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I have a string in the format:

t='@abc @def Hello this part is text'

I want to get this:

l=["abc", "def"] 
s='Hello this part is text'

I did this:

a=t[t.find(' ',t.rfind('@')):].strip()
s=t[:t.find(' ',t.rfind('@'))].strip()
b=a.split('@')
l=[i.strip() for i in b][1:]

It works for the most part, but it fails when the text part has the '@'. Eg, when:

t='@abc @def My email is red@hjk.com'

it fails. The @names are there in the beginning and there can be text after @names, which may possibly contain @.

Clearly I can append initally with a space and find out first word without '@'. But that doesn't seem an elegant solution.

What is a pythonic way of solving this?

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7 Answers

up vote 13 down vote accepted

Building unashamedly on MrTopf's effort:

import re
rx = re.compile("((?:@\w+ +)+)(.*)")
t='@abc   @def  @xyz Hello this part is text and my email is foo@ba.r'
a,s = rx.match(t).groups()
l = re.split('[@ ]+',a)[1:-1]
print l
print s

prints:

['abc', 'def', 'xyz']
Hello this part is text and my email is foo@ba.r


Justly called to account by hasen j, let me clarify how this works:

/@\w+ +/

matches a single tag - @ followed by at least one alphanumeric or _ followed by at least one space character. + is greedy, so if there is more than one space, it will grab them all.

To match any number of these tags, we need to add a plus (one or more things) to the pattern for tag; so we need to group it with parentheses:

/(@\w+ +)+/

which matches one-or-more tags, and, being greedy, matches all of them. However, those parentheses now fiddle around with our capture groups, so we undo that by making them into an anonymous group:

/(?:@\w+ +)+/

Finally, we make that into a capture group and add another to sweep up the rest:

/((?:@\w+ +)+)(.*)/

A last breakdown to sum up:

((?:@\w+ +)+)(.*)
 (?:@\w+ +)+
 (  @\w+ +)
    @\w+ +


Note that in reviewing this, I've improved it - \w didn't need to be in a set, and it now allows for multiple spaces between tags. Thanks, hasen-j!

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thanks for extending it :-) It wasn't clear to me at first that it can be any number of words. But I also had troubles to find the right syntax for the regexp when trying again actually. So I see that the anonymous group is now inside, I had it outside. –  MrTopf Feb 17 '09 at 23:22
    
would you bother to explain the regex? why does it find variable number of "tags" or whatever @thing is called? –  hasenj Feb 18 '09 at 0:57
1  
Well-played Sir. Thanks for the thorough explanation. –  bernie Feb 22 '09 at 7:17
    
+1 for the fat, thorough explanation of the regex. Super helpful for noobs. –  BenjaminGolder May 20 '11 at 21:15
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t='@abc @def Hello this part is text'

words = t.split(' ')

names = []
while words:
    w = words.pop(0)
    if w.startswith('@'):
        names.append(w[1:])
    else:
        break

text = ' '.join(words)

print names
print text
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I like this solution better then mine! voted up –  jcoon Feb 17 '09 at 19:44
    
It will remove extra spaced between the words, so this might not be a desired side-effect. –  Denilson Sá Nov 5 '10 at 12:24
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How about this:

  1. Splitting by space.
  2. foreach word, check

    2.1. if word starts with @ then Push to first list

    2.2. otherwise just join the remaining words by spaces.

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You might also use regular expressions:

import re
rx = re.compile("@([\w]+) @([\w]+) (.*)")
t='@abc @def Hello this part is text and my email is foo@ba.r'
a,b,s = rx.match(t).groups()

But this all depends on how your data can look like. So you might need to adjust it. What it does is basically creating group via () and checking for what's allowed in them.

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OP says that number of @names is variable –  SilentGhost Feb 17 '09 at 18:54
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 [i.strip('@') for i in t.split(' ', 2)[:2]]     # for a fixed number of @def
 a = [i.strip('@') for i in t.split(' ') if i.startswith('@')]
 s = ' '.join(i for i in t.split(' ') if not i.startwith('@'))
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The initial @elements could be any in number. This doesnt work –  Lakshman Prasad Feb 17 '09 at 18:40
    
that wasn't specified in your original question, but here you go. –  SilentGhost Feb 17 '09 at 18:45
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[edit: this is implementing what was suggested by Osama above]

This will create L based on the @ variables from the beginning of the string, and then once a non @ var is found, just grab the rest of the string.

t = '@one @two @three some text   afterward with @ symbols@ meow@meow'

words = t.split(' ')         # split into list of words based on spaces
L = []
s = ''
for i in range(len(words)):  # go through each word
    word = words[i]
    if word[0] == '@':       # grab @'s from beginning of string
        L.append(word[1:])
        continue
    s = ' '.join(words[i:])  # put spaces back in
    break                    # you can ignore the rest of the words

You can refactor this to be less code, but I'm trying to make what is going on obvious.

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Here's just another variation that uses split() and no regexpes:

t='@abc @def My email is red@hjk.com'
tags = []
words = iter(t.split())

# iterate over words until first non-tag word
for w in words:
  if not w.startswith("@"):
    # join this word and all the following
    s = w + " " + (" ".join(words))
    break
  tags.append(w[1:])
else:
  s = "" # handle string with only tags

print tags, s

Here's a shorter but perhaps a bit cryptic version that uses a regexp to find the first space followed by a non-@ character:

import re
t = '@abc @def My email is red@hjk.com @extra bye'
m = re.search(r"\s([^@].*)$", t)
tags = [tag[1:] for tag in t[:m.start()].split()]
s = m.group(1)
print tags, s # ['abc', 'def'] My email is red@hjk.com @extra bye

This doesn't work properly if there are no tags or no text. The format is underspecified. You'll need to provide more test cases to validate.

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