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How do I check if an integer is even or odd?

How would I determine whether a given number is even or odd? I've been wanting to figure this out for a long time now and haven't gotten anywhere.

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marked as duplicate by templatetypedef, minitech, Sayem Ahmed, R. Martinho Fernandes, Andrew Thompson Sep 8 '11 at 1:41

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.

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Have you thoroughly searched for an answer before asking your question? –  R. Martinho Fernandes Sep 8 '11 at 1:41
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The irony in this comment is that, as of today (almost three years later), the #1 Google answer to "Java odd even" is this question. :) –  Chris Jun 26 at 6:20
    
Check out here : Java program to check even or odd –  ARJUN Oct 15 at 7:45

6 Answers 6

Every even number is divisible by two, regardless of if it's a decimal (but the decimal, if present, must also be even). So you can use the % (modulo) operator, which divides the number on the left by the number on the right and returns the remainder...

boolean isEven(double num) { return ((num % 2) == 0) }
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You can use the modulus operator, but that can be slow. If it's an integer, you can do:

if ( x & 1 == 0 ) { even... } else { odd... }

This is because the low bit will always be set on an odd number.

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I had got a compile error unless I used if ( (x & 1) == 0 ) .... –  ggkmath Jul 4 '13 at 14:54
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It still amazes me that people prefer modulus over simply checking the first bit of the number. Obviously if the first bit is set, then the number must be odd. It's usually faster, and it reads just as well in my opinion. I think the reason others don't prefer it over modulus comes down to a lack of understanding of binary. –  crush Feb 13 at 21:47
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@crush The compiler/JVM is (probably) smart enough to optimize N % 2. Premature optimization is the root of all evil... –  dtech May 5 at 9:22
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@crush n % 2 == 0 semantically means Divide by 2 and check if the remainder is 0, which is much clearer than n & 1 == 0 which means Zero all the bits but leave the least significant bit unchanged and check if the result is 0. The improved clarity of the first is worth the (probably non-existant) overhead. That is what I meant with premature optimization. If something is slow and you profile it in that part changing n % 2 to n & 1 is certainly justified, but doing it beforehand isn't. In general working with the bit operators is a bad idea before profiling. –  dtech May 5 at 12:36
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@dtech First of all, your opinion is completely subjective. Second of all, you still don't understand what "premature optimization" means. It is a micro optimization, sure. It's not a premature optimization. Premature optimization is revising existing code with "optimizations" without first profiling the existing code to see that it is inefficient. However, knowing beforehand that writing code one way vs. another way is more efficient, and choosing to use the more efficient code, is NOT premature optimization. It is your subjective opinion that n % 2 == 0 is cleaner than n & 1 == 0. –  crush May 5 at 13:49
if((x%2)==0)
   // even
else
   // odd
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The modulus operator, %, will give you the remainder after dividing by a number.

So n % 2 == 0 will be true if n is even and false if n is odd.

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Use i % 2 == 0 to test if i is even.

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If the remainder when you divide by 2 is 0, it's even. % is the operator to get a remainder.

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The % operator is called modulo. –  Anthony Sep 8 '11 at 1:37
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Or you can simply test (num & 1) == 0, which will imply evenness..... –  Sayem Ahmed Sep 8 '11 at 1:38
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@Anthony: Actually, it's the "remainder operator". –  Ryan Stewart Sep 8 '11 at 1:41
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The mathematical term is modulus, and it has wider-applicability than getting the remainder. (A % B) itself can be used as an expression, and that's when things get fun. –  Stefan Kendall Sep 8 '11 at 1:59
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@Stefan: I won't belabor the point, but mathematicians tend to point out that in modular arithmetic the modulus and the remainder aren't the same thing. –  Ryan Stewart Sep 8 '11 at 2:07

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