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Can lambda's be defined as class members?

For example, would it be possible to rewrite the code sample below using a lambda instead of a function object?

struct Foo {
    std::function<void()> bar;
};

The reason I wonder is because the following lambda's can be passed as arguments:

template<typename Lambda>
void call_lambda(Lambda lambda) // what is the exact type here?
{ 
    lambda();
}

int test_foo() {
    call_lambda([]() { std::cout << "lambda calling" << std::endl; });
}

I figured that if a lambda can be passed as a function argument then maybe they can also be stored as a member variable.

After more tinkering I found that this works (but it's kind of pointless):

auto say_hello = [](){ std::cout << "Hello"; };
struct Foo {
    typedef decltype(say_hello) Bar;
    Bar bar;
    Foo() : bar(say_hello) {}
};
share|improve this question
2  
The type name of a lambda is unknown to you, and generated by the compiler (one per lambda function). The std::function template was introduced precisely as a type eraser for this kind of situations. – Alexandre C. Jul 6 '11 at 19:39
1  
Did you try it? why are you asking us to do it for you? if it errored then come here and post the error too. – Dani Jul 6 '11 at 19:39
1  
Lambdas are function objects! Yes, you can make bar a lambda. – Kerrek SB Jul 6 '11 at 19:39
1  
Some lambdas can also become function pointers. – R. Martinho Fernandes Jul 6 '11 at 19:47
2  
@Dani: Ehm, the standard group itself finished everything, made a FDIS (Final Draft International Standard) in March. All that's left is a sign from ISO. – Xeo Jul 6 '11 at 19:49
up vote 9 down vote accepted

Templates make it possible without type erasure, but that's it:

template<typename T>
struct foo {
    T t;
};

template<typename T>
foo<typename std::decay<T>::type>
make_foo(T&& t)
{
    return { std::forward<T>(t) };
}

// ...
auto f = make_foo([] { return 42; });

Repeating the arguments that everyone has already exposed: []{} is not a type, so you can't use it as e.g. a template parameter like you're trying. Using decltype is also iffy because every instance of a lambda expression is a notation for a separate closure object with a unique type. (e.g. the type of f above is not foo<decltype([] { return 42; })>.)

share|improve this answer
    
except that you cannot have a member variable of function type without knowing its type, ie. without type erasure. – Alexandre C. Jul 6 '11 at 22:15
    
@Alexandre This is not about std::function, assuming you meant that. If you didn't, I don't understand. – Luc Danton Jul 6 '11 at 22:26
    
not necessarily. I just mean that you cannot declare member variables of type foo<T> without knowing T. To do this, you have to erase T somehow. This limits what you can do with your approach (which is good by the way, I learnt about std::decay and it reminded me to use initializer lists when I can). – Alexandre C. Jul 6 '11 at 22:29
1  
@Alexandre That's what the 'without type erasure' means at the top. – Luc Danton Jul 6 '11 at 22:33
1  
In my case, it's important that all functions in the array have the same argument and return types, so vanilla std::function works just fine. I am still wondering about the overhead – Miles Rufat-Latre Jan 24 '14 at 21:24

A lambda just makes a function object, so, yes, you can initialize a function member with a lambda. Here is an example:

#include <functional>
#include <cmath>

struct Example {

  Example() {
    lambda = [](double x) { return int(std::round(x)); };
  };

  std::function<int(double)> lambda;

};
share|improve this answer
5  
Why not use the initializer list?? – Kerrek SB Jul 6 '11 at 21:25
    
Do modern compilers really not optimize that case? – Nevir Dec 26 '13 at 22:52
4  
I didn't put the function in the initializer list in my example on purpose, because I figured that chances are if you're really doing something like the above in a real situation, your lambda would actually be doing captures or something more complex where it wouldn't make sense in the initializer list. But of course you could make this Example() : lambda([](double x) { return int(std::round(x)); }) {} if you want. =) – wjl Dec 27 '13 at 4:04
#include <functional>

struct Foo {
    std::function<void()> bar;
};

void hello(const std::string & name) {
    std::cout << "Hello " << name << "!" << std::endl;
}

int test_foo() {
    Foo f;
    f.bar = std::bind(hello, "John");

    // Alternatively: 
    f.bar = []() { hello("John"); };
    f.bar();
}
share|improve this answer

A bit late, but I have not seen this answer anywhere here. If the lambda has no capture arguments, then it can be implicitly cast to a pointer to a function with the same arguments and return types.

For example, the following program compiles fine and does what you would expect:

struct a {
    int (*func)(int, int);
};

int main()
{
    a var;
    var.func = [](int a, int b) { return a+b; };
}

Of course, one of the main advantages of lambdas is the capture clause, and once you add that, then that trick will simply not work. Use std::function or a template, as answered above.

share|improve this answer

"if a lambda can be passed as a function argument then maybe also as a member variable"

The first is a yes, you can use template argument deduction or "auto" to do so. The second is probably no, since you need to know the type at declaration point and neither of the previous two tricks can be used for that.

One that may work, but for which I don't know whether it will, is using decltype.

share|improve this answer
    
decltype wouldn't work because every occurrence of a lambda expression is of a different type and they're not convertible between them. But apparently you can't even use lambdas in decltype. – R. Martinho Fernandes Jul 6 '11 at 20:02
    
Thanks! I had a hunch it wouldn't work but didn't know. – dascandy Jul 6 '11 at 20:04

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