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For instance I have

class A {
    int x, y;

and I would like to make that func be something like

int main()
    A a;
    a.func = [this](){return x + y;};

or something like that. That would mean that I can create method "func" during runtime and decide what it is. Is it possible in C++?

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1 Answer 1

up vote 1 down vote accepted

It is sorta possible but only using captures which would mean you would need to use std::function<> instead. It wont have nice 'this' behavior like you wanted I think

struct A {
  int x, y;
  std::function<int()> func;

and then code like this

int main() {
    A self;
    test.func = [&self](){ return self.x + self.y; };

I never say never in C++ (even with goto) but I'm rather unsure that this would actually be a good way to do things. Yes, you CAN do this but are you sure there isn't a better way? Food for thought.

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Or make the lambda receive a parameter of type A, although that's not particularly more elegant. –  Anthony Vallée-Dubois Aug 13 '13 at 17:54
Jake, so the only way is to pass it as an argument or to make visible? It's so sad, I thought that it's possible to do like in JS. –  Artem Aug 13 '13 at 17:58
That would require you to call it like test.func(test) which reminds me too much of me trying to mimic OOP in C lol. –  Jake Aug 13 '13 at 17:59
And is it going to work fine if I have an array: A a[10]; for (int i = 0; i < 10; i++) a[i].func = [a[i]](){ a[i].x=5;}; –  Artem Aug 13 '13 at 18:01
@Artem: Well I'm certain that 'this' is not in scope outside of a member function definition and that it would be an error to use it elsewhere. I'm also certain that if you want to avoid 'test.func(test)' you either have to capture the variable or partially apply it using std::bind. either way you don't get 'this' –  Jake Aug 13 '13 at 18:02

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