1 /*
2 * Copyright (c) 2016 Wind River Systems, Inc.
3 *
4 * SPDX-License-Identifier: Apache-2.0
5 */
6
7 /**
8 * @file @brief mutex kernel services
9 *
10 * This module contains routines for handling mutex locking and unlocking.
11 *
12 * Mutexes implement a priority inheritance algorithm that boosts the priority
13 * level of the owning thread to match the priority level of the highest
14 * priority thread waiting on the mutex.
15 *
16 * Each mutex that contributes to priority inheritance must be released in the
17 * reverse order in which it was acquired. Furthermore each subsequent mutex
18 * that contributes to raising the owning thread's priority level must be
19 * acquired at a point after the most recent "bumping" of the priority level.
20 *
21 * For example, if thread A has two mutexes contributing to the raising of its
22 * priority level, the second mutex M2 must be acquired by thread A after
23 * thread A's priority level was bumped due to owning the first mutex M1.
24 * When releasing the mutex, thread A must release M2 before it releases M1.
25 * Failure to follow this nested model may result in threads running at
26 * unexpected priority levels (too high, or too low).
27 */
28
29 #include <kernel.h>
30 #include <kernel_structs.h>
31 #include <toolchain.h>
32 #include <ksched.h>
33 #include <wait_q.h>
34 #include <errno.h>
35 #include <init.h>
36 #include <syscall_handler.h>
37 #include <tracing/tracing.h>
38 #include <sys/check.h>
39 #include <logging/log.h>
40 LOG_MODULE_DECLARE(os, CONFIG_KERNEL_LOG_LEVEL);
41
42 /* We use a global spinlock here because some of the synchronization
43 * is protecting things like owner thread priorities which aren't
44 * "part of" a single k_mutex. Should move those bits of the API
45 * under the scheduler lock so we can break this up.
46 */
47 static struct k_spinlock lock;
48
z_impl_k_mutex_init(struct k_mutex * mutex)49 int z_impl_k_mutex_init(struct k_mutex *mutex)
50 {
51 mutex->owner = NULL;
52 mutex->lock_count = 0U;
53
54 z_waitq_init(&mutex->wait_q);
55
56 z_object_init(mutex);
57
58 SYS_PORT_TRACING_OBJ_INIT(k_mutex, mutex, 0);
59
60 return 0;
61 }
62
63 #ifdef CONFIG_USERSPACE
z_vrfy_k_mutex_init(struct k_mutex * mutex)64 static inline int z_vrfy_k_mutex_init(struct k_mutex *mutex)
65 {
66 Z_OOPS(Z_SYSCALL_OBJ_INIT(mutex, K_OBJ_MUTEX));
67 return z_impl_k_mutex_init(mutex);
68 }
69 #include <syscalls/k_mutex_init_mrsh.c>
70 #endif
71
new_prio_for_inheritance(int32_t target,int32_t limit)72 static int32_t new_prio_for_inheritance(int32_t target, int32_t limit)
73 {
74 int new_prio = z_is_prio_higher(target, limit) ? target : limit;
75
76 new_prio = z_get_new_prio_with_ceiling(new_prio);
77
78 return new_prio;
79 }
80
adjust_owner_prio(struct k_mutex * mutex,int32_t new_prio)81 static bool adjust_owner_prio(struct k_mutex *mutex, int32_t new_prio)
82 {
83 if (mutex->owner->base.prio != new_prio) {
84
85 LOG_DBG("%p (ready (y/n): %c) prio changed to %d (was %d)",
86 mutex->owner, z_is_thread_ready(mutex->owner) ?
87 'y' : 'n',
88 new_prio, mutex->owner->base.prio);
89
90 return z_set_prio(mutex->owner, new_prio);
91 }
92 return false;
93 }
94
z_impl_k_mutex_lock(struct k_mutex * mutex,k_timeout_t timeout)95 int z_impl_k_mutex_lock(struct k_mutex *mutex, k_timeout_t timeout)
96 {
97 int new_prio;
98 k_spinlock_key_t key;
99 bool resched = false;
100
101 __ASSERT(!arch_is_in_isr(), "mutexes cannot be used inside ISRs");
102
103 SYS_PORT_TRACING_OBJ_FUNC_ENTER(k_mutex, lock, mutex, timeout);
104
105 key = k_spin_lock(&lock);
106
107 if (likely((mutex->lock_count == 0U) || (mutex->owner == _current))) {
108
109 mutex->owner_orig_prio = (mutex->lock_count == 0U) ?
110 _current->base.prio :
111 mutex->owner_orig_prio;
112
113 mutex->lock_count++;
114 mutex->owner = _current;
115
116 LOG_DBG("%p took mutex %p, count: %d, orig prio: %d",
117 _current, mutex, mutex->lock_count,
118 mutex->owner_orig_prio);
119
120 k_spin_unlock(&lock, key);
121
122 SYS_PORT_TRACING_OBJ_FUNC_EXIT(k_mutex, lock, mutex, timeout, 0);
123
124 return 0;
125 }
126
127 if (unlikely(K_TIMEOUT_EQ(timeout, K_NO_WAIT))) {
128 k_spin_unlock(&lock, key);
129
130 SYS_PORT_TRACING_OBJ_FUNC_EXIT(k_mutex, lock, mutex, timeout, -EBUSY);
131
132 return -EBUSY;
133 }
134
135 SYS_PORT_TRACING_OBJ_FUNC_BLOCKING(k_mutex, lock, mutex, timeout);
136
137 new_prio = new_prio_for_inheritance(_current->base.prio,
138 mutex->owner->base.prio);
139
140 LOG_DBG("adjusting prio up on mutex %p", mutex);
141
142 if (z_is_prio_higher(new_prio, mutex->owner->base.prio)) {
143 resched = adjust_owner_prio(mutex, new_prio);
144 }
145
146 int got_mutex = z_pend_curr(&lock, key, &mutex->wait_q, timeout);
147
148 LOG_DBG("on mutex %p got_mutex value: %d", mutex, got_mutex);
149
150 LOG_DBG("%p got mutex %p (y/n): %c", _current, mutex,
151 got_mutex ? 'y' : 'n');
152
153 if (got_mutex == 0) {
154 SYS_PORT_TRACING_OBJ_FUNC_EXIT(k_mutex, lock, mutex, timeout, 0);
155 return 0;
156 }
157
158 /* timed out */
159
160 LOG_DBG("%p timeout on mutex %p", _current, mutex);
161
162 key = k_spin_lock(&lock);
163
164 /*
165 * Check if mutex was unlocked after this thread was unpended.
166 * If so, skip adjusting owner's priority down.
167 */
168 if (likely(mutex->owner != NULL)) {
169 struct k_thread *waiter = z_waitq_head(&mutex->wait_q);
170
171 new_prio = (waiter != NULL) ?
172 new_prio_for_inheritance(waiter->base.prio, mutex->owner_orig_prio) :
173 mutex->owner_orig_prio;
174
175 LOG_DBG("adjusting prio down on mutex %p", mutex);
176
177 resched = adjust_owner_prio(mutex, new_prio) || resched;
178 }
179
180 if (resched) {
181 z_reschedule(&lock, key);
182 } else {
183 k_spin_unlock(&lock, key);
184 }
185
186 SYS_PORT_TRACING_OBJ_FUNC_EXIT(k_mutex, lock, mutex, timeout, -EAGAIN);
187
188 return -EAGAIN;
189 }
190
191 #ifdef CONFIG_USERSPACE
z_vrfy_k_mutex_lock(struct k_mutex * mutex,k_timeout_t timeout)192 static inline int z_vrfy_k_mutex_lock(struct k_mutex *mutex,
193 k_timeout_t timeout)
194 {
195 Z_OOPS(Z_SYSCALL_OBJ(mutex, K_OBJ_MUTEX));
196 return z_impl_k_mutex_lock(mutex, timeout);
197 }
198 #include <syscalls/k_mutex_lock_mrsh.c>
199 #endif
200
z_impl_k_mutex_unlock(struct k_mutex * mutex)201 int z_impl_k_mutex_unlock(struct k_mutex *mutex)
202 {
203 struct k_thread *new_owner;
204
205 __ASSERT(!arch_is_in_isr(), "mutexes cannot be used inside ISRs");
206
207 SYS_PORT_TRACING_OBJ_FUNC_ENTER(k_mutex, unlock, mutex);
208
209 CHECKIF(mutex->owner == NULL) {
210 SYS_PORT_TRACING_OBJ_FUNC_EXIT(k_mutex, unlock, mutex, -EINVAL);
211
212 return -EINVAL;
213 }
214 /*
215 * The current thread does not own the mutex.
216 */
217 CHECKIF(mutex->owner != _current) {
218 SYS_PORT_TRACING_OBJ_FUNC_EXIT(k_mutex, unlock, mutex, -EPERM);
219
220 return -EPERM;
221 }
222
223 /*
224 * Attempt to unlock a mutex which is unlocked. mutex->lock_count
225 * cannot be zero if the current thread is equal to mutex->owner,
226 * therefore no underflow check is required. Use assert to catch
227 * undefined behavior.
228 */
229 __ASSERT_NO_MSG(mutex->lock_count > 0U);
230
231 z_sched_lock();
232
233 LOG_DBG("mutex %p lock_count: %d", mutex, mutex->lock_count);
234
235 /*
236 * If we are the owner and count is greater than 1, then decrement
237 * the count and return and keep current thread as the owner.
238 */
239 if (mutex->lock_count > 1U) {
240 mutex->lock_count--;
241 goto k_mutex_unlock_return;
242 }
243
244 k_spinlock_key_t key = k_spin_lock(&lock);
245
246 adjust_owner_prio(mutex, mutex->owner_orig_prio);
247
248 /* Get the new owner, if any */
249 new_owner = z_unpend_first_thread(&mutex->wait_q);
250
251 mutex->owner = new_owner;
252
253 LOG_DBG("new owner of mutex %p: %p (prio: %d)",
254 mutex, new_owner, new_owner ? new_owner->base.prio : -1000);
255
256 if (new_owner != NULL) {
257 /*
258 * new owner is already of higher or equal prio than first
259 * waiter since the wait queue is priority-based: no need to
260 * ajust its priority
261 */
262 mutex->owner_orig_prio = new_owner->base.prio;
263 arch_thread_return_value_set(new_owner, 0);
264 z_ready_thread(new_owner);
265 z_reschedule(&lock, key);
266 } else {
267 mutex->lock_count = 0U;
268 k_spin_unlock(&lock, key);
269 }
270
271
272 k_mutex_unlock_return:
273 SYS_PORT_TRACING_OBJ_FUNC_EXIT(k_mutex, unlock, mutex, 0);
274
275 k_sched_unlock();
276
277 return 0;
278 }
279
280 #ifdef CONFIG_USERSPACE
z_vrfy_k_mutex_unlock(struct k_mutex * mutex)281 static inline int z_vrfy_k_mutex_unlock(struct k_mutex *mutex)
282 {
283 Z_OOPS(Z_SYSCALL_OBJ(mutex, K_OBJ_MUTEX));
284 return z_impl_k_mutex_unlock(mutex);
285 }
286 #include <syscalls/k_mutex_unlock_mrsh.c>
287 #endif
288