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If I have this string:

hexstring = '001122334455'

How can I split that into a list so the result is:

hexlist = ['00', '11', '22', '33', '44', '55']

I can't think of a nice, pythonic way to do this :/

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6 Answers 6

>>> [hexstring[i:i+2] for i in range(0,len(hexstring), 2)]
['00', '11', '22', '33', '44', '55']
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Alternatively:

>>> hexstring = "01234567"
>>> it=iter(hexstring); [a+b for a,b in zip(it, it)]
['01', '23', '45', '67']

Use itertools.izip instead of zip if you're targeting Python 2.x.

This method is a specific version of grouper in the itertools recipe.


Some micro-benchmarks:

$ python2.6 -m timeit -s 'hexstring = "01234567"*500' '[hexstring[i:i+2] for i in xrange(0,len(hexstring), 2)]'
1000 loops, best of 3: 409 usec per loop

$ python2.6 -m timeit -s 'hexstring = "01234567"*500' '[hexstring[i:i+2] for i in range(0,len(hexstring), 2)]'
1000 loops, best of 3: 438 usec per loop

$ python2.6 -m timeit -s 'hexstring = "01234567"*500' 'it=iter(hexstring); [a+b for a,b in zip(it, it)]'
1000 loops, best of 3: 526 usec per loop

$ python2.6 -m timeit -s 'hexstring = "01234567"*500; from itertools import izip' 'it=iter(hexstring); [a+b for a,b in izip(it, it)]'
1000 loops, best of 3: 406 usec per loop

$ python2.6 -m timeit -s 'hexstring = "01234567"*500; import re; r=re.compile(".{1,2}"); f=r.findall' 'f(hexstring)'
1000 loops, best of 3: 458 usec per loop

$ python3.1 -m timeit -s 'hexstring = "01234567"*500' '[hexstring[i:i+2] for i in range(0,len(hexstring), 2)]'
1000 loops, best of 3: 756 usec per loop

$ python3.1 -m timeit -s 'hexstring = "01234567"*500' 'it=iter(hexstring); [a+b for a,b in zip(it, it)]'
1000 loops, best of 3: 414 usec per loop

$ python3.1 -m timeit -s 'hexstring = "01234567"*500; import re; r=re.compile(".{1,2}"); f=r.findall' 'f(hexstring)'
1000 loops, best of 3: 865 usec per loop


$ python2.6 -m timeit -s 'hexstring = "01234567"' '[hexstring[i:i+2] for i in xrange(0,len(hexstring), 2)]'
1000000 loops, best of 3: 1.52 usec per loop

$ python2.6 -m timeit -s 'hexstring = "01234567"' '[hexstring[i:i+2] for i in range(0,len(hexstring), 2)]'
1000000 loops, best of 3: 1.76 usec per loop

$ python2.6 -m timeit -s 'hexstring = "01234567"' 'it=iter(hexstring); [a+b for a,b in zip(it, it)]'
100000 loops, best of 3: 3.78 usec per loop

$ python2.6 -m timeit -s 'hexstring = "01234567"; from itertools import izip' 'it=iter(hexstring); [a+b for a,b in izip(it, it)]'
100000 loops, best of 3: 2.39 usec per loop

$ python2.6 -m timeit -s 'hexstring = "01234567"; import re; r=re.compile(".{1,2}"); f=r.findall' 'f(hexstring)'
1000000 loops, best of 3: 1.45 usec per loop

$ python3.1 -m timeit -s 'hexstring = "01234567"' '[hexstring[i:i+2] for i in range(0,len(hexstring), 2)]'
100000 loops, best of 3: 2.46 usec per loop

$ python3.1 -m timeit -s 'hexstring = "01234567"' 'it=iter(hexstring); [a+b for a,b in zip(it, it)]'
1000000 loops, best of 3: 1.84 usec per loop

$ python3.1 -m timeit -s 'hexstring = "01234567"; import re; r=re.compile(".{1,2}"); f=r.findall' 'f(hexstring)'
100000 loops, best of 3: 2.07 usec per loop

Observation:

  • With long strings on Python 2.6, @SilentGhost's and my method are fastest. Of course you need to use lazy iterators e.g. xrange and izip.
  • With short strings on Python 2.6, @Nick's regular expression is fastest.
  • On Python 3.1 my method is fastest in both cases, but I believe it's because Python 3.x is less optimized.
  • Of course, premature optimization is evil, etc..
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+1, nice simple code and good micro-benchmarking job! –  Alex Martelli Jul 3 '10 at 16:34
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Using regular expressions:

>>> import re
>>> re.findall('.{1, 2}', '001122334455')
['00', '11', '22', '33', '44', '55']
>>> 
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A slightly odd way:

map(''.join,zip(hexstring[::2],hexstring[1::2]))
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hexstring = "01234567"
[''.join(x) for x in zip(*[iter(hexstring)]*2)]
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Functional style:

>>> result = map(lambda x,y : x+y, *[iter('0013A20040522BAA')]*2)
>>> tuple(result)
('00', '13', 'A2', '00', '40', '52', '2B', 'AA')

or yet a other variation around zip as suggested before:

>>> result = (a+b for a,b in zip(*[iter('0013A20040522BAA')]*2))
>>> tuple(result)
('00', '13', 'A2', '00', '40', '52', '2B', 'AA')
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