100

I have this code:

var r = /(?:^\s*([^\s]*)\s*)(?:,\s*([^\s]*)\s*){0,}$/
var s = "   a   ,  b  , c "
var m = s.match(r)
m => ["   a   ,  b  , c ", "a", "c"]

Looks like the whole string has been matched, but where has "b" gone? I would rather expect to get:

["   a   ,  b  , c ", "a", "b", "c"]

so that I can do m.shift() with a result like s.split(',') but also with whitespaces removed.

Do I have a mistake in the regexp or do I misunderstand String.prototype.match?

3
  • As a side note, {0,} is the same as *.
    – pimvdb
    Oct 8, 2011 at 10:02
  • well, s may also be ' a, c' or 'a,b,c d e, f'
    – meandre
    Oct 8, 2011 at 10:11
  • i'll change spaces to \s
    – meandre
    Oct 8, 2011 at 10:12

8 Answers 8

241

Here's a pretty simple & straightforward way to do this without needing a complex regular expression.

var str = "   a   ,  b  , c "
var arr = str.split(",").map(function(item) {
  return item.trim();
});
//arr = ["a", "b", "c"]

The native .map is supported on IE9 and up: https://developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/Global_Objects/Array/map


Or in ES6+ it gets even shorter:

var arr = str.split(",").map(item => item.trim());

And for completion, here it is in Typescript with typing information

var arr: string[] = str.split(",").map((item: string) => item.trim());
7
  • 7
    Just to be picky, you can do away with the braces around the map argument: var arr = str.split(",").map(item=>item.trim()); Mar 14, 2017 at 23:39
  • I am with @DavidJones on this one. If you modify your answer would be great. Helped me a lot for my case, thank you guys! Dec 28, 2017 at 22:06
  • Yep good point - answer updated to reflect that! I personally always add the parentheses though since I'm usually writing Typescript, and I like to provide the explicit type information so you can always know what something is at a glance. Dec 29, 2017 at 13:06
  • This is a great answer Chris.
    – cyclical
    Jul 29, 2019 at 22:02
  • Simple and the best!! Jan 27, 2020 at 18:19
40

ES6 shorthand:

str.split(',').map(item=>item.trim())
0
34

You can try this without complex regular expressions.

var arr = "   a   ,  b  , c ".trim().split(/\s*,\s*/);
console.log(arr);

17

Short answer: Use m = s.match(/[^ ,]/g);


Your RE doesn't work as expected, because the last group matches the most recent match (=c). If you omit {1,}$, the returned match will be " a , b ", "a", "b". In short, your RegExp does return as much matches as specified groups unless you use a global flag /g. In this case, the returned list hold references to all matched substrings.

To achieve your effect, use:

m = s.replace(/\s*(,|^|$)\s*/g, "$1");

This replace replaces every comma (,), beginning (^) and end ($), surrounded by whitespace, by the original character (comma, or nothing).

If you want to get an array, use:

m = s.replace(/^\s+|\s+$/g,"").split(/\s*,\s*/);

This RE trims the string (removes all whitespace at the beginning and end, then splits the string by <any whitespace>,<any whitespace>. Note that white-space characters also include newlines and tabs. If you want to stick to spaces-only, use a space () instead of \s.

12
  • @Andrew I've expanded the explanation of your RE. See my second example for a split method.
    – Rob W
    Oct 8, 2011 at 10:09
  • i have already posted it as a comment to another answer. i wonder, can i do it with one regexp and one operation or js regexp is not smart enough?
    – meandre
    Oct 8, 2011 at 10:15
  • @Andrew Yes, just use s.match(/[^ ,]+/g). As mentioned at the top of my answer, the /g is the global flag, which returns all matching substrings.
    – Rob W
    Oct 8, 2011 at 10:18
  • @Andrew: One capturing group creates one match, no matter how many quantifiers you add. If you want to match a, b and c, you need three pairs of parentheses (not including (?:...)): /(?:^\s*([^\s]*)\s*)(?:,\s*([^\s]*)\s*)(?:,\s*([^\s]*)\s*)$/ Oct 8, 2011 at 10:22
  • @RobW, s.match(/[^ ,]+/g) works exactly as i need, please add it to your answer
    – meandre
    Oct 8, 2011 at 10:32
9

You can do this for your purpose
EDIT: Removing second replace as suggested in the comments. s.replace(/^\s*|\s*$/g,'').split(/\s*,\s*/)
First replace trims the string and then the split function splits around '\s*,\s*' . This gives output ["a", "b", "c"] on input " a , b , c "

As for why your regex is not capturing 'b', you are repeating a captured group, so only the last occurrence gets captured. More on that here http://www.regular-expressions.info/captureall.html

4
  • i don't want to erase all whitespaces, only around commas or at the beginning/end of a string
    – meandre
    Oct 8, 2011 at 9:56
  • @Andrew isnt’t that all whitespaces? or do you have sentences you wish to split? Oct 8, 2011 at 10:01
  • s.replace(/^\s*/, '').replace(/\s*$/, '').split(/\s*,\s*/) can do this
    – meandre
    Oct 8, 2011 at 10:03
  • @Andrew Changed the answer according to your requirements. Oct 8, 2011 at 10:03
8

so finally i went with /(?=\S)[^,]+?(?=\s*(,|$))/g, which provides exactly what i need: all sentences split by ',' without surrounding spaces.

'       a,    OMG     abc b a b, d o WTF        foo     '.
  match( /(?=\S)[^,]+?(?=\s*(,|$))/g )
=> ["a", "OMG     abc b a b", "d o WTF        foo"]

many thanks!

1
  • here is the meaning as i understand it. please correct me if i'm not right: (?=\S) - start capturing only when there's no whitespace in front [^,]+ - capture as much 'not-commas' as possible ? - but don't capture what can be captured by the next group (?=\s*(,|$)) - capture all whitespaces before a comma or end of string /g - repeat through all the string
    – meandre
    Oct 25, 2011 at 9:03
7

If you want to keep using regular expression, keep the code simple and without using ES6:

s.replace(/ /g, '').split(",")

1 - Replace all the spaces (/ /g) by empty strings ('')

2 - Then split it into an array

Et voila

1
  • This is the best, least-complicated answer.
    – Blazes
    Sep 3, 2020 at 8:51
0

You can also use the below snippet if the comma separated list has large number of values:

data.trim().split(/\s*,\s*/)

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