11

I have a file that contains something like

# comment
# comment
not a comment

# comment
# comment
not a comment

I'm trying to read the file line by line and only capture lines that does not start with #. What is wrong with my code/regex?

import re

def read_file():
    pattern = re.compile("^(?<!# ).*")

    with open('list') as f:
        for line in f:
            print pattern.findall(line)

Original code captures everything instead of expected.

  • 3
    The lookbehind checks for something before the current position, and a lookahead checks what is after the current position. Use a lookahead if you really need a regex. But you do not really need a regex here. – Wiktor Stribiżew Dec 7 '15 at 9:05
  • Do you have to do with with regex?...you can do it just with buitl-in methods...saves you trouble of regex – Iron Fist Dec 7 '15 at 9:06
12

An alternative and yet simple approach is to only check if the first char of each line you read does not contain # character:

def read_file():

    with open('list') as f:
        for line in f:
            if not line.lstrip().startswith('#'):
                print line
  • 1
    But I think OP is asking for why doesn't ^(?<!# ).* work in this case, not how to do this. – Kevin Guan Dec 7 '15 at 9:11
  • Yes. I guess this one works. But do you know why the regex doesn't work? – Mico Dec 7 '15 at 9:12
  • 4
    Maybe make it a bit more bulletproof by using line.lstrip().startswith("#") in case the line could have whitespace before the #. @Mico: You were using a lookbehind assertion instead of a lookahead assertion. Lookbehind sees the newline character before the start of the line, not the # character after the start of the line. – Tim Pietzcker Dec 7 '15 at 9:14
  • @TimPietzcker...Thanks...Will update it.. – Iron Fist Dec 7 '15 at 9:22
  • 1
    @IronFist Thanks for showing the proper way to do it. – Mico Dec 7 '15 at 9:31
11

Iron Fist shows the way you should probably do this; however, if you want to know what was wrong with your regex anyway, it should have been this:

^[^#].*

Explanation:

  • ^ - match beginning of line.
  • [^#] - match something that is not #. [^...] is how you say not to match something (just replace ... with whatever characters you do not want to match. For example, [^ABC123] will match a character that is none of A, B, C, 1, 2, or 3. Don't let the ^ that indicates the beginning of a line/string confuse you here. These two ^'s are totally unrelated.
  • .* - match zero or more of anything else.

EDIT:

The reason ^(?<!# ).* does NOT discriminate between # comment and not a comment is that (?<!#) checks the text before the current position. The engine looks for # before the first symbol after the start of string, and since there is no # before the start of string, any line is a match for .* subpattern. To really check if the first symbol is #, you just need to use ^#.* regex. Or, if there can be leading whitespace, ^\s*#.

  • Then why doesn't it work? – Kevin Guan Dec 7 '15 at 9:17
  • @KevinGuan: I've added an update to explain this. – Mike Covington Dec 7 '15 at 9:25
  • 2
    @MikeCovington: It is a wrong explanation. – Wiktor Stribiżew Dec 7 '15 at 9:25
  • @stribizhev How so? I'm certainly not an expert on negative loosbehind assertions. Please correct me. – Mike Covington Dec 7 '15 at 9:27
  • 1
    @MikeCovington Thanks – Mico Dec 8 '15 at 2:26
4

Because:

(?!# ) Negative Lookahead - Assert that it is impossible to match the regex below
(?<!# ) Negative Lookbehind - Assert that it is impossible to match the regex #.
which from regex101

It means it only match # behind that. So what I mean is:

>>> re.search('foo(?!bar)', 'foobar')
>>> re.search('foo(?<!bar)', 'foobar')  # doesn't work
<_sre.SRE_Match object; span=(0, 3), match='foo'>


>>> re.search('(?<!bar)foo', 'barfoo')
>>> re.search('(?!bar)foo', 'barfoo')   # doesn't work
<_sre.SRE_Match object; span=(3, 6), match='foo'>

It's because you used the wrong token. So the answer is very simple:

Use (?!bar) if you don't want some string after the bar.
Use (?<!bar) if you don't want some string before the bar.

  • Why answer starts with Because? – SIslam Dec 7 '15 at 9:46
  • 2
    @SIslam: Since OP asked What is wrong with my code/regex? So Because... – Kevin Guan Dec 7 '15 at 9:47
  • @KevinGuan Thanks – Mico Dec 8 '15 at 2:25
1

Use match function in this case- since it will check in the beginning.

So expression will be \s*[^#]- for sanity i use \s to pass whitespaces.

OP's code will be-

def read_file():
    pattern = re.compile("\s*[^#]")
    with open(r"C:\test.txt") as f:
        for line in f:
            if pattern.match(line):
                    print line
read_file()

EDIT-

A bit explanation why OP's pattern is not working-

When you use . it means all except line break character. So when you write ^(?<!# ).* it means any character (except line break- it includes # damn it!) that has not # before- ultimately it becomes any string (except line break variant) starts with any character.

See LIVE DEMO

Solution:

Try negation like ^(?<!# )[^#]

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