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This may seem to you a very easy question but I am really stuck.

e = 16 >> 1 >> 2 % 2 == 8

This turns out to be true, but I don't get why. I know that I first do 2%2==0 but then what follows?

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Take a look to Operators Precedence –  Christian Feb 23 '14 at 21:04
    
First, take a look at the precedence table: docs.oracle.com/javase/tutorial/java/nutsandbolts/…, and add parentheses to your expression. Then we'll talk ;) –  Oliver Charlesworth Feb 23 '14 at 21:04
    
This is an exam question, it was just like that, sorry. And I've already read the precedence rules... –  Yoana Feb 23 '14 at 21:10
    
@Yoana: Ok. Have you figured out how you can use the precedence rules to add parentheses to an expression? –  Oliver Charlesworth Feb 23 '14 at 21:14

2 Answers 2

up vote 3 down vote accepted

As you've said, the 2 % 2 gets evaluated first, leaving 16 >> 1 >> 0 == 8. Next comes the first >>, and when you right-shift 16 by one bit, you get 8. So the expression becomes 8 >> 0 == 8.

The next operator is the remaining >>, but now you're right-shifting by zero bits, which of course changes nothing; and the expression is 8 == 8. The last operation is ==, which of course returns true.

Note that when you right-shift an integer by one bit, it's the same as halving its value (and rounding down, if the original integer was odd). Whatever number of bits you right-shift by, you have to halve that many times. For example, 64 >> 3 is the same as 64 / 2 / 2 / 2 which is 8.

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That was just what I needed!! Thank you for the good example! –  Yoana Feb 23 '14 at 22:31

== is (apart from the assignment =) the weakest binding operation, so you have 16 >> 1 >> 0 that is compared to 8, and that is true.

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