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So I write a lot of JS and I'm a fan of this feature of the syntax. I'm not sure what this would be called, but below is an example.

object.function1().function2().function3()

I'm aware JS can do this because everything is treated as a first class object. But I was wondering if this is possible in C++? also what would a short example of that be?

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1  
Yup. See en.wikipedia.org/wiki/Method_chaining. –  Fred Larson Mar 3 '14 at 1:01
    
You can do this if all function* return the reference of correct object in C++. –  Thomson Mar 3 '14 at 1:03
    
wow, that was a lot more obvious then I thought. @Fred thanks for the link –  MatUtter Mar 3 '14 at 1:05
    
Your comment that 'JS can do this because everything is treated as a first class object' is not correct. Javascript's functional nature has nothing whatsoever to do with enabling method chaining (although it is the reason you can do object.function('what')('the')('heck') - in which object.function() returns a function to which you pass 'the' which in turn returns a function to which you pass 'heck', but I would never want to maintain that code!) I only point it out as the confusion might cause you some sort of subtle problem down the road. –  barry-johnson Mar 3 '14 at 1:14
    
i meant that I don't have to explicitly write the return of the chained JS methods to be the type of the object i want to run the next method of. –  MatUtter Mar 3 '14 at 2:08

2 Answers 2

up vote 4 down vote accepted

In C++, this is a pointer to the instance; you have to dereference it in order to return the instance:

return *this;

And if you want to avoid a copy so you can mutate the same object, you would return a reference. Here's an example:

struct X
{
    X& f() { std::cout << ++x << std::endl; return *this; }                    /*
    ^^                                      ^^^^^^^^^^^^^                      */
private:
    int x = 0;
};

int main()
{
    X x;
    x.f().f().f(); // 1 2 3
}
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good point about returning a reference, otherwise it will return a new copy of X, calling the default copy constructor. –  Omer Mar 3 '14 at 1:08
    
So I want to use this so I can create a chain like object.set().thisVaraible(); I have my function setup like class& set() {return *this; } and this does in fact just create a copy. Any thoughts as to how I might be using this wrong? –  MatUtter Mar 3 '14 at 2:41
    
@MatUtter set() is not returning a copy in that code. Maybe you should post another question with more detail so you can get a comprehensive answer. :) –  0x499602D2 Mar 3 '14 at 3:10
    
Actually there was no problem with it, I was just misinterpreting another weird glitch. Thank you a lot though its exactly what I was looking for :) –  MatUtter Mar 3 '14 at 3:12
    
@MatUtter Great! Glad I could help! =) –  0x499602D2 Mar 3 '14 at 3:13

You mean something like this:

class A{
public:
    A& foo(){ return *this; };
    A& bar() { return *this; };
};

and then

A a;
a.foo().bar();
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