exception.cc revision 253222
1/*
2 * Copyright 2010-2011 PathScale, Inc. All rights reserved.
3 *
4 * Redistribution and use in source and binary forms, with or without
5 * modification, are permitted provided that the following conditions are met:
6 *
7 * 1. Redistributions of source code must retain the above copyright notice,
8 *    this list of conditions and the following disclaimer.
9 *
10 * 2. Redistributions in binary form must reproduce the above copyright notice,
11 *    this list of conditions and the following disclaimer in the documentation
12 *    and/or other materials provided with the distribution.
13 *
14 * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS ``AS
15 * IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO,
16 * THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
17 * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT HOLDER OR
18 * CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL,
19 * EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO,
20 * PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS;
21 * OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY,
22 * WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR
23 * OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF
24 * ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
25 */
26
27#include <stdlib.h>
28#include <dlfcn.h>
29#include <stdio.h>
30#include <string.h>
31#include <stdint.h>
32#include <pthread.h>
33#include "typeinfo.h"
34#include "dwarf_eh.h"
35#include "atomic.h"
36#include "cxxabi.h"
37
38#pragma weak pthread_key_create
39#pragma weak pthread_setspecific
40#pragma weak pthread_getspecific
41#pragma weak pthread_once
42#ifdef LIBCXXRT_WEAK_LOCKS
43#pragma weak pthread_mutex_lock
44#define pthread_mutex_lock(mtx) do {\
45	if (pthread_mutex_lock) pthread_mutex_lock(mtx);\
46	} while(0)
47#pragma weak pthread_mutex_unlock
48#define pthread_mutex_unlock(mtx) do {\
49	if (pthread_mutex_unlock) pthread_mutex_unlock(mtx);\
50	} while(0)
51#pragma weak pthread_cond_signal
52#define pthread_cond_signal(cv) do {\
53	if (pthread_cond_signal) pthread_cond_signal(cv);\
54	} while(0)
55#pragma weak pthread_cond_wait
56#define pthread_cond_wait(cv, mtx) do {\
57	if (pthread_cond_wait) pthread_cond_wait(cv, mtx);\
58	} while(0)
59#endif
60
61using namespace ABI_NAMESPACE;
62
63/**
64 * Saves the result of the landing pad that we have found.  For ARM, this is
65 * stored in the generic unwind structure, while on other platforms it is
66 * stored in the C++ exception.
67 */
68static void saveLandingPad(struct _Unwind_Context *context,
69                           struct _Unwind_Exception *ucb,
70                           struct __cxa_exception *ex,
71                           int selector,
72                           dw_eh_ptr_t landingPad)
73{
74#ifdef __arm__
75	// On ARM, we store the saved exception in the generic part of the structure
76	ucb->barrier_cache.sp = _Unwind_GetGR(context, 13);
77	ucb->barrier_cache.bitpattern[1] = (uint32_t)selector;
78	ucb->barrier_cache.bitpattern[3] = (uint32_t)landingPad;
79#endif
80	// Cache the results for the phase 2 unwind, if we found a handler
81	// and this is not a foreign exception.
82	if (ex)
83	{
84		ex->handlerSwitchValue = selector;
85		ex->catchTemp = landingPad;
86	}
87}
88
89/**
90 * Loads the saved landing pad.  Returns 1 on success, 0 on failure.
91 */
92static int loadLandingPad(struct _Unwind_Context *context,
93                          struct _Unwind_Exception *ucb,
94                          struct __cxa_exception *ex,
95                          unsigned long *selector,
96                          dw_eh_ptr_t *landingPad)
97{
98#ifdef __arm__
99	*selector = ucb->barrier_cache.bitpattern[1];
100	*landingPad = (dw_eh_ptr_t)ucb->barrier_cache.bitpattern[3];
101	return 1;
102#else
103	if (ex)
104	{
105		*selector = ex->handlerSwitchValue;
106		*landingPad = (dw_eh_ptr_t)ex->catchTemp;
107		return 0;
108	}
109	return 0;
110#endif
111}
112
113static inline _Unwind_Reason_Code continueUnwinding(struct _Unwind_Exception *ex,
114                                                    struct _Unwind_Context *context)
115{
116#ifdef __arm__
117	if (__gnu_unwind_frame(ex, context) != _URC_OK) { return _URC_FAILURE; }
118#endif
119	return _URC_CONTINUE_UNWIND;
120}
121
122
123extern "C" void __cxa_free_exception(void *thrown_exception);
124extern "C" void __cxa_free_dependent_exception(void *thrown_exception);
125extern "C" void* __dynamic_cast(const void *sub,
126                                const __class_type_info *src,
127                                const __class_type_info *dst,
128                                ptrdiff_t src2dst_offset);
129
130/**
131 * The type of a handler that has been found.
132 */
133typedef enum
134{
135	/** No handler. */
136	handler_none,
137	/**
138	 * A cleanup - the exception will propagate through this frame, but code
139	 * must be run when this happens.
140	 */
141	handler_cleanup,
142	/**
143	 * A catch statement.  The exception will not propagate past this frame
144	 * (without an explicit rethrow).
145	 */
146	handler_catch
147} handler_type;
148
149/**
150 * Per-thread info required by the runtime.  We store a single structure
151 * pointer in thread-local storage, because this tends to be a scarce resource
152 * and it's impolite to steal all of it and not leave any for the rest of the
153 * program.
154 *
155 * Instances of this structure are allocated lazily - at most one per thread -
156 * and are destroyed on thread termination.
157 */
158struct __cxa_thread_info
159{
160	/** The termination handler for this thread. */
161	terminate_handler terminateHandler;
162	/** The unexpected exception handler for this thread. */
163	unexpected_handler unexpectedHandler;
164	/**
165	 * The number of emergency buffers held by this thread.  This is 0 in
166	 * normal operation - the emergency buffers are only used when malloc()
167	 * fails to return memory for allocating an exception.  Threads are not
168	 * permitted to hold more than 4 emergency buffers (as per recommendation
169	 * in ABI spec [3.3.1]).
170	 */
171	int emergencyBuffersHeld;
172	/**
173	 * The exception currently running in a cleanup.
174	 */
175	_Unwind_Exception *currentCleanup;
176	/**
177	 * Our state with respect to foreign exceptions.  Usually none, set to
178	 * caught if we have just caught an exception and rethrown if we are
179	 * rethrowing it.
180	 */
181	enum
182	{
183		none,
184		caught,
185		rethrown
186	} foreign_exception_state;
187	/**
188	 * The public part of this structure, accessible from outside of this
189	 * module.
190	 */
191	__cxa_eh_globals globals;
192};
193/**
194 * Dependent exception.  This
195 */
196struct __cxa_dependent_exception
197{
198#if __LP64__
199	void *primaryException;
200#endif
201	std::type_info *exceptionType;
202	void (*exceptionDestructor) (void *);
203	unexpected_handler unexpectedHandler;
204	terminate_handler terminateHandler;
205	__cxa_exception *nextException;
206	int handlerCount;
207#ifdef __arm__
208	_Unwind_Exception *nextCleanup;
209	int cleanupCount;
210#endif
211	int handlerSwitchValue;
212	const char *actionRecord;
213	const char *languageSpecificData;
214	void *catchTemp;
215	void *adjustedPtr;
216#if !__LP64__
217	void *primaryException;
218#endif
219	_Unwind_Exception unwindHeader;
220};
221
222
223namespace std
224{
225	void unexpected();
226	class exception
227	{
228		public:
229			virtual ~exception() throw();
230			virtual const char* what() const throw();
231	};
232
233}
234
235/**
236 * Class of exceptions to distinguish between this and other exception types.
237 *
238 * The first four characters are the vendor ID.  Currently, we use GNUC,
239 * because we aim for ABI-compatibility with the GNU implementation, and
240 * various checks may test for equality of the class, which is incorrect.
241 */
242static const uint64_t exception_class =
243	EXCEPTION_CLASS('G', 'N', 'U', 'C', 'C', '+', '+', '\0');
244/**
245 * Class used for dependent exceptions.
246 */
247static const uint64_t dependent_exception_class =
248	EXCEPTION_CLASS('G', 'N', 'U', 'C', 'C', '+', '+', '\x01');
249/**
250 * The low four bytes of the exception class, indicating that we conform to the
251 * Itanium C++ ABI.  This is currently unused, but should be used in the future
252 * if we change our exception class, to allow this library and libsupc++ to be
253 * linked to the same executable and both to interoperate.
254 */
255static const uint32_t abi_exception_class =
256	GENERIC_EXCEPTION_CLASS('C', '+', '+', '\0');
257
258static bool isCXXException(uint64_t cls)
259{
260	return (cls == exception_class) || (cls == dependent_exception_class);
261}
262
263static bool isDependentException(uint64_t cls)
264{
265	return cls == dependent_exception_class;
266}
267
268static __cxa_exception *exceptionFromPointer(void *ex)
269{
270	return (__cxa_exception*)((char*)ex -
271			offsetof(struct __cxa_exception, unwindHeader));
272}
273static __cxa_exception *realExceptionFromException(__cxa_exception *ex)
274{
275	if (!isDependentException(ex->unwindHeader.exception_class)) { return ex; }
276	return ((__cxa_exception*)(((__cxa_dependent_exception*)ex)->primaryException))-1;
277}
278
279
280namespace std
281{
282	// Forward declaration of standard library terminate() function used to
283	// abort execution.
284	void terminate(void);
285}
286
287using namespace ABI_NAMESPACE;
288
289
290
291/** The global termination handler. */
292static terminate_handler terminateHandler = abort;
293/** The global unexpected exception handler. */
294static unexpected_handler unexpectedHandler = std::terminate;
295
296/** Key used for thread-local data. */
297static pthread_key_t eh_key;
298
299
300/**
301 * Cleanup function, allowing foreign exception handlers to correctly destroy
302 * this exception if they catch it.
303 */
304static void exception_cleanup(_Unwind_Reason_Code reason,
305                              struct _Unwind_Exception *ex)
306{
307	__cxa_free_exception((void*)ex);
308}
309static void dependent_exception_cleanup(_Unwind_Reason_Code reason,
310                              struct _Unwind_Exception *ex)
311{
312
313	__cxa_free_dependent_exception((void*)ex);
314}
315
316/**
317 * Recursively walk a list of exceptions and delete them all in post-order.
318 */
319static void free_exception_list(__cxa_exception *ex)
320{
321	if (0 != ex->nextException)
322	{
323		free_exception_list(ex->nextException);
324	}
325	// __cxa_free_exception() expects to be passed the thrown object, which
326	// immediately follows the exception, not the exception itself
327	__cxa_free_exception(ex+1);
328}
329
330/**
331 * Cleanup function called when a thread exists to make certain that all of the
332 * per-thread data is deleted.
333 */
334static void thread_cleanup(void* thread_info)
335{
336	__cxa_thread_info *info = (__cxa_thread_info*)thread_info;
337	if (info->globals.caughtExceptions)
338	{
339		// If this is a foreign exception, ask it to clean itself up.
340		if (info->foreign_exception_state != __cxa_thread_info::none)
341		{
342			_Unwind_Exception *e = (_Unwind_Exception*)info->globals.caughtExceptions;
343			e->exception_cleanup(_URC_FOREIGN_EXCEPTION_CAUGHT, e);
344		}
345		else
346		{
347			free_exception_list(info->globals.caughtExceptions);
348		}
349	}
350	free(thread_info);
351}
352
353
354/**
355 * Once control used to protect the key creation.
356 */
357static pthread_once_t once_control = PTHREAD_ONCE_INIT;
358
359/**
360 * We may not be linked against a full pthread implementation.  If we're not,
361 * then we need to fake the thread-local storage by storing 'thread-local'
362 * things in a global.
363 */
364static bool fakeTLS;
365/**
366 * Thread-local storage for a single-threaded program.
367 */
368static __cxa_thread_info singleThreadInfo;
369/**
370 * Initialise eh_key.
371 */
372static void init_key(void)
373{
374	if ((0 == pthread_key_create) ||
375	    (0 == pthread_setspecific) ||
376	    (0 == pthread_getspecific))
377	{
378		fakeTLS = true;
379		return;
380	}
381	pthread_key_create(&eh_key, thread_cleanup);
382	pthread_setspecific(eh_key, (void*)0x42);
383	fakeTLS = (pthread_getspecific(eh_key) != (void*)0x42);
384	pthread_setspecific(eh_key, 0);
385}
386
387/**
388 * Returns the thread info structure, creating it if it is not already created.
389 */
390static __cxa_thread_info *thread_info()
391{
392	if ((0 == pthread_once) || pthread_once(&once_control, init_key))
393	{
394		fakeTLS = true;
395	}
396	if (fakeTLS) { return &singleThreadInfo; }
397	__cxa_thread_info *info = (__cxa_thread_info*)pthread_getspecific(eh_key);
398	if (0 == info)
399	{
400		info = (__cxa_thread_info*)calloc(1, sizeof(__cxa_thread_info));
401		pthread_setspecific(eh_key, info);
402	}
403	return info;
404}
405/**
406 * Fast version of thread_info().  May fail if thread_info() is not called on
407 * this thread at least once already.
408 */
409static __cxa_thread_info *thread_info_fast()
410{
411	if (fakeTLS) { return &singleThreadInfo; }
412	return (__cxa_thread_info*)pthread_getspecific(eh_key);
413}
414/**
415 * ABI function returning the __cxa_eh_globals structure.
416 */
417extern "C" __cxa_eh_globals *ABI_NAMESPACE::__cxa_get_globals(void)
418{
419	return &(thread_info()->globals);
420}
421/**
422 * Version of __cxa_get_globals() assuming that __cxa_get_globals() has already
423 * been called at least once by this thread.
424 */
425extern "C" __cxa_eh_globals *ABI_NAMESPACE::__cxa_get_globals_fast(void)
426{
427	return &(thread_info_fast()->globals);
428}
429
430/**
431 * An emergency allocation reserved for when malloc fails.  This is treated as
432 * 16 buffers of 1KB each.
433 */
434static char emergency_buffer[16384];
435/**
436 * Flag indicating whether each buffer is allocated.
437 */
438static bool buffer_allocated[16];
439/**
440 * Lock used to protect emergency allocation.
441 */
442static pthread_mutex_t emergency_malloc_lock = PTHREAD_MUTEX_INITIALIZER;
443/**
444 * Condition variable used to wait when two threads are both trying to use the
445 * emergency malloc() buffer at once.
446 */
447static pthread_cond_t emergency_malloc_wait = PTHREAD_COND_INITIALIZER;
448
449/**
450 * Allocates size bytes from the emergency allocation mechanism, if possible.
451 * This function will fail if size is over 1KB or if this thread already has 4
452 * emergency buffers.  If all emergency buffers are allocated, it will sleep
453 * until one becomes available.
454 */
455static char *emergency_malloc(size_t size)
456{
457	if (size > 1024) { return 0; }
458
459	__cxa_thread_info *info = thread_info();
460	// Only 4 emergency buffers allowed per thread!
461	if (info->emergencyBuffersHeld > 3) { return 0; }
462
463	pthread_mutex_lock(&emergency_malloc_lock);
464	int buffer = -1;
465	while (buffer < 0)
466	{
467		// While we were sleeping on the lock, another thread might have free'd
468		// enough memory for us to use, so try the allocation again - no point
469		// using the emergency buffer if there is some real memory that we can
470		// use...
471		void *m = calloc(1, size);
472		if (0 != m)
473		{
474			pthread_mutex_unlock(&emergency_malloc_lock);
475			return (char*)m;
476		}
477		for (int i=0 ; i<16 ; i++)
478		{
479			if (!buffer_allocated[i])
480			{
481				buffer = i;
482				buffer_allocated[i] = true;
483				break;
484			}
485		}
486		// If there still isn't a buffer available, then sleep on the condition
487		// variable.  This will be signalled when another thread releases one
488		// of the emergency buffers.
489		if (buffer < 0)
490		{
491			pthread_cond_wait(&emergency_malloc_wait, &emergency_malloc_lock);
492		}
493	}
494	pthread_mutex_unlock(&emergency_malloc_lock);
495	info->emergencyBuffersHeld++;
496	return emergency_buffer + (1024 * buffer);
497}
498
499/**
500 * Frees a buffer returned by emergency_malloc().
501 *
502 * Note: Neither this nor emergency_malloc() is particularly efficient.  This
503 * should not matter, because neither will be called in normal operation - they
504 * are only used when the program runs out of memory, which should not happen
505 * often.
506 */
507static void emergency_malloc_free(char *ptr)
508{
509	int buffer = -1;
510	// Find the buffer corresponding to this pointer.
511	for (int i=0 ; i<16 ; i++)
512	{
513		if (ptr == (void*)(emergency_buffer + (1024 * i)))
514		{
515			buffer = i;
516			break;
517		}
518	}
519	assert(buffer > 0 &&
520	       "Trying to free something that is not an emergency buffer!");
521	// emergency_malloc() is expected to return 0-initialized data.  We don't
522	// zero the buffer when allocating it, because the static buffers will
523	// begin life containing 0 values.
524	memset((void*)ptr, 0, 1024);
525	// Signal the condition variable to wake up any threads that are blocking
526	// waiting for some space in the emergency buffer
527	pthread_mutex_lock(&emergency_malloc_lock);
528	// In theory, we don't need to do this with the lock held.  In practice,
529	// our array of bools will probably be updated using 32-bit or 64-bit
530	// memory operations, so this update may clobber adjacent values.
531	buffer_allocated[buffer] = false;
532	pthread_cond_signal(&emergency_malloc_wait);
533	pthread_mutex_unlock(&emergency_malloc_lock);
534}
535
536static char *alloc_or_die(size_t size)
537{
538	char *buffer = (char*)calloc(1, size);
539
540	// If calloc() doesn't want to give us any memory, try using an emergency
541	// buffer.
542	if (0 == buffer)
543	{
544		buffer = emergency_malloc(size);
545		// This is only reached if the allocation is greater than 1KB, and
546		// anyone throwing objects that big really should know better.
547		if (0 == buffer)
548		{
549			fprintf(stderr, "Out of memory attempting to allocate exception\n");
550			std::terminate();
551		}
552	}
553	return buffer;
554}
555static void free_exception(char *e)
556{
557	// If this allocation is within the address range of the emergency buffer,
558	// don't call free() because it was not allocated with malloc()
559	if ((e > emergency_buffer) &&
560	    (e < (emergency_buffer + sizeof(emergency_buffer))))
561	{
562		emergency_malloc_free(e);
563	}
564	else
565	{
566		free(e);
567	}
568}
569
570/**
571 * Allocates an exception structure.  Returns a pointer to the space that can
572 * be used to store an object of thrown_size bytes.  This function will use an
573 * emergency buffer if malloc() fails, and may block if there are no such
574 * buffers available.
575 */
576extern "C" void *__cxa_allocate_exception(size_t thrown_size)
577{
578	size_t size = thrown_size + sizeof(__cxa_exception);
579	char *buffer = alloc_or_die(size);
580	return buffer+sizeof(__cxa_exception);
581}
582
583extern "C" void *__cxa_allocate_dependent_exception(void)
584{
585	size_t size = sizeof(__cxa_dependent_exception);
586	char *buffer = alloc_or_die(size);
587	return buffer+sizeof(__cxa_dependent_exception);
588}
589
590/**
591 * __cxa_free_exception() is called when an exception was thrown in between
592 * calling __cxa_allocate_exception() and actually throwing the exception.
593 * This happens when the object's copy constructor throws an exception.
594 *
595 * In this implementation, it is also called by __cxa_end_catch() and during
596 * thread cleanup.
597 */
598extern "C" void __cxa_free_exception(void *thrown_exception)
599{
600	__cxa_exception *ex = ((__cxa_exception*)thrown_exception) - 1;
601	// Free the object that was thrown, calling its destructor
602	if (0 != ex->exceptionDestructor)
603	{
604		try
605		{
606			ex->exceptionDestructor(thrown_exception);
607		}
608		catch(...)
609		{
610			// FIXME: Check that this is really what the spec says to do.
611			std::terminate();
612		}
613	}
614
615	free_exception((char*)ex);
616}
617
618static void releaseException(__cxa_exception *exception)
619{
620	if (isDependentException(exception->unwindHeader.exception_class))
621	{
622		__cxa_free_dependent_exception(exception+1);
623		return;
624	}
625	if (__sync_sub_and_fetch(&exception->referenceCount, 1) == 0)
626	{
627		// __cxa_free_exception() expects to be passed the thrown object,
628		// which immediately follows the exception, not the exception
629		// itself
630		__cxa_free_exception(exception+1);
631	}
632}
633
634void __cxa_free_dependent_exception(void *thrown_exception)
635{
636	__cxa_dependent_exception *ex = ((__cxa_dependent_exception*)thrown_exception) - 1;
637	assert(isDependentException(ex->unwindHeader.exception_class));
638	if (ex->primaryException)
639	{
640		releaseException(realExceptionFromException((__cxa_exception*)ex));
641	}
642	free_exception((char*)ex);
643}
644
645/**
646 * Callback function used with _Unwind_Backtrace().
647 *
648 * Prints a stack trace.  Used only for debugging help.
649 *
650 * Note: As of FreeBSD 8.1, dladd() still doesn't work properly, so this only
651 * correctly prints function names from public, relocatable, symbols.
652 */
653static _Unwind_Reason_Code trace(struct _Unwind_Context *context, void *c)
654{
655	Dl_info myinfo;
656	int mylookup =
657		dladdr((void*)(uintptr_t)__cxa_current_exception_type, &myinfo);
658	void *ip = (void*)_Unwind_GetIP(context);
659	Dl_info info;
660	if (dladdr(ip, &info) != 0)
661	{
662		if (mylookup == 0 || strcmp(info.dli_fname, myinfo.dli_fname) != 0)
663		{
664			printf("%p:%s() in %s\n", ip, info.dli_sname, info.dli_fname);
665		}
666	}
667	return _URC_CONTINUE_UNWIND;
668}
669
670/**
671 * Report a failure that occurred when attempting to throw an exception.
672 *
673 * If the failure happened by falling off the end of the stack without finding
674 * a handler, prints a back trace before aborting.
675 */
676static void report_failure(_Unwind_Reason_Code err, __cxa_exception *thrown_exception)
677{
678	switch (err)
679	{
680		default: break;
681		case _URC_FATAL_PHASE1_ERROR:
682			fprintf(stderr, "Fatal error during phase 1 unwinding\n");
683			break;
684#ifndef __arm__
685		case _URC_FATAL_PHASE2_ERROR:
686			fprintf(stderr, "Fatal error during phase 2 unwinding\n");
687			break;
688#endif
689		case _URC_END_OF_STACK:
690			fprintf(stderr, "Terminating due to uncaught exception %p",
691					(void*)thrown_exception);
692			thrown_exception = realExceptionFromException(thrown_exception);
693			static const __class_type_info *e_ti =
694				static_cast<const __class_type_info*>(&typeid(std::exception));
695			const __class_type_info *throw_ti =
696				dynamic_cast<const __class_type_info*>(thrown_exception->exceptionType);
697			if (throw_ti)
698			{
699				std::exception *e =
700					(std::exception*)e_ti->cast_to((void*)(thrown_exception+1),
701							throw_ti);
702				if (e)
703				{
704					fprintf(stderr, " '%s'", e->what());
705				}
706			}
707
708			size_t bufferSize = 128;
709			char *demangled = (char*)malloc(bufferSize);
710			const char *mangled = thrown_exception->exceptionType->name();
711			int status;
712			demangled = __cxa_demangle(mangled, demangled, &bufferSize, &status);
713			fprintf(stderr, " of type %s\n",
714				status == 0 ? (const char*)demangled : mangled);
715			if (status == 0) { free(demangled); }
716			// Print a back trace if no handler is found.
717			// TODO: Make this optional
718			_Unwind_Backtrace(trace, 0);
719			break;
720	}
721	std::terminate();
722}
723
724static void throw_exception(__cxa_exception *ex)
725{
726	__cxa_thread_info *info = thread_info();
727	ex->unexpectedHandler = info->unexpectedHandler;
728	if (0 == ex->unexpectedHandler)
729	{
730		ex->unexpectedHandler = unexpectedHandler;
731	}
732	ex->terminateHandler  = info->terminateHandler;
733	if (0 == ex->terminateHandler)
734	{
735		ex->terminateHandler = terminateHandler;
736	}
737	info->globals.uncaughtExceptions++;
738
739	_Unwind_Reason_Code err = _Unwind_RaiseException(&ex->unwindHeader);
740	// The _Unwind_RaiseException() function should not return, it should
741	// unwind the stack past this function.  If it does return, then something
742	// has gone wrong.
743	report_failure(err, ex);
744}
745
746
747/**
748 * ABI function for throwing an exception.  Takes the object to be thrown (the
749 * pointer returned by __cxa_allocate_exception()), the type info for the
750 * pointee, and the destructor (if there is one) as arguments.
751 */
752extern "C" void __cxa_throw(void *thrown_exception,
753                            std::type_info *tinfo,
754                            void(*dest)(void*))
755{
756	__cxa_exception *ex = ((__cxa_exception*)thrown_exception) - 1;
757
758	ex->referenceCount = 1;
759	ex->exceptionType = tinfo;
760
761	ex->exceptionDestructor = dest;
762
763	ex->unwindHeader.exception_class = exception_class;
764	ex->unwindHeader.exception_cleanup = exception_cleanup;
765
766	throw_exception(ex);
767}
768
769extern "C" void __cxa_rethrow_primary_exception(void* thrown_exception)
770{
771	if (NULL == thrown_exception) { return; }
772
773	__cxa_exception *original = exceptionFromPointer(thrown_exception);
774	__cxa_dependent_exception *ex = ((__cxa_dependent_exception*)__cxa_allocate_dependent_exception())-1;
775
776	ex->primaryException = thrown_exception;
777	__cxa_increment_exception_refcount(thrown_exception);
778
779	ex->exceptionType = original->exceptionType;
780	ex->unwindHeader.exception_class = dependent_exception_class;
781	ex->unwindHeader.exception_cleanup = dependent_exception_cleanup;
782
783	throw_exception((__cxa_exception*)ex);
784}
785
786extern "C" void *__cxa_current_primary_exception(void)
787{
788	__cxa_eh_globals* globals = __cxa_get_globals();
789	__cxa_exception *ex = globals->caughtExceptions;
790
791	if (0 == ex) { return NULL; }
792	ex = realExceptionFromException(ex);
793	__sync_fetch_and_add(&ex->referenceCount, 1);
794	return ex + 1;
795}
796
797extern "C" void __cxa_increment_exception_refcount(void* thrown_exception)
798{
799	if (NULL == thrown_exception) { return; }
800	__cxa_exception *ex = ((__cxa_exception*)thrown_exception) - 1;
801	if (isDependentException(ex->unwindHeader.exception_class)) { return; }
802	__sync_fetch_and_add(&ex->referenceCount, 1);
803}
804extern "C" void __cxa_decrement_exception_refcount(void* thrown_exception)
805{
806	if (NULL == thrown_exception) { return; }
807	__cxa_exception *ex = ((__cxa_exception*)thrown_exception) - 1;
808	releaseException(ex);
809}
810
811/**
812 * ABI function.  Rethrows the current exception.  Does not remove the
813 * exception from the stack or decrement its handler count - the compiler is
814 * expected to set the landing pad for this function to the end of the catch
815 * block, and then call _Unwind_Resume() to continue unwinding once
816 * __cxa_end_catch() has been called and any cleanup code has been run.
817 */
818extern "C" void __cxa_rethrow()
819{
820	__cxa_thread_info *ti = thread_info();
821	__cxa_eh_globals *globals = &ti->globals;
822	// Note: We don't remove this from the caught list here, because
823	// __cxa_end_catch will be called when we unwind out of the try block.  We
824	// could probably make this faster by providing an alternative rethrow
825	// function and ensuring that all cleanup code is run before calling it, so
826	// we can skip the top stack frame when unwinding.
827	__cxa_exception *ex = globals->caughtExceptions;
828
829	if (0 == ex)
830	{
831		fprintf(stderr,
832		        "Attempting to rethrow an exception that doesn't exist!\n");
833		std::terminate();
834	}
835
836	if (ti->foreign_exception_state != __cxa_thread_info::none)
837	{
838		ti->foreign_exception_state = __cxa_thread_info::rethrown;
839		_Unwind_Exception *e = (_Unwind_Exception*)ex;
840		_Unwind_Reason_Code err = _Unwind_Resume_or_Rethrow(e);
841		report_failure(err, ex);
842		return;
843	}
844
845	assert(ex->handlerCount > 0 && "Rethrowing uncaught exception!");
846
847	// ex->handlerCount will be decremented in __cxa_end_catch in enclosing
848	// catch block
849
850	// Make handler count negative. This will tell __cxa_end_catch that
851	// exception was rethrown and exception object should not be destroyed
852	// when handler count become zero
853	ex->handlerCount = -ex->handlerCount;
854
855	// Continue unwinding the stack with this exception.  This should unwind to
856	// the place in the caller where __cxa_end_catch() is called.  The caller
857	// will then run cleanup code and bounce the exception back with
858	// _Unwind_Resume().
859	_Unwind_Reason_Code err = _Unwind_Resume_or_Rethrow(&ex->unwindHeader);
860	report_failure(err, ex);
861}
862
863/**
864 * Returns the type_info object corresponding to the filter.
865 */
866static std::type_info *get_type_info_entry(_Unwind_Context *context,
867                                           dwarf_eh_lsda *lsda,
868                                           int filter)
869{
870	// Get the address of the record in the table.
871	dw_eh_ptr_t record = lsda->type_table -
872		dwarf_size_of_fixed_size_field(lsda->type_table_encoding)*filter;
873	//record -= 4;
874	dw_eh_ptr_t start = record;
875	// Read the value, but it's probably an indirect reference...
876	int64_t offset = read_value(lsda->type_table_encoding, &record);
877
878	// (If the entry is 0, don't try to dereference it.  That would be bad.)
879	if (offset == 0) { return 0; }
880
881	// ...so we need to resolve it
882	return (std::type_info*)resolve_indirect_value(context,
883			lsda->type_table_encoding, offset, start);
884}
885
886
887
888/**
889 * Checks the type signature found in a handler against the type of the thrown
890 * object.  If ex is 0 then it is assumed to be a foreign exception and only
891 * matches cleanups.
892 */
893static bool check_type_signature(__cxa_exception *ex,
894                                 const std::type_info *type,
895                                 void *&adjustedPtr)
896{
897	void *exception_ptr = (void*)(ex+1);
898	const std::type_info *ex_type = ex ? ex->exceptionType : 0;
899
900	bool is_ptr = ex ? ex_type->__is_pointer_p() : false;
901	if (is_ptr)
902	{
903		exception_ptr = *(void**)exception_ptr;
904	}
905	// Always match a catchall, even with a foreign exception
906	//
907	// Note: A 0 here is a catchall, not a cleanup, so we return true to
908	// indicate that we found a catch.
909	if (0 == type)
910	{
911		if (ex)
912		{
913			adjustedPtr = exception_ptr;
914		}
915		return true;
916	}
917
918	if (0 == ex) { return false; }
919
920	// If the types are the same, no casting is needed.
921	if (*type == *ex_type)
922	{
923		adjustedPtr = exception_ptr;
924		return true;
925	}
926
927
928	if (type->__do_catch(ex_type, &exception_ptr, 1))
929	{
930		adjustedPtr = exception_ptr;
931		return true;
932	}
933
934	return false;
935}
936/**
937 * Checks whether the exception matches the type specifiers in this action
938 * record.  If the exception only matches cleanups, then this returns false.
939 * If it matches a catch (including a catchall) then it returns true.
940 *
941 * The selector argument is used to return the selector that is passed in the
942 * second exception register when installing the context.
943 */
944static handler_type check_action_record(_Unwind_Context *context,
945                                        dwarf_eh_lsda *lsda,
946                                        dw_eh_ptr_t action_record,
947                                        __cxa_exception *ex,
948                                        unsigned long *selector,
949                                        void *&adjustedPtr)
950{
951	if (!action_record) { return handler_cleanup; }
952	handler_type found = handler_none;
953	while (action_record)
954	{
955		int filter = read_sleb128(&action_record);
956		dw_eh_ptr_t action_record_offset_base = action_record;
957		int displacement = read_sleb128(&action_record);
958		action_record = displacement ?
959			action_record_offset_base + displacement : 0;
960		// We only check handler types for C++ exceptions - foreign exceptions
961		// are only allowed for cleanups and catchalls.
962		if (filter > 0)
963		{
964			std::type_info *handler_type = get_type_info_entry(context, lsda, filter);
965			if (check_type_signature(ex, handler_type, adjustedPtr))
966			{
967				*selector = filter;
968				return handler_catch;
969			}
970		}
971		else if (filter < 0 && 0 != ex)
972		{
973			bool matched = false;
974			*selector = filter;
975#ifdef __arm__
976			filter++;
977			std::type_info *handler_type = get_type_info_entry(context, lsda, filter--);
978			while (handler_type)
979			{
980				if (check_type_signature(ex, handler_type, adjustedPtr))
981				{
982					matched = true;
983					break;
984				}
985				handler_type = get_type_info_entry(context, lsda, filter--);
986			}
987#else
988			unsigned char *type_index = ((unsigned char*)lsda->type_table - filter - 1);
989			while (*type_index)
990			{
991				std::type_info *handler_type = get_type_info_entry(context, lsda, *(type_index++));
992				// If the exception spec matches a permitted throw type for
993				// this function, don't report a handler - we are allowed to
994				// propagate this exception out.
995				if (check_type_signature(ex, handler_type, adjustedPtr))
996				{
997					matched = true;
998					break;
999				}
1000			}
1001#endif
1002			if (matched) { continue; }
1003			// If we don't find an allowed exception spec, we need to install
1004			// the context for this action.  The landing pad will then call the
1005			// unexpected exception function.  Treat this as a catch
1006			return handler_catch;
1007		}
1008		else if (filter == 0)
1009		{
1010			*selector = filter;
1011			found = handler_cleanup;
1012		}
1013	}
1014	return found;
1015}
1016
1017static void pushCleanupException(_Unwind_Exception *exceptionObject,
1018                                 __cxa_exception *ex)
1019{
1020#ifdef __arm__
1021	__cxa_thread_info *info = thread_info_fast();
1022	if (ex)
1023	{
1024		ex->cleanupCount++;
1025		if (ex->cleanupCount > 1)
1026		{
1027			assert(exceptionObject == info->currentCleanup);
1028			return;
1029		}
1030		ex->nextCleanup = info->currentCleanup;
1031	}
1032	info->currentCleanup = exceptionObject;
1033#endif
1034}
1035
1036/**
1037 * The exception personality function.  This is referenced in the unwinding
1038 * DWARF metadata and is called by the unwind library for each C++ stack frame
1039 * containing catch or cleanup code.
1040 */
1041extern "C"
1042BEGIN_PERSONALITY_FUNCTION(__gxx_personality_v0)
1043	// This personality function is for version 1 of the ABI.  If you use it
1044	// with a future version of the ABI, it won't know what to do, so it
1045	// reports a fatal error and give up before it breaks anything.
1046	if (1 != version)
1047	{
1048		return _URC_FATAL_PHASE1_ERROR;
1049	}
1050	__cxa_exception *ex = 0;
1051	__cxa_exception *realEx = 0;
1052
1053	// If this exception is throw by something else then we can't make any
1054	// assumptions about its layout beyond the fields declared in
1055	// _Unwind_Exception.
1056	bool foreignException = !isCXXException(exceptionClass);
1057
1058	// If this isn't a foreign exception, then we have a C++ exception structure
1059	if (!foreignException)
1060	{
1061		ex = exceptionFromPointer(exceptionObject);
1062		realEx = realExceptionFromException(ex);
1063	}
1064
1065	unsigned char *lsda_addr =
1066		(unsigned char*)_Unwind_GetLanguageSpecificData(context);
1067
1068	// No LSDA implies no landing pads - try the next frame
1069	if (0 == lsda_addr) { return continueUnwinding(exceptionObject, context); }
1070
1071	// These two variables define how the exception will be handled.
1072	dwarf_eh_action action = {0};
1073	unsigned long selector = 0;
1074
1075	// During the search phase, we do a complete lookup.  If we return
1076	// _URC_HANDLER_FOUND, then the phase 2 unwind will call this function with
1077	// a _UA_HANDLER_FRAME action, telling us to install the handler frame.  If
1078	// we return _URC_CONTINUE_UNWIND, we may be called again later with a
1079	// _UA_CLEANUP_PHASE action for this frame.
1080	//
1081	// The point of the two-stage unwind allows us to entirely avoid any stack
1082	// unwinding if there is no handler.  If there are just cleanups found,
1083	// then we can just panic call an abort function.
1084	//
1085	// Matching a handler is much more expensive than matching a cleanup,
1086	// because we don't need to bother doing type comparisons (or looking at
1087	// the type table at all) for a cleanup.  This means that there is no need
1088	// to cache the result of finding a cleanup, because it's (quite) quick to
1089	// look it up again from the action table.
1090	if (actions & _UA_SEARCH_PHASE)
1091	{
1092		struct dwarf_eh_lsda lsda = parse_lsda(context, lsda_addr);
1093
1094		if (!dwarf_eh_find_callsite(context, &lsda, &action))
1095		{
1096			// EH range not found. This happens if exception is thrown and not
1097			// caught inside a cleanup (destructor).  We should call
1098			// terminate() in this case.  The catchTemp (landing pad) field of
1099			// exception object will contain null when personality function is
1100			// called with _UA_HANDLER_FRAME action for phase 2 unwinding.
1101			return _URC_HANDLER_FOUND;
1102		}
1103
1104		handler_type found_handler = check_action_record(context, &lsda,
1105				action.action_record, realEx, &selector, ex->adjustedPtr);
1106		// If there's no action record, we've only found a cleanup, so keep
1107		// searching for something real
1108		if (found_handler == handler_catch)
1109		{
1110			// Cache the results for the phase 2 unwind, if we found a handler
1111			// and this is not a foreign exception.
1112			if (ex)
1113			{
1114				saveLandingPad(context, exceptionObject, ex, selector, action.landing_pad);
1115				ex->languageSpecificData = (const char*)lsda_addr;
1116				ex->actionRecord = (const char*)action.action_record;
1117				// ex->adjustedPtr is set when finding the action record.
1118			}
1119			return _URC_HANDLER_FOUND;
1120		}
1121		return continueUnwinding(exceptionObject, context);
1122	}
1123
1124
1125	// If this is a foreign exception, we didn't have anywhere to cache the
1126	// lookup stuff, so we need to do it again.  If this is either a forced
1127	// unwind, a foreign exception, or a cleanup, then we just install the
1128	// context for a cleanup.
1129	if (!(actions & _UA_HANDLER_FRAME))
1130	{
1131		// cleanup
1132		struct dwarf_eh_lsda lsda = parse_lsda(context, lsda_addr);
1133		dwarf_eh_find_callsite(context, &lsda, &action);
1134		if (0 == action.landing_pad) { return continueUnwinding(exceptionObject, context); }
1135		handler_type found_handler = check_action_record(context, &lsda,
1136				action.action_record, realEx, &selector, ex->adjustedPtr);
1137		// Ignore handlers this time.
1138		if (found_handler != handler_cleanup) { return continueUnwinding(exceptionObject, context); }
1139		pushCleanupException(exceptionObject, ex);
1140	}
1141	else if (foreignException)
1142	{
1143		struct dwarf_eh_lsda lsda = parse_lsda(context, lsda_addr);
1144		dwarf_eh_find_callsite(context, &lsda, &action);
1145		check_action_record(context, &lsda, action.action_record, realEx,
1146				&selector, ex->adjustedPtr);
1147	}
1148	else if (ex->catchTemp == 0)
1149	{
1150		// Uncaught exception in cleanup, calling terminate
1151		std::terminate();
1152	}
1153	else
1154	{
1155		// Restore the saved info if we saved some last time.
1156		loadLandingPad(context, exceptionObject, ex, &selector, &action.landing_pad);
1157		ex->catchTemp = 0;
1158		ex->handlerSwitchValue = 0;
1159	}
1160
1161
1162	_Unwind_SetIP(context, (unsigned long)action.landing_pad);
1163	_Unwind_SetGR(context, __builtin_eh_return_data_regno(0),
1164	              (unsigned long)exceptionObject);
1165	_Unwind_SetGR(context, __builtin_eh_return_data_regno(1), selector);
1166
1167	return _URC_INSTALL_CONTEXT;
1168}
1169
1170/**
1171 * ABI function called when entering a catch statement.  The argument is the
1172 * pointer passed out of the personality function.  This is always the start of
1173 * the _Unwind_Exception object.  The return value for this function is the
1174 * pointer to the caught exception, which is either the adjusted pointer (for
1175 * C++ exceptions) of the unadjusted pointer (for foreign exceptions).
1176 */
1177#if __GNUC__ > 3 && __GNUC_MINOR__ > 2
1178extern "C" void *__cxa_begin_catch(void *e) throw()
1179#else
1180extern "C" void *__cxa_begin_catch(void *e)
1181#endif
1182{
1183	// We can't call the fast version here, because if the first exception that
1184	// we see is a foreign exception then we won't have called it yet.
1185	__cxa_thread_info *ti = thread_info();
1186	__cxa_eh_globals *globals = &ti->globals;
1187	globals->uncaughtExceptions--;
1188	_Unwind_Exception *exceptionObject = (_Unwind_Exception*)e;
1189
1190	if (isCXXException(exceptionObject->exception_class))
1191	{
1192		__cxa_exception *ex =  exceptionFromPointer(exceptionObject);
1193
1194		if (ex->handlerCount == 0)
1195		{
1196			// Add this to the front of the list of exceptions being handled
1197			// and increment its handler count so that it won't be deleted
1198			// prematurely.
1199			ex->nextException = globals->caughtExceptions;
1200			globals->caughtExceptions = ex;
1201		}
1202
1203		if (ex->handlerCount < 0)
1204		{
1205			// Rethrown exception is catched before end of catch block.
1206			// Clear the rethrow flag (make value positive) - we are allowed
1207			// to delete this exception at the end of the catch block, as long
1208			// as it isn't thrown again later.
1209
1210			// Code pattern:
1211			//
1212			// try {
1213			//     throw x;
1214			// }
1215			// catch() {
1216			//     try {
1217			//         throw;
1218			//     }
1219			//     catch() {
1220			//         __cxa_begin_catch() <- we are here
1221			//     }
1222			// }
1223			ex->handlerCount = -ex->handlerCount + 1;
1224		}
1225		else
1226		{
1227			ex->handlerCount++;
1228		}
1229		ti->foreign_exception_state = __cxa_thread_info::none;
1230
1231		return ex->adjustedPtr;
1232	}
1233	else
1234	{
1235		// If this is a foreign exception, then we need to be able to
1236		// store it.  We can't chain foreign exceptions, so we give up
1237		// if there are already some outstanding ones.
1238		if (globals->caughtExceptions != 0)
1239		{
1240			std::terminate();
1241		}
1242		globals->caughtExceptions = (__cxa_exception*)exceptionObject;
1243		ti->foreign_exception_state = __cxa_thread_info::caught;
1244	}
1245	// exceptionObject is the pointer to the _Unwind_Exception within the
1246	// __cxa_exception.  The throw object is after this
1247	return ((char*)exceptionObject + sizeof(_Unwind_Exception));
1248}
1249
1250
1251
1252/**
1253 * ABI function called when exiting a catch block.  This will free the current
1254 * exception if it is no longer referenced in other catch blocks.
1255 */
1256extern "C" void __cxa_end_catch()
1257{
1258	// We can call the fast version here because the slow version is called in
1259	// __cxa_throw(), which must have been called before we end a catch block
1260	__cxa_thread_info *ti = thread_info_fast();
1261	__cxa_eh_globals *globals = &ti->globals;
1262	__cxa_exception *ex = globals->caughtExceptions;
1263
1264	assert(0 != ex && "Ending catch when no exception is on the stack!");
1265
1266	if (ti->foreign_exception_state != __cxa_thread_info::none)
1267	{
1268		globals->caughtExceptions = 0;
1269		if (ti->foreign_exception_state != __cxa_thread_info::rethrown)
1270		{
1271			_Unwind_Exception *e = (_Unwind_Exception*)ti->globals.caughtExceptions;
1272			e->exception_cleanup(_URC_FOREIGN_EXCEPTION_CAUGHT, e);
1273		}
1274		ti->foreign_exception_state = __cxa_thread_info::none;
1275		return;
1276	}
1277
1278	bool deleteException = true;
1279
1280	if (ex->handlerCount < 0)
1281	{
1282		// exception was rethrown. Exception should not be deleted even if
1283		// handlerCount become zero.
1284		// Code pattern:
1285		// try {
1286		//     throw x;
1287		// }
1288		// catch() {
1289		//     {
1290		//         throw;
1291		//     }
1292		//     cleanup {
1293		//         __cxa_end_catch();   <- we are here
1294		//     }
1295		// }
1296		//
1297
1298		ex->handlerCount++;
1299		deleteException = false;
1300	}
1301	else
1302	{
1303		ex->handlerCount--;
1304	}
1305
1306	if (ex->handlerCount == 0)
1307	{
1308		globals->caughtExceptions = ex->nextException;
1309		if (deleteException)
1310		{
1311			releaseException(ex);
1312		}
1313	}
1314}
1315
1316/**
1317 * ABI function.  Returns the type of the current exception.
1318 */
1319extern "C" std::type_info *__cxa_current_exception_type()
1320{
1321	__cxa_eh_globals *globals = __cxa_get_globals();
1322	__cxa_exception *ex = globals->caughtExceptions;
1323	return ex ? ex->exceptionType : 0;
1324}
1325
1326/**
1327 * ABI function, called when an exception specification is violated.
1328 *
1329 * This function does not return.
1330 */
1331extern "C" void __cxa_call_unexpected(void*exception)
1332{
1333	_Unwind_Exception *exceptionObject = (_Unwind_Exception*)exception;
1334	if (exceptionObject->exception_class == exception_class)
1335	{
1336		__cxa_exception *ex =  exceptionFromPointer(exceptionObject);
1337		if (ex->unexpectedHandler)
1338		{
1339			ex->unexpectedHandler();
1340			// Should not be reached.
1341			abort();
1342		}
1343	}
1344	std::unexpected();
1345	// Should not be reached.
1346	abort();
1347}
1348
1349/**
1350 * ABI function, returns the adjusted pointer to the exception object.
1351 */
1352extern "C" void *__cxa_get_exception_ptr(void *exceptionObject)
1353{
1354	return exceptionFromPointer(exceptionObject)->adjustedPtr;
1355}
1356
1357/**
1358 * As an extension, we provide the ability for the unexpected and terminate
1359 * handlers to be thread-local.  We default to the standards-compliant
1360 * behaviour where they are global.
1361 */
1362static bool thread_local_handlers = false;
1363
1364
1365namespace pathscale
1366{
1367	/**
1368	 * Sets whether unexpected and terminate handlers should be thread-local.
1369	 */
1370	void set_use_thread_local_handlers(bool flag) throw()
1371	{
1372		thread_local_handlers = flag;
1373	}
1374	/**
1375	 * Sets a thread-local unexpected handler.
1376	 */
1377	unexpected_handler set_unexpected(unexpected_handler f) throw()
1378	{
1379		static __cxa_thread_info *info = thread_info();
1380		unexpected_handler old = info->unexpectedHandler;
1381		info->unexpectedHandler = f;
1382		return old;
1383	}
1384	/**
1385	 * Sets a thread-local terminate handler.
1386	 */
1387	terminate_handler set_terminate(terminate_handler f) throw()
1388	{
1389		static __cxa_thread_info *info = thread_info();
1390		terminate_handler old = info->terminateHandler;
1391		info->terminateHandler = f;
1392		return old;
1393	}
1394}
1395
1396namespace std
1397{
1398	/**
1399	 * Sets the function that will be called when an exception specification is
1400	 * violated.
1401	 */
1402	unexpected_handler set_unexpected(unexpected_handler f) throw()
1403	{
1404		if (thread_local_handlers) { return pathscale::set_unexpected(f); }
1405
1406		return ATOMIC_SWAP(&unexpectedHandler, f);
1407	}
1408	/**
1409	 * Sets the function that is called to terminate the program.
1410	 */
1411	terminate_handler set_terminate(terminate_handler f) throw()
1412	{
1413		if (thread_local_handlers) { return pathscale::set_terminate(f); }
1414
1415		return ATOMIC_SWAP(&terminateHandler, f);
1416	}
1417	/**
1418	 * Terminates the program, calling a custom terminate implementation if
1419	 * required.
1420	 */
1421	void terminate()
1422	{
1423		static __cxa_thread_info *info = thread_info();
1424		if (0 != info && 0 != info->terminateHandler)
1425		{
1426			info->terminateHandler();
1427			// Should not be reached - a terminate handler is not expected to
1428			// return.
1429			abort();
1430		}
1431		terminateHandler();
1432	}
1433	/**
1434	 * Called when an unexpected exception is encountered (i.e. an exception
1435	 * violates an exception specification).  This calls abort() unless a
1436	 * custom handler has been set..
1437	 */
1438	void unexpected()
1439	{
1440		static __cxa_thread_info *info = thread_info();
1441		if (0 != info && 0 != info->unexpectedHandler)
1442		{
1443			info->unexpectedHandler();
1444			// Should not be reached - a terminate handler is not expected to
1445			// return.
1446			abort();
1447		}
1448		unexpectedHandler();
1449	}
1450	/**
1451	 * Returns whether there are any exceptions currently being thrown that
1452	 * have not been caught.  This can occur inside a nested catch statement.
1453	 */
1454	bool uncaught_exception() throw()
1455	{
1456		__cxa_thread_info *info = thread_info();
1457		return info->globals.uncaughtExceptions != 0;
1458	}
1459	/**
1460	 * Returns the current unexpected handler.
1461	 */
1462	unexpected_handler get_unexpected() throw()
1463	{
1464		__cxa_thread_info *info = thread_info();
1465		if (info->unexpectedHandler)
1466		{
1467			return info->unexpectedHandler;
1468		}
1469		return ATOMIC_LOAD(&unexpectedHandler);
1470	}
1471	/**
1472	 * Returns the current terminate handler.
1473	 */
1474	terminate_handler get_terminate() throw()
1475	{
1476		__cxa_thread_info *info = thread_info();
1477		if (info->terminateHandler)
1478		{
1479			return info->terminateHandler;
1480		}
1481		return ATOMIC_LOAD(&terminateHandler);
1482	}
1483}
1484#ifdef __arm__
1485extern "C" _Unwind_Exception *__cxa_get_cleanup(void)
1486{
1487	__cxa_thread_info *info = thread_info_fast();
1488	_Unwind_Exception *exceptionObject = info->currentCleanup;
1489	if (isCXXException(exceptionObject->exception_class))
1490	{
1491		__cxa_exception *ex =  exceptionFromPointer(exceptionObject);
1492		ex->cleanupCount--;
1493		if (ex->cleanupCount == 0)
1494		{
1495			info->currentCleanup = ex->nextCleanup;
1496			ex->nextCleanup = 0;
1497		}
1498	}
1499	else
1500	{
1501		info->currentCleanup = 0;
1502	}
1503	return exceptionObject;
1504}
1505
1506asm (
1507".pushsection .text.__cxa_end_cleanup    \n"
1508".global __cxa_end_cleanup               \n"
1509".type __cxa_end_cleanup, \"function\"   \n"
1510"__cxa_end_cleanup:                      \n"
1511"	push {r1, r2, r3, r4}                \n"
1512"	bl __cxa_get_cleanup                 \n"
1513"	push {r1, r2, r3, r4}                \n"
1514"	b _Unwind_Resume                     \n"
1515"	bl abort                             \n"
1516".popsection                             \n"
1517);
1518#endif
1519