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why doesn´t ((num / i) % 1 == 0) work in C++ when num is a double? and how would I instead write this code, that checks for factorials by checking if it leaves a remainder (etc 0.3333).

int getFactorials (double num)
{
    int total = 0;      // if (total / 2) is equal too 'num' it is a perfect number.

    for (int i = 1; i < num; i++)
    {
        if ((num / i) % 1 == 0)
        {
            cout << i << endl;
        }
    }
    return 0;
}
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1  
add a cast to integer type before doing the modulo. –  didierc Nov 9 '12 at 9:31
    
Do you mean factorial or factor? –  user93353 Nov 9 '12 at 9:33
    
Factors i guess. I mix them up –  Tom Lilletveit Nov 9 '12 at 9:40
1  
@didierc: if i cast the double (num) to a integer, thus algorithm will not work –  Tom Lilletveit Nov 9 '12 at 9:41
    
This looks wrong anyway. " doing % 1" returns the remainder when dividing by one. Which will always be zero. –  jcoder Nov 9 '12 at 9:44

4 Answers 4

up vote 5 down vote accepted

Actually what you want to do is check if n is divisible by i so all you have to change is

if ((num / i) % 1 == 0)

into

if (num % i == 0) 

You should know that this is error-prone because you are using double as a type for num. You should use an int instead.

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Shouldn't (num / i) % 1 == 0 work too? (if rounding errors didn't exist) –  irrelephant Nov 9 '12 at 9:33
    
if (num % i == 0) would not work. for example if I divide 28 by 4 the answer is 7 not zero, but 4 is an divisor of 28 –  Tom Lilletveit Nov 9 '12 at 9:38
1  
@TomLilletveit The % operator gives you the remainder of the division of n by i, so if i divides n it will give you zero. –  alestanis Nov 9 '12 at 9:50
    
ahh yes... I think your right –  Tom Lilletveit Nov 9 '12 at 9:55
    
Note that casting to int doesn't work unless the double is really supposed to be close to an integer value. And since floating point numbers don't represent integers exactly once the exponent part is large, they shouldn't be used as such. Use long long for large integers. –  Potatoswatter Nov 9 '12 at 10:05

The % operator is only allowed on integral types (and user defined types which overload it). For floating point, you need the function fmod.

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The % operator is defined by C++11 §5.6/4:

if the quotient a/b is representable in the type of the result, (a/b)*b + a%b is equal to a.

This is meaningless for floating point types. The definition of modulus depends on division rounding to an integer.

As James Kanze says, use std::fmod instead.

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This code return you a double object

(num / i)

modulo operation is allowed only for int type. You can convert this to int type

( ((int) (num / i) ) % i)
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