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I need a tokenizer that given a string with arbitrary white-space among words will create an array of words without empty sub-strings.

For example, given a string:

" I dont know what you mean by glory Alice said."

I use:

str2.split(" ")

This also returns empty sub-strings:

["", "I", "dont", "know", "what", "you", "mean", "by", "glory", "", "Alice", "said."]

How to filter out empty strings from an array?

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5 Answers 5

You probably don't even need to filter, just split using this Regular Expression:

"   I dont know what you mean by glory Alice said.".split(/\b\s+/)
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Off-topic: what mean \b in regex? –  David Rodrigues Feb 22 '12 at 19:55
3  
Matches a word boundary, such as a space, a newline character, punctuation character or end of string (developer.mozilla.org/en/JavaScript/Guide/Regular_Expressions). Might not be the perfect Regex but for that example it works. –  Daff Feb 22 '12 at 19:58
    
@Mustafa yeah, I know. But it is just a curiosity. –  David Rodrigues Feb 23 '12 at 1:10
    
I like the regex, but how to account for ", " (comma, space) –  mheavers May 28 '14 at 19:26

You should trim the string before using split.

var str = " I dont know what you mean by glory Alice said."
var trimmed = str.replace(/^\s+|\s+$/g, '');
trimmed = str.split(" ")
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 str.match(/\S+/g) 

returns a list of non-space sequences ["I", "dont", "know", "what", "you", "mean", "by", "glory", "Alice", "said."] (note that this includes the dot in "said.")

 str.match(/\w+/g) 

returns a list of all words: ["I", "dont", "know", "what", "you", "mean", "by", "glory", "Alice", "said"]

docs on match()

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1  
Good answer. For others' reference, /S+/ matches against groups of characters that are not whitespace, whereas /w+/ matches groups of characters that are alphanumeric+underscore. That's why the period (.) character matches in one but not the other. –  Robert Martin Jan 11 '13 at 23:01

I recommend .match:

str.match(/\b\w+\b/g);

This matches words between word boundaries, so all spaces are not matched and thus not included in the resulting array.

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This works even better: >>> str2 "Humpty Dumpty smiled contemptuously Of course you dont—till I tell you I meant theres a nice knock-down argument for you! " Using: str3 = str2.match(/\b\w+\b/g); Results in: >>> str3 ["Humpty", "Dumpty", "smiled", "contemptuously", "Of", "course", "you", "dont", "till", "I", "tell", "you", "I", "meant", "theres", "a", "nice", "knock", "down", "argument", "for", "you"] So w+ matchs also "—" –  dokondr Feb 22 '12 at 20:39
1  
@dokondr: What do you count as word characters? If it's everything except spaces, you may want to just use [^ ] instead of \w. –  pimvdb Feb 22 '12 at 20:47

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