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Possible Duplicate:
int divided by unsigned int causing rollover

Hi I am doing the following:

struct coord{
    int col;

};


int main(int argc, char* argv[]) {

    coord c;
    c.col = 0; 

    std::vector<coord> v;

    for(int i = 0; i < 5; i++){
        v.push_back(coord());
    }

    c.col += -13;


    cout << " c.col is " << c.col << endl;
    cout << " v size is " << v.size() << endl;

    c.col /= v.size();


    cout << c.col << endl;

}

and I get the following output:

 c.col is -13
 v size is 5
858993456

However, if I change the division line to c.col /= ((int)v.size()); I get the expected output:

 c.col is -13
 v size is 5
-2

Why is this?

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marked as duplicate by Steve Jessop, Paul R, billz, AProgrammer, Tadeusz Kopec Jan 10 '13 at 11:52

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

4 Answers 4

This is a consequence of v.size() being unsigned.

See int divided by unsigned int causing rollover

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so the standard way of doing this is c.col /= (int)v.size(). Is there no method on vector that returns a signed integer size? –  Aly Jan 10 '13 at 10:31
    
@Aly: I think the explicit cast is the way to go. –  NPE Jan 10 '13 at 10:33
    
Better to cast the numerator up to a size_t though, rather than narrowing the denominator by casting it to int. –  Paul R Jan 10 '13 at 10:34
    
@PaulR: But aren't we specifically talking about the case when the numerator is negative? That's when the problem arises. –  NPE Jan 10 '13 at 10:35
1  
@NPE: oops - my bad - in that case I'm not sure what the "best" solution is - I'm not 100% comfortable with truncating the denominator to an int though. –  Paul R Jan 10 '13 at 10:36

The problem is that vector< ... >::size() returns size_t, which is a typedef for an unigned integer type. Obviously the problem arises when you divide a signed integer with an unsigned one.

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std::vector::size returns a size_t which is an unsigned integer type, usually unsigned int. When you perform an arithmetic operation with an int and an unsigned int, the int operand is converted to unsigned int to perform the operation. In this case, -13 is converted to unsigned int, which is some number close to 4294967295 (FFFFFFFF in hexadecimal). And then that is divided by 5.

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As stated, the reason is that a signed / unsigned division is performed by first converting the signed value to unsigned.

So, you need to prevent this by manually converting the unsigned value to a signed type.

There's a risk that v.size() could be too big for an int. But since the dividend does fit in an int, the result of the division is fairly boring when the divisor is bigger than that. So assuming 2's complement and no padding bits:

if (v.size() <= INT_MAX) {
    c.col /= int(v.size());
} else if (c.col == INT_MIN && v.size() - 1 == INT_MAX) {
    c.col = -1;
} else {
    c.col = (-1 / 2);
}

In C++03, it's implementation-defined whether a negative value divided by a larger positive value is 0 or -1, hence the funny (-1 / 2). In C++11 you can just use 0.

To cover other representations than 2's complement you need to deal with the special cases differently.

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