UNPKG

10.9 kBMarkdownView Raw
1## Persistent references
2
3An object reference that is independent of any `HandleScope` is a _persistent_ reference. Where a `Local` handle only lives as long as the `HandleScope` in which it was allocated, a `Persistent` handle remains valid until it is explicitly disposed.
4
5Due to the evolution of the V8 API, it is necessary for NAN to provide a wrapper implementation of the `Persistent` classes to supply compatibility across the V8 versions supported.
6
7 - <a href="#api_nan_persistent_base"><b><code>Nan::PersistentBase & v8::PersistentBase</code></b></a>
8 - <a href="#api_nan_non_copyable_persistent_traits"><b><code>Nan::NonCopyablePersistentTraits & v8::NonCopyablePersistentTraits</code></b></a>
9 - <a href="#api_nan_copyable_persistent_traits"><b><code>Nan::CopyablePersistentTraits & v8::CopyablePersistentTraits</code></b></a>
10 - <a href="#api_nan_persistent"><b><code>Nan::Persistent</code></b></a>
11 - <a href="#api_nan_global"><b><code>Nan::Global</code></b></a>
12 - <a href="#api_nan_weak_callback_info"><b><code>Nan::WeakCallbackInfo</code></b></a>
13 - <a href="#api_nan_weak_callback_type"><b><code>Nan::WeakCallbackType</code></b></a>
14
15Also see the V8 Embedders Guide section on [Handles and Garbage Collection](https://developers.google.com/v8/embed#handles).
16
17<a name="api_nan_persistent_base"></a>
18### Nan::PersistentBase & v8::PersistentBase
19
20A persistent handle contains a reference to a storage cell in V8 which holds an object value and which is updated by the garbage collector whenever the object is moved. A new storage cell can be created using the constructor or `Nan::PersistentBase::Reset()`. Existing handles can be disposed using an argument-less `Nan::PersistentBase::Reset()`.
21
22Definition:
23
24_(note: this is implemented as `Nan::PersistentBase` for older versions of V8 and the native `v8::PersistentBase` is used for newer versions of V8)_
25
26```c++
27template<typename T> class PersistentBase {
28 public:
29 /**
30 * If non-empty, destroy the underlying storage cell
31 */
32 void Reset();
33
34 /**
35 * If non-empty, destroy the underlying storage cell and create a new one with
36 * the contents of another if it is also non-empty
37 */
38 template<typename S> void Reset(const v8::Local<S> &other);
39
40 /**
41 * If non-empty, destroy the underlying storage cell and create a new one with
42 * the contents of another if it is also non-empty
43 */
44 template<typename S> void Reset(const PersistentBase<S> &other);
45
46 /** Returns true if the handle is empty. */
47 bool IsEmpty() const;
48
49 /**
50 * If non-empty, destroy the underlying storage cell
51 * IsEmpty() will return true after this call.
52 */
53 void Empty();
54
55 template<typename S> bool operator==(const PersistentBase<S> &that);
56
57 template<typename S> bool operator==(const v8::Local<S> &that);
58
59 template<typename S> bool operator!=(const PersistentBase<S> &that);
60
61 template<typename S> bool operator!=(const v8::Local<S> &that);
62
63 /**
64 * Install a finalization callback on this object.
65 * NOTE: There is no guarantee as to *when* or even *if* the callback is
66 * invoked. The invocation is performed solely on a best effort basis.
67 * As always, GC-based finalization should *not* be relied upon for any
68 * critical form of resource management! At the moment you can either
69 * specify a parameter for the callback or the location of two internal
70 * fields in the dying object.
71 */
72 template<typename P>
73 void SetWeak(P *parameter,
74 typename WeakCallbackInfo<P>::Callback callback,
75 WeakCallbackType type);
76
77 void ClearWeak();
78
79 /**
80 * Marks the reference to this object independent. Garbage collector is free
81 * to ignore any object groups containing this object. Weak callback for an
82 * independent handle should not assume that it will be preceded by a global
83 * GC prologue callback or followed by a global GC epilogue callback.
84 */
85 void MarkIndependent() const;
86
87 bool IsIndependent() const;
88
89 /** Checks if the handle holds the only reference to an object. */
90 bool IsNearDeath() const;
91
92 /** Returns true if the handle's reference is weak. */
93 bool IsWeak() const
94};
95```
96
97See the V8 documentation for [`PersistentBase`](https://v8docs.nodesource.com/node-8.11/d4/dca/classv8_1_1_persistent_base.html) for further information.
98
99**Tip:** To get a `v8::Local` reference to the original object back from a `PersistentBase` or `Persistent` object:
100
101```c++
102v8::Local<v8::Object> object = Nan::New(persistent);
103```
104
105<a name="api_nan_non_copyable_persistent_traits"></a>
106### Nan::NonCopyablePersistentTraits & v8::NonCopyablePersistentTraits
107
108Default traits for `Nan::Persistent`. This class does not allow use of the a copy constructor or assignment operator. At present `kResetInDestructor` is not set, but that will change in a future version.
109
110Definition:
111
112_(note: this is implemented as `Nan::NonCopyablePersistentTraits` for older versions of V8 and the native `v8::NonCopyablePersistentTraits` is used for newer versions of V8)_
113
114```c++
115template<typename T> class NonCopyablePersistentTraits {
116 public:
117 typedef Persistent<T, NonCopyablePersistentTraits<T> > NonCopyablePersistent;
118
119 static const bool kResetInDestructor = false;
120
121 template<typename S, typename M>
122 static void Copy(const Persistent<S, M> &source,
123 NonCopyablePersistent *dest);
124
125 template<typename O> static void Uncompilable();
126};
127```
128
129See the V8 documentation for [`NonCopyablePersistentTraits`](https://v8docs.nodesource.com/node-8.11/de/d73/classv8_1_1_non_copyable_persistent_traits.html) for further information.
130
131<a name="api_nan_copyable_persistent_traits"></a>
132### Nan::CopyablePersistentTraits & v8::CopyablePersistentTraits
133
134A helper class of traits to allow copying and assignment of `Persistent`. This will clone the contents of storage cell, but not any of the flags, etc..
135
136Definition:
137
138_(note: this is implemented as `Nan::CopyablePersistentTraits` for older versions of V8 and the native `v8::NonCopyablePersistentTraits` is used for newer versions of V8)_
139
140```c++
141template<typename T>
142class CopyablePersistentTraits {
143 public:
144 typedef Persistent<T, CopyablePersistentTraits<T> > CopyablePersistent;
145
146 static const bool kResetInDestructor = true;
147
148 template<typename S, typename M>
149 static void Copy(const Persistent<S, M> &source,
150 CopyablePersistent *dest);
151};
152```
153
154See the V8 documentation for [`CopyablePersistentTraits`](https://v8docs.nodesource.com/node-8.11/da/d5c/structv8_1_1_copyable_persistent_traits.html) for further information.
155
156<a name="api_nan_persistent"></a>
157### Nan::Persistent
158
159A type of `PersistentBase` which allows copy and assignment. Copy, assignment and destructor behavior is controlled by the traits class `M`.
160
161Definition:
162
163```c++
164template<typename T, typename M = NonCopyablePersistentTraits<T> >
165class Persistent;
166
167template<typename T, typename M> class Persistent : public PersistentBase<T> {
168 public:
169 /**
170 * A Persistent with no storage cell.
171 */
172 Persistent();
173
174 /**
175 * Construct a Persistent from a v8::Local. When the v8::Local is non-empty, a
176 * new storage cell is created pointing to the same object, and no flags are
177 * set.
178 */
179 template<typename S> Persistent(v8::Local<S> that);
180
181 /**
182 * Construct a Persistent from a Persistent. When the Persistent is non-empty,
183 * a new storage cell is created pointing to the same object, and no flags are
184 * set.
185 */
186 Persistent(const Persistent &that);
187
188 /**
189 * The copy constructors and assignment operator create a Persistent exactly
190 * as the Persistent constructor, but the Copy function from the traits class
191 * is called, allowing the setting of flags based on the copied Persistent.
192 */
193 Persistent &operator=(const Persistent &that);
194
195 template <typename S, typename M2>
196 Persistent &operator=(const Persistent<S, M2> &that);
197
198 /**
199 * The destructor will dispose the Persistent based on the kResetInDestructor
200 * flags in the traits class. Since not calling dispose can result in a
201 * memory leak, it is recommended to always set this flag.
202 */
203 ~Persistent();
204};
205```
206
207See the V8 documentation for [`Persistent`](https://v8docs.nodesource.com/node-8.11/d2/d78/classv8_1_1_persistent.html) for further information.
208
209<a name="api_nan_global"></a>
210### Nan::Global
211
212A type of `PersistentBase` which has move semantics.
213
214```c++
215template<typename T> class Global : public PersistentBase<T> {
216 public:
217 /**
218 * A Global with no storage cell.
219 */
220 Global();
221
222 /**
223 * Construct a Global from a v8::Local. When the v8::Local is non-empty, a new
224 * storage cell is created pointing to the same object, and no flags are set.
225 */
226 template<typename S> Global(v8::Local<S> that);
227 /**
228 * Construct a Global from a PersistentBase. When the Persistent is non-empty,
229 * a new storage cell is created pointing to the same object, and no flags are
230 * set.
231 */
232 template<typename S> Global(const PersistentBase<S> &that);
233
234 /**
235 * Pass allows returning globals from functions, etc.
236 */
237 Global Pass();
238};
239```
240
241See the V8 documentation for [`Global`](https://v8docs.nodesource.com/node-8.11/d5/d40/classv8_1_1_global.html) for further information.
242
243<a name="api_nan_weak_callback_info"></a>
244### Nan::WeakCallbackInfo
245
246`Nan::WeakCallbackInfo` is used as an argument when setting a persistent reference as weak. You may need to free any external resources attached to the object. It is a mirror of `v8:WeakCallbackInfo` as found in newer versions of V8.
247
248Definition:
249
250```c++
251template<typename T> class WeakCallbackInfo {
252 public:
253 typedef void (*Callback)(const WeakCallbackInfo<T>& data);
254
255 v8::Isolate *GetIsolate() const;
256
257 /**
258 * Get the parameter that was associated with the weak handle.
259 */
260 T *GetParameter() const;
261
262 /**
263 * Get pointer from internal field, index can be 0 or 1.
264 */
265 void *GetInternalField(int index) const;
266};
267```
268
269Example usage:
270
271```c++
272void weakCallback(const WeakCallbackInfo<int> &data) {
273 int *parameter = data.GetParameter();
274 delete parameter;
275}
276
277Persistent<v8::Object> obj;
278int *data = new int(0);
279obj.SetWeak(data, callback, WeakCallbackType::kParameter);
280```
281
282See the V8 documentation for [`WeakCallbackInfo`](https://v8docs.nodesource.com/node-8.11/d8/d06/classv8_1_1_weak_callback_info.html) for further information.
283
284<a name="api_nan_weak_callback_type"></a>
285### Nan::WeakCallbackType
286
287Represents the type of a weak callback.
288A weak callback of type `kParameter` makes the supplied parameter to `Nan::PersistentBase::SetWeak` available through `WeakCallbackInfo::GetParameter`.
289A weak callback of type `kInternalFields` uses up to two internal fields at indices 0 and 1 on the `Nan::PersistentBase<v8::Object>` being made weak.
290Note that only `v8::Object`s and derivatives can have internal fields.
291
292Definition:
293
294```c++
295enum class WeakCallbackType { kParameter, kInternalFields };
296```