4

I have some trouble to return a reference from a lambda. This code works :

std::function<int*(int*)> funct;

funct = [](int *i){
    ++*i;
    return i;
};

int j = 0;
LOG<<*funct(&j)<<j;

Output : 1 1

But not this one :

std::function<int&(int&)> funct;

funct = [](int &i){
    ++i;
    return i;
};

int j = 0;
LOG<<funct(j)<<j;

Building error : C:\Program Files (x86)\Microsoft Visual Studio 14.0\VC\include\type_traits:1441: error: C2440: 'return': cannot convert from 'int' to 'int &'

Any idea why? For me it is the same thing.

  • Please provide minimal reproducible example. Your current one doesn't compile. – tambre Sep 26 '17 at 15:50
  • Why would you want to return it as a reference? What is the problem that is supposed to solve? Why not simply return it by value (which is what the lambda already does)? – Some programmer dude Sep 26 '17 at 15:51
  • @Someprogrammerdude because it gets it as reference by parameter. For example chained std::ostream::operator<< invocations. – Slava Sep 26 '17 at 15:52
  • 2
    Note that you modify and read j without sequenced point. – Jarod42 Sep 26 '17 at 16:00
  • 3
    @Someprogrammerdude: It needs to return a reference because the std::function signature requires it. So I guess you would then ask why give the std::function that signature? Who cares. Returning a reference is a common enough requirement that we don't need to question users every time the ask how to do it. And providing the context in which he is using this std::function would just be noise in the question. – Benjamin Lindley Sep 26 '17 at 16:01
19

The lambda deduces the return type as if specified with auto. auto ret = i; would deduce ret to be an int.

One solution is to explicitly state the return type of the lambda:

funct = [](int &i) -> int& {
    ++i;
    return i;
};

As mentioned in the comments another way is

funct = [](int &i) -> decltype(auto) {
    ++i;
    return i;
};

which essentially tells the compiler not to do any deduction and to just use the type as if decltype had been used on the return expression.

If you are curious about the exact rules check the documentation which also has a section on auto and a bit on decltype(auto).

  • 1
    Or use decltype(auto) as return type! That is in contrast to the usage of auto. That is, decltype(auto) ret = i; makes ret as reference to i. – Nawaz Sep 26 '17 at 15:51
  • and people say c++ has obscure , complex syntax. What do they know :-) – pm100 Sep 26 '17 at 16:57

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