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I'm modifying an existing Python app that reads a binary file. The format of the file is changing a bit. Currently, one field is defined as bytes 35-36 of the record. The specs also state that "...fields in the records will be character fields written in ASCII." Here's what the current working code looks like:

def to_i16( word ):
    xx = struct.unpack( '2c', word )
    xx = ( ord( xx[ 0 ] ) << 8 ) + ord( xx[ 1 ] )

    return xx

val = to_i16( reg[ 34:36 ] )

But that field is being redefined as a bytes 35-37, so it'll be a 24-bit value. I detest working with binary files and am horrible at bit-twiddling. How do I turn that 3-byte value into a 24-bit integer?? I've tried a couple of code bits that I've found by googling but I don't think they are correct. Hard to be sure since I'm still waiting on the people that sent the sample 'new format' file to send me a text representation that shows the values I should be coming up with.

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1 Answer 1

up vote 1 down vote accepted

Simply read 24 bit (I assume in big endian, since the original code is in that format as well ):

val = struct.unpack('>I', b'\x00' + reg[34:37])
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I copied/pasted that and am getting a syntax error. I'm using Python v2.4, if that matters. –  DaveKub Feb 12 '13 at 19:42
    
If I change the b'\x00' to just '\x00', it works and produces the same value as ( ord( xx[ 0 ] ) << 16 ) + ( ord( xx[ 1 ] ) << 8 ) + ord( xx[ 2 ] ). –  DaveKub Feb 12 '13 at 20:52
    
@DaveKub Yup, in 2.4, you need to leave out the leading b. Note that 2.4 is completely out of date and unsupported though, so you may want to consider updating. –  phihag Feb 12 '13 at 21:09
    
Yeah, I know it's old. But it's what's on the server at work and I don't have any control over that, unfortunately. Thanks! –  DaveKub Feb 13 '13 at 0:42

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