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I wonder if it's possible to write a function that returns a lambda function in C++11. Of course one problem is how to declare such function. Each lambda has a type, but that type is not expressible in C++. I don't think this would work:

auto retFun() -> decltype ([](int x) -> int)
{
    return [](int x) { return x; }
}

Nor this:

int(int) retFun();

I'm not aware of any automatic conversions from lambdas to, say, pointers to functions, or some such. Is the only solution handcrafting a function object and returning it?

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To add what's already been said, stateless lambda functions are convertible to function pointers. –  snk_kid Jan 18 '11 at 18:57
1  
IMO your first option won't work since the lambda in the decltype isn't the same as in the function body and therefore has a different type (even if you included the return statement) –  Motti Jan 18 '11 at 21:06
    
By the way, if a lambda has an empty capture clause, it can be implicitly convertible to a pointer to function. –  GManNickG Jan 18 '11 at 21:15
    
@GMan: Unless you are using Visual C++ 2010 or a version of g++ released more than about a year ago (or thereabouts). The captureless-lambda implicit conversion to function pointer wasn't added until March 2010 in N3092. –  James McNellis Jan 19 '11 at 1:43
1  
Lambda expressions in general cannot appear in unevaluated operands. So decltype([](){}) or sizeof([]() {}) is ill-formed no matter where you write it. –  Johannes Schaub - litb Feb 16 '11 at 1:05

3 Answers 3

up vote 43 down vote accepted

You don't need a handcrafted function object, just use std::function, to which lambda functions are convertible:

std::function<int (int)> retFun() {
    return [](int x) { return x; };
}
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4  
Duh! I love StackOverflow. It would have taken me much longer to research the topic then get the answer on StackOverflow. Thanks Sean! –  Bartosz Milewski Jan 18 '11 at 17:44
1  
That is going to cause a memory allocation though in the constructor of std::function. –  Maxim Egorushkin Jan 18 '11 at 21:11
2  
@Maxim Yegorushkin std::function has move semantics plus it can use custom allocators and the C++0x working draft has these notes: "[Note: implementations are encouraged to avoid the use of dynamically allocated memory for small callable objects, for example, where f’s target is an object holding only a pointer or reference to an object and a member function pointer. —end note ]" so basically you can not make many assumptions as to what allocation strategy a particular implementation is using but you should be able to use your own (pooled) allocators anyway. –  snk_kid Jan 18 '11 at 23:58
    
@Sean: you could as well wrap it into boost::any. The question was how to specify the return type. This answer sidesteps the question. –  Maxim Egorushkin Jan 19 '11 at 9:36
1  
@Maxim: My answer was to the question "Is the only solution handcrafting a function object and returning it?" –  Sean Jan 19 '11 at 18:11

For this simple example, you don't need std::function.

From standard 5.1.2/6

The closure type for a lambda-expression with no lambda-capture has a public non-virtual non-explicit const conversion function to pointer to function having the same parameter and return types as the closure type’s function call operator. The value returned by this conversion function shall be the address of a function that, when invoked, has the same effect as invoking the closure type’s function call operator.

Because your function doesn't have a capture, it means that the lambda can be converted to a pointer to function of type int (*)(int):

typedef int (*identity_t)(int); // works with gcc
identity_t retFun() { 
  return [](int x) { return x; };
}

That's my understanding, correct me if I'm wrong.

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1  
This sounds right. Unfortunately, it doesn't work with the current compiler I'm using: VS 2010. std::function conversion happens to work. –  Bartosz Milewski Jan 23 '11 at 20:44
3  
Yes, the final wording of this rule came too late for VC2010. –  Ben Voigt Nov 5 '11 at 17:32
    
I've added code example. Here's a full program. –  J.F. Sebastian Nov 5 '11 at 23:47
    
@J.F.Sebastian - What's the lifetime of the lambda in this example? Is it long enough to outlive the result of the conversion to function pointer? –  Flexo Nov 6 '11 at 0:12
    
@awoodland: Good question. The code does what the words in the answer say. Whether it is correct I don't know. The full program I've linked above works with gcc. –  J.F. Sebastian Nov 6 '11 at 1:38

You can return lambda function from other lambda function, since you should not explicitly specify return type of lambda function. Just write something like that in global scope:

 auto retFun = []() {
     return [](int x) {return x;};
 };
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2  
That's only true when the outer lambda consists of just the return statement. Otherwise you have to specify the return type. –  Bartosz Milewski Dec 16 '11 at 18:59
    
This is the best answer as it doesn't require runtime polymorphism of std::function and allows for lambda to have a non-empty capture list, however I would use const auto fun = ... –  robson3.14 Jul 14 '12 at 15:30

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