1 |
cebix |
1.1 |
/* |
2 |
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* sheepthreads.c - Minimal pthreads implementation (libpthreads doesn't |
3 |
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* like nonstandard stacks) |
4 |
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* |
5 |
gbeauche |
1.6 |
* SheepShaver (C) 1997-2005 Christian Bauer and Marc Hellwig |
6 |
cebix |
1.1 |
* |
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* This program is free software; you can redistribute it and/or modify |
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* it under the terms of the GNU General Public License as published by |
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* the Free Software Foundation; either version 2 of the License, or |
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* (at your option) any later version. |
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* |
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* This program is distributed in the hope that it will be useful, |
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* but WITHOUT ANY WARRANTY; without even the implied warranty of |
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* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the |
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* GNU General Public License for more details. |
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* |
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* You should have received a copy of the GNU General Public License |
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* along with this program; if not, write to the Free Software |
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* Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA |
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*/ |
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/* |
23 |
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* NOTES: |
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* - pthread_cancel() kills the thread immediately |
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* - Semaphores are VERY restricted: the only supported use is to have one |
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* thread sem_wait() on the semaphore while other threads sem_post() it |
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* (i.e. to use the semaphore as a signal) |
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*/ |
29 |
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30 |
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#include <sys/types.h> |
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#include <sys/wait.h> |
32 |
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#include <stdlib.h> |
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#include <errno.h> |
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#include <unistd.h> |
35 |
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#include <signal.h> |
36 |
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#include <pthread.h> |
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38 |
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39 |
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/* Thread stack size */ |
40 |
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#define STACK_SIZE 65536 |
41 |
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42 |
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/* From asm_linux.S */ |
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extern int atomic_add(int *var, int add); |
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extern int atomic_and(int *var, int and); |
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extern int atomic_or(int *var, int or); |
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extern int test_and_set(int *var, int val); |
47 |
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48 |
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/* Linux kernel calls */ |
49 |
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extern int __clone(int (*fn)(void *), void *, int, void *); |
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51 |
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/* struct sem_t */ |
52 |
gbeauche |
1.9 |
typedef struct { |
53 |
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struct _pthread_fastlock __sem_lock; |
54 |
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int __sem_value; |
55 |
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_pthread_descr __sem_waiting; |
56 |
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} sem_t; |
57 |
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58 |
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#define SEM_VALUE_MAX 64 |
59 |
gbeauche |
1.2 |
#define status __status |
60 |
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#define spinlock __spinlock |
61 |
cebix |
1.1 |
#define sem_lock __sem_lock |
62 |
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#define sem_value __sem_value |
63 |
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#define sem_waiting __sem_waiting |
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65 |
gbeauche |
1.4 |
/* Wait for "clone" children only (Linux 2.4+ specific) */ |
66 |
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#ifndef __WCLONE |
67 |
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#define __WCLONE 0 |
68 |
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#endif |
69 |
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70 |
cebix |
1.1 |
|
71 |
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/* |
72 |
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* Return pthread ID of self |
73 |
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*/ |
74 |
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75 |
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pthread_t pthread_self(void) |
76 |
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{ |
77 |
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return getpid(); |
78 |
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} |
79 |
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80 |
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81 |
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/* |
82 |
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* Test whether two pthread IDs are equal |
83 |
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*/ |
84 |
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85 |
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int pthread_equal(pthread_t t1, pthread_t t2) |
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{ |
87 |
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return t1 == t2; |
88 |
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} |
89 |
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90 |
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91 |
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/* |
92 |
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* Send signal to thread |
93 |
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*/ |
94 |
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95 |
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int pthread_kill(pthread_t thread, int sig) |
96 |
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{ |
97 |
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if (kill(thread, sig) == -1) |
98 |
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return errno; |
99 |
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else |
100 |
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return 0; |
101 |
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} |
102 |
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103 |
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104 |
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/* |
105 |
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* Create pthread |
106 |
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*/ |
107 |
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108 |
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struct new_thread { |
109 |
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void *(*fn)(void *); |
110 |
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void *arg; |
111 |
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}; |
112 |
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113 |
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static int start_thread(void *arg) |
114 |
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{ |
115 |
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struct new_thread *nt = (struct new_thread *)arg; |
116 |
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nt->fn(nt->arg); |
117 |
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return 0; |
118 |
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} |
119 |
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120 |
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int pthread_create(pthread_t *thread, const pthread_attr_t *attr, void *(*start_routine)(void *), void *arg) |
121 |
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{ |
122 |
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struct new_thread *nt; |
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void *stack; |
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int pid; |
125 |
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126 |
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nt = (struct new_thread *)malloc(sizeof(struct new_thread)); |
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nt->fn = start_routine; |
128 |
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nt->arg = arg; |
129 |
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stack = malloc(STACK_SIZE); |
130 |
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131 |
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pid = __clone(start_thread, (char *)stack + STACK_SIZE - 16, CLONE_VM | CLONE_FS | CLONE_FILES, nt); |
132 |
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if (pid == -1) { |
133 |
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free(stack); |
134 |
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free(nt); |
135 |
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return errno; |
136 |
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} else { |
137 |
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*thread = pid; |
138 |
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return 0; |
139 |
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} |
140 |
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} |
141 |
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142 |
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143 |
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/* |
144 |
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* Join pthread |
145 |
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*/ |
146 |
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147 |
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int pthread_join(pthread_t thread, void **ret) |
148 |
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{ |
149 |
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do { |
150 |
gbeauche |
1.4 |
if (waitpid(thread, NULL, __WCLONE) >= 0); |
151 |
cebix |
1.1 |
break; |
152 |
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} while (errno == EINTR); |
153 |
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if (ret) |
154 |
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*ret = NULL; |
155 |
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return 0; |
156 |
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} |
157 |
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158 |
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159 |
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/* |
160 |
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* Cancel thread |
161 |
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*/ |
162 |
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163 |
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int pthread_cancel(pthread_t thread) |
164 |
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{ |
165 |
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kill(thread, SIGINT); |
166 |
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return 0; |
167 |
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} |
168 |
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169 |
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170 |
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/* |
171 |
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* Test for cancellation |
172 |
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*/ |
173 |
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174 |
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void pthread_testcancel(void) |
175 |
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{ |
176 |
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} |
177 |
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178 |
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179 |
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/* |
180 |
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* Spinlocks |
181 |
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*/ |
182 |
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183 |
gbeauche |
1.7 |
/* For multiprocessor systems, we want to ensure all memory accesses |
184 |
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are completed before we reset a lock. On other systems, we still |
185 |
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need to make sure that the compiler has flushed everything to memory. */ |
186 |
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#define MEMORY_BARRIER() __asm__ __volatile__ ("sync" : : : "memory") |
187 |
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188 |
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static void fastlock_init(struct _pthread_fastlock *lock) |
189 |
gbeauche |
1.3 |
{ |
190 |
gbeauche |
1.7 |
lock->status = 0; |
191 |
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lock->spinlock = 0; |
192 |
gbeauche |
1.3 |
} |
193 |
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|
194 |
gbeauche |
1.7 |
static int fastlock_try_acquire(struct _pthread_fastlock *lock) |
195 |
cebix |
1.1 |
{ |
196 |
gbeauche |
1.7 |
int res = EBUSY; |
197 |
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if (test_and_set(&lock->spinlock, 1) == 0) { |
198 |
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if (lock->status == 0) { |
199 |
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lock->status = 1; |
200 |
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MEMORY_BARRIER(); |
201 |
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res = 0; |
202 |
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} |
203 |
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lock->spinlock = 0; |
204 |
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} |
205 |
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return res; |
206 |
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} |
207 |
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208 |
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static void fastlock_acquire(struct _pthread_fastlock *lock) |
209 |
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{ |
210 |
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MEMORY_BARRIER(); |
211 |
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while (test_and_set(&lock->spinlock, 1)) |
212 |
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usleep(0); |
213 |
cebix |
1.1 |
} |
214 |
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215 |
gbeauche |
1.7 |
static void fastlock_release(struct _pthread_fastlock *lock) |
216 |
cebix |
1.1 |
{ |
217 |
gbeauche |
1.7 |
MEMORY_BARRIER(); |
218 |
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lock->spinlock = 0; |
219 |
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__asm__ __volatile__ ("" : "=m" (lock->spinlock) : "m" (lock->spinlock)); |
220 |
gbeauche |
1.3 |
} |
221 |
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222 |
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223 |
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/* |
224 |
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* Initialize mutex |
225 |
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*/ |
226 |
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227 |
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int pthread_mutex_init(pthread_mutex_t *mutex, const pthread_mutexattr_t *mutex_attr) |
228 |
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{ |
229 |
gbeauche |
1.7 |
fastlock_init(&mutex->__m_lock); |
230 |
gbeauche |
1.3 |
mutex->__m_kind = mutex_attr ? mutex_attr->__mutexkind : PTHREAD_MUTEX_TIMED_NP; |
231 |
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mutex->__m_count = 0; |
232 |
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mutex->__m_owner = NULL; |
233 |
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return 0; |
234 |
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} |
235 |
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236 |
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237 |
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/* |
238 |
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* Destroy mutex |
239 |
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*/ |
240 |
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241 |
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int pthread_mutex_destroy(pthread_mutex_t *mutex) |
242 |
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{ |
243 |
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switch (mutex->__m_kind) { |
244 |
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case PTHREAD_MUTEX_TIMED_NP: |
245 |
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return (mutex->__m_lock.__status != 0) ? EBUSY : 0; |
246 |
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default: |
247 |
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return EINVAL; |
248 |
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} |
249 |
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} |
250 |
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251 |
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252 |
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/* |
253 |
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* Lock mutex |
254 |
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*/ |
255 |
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256 |
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int pthread_mutex_lock(pthread_mutex_t *mutex) |
257 |
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{ |
258 |
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switch (mutex->__m_kind) { |
259 |
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case PTHREAD_MUTEX_TIMED_NP: |
260 |
gbeauche |
1.7 |
fastlock_acquire(&mutex->__m_lock); |
261 |
gbeauche |
1.3 |
return 0; |
262 |
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default: |
263 |
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return EINVAL; |
264 |
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} |
265 |
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} |
266 |
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267 |
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268 |
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/* |
269 |
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* Try to lock mutex |
270 |
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*/ |
271 |
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|
272 |
|
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int pthread_mutex_trylock(pthread_mutex_t *mutex) |
273 |
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{ |
274 |
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switch (mutex->__m_kind) { |
275 |
|
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case PTHREAD_MUTEX_TIMED_NP: |
276 |
gbeauche |
1.7 |
return fastlock_try_acquire(&mutex->__m_lock); |
277 |
gbeauche |
1.3 |
default: |
278 |
|
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return EINVAL; |
279 |
|
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} |
280 |
|
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} |
281 |
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282 |
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283 |
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/* |
284 |
|
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* Unlock mutex |
285 |
|
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*/ |
286 |
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|
287 |
|
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int pthread_mutex_unlock(pthread_mutex_t *mutex) |
288 |
|
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{ |
289 |
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switch (mutex->__m_kind) { |
290 |
|
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case PTHREAD_MUTEX_TIMED_NP: |
291 |
gbeauche |
1.7 |
fastlock_release(&mutex->__m_lock); |
292 |
gbeauche |
1.3 |
return 0; |
293 |
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default: |
294 |
|
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return EINVAL; |
295 |
|
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} |
296 |
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} |
297 |
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298 |
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|
299 |
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/* |
300 |
|
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* Create mutex attribute |
301 |
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*/ |
302 |
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|
303 |
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int pthread_mutexattr_init(pthread_mutexattr_t *attr) |
304 |
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{ |
305 |
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attr->__mutexkind = PTHREAD_MUTEX_TIMED_NP; |
306 |
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return 0; |
307 |
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} |
308 |
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309 |
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|
310 |
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/* |
311 |
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* Destroy mutex attribute |
312 |
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*/ |
313 |
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|
314 |
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int pthread_mutexattr_destroy(pthread_mutexattr_t *attr) |
315 |
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{ |
316 |
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return 0; |
317 |
cebix |
1.1 |
} |
318 |
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319 |
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320 |
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/* |
321 |
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* Init semaphore |
322 |
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*/ |
323 |
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|
324 |
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int sem_init(sem_t *sem, int pshared, unsigned int value) |
325 |
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{ |
326 |
gbeauche |
1.7 |
if (sem == NULL || value > SEM_VALUE_MAX) { |
327 |
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errno = EINVAL; |
328 |
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return -1; |
329 |
|
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} |
330 |
|
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if (pshared) { |
331 |
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errno = ENOSYS; |
332 |
|
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return -1; |
333 |
|
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} |
334 |
|
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fastlock_init(&sem->sem_lock); |
335 |
cebix |
1.1 |
sem->sem_value = value; |
336 |
|
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sem->sem_waiting = NULL; |
337 |
|
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return 0; |
338 |
|
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} |
339 |
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|
340 |
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|
341 |
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/* |
342 |
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* Delete remaphore |
343 |
|
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*/ |
344 |
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|
345 |
|
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int sem_destroy(sem_t *sem) |
346 |
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{ |
347 |
gbeauche |
1.7 |
if (sem == NULL) { |
348 |
|
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errno = EINVAL; |
349 |
|
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return -1; |
350 |
|
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} |
351 |
|
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if (sem->sem_waiting) { |
352 |
|
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errno = EBUSY; |
353 |
|
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return -1; |
354 |
|
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} |
355 |
|
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sem->sem_value = 0; |
356 |
|
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sem->sem_waiting = NULL; |
357 |
cebix |
1.1 |
return 0; |
358 |
|
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} |
359 |
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360 |
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|
361 |
|
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/* |
362 |
|
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* Wait on semaphore |
363 |
|
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*/ |
364 |
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|
365 |
gbeauche |
1.7 |
int sem_wait(sem_t *sem) |
366 |
cebix |
1.1 |
{ |
367 |
gbeauche |
1.7 |
if (sem == NULL) { |
368 |
|
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errno = EINVAL; |
369 |
|
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return -1; |
370 |
|
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} |
371 |
|
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fastlock_acquire(&sem->sem_lock); |
372 |
|
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if (sem->sem_value > 0) { |
373 |
|
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sem->sem_value--; |
374 |
|
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fastlock_release(&sem->sem_lock); |
375 |
|
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return 0; |
376 |
|
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} |
377 |
|
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sem->sem_waiting = (struct _pthread_descr_struct *)((long)sem->sem_waiting + 1); |
378 |
|
|
while (sem->sem_value == 0) { |
379 |
|
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fastlock_release(&sem->sem_lock); |
380 |
|
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usleep(0); |
381 |
|
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fastlock_acquire(&sem->sem_lock); |
382 |
cebix |
1.1 |
} |
383 |
gbeauche |
1.7 |
sem->sem_value--; |
384 |
|
|
fastlock_release(&sem->sem_lock); |
385 |
cebix |
1.1 |
return 0; |
386 |
|
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} |
387 |
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|
388 |
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|
389 |
|
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/* |
390 |
|
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* Post semaphore |
391 |
|
|
*/ |
392 |
|
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|
393 |
|
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int sem_post(sem_t *sem) |
394 |
|
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{ |
395 |
gbeauche |
1.7 |
if (sem == NULL) { |
396 |
|
|
errno = EINVAL; |
397 |
|
|
return -1; |
398 |
|
|
} |
399 |
|
|
fastlock_acquire(&sem->sem_lock); |
400 |
|
|
if (sem->sem_waiting) |
401 |
|
|
sem->sem_waiting = (struct _pthread_descr_struct *)((long)sem->sem_waiting - 1); |
402 |
|
|
else { |
403 |
|
|
if (sem->sem_value >= SEM_VALUE_MAX) { |
404 |
|
|
errno = ERANGE; |
405 |
|
|
fastlock_release(&sem->sem_lock); |
406 |
|
|
return -1; |
407 |
|
|
} |
408 |
|
|
} |
409 |
|
|
sem->sem_value++; |
410 |
|
|
fastlock_release(&sem->sem_lock); |
411 |
cebix |
1.1 |
return 0; |
412 |
|
|
} |
413 |
gbeauche |
1.4 |
|
414 |
|
|
|
415 |
|
|
/* |
416 |
|
|
* Simple producer/consumer test program |
417 |
|
|
*/ |
418 |
|
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|
419 |
|
|
#ifdef TEST |
420 |
|
|
#include <stdio.h> |
421 |
|
|
|
422 |
|
|
static sem_t p_sem, c_sem; |
423 |
|
|
static int data = 0; |
424 |
|
|
|
425 |
|
|
static void *producer_func(void *arg) |
426 |
|
|
{ |
427 |
|
|
int i, n = (int)arg; |
428 |
|
|
for (i = 0; i < n; i++) { |
429 |
|
|
sem_wait(&p_sem); |
430 |
|
|
data++; |
431 |
|
|
sem_post(&c_sem); |
432 |
|
|
} |
433 |
|
|
return NULL; |
434 |
|
|
} |
435 |
|
|
|
436 |
|
|
static void *consumer_func(void *arg) |
437 |
|
|
{ |
438 |
|
|
int i, n = (int)arg; |
439 |
|
|
for (i = 0; i < n; i++) { |
440 |
|
|
sem_wait(&c_sem); |
441 |
|
|
printf("data: %d\n", data); |
442 |
|
|
sem_post(&p_sem); |
443 |
|
|
} |
444 |
|
|
sleep(1); // for testing pthread_join() |
445 |
|
|
return NULL; |
446 |
|
|
} |
447 |
|
|
|
448 |
|
|
int main(void) |
449 |
|
|
{ |
450 |
|
|
pthread_t producer_thread, consumer_thread; |
451 |
|
|
static const int N = 5; |
452 |
|
|
|
453 |
|
|
if (sem_init(&c_sem, 0, 0) < 0) |
454 |
|
|
return 1; |
455 |
|
|
if (sem_init(&p_sem, 0, 1) < 0) |
456 |
|
|
return 2; |
457 |
|
|
if (pthread_create(&producer_thread, NULL, producer_func, (void *)N) != 0) |
458 |
|
|
return 3; |
459 |
|
|
if (pthread_create(&consumer_thread, NULL, consumer_func, (void *)N) != 0) |
460 |
|
|
return 4; |
461 |
|
|
pthread_join(producer_thread, NULL); |
462 |
|
|
pthread_join(consumer_thread, NULL); |
463 |
|
|
sem_destroy(&p_sem); |
464 |
|
|
sem_destroy(&c_sem); |
465 |
|
|
if (data != N) |
466 |
|
|
return 5; |
467 |
|
|
return 0; |
468 |
|
|
} |
469 |
|
|
#endif |