1593

How would I write the equivalent of C#'s String.StartsWith in JavaScript?

var haystack = 'hello world';
var needle = 'he';

haystack.startsWith(needle) == true

Note: This is an old question, and as pointed out in the comments ECMAScript 2015 (ES6) introduced the .startsWith method. However, at the time of writing this update (2015) browser support is far from complete.

16 Answers 16

1694

You can use ECMAScript 6's String.prototype.startsWith() method, but it's not yet supported in all browsers. You'll want to use a shim/polyfill to add it on browsers that don't support it. Creating an implementation that complies with all the details laid out in the spec is a little complicated, and the version defined in this answer won't do; if you want a faithful shim, use either:

Once you've shimmed the method (or if you're only supporting browsers and JavaScript engines that already have it), you can use it like this:

"Hello World!".startsWith("He"); // true

var haystack = "Hello world";
var prefix = 'orl';
haystack.startsWith(prefix); // false
  • 1
    JSPerf with native startsWith: jsperf.com/js-startwith-prototype/8 – Jim Buck Mar 4 '16 at 16:13
  • @gtournie why would startsWith be one of the worst methods to test if a string starts with a string ? (see your comment here : stackoverflow.com/questions/646628/…) you are more enthusiastic about comparing character per character. i hope compilers are smart enough NOT to generate a string for every string[index] because, if you simply write this: character = string[0] it WILL allocate an object, infinitly LESS efficient than using startsWith (startsWith will not allocate any memory) – Martijn Scheffer Jul 20 '16 at 16:32
  • @MartijnScheffer: The answer has been edited many times since I replied and is now completely different (I removed my comment ;). I agree that ECMAScript 6's startsWith method is the best way to do that. – gtournie Jul 20 '16 at 18:26
  • 6
    @GrahamLaight, when you say supported by 'IE', presumably you mean by Edge. developer.mozilla.org/en/docs/Web/JavaScript/Reference/… – Marcus Aug 9 '16 at 19:03
  • @Marcus, apologies if I was wrong - my information came from: w3schools.com/jsref/jsref_startswith.asp – Graham Laight Aug 10 '16 at 10:06
1248

Another alternative with .lastIndexOf:

haystack.lastIndexOf(needle, 0) === 0

This looks backwards through haystack for an occurrence of needle starting from index 0 of haystack. In other words, it only checks if haystack starts with needle.

In principle, this should have performance advantages over some other approaches:

  • It doesn't search the entire haystack.
  • It doesn't create a new temporary string and then immediately discard it.
  • 1
    Not sure which case @rfcoder89 is taking about - jsfiddle.net/jkzjw3w2/1 – Gulfaraz Yasin May 20 '16 at 11:15
  • 5
    @rfcoder89 Notice the second parameter of lastIndexOf: "aba".lastIndexOf ("a") is 2 as you point out, but "aba".lastIndexOf ("a", 0) is 0, which is correct – maxpolk May 20 '16 at 14:37
  • 1
    Thank you so much. String.startsWith does not work on Android lollipop WebView, but this lastIndexOf snippet does!!! – Herman Dec 6 '16 at 23:22
  • with lastIndexOf the string is searched from the end to the beginning so it searches the whole string: so its inefficiency grows for very long strings to search in. – willy wonka Apr 8 '17 at 0:18
  • 7
    @willywonka No, it's not if you have 0 startIndex, it is searched from 0 pos and it's the only check. The whole string is searched only if fromIndex >= str.length. – greene May 19 '17 at 8:27
581
data.substring(0, input.length) === input
  • 3
    @ANeves I suspect it strongly depends on the browser and the data used. See Ben Weaver's answer for actual measurements. On the browser I'm running currently (Chrome 12.0.742 on Windows) substring wins for success and prepared regex wins for failure. – cobbal Jul 14 '11 at 17:11
  • 4
    @cobbal Maybe. But .lastIndexOf(input, 0) compares the first N chars, whereas .substring(0, input.length) === input counts N, substrings the data to N length, and then compares those N chars. Unless there is code optimization, this second version cannot be faster than the other. Don't get me wrong though, I would never find by myself something better than you suggested. :) – ANeves Jul 18 '11 at 9:19
  • 2
    @ANeves But .lastIndexOf on a long string that's going to return false is going to iterate over the entire string (O(N)), whereas the .substring case iterates over a potentially much smaller string. If you expect majority successes or only small inputs, .lastIndexOf is likely faster - otherwise .substring is likely faster. .substring also risks an exception if the input is longer than the string being checked. – Chris Moschini Jan 22 '13 at 20:18
  • 14
    @ChrisMoschini, don't forget that Mark Byers' solution has lastIndexOf start at index 0, not the end. That tripped me up, too, initially. Still, checking what a string starts with is such a common task that JavaScript really ought to have a proper API for it, not all the idioms and alternatives you see on this page, however clever they are. – Randall Cook Jan 29 '13 at 20:58
  • 4
    I prefer cobbal's solution over Mark's. Even if mark's is faster, and an impressive trick using the params, it's very difficult to read compared to substring. – ThinkBonobo Feb 13 '15 at 23:17
181

Without a helper function, just using regex's .test method:

/^He/.test('Hello world')

To do this with a dynamic string rather than a hardcoded one (assuming that the string will not contain any regexp control characters):

new RegExp('^' + needle).test(haystack)

You should check out Is there a RegExp.escape function in Javascript? if the possibility exists that regexp control characters appear in the string.

  • In order to make the expression case-sensitive use /^he/i – kaizer1v Oct 31 '18 at 12:50
51

I just wanted to add my opinion about this.

I think we can just use like this:

var haystack = 'hello world';
var needle = 'he';

if (haystack.indexOf(needle) == 0) {
  // Code if string starts with this substring
}
  • 2
    The Mark Byers answer was compared for performance of three different correct approaches by @relfor. This correct approach was not favored because it requires searching the entire string. – maxpolk May 20 '16 at 15:24
  • @maxpolk I think indexOf will stop searching entire string when it finds first occurence. I have checked it. – Mr.D May 21 '16 at 3:30
  • 7
    If the first occurrence is not found at the very beginning, this approach begins to grow inefficient the longer it continues looking for it, potentially searching until it reaches the very end, instead of giving up much earlier. Because there is a potential for inefficiency, it is not favored among the three correct approaches. – maxpolk Jun 27 '16 at 21:04
  • 2
    @Mr.D And if there is no match? – momomo Sep 16 '16 at 9:58
  • @momomo Then add else code. – Mr.D Sep 16 '16 at 10:07
51

Best solution:

function startsWith(str, word) {
    return str.lastIndexOf(word, 0) === 0;
}

startsWith("aaa", "a")
true
startsWith("aaa", "ab")
false
startsWith("abc", "abc")
true
startsWith("abc", "c")
false
startsWith("abc", "a")
true
startsWith("abc", "ba")
false
startsWith("abc", "ab")
true

And here is endsWith if you need that too:

function endsWith(str, word) {
    return str.indexOf(word, str.length - word.length) !== -1;
}

For those that prefer to prototype it into String:

String.prototype.startsWith || (String.prototype.startsWith = function(word) {
    return this.lastIndexOf(word, 0) === 0;
});

String.prototype.endsWith   || (String.prototype.endsWith = function(word) {
    return this.indexOf(word, this.length - word.length) !== -1;
});

Usage:

"abc".startsWith("ab")
true
"c".ensdWith("c") 
true
  • I think you've mixed up lastIndexOf and indexOf in your functions - startsWith should be return str.indexOf(word, 0) === 0; – Richard Matheson Jan 12 '17 at 14:51
  • 5
    @RichardMatheson the problem with using indexOf is that if it fails matching at the start, it will continue searching the entire string, whereby lastIndexOf starts from the length of the word and walks back to zero. Got it? – momomo Jan 27 '17 at 8:48
  • 2
    Ahh yes makes sense now - i didn't pay attention to the indices you were using. Very nice trick! – Richard Matheson Feb 5 '17 at 10:54
38

Here is a minor improvement to CMS's solution:

if(!String.prototype.startsWith){
    String.prototype.startsWith = function (str) {
        return !this.indexOf(str);
    }
}

"Hello World!".startsWith("He"); // true

 var data = "Hello world";
 var input = 'He';
 data.startsWith(input); // true

Checking whether the function already exists in case a future browser implements it in native code or if it is implemented by another library. For example, the Prototype Library implements this function already.

Using ! is slightly faster and more concise than === 0 though not as readable.

  • 1
    This could become a problem: If the implementation already in place behaves differently from my own this would break my application. – Christoph Wurm Jul 12 '11 at 9:20
  • 2
    This has the O(N) problem discussed here stackoverflow.com/questions/646628/javascript-startswith/… – Chris Moschini Jan 30 '13 at 7:52
  • 1
    using ! there is very messy – JonnyRaa Feb 6 '15 at 12:52
  • -1; adding this to String.prototype is a bad idea because it doesn't come anywhere close to complying with the spec for String.prototype.startsWith. Any code that tries to use the ES6 method is liable to fail if you're doing this; it may well look to see if the method is already defined, see that it is (badly, by you) and not add in a spec-compliant shim, leading to incorrect behaviour later. – Mark Amery Nov 5 '15 at 23:23
  • This is no good. – momomo Sep 16 '16 at 9:58
21

Also check out underscore.string.js. It comes with a bunch of useful string testing and manipulation methods, including a startsWith method. From the docs:

startsWith _.startsWith(string, starts)

This method checks whether string starts with starts.

_("image.gif").startsWith("image")
=> true
  • 1
    I needed _.string.startsWith – Colonel Panic Jul 25 '14 at 21:02
15

I recently asked myself the same question.
There are multiple possible solutions, here are 3 valid ones:

  • s.indexOf(starter) === 0
  • s.substr(0,starter.length) === starter
  • s.lastIndexOf(starter, 0) === 0 (added after seeing Mark Byers's answer)
  • using a loop:

    function startsWith(s,starter) {
      for (var i = 0,cur_c; i < starter.length; i++) {
        cur_c = starter[i];
        if (s[i] !== starter[i]) {
          return false;
        }
      }
      return true;
    }
    

I haven't come across the last solution which makes uses of a loop.
Surprisingly this solution outperforms the first 3 by a significant margin.
Here is the jsperf test I performed to reach this conclusion: http://jsperf.com/startswith2/2

Peace

ps: ecmascript 6 (harmony) introduces a native startsWith method for strings.
Just think how much time would have been saved if they had thought of including this much needed method in the initial version itself.

Update

As Steve pointed out (the first comment on this answer), the above custom function will throw an error if the given prefix is shorter than the whole string. He has fixed that and added a loop optimization which can be viewed at http://jsperf.com/startswith2/4.

Note that there are 2 loop optimizations which Steve included, the first of the two showed better performance, thus I will post that code below:

function startsWith2(str, prefix) {
  if (str.length < prefix.length)
    return false;
  for (var i = prefix.length - 1; (i >= 0) && (str[i] === prefix[i]); --i)
    continue;
  return i < 0;
}
11

Since this is so popular I think it is worth pointing out that there is an implementation for this method in ECMA 6 and in preparation for that one should use the 'official' polyfill in order to prevent future problems and tears.

Luckily the experts at Mozilla provide us with one:

https://developer.mozilla.org/de/docs/Web/JavaScript/Reference/Global_Objects/String/startsWith

if (!String.prototype.startsWith) {
    String.prototype.startsWith = function(searchString, position) {
        position = position || 0;
        return this.indexOf(searchString, position) === position;
    };
}

Please note that this has the advantage of getting gracefully ignored on transition to ECMA 6.

5

The best performant solution is to stop using library calls and just recognize that you're working with two arrays. A hand-rolled implementation is both short and also faster than every other solution I've seen here.

function startsWith2(str, prefix) {
    if (str.length < prefix.length)
        return false;
    for (var i = prefix.length - 1; (i >= 0) && (str[i] === prefix[i]); --i)
        continue;
    return i < 0;
}

For performance comparisons (success and failure), see http://jsperf.com/startswith2/4. (Make sure you check for later versions that may have trumped mine.)

2

I just learned about this string library:

http://stringjs.com/

Include the js file and then use the S variable like this:

S('hi there').endsWith('hi there')

It can also be used in NodeJS by installing it:

npm install string

Then requiring it as the S variable:

var S = require('string');

The web page also has links to alternate string libraries, if this one doesn't take your fancy.

1
var str = 'hol';
var data = 'hola mundo';
if (data.length >= str.length && data.substring(0, str.length) == str)
    return true;
else
    return false;
0

Based on the answers here, this is the version I am now using, as it seems to give the best performance based on JSPerf testing (and is functionally complete as far as I can tell).

if(typeof String.prototype.startsWith != 'function'){
    String.prototype.startsWith = function(str){
        if(str == null) return false;
        var i = str.length;
        if(this.length < i) return false;
        for(--i; (i >= 0) && (this[i] === str[i]); --i) continue;
        return i < 0;
    }
}

This was based on startsWith2 from here: http://jsperf.com/startswith2/6. I added a small tweak for a tiny performance improvement, and have since also added a check for the comparison string being null or undefined, and converted it to add to the String prototype using the technique in CMS's answer.

Note that this implementation doesn't support the "position" parameter which is mentioned in this Mozilla Developer Network page, but that doesn't seem to be part of the ECMAScript proposal anyway.

-2

If you are working with startsWith() and endsWith() then you have to be careful about leading spaces. Here is a complete example:

var str1 = " Your String Value Here.!! "; // Starts & ends with spaces    
if (str1.startsWith("Your")) { }  // returns FALSE due to the leading spaces…
if (str1.endsWith("Here.!!")) { } // returns FALSE due to trailing spaces…

var str2 = str1.trim(); // Removes all spaces (and other white-space) from start and end of `str1`.
if (str2.startsWith("Your")) { }  // returns TRUE
if (str2.endsWith("Here.!!")) { } // returns TRUE
  • 3
    This is very non-standard behavior: the string " abc" does NOT start with "abc". More specifically, ECMA 6 does not assume any sort of string trimming, so that whitespace must match exactly to yield a startsWith match. – Steve Hollasch Jul 15 '14 at 2:01
  • 3
    What... how is this answering the question? – DCShannon Oct 21 '15 at 1:05
  • 1
    @DCShannon it isn't. It's incomprehensible nonsense. – Mark Amery Nov 5 '15 at 1:19
  • 2
    @SteveHollasch My intention was to aware anyone looking for same issue I faced. That we needs to be careful with leading spaces when working with startsWith() and endsWith() functions. Nothing else! – Mayank Modi Nov 5 '15 at 12:27
-3

You can also return all members of an array that start with a string by creating your own prototype / extension to the the array prototype, aka

Array.prototype.mySearch = function (target) {
    if (typeof String.prototype.startsWith != 'function') {
        String.prototype.startsWith = function (str){
        return this.slice(0, str.length) == str;
      };
    }
    var retValues = [];
    for (var i = 0; i < this.length; i++) {
        if (this[i].startsWith(target)) { retValues.push(this[i]); }
    }
    return retValues;
};

And to use it:

var myArray = ['Hello', 'Helium', 'Hideout', 'Hamster'];
var myResult = myArray.mySearch('Hel');
// result -> Hello, Helium

protected by Ry- Jul 26 '15 at 22:46

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