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How to set/unset a bit at specific position of a long in Java ?

For example,

long l = 001100 ; (bit representation)

I want to set bit at position 2 and unset bit at position 3 thus corresponding long will be,

long l = 001010 ; (bit representation)

Can anybody help me how to do that ?

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I assume using a BitSet is not an option. –  Peter Lawrey Aug 18 '12 at 7:48
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4 Answers

up vote 18 down vote accepted

Look at: http://www.leepoint.net/notes-java/data/expressions/bitops.html

To set a bit, use:

x |= 0b1; // set LSB bit
x |= 0b10; // set 2nd bit from LSB

to erase a bit use:

x &= ~0b1; // unset LSB bit (if set)
x &= ~0b10; // unset 2nd bit from LSB

to toggle a bit use:

x ^= 0b1;

Notice I use 0b???. You can also use any integer, eg:

x |= 4; // sets 3rd bit
x |= 0x4; // sets 3rd bit
x |= 0x10; // sets 9th bit

However, it makes it harder to know which bit is being changed.

Using binary allows you to see which exact bits will be set/erased/toggled.

To dynamically set at bit, use:

x |= (1 << y); // set the yth bit from the LSB

(1 << y) shifts the ...001 y places left, so you can move the set bit y places.

You can also set multiple bits at once:

x |= (1 << y) | (1 << z); // set the yth and zth bit from the LSB

Or to unset:

x &= ~((1 << y) | (1 << z)); // unset yth and zth bit

Or to toggle:

x ^= (1 << y) | (1 << z); // toggle yth and zth bit
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Sorry, I should mention that I want it to be dynamic means pass position as an argument, not for fixed value. –  Arpssss Aug 18 '12 at 3:37
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The least significant bit (lsb) is usually referred to as bit 0, so your 'position 2' is really 'bit 1'.

long x = 0b001100;  // x now = 0b001100
x |= (1<<1);        // x now = 0b001110 (bit 1 set)
x &= ~(1<<2);       // x now = 0b001010 (bit 2 cleared)
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I would choose BigInteger for this...

class Test {
    public static void main(String[] args) throws Exception {
        Long value = 12L;
        BigInteger b = new BigInteger(String.valueOf(value));
        System.out.println(b.toString(2) + " " + value);
        b = b.setBit(1);
        b = b.clearBit(2);
        value = Long.valueOf(b.toString());
        System.out.println(b.toString(2) + " " + value);
    }
}

and here is the output:

1100 12
1010 10
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Don't use BigInteger. It was not designed for manipulating bits (slow?!?). If you want an arbitrarily length bit container, use bitsets. –  ronalchn Aug 18 '12 at 4:28
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  • Convert long to a bitset
  • Set the bit you need to
  • Convert bitset back to long

See this post BitSet to and from integer/long for methods to convert long to bitset and vice versa

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Using bitsets can work, but I don't recommend converting back and forth just for bit manipulation. Decide if you want to use long or bitset, and stick with it. –  ronalchn Aug 18 '12 at 4:02
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