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I need to find in text strings, which start with =? and ends with ?= and translate them. I ended with such an expression :

re.sub('=\?[\w\?\-\/=\+\:\;_\,\[\]\(\)\<\>]+\?=', decode_match, string)

It works in 95% cases, but it fails with similar strings:


Can someone try to help ?

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Are you sure your input looks like this? – Ignacio Vazquez-Abrams Feb 5 '11 at 8:52
I like jswolf's answer for its simplicity, but if you add a lazy quantifier after the plus symbol of your original regex (i.e., '=\?[\w\?\-\/=\+\:\;_\,\[\]\(\)\<\>]+?\?='), it should also work (as tested here: – tony19 Feb 5 '11 at 9:15
Then it's better '=\?(?:[\w\?\-\/=\+\:\;_\,[]()\<\>]+?)\?=' – Alexander A.Sosnovskiy Feb 5 '11 at 9:22
I see no point in making it a non-capture group if you want the entire matching string (including delimiters). If you just want the tokens (the text in between the delimiters), then leave it as a capture group as shown in the ideone test. – tony19 Feb 5 '11 at 9:35

3 Answers 3

up vote 1 down vote accepted

You need the case where you have ? without matching a ?= in your pattern

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Thanks!Can you explain this regexp? – Alexander A.Sosnovskiy Feb 5 '11 at 9:01
Well, first you match the =?, then you match one or more of either a character that is not a ? with the [^?] or a ? and the next character that is not a = with the \?[^=]. The (?:) is a non-capturing grouping, so it's the same as using parens without getting the output variables. – jswolf19 Feb 5 '11 at 9:06
That won't work if the last character before the delimiter is ? (e.g. =?utf-8asdf??=). Your negated character class ([^=]) should be a negative lookahead ((?!=)). – Alan Moore Feb 5 '11 at 11:29
@Alan Agreed... You could also allow for a possible ? before the end delimiter for the fun '=\?(?:[^?]|\?[^=])+\?*\?=' – jswolf19 Feb 5 '11 at 11:48
No, the \?[^=] will still consume both question marks before the \?*\?= sees them. – Alan Moore Feb 5 '11 at 12:07

Does str.split('=?') do the trick?

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Did it work when you tried it? – Alan Moore Feb 5 '11 at 11:41

why don't you write ? :

re.sub('=\?.+?\?=', decode_match, string)

This regex will match two times in '=?utf-8asdfaDDS23=eFF?=-=?utf-8?eadf-,=?='



Is it what you want? When evoking a failure, you should give it with more precision.

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