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I have strings of the form Version 1.4.0\n and Version 1.15.6\n, and I'd like a simple way of extracting the three numbers from them. I know I can put variables into a string with the format method; I basically want to do that backwards, like this:

# So I know I can do this:
x, y, z = 1, 4, 0
print 'Version {0}.{1}.{2}\n'.format(x,y,z)
# Output is 'Version 1.4.0\n'

# But I'd like to be able to reverse it:

mystr='Version 1.15.6\n'
a, b, c = mystr.unformat('Version {0}.{1}.{2}\n')

# And have the result that a, b, c = 1, 15, 6

Someone else I found asked the same question, but the reply was specific to their particular case: Use Python format string in reverse for parsing

A general answer (how to do format() in reverse) would be great! An answer for my specific case would be very helpful too though.

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2  
i see some answers below that are direct for your problem. but a better solution would be to use regular expressions imho. –  Inbar Rose Aug 7 '12 at 11:34
    
This seems a good use for scanf C-style –  Gaius Apr 16 at 9:39
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4 Answers

up vote 2 down vote accepted

Actually the Python regular expression library already provides the general functionality you are asking for. You just have to change the syntax of the pattern slightly

>>> import re
>>> from operator import itemgetter
>>> mystr='Version 1.15.6\n'
>>> m = re.match('Version (?P<_0>.+)\.(?P<_1>.+)\.(?P<_2>.+)', mystr)
>>> map(itemgetter(1), sorted(m.groupdict().items()))
['1', '15', '6']

As you can see, you have to change the (un)format strings from {0} to (?P<_0>.+). You could even require a decimal with (?P<_0>\d+). In addition, you have to escape some of the characters to prevent them from beeing interpreted as regex special characters. But this in turm can be automated again e.g. with

>>> re.sub(r'\\{(\d+)\\}', r'(?P<_\1>.+)', re.escape('Version {0}.{1}.{2}'))
'Version\\ (?P<_0>.+)\\.(?P<_1>.+)\\.(?P<_2>.+)'
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>>> import re
>>> re.findall('(\d+)\.(\d+)\.(\d+)', 'Version 1.15.6\n')
[('1', '15', '6')]
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Oops, what I meant was x,y,z = [int(num) for result in re.findall('(\d+)\.(\d+)\.(\d+)', 'Version 1.15.6\n') for num in result] –  Mark Ransom Aug 7 '12 at 22:33
    
a, b, c = re.findall('(\d+)\.(\d+)\.(\d+)', 'Version 1.15.6\n')[0] –  Willian Aug 8 '12 at 12:54
    
That's a nice refinement but it still doesn't convert the results to integers. I amend my example: x,y,z = [int(num) for num in re.findall('(\d+)\.(\d+)\.(\d+)', 'Version 1.15.6\n')[0]] –  Mark Ransom Aug 8 '12 at 13:11
    
@Mark you're right! –  Willian Aug 8 '12 at 14:00
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This

a, b, c = (int(i) for i in mystr.split()[1].split('.'))

will give you int values for a, b and c

>>> a
1
>>> b
15
>>> c
6

Depending on how regular or irregular, i.e., consistent, your number/version formats will be, you may want to consider the use of regular expressions, though if they will stay in this format, I would favor the simpler solution if it works for you.

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+1 just use generator expression, no need of []. –  undefined is not a function Aug 7 '12 at 11:37
1  
@AshwiniChaudhary Yes, you are right .. I learned about list comprehension first, so that's where I go initially, but you are right, there's no need to keep a list - thanks, I updated the answer. –  Levon Aug 7 '12 at 11:39
1  
Using a generator in this case makes no sense, list comprehension will do the job fine. –  Willian Aug 7 '12 at 11:40
1  
like [int(i) for i in mystr.split()[1].split('.')], as your initial answer was –  Willian Aug 7 '12 at 11:43
1  
@Levon I can't see any big drawback, I was responding to ashwini that using a generator would be beter, but a LC will do the job just fine. –  Willian Aug 7 '12 at 11:51
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Some time ago I made the code below that does the reverse of format but limited to the cases I needed.

And, I never tried it, but I think this is also the purpose of the parse library

My code:

import string
import re

_def_re   = '.+'
_int_re   = '[0-9]+'
_float_re = '[-+]?[0-9]*\.?[0-9]+([eE][-+]?[0-9]+)?'

_spec_char = '[\^$.|?*+()'

def format_parse(text, pattern):
    """
    Scan `text` using the string.format-type `pattern`

    If `text` is not a string but iterable return a list of parsed elements

    All format-like pattern cannot be process:
      - variable name cannot repeat (even unspecified ones s.t. '{}_{0}')
      - alignment is not taken into account
      - only the following variable types are recognized:
           'd' look for and returns an integer
           'f' look for and returns a  float

    Examples::

        res = format_parse('the depth is -42.13', 'the {name} is {value:f}')
        print res
        print type(res['value'])
        # {'name': 'depth', 'value': -42.13}
        # <type 'float'>

        print 'the {name} is {value:f}'.format(**res)
        # 'the depth is -42.130000'

        # Ex2: without given variable name and and invalid item (2nd)
        versions = ['Version 1.4.0', 'Version 3,1,6', 'Version 0.1.0']
        v = format_parse(versions, 'Version {:d}.{:d}.{:d}')
        # v=[{0: 1, 1: 4, 2: 0}, None, {0: 0, 1: 1, 2: 0}]

    """
    # convert pattern to suitable regular expression & variable name
    v_int = 0   # available integer variable name for unnamed variable 
    cur_g = 0   # indices of current regexp group name 
    n_map = {}  # map variable name (keys) to regexp group name (values)
    v_cvt = {}  # (optional) type conversion function attached to variable name
    rpattern = '^'    # stores to regexp pattern related to format pattern        

    for txt,vname, spec, conv in string.Formatter().parse(pattern):
        # process variable name
        if len(vname)==0:
            vname = v_int
            v_int += 1
        if vname not in n_map:
            gname = '_'+str(cur_g)
            n_map[vname] = gname
            cur_g += 1                   
        else:    
            gname = n_map[vname]

        # process type of required variables 
        if   'd' in spec: vtype = _int_re;   v_cvt[vname] = int
        elif 'f' in spec: vtype = _float_re; v_cvt[vname] = float
        else:             vtype = _def_re;

        # check for regexp special characters in txt (add '\' before)
        txt = ''.join(map(lambda c: '\\'+c if c in _spec_char else c, txt))

        rpattern += txt + '(?P<'+gname+'>' + vtype +')'

    rpattern += '$'

    # replace dictionary key from regexp group-name to the variable-name 
    def map_result(match):
        if match is None: return None
        match = match.groupdict()
        match = dict((vname, match[gname]) for vname,gname in n_map.iteritems())
        for vname, value in match.iteritems():
            if vname in v_cvt:
                match[vname] = v_cvt[vname](value)
        return match

    # parse pattern
    if isinstance(text,basestring):
        match = re.search(rpattern, text)
        match = map_result(match)
    else:
        comp  = re.compile(rpattern)
        match = map(comp.search, text)
        match = map(map_result, match)

    return match

for your case, here is a use example:

versions = ['Version 1.4.0', 'Version 3.1.6', 'Version 0.1.0']
v = format_parse(versions, 'Version {:d}.{:d}.{:d}')
# v=[{0: 1, 1: 4, 2: 0}, {0: 3, 1: 1, 2: 6}, {0: 0, 1: 1, 2: 0}]

# to get the versions as a list of integer list, you can use:
v = [[vi[i] for i in range(3)] for vi in filter(None,v)]

Note the filter(None,v) to remove unparsable versions (which return None). Here it is not necessary.

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