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I'm trying to split a string into an array of words, however I want to keep the spaces after each word. Here's what I'm trying:

var re = /[a-z]+[$\s+]/gi;
var test = "test   one two     three   four ";
var results = test.match(re);

The results I expect are:

[0]: "test   "
[1]: "one "
[2]: "two     "
[3]: "three   "
[4]: "four "

However, it only matches up to one space after each word:

[0]: "test "
[1]: "one "
[2]: "two "
[3]: "three "
[4]: "four "

What am I doing wrong?

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if you need to keep the space, why add $ and + in the second class? – dierre Aug 23 '10 at 14:37

5 Answers 5

up vote 4 down vote accepted


var results = test.match(/\S+\s*/g);

That would guarantee you don't miss any characters (besides a few spaces at the beginnings, but \S*\s* can take care of that)

Your original regex reads:

  • [a-z]+ - match any number of letters (at least one)
  • [$\s+] - much a single character - $, + or whitespace. With no quantifier after this group, you only match a single space.
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Try the following:

test.match(/\w+\s+/g); // \w = words, \s = white spaces
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Or if the last bit of whitespace is optional: test.match(/\w+\s*/gi) – Wolph Aug 23 '10 at 14:36
@Wolph: why the case-insensitive flag? – Dan Dascalescu Apr 17 '14 at 8:24
This will split "I'm coding" into "I", "m" and "coding". – Dan Dascalescu Apr 17 '14 at 8:26
@DanDascalescu: no specific reason, more of a habit really – Wolph Apr 17 '14 at 15:49

You are using + inside the char class. Try using * outside the char class instead.


+ inside the char class is treated as a literal + and not as a meta char. Using * will capture zero or more spaces that might follow any word.

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The + is taken literally inside the character class. You have to move it outside: [\s]+ or just \s+ ($ has no meaning inside the class either).

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The essential bit of your RegEx that needs changing is the part matching the whitespace or end-of-line.


var re = /[a-z]+($|\s+)/gi

or, for non-capturing groups (I don't know if you need this with the /g flag):

var re = /[a-z]+(?:$|\s+)/gi
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