1 | /*
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2 | * Copyright 2019-2022 The OpenSSL Project Authors. All Rights Reserved.
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3 | *
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4 | * Licensed under the Apache License 2.0 (the "License"). You may not use
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5 | * this file except in compliance with the License. You can obtain a copy
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6 | * in the file LICENSE in the source distribution or at
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7 | * https://www.openssl.org/source/license.html
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8 | */
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9 |
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10 | #include <string.h>
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11 | #include <openssl/core_names.h>
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12 | #include <openssl/core_dispatch.h>
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13 | #include <openssl/rand.h>
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14 | #include <openssl/params.h>
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15 | /* For TLS1_3_VERSION */
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16 | #include <openssl/ssl.h>
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17 | #include "internal/nelem.h"
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18 |
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19 | static OSSL_FUNC_keymgmt_import_fn xor_import;
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20 | static OSSL_FUNC_keymgmt_import_types_fn xor_import_types;
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21 | static OSSL_FUNC_keymgmt_export_fn xor_export;
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22 | static OSSL_FUNC_keymgmt_export_types_fn xor_export_types;
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23 |
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24 | int tls_provider_init(const OSSL_CORE_HANDLE *handle,
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25 | const OSSL_DISPATCH *in,
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26 | const OSSL_DISPATCH **out,
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27 | void **provctx);
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28 |
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29 | #define XOR_KEY_SIZE 32
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30 |
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31 | /*
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32 | * Top secret. This algorithm only works if no one knows what this number is.
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33 | * Please don't tell anyone what it is.
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34 | *
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35 | * This algorithm is for testing only - don't really use it!
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36 | */
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37 | static const unsigned char private_constant[XOR_KEY_SIZE] = {
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38 | 0xd3, 0x6b, 0x54, 0xec, 0x5b, 0xac, 0x89, 0x96, 0x8c, 0x2c, 0x66, 0xa5,
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39 | 0x67, 0x0d, 0xe3, 0xdd, 0x43, 0x69, 0xbc, 0x83, 0x3d, 0x60, 0xc7, 0xb8,
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40 | 0x2b, 0x1c, 0x5a, 0xfd, 0xb5, 0xcd, 0xd0, 0xf8
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41 | };
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42 |
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43 | typedef struct xorkey_st {
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44 | unsigned char privkey[XOR_KEY_SIZE];
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45 | unsigned char pubkey[XOR_KEY_SIZE];
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46 | int hasprivkey;
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47 | int haspubkey;
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48 | } XORKEY;
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49 |
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50 |
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51 | /* Key Management for the dummy XOR KEX and KEM algorithms */
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52 |
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53 | static OSSL_FUNC_keymgmt_new_fn xor_newdata;
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54 | static OSSL_FUNC_keymgmt_free_fn xor_freedata;
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55 | static OSSL_FUNC_keymgmt_has_fn xor_has;
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56 | static OSSL_FUNC_keymgmt_dup_fn xor_dup;
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57 | static OSSL_FUNC_keymgmt_gen_init_fn xor_gen_init;
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58 | static OSSL_FUNC_keymgmt_gen_set_params_fn xor_gen_set_params;
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59 | static OSSL_FUNC_keymgmt_gen_settable_params_fn xor_gen_settable_params;
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60 | static OSSL_FUNC_keymgmt_gen_fn xor_gen;
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61 | static OSSL_FUNC_keymgmt_gen_cleanup_fn xor_gen_cleanup;
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62 | static OSSL_FUNC_keymgmt_get_params_fn xor_get_params;
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63 | static OSSL_FUNC_keymgmt_gettable_params_fn xor_gettable_params;
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64 | static OSSL_FUNC_keymgmt_set_params_fn xor_set_params;
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65 | static OSSL_FUNC_keymgmt_settable_params_fn xor_settable_params;
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66 |
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67 | /*
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68 | * Dummy "XOR" Key Exchange algorithm. We just xor the private and public keys
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69 | * together. Don't use this!
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70 | */
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71 |
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72 | static OSSL_FUNC_keyexch_newctx_fn xor_newctx;
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73 | static OSSL_FUNC_keyexch_init_fn xor_init;
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74 | static OSSL_FUNC_keyexch_set_peer_fn xor_set_peer;
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75 | static OSSL_FUNC_keyexch_derive_fn xor_derive;
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76 | static OSSL_FUNC_keyexch_freectx_fn xor_freectx;
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77 | static OSSL_FUNC_keyexch_dupctx_fn xor_dupctx;
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78 |
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79 | /*
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80 | * Dummy "XOR" Key Encapsulation Method. We just build a KEM over the xor KEX.
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81 | * Don't use this!
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82 | */
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83 |
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84 | static OSSL_FUNC_kem_newctx_fn xor_newctx;
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85 | static OSSL_FUNC_kem_freectx_fn xor_freectx;
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86 | static OSSL_FUNC_kem_dupctx_fn xor_dupctx;
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87 | static OSSL_FUNC_kem_encapsulate_init_fn xor_init;
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88 | static OSSL_FUNC_kem_encapsulate_fn xor_encapsulate;
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89 | static OSSL_FUNC_kem_decapsulate_init_fn xor_init;
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90 | static OSSL_FUNC_kem_decapsulate_fn xor_decapsulate;
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91 |
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92 |
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93 | /*
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94 | * We define 2 dummy TLS groups called "xorgroup" and "xorkemgroup" for test
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95 | * purposes
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96 | */
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97 | struct tls_group_st {
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98 | unsigned int group_id; /* for "tls-group-id", see provider-base(7) */
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99 | unsigned int secbits;
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100 | unsigned int mintls;
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101 | unsigned int maxtls;
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102 | unsigned int mindtls;
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103 | unsigned int maxdtls;
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104 | unsigned int is_kem; /* boolean */
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105 | };
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106 |
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107 | #define XORGROUP_NAME "xorgroup"
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108 | #define XORGROUP_NAME_INTERNAL "xorgroup-int"
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109 | static struct tls_group_st xor_group = {
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110 | 0, /* group_id, set by randomize_tls_group_id() */
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111 | 128, /* secbits */
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112 | TLS1_3_VERSION, /* mintls */
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113 | 0, /* maxtls */
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114 | -1, /* mindtls */
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115 | -1, /* maxdtls */
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116 | 0 /* is_kem */
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117 | };
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118 |
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119 | #define XORKEMGROUP_NAME "xorkemgroup"
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120 | #define XORKEMGROUP_NAME_INTERNAL "xorkemgroup-int"
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121 | static struct tls_group_st xor_kemgroup = {
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122 | 0, /* group_id, set by randomize_tls_group_id() */
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123 | 128, /* secbits */
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124 | TLS1_3_VERSION, /* mintls */
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125 | 0, /* maxtls */
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126 | -1, /* mindtls */
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127 | -1, /* maxdtls */
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128 | 1 /* is_kem */
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129 | };
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130 |
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131 | #define ALGORITHM "XOR"
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132 |
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133 | static const OSSL_PARAM xor_group_params[] = {
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134 | OSSL_PARAM_utf8_string(OSSL_CAPABILITY_TLS_GROUP_NAME,
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135 | XORGROUP_NAME, sizeof(XORGROUP_NAME)),
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136 | OSSL_PARAM_utf8_string(OSSL_CAPABILITY_TLS_GROUP_NAME_INTERNAL,
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137 | XORGROUP_NAME_INTERNAL,
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138 | sizeof(XORGROUP_NAME_INTERNAL)),
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139 | OSSL_PARAM_utf8_string(OSSL_CAPABILITY_TLS_GROUP_ALG, ALGORITHM,
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140 | sizeof(ALGORITHM)),
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141 | OSSL_PARAM_uint(OSSL_CAPABILITY_TLS_GROUP_ID, &xor_group.group_id),
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142 | OSSL_PARAM_uint(OSSL_CAPABILITY_TLS_GROUP_SECURITY_BITS,
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143 | &xor_group.secbits),
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144 | OSSL_PARAM_int(OSSL_CAPABILITY_TLS_GROUP_MIN_TLS, &xor_group.mintls),
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145 | OSSL_PARAM_int(OSSL_CAPABILITY_TLS_GROUP_MAX_TLS, &xor_group.maxtls),
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146 | OSSL_PARAM_int(OSSL_CAPABILITY_TLS_GROUP_MIN_DTLS, &xor_group.mindtls),
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147 | OSSL_PARAM_int(OSSL_CAPABILITY_TLS_GROUP_MAX_DTLS, &xor_group.maxdtls),
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148 | OSSL_PARAM_uint(OSSL_CAPABILITY_TLS_GROUP_IS_KEM, &xor_group.is_kem),
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149 | OSSL_PARAM_END
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150 | };
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151 |
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152 | static const OSSL_PARAM xor_kemgroup_params[] = {
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153 | OSSL_PARAM_utf8_string(OSSL_CAPABILITY_TLS_GROUP_NAME,
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154 | XORKEMGROUP_NAME, sizeof(XORKEMGROUP_NAME)),
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155 | OSSL_PARAM_utf8_string(OSSL_CAPABILITY_TLS_GROUP_NAME_INTERNAL,
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156 | XORKEMGROUP_NAME_INTERNAL,
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157 | sizeof(XORKEMGROUP_NAME_INTERNAL)),
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158 | OSSL_PARAM_utf8_string(OSSL_CAPABILITY_TLS_GROUP_ALG, ALGORITHM,
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159 | sizeof(ALGORITHM)),
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160 | OSSL_PARAM_uint(OSSL_CAPABILITY_TLS_GROUP_ID, &xor_kemgroup.group_id),
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161 | OSSL_PARAM_uint(OSSL_CAPABILITY_TLS_GROUP_SECURITY_BITS,
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162 | &xor_kemgroup.secbits),
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163 | OSSL_PARAM_int(OSSL_CAPABILITY_TLS_GROUP_MIN_TLS, &xor_kemgroup.mintls),
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164 | OSSL_PARAM_int(OSSL_CAPABILITY_TLS_GROUP_MAX_TLS, &xor_kemgroup.maxtls),
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165 | OSSL_PARAM_int(OSSL_CAPABILITY_TLS_GROUP_MIN_DTLS, &xor_kemgroup.mindtls),
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166 | OSSL_PARAM_int(OSSL_CAPABILITY_TLS_GROUP_MAX_DTLS, &xor_kemgroup.maxdtls),
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167 | OSSL_PARAM_uint(OSSL_CAPABILITY_TLS_GROUP_IS_KEM, &xor_kemgroup.is_kem),
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168 | OSSL_PARAM_END
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169 | };
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170 |
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171 | #define NUM_DUMMY_GROUPS 50
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172 | static char *dummy_group_names[NUM_DUMMY_GROUPS];
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173 |
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174 | static int tls_prov_get_capabilities(void *provctx, const char *capability,
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175 | OSSL_CALLBACK *cb, void *arg)
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176 | {
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177 | int ret;
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178 | int i;
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179 | const char *dummy_base = "dummy";
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180 | const size_t dummy_name_max_size = strlen(dummy_base) + 3;
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181 |
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182 | if (strcmp(capability, "TLS-GROUP") != 0) {
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183 | /* We don't support this capability */
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184 | return 0;
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185 | }
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186 |
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187 | /* Register our 2 groups */
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188 | ret = cb(xor_group_params, arg);
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189 | ret &= cb(xor_kemgroup_params, arg);
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190 |
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191 | /*
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192 | * Now register some dummy groups > GROUPLIST_INCREMENT (== 40) as defined
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193 | * in ssl/t1_lib.c, to make sure we exercise the code paths for registering
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194 | * large numbers of groups.
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195 | */
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196 |
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197 | for (i = 0; i < NUM_DUMMY_GROUPS; i++) {
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198 | OSSL_PARAM dummygroup[OSSL_NELEM(xor_group_params)];
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199 |
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200 | memcpy(dummygroup, xor_group_params, sizeof(xor_group_params));
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201 |
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202 | /* Give the dummy group a unique name */
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203 | if (dummy_group_names[i] == NULL) {
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204 | dummy_group_names[i] = OPENSSL_zalloc(dummy_name_max_size);
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205 | if (dummy_group_names[i] == NULL)
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206 | return 0;
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207 | BIO_snprintf(dummy_group_names[i],
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208 | dummy_name_max_size,
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209 | "%s%d", dummy_base, i);
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210 | }
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211 | dummygroup[0].data = dummy_group_names[i];
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212 | dummygroup[0].data_size = strlen(dummy_group_names[i]) + 1;
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213 | ret &= cb(dummygroup, arg);
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214 | }
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215 |
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216 | return ret;
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217 | }
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218 |
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219 | /*
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220 | * Dummy "XOR" Key Exchange algorithm. We just xor the private and public keys
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221 | * together. Don't use this!
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222 | */
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223 |
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224 | typedef struct {
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225 | XORKEY *key;
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226 | XORKEY *peerkey;
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227 | void *provctx;
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228 | } PROV_XOR_CTX;
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229 |
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230 | static void *xor_newctx(void *provctx)
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231 | {
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232 | PROV_XOR_CTX *pxorctx = OPENSSL_zalloc(sizeof(PROV_XOR_CTX));
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233 |
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234 | if (pxorctx == NULL)
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235 | return NULL;
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236 |
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237 | pxorctx->provctx = provctx;
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238 |
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239 | return pxorctx;
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240 | }
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241 |
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242 | static int xor_init(void *vpxorctx, void *vkey,
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243 | ossl_unused const OSSL_PARAM params[])
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244 | {
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245 | PROV_XOR_CTX *pxorctx = (PROV_XOR_CTX *)vpxorctx;
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246 |
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247 | if (pxorctx == NULL || vkey == NULL)
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248 | return 0;
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249 | pxorctx->key = vkey;
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250 | return 1;
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251 | }
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252 |
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253 | static int xor_set_peer(void *vpxorctx, void *vpeerkey)
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254 | {
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255 | PROV_XOR_CTX *pxorctx = (PROV_XOR_CTX *)vpxorctx;
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256 |
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257 | if (pxorctx == NULL || vpeerkey == NULL)
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258 | return 0;
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259 | pxorctx->peerkey = vpeerkey;
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260 | return 1;
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261 | }
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262 |
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263 | static int xor_derive(void *vpxorctx, unsigned char *secret, size_t *secretlen,
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264 | size_t outlen)
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265 | {
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266 | PROV_XOR_CTX *pxorctx = (PROV_XOR_CTX *)vpxorctx;
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267 | int i;
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268 |
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269 | if (pxorctx->key == NULL || pxorctx->peerkey == NULL)
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270 | return 0;
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271 |
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272 | *secretlen = XOR_KEY_SIZE;
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273 | if (secret == NULL)
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274 | return 1;
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275 |
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276 | if (outlen < XOR_KEY_SIZE)
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277 | return 0;
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278 |
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279 | for (i = 0; i < XOR_KEY_SIZE; i++)
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280 | secret[i] = pxorctx->key->privkey[i] ^ pxorctx->peerkey->pubkey[i];
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281 |
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282 | return 1;
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283 | }
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284 |
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285 | static void xor_freectx(void *pxorctx)
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286 | {
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287 | OPENSSL_free(pxorctx);
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288 | }
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289 |
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290 | static void *xor_dupctx(void *vpxorctx)
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291 | {
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292 | PROV_XOR_CTX *srcctx = (PROV_XOR_CTX *)vpxorctx;
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293 | PROV_XOR_CTX *dstctx;
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294 |
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295 | dstctx = OPENSSL_zalloc(sizeof(*srcctx));
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296 | if (dstctx == NULL)
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297 | return NULL;
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298 |
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299 | *dstctx = *srcctx;
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300 |
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301 | return dstctx;
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302 | }
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303 |
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304 | static const OSSL_DISPATCH xor_keyexch_functions[] = {
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305 | { OSSL_FUNC_KEYEXCH_NEWCTX, (void (*)(void))xor_newctx },
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306 | { OSSL_FUNC_KEYEXCH_INIT, (void (*)(void))xor_init },
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307 | { OSSL_FUNC_KEYEXCH_DERIVE, (void (*)(void))xor_derive },
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308 | { OSSL_FUNC_KEYEXCH_SET_PEER, (void (*)(void))xor_set_peer },
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309 | { OSSL_FUNC_KEYEXCH_FREECTX, (void (*)(void))xor_freectx },
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310 | { OSSL_FUNC_KEYEXCH_DUPCTX, (void (*)(void))xor_dupctx },
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311 | { 0, NULL }
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312 | };
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313 |
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314 | static const OSSL_ALGORITHM tls_prov_keyexch[] = {
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315 | /*
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316 | * Obviously this is not FIPS approved, but in order to test in conjunction
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317 | * with the FIPS provider we pretend that it is.
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318 | */
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319 | { "XOR", "provider=tls-provider,fips=yes", xor_keyexch_functions },
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320 | { NULL, NULL, NULL }
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321 | };
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322 |
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323 | /*
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324 | * Dummy "XOR" Key Encapsulation Method. We just build a KEM over the xor KEX.
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325 | * Don't use this!
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326 | */
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327 |
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328 | static int xor_encapsulate(void *vpxorctx,
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329 | unsigned char *ct, size_t *ctlen,
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330 | unsigned char *ss, size_t *sslen)
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331 | {
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332 | /*
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333 | * We are building this around a KEX:
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334 | *
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335 | * 1. we generate ephemeral keypair
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336 | * 2. we encode our ephemeral pubkey as the outgoing ct
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337 | * 3. we derive using our ephemeral privkey in combination with the peer
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338 | * pubkey from the ctx; the result is our ss.
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339 | */
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340 | int rv = 0;
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341 | void *genctx = NULL, *derivectx = NULL;
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342 | XORKEY *ourkey = NULL;
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343 | PROV_XOR_CTX *pxorctx = vpxorctx;
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344 |
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345 | if (ct == NULL || ss == NULL) {
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346 | /* Just return sizes */
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347 |
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348 | if (ctlen == NULL && sslen == NULL)
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349 | return 0;
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350 | if (ctlen != NULL)
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351 | *ctlen = XOR_KEY_SIZE;
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352 | if (sslen != NULL)
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353 | *sslen = XOR_KEY_SIZE;
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354 | return 1;
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355 | }
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356 |
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357 | /* 1. Generate keypair */
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358 | genctx = xor_gen_init(pxorctx->provctx, OSSL_KEYMGMT_SELECT_KEYPAIR, NULL);
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359 | if (genctx == NULL)
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360 | goto end;
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361 | ourkey = xor_gen(genctx, NULL, NULL);
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362 | if (ourkey == NULL)
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363 | goto end;
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364 |
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365 | /* 2. Encode ephemeral pubkey as ct */
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366 | memcpy(ct, ourkey->pubkey, XOR_KEY_SIZE);
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367 | *ctlen = XOR_KEY_SIZE;
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368 |
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369 | /* 3. Derive ss via KEX */
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370 | derivectx = xor_newctx(pxorctx->provctx);
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371 | if (derivectx == NULL
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372 | || !xor_init(derivectx, ourkey, NULL)
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373 | || !xor_set_peer(derivectx, pxorctx->key)
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374 | || !xor_derive(derivectx, ss, sslen, XOR_KEY_SIZE))
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375 | goto end;
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376 |
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377 | rv = 1;
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378 |
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379 | end:
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380 | xor_gen_cleanup(genctx);
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381 | xor_freedata(ourkey);
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382 | xor_freectx(derivectx);
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383 | return rv;
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384 | }
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385 |
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386 | static int xor_decapsulate(void *vpxorctx,
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387 | unsigned char *ss, size_t *sslen,
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388 | const unsigned char *ct, size_t ctlen)
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389 | {
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390 | /*
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391 | * We are building this around a KEX:
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392 | *
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393 | * - ct is our peer's pubkey
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394 | * - decapsulate is just derive.
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395 | */
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396 | int rv = 0;
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397 | void *derivectx = NULL;
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398 | XORKEY *peerkey = NULL;
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399 | PROV_XOR_CTX *pxorctx = vpxorctx;
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400 |
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401 | if (ss == NULL) {
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402 | /* Just return size */
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403 | if (sslen == NULL)
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404 | return 0;
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---|
405 | *sslen = XOR_KEY_SIZE;
|
---|
406 | return 1;
|
---|
407 | }
|
---|
408 |
|
---|
409 | if (ctlen != XOR_KEY_SIZE)
|
---|
410 | return 0;
|
---|
411 | peerkey = xor_newdata(pxorctx->provctx);
|
---|
412 | if (peerkey == NULL)
|
---|
413 | goto end;
|
---|
414 | memcpy(peerkey->pubkey, ct, XOR_KEY_SIZE);
|
---|
415 |
|
---|
416 | /* Derive ss via KEX */
|
---|
417 | derivectx = xor_newctx(pxorctx->provctx);
|
---|
418 | if (derivectx == NULL
|
---|
419 | || !xor_init(derivectx, pxorctx->key, NULL)
|
---|
420 | || !xor_set_peer(derivectx, peerkey)
|
---|
421 | || !xor_derive(derivectx, ss, sslen, XOR_KEY_SIZE))
|
---|
422 | goto end;
|
---|
423 |
|
---|
424 | rv = 1;
|
---|
425 |
|
---|
426 | end:
|
---|
427 | xor_freedata(peerkey);
|
---|
428 | xor_freectx(derivectx);
|
---|
429 | return rv;
|
---|
430 | }
|
---|
431 |
|
---|
432 | static const OSSL_DISPATCH xor_kem_functions[] = {
|
---|
433 | { OSSL_FUNC_KEM_NEWCTX, (void (*)(void))xor_newctx },
|
---|
434 | { OSSL_FUNC_KEM_FREECTX, (void (*)(void))xor_freectx },
|
---|
435 | { OSSL_FUNC_KEM_DUPCTX, (void (*)(void))xor_dupctx },
|
---|
436 | { OSSL_FUNC_KEM_ENCAPSULATE_INIT, (void (*)(void))xor_init },
|
---|
437 | { OSSL_FUNC_KEM_ENCAPSULATE, (void (*)(void))xor_encapsulate },
|
---|
438 | { OSSL_FUNC_KEM_DECAPSULATE_INIT, (void (*)(void))xor_init },
|
---|
439 | { OSSL_FUNC_KEM_DECAPSULATE, (void (*)(void))xor_decapsulate },
|
---|
440 | { 0, NULL }
|
---|
441 | };
|
---|
442 |
|
---|
443 | static const OSSL_ALGORITHM tls_prov_kem[] = {
|
---|
444 | /*
|
---|
445 | * Obviously this is not FIPS approved, but in order to test in conjunction
|
---|
446 | * with the FIPS provider we pretend that it is.
|
---|
447 | */
|
---|
448 | { "XOR", "provider=tls-provider,fips=yes", xor_kem_functions },
|
---|
449 | { NULL, NULL, NULL }
|
---|
450 | };
|
---|
451 |
|
---|
452 | /* Key Management for the dummy XOR key exchange algorithm */
|
---|
453 |
|
---|
454 | static void *xor_newdata(void *provctx)
|
---|
455 | {
|
---|
456 | return OPENSSL_zalloc(sizeof(XORKEY));
|
---|
457 | }
|
---|
458 |
|
---|
459 | static void xor_freedata(void *keydata)
|
---|
460 | {
|
---|
461 | OPENSSL_free(keydata);
|
---|
462 | }
|
---|
463 |
|
---|
464 | static int xor_has(const void *vkey, int selection)
|
---|
465 | {
|
---|
466 | const XORKEY *key = vkey;
|
---|
467 | int ok = 0;
|
---|
468 |
|
---|
469 | if (key != NULL) {
|
---|
470 | ok = 1;
|
---|
471 |
|
---|
472 | if ((selection & OSSL_KEYMGMT_SELECT_PUBLIC_KEY) != 0)
|
---|
473 | ok = ok && key->haspubkey;
|
---|
474 | if ((selection & OSSL_KEYMGMT_SELECT_PRIVATE_KEY) != 0)
|
---|
475 | ok = ok && key->hasprivkey;
|
---|
476 | }
|
---|
477 | return ok;
|
---|
478 | }
|
---|
479 |
|
---|
480 | static void *xor_dup(const void *vfromkey, int selection)
|
---|
481 | {
|
---|
482 | XORKEY *tokey = xor_newdata(NULL);
|
---|
483 | const XORKEY *fromkey = vfromkey;
|
---|
484 | int ok = 0;
|
---|
485 |
|
---|
486 | if (tokey != NULL && fromkey != NULL) {
|
---|
487 | ok = 1;
|
---|
488 |
|
---|
489 | if ((selection & OSSL_KEYMGMT_SELECT_PUBLIC_KEY) != 0) {
|
---|
490 | if (fromkey->haspubkey) {
|
---|
491 | memcpy(tokey->pubkey, fromkey->pubkey, XOR_KEY_SIZE);
|
---|
492 | tokey->haspubkey = 1;
|
---|
493 | } else {
|
---|
494 | tokey->haspubkey = 0;
|
---|
495 | }
|
---|
496 | }
|
---|
497 | if ((selection & OSSL_KEYMGMT_SELECT_PRIVATE_KEY) != 0) {
|
---|
498 | if (fromkey->hasprivkey) {
|
---|
499 | memcpy(tokey->privkey, fromkey->privkey, XOR_KEY_SIZE);
|
---|
500 | tokey->hasprivkey = 1;
|
---|
501 | } else {
|
---|
502 | tokey->hasprivkey = 0;
|
---|
503 | }
|
---|
504 | }
|
---|
505 | }
|
---|
506 | if (!ok) {
|
---|
507 | xor_freedata(tokey);
|
---|
508 | tokey = NULL;
|
---|
509 | }
|
---|
510 | return tokey;
|
---|
511 | }
|
---|
512 |
|
---|
513 | static ossl_inline int xor_get_params(void *vkey, OSSL_PARAM params[])
|
---|
514 | {
|
---|
515 | XORKEY *key = vkey;
|
---|
516 | OSSL_PARAM *p;
|
---|
517 |
|
---|
518 | if ((p = OSSL_PARAM_locate(params, OSSL_PKEY_PARAM_BITS)) != NULL
|
---|
519 | && !OSSL_PARAM_set_int(p, XOR_KEY_SIZE))
|
---|
520 | return 0;
|
---|
521 |
|
---|
522 | if ((p = OSSL_PARAM_locate(params, OSSL_PKEY_PARAM_SECURITY_BITS)) != NULL
|
---|
523 | && !OSSL_PARAM_set_int(p, xor_group.secbits))
|
---|
524 | return 0;
|
---|
525 |
|
---|
526 | if ((p = OSSL_PARAM_locate(params,
|
---|
527 | OSSL_PKEY_PARAM_ENCODED_PUBLIC_KEY)) != NULL) {
|
---|
528 | if (p->data_type != OSSL_PARAM_OCTET_STRING)
|
---|
529 | return 0;
|
---|
530 | p->return_size = XOR_KEY_SIZE;
|
---|
531 | if (p->data != NULL && p->data_size >= XOR_KEY_SIZE)
|
---|
532 | memcpy(p->data, key->pubkey, XOR_KEY_SIZE);
|
---|
533 | }
|
---|
534 |
|
---|
535 | return 1;
|
---|
536 | }
|
---|
537 |
|
---|
538 | static const OSSL_PARAM xor_params[] = {
|
---|
539 | OSSL_PARAM_int(OSSL_PKEY_PARAM_BITS, NULL),
|
---|
540 | OSSL_PARAM_int(OSSL_PKEY_PARAM_SECURITY_BITS, NULL),
|
---|
541 | OSSL_PARAM_octet_string(OSSL_PKEY_PARAM_ENCODED_PUBLIC_KEY, NULL, 0),
|
---|
542 | OSSL_PARAM_END
|
---|
543 | };
|
---|
544 |
|
---|
545 | static const OSSL_PARAM *xor_gettable_params(void *provctx)
|
---|
546 | {
|
---|
547 | return xor_params;
|
---|
548 | }
|
---|
549 |
|
---|
550 | static int xor_set_params(void *vkey, const OSSL_PARAM params[])
|
---|
551 | {
|
---|
552 | XORKEY *key = vkey;
|
---|
553 | const OSSL_PARAM *p;
|
---|
554 |
|
---|
555 | p = OSSL_PARAM_locate_const(params, OSSL_PKEY_PARAM_ENCODED_PUBLIC_KEY);
|
---|
556 | if (p != NULL) {
|
---|
557 | if (p->data_type != OSSL_PARAM_OCTET_STRING
|
---|
558 | || p->data_size != XOR_KEY_SIZE)
|
---|
559 | return 0;
|
---|
560 | memcpy(key->pubkey, p->data, XOR_KEY_SIZE);
|
---|
561 | key->haspubkey = 1;
|
---|
562 | }
|
---|
563 |
|
---|
564 | return 1;
|
---|
565 | }
|
---|
566 |
|
---|
567 | static const OSSL_PARAM xor_known_settable_params[] = {
|
---|
568 | OSSL_PARAM_octet_string(OSSL_PKEY_PARAM_ENCODED_PUBLIC_KEY, NULL, 0),
|
---|
569 | OSSL_PARAM_END
|
---|
570 | };
|
---|
571 |
|
---|
572 | static const OSSL_PARAM *xor_settable_params(void *provctx)
|
---|
573 | {
|
---|
574 | return xor_known_settable_params;
|
---|
575 | }
|
---|
576 |
|
---|
577 | struct xor_gen_ctx {
|
---|
578 | int selection;
|
---|
579 | OSSL_LIB_CTX *libctx;
|
---|
580 | };
|
---|
581 |
|
---|
582 | static void *xor_gen_init(void *provctx, int selection,
|
---|
583 | const OSSL_PARAM params[])
|
---|
584 | {
|
---|
585 | struct xor_gen_ctx *gctx = NULL;
|
---|
586 |
|
---|
587 | if ((selection & (OSSL_KEYMGMT_SELECT_KEYPAIR
|
---|
588 | | OSSL_KEYMGMT_SELECT_DOMAIN_PARAMETERS)) == 0)
|
---|
589 | return NULL;
|
---|
590 |
|
---|
591 | if ((gctx = OPENSSL_zalloc(sizeof(*gctx))) != NULL)
|
---|
592 | gctx->selection = selection;
|
---|
593 |
|
---|
594 | /* Our provctx is really just an OSSL_LIB_CTX */
|
---|
595 | gctx->libctx = (OSSL_LIB_CTX *)provctx;
|
---|
596 |
|
---|
597 | if (!xor_gen_set_params(gctx, params)) {
|
---|
598 | OPENSSL_free(gctx);
|
---|
599 | return NULL;
|
---|
600 | }
|
---|
601 | return gctx;
|
---|
602 | }
|
---|
603 |
|
---|
604 | static int xor_gen_set_params(void *genctx, const OSSL_PARAM params[])
|
---|
605 | {
|
---|
606 | struct xor_gen_ctx *gctx = genctx;
|
---|
607 | const OSSL_PARAM *p;
|
---|
608 |
|
---|
609 | if (gctx == NULL)
|
---|
610 | return 0;
|
---|
611 |
|
---|
612 | p = OSSL_PARAM_locate_const(params, OSSL_PKEY_PARAM_GROUP_NAME);
|
---|
613 | if (p != NULL) {
|
---|
614 | if (p->data_type != OSSL_PARAM_UTF8_STRING
|
---|
615 | || (strcmp(p->data, XORGROUP_NAME_INTERNAL) != 0
|
---|
616 | && strcmp(p->data, XORKEMGROUP_NAME_INTERNAL) != 0))
|
---|
617 | return 0;
|
---|
618 | }
|
---|
619 |
|
---|
620 | return 1;
|
---|
621 | }
|
---|
622 |
|
---|
623 | static const OSSL_PARAM *xor_gen_settable_params(ossl_unused void *genctx,
|
---|
624 | ossl_unused void *provctx)
|
---|
625 | {
|
---|
626 | static OSSL_PARAM settable[] = {
|
---|
627 | OSSL_PARAM_utf8_string(OSSL_PKEY_PARAM_GROUP_NAME, NULL, 0),
|
---|
628 | OSSL_PARAM_END
|
---|
629 | };
|
---|
630 | return settable;
|
---|
631 | }
|
---|
632 |
|
---|
633 | static void *xor_gen(void *genctx, OSSL_CALLBACK *osslcb, void *cbarg)
|
---|
634 | {
|
---|
635 | struct xor_gen_ctx *gctx = genctx;
|
---|
636 | XORKEY *key = OPENSSL_zalloc(sizeof(*key));
|
---|
637 | size_t i;
|
---|
638 |
|
---|
639 | if (key == NULL)
|
---|
640 | return NULL;
|
---|
641 |
|
---|
642 | if ((gctx->selection & OSSL_KEYMGMT_SELECT_KEYPAIR) != 0) {
|
---|
643 | if (RAND_bytes_ex(gctx->libctx, key->privkey, XOR_KEY_SIZE, 0) <= 0) {
|
---|
644 | OPENSSL_free(key);
|
---|
645 | return NULL;
|
---|
646 | }
|
---|
647 | for (i = 0; i < XOR_KEY_SIZE; i++)
|
---|
648 | key->pubkey[i] = key->privkey[i] ^ private_constant[i];
|
---|
649 | key->hasprivkey = 1;
|
---|
650 | key->haspubkey = 1;
|
---|
651 | }
|
---|
652 |
|
---|
653 | return key;
|
---|
654 | }
|
---|
655 |
|
---|
656 | /* IMPORT + EXPORT */
|
---|
657 |
|
---|
658 | static int xor_import(void *vkey, int select, const OSSL_PARAM params[])
|
---|
659 | {
|
---|
660 | XORKEY *key = vkey;
|
---|
661 | const OSSL_PARAM *param_priv_key, *param_pub_key;
|
---|
662 | unsigned char privkey[XOR_KEY_SIZE];
|
---|
663 | unsigned char pubkey[XOR_KEY_SIZE];
|
---|
664 | void *pprivkey = privkey, *ppubkey = pubkey;
|
---|
665 | size_t priv_len = 0, pub_len = 0;
|
---|
666 | int res = 0;
|
---|
667 |
|
---|
668 | if (key == NULL || (select & OSSL_KEYMGMT_SELECT_KEYPAIR) == 0)
|
---|
669 | return 0;
|
---|
670 |
|
---|
671 | memset(privkey, 0, sizeof(privkey));
|
---|
672 | memset(pubkey, 0, sizeof(pubkey));
|
---|
673 | param_priv_key = OSSL_PARAM_locate_const(params, OSSL_PKEY_PARAM_PRIV_KEY);
|
---|
674 | param_pub_key = OSSL_PARAM_locate_const(params, OSSL_PKEY_PARAM_PUB_KEY);
|
---|
675 |
|
---|
676 | if ((param_priv_key != NULL
|
---|
677 | && !OSSL_PARAM_get_octet_string(param_priv_key, &pprivkey,
|
---|
678 | sizeof(privkey), &priv_len))
|
---|
679 | || (param_pub_key != NULL
|
---|
680 | && !OSSL_PARAM_get_octet_string(param_pub_key, &ppubkey,
|
---|
681 | sizeof(pubkey), &pub_len)))
|
---|
682 | goto err;
|
---|
683 |
|
---|
684 | if (priv_len > 0) {
|
---|
685 | memcpy(key->privkey, privkey, priv_len);
|
---|
686 | key->hasprivkey = 1;
|
---|
687 | }
|
---|
688 | if (pub_len > 0) {
|
---|
689 | memcpy(key->pubkey, pubkey, pub_len);
|
---|
690 | key->haspubkey = 1;
|
---|
691 | }
|
---|
692 | res = 1;
|
---|
693 | err:
|
---|
694 | return res;
|
---|
695 | }
|
---|
696 |
|
---|
697 | static int xor_export(void *vkey, int select, OSSL_CALLBACK *param_cb,
|
---|
698 | void *cbarg)
|
---|
699 | {
|
---|
700 | XORKEY *key = vkey;
|
---|
701 | OSSL_PARAM params[3], *p = params;
|
---|
702 |
|
---|
703 | if (key == NULL || (select & OSSL_KEYMGMT_SELECT_KEYPAIR) == 0)
|
---|
704 | return 0;
|
---|
705 |
|
---|
706 | *p++ = OSSL_PARAM_construct_octet_string(OSSL_PKEY_PARAM_PRIV_KEY,
|
---|
707 | key->privkey,
|
---|
708 | sizeof(key->privkey));
|
---|
709 | *p++ = OSSL_PARAM_construct_octet_string(OSSL_PKEY_PARAM_PUB_KEY,
|
---|
710 | key->pubkey, sizeof(key->pubkey));
|
---|
711 | *p++ = OSSL_PARAM_construct_end();
|
---|
712 |
|
---|
713 | return param_cb(params, cbarg);
|
---|
714 | }
|
---|
715 |
|
---|
716 | static const OSSL_PARAM xor_key_types[] = {
|
---|
717 | OSSL_PARAM_BN(OSSL_PKEY_PARAM_PUB_KEY, NULL, 0),
|
---|
718 | OSSL_PARAM_BN(OSSL_PKEY_PARAM_PRIV_KEY, NULL, 0),
|
---|
719 | OSSL_PARAM_END
|
---|
720 | };
|
---|
721 |
|
---|
722 | static const OSSL_PARAM *xor_import_types(int select)
|
---|
723 | {
|
---|
724 | return (select & OSSL_KEYMGMT_SELECT_KEYPAIR) != 0 ? xor_key_types : NULL;
|
---|
725 | }
|
---|
726 |
|
---|
727 | static const OSSL_PARAM *xor_export_types(int select)
|
---|
728 | {
|
---|
729 | return (select & OSSL_KEYMGMT_SELECT_KEYPAIR) != 0 ? xor_key_types : NULL;
|
---|
730 | }
|
---|
731 |
|
---|
732 | static void xor_gen_cleanup(void *genctx)
|
---|
733 | {
|
---|
734 | OPENSSL_free(genctx);
|
---|
735 | }
|
---|
736 |
|
---|
737 | static const OSSL_DISPATCH xor_keymgmt_functions[] = {
|
---|
738 | { OSSL_FUNC_KEYMGMT_NEW, (void (*)(void))xor_newdata },
|
---|
739 | { OSSL_FUNC_KEYMGMT_GEN_INIT, (void (*)(void))xor_gen_init },
|
---|
740 | { OSSL_FUNC_KEYMGMT_GEN_SET_PARAMS, (void (*)(void))xor_gen_set_params },
|
---|
741 | { OSSL_FUNC_KEYMGMT_GEN_SETTABLE_PARAMS,
|
---|
742 | (void (*)(void))xor_gen_settable_params },
|
---|
743 | { OSSL_FUNC_KEYMGMT_GEN, (void (*)(void))xor_gen },
|
---|
744 | { OSSL_FUNC_KEYMGMT_GEN_CLEANUP, (void (*)(void))xor_gen_cleanup },
|
---|
745 | { OSSL_FUNC_KEYMGMT_GET_PARAMS, (void (*) (void))xor_get_params },
|
---|
746 | { OSSL_FUNC_KEYMGMT_GETTABLE_PARAMS, (void (*) (void))xor_gettable_params },
|
---|
747 | { OSSL_FUNC_KEYMGMT_SET_PARAMS, (void (*) (void))xor_set_params },
|
---|
748 | { OSSL_FUNC_KEYMGMT_SETTABLE_PARAMS, (void (*) (void))xor_settable_params },
|
---|
749 | { OSSL_FUNC_KEYMGMT_HAS, (void (*)(void))xor_has },
|
---|
750 | { OSSL_FUNC_KEYMGMT_DUP, (void (*)(void))xor_dup },
|
---|
751 | { OSSL_FUNC_KEYMGMT_FREE, (void (*)(void))xor_freedata },
|
---|
752 | { OSSL_FUNC_KEYMGMT_IMPORT, (void (*)(void))xor_import },
|
---|
753 | { OSSL_FUNC_KEYMGMT_IMPORT_TYPES, (void (*)(void))xor_import_types },
|
---|
754 | { OSSL_FUNC_KEYMGMT_EXPORT, (void (*)(void))xor_export },
|
---|
755 | { OSSL_FUNC_KEYMGMT_EXPORT_TYPES, (void (*)(void))xor_export_types },
|
---|
756 | { 0, NULL }
|
---|
757 | };
|
---|
758 |
|
---|
759 | static const OSSL_ALGORITHM tls_prov_keymgmt[] = {
|
---|
760 | /*
|
---|
761 | * Obviously this is not FIPS approved, but in order to test in conjunction
|
---|
762 | * with the FIPS provider we pretend that it is.
|
---|
763 | */
|
---|
764 | { "XOR", "provider=tls-provider,fips=yes", xor_keymgmt_functions },
|
---|
765 | { NULL, NULL, NULL }
|
---|
766 | };
|
---|
767 |
|
---|
768 | static const OSSL_ALGORITHM *tls_prov_query(void *provctx, int operation_id,
|
---|
769 | int *no_cache)
|
---|
770 | {
|
---|
771 | *no_cache = 0;
|
---|
772 | switch (operation_id) {
|
---|
773 | case OSSL_OP_KEYMGMT:
|
---|
774 | return tls_prov_keymgmt;
|
---|
775 | case OSSL_OP_KEYEXCH:
|
---|
776 | return tls_prov_keyexch;
|
---|
777 | case OSSL_OP_KEM:
|
---|
778 | return tls_prov_kem;
|
---|
779 | }
|
---|
780 | return NULL;
|
---|
781 | }
|
---|
782 |
|
---|
783 | static void tls_prov_teardown(void *provctx)
|
---|
784 | {
|
---|
785 | int i;
|
---|
786 |
|
---|
787 | OSSL_LIB_CTX_free(provctx);
|
---|
788 |
|
---|
789 | for (i = 0; i < NUM_DUMMY_GROUPS; i++) {
|
---|
790 | OPENSSL_free(dummy_group_names[i]);
|
---|
791 | dummy_group_names[i] = NULL;
|
---|
792 | }
|
---|
793 | }
|
---|
794 |
|
---|
795 | /* Functions we provide to the core */
|
---|
796 | static const OSSL_DISPATCH tls_prov_dispatch_table[] = {
|
---|
797 | { OSSL_FUNC_PROVIDER_TEARDOWN, (void (*)(void))tls_prov_teardown },
|
---|
798 | { OSSL_FUNC_PROVIDER_QUERY_OPERATION, (void (*)(void))tls_prov_query },
|
---|
799 | { OSSL_FUNC_PROVIDER_GET_CAPABILITIES, (void (*)(void))tls_prov_get_capabilities },
|
---|
800 | { 0, NULL }
|
---|
801 | };
|
---|
802 |
|
---|
803 | static
|
---|
804 | unsigned int randomize_tls_group_id(OSSL_LIB_CTX *libctx)
|
---|
805 | {
|
---|
806 | /*
|
---|
807 | * Randomise the group_id we're going to use to ensure we don't interoperate
|
---|
808 | * with anything but ourselves.
|
---|
809 | */
|
---|
810 | unsigned int group_id;
|
---|
811 | static unsigned int mem[10] = { 0 };
|
---|
812 | static int in_mem = 0;
|
---|
813 | int i;
|
---|
814 |
|
---|
815 | retry:
|
---|
816 | if (RAND_bytes_ex(libctx, (unsigned char *)&group_id, sizeof(group_id), 0) <= 0)
|
---|
817 | return 0;
|
---|
818 | /*
|
---|
819 | * Ensure group_id is within the IANA Reserved for private use range
|
---|
820 | * (65024-65279)
|
---|
821 | */
|
---|
822 | group_id %= 65279 - 65024;
|
---|
823 | group_id += 65024;
|
---|
824 |
|
---|
825 | /* Ensure we did not already issue this group_id */
|
---|
826 | for (i = 0; i < in_mem; i++)
|
---|
827 | if (mem[i] == group_id)
|
---|
828 | goto retry;
|
---|
829 |
|
---|
830 | /* Add this group_id to the list of ids issued by this function */
|
---|
831 | mem[in_mem++] = group_id;
|
---|
832 |
|
---|
833 | return group_id;
|
---|
834 | }
|
---|
835 |
|
---|
836 | int tls_provider_init(const OSSL_CORE_HANDLE *handle,
|
---|
837 | const OSSL_DISPATCH *in,
|
---|
838 | const OSSL_DISPATCH **out,
|
---|
839 | void **provctx)
|
---|
840 | {
|
---|
841 | OSSL_LIB_CTX *libctx = OSSL_LIB_CTX_new();
|
---|
842 |
|
---|
843 | if (libctx == NULL)
|
---|
844 | return 0;
|
---|
845 |
|
---|
846 | *provctx = libctx;
|
---|
847 |
|
---|
848 | /*
|
---|
849 | * Randomise the group_id we're going to use to ensure we don't interoperate
|
---|
850 | * with anything but ourselves.
|
---|
851 | */
|
---|
852 | xor_group.group_id = randomize_tls_group_id(libctx);
|
---|
853 | xor_kemgroup.group_id = randomize_tls_group_id(libctx);
|
---|
854 |
|
---|
855 | *out = tls_prov_dispatch_table;
|
---|
856 | return 1;
|
---|
857 | }
|
---|