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I am trying to write a regex to match a library in a file and the path containingg the file. All the libraries in the file will be in the format.

text = "mylib|C://desktop//baseicmylib.lib
        randlib|C://desktop//randlib.lib"

so if I want to find mylib

I wrote

str = "mylib"
pattern = r'%s\\|.*lib'%str
mypath = re.findall(pattern,text)

Can some one help me where I am making a mistake.

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up vote 3 down vote accepted

It's maybe no regex needed?

text = '''mylib|C://desktop//baseicmylib.lib
    randlib|C://desktop//randlib.lib'''

libs = dict(line.split('|', 1) for line in
    (s.strip() for s in text.split('\n')))

result:

{'randlib': 'C://desktop//randlib.lib',
   'mylib': 'C://desktop//baseicmylib.lib'}
share|improve this answer

The // before the pipe is causing the issue. The following works for me just fine:

text = "argh|foo.lib"
str = "argh"
pattern = r"%s\|.*lib" %str
print re.findall(pattern,text)

['argh', '|hehe.lib']

// isnt used for escaping, if you had wanted to escape within a raw string a single \ would suffice (and double \ for a non raw string)

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'|' needs to be escaped. In your case its giving the wrong output. Its matching the lib and its matching the path because of or operator – mousey Jun 6 '12 at 1:58
    
then backslash is the escape character and not forward slash. – cjh Jun 6 '12 at 1:59
    
Thanks I got it. Its a silly mistake – mousey Jun 6 '12 at 2:03

Need to tweak your pattern a little bit:

text = '''mylib|C://desktop//baseicmylib.lib
randlib|C://desktop//randlib.lib'''
str = 'mylib'
pattern = "%s\|(.+?\.lib)" %str
print re.findall(pattern,text)
share|improve this answer
>>>pattern = r'%s.*?lib'%str
>>>re.findall(pattern, text)
['mylib|C://desktop//baseicmylib']

It is a no-greedy match in regex

*?, +?, ??

The '*', '+', and '?' qualifiers are all greedy they match as much text as possible. Sometimes this behaviour isn’t desired; if the RE <.*>is matched against 'title', it will match the entire string, and not just ''. Adding '?' after the qualifier makes it perform the match in non-greedy or minimal fashion; as few characters as possible will be matched. Using .*? in the previous expression will match only ''.

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