244

In my code I split a string based on _ and grab the second item in the array.

var element = $(this).attr('class');
var field = element.split('_')[1];

Takes good_luck and provides me with luck. Works great!

But, now I have a class that looks like good_luck_buddy. How do I get my javascript to ignore the second _ and give me luck_buddy?

I found this var field = element.split(new char [] {'_'}, 2); in a c# stackoverflow answer but it doesn't work. I tried it over at jsFiddle...

14 Answers 14

372

Use capturing parentheses:

"good_luck_buddy".split(/_(.+)/)[1]
"luck_buddy"

They are defined as

If separator contains capturing parentheses, matched results are returned in the array.

So in this case we want to split at _.+ (i.e. split separator being a sub string starting with _) but also let the result contain some part of our separator (i.e. everything after _).

In this example our separator (matching _(.+)) is _luck_buddy and the captured group (within the separator) is lucky_buddy. Without the capturing parenthesis the luck_buddy (matching .+) would've not been included in the result array as it is the case with simple split that separators are not included in the result.

  • 21
    You don't even need (?), just use /_(.+)/ to capture 1 more more characters after the first _ – Mark Jan 5 '11 at 18:32
  • 3
    Very elegant. Works like a charm. Thank you. – Ofeargall Jan 5 '11 at 18:43
  • 12
    Just to be clear, the reason this solution works is because everything after the first _ is matched inside a capturing group, and gets added to the token list for that reason. – Alan Moore Jan 5 '11 at 20:04
  • 28
    Anyone know why I get an extra empty string element with this: in: "Aspect Ratio: 16:9".split(/:(.+)/) out: ["Aspect Ratio", " 16:9", ""] – katy lavallee May 8 '14 at 17:42
  • 4
    @katylavallee - This might help: stackoverflow.com/questions/12836062/… Since the separator is ": 16:9", there is nothing after the separator, thus creating the empty string at the end. – Derek 朕會功夫 Jun 21 '14 at 6:31
216

What do you need regular expressions and arrays for?

myString = myString.substring(myString.indexOf('_')+1)

var myString= "hello_there_how_are_you"
myString = myString.substring(myString.indexOf('_')+1)
console.log(myString)

  • 5
    string !== String. javascript is case sensitive. – kennebec Apr 20 '16 at 23:34
  • 3
    i think this is the best answer. it is also possible to get string after second _ by writing: myString.substring( myString.indexOf('_', myString().indexOf('_') + 1) + 1 ) – muratgozel Oct 27 '16 at 23:42
  • 9
    The answer outputs the second part of the string. What if you want the first part, too? With var str = "good_luck_buddy", res = str.split(/_(.+)/);you get all parts: console.log(res[0]); console.log(res[1]); – Sun Nov 15 '16 at 20:29
  • 1
    @PeterLeger let split = [ string.substring(0, string.indexOf(options.divider)), string.substring(string.indexOf(options.divider) + 1) ] There you have it. Also with support of variable needle – Steffan Nov 1 '17 at 12:51
  • This is Genius! – stuckedoverflow Feb 2 '19 at 18:19
32

I avoid RegExp at all costs. Here is another thing you can do:

"good_luck_buddy".split('_').slice(1).join('_')
  • 1
    @bfontaine - yeah, I agree. For really long strings, I'd have to just suck it up and use RegExp. – yonas Feb 27 '14 at 19:00
  • 15
    One who is afraid of RegExp can never be told how great RegExp is. You need to find the door yourself. Once you're there, you'll never look back. Ask me again in a few years and you will tell mé how great it is. – Christiaan Westerbeek Aug 20 '14 at 8:28
  • 2
    @yonas Take the red pill! – frnhr Mar 8 '15 at 18:40
  • 2
    @yonas Yeah, take the red pill! It will make your life faster, even for short strings: jsperf.com/split-by-first-colon – Julian F. Weinert Oct 11 '15 at 8:39
  • 12
    Ha! I wrote this comment 4+ years ago. I am definitely on board with RegExp now! :) – yonas Oct 5 '17 at 15:01
11

Replace the first instance with a unique placeholder then split from there.

"good_luck_buddy".replace(/\_/,'&').split('&')

["good","luck_buddy"]

This is more useful when both sides of the split are needed.

  • 1
    This puts an unnecessary constraint on the string. – Yan Foto Jul 22 '16 at 9:46
  • This answer worked for me when all of the above answers did not. – GuitarViking Jul 21 '17 at 17:33
  • 1
    @YanFoto you mean by using '&'? It could be anything. – sebjwallace Jul 26 '17 at 18:12
  • 1
    @sebjwallace Whatever you choose, it means you can't have that character in the string. E.g. "fish&chips_are_great" gives [fish, chips, are_great] I think. – Joe Jan 17 '19 at 10:12
  • @Joe You could use anything instead of '&' - it was just an example. You could replace the first occurrence of _ with ¬ if you wanted. So "fish&chips_are_great" would replace the first occurrence of _ with ¬ to give "fish&chips¬are_great" then split by ¬ to get ["fish&chips","are_great"] – sebjwallace Jan 18 '19 at 14:09
7

You can use the regular expression like:

var arr = element.split(/_(.*)/)
You can use the second parameter which specifies the limit of the split. i.e: var field = element.split('_', 1)[1];
  • 6
    That only specifies how many of the split items are returned, not how many times it splits. 'good_luck_buddy'.split('_', 1); returns just ['good'] – Alex Vidal Jan 5 '11 at 18:29
  • Thanks made an assumption on that. Updated the post to use a regular expression. – Chandu Jan 5 '11 at 18:35
  • Was (:?.*) supposed to be a non-capturing group? If so, it should be (?:.*), but if you correct it you'll find it doesn't work any more. (:?.*) matches an optional : followed by zero or more of any character. This solution ends up working for the same reason @MarkF's does: everything after the first _ is added to the token list because it was matched in a capturing group. (Also, the g modifier has no effect when used in a split regex.) – Alan Moore Jan 5 '11 at 19:59
  • Thanks, didn't realize it. Updated the Regex and tried it over couple of scenarion... – Chandu Jan 5 '11 at 20:08
  • 1
    It doesnt work in ie8 and i switch back to indexOf and substring – Igor Alekseev Aug 9 '12 at 11:32
3

Javascript's String.split unfortunately has no way of limiting the actual number of splits. It has a second argument that specifies how many of the actual split items are returned, which isn't useful in your case. The solution would be to split the string, shift the first item off, then rejoin the remaining items::

var element = $(this).attr('class');
var parts = element.split('_');

parts.shift(); // removes the first item from the array
var field = parts.join('_');
  • I see that the split function doesn't help, but using a regex seems to achieve this. It should specify that you are referring to the Split function itself, natively. – Dan Hanly Feb 2 '12 at 11:14
  • 1
    Interesting, This solution distills the problem down to a more readable/manageable solution. In my case of converting a full name into first and last (yes our requirements forced this logic) this solution worked best and was more readable then the others. Thanks – Sukima Dec 14 '17 at 19:20
2

I need the two parts of string, so, regex lookbehind help me with this.

const full_name = 'Maria do Bairro';
const [first_name, last_name] = full_name.split(/(?<=^[^ ]+) /);
console.log(first_name);
console.log(last_name);

1

Fastest solution?

I ran some benchmarks, and this solution won hugely:1

str.slice(str.indexOf(delim) + delim.length)

// as function
function gobbleStart(str, delim) {
    return str.slice(str.indexOf(delim) + delim.length);
}

// as polyfill
String.prototype.gobbleStart = function(delim) {
    return this.slice(this.indexOf(delim) + delim.length);
};

Performance comparison with other solutions

The only close contender was the same line of code, except using substr instead of slice.

Other solutions I tried involving split or RegExps took a big performance hit and were about 2 orders of magnitude slower. Using join on the results of split, of course, adds an additional performance penalty.

Why are they slower? Any time a new object or array has to be created, JS has to request a chunk of memory from the OS. This process is very slow.

Here are some general guidelines, in case you are chasing benchmarks:

  • New dynamic memory allocations for objects {} or arrays [] (like the one that split creates) will cost a lot in performance.
  • RegExp searches are more complicated and therefore slower than string searches.
  • If you already have an array, destructuring arrays is about as fast as explicitly indexing them, and looks awesome.

Removing beyond the first instance

Here's a solution that will slice up to and including the nth instance. It's not quite as fast, but on the OP's question, gobble(element, '_', 1) is still >2x faster than a RegExp or split solution and can do more:

/*
`gobble`, given a positive, non-zero `limit`, deletes
characters from the beginning of `haystack` until `needle` has
been encountered and deleted `limit` times or no more instances
of `needle` exist; then it returns what remains. If `limit` is
zero or negative, delete from the beginning only until `-(limit)`
occurrences or less of `needle` remain.
*/
function gobble(haystack, needle, limit = 0) {
  let remain = limit;
  if (limit <= 0) { // set remain to count of delim - num to leave
    let i = 0;
    while (i < haystack.length) {
      const found = haystack.indexOf(needle, i);
      if (found === -1) {
        break;
      }
      remain++;
      i = found + needle.length;
    }
  }

  let i = 0;
  while (remain > 0) {
    const found = haystack.indexOf(needle, i);
    if (found === -1) {
      break;
    }
    remain--;
    i = found + needle.length;
  }
  return haystack.slice(i);
}

With the above definition, gobble('path/to/file.txt', '/') would give the name of the file, and gobble('prefix_category_item', '_', 1) would remove the prefix like the first solution in this answer.


  1. Tests were run in Chrome 70.0.3538.110 on macOSX 10.14.
  • Come on... It's 2019... Are people out there really still microbenchmarking this kind of thing? – Victor Schröder Feb 7 '19 at 0:02
  • I agree. Although microbenchmarking is slightly interesting, you should rely on a compiler or translator for optimizations.Who knows. Mb someone reading this is building a compiler or using ejs / embedded and can't use regex. However, this looks nicer for my specific case than a regex. (I'd remove the "fastest solution") – TamusJRoyce Feb 11 '19 at 14:06
1

This solution worked for me

var str = "good_luck_buddy";
var index = str.indexOf('_');
var arr = [str.slice(0, index), str.slice(index + 1)];

//arr[0] = "good"
//arr[1] = "luck_buddy"
0

Mark F's solution is awesome but it's not supported by old browsers. Kennebec's solution is awesome and supported by old browsers but doesn't support regex.

So, if you're looking for a solution that splits your string only once, that is supported by old browsers and supports regex, here's my solution:

String.prototype.splitOnce = function(regex)
{
    var match = this.match(regex);
    if(match)
    {
        var match_i = this.indexOf(match[0]);
        
        return [this.substring(0, match_i),
        this.substring(match_i + match[0].length)];
    }
    else
    { return [this, ""]; }
}

var str = "something/////another thing///again";

alert(str.splitOnce(/\/+/)[1]);

0

For beginner like me who are not used to Regular Expression, this workaround solution worked:

   var field = "Good_Luck_Buddy";
   var newString = field.slice( field.indexOf("_")+1 );

slice() method extracts a part of a string and returns a new string and indexOf() method returns the position of the first found occurrence of a specified value in a string.

  • This is not a workaround, but a proper way of doing it ;) – Victor Schröder Feb 7 '19 at 0:06
0

This worked for me on Chrome + FF:

"foo=bar=beer".split(/^[^=]+=/)[1] // "bar=beer"
"foo==".split(/^[^=]+=/)[1] // "="
"foo=".split(/^[^=]+=/)[1] // ""
"foo".split(/^[^=]+=/)[1] // undefined

If you also need the key try this:

"foo=bar=beer".split(/^([^=]+)=/) // Array [ "", "foo", "bar=beer" ]
"foo==".split(/^([^=]+)=/) // [ "", "foo", "=" ]
"foo=".split(/^([^=]+)=/) // [ "", "foo", "" ]
"foo".split(/^([^=]+)=/) // [ "foo" ]

//[0] = ignored (holds the string when there's no =, empty otherwise)
//[1] = hold the key (if any)
//[2] = hold the value (if any)
0

Here's one RegExp that does the trick.

'good_luck_buddy' . split(/^.*?_/)[1] 

First it forces the match to start from the start with the '^'. Then it matches any number of characters which are not '_', in other words all characters before the first '_'.

The '?' means a minimal number of chars that make the whole pattern match are matched by the '.*?' because it is followed by '_', which is then included in the match as its last character.

Therefore this split() uses such a matching part as its 'splitter' and removes it from the results. So it removes everything up till and including the first '_' and gives you the rest as the 2nd element of the result. The first element is "" representing the part before the matched part. It is "" because the match starts from the beginning.

There are other RegExps that work as well like /_(.*)/ given by Chandu in a previous answer.

The /^.*?_/ has the benefit that you can understand what it does without having to know about the special role capturing groups play with replace().

0

Use the string replace() method with a regex:

var result = "good_luck_buddy".replace(/.*?_/, "");
console.log(result);

This regex matches 0 or more characters before the first _, and the _ itself. The match is then replaced by an empty string.

  • The document.body.innerHTML part here is completely useless. – Victor Schröder Feb 7 '19 at 0:05
  • @VictorSchröder how do you expect to see the output of the snippet without document.body.innerHTML? – James T Feb 8 '19 at 21:52
  • 1
    document.body depends on the DOM to be present and it won't work on a pure JavaScript environment. console.log is enough for this purpose or simply leave the result in a variable for inspection. – Victor Schröder Feb 10 '19 at 13:58
  • @VictorSchröder I don't think it would have caused much confusion, but I've edited nonetheless. – James T Feb 11 '19 at 3:06

Not the answer you're looking for? Browse other questions tagged or ask your own question.