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I am writting a programme in java. My key is intwritable and the value is a bitstring 0,1.The size of the bitstring may be 1,000,000 (consist of 0 or 1). What type of data i must use that occupies the least space? Thanks.

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Write your own Writable BitSet! –  Thomas Jungblut Aug 23 '13 at 15:44
    
@Thomas Jungblut: How?How much space does each value occupy? –  user1878364 Aug 23 '13 at 15:55
    
Use the java.util.BitSet, it uses a long to store bits, so 64 bits are packed into a long value. You can use the toLongArray() method to serialize using the ArrayWritable class in Hadoop. –  Thomas Jungblut Aug 23 '13 at 15:58
    
Can you give me a simple example? I i have 1024 0 or 1, How much space does it occupy? –  user1878364 Aug 23 '13 at 16:12
    
Will do, just give a bit of time. 1024/64 * 8 = 128 bytes vs. 1024 bytes as normal byte/boolean encoding vs. 4096 bytes as integer. –  Thomas Jungblut Aug 23 '13 at 16:25

1 Answer 1

up vote 2 down vote accepted

You can use a java.util.BitSet to pack your bits into longs, thus receiving some kind of compression. In the mentioned case of your 1024 bits, you can encode the data using 1024/64=16 longs which occupy 8 bytes thus use only 128 bytes in total.

To implement a Writable you have to implement the same called interface:

public class BitSetWritable implements Writable {

  private BitSet set;

  public BitSetWritable() {
    // default constructor
  }

  public BitSetWritable(BitSet set) {
    this.set = set;
  }
  [...]
}

I have added some convenience constructors here, note that the default construct is a must-have for Hadoop's serialization mechanisms.

After implementing the interface, you are forced to implement two methods: readFields and write:

 @Override
  public void write(DataOutput out) throws IOException {
    long[] longs = set.toLongArray();
    out.writeInt(longs.length);
    for (int i = 0; i < longs.length; i++) {
      out.writeLong(longs[i]);
    }
  }

  @Override
  public void readFields(DataInput in) throws IOException {
    long[] longs = new long[in.readInt()];
    for (int i = 0; i < longs.length; i++) {
      longs[i] = in.readLong();
    }

    set = BitSet.valueOf(longs);
  }

This is pretty straight forward, you write the number of longs allocated in the set (only has 4 bytes overhead) and then the long values of the bitset. When reading back, you do the same backwards.

I have added the full files and a testcase to my library on github if you like to directly copy:

https://github.com/thomasjungblut/thomasjungblut-common/blob/master/src/de/jungblut/writable/BitSetWritable.java

https://github.com/thomasjungblut/thomasjungblut-common/blob/master/test/de/jungblut/writable/BitSetWritableTest.java

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Thanks, it is very helpful. i want to "or" two bitsets.i must add a method in BitSetComparable? –  user1878364 Aug 23 '13 at 17:17
    
You can use the getter of the Writable's internal bitset and the or method of the bitset. –  Thomas Jungblut Aug 23 '13 at 17:22
    
Why is necessary to write readField and write methods? –  user1878364 Aug 23 '13 at 17:28
    
Because that is how Hadoop's serialization system works. –  Thomas Jungblut Aug 23 '13 at 17:37
    
BitSet doesn't have toLongArray() and ValueOf() method. –  user1878364 Aug 23 '13 at 18:30

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