4

I have expected both expression's will give same answer:

System.out.println(2^0*2);
System.out.println((2^0)*2);

Output:

2
4

Is there a specific reason why 2^0*2 = 2 and (2^0)*2 = 4?

  • Please restrict yourself to one language only. A question that asks about two language is too broad. – Stephen C Oct 1 '16 at 8:18
  • * has higher precedence than ^. Most likely what you intended was Math.pow(2, 0) * 2 – Peter Lawrey Oct 1 '16 at 10:09
10

You have wrongly assumed that ^ operator behaves the same like the exponentiation in math.

At the first sight you can see that ^ is understood as + operator. Actually it means bitwise XOR operator.

System.out.println(2^0*2);   //  2 XOR 0  * 2 = 2
System.out.println((2^0)*2); // (2 XOR 0) * 2 = 4
System.out.println(2^4);     //  2 XOR 4      = 6

The XOR is exclusive disjunction that outputs true only when inputs differ. Here is the whole trick:

2^0 = 2 XOR 0 = (0010) XOR (0000) = (0010) = 2 
2^4 = 2 XOR 4 = (0010) XOR (0100) = (0110) = 6
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2

check this link

http://bmanolov.free.fr/javaoperators.php

2^0*2=2

  • has higher priority thatn ^ so first you will evaluate 0*2 which is 0 and then xor it with 2 which will resutl 2

(2^0)*2

() has higher priority so you will first evaluate 2^0 then which is 2 then multiply it with 2

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  • and where i exactly mentioned that is power operator, i mentioned that its xor – Amer Qarabsa Oct 1 '16 at 8:31
  • NO check the link it specifies different meanings of '^' – Amer Qarabsa Oct 1 '16 at 8:32
-3

Operator Precedence

In your first example you calculate: 0*2 = 2 ^ 0 = 2

In your second example you calculate: 2 ^ 0 = 2 * 2 = 4

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