2

OK, I know this is a very common question. I've searched and searched but couldn't find anything that solved my problem.

So I have some text:

#u'15" approx. length from waist to hem, 26" waist#Measured from Small#Shell: 100% Polyester, Lining: 100% Polyester#Machine wash cold, tumble dry low#Imported'

These are basically lines separated by #. I would like to get the line containing % which would be:

#Shell: 100% Polyester, Lining: 100% Polyester#.

So I try and search for this pattern:

#.*%.*#

but this wasn't greedy so I tried:

#.*?%.*?#

After this I am getting:

#u'15" approx. length from waist to hem, 26" waist#Measured from Small#Shell: 100% Polyester, Lining: 100% Polyester#

Still not greedy from the beginning. What am I missing?

8
  • What about: Measured from Small Commented May 21, 2015 at 14:31
  • Why should a line between # and # containing % should return #Machine wash cold, tumble dry low# ??
    – anubhava
    Commented May 21, 2015 at 14:32
  • @Anubhava It was a mistake. Thanks for pointing it our. I've corrected it. Commented May 21, 2015 at 14:34
  • @MalikBrahimi I don't get what you're trying to say. Commented May 21, 2015 at 14:35
  • Then your regex should work
    – anubhava
    Commented May 21, 2015 at 14:35

2 Answers 2

6

If you only want the lines containing % you can do something like this:

text = '15" approx. length from waist to hem, 26" waist#Measured from Small#Shell: 100% Polyester, Lining: 100% Polyester#Machine wash cold, tumble dry low#Imported'
for line in text.split('#'):
    if '%' in line:
        # it's the line, do something

You can also use list comprehension:

text = '15" approx. length from waist to hem, 26" waist#Measured from Small#Shell: 100% Polyester, Lining: 100% Polyester#Machine wash cold, tumble dry low#Imported'
matches = [line for line in text.split('#') if '%' in line]

If you really want to use a regular expression, you can do this:

import re

text = '15" approx. length from waist to hem, 26" waist#Measured from Small#Shell: 100% Polyester, Lining: 100% Polyester#Machine wash cold, tumble dry low#Imported'
line_re = re.compile('#[^#]*%[^#]*#')
matches = line_re.findall(text)

To explain the regular expression used:

'#[^#]*%[^#]*#'

We're looking for something starting with a #, then with [^#]* we want to greedily match as many characters that are not # as possible ([^#] means any character different from #, * means repetition), then we want to match a %, then [^#]* again and the whole match should end with a #.

7
  • Yes that is the work around I've been using. But I started out with regex and not being able to make it work is stuck in my head. Is there any way to do it using regex? Commented May 21, 2015 at 14:33
  • 2
    @PraveshJain While it's fair enough to ask out of interest how to do it with a regular expression (and I'm sure you will get an answer), I agree that this is the much better way of doing what you want. Simple is best. Commented May 21, 2015 at 14:35
  • 1
    As an extension to this - if you want a list, this is a good case for a list comprehension [line for line in text.split('#') if '%' in line]. Commented May 21, 2015 at 14:36
  • @Lattyware Totally agree with you. But I wanted to get it out of my head so bad. Commented May 21, 2015 at 14:43
  • @geckon Your regex works. Could you explain it a little bit? Thanks Commented May 21, 2015 at 14:44
1

You can precede your non-greedy match (.*?) with a greedy match (.*).

import re
s = u'15" approx. length from waist to hem, 26" waist#Measured from Small#Shell: 100% Polyester, Lining: 100% Polyester#Machine wash cold, tumble dry low#Imported'

print re.findall(".*#(.*?%.*?)#", s)[0]
print re.search(".*#(.*?%.*?)#", s).groups()[0]
1
  • Your expression works with re.findall but not with re.search. I can't understand why. Commented May 21, 2015 at 14:48

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

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