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I have the following piece of code for a custom String class:

const String &String::operator+(const String &right)
{
   String temp;
   temp.length = length + right.length;
   temp.sPtr = new char [temp.length + 1];
   assert( sPtr != 0 );
   strcpy(temp.sPtr, sPtr);
   strcat(temp.sPtr, right.sPtr);
   return temp;
}

where sPtr is a char*.

But, when I execute this function on two strings, I get garbage characters as a result, like this:

 ]√Hâ«Ö“x˘" = "The date is" + " August 1, 1993

I don't have the slightest clue what is happening. I've read a couple of testimonials of people who have gotten garbage characters before the resulting string is concatenated, but I don't understand at all why the entire string would be garbage characters.

Any help would be really great. Thanks in advance!

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6  
You're returning a local object by reference. Don't do that. Drop the & from the return type. –  Benjamin Lindley Oct 25 '12 at 22:13
1  
Thank you, other Benjamin! It's always the small, overlooked bits that are the hardest to catch. –  Benjamin Kovach Oct 25 '12 at 22:15
1  
@Benjamin Kovach: I'm not a Behjamin, but I'll add my 2 cents anyway: now you have to make sure you are following "the rule of three". en.wikipedia.org/wiki/Rule_of_three_(C%2B%2B_programming) –  AnT Oct 25 '12 at 22:18
    
@BenjaminKovach I wouldn't recommend strcat/strcpy here, you are after all storing an internal length for your string, so use it when you do your memory copying, rather than relying on null termination. –  Benj Oct 25 '12 at 22:20
1  
Oh, p.s. I'm a third Benjamin. –  Benj Oct 25 '12 at 22:21

1 Answer 1

up vote 4 down vote accepted

Don't return an object by reference that is 'temporary'. Once the function ends the temp string is de-allocated, and since the string is set to temps address it becomes garbage.

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