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I have input that looks like a list of arguments:

input1 = '''
title="My First Blog" author='John Doe'
'''

The values can be surrounded by single or double quotes, however, escaping is also allowed:

input2 = '''
title='John\'s First Blog' author="John Doe"
'''

Is there a way to use regular expressions to extract the key value pairs accounting for either single or double quotes and escaped quotes?

Using python, I can use the following regular expression and handle the non-escaped quotes:

rex = r"(\w+)\=(?P<quote>['\"])(.*?)(?P=quote)"

The returns are then:

import re
re.findall(rex, input1)
[('title', '"', 'My First Blog'), ('author', "'", 'John Doe')]

and

import re
re.findall(rex, input2)
[('title', "'", 'John'), ('author', '"', 'John Doe')]

The latter being incorrect. I can't figure out how to handle escaped quotes--assumedly in the (.*?) section. I've been working with the solution in the posted answers on Python regex to match text in single quotes, ignoring escaped quotes (and tabs/newlines) to no avail.

Technically, I don't need findall to return the quote character--rather just the key/value pairs--but that is easily dealt with.

Any help would be appreciated! Thanks!

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2 Answers 2

I think Tim's use of backreferences overcomplicates the expression and (guessing here) also makes it slower. The standard approach (used in the owl book) is to match single- and double-quoted strings separately:

rx = r'''(?x)
    (\w+) = (
        ' (?: \\. | [^'] )* '
        |
        " (?: \\. | [^"] )* "
        |
        [^'"\s]+
    )
'''

Add a bit of postprocessing and you're fine:

input2 = r'''
title='John\'s First Blog' author="John Doe"
'''

data = {k:v.strip("\"\'").decode('string-escape') for k, v in re.findall(rx, input2)}
print data
# {'author': 'John Doe', 'title': "John's First Blog"}

As a bonus, this also matches unquoted attributes like weight=150.

Add: here's a cleaner way without regular expressions:

input2 = r'''
title='John\'s First Blog' author="John Doe"
'''

import shlex

lex = shlex.shlex(input2, posix=True)
lex.escapedquotes = '\"\''
lex.whitespace = ' \n\t='
for token in lex:
    print token

# title
# John's First Blog
# author
# John Doe
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EDIT

My inital regex solution had a bug in it. That bug masked an error in your input string: input2 is not what you think it is:

>>> input2 = '''
... title='John\'s First Blog' author="John Doe"
... '''
>>> input2      # See - the apostrophe is not correctly escaped!
'\ntitle=\'John\'s First Blog\' author="John Doe"\n'  

You need to make input2 a raw string (or use double backslashes):

>>> input2 = r'''
... title='John\'s First Blog' author="John Doe"
... '''
>>> input2
'\ntitle=\'John\\\'s First Blog\' author="John Doe"\n'

Now you can use a regex that handles escaped quotes correctly:

>>> rex = re.compile(
    r"""(\w+)# Match an identifier (group 1)
    =        # Match =
    (['"])   # Match an opening quote (group 2)
    (        # Match and capture into group 3:
     (?:     # the following regex:
      \\.    # Either an escaped character
     |       # or
      (?!\2) # (as long as we're not right at the matching quote)
      .      # any other character.
     )*      # Repeat as needed
    )        # End of capturing group
    \2       # Match the corresponding closing quote.""", 
    re.DOTALL | re.VERBOSE)
>>> rex.findall(input2)
[('title', "'", "John\\'s First Blog"), ('author', '"', 'John Doe')]
share|improve this answer
    
Could you please explain the "or any other character" part? Doesn't having a . in an or make it always match? –  Lev Levitsky Nov 5 '12 at 21:10
1  
@LevLevitsky: The dot matches any character, yes. But the previous lookahead assertion (?!\2) makes sure that it's not the closing quote, so in effect that dot will match any character but the closing quote. –  Tim Pietzcker Nov 5 '12 at 21:18
    
@LevLevitsky: But you were absolutely right, there was a major error in my regex. Fixing it right now (the scope of the alternation was incorrect). Thanks for pointing me to it! –  Tim Pietzcker Nov 5 '12 at 21:20
    
I can't take credit for that, really :) I haven't wrapped my mind around your regex yet. Somehow it seems to take me even longer when they're verbose... –  Lev Levitsky Nov 5 '12 at 21:22
    
@LevLevitsky: My corrected regex suddenly gave the wrong result. Puzzled, I looked closer at the input string and found that the initial problem is that Jeff wasn't using a raw string - see my revised answer... –  Tim Pietzcker Nov 5 '12 at 21:34

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