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I'm trying to extract "entries" from a text file using a regular expression. Each line of the file is a separate entry unless the line begins with whitespace, in which case that line is a continuation of the previous line.

Example:

import re

INPUT = """\
This is entry 1.
This
 is
  entry 2.
And this is entry 3.
This
 is
 entry
 4."""

OUTPUT = ["This is entry 1.",
          "This\n is\n  entry 2.",
          "And this is entry 3.",
          "This\n is\n entry\n 4."]

# What should the pattern be?
PATTERN = re.compile("(.+)(?=\n|$)")

assert PATTERN.findall(INPUT) == OUTPUT

What should PATTERN be to match all the entries?

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5 Answers 5

In [92]: re.findall(r'(.+(?:\n\s.*)*)\n?', INPUT)
Out[92]: 
['This is entry 1.',
 'This\n is\n  entry 2.',
 'And this is entry 3.',
 'This\n is\n entry\n 4.']

In [93]: OUTPUT == re.findall(r'(.+(?:\n\s.*)*)\n?', INPUT)
Out[93]: True
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Regex I tested in Java

^\S[.\s\w\r\n]*?(?=\n\S|\Z)
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If we can rely on the first letter of the sentence being capitalized, I think a good way to go about this is the following regex:

re.findall(r'\w[\w\s]+?\.', INPUT)

In practice, using your value of INPUT:

>>> re.findall(r'\w[\w\s]+?\.', INPUT)
['This is entry 1.', 'This\n is\n  entry 2.', 'And this is entry 3.', 'This\n is\n entry\n 4.']

The regex I wrote has a \w right before the [\w\s]+? in order to ensure that each match begins at the beginning of the sentence, rather than the whitespace before.

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OUTPUT = re.sub("[^\S\n]*\n[^\S\n]+", " ", INPUT).split("\n");

See this demo.

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@Jon-Eric - I have updated my answer with new code - Please let me know if demo works for you... –  Ωmega Nov 26 '12 at 20:59
up vote -1 down vote accepted

I think figured it out.

The trick is ". (which doesn't match newlines) or a newline followed by whitespace".

PATTERN = re.compile(r"(?:.|\n\s)+")
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