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Very small piece of code but i am completely surprised with the behavior. I have a 14 byte key which is in a byte array.I put this byte array into a ByteBuffer then doing a getLong gives me a BufferUnderflowException. Can't understand why?

    byte key[] = new byte[14];

    key[13] = (byte) 3;
    key[12] = (byte) 21;
    key[11] = (byte) 1;
    key[10] = (byte) 15;
    key[9]  = (byte) 66;
    key[8]  = (byte) 64;

    key[7]  = (byte) 3;
    key[6]  = (byte) 65;
    key[5]  = (byte) -10;
    key[4]  = (byte) -65;
    key[3]  = (byte) 3;
    key[2]  = (byte) 65;
    key[1]  = (byte) -10;
    key[0]  = (byte) -65;


    ByteBuffer b = ByteBuffer.allocate(14);
    b.put(key);
    long l = b.getLong();
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up vote 1 down vote accepted

In the documentation of "put" the method for other bytebuffers is clarified that the position of the buffer is incremented by the number of put bytes. This seems to be the same for byte arrays. Therefore after your put operation the position in the buffer is at 14 and 0 bytes are left to get a long value which needs 8 bytes.

java doc of "put": "[...]The positions of both buffers are then incremented by n. [...]"

share|improve this answer
    
so i need a rewind ? – sethi Dec 21 '13 at 20:31
    
yes, this assumption is correct – Matthias Kricke Dec 21 '13 at 20:35
ByteBuffer b = ByteBuffer.allocate(14);
b.put(key, 0, key.length);
long l = b.getLong(0); 

you should must specify the index while getting the long

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