLASSB 2 // Deprecated\r
48#define IP4_ADDR_CLASSC 3 // Deprecated\r
b45b45b2 49#define IP4_ADDR_CLASSD 4\r
50#define IP4_ADDR_CLASSE 5\r
51\r
52#define IP4_MASK_NUM 33\r
f6b7393c 53#define IP6_PREFIX_NUM 129\r
b45b45b2 54\r
364f4efa
ZL
55#define IP4_MASK_MAX 32 \r
56#define IP6_PREFIX_MAX 128\r
57\r
b45b45b2 58#define IP6_HOP_BY_HOP 0\r
59#define IP6_DESTINATION 60\r
25400c63 60#define IP6_ROUTING 43\r
b45b45b2 61#define IP6_FRAGMENT 44\r
62#define IP6_AH 51\r
63#define IP6_ESP 50\r
64#define IP6_NO_NEXT_HEADER 59\r
65\r
a1503a32 66#define IP_VERSION_4 4\r
67#define IP_VERSION_6 6\r
fb115c61 68\r
501793fa
RN
69#define IP6_PREFIX_LENGTH 64\r
70\r
a57cdf33
JW
71//\r
72// DNS QTYPE values\r
73//\r
74#define DNS_TYPE_A 1\r
75#define DNS_TYPE_NS 2\r
76#define DNS_TYPE_CNAME 5\r
77#define DNS_TYPE_SOA 6\r
78#define DNS_TYPE_WKS 11\r
79#define DNS_TYPE_PTR 12\r
80#define DNS_TYPE_HINFO 13\r
81#define DNS_TYPE_MINFO 14\r
82#define DNS_TYPE_MX 15\r
83#define DNS_TYPE_TXT 16\r
84#define DNS_TYPE_AAAA 28\r
85#define DNS_TYPE_SRV_RR 33\r
86#define DNS_TYPE_AXFR 252\r
87#define DNS_TYPE_MAILB 253\r
88#define DNS_TYPE_ANY 255\r
89\r
90//\r
91// DNS QCLASS values\r
92//\r
93#define DNS_CLASS_INET 1\r
94#define DNS_CLASS_CH 3\r
95#define DNS_CLASS_HS 4\r
96#define DNS_CLASS_ANY 255\r
97\r
97b38d4e 98#pragma pack(1)\r
99\r
100//\r
101// Ethernet head definition\r
102//\r
103typedef struct {\r
104 UINT8 DstMac [NET_ETHER_ADDR_LEN];\r
105 UINT8 SrcMac [NET_ETHER_ADDR_LEN];\r
106 UINT16 EtherType;\r
107} ETHER_HEAD;\r
108\r
779ae357 109//\r
110// 802.1Q VLAN Tag Control Information\r
111//\r
112typedef union {\r
113 struct {\r
114 UINT16 Vid : 12; // Unique VLAN identifier (0 to 4094)\r
115 UINT16 Cfi : 1; // Canonical Format Indicator\r
116 UINT16 Priority : 3; // 802.1Q priority level (0 to 7)\r
117 } Bits;\r
118 UINT16 Uint16;\r
119} VLAN_TCI;\r
120\r
121#define VLAN_TCI_CFI_CANONICAL_MAC 0\r
122#define VLAN_TCI_CFI_NON_CANONICAL_MAC 1\r
97b38d4e 123\r
124//\r
125// The EFI_IP4_HEADER is hard to use because the source and\r
126// destination address are defined as EFI_IPv4_ADDRESS, which\r
127// is a structure. Two structures can't be compared or masked\r
128// directly. This is why there is an internal representation.\r
129//\r
130typedef struct {\r
131 UINT8 HeadLen : 4;\r
132 UINT8 Ver : 4;\r
133 UINT8 Tos;\r
134 UINT16 TotalLen;\r
135 UINT16 Id;\r
136 UINT16 Fragment;\r
137 UINT8 Ttl;\r
138 UINT8 Protocol;\r
139 UINT16 Checksum;\r
140 IP4_ADDR Src;\r
141 IP4_ADDR Dst;\r
142} IP4_HEAD;\r
143\r
144\r
145//\r
e9b67286 146// ICMP head definition. Each ICMP message is categorized as either an error\r
97b38d4e 147// message or query message. Two message types have their own head format.\r
148//\r
149typedef struct {\r
150 UINT8 Type;\r
151 UINT8 Code;\r
152 UINT16 Checksum;\r
153} IP4_ICMP_HEAD;\r
154\r
155typedef struct {\r
156 IP4_ICMP_HEAD Head;\r
157 UINT32 Fourth; // 4th filed of the head, it depends on Type.\r
158 IP4_HEAD IpHead;\r
159} IP4_ICMP_ERROR_HEAD;\r
160\r
161typedef struct {\r
162 IP4_ICMP_HEAD Head;\r
163 UINT16 Id;\r
164 UINT16 Seq;\r
165} IP4_ICMP_QUERY_HEAD;\r
166\r
fb115c61 167typedef struct {\r
168 UINT8 Type;\r
169 UINT8 Code;\r
170 UINT16 Checksum;\r
171} IP6_ICMP_HEAD;\r
172\r
173typedef struct {\r
174 IP6_ICMP_HEAD Head;\r
175 UINT32 Fourth;\r
176 EFI_IP6_HEADER IpHead;\r
177} IP6_ICMP_ERROR_HEAD;\r
178\r
179typedef struct {\r
180 IP6_ICMP_HEAD Head;\r
181 UINT32 Fourth;\r
182} IP6_ICMP_INFORMATION_HEAD;\r
97b38d4e 183\r
184//\r
185// UDP header definition\r
186//\r
187typedef struct {\r
188 UINT16 SrcPort;\r
189 UINT16 DstPort;\r
190 UINT16 Length;\r
191 UINT16 Checksum;\r
fb115c61 192} EFI_UDP_HEADER;\r
97b38d4e 193\r
194//\r
195// TCP header definition\r
196//\r
197typedef struct {\r
198 TCP_PORTNO SrcPort;\r
199 TCP_PORTNO DstPort;\r
200 TCP_SEQNO Seq;\r
201 TCP_SEQNO Ack;\r
202 UINT8 Res : 4;\r
203 UINT8 HeadLen : 4;\r
204 UINT8 Flag;\r
205 UINT16 Wnd;\r
206 UINT16 Checksum;\r
207 UINT16 Urg;\r
208} TCP_HEAD;\r
209\r
210#pragma pack()\r
211\r
212#define NET_MAC_EQUAL(pMac1, pMac2, Len) \\r
213 (CompareMem ((pMac1), (pMac2), Len) == 0)\r
214\r
215#define NET_MAC_IS_MULTICAST(Mac, BMac, Len) \\r
216 (((*((UINT8 *) Mac) & 0x01) == 0x01) && (!NET_MAC_EQUAL (Mac, BMac, Len)))\r
217\r
1204fe83 218#define NTOHL(x) SwapBytes32 (x)\r
97b38d4e 219\r
220#define HTONL(x) NTOHL(x)\r
221\r
1204fe83 222#define NTOHS(x) SwapBytes16 (x)\r
97b38d4e 223\r
f6b7393c 224#define HTONS(x) NTOHS(x)\r
225#define NTOHLL(x) SwapBytes64 (x)\r
226#define HTONLL(x) NTOHLL(x)\r
227#define NTOHLLL(x) Ip6Swap128 (x)\r
228#define HTONLLL(x) NTOHLLL(x)\r
97b38d4e 229\r
230//\r
231// Test the IP's attribute, All the IPs are in host byte order.\r
232//\r
233#define IP4_IS_MULTICAST(Ip) (((Ip) & 0xF0000000) == 0xE0000000)\r
3289dcba 234#define IP4_IS_UNSPECIFIED(Ip) ((Ip) == 0)\r
97b38d4e 235#define IP4_IS_LOCAL_BROADCAST(Ip) ((Ip) == 0xFFFFFFFF)\r
236#define IP4_NET_EQUAL(Ip1, Ip2, NetMask) (((Ip1) & (NetMask)) == ((Ip2) & (NetMask)))\r
364f4efa 237#define IP4_IS_VALID_NETMASK(Ip) (NetGetMaskLength (Ip) != (IP4_MASK_MAX + 1))\r
97b38d4e 238\r
3a15fd52 239#define IP6_IS_MULTICAST(Ip6) (((Ip6)->Addr[0]) == 0xFF)\r
240\r
97b38d4e 241//\r
242// Convert the EFI_IP4_ADDRESS to plain UINT32 IP4 address.\r
243//\r
244#define EFI_IP4(EfiIpAddr) (*(IP4_ADDR *) ((EfiIpAddr).Addr))\r
245#define EFI_NTOHL(EfiIp) (NTOHL (EFI_IP4 ((EfiIp))))\r
246#define EFI_IP4_EQUAL(Ip1, Ip2) (CompareMem ((Ip1), (Ip2), sizeof (EFI_IPv4_ADDRESS)) == 0)\r
247\r
fb115c61 248#define EFI_IP6_EQUAL(Ip1, Ip2) (CompareMem ((Ip1), (Ip2), sizeof (EFI_IPv6_ADDRESS)) == 0)\r
249\r
42372879 250#define IP4_COPY_ADDRESS(Dest, Src) (CopyMem ((Dest), (Src), sizeof (EFI_IPv4_ADDRESS)))\r
f6b7393c 251#define IP6_COPY_ADDRESS(Dest, Src) (CopyMem ((Dest), (Src), sizeof (EFI_IPv6_ADDRESS)))\r
252#define IP6_COPY_LINK_ADDRESS(Mac1, Mac2) (CopyMem ((Mac1), (Mac2), sizeof (EFI_MAC_ADDRESS)))\r
253\r
254//\r
1204fe83 255// The debug level definition. This value is also used as the\r
86ac8fb2 256// syslog's severity level. Don't change it.\r
f6b7393c 257//\r
258#define NETDEBUG_LEVEL_TRACE 5\r
259#define NETDEBUG_LEVEL_WARNING 4\r
260#define NETDEBUG_LEVEL_ERROR 3\r
261\r
262//\r
1204fe83 263// Network debug message is sent out as syslog packet.\r
f6b7393c 264//\r
1204fe83 265#define NET_SYSLOG_FACILITY 16 // Syslog local facility local use\r
266#define NET_SYSLOG_PACKET_LEN 512\r
267#define NET_SYSLOG_TX_TIMEOUT (500 * 1000 * 10) // 500ms\r
268#define NET_DEBUG_MSG_LEN 470 // 512 - (ether+ip4+udp4 head length)\r
f6b7393c 269\r
270//\r
1204fe83 271// The debug output expects the ASCII format string, Use %a to print ASCII\r
272// string, and %s to print UNICODE string. PrintArg must be enclosed in ().\r
f6b7393c 273// For example: NET_DEBUG_TRACE ("Tcp", ("State transit to %a\n", Name));\r
274//\r
275#define NET_DEBUG_TRACE(Module, PrintArg) \\r
276 NetDebugOutput ( \\r
277 NETDEBUG_LEVEL_TRACE, \\r
278 Module, \\r
279 __FILE__, \\r
280 __LINE__, \\r
281 NetDebugASPrint PrintArg \\r
282 )\r
283\r
284#define NET_DEBUG_WARNING(Module, PrintArg) \\r
285 NetDebugOutput ( \\r
286 NETDEBUG_LEVEL_WARNING, \\r
287 Module, \\r
288 __FILE__, \\r
289 __LINE__, \\r
290 NetDebugASPrint PrintArg \\r
291 )\r
292\r
293#define NET_DEBUG_ERROR(Module, PrintArg) \\r
294 NetDebugOutput ( \\r
295 NETDEBUG_LEVEL_ERROR, \\r
296 Module, \\r
297 __FILE__, \\r
298 __LINE__, \\r
299 NetDebugASPrint PrintArg \\r
300 )\r
301\r
302/**\r
1204fe83 303 Allocate a buffer, then format the message to it. This is a\r
304 help function for the NET_DEBUG_XXX macros. The PrintArg of\r
305 these macros treats the variable length print parameters as a\r
f6b7393c 306 single parameter, and pass it to the NetDebugASPrint. For\r
307 example, NET_DEBUG_TRACE ("Tcp", ("State transit to %a\n", Name))\r
1204fe83 308 if extracted to:\r
309\r
f6b7393c 310 NetDebugOutput (\r
1204fe83 311 NETDEBUG_LEVEL_TRACE,\r
312 "Tcp",\r
f6b7393c 313 __FILE__,\r
314 __LINE__,\r
1204fe83 315 NetDebugASPrint ("State transit to %a\n", Name)\r
316 )\r
317\r
f6b7393c 318 @param Format The ASCII format string.\r
1204fe83 319 @param ... The variable length parameter whose format is determined\r
f6b7393c 320 by the Format string.\r
321\r
322 @return The buffer containing the formatted message,\r
64a80549 323 or NULL if memory allocation failed.\r
f6b7393c 324\r
325**/\r
326CHAR8 *\r
e798cd87 327EFIAPI\r
f6b7393c 328NetDebugASPrint (\r
329 IN CHAR8 *Format,\r
330 ...\r
331 );\r
332\r
333/**\r
334 Builds an UDP4 syslog packet and send it using SNP.\r
335\r
336 This function will locate a instance of SNP then send the message through it.\r
337 Because it isn't open the SNP BY_DRIVER, apply caution when using it.\r
338\r
86ac8fb2
GL
339 @param Level The severity level of the message.\r
340 @param Module The Module that generates the log.\r
f6b7393c 341 @param File The file that contains the log.\r
342 @param Line The exact line that contains the log.\r
343 @param Message The user message to log.\r
344\r
345 @retval EFI_INVALID_PARAMETER Any input parameter is invalid.\r
346 @retval EFI_OUT_OF_RESOURCES Failed to allocate memory for the packet\r
1204fe83 347 @retval EFI_SUCCESS The log is discard because that it is more verbose\r
f6b7393c 348 than the mNetDebugLevelMax. Or, it has been sent out.\r
1204fe83 349**/\r
f6b7393c 350EFI_STATUS\r
e798cd87 351EFIAPI\r
f6b7393c 352NetDebugOutput (\r
1204fe83 353 IN UINT32 Level,\r
f6b7393c 354 IN UINT8 *Module,\r
355 IN UINT8 *File,\r
356 IN UINT32 Line,\r
357 IN UINT8 *Message\r
358 );\r
359\r
fb115c61 360\r
97b38d4e 361/**\r
1204fe83 362 Return the length of the mask.\r
363\r
e9b67286 364 Return the length of the mask. Valid values are 0 to 32.\r
3a1ab4bc 365 If the mask is invalid, return the invalid length 33, which is IP4_MASK_NUM.\r
97b38d4e 366 NetMask is in the host byte order.\r
367\r
ae213b7d 368 @param[in] NetMask The netmask to get the length from.\r
97b38d4e 369\r
e9b67286 370 @return The length of the netmask, or IP4_MASK_NUM (33) if the mask is invalid.\r
1204fe83 371\r
97b38d4e 372**/\r
373INTN\r
374EFIAPI\r
375NetGetMaskLength (\r
ae213b7d 376 IN IP4_ADDR NetMask\r
97b38d4e 377 );\r
378\r
379/**\r
3a1ab4bc 380 Return the class of the IP address, such as class A, B, C.\r
97b38d4e 381 Addr is in host byte order.\r
1204fe83 382\r
3289dcba
FS
383 [ATTENTION]\r
384 Classful addressing (IP class A/B/C) has been deprecated according to RFC4632.\r
385 Caller of this function could only check the returned value against\r
386 IP4_ADDR_CLASSD (multicast) or IP4_ADDR_CLASSE (reserved) now.\r
387\r
3a1ab4bc 388 The address of class A starts with 0.\r
389 If the address belong to class A, return IP4_ADDR_CLASSA.\r
1204fe83 390 The address of class B starts with 10.\r
3a1ab4bc 391 If the address belong to class B, return IP4_ADDR_CLASSB.\r
1204fe83 392 The address of class C starts with 110.\r
3a1ab4bc 393 If the address belong to class C, return IP4_ADDR_CLASSC.\r
1204fe83 394 The address of class D starts with 1110.\r
3a1ab4bc 395 If the address belong to class D, return IP4_ADDR_CLASSD.\r
396 The address of class E starts with 1111.\r
397 If the address belong to class E, return IP4_ADDR_CLASSE.\r
97b38d4e 398\r
1204fe83 399\r
ae213b7d 400 @param[in] Addr The address to get the class from.\r
97b38d4e 401\r
ae213b7d 402 @return IP address class, such as IP4_ADDR_CLASSA.\r
97b38d4e 403\r
404**/\r
405INTN\r
406EFIAPI\r
407NetGetIpClass (\r
408 IN IP4_ADDR Addr\r
409 );\r
410\r
411/**\r
412 Check whether the IP is a valid unicast address according to\r
3289dcba 413 the netmask. \r
1204fe83 414\r
3289dcba
FS
415 ASSERT if NetMask is zero.\r
416 \r
417 If all bits of the host address of IP are 0 or 1, IP is also not a valid unicast address.\r
97b38d4e 418\r
ae213b7d 419 @param[in] Ip The IP to check against.\r
420 @param[in] NetMask The mask of the IP.\r
97b38d4e 421\r
3289dcba 422 @return TRUE if IP is a valid unicast address on the network, otherwise FALSE.\r
97b38d4e 423\r
424**/\r
425BOOLEAN\r
ae213b7d 426EFIAPI\r
f6b7393c 427NetIp4IsUnicast (\r
97b38d4e 428 IN IP4_ADDR Ip,\r
429 IN IP4_ADDR NetMask\r
430 );\r
431\r
fb115c61 432/**\r
433 Check whether the incoming IPv6 address is a valid unicast address.\r
434\r
435 If the address is a multicast address has binary 0xFF at the start, it is not\r
436 a valid unicast address. If the address is unspecified ::, it is not a valid\r
437 unicast address to be assigned to any node. If the address is loopback address\r
438 ::1, it is also not a valid unicast address to be assigned to any physical\r
1204fe83 439 interface.\r
fb115c61 440\r
441 @param[in] Ip6 The IPv6 address to check against.\r
442\r
443 @return TRUE if Ip6 is a valid unicast address on the network, otherwise FALSE.\r
444\r
1204fe83 445**/\r
fb115c61 446BOOLEAN\r
e798cd87 447EFIAPI\r
f6b7393c 448NetIp6IsValidUnicast (\r
449 IN EFI_IPv6_ADDRESS *Ip6\r
450 );\r
451\r
452\r
453/**\r
454 Check whether the incoming Ipv6 address is the unspecified address or not.\r
455\r
456 @param[in] Ip6 - Ip6 address, in network order.\r
457\r
64a80549 458 @retval TRUE - Yes, incoming Ipv6 address is the unspecified address.\r
459 @retval FALSE - The incoming Ipv6 address is not the unspecified address\r
1204fe83 460\r
f6b7393c 461**/\r
462BOOLEAN\r
e798cd87 463EFIAPI\r
f6b7393c 464NetIp6IsUnspecifiedAddr (\r
fb115c61 465 IN EFI_IPv6_ADDRESS *Ip6\r
466 );\r
467\r
f6b7393c 468/**\r
469 Check whether the incoming Ipv6 address is a link-local address.\r
470\r
471 @param[in] Ip6 - Ip6 address, in network order.\r
472\r
64a80549 473 @retval TRUE - The incoming Ipv6 address is a link-local address.\r
474 @retval FALSE - The incoming Ipv6 address is not a link-local address.\r
1204fe83 475\r
f6b7393c 476**/\r
477BOOLEAN\r
e798cd87 478EFIAPI\r
f6b7393c 479NetIp6IsLinkLocalAddr (\r
480 IN EFI_IPv6_ADDRESS *Ip6\r
481 );\r
482\r
483/**\r
484 Check whether the Ipv6 address1 and address2 are on the connected network.\r
485\r
486 @param[in] Ip1 - Ip6 address1, in network order.\r
487 @param[in] Ip2 - Ip6 address2, in network order.\r
488 @param[in] PrefixLength - The prefix length of the checking net.\r
489\r
64a80549 490 @retval TRUE - Yes, the Ipv6 address1 and address2 are connected.\r
491 @retval FALSE - No the Ipv6 address1 and address2 are not connected.\r
1204fe83 492\r
f6b7393c 493**/\r
494BOOLEAN\r
e798cd87 495EFIAPI\r
f6b7393c 496NetIp6IsNetEqual (\r
497 EFI_IPv6_ADDRESS *Ip1,\r
498 EFI_IPv6_ADDRESS *Ip2,\r
499 UINT8 PrefixLength\r
500 );\r
501\r
b45b45b2 502/**\r
64a80549 503 Switches the endianess of an IPv6 address.\r
b45b45b2 504\r
505 This function swaps the bytes in a 128-bit IPv6 address to switch the value\r
506 from little endian to big endian or vice versa. The byte swapped value is\r
507 returned.\r
508\r
64a80549 509 @param Ip6 Points to an IPv6 address.\r
b45b45b2 510\r
511 @return The byte swapped IPv6 address.\r
512\r
513**/\r
514EFI_IPv6_ADDRESS *\r
e798cd87 515EFIAPI\r
b45b45b2 516Ip6Swap128 (\r
517 EFI_IPv6_ADDRESS *Ip6\r
518 );\r
519\r
8d7e5af1 520extern IP4_ADDR gIp4AllMasks[IP4_MASK_NUM];\r
97b38d4e 521\r
522\r
523extern EFI_IPv4_ADDRESS mZeroIp4Addr;\r
524\r
525#define NET_IS_DIGIT(Ch) (('0' <= (Ch)) && ((Ch) <= '9'))\r
526#define NET_ROUNDUP(size, unit) (((size) + (unit) - 1) & (~((unit) - 1)))\r
527#define NET_IS_LOWER_CASE_CHAR(Ch) (('a' <= (Ch)) && ((Ch) <= 'z'))\r
528#define NET_IS_UPPER_CASE_CHAR(Ch) (('A' <= (Ch)) && ((Ch) <= 'Z'))\r
529\r
530#define TICKS_PER_MS 10000U\r
531#define TICKS_PER_SECOND 10000000U\r
532\r
533#define NET_RANDOM(Seed) ((UINT32) ((UINT32) (Seed) * 1103515245UL + 12345) % 4294967295UL)\r
534\r
535/**\r
3a1ab4bc 536 Extract a UINT32 from a byte stream.\r
1204fe83 537\r
538 This function copies a UINT32 from a byte stream, and then converts it from Network\r
3a1ab4bc 539 byte order to host byte order. Use this function to avoid alignment error.\r
97b38d4e 540\r
ae213b7d 541 @param[in] Buf The buffer to extract the UINT32.\r
97b38d4e 542\r
543 @return The UINT32 extracted.\r
544\r
545**/\r
546UINT32\r
547EFIAPI\r
548NetGetUint32 (\r
549 IN UINT8 *Buf\r
550 );\r
551\r
552/**\r
1204fe83 553 Puts a UINT32 into the byte stream in network byte order.\r
554\r
64a80549 555 Converts a UINT32 from host byte order to network byte order, then copies it to the\r
3a1ab4bc 556 byte stream.\r
97b38d4e 557\r
64a80549 558 @param[in, out] Buf The buffer in which to put the UINT32.\r
3b1464d5 559 @param[in] Data The data to be converted and put into the byte stream.\r
1204fe83 560\r
97b38d4e 561**/\r
562VOID\r
563EFIAPI\r
564NetPutUint32 (\r
ae213b7d 565 IN OUT UINT8 *Buf,\r
566 IN UINT32 Data\r
97b38d4e 567 );\r
568\r
569/**\r
2bd25290 570 Initialize a random seed using current time and monotonic count.\r
1204fe83 571\r
2bd25290
FS
572 Get current time and monotonic count first. Then initialize a random seed \r
573 based on some basic mathematics operation on the hour, day, minute, second,\r
574 nanosecond and year of the current time and the monotonic count value.\r
1204fe83 575\r
2bd25290 576 @return The random seed initialized with current time.\r
97b38d4e 577\r
578**/\r
579UINT32\r
580EFIAPI\r
581NetRandomInitSeed (\r
582 VOID\r
583 );\r
584\r
585\r
586#define NET_LIST_USER_STRUCT(Entry, Type, Field) \\r
50d7ebad 587 BASE_CR(Entry, Type, Field)\r
97b38d4e 588\r
589#define NET_LIST_USER_STRUCT_S(Entry, Type, Field, Sig) \\r
590 CR(Entry, Type, Field, Sig)\r
591\r
592//\r
e9b67286 593// Iterate through the double linked list. It is NOT delete safe\r
97b38d4e 594//\r
595#define NET_LIST_FOR_EACH(Entry, ListHead) \\r
596 for(Entry = (ListHead)->ForwardLink; Entry != (ListHead); Entry = Entry->ForwardLink)\r
597\r
598//\r
e9b67286 599// Iterate through the double linked list. This is delete-safe.\r
97b38d4e 600// Don't touch NextEntry. Also, don't use this macro if list\r
601// entries other than the Entry may be deleted when processing\r
602// the current Entry.\r
603//\r
604#define NET_LIST_FOR_EACH_SAFE(Entry, NextEntry, ListHead) \\r
605 for(Entry = (ListHead)->ForwardLink, NextEntry = Entry->ForwardLink; \\r
606 Entry != (ListHead); \\r
607 Entry = NextEntry, NextEntry = Entry->ForwardLink \\r
608 )\r
609\r
610//\r
e9b67286 611// Make sure the list isn't empty before getting the first/last record.\r
97b38d4e 612//\r
613#define NET_LIST_HEAD(ListHead, Type, Field) \\r
614 NET_LIST_USER_STRUCT((ListHead)->ForwardLink, Type, Field)\r
615\r
616#define NET_LIST_TAIL(ListHead, Type, Field) \\r
617 NET_LIST_USER_STRUCT((ListHead)->BackLink, Type, Field)\r
618\r
619\r
620/**\r
3a1ab4bc 621 Remove the first node entry on the list, and return the removed node entry.\r
1204fe83 622\r
e9b67286 623 Removes the first node entry from a doubly linked list. It is up to the caller of\r
624 this function to release the memory used by the first node, if that is required. On\r
1204fe83 625 exit, the removed node is returned.\r
3a1ab4bc 626\r
627 If Head is NULL, then ASSERT().\r
628 If Head was not initialized, then ASSERT().\r
629 If PcdMaximumLinkedListLength is not zero, and the number of nodes in the\r
630 linked list including the head node is greater than or equal to PcdMaximumLinkedListLength,\r
1204fe83 631 then ASSERT().\r
97b38d4e 632\r
ae213b7d 633 @param[in, out] Head The list header.\r
97b38d4e 634\r
3a1ab4bc 635 @return The first node entry that is removed from the list, NULL if the list is empty.\r
97b38d4e 636\r
637**/\r
638LIST_ENTRY *\r
639EFIAPI\r
640NetListRemoveHead (\r
ae213b7d 641 IN OUT LIST_ENTRY *Head\r
97b38d4e 642 );\r
643\r
644/**\r
e9b67286 645 Remove the last node entry on the list and return the removed node entry.\r
3a1ab4bc 646\r
647 Removes the last node entry from a doubly linked list. It is up to the caller of\r
e9b67286 648 this function to release the memory used by the first node, if that is required. On\r
1204fe83 649 exit, the removed node is returned.\r
97b38d4e 650\r
3a1ab4bc 651 If Head is NULL, then ASSERT().\r
652 If Head was not initialized, then ASSERT().\r
653 If PcdMaximumLinkedListLength is not zero, and the number of nodes in the\r
654 linked list including the head node is greater than or equal to PcdMaximumLinkedListLength,\r
1204fe83 655 then ASSERT().\r
656\r
ae213b7d 657 @param[in, out] Head The list head.\r
97b38d4e 658\r
3a1ab4bc 659 @return The last node entry that is removed from the list, NULL if the list is empty.\r
97b38d4e 660\r
661**/\r
662LIST_ENTRY *\r
663EFIAPI\r
664NetListRemoveTail (\r
ae213b7d 665 IN OUT LIST_ENTRY *Head\r
97b38d4e 666 );\r
667\r
668/**\r
3a1ab4bc 669 Insert a new node entry after a designated node entry of a doubly linked list.\r
1204fe83 670\r
e9b67286 671 Inserts a new node entry designated by NewEntry after the node entry designated by PrevEntry\r
3a1ab4bc 672 of the doubly linked list.\r
1204fe83 673\r
674 @param[in, out] PrevEntry The entry after which to insert.\r
ae213b7d 675 @param[in, out] NewEntry The new entry to insert.\r
97b38d4e 676\r
677**/\r
678VOID\r
679EFIAPI\r
680NetListInsertAfter (\r
ae213b7d 681 IN OUT LIST_ENTRY *PrevEntry,\r
682 IN OUT LIST_ENTRY *NewEntry\r
97b38d4e 683 );\r
684\r
685/**\r
3a1ab4bc 686 Insert a new node entry before a designated node entry of a doubly linked list.\r
1204fe83 687\r
e9b67286 688 Inserts a new node entry designated by NewEntry before the node entry designated by PostEntry\r
3a1ab4bc 689 of the doubly linked list.\r
1204fe83 690\r
ae213b7d 691 @param[in, out] PostEntry The entry to insert before.\r
692 @param[in, out] NewEntry The new entry to insert.\r
97b38d4e 693\r
694**/\r
695VOID\r
696EFIAPI\r
697NetListInsertBefore (\r
ae213b7d 698 IN OUT LIST_ENTRY *PostEntry,\r
699 IN OUT LIST_ENTRY *NewEntry\r
97b38d4e 700 );\r
701\r
216f7970 702/**\r
703 Callback function which provided by user to remove one node in NetDestroyLinkList process.\r
704 \r
705 @param[in] Entry The entry to be removed.\r
706 @param[in] Context Pointer to the callback context corresponds to the Context in NetDestroyLinkList.\r
707\r
708 @retval EFI_SUCCESS The entry has been removed successfully.\r
709 @retval Others Fail to remove the entry.\r
710\r
711**/\r
712typedef\r
713EFI_STATUS\r
714(EFIAPI *NET_DESTROY_LINK_LIST_CALLBACK) (\r
715 IN LIST_ENTRY *Entry,\r
716 IN VOID *Context OPTIONAL\r
1f7eb561 717 );\r
216f7970 718\r
719/**\r
720 Safe destroy nodes in a linked list, and return the length of the list after all possible operations finished.\r
721\r
722 Destroy network children list by list traversals is not safe due to graph dependencies between nodes.\r
723 This function performs a safe traversal to destroy these nodes by checking to see if the node being destroyed\r
724 has been removed from the list or not.\r
725 If it has been removed, then restart the traversal from the head.\r
726 If it hasn't been removed, then continue with the next node directly.\r
727 This function will end the iterate and return the CallBack's last return value if error happens,\r
728 or retrun EFI_SUCCESS if 2 complete passes are made with no changes in the number of children in the list. \r
729\r
730 @param[in] List The head of the list.\r
731 @param[in] CallBack Pointer to the callback function to destroy one node in the list.\r
732 @param[in] Context Pointer to the callback function's context: corresponds to the\r
733 parameter Context in NET_DESTROY_LINK_LIST_CALLBACK.\r
734 @param[out] ListLength The length of the link list if the function returns successfully.\r
735\r
736 @retval EFI_SUCCESS Two complete passes are made with no changes in the number of children.\r
737 @retval EFI_INVALID_PARAMETER The input parameter is invalid.\r
738 @retval Others Return the CallBack's last return value.\r
739\r
740**/\r
741EFI_STATUS\r
742EFIAPI\r
743NetDestroyLinkList (\r
744 IN LIST_ENTRY *List,\r
745 IN NET_DESTROY_LINK_LIST_CALLBACK CallBack,\r
746 IN VOID *Context, OPTIONAL\r
747 OUT UINTN *ListLength OPTIONAL\r
1f7eb561 748 );\r
216f7970 749\r
750/**\r
751 This function checks the input Handle to see if it's one of these handles in ChildHandleBuffer.\r
752\r
753 @param[in] Handle Handle to be checked.\r
754 @param[in] NumberOfChildren Number of Handles in ChildHandleBuffer.\r
755 @param[in] ChildHandleBuffer An array of child handles to be freed. May be NULL\r
756 if NumberOfChildren is 0.\r
757\r
86ac8fb2 758 @retval TRUE Found the input Handle in ChildHandleBuffer.\r
216f7970 759 @retval FALSE Can't find the input Handle in ChildHandleBuffer.\r
760\r
761**/\r
762BOOLEAN\r
1f7eb561 763EFIAPI\r
216f7970 764NetIsInHandleBuffer (\r
765 IN EFI_HANDLE Handle,\r
766 IN UINTN NumberOfChildren,\r
767 IN EFI_HANDLE *ChildHandleBuffer OPTIONAL\r
1f7eb561 768 );\r
97b38d4e 769\r
770//\r
771// Object container: EFI network stack spec defines various kinds of\r
772// tokens. The drivers can share code to manage those objects.\r
773//\r
774typedef struct {\r
775 LIST_ENTRY Link;\r
776 VOID *Key;\r
777 VOID *Value;\r
778} NET_MAP_ITEM;\r
779\r
780typedef struct {\r
781 LIST_ENTRY Used;\r
782 LIST_ENTRY Recycled;\r
783 UINTN Count;\r
784} NET_MAP;\r
785\r
786#define NET_MAP_INCREAMENT 64\r
787\r
788/**\r
789 Initialize the netmap. Netmap is a reposity to keep the <Key, Value> pairs.\r
1204fe83 790\r
791 Initialize the forward and backward links of two head nodes donated by Map->Used\r
3a1ab4bc 792 and Map->Recycled of two doubly linked lists.\r
793 Initializes the count of the <Key, Value> pairs in the netmap to zero.\r
1204fe83 794\r
3a1ab4bc 795 If Map is NULL, then ASSERT().\r
796 If the address of Map->Used is NULL, then ASSERT().\r
797 If the address of Map->Recycled is NULl, then ASSERT().\r
1204fe83 798\r
ae213b7d 799 @param[in, out] Map The netmap to initialize.\r
97b38d4e 800\r
801**/\r
802VOID\r
803EFIAPI\r
804NetMapInit (\r
ae213b7d 805 IN OUT NET_MAP *Map\r
97b38d4e 806 );\r
807\r
808/**\r
809 To clean up the netmap, that is, release allocated memories.\r
1204fe83 810\r
e9b67286 811 Removes all nodes of the Used doubly linked list and frees memory of all related netmap items.\r
3a1ab4bc 812 Removes all nodes of the Recycled doubly linked list and free memory of all related netmap items.\r
e9b67286 813 The number of the <Key, Value> pairs in the netmap is set to zero.\r
1204fe83 814\r
3a1ab4bc 815 If Map is NULL, then ASSERT().\r
1204fe83 816\r
ae213b7d 817 @param[in, out] Map The netmap to clean up.\r
97b38d4e 818\r
819**/\r
820VOID\r
821EFIAPI\r
822NetMapClean (\r
ae213b7d 823 IN OUT NET_MAP *Map\r
97b38d4e 824 );\r
825\r
826/**\r
3a1ab4bc 827 Test whether the netmap is empty and return true if it is.\r
1204fe83 828\r
3a1ab4bc 829 If the number of the <Key, Value> pairs in the netmap is zero, return TRUE.\r
1204fe83 830\r
3a1ab4bc 831 If Map is NULL, then ASSERT().\r
1204fe83 832\r
833\r
ae213b7d 834 @param[in] Map The net map to test.\r
97b38d4e 835\r
836 @return TRUE if the netmap is empty, otherwise FALSE.\r
837\r
838**/\r
839BOOLEAN\r
840EFIAPI\r
841NetMapIsEmpty (\r
842 IN NET_MAP *Map\r
843 );\r
844\r
845/**\r
846 Return the number of the <Key, Value> pairs in the netmap.\r
847\r
ae213b7d 848 @param[in] Map The netmap to get the entry number.\r
97b38d4e 849\r
850 @return The entry number in the netmap.\r
851\r
852**/\r
853UINTN\r
854EFIAPI\r
855NetMapGetCount (\r
856 IN NET_MAP *Map\r
857 );\r
858\r
859/**\r
860 Allocate an item to save the <Key, Value> pair to the head of the netmap.\r
1204fe83 861\r
3a1ab4bc 862 Allocate an item to save the <Key, Value> pair and add corresponding node entry\r
1204fe83 863 to the beginning of the Used doubly linked list. The number of the <Key, Value>\r
3a1ab4bc 864 pairs in the netmap increase by 1.\r
97b38d4e 865\r
3a1ab4bc 866 If Map is NULL, then ASSERT().\r
1204fe83 867\r
ae213b7d 868 @param[in, out] Map The netmap to insert into.\r
869 @param[in] Key The user's key.\r
870 @param[in] Value The user's value for the key.\r
97b38d4e 871\r
ae213b7d 872 @retval EFI_OUT_OF_RESOURCES Failed to allocate the memory for the item.\r
873 @retval EFI_SUCCESS The item is inserted to the head.\r
97b38d4e 874\r
875**/\r
876EFI_STATUS\r
877EFIAPI\r
878NetMapInsertHead (\r
ae213b7d 879 IN OUT NET_MAP *Map,\r
97b38d4e 880 IN VOID *Key,\r
881 IN VOID *Value OPTIONAL\r
882 );\r
883\r
884/**\r
885 Allocate an item to save the <Key, Value> pair to the tail of the netmap.\r
886\r
3a1ab4bc 887 Allocate an item to save the <Key, Value> pair and add corresponding node entry\r
1204fe83 888 to the tail of the Used doubly linked list. The number of the <Key, Value>\r
3a1ab4bc 889 pairs in the netmap increase by 1.\r
890\r
891 If Map is NULL, then ASSERT().\r
1204fe83 892\r
ae213b7d 893 @param[in, out] Map The netmap to insert into.\r
894 @param[in] Key The user's key.\r
895 @param[in] Value The user's value for the key.\r
97b38d4e 896\r
ae213b7d 897 @retval EFI_OUT_OF_RESOURCES Failed to allocate the memory for the item.\r
898 @retval EFI_SUCCESS The item is inserted to the tail.\r
97b38d4e 899\r
900**/\r
901EFI_STATUS\r
902EFIAPI\r
903NetMapInsertTail (\r
ae213b7d 904 IN OUT NET_MAP *Map,\r
97b38d4e 905 IN VOID *Key,\r
906 IN VOID *Value OPTIONAL\r
907 );\r
908\r
909/**\r
e9b67286 910 Finds the key in the netmap and returns the point to the item containing the Key.\r
1204fe83 911\r
912 Iterate the Used doubly linked list of the netmap to get every item. Compare the key of every\r
3a1ab4bc 913 item with the key to search. It returns the point to the item contains the Key if found.\r
97b38d4e 914\r
3a1ab4bc 915 If Map is NULL, then ASSERT().\r
1204fe83 916\r
ae213b7d 917 @param[in] Map The netmap to search within.\r
918 @param[in] Key The key to search.\r
97b38d4e 919\r
920 @return The point to the item contains the Key, or NULL if Key isn't in the map.\r
921\r
922**/\r
ae213b7d 923NET_MAP_ITEM *\r
97b38d4e 924EFIAPI\r
925NetMapFindKey (\r
926 IN NET_MAP *Map,\r
927 IN VOID *Key\r
928 );\r
929\r
930/**\r
3a1ab4bc 931 Remove the node entry of the item from the netmap and return the key of the removed item.\r
1204fe83 932\r
933 Remove the node entry of the item from the Used doubly linked list of the netmap.\r
934 The number of the <Key, Value> pairs in the netmap decrease by 1. Then add the node\r
3a1ab4bc 935 entry of the item to the Recycled doubly linked list of the netmap. If Value is not NULL,\r
936 Value will point to the value of the item. It returns the key of the removed item.\r
1204fe83 937\r
3a1ab4bc 938 If Map is NULL, then ASSERT().\r
939 If Item is NULL, then ASSERT().\r
940 if item in not in the netmap, then ASSERT().\r
1204fe83 941\r
ae213b7d 942 @param[in, out] Map The netmap to remove the item from.\r
943 @param[in, out] Item The item to remove.\r
944 @param[out] Value The variable to receive the value if not NULL.\r
97b38d4e 945\r
ae213b7d 946 @return The key of the removed item.\r
97b38d4e 947\r
948**/\r
949VOID *\r
950EFIAPI\r
951NetMapRemoveItem (\r
ae213b7d 952 IN OUT NET_MAP *Map,\r
953 IN OUT NET_MAP_ITEM *Item,\r
954 OUT VOID **Value OPTIONAL\r
97b38d4e 955 );\r
956\r
957/**\r
3a1ab4bc 958 Remove the first node entry on the netmap and return the key of the removed item.\r
97b38d4e 959\r
1204fe83 960 Remove the first node entry from the Used doubly linked list of the netmap.\r
961 The number of the <Key, Value> pairs in the netmap decrease by 1. Then add the node\r
3a1ab4bc 962 entry to the Recycled doubly linked list of the netmap. If parameter Value is not NULL,\r
963 parameter Value will point to the value of the item. It returns the key of the removed item.\r
1204fe83 964\r
3a1ab4bc 965 If Map is NULL, then ASSERT().\r
966 If the Used doubly linked list is empty, then ASSERT().\r
1204fe83 967\r
ae213b7d 968 @param[in, out] Map The netmap to remove the head from.\r
969 @param[out] Value The variable to receive the value if not NULL.\r
97b38d4e 970\r
ae213b7d 971 @return The key of the item removed.\r
97b38d4e 972\r
973**/\r
974VOID *\r
975EFIAPI\r
976NetMapRemoveHead (\r
ae213b7d 977 IN OUT NET_MAP *Map,\r
978 OUT VOID **Value OPTIONAL\r
97b38d4e 979 );\r
980\r
981/**\r
3a1ab4bc 982 Remove the last node entry on the netmap and return the key of the removed item.\r
97b38d4e 983\r
1204fe83 984 Remove the last node entry from the Used doubly linked list of the netmap.\r
985 The number of the <Key, Value> pairs in the netmap decrease by 1. Then add the node\r
3a1ab4bc 986 entry to the Recycled doubly linked list of the netmap. If parameter Value is not NULL,\r
987 parameter Value will point to the value of the item. It returns the key of the removed item.\r
1204fe83 988\r
3a1ab4bc 989 If Map is NULL, then ASSERT().\r
990 If the Used doubly linked list is empty, then ASSERT().\r
1204fe83 991\r
ae213b7d 992 @param[in, out] Map The netmap to remove the tail from.\r
993 @param[out] Value The variable to receive the value if not NULL.\r
97b38d4e 994\r
ae213b7d 995 @return The key of the item removed.\r
97b38d4e 996\r
997**/\r
998VOID *\r
999EFIAPI\r
1000NetMapRemoveTail (\r
ae213b7d 1001 IN OUT NET_MAP *Map,\r
1002 OUT VOID **Value OPTIONAL\r
97b38d4e 1003 );\r
1004\r
1005typedef\r
1006EFI_STATUS\r
e798cd87 1007(EFIAPI *NET_MAP_CALLBACK) (\r
97b38d4e 1008 IN NET_MAP *Map,\r
1009 IN NET_MAP_ITEM *Item,\r
1010 IN VOID *Arg\r
1011 );\r
1012\r
1013/**\r
3a1ab4bc 1014 Iterate through the netmap and call CallBack for each item.\r
1204fe83 1015\r
86ac8fb2 1016 It will continue the traverse if CallBack returns EFI_SUCCESS, otherwise, break\r
1204fe83 1017 from the loop. It returns the CallBack's last return value. This function is\r
3a1ab4bc 1018 delete safe for the current item.\r
97b38d4e 1019\r
3a1ab4bc 1020 If Map is NULL, then ASSERT().\r
1021 If CallBack is NULL, then ASSERT().\r
1204fe83 1022\r
ae213b7d 1023 @param[in] Map The Map to iterate through.\r
1024 @param[in] CallBack The callback function to call for each item.\r
1025 @param[in] Arg The opaque parameter to the callback.\r
97b38d4e 1026\r
64a80549 1027 @retval EFI_SUCCESS There is no item in the netmap, or CallBack for each item\r
1028 returns EFI_SUCCESS.\r
ae213b7d 1029 @retval Others It returns the CallBack's last return value.\r
97b38d4e 1030\r
1031**/\r
1032EFI_STATUS\r
1033EFIAPI\r
1034NetMapIterate (\r
1035 IN NET_MAP *Map,\r
1036 IN NET_MAP_CALLBACK CallBack,\r
f6b7393c 1037 IN VOID *Arg OPTIONAL\r
97b38d4e 1038 );\r
1039\r
1040\r
1041//\r
1042// Helper functions to implement driver binding and service binding protocols.\r
1043//\r
1044/**\r
1045 Create a child of the service that is identified by ServiceBindingGuid.\r
1204fe83 1046\r
3a1ab4bc 1047 Get the ServiceBinding Protocol first, then use it to create a child.\r
97b38d4e 1048\r
3a1ab4bc 1049 If ServiceBindingGuid is NULL, then ASSERT().\r
1050 If ChildHandle is NULL, then ASSERT().\r
1204fe83 1051\r
ae213b7d 1052 @param[in] Controller The controller which has the service installed.\r
1053 @param[in] Image The image handle used to open service.\r
1054 @param[in] ServiceBindingGuid The service's Guid.\r
e9b67286 1055 @param[in, out] ChildHandle The handle to receive the created child.\r
97b38d4e 1056\r
e9b67286 1057 @retval EFI_SUCCESS The child was successfully created.\r
97b38d4e 1058 @retval Others Failed to create the child.\r
1059\r
1060**/\r
1061EFI_STATUS\r
1062EFIAPI\r
1063NetLibCreateServiceChild (\r
ae213b7d 1064 IN EFI_HANDLE Controller,\r
1065 IN EFI_HANDLE Image,\r
97b38d4e 1066 IN EFI_GUID *ServiceBindingGuid,\r
ae213b7d 1067 IN OUT EFI_HANDLE *ChildHandle\r
97b38d4e 1068 );\r
1069\r
1070/**\r
e9b67286 1071 Destroy a child of the service that is identified by ServiceBindingGuid.\r
1204fe83 1072\r
3a1ab4bc 1073 Get the ServiceBinding Protocol first, then use it to destroy a child.\r
1204fe83 1074\r
3a1ab4bc 1075 If ServiceBindingGuid is NULL, then ASSERT().\r
1204fe83 1076\r
ae213b7d 1077 @param[in] Controller The controller which has the service installed.\r
1078 @param[in] Image The image handle used to open service.\r
1079 @param[in] ServiceBindingGuid The service's Guid.\r
e9b67286 1080 @param[in] ChildHandle The child to destroy.\r
97b38d4e 1081\r
64a80549 1082 @retval EFI_SUCCESS The child was destroyed.\r
e9b67286 1083 @retval Others Failed to destroy the child.\r
97b38d4e 1084\r
1085**/\r
1086EFI_STATUS\r
1087EFIAPI\r
1088NetLibDestroyServiceChild (\r
ae213b7d 1089 IN EFI_HANDLE Controller,\r
1090 IN EFI_HANDLE Image,\r
97b38d4e 1091 IN EFI_GUID *ServiceBindingGuid,\r
1092 IN EFI_HANDLE ChildHandle\r
1093 );\r
1094\r
1095/**\r
779ae357 1096 Get handle with Simple Network Protocol installed on it.\r
1097\r
1098 There should be MNP Service Binding Protocol installed on the input ServiceHandle.\r
1099 If Simple Network Protocol is already installed on the ServiceHandle, the\r
1100 ServiceHandle will be returned. If SNP is not installed on the ServiceHandle,\r
1101 try to find its parent handle with SNP installed.\r
1102\r
1103 @param[in] ServiceHandle The handle where network service binding protocols are\r
1104 installed on.\r
1105 @param[out] Snp The pointer to store the address of the SNP instance.\r
1106 This is an optional parameter that may be NULL.\r
1107\r
1108 @return The SNP handle, or NULL if not found.\r
1109\r
1110**/\r
1111EFI_HANDLE\r
1112EFIAPI\r
1113NetLibGetSnpHandle (\r
1114 IN EFI_HANDLE ServiceHandle,\r
1115 OUT EFI_SIMPLE_NETWORK_PROTOCOL **Snp OPTIONAL\r
1116 );\r
1117\r
1118/**\r
1119 Retrieve VLAN ID of a VLAN device handle.\r
1120\r
1121 Search VLAN device path node in Device Path of specified ServiceHandle and\r
1122 return its VLAN ID. If no VLAN device path node found, then this ServiceHandle\r
1123 is not a VLAN device handle, and 0 will be returned.\r
1124\r
1125 @param[in] ServiceHandle The handle where network service binding protocols are\r
1126 installed on.\r
1127\r
1128 @return VLAN ID of the device handle, or 0 if not a VLAN device.\r
97b38d4e 1129\r
779ae357 1130**/\r
1131UINT16\r
1132EFIAPI\r
1133NetLibGetVlanId (\r
1134 IN EFI_HANDLE ServiceHandle\r
1135 );\r
1136\r
1137/**\r
1138 Find VLAN device handle with specified VLAN ID.\r
1139\r
1140 The VLAN child device handle is created by VLAN Config Protocol on ControllerHandle.\r
1141 This function will append VLAN device path node to the parent device path,\r
1142 and then use LocateDevicePath() to find the correct VLAN device handle.\r
1143\r
e2851998 1144 @param[in] ControllerHandle The handle where network service binding protocols are\r
779ae357 1145 installed on.\r
e2851998 1146 @param[in] VlanId The configured VLAN ID for the VLAN device.\r
779ae357 1147\r
1148 @return The VLAN device handle, or NULL if not found.\r
1149\r
1150**/\r
1151EFI_HANDLE\r
1152EFIAPI\r
1153NetLibGetVlanHandle (\r
1154 IN EFI_HANDLE ControllerHandle,\r
1155 IN UINT16 VlanId\r
1156 );\r
1157\r
1158/**\r
1159 Get MAC address associated with the network service handle.\r
1160\r
1161 There should be MNP Service Binding Protocol installed on the input ServiceHandle.\r
1162 If SNP is installed on the ServiceHandle or its parent handle, MAC address will\r
1163 be retrieved from SNP. If no SNP found, try to get SNP mode data use MNP.\r
1164\r
1165 @param[in] ServiceHandle The handle where network service binding protocols are\r
1166 installed on.\r
1167 @param[out] MacAddress The pointer to store the returned MAC address.\r
1168 @param[out] AddressSize The length of returned MAC address.\r
1169\r
64a80549 1170 @retval EFI_SUCCESS MAC address was returned successfully.\r
779ae357 1171 @retval Others Failed to get SNP mode data.\r
1172\r
1173**/\r
1174EFI_STATUS\r
1175EFIAPI\r
1176NetLibGetMacAddress (\r
1177 IN EFI_HANDLE ServiceHandle,\r
1178 OUT EFI_MAC_ADDRESS *MacAddress,\r
1179 OUT UINTN *AddressSize\r
1180 );\r
1181\r
1182/**\r
1183 Convert MAC address of the NIC associated with specified Service Binding Handle\r
1184 to a unicode string. Callers are responsible for freeing the string storage.\r
3a1ab4bc 1185\r
779ae357 1186 Locate simple network protocol associated with the Service Binding Handle and\r
1187 get the mac address from SNP. Then convert the mac address into a unicode\r
1188 string. It takes 2 unicode characters to represent a 1 byte binary buffer.\r
1189 Plus one unicode character for the null-terminator.\r
3a1ab4bc 1190\r
779ae357 1191 @param[in] ServiceHandle The handle where network service binding protocol is\r
64a80549 1192 installed.\r
779ae357 1193 @param[in] ImageHandle The image handle used to act as the agent handle to\r
b00ed21a 1194 get the simple network protocol. This parameter is\r
1195 optional and may be NULL.\r
ae213b7d 1196 @param[out] MacString The pointer to store the address of the string\r
1197 representation of the mac address.\r
1204fe83 1198\r
64a80549 1199 @retval EFI_SUCCESS Converted the mac address a unicode string successfully.\r
1200 @retval EFI_OUT_OF_RESOURCES There are not enough memory resources.\r
ae213b7d 1201 @retval Others Failed to open the simple network protocol.\r
97b38d4e 1202\r
1203**/\r
1204EFI_STATUS\r
1205EFIAPI\r
1206NetLibGetMacString (\r
779ae357 1207 IN EFI_HANDLE ServiceHandle,\r
b00ed21a 1208 IN EFI_HANDLE ImageHandle, OPTIONAL\r
ae213b7d 1209 OUT CHAR16 **MacString\r
97b38d4e 1210 );\r
1211\r
dd29f3ed 1212/**\r
1213 Detect media status for specified network device.\r
1214\r
1215 The underlying UNDI driver may or may not support reporting media status from\r
1216 GET_STATUS command (PXE_STATFLAGS_GET_STATUS_NO_MEDIA_SUPPORTED). This routine\r
3b1464d5 1217 will try to invoke Snp->GetStatus() to get the media status. If media is already\r
1218 present, it returns directly. If media is not present, it will stop SNP and then\r
1219 restart SNP to get the latest media status. This provides an opportunity to get \r
64a80549 1220 the correct media status for old UNDI driver, which doesn't support reporting \r
1221 media status from GET_STATUS command.\r
1222 Note: there are two limitations for the current algorithm:\r
1223 1) For UNDI with this capability, when the cable is not attached, there will\r
1224 be an redundant Stop/Start() process.\r
3b1464d5 1225 2) for UNDI without this capability, in case that network cable is attached when\r
1226 Snp->Initialize() is invoked while network cable is unattached later,\r
1227 NetLibDetectMedia() will report MediaPresent as TRUE, causing upper layer\r
1228 apps to wait for timeout time.\r
dd29f3ed 1229\r
1230 @param[in] ServiceHandle The handle where network service binding protocols are\r
64a80549 1231 installed.\r
dd29f3ed 1232 @param[out] MediaPresent The pointer to store the media status.\r
1233\r
1234 @retval EFI_SUCCESS Media detection success.\r
64a80549 1235 @retval EFI_INVALID_PARAMETER ServiceHandle is not a valid network device handle.\r
1236 @retval EFI_UNSUPPORTED The network device does not support media detection.\r
1237 @retval EFI_DEVICE_ERROR SNP is in an unknown state.\r
dd29f3ed 1238\r
1239**/\r
1240EFI_STATUS\r
1241EFIAPI\r
1242NetLibDetectMedia (\r
1243 IN EFI_HANDLE ServiceHandle,\r
1244 OUT BOOLEAN *MediaPresent\r
1245 );\r
1246\r
97b38d4e 1247/**\r
1248 Create an IPv4 device path node.\r
1204fe83 1249\r
3a1ab4bc 1250 The header type of IPv4 device path node is MESSAGING_DEVICE_PATH.\r
1251 The header subtype of IPv4 device path node is MSG_IPv4_DP.\r
1252 The length of the IPv4 device path node in bytes is 19.\r
64a80549 1253 Get other information from parameters to make up the whole IPv4 device path node.\r
97b38d4e 1254\r
64a80549 1255 @param[in, out] Node The pointer to the IPv4 device path node.\r
f6b7393c 1256 @param[in] Controller The controller handle.\r
ae213b7d 1257 @param[in] LocalIp The local IPv4 address.\r
1258 @param[in] LocalPort The local port.\r
1259 @param[in] RemoteIp The remote IPv4 address.\r
1260 @param[in] RemotePort The remote port.\r
1261 @param[in] Protocol The protocol type in the IP header.\r
1262 @param[in] UseDefaultAddress Whether this instance is using default address or not.\r
97b38d4e 1263\r
97b38d4e 1264**/\r
1265VOID\r
1266EFIAPI\r
1267NetLibCreateIPv4DPathNode (\r
1268 IN OUT IPv4_DEVICE_PATH *Node,\r
1269 IN EFI_HANDLE Controller,\r
1270 IN IP4_ADDR LocalIp,\r
1271 IN UINT16 LocalPort,\r
1272 IN IP4_ADDR RemoteIp,\r
1273 IN UINT16 RemotePort,\r
1274 IN UINT16 Protocol,\r
1275 IN BOOLEAN UseDefaultAddress\r
1276 );\r
1277\r
f6b7393c 1278/**\r
1279 Create an IPv6 device path node.\r
1204fe83 1280\r
f6b7393c 1281 The header type of IPv6 device path node is MESSAGING_DEVICE_PATH.\r
1282 The header subtype of IPv6 device path node is MSG_IPv6_DP.\r
1283 The length of the IPv6 device path node in bytes is 43.\r
64a80549 1284 Get other information from parameters to make up the whole IPv6 device path node.\r
f6b7393c 1285\r
64a80549 1286 @param[in, out] Node The pointer to the IPv6 device path node.\r
f6b7393c 1287 @param[in] Controller The controller handle.\r
1288 @param[in] LocalIp The local IPv6 address.\r
1289 @param[in] LocalPort The local port.\r
1290 @param[in] RemoteIp The remote IPv6 address.\r
1291 @param[in] RemotePort The remote port.\r
1292 @param[in] Protocol The protocol type in the IP header.\r
1293\r
1294**/\r
1295VOID\r
1296EFIAPI\r
1297NetLibCreateIPv6DPathNode (\r
1298 IN OUT IPv6_DEVICE_PATH *Node,\r
1299 IN EFI_HANDLE Controller,\r
1300 IN EFI_IPv6_ADDRESS *LocalIp,\r
1301 IN UINT16 LocalPort,\r
1302 IN EFI_IPv6_ADDRESS *RemoteIp,\r
1303 IN UINT16 RemotePort,\r
1304 IN UINT16 Protocol\r
1305 );\r
1306\r
1307\r
97b38d4e 1308/**\r
1309 Find the UNDI/SNP handle from controller and protocol GUID.\r
1204fe83 1310\r
e9b67286 1311 For example, IP will open an MNP child to transmit/receive\r
1312 packets. When MNP is stopped, IP should also be stopped. IP\r
64a80549 1313 needs to find its own private data that is related the IP's\r
1314 service binding instance that is installed on the UNDI/SNP handle.\r
1315 The controller is then either an MNP or an ARP child handle. Note that\r
86ac8fb2 1316 IP opens these handles using BY_DRIVER. Use that information to get the\r
97b38d4e 1317 UNDI/SNP handle.\r
1318\r
64a80549 1319 @param[in] Controller The protocol handle to check.\r
ae213b7d 1320 @param[in] ProtocolGuid The protocol that is related with the handle.\r
97b38d4e 1321\r
ae213b7d 1322 @return The UNDI/SNP handle or NULL for errors.\r
97b38d4e 1323\r
1324**/\r
1325EFI_HANDLE\r
1326EFIAPI\r
1327NetLibGetNicHandle (\r
1328 IN EFI_HANDLE Controller,\r
1329 IN EFI_GUID *ProtocolGuid\r
1330 );\r
1331\r
97b38d4e 1332/**\r
1333 This is the default unload handle for all the network drivers.\r
1334\r
3a1ab4bc 1335 Disconnect the driver specified by ImageHandle from all the devices in the handle database.\r
1336 Uninstall all the protocols installed in the driver entry point.\r
1204fe83 1337\r
ae213b7d 1338 @param[in] ImageHandle The drivers' driver image.\r
97b38d4e 1339\r
1340 @retval EFI_SUCCESS The image is unloaded.\r
1341 @retval Others Failed to unload the image.\r
1342\r
1343**/\r
1344EFI_STATUS\r
1345EFIAPI\r
1346NetLibDefaultUnload (\r
1347 IN EFI_HANDLE ImageHandle\r
1348 );\r
1349\r
e4ef0031 1350/**\r
1351 Convert one Null-terminated ASCII string (decimal dotted) to EFI_IPv4_ADDRESS.\r
1352\r
1353 @param[in] String The pointer to the Ascii string.\r
1354 @param[out] Ip4Address The pointer to the converted IPv4 address.\r
1355\r
64a80549 1356 @retval EFI_SUCCESS Converted to an IPv4 address successfully.\r
86ac8fb2 1357 @retval EFI_INVALID_PARAMETER The string is malformatted, or Ip4Address is NULL.\r
e4ef0031 1358\r
1359**/\r
1360EFI_STATUS\r
e798cd87 1361EFIAPI\r
e4ef0031 1362NetLibAsciiStrToIp4 (\r
1363 IN CONST CHAR8 *String,\r
1364 OUT EFI_IPv4_ADDRESS *Ip4Address\r
1365 );\r
1366\r
1367/**\r
1368 Convert one Null-terminated ASCII string to EFI_IPv6_ADDRESS. The format of the\r
86ac8fb2 1369 string is defined in RFC 4291 - Text Representation of Addresses.\r
e4ef0031 1370\r
1371 @param[in] String The pointer to the Ascii string.\r
1372 @param[out] Ip6Address The pointer to the converted IPv6 address.\r
1373\r
64a80549 1374 @retval EFI_SUCCESS Converted to an IPv6 address successfully.\r
86ac8fb2 1375 @retval EFI_INVALID_PARAMETER The string is malformatted, or Ip6Address is NULL.\r
e4ef0031 1376\r
1377**/\r
1378EFI_STATUS\r
e798cd87 1379EFIAPI\r
e4ef0031 1380NetLibAsciiStrToIp6 (\r
1381 IN CONST CHAR8 *String,\r
1382 OUT EFI_IPv6_ADDRESS *Ip6Address\r
1383 );\r
1384\r
1385/**\r
1386 Convert one Null-terminated Unicode string (decimal dotted) to EFI_IPv4_ADDRESS.\r
1387\r
1388 @param[in] String The pointer to the Ascii string.\r
1389 @param[out] Ip4Address The pointer to the converted IPv4 address.\r
1390\r
64a80549 1391 @retval EFI_SUCCESS Converted to an IPv4 address successfully.\r
86ac8fb2 1392 @retval EFI_INVALID_PARAMETER The string is mal-formatted or Ip4Address is NULL.\r
64a80549 1393 @retval EFI_OUT_OF_RESOURCES Failed to perform the operation due to lack of resources.\r
e4ef0031 1394\r
1395**/\r
1396EFI_STATUS\r
e798cd87 1397EFIAPI\r
e4ef0031 1398NetLibStrToIp4 (\r
1399 IN CONST CHAR16 *String,\r
1400 OUT EFI_IPv4_ADDRESS *Ip4Address\r
1401 );\r
1402\r
1403/**\r
1404 Convert one Null-terminated Unicode string to EFI_IPv6_ADDRESS. The format of\r
86ac8fb2 1405 the string is defined in RFC 4291 - Text Representation of Addresses.\r
e4ef0031 1406\r
1407 @param[in] String The pointer to the Ascii string.\r
1408 @param[out] Ip6Address The pointer to the converted IPv6 address.\r
1409\r
64a80549 1410 @retval EFI_SUCCESS Converted to an IPv6 address successfully.\r
86ac8fb2 1411 @retval EFI_INVALID_PARAMETER The string is malformatted or Ip6Address is NULL.\r
64a80549 1412 @retval EFI_OUT_OF_RESOURCES Failed to perform the operation due to a lack of resources.\r
e4ef0031 1413\r
1414**/\r
1415EFI_STATUS\r
e798cd87 1416EFIAPI\r
e4ef0031 1417NetLibStrToIp6 (\r
1418 IN CONST CHAR16 *String,\r
1419 OUT EFI_IPv6_ADDRESS *Ip6Address\r
1420 );\r
1421\r
1422/**\r
1423 Convert one Null-terminated Unicode string to EFI_IPv6_ADDRESS and prefix length.\r
86ac8fb2 1424 The format of the string is defined in RFC 4291 - Text Representation of Addresses\r
e4ef0031 1425 Prefixes: ipv6-address/prefix-length.\r
1426\r
1427 @param[in] String The pointer to the Ascii string.\r
1428 @param[out] Ip6Address The pointer to the converted IPv6 address.\r
1429 @param[out] PrefixLength The pointer to the converted prefix length.\r
1430\r
64a80549 1431 @retval EFI_SUCCESS Converted to an IPv6 address successfully.\r
86ac8fb2 1432 @retval EFI_INVALID_PARAMETER The string is malformatted, or Ip6Address is NULL.\r
64a80549 1433 @retval EFI_OUT_OF_RESOURCES Failed to perform the operation due to a lack of resources.\r
e4ef0031 1434\r
1435**/\r
1436EFI_STATUS\r
e798cd87 1437EFIAPI\r
e4ef0031 1438NetLibStrToIp6andPrefix (\r
1439 IN CONST CHAR16 *String,\r
1440 OUT EFI_IPv6_ADDRESS *Ip6Address,\r
1441 OUT UINT8 *PrefixLength\r
1442 );\r
b45b45b2 1443\r
216f7970 1444/**\r
1445\r
1446 Convert one EFI_IPv6_ADDRESS to Null-terminated Unicode string.\r
1447 The text representation of address is defined in RFC 4291.\r
1448 \r
1449 @param[in] Ip6Address The pointer to the IPv6 address.\r
1450 @param[out] String The buffer to return the converted string.\r
1451 @param[in] StringSize The length in bytes of the input String.\r
1452 \r
1453 @retval EFI_SUCCESS Convert to string successfully.\r
1454 @retval EFI_INVALID_PARAMETER The input parameter is invalid.\r
1455 @retval EFI_BUFFER_TOO_SMALL The BufferSize is too small for the result. BufferSize has been \r
1456 updated with the size needed to complete the request.\r
1457**/\r
1458EFI_STATUS\r
1459EFIAPI\r
1460NetLibIp6ToStr (\r
1461 IN EFI_IPv6_ADDRESS *Ip6Address,\r
1462 OUT CHAR16 *String,\r
1463 IN UINTN StringSize\r
1464 );\r
1465\r
b45b45b2 1466//\r
e4ef0031 1467// Various signatures\r
b45b45b2 1468//\r
1469#define NET_BUF_SIGNATURE SIGNATURE_32 ('n', 'b', 'u', 'f')\r
1470#define NET_VECTOR_SIGNATURE SIGNATURE_32 ('n', 'v', 'e', 'c')\r
1471#define NET_QUE_SIGNATURE SIGNATURE_32 ('n', 'b', 'q', 'u')\r
97b38d4e 1472\r
1473\r
b45b45b2 1474#define NET_PROTO_DATA 64 // Opaque buffer for protocols\r
1475#define NET_BUF_HEAD 1 // Trim or allocate space from head\r
1476#define NET_BUF_TAIL 0 // Trim or allocate space from tail\r
1477#define NET_VECTOR_OWN_FIRST 0x01 // We allocated the 1st block in the vector\r
97b38d4e 1478\r
1479#define NET_CHECK_SIGNATURE(PData, SIGNATURE) \\r
1480 ASSERT (((PData) != NULL) && ((PData)->Signature == (SIGNATURE)))\r
1481\r
97b38d4e 1482//\r
1483// Single memory block in the vector.\r
1484//\r
1485typedef struct {\r
1486 UINT32 Len; // The block's length\r
1487 UINT8 *Bulk; // The block's Data\r
1488} NET_BLOCK;\r
1489\r
e798cd87 1490typedef VOID (EFIAPI *NET_VECTOR_EXT_FREE) (VOID *Arg);\r
97b38d4e 1491\r
1492//\r
1493//NET_VECTOR contains several blocks to hold all packet's\r
1494//fragments and other house-keeping stuff for sharing. It\r
1495//doesn't specify the where actual packet fragment begins.\r
1496//\r
1497typedef struct {\r
1498 UINT32 Signature;\r
1499 INTN RefCnt; // Reference count to share NET_VECTOR.\r
1500 NET_VECTOR_EXT_FREE Free; // external function to free NET_VECTOR\r
86ac8fb2 1501 VOID *Arg; // opaque argument to Free\r
97b38d4e 1502 UINT32 Flag; // Flags, NET_VECTOR_OWN_FIRST\r
86ac8fb2 1503 UINT32 Len; // Total length of the associated BLOCKs\r
97b38d4e 1504\r
1505 UINT32 BlockNum;\r
1506 NET_BLOCK Block[1];\r
1507} NET_VECTOR;\r
1508\r
1509//\r
e9b67286 1510//NET_BLOCK_OP operates on the NET_BLOCK. It specifies\r
1511//where the actual fragment begins and ends\r
97b38d4e 1512//\r
1513typedef struct {\r
1514 UINT8 *BlockHead; // Block's head, or the smallest valid Head\r
1515 UINT8 *BlockTail; // Block's tail. BlockTail-BlockHead=block length\r
1516 UINT8 *Head; // 1st byte of the data in the block\r
1517 UINT8 *Tail; // Tail of the data in the block, Tail-Head=Size\r
1518 UINT32 Size; // The size of the data\r
1519} NET_BLOCK_OP;\r
1520\r
f6b7393c 1521typedef union {\r
1522 IP4_HEAD *Ip4;\r
1523 EFI_IP6_HEADER *Ip6;\r
1524} NET_IP_HEAD;\r
97b38d4e 1525\r
1526//\r
1527//NET_BUF is the buffer manage structure used by the\r
e9b67286 1528//network stack. Every network packet may be fragmented. The Vector points to\r
1529//memory blocks used by each fragment, and BlockOp\r
97b38d4e 1530//specifies where each fragment begins and ends.\r
1531//\r
e9b67286 1532//It also contains an opaque area for the protocol to store\r
1533//per-packet information. Protocol must be careful not\r
97b38d4e 1534//to overwrite the members after that.\r
1535//\r
1536typedef struct {\r
f6b7393c 1537 UINT32 Signature;\r
1538 INTN RefCnt;\r
1539 LIST_ENTRY List; // The List this NET_BUF is on\r
97b38d4e 1540\r
f6b7393c 1541 NET_IP_HEAD Ip; // Network layer header, for fast access\r
1542 TCP_HEAD *Tcp; // Transport layer header, for fast access\r
1543 EFI_UDP_HEADER *Udp; // User Datagram Protocol header\r
1544 UINT8 ProtoData [NET_PROTO_DATA]; //Protocol specific data\r
97b38d4e 1545\r
f6b7393c 1546 NET_VECTOR *Vector; // The vector containing the packet\r
97b38d4e 1547\r
f6b7393c 1548 UINT32 BlockOpNum; // Total number of BlockOp in the buffer\r
1549 UINT32 TotalSize; // Total size of the actual packet\r
1550 NET_BLOCK_OP BlockOp[1]; // Specify the position of actual packet\r
97b38d4e 1551} NET_BUF;\r
1552\r
97b38d4e 1553//\r
e9b67286 1554//A queue of NET_BUFs. It is a thin extension of\r
97b38d4e 1555//NET_BUF functions.\r
1556//\r
1557typedef struct {\r
1558 UINT32 Signature;\r
1559 INTN RefCnt;\r
1560 LIST_ENTRY List; // The List this buffer queue is on\r
1561\r
1562 LIST_ENTRY BufList; // list of queued buffers\r
1563 UINT32 BufSize; // total length of DATA in the buffers\r
1564 UINT32 BufNum; // total number of buffers on the chain\r
1565} NET_BUF_QUEUE;\r
1566\r
1567//\r
1568// Pseudo header for TCP and UDP checksum\r
1569//\r
1570#pragma pack(1)\r
1571typedef struct {\r
1572 IP4_ADDR SrcIp;\r
1573 IP4_ADDR DstIp;\r
1574 UINT8 Reserved;\r
1575 UINT8 Protocol;\r
1576 UINT16 Len;\r
1577} NET_PSEUDO_HDR;\r
f6b7393c 1578\r
1579typedef struct {\r
1580 EFI_IPv6_ADDRESS SrcIp;\r
1581 EFI_IPv6_ADDRESS DstIp;\r
1582 UINT32 Len;\r
1583 UINT32 Reserved:24;\r
1584 UINT32 NextHeader:8;\r
1585} NET_IP6_PSEUDO_HDR;\r
97b38d4e 1586#pragma pack()\r
1587\r
1588//\r
1589// The fragment entry table used in network interfaces. This is\r
1590// the same as NET_BLOCK now. Use two different to distinguish\r
1591// the two in case that NET_BLOCK be enhanced later.\r
1592//\r
1593typedef struct {\r
1594 UINT32 Len;\r
1595 UINT8 *Bulk;\r
1596} NET_FRAGMENT;\r
1597\r
1598#define NET_GET_REF(PData) ((PData)->RefCnt++)\r
1599#define NET_PUT_REF(PData) ((PData)->RefCnt--)\r
50d7ebad 1600#define NETBUF_FROM_PROTODATA(Info) BASE_CR((Info), NET_BUF, ProtoData)\r
97b38d4e 1601\r
1602#define NET_BUF_SHARED(Buf) \\r
1603 (((Buf)->RefCnt > 1) || ((Buf)->Vector->RefCnt > 1))\r
1604\r
1605#define NET_VECTOR_SIZE(BlockNum) \\r
1606 (sizeof (NET_VECTOR) + ((BlockNum) - 1) * sizeof (NET_BLOCK))\r
1607\r
1608#define NET_BUF_SIZE(BlockOpNum) \\r
1609 (sizeof (NET_BUF) + ((BlockOpNum) - 1) * sizeof (NET_BLOCK_OP))\r
1610\r
1611#define NET_HEADSPACE(BlockOp) \\r
1612 (UINTN)((BlockOp)->Head - (BlockOp)->BlockHead)\r
1613\r
1614#define NET_TAILSPACE(BlockOp) \\r
1615 (UINTN)((BlockOp)->BlockTail - (BlockOp)->Tail)\r
1616\r
1617/**\r
1618 Allocate a single block NET_BUF. Upon allocation, all the\r
1619 free space is in the tail room.\r
1620\r
ae213b7d 1621 @param[in] Len The length of the block.\r
97b38d4e 1622\r
64a80549 1623 @return The pointer to the allocated NET_BUF, or NULL if the\r
1624 allocation failed due to resource limitations.\r
97b38d4e 1625\r
1626**/\r
1627NET_BUF *\r
1628EFIAPI\r
1629NetbufAlloc (\r
1630 IN UINT32 Len\r
1631 );\r
1632\r
1633/**\r
7557df4d 1634 Free the net buffer and its associated NET_VECTOR.\r
1204fe83 1635\r
7557df4d 1636 Decrease the reference count of the net buffer by one. Free the associated net\r
1204fe83 1637 vector and itself if the reference count of the net buffer is decreased to 0.\r
1638 The net vector free operation decreases the reference count of the net\r
e9b67286 1639 vector by one, and performs the resource free operation when the reference count\r
1204fe83 1640 of the net vector is 0.\r
1641\r
64a80549 1642 @param[in] Nbuf The pointer to the NET_BUF to be freed.\r
97b38d4e 1643\r
1644**/\r
1645VOID\r
1646EFIAPI\r
1647NetbufFree (\r
1648 IN NET_BUF *Nbuf\r
1649 );\r
1650\r
1651/**\r
1204fe83 1652 Get the index of NET_BLOCK_OP that contains the byte at Offset in the net\r
1653 buffer.\r
1654\r
1655 For example, this function can be used to retrieve the IP header in the packet. It\r
1656 also can be used to get the fragment that contains the byte used\r
1657 mainly by the library implementation itself.\r
97b38d4e 1658\r
64a80549 1659 @param[in] Nbuf The pointer to the net buffer.\r
7557df4d 1660 @param[in] Offset The offset of the byte.\r
1204fe83 1661 @param[out] Index Index of the NET_BLOCK_OP that contains the byte at\r
7557df4d 1662 Offset.\r
97b38d4e 1663\r
64a80549 1664 @return The pointer to the Offset'th byte of data in the net buffer, or NULL\r
7557df4d 1665 if there is no such data in the net buffer.\r
97b38d4e 1666\r
1667**/\r
1668UINT8 *\r
1669EFIAPI\r
1670NetbufGetByte (\r
1671 IN NET_BUF *Nbuf,\r
1672 IN UINT32 Offset,\r
ae213b7d 1673 OUT UINT32 *Index OPTIONAL\r
97b38d4e 1674 );\r
1675\r
1676/**\r
1204fe83 1677 Create a copy of the net buffer that shares the associated net vector.\r
1678\r
1679 The reference count of the newly created net buffer is set to 1. The reference\r
1680 count of the associated net vector is increased by one.\r
97b38d4e 1681\r
64a80549 1682 @param[in] Nbuf The pointer to the net buffer to be cloned.\r
97b38d4e 1683\r
64a80549 1684 @return The pointer to the cloned net buffer, or NULL if the\r
1685 allocation failed due to resource limitations.\r
97b38d4e 1686\r
1687**/\r
7557df4d 1688NET_BUF *\r
97b38d4e 1689EFIAPI\r
1690NetbufClone (\r
1691 IN NET_BUF *Nbuf\r
1692 );\r
1693\r
1694/**\r
7557df4d 1695 Create a duplicated copy of the net buffer with data copied and HeadSpace\r
1696 bytes of head space reserved.\r
1204fe83 1697\r
7557df4d 1698 The duplicated net buffer will allocate its own memory to hold the data of the\r
1699 source net buffer.\r
1204fe83 1700\r
64a80549 1701 @param[in] Nbuf The pointer to the net buffer to be duplicated from.\r
1702 @param[in, out] Duplicate The pointer to the net buffer to duplicate to. If\r
1703 NULL, a new net buffer is allocated.\r
1704 @param[in] HeadSpace The length of the head space to reserve.\r
7557df4d 1705\r
64a80549 1706 @return The pointer to the duplicated net buffer, or NULL if\r
1707 the allocation failed due to resource limitations.\r
97b38d4e 1708\r
1709**/\r
1710NET_BUF *\r
1711EFIAPI\r
1712NetbufDuplicate (\r
1713 IN NET_BUF *Nbuf,\r
ae213b7d 1714 IN OUT NET_BUF *Duplicate OPTIONAL,\r
97b38d4e 1715 IN UINT32 HeadSpace\r
1716 );\r
1717\r
1718/**\r
1204fe83 1719 Create a NET_BUF structure which contains Len byte data of Nbuf starting from\r
1720 Offset.\r
1721\r
1722 A new NET_BUF structure will be created but the associated data in NET_VECTOR\r
64a80549 1723 is shared. This function exists to perform IP packet fragmentation.\r
7557df4d 1724\r
64a80549 1725 @param[in] Nbuf The pointer to the net buffer to be extracted.\r
1204fe83 1726 @param[in] Offset Starting point of the data to be included in the new\r
7557df4d 1727 net buffer.\r
64a80549 1728 @param[in] Len The bytes of data to be included in the new net buffer.\r
1729 @param[in] HeadSpace The bytes of the head space to reserve for the protocol header.\r
7557df4d 1730\r
64a80549 1731 @return The pointer to the cloned net buffer, or NULL if the\r
1732 allocation failed due to resource limitations.\r
97b38d4e 1733\r
1734**/\r
1735NET_BUF *\r
1736EFIAPI\r
1737NetbufGetFragment (\r
1738 IN NET_BUF *Nbuf,\r
1739 IN UINT32 Offset,\r
1740 IN UINT32 Len,\r
1741 IN UINT32 HeadSpace\r
1742 );\r
1743\r
1744/**\r
7557df4d 1745 Reserve some space in the header room of the net buffer.\r
1746\r
1204fe83 1747 Upon allocation, all the space is in the tail room of the buffer. Call this\r
64a80549 1748 function to move space to the header room. This function is quite limited\r
1204fe83 1749 in that it can only reserve space from the first block of an empty NET_BUF not\r
64a80549 1750 built from the external. However, it should be enough for the network stack.\r
97b38d4e 1751\r
64a80549 1752 @param[in, out] Nbuf The pointer to the net buffer.\r
7557df4d 1753 @param[in] Len The length of buffer to be reserved from the header.\r
97b38d4e 1754\r
1755**/\r
1756VOID\r
1757EFIAPI\r
1758NetbufReserve (\r
ae213b7d 1759 IN OUT NET_BUF *Nbuf,\r
97b38d4e 1760 IN UINT32 Len\r
1761 );\r
1762\r
1763/**\r
1204fe83 1764 Allocate Len bytes of space from the header or tail of the buffer.\r
97b38d4e 1765\r
64a80549 1766 @param[in, out] Nbuf The pointer to the net buffer.\r
7557df4d 1767 @param[in] Len The length of the buffer to be allocated.\r
64a80549 1768 @param[in] FromHead The flag to indicate whether to reserve the data\r
7557df4d 1769 from head (TRUE) or tail (FALSE).\r
97b38d4e 1770\r
64a80549 1771 @return The pointer to the first byte of the allocated buffer,\r
1772 or NULL, if there is no sufficient space.\r
97b38d4e 1773\r
1774**/\r
7557df4d 1775UINT8*\r
97b38d4e 1776EFIAPI\r
1777NetbufAllocSpace (\r
ae213b7d 1778 IN OUT NET_BUF *Nbuf,\r
97b38d4e 1779 IN UINT32 Len,\r
1780 IN BOOLEAN FromHead\r
1781 );\r
1782\r
1783/**\r
64a80549 1784 Trim Len bytes from the header or the tail of the net buffer.\r
97b38d4e 1785\r
64a80549 1786 @param[in, out] Nbuf The pointer to the net buffer.\r
7557df4d 1787 @param[in] Len The length of the data to be trimmed.\r
64a80549 1788 @param[in] FromHead The flag to indicate whether trim data is from the \r
1789 head (TRUE) or the tail (FALSE).\r
97b38d4e 1790\r
64a80549 1791 @return The length of the actual trimmed data, which may be less\r
e9b67286 1792 than Len if the TotalSize of Nbuf is less than Len.\r
97b38d4e 1793\r
1794**/\r
1795UINT32\r
1796EFIAPI\r
1797NetbufTrim (\r
ae213b7d 1798 IN OUT NET_BUF *Nbuf,\r
97b38d4e 1799 IN UINT32 Len,\r
1800 IN BOOLEAN FromHead\r
1801 );\r
1802\r
1803/**\r
1204fe83 1804 Copy Len bytes of data from the specific offset of the net buffer to the\r
7557df4d 1805 destination memory.\r
1204fe83 1806\r
e9b67286 1807 The Len bytes of data may cross several fragments of the net buffer.\r
1204fe83 1808\r
64a80549 1809 @param[in] Nbuf The pointer to the net buffer.\r
7557df4d 1810 @param[in] Offset The sequence number of the first byte to copy.\r
64a80549 1811 @param[in] Len The length of the data to copy.\r
7557df4d 1812 @param[in] Dest The destination of the data to copy to.\r
1813\r
1814 @return The length of the actual copied data, or 0 if the offset\r
361468ed 1815 specified exceeds the total size of net buffer.\r
97b38d4e 1816\r
1817**/\r
1818UINT32\r
1819EFIAPI\r
1820NetbufCopy (\r
1821 IN NET_BUF *Nbuf,\r
1822 IN UINT32 Offset,\r
1823 IN UINT32 Len,\r
1824 IN UINT8 *Dest\r
1825 );\r
1826\r
1827/**\r
1204fe83 1828 Build a NET_BUF from external blocks.\r
1829\r
e9b67286 1830 A new NET_BUF structure will be created from external blocks. An additional block\r
7557df4d 1831 of memory will be allocated to hold reserved HeadSpace bytes of header room\r
e9b67286 1832 and existing HeadLen bytes of header, but the external blocks are shared by the\r
7557df4d 1833 net buffer to avoid data copying.\r
97b38d4e 1834\r
64a80549 1835 @param[in] ExtFragment The pointer to the data block.\r
7557df4d 1836 @param[in] ExtNum The number of the data blocks.\r
ae213b7d 1837 @param[in] HeadSpace The head space to be reserved.\r
e9b67286 1838 @param[in] HeadLen The length of the protocol header. The function\r
1839 pulls this amount of data into a linear block.\r
64a80549 1840 @param[in] ExtFree The pointer to the caller-provided free function.\r
ae213b7d 1841 @param[in] Arg The argument passed to ExtFree when ExtFree is\r
1842 called.\r
97b38d4e 1843\r
64a80549 1844 @return The pointer to the net buffer built from the data blocks,\r
7557df4d 1845 or NULL if the allocation failed due to resource\r
1846 limit.\r
97b38d4e 1847\r
1848**/\r
1849NET_BUF *\r
1850EFIAPI\r
1851NetbufFromExt (\r
1852 IN NET_FRAGMENT *ExtFragment,\r
1853 IN UINT32 ExtNum,\r
1854 IN UINT32 HeadSpace,\r
1855 IN UINT32 HeadLen,\r
1856 IN NET_VECTOR_EXT_FREE ExtFree,\r
1857 IN VOID *Arg OPTIONAL\r
1858 );\r
1859\r
1860/**\r
7557df4d 1861 Build a fragment table to contain the fragments in the net buffer. This is the\r
1204fe83 1862 opposite operation of the NetbufFromExt.\r
1863\r
64a80549 1864 @param[in] Nbuf Points to the net buffer.\r
1865 @param[in, out] ExtFragment The pointer to the data block.\r
7557df4d 1866 @param[in, out] ExtNum The number of the data blocks.\r
97b38d4e 1867\r
1204fe83 1868 @retval EFI_BUFFER_TOO_SMALL The number of non-empty blocks is bigger than\r
7557df4d 1869 ExtNum.\r
64a80549 1870 @retval EFI_SUCCESS The fragment table was built successfully.\r
97b38d4e 1871\r
1872**/\r
1873EFI_STATUS\r
1874EFIAPI\r
1875NetbufBuildExt (\r
1876 IN NET_BUF *Nbuf,\r
ae213b7d 1877 IN OUT NET_FRAGMENT *ExtFragment,\r
1878 IN OUT UINT32 *ExtNum\r
97b38d4e 1879 );\r
1880\r
1881/**\r
7557df4d 1882 Build a net buffer from a list of net buffers.\r
1204fe83 1883\r
64a80549 1884 All the fragments will be collected from the list of NEW_BUF, and then a new\r
1204fe83 1885 net buffer will be created through NetbufFromExt.\r
1886\r
7557df4d 1887 @param[in] BufList A List of the net buffer.\r
1888 @param[in] HeadSpace The head space to be reserved.\r
e9b67286 1889 @param[in] HeaderLen The length of the protocol header. The function\r
1890 pulls this amount of data into a linear block.\r
64a80549 1891 @param[in] ExtFree The pointer to the caller provided free function.\r
7557df4d 1892 @param[in] Arg The argument passed to ExtFree when ExtFree is called.\r
1893\r
64a80549 1894 @return The pointer to the net buffer built from the list of net\r
7557df4d 1895 buffers.\r
97b38d4e 1896\r
1897**/\r
1898NET_BUF *\r
1899EFIAPI\r
1900NetbufFromBufList (\r
1901 IN LIST_ENTRY *BufList,\r
1902 IN UINT32 HeadSpace,\r
1903 IN UINT32 HeaderLen,\r
1904 IN NET_VECTOR_EXT_FREE ExtFree,\r
ae213b7d 1905 IN VOID *Arg OPTIONAL\r
97b38d4e 1906 );\r
1907\r
1908/**\r
1909 Free a list of net buffers.\r
1910\r
64a80549 1911 @param[in, out] Head The pointer to the head of linked net buffers.\r
97b38d4e 1912\r
1913**/\r
1914VOID\r
1915EFIAPI\r
1916NetbufFreeList (\r
ae213b7d 1917 IN OUT LIST_ENTRY *Head\r
97b38d4e 1918 );\r
1919\r
1920/**\r
1921 Initiate the net buffer queue.\r
1922\r
64a80549 1923 @param[in, out] NbufQue The pointer to the net buffer queue to be initialized.\r
97b38d4e 1924\r
1925**/\r
1926VOID\r
1927EFIAPI\r
1928NetbufQueInit (\r
ae213b7d 1929 IN OUT NET_BUF_QUEUE *NbufQue\r
97b38d4e 1930 );\r
1931\r
1932/**\r
7557df4d 1933 Allocate and initialize a net buffer queue.\r
97b38d4e 1934\r
64a80549 1935 @return The pointer to the allocated net buffer queue, or NULL if the\r
7557df4d 1936 allocation failed due to resource limit.\r
97b38d4e 1937\r
1938**/\r
1939NET_BUF_QUEUE *\r
1940EFIAPI\r
1941NetbufQueAlloc (\r
1942 VOID\r
1943 );\r
1944\r
1945/**\r
1204fe83 1946 Free a net buffer queue.\r
1947\r
7557df4d 1948 Decrease the reference count of the net buffer queue by one. The real resource\r
1204fe83 1949 free operation isn't performed until the reference count of the net buffer\r
7557df4d 1950 queue is decreased to 0.\r
97b38d4e 1951\r
64a80549 1952 @param[in] NbufQue The pointer to the net buffer queue to be freed.\r
97b38d4e 1953\r
1954**/\r
1955VOID\r
1956EFIAPI\r
1957NetbufQueFree (\r
1958 IN NET_BUF_QUEUE *NbufQue\r
1959 );\r
1960\r
1961/**\r
7557df4d 1962 Remove a net buffer from the head in the specific queue and return it.\r
97b38d4e 1963\r
64a80549 1964 @param[in, out] NbufQue The pointer to the net buffer queue.\r
97b38d4e 1965\r
64a80549 1966 @return The pointer to the net buffer removed from the specific queue,\r
7557df4d 1967 or NULL if there is no net buffer in the specific queue.\r
97b38d4e 1968\r
1969**/\r
1970NET_BUF *\r
1971EFIAPI\r
1972NetbufQueRemove (\r
ae213b7d 1973 IN OUT NET_BUF_QUEUE *NbufQue\r
97b38d4e 1974 );\r
1975\r
1976/**\r
7557df4d 1977 Append a net buffer to the net buffer queue.\r
97b38d4e 1978\r
64a80549 1979 @param[in, out] NbufQue The pointer to the net buffer queue.\r
1980 @param[in, out] Nbuf The pointer to the net buffer to be appended.\r
97b38d4e 1981\r
1982**/\r
1983VOID\r
1984EFIAPI\r
1985NetbufQueAppend (\r
ae213b7d 1986 IN OUT NET_BUF_QUEUE *NbufQue,\r
1987 IN OUT NET_BUF *Nbuf\r
97b38d4e 1988 );\r
1989\r
1990/**\r
7557df4d 1991 Copy Len bytes of data from the net buffer queue at the specific offset to the\r
1992 destination memory.\r
1204fe83 1993\r
64a80549 1994 The copying operation is the same as NetbufCopy, but applies to the net buffer\r
7557df4d 1995 queue instead of the net buffer.\r
1204fe83 1996\r
64a80549 1997 @param[in] NbufQue The pointer to the net buffer queue.\r
7557df4d 1998 @param[in] Offset The sequence number of the first byte to copy.\r
64a80549 1999 @param[in] Len The length of the data to copy.\r
7557df4d 2000 @param[out] Dest The destination of the data to copy to.\r
2001\r
1204fe83 2002 @return The length of the actual copied data, or 0 if the offset\r
7557df4d 2003 specified exceeds the total size of net buffer queue.\r
97b38d4e 2004\r
2005**/\r
2006UINT32\r
2007EFIAPI\r
2008NetbufQueCopy (\r
2009 IN NET_BUF_QUEUE *NbufQue,\r
2010 IN UINT32 Offset,\r
2011 IN UINT32 Len,\r
ae213b7d 2012 OUT UINT8 *Dest\r
97b38d4e 2013 );\r
2014\r
2015/**\r
3b1464d5 2016 Trim Len bytes of data from the buffer queue and free any net buffer\r
2017 that is completely trimmed.\r
1204fe83 2018\r
7557df4d 2019 The trimming operation is the same as NetbufTrim but applies to the net buffer\r
2020 queue instead of the net buffer.\r
97b38d4e 2021\r
64a80549 2022 @param[in, out] NbufQue The pointer to the net buffer queue.\r
2023 @param[in] Len The length of the data to trim.\r
97b38d4e 2024\r
7557df4d 2025 @return The actual length of the data trimmed.\r
97b38d4e 2026\r
2027**/\r
2028UINT32\r
2029EFIAPI\r
2030NetbufQueTrim (\r
ae213b7d 2031 IN OUT NET_BUF_QUEUE *NbufQue,\r
97b38d4e 2032 IN UINT32 Len\r
2033 );\r
2034\r
2035\r
2036/**\r
2037 Flush the net buffer queue.\r
2038\r
64a80549 2039 @param[in, out] NbufQue The pointer to the queue to be flushed.\r
97b38d4e 2040\r
2041**/\r
2042VOID\r
2043EFIAPI\r
2044NetbufQueFlush (\r
ae213b7d 2045 IN OUT NET_BUF_QUEUE *NbufQue\r
97b38d4e 2046 );\r
2047\r
2048/**\r
7557df4d 2049 Compute the checksum for a bulk of data.\r
97b38d4e 2050\r
64a80549 2051 @param[in] Bulk The pointer to the data.\r
2052 @param[in] Len The length of the data, in bytes.\r
97b38d4e 2053\r
ae213b7d 2054 @return The computed checksum.\r
97b38d4e 2055\r
2056**/\r
2057UINT16\r
2058EFIAPI\r
2059NetblockChecksum (\r
2060 IN UINT8 *Bulk,\r
2061 IN UINT32 Len\r
2062 );\r
2063\r
2064/**\r
2065 Add two checksums.\r
2066\r
ae213b7d 2067 @param[in] Checksum1 The first checksum to be added.\r
2068 @param[in] Checksum2 The second checksum to be added.\r
97b38d4e 2069\r
ae213b7d 2070 @return The new checksum.\r
97b38d4e 2071\r
2072**/\r
2073UINT16\r
2074EFIAPI\r
2075NetAddChecksum (\r
2076 IN UINT16 Checksum1,\r
2077 IN UINT16 Checksum2\r
2078 );\r
2079\r
2080/**\r
2081 Compute the checksum for a NET_BUF.\r
2082\r
64a80549 2083 @param[in] Nbuf The pointer to the net buffer.\r
97b38d4e 2084\r
ae213b7d 2085 @return The computed checksum.\r
97b38d4e 2086\r
2087**/\r
2088UINT16\r
2089EFIAPI\r
2090NetbufChecksum (\r
2091 IN NET_BUF *Nbuf\r
2092 );\r
2093\r
2094/**\r
1204fe83 2095 Compute the checksum for TCP/UDP pseudo header.\r
2096\r
7557df4d 2097 Src and Dst are in network byte order, and Len is in host byte order.\r
97b38d4e 2098\r
ae213b7d 2099 @param[in] Src The source address of the packet.\r
2100 @param[in] Dst The destination address of the packet.\r
2101 @param[in] Proto The protocol type of the packet.\r
2102 @param[in] Len The length of the packet.\r
97b38d4e 2103\r
ae213b7d 2104 @return The computed checksum.\r
97b38d4e 2105\r
2106**/\r
2107UINT16\r
2108EFIAPI\r
2109NetPseudoHeadChecksum (\r
2110 IN IP4_ADDR Src,\r
2111 IN IP4_ADDR Dst,\r
2112 IN UINT8 Proto,\r
2113 IN UINT16 Len\r
2114 );\r
2115\r
f6b7393c 2116/**\r
64a80549 2117 Compute the checksum for the TCP6/UDP6 pseudo header.\r
1204fe83 2118\r
f6b7393c 2119 Src and Dst are in network byte order, and Len is in host byte order.\r
2120\r
2121 @param[in] Src The source address of the packet.\r
2122 @param[in] Dst The destination address of the packet.\r
2123 @param[in] NextHeader The protocol type of the packet.\r
2124 @param[in] Len The length of the packet.\r
2125\r
2126 @return The computed checksum.\r
2127\r
2128**/\r
2129UINT16\r
e798cd87 2130EFIAPI\r
f6b7393c 2131NetIp6PseudoHeadChecksum (\r
2132 IN EFI_IPv6_ADDRESS *Src,\r
2133 IN EFI_IPv6_ADDRESS *Dst,\r
2134 IN UINT8 NextHeader,\r
2135 IN UINT32 Len\r
2136 );\r
705f53a9 2137\r
2138/**\r
2139 The function frees the net buffer which allocated by the IP protocol. It releases \r
2140 only the net buffer and doesn't call the external free function. \r
2141\r
2142 This function should be called after finishing the process of mIpSec->ProcessExt() \r
2143 for outbound traffic. The (EFI_IPSEC2_PROTOCOL)->ProcessExt() allocates a new \r
2144 buffer for the ESP, so there needs a function to free the old net buffer.\r
2145\r
2146 @param[in] Nbuf The network buffer to be freed.\r
2147\r
2148**/\r
2149VOID\r
2150NetIpSecNetbufFree (\r
2151 NET_BUF *Nbuf\r
2152 );\r
57b301b5 2153\r
2154/**\r
2155 This function obtains the system guid from the smbios table.\r
2156\r
2157 @param[out] SystemGuid The pointer of the returned system guid.\r
2158\r
2159 @retval EFI_SUCCESS Successfully obtained the system guid.\r
2160 @retval EFI_NOT_FOUND Did not find the SMBIOS table.\r
2161\r
2162**/\r
2163EFI_STATUS\r
2164EFIAPI\r
2165NetLibGetSystemGuid (\r
2166 OUT EFI_GUID *SystemGuid\r
2167 );\r
2168\r
dba6e9a9
JW
2169/**\r
2170 Create Dns QName according the queried domain name. \r
2171 QName is a domain name represented as a sequence of labels, \r
2172 where each label consists of a length octet followed by that \r
2173 number of octets. The QName terminates with the zero \r
2174 length octet for the null label of the root. Caller should \r
2175 take responsibility to free the buffer in returned pointer.\r
2176\r
2177 @param DomainName The pointer to the queried domain name string. \r
2178\r
2179 @retval NULL Failed to fill QName.\r
2180 @return QName filled successfully.\r
2181 \r
2182**/ \r
2183CHAR8 *\r
2184EFIAPI\r
2185NetLibCreateDnsQName (\r
2186 IN CHAR16 *DomainName\r
2187 );\r
2188\r
97b38d4e 2189#endif\r