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I have random strings that are similar to this:

2d4hk8x37m

or whatever. I need to split it at every other character.

To split it at every character its simply:

'2d4hk8x37m'.split('');

But i need every other character so the array would be like this:

['2d', '4h', 'k8', 'x3', '7m']
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  • You need to split parts of 2 chars?
    – szanata
    Oct 26, 2010 at 16:08

2 Answers 2

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var string = "2d4hk8x37m";
var matches = string.match(/.{2}/g);
console.log(matches);
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  • @Dale, the answer you accepted does not use .split() either. My answer gives you what you asked for, and in my opinion, is a better solution than the answer you accepted. shrugs Oct 26, 2010 at 16:20
  • Awe, I hadn't tested your code since you fixed it. I will test performance then choose the correct answer.
    – Mechlar
    Oct 26, 2010 at 16:21
  • @Dale, fixed it? What do you mean? Oct 26, 2010 at 16:23
  • @rchern, the first time I checked your code it returned a number not the matches as an array, (silly me I didn't notice to remove .length). Vivin must have fixed it with the edit???
    – Mechlar
    Oct 26, 2010 at 16:26
  • @Dale She was just outputting the number of matches found matches.length then. The matches were there. Oct 26, 2010 at 16:27
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There's no regex needed here. Just a simple for loop.

var hash = '2sfg43da'
var broken = [];
for(var index = 0; index < hash.length / 2; index++)
    broken.push(hash.substr(index*2, 2));
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  • This loops all chars and adds empty entries to the array after half are done. I'd imagine checking against a value before pushing will solve this.
    – Mechlar
    Oct 26, 2010 at 16:11
  • bah! I forgot both ++ and /2. Thank you for noticing. Oct 26, 2010 at 16:13
  • The regex is much more expressive. Oct 26, 2010 at 16:13
  • 1
    @Vivin Yeah. I voted +1 on the regex ;). But I don't think you should use regexes for other than pattern matching. Oct 26, 2010 at 16:15
  • 4
    I would consider "every 2 characters" a pattern. Oct 26, 2010 at 16:16

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