8

I was wondering, if there's a way to get the types/values of the captured variables of a lambda? - The usage scenario would be something alike;

int a = 5;
auto lamb = [a](){ return a; };
static_assert(std::is_same<typename get_capture_type<0>(lamb)::type, int>::value, "");
assert(get_capture_value<0>(lamb) == 5)

Note: get_capture_*<N>(lambda) should obviously result in a compiler error, when N > #captured_variables.

What I need is actually just a way to access the captures somehow, if possible. That is, I can do the template meta-programming myself.

19
  • 4
    No.​​​​​​​​​​​​​​​​​​
    – Rapptz
    Nov 13, 2013 at 19:55
  • 11
    That usage scenario doesn't sound like anything any real code would ever need. Nov 13, 2013 at 19:56
  • 6
    @Skeen: How is that different from not being able to peek into the private variables of the function object I hand you?
    – Xeo
    Nov 13, 2013 at 20:04
  • 4
    Why would private members make any difference outside of the class itself? The outside world has no business making assertions about my implementation details. Isn't that what public vs private is all about? Nov 13, 2013 at 20:32
  • 4
    @Skeen: Let me turn that question around: do you have any use case in which knowing what was captured matters? The whole purpose of a lambda or a bound object or a functor is the interface that it implements, how can it be called. What it does when called does not matter for the user. If you need to check an argument, don't capture it, pass it as an argument, have the caller test it and then use it to call the lambda. (Or alternatively write your own functor and provide the access you want) Nov 13, 2013 at 21:51

3 Answers 3

16

It's not possible by design

5.1.2 [expr.prim.lambda]
15 [...] For each entity captured by copy, an unnamed non-static data member is declared in the closure type. The declaration order of these members is unspecified. [...]
16 [...] It is unspecified whether additional unnamed non-static data members are declared in the closure type for entities captured by reference.

Captured variables are unnamed (or at least have names that are unspeakable by mortals) and their declaration order is deliberately unspecified. By-reference captures may not even exist in the closure type.

You don't want to do this anyway. You may think you do, but you don't really.

1
  • This is the answer I was looking for.
    – Skeen
    Nov 15, 2013 at 1:35
5
+100

No. C++ has no reflection, and that means it doesn't have reflection on lambda's either.

0
0

As mentioned in other answers, this might not be possible because lambda fields are unnamed.

You could write your own function object, though. A struct with the fields you'd capture and an operator().

In your case, i suspect the following would work:

#include <cassert>
#include <type_traits>

struct mylambda {
    int a;
    int operator()() { return a; }
};

int main()
{
    int a = 5;
    auto lamb = mylambda{a};
    static_assert(std::is_same<decltype(lamb.a), int>::value, "");
    assert(lamb.a == 5);
    return 0;
}

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