54

What's a good strategy to get full words into an array with its succeeding character.

Example.

This is an amazing sentence.

Array(
[0] => This 
[1] => is
[2] => an
[3] => amazing
[4] => sentence.
)

Elements 0 - 3 would have a succeeding space, as a period succeeds the 4th element.

I need you to split these by spacing character, Then once width of element with injected array elements reaches X, Break into a new line.

Please, gawd don't give tons of code. I prefer to write my own just tell me how you would do it.

2
  • Use the javascript split function.
    – saurabh
    Commented Aug 27, 2013 at 19:00
  • I'd take the approach provided in this answer stackoverflow.com/questions/4514144/…. But for your case change the var newstringreplaced = string.replace(/d/gi, ",d"); to var newstringreplaced = string.replace(/\s/gi, " ,");. Edit: Should be advised this approach is only useful if your original string doesn't have a ,. I suppose this solution is much safer: stackoverflow.com/a/4514241/1417588 Commented Aug 27, 2013 at 19:12

9 Answers 9

79

Similar to Ravi's answer, use match, but use the word boundary \b in the regex to split on word boundaries:

'This is  a test.  This is only a test.'.match(/\b(\w+)\b/g)

yields

["This", "is", "a", "test", "This", "is", "only", "a", "test"]

or

'This is  a test.  This is only a test.'.match(/\b(\w+\W+)/g)

yields

["This ", "is  ", "a ", "test.  ", "This ", "is ", "only ", "a ", "test."]
5
  • 7
    This is indeed the best answer, as split by space is not really usable for real-life scenarios. Well, unless you don't use punctuation and always use single whitespace.
    – Alex.Me
    Commented Sep 27, 2017 at 9:37
  • 8
    That converts "won't" into "won" and "t". This allows contractions: str.match(/\b(\w+)'?(\w+)?\b/g) Commented Feb 17, 2018 at 23:03
  • english words only :(
    – iiic
    Commented Jun 17, 2020 at 12:36
  • 1
    \b does not work with non ASCII chars. For example 'é'.match(/\b(\w+)\b/g) returns null
    – Clement
    Commented Feb 20, 2023 at 19:49
  • @Clement Something like /(\p{L}+\P{L}+)/ might work with ES2018 (or PCRE), but it's unclear to me whether there's any real support for that. Ref: stackoverflow.com/a/48902765/291280
    – Isaac
    Commented Mar 14, 2023 at 19:14
69

Just use split:

var str = "This is an amazing sentence.";
var words = str.split(" ");
console.log(words);
//["This", "is", "an", "amazing", "sentence."]

and if you need it with a space, why don't you just do that? (use a loop afterwards)

var str = "This is an amazing sentence.";
var words = str.split(" ");
for (var i = 0; i < words.length - 1; i++) {
    words[i] += " ";
}
console.log(words);
//["This ", "is ", "an ", "amazing ", "sentence."]

Oh, and sleep well!

10
  • @cars10 Changed the answer - does this fix it?
    – h2ooooooo
    Commented Aug 27, 2013 at 18:58
  • 3
    @cars10 why would you need the blanks at the end of each word? If you want them back when you concat your string just .join(' '); Commented Aug 27, 2013 at 18:59
  • I was just typing this up. Good, quick response.
    – EnigmaRM
    Commented Aug 27, 2013 at 18:59
  • Good answer :) i need the spaces because the users sentence has spaces and i plan to re output their sentence without having to declare a space in the loop. :) THANK U Commented Aug 27, 2013 at 19:05
  • 2
    @user2716649 As Dennis Martinez mentioned, you can simply use words.join(" ") to get This is an amazing sentence. again.
    – h2ooooooo
    Commented Aug 27, 2013 at 19:06
20

try this

var words = str.replace(/([ .,;]+)/g,'$1§sep§').split('§sep§');

This will

  1. insert a marker §sep§ after every chosen delimiter [ .,;]+
  2. split the string at the marked positions, thereby preserving the actual delimiters.
0
9

If you need spaces and the dots the easiest would be.

"This is an amazing sentence.".match(/.*?[\.\s]+?/g);

the result would be

['This ','is ','an ','amazing ','sentence.']
8

Use split and filter to remove leading and trailing whitespaces.

let str = '     This is an amazing sentence.  ',
  words = str.split(' ').filter(w => w !== '');

console.log(words);

3

Here is an option if you wanted to include the space and complete in O(N)

var str = "This is an amazing sentence.";
var words = [];
var buf = "";
for(var i = 0; i < str.length; i++) {
    buf += str[i];
    if(str[i] == " ") {
        words.push(buf);
        buf = "";
    }
}

if(buf.length > 0) {
    words.push(buf);
}
3

The following solution splits words, not only by space, but also other types of spaces and punctuation characters. In addition, it works with non ASCII characters.

It matches words by considering only characters that belong to certain categories of characters. It allows letters (L), numbers (N), symbols (S) and marks (M) so it matches quite a broad set but you can adjust if you need a different set of characters. Other categories such as punctuations (P) and separators (Z) are not included and will therefore not match.

input.match(/[\p{L}\p{N}\p{S}\p{M}]+/gu)

Example

' \t a 件数 😀 ,;-asd'.match(/[\p{L}\p{N}\p{S}\p{M}]+/gu)

Returns ['a', '件数', '😀', 'asd']

2

This can be done with lodash _.words:

var str = 'This is an amazing sentence.';
console.log(_.words(str, /[^, ]+/g));
<script src="https://cdnjs.cloudflare.com/ajax/libs/lodash.js/4.17.11/lodash.min.js"></script>

1

It can be done with split function:

"This is an amazing sentence.".split(' ')

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