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source: vbox/trunk/include/iprt/thread.h@ 90395

最後變更 在這個檔案從90395是 90395,由 vboxsync 提交於 4 年 前

IPRT/RTThreadCreate: Added RTTHREADFLAGS_NO_SIGNALS (posix only). [fix] bugref:6695

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1/** @file
2 * IPRT - Threads.
3 */
4
5/*
6 * Copyright (C) 2006-2020 Oracle Corporation
7 *
8 * This file is part of VirtualBox Open Source Edition (OSE), as
9 * available from http://www.alldomusa.eu.org. This file is free software;
10 * you can redistribute it and/or modify it under the terms of the GNU
11 * General Public License (GPL) as published by the Free Software
12 * Foundation, in version 2 as it comes in the "COPYING" file of the
13 * VirtualBox OSE distribution. VirtualBox OSE is distributed in the
14 * hope that it will be useful, but WITHOUT ANY WARRANTY of any kind.
15 *
16 * The contents of this file may alternatively be used under the terms
17 * of the Common Development and Distribution License Version 1.0
18 * (CDDL) only, as it comes in the "COPYING.CDDL" file of the
19 * VirtualBox OSE distribution, in which case the provisions of the
20 * CDDL are applicable instead of those of the GPL.
21 *
22 * You may elect to license modified versions of this file under the
23 * terms and conditions of either the GPL or the CDDL or both.
24 */
25
26#ifndef IPRT_INCLUDED_thread_h
27#define IPRT_INCLUDED_thread_h
28#ifndef RT_WITHOUT_PRAGMA_ONCE
29# pragma once
30#endif
31
32#include <iprt/cdefs.h>
33#include <iprt/types.h>
34#include <iprt/stdarg.h>
35
36
37RT_C_DECLS_BEGIN
38
39/** @defgroup grp_rt_thread RTThread - Thread Management
40 * @ingroup grp_rt
41 * @{
42 */
43
44/**
45 * The thread state.
46 */
47typedef enum RTTHREADSTATE
48{
49 /** The usual invalid 0 value. */
50 RTTHREADSTATE_INVALID = 0,
51 /** The thread is being initialized. */
52 RTTHREADSTATE_INITIALIZING,
53 /** The thread has terminated */
54 RTTHREADSTATE_TERMINATED,
55 /** Probably running. */
56 RTTHREADSTATE_RUNNING,
57
58 /** Waiting on a critical section. */
59 RTTHREADSTATE_CRITSECT,
60 /** Waiting on a event semaphore. */
61 RTTHREADSTATE_EVENT,
62 /** Waiting on a event multiple wakeup semaphore. */
63 RTTHREADSTATE_EVENT_MULTI,
64 /** Waiting on a fast mutex. */
65 RTTHREADSTATE_FAST_MUTEX,
66 /** Waiting on a mutex. */
67 RTTHREADSTATE_MUTEX,
68 /** Waiting on a read write semaphore, read (shared) access. */
69 RTTHREADSTATE_RW_READ,
70 /** Waiting on a read write semaphore, write (exclusive) access. */
71 RTTHREADSTATE_RW_WRITE,
72 /** The thread is sleeping. */
73 RTTHREADSTATE_SLEEP,
74 /** Waiting on a spin mutex. */
75 RTTHREADSTATE_SPIN_MUTEX,
76 /** End of the thread states. */
77 RTTHREADSTATE_END,
78
79 /** The usual 32-bit size hack. */
80 RTTHREADSTATE_32BIT_HACK = 0x7fffffff
81} RTTHREADSTATE;
82
83/** Checks if a thread state indicates that the thread is sleeping. */
84#define RTTHREAD_IS_SLEEPING(enmState) ((enmState) >= RTTHREADSTATE_CRITSECT)
85
86/**
87 * Thread types.
88 * Besides identifying the purpose of the thread, the thread type is
89 * used to select the scheduling properties.
90 *
91 * The types in are placed in a rough order of ascending priority.
92 */
93typedef enum RTTHREADTYPE
94{
95 /** Invalid type. */
96 RTTHREADTYPE_INVALID = 0,
97 /** Infrequent poller thread.
98 * This type of thread will sleep for the most of the time, and do
99 * infrequent polls on resources at 0.5 sec or higher intervals.
100 */
101 RTTHREADTYPE_INFREQUENT_POLLER,
102 /** Main heavy worker thread.
103 * Thread of this type is driving asynchronous tasks in the Main
104 * API which takes a long time and might involve a bit of CPU. Like
105 * for instance creating a fixed sized VDI.
106 */
107 RTTHREADTYPE_MAIN_HEAVY_WORKER,
108 /** The emulation thread type.
109 * While being a thread with very high workload it still is vital
110 * that it gets scheduled frequently. When possible all other thread
111 * types except DEFAULT and GUI should interrupt this one ASAP when
112 * they become ready.
113 */
114 RTTHREADTYPE_EMULATION,
115 /** The default thread type.
116 * Since it doesn't say much about the purpose of the thread
117 * nothing special is normally done to the scheduling. This type
118 * should be avoided.
119 * The main thread is registered with default type during RTR3Init()
120 * and that's what the default process priority is derived from.
121 */
122 RTTHREADTYPE_DEFAULT,
123 /** The GUI thread type
124 * The GUI normally have a low workload but is frequently scheduled
125 * to handle events. When possible the scheduler should not leave
126 * threads of this kind waiting for too long (~50ms).
127 */
128 RTTHREADTYPE_GUI,
129 /** Main worker thread.
130 * Thread of this type is driving asynchronous tasks in the Main API.
131 * In most cases this means little work an a lot of waiting.
132 */
133 RTTHREADTYPE_MAIN_WORKER,
134 /** VRDP I/O thread.
135 * These threads are I/O threads in the RDP server will hang around
136 * waiting for data, process it and pass it on.
137 */
138 RTTHREADTYPE_VRDP_IO,
139 /** The debugger type.
140 * Threads involved in servicing the debugger. It must remain
141 * responsive even when things are running wild in.
142 */
143 RTTHREADTYPE_DEBUGGER,
144 /** Message pump thread.
145 * Thread pumping messages from one thread/process to another
146 * thread/process. The workload is very small, most of the time
147 * it's blocked waiting for messages to be produced or processed.
148 * This type of thread will be favored after I/O threads.
149 */
150 RTTHREADTYPE_MSG_PUMP,
151 /** The I/O thread type.
152 * Doing I/O means shuffling data, waiting for request to arrive and
153 * for them to complete. The thread should be favored when competing
154 * with any other threads except timer threads.
155 */
156 RTTHREADTYPE_IO,
157 /** The timer thread type.
158 * A timer thread is mostly waiting for the timer to tick
159 * and then perform a little bit of work. Accuracy is important here,
160 * so the thread should be favoured over all threads. If premention can
161 * be configured at thread level, it could be made very short.
162 */
163 RTTHREADTYPE_TIMER,
164 /** Only used for validation. */
165 RTTHREADTYPE_END
166} RTTHREADTYPE;
167
168
169#if !defined(IN_RC) || defined(DOXYGEN_RUNNING)
170
171/**
172 * Checks if the IPRT thread component has been initialized.
173 *
174 * This is used to avoid calling into RTThread before the runtime has been
175 * initialized.
176 *
177 * @returns @c true if it's initialized, @c false if not.
178 */
179RTDECL(bool) RTThreadIsInitialized(void);
180
181/**
182 * Get the thread handle of the current thread.
183 *
184 * @returns Thread handle.
185 */
186RTDECL(RTTHREAD) RTThreadSelf(void);
187
188/**
189 * Get the native thread handle of the current thread.
190 *
191 * @returns Native thread handle.
192 */
193RTDECL(RTNATIVETHREAD) RTThreadNativeSelf(void);
194
195/**
196 * Millisecond granular sleep function.
197 *
198 * @returns VINF_SUCCESS on success.
199 * @returns VERR_INTERRUPTED if a signal or other asynchronous stuff happened
200 * which interrupt the peaceful sleep.
201 * @param cMillies Number of milliseconds to sleep.
202 * 0 milliseconds means yielding the timeslice - deprecated!
203 * @remark See RTThreadNanoSleep() for sleeping for smaller periods of time.
204 */
205RTDECL(int) RTThreadSleep(RTMSINTERVAL cMillies);
206
207/**
208 * Millisecond granular sleep function, no logger calls.
209 *
210 * Same as RTThreadSleep, except it will never call into the IPRT logger. It
211 * can therefore safely be used in places where the logger is off limits, like
212 * at termination or init time. The electric fence heap is one consumer of
213 * this API.
214 *
215 * @returns VINF_SUCCESS on success.
216 * @returns VERR_INTERRUPTED if a signal or other asynchronous stuff happened
217 * which interrupt the peaceful sleep.
218 * @param cMillies Number of milliseconds to sleep.
219 * 0 milliseconds means yielding the timeslice - deprecated!
220 */
221RTDECL(int) RTThreadSleepNoLog(RTMSINTERVAL cMillies);
222
223/**
224 * Yields the CPU.
225 *
226 * @returns true if we yielded.
227 * @returns false if it's probable that we didn't yield.
228 */
229RTDECL(bool) RTThreadYield(void);
230
231
232
233/**
234 * Thread function.
235 *
236 * @returns 0 on success.
237 * @param ThreadSelf Thread handle to this thread.
238 * @param pvUser User argument.
239 */
240typedef DECLCALLBACKTYPE(int, FNRTTHREAD,(RTTHREAD ThreadSelf, void *pvUser));
241/** Pointer to a FNRTTHREAD(). */
242typedef FNRTTHREAD *PFNRTTHREAD;
243
244/**
245 * Thread creation flags.
246 */
247typedef enum RTTHREADFLAGS
248{
249 /** This flag is used to keep the thread structure around so it can
250 * be waited on after termination. @sa RTThreadWait and
251 * RTThreadWaitNoResume. Not required for RTThreadUserWait and friends!
252 */
253 RTTHREADFLAGS_WAITABLE = RT_BIT(0),
254 /** The bit number corresponding to the RTTHREADFLAGS_WAITABLE mask. */
255 RTTHREADFLAGS_WAITABLE_BIT = 0,
256
257 /** Call CoInitializeEx w/ COINIT_MULTITHREADED, COINIT_DISABLE_OLE1DDE and
258 * COINIT_SPEED_OVER_MEMORY. Ignored on non-windows platforms. */
259 RTTHREADFLAGS_COM_MTA = RT_BIT(1),
260 /** Call CoInitializeEx w/ COINIT_APARTMENTTHREADED and
261 * COINIT_SPEED_OVER_MEMORY. Ignored on non-windows platforms. */
262 RTTHREADFLAGS_COM_STA = RT_BIT(2),
263
264 /** Mask all signals that we can mask. Ignored on most non-posix platforms.
265 * @note RTThreadPoke() will not necessarily work for a thread create with
266 * this flag. */
267 RTTHREADFLAGS_NO_SIGNALS = RT_BIT(3),
268
269 /** Mask of valid flags, use for validation. */
270 RTTHREADFLAGS_MASK = UINT32_C(0xf)
271} RTTHREADFLAGS;
272
273
274/**
275 * Create a new thread.
276 *
277 * @returns iprt status code.
278 * @param pThread Where to store the thread handle to the new thread. (optional)
279 * @param pfnThread The thread function.
280 * @param pvUser User argument.
281 * @param cbStack The size of the stack for the new thread.
282 * Use 0 for the default stack size.
283 * @param enmType The thread type. Used for deciding scheduling attributes
284 * of the thread.
285 * @param fFlags Flags of the RTTHREADFLAGS type (ORed together).
286 * @param pszName Thread name.
287 *
288 * @remark When called in Ring-0, this API will create a new kernel thread and not a thread in
289 * the context of the calling process.
290 */
291RTDECL(int) RTThreadCreate(PRTTHREAD pThread, PFNRTTHREAD pfnThread, void *pvUser, size_t cbStack,
292 RTTHREADTYPE enmType, unsigned fFlags, const char *pszName);
293#ifndef RT_OS_LINUX /* XXX crashes genksyms at least on 32-bit Linux hosts */
294/** Pointer to a RTThreadCreate function. */
295typedef DECLCALLBACKPTR(int, PFNRTTHREADCREATE,(PRTTHREAD pThread, PFNRTTHREAD pfnThread, void *pvUser, size_t cbStack,
296 RTTHREADTYPE enmType, unsigned fFlags, const char *pszName));
297#endif
298
299
300/**
301 * Create a new thread.
302 *
303 * Same as RTThreadCreate except the name is given in the RTStrPrintfV form.
304 *
305 * @returns iprt status code.
306 * @param pThread See RTThreadCreate.
307 * @param pfnThread See RTThreadCreate.
308 * @param pvUser See RTThreadCreate.
309 * @param cbStack See RTThreadCreate.
310 * @param enmType See RTThreadCreate.
311 * @param fFlags See RTThreadCreate.
312 * @param pszNameFmt Thread name format.
313 * @param va Format arguments.
314 */
315RTDECL(int) RTThreadCreateV(PRTTHREAD pThread, PFNRTTHREAD pfnThread, void *pvUser, size_t cbStack,
316 RTTHREADTYPE enmType, uint32_t fFlags, const char *pszNameFmt, va_list va) RT_IPRT_FORMAT_ATTR(7, 0);
317
318/**
319 * Create a new thread.
320 *
321 * Same as RTThreadCreate except the name is given in the RTStrPrintf form.
322 *
323 * @returns iprt status code.
324 * @param pThread See RTThreadCreate.
325 * @param pfnThread See RTThreadCreate.
326 * @param pvUser See RTThreadCreate.
327 * @param cbStack See RTThreadCreate.
328 * @param enmType See RTThreadCreate.
329 * @param fFlags See RTThreadCreate.
330 * @param pszNameFmt Thread name format.
331 * @param ... Format arguments.
332 */
333RTDECL(int) RTThreadCreateF(PRTTHREAD pThread, PFNRTTHREAD pfnThread, void *pvUser, size_t cbStack,
334 RTTHREADTYPE enmType, uint32_t fFlags, const char *pszNameFmt, ...) RT_IPRT_FORMAT_ATTR(7, 8);
335
336/**
337 * Gets the native thread id of a IPRT thread.
338 *
339 * @returns The native thread id.
340 * @param Thread The IPRT thread.
341 */
342RTDECL(RTNATIVETHREAD) RTThreadGetNative(RTTHREAD Thread);
343
344/**
345 * Gets the native thread handle for a IPRT thread.
346 *
347 * @returns The thread handle. INVALID_HANDLE_VALUE on failure.
348 * @param hThread The IPRT thread handle.
349 *
350 * @note Windows only.
351 * @note Only valid after parent returns from the thread creation call.
352 */
353RTDECL(uintptr_t) RTThreadGetNativeHandle(RTTHREAD hThread);
354
355/**
356 * Gets the IPRT thread of a native thread.
357 *
358 * @returns The IPRT thread handle
359 * @returns NIL_RTTHREAD if not a thread known to IPRT.
360 * @param NativeThread The native thread handle/id.
361 */
362RTDECL(RTTHREAD) RTThreadFromNative(RTNATIVETHREAD NativeThread);
363
364/**
365 * Changes the type of the specified thread.
366 *
367 * @returns iprt status code.
368 * @param Thread The thread which type should be changed.
369 * @param enmType The new thread type.
370 * @remark In Ring-0 it only works if Thread == RTThreadSelf().
371 */
372RTDECL(int) RTThreadSetType(RTTHREAD Thread, RTTHREADTYPE enmType);
373
374/**
375 * Wait for the thread to terminate, resume on interruption.
376 *
377 * @returns iprt status code.
378 * Will not return VERR_INTERRUPTED.
379 * @param Thread The thread to wait for.
380 * @param cMillies The number of milliseconds to wait. Use RT_INDEFINITE_WAIT for
381 * an indefinite wait.
382 * @param prc Where to store the return code of the thread. Optional.
383 */
384RTDECL(int) RTThreadWait(RTTHREAD Thread, RTMSINTERVAL cMillies, int *prc);
385
386/**
387 * Wait for the thread to terminate, return on interruption.
388 *
389 * @returns iprt status code.
390 * @param Thread The thread to wait for.
391 * @param cMillies The number of milliseconds to wait. Use RT_INDEFINITE_WAIT for
392 * an indefinite wait.
393 * @param prc Where to store the return code of the thread. Optional.
394 */
395RTDECL(int) RTThreadWaitNoResume(RTTHREAD Thread, RTMSINTERVAL cMillies, int *prc);
396
397/**
398 * Gets the name of the current thread thread.
399 *
400 * @returns Pointer to readonly name string.
401 * @returns NULL on failure.
402 */
403RTDECL(const char *) RTThreadSelfName(void);
404
405/**
406 * Gets the name of a thread.
407 *
408 * @returns Pointer to readonly name string.
409 * @returns NULL on failure.
410 * @param Thread Thread handle of the thread to query the name of.
411 */
412RTDECL(const char *) RTThreadGetName(RTTHREAD Thread);
413
414/**
415 * Gets the type of the specified thread.
416 *
417 * @returns The thread type.
418 * @returns RTTHREADTYPE_INVALID if the thread handle is invalid.
419 * @param Thread The thread in question.
420 */
421RTDECL(RTTHREADTYPE) RTThreadGetType(RTTHREAD Thread);
422
423/**
424 * Sets the name of a thread.
425 *
426 * @returns iprt status code.
427 * @param Thread Thread handle of the thread to query the name of.
428 * @param pszName The thread name.
429 */
430RTDECL(int) RTThreadSetName(RTTHREAD Thread, const char *pszName);
431
432/**
433 * Checks if the specified thread is the main thread.
434 *
435 * @returns true if it is, false if it isn't.
436 *
437 * @param hThread The thread handle.
438 */
439RTDECL(bool) RTThreadIsMain(RTTHREAD hThread);
440
441/**
442 * Checks if the calling thread is known to IPRT.
443 *
444 * @returns @c true if it is, @c false if it isn't.
445 */
446RTDECL(bool) RTThreadIsSelfKnown(void);
447
448/**
449 * Checks if the calling thread is know to IPRT and is alive.
450 *
451 * @returns @c true if it is, @c false if it isn't.
452 */
453RTDECL(bool) RTThreadIsSelfAlive(void);
454
455/**
456 * Checks if the calling thread is known to IPRT.
457 *
458 * @returns @c true if it is, @c false if it isn't.
459 */
460RTDECL(bool) RTThreadIsOperational(void);
461
462/**
463 * Signal the user event.
464 *
465 * @returns iprt status code.
466 */
467RTDECL(int) RTThreadUserSignal(RTTHREAD Thread);
468
469/**
470 * Wait for the user event.
471 *
472 * @returns iprt status code.
473 * @param Thread The thread to wait for.
474 * @param cMillies The number of milliseconds to wait. Use RT_INDEFINITE_WAIT for
475 * an indefinite wait.
476 */
477RTDECL(int) RTThreadUserWait(RTTHREAD Thread, RTMSINTERVAL cMillies);
478
479/**
480 * Wait for the user event, return on interruption.
481 *
482 * @returns iprt status code.
483 * @param Thread The thread to wait for.
484 * @param cMillies The number of milliseconds to wait. Use RT_INDEFINITE_WAIT for
485 * an indefinite wait.
486 */
487RTDECL(int) RTThreadUserWaitNoResume(RTTHREAD Thread, RTMSINTERVAL cMillies);
488
489/**
490 * Reset the user event.
491 *
492 * @returns iprt status code.
493 * @param Thread The thread to reset.
494 */
495RTDECL(int) RTThreadUserReset(RTTHREAD Thread);
496
497/**
498 * Pokes the thread.
499 *
500 * This will wake up or/and signal the thread, attempting to interrupt whatever
501 * it's currently doing.
502 *
503 * The posixy version of this will send a signal to the thread, quite likely
504 * waking it up from normal sleeps, waits, and I/O. When IPRT is in
505 * non-obtrusive mode, the posixy version will definitely return
506 * VERR_NOT_IMPLEMENTED, and it may also do so if no usable signal was found.
507 *
508 * On Windows the thread will be alerted, waking it up from most sleeps and
509 * waits, but not probably very little in the I/O area (needs testing). On NT
510 * 3.50 and 3.1 VERR_NOT_IMPLEMENTED will be returned.
511 *
512 * @returns IPRT status code.
513 *
514 * @param hThread The thread to poke. This must not be the
515 * calling thread.
516 *
517 * @note This is *NOT* implemented on all platforms and may cause unresolved
518 * symbols during linking or VERR_NOT_IMPLEMENTED at runtime.
519 *
520 */
521RTDECL(int) RTThreadPoke(RTTHREAD hThread);
522
523# ifdef IN_RING0
524
525/**
526 * Check if preemption is currently enabled or not for the current thread.
527 *
528 * @note This may return true even on systems where preemption isn't
529 * possible. In that case, it means no call to RTThreadPreemptDisable
530 * has been made and interrupts are still enabled.
531 *
532 * @returns true if preemption is enabled, false if preemetion is disabled.
533 * @param hThread Must be NIL_RTTHREAD for now.
534 */
535RTDECL(bool) RTThreadPreemptIsEnabled(RTTHREAD hThread);
536
537/**
538 * Check if preemption is pending for the current thread.
539 *
540 * This function should be called regularly when executing larger portions of
541 * code with preemption disabled.
542 *
543 * @returns true if pending, false if not.
544 * @param hThread Must be NIL_RTTHREAD for now.
545 *
546 * @note If called with interrupts disabled, the NT kernel may temporarily
547 * re-enable them while checking.
548 */
549RTDECL(bool) RTThreadPreemptIsPending(RTTHREAD hThread);
550
551/**
552 * Is RTThreadPreemptIsPending reliable?
553 *
554 * @returns true if reliable, false if not.
555 */
556RTDECL(bool) RTThreadPreemptIsPendingTrusty(void);
557
558/**
559 * Is preemption possible on this system.
560 *
561 * @returns true if possible, false if not.
562 */
563RTDECL(bool) RTThreadPreemptIsPossible(void);
564
565/**
566 * Preemption state saved by RTThreadPreemptDisable and used by
567 * RTThreadPreemptRestore to restore the previous state.
568 */
569typedef struct RTTHREADPREEMPTSTATE
570{
571 /** In debug builds this will be used to check for cpu migration. */
572 RTCPUID idCpu;
573# ifdef RT_OS_WINDOWS
574 /** The old IRQL. Don't touch! */
575 unsigned char uchOldIrql;
576 /** Reserved, MBZ. */
577 uint8_t bReserved1;
578 /** Reserved, MBZ. */
579 uint8_t bReserved2;
580 /** Reserved, MBZ. */
581 uint8_t bReserved3;
582# define RTTHREADPREEMPTSTATE_INITIALIZER { NIL_RTCPUID, 255, 0, 0, 0 }
583# elif defined(RT_OS_HAIKU)
584 /** The cpu_state. Don't touch! */
585 uint32_t uOldCpuState;
586# define RTTHREADPREEMPTSTATE_INITIALIZER { NIL_RTCPUID, 0 }
587# elif defined(RT_OS_SOLARIS)
588 /** The Old PIL. Don't touch! */
589 uint32_t uOldPil;
590# define RTTHREADPREEMPTSTATE_INITIALIZER { NIL_RTCPUID, UINT32_MAX }
591# else
592 /** Reserved, MBZ. */
593 uint32_t u32Reserved;
594# define RTTHREADPREEMPTSTATE_INITIALIZER { NIL_RTCPUID, 0 }
595# endif
596} RTTHREADPREEMPTSTATE;
597/** Pointer to a preemption state. */
598typedef RTTHREADPREEMPTSTATE *PRTTHREADPREEMPTSTATE;
599
600/**
601 * Disable preemption.
602 *
603 * A call to this function must be matched by exactly one call to
604 * RTThreadPreemptRestore().
605 *
606 * @param pState Where to store the preemption state.
607 */
608RTDECL(void) RTThreadPreemptDisable(PRTTHREADPREEMPTSTATE pState);
609
610/**
611 * Restores the preemption state, undoing a previous call to
612 * RTThreadPreemptDisable.
613 *
614 * A call to this function must be matching a previous call to
615 * RTThreadPreemptDisable.
616 *
617 * @param pState The state return by RTThreadPreemptDisable.
618 */
619RTDECL(void) RTThreadPreemptRestore(PRTTHREADPREEMPTSTATE pState);
620
621/**
622 * Check if the thread is executing in interrupt context.
623 *
624 * @returns true if in interrupt context, false if not.
625 * @param hThread Must be NIL_RTTHREAD for now.
626 */
627RTDECL(bool) RTThreadIsInInterrupt(RTTHREAD hThread);
628
629
630/**
631 * Thread context swithcing events.
632 */
633typedef enum RTTHREADCTXEVENT
634{
635 /** This thread is being scheduled out on the current CPU (includes preemption,
636 * waiting, sleep and whatever else may trigger scheduling). */
637 RTTHREADCTXEVENT_OUT = 0,
638 /** This thread is being scheduled in on the current CPU and will resume
639 * execution. */
640 RTTHREADCTXEVENT_IN,
641 /** The usual 32-bit size hack. */
642 RTTHREADCTXEVENT_32BIT_HACK = 0x7fffffff
643} RTTHREADCTXEVENT;
644
645/**
646 * Thread context switching hook callback.
647 *
648 * This hook function is called when a thread is scheduled and preempted. Check
649 * @a enmEvent to see which it is. Since the function is being called from
650 * hooks inside the scheduler, it is limited what you can do from this function.
651 * Do NOT acquire locks, sleep or yield the thread for instance. IRQ safe
652 * spinlocks are fine though.
653 *
654 * @returns IPRT status code.
655 * @param enmEvent The thread-context event. Please quitely ignore unknown
656 * events, we may add more (thread exit, ++) later.
657 * @param pvUser User argument.
658 */
659typedef DECLCALLBACKTYPE(void, FNRTTHREADCTXHOOK,(RTTHREADCTXEVENT enmEvent, void *pvUser));
660/** Pointer to a context switching hook. */
661typedef FNRTTHREADCTXHOOK *PFNRTTHREADCTXHOOK;
662
663/**
664 * Initializes a thread context switching hook for the current thread.
665 *
666 * The hook is created as disabled, use RTThreadCtxHookEnable to enable it.
667 *
668 * @returns IPRT status code.
669 * @param phCtxHook Where to store the hook handle.
670 * @param fFlags Reserved for future extensions, must be zero.
671 * @param pfnCallback Pointer to a the hook function (callback) that
672 * should be called for all context switching events
673 * involving the current thread.
674 * @param pvUser User argument that will be passed to @a pfnCallback.
675 * @remarks Preemption must be enabled.
676 */
677RTDECL(int) RTThreadCtxHookCreate(PRTTHREADCTXHOOK phCtxHook, uint32_t fFlags, PFNRTTHREADCTXHOOK pfnCallback, void *pvUser);
678
679/**
680 * Destroys a thread context switching hook.
681 *
682 * Caller must make sure the hook is disabled before the final reference is
683 * released. Recommended to call this on the owning thread, otherwise the
684 * memory backing it may on some systems only be released when the thread
685 * terminates.
686 *
687 * @returns IPRT status code.
688 *
689 * @param hCtxHook The context hook handle. NIL_RTTHREADCTXHOOK is
690 * ignored and the function will return VINF_SUCCESS.
691 * @remarks Preemption must be enabled.
692 * @remarks Do not call from FNRTTHREADCTXHOOK.
693 */
694RTDECL(int) RTThreadCtxHookDestroy(RTTHREADCTXHOOK hCtxHook);
695
696/**
697 * Enables the context switching hooks for the current thread.
698 *
699 * @returns IPRT status code.
700 * @param hCtxHook The context hook handle.
701 * @remarks Should be called with preemption disabled.
702 */
703RTDECL(int) RTThreadCtxHookEnable(RTTHREADCTXHOOK hCtxHook);
704
705/**
706 * Disables the thread context switching hook for the current thread.
707 *
708 * Will not assert or fail if called twice or with a NIL handle.
709 *
710 * @returns IPRT status code.
711 * @param hCtxHook The context hook handle. NIL_RTTHREADCTXHOOK is
712 * ignored and the function wil return VINF_SUCCESS.
713 * @remarks Should be called with preemption disabled.
714 * @remarks Do not call from FNRTTHREADCTXHOOK.
715 */
716RTDECL(int) RTThreadCtxHookDisable(RTTHREADCTXHOOK hCtxHook);
717
718/**
719 * Is the thread context switching hook enabled?
720 *
721 * @returns true if registered, false if not supported or not registered.
722 * @param hCtxHook The context hook handle. NIL_RTTHREADCTXHOOK is
723 * ignored and the function will return false.
724 *
725 * @remarks Can be called from any thread, though is naturally subject to races
726 * when not called from the thread associated with the hook.
727 */
728RTDECL(bool) RTThreadCtxHookIsEnabled(RTTHREADCTXHOOK hCtxHook);
729
730# endif /* IN_RING0 */
731
732
733# ifdef IN_RING3
734
735/**
736 * Adopts a non-IPRT thread.
737 *
738 * @returns IPRT status code.
739 * @param enmType The thread type.
740 * @param fFlags The thread flags. RTTHREADFLAGS_WAITABLE is not currently allowed.
741 * @param pszName The thread name. Optional
742 * @param pThread Where to store the thread handle. Optional.
743 */
744RTDECL(int) RTThreadAdopt(RTTHREADTYPE enmType, unsigned fFlags, const char *pszName, PRTTHREAD pThread);
745
746/**
747 * Get the thread handle of the current thread, automatically adopting alien
748 * threads.
749 *
750 * @returns Thread handle.
751 */
752RTDECL(RTTHREAD) RTThreadSelfAutoAdopt(void);
753
754/**
755 * Gets the affinity mask of the current thread.
756 *
757 * @returns IPRT status code.
758 * @param pCpuSet Where to return the CPU affienty set of the calling
759 * thread.
760 */
761RTR3DECL(int) RTThreadGetAffinity(PRTCPUSET pCpuSet);
762
763/**
764 * Sets the affinity mask of the current thread.
765 *
766 * @returns iprt status code.
767 * @param pCpuSet The set of CPUs this thread can run on. NULL means
768 * all CPUs.
769 */
770RTR3DECL(int) RTThreadSetAffinity(PCRTCPUSET pCpuSet);
771
772/**
773 * Binds the thread to one specific CPU.
774 *
775 * @returns iprt status code.
776 * @param idCpu The ID of the CPU to bind this thread to. Use
777 * NIL_RTCPUID to unbind it.
778 */
779RTR3DECL(int) RTThreadSetAffinityToCpu(RTCPUID idCpu);
780
781/**
782 * Unblocks a thread.
783 *
784 * This function is paired with RTThreadBlocking and RTThreadBlockingDebug.
785 *
786 * @param hThread The current thread.
787 * @param enmCurState The current state, used to check for nested blocking.
788 * The new state will be running.
789 */
790RTDECL(void) RTThreadUnblocked(RTTHREAD hThread, RTTHREADSTATE enmCurState);
791
792/**
793 * Change the thread state to blocking.
794 *
795 * @param hThread The current thread.
796 * @param enmState The sleep state.
797 * @param fReallySleeping Really going to sleep now. Use false before calls
798 * to other IPRT synchronization methods.
799 */
800RTDECL(void) RTThreadBlocking(RTTHREAD hThread, RTTHREADSTATE enmState, bool fReallySleeping);
801
802/**
803 * Get the current thread state.
804 *
805 * A thread that is reported as sleeping may actually still be running inside
806 * the lock validator or/and in the code of some other IPRT synchronization
807 * primitive. Use RTThreadGetReallySleeping
808 *
809 * @returns The thread state.
810 * @param hThread The thread.
811 */
812RTDECL(RTTHREADSTATE) RTThreadGetState(RTTHREAD hThread);
813
814/**
815 * Checks if the thread is really sleeping or not.
816 *
817 * @returns RTTHREADSTATE_RUNNING if not really sleeping, otherwise the state it
818 * is sleeping in.
819 * @param hThread The thread.
820 */
821RTDECL(RTTHREADSTATE) RTThreadGetReallySleeping(RTTHREAD hThread);
822
823/**
824 * Translate a thread state into a string.
825 *
826 * @returns Pointer to a read-only string containing the state name.
827 * @param enmState The state.
828 */
829RTDECL(const char *) RTThreadStateName(RTTHREADSTATE enmState);
830
831
832/**
833 * Native thread states returned by RTThreadNativeState.
834 */
835typedef enum RTTHREADNATIVESTATE
836{
837 /** Invalid thread handle. */
838 RTTHREADNATIVESTATE_INVALID = 0,
839 /** Unable to determine the thread state. */
840 RTTHREADNATIVESTATE_UNKNOWN,
841 /** The thread is running. */
842 RTTHREADNATIVESTATE_RUNNING,
843 /** The thread is blocked. */
844 RTTHREADNATIVESTATE_BLOCKED,
845 /** The thread is suspended / stopped. */
846 RTTHREADNATIVESTATE_SUSPENDED,
847 /** The thread has terminated. */
848 RTTHREADNATIVESTATE_TERMINATED,
849 /** Make sure it's a 32-bit type. */
850 RTTHREADNATIVESTATE_32BIT_HACK = 0x7fffffff
851} RTTHREADNATIVESTATE;
852
853
854/**
855 * Get the native state of a thread.
856 *
857 * @returns Native state.
858 * @param hThread The thread handle.
859 *
860 * @remarks Not yet implemented on all systems, so have a backup plan for
861 * RTTHREADNATIVESTATE_UNKNOWN.
862 */
863RTDECL(RTTHREADNATIVESTATE) RTThreadGetNativeState(RTTHREAD hThread);
864
865
866/**
867 * Get the execution times of the specified thread
868 *
869 * @returns IPRT status code.
870 * @param pKernelTime Kernel execution time in ms (out)
871 * @param pUserTime User execution time in ms (out)
872 *
873 */
874RTR3DECL(int) RTThreadGetExecutionTimeMilli(uint64_t *pKernelTime, uint64_t *pUserTime);
875
876/** @name Thread Local Storage
877 * @{
878 */
879/**
880 * Thread termination callback for destroying a non-zero TLS entry.
881 *
882 * @remarks It is not permitable to use any RTTls APIs at this time. Doing so
883 * may lead to endless loops, crashes, and other bad stuff.
884 *
885 * @param pvValue The current value.
886 */
887typedef DECLCALLBACKTYPE(void, FNRTTLSDTOR,(void *pvValue));
888/** Pointer to a FNRTTLSDTOR. */
889typedef FNRTTLSDTOR *PFNRTTLSDTOR;
890
891/**
892 * Allocates a TLS entry (index).
893 *
894 * Example code:
895 * @code
896 RTTLS g_iTls = NIL_RTTLS;
897
898 ...
899
900 // once for the process, allocate the TLS index
901 if (g_iTls == NIL_RTTLS)
902 g_iTls = RTTlsAlloc();
903
904 // set the thread-local value.
905 RTTlsSet(g_iTls, pMyData);
906
907 ...
908
909 // get the thread-local value
910 PMYDATA pMyData = (PMYDATA)RTTlsGet(g_iTls);
911
912 @endcode
913 *
914 * @returns the index of the allocated TLS entry.
915 * @returns NIL_RTTLS on failure.
916 */
917RTR3DECL(RTTLS) RTTlsAlloc(void);
918
919/**
920 * Variant of RTTlsAlloc that returns a status code.
921 *
922 * @returns IPRT status code.
923 * @retval VERR_NOT_SUPPORTED if pfnDestructor is non-NULL and the platform
924 * doesn't support this feature.
925 *
926 * @param piTls Where to store the index of the allocated TLS entry.
927 * This is set to NIL_RTTLS on failure.
928 * @param pfnDestructor Optional callback function for cleaning up on
929 * thread termination.
930 * @note In static builds on windows, the destructor will only be invoked for
931 * IPRT threads.
932 * @note There are probably OS specific restrictions on what operations you
933 * are allowed to perform from a TLS destructor, so keep it simple.
934 */
935RTR3DECL(int) RTTlsAllocEx(PRTTLS piTls, PFNRTTLSDTOR pfnDestructor);
936
937/**
938 * Frees a TLS entry.
939 *
940 * @returns IPRT status code.
941 * @param iTls The index of the TLS entry.
942 */
943RTR3DECL(int) RTTlsFree(RTTLS iTls);
944
945/**
946 * Get the (thread-local) value stored in a TLS entry.
947 *
948 * @returns value in given TLS entry.
949 * @retval NULL if RTTlsSet() has not yet been called on this thread, or if the
950 * TLS index is invalid.
951 *
952 * @param iTls The index of the TLS entry.
953 */
954RTR3DECL(void *) RTTlsGet(RTTLS iTls);
955
956/**
957 * Get the value stored in a TLS entry.
958 *
959 * @returns IPRT status code.
960 * @param iTls The index of the TLS entry.
961 * @param ppvValue Where to store the value. The value will be NULL if
962 * RTTlsSet has not yet been called on this thread.
963 */
964RTR3DECL(int) RTTlsGetEx(RTTLS iTls, void **ppvValue);
965
966/**
967 * Set the value stored in an allocated TLS entry.
968 *
969 * @returns IPRT status.
970 * @param iTls The index of the TLS entry.
971 * @param pvValue The value to store.
972 *
973 * @remarks Note that NULL is considered a special value.
974 */
975RTR3DECL(int) RTTlsSet(RTTLS iTls, void *pvValue);
976
977/** @} */
978
979# endif /* IN_RING3 */
980#endif /* !IN_RC || defined(DOXYGEN_RUNNING) */
981
982/** @} */
983
984RT_C_DECLS_END
985
986#endif /* !IPRT_INCLUDED_thread_h */
987
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