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I want to build a small formatter in python giving me back the numeric values embedded in lines of hex strings.

It is a central part of my formatter and should be reasonable fast to format more than 100 lines/sec (each line about ~100 chars).

The code below should give an example where I'm currently blocked.

'data_string_in_orig' shows the given input format. It has to be byte swapped for each word. The swap from 'data_string_in_orig' to 'data_string_in_swapped' is needed. In the end I need the structure access as shown. The expected result is within the comment.

Thanks in advance Wolfgang R


import binascii
import struct

## 'uint32 double'
data_string_in_orig    = 'b62e000052e366667a66408d'
data_string_in_swapped = '2eb60000e3526666667a8d40'
print data_string_in_orig

packed_data = binascii.unhexlify(data_string_in_swapped)
s = struct.Struct('<Id')
unpacked_data = s.unpack_from(packed_data, 0)  
print 'Unpacked Values:', unpacked_data

## Unpacked Values: (46638, 943.29999999943209)

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3 Answers 3

up vote 12 down vote accepted

array.arrays have a byteswap method:

import binascii
import struct
import array
x = binascii.unhexlify('b62e000052e366667a66408d')
y = array.array('h', x)  
s = struct.Struct('<Id')

# (46638, 943.2999999994321)

The h in array.array('h', x) was chosen because it tells array.array to regard the data in x as an array of 2-byte shorts. The important thing is that each item be regarded as being 2-bytes long. H, which signifies 2-byte unsigned short, works just as well.

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array.byteswap. Sweet. Guess I'll go ahead and not post the kludgy unpack big-endian / repack little-endian solution I had cooking... – Triptych Oct 31 '12 at 10:31
Go ahead and post it! Having more than one way to solve a problem can be useful. – unutbu Oct 31 '12 at 10:36
Thanks, this was fast and perfect for me. By the way 100k lines in 5 sec. – Wolfgang R. Oct 31 '12 at 11:48
@WolfgangR. - if this solution worked for you, you should accept the answer. – Triptych Oct 31 '12 at 13:35
Sorry, posted the first time – Wolfgang R. Oct 31 '12 at 16:25

This should do exactly what unutbu's version does, but might be slightly easier to follow for some...

from binascii import unhexlify
from struct import pack, unpack
orig = unhexlify('b62e000052e366667a66408d')
swapped = pack('<6h', *unpack('>6h', orig))
print unpack('<Id', swapped)

# (46638, 943.2999999994321)

Basically, unpack 6 shorts big-endian, repack as 6 shorts little-endian.

Again, same thing that unutbu's code does, and you should use his.

edit Just realized I get to use my favorite Python idiom for this... Don't do this either:

orig = 'b62e000052e366667a66408d'
swap =''.join(sum([(c,d,a,b) for a,b,c,d in zip(*[iter(orig)]*4)], ()))
# '2eb60000e3526666667a8d40'
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import binascii, tkinter, array
from tkinter import *

infile_read = filedialog.askopenfilename()

with open(infile, 'rb') as infile_:
    infile_read =

x = (infile_read)
y = array.array('l', x)
swapped = (binascii.hexlify(y))

This is a 32 bit unsigned short swap i achieved with code very much the same as "unutbu's" answer just a little bit easier to understand. And technically binascii is not needed for the swap. Only array.byteswap is needed.

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