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When I do this: count = ++count; Why do i get the warning - The assignment to variable count has no effect ? This means that count is incremented and then assigned to itself or something else ? Is it the same as just ++count ? What happens in count = count++; ? Why don't I get a warning for this ?

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4 Answers 4

up vote 9 down vote accepted

count++ and ++count are both short for count=count+1. The assignment is built in, so there's no point to assigning it again. The difference between count++ (also knows as postfix) and ++count (also known as prefix) is that ++count will happen before the rest of the line, and count++ will happen after the rest of the line.

If you were to take apart count=count++, you would end up with this:

    count = count;
    count = count+1;

Now you can see why postfix won't give you a warning: something is actually being changed at the end.

If you take apart count=++count, you would end up with this:

    count = count+1;
    count = count;

As you can see, the second line of code is useless, and that's why the compiler is warning you.

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I said short for, not identical to. –  LastStar007 Jul 25 '12 at 3:53
    
Right - you're answer was more brief when I made that comment (referring to the value returned by the expression). You turned out a great explanation here +1 –  Paul Bellora Jul 25 '12 at 3:57

Breaking the statement up you are basically writing:

++count;
count = count;

As you can see count=count does nothing, hence the warning.

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the ++ operator is a shortcut for the following count = count + 1. If we break your line count = ++count it responds to count = count+1 = count

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To expand a little, count++ is postfix. It takes place after other operations so if you did something like

int a = 0, b = 0;
a = b++;

a would be 0, b would be 1. However, ++count is prefix if you did

int a = 0, b = 0;
a = ++b;

then a and b would both be 1. If you just do

count++;

or

++count;

then it doesn't matter, but if you are combining it with something else, it will

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