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I would assume in java all the bit-wise operators have the same precedence. However in fact the bit-wise operator AND (&) has higher precedence than the bit-wise operator OR (|). See the program below:

public class HelloWorld {

public static void main(String[] args) {

    int a = 1 | 2 ^ 3 & 5;
    int b = ((1 | 2) ^ 3) & 5;
    int c = 1 | (2 ^ (3 & 5));

    System.out.print(a + "," + b + "," + c);
}

}

The result of the above program is 3,0,3. So it also proves that XOR (^) has higher precedence. Could someone explain a bit why XOR (^) has higher precedence than OR (|) according to the result of the above result? How do they define the precedence?

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Thanks for the answers – LearnFromGenius Nov 20 '13 at 0:02
    
The precedences of bit operations are so counter-intuitive that you should always use parentheses. – starblue Nov 20 '13 at 22:10

Because & is defined to have higher precedence than ^, and ^ is defined to have higher precedence than |.

Look at oracle's java tutorial.

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In Java, bitwise operators have different precedences as defined by the Java specification:

These [bitwise] operators have different precedence, with & having the highest precedence and | the lowest precedence.

So & comes before ^ and ^ comes before |.

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