indirect_reference_table.h revision 83c8ee000d525017ead8753fce6bc1020249b96a
1/*
2 * Copyright (C) 2009 The Android Open Source Project
3 *
4 * Licensed under the Apache License, Version 2.0 (the "License");
5 * you may not use this file except in compliance with the License.
6 * You may obtain a copy of the License at
7 *
8 *      http://www.apache.org/licenses/LICENSE-2.0
9 *
10 * Unless required by applicable law or agreed to in writing, software
11 * distributed under the License is distributed on an "AS IS" BASIS,
12 * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
13 * See the License for the specific language governing permissions and
14 * limitations under the License.
15 */
16
17#ifndef ART_RUNTIME_INDIRECT_REFERENCE_TABLE_H_
18#define ART_RUNTIME_INDIRECT_REFERENCE_TABLE_H_
19
20#include <stdint.h>
21
22#include <iosfwd>
23#include <string>
24
25#include "base/logging.h"
26#include "object_callbacks.h"
27#include "offsets.h"
28
29namespace art {
30namespace mirror {
31class Object;
32}  // namespace mirror
33
34/*
35 * Maintain a table of indirect references.  Used for local/global JNI
36 * references.
37 *
38 * The table contains object references that are part of the GC root set.
39 * When an object is added we return an IndirectRef that is not a valid
40 * pointer but can be used to find the original value in O(1) time.
41 * Conversions to and from indirect references are performed on upcalls
42 * and downcalls, so they need to be very fast.
43 *
44 * To be efficient for JNI local variable storage, we need to provide
45 * operations that allow us to operate on segments of the table, where
46 * segments are pushed and popped as if on a stack.  For example, deletion
47 * of an entry should only succeed if it appears in the current segment,
48 * and we want to be able to strip off the current segment quickly when
49 * a method returns.  Additions to the table must be made in the current
50 * segment even if space is available in an earlier area.
51 *
52 * A new segment is created when we call into native code from interpreted
53 * code, or when we handle the JNI PushLocalFrame function.
54 *
55 * The GC must be able to scan the entire table quickly.
56 *
57 * In summary, these must be very fast:
58 *  - adding or removing a segment
59 *  - adding references to a new segment
60 *  - converting an indirect reference back to an Object
61 * These can be a little slower, but must still be pretty quick:
62 *  - adding references to a "mature" segment
63 *  - removing individual references
64 *  - scanning the entire table straight through
65 *
66 * If there's more than one segment, we don't guarantee that the table
67 * will fill completely before we fail due to lack of space.  We do ensure
68 * that the current segment will pack tightly, which should satisfy JNI
69 * requirements (e.g. EnsureLocalCapacity).
70 *
71 * To make everything fit nicely in 32-bit integers, the maximum size of
72 * the table is capped at 64K.
73 *
74 * None of the table functions are synchronized.
75 */
76
77/*
78 * Indirect reference definition.  This must be interchangeable with JNI's
79 * jobject, and it's convenient to let null be null, so we use void*.
80 *
81 * We need a 16-bit table index and a 2-bit reference type (global, local,
82 * weak global).  Real object pointers will have zeroes in the low 2 or 3
83 * bits (4- or 8-byte alignment), so it's useful to put the ref type
84 * in the low bits and reserve zero as an invalid value.
85 *
86 * The remaining 14 bits can be used to detect stale indirect references.
87 * For example, if objects don't move, we can use a hash of the original
88 * Object* to make sure the entry hasn't been re-used.  (If the Object*
89 * we find there doesn't match because of heap movement, we could do a
90 * secondary check on the preserved hash value; this implies that creating
91 * a global/local ref queries the hash value and forces it to be saved.)
92 *
93 * A more rigorous approach would be to put a serial number in the extra
94 * bits, and keep a copy of the serial number in a parallel table.  This is
95 * easier when objects can move, but requires 2x the memory and additional
96 * memory accesses on add/get.  It will catch additional problems, e.g.:
97 * create iref1 for obj, delete iref1, create iref2 for same obj, lookup
98 * iref1.  A pattern based on object bits will miss this.
99 */
100typedef void* IndirectRef;
101
102// Magic failure values; must not pass Heap::ValidateObject() or Heap::IsHeapAddress().
103static mirror::Object* const kInvalidIndirectRefObject = reinterpret_cast<mirror::Object*>(0xdead4321);
104static mirror::Object* const kClearedJniWeakGlobal = reinterpret_cast<mirror::Object*>(0xdead1234);
105
106/*
107 * Indirect reference kind, used as the two low bits of IndirectRef.
108 *
109 * For convenience these match up with enum jobjectRefType from jni.h.
110 */
111enum IndirectRefKind {
112  kSirtOrInvalid = 0,  // <<stack indirect reference table or invalid reference>>
113  kLocal         = 1,  // <<local reference>>
114  kGlobal        = 2,  // <<global reference>>
115  kWeakGlobal    = 3   // <<weak global reference>>
116};
117std::ostream& operator<<(std::ostream& os, const IndirectRefKind& rhs);
118
119/*
120 * Determine what kind of indirect reference this is.
121 */
122static inline IndirectRefKind GetIndirectRefKind(IndirectRef iref) {
123  return static_cast<IndirectRefKind>(reinterpret_cast<uintptr_t>(iref) & 0x03);
124}
125
126/*
127 * Extended debugging structure.  We keep a parallel array of these, one
128 * per slot in the table.
129 */
130static const size_t kIRTPrevCount = 4;
131struct IndirectRefSlot {
132  uint32_t serial;
133  const mirror::Object* previous[kIRTPrevCount];
134};
135
136/* use as initial value for "cookie", and when table has only one segment */
137static const uint32_t IRT_FIRST_SEGMENT = 0;
138
139/*
140 * Table definition.
141 *
142 * For the global reference table, the expected common operations are
143 * adding a new entry and removing a recently-added entry (usually the
144 * most-recently-added entry).  For JNI local references, the common
145 * operations are adding a new entry and removing an entire table segment.
146 *
147 * If "alloc_entries_" is not equal to "max_entries_", the table may expand
148 * when entries are added, which means the memory may move.  If you want
149 * to keep pointers into "table" rather than offsets, you must use a
150 * fixed-size table.
151 *
152 * If we delete entries from the middle of the list, we will be left with
153 * "holes".  We track the number of holes so that, when adding new elements,
154 * we can quickly decide to do a trivial append or go slot-hunting.
155 *
156 * When the top-most entry is removed, any holes immediately below it are
157 * also removed.  Thus, deletion of an entry may reduce "topIndex" by more
158 * than one.
159 *
160 * To get the desired behavior for JNI locals, we need to know the bottom
161 * and top of the current "segment".  The top is managed internally, and
162 * the bottom is passed in as a function argument.  When we call a native method or
163 * push a local frame, the current top index gets pushed on, and serves
164 * as the new bottom.  When we pop a frame off, the value from the stack
165 * becomes the new top index, and the value stored in the previous frame
166 * becomes the new bottom.
167 *
168 * To avoid having to re-scan the table after a pop, we want to push the
169 * number of holes in the table onto the stack.  Because of our 64K-entry
170 * cap, we can combine the two into a single unsigned 32-bit value.
171 * Instead of a "bottom" argument we take a "cookie", which includes the
172 * bottom index and the count of holes below the bottom.
173 *
174 * Common alternative implementation: make IndirectRef a pointer to the
175 * actual reference slot.  Instead of getting a table and doing a lookup,
176 * the lookup can be done instantly.  Operations like determining the
177 * type and deleting the reference are more expensive because the table
178 * must be hunted for (i.e. you have to do a pointer comparison to see
179 * which table it's in), you can't move the table when expanding it (so
180 * realloc() is out), and tricks like serial number checking to detect
181 * stale references aren't possible (though we may be able to get similar
182 * benefits with other approaches).
183 *
184 * TODO: consider a "lastDeleteIndex" for quick hole-filling when an
185 * add immediately follows a delete; must invalidate after segment pop
186 * (which could increase the cost/complexity of method call/return).
187 * Might be worth only using it for JNI globals.
188 *
189 * TODO: may want completely different add/remove algorithms for global
190 * and local refs to improve performance.  A large circular buffer might
191 * reduce the amortized cost of adding global references.
192 *
193 * TODO: if we can guarantee that the underlying storage doesn't move,
194 * e.g. by using oversized mmap regions to handle expanding tables, we may
195 * be able to avoid having to synchronize lookups.  Might make sense to
196 * add a "synchronized lookup" call that takes the mutex as an argument,
197 * and either locks or doesn't lock based on internal details.
198 */
199union IRTSegmentState {
200  uint32_t          all;
201  struct {
202    uint32_t      topIndex:16;            /* index of first unused entry */
203    uint32_t      numHoles:16;            /* #of holes in entire table */
204  } parts;
205};
206
207class IrtIterator {
208 public:
209  explicit IrtIterator(mirror::Object** table, size_t i, size_t capacity)
210      : table_(table), i_(i), capacity_(capacity) {
211    SkipNullsAndTombstones();
212  }
213
214  IrtIterator& operator++() {
215    ++i_;
216    SkipNullsAndTombstones();
217    return *this;
218  }
219
220  mirror::Object** operator*() {
221    return &table_[i_];
222  }
223
224  bool equals(const IrtIterator& rhs) const {
225    return (i_ == rhs.i_ && table_ == rhs.table_);
226  }
227
228 private:
229  void SkipNullsAndTombstones() {
230    // We skip NULLs and tombstones. Clients don't want to see implementation details.
231    while (i_ < capacity_ && (table_[i_] == NULL || table_[i_] == kClearedJniWeakGlobal)) {
232      ++i_;
233    }
234  }
235
236  mirror::Object** table_;
237  size_t i_;
238  size_t capacity_;
239};
240
241bool inline operator==(const IrtIterator& lhs, const IrtIterator& rhs) {
242  return lhs.equals(rhs);
243}
244
245bool inline operator!=(const IrtIterator& lhs, const IrtIterator& rhs) {
246  return !lhs.equals(rhs);
247}
248
249class IndirectReferenceTable {
250 public:
251  IndirectReferenceTable(size_t initialCount, size_t maxCount, IndirectRefKind kind);
252
253  ~IndirectReferenceTable();
254
255  /*
256   * Add a new entry.  "obj" must be a valid non-NULL object reference.
257   *
258   * Returns NULL if the table is full (max entries reached, or alloc
259   * failed during expansion).
260   */
261  IndirectRef Add(uint32_t cookie, mirror::Object* obj)
262      SHARED_LOCKS_REQUIRED(Locks::mutator_lock_);
263
264  /*
265   * Given an IndirectRef in the table, return the Object it refers to.
266   *
267   * Returns kInvalidIndirectRefObject if iref is invalid.
268   */
269  mirror::Object* Get(IndirectRef iref) const {
270    if (!GetChecked(iref)) {
271      return kInvalidIndirectRefObject;
272    }
273    return table_[ExtractIndex(iref)];
274  }
275
276  // TODO: remove when we remove work_around_app_jni_bugs support.
277  bool ContainsDirectPointer(mirror::Object* direct_pointer) const;
278
279  /*
280   * Remove an existing entry.
281   *
282   * If the entry is not between the current top index and the bottom index
283   * specified by the cookie, we don't remove anything.  This is the behavior
284   * required by JNI's DeleteLocalRef function.
285   *
286   * Returns "false" if nothing was removed.
287   */
288  bool Remove(uint32_t cookie, IndirectRef iref);
289
290  void AssertEmpty();
291
292  void Dump(std::ostream& os) const SHARED_LOCKS_REQUIRED(Locks::mutator_lock_);
293
294  /*
295   * Return the #of entries in the entire table.  This includes holes, and
296   * so may be larger than the actual number of "live" entries.
297   */
298  size_t Capacity() const {
299    return segment_state_.parts.topIndex;
300  }
301
302  IrtIterator begin() {
303    return IrtIterator(table_, 0, Capacity());
304  }
305
306  IrtIterator end() {
307    return IrtIterator(table_, Capacity(), Capacity());
308  }
309
310  void VisitRoots(RootCallback* callback, void* arg, uint32_t tid, RootType root_type);
311
312  uint32_t GetSegmentState() const {
313    return segment_state_.all;
314  }
315
316  void SetSegmentState(uint32_t new_state) {
317    segment_state_.all = new_state;
318  }
319
320  static Offset SegmentStateOffset() {
321    return Offset(OFFSETOF_MEMBER(IndirectReferenceTable, segment_state_));
322  }
323
324 private:
325  /*
326   * Extract the table index from an indirect reference.
327   */
328  static uint32_t ExtractIndex(IndirectRef iref) {
329    uintptr_t uref = reinterpret_cast<uintptr_t>(iref);
330    return (uref >> 2) & 0xffff;
331  }
332
333  /*
334   * The object pointer itself is subject to relocation in some GC
335   * implementations, so we shouldn't really be using it here.
336   */
337  IndirectRef ToIndirectRef(const mirror::Object* /*o*/, uint32_t tableIndex) const {
338    DCHECK_LT(tableIndex, 65536U);
339    uint32_t serialChunk = slot_data_[tableIndex].serial;
340    uintptr_t uref = serialChunk << 20 | (tableIndex << 2) | kind_;
341    return reinterpret_cast<IndirectRef>(uref);
342  }
343
344  /*
345   * Update extended debug info when an entry is added.
346   *
347   * We advance the serial number, invalidating any outstanding references to
348   * this slot.
349   */
350  void UpdateSlotAdd(const mirror::Object* obj, int slot) {
351    if (slot_data_ != NULL) {
352      IndirectRefSlot* pSlot = &slot_data_[slot];
353      pSlot->serial++;
354      pSlot->previous[pSlot->serial % kIRTPrevCount] = obj;
355    }
356  }
357
358  /* extra debugging checks */
359  bool GetChecked(IndirectRef) const;
360  bool CheckEntry(const char*, IndirectRef, int) const;
361
362  /* semi-public - read/write by jni down calls */
363  IRTSegmentState segment_state_;
364
365  /* bottom of the stack */
366  mirror::Object** table_;
367  /* bit mask, ORed into all irefs */
368  IndirectRefKind kind_;
369  /* extended debugging info */
370  IndirectRefSlot* slot_data_;
371  /* #of entries we have space for */
372  size_t alloc_entries_;
373  /* max #of entries allowed */
374  size_t max_entries_;
375};
376
377}  // namespace art
378
379#endif  // ART_RUNTIME_INDIRECT_REFERENCE_TABLE_H_
380