Mercurial > dropbear
annotate common-kex.c @ 389:5ff8218bcee9
propagate from branch 'au.asn.ucc.matt.ltm.dropbear' (head 2af95f00ebd5bb7a28b3817db1218442c935388e)
to branch 'au.asn.ucc.matt.dropbear' (head ecd779509ef23a8cdf64888904fc9b31d78aa933)
author | Matt Johnston <matt@ucc.asn.au> |
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date | Thu, 11 Jan 2007 03:14:55 +0000 |
parents | 3e098639b05f |
children | e66eec4dcba7 b895f91c2ee6 |
rev | line source |
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1 /* |
74
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2 * Dropbear SSH |
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3 * |
33 | 4 * Copyright (c) 2002-2004 Matt Johnston |
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5 * Portions Copyright (c) 2004 by Mihnea Stoenescu |
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6 * All rights reserved. |
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7 * |
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8 * Permission is hereby granted, free of charge, to any person obtaining a copy |
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9 * of this software and associated documentation files (the "Software"), to deal |
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10 * in the Software without restriction, including without limitation the rights |
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11 * to use, copy, modify, merge, publish, distribute, sublicense, and/or sell |
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12 * copies of the Software, and to permit persons to whom the Software is |
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13 * furnished to do so, subject to the following conditions: |
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14 * |
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15 * The above copyright notice and this permission notice shall be included in |
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16 * all copies or substantial portions of the Software. |
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17 * |
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18 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR |
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19 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY, |
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20 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE |
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21 * AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER |
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22 * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, |
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23 * OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE |
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24 * SOFTWARE. */ |
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25 |
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26 #include "includes.h" |
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27 #include "dbutil.h" |
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28 #include "algo.h" |
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29 #include "buffer.h" |
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30 #include "session.h" |
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31 #include "kex.h" |
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32 #include "ssh.h" |
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33 #include "packet.h" |
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34 #include "bignum.h" |
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35 #include "random.h" |
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36 |
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37 /* diffie-hellman-group1-sha1 value for p */ |
227 | 38 static const unsigned char dh_p_val[] = { |
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39 0xFF, 0xFF, 0xFF, 0xFF, 0xFF, 0xFF, 0xFF, 0xFF, 0xC9, 0x0F, 0xDA, 0xA2, |
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40 0x21, 0x68, 0xC2, 0x34, 0xC4, 0xC6, 0x62, 0x8B, 0x80, 0xDC, 0x1C, 0xD1, |
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41 0x29, 0x02, 0x4E, 0x08, 0x8A, 0x67, 0xCC, 0x74, 0x02, 0x0B, 0xBE, 0xA6, |
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42 0x3B, 0x13, 0x9B, 0x22, 0x51, 0x4A, 0x08, 0x79, 0x8E, 0x34, 0x04, 0xDD, |
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43 0xEF, 0x95, 0x19, 0xB3, 0xCD, 0x3A, 0x43, 0x1B, 0x30, 0x2B, 0x0A, 0x6D, |
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44 0xF2, 0x5F, 0x14, 0x37, 0x4F, 0xE1, 0x35, 0x6D, 0x6D, 0x51, 0xC2, 0x45, |
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45 0xE4, 0x85, 0xB5, 0x76, 0x62, 0x5E, 0x7E, 0xC6, 0xF4, 0x4C, 0x42, 0xE9, |
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46 0xA6, 0x37, 0xED, 0x6B, 0x0B, 0xFF, 0x5C, 0xB6, 0xF4, 0x06, 0xB7, 0xED, |
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47 0xEE, 0x38, 0x6B, 0xFB, 0x5A, 0x89, 0x9F, 0xA5, 0xAE, 0x9F, 0x24, 0x11, |
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48 0x7C, 0x4B, 0x1F, 0xE6, 0x49, 0x28, 0x66, 0x51, 0xEC, 0xE6, 0x53, 0x81, |
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49 0xFF, 0xFF, 0xFF, 0xFF, 0xFF, 0xFF, 0xFF, 0xFF}; |
227 | 50 #define DH_P_LEN sizeof(dh_p_val) |
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51 |
227 | 52 static const int DH_G_VAL = 2; |
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53 |
33 | 54 static void kexinitialise(); |
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55 void gen_new_keys(); |
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56 #ifndef DISABLE_ZLIB |
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57 static void gen_new_zstreams(); |
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58 #endif |
33 | 59 static void read_kex_algos(); |
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60 /* helper function for gen_new_keys */ |
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61 static void hashkeys(unsigned char *out, int outlen, |
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62 const hash_state * hs, unsigned const char X); |
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63 |
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64 |
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65 /* Send our list of algorithms we can use */ |
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66 void send_msg_kexinit() { |
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67 |
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68 CHECKCLEARTOWRITE(); |
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69 buf_putbyte(ses.writepayload, SSH_MSG_KEXINIT); |
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70 |
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71 /* cookie */ |
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72 genrandom(buf_getwriteptr(ses.writepayload, 16), 16); |
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73 buf_incrwritepos(ses.writepayload, 16); |
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74 |
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75 /* kex algos */ |
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76 buf_put_algolist(ses.writepayload, sshkex); |
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77 |
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78 /* server_host_key_algorithms */ |
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79 buf_put_algolist(ses.writepayload, sshhostkey); |
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80 |
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81 /* encryption_algorithms_client_to_server */ |
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82 buf_put_algolist(ses.writepayload, sshciphers); |
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83 |
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84 /* encryption_algorithms_server_to_client */ |
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85 buf_put_algolist(ses.writepayload, sshciphers); |
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86 |
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87 /* mac_algorithms_client_to_server */ |
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88 buf_put_algolist(ses.writepayload, sshhashes); |
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89 |
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90 /* mac_algorithms_server_to_client */ |
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91 buf_put_algolist(ses.writepayload, sshhashes); |
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92 |
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93 /* compression_algorithms_client_to_server */ |
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94 buf_put_algolist(ses.writepayload, sshcompress); |
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95 |
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96 /* compression_algorithms_server_to_client */ |
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97 buf_put_algolist(ses.writepayload, sshcompress); |
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98 |
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99 /* languages_client_to_server */ |
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100 buf_putstring(ses.writepayload, "", 0); |
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101 |
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102 /* languages_server_to_client */ |
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103 buf_putstring(ses.writepayload, "", 0); |
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104 |
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105 /* first_kex_packet_follows - unimplemented for now */ |
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106 buf_putbyte(ses.writepayload, 0x00); |
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107 |
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108 /* reserved unit32 */ |
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109 buf_putint(ses.writepayload, 0); |
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110 |
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111 /* set up transmitted kex packet buffer for hashing. |
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112 * This is freed after the end of the kex */ |
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113 ses.transkexinit = buf_newcopy(ses.writepayload); |
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114 |
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115 encrypt_packet(); |
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116 ses.dataallowed = 0; /* don't send other packets during kex */ |
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117 |
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118 TRACE(("DATAALLOWED=0")) |
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119 TRACE(("-> KEXINIT")) |
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120 ses.kexstate.sentkexinit = 1; |
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121 } |
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122 |
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123 /* *** NOTE regarding (send|recv)_msg_newkeys *** |
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124 * Changed by mihnea from the original kex.c to set dataallowed after a |
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125 * completed key exchange, no matter the order in which it was performed. |
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126 * This enables client mode without affecting server functionality. |
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127 */ |
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128 |
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129 /* Bring new keys into use after a key exchange, and let the client know*/ |
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130 void send_msg_newkeys() { |
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131 |
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132 TRACE(("enter send_msg_newkeys")) |
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133 |
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134 /* generate the kexinit request */ |
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135 CHECKCLEARTOWRITE(); |
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136 buf_putbyte(ses.writepayload, SSH_MSG_NEWKEYS); |
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137 encrypt_packet(); |
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138 |
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139 |
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140 /* set up our state */ |
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141 if (ses.kexstate.recvnewkeys) { |
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142 TRACE(("while RECVNEWKEYS=1")) |
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143 gen_new_keys(); |
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144 kexinitialise(); /* we've finished with this kex */ |
165
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145 TRACE((" -> DATAALLOWED=1")) |
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146 ses.dataallowed = 1; /* we can send other packets again now */ |
33 | 147 ses.kexstate.donefirstkex = 1; |
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148 } else { |
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149 ses.kexstate.sentnewkeys = 1; |
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150 TRACE(("SENTNEWKEYS=1")) |
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151 } |
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152 |
165
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153 TRACE(("-> MSG_NEWKEYS")) |
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154 TRACE(("leave send_msg_newkeys")) |
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155 } |
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156 |
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157 /* Bring the new keys into use after a key exchange */ |
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158 void recv_msg_newkeys() { |
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159 |
165
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160 TRACE(("<- MSG_NEWKEYS")) |
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161 TRACE(("enter recv_msg_newkeys")) |
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162 |
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163 /* simply check if we've sent SSH_MSG_NEWKEYS, and if so, |
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164 * switch to the new keys */ |
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165 if (ses.kexstate.sentnewkeys) { |
165
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166 TRACE(("while SENTNEWKEYS=1")) |
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167 gen_new_keys(); |
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168 kexinitialise(); /* we've finished with this kex */ |
165
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169 TRACE((" -> DATAALLOWED=1")) |
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170 ses.dataallowed = 1; /* we can send other packets again now */ |
33 | 171 ses.kexstate.donefirstkex = 1; |
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172 } else { |
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173 TRACE(("RECVNEWKEYS=1")) |
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174 ses.kexstate.recvnewkeys = 1; |
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175 } |
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176 |
165
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177 TRACE(("leave recv_msg_newkeys")) |
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178 } |
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179 |
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180 |
33 | 181 /* Set up the kex for the first time */ |
182 void kexfirstinitialise() { | |
183 | |
184 ses.kexstate.donefirstkex = 0; | |
185 kexinitialise(); | |
186 } | |
187 | |
188 /* Reset the kex state, ready for a new negotiation */ | |
189 static void kexinitialise() { | |
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190 |
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191 struct timeval tv; |
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192 |
165
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193 TRACE(("kexinitialise()")) |
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194 |
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195 /* sent/recv'd MSG_KEXINIT */ |
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196 ses.kexstate.sentkexinit = 0; |
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197 ses.kexstate.recvkexinit = 0; |
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198 |
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199 /* sent/recv'd MSG_NEWKEYS */ |
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200 ses.kexstate.recvnewkeys = 0; |
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201 ses.kexstate.sentnewkeys = 0; |
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202 |
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203 /* first_packet_follows */ |
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204 ses.kexstate.firstfollows = 0; |
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205 |
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206 ses.kexstate.datatrans = 0; |
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207 ses.kexstate.datarecv = 0; |
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208 |
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209 if (gettimeofday(&tv, 0) < 0) { |
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210 dropbear_exit("Error getting time"); |
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211 } |
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212 ses.kexstate.lastkextime = tv.tv_sec; |
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213 |
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214 } |
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215 |
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216 /* Helper function for gen_new_keys, creates a hash. It makes a copy of the |
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217 * already initialised hash_state hs, which should already have processed |
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218 * the dh_K and hash, since these are common. X is the letter 'A', 'B' etc. |
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219 * out must have at least min(SHA1_HASH_SIZE, outlen) bytes allocated. |
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220 * The output will only be expanded once, since that is all that is required |
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221 * (for 3DES and SHA, with 24 and 20 bytes respectively). |
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222 * |
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223 * See Section 5.2 of the IETF secsh Transport Draft for details */ |
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224 |
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225 /* Duplicated verbatim from kex.c --mihnea */ |
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226 static void hashkeys(unsigned char *out, int outlen, |
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227 const hash_state * hs, const unsigned char X) { |
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228 |
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229 hash_state hs2; |
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230 unsigned char k2[SHA1_HASH_SIZE]; /* used to extending */ |
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231 |
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232 memcpy(&hs2, hs, sizeof(hash_state)); |
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233 sha1_process(&hs2, &X, 1); |
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234 sha1_process(&hs2, ses.session_id, SHA1_HASH_SIZE); |
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235 sha1_done(&hs2, out); |
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236 if (SHA1_HASH_SIZE < outlen) { |
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237 /* need to extend */ |
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238 memcpy(&hs2, hs, sizeof(hash_state)); |
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239 sha1_process(&hs2, out, SHA1_HASH_SIZE); |
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240 sha1_done(&hs2, k2); |
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241 memcpy(&out[SHA1_HASH_SIZE], k2, outlen - SHA1_HASH_SIZE); |
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242 } |
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243 } |
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244 |
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245 /* Generate the actual encryption/integrity keys, using the results of the |
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246 * key exchange, as specified in section 5.2 of the IETF secsh-transport |
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247 * draft. This occurs after the DH key-exchange. |
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248 * |
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249 * ses.newkeys is the new set of keys which are generated, these are only |
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250 * taken into use after both sides have sent a newkeys message */ |
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251 |
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252 /* Originally from kex.c, generalized for cli/svr mode --mihnea */ |
35
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253 void gen_new_keys() { |
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254 |
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255 unsigned char C2S_IV[MAX_IV_LEN]; |
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256 unsigned char C2S_key[MAX_KEY_LEN]; |
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257 unsigned char S2C_IV[MAX_IV_LEN]; |
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258 unsigned char S2C_key[MAX_KEY_LEN]; |
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259 /* unsigned char key[MAX_KEY_LEN]; */ |
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260 unsigned char *trans_IV, *trans_key, *recv_IV, *recv_key; |
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261 |
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262 hash_state hs; |
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263 unsigned int C2S_keysize, S2C_keysize; |
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264 char mactransletter, macrecvletter; /* Client or server specific */ |
342 | 265 int recv_cipher = 0, trans_cipher = 0; |
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266 |
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267 TRACE(("enter gen_new_keys")) |
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268 /* the dh_K and hash are the start of all hashes, we make use of that */ |
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269 |
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270 sha1_init(&hs); |
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271 sha1_process_mp(&hs, ses.dh_K); |
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272 mp_clear(ses.dh_K); |
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273 m_free(ses.dh_K); |
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274 sha1_process(&hs, ses.hash, SHA1_HASH_SIZE); |
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275 m_burn(ses.hash, SHA1_HASH_SIZE); |
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276 |
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277 if (IS_DROPBEAR_CLIENT) { |
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278 trans_IV = C2S_IV; |
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279 recv_IV = S2C_IV; |
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280 trans_key = C2S_key; |
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281 recv_key = S2C_key; |
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282 C2S_keysize = ses.newkeys->trans_algo_crypt->keysize; |
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283 S2C_keysize = ses.newkeys->recv_algo_crypt->keysize; |
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284 mactransletter = 'E'; |
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285 macrecvletter = 'F'; |
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286 } else { |
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287 trans_IV = S2C_IV; |
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288 recv_IV = C2S_IV; |
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289 trans_key = S2C_key; |
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290 recv_key = C2S_key; |
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291 C2S_keysize = ses.newkeys->recv_algo_crypt->keysize; |
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292 S2C_keysize = ses.newkeys->trans_algo_crypt->keysize; |
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293 mactransletter = 'F'; |
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294 macrecvletter = 'E'; |
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295 } |
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296 |
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297 hashkeys(C2S_IV, SHA1_HASH_SIZE, &hs, 'A'); |
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298 hashkeys(S2C_IV, SHA1_HASH_SIZE, &hs, 'B'); |
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299 hashkeys(C2S_key, C2S_keysize, &hs, 'C'); |
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300 hashkeys(S2C_key, S2C_keysize, &hs, 'D'); |
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301 |
342 | 302 recv_cipher = find_cipher(ses.newkeys->recv_algo_crypt->cipherdesc->name); |
303 if (recv_cipher < 0) | |
304 dropbear_exit("crypto error"); | |
305 | |
306 if (cbc_start(recv_cipher, recv_IV, recv_key, | |
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307 ses.newkeys->recv_algo_crypt->keysize, 0, |
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308 &ses.newkeys->recv_symmetric_struct) != CRYPT_OK) { |
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309 dropbear_exit("crypto error"); |
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310 } |
342 | 311 trans_cipher = find_cipher(ses.newkeys->trans_algo_crypt->cipherdesc->name); |
312 if (trans_cipher < 0) | |
313 dropbear_exit("crypto error"); | |
314 | |
315 if (cbc_start(trans_cipher, trans_IV, trans_key, | |
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316 ses.newkeys->trans_algo_crypt->keysize, 0, |
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317 &ses.newkeys->trans_symmetric_struct) != CRYPT_OK) { |
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318 dropbear_exit("crypto error"); |
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319 } |
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320 |
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321 /* MAC keys */ |
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322 hashkeys(ses.newkeys->transmackey, |
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323 ses.newkeys->trans_algo_mac->keysize, &hs, mactransletter); |
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324 hashkeys(ses.newkeys->recvmackey, |
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325 ses.newkeys->recv_algo_mac->keysize, &hs, macrecvletter); |
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326 |
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327 #ifndef DISABLE_ZLIB |
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328 gen_new_zstreams(); |
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329 #endif |
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330 |
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331 /* Switch over to the new keys */ |
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332 m_burn(ses.keys, sizeof(struct key_context)); |
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333 m_free(ses.keys); |
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334 ses.keys = ses.newkeys; |
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335 ses.newkeys = NULL; |
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336 |
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337 TRACE(("leave gen_new_keys")) |
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338 } |
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339 |
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340 #ifndef DISABLE_ZLIB |
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341 /* Set up new zlib compression streams, close the old ones. Only |
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342 * called from gen_new_keys() */ |
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343 static void gen_new_zstreams() { |
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344 |
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345 /* create new zstreams */ |
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346 if (ses.newkeys->recv_algo_comp == DROPBEAR_COMP_ZLIB) { |
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347 ses.newkeys->recv_zstream = (z_streamp)m_malloc(sizeof(z_stream)); |
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348 ses.newkeys->recv_zstream->zalloc = Z_NULL; |
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349 ses.newkeys->recv_zstream->zfree = Z_NULL; |
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350 |
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351 if (inflateInit(ses.newkeys->recv_zstream) != Z_OK) { |
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352 dropbear_exit("zlib error"); |
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353 } |
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354 } else { |
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355 ses.newkeys->recv_zstream = NULL; |
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356 } |
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357 |
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358 if (ses.newkeys->trans_algo_comp == DROPBEAR_COMP_ZLIB) { |
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359 ses.newkeys->trans_zstream = (z_streamp)m_malloc(sizeof(z_stream)); |
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360 ses.newkeys->trans_zstream->zalloc = Z_NULL; |
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361 ses.newkeys->trans_zstream->zfree = Z_NULL; |
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362 |
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363 if (deflateInit(ses.newkeys->trans_zstream, Z_DEFAULT_COMPRESSION) |
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364 != Z_OK) { |
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365 dropbear_exit("zlib error"); |
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366 } |
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367 } else { |
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368 ses.newkeys->trans_zstream = NULL; |
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369 } |
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370 |
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371 /* clean up old keys */ |
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372 if (ses.keys->recv_zstream != NULL) { |
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373 if (inflateEnd(ses.keys->recv_zstream) == Z_STREAM_ERROR) { |
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374 /* Z_DATA_ERROR is ok, just means that stream isn't ended */ |
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375 dropbear_exit("crypto error"); |
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376 } |
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377 m_free(ses.keys->recv_zstream); |
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378 } |
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379 if (ses.keys->trans_zstream != NULL) { |
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380 if (deflateEnd(ses.keys->trans_zstream) == Z_STREAM_ERROR) { |
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381 /* Z_DATA_ERROR is ok, just means that stream isn't ended */ |
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382 dropbear_exit("crypto error"); |
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383 } |
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384 m_free(ses.keys->trans_zstream); |
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385 } |
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386 } |
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387 #endif |
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388 |
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389 |
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390 /* Executed upon receiving a kexinit message from the client to initiate |
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391 * key exchange. If we haven't already done so, we send the list of our |
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392 * preferred algorithms. The client's requested algorithms are processed, |
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393 * and we calculate the first portion of the key-exchange-hash for used |
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394 * later in the key exchange. No response is sent, as the client should |
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395 * initiate the diffie-hellman key exchange */ |
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396 |
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397 /* Originally from kex.c, generalized for cli/svr mode --mihnea */ |
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398 /* Belongs in common_kex.c where it should be moved after review */ |
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399 void recv_msg_kexinit() { |
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400 |
257
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401 unsigned int kexhashbuf_len = 0; |
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402 unsigned int remote_ident_len = 0; |
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403 unsigned int local_ident_len = 0; |
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404 |
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405 TRACE(("<- KEXINIT")) |
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406 TRACE(("enter recv_msg_kexinit")) |
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407 |
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408 if (!ses.kexstate.sentkexinit) { |
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409 /* we need to send a kex packet */ |
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410 send_msg_kexinit(); |
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411 TRACE(("continue recv_msg_kexinit: sent kexinit")) |
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412 } |
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413 |
257
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414 /* start the kex hash */ |
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415 local_ident_len = strlen(LOCAL_IDENT); |
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416 remote_ident_len = strlen((char*)ses.remoteident); |
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417 |
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418 kexhashbuf_len = local_ident_len + remote_ident_len |
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419 + ses.transkexinit->len + ses.payload->len |
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420 + KEXHASHBUF_MAX_INTS; |
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421 |
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422 ses.kexhashbuf = buf_new(kexhashbuf_len); |
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423 |
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424 if (IS_DROPBEAR_CLIENT) { |
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425 |
26 | 426 /* read the peer's choice of algos */ |
33 | 427 read_kex_algos(); |
4
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428 |
26 | 429 /* V_C, the client's version string (CR and NL excluded) */ |
4
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430 buf_putstring(ses.kexhashbuf, |
257
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431 (unsigned char*)LOCAL_IDENT, local_ident_len); |
26 | 432 /* V_S, the server's version string (CR and NL excluded) */ |
257
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433 buf_putstring(ses.kexhashbuf, ses.remoteident, remote_ident_len); |
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434 |
26 | 435 /* I_C, the payload of the client's SSH_MSG_KEXINIT */ |
4
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436 buf_putstring(ses.kexhashbuf, |
257
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437 ses.transkexinit->data, ses.transkexinit->len); |
26 | 438 /* I_S, the payload of the server's SSH_MSG_KEXINIT */ |
4
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439 buf_setpos(ses.payload, 0); |
257
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440 buf_putstring(ses.kexhashbuf, ses.payload->data, ses.payload->len); |
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441 |
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442 } else { |
26 | 443 /* SERVER */ |
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444 |
26 | 445 /* read the peer's choice of algos */ |
33 | 446 read_kex_algos(); |
26 | 447 /* V_C, the client's version string (CR and NL excluded) */ |
257
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448 buf_putstring(ses.kexhashbuf, ses.remoteident, remote_ident_len); |
26 | 449 /* V_S, the server's version string (CR and NL excluded) */ |
257
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450 buf_putstring(ses.kexhashbuf, |
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451 (unsigned char*)LOCAL_IDENT, local_ident_len); |
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452 |
26 | 453 /* I_C, the payload of the client's SSH_MSG_KEXINIT */ |
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454 buf_setpos(ses.payload, 0); |
257
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455 buf_putstring(ses.kexhashbuf, ses.payload->data, ses.payload->len); |
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456 |
26 | 457 /* I_S, the payload of the server's SSH_MSG_KEXINIT */ |
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458 buf_putstring(ses.kexhashbuf, |
257
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459 ses.transkexinit->data, ses.transkexinit->len); |
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460 |
26 | 461 ses.requirenext = SSH_MSG_KEXDH_INIT; |
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462 } |
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463 |
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464 buf_free(ses.transkexinit); |
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465 ses.transkexinit = NULL; |
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466 /* the rest of ses.kexhashbuf will be done after DH exchange */ |
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467 |
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468 ses.kexstate.recvkexinit = 1; |
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469 |
165
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470 TRACE(("leave recv_msg_kexinit")) |
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471 } |
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472 |
26 | 473 /* Initialises and generate one side of the diffie-hellman key exchange values. |
474 * See the ietf-secsh-transport draft, section 6, for details */ | |
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475 /* dh_pub and dh_priv MUST be already initialised */ |
26 | 476 void gen_kexdh_vals(mp_int *dh_pub, mp_int *dh_priv) { |
477 | |
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478 DEF_MP_INT(dh_p); |
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479 DEF_MP_INT(dh_q); |
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480 DEF_MP_INT(dh_g); |
26 | 481 |
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482 TRACE(("enter send_msg_kexdh_reply")) |
26 | 483 |
84
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484 m_mp_init_multi(&dh_g, &dh_p, &dh_q, NULL); |
26 | 485 |
486 /* read the prime and generator*/ | |
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487 bytes_to_mp(&dh_p, (unsigned char*)dh_p_val, DH_P_LEN); |
26 | 488 |
489 if (mp_set_int(&dh_g, DH_G_VAL) != MP_OKAY) { | |
490 dropbear_exit("Diffie-Hellman error"); | |
491 } | |
492 | |
493 /* calculate q = (p-1)/2 */ | |
494 /* dh_priv is just a temp var here */ | |
495 if (mp_sub_d(&dh_p, 1, dh_priv) != MP_OKAY) { | |
496 dropbear_exit("Diffie-Hellman error"); | |
497 } | |
498 if (mp_div_2(dh_priv, &dh_q) != MP_OKAY) { | |
499 dropbear_exit("Diffie-Hellman error"); | |
500 } | |
501 | |
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502 /* Generate a private portion 0 < dh_priv < dh_q */ |
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503 gen_random_mpint(&dh_q, dh_priv); |
26 | 504 |
505 /* f = g^y mod p */ | |
506 if (mp_exptmod(&dh_g, dh_priv, &dh_p, dh_pub) != MP_OKAY) { | |
507 dropbear_exit("Diffie-Hellman error"); | |
508 } | |
509 mp_clear_multi(&dh_g, &dh_p, &dh_q, NULL); | |
510 } | |
511 | |
512 /* This function is fairly common between client/server, with some substitution | |
513 * of dh_e/dh_f etc. Hence these arguments: | |
514 * dh_pub_us is 'e' for the client, 'f' for the server. dh_pub_them is | |
515 * vice-versa. dh_priv is the x/y value corresponding to dh_pub_us */ | |
516 void kexdh_comb_key(mp_int *dh_pub_us, mp_int *dh_priv, mp_int *dh_pub_them, | |
517 sign_key *hostkey) { | |
518 | |
519 mp_int dh_p; | |
520 mp_int *dh_e = NULL, *dh_f = NULL; | |
521 hash_state hs; | |
522 | |
523 /* read the prime and generator*/ | |
342 | 524 m_mp_init(&dh_p); |
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525 bytes_to_mp(&dh_p, dh_p_val, DH_P_LEN); |
26 | 526 |
527 /* Check that dh_pub_them (dh_e or dh_f) is in the range [1, p-1] */ | |
528 if (mp_cmp(dh_pub_them, &dh_p) != MP_LT | |
529 || mp_cmp_d(dh_pub_them, 0) != MP_GT) { | |
530 dropbear_exit("Diffie-Hellman error"); | |
531 } | |
532 | |
533 /* K = e^y mod p = f^x mod p */ | |
534 ses.dh_K = (mp_int*)m_malloc(sizeof(mp_int)); | |
535 m_mp_init(ses.dh_K); | |
536 if (mp_exptmod(dh_pub_them, dh_priv, &dh_p, ses.dh_K) != MP_OKAY) { | |
537 dropbear_exit("Diffie-Hellman error"); | |
538 } | |
539 | |
540 /* clear no longer needed vars */ | |
541 mp_clear_multi(&dh_p, NULL); | |
542 | |
543 /* From here on, the code needs to work with the _same_ vars on each side, | |
544 * not vice-versaing for client/server */ | |
545 if (IS_DROPBEAR_CLIENT) { | |
546 dh_e = dh_pub_us; | |
547 dh_f = dh_pub_them; | |
548 } else { | |
549 dh_e = dh_pub_them; | |
550 dh_f = dh_pub_us; | |
551 } | |
552 | |
553 /* Create the remainder of the hash buffer, to generate the exchange hash */ | |
554 /* K_S, the host key */ | |
555 buf_put_pub_key(ses.kexhashbuf, hostkey, ses.newkeys->algo_hostkey); | |
556 /* e, exchange value sent by the client */ | |
557 buf_putmpint(ses.kexhashbuf, dh_e); | |
558 /* f, exchange value sent by the server */ | |
559 buf_putmpint(ses.kexhashbuf, dh_f); | |
560 /* K, the shared secret */ | |
561 buf_putmpint(ses.kexhashbuf, ses.dh_K); | |
562 | |
563 /* calculate the hash H to sign */ | |
564 sha1_init(&hs); | |
565 buf_setpos(ses.kexhashbuf, 0); | |
566 sha1_process(&hs, buf_getptr(ses.kexhashbuf, ses.kexhashbuf->len), | |
567 ses.kexhashbuf->len); | |
568 sha1_done(&hs, ses.hash); | |
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569 |
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570 buf_burn(ses.kexhashbuf); |
26 | 571 buf_free(ses.kexhashbuf); |
572 ses.kexhashbuf = NULL; | |
573 | |
574 /* first time around, we set the session_id to H */ | |
575 if (ses.session_id == NULL) { | |
576 /* create the session_id, this never needs freeing */ | |
577 ses.session_id = (unsigned char*)m_malloc(SHA1_HASH_SIZE); | |
578 memcpy(ses.session_id, ses.hash, SHA1_HASH_SIZE); | |
579 } | |
580 } | |
581 | |
582 /* read the other side's algo list. buf_match_algo is a callback to match | |
583 * algos for the client or server. */ | |
33 | 584 static void read_kex_algos() { |
26 | 585 |
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586 /* for asymmetry */ |
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587 algo_type * c2s_hash_algo = NULL; |
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588 algo_type * s2c_hash_algo = NULL; |
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589 algo_type * c2s_cipher_algo = NULL; |
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590 algo_type * s2c_cipher_algo = NULL; |
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591 algo_type * c2s_comp_algo = NULL; |
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592 algo_type * s2c_comp_algo = NULL; |
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593 /* the generic one */ |
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594 algo_type * algo = NULL; |
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595 |
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596 /* which algo couldn't match */ |
26 | 597 char * erralgo = NULL; |
598 | |
599 int goodguess = 0; | |
600 int allgood = 1; /* we AND this with each goodguess and see if its still | |
601 true after */ | |
602 | |
603 buf_incrpos(ses.payload, 16); /* start after the cookie */ | |
604 | |
605 ses.newkeys = (struct key_context*)m_malloc(sizeof(struct key_context)); | |
606 | |
607 /* kex_algorithms */ | |
33 | 608 algo = ses.buf_match_algo(ses.payload, sshkex, &goodguess); |
26 | 609 allgood &= goodguess; |
610 if (algo == NULL) { | |
611 erralgo = "kex"; | |
612 goto error; | |
613 } | |
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614 TRACE(("kex algo %s", algo->name)) |
26 | 615 ses.newkeys->algo_kex = algo->val; |
616 | |
617 /* server_host_key_algorithms */ | |
33 | 618 algo = ses.buf_match_algo(ses.payload, sshhostkey, &goodguess); |
26 | 619 allgood &= goodguess; |
620 if (algo == NULL) { | |
621 erralgo = "hostkey"; | |
622 goto error; | |
623 } | |
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624 TRACE(("hostkey algo %s", algo->name)) |
26 | 625 ses.newkeys->algo_hostkey = algo->val; |
626 | |
627 /* encryption_algorithms_client_to_server */ | |
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628 c2s_cipher_algo = ses.buf_match_algo(ses.payload, sshciphers, &goodguess); |
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629 if (c2s_cipher_algo == NULL) { |
26 | 630 erralgo = "enc c->s"; |
631 goto error; | |
632 } | |
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633 TRACE(("enc c2s is %s", c2s_cipher_algo->name)) |
26 | 634 |
635 /* encryption_algorithms_server_to_client */ | |
36
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636 s2c_cipher_algo = ses.buf_match_algo(ses.payload, sshciphers, &goodguess); |
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637 if (s2c_cipher_algo == NULL) { |
26 | 638 erralgo = "enc s->c"; |
639 goto error; | |
640 } | |
228
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641 TRACE(("enc s2c is %s", s2c_cipher_algo->name)) |
26 | 642 |
643 /* mac_algorithms_client_to_server */ | |
36
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644 c2s_hash_algo = ses.buf_match_algo(ses.payload, sshhashes, &goodguess); |
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645 if (c2s_hash_algo == NULL) { |
26 | 646 erralgo = "mac c->s"; |
647 goto error; | |
648 } | |
228
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649 TRACE(("hash c2s is %s", c2s_hash_algo->name)) |
26 | 650 |
651 /* mac_algorithms_server_to_client */ | |
36
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652 s2c_hash_algo = ses.buf_match_algo(ses.payload, sshhashes, &goodguess); |
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653 if (s2c_hash_algo == NULL) { |
26 | 654 erralgo = "mac s->c"; |
655 goto error; | |
656 } | |
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657 TRACE(("hash s2c is %s", s2c_hash_algo->name)) |
26 | 658 |
659 /* compression_algorithms_client_to_server */ | |
36
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660 c2s_comp_algo = ses.buf_match_algo(ses.payload, sshcompress, &goodguess); |
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661 if (c2s_comp_algo == NULL) { |
26 | 662 erralgo = "comp c->s"; |
663 goto error; | |
664 } | |
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665 TRACE(("hash c2s is %s", c2s_comp_algo->name)) |
26 | 666 |
667 /* compression_algorithms_server_to_client */ | |
36
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668 s2c_comp_algo = ses.buf_match_algo(ses.payload, sshcompress, &goodguess); |
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669 if (s2c_comp_algo == NULL) { |
26 | 670 erralgo = "comp s->c"; |
671 goto error; | |
672 } | |
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673 TRACE(("hash s2c is %s", s2c_comp_algo->name)) |
26 | 674 |
675 /* languages_client_to_server */ | |
676 buf_eatstring(ses.payload); | |
677 | |
678 /* languages_server_to_client */ | |
679 buf_eatstring(ses.payload); | |
680 | |
681 /* first_kex_packet_follows */ | |
179
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682 if (buf_getbool(ses.payload)) { |
26 | 683 ses.kexstate.firstfollows = 1; |
684 /* if the guess wasn't good, we ignore the packet sent */ | |
685 if (!allgood) { | |
686 ses.ignorenext = 1; | |
687 } | |
688 } | |
689 | |
36
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690 /* Handle the asymmetry */ |
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691 if (IS_DROPBEAR_CLIENT) { |
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692 ses.newkeys->recv_algo_crypt = |
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693 (struct dropbear_cipher*)s2c_cipher_algo->data; |
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694 ses.newkeys->trans_algo_crypt = |
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695 (struct dropbear_cipher*)c2s_cipher_algo->data; |
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696 ses.newkeys->recv_algo_mac = |
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697 (struct dropbear_hash*)s2c_hash_algo->data; |
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698 ses.newkeys->trans_algo_mac = |
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699 (struct dropbear_hash*)c2s_hash_algo->data; |
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700 ses.newkeys->recv_algo_comp = s2c_comp_algo->val; |
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701 ses.newkeys->trans_algo_comp = c2s_comp_algo->val; |
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702 } else { |
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703 /* SERVER */ |
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704 ses.newkeys->recv_algo_crypt = |
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705 (struct dropbear_cipher*)c2s_cipher_algo->data; |
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706 ses.newkeys->trans_algo_crypt = |
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707 (struct dropbear_cipher*)s2c_cipher_algo->data; |
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708 ses.newkeys->recv_algo_mac = |
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709 (struct dropbear_hash*)c2s_hash_algo->data; |
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710 ses.newkeys->trans_algo_mac = |
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711 (struct dropbear_hash*)s2c_hash_algo->data; |
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712 ses.newkeys->recv_algo_comp = c2s_comp_algo->val; |
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713 ses.newkeys->trans_algo_comp = s2c_comp_algo->val; |
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714 } |
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715 |
26 | 716 /* reserved for future extensions */ |
717 buf_getint(ses.payload); | |
718 return; | |
719 | |
720 error: | |
721 dropbear_exit("no matching algo %s", erralgo); | |
722 } |