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1
/*
1
/*
2
 * Copyright (c) 2001-2004 Jakub Jermar
2
 * Copyright (c) 2001-2004 Jakub Jermar
3
 * All rights reserved.
3
 * All rights reserved.
4
 *
4
 *
5
 * Redistribution and use in source and binary forms, with or without
5
 * Redistribution and use in source and binary forms, with or without
6
 * modification, are permitted provided that the following conditions
6
 * modification, are permitted provided that the following conditions
7
 * are met:
7
 * are met:
8
 *
8
 *
9
 * - Redistributions of source code must retain the above copyright
9
 * - Redistributions of source code must retain the above copyright
10
 *   notice, this list of conditions and the following disclaimer.
10
 *   notice, this list of conditions and the following disclaimer.
11
 * - Redistributions in binary form must reproduce the above copyright
11
 * - Redistributions in binary form must reproduce the above copyright
12
 *   notice, this list of conditions and the following disclaimer in the
12
 *   notice, this list of conditions and the following disclaimer in the
13
 *   documentation and/or other materials provided with the distribution.
13
 *   documentation and/or other materials provided with the distribution.
14
 * - The name of the author may not be used to endorse or promote products
14
 * - The name of the author may not be used to endorse or promote products
15
 *   derived from this software without specific prior written permission.
15
 *   derived from this software without specific prior written permission.
16
 *
16
 *
17
 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
17
 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
18
 * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
18
 * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
19
 * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
19
 * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
20
 * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
20
 * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
21
 * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
21
 * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
22
 * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
22
 * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
23
 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
23
 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
24
 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
24
 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
25
 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
25
 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
26
 * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
26
 * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
27
 */
27
 */
28
 
28
 
29
/** @addtogroup genericproc
29
/** @addtogroup genericproc
30
 * @{
30
 * @{
31
 */
31
 */
32
 
32
 
33
/**
33
/**
34
 * @file
34
 * @file
35
 * @brief   Thread management functions.
35
 * @brief   Thread management functions.
36
 */
36
 */
37
 
37
 
38
#include <proc/scheduler.h>
38
#include <proc/scheduler.h>
39
#include <proc/thread.h>
39
#include <proc/thread.h>
40
#include <proc/task.h>
40
#include <proc/task.h>
41
#include <proc/uarg.h>
41
#include <proc/uarg.h>
42
#include <mm/frame.h>
42
#include <mm/frame.h>
43
#include <mm/page.h>
43
#include <mm/page.h>
44
#include <arch/asm.h>
44
#include <arch/asm.h>
45
#include <arch/cycle.h>
45
#include <arch/cycle.h>
46
#include <arch.h>
46
#include <arch.h>
47
#include <synch/synch.h>
47
#include <synch/synch.h>
48
#include <synch/spinlock.h>
48
#include <synch/spinlock.h>
49
#include <synch/waitq.h>
49
#include <synch/waitq.h>
50
#include <synch/rwlock.h>
50
#include <synch/rwlock.h>
51
#include <cpu.h>
51
#include <cpu.h>
52
#include <func.h>
52
#include <func.h>
53
#include <context.h>
53
#include <context.h>
54
#include <adt/avl.h>
54
#include <adt/avl.h>
55
#include <adt/list.h>
55
#include <adt/list.h>
56
#include <time/clock.h>
56
#include <time/clock.h>
57
#include <time/timeout.h>
57
#include <time/timeout.h>
58
#include <config.h>
58
#include <config.h>
59
#include <arch/interrupt.h>
59
#include <arch/interrupt.h>
60
#include <smp/ipi.h>
60
#include <smp/ipi.h>
61
#include <arch/faddr.h>
61
#include <arch/faddr.h>
62
#include <atomic.h>
62
#include <atomic.h>
63
#include <memstr.h>
63
#include <memstr.h>
64
#include <print.h>
64
#include <print.h>
65
#include <mm/slab.h>
65
#include <mm/slab.h>
66
#include <debug.h>
66
#include <debug.h>
67
#include <main/uinit.h>
67
#include <main/uinit.h>
68
#include <syscall/copy.h>
68
#include <syscall/copy.h>
69
#include <errno.h>
69
#include <errno.h>
70
#include <console/klog.h>
70
#include <console/klog.h>
71
 
71
 
72
 
72
 
73
/** Thread states */
73
/** Thread states */
74
char *thread_states[] = {
74
char *thread_states[] = {
75
    "Invalid",
75
    "Invalid",
76
    "Running",
76
    "Running",
77
    "Sleeping",
77
    "Sleeping",
78
    "Ready",
78
    "Ready",
79
    "Entering",
79
    "Entering",
80
    "Exiting",
80
    "Exiting",
81
    "Lingering"
81
    "Lingering"
82
};
82
};
83
 
83
 
84
/** Lock protecting the threads_tree AVL tree.
84
/** Lock protecting the threads_tree AVL tree.
85
 *
85
 *
86
 * For locking rules, see declaration thereof.
86
 * For locking rules, see declaration thereof.
87
 */
87
 */
88
SPINLOCK_INITIALIZE(threads_lock);
88
SPINLOCK_INITIALIZE(threads_lock);
89
 
89
 
90
/** ALV tree of all threads.
90
/** ALV tree of all threads.
91
 *
91
 *
92
 * When a thread is found in the threads_tree AVL tree, it is guaranteed to
92
 * When a thread is found in the threads_tree AVL tree, it is guaranteed to
93
 * exist as long as the threads_lock is held.
93
 * exist as long as the threads_lock is held.
94
 */
94
 */
95
avltree_t threads_tree;    
95
avltree_t threads_tree;    
96
 
96
 
97
SPINLOCK_INITIALIZE(tidlock);
97
SPINLOCK_INITIALIZE(tidlock);
98
thread_id_t last_tid = 0;
98
thread_id_t last_tid = 0;
99
 
99
 
100
static slab_cache_t *thread_slab;
100
static slab_cache_t *thread_slab;
101
#ifdef ARCH_HAS_FPU
101
#ifdef ARCH_HAS_FPU
102
slab_cache_t *fpu_context_slab;
102
slab_cache_t *fpu_context_slab;
103
#endif
103
#endif
104
 
104
 
105
/** Thread wrapper.
105
/** Thread wrapper.
106
 *
106
 *
107
 * This wrapper is provided to ensure that every thread makes a call to
107
 * This wrapper is provided to ensure that every thread makes a call to
108
 * thread_exit() when its implementing function returns.
108
 * thread_exit() when its implementing function returns.
109
 *
109
 *
110
 * interrupts_disable() is assumed.
110
 * interrupts_disable() is assumed.
111
 *
111
 *
112
 */
112
 */
113
static void cushion(void)
113
static void cushion(void)
114
{
114
{
115
    void (*f)(void *) = THREAD->thread_code;
115
    void (*f)(void *) = THREAD->thread_code;
116
    void *arg = THREAD->thread_arg;
116
    void *arg = THREAD->thread_arg;
117
    THREAD->last_cycle = get_cycle();
117
    THREAD->last_cycle = get_cycle();
118
 
118
 
119
    /* This is where each thread wakes up after its creation */
119
    /* This is where each thread wakes up after its creation */
120
    spinlock_unlock(&THREAD->lock);
120
    spinlock_unlock(&THREAD->lock);
121
    interrupts_enable();
121
    interrupts_enable();
122
 
122
 
123
    f(arg);
123
    f(arg);
124
   
124
   
125
    /* Accumulate accounting to the task */
125
    /* Accumulate accounting to the task */
126
    ipl_t ipl = interrupts_disable();
126
    ipl_t ipl = interrupts_disable();
127
   
127
   
128
    spinlock_lock(&THREAD->lock);
128
    spinlock_lock(&THREAD->lock);
129
    if (!THREAD->uncounted) {
129
    if (!THREAD->uncounted) {
130
        thread_update_accounting();
130
        thread_update_accounting();
131
        uint64_t cycles = THREAD->cycles;
131
        uint64_t cycles = THREAD->cycles;
132
        THREAD->cycles = 0;
132
        THREAD->cycles = 0;
133
        spinlock_unlock(&THREAD->lock);
133
        spinlock_unlock(&THREAD->lock);
134
       
134
       
135
        spinlock_lock(&TASK->lock);
135
        spinlock_lock(&TASK->lock);
136
        TASK->cycles += cycles;
136
        TASK->cycles += cycles;
137
        spinlock_unlock(&TASK->lock);
137
        spinlock_unlock(&TASK->lock);
138
    } else
138
    } else
139
        spinlock_unlock(&THREAD->lock);
139
        spinlock_unlock(&THREAD->lock);
140
   
140
   
141
    interrupts_restore(ipl);
141
    interrupts_restore(ipl);
142
   
142
   
143
    thread_exit();
143
    thread_exit();
144
    /* not reached */
144
    /* not reached */
145
}
145
}
146
 
146
 
147
/** Initialization and allocation for thread_t structure */
147
/** Initialization and allocation for thread_t structure */
148
static int thr_constructor(void *obj, int kmflags)
148
static int thr_constructor(void *obj, int kmflags)
149
{
149
{
150
    thread_t *t = (thread_t *) obj;
150
    thread_t *t = (thread_t *) obj;
151
 
151
 
152
    spinlock_initialize(&t->lock, "thread_t_lock");
152
    spinlock_initialize(&t->lock, "thread_t_lock");
153
    link_initialize(&t->rq_link);
153
    link_initialize(&t->rq_link);
154
    link_initialize(&t->wq_link);
154
    link_initialize(&t->wq_link);
155
    link_initialize(&t->th_link);
155
    link_initialize(&t->th_link);
156
 
156
 
157
    /* call the architecture-specific part of the constructor */
157
    /* call the architecture-specific part of the constructor */
158
    thr_constructor_arch(t);
158
    thr_constructor_arch(t);
159
   
159
   
160
#ifdef ARCH_HAS_FPU
160
#ifdef ARCH_HAS_FPU
161
#ifdef CONFIG_FPU_LAZY
161
#ifdef CONFIG_FPU_LAZY
162
    t->saved_fpu_context = NULL;
162
    t->saved_fpu_context = NULL;
163
#else
163
#else
164
    t->saved_fpu_context = slab_alloc(fpu_context_slab, kmflags);
164
    t->saved_fpu_context = slab_alloc(fpu_context_slab, kmflags);
165
    if (!t->saved_fpu_context)
165
    if (!t->saved_fpu_context)
166
        return -1;
166
        return -1;
167
#endif
167
#endif
168
#endif  
168
#endif  
169
 
169
 
170
    t->kstack = (uint8_t *) frame_alloc(STACK_FRAMES, FRAME_KA | kmflags);
170
    t->kstack = (uint8_t *) frame_alloc(STACK_FRAMES, FRAME_KA | kmflags);
171
    if (!t->kstack) {
171
    if (!t->kstack) {
172
#ifdef ARCH_HAS_FPU
172
#ifdef ARCH_HAS_FPU
173
        if (t->saved_fpu_context)
173
        if (t->saved_fpu_context)
174
            slab_free(fpu_context_slab, t->saved_fpu_context);
174
            slab_free(fpu_context_slab, t->saved_fpu_context);
175
#endif
175
#endif
176
        return -1;
176
        return -1;
177
    }
177
    }
178
 
178
 
179
    return 0;
179
    return 0;
180
}
180
}
181
 
181
 
182
/** Destruction of thread_t object */
182
/** Destruction of thread_t object */
183
static int thr_destructor(void *obj)
183
static int thr_destructor(void *obj)
184
{
184
{
185
    thread_t *t = (thread_t *) obj;
185
    thread_t *t = (thread_t *) obj;
186
 
186
 
187
    /* call the architecture-specific part of the destructor */
187
    /* call the architecture-specific part of the destructor */
188
    thr_destructor_arch(t);
188
    thr_destructor_arch(t);
189
 
189
 
190
    frame_free(KA2PA(t->kstack));
190
    frame_free(KA2PA(t->kstack));
191
#ifdef ARCH_HAS_FPU
191
#ifdef ARCH_HAS_FPU
192
    if (t->saved_fpu_context)
192
    if (t->saved_fpu_context)
193
        slab_free(fpu_context_slab, t->saved_fpu_context);
193
        slab_free(fpu_context_slab, t->saved_fpu_context);
194
#endif
194
#endif
195
    return 1; /* One page freed */
195
    return 1; /* One page freed */
196
}
196
}
197
 
197
 
198
/** Initialize threads
198
/** Initialize threads
199
 *
199
 *
200
 * Initialize kernel threads support.
200
 * Initialize kernel threads support.
201
 *
201
 *
202
 */
202
 */
203
void thread_init(void)
203
void thread_init(void)
204
{
204
{
205
    THREAD = NULL;
205
    THREAD = NULL;
206
    atomic_set(&nrdy,0);
206
    atomic_set(&nrdy,0);
207
    thread_slab = slab_cache_create("thread_slab", sizeof(thread_t), 0,
207
    thread_slab = slab_cache_create("thread_slab", sizeof(thread_t), 0,
208
        thr_constructor, thr_destructor, 0);
208
        thr_constructor, thr_destructor, 0);
209
 
209
 
210
#ifdef ARCH_HAS_FPU
210
#ifdef ARCH_HAS_FPU
211
    fpu_context_slab = slab_cache_create("fpu_slab", sizeof(fpu_context_t),
211
    fpu_context_slab = slab_cache_create("fpu_slab", sizeof(fpu_context_t),
212
        FPU_CONTEXT_ALIGN, NULL, NULL, 0);
212
        FPU_CONTEXT_ALIGN, NULL, NULL, 0);
213
#endif
213
#endif
214
 
214
 
215
    avltree_create(&threads_tree);
215
    avltree_create(&threads_tree);
216
}
216
}
217
 
217
 
218
/** Make thread ready
218
/** Make thread ready
219
 *
219
 *
220
 * Switch thread t to the ready state.
220
 * Switch thread t to the ready state.
221
 *
221
 *
222
 * @param t Thread to make ready.
222
 * @param t Thread to make ready.
223
 *
223
 *
224
 */
224
 */
225
void thread_ready(thread_t *t)
225
void thread_ready(thread_t *t)
226
{
226
{
227
    cpu_t *cpu;
227
    cpu_t *cpu;
228
    runq_t *r;
228
    runq_t *r;
229
    ipl_t ipl;
229
    ipl_t ipl;
230
    int i, avg;
230
    int i, avg;
231
 
231
 
232
    ipl = interrupts_disable();
232
    ipl = interrupts_disable();
233
 
233
 
234
    spinlock_lock(&t->lock);
234
    spinlock_lock(&t->lock);
235
 
235
 
236
    ASSERT(!(t->state == Ready));
236
    ASSERT(!(t->state == Ready));
237
 
237
 
238
    i = (t->priority < RQ_COUNT - 1) ? ++t->priority : t->priority;
238
    i = (t->priority < RQ_COUNT - 1) ? ++t->priority : t->priority;
239
   
239
   
240
    cpu = CPU;
240
    cpu = CPU;
241
    if (t->flags & THREAD_FLAG_WIRED) {
241
    if (t->flags & THREAD_FLAG_WIRED) {
242
        ASSERT(t->cpu != NULL);
242
        ASSERT(t->cpu != NULL);
243
        cpu = t->cpu;
243
        cpu = t->cpu;
244
    }
244
    }
245
    t->state = Ready;
245
    t->state = Ready;
246
    spinlock_unlock(&t->lock);
246
    spinlock_unlock(&t->lock);
247
   
247
   
248
    /*
248
    /*
249
     * Append t to respective ready queue on respective processor.
249
     * Append t to respective ready queue on respective processor.
250
     */
250
     */
251
    r = &cpu->rq[i];
251
    r = &cpu->rq[i];
252
    spinlock_lock(&r->lock);
252
    spinlock_lock(&r->lock);
253
    list_append(&t->rq_link, &r->rq_head);
253
    list_append(&t->rq_link, &r->rq_head);
254
    r->n++;
254
    r->n++;
255
    spinlock_unlock(&r->lock);
255
    spinlock_unlock(&r->lock);
256
 
256
 
257
    atomic_inc(&nrdy);
257
    atomic_inc(&nrdy);
258
    avg = atomic_get(&nrdy) / config.cpu_active;
258
    avg = atomic_get(&nrdy) / config.cpu_active;
259
    atomic_inc(&cpu->nrdy);
259
    atomic_inc(&cpu->nrdy);
260
 
260
 
261
    interrupts_restore(ipl);
261
    interrupts_restore(ipl);
262
}
262
}
263
 
263
 
264
/** Create new thread
264
/** Create new thread
265
 *
265
 *
266
 * Create a new thread.
266
 * Create a new thread.
267
 *
267
 *
268
 * @param func      Thread's implementing function.
268
 * @param func      Thread's implementing function.
269
 * @param arg       Thread's implementing function argument.
269
 * @param arg       Thread's implementing function argument.
270
 * @param task      Task to which the thread belongs.
270
 * @param task      Task to which the thread belongs.
271
 * @param flags     Thread flags.
271
 * @param flags     Thread flags.
272
 * @param name      Symbolic name.
272
 * @param name      Symbolic name.
273
 * @param uncounted Thread's accounting doesn't affect accumulated task
273
 * @param uncounted Thread's accounting doesn't affect accumulated task
274
 *          accounting.
274
 *          accounting.
275
 *
275
 *
276
 * @return New thread's structure on success, NULL on failure.
276
 * @return New thread's structure on success, NULL on failure.
277
 *
277
 *
278
 */
278
 */
279
thread_t *thread_create(void (* func)(void *), void *arg, task_t *task,
279
thread_t *thread_create(void (* func)(void *), void *arg, task_t *task,
280
    int flags, char *name, bool uncounted)
280
    int flags, char *name, bool uncounted)
281
{
281
{
282
    thread_t *t;
282
    thread_t *t;
283
    ipl_t ipl;
283
    ipl_t ipl;
284
   
284
   
285
    t = (thread_t *) slab_alloc(thread_slab, 0);
285
    t = (thread_t *) slab_alloc(thread_slab, 0);
286
    if (!t)
286
    if (!t)
287
        return NULL;
287
        return NULL;
288
   
288
   
289
    /* Not needed, but good for debugging */
289
    /* Not needed, but good for debugging */
290
    memsetb((uintptr_t) t->kstack, THREAD_STACK_SIZE * 1 << STACK_FRAMES,
290
    memsetb((uintptr_t) t->kstack, THREAD_STACK_SIZE * 1 << STACK_FRAMES,
291
        0);
291
        0);
292
   
292
   
293
    ipl = interrupts_disable();
293
    ipl = interrupts_disable();
294
    spinlock_lock(&tidlock);
294
    spinlock_lock(&tidlock);
295
    t->tid = ++last_tid;
295
    t->tid = ++last_tid;
296
    spinlock_unlock(&tidlock);
296
    spinlock_unlock(&tidlock);
297
    interrupts_restore(ipl);
297
    interrupts_restore(ipl);
298
   
298
   
299
    context_save(&t->saved_context);
299
    context_save(&t->saved_context);
300
    context_set(&t->saved_context, FADDR(cushion), (uintptr_t) t->kstack,
300
    context_set(&t->saved_context, FADDR(cushion), (uintptr_t) t->kstack,
301
        THREAD_STACK_SIZE);
301
        THREAD_STACK_SIZE);
302
   
302
   
303
    the_initialize((the_t *) t->kstack);
303
    the_initialize((the_t *) t->kstack);
304
   
304
   
305
    ipl = interrupts_disable();
305
    ipl = interrupts_disable();
306
    t->saved_context.ipl = interrupts_read();
306
    t->saved_context.ipl = interrupts_read();
307
    interrupts_restore(ipl);
307
    interrupts_restore(ipl);
308
   
308
   
309
    memcpy(t->name, name, THREAD_NAME_BUFLEN);
309
    memcpy(t->name, name, THREAD_NAME_BUFLEN);
310
   
310
   
311
    t->thread_code = func;
311
    t->thread_code = func;
312
    t->thread_arg = arg;
312
    t->thread_arg = arg;
313
    t->ticks = -1;
313
    t->ticks = -1;
314
    t->cycles = 0;
314
    t->cycles = 0;
315
    t->uncounted = uncounted;
315
    t->uncounted = uncounted;
316
    t->priority = -1;       /* start in rq[0] */
316
    t->priority = -1;       /* start in rq[0] */
317
    t->cpu = NULL;
317
    t->cpu = NULL;
318
    t->flags = flags;
318
    t->flags = flags;
319
    t->state = Entering;
319
    t->state = Entering;
320
    t->call_me = NULL;
320
    t->call_me = NULL;
321
    t->call_me_with = NULL;
321
    t->call_me_with = NULL;
322
   
322
   
323
    timeout_initialize(&t->sleep_timeout);
323
    timeout_initialize(&t->sleep_timeout);
324
    t->sleep_interruptible = false;
324
    t->sleep_interruptible = false;
325
    t->sleep_queue = NULL;
325
    t->sleep_queue = NULL;
326
    t->timeout_pending = 0;
326
    t->timeout_pending = 0;
327
 
327
 
328
    t->in_copy_from_uspace = false;
328
    t->in_copy_from_uspace = false;
329
    t->in_copy_to_uspace = false;
329
    t->in_copy_to_uspace = false;
330
 
330
 
331
    t->interrupted = false;
331
    t->interrupted = false;
332
    t->detached = false;
332
    t->detached = false;
333
    waitq_initialize(&t->join_wq);
333
    waitq_initialize(&t->join_wq);
334
   
334
   
335
    t->rwlock_holder_type = RWLOCK_NONE;
335
    t->rwlock_holder_type = RWLOCK_NONE;
336
       
336
       
337
    t->task = task;
337
    t->task = task;
338
   
338
   
339
    t->fpu_context_exists = 0;
339
    t->fpu_context_exists = 0;
340
    t->fpu_context_engaged = 0;
340
    t->fpu_context_engaged = 0;
341
 
341
 
342
    avltree_node_initialize(&t->threads_tree_node);
342
    avltree_node_initialize(&t->threads_tree_node);
343
    t->threads_tree_node.key = (uintptr_t) t;
343
    t->threads_tree_node.key = (uintptr_t) t;
344
   
344
   
345
    waitq_initialize(&t->go_wq);
345
    waitq_initialize(&t->go_wq);
346
 
346
 
347
    /* might depend on previous initialization */
347
    /* might depend on previous initialization */
348
    thread_create_arch(t); 
348
    thread_create_arch(t); 
349
 
349
 
350
    if (!(flags & THREAD_FLAG_NOATTACH))
350
    if (!(flags & THREAD_FLAG_NOATTACH))
351
        thread_attach(t, task);
351
        thread_attach(t, task);
352
 
352
 
353
    return t;
353
    return t;
354
}
354
}
355
 
355
 
356
/** Destroy thread memory structure
356
/** Destroy thread memory structure
357
 *
357
 *
358
 * Detach thread from all queues, cpus etc. and destroy it.
358
 * Detach thread from all queues, cpus etc. and destroy it.
359
 *
359
 *
360
 * Assume thread->lock is held!!
360
 * Assume thread->lock is held!!
361
 */
361
 */
362
void thread_destroy(thread_t *t)
362
void thread_destroy(thread_t *t)
363
{
363
{
364
    ASSERT(t->state == Exiting || t->state == Lingering);
364
    ASSERT(t->state == Exiting || t->state == Lingering);
365
    ASSERT(t->task);
365
    ASSERT(t->task);
366
    ASSERT(t->cpu);
366
    ASSERT(t->cpu);
367
 
367
 
368
    spinlock_lock(&t->cpu->lock);
368
    spinlock_lock(&t->cpu->lock);
369
    if (t->cpu->fpu_owner == t)
369
    if (t->cpu->fpu_owner == t)
370
        t->cpu->fpu_owner = NULL;
370
        t->cpu->fpu_owner = NULL;
371
    spinlock_unlock(&t->cpu->lock);
371
    spinlock_unlock(&t->cpu->lock);
372
 
372
 
373
    spinlock_unlock(&t->lock);
373
    spinlock_unlock(&t->lock);
374
 
374
 
375
    spinlock_lock(&threads_lock);
375
    spinlock_lock(&threads_lock);
376
    avltree_delete(&threads_tree, &t->threads_tree_node);
376
    avltree_delete(&threads_tree, &t->threads_tree_node);
377
    spinlock_unlock(&threads_lock);
377
    spinlock_unlock(&threads_lock);
378
 
378
 
379
    /*
379
    /*
380
     * Detach from the containing task.
380
     * Detach from the containing task.
381
     */
381
     */
382
    spinlock_lock(&t->task->lock);
382
    spinlock_lock(&t->task->lock);
383
    list_remove(&t->th_link);
383
    list_remove(&t->th_link);
384
    spinlock_unlock(&t->task->lock);   
384
    spinlock_unlock(&t->task->lock);   
385
 
385
 
386
    /*
386
    /*
387
     * t is guaranteed to be the very last thread of its task.
387
     * t is guaranteed to be the very last thread of its task.
388
     * It is safe to destroy the task.
388
     * It is safe to destroy the task.
389
     */
389
     */
390
    if (atomic_predec(&t->task->refcount) == 0)
390
    if (atomic_predec(&t->task->refcount) == 0)
391
        task_destroy(t->task);
391
        task_destroy(t->task);
392
   
392
   
393
    slab_free(thread_slab, t);
393
    slab_free(thread_slab, t);
394
}
394
}
395
 
395
 
396
/** Make the thread visible to the system.
396
/** Make the thread visible to the system.
397
 *
397
 *
398
 * Attach the thread structure to the current task and make it visible in the
398
 * Attach the thread structure to the current task and make it visible in the
399
 * threads_tree.
399
 * threads_tree.
400
 *
400
 *
401
 * @param t Thread to be attached to the task.
401
 * @param t Thread to be attached to the task.
402
 * @param task  Task to which the thread is to be attached.
402
 * @param task  Task to which the thread is to be attached.
403
 */
403
 */
404
void thread_attach(thread_t *t, task_t *task)
404
void thread_attach(thread_t *t, task_t *task)
405
{
405
{
406
    ipl_t ipl;
406
    ipl_t ipl;
407
 
407
 
408
    /*
408
    /*
409
     * Attach to the current task.
409
     * Attach to the current task.
410
     */
410
     */
411
    ipl = interrupts_disable();
411
    ipl = interrupts_disable();
412
    spinlock_lock(&task->lock);
412
    spinlock_lock(&task->lock);
413
    atomic_inc(&task->refcount);
413
    atomic_inc(&task->refcount);
414
    atomic_inc(&task->lifecount);
414
    atomic_inc(&task->lifecount);
-
 
415
    ++task->not_stoppable_count;
415
    list_append(&t->th_link, &task->th_head);
416
    list_append(&t->th_link, &task->th_head);
416
    spinlock_unlock(&task->lock);
417
    spinlock_unlock(&task->lock);
417
 
418
 
418
    /*
419
    /*
419
     * Register this thread in the system-wide list.
420
     * Register this thread in the system-wide list.
420
     */
421
     */
421
    spinlock_lock(&threads_lock);
422
    spinlock_lock(&threads_lock);
422
    avltree_insert(&threads_tree, &t->threads_tree_node);
423
    avltree_insert(&threads_tree, &t->threads_tree_node);
423
    spinlock_unlock(&threads_lock);
424
    spinlock_unlock(&threads_lock);
424
   
425
   
425
    interrupts_restore(ipl);
426
    interrupts_restore(ipl);
426
}
427
}
427
 
428
 
428
/** Terminate thread.
429
/** Terminate thread.
429
 *
430
 *
430
 * End current thread execution and switch it to the exiting state. All pending
431
 * End current thread execution and switch it to the exiting state. All pending
431
 * timeouts are executed.
432
 * timeouts are executed.
432
 */
433
 */
433
void thread_exit(void)
434
void thread_exit(void)
434
{
435
{
435
    ipl_t ipl;
436
    ipl_t ipl;
436
 
437
 
437
    if (atomic_predec(&TASK->lifecount) == 0) {
438
    if (atomic_predec(&TASK->lifecount) == 0) {
438
        /*
439
        /*
439
         * We are the last thread in the task that still has not exited.
440
         * We are the last thread in the task that still has not exited.
440
         * With the exception of the moment the task was created, new
441
         * With the exception of the moment the task was created, new
441
         * threads can only be created by threads of the same task.
442
         * threads can only be created by threads of the same task.
442
         * We are safe to perform cleanup.
443
         * We are safe to perform cleanup.
443
         */
444
         */
444
        if (THREAD->flags & THREAD_FLAG_USPACE) {
445
        if (THREAD->flags & THREAD_FLAG_USPACE) {
445
            ipc_cleanup();
446
            ipc_cleanup();
446
                futex_cleanup();
447
                futex_cleanup();
447
            klog_printf("Cleanup of task %llu completed.",
448
            klog_printf("Cleanup of task %llu completed.",
448
                TASK->taskid);
449
                TASK->taskid);
449
        }
450
        }
450
    }
451
    }
451
 
452
 
452
restart:
453
restart:
453
    ipl = interrupts_disable();
454
    ipl = interrupts_disable();
454
    spinlock_lock(&THREAD->lock);
455
    spinlock_lock(&THREAD->lock);
455
    if (THREAD->timeout_pending) {
456
    if (THREAD->timeout_pending) {
456
        /* busy waiting for timeouts in progress */
457
        /* busy waiting for timeouts in progress */
457
        spinlock_unlock(&THREAD->lock);
458
        spinlock_unlock(&THREAD->lock);
458
        interrupts_restore(ipl);
459
        interrupts_restore(ipl);
459
        goto restart;
460
        goto restart;
460
    }
461
    }
461
   
462
   
462
    THREAD->state = Exiting;
463
    THREAD->state = Exiting;
463
    spinlock_unlock(&THREAD->lock);
464
    spinlock_unlock(&THREAD->lock);
464
    scheduler();
465
    scheduler();
465
 
466
 
466
    /* Not reached */
467
    /* Not reached */
467
    while (1)
468
    while (1)
468
        ;
469
        ;
469
}
470
}
470
 
471
 
471
 
472
 
472
/** Thread sleep
473
/** Thread sleep
473
 *
474
 *
474
 * Suspend execution of the current thread.
475
 * Suspend execution of the current thread.
475
 *
476
 *
476
 * @param sec Number of seconds to sleep.
477
 * @param sec Number of seconds to sleep.
477
 *
478
 *
478
 */
479
 */
479
void thread_sleep(uint32_t sec)
480
void thread_sleep(uint32_t sec)
480
{
481
{
481
    thread_usleep(sec * 1000000);
482
    thread_usleep(sec * 1000000);
482
}
483
}
483
 
484
 
484
/** Wait for another thread to exit.
485
/** Wait for another thread to exit.
485
 *
486
 *
486
 * @param t Thread to join on exit.
487
 * @param t Thread to join on exit.
487
 * @param usec Timeout in microseconds.
488
 * @param usec Timeout in microseconds.
488
 * @param flags Mode of operation.
489
 * @param flags Mode of operation.
489
 *
490
 *
490
 * @return An error code from errno.h or an error code from synch.h.
491
 * @return An error code from errno.h or an error code from synch.h.
491
 */
492
 */
492
int thread_join_timeout(thread_t *t, uint32_t usec, int flags)
493
int thread_join_timeout(thread_t *t, uint32_t usec, int flags)
493
{
494
{
494
    ipl_t ipl;
495
    ipl_t ipl;
495
    int rc;
496
    int rc;
496
 
497
 
497
    if (t == THREAD)
498
    if (t == THREAD)
498
        return EINVAL;
499
        return EINVAL;
499
 
500
 
500
    /*
501
    /*
501
     * Since thread join can only be called once on an undetached thread,
502
     * Since thread join can only be called once on an undetached thread,
502
     * the thread pointer is guaranteed to be still valid.
503
     * the thread pointer is guaranteed to be still valid.
503
     */
504
     */
504
   
505
   
505
    ipl = interrupts_disable();
506
    ipl = interrupts_disable();
506
    spinlock_lock(&t->lock);
507
    spinlock_lock(&t->lock);
507
    ASSERT(!t->detached);
508
    ASSERT(!t->detached);
508
    spinlock_unlock(&t->lock);
509
    spinlock_unlock(&t->lock);
509
    interrupts_restore(ipl);
510
    interrupts_restore(ipl);
510
   
511
   
511
    rc = waitq_sleep_timeout(&t->join_wq, usec, flags);
512
    rc = waitq_sleep_timeout(&t->join_wq, usec, flags);
512
   
513
   
513
    return rc; 
514
    return rc; 
514
}
515
}
515
 
516
 
516
/** Detach thread.
517
/** Detach thread.
517
 *
518
 *
518
 * Mark the thread as detached, if the thread is already in the Lingering
519
 * Mark the thread as detached, if the thread is already in the Lingering
519
 * state, deallocate its resources.
520
 * state, deallocate its resources.
520
 *
521
 *
521
 * @param t Thread to be detached.
522
 * @param t Thread to be detached.
522
 */
523
 */
523
void thread_detach(thread_t *t)
524
void thread_detach(thread_t *t)
524
{
525
{
525
    ipl_t ipl;
526
    ipl_t ipl;
526
 
527
 
527
    /*
528
    /*
528
     * Since the thread is expected not to be already detached,
529
     * Since the thread is expected not to be already detached,
529
     * pointer to it must be still valid.
530
     * pointer to it must be still valid.
530
     */
531
     */
531
    ipl = interrupts_disable();
532
    ipl = interrupts_disable();
532
    spinlock_lock(&t->lock);
533
    spinlock_lock(&t->lock);
533
    ASSERT(!t->detached);
534
    ASSERT(!t->detached);
534
    if (t->state == Lingering) {
535
    if (t->state == Lingering) {
535
        thread_destroy(t);  /* unlocks &t->lock */
536
        thread_destroy(t);  /* unlocks &t->lock */
536
        interrupts_restore(ipl);
537
        interrupts_restore(ipl);
537
        return;
538
        return;
538
    } else {
539
    } else {
539
        t->detached = true;
540
        t->detached = true;
540
    }
541
    }
541
    spinlock_unlock(&t->lock);
542
    spinlock_unlock(&t->lock);
542
    interrupts_restore(ipl);
543
    interrupts_restore(ipl);
543
}
544
}
544
 
545
 
545
/** Thread usleep
546
/** Thread usleep
546
 *
547
 *
547
 * Suspend execution of the current thread.
548
 * Suspend execution of the current thread.
548
 *
549
 *
549
 * @param usec Number of microseconds to sleep.
550
 * @param usec Number of microseconds to sleep.
550
 *
551
 *
551
 */
552
 */
552
void thread_usleep(uint32_t usec)
553
void thread_usleep(uint32_t usec)
553
{
554
{
554
    waitq_t wq;
555
    waitq_t wq;
555
                 
556
                 
556
    waitq_initialize(&wq);
557
    waitq_initialize(&wq);
557
 
558
 
558
    (void) waitq_sleep_timeout(&wq, usec, SYNCH_FLAGS_NON_BLOCKING);
559
    (void) waitq_sleep_timeout(&wq, usec, SYNCH_FLAGS_NON_BLOCKING);
559
}
560
}
560
 
561
 
561
/** Register thread out-of-context invocation
562
/** Register thread out-of-context invocation
562
 *
563
 *
563
 * Register a function and its argument to be executed
564
 * Register a function and its argument to be executed
564
 * on next context switch to the current thread.
565
 * on next context switch to the current thread.
565
 *
566
 *
566
 * @param call_me      Out-of-context function.
567
 * @param call_me      Out-of-context function.
567
 * @param call_me_with Out-of-context function argument.
568
 * @param call_me_with Out-of-context function argument.
568
 *
569
 *
569
 */
570
 */
570
void thread_register_call_me(void (* call_me)(void *), void *call_me_with)
571
void thread_register_call_me(void (* call_me)(void *), void *call_me_with)
571
{
572
{
572
    ipl_t ipl;
573
    ipl_t ipl;
573
   
574
   
574
    ipl = interrupts_disable();
575
    ipl = interrupts_disable();
575
    spinlock_lock(&THREAD->lock);
576
    spinlock_lock(&THREAD->lock);
576
    THREAD->call_me = call_me;
577
    THREAD->call_me = call_me;
577
    THREAD->call_me_with = call_me_with;
578
    THREAD->call_me_with = call_me_with;
578
    spinlock_unlock(&THREAD->lock);
579
    spinlock_unlock(&THREAD->lock);
579
    interrupts_restore(ipl);
580
    interrupts_restore(ipl);
580
}
581
}
581
 
582
 
582
static bool thread_walker(avltree_node_t *node, void *arg)
583
static bool thread_walker(avltree_node_t *node, void *arg)
583
{
584
{
584
    thread_t *t;
585
    thread_t *t;
585
       
586
       
586
    t = avltree_get_instance(node, thread_t, threads_tree_node);
587
    t = avltree_get_instance(node, thread_t, threads_tree_node);
587
 
588
 
588
    uint64_t cycles;
589
    uint64_t cycles;
589
    char suffix;
590
    char suffix;
590
    order(t->cycles, &cycles, &suffix);
591
    order(t->cycles, &cycles, &suffix);
591
   
592
   
592
    if (sizeof(void *) == 4)
593
    if (sizeof(void *) == 4)
593
        printf("%-6llu %-10s %#10zx %-8s %#10zx %-3ld %#10zx %#10zx %9llu%c ",
594
        printf("%-6llu %-10s %#10zx %-8s %#10zx %-3ld %#10zx %#10zx %9llu%c ",
594
            t->tid, t->name, t, thread_states[t->state], t->task,
595
            t->tid, t->name, t, thread_states[t->state], t->task,
595
            t->task->context, t->thread_code, t->kstack, cycles, suffix);
596
            t->task->context, t->thread_code, t->kstack, cycles, suffix);
596
    else
597
    else
597
        printf("%-6llu %-10s %#18zx %-8s %#18zx %-3ld %#18zx %#18zx %9llu%c ",
598
        printf("%-6llu %-10s %#18zx %-8s %#18zx %-3ld %#18zx %#18zx %9llu%c ",
598
            t->tid, t->name, t, thread_states[t->state], t->task,
599
            t->tid, t->name, t, thread_states[t->state], t->task,
599
            t->task->context, t->thread_code, t->kstack, cycles, suffix);
600
            t->task->context, t->thread_code, t->kstack, cycles, suffix);
600
           
601
           
601
    if (t->cpu)
602
    if (t->cpu)
602
        printf("%-4zd", t->cpu->id);
603
        printf("%-4zd", t->cpu->id);
603
    else
604
    else
604
        printf("none");
605
        printf("none");
605
           
606
           
606
    if (t->state == Sleeping) {
607
    if (t->state == Sleeping) {
607
        if (sizeof(uintptr_t) == 4)
608
        if (sizeof(uintptr_t) == 4)
608
            printf(" %#10zx", t->sleep_queue);
609
            printf(" %#10zx", t->sleep_queue);
609
        else
610
        else
610
            printf(" %#18zx", t->sleep_queue);
611
            printf(" %#18zx", t->sleep_queue);
611
    }
612
    }
612
           
613
           
613
    printf("\n");
614
    printf("\n");
614
 
615
 
615
    return true;
616
    return true;
616
}
617
}
617
 
618
 
618
/** Print list of threads debug info */
619
/** Print list of threads debug info */
619
void thread_print_list(void)
620
void thread_print_list(void)
620
{
621
{
621
    ipl_t ipl;
622
    ipl_t ipl;
622
   
623
   
623
    /* Messing with thread structures, avoid deadlock */
624
    /* Messing with thread structures, avoid deadlock */
624
    ipl = interrupts_disable();
625
    ipl = interrupts_disable();
625
    spinlock_lock(&threads_lock);
626
    spinlock_lock(&threads_lock);
626
   
627
   
627
    if (sizeof(uintptr_t) == 4) {
628
    if (sizeof(uintptr_t) == 4) {
628
        printf("tid    name       address    state    task       "
629
        printf("tid    name       address    state    task       "
629
            "ctx code       stack      cycles     cpu  "
630
            "ctx code       stack      cycles     cpu  "
630
            "waitqueue\n");
631
            "waitqueue\n");
631
        printf("------ ---------- ---------- -------- ---------- "
632
        printf("------ ---------- ---------- -------- ---------- "
632
            "--- ---------- ---------- ---------- ---- "
633
            "--- ---------- ---------- ---------- ---- "
633
            "----------\n");
634
            "----------\n");
634
    } else {
635
    } else {
635
        printf("tid    name       address            state    task               "
636
        printf("tid    name       address            state    task               "
636
            "ctx code               stack              cycles     cpu  "
637
            "ctx code               stack              cycles     cpu  "
637
            "waitqueue\n");
638
            "waitqueue\n");
638
        printf("------ ---------- ------------------ -------- ------------------ "
639
        printf("------ ---------- ------------------ -------- ------------------ "
639
            "--- ------------------ ------------------ ---------- ---- "
640
            "--- ------------------ ------------------ ---------- ---- "
640
            "------------------\n");
641
            "------------------\n");
641
    }
642
    }
642
 
643
 
643
    avltree_walk(&threads_tree, thread_walker, NULL);
644
    avltree_walk(&threads_tree, thread_walker, NULL);
644
 
645
 
645
    spinlock_unlock(&threads_lock);
646
    spinlock_unlock(&threads_lock);
646
    interrupts_restore(ipl);
647
    interrupts_restore(ipl);
647
}
648
}
648
 
649
 
649
/** Check whether thread exists.
650
/** Check whether thread exists.
650
 *
651
 *
651
 * Note that threads_lock must be already held and
652
 * Note that threads_lock must be already held and
652
 * interrupts must be already disabled.
653
 * interrupts must be already disabled.
653
 *
654
 *
654
 * @param t Pointer to thread.
655
 * @param t Pointer to thread.
655
 *
656
 *
656
 * @return True if thread t is known to the system, false otherwise.
657
 * @return True if thread t is known to the system, false otherwise.
657
 */
658
 */
658
bool thread_exists(thread_t *t)
659
bool thread_exists(thread_t *t)
659
{
660
{
660
    avltree_node_t *node;
661
    avltree_node_t *node;
661
 
662
 
662
    node = avltree_search(&threads_tree, (avltree_key_t) ((uintptr_t) t));
663
    node = avltree_search(&threads_tree, (avltree_key_t) ((uintptr_t) t));
663
   
664
   
664
    return node != NULL;
665
    return node != NULL;
665
}
666
}
666
 
667
 
667
 
668
 
668
/** Update accounting of current thread.
669
/** Update accounting of current thread.
669
 *
670
 *
670
 * Note that thread_lock on THREAD must be already held and
671
 * Note that thread_lock on THREAD must be already held and
671
 * interrupts must be already disabled.
672
 * interrupts must be already disabled.
672
 *
673
 *
673
 */
674
 */
674
void thread_update_accounting(void)
675
void thread_update_accounting(void)
675
{
676
{
676
    uint64_t time = get_cycle();
677
    uint64_t time = get_cycle();
677
    THREAD->cycles += time - THREAD->last_cycle;
678
    THREAD->cycles += time - THREAD->last_cycle;
678
    THREAD->last_cycle = time;
679
    THREAD->last_cycle = time;
679
}
680
}
680
 
681
 
681
/** Process syscall to create new thread.
682
/** Process syscall to create new thread.
682
 *
683
 *
683
 */
684
 */
684
unative_t sys_thread_create(uspace_arg_t *uspace_uarg, char *uspace_name,
685
unative_t sys_thread_create(uspace_arg_t *uspace_uarg, char *uspace_name,
685
    thread_id_t *uspace_thread_id)
686
    thread_id_t *uspace_thread_id)
686
{
687
{
687
    thread_t *t;
688
    thread_t *t;
688
    char namebuf[THREAD_NAME_BUFLEN];
689
    char namebuf[THREAD_NAME_BUFLEN];
689
    uspace_arg_t *kernel_uarg;
690
    uspace_arg_t *kernel_uarg;
690
    int rc;
691
    int rc;
691
 
692
 
692
    rc = copy_from_uspace(namebuf, uspace_name, THREAD_NAME_BUFLEN);
693
    rc = copy_from_uspace(namebuf, uspace_name, THREAD_NAME_BUFLEN);
693
    if (rc != 0)
694
    if (rc != 0)
694
        return (unative_t) rc;
695
        return (unative_t) rc;
695
 
696
 
696
    /*
697
    /*
697
     * In case of failure, kernel_uarg will be deallocated in this function.
698
     * In case of failure, kernel_uarg will be deallocated in this function.
698
     * In case of success, kernel_uarg will be freed in uinit().
699
     * In case of success, kernel_uarg will be freed in uinit().
699
     */
700
     */
700
    kernel_uarg = (uspace_arg_t *) malloc(sizeof(uspace_arg_t), 0);
701
    kernel_uarg = (uspace_arg_t *) malloc(sizeof(uspace_arg_t), 0);
701
   
702
   
702
    rc = copy_from_uspace(kernel_uarg, uspace_uarg, sizeof(uspace_arg_t));
703
    rc = copy_from_uspace(kernel_uarg, uspace_uarg, sizeof(uspace_arg_t));
703
    if (rc != 0) {
704
    if (rc != 0) {
704
        free(kernel_uarg);
705
        free(kernel_uarg);
705
        return (unative_t) rc;
706
        return (unative_t) rc;
706
    }
707
    }
707
 
708
 
708
    t = thread_create(uinit, kernel_uarg, TASK,
709
    t = thread_create(uinit, kernel_uarg, TASK,
709
        THREAD_FLAG_USPACE | THREAD_FLAG_NOATTACH, namebuf, false);
710
        THREAD_FLAG_USPACE | THREAD_FLAG_NOATTACH, namebuf, false);
710
    if (t) {
711
    if (t) {
711
        if (uspace_thread_id != NULL) {
712
        if (uspace_thread_id != NULL) {
712
            int rc;
713
            int rc;
713
 
714
 
714
            rc = copy_to_uspace(uspace_thread_id, &t->tid,
715
            rc = copy_to_uspace(uspace_thread_id, &t->tid,
715
                sizeof(t->tid));
716
                sizeof(t->tid));
716
            if (rc != 0) {
717
            if (rc != 0) {
717
                /*
718
                /*
718
                 * We have encountered a failure, but the thread
719
                 * We have encountered a failure, but the thread
719
                 * has already been created. We need to undo its
720
                 * has already been created. We need to undo its
720
                 * creation now.
721
                 * creation now.
721
                 */
722
                 */
722
 
723
 
723
                /*
724
                /*
724
                 * The new thread structure is initialized, but
725
                 * The new thread structure is initialized, but
725
                 * is still not visible to the system.
726
                 * is still not visible to the system.
726
                 * We can safely deallocate it.
727
                 * We can safely deallocate it.
727
                 */
728
                 */
728
                slab_free(thread_slab, t);
729
                slab_free(thread_slab, t);
729
                free(kernel_uarg);
730
                free(kernel_uarg);
730
 
731
 
731
                return (unative_t) rc;
732
                return (unative_t) rc;
732
             }
733
             }
733
        }
734
        }
734
        thread_attach(t, TASK);
735
        thread_attach(t, TASK);
735
        thread_ready(t);
736
        thread_ready(t);
736
 
737
 
737
        return 0;
738
        return 0;
738
    } else
739
    } else
739
        free(kernel_uarg);
740
        free(kernel_uarg);
740
 
741
 
741
    return (unative_t) ENOMEM;
742
    return (unative_t) ENOMEM;
742
}
743
}
743
 
744
 
744
/** Process syscall to terminate thread.
745
/** Process syscall to terminate thread.
745
 *
746
 *
746
 */
747
 */
747
unative_t sys_thread_exit(int uspace_status)
748
unative_t sys_thread_exit(int uspace_status)
748
{
749
{
749
    thread_exit();
750
    thread_exit();
750
    /* Unreachable */
751
    /* Unreachable */
751
    return 0;
752
    return 0;
752
}
753
}
753
 
754
 
754
/** Syscall for getting TID.
755
/** Syscall for getting TID.
755
 *
756
 *
756
 * @param uspace_thread_id Userspace address of 8-byte buffer where to store
757
 * @param uspace_thread_id Userspace address of 8-byte buffer where to store
757
 * current thread ID.
758
 * current thread ID.
758
 *
759
 *
759
 * @return 0 on success or an error code from @ref errno.h.
760
 * @return 0 on success or an error code from @ref errno.h.
760
 */
761
 */
761
unative_t sys_thread_get_id(thread_id_t *uspace_thread_id)
762
unative_t sys_thread_get_id(thread_id_t *uspace_thread_id)
762
{
763
{
763
    /*
764
    /*
764
     * No need to acquire lock on THREAD because tid
765
     * No need to acquire lock on THREAD because tid
765
     * remains constant for the lifespan of the thread.
766
     * remains constant for the lifespan of the thread.
766
     */
767
     */
767
    return (unative_t) copy_to_uspace(uspace_thread_id, &THREAD->tid,
768
    return (unative_t) copy_to_uspace(uspace_thread_id, &THREAD->tid,
768
        sizeof(THREAD->tid));
769
        sizeof(THREAD->tid));
769
}
770
}
770
 
771
 
771
/** @}
772
/** @}
772
 */
773
 */
773
 
774