1 // boehm.cc - interface between libjava and Boehm GC.
3 /* Copyright (C) 1998, 1999, 2000, 2001 Free Software Foundation
5 This file is part of libgcj.
7 This software is copyrighted work licensed under the terms of the
8 Libgcj License. Please consult the file "LIBGCJ_LICENSE" for
18 #include <java/lang/Class.h>
19 #include <java/lang/reflect/Modifier.h>
20 #include <java-interp.h>
22 // More nastiness: the GC wants to define TRUE and FALSE. We don't
23 // need the Java definitions (themselves a hack), so we undefine them.
29 #include <private/gc_pmark.h>
32 #ifdef THREAD_LOCAL_ALLOC
33 # define GC_REDIRECT_TO_LOCAL
34 # include <gc_local_alloc.h>
37 // These aren't declared in any Boehm GC header.
38 void GC_finalize_all (void);
39 ptr_t
GC_debug_generic_malloc (size_t size
, int k
, GC_EXTRA_PARAMS
);
42 // We must check for plausibility ourselves.
43 #define MAYBE_MARK(Obj, Top, Limit, Source, Exit) \
44 Top=GC_MARK_AND_PUSH((GC_PTR)Obj, Top, Limit, (GC_PTR *)Source)
46 // `kind' index used when allocating Java arrays.
47 static int array_kind_x
;
49 // Freelist used for Java arrays.
50 static ptr_t
*array_free_list
;
52 // Lock used to protect access to Boehm's GC_enable/GC_disable functions.
53 static _Jv_Mutex_t disable_gc_mutex
;
57 // This is called by the GC during the mark phase. It marks a Java
58 // object. We use `void *' arguments and return, and not what the
59 // Boehm GC wants, to avoid pollution in our headers.
61 _Jv_MarkObj (void *addr
, void *msp
, void *msl
, void * /* env */)
63 mse
*mark_stack_ptr
= (mse
*) msp
;
64 mse
*mark_stack_limit
= (mse
*) msl
;
65 jobject obj
= (jobject
) addr
;
67 // FIXME: if env is 1, this object was allocated through the debug
68 // interface, and addr points to the beginning of the debug header.
69 // In that case, we should really add the size of the header to addr.
71 _Jv_VTable
*dt
= *(_Jv_VTable
**) addr
;
72 // The object might not yet have its vtable set, or it might
73 // really be an object on the freelist. In either case, the vtable slot
74 // will either be 0, or it will point to a cleared object.
75 // This assumes Java objects have size at least 3 words,
76 // including the header. But this should remain true, since this
77 // should only be used with debugging allocation or with large objects.
78 if (__builtin_expect (! dt
|| !(dt
-> get_finalizer()), false))
79 return mark_stack_ptr
;
80 jclass klass
= dt
->clas
;
83 # ifndef JV_HASH_SYNCHRONIZATION
84 // Every object has a sync_info pointer.
85 p
= (ptr_t
) obj
->sync_info
;
86 MAYBE_MARK (p
, mark_stack_ptr
, mark_stack_limit
, obj
, o1label
);
88 // Mark the object's class.
90 MAYBE_MARK (p
, mark_stack_ptr
, mark_stack_limit
, obj
, o2label
);
92 if (__builtin_expect (klass
== &java::lang::Class::class$
, false))
94 // Currently we allocate some of the memory referenced from class objects
95 // as pointerfree memory, and then mark it more intelligently here.
96 // We ensure that the ClassClass mark descriptor forces invocation of
98 // Correctness of this is subtle, but it looks OK to me for now. For the incremental
99 // collector, we need to make sure that the class object is written whenever
100 // any of the subobjects are altered and may need rescanning. This may be tricky
101 // during construction, and this may not be the right way to do this with
102 // incremental collection.
103 // If we overflow the mark stack, we will rescan the class object, so we should
104 // be OK. The same applies if we redo the mark phase because win32 unmapped part
105 // of our root set. - HB
106 jclass c
= (jclass
) addr
;
109 MAYBE_MARK (p
, mark_stack_ptr
, mark_stack_limit
, c
, c3label
);
110 p
= (ptr_t
) c
->superclass
;
111 MAYBE_MARK (p
, mark_stack_ptr
, mark_stack_limit
, c
, c4label
);
112 for (int i
= 0; i
< c
->constants
.size
; ++i
)
114 /* FIXME: We could make this more precise by using the tags -KKT */
115 p
= (ptr_t
) c
->constants
.data
[i
].p
;
116 MAYBE_MARK (p
, mark_stack_ptr
, mark_stack_limit
, c
, c5label
);
120 if (_Jv_IsInterpretedClass (c
))
122 p
= (ptr_t
) c
->constants
.tags
;
123 MAYBE_MARK (p
, mark_stack_ptr
, mark_stack_limit
, c
, c5alabel
);
124 p
= (ptr_t
) c
->constants
.data
;
125 MAYBE_MARK (p
, mark_stack_ptr
, mark_stack_limit
, c
, c5blabel
);
126 p
= (ptr_t
) c
->vtable
;
127 MAYBE_MARK (p
, mark_stack_ptr
, mark_stack_limit
, c
, c5clabel
);
131 // If the class is an array, then the methods field holds a
132 // pointer to the element class. If the class is primitive,
133 // then the methods field holds a pointer to the array class.
134 p
= (ptr_t
) c
->methods
;
135 MAYBE_MARK (p
, mark_stack_ptr
, mark_stack_limit
, c
, c6label
);
138 if (! c
->isArray() && ! c
->isPrimitive())
140 // Scan each method in the cases where `methods' really
141 // points to a methods structure.
142 for (int i
= 0; i
< c
->method_count
; ++i
)
144 p
= (ptr_t
) c
->methods
[i
].name
;
145 MAYBE_MARK (p
, mark_stack_ptr
, mark_stack_limit
, c
,
147 p
= (ptr_t
) c
->methods
[i
].signature
;
148 MAYBE_MARK (p
, mark_stack_ptr
, mark_stack_limit
, c
,
151 // FIXME: `ncode' entry?
154 // The interpreter installs a heap-allocated
155 // trampoline here, so we'll mark it.
156 if (_Jv_IsInterpretedClass (c
))
158 p
= (ptr_t
) c
->methods
[i
].ncode
;
159 MAYBE_MARK (p
, mark_stack_ptr
, mark_stack_limit
, c
,
166 // Mark all the fields.
167 p
= (ptr_t
) c
->fields
;
168 MAYBE_MARK (p
, mark_stack_ptr
, mark_stack_limit
, c
, c8label
);
169 for (int i
= 0; i
< c
->field_count
; ++i
)
171 _Jv_Field
* field
= &c
->fields
[i
];
173 #ifndef COMPACT_FIELDS
174 p
= (ptr_t
) field
->name
;
175 MAYBE_MARK (p
, mark_stack_ptr
, mark_stack_limit
, c
, c8alabel
);
177 p
= (ptr_t
) field
->type
;
178 MAYBE_MARK (p
, mark_stack_ptr
, mark_stack_limit
, c
, c8blabel
);
180 // For the interpreter, we also need to mark the memory
181 // containing static members
182 if ((field
->flags
& java::lang::reflect::Modifier::STATIC
))
184 p
= (ptr_t
) field
->u
.addr
;
185 MAYBE_MARK (p
, mark_stack_ptr
, mark_stack_limit
, c
, c8clabel
);
187 // also, if the static member is a reference,
188 // mark also the value pointed to. We check for isResolved
189 // since marking can happen before memory is allocated for
191 if (JvFieldIsRef (field
) && field
->isResolved())
193 jobject val
= *(jobject
*) field
->u
.addr
;
195 MAYBE_MARK (p
, mark_stack_ptr
, mark_stack_limit
,
201 p
= (ptr_t
) c
->vtable
;
202 MAYBE_MARK (p
, mark_stack_ptr
, mark_stack_limit
, c
, c9label
);
203 p
= (ptr_t
) c
->interfaces
;
204 MAYBE_MARK (p
, mark_stack_ptr
, mark_stack_limit
, c
, cAlabel
);
205 for (int i
= 0; i
< c
->interface_count
; ++i
)
207 p
= (ptr_t
) c
->interfaces
[i
];
208 MAYBE_MARK (p
, mark_stack_ptr
, mark_stack_limit
, c
, cClabel
);
210 p
= (ptr_t
) c
->loader
;
211 MAYBE_MARK (p
, mark_stack_ptr
, mark_stack_limit
, c
, cBlabel
);
212 p
= (ptr_t
) c
->arrayclass
;
213 MAYBE_MARK (p
, mark_stack_ptr
, mark_stack_limit
, c
, cDlabel
);
216 if (_Jv_IsInterpretedClass (c
))
218 _Jv_InterpClass
* ic
= (_Jv_InterpClass
*)c
;
220 p
= (ptr_t
) ic
->interpreted_methods
;
221 MAYBE_MARK (p
, mark_stack_ptr
, mark_stack_limit
, ic
, cElabel
);
223 for (int i
= 0; i
< c
->method_count
; i
++)
225 p
= (ptr_t
) ic
->interpreted_methods
[i
];
226 MAYBE_MARK (p
, mark_stack_ptr
, mark_stack_limit
, ic
, \
230 p
= (ptr_t
) ic
->field_initializers
;
231 MAYBE_MARK (p
, mark_stack_ptr
, mark_stack_limit
, ic
, cGlabel
);
239 // NOTE: each class only holds information about the class
240 // itself. So we must do the marking for the entire inheritance
241 // tree in order to mark all fields. FIXME: what about
242 // interfaces? We skip Object here, because Object only has a
243 // sync_info, and we handled that earlier.
244 // Note: occasionally `klass' can be null. For instance, this
245 // can happen if a GC occurs between the point where an object
246 // is allocated and where the vtbl slot is set.
247 while (klass
&& klass
!= &java::lang::Object::class$
)
249 jfieldID field
= JvGetFirstInstanceField (klass
);
250 jint max
= JvNumInstanceFields (klass
);
252 for (int i
= 0; i
< max
; ++i
)
254 if (JvFieldIsRef (field
))
256 jobject val
= JvGetObjectField (obj
, field
);
258 MAYBE_MARK (p
, mark_stack_ptr
, mark_stack_limit
,
261 field
= field
->getNextField ();
263 klass
= klass
->getSuperclass();
267 return mark_stack_ptr
;
270 // This is called by the GC during the mark phase. It marks a Java
271 // array (of objects). We use `void *' arguments and return, and not
272 // what the Boehm GC wants, to avoid pollution in our headers.
274 _Jv_MarkArray (void *addr
, void *msp
, void *msl
, void * /*env*/)
276 mse
*mark_stack_ptr
= (mse
*) msp
;
277 mse
*mark_stack_limit
= (mse
*) msl
;
278 jobjectArray array
= (jobjectArray
) addr
;
280 _Jv_VTable
*dt
= *(_Jv_VTable
**) addr
;
281 // Assumes size >= 3 words. That's currently true since arrays have
282 // a vtable, sync pointer, and size. If the sync pointer goes away,
283 // we may need to round up the size.
284 if (__builtin_expect (! dt
|| !(dt
-> get_finalizer()), false))
285 return mark_stack_ptr
;
286 jclass klass
= dt
->clas
;
289 # ifndef JV_HASH_SYNCHRONIZATION
290 // Every object has a sync_info pointer.
291 p
= (ptr_t
) array
->sync_info
;
292 MAYBE_MARK (p
, mark_stack_ptr
, mark_stack_limit
, array
, e1label
);
294 // Mark the object's class.
296 MAYBE_MARK (p
, mark_stack_ptr
, mark_stack_limit
, &(dt
-> clas
), o2label
);
298 for (int i
= 0; i
< JvGetArrayLength (array
); ++i
)
300 jobject obj
= elements (array
)[i
];
302 MAYBE_MARK (p
, mark_stack_ptr
, mark_stack_limit
, array
, e2label
);
305 return mark_stack_ptr
;
308 // Generate a GC marking descriptor for a class.
310 // We assume that the gcj mark proc has index 0. This is a dubious assumption,
311 // since another one could be registered first. But the compiler also
312 // knows this, so in that case everything else will break, too.
313 #define GCJ_DEFAULT_DESCR GC_MAKE_PROC(GC_GCJ_RESERVED_MARK_PROC_INDEX,0)
315 _Jv_BuildGCDescr(jclass
)
317 /* FIXME: We should really look at the class and build the descriptor. */
318 return (void *)(GCJ_DEFAULT_DESCR
);
321 // Allocate some space that is known to be pointer-free.
323 _Jv_AllocBytes (jsize size
)
325 void *r
= GC_MALLOC_ATOMIC (size
);
326 // We have to explicitly zero memory here, as the GC doesn't
327 // guarantee that PTRFREE allocations are zeroed. Note that we
328 // don't have to do this for other allocation types because we set
329 // the `ok_init' flag in the type descriptor.
334 // Allocate space for a new Java array.
335 // Used only for arrays of objects.
337 _Jv_AllocArray (jsize size
, jclass klass
)
340 const jsize min_heap_addr
= 16*1024;
341 // A heuristic. If size is less than this value, the size
342 // stored in the array can't possibly be misinterpreted as
343 // a pointer. Thus we lose nothing by scanning the object
344 // completely conservatively, since no misidentification can
348 // There isn't much to lose by scanning this conservatively.
349 // If we didn't, the mark proc would have to understand that
350 // it needed to skip the header.
351 obj
= GC_MALLOC(size
);
353 if (size
< min_heap_addr
)
354 obj
= GC_MALLOC(size
);
356 obj
= GC_generic_malloc (size
, array_kind_x
);
358 *((_Jv_VTable
**) obj
) = klass
->vtable
;
362 /* Allocate space for a new non-Java object, which does not have the usual
363 Java object header but may contain pointers to other GC'ed objects. */
365 _Jv_AllocRawObj (jsize size
)
367 return (void *) GC_MALLOC (size
);
371 call_finalizer (GC_PTR obj
, GC_PTR client_data
)
373 _Jv_FinalizerFunc
*fn
= (_Jv_FinalizerFunc
*) client_data
;
374 jobject jobj
= (jobject
) obj
;
380 _Jv_RegisterFinalizer (void *object
, _Jv_FinalizerFunc
*meth
)
382 GC_REGISTER_FINALIZER_NO_ORDER (object
, call_finalizer
, (GC_PTR
) meth
,
387 _Jv_RunFinalizers (void)
389 GC_invoke_finalizers ();
393 _Jv_RunAllFinalizers (void)
405 _Jv_GCTotalMemory (void)
407 return GC_get_heap_size ();
411 _Jv_GCFreeMemory (void)
413 return GC_get_free_bytes ();
417 _Jv_GCSetInitialHeapSize (size_t size
)
419 size_t current
= GC_get_heap_size ();
421 GC_expand_hp (size
- current
);
425 _Jv_GCSetMaximumHeapSize (size_t size
)
427 GC_set_max_heap_size ((GC_word
) size
);
430 // From boehm's misc.c
431 extern "C" void GC_enable();
432 extern "C" void GC_disable();
437 _Jv_MutexLock (&disable_gc_mutex
);
439 _Jv_MutexUnlock (&disable_gc_mutex
);
445 _Jv_MutexLock (&disable_gc_mutex
);
447 _Jv_MutexUnlock (&disable_gc_mutex
);
450 static void * handle_out_of_memory(size_t)
460 // Ignore pointers that do not point to the start of an object.
461 GC_all_interior_pointers
= 0;
463 // Configure the collector to use the bitmap marking descriptors that we
464 // stash in the class vtable.
465 GC_init_gcj_malloc (0, (void *) _Jv_MarkObj
);
467 // Cause an out of memory error to be thrown from the allocators,
468 // instead of returning 0. This is cheaper than checking on allocation.
469 GC_oom_fn
= handle_out_of_memory
;
471 GC_java_finalization
= 1;
473 // We use a different mark procedure for object arrays. This code
474 // configures a different object `kind' for object array allocation and
475 // marking. FIXME: see above.
476 array_free_list
= (ptr_t
*) GC_generic_malloc_inner ((MAXOBJSZ
+ 1)
479 memset (array_free_list
, 0, (MAXOBJSZ
+ 1) * sizeof (ptr_t
));
481 proc
= GC_n_mark_procs
++;
482 GC_mark_procs
[proc
] = (GC_mark_proc
) _Jv_MarkArray
;
484 array_kind_x
= GC_n_kinds
++;
485 GC_obj_kinds
[array_kind_x
].ok_freelist
= array_free_list
;
486 GC_obj_kinds
[array_kind_x
].ok_reclaim_list
= 0;
487 GC_obj_kinds
[array_kind_x
].ok_descriptor
= GC_MAKE_PROC (proc
, 0);
488 GC_obj_kinds
[array_kind_x
].ok_relocate_descr
= FALSE
;
489 GC_obj_kinds
[array_kind_x
].ok_init
= TRUE
;
491 _Jv_MutexInit (&disable_gc_mutex
);
494 #ifdef JV_HASH_SYNCHRONIZATION
495 // Allocate an object with a fake vtable pointer, which causes only
496 // the first field (beyond the fake vtable pointer) to be traced.
497 // Eventually this should probably be generalized.
499 static _Jv_VTable trace_one_vtable
= {
501 (void *)(2 * sizeof(void *)),
502 // descriptor; scan 2 words incl. vtable ptr.
503 // Least significant bits must be zero to
504 // identify this as a length descriptor
509 _Jv_AllocTraceOne (jsize size
/* includes vtable slot */)
511 return GC_GCJ_MALLOC (size
, &trace_one_vtable
);
514 // Ditto for two words.
515 // the first field (beyond the fake vtable pointer) to be traced.
516 // Eventually this should probably be generalized.
518 static _Jv_VTable trace_two_vtable
=
521 (void *)(3 * sizeof(void *)),
522 // descriptor; scan 3 words incl. vtable ptr.
527 _Jv_AllocTraceTwo (jsize size
/* includes vtable slot */)
529 return GC_GCJ_MALLOC (size
, &trace_two_vtable
);
532 #endif /* JV_HASH_SYNCHRONIZATION */
535 _Jv_GCInitializeFinalizers (void (*notifier
) (void))
537 GC_finalize_on_demand
= 1;
538 GC_finalizer_notifier
= notifier
;
542 _Jv_GCRegisterDisappearingLink (jobject
*objp
)
544 GC_general_register_disappearing_link ((GC_PTR
*) objp
, (GC_PTR
) *objp
);
548 _Jv_GCCanReclaimSoftReference (jobject
)
550 // For now, always reclaim soft references. FIXME.