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I am looking for a regex that matches first word in a sentence excluding punctuation and white space. For example: "This" in "This is a sentence." and "First" in "First, I would like to say \"Hello!\""

This doesn't work:

"""([A-Z].*?(?=^[A-Za-z]))""".r
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3  
What flavour of regex is this? –  zespri Feb 8 '13 at 6:41
    
Can the words have numbers in them? –  endy Feb 8 '13 at 6:41
    
([a-z]+), case-insensitive, should be sufficient for "non-tricky" English .. however, it will fail for non-latin characters quickly - so update to use Unicode character classes as appropriate! Note that this assumes an NFA regex (like Ruby :D) which will "match the first thing it can", but that works in favor here as there is no need to anchor or otherwise complex look-arounds. –  user166390 Feb 8 '13 at 6:57
    
Start of a sentence or start of a string, like in your examples? What is about e.g. "It's not a good idea!" or "Fürchterlichéß Beispiel." (just an example!)? –  stema Feb 8 '13 at 8:54

3 Answers 3

(?:^|(?:[.!?]\s))(\w+)

Will match the first word in every sentence.

http://rubular.com/r/rJtPbvUEwx

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Edited my post. Good catch. –  endy Feb 8 '13 at 21:46
1  
"123 This doesnt work" as it will return "123" instead of "This" –  konyak Mar 29 '13 at 19:09
    
That is because that is the first word. Like OP had asked. If you want it to match the first dictionary word then you should be looking someplace other then regex. –  endy Mar 30 '13 at 17:13
    
What about UFT-8 characters? Don't work. –  Dan Palmerio Oct 9 '14 at 13:33
[a-z]+

This should be enough as it will get the first a-z characters (assuming case-insensitive).

In case it doesn't work, you could try [a-z]+\b, or even ^[a-z]\b, but the last one assumes that the string starts with the word.

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You can use this regex: ^\s*([a-zA-Z0-9]+).

The first word can be found at a captured group.

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