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It's a simple counter. The method add is being called to increment the private variable count by 1 by default. I am returning the Counter class from the function so that it may be chained, but when I look at the output, it gives me 1 when I expect it to be 3 because I called add three times.

#include <iostream>
#include <vector>

using std::cout;

class Counter {
    public:
        Counter() : count(0) {}

        Counter add() {
            ++count; return *this;
        }

        int getCount() {
            return count;
        }
    private:
        int count;
};

int main() {

    Counter counter;

    counter.add().add().add();

    cout << counter.getCount();

}
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2  
Returning Counter makes a copy. –  chris Aug 17 '12 at 19:04
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1 Answer

up vote 12 down vote accepted

The whole idea of chaining idiom is based on accessing the same, original object in each chained call. This is usually achieved by returning a reference to the original object from each modifying method. This is how your add should have been declared

    Counter &add() { // <- note the `&`
        ++count; return *this;
    }

That way, each application of add in your chained expression will modify the same, original object.

In your original code, you return a temporary copy of the original object from add. So, each additional application of add (after the first one) works on a temporary copy, modifies that copy and produces yet another temporary copy. All those temporary copies disappear without a trace at the end of the full expression. For this reason, you never get to see the effects of any add calls besides the very first one.

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What if there was an asterisk (*) prefixing add: Counter *add() {... What would that mean? –  template boy Aug 17 '12 at 19:48
    
@user6607 It means your returning a pointer of Counter. You could accomplish the same thing if you return this and change counter.add().add().add() to counter->add()->add()->add() –  MartyE Aug 17 '12 at 20:31
3  
@MartyE: It would be counter.add()->add()->add() in that case. The first one would still be a .. –  AndreyT Aug 17 '12 at 20:33
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