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Given the Following code:

public class Something {
public static void main(String[] args) {
    int num = 1;

    num <<= 32;
    System.out.println(num); 

    num = 1;
    for (int i = 0 ; i < 32; i++)
        num <<= 1;
    System.out.println(num);
}
}

The first output (from num <<= 32) is 1.

and the second output (from the for loop) is 0.

I dont get it.. it looks the same to me.. both ways shift the "1" digit (lsb) 32 times and the results are different.

Can anyone explain?

Thanks in advance.

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up vote 5 down vote accepted

Can anyone explain?

Absolutely. Basically, shift operations on int have the right operand masked to get a value in the range [0, 31]. Shift operations on long have it masked to get a value in the range [0, 63].

So:

num <<= 32;

is equivalent to:

num <<= 0;

From section 15.19 of the JLS:

If the promoted type of the left-hand operand is int, only the five lowest-order bits of the right-hand operand are used as the shift distance. It is as if the right-hand operand were subjected to a bitwise logical AND operator & (§15.22.1) with the mask value 0x1f (0b11111). The shift distance actually used is therefore always in the range 0 to 31, inclusive.

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See JLS 15.19 for more details. – Louis Wasserman Mar 18 '13 at 19:18
    
@LouisWasserman: Yup, was getting there :) – Jon Skeet Mar 18 '13 at 19:18
    
Perfect. thank you very much. got it. – Rouki Mar 18 '13 at 19:19

For bit shift operators on int, only the 5 lowest order bits are used. So << 32 does nothing; it's equivalent to << 0, because the last 5 bits of 32 are 0. But the << 1 operations in the loop each perform as expected.

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