Coverage Report

Created: 2023-06-08 06:41

/src/openssl111/crypto/asn1/x_int64.c
Line
Count
Source (jump to first uncovered line)
1
/*
2
 * Copyright 2017-2018 The OpenSSL Project Authors. All Rights Reserved.
3
 *
4
 * Licensed under the OpenSSL license (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
#include <stdio.h>
11
#include "internal/cryptlib.h"
12
#include "internal/numbers.h"
13
#include <openssl/asn1t.h>
14
#include <openssl/bn.h>
15
#include "asn1_local.h"
16
17
/*
18
 * Custom primitive types for handling int32_t, int64_t, uint32_t, uint64_t.
19
 * This converts between an ASN1_INTEGER and those types directly.
20
 * This is preferred to using the LONG / ZLONG primitives.
21
 */
22
23
/*
24
 * We abuse the ASN1_ITEM fields |size| as a flags field
25
 */
26
0
#define INTxx_FLAG_ZERO_DEFAULT (1<<0)
27
58.9k
#define INTxx_FLAG_SIGNED       (1<<1)
28
29
static int uint64_new(ASN1_VALUE **pval, const ASN1_ITEM *it)
30
0
{
31
0
    if ((*pval = (ASN1_VALUE *)OPENSSL_zalloc(sizeof(uint64_t))) == NULL) {
32
0
        ASN1err(ASN1_F_UINT64_NEW, ERR_R_MALLOC_FAILURE);
33
0
        return 0;
34
0
    }
35
0
    return 1;
36
0
}
37
38
static void uint64_free(ASN1_VALUE **pval, const ASN1_ITEM *it)
39
0
{
40
0
    OPENSSL_free(*pval);
41
0
    *pval = NULL;
42
0
}
43
44
static void uint64_clear(ASN1_VALUE **pval, const ASN1_ITEM *it)
45
2.26k
{
46
2.26k
    **(uint64_t **)pval = 0;
47
2.26k
}
48
49
static int uint64_i2c(ASN1_VALUE **pval, unsigned char *cont, int *putype,
50
                    const ASN1_ITEM *it)
51
0
{
52
0
    uint64_t utmp;
53
0
    int neg = 0;
54
    /* this exists to bypass broken gcc optimization */
55
0
    char *cp = (char *)*pval;
56
57
    /* use memcpy, because we may not be uint64_t aligned */
58
0
    memcpy(&utmp, cp, sizeof(utmp));
59
60
0
    if ((it->size & INTxx_FLAG_ZERO_DEFAULT) == INTxx_FLAG_ZERO_DEFAULT
61
0
        && utmp == 0)
62
0
        return -1;
63
0
    if ((it->size & INTxx_FLAG_SIGNED) == INTxx_FLAG_SIGNED
64
0
        && (int64_t)utmp < 0) {
65
        /* i2c_uint64_int() assumes positive values */
66
0
        utmp = 0 - utmp;
67
0
        neg = 1;
68
0
    }
69
70
0
    return i2c_uint64_int(cont, utmp, neg);
71
0
}
72
73
static int uint64_c2i(ASN1_VALUE **pval, const unsigned char *cont, int len,
74
                    int utype, char *free_cont, const ASN1_ITEM *it)
75
260
{
76
260
    uint64_t utmp = 0;
77
260
    char *cp;
78
260
    int neg = 0;
79
80
260
    if (*pval == NULL && !uint64_new(pval, it))
81
0
        return 0;
82
83
260
    cp = (char *)*pval;
84
85
    /*
86
     * Strictly speaking, zero length is malformed.  However, long_c2i
87
     * (x_long.c) encodes 0 as a zero length INTEGER (wrongly, of course),
88
     * so for the sake of backward compatibility, we still decode zero
89
     * length INTEGERs as the number zero.
90
     */
91
260
    if (len == 0)
92
1
        goto long_compat;
93
94
259
    if (!c2i_uint64_int(&utmp, &neg, &cont, len))
95
0
        return 0;
96
259
    if ((it->size & INTxx_FLAG_SIGNED) == 0 && neg) {
97
2
        ASN1err(ASN1_F_UINT64_C2I, ASN1_R_ILLEGAL_NEGATIVE_VALUE);
98
2
        return 0;
99
2
    }
100
257
    if ((it->size & INTxx_FLAG_SIGNED) == INTxx_FLAG_SIGNED
101
257
            && !neg && utmp > INT64_MAX) {
102
0
        ASN1err(ASN1_F_UINT64_C2I, ASN1_R_TOO_LARGE);
103
0
        return 0;
104
0
    }
105
257
    if (neg)
106
        /* c2i_uint64_int() returns positive values */
107
9
        utmp = 0 - utmp;
108
109
258
 long_compat:
110
258
    memcpy(cp, &utmp, sizeof(utmp));
111
258
    return 1;
112
257
}
113
114
static int uint64_print(BIO *out, ASN1_VALUE **pval, const ASN1_ITEM *it,
115
                        int indent, const ASN1_PCTX *pctx)
116
0
{
117
0
    if ((it->size & INTxx_FLAG_SIGNED) == INTxx_FLAG_SIGNED)
118
0
        return BIO_printf(out, "%jd\n", **(int64_t **)pval);
119
0
    return BIO_printf(out, "%ju\n", **(uint64_t **)pval);
120
0
}
121
122
/* 32-bit variants */
123
124
static int uint32_new(ASN1_VALUE **pval, const ASN1_ITEM *it)
125
0
{
126
0
    if ((*pval = (ASN1_VALUE *)OPENSSL_zalloc(sizeof(uint32_t))) == NULL) {
127
0
        ASN1err(ASN1_F_UINT32_NEW, ERR_R_MALLOC_FAILURE);
128
0
        return 0;
129
0
    }
130
0
    return 1;
131
0
}
132
133
static void uint32_free(ASN1_VALUE **pval, const ASN1_ITEM *it)
134
0
{
135
0
    OPENSSL_free(*pval);
136
0
    *pval = NULL;
137
0
}
138
139
static void uint32_clear(ASN1_VALUE **pval, const ASN1_ITEM *it)
140
15.7k
{
141
15.7k
    **(uint32_t **)pval = 0;
142
15.7k
}
143
144
static int uint32_i2c(ASN1_VALUE **pval, unsigned char *cont, int *putype,
145
                    const ASN1_ITEM *it)
146
0
{
147
0
    uint32_t utmp;
148
0
    int neg = 0;
149
    /* this exists to bypass broken gcc optimization */
150
0
    char *cp = (char *)*pval;
151
152
    /* use memcpy, because we may not be uint32_t aligned */
153
0
    memcpy(&utmp, cp, sizeof(utmp));
154
155
0
    if ((it->size & INTxx_FLAG_ZERO_DEFAULT) == INTxx_FLAG_ZERO_DEFAULT
156
0
        && utmp == 0)
157
0
        return -1;
158
0
    if ((it->size & INTxx_FLAG_SIGNED) == INTxx_FLAG_SIGNED
159
0
        && (int32_t)utmp < 0) {
160
        /* i2c_uint64_int() assumes positive values */
161
0
        utmp = 0 - utmp;
162
0
        neg = 1;
163
0
    }
164
165
0
    return i2c_uint64_int(cont, (uint64_t)utmp, neg);
166
0
}
167
168
/*
169
 * Absolute value of INT32_MIN: we can't just use -INT32_MIN as it produces
170
 * overflow warnings.
171
 */
172
173
5
#define ABS_INT32_MIN ((uint32_t)INT32_MAX + 1)
174
175
static int uint32_c2i(ASN1_VALUE **pval, const unsigned char *cont, int len,
176
                    int utype, char *free_cont, const ASN1_ITEM *it)
177
19.3k
{
178
19.3k
    uint64_t utmp = 0;
179
19.3k
    uint32_t utmp2 = 0;
180
19.3k
    char *cp;
181
19.3k
    int neg = 0;
182
183
19.3k
    if (*pval == NULL && !uint64_new(pval, it))
184
0
        return 0;
185
186
19.3k
    cp = (char *)*pval;
187
188
    /*
189
     * Strictly speaking, zero length is malformed.  However, long_c2i
190
     * (x_long.c) encodes 0 as a zero length INTEGER (wrongly, of course),
191
     * so for the sake of backward compatibility, we still decode zero
192
     * length INTEGERs as the number zero.
193
     */
194
19.3k
    if (len == 0)
195
3
        goto long_compat;
196
197
19.2k
    if (!c2i_uint64_int(&utmp, &neg, &cont, len))
198
4
        return 0;
199
19.2k
    if ((it->size & INTxx_FLAG_SIGNED) == 0 && neg) {
200
1
        ASN1err(ASN1_F_UINT32_C2I, ASN1_R_ILLEGAL_NEGATIVE_VALUE);
201
1
        return 0;
202
1
    }
203
19.2k
    if (neg) {
204
5
        if (utmp > ABS_INT32_MIN) {
205
1
            ASN1err(ASN1_F_UINT32_C2I, ASN1_R_TOO_SMALL);
206
1
            return 0;
207
1
        }
208
4
        utmp = 0 - utmp;
209
19.2k
    } else {
210
19.2k
        if (((it->size & INTxx_FLAG_SIGNED) != 0 && utmp > INT32_MAX)
211
19.2k
            || ((it->size & INTxx_FLAG_SIGNED) == 0 && utmp > UINT32_MAX)) {
212
4
            ASN1err(ASN1_F_UINT32_C2I, ASN1_R_TOO_LARGE);
213
4
            return 0;
214
4
        }
215
19.2k
    }
216
217
19.2k
 long_compat:
218
19.2k
    utmp2 = (uint32_t)utmp;
219
19.2k
    memcpy(cp, &utmp2, sizeof(utmp2));
220
19.2k
    return 1;
221
19.2k
}
222
223
static int uint32_print(BIO *out, ASN1_VALUE **pval, const ASN1_ITEM *it,
224
                        int indent, const ASN1_PCTX *pctx)
225
0
{
226
0
    if ((it->size & INTxx_FLAG_SIGNED) == INTxx_FLAG_SIGNED)
227
0
        return BIO_printf(out, "%d\n", **(int32_t **)pval);
228
0
    return BIO_printf(out, "%u\n", **(uint32_t **)pval);
229
0
}
230
231
232
/* Define the primitives themselves */
233
234
static ASN1_PRIMITIVE_FUNCS uint32_pf = {
235
    NULL, 0,
236
    uint32_new,
237
    uint32_free,
238
    uint32_clear,
239
    uint32_c2i,
240
    uint32_i2c,
241
    uint32_print
242
};
243
244
static ASN1_PRIMITIVE_FUNCS uint64_pf = {
245
    NULL, 0,
246
    uint64_new,
247
    uint64_free,
248
    uint64_clear,
249
    uint64_c2i,
250
    uint64_i2c,
251
    uint64_print
252
};
253
254
ASN1_ITEM_start(INT32)
255
    ASN1_ITYPE_PRIMITIVE, V_ASN1_INTEGER, NULL, 0, &uint32_pf,
256
    INTxx_FLAG_SIGNED, "INT32"
257
ASN1_ITEM_end(INT32)
258
259
ASN1_ITEM_start(UINT32)
260
    ASN1_ITYPE_PRIMITIVE, V_ASN1_INTEGER, NULL, 0, &uint32_pf, 0, "UINT32"
261
ASN1_ITEM_end(UINT32)
262
263
ASN1_ITEM_start(INT64)
264
    ASN1_ITYPE_PRIMITIVE, V_ASN1_INTEGER, NULL, 0, &uint64_pf,
265
    INTxx_FLAG_SIGNED, "INT64"
266
ASN1_ITEM_end(INT64)
267
268
ASN1_ITEM_start(UINT64)
269
    ASN1_ITYPE_PRIMITIVE, V_ASN1_INTEGER, NULL, 0, &uint64_pf, 0, "UINT64"
270
ASN1_ITEM_end(UINT64)
271
272
ASN1_ITEM_start(ZINT32)
273
    ASN1_ITYPE_PRIMITIVE, V_ASN1_INTEGER, NULL, 0, &uint32_pf,
274
    INTxx_FLAG_ZERO_DEFAULT|INTxx_FLAG_SIGNED, "ZINT32"
275
ASN1_ITEM_end(ZINT32)
276
277
ASN1_ITEM_start(ZUINT32)
278
    ASN1_ITYPE_PRIMITIVE, V_ASN1_INTEGER, NULL, 0, &uint32_pf,
279
    INTxx_FLAG_ZERO_DEFAULT, "ZUINT32"
280
ASN1_ITEM_end(ZUINT32)
281
282
ASN1_ITEM_start(ZINT64)
283
    ASN1_ITYPE_PRIMITIVE, V_ASN1_INTEGER, NULL, 0, &uint64_pf,
284
    INTxx_FLAG_ZERO_DEFAULT|INTxx_FLAG_SIGNED, "ZINT64"
285
ASN1_ITEM_end(ZINT64)
286
287
ASN1_ITEM_start(ZUINT64)
288
    ASN1_ITYPE_PRIMITIVE, V_ASN1_INTEGER, NULL, 0, &uint64_pf,
289
    INTxx_FLAG_ZERO_DEFAULT, "ZUINT64"
290
ASN1_ITEM_end(ZUINT64)
291