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Asked: 2026-06-07T08:55:33+00:00

I have a string something like this quick brown fox jumps over the lazy

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I have a string something like this

"quick" "brown" fox jumps "over" "the" lazy dog

I need a regex to detect words not enclosed in double quotes. After some random tries I found this ("([^"]+)"). This detects a string enclosed in double quotes. But I want the opposite. I really can’t come up with it even after trying to reverse the above mentioned regex. I am quite weak in regex. Please help me

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1 Answer

  1. Editorial Team

    Use lookahead/lookbehind assertions:

    (?<![\S"])([^"\s]+)(?![\S"])

    Example:

    >>> import re
>>> a='"quick" "brown" fox jumps "over" "the" lazy dog'
>>> print re.findall('(?<![\S"])([^"\s]+)(?![\S"])',a)
['fox', 'jumps', 'lazy', 'dog']

    The main thing here is lookahead/lookbehind assertions. You can say: I want this symbol before the expression but I don’t want it to be a part of the match itself. Ok. For that you use assertions:

    (?<![\S"])abc

    That is a negative lookbehind. That means you want abc but without [\S"] before it, that means there must be no non-space character (beginning of the word) or " before.

    That is the same but in the other direction:

    abc(?![\S"])

    That is a negative lookahead. That means you want abc but without [\S"] after it.

    There are four differenet assertions of the type in general:

    (?=pattern)
    is a positive look-ahead assertion
(?!pattern)
    is a negative look-ahead assertion
(?<=pattern)
    is a positive look-behind assertion
(?<!pattern)
    is a negative look-behind assertion
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