/src/openssl31/providers/implementations/encode_decode/decode_pem2der.c
Line | Count | Source (jump to first uncovered line) |
1 | | /* |
2 | | * Copyright 2020-2022 The OpenSSL Project Authors. All Rights Reserved. |
3 | | * |
4 | | * Licensed under the Apache License 2.0 (the "License"). You may not use |
5 | | * this file except in compliance with the License. You can obtain a copy |
6 | | * in the file LICENSE in the source distribution or at |
7 | | * https://www.openssl.org/source/license.html |
8 | | */ |
9 | | |
10 | | /* |
11 | | * RSA low level APIs are deprecated for public use, but still ok for |
12 | | * internal use. |
13 | | */ |
14 | | #include "internal/deprecated.h" |
15 | | |
16 | | #include <string.h> |
17 | | |
18 | | #include <openssl/core_dispatch.h> |
19 | | #include <openssl/core_names.h> |
20 | | #include <openssl/core_object.h> |
21 | | #include <openssl/crypto.h> |
22 | | #include <openssl/err.h> |
23 | | #include <openssl/params.h> |
24 | | #include <openssl/pem.h> |
25 | | #include <openssl/proverr.h> |
26 | | #include "internal/nelem.h" |
27 | | #include "prov/bio.h" |
28 | | #include "prov/implementations.h" |
29 | | #include "endecoder_local.h" |
30 | | |
31 | | static int read_pem(PROV_CTX *provctx, OSSL_CORE_BIO *cin, |
32 | | char **pem_name, char **pem_header, |
33 | | unsigned char **data, long *len) |
34 | 71.8k | { |
35 | 71.8k | BIO *in = ossl_bio_new_from_core_bio(provctx, cin); |
36 | 71.8k | int ok; |
37 | | |
38 | 71.8k | if (in == NULL) |
39 | 0 | return 0; |
40 | 71.8k | ok = (PEM_read_bio(in, pem_name, pem_header, data, len) > 0); |
41 | | |
42 | 71.8k | BIO_free(in); |
43 | 71.8k | return ok; |
44 | 71.8k | } |
45 | | |
46 | | static OSSL_FUNC_decoder_newctx_fn pem2der_newctx; |
47 | | static OSSL_FUNC_decoder_freectx_fn pem2der_freectx; |
48 | | static OSSL_FUNC_decoder_decode_fn pem2der_decode; |
49 | | |
50 | | /* |
51 | | * Context used for PEM to DER decoding. |
52 | | */ |
53 | | struct pem2der_ctx_st { |
54 | | PROV_CTX *provctx; |
55 | | }; |
56 | | |
57 | | static void *pem2der_newctx(void *provctx) |
58 | 2.89M | { |
59 | 2.89M | struct pem2der_ctx_st *ctx = OPENSSL_zalloc(sizeof(*ctx)); |
60 | | |
61 | 2.89M | if (ctx != NULL) |
62 | 2.89M | ctx->provctx = provctx; |
63 | 2.89M | return ctx; |
64 | 2.89M | } |
65 | | |
66 | | static void pem2der_freectx(void *vctx) |
67 | 2.89M | { |
68 | 2.89M | struct pem2der_ctx_st *ctx = vctx; |
69 | | |
70 | 2.89M | OPENSSL_free(ctx); |
71 | 2.89M | } |
72 | | |
73 | | /* pem_password_cb compatible function */ |
74 | | struct pem2der_pass_data_st { |
75 | | OSSL_PASSPHRASE_CALLBACK *cb; |
76 | | void *cbarg; |
77 | | }; |
78 | | |
79 | | static int pem2der_pass_helper(char *buf, int num, int w, void *data) |
80 | 2 | { |
81 | 2 | struct pem2der_pass_data_st *pass_data = data; |
82 | 2 | size_t plen; |
83 | | |
84 | 2 | if (pass_data == NULL |
85 | 2 | || pass_data->cb == NULL |
86 | 2 | || !pass_data->cb(buf, num, &plen, NULL, pass_data->cbarg)) |
87 | 2 | return -1; |
88 | 0 | return (int)plen; |
89 | 2 | } |
90 | | |
91 | | /* |
92 | | * The selection parameter in pem2der_decode() is not used by this function |
93 | | * because it's not relevant just to decode PEM to DER. |
94 | | */ |
95 | | static int pem2der_decode(void *vctx, OSSL_CORE_BIO *cin, int selection, |
96 | | OSSL_CALLBACK *data_cb, void *data_cbarg, |
97 | | OSSL_PASSPHRASE_CALLBACK *pw_cb, void *pw_cbarg) |
98 | 39.0k | { |
99 | | /* |
100 | | * PEM names we recognise. Other PEM names should be recognised by |
101 | | * other decoder implementations. |
102 | | */ |
103 | 39.0k | static struct pem_name_map_st { |
104 | 39.0k | const char *pem_name; |
105 | 39.0k | int object_type; |
106 | 39.0k | const char *data_type; |
107 | 39.0k | const char *data_structure; |
108 | 39.0k | } pem_name_map[] = { |
109 | | /* PKCS#8 and SubjectPublicKeyInfo */ |
110 | 39.0k | { PEM_STRING_PKCS8, OSSL_OBJECT_PKEY, NULL, "EncryptedPrivateKeyInfo" }, |
111 | 39.0k | { PEM_STRING_PKCS8INF, OSSL_OBJECT_PKEY, NULL, "PrivateKeyInfo" }, |
112 | 39.0k | { PEM_STRING_PUBLIC, OSSL_OBJECT_PKEY, NULL, "SubjectPublicKeyInfo" }, |
113 | | |
114 | | /* Our set of type specific PEM types */ |
115 | 39.0k | { PEM_STRING_DHPARAMS, OSSL_OBJECT_PKEY, "DH", "type-specific" }, |
116 | 39.0k | { PEM_STRING_DHXPARAMS, OSSL_OBJECT_PKEY, "X9.42 DH", "type-specific" }, |
117 | 39.0k | { PEM_STRING_DSA, OSSL_OBJECT_PKEY, "DSA", "type-specific" }, |
118 | 39.0k | { PEM_STRING_DSA_PUBLIC, OSSL_OBJECT_PKEY, "DSA", "type-specific" }, |
119 | 39.0k | { PEM_STRING_DSAPARAMS, OSSL_OBJECT_PKEY, "DSA", "type-specific" }, |
120 | 39.0k | { PEM_STRING_ECPRIVATEKEY, OSSL_OBJECT_PKEY, "EC", "type-specific" }, |
121 | 39.0k | { PEM_STRING_ECPARAMETERS, OSSL_OBJECT_PKEY, "EC", "type-specific" }, |
122 | 39.0k | { PEM_STRING_RSA, OSSL_OBJECT_PKEY, "RSA", "type-specific" }, |
123 | 39.0k | { PEM_STRING_RSA_PUBLIC, OSSL_OBJECT_PKEY, "RSA", "type-specific" }, |
124 | | |
125 | | /* |
126 | | * A few others that there is at least have an object type for, even |
127 | | * though there is no provider interface to handle such objects, yet. |
128 | | * However, this is beneficial for the OSSL_STORE result handler. |
129 | | */ |
130 | 39.0k | { PEM_STRING_X509, OSSL_OBJECT_CERT, NULL, "Certificate" }, |
131 | 39.0k | { PEM_STRING_X509_TRUSTED, OSSL_OBJECT_CERT, NULL, "Certificate" }, |
132 | 39.0k | { PEM_STRING_X509_OLD, OSSL_OBJECT_CERT, NULL, "Certificate" }, |
133 | 39.0k | { PEM_STRING_X509_CRL, OSSL_OBJECT_CRL, NULL, "CertificateList" } |
134 | 39.0k | }; |
135 | 39.0k | struct pem2der_ctx_st *ctx = vctx; |
136 | 39.0k | char *pem_name = NULL, *pem_header = NULL; |
137 | 39.0k | size_t i; |
138 | 39.0k | unsigned char *der = NULL; |
139 | 39.0k | long der_len = 0; |
140 | 39.0k | int ok = 0; |
141 | 39.0k | int objtype = OSSL_OBJECT_UNKNOWN; |
142 | | |
143 | 39.0k | ok = read_pem(ctx->provctx, cin, &pem_name, &pem_header, |
144 | 39.0k | &der, &der_len) > 0; |
145 | | /* We return "empty handed". This is not an error. */ |
146 | 39.0k | if (!ok) |
147 | 7.90k | return 1; |
148 | | |
149 | | /* |
150 | | * 10 is the number of characters in "Proc-Type:", which |
151 | | * PEM_get_EVP_CIPHER_INFO() requires to be present. |
152 | | * If the PEM header has less characters than that, it's |
153 | | * not worth spending cycles on it. |
154 | | */ |
155 | 31.1k | if (strlen(pem_header) > 10) { |
156 | 136 | EVP_CIPHER_INFO cipher; |
157 | 136 | struct pem2der_pass_data_st pass_data; |
158 | | |
159 | 136 | ok = 0; /* Assume that we fail */ |
160 | 136 | pass_data.cb = pw_cb; |
161 | 136 | pass_data.cbarg = pw_cbarg; |
162 | 136 | if (!PEM_get_EVP_CIPHER_INFO(pem_header, &cipher) |
163 | 136 | || !PEM_do_header(&cipher, der, &der_len, |
164 | 0 | pem2der_pass_helper, &pass_data)) |
165 | 136 | goto end; |
166 | 136 | } |
167 | | |
168 | | /* |
169 | | * Indicated that we successfully decoded something, or not at all. |
170 | | * Ending up "empty handed" is not an error. |
171 | | */ |
172 | 31.0k | ok = 1; |
173 | | |
174 | | /* Have a look to see if we recognise anything */ |
175 | 233k | for (i = 0; i < OSSL_NELEM(pem_name_map); i++) |
176 | 233k | if (strcmp(pem_name, pem_name_map[i].pem_name) == 0) |
177 | 30.9k | break; |
178 | | |
179 | 31.0k | if (i < OSSL_NELEM(pem_name_map)) { |
180 | 30.9k | OSSL_PARAM params[5], *p = params; |
181 | | /* We expect these to be read only so casting away the const is ok */ |
182 | 30.9k | char *data_type = (char *)pem_name_map[i].data_type; |
183 | 30.9k | char *data_structure = (char *)pem_name_map[i].data_structure; |
184 | | |
185 | 30.9k | objtype = pem_name_map[i].object_type; |
186 | 30.9k | if (data_type != NULL) |
187 | 30.9k | *p++ = |
188 | 30.9k | OSSL_PARAM_construct_utf8_string(OSSL_OBJECT_PARAM_DATA_TYPE, |
189 | 30.9k | data_type, 0); |
190 | | |
191 | | /* We expect this to be read only so casting away the const is ok */ |
192 | 30.9k | if (data_structure != NULL) |
193 | 30.9k | *p++ = |
194 | 30.9k | OSSL_PARAM_construct_utf8_string(OSSL_OBJECT_PARAM_DATA_STRUCTURE, |
195 | 30.9k | data_structure, 0); |
196 | 30.9k | *p++ = |
197 | 30.9k | OSSL_PARAM_construct_octet_string(OSSL_OBJECT_PARAM_DATA, |
198 | 30.9k | der, der_len); |
199 | 30.9k | *p++ = |
200 | 30.9k | OSSL_PARAM_construct_int(OSSL_OBJECT_PARAM_TYPE, &objtype); |
201 | | |
202 | 30.9k | *p = OSSL_PARAM_construct_end(); |
203 | | |
204 | 30.9k | ok = data_cb(params, data_cbarg); |
205 | 30.9k | } |
206 | | |
207 | 31.1k | end: |
208 | 31.1k | OPENSSL_free(pem_name); |
209 | 31.1k | OPENSSL_free(pem_header); |
210 | 31.1k | OPENSSL_free(der); |
211 | 31.1k | return ok; |
212 | 31.0k | } |
213 | | |
214 | | const OSSL_DISPATCH ossl_pem_to_der_decoder_functions[] = { |
215 | | { OSSL_FUNC_DECODER_NEWCTX, (void (*)(void))pem2der_newctx }, |
216 | | { OSSL_FUNC_DECODER_FREECTX, (void (*)(void))pem2der_freectx }, |
217 | | { OSSL_FUNC_DECODER_DECODE, (void (*)(void))pem2der_decode }, |
218 | | { 0, NULL } |
219 | | }; |