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In Python, I'm constantly using the following sequence to get an integer value from a byte buffer (in python this is a str).

I'm getting the buffer from the struct.unpack() routine. When I unpack a 'char' using

byte_buffer, = struct.unpack('c', raw_buffer)
int_value = int( byte_buffer.encode('hex'), 16 )

Is there a better way?

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Can you tell us why you need the byte buffer as a python integer? – Unknown May 28 '09 at 1:48
    
I'm typically pulling the value out of binary packet stream. – Noah Campbell May 28 '09 at 1:51
    
So is the integer value bounded or unbounded? – Unknown May 28 '09 at 1:56
    
Bounded to 1 byte – Noah Campbell May 28 '09 at 2:13
up vote 2 down vote accepted

Bounded to 1 byte – Noah Campbell 18 mins ago

The best way to do this then is to instantiate a struct unpacker.

from struct import Struct

unpacker = Struct("b")
unpacker.unpack("z")[0]

Note that you can change "b" to "B" if you want an unsigned byte. Also, endian format is not needed.

For anyone else who wants to know a method for unbounded integers, create a question, and tell me in the comments.

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Ahh...using the b vs. B returns an integer. (Flips to the python docs and realizes he needed to keep reading...) – Noah Campbell May 28 '09 at 4:13

If we're talking about getting the integer value of a byte, then you want this:

ord(byte_buffer)

Can't understand why it isn't already suggested.

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Perhaps because struct is more likely to be the correct answer for other parts of his problem, if reading various pieces of data from a byte stream. – Kylotan May 29 '09 at 11:35
    
I was going to suggest this, but the asker didn't specify whether or not it would be signed or unsigned, so struct is the best option. – Unknown May 29 '09 at 20:24

The struct module is good at unpacking binary data.

int_value = struct.unpack('>I', byte_buffer)[0]
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Noah didn't specify that the number will always be from 0 to unsigned int. – Unknown May 28 '09 at 1:46
    
@Unknown: The code Noah pasted seems to do exactly that. – nosklo May 28 '09 at 2:28
    
@nosklo, no, the code he pasted accepts unbounded integers. Try int( ("a"*500).encode('hex'), 16 ) for proof. – Unknown May 28 '09 at 2:37

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