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void main() {
  A one = new A(1);
  A two = new A(2);

  var fnRef = one.getMyId;        //A closure created here
  var anotherFnRef = two.getMyId; //Another closure created here

class A{
  int _id;
  int getMyId(){
    return _id;

According to the dart language tour page referencing methods like this creates a new closure each time. Does anyone know why it does this? I can understand creating closures when defining a method body as we can use variables in an outer scope within the method body, but when just referencing a method like above, why create the closure as the method body isn't changing so it can't use any of the variables available in that scope can it? I noticed in a previous question I asked that referencing methods like this effectively binds them to the object they were referenced from. So in the above example if we call fnRef() it will behave like one.getMyId() so is the closure used just for binding the calling context? ... I'm confused :S


In response to Ladicek. So does that mean that:

void main(){
    var fnRef = useLotsOfMemory();
    //did the closure created in the return statement close on just 'aVeryLargeObj'
    //or did it close on all of the 'veryLargeObjects' thus keeping them all in memory 
    //at this point where they aren't needed

    //create lots of 'veryLarge' objects
    return aVeryLargeObj.doStuff;
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2 Answers 2

up vote 4 down vote accepted

Ladicek is right: accessing a method as a getter will automatically bind the method.

In response to the updated question:

No. It shouldn't keep the scope alive. Binding closures are normally implemented as if you invoked a getter of the same name:

class A{
  int _id;
  int getMyId() => _id;

  // The implicit getter for getMyId. This is not valid
  // code but explains how dart2js implements it. The VM has
  // probably a similar mechanism.
  Function get getMyId { return () => this.getMyId(); }

When implemented this way you will not capture any variable that is alive in your useLotsOfMemory function.

Even if it really was allocating the closure inside the useLotsOfMemory function, it wouldn't be clear if it kept lots of memory alive.

Dart does not specify how much (or how little) is captured when a closure is created. Clearly it needs to capture at least the free variables of itself. This is the minimum. The question is thus: "how much more does it capture"?

The general consensus seems to be to capture every variable that is free in some closure. All local variables that are captured by some closure are moved into a context object and every closure that is created will just store a link to that object.


foo() {
  var x = new List(1000);
  var y = new List(100);
  var z = new List(10);
  var f = () => y;  // y is free here.
  // The variables y and z are free in some closure.
  // The returned closure will keep both alive.
  // The local x will be garbage collected.
  return () => z;  // z is free here.

I have seen Scheme implementations that only captured their own free variables (splitting the context object into independent pieces), so less is possible. However in Dart this is not a requirement and I wouldn't rely on it. For safety I would always assume that all captured variables (independent of who captures them) are kept alive. I would also make the assumption that bound closures are implemented similar to what I showed above and that they keep a strict minimum of memory alive.

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That's exactly right -- the closure captures the object on which the method will be invoked.

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