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I was studying lambda function in c++11 recently. But I don't know if there is any difference between [=] and [&]. If there is, what the difference is?

And in these two situation, does this in lambda body has any difference?

3 Answers 3

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The difference is how the values are captured

  • & captures by reference
  • = captures by value

Quick example

int x = 1;
auto valueLambda = [=]() { cout << x << endl; };
auto refLambda = [&]() { cout << x << endl; };
x = 13;
valueLambda();
refLambda();

This code will print

1
13

The first lambda captures x by value at the point in which valueLambda is defined. Hence it gets the current value of 1. But the refLambda captures a reference to the local so it sees the up to date value

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  • 1
    Thank you. And what about my second question? If the lambda function is in a class, does this in lambda body has any difference?
    – pktangyue
    Jan 14, 2014 at 3:06
  • 1
    @pktangyue it doesn't affect the capture of this because this is always captured by value
    – JaredPar
    Jan 14, 2014 at 3:43
  • 1
    @JaredPar I don't get it why valueLambda() prints 1 despite it captures by value, value of x is changed to 13 before a call is made to valueLambda?
    – gaurav
    May 17, 2020 at 14:36
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    @gaurav valueLambda() captures the value of x at the time valueLambda() is defined, not when it is called. x = 13; is after the definition of valueLambda().
    – Harvey
    Jul 24, 2020 at 2:27
12
  • & means "capture by reference".
  • = means "capture by value".

I replied here because I want to point out one thing:

this pointer is always captured by value. In C++11, this means, that if you want to capture a copy of a variable in a class, such as this->a, it will always be captured by reference in practice. Why?

Consider:

[this]() { ++this->a; }

this is captured by value, but this is a pointer, so a is referenced through this.

If you want a copy of a member variable, in C++11, do something like this:

auto copy = this->a;
[copy]() mutable { ++copy; }

Beware of this caveat, because it is not intuitive until you think of it.

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    Also, if you are going to modify the copy inside the lambda you must specify it as mutable: [copy]() mutable { ++copy; }
    – Gerard097
    Mar 20, 2018 at 1:51
0

The first question JaredPar already answered.

For your second quesiton, the this in lambda body is same as the this of its containing class. The following example is from standard.

struct S1 {
  int x, y;
  int operator()(int);
  void f() {
    [=]()->int {
      return operator()(this->x + y); 
      // equivalent to S1::operator()(this->x + (*this).y)
      // this has type S1*
    };
  }
};

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