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I met one problem when I use regex to match some string using Python.

Example string:

ln[1] --This is a string--

ln[2] Match the line below.

ln[3] --This is a string--

ln[4] Match this line start from here.

ln[5] -This is the end-

I want to extract abc in the string above.

code:

pattern = re.compile('%s(.*?)%s' % ('--This is a string--', '-This is the end-'))
re.findall(pattern, string)

How can I get the line 4 only, not get line 2 to line 4 ?

Thank you very much.

share|improve this question
    
Your regex says .*? -- what is it that you intend? –  devnull Jul 10 '13 at 10:08
2  
To be fair, abc would work. –  Tomasz Łazarowicz Jul 10 '13 at 10:08
    
Regex engines work left-to-right, so your regex starts the match at the first a it encounters, and then keeps matching until the c is reached. If you don't want to allow more than one a, you need to tell the regex engine that. –  Tim Pietzcker Jul 10 '13 at 10:13
    
I'd like to match only one a, how can I do it ? –  Jimmy Jul 10 '13 at 10:57

3 Answers 3

>>> re.findall('a[^a]*c', 'aaaaaaaaabc')
['abc']
>>> re.findall('a[^a]*c', 'aaaaaaaaa c')
['a c']
share|improve this answer

Probably, via this:

pattern = re.compile('.*(a.*?c)')
re.findall(pattern, string)  # yields ["abc"]
share|improve this answer

If you want to replace all instances of repeated characters you could use id or named groups.

Example:

with id:

>>> re.sub('(.)(\\1)+', '\\1', 'abcAAAAabcBBBBabcCCCCabc')
'abcAabcBabcCabc'

with name:

>>> re.sub('(?P<n>.)(?P=n)+', '\\1', 'abcAAAAabcBBBBabcCCCCabc')
'abcAabcBabcCabc'
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