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In Java, is there any functional or performance difference between using the % operator to get the remainder of an integer division x / y, and the Math.IEEEremainder( x, y ) method?

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Check this out:… – Jose Antonio Nov 3 '11 at 16:23
Check out the relevant JLS section where it is defined. – EJP Dec 21 '14 at 2:29

2 Answers 2

up vote 7 down vote accepted

Apart from the type difference already pointed out by John B, there's a significant difference in semantics, too. Math.IEEEremainder(x, y) returns x - n * y where n is the closest integer to x / y (taking the even integer in the case of a tie), while x % y returns x - n * y where n is the integer part of x / y (i.e., n is the result of rounding the true value of x / y towards zero, instead of towards nearest).

To illustrate the difference: Math.IEEEremainder(9.0, 5.0) would be -1.0, since the closest integer to 9.0 / 5.0 is 2, and 9.0 - 2 * 5.0 is -1.0. But 9.0 % 5.0 would be 4.0, since the integer part of 9.0 / 5.0 is 1 and 9.0 - 1 * 5.0 is 4.0.

Here's the official documentation for Math.IEEEremainder.

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Math.IEEEremainder accepts and returns doubles and should therefore be used when you want a double result. If you want the modulus, use % as it gives an int and would be more efficient than double arithmetic.

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The result of % between two floating-point values cannot possibly be an int, as NaN is one of the possible results. – EJP Dec 21 '14 at 2:27

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