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I am a beginner programmer and I recently came across a data structure BitArray while reading one book (Programming Pearls, to be more precise). I wanted to learn and practice a bit on BitArray as I had no previous knowledge of it. I did a simple implementation in C# (easy things like creating the BitArray, set values, and, or etc), but when I wanted to try in Java, it complained that BitArray is not known. So I searched online and changed BitArray to BitSet. Is BitSet the equivalent of BitArray in Java? Also, I don't quite understand the different meanings of size() and length() in BitSet. Check the code below:

public class Sandbox {

   public static void main(String argv[]) 
   {
       BitSet bitSet1 = new BitSet(16);
       bitSet1.set(0);
       bitSet1.set(8);
       bitSet1.set(15);
       displayBitSet(bitSet1);



   }

   static void displayBitSet(BitSet bitSet)
   {
       for(int i=0;i<bitSet.size();i++)
       {
           boolean bit = bitSet.get(i);
           System.out.print(bit?1:0);
       }
       System.out.println(" "+bitSet.size()+" "+bitSet.length());
   }

}

Output is:

1000000010000001000000000000000000000000000000000000000000000000 64 16

I thought I would get something like

1000000010000001 16 16

Where do these trailing zeroes come from? Can someone explain this to me? thanks~~

  • if you only want 'your' bits printed, loop like for(int i=0;i<bitSet.length();i++). But size() will still return 64. Are you on a 64 bit machine? – jlordo Nov 6 '12 at 7:06
  • 1
    The trailing zeros come from the internal data structure of BitSet. Eventhough you want 16 Bits, it allocates 64, but probably only lets you use the first 16. Would bitSet1.set(28); result in an error? – jlordo Nov 6 '12 at 7:08
  • "Is BitSet the equivalent of BitArray in Java?" - no. Bitset can not contains equivalent items and bit array can... And I think that 64 is buffered size. if you push into set too much the size must automaticly changes – Aleksei Bulgak Nov 6 '12 at 7:09
  • It's X86-based PC. 32-bit – coffeeak Nov 6 '12 at 7:12
  • bitSet1.set(28); does not result in any error...Interestingly enough, when I try bitSet1.set(64); here is the output: 10000000100000010000000000001000000000000000000000000000000000001000000000000000000000000000000000000000000000000000000000000000 128 65 – coffeeak Nov 6 '12 at 7:14
4

answer is quite simple the BitSet constructor just says it generates something which is big enough to the given size, actually it takes some internal size which is best matching.

And in your case this is 64 bit, see JavaDoc

4

If you see the documentation of BitSet#size, it says:

Returns the number of bits of space actually in use by this BitSet to represent bit values. The maximum element in the set is the size - 1st element.

And for BitSet#length:

Returns the "logical size" of this BitSet: the index of the highest set bit in the BitSet plus one. Returns zero if the BitSet contains no set bits.

So, you should use BitSet.length, if you want to get the actual number of bits in your bitset. Because, BitSet.size returns the memory occupied by your BitSet instance.

Also, according to the documentation:

Note that the size is related to the implementation of a bit set, so it may change with implementation

So the size in your case is 64 bit, which can change automatically, when you set bit at index greater than specified length.

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