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For example, consider the following expressions:

no_space = "This is a test".match(/(\w+)(\w+)/) 
with_space = "This is a test".match(/(\w+) (\w+)/) 

The expression no_space is now the matchdata object #<MatchData "This" 1:"Thi" 2:"s">, while with_space is #<MatchData "This is" 1:"This" 2:"is">. What is going on here? It seems to me like the literal space between tokens indicates to ruby that it should match multiple words if possible, while not having a space causes the match to be limited to one word. Any explanation or clarification on the subject would be appreciated.

Thanks.

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2 Answers 2

up vote 1 down vote accepted

\w doesn't match space, and + is greedy unless you follow it by ?, so Ruby tries to match as many \w as possible, as long as the rest of the express also matches, effectively consuming Thi in the first capture, and s in the second.

When you add a space, Ruby matches as many \w until a space character, and then as many \w, therefore matching This and is.

Please let me know if this isn't clear.

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I didn't realize the space between the tokens was interpreted as looking for an actual space in the expression. Your answer helped! thanks. –  Tony Rice May 18 '13 at 23:28

With the regular expression /(\w+)(\w+)/, the only characters that can be matched are word characters (letters, digits, and underscores). A regular expression will only ever match consecutive characters in a string, so unless you include something in the regular expression to match the spaces between words the regex can't match more than a single word.

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... and because it is a greedy match it ends up in 'Thi' and 's' –  j.holetzeck May 18 '13 at 17:27
    
The question seemed to be more about the one word vs two word matching, rather than the contents of the groups. –  Andrew Clark May 18 '13 at 17:29

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