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MyClass MyClass::operator++(int) {
    return ++(*this);
}

That's the code I have written. I works correctly, but all tutorials say that I have to create a temporary object and return it:

MyClass MyClass::operator++(int) {
    MyClass tmp = *this;
    ++(*this);
    return tmp;
}

Please tell me which way is the best?

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What you've implemented is pre-increment. –  trutheality Jun 16 '11 at 16:43

4 Answers 4

up vote 5 down vote accepted

Second One! Post Increment means that the variable is incremented after the expression is evaluated.

Simple example:

int i = 10;
int j = i++;

cout<<j; //j = 10
cout<<i; // i = 11

Your First example would make j = 11, which is incorrect.

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The first version is wrong, because it returns the new value. The postincrement operator is supposed to return the old value.

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The tutorials are correct.

Your version returns the wrong value. The post-increment operator is supposed to return the previous value, not the new value. Check for yourself with a plain old int:

int x = 5;
int y = x++;
cout << x << y << endl; // prints 56, not 66.
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That's due to the definition of post-increment operator.

post-increment operator: Increments AFTER the value is used.

pre-increment operator: Increments BEFORE the value is used.

So if you do it your way, the value returned from the function is the incremented one.

The tutorials increment the object itself, but return a non incremented COPY of the object.

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