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I am working on an application that has a search feature, in which I want to match the search patterns. The patterns can have the following forms:

  • search:'pattern' and search:"pattern" (quoted search)
  • search:r'pattern' and search:r"pattern" (regex search)
  • search:pattern (unquoted search)

My regular expressions are:

quoted = re.compile(r'search:(?:\'|")([^"\']+)')
regex = re.compile(r'search:r(?:\'|")([^"\']+)')
unquoted = re.compile(r'search:(?<!r[\'"])([^ \'"]+)')

and my test string is

test_str = "search:foo search:'bar' search:\"baz\" search:r'blah' search:r\"bleh\""

The quoted and regex patterns are correctly matched, but the unquoted pattern (which should only match foo) doesn't match correctly, it behaves like if the negative lookbehind wasn't there. I also tried to remove the quotes ([\'"]) from the assertion, but it returns exactly the same result:

>>> unquoted.findall(test_str)
['foo', 'r', 'r']

I don't understand what I'm doing wrong here, so any help would be greatly appreciated!

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1 Answer 1

up vote 1 down vote accepted

The lookbehind assertion in 'search:(?<!r[\'"])([^ \'"]+)' looks behind from the position just after the h: sequence so it never finds that h: is r' or r"
Replace with (?!r[\'"])

But I see another problem:

import re

quoted = re.compile(r'search:(?:[\'"])([^"\']+)')
regex = re.compile(r'search:r(?:[\'"])([^"\']+)')
unquoted = re.compile(r'search:(?!r[\'"])([^ \'"]+)')

test_str = "search:foo search:romeo "\
           "search:'bar' search:\"baz\" "\
           "search:r'blah' search:r\"bleh\""\
           "search:isn'it something to catch ?"

"""
•search:'pattern' and search:"pattern" (quoted search)
•search:r'pattern' and search:r"pattern" (regex search)
•search:pattern (unquoted search)

"""
print quoted.findall(test_str)
print
print regex.findall(test_str)
print
print unquoted.findall(test_str)

result

['bar', 'baz']

['blah', 'bleh']

['foo', 'romeo', 'isn']

Wouldn't you like to catch isn'it ?

share|improve this answer
    
oh, I misunderstood how negative lookbehind worked then, thank you so much! –  MatToufoutu Dec 7 '13 at 14:37
    
Also, if you can use the spaces to split the string, you can get away without the assertions with this regex search:([^r'"]|r[^'"]).*[^'"], goo.gl/ciCqAh –  hack.augusto Dec 7 '13 at 14:37
    
I can't, as a space could exist in the quoted search pattern –  MatToufoutu Dec 7 '13 at 14:38
1  
What do you think of unquoted = re.compile('search:(?!r?([\'"])[^ ]+(?<!\\1))([^ ]+)') ? It catches isn'it , not only isn (I made a mistake writing this: isn'it , it is not english, don't stop at this) - My name is Jeff Etoubien :)) –  eyquem Dec 7 '13 at 14:49

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