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I have a function that gives me the error "cannot convert from 'int' to 'int &'" when I try to compile it.

int& preinc(int& x) { 
    return x++;
}

If I replace x++ with x, it will compile, but I'm not sure how that makes it any different. I thought that x++ returns x before it increments x, so shouldn't "return x++" be the same as "return x" with regard to what preinc returns? If the problem is with the ++ operator acting on x, then why won't it generate any error if I put the line "x++" before or after the return statement, or replace x++ with ++x?

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2  
I'd call this "postinc" rather than "preinc".... –  Drew Hall Jun 9 '11 at 11:07
1  
Thank you everyone who answered the question. I didn't realize x++ made a temporary copy. Makes sense now. –  albert einstein Jun 9 '11 at 11:15
    
you are expected to accept one of the answers below. –  Igor Oks Jun 28 '11 at 11:50

3 Answers 3

up vote 11 down vote accepted

x++ creates a temporary copy of the original, increments the original, and then returns the temporary.

Because your function returns a reference, you are trying to return a reference to the temporary copy, which is local to the function and therefore not valid.

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Your function does two things:

  • Increments the x that you pass in by reference
  • Returns a reference to the local result of the expression x++

The reference to a local is invalid, and returning anything at all from this function seems completely redundant.

The following is fixed, but I still think there's a better approach:

int preinc(int& x) {
   return x++; // return by value
}
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Yes, x++ returns x before it is incremented. Therefore it has to return a copy, the copy is a temporary and you can only pass temporaries as constant references.

++x on the other hand returns the original x (although incremented), therefore it will work with your function.

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