Coverage Report

Created: 2025-12-31 06:58

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/openssl35/crypto/initthread.c
Line
Count
Source
1
/*
2
 * Copyright 2019-2023 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
#include <openssl/crypto.h>
11
#include <openssl/core_dispatch.h>
12
#include "crypto/cryptlib.h"
13
#include "prov/providercommon.h"
14
#include "internal/thread_once.h"
15
#include "crypto/context.h"
16
17
#ifdef FIPS_MODULE
18
#include "prov/provider_ctx.h"
19
20
/*
21
 * Thread aware code may want to be told about thread stop events. We register
22
 * to hear about those thread stop events when we see a new thread has started.
23
 * We call the ossl_init_thread_start function to do that. In the FIPS provider
24
 * we have our own copy of ossl_init_thread_start, which cascades notifications
25
 * about threads stopping from libcrypto to all the code in the FIPS provider
26
 * that needs to know about it.
27
 *
28
 * The FIPS provider tells libcrypto about which threads it is interested in
29
 * by calling "c_thread_start" which is a function pointer created during
30
 * provider initialisation (i.e. OSSL_provider_init).
31
 */
32
extern OSSL_FUNC_core_thread_start_fn *c_thread_start;
33
#endif
34
35
typedef struct thread_event_handler_st THREAD_EVENT_HANDLER;
36
struct thread_event_handler_st {
37
#ifndef FIPS_MODULE
38
    const void *index;
39
#endif
40
    void *arg;
41
    OSSL_thread_stop_handler_fn handfn;
42
    THREAD_EVENT_HANDLER *next;
43
};
44
45
#ifndef FIPS_MODULE
46
DEFINE_SPECIAL_STACK_OF(THREAD_EVENT_HANDLER_PTR, THREAD_EVENT_HANDLER *)
47
48
typedef struct global_tevent_register_st GLOBAL_TEVENT_REGISTER;
49
struct global_tevent_register_st {
50
    STACK_OF(THREAD_EVENT_HANDLER_PTR) *skhands;
51
    CRYPTO_RWLOCK *lock;
52
};
53
54
static GLOBAL_TEVENT_REGISTER *glob_tevent_reg = NULL;
55
56
static CRYPTO_ONCE tevent_register_runonce = CRYPTO_ONCE_STATIC_INIT;
57
58
DEFINE_RUN_ONCE_STATIC(create_global_tevent_register)
59
273
{
60
273
    glob_tevent_reg = OPENSSL_zalloc(sizeof(*glob_tevent_reg));
61
273
    if (glob_tevent_reg == NULL)
62
0
        return 0;
63
64
273
    glob_tevent_reg->skhands = sk_THREAD_EVENT_HANDLER_PTR_new_null();
65
273
    glob_tevent_reg->lock = CRYPTO_THREAD_lock_new();
66
273
    if (glob_tevent_reg->skhands == NULL || glob_tevent_reg->lock == NULL) {
67
0
        sk_THREAD_EVENT_HANDLER_PTR_free(glob_tevent_reg->skhands);
68
0
        CRYPTO_THREAD_lock_free(glob_tevent_reg->lock);
69
0
        OPENSSL_free(glob_tevent_reg);
70
0
        glob_tevent_reg = NULL;
71
0
        return 0;
72
0
    }
73
74
273
    return 1;
75
273
}
76
77
static GLOBAL_TEVENT_REGISTER *get_global_tevent_register(void)
78
1.00k
{
79
1.00k
    if (!RUN_ONCE(&tevent_register_runonce, create_global_tevent_register))
80
0
        return NULL;
81
1.00k
    return glob_tevent_reg;
82
1.00k
}
83
#endif
84
85
#ifndef FIPS_MODULE
86
static int init_thread_push_handlers(THREAD_EVENT_HANDLER **hands);
87
static void init_thread_remove_handlers(THREAD_EVENT_HANDLER **handsin);
88
static void init_thread_destructor(void *hands);
89
static int init_thread_deregister(void *arg, int all);
90
#endif
91
static void init_thread_stop(void *arg, THREAD_EVENT_HANDLER **hands);
92
93
static THREAD_EVENT_HANDLER **
94
init_get_thread_local(CRYPTO_THREAD_LOCAL *local, int alloc, int keep)
95
548
{
96
548
    THREAD_EVENT_HANDLER **hands = CRYPTO_THREAD_get_local(local);
97
98
548
    if (alloc) {
99
214
        if (hands == NULL) {
100
101
167
            if ((hands = OPENSSL_zalloc(sizeof(*hands))) == NULL)
102
0
                return NULL;
103
104
167
            if (!CRYPTO_THREAD_set_local(local, hands)) {
105
0
                OPENSSL_free(hands);
106
0
                return NULL;
107
0
            }
108
109
167
#ifndef FIPS_MODULE
110
167
            if (!init_thread_push_handlers(hands)) {
111
0
                CRYPTO_THREAD_set_local(local, NULL);
112
0
                OPENSSL_free(hands);
113
0
                return NULL;
114
0
            }
115
167
#endif
116
167
        }
117
334
    } else if (!keep) {
118
167
        CRYPTO_THREAD_set_local(local, NULL);
119
167
    }
120
121
548
    return hands;
122
548
}
123
124
#ifndef FIPS_MODULE
125
/*
126
 * Since per-thread-specific-data destructors are not universally
127
 * available, i.e. not on Windows, only below CRYPTO_THREAD_LOCAL key
128
 * is assumed to have destructor associated. And then an effort is made
129
 * to call this single destructor on non-pthread platform[s].
130
 *
131
 * Initial value is "impossible". It is used as guard value to shortcut
132
 * destructor for threads terminating before libcrypto is initialized or
133
 * after it's de-initialized. Access to the key doesn't have to be
134
 * serialized for the said threads, because they didn't use libcrypto
135
 * and it doesn't matter if they pick "impossible" or dereference real
136
 * key value and pull NULL past initialization in the first thread that
137
 * intends to use libcrypto.
138
 */
139
static union {
140
    long sane;
141
    CRYPTO_THREAD_LOCAL value;
142
} destructor_key = { -1 };
143
144
/*
145
 * The thread event handler list is a thread specific linked list
146
 * of callback functions which are invoked in list order by the
147
 * current thread in case of certain events. (Currently, there is
148
 * only one type of event, the 'thread stop' event.)
149
 *
150
 * We also keep a global reference to that linked list, so that we
151
 * can deregister handlers if necessary before all the threads are
152
 * stopped.
153
 */
154
static int init_thread_push_handlers(THREAD_EVENT_HANDLER **hands)
155
273
{
156
273
    int ret;
157
273
    GLOBAL_TEVENT_REGISTER *gtr;
158
159
273
    gtr = get_global_tevent_register();
160
273
    if (gtr == NULL)
161
0
        return 0;
162
163
273
    if (!CRYPTO_THREAD_write_lock(gtr->lock))
164
0
        return 0;
165
273
    ret = (sk_THREAD_EVENT_HANDLER_PTR_push(gtr->skhands, hands) != 0);
166
273
    CRYPTO_THREAD_unlock(gtr->lock);
167
168
273
    return ret;
169
273
}
170
171
static void init_thread_remove_handlers(THREAD_EVENT_HANDLER **handsin)
172
220
{
173
220
    GLOBAL_TEVENT_REGISTER *gtr;
174
220
    int i;
175
176
220
    gtr = get_global_tevent_register();
177
220
    if (gtr == NULL)
178
0
        return;
179
220
    if (!CRYPTO_THREAD_write_lock(gtr->lock))
180
0
        return;
181
220
    for (i = 0; i < sk_THREAD_EVENT_HANDLER_PTR_num(gtr->skhands); i++) {
182
220
        THREAD_EVENT_HANDLER **hands
183
220
            = sk_THREAD_EVENT_HANDLER_PTR_value(gtr->skhands, i);
184
185
220
        if (hands == handsin) {
186
220
            sk_THREAD_EVENT_HANDLER_PTR_delete(gtr->skhands, i);
187
220
            CRYPTO_THREAD_unlock(gtr->lock);
188
220
            return;
189
220
        }
190
220
    }
191
0
    CRYPTO_THREAD_unlock(gtr->lock);
192
0
    return;
193
220
}
194
195
static void init_thread_destructor(void *hands)
196
0
{
197
0
    init_thread_stop(NULL, (THREAD_EVENT_HANDLER **)hands);
198
0
    init_thread_remove_handlers(hands);
199
0
    OPENSSL_free(hands);
200
0
}
201
202
static CRYPTO_ONCE ossl_init_thread_runonce = CRYPTO_ONCE_STATIC_INIT;
203
static CRYPTO_THREAD_ID recursion_guard = (CRYPTO_THREAD_ID)-1;
204
205
DEFINE_RUN_ONCE_STATIC(ossl_init_thread_once)
206
196
{
207
196
    recursion_guard = CRYPTO_THREAD_get_current_id();
208
196
    if (!CRYPTO_THREAD_init_local(&destructor_key.value,
209
196
            init_thread_destructor))
210
0
        return 0;
211
212
196
    recursion_guard = (CRYPTO_THREAD_ID)0;
213
196
    return 1;
214
196
}
215
216
int ossl_init_thread(void)
217
1.74k
{
218
1.74k
    if (CRYPTO_THREAD_compare_id(recursion_guard,
219
1.74k
            CRYPTO_THREAD_get_current_id()))
220
196
        return 1;
221
1.54k
    if (!RUN_ONCE(&ossl_init_thread_runonce, ossl_init_thread_once))
222
0
        return 0;
223
1.54k
    return 1;
224
1.54k
}
225
226
void ossl_cleanup_thread(void)
227
220
{
228
220
    init_thread_deregister(NULL, 1);
229
220
    CRYPTO_THREAD_cleanup_local(&destructor_key.value);
230
220
    destructor_key.sane = -1;
231
220
}
232
233
void OPENSSL_thread_stop_ex(OSSL_LIB_CTX *ctx)
234
0
{
235
0
    ctx = ossl_lib_ctx_get_concrete(ctx);
236
    /*
237
     * It would be nice if we could figure out a way to do this on all threads
238
     * that have used the OSSL_LIB_CTX when the context is freed. This is
239
     * currently not possible due to the use of thread local variables.
240
     */
241
0
    ossl_ctx_thread_stop(ctx);
242
0
}
243
244
void OPENSSL_thread_stop(void)
245
220
{
246
220
    if (destructor_key.sane != -1) {
247
220
        THREAD_EVENT_HANDLER **hands
248
220
            = init_get_thread_local(&destructor_key.value, 0, 0);
249
220
        init_thread_stop(NULL, hands);
250
251
220
        init_thread_remove_handlers(hands);
252
220
        OPENSSL_free(hands);
253
220
    }
254
220
}
255
256
void ossl_ctx_thread_stop(OSSL_LIB_CTX *ctx)
257
220
{
258
220
    if (destructor_key.sane != -1) {
259
220
        THREAD_EVENT_HANDLER **hands
260
220
            = init_get_thread_local(&destructor_key.value, 0, 1);
261
220
        init_thread_stop(ctx, hands);
262
220
    }
263
220
}
264
265
#else
266
267
static void ossl_arg_thread_stop(void *arg);
268
269
/* Register the current thread so that we are informed if it gets stopped */
270
int ossl_thread_register_fips(OSSL_LIB_CTX *libctx)
271
{
272
    return c_thread_start(FIPS_get_core_handle(libctx), ossl_arg_thread_stop,
273
        libctx);
274
}
275
276
void *ossl_thread_event_ctx_new(OSSL_LIB_CTX *libctx)
277
{
278
    THREAD_EVENT_HANDLER **hands = NULL;
279
    CRYPTO_THREAD_LOCAL *tlocal = OPENSSL_zalloc(sizeof(*tlocal));
280
281
    if (tlocal == NULL)
282
        return NULL;
283
284
    if (!CRYPTO_THREAD_init_local(tlocal, NULL))
285
        goto deinit;
286
287
    hands = OPENSSL_zalloc(sizeof(*hands));
288
    if (hands == NULL)
289
        goto err;
290
291
    if (!CRYPTO_THREAD_set_local(tlocal, hands))
292
        goto err;
293
294
    /*
295
     * We should ideally call ossl_thread_register_fips() here. This function
296
     * is called during the startup of the FIPS provider and we need to ensure
297
     * that the main thread is registered to receive thread callbacks in order
298
     * to free |hands| that we allocated above. However we are too early in
299
     * the FIPS provider initialisation that FIPS_get_core_handle() doesn't work
300
     * yet. So we defer this to the main provider OSSL_provider_init_int()
301
     * function.
302
     */
303
304
    return tlocal;
305
err:
306
    OPENSSL_free(hands);
307
    CRYPTO_THREAD_cleanup_local(tlocal);
308
deinit:
309
    OPENSSL_free(tlocal);
310
    return NULL;
311
}
312
313
void ossl_thread_event_ctx_free(void *tlocal)
314
{
315
    CRYPTO_THREAD_cleanup_local(tlocal);
316
    OPENSSL_free(tlocal);
317
}
318
319
static void ossl_arg_thread_stop(void *arg)
320
{
321
    ossl_ctx_thread_stop((OSSL_LIB_CTX *)arg);
322
}
323
324
void ossl_ctx_thread_stop(OSSL_LIB_CTX *ctx)
325
{
326
    THREAD_EVENT_HANDLER **hands;
327
    CRYPTO_THREAD_LOCAL *local
328
        = ossl_lib_ctx_get_data(ctx, OSSL_LIB_CTX_THREAD_EVENT_HANDLER_INDEX);
329
330
    if (local == NULL)
331
        return;
332
    hands = init_get_thread_local(local, 0, 0);
333
    init_thread_stop(ctx, hands);
334
    OPENSSL_free(hands);
335
}
336
#endif /* FIPS_MODULE */
337
338
static void init_thread_stop(void *arg, THREAD_EVENT_HANDLER **hands)
339
440
{
340
440
    THREAD_EVENT_HANDLER *curr, *prev = NULL, *tmp;
341
440
#ifndef FIPS_MODULE
342
440
    GLOBAL_TEVENT_REGISTER *gtr;
343
440
#endif
344
345
    /* Can't do much about this */
346
440
    if (hands == NULL)
347
220
        return;
348
349
220
#ifndef FIPS_MODULE
350
220
    gtr = get_global_tevent_register();
351
220
    if (gtr == NULL)
352
0
        return;
353
354
220
    if (!CRYPTO_THREAD_write_lock(gtr->lock))
355
0
        return;
356
220
#endif
357
358
220
    curr = *hands;
359
504
    while (curr != NULL) {
360
284
        if (arg != NULL && curr->arg != arg) {
361
0
            prev = curr;
362
0
            curr = curr->next;
363
0
            continue;
364
0
        }
365
284
        curr->handfn(curr->arg);
366
284
        if (prev == NULL)
367
284
            *hands = curr->next;
368
0
        else
369
0
            prev->next = curr->next;
370
371
284
        tmp = curr;
372
284
        curr = curr->next;
373
374
284
        OPENSSL_free(tmp);
375
284
    }
376
220
#ifndef FIPS_MODULE
377
220
    CRYPTO_THREAD_unlock(gtr->lock);
378
220
#endif
379
220
}
380
381
int ossl_init_thread_start(const void *index, void *arg,
382
    OSSL_thread_stop_handler_fn handfn)
383
355
{
384
355
    THREAD_EVENT_HANDLER **hands;
385
355
    THREAD_EVENT_HANDLER *hand;
386
#ifdef FIPS_MODULE
387
    OSSL_LIB_CTX *ctx = arg;
388
389
    /*
390
     * In FIPS mode the list of THREAD_EVENT_HANDLERs is unique per combination
391
     * of OSSL_LIB_CTX and thread. This is because in FIPS mode each
392
     * OSSL_LIB_CTX gets informed about thread stop events individually.
393
     */
394
    CRYPTO_THREAD_LOCAL *local
395
        = ossl_lib_ctx_get_data(ctx, OSSL_LIB_CTX_THREAD_EVENT_HANDLER_INDEX);
396
#else
397
    /*
398
     * Outside of FIPS mode the list of THREAD_EVENT_HANDLERs is unique per
399
     * thread, but may hold multiple OSSL_LIB_CTXs. We only get told about
400
     * thread stop events globally, so we have to ensure all affected
401
     * OSSL_LIB_CTXs are informed.
402
     */
403
355
    CRYPTO_THREAD_LOCAL *local = &destructor_key.value;
404
355
#endif
405
406
355
    hands = init_get_thread_local(local, 1, 0);
407
355
    if (hands == NULL)
408
0
        return 0;
409
410
#ifdef FIPS_MODULE
411
    if (*hands == NULL) {
412
        /*
413
         * We've not yet registered any handlers for this thread. We need to get
414
         * libcrypto to tell us about later thread stop events. c_thread_start
415
         * is a callback to libcrypto defined in fipsprov.c
416
         */
417
        if (!ossl_thread_register_fips(ctx))
418
            return 0;
419
    }
420
#endif
421
422
355
    hand = OPENSSL_malloc(sizeof(*hand));
423
355
    if (hand == NULL)
424
0
        return 0;
425
426
355
    hand->handfn = handfn;
427
355
    hand->arg = arg;
428
355
#ifndef FIPS_MODULE
429
355
    hand->index = index;
430
355
#endif
431
355
    hand->next = *hands;
432
355
    *hands = hand;
433
434
355
    return 1;
435
355
}
436
437
#ifndef FIPS_MODULE
438
static int init_thread_deregister(void *index, int all)
439
292
{
440
292
    GLOBAL_TEVENT_REGISTER *gtr;
441
292
    int i;
442
443
292
    gtr = get_global_tevent_register();
444
292
    if (gtr == NULL)
445
0
        return 0;
446
292
    if (!all) {
447
72
        if (!CRYPTO_THREAD_write_lock(gtr->lock))
448
0
            return 0;
449
220
    } else {
450
220
        glob_tevent_reg = NULL;
451
220
    }
452
292
    for (i = 0; i < sk_THREAD_EVENT_HANDLER_PTR_num(gtr->skhands); i++) {
453
0
        THREAD_EVENT_HANDLER **hands
454
0
            = sk_THREAD_EVENT_HANDLER_PTR_value(gtr->skhands, i);
455
0
        THREAD_EVENT_HANDLER *curr = NULL, *prev = NULL, *tmp;
456
457
0
        if (hands == NULL) {
458
0
            if (!all)
459
0
                CRYPTO_THREAD_unlock(gtr->lock);
460
0
            return 0;
461
0
        }
462
0
        curr = *hands;
463
0
        while (curr != NULL) {
464
0
            if (all || curr->index == index) {
465
0
                if (prev != NULL)
466
0
                    prev->next = curr->next;
467
0
                else
468
0
                    *hands = curr->next;
469
0
                tmp = curr;
470
0
                curr = curr->next;
471
0
                OPENSSL_free(tmp);
472
0
                continue;
473
0
            }
474
0
            prev = curr;
475
0
            curr = curr->next;
476
0
        }
477
0
        if (all)
478
0
            OPENSSL_free(hands);
479
0
    }
480
292
    if (all) {
481
220
        CRYPTO_THREAD_lock_free(gtr->lock);
482
220
        sk_THREAD_EVENT_HANDLER_PTR_free(gtr->skhands);
483
220
        OPENSSL_free(gtr);
484
220
    } else {
485
72
        CRYPTO_THREAD_unlock(gtr->lock);
486
72
    }
487
292
    return 1;
488
292
}
489
490
int ossl_init_thread_deregister(void *index)
491
72
{
492
72
    return init_thread_deregister(index, 0);
493
72
}
494
#endif