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How do I perform a mod operation between two integers in C++?

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Is there a term for a post where googling the title yields the answer? –  msw Apr 5 '10 at 22:43
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And.. click here if you don't mind stackoverflow being the ultimate resource, even for easy questions. –  Greg Krsak Feb 4 '13 at 20:20

6 Answers 6

up vote 10 down vote accepted

Like this: x=y%z

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Except that the result is negative for a negative dividend. –  Potatoswatter Apr 5 '10 at 23:12
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@Potatocorn maybe, maybe not. That's implementation-defined. –  wilhelmtell Apr 6 '10 at 0:14
    
@wilhelmtell: 5.6/4: "(a/b)*b + a%b is equal to a", so round-toward-zero (the overwhelmingly popular implementation, for better or worse) implies that, and it is mandated by C++0x. –  Potatoswatter Apr 6 '10 at 0:35
    
Round towards zero is mandated by c++0x, but not c++03. In both standards, your formula must hold true, but the sign of a%b depends on how integral division is implemented. The sign is well defined as non-negative only if a and b are both non-negative. –  Dennis Zickefoose Apr 6 '10 at 0:41
    
@Potatocorn Implementation. Defined. –  wilhelmtell Apr 6 '10 at 0:42

In c++, use % operator

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As the other answers have stated, you can use the C++ % operator. But be aware that there's a wrinkle no one has mentioned yet: in the expression a % b, what if a is negative? Should the result of this operation be positive or negative? The C++ standard leaves this up to the implementation. So if you want to handle negative inputs portably, you should probably do something like r = abs(a) % b, then fix up the sign of r to match your requirements.

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That's assuming you want the implied div operation to be round-towards-zero. If you want round-towards-negative-infinity, then you'll want r = (unsigned(a) + offset * b) % b, where offset is big enough for a + offset * b to always be positive. –  Mike DeSimone Apr 5 '10 at 23:19

C++ has the % operator, occasionally and misleadingly named "the modulus" operator. In particular the STL has the modulus<> functor in the <functional> header. That's not the mathematical modulus operator, mind you, because in modulus arithmetics a mod b by definition evaluates to a non-negative value for any value of a and any positive value of b. In C++ the sign of the result of a % b is implementation-defined if either of the arguments is negative. So, we would more appropriately name the % operator the remainder operator.

That said, if you truly want the mathematical modulus operator then you can define a function to do just that:

template<typename V>
V mod(const V& a, const V& b)
{
    return (a % b + b) % b;
}

So long as b is a positive value a call to the above function will yield a non-negative result.

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2  
No one else mentions how % is essentially a remainder operator in C++, and fail to provide a modulus implementation that wraps around properly given a negative input value for a. This is the best answer. –  leetNightshade Sep 20 '12 at 17:22

Using the modulus % operator :

int modulus_a_b = a % b;
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1  
a and b are integers... so why double? modulus_a_b should be the same type as a and b. –  Mike DeSimone Apr 5 '10 at 22:42
    
@Mike: well, a % b will be either int, or else the same type as at least one of a and b. So you have a few choices for the type of modulus_a_b, depending on context :-) –  Steve Jessop Apr 5 '10 at 22:50
    
@Steve: But only one of those choices is the type that the % operator returns. All the others imply a typecast, er, static_cast<>. double is certainly one of the latter. Also, using double means using the slowest math available (unless there's a long double type, dog forbid)... –  Mike DeSimone Apr 5 '10 at 23:13
    
Woups, fixed, I used too much double recently... –  Klaim Apr 5 '10 at 23:16
    
The reason I said a lot of choice is because for instance the result of short % short is an int, not a short, but depending on context it probably makes more sense to use it as a short. So there's a conflict between "the same type as a and b" vs "avoiding an implicit conversion". –  Steve Jessop Apr 6 '10 at 10:38

if you use double variable, you should use;

double x;
double y;
double result = fmod(x, y);
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