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How would I grab the first word after '\id ' in the string?

string:

'\id hello some random text that can be anything'

python

for line in lines_in:
    if line.startswith('\id '):
        book = line.replace('\id ', '').lower().rstrip()

what I am getting

book = 'hello some random text that can be anything'

what I want

book = 'hello'
share|improve this question
up vote 6 down vote accepted
>>> import re
>>> text = '\id hello some random text that can be anything'
>>> match = re.search(r'\\id (\w+)', text)
>>> if match:
        print match.group(1)

A more complete version which captures any whitespace after '\id'

re.search(r'\\id\s*(\w+)', text)
share|improve this answer
    
this works perfectly, will mark as complete :) – user1442957 Jul 13 '12 at 14:32
    
@jamylak -- Apparently we were thinking on the same lines. I would suggest you change the regex to r'\\id\s*(\w+)' in order to capture multiple (or no) whitespace. – mgilson Jul 13 '12 at 14:36
    
@mgilson the OP said it works like this but that is your solution anyway. I would upvote it although I ran out of votes for today. – jamylak Jul 13 '12 at 14:38
    
@jamylak I was thinking about deleting the regex part of my solution in liu of yours -- you beat me to it anyway and since yours has more upvotes (and an accept :^p ) it'll be more visible for the community. – mgilson Jul 13 '12 at 14:42
    
@mgilson your regex is a more complete version of mine and you should get the accepted answer instead, although really SvenMarnach should get the accepted answer since it is non-regex. – jamylak Jul 13 '12 at 14:45

One option:

words = line.split()
try:
    word = words[words.index("\id") + 1]
except ValueError:
    pass    # no whitespace-delimited "\id" in the string
except IndexError:
    pass    # "\id" at the end of the string
share|improve this answer
    
I'd suggest a default for word by making the except into something like except (ValueError, IndexError): word = '' – Ryan Haining Jul 13 '12 at 14:31
3  
@xhainingx: I don't know what the OP wants to do with the different error conditions, so I just pointed them out – Sven Marnach Jul 13 '12 at 14:40
    
Yeah I wasn't correcting you, just suggesting a possible way to handle it, since this doesn't seem like the kind of question you'd see from someone well-versed in python – Ryan Haining Jul 13 '12 at 15:22
    
I like this more since it's better to ask for forgiveness than permission – jamylak Apr 6 '13 at 5:36

You don't need regex for this you can do:

book.split(' ')[0]

But there are tons of ways to achieve this

share|improve this answer
    
You didn't read the whole question. – Buttons840 Jul 13 '12 at 14:50

If there doesn't have to be a space between "\id" and the word, regex will do fine. (if the space is guaranteed, then use the split solution):

import re
match=re.search(r'\\id\s*(\w+)',yourstring)
if match:
   print match.group(1)

Or another way (without regex):

head,sep,tail=yourstring.partition(r'\id')
first_word=tail.split()[1]
share|improve this answer
    
If there is only one id, you should use str.partition instead – jamylak Jul 13 '12 at 14:51
    
@jamylak -- changed. Is there a reason to promote partition instead of split? I suppose it helps with unpacking since you know exactly what you're going to get, but the same could be said for .split('\id',1). Is partition faster? – mgilson Jul 13 '12 at 14:57
    
Yeah it's faster. – jamylak Jul 13 '12 at 15:00

Try using str.split(' ') on your string book, which will split on spaces and give you a list of words. Then just do book = newList[0].

So book = book.split(' ')[0]

share|improve this answer

Since you already checked the line starts with "\id ", just split the string and you'll get a list of words. If you want the next one, just get element #1:

>>> line="\id hello some random text that can be anything"
>>> line.split()
['\\id', 'hello', 'some', 'random', 'text', 'that', 'can', 'be', 'anything']
    #0      #1  ...

That way your code should turn into this:

for line in lines_in:
    if line.startswith('\id '):
      book = line.split()[1]
share|improve this answer

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