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How can I extract all words in a string that start with the $ sign? For example in the string

This $string is an $example

I want to extract the words $string and $example.

I tried with this regex \b[$]\S* but it works fine only if I use a normal character rather than dollar.

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\w is better than \S if you are searching for words (and don't want commas/points/semicolons/quotes/… included too). –  eumiro Jul 10 '12 at 15:32
4  
Why do you want to extract those words? This looks suspiciously like some kind of string-substitution language, in which case you really should just use string.Template‌​, since it's already implemented for you, and already supports exactly this syntax. –  Daniel Pryden Jul 10 '12 at 16:24
    
This will help. Thanks. –  user1515248 Jul 11 '12 at 7:39

4 Answers 4

>>> [word for word in mystring.split() if word.startswith('$')]
['$string', '$example']
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Use word.startswith('$'). It's more readable (and it handles empty words). –  3noch Jul 10 '12 at 15:36
    
@3noch - cheers, adjusted. –  fraxel Jul 10 '12 at 15:39
1  
This is actually the better solution so far. –  Martijn Pieters Jul 10 '12 at 15:46
    
It is simple and readable. Thanks. –  user1515248 Jul 10 '12 at 15:51
    
@user1515248 - yeah, I like to avoid regex, when at all possible ;) –  fraxel Jul 10 '12 at 15:57

The problem with your expr is that \b doesn't match between a space and a $. If you remove it, everything works:

z = 'This $string is an $example'
import re
print re.findall(r'[$]\S*', z) # ['$string', '$example']

To avoid matching words$like$this, add a lookbehind assertion:

z = 'This $string is an $example and this$not'
import re
print re.findall(r'(?<=\W)[$]\S*', z) # ['$string', '$example']
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Works fine. Thanks a lot! –  user1515248 Jul 10 '12 at 15:45
    
It'll match $$words too though, won't it? –  Martijn Pieters Jul 10 '12 at 15:45
    
@Martijn, yes, a couple of problems with this one. Anyways, non-regex solution is better in this case. –  georg Jul 10 '12 at 20:06
    
That won't match at the very beginning of the string. I would use a negative lookbehind: (?<!\w). –  Alan Moore Jul 11 '12 at 2:12

The \b escape matches at word boundaries, but the $ sign is not considered part of word you can match. Match on the start or spaces instead:

re.compile(r'(?:^|\s)(\$\w+)')

I've used a backslash escape for the dollar here instead of a character class, and the \w+ word character class with a minimum of 1 character to better reflect your intent.

Demo:

>>> import re
>>> dollaredwords = re.compile(r'(?:^|\s)(\$\w+)')
>>> dollaredwords.search('Here is an $example for you!')
<_sre.SRE_Match object at 0x100882a80>
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4  
no, this is not the case. $ inside [] is not special. –  georg Jul 10 '12 at 15:33
    
@thg435: quite right, discovered this too :-P Corrected it to address the real problem. –  Martijn Pieters Jul 10 '12 at 15:38
    
Just add parenthesis (?:^|\s)(\$\w+) and you will not have the space added to the match. Cheers! –  dawg Jul 10 '12 at 16:36
1  
@drewk: Yup; but I still think the non-regex solution is the better here. –  Martijn Pieters Jul 10 '12 at 16:39

Several approaches, depending on what you want define as a 'word' and if all are delineated by spaces:

>>> s='This $string is an $example $second$example'

>>> re.findall(r'(?<=\s)\$\w+',s)
['$string', '$example', '$second']

>>> re.findall(r'(?<=\s)\$\S+',s)
['$string', '$example', '$second$example']

>>> re.findall(r'\$\w+',s)
['$string', '$example', '$second', '$example']

If you might have a 'word' at the beginning of a line:

>>> re.findall(r'(?:^|\s)(\$\w+)','$string is an $example $second$example')
['$string', '$example', '$second']
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This'll match word$with$embedded$dollars. –  Martijn Pieters Jul 10 '12 at 15:46
    
Yes, you are right... Changed the regex to multiple options –  dawg Jul 10 '12 at 16:05
    
It won't match the first word in a string, e.g. '$first other words' –  Martijn Pieters Jul 10 '12 at 16:09
    
@MartijnPieters: I did qualify as "delineated by spaces' and have added a match group that handles words at the beginning of a line too... –  dawg Jul 10 '12 at 16:18
    
Which is the same as my solution, with the same problem: the preceding space is now part of the matched string. :-) –  Martijn Pieters Jul 10 '12 at 16:20

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