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A point from ISO draft n3290 section 5.1.2 paragraph, point 19:

The closure type associated with a lambda-expression has a deleted (8.4.3) default constructor and a deleted copy assignment operator. It has an implicitly-declared copy constructor (12.8) and may have an implicitly declared move constructor (12.8). [ Note: The copy/move constructor is implicitly defined in the same way as any other implicitly declared copy/move constructor would be implicitly defined. —end note ]

Can any one please ....tell some example for this point to understand?

Is there any chance/way to check the Closure object(type)?

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2 Answers 2

up vote 29 down vote accepted

The closure type associated with a lambda-expression has a deleted (8.4.3) default constructor

int main() {
    auto closure = [](){};
    typedef decltype(closure) ClosureType;

    ClosureType closure2;   // <-- not allowed

    return 0;
}

and a deleted copy assignment operator. It has an implicitly-declared copy constructor (12.8) and may have an implicitly declared move constructor (12.8).

#include <utility>

int main() {
    auto closure = [](){};
    typedef decltype(closure) ClosureType;

    ClosureType closure2 = closure;   // <-- copy constructor
    ClosureType closure3 = std::move(closure);  // <-- move constructor
    closure2 = closure3;              // <-- copy assignment (not allowed)

    return 0;
}
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+1. I was about to post that. But you already did that. –  Nawaz May 31 '11 at 11:39
    
Thanks for your answer ..Is there any way/chance of explaing ..this point ..in terms of a class Example –  user751747 May 31 '11 at 13:30
    
@user: Which point? And what do you mean by "Class example"? –  kennytm May 31 '11 at 14:38
    
I believe that this is well-formed though: auto closure = []{}; decltype(closure) c{};. That may be changed by a defect report for C++0x rev1 though. –  Johannes Schaub - litb Jun 2 '11 at 7:59
struct LambdaExample{
  // deleted operations = not allowed
  LambdaExample() = delete;
  LambdaExample& operator=(LambdaExample const&) = delete;

  // generated by the compiler:
  LambdaExample(LambdaExample const& other);
  LambdaExample(LambdaExample&& other);

  // anything else a lambda needs
};

For your second question, if you mean that you can look into the implementation, then nope, not possible. It's created on-the-fly by the compiler. If you mean to get the type of the lambda, sure:

auto l = [](){};
typedef decltype(l) closure_type;
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yes the closure obj type is created on-the-fly by the compiler..atleast is there any chance to check whether it exists or not –  user751747 May 31 '11 at 11:40
    
@user: What do you mean with "exists"? –  Xeo May 31 '11 at 11:41

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