Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm trying to parse a string with multiple lines.

Suppose it is:

text = '''
Section1
stuff belonging to section1
stuff belonging to section1
stuff belonging to section1
Section2
stuff belonging to section2
stuff belonging to section2
stuff belonging to section2
'''

I want to use the finditer method of the re module to get a dictionary like:

{'section': 'Section1', 'section_data': 'stuff belonging to section1\nstuff belonging to section1\nstuff belonging to section1\n'}
{'section': 'Section2', 'section_data': 'stuff belonging to section2\nstuff belonging to section2\nstuff belonging to section2\n'}

I tried the following:

import re
re_sections=re.compile(r"(?P<section>Section\d)\s*(?P<section_data>.+)", re.DOTALL)
sections_it = re_sections.finditer(text)

for m in sections_it:
    print m.groupdict() 

But this results in:

{'section': 'Section1', 'section_data': 'stuff belonging to section1\nstuff belonging to    section1\nstuff belonging to section1\nSection2\nstuff belonging to section2\nstuff belonging to section2\nstuff belonging to section2\n'}

So the section_data also matches Section2.

I also tried to tell the second group to match all but the first one. But this leads to no output at all.

re_sections=re.compile(r"(?P<section>Section\d)\s+(?P<section_data>^(?P=section))", re.DOTALL)

I know I could use the following re, but I'm looking for a version, where I do not have to tell what the second group looks like.

re_sections=re.compile(r"(?P<section>Section\d)\s+(?P<section_data>[a-z12\s]+)", re.DOTALL)

Thank you very much!

share|improve this question
    
have you tried to match all occurrences r"(?:(?P<section>Section\d)\s*(?P<section_data>.+?))+" ? –  Aprillion Apr 11 '13 at 16:01
    
Yes, it's not working. Output: {'section': 'Section1', 'section_data': 's'} {'section': 'Section2', 'section_data': 's'} –  user2221323 Apr 11 '13 at 16:26

1 Answer 1

up vote 1 down vote accepted

Use a look-ahead to match everything up to the next section header, or the end of the string:

re_sections=re.compile(r"(?P<section>Section\d)\s*(?P<section_data>.+?)(?=(?:Section\d|$))", re.DOTALL)

Note that this needs a non-greedy .+? as well, otherwise it'll still match all the way to the end first.

Demo:

>>> re_sections=re.compile(r"(?P<section>Section\d)\s*(?P<section_data>.+?)(?=(?:Section\d|$))", re.DOTALL)
>>> for m in re_sections.finditer(text): print m.groupdict()
... 
{'section': 'Section1', 'section_data': 'stuff belonging to section1\nstuff belonging to section1\nstuff belonging to section1\n'}
{'section': 'Section2', 'section_data': 'stuff belonging to section2\nstuff belonging to section2\nstuff belonging to section2'}
share|improve this answer
    
Already tried, leads to: {'section': 'Section1', 'section_data': 's'} {'section': 'Section2', 'section_data': 's'} –  user2221323 Apr 11 '13 at 15:56
    
@user2221323: Yeah, noticed that too; a look-ahead is needed, updated the answer. –  Martijn Pieters Apr 11 '13 at 15:56
    
Great! This is working! Is it possible not to mention Section\d again in the last part of the re (?=(?:Section\d|$)) and to use a reference like (?=(?:(?P=section)|$)). This trial results in the same output like in the Question :/ I looked up the Positive lookahead assertion. As far as I understood, it succeeds if the re matches at the current location and the whole re is tried again at the current location? But I don't understand why the |$ is needed? –  user2221323 Apr 11 '13 at 16:25
    
No, you can't reuse the section match, because it'll only match again if it has the same section number, so the exact same literal text. –  Martijn Pieters Apr 11 '13 at 16:28
    
@user2221323: The look-ahead acts as an anchor, text before it matches if the position for the look-ahead matches the Section\d part next. The |$ part is needed to match the last entry in your text; either there is a next section or we are at the end of the string. –  Martijn Pieters Apr 11 '13 at 16:29

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.