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I'm trying to implement a protocol and currently have problems with this step:

The big-endian binary representation of the sequence number SHALL be placed in a 16-octet buffer and padded (on the left) with zeros.

The sequence number is an int.

I think the correct way to create the 16-octet buffer is like this:

buf := make([]byte, 16)

However, I'm not sure how to place the sequence number in the buffer so it follows the requirements above?

1

It sounds like you want something like this:

func seqToBuffer(seq int) []byte {
    buf := make([]byte, 16)
    for i := len(buf) - 1; seq != 0; i-- {
        buf[i] = byte(seq & 0xff)
        seq >>= 8
    }
    return buf
}
  • Thanks. This does exactly what I want. Is this the most simple way it can be done? – John Smith Sep 18 '16 at 3:18
  • You can use one of the binary.BigEndian.PutUint*. You just need to pick a fixed size for the sequence number and write it to the appropriate place in the buffer. For example: binary.BigEndian.PutUint64(buf[8:], uint64(seq)) – Andy Schweig Sep 18 '16 at 5:05

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