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The below code prints white space and not '11' and I can't figure out why. Replacing [0-9]* with [0-9]{1,2} prints '11'. Can any one help?

import re
test_string = 'cake_11xlfslijg'
pattern = '.*(?P<order>[0-9]*)'
result = re.compile(pattern).search(test_string)
if result:
    print 'result'
    print result.group('order')
else:
    print result
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Replacing [0-9]* with [0-9]{1,2} prints 1, not 11. –  Tim Pietzcker Jul 20 '11 at 15:04
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4 Answers

up vote 4 down vote accepted

Try [0-9]+. The * translates to "zero or more", and there are zero or more digits right at the start of your string.

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Quick way to show this: re.search('(.*)(\d*)', 'cake11').groups() –  jtniehof Jul 20 '11 at 14:45
1  
This will still only match 1, not 11, because the regex engine backtracks only as far as needed. –  Tim Pietzcker Jul 20 '11 at 15:01
    
@Tim Oh, I've seen the .* only now (that's why I also wrote "at the start of the string" instead of "at the end"). Of course you are right. The regex should be (?P<order>[0-9]+) without the .*. –  Tomalak Jul 20 '11 at 15:07
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Your regex should be this

pattern = '(?P<order>[0-9]+)'
  1. Removed the first .* as it will do a greedy match of the entire string.
  2. Made [0-9]+ as it will match the digits only even at least one is present, else it will return None.
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Because * means: any number of repetitions, in your regex .* will match all the string, because . means any character, i.e. including [0-9]

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A regex pattern needs to have a minimum of anchors.

With '.' and '[0-9]' , there are only optional symbols.

Try

import re

for test_string in ( 'cake_11xlfslijg',
                     'cake_uuxlfslijg'):
    pattern = '.*?(?P<order>[0-9]+)'
    result = re.compile(pattern).search(test_string)
    print test_string
    print 'result: ',repr(result.group('order')) if result else result
    print

gives

cake_11xlfslijg
result:  '11'

cake_uuxlfslijg
result:  None
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