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I was trying to create a vector of lambda, but failed:

auto ignore = [&]() { return 10; };  //1
std::vector<decltype(ignore)> v;     //2
v.push_back([&]() { return 100; });  //3

Up to line #2, it compiles fine. But the line#3 gives compilation error:

error: no matching function for call to 'std::vector<main()::<lambda()>>::push_back(main()::<lambda()>)'

I don't want a vector of function pointers or vector of function objects. However, vector of function objects which encapsulate real lambda expressions, would work for me. Is this possible?

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10  
"I don't want a vector of function pointers or vector of function objects." But that's what you asked for. A lambda is a function object. –  Nicol Bolas Sep 19 '11 at 22:47
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5 Answers

up vote 63 down vote accepted

Every lambda has a different type- even if they have the same signature. You must use a run-time encapsulating container such as std::function if you want to do something like that.

e.g.:

std::vector<std::function<int()>> functors;
functors.push_back([&] { return 100; });
functors.push_back([&] { return 10; });

I don't want a vector of function pointers or vector of function objects.

Well, I would like a nice high-paying job with a hundred-man developer team to develop all my dreams, but that's not gonna happen either. Oh, and I'd also like a very attractive wife who can cook and clean, since I really can't.

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Post some working example, please! –  Nawaz Sep 19 '11 at 21:12
1  
@Nawaz: What, you don't know how to use std::function? –  DeadMG Sep 19 '11 at 21:16
30  
Managing a hundred-man developer team sounds more like a nightmare to me :) –  Jeremy Friesner Sep 19 '11 at 21:38
6  
Also, don't forget that captureless lambdas ([]-style) can degrade into function pointers. So he could store an array of function pointers of the same type. Note that VC10 doesn't implement that yet. –  Nicol Bolas Sep 19 '11 at 22:48
    
By the way, shouldn't capture-less be used in those examples anyway? Or is it necessary? - By the way, captureless lambda to function pointer seems to be supported in VC11. Didn't test it though. –  Klaim Sep 20 '11 at 9:06
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All lambda expressions have a different type, even if they are identical character-by-character. You're pushing a lambda of a different type (because it's another expression) into the vector, and that obviously won't work.

One solution is to make a vector of std::function<int()> instead.

auto ignore = [&]() { return 10; };
std::vector<std::function<int()>> v;
v.push_back(ignore);
v.push_back([&]() { return 100; });

On another note, it's not a good idea to use [&] when you're not capturing anything.

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3  
Don't need () for lambdas that take no arguments. –  DeadMG Sep 19 '11 at 21:24
    
That's awesome! –  AJG85 Sep 19 '11 at 21:25
2  
@DeadMG right. Was copy pasta :) –  R. Martinho Fernandes Sep 19 '11 at 21:31
3  
@R.MartinhoFernandes: Mmmm, pasta. –  DeadMG Oct 12 '11 at 15:29
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While what others have said is relevant, it is still possible to declare and use a vector of lambda, although it's not very useful:

auto lambda = [] { return 10; };
std::vector<decltype(lambda)> vector;
vector.push_back(lambda);

So, you can store any number of lambdas in there, so long as it's a copy/move of lambda!

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Which could actually be useful if the pushback happens in a loop with different parameters. Presumably for lazy evaluation purposes. –  MaHuJa Dec 26 '11 at 22:49
4  
No you don't put the parameters in the vector, just the function object.. So it would be a vector with all copies of the same lambda –  hariseldon78 Oct 17 '12 at 16:12
    
I've just discovered that lambda is a keyword :s –  paulm Aug 23 '13 at 18:15
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If your lambda is stateless, i.e., [](...){...}, C++11 allows it to degrade into a function pointer. In theory, a C++11 compliant compiler would be able to compile this:

auto ignore = []() { return 10; };  //1 note misssing & in []!
std::vector<int (*)()> v;     //2
v.push_back([]() { return 100; });  //3
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You need to use std::vector<int(*)()> or equivalently make ignore a int(*)(). –  Luc Danton Sep 19 '11 at 22:08
    
@Luc, whups, thanks! updated. –  MSN Sep 19 '11 at 22:10
2  
For the record auto ignore = *[] { return 10; }; would make ignore an int(*)(). –  Luc Danton Sep 19 '11 at 22:19
    
@Luc, oh that is gross! When did they add that? –  MSN Sep 19 '11 at 22:35
2  
Well, since the conversion function that allows to take a function pointer in the first place is mandated to not be explicit, dereferencing a lambda expression is valid and dereferences the pointer resulting from the conversion. Then using auto decays that reference back into a pointer. (Using auto& or auto&& would have kept the reference.) –  Luc Danton Sep 19 '11 at 22:41
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Each lambda is a different type. You must use std::tuple instead of std::vector.

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