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I am calculating XOR of two short integers using XOR ^ operator in a traditional fashion. Below is the method-

short a=197;
short b=341;
short y = (short) (a ^ b);

However the XOR always returned integer but in my case inputs are short integer, that is why i am casting short to the XOR output. The XOR can be calculated in different manners (example: using BigInteger etc.) but performance wise (less time) which is the best for short integers? While keeping performance in mind, should i first convert each short integer to binary number using Integer.toBinaryString(number) then apply bitwise XOR?

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3 Answers 3

up vote 4 down vote accepted
short s1 = ...
short s2 = ...
short result = (short) (s1 ^ s2);

This is the most efficient way to XOR two shorts together. It does not run into the overhead of creating BigIntegers and the cast will never cause an overflow issue as both s1 and s2 are shorts to begin with.

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It's not really clear what you mean by "convert each short integer to binary number" - a short is already a number, and its representation is naturally binary anyway.

You just want:

short x = ...;
short y = ...;
short z = (short) (x ^ y);

You need the cast as x ^ y will promote both to int, and the result will be an int. However, the result will have to be in the range of a short anyway, so it's safe to perform this cast without losing information.

See section 15.22.1 of the JLS for more information about XOR in particular and section 5.6.2 for information on binary numeric promotion in general.

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@EricJ.: Were you still looking at the version where I didn't have parentheses round the (x ^ y)? I fixed that a while ago :) –  Jon Skeet Mar 24 '12 at 22:21
    
Yep I see the update. Withdrawing the comment :-) –  Eric J. Mar 24 '12 at 22:22
    
@JonSkeet: By ""convert each short integer to binary number"" i meant that should i first convert each short integer to binary string using Integer.toBinaryString(number) then apply bitwise XOR? –  Ravi Joshi Mar 25 '12 at 7:35
    
@RaviJoshi: Why would you want to do that? Why convert it to a string when it's already in binary in memory? Bitwise XOR implies working on bits, not characters, surely... –  Jon Skeet Mar 25 '12 at 8:21
    
@JonSkeet: Ya, i got it now. thank you. short c = (short) (a ^ b); :) Thank you so much. –  Ravi Joshi Mar 25 '12 at 9:02

I'm not 100% sure what you're asking, but hopefully this helps:

Java coerces both operands to type int. That is why the result is an int.

http://java.comsci.us/syntax/expression/bitwisexor.html

so your shorts will be automatically converted to an int, and the XOR operation will be done very efficiently on the integer operands.

If one of the operands is a long, both types are instead coerced to a long. However, that does not apply in your case.

Bottom line, given that both of your inputs are short, if you need a short result, the most efficient thing to do is

short result = (short) (operandA ^ operandB);
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