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I am trying to write a regular expression in Python that will match either a quoted string with spaces or an unquoted string without spaces. For example given the string term:foo the result would be foo and given the string term:"foo bar" the result would be foo bar. So far I've come up with the following regular expression:

r = re.compile(r'''term:([^ "]+)|term:"([^"]+)"''')

The problem is that the match can come in either group(1) or group(2) so I have to do something like this:

m = r.match(search_string)
term = m.group(1) or m.group(2)

Is there a way I can do this all in one step?

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1  
Do you know about shlex.split()? –  utapyngo Oct 22 '11 at 15:57
1  
Can the quoted string contain an escaped quote? –  ridgerunner Oct 22 '11 at 16:09
    
I'm not worried about escaped quotes. –  user27478 Oct 22 '11 at 16:25
    
No, I hadn't heard of shlex, but the documentation says it doesn't support Unicode so it won't work for me. –  user27478 Oct 22 '11 at 16:48

2 Answers 2

up vote 3 down vote accepted

Avoid grouping, and instead use lookahead/lookbehind assertions to eliminate the parts that are not needed:

s = 'term:foo term:"foo bar" term:bar foo term:"foo term:'
re.findall(r'(?<=term:)[^" ]+|(?<=term:")[^"]+(?=")', s)

Gives:

['foo', 'foo bar', 'bar']
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It doesn't seem that you really want re.match here. Your regex is almost right, but you're grouping too much. How about this?

>>> s
('xyz term:abc 123 foo', 'foo term:"abc 123 "foo')
>>> re.findall(r'term:([^ "]+|"[^"]+")', '\n'.join(s))
['abc', '"abc 123 "']
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This also matches the enclosing quotation marks which I don't want. –  user27478 Oct 22 '11 at 16:47

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