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Greetings all,

I'm not sure if this is possible but I'd like to use matched groups in a regex substitution to call variables.

a = 'foo'
b = 'bar'

text = 'find a replacement for me [[:a:]] and [[:b:]]'

desired_output = 'find a replacement for me foo and bar'

re.sub('\[\[:(.+):\]\]',group(1),text) #is not valid
re.sub('\[\[:(.+):\]\]','\1',text) #replaces the value with 'a' or 'b', not var value

thoughts?

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3  
Let me guess, are you a perl programmer? –  Christian Oudard Jan 19 '10 at 16:33
    
ha! not really. familiar with py,perl and php - master of none. thanks for your help :) –  netricate Jan 19 '10 at 16:36
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3 Answers

up vote 14 down vote accepted

You can specify a callback when using re.sub, which has access to the groups: http://docs.python.org/library/re.html#text-munging

a = 'foo'
b = 'bar'

text = 'find a replacement for me [[:a:]] and [[:b:]]'

desired_output = 'find a replacement for me foo and bar'

def repl(m):
    contents = m.group(1)
    if contents == 'a':
        return a
    if contents == 'b':
        return b

print re.sub('\[\[:(.+?):\]\]', repl, text)

Also notice the extra ? in the regular expression. You want non-greedy matching here.

I understand this is just sample code to illustrate a concept, but for the example you gave, simple string formatting is better.

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thanks for the code! this is actually closer to what I was thinking. –  netricate Jan 19 '10 at 16:34
2  
I answered your question, but I think you were asking the wrong question. When appropriate, Please PLEASE use string formatting in preference to regular expressions. Noufal Ibrahim answered the question you should have asked. –  Christian Oudard Jan 19 '10 at 16:52
    
Don't forget the quotation marks in the return statements. :) –  Tyler Crompton Aug 13 '11 at 14:36
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Sounds like overkill. Why not just do something like

text = "find a replacement for me %(a)s and %(b)s"%dict(a='foo', b='bar')

?

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text is stored in the DB. I guess I could replace all the [[::]] values with %() values and that should work. I'll give it a try. Thanks! –  netricate Jan 19 '10 at 16:28
    
this method depends on whether you know the position of [[:a:]] and [[:b:]]. –  ghostdog74 Jan 20 '10 at 0:47
    
There are lots of issues but what the OP is trying to do is conceptually the same as string formatting. –  Noufal Ibrahim Jan 20 '10 at 6:12
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>>> d={}                                                
>>> d['a'] = 'foo'                                      
>>> d['b'] = 'bar' 
>>> text = 'find a replacement for me [[:a:]] and [[:b:]]'
>>> t=text.split(":]]")
>>> for n,item in enumerate(t):
...   if "[[:" in item:
...      t[n]=item[: item.rindex("[[:") +3 ] + d[ item.split("[[:")[-1]]
...
>>> print ':]]'.join( t )
'find a replacement for me [[:foo:]] and [[:bar:]]'
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thanks for another look at this. very cool! :) –  netricate Jan 20 '10 at 18:46
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