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I had a perception that, type of a lambda is a function pointer. When I performed following test, I found it to be wrong (demo).

#define LAMBDA [] (int i) -> long { return 0; }
int main ()
{
  long (*pFptr)(int) = LAMBDA;  // ok
  auto pAuto = LAMBDA;  // ok
  assert(typeid(pFptr) == typeid(pAuto));  // assertion fails !
}

Is above code missing any point ? If not then, what is the typeof a lambda expression when deduced with auto keyword ?

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5  
“type of a lambda is a function pointer” – that would be inefficient and miss the whole point of lambdas. –  Konrad Rudolph Oct 31 '11 at 11:42
    
@KonradRudolph, you are correct. I really din't think about this inefficiency point. Thanks. –  iammilind Oct 31 '11 at 11:52
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5 Answers

up vote 39 down vote accepted

The type of a lambda expression is unspecified.

But they are generally mere syntactic sugar for functors. A lambda is translated directly into a functor. Anything inside the [] are turned into constructor parameters and members of the functor object, and the parameters inside () are turned into parameters for the functor's operator().

A lambda which captures no variables (nothing inside the []'s) can be converted into a function pointer (MSVC2010 doesn't support this, if that's your compiler, but this conversion is part of the standard).

But the actual type of the lambda isn't a function pointer. It's some unspecified functor type.

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+1. Interesting post. :-) –  Nawaz Oct 31 '11 at 8:59
    
MSVC2010 doesn't support conversion to function pointer, but MSVC11 does. blogs.msdn.com/b/vcblog/archive/2011/09/12/10209291.aspx –  KindDragon Oct 31 '11 at 17:04
5  
+1 for "mere syntactic sugar for functors." Much potential confusion can be avoided by remembering this. –  Ben Oct 31 '11 at 19:13
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It is a unique unnamed structure that overloads the function call operator. Every instance of a lambda introduces a new type.

In the special case of a non-capturing lambda, the structure in addition has an implicit conversion to a function pointer.

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Nice answer. Much more precise than mine. +1 :) –  jalf Oct 31 '11 at 9:17
1  
+1 for the unicity part, it's very surprising at first and merit attention. –  Matthieu M. Oct 31 '11 at 9:41
3  
Unicity? Is that what other people call uniqueness? ;) –  jalf Oct 31 '11 at 12:10
    
Not that it really matters, but is the type really unnamed, or is it just not given a name until compilation time? IOW, could one use RTTI to find the name the compiler decided upon? –  Ben Oct 31 '11 at 19:17
1  
@Ben, it is unnamed and as far as the C++ language is concerned, there is no such thing as "a name the compiler decides upon". The result of type_info::name() is implementation-defined, so it may return anything. In practice, the compiler will name the type for the sake of the linker. –  avakar Oct 31 '11 at 19:46
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[C++11: 5.1.2/3]: The type of the lambda-expression (which is also the type of the closure object) is a unique, unnamed non-union class type — called the closure type — whose properties are described below. This class type is not an aggregate (8.5.1). The closure type is declared in the smallest block scope, class scope, or namespace scope that contains the corresponding lambda-expression. [..]

The clause goes on to list varying properties of this type. Here are some highlights:

[C++11: 5.1.2/5]: The closure type for a lambda-expression has a public inline function call operator (13.5.4) whose parameters and return type are described by the lambda-expression’s parameter-declaration-clause and trailing-return-type respectively. [..]

[C++11: 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.

The consequence of this final passage is that, if you used a conversion, you would be able to assign LAMBDA to pFptr.

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A practical solution from How can I store a boost::bind object as a class member?, try boost::function<void(int)> or std::function<void(int)>.

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Be aware of the performance cost of this, however (a virtual function call is incurred every time the function is called). –  HighCommander4 Jul 3 '12 at 0:36
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#include <iostream>
#include <typeinfo>

#define LAMBDA [] (int i)->long { return 0l; }
int main ()
{
  long (*pFptr)(int) = LAMBDA;  // ok
  auto pAuto = LAMBDA;  // ok

  std::cout<<typeid( *pAuto ).name() << std::endl;
  std::cout<<typeid( *pFptr ).name() << std::endl;

  std::cout<<typeid( pAuto ).name() << std::endl;
  std::cout<<typeid( pFptr ).name() << std::endl;
}

The function types are indeed same, but the lambda introduces new type (like a functor).

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