113

Is there better way to delete a parameter from a query string in a URL string in standard JavaScript other than by using a regular expression?

Here's what I've come up with so far which seems to work in my tests, but I don't like to reinvent querystring parsing!

function RemoveParameterFromUrl( url, parameter ) {

    if( typeof parameter == "undefined" || parameter == null || parameter == "" ) throw new Error( "parameter is required" );

    url = url.replace( new RegExp( "\\b" + parameter + "=[^&;]+[&;]?", "gi" ), "" ); "$1" );

    // remove any leftover crud
    url = url.replace( /[&;]$/, "" );

    return url;
}

20 Answers 20

169
"[&;]?" + parameter + "=[^&;]+"

Seems dangerous because it parameter ‘bar’ would match:

?a=b&foobar=c

Also, it would fail if parameter contained any characters that are special in RegExp, such as ‘.’. And it's not a global regex, so it would only remove one instance of the parameter.

I wouldn't use a simple RegExp for this, I'd parse the parameters in and lose the ones you don't want.

function removeURLParameter(url, parameter) {
    //prefer to use l.search if you have a location/link object
    var urlparts = url.split('?');   
    if (urlparts.length >= 2) {

        var prefix = encodeURIComponent(parameter) + '=';
        var pars = urlparts[1].split(/[&;]/g);

        //reverse iteration as may be destructive
        for (var i = pars.length; i-- > 0;) {    
            //idiom for string.startsWith
            if (pars[i].lastIndexOf(prefix, 0) !== -1) {  
                pars.splice(i, 1);
            }
        }

        return urlparts[0] + (pars.length > 0 ? '?' + pars.join('&') : '');
    }
    return url;
}
  • 5
    If you want to get rid of the "?" when there are no parameters after the removal, add an if condition to test if pars.length==0, and if it is 0, then make "url = urlparts[0]" instead of appending the "?". – johnmcaliley Nov 14 '10 at 18:42
  • 2
    Doesn't handle hash. – Muhd Jan 31 '12 at 1:39
  • 2
    Is it safe to compare the URL fragment with encodeURIComponent(parameter)? What if the URL encodes the parameter name differently? For example 'two%20words' versus 'two+words'. To deal with this, it might be better to decode the parameter name and compare it as a normal string. – Adrian Pronk Mar 18 '13 at 20:50
  • 9
    Mild improvement, so that when the final URL Parameter is removed, the '?' gets removed too: Change the line url= urlparts[0]+'?'+pars.join('&'); to url= urlparts[0] + (pars.length > 0 ? '?' + pars.join('&') : ""); – Cody S Sep 24 '15 at 17:23
  • 2
    @ktutnik/@JonasAxelsson URL query parameters are not naturally case-insensitive. – bobince Nov 21 '17 at 22:19
22

Copied from bobince answer, but made it support question marks in the query string, eg

http://www.google.com/search?q=test???+something&aq=f

Is it valid to have more than one question mark in a URL?

function removeUrlParameter(url, parameter) {
  var urlParts = url.split('?');

  if (urlParts.length >= 2) {
    // Get first part, and remove from array
    var urlBase = urlParts.shift();

    // Join it back up
    var queryString = urlParts.join('?');

    var prefix = encodeURIComponent(parameter) + '=';
    var parts = queryString.split(/[&;]/g);

    // Reverse iteration as may be destructive
    for (var i = parts.length; i-- > 0; ) {
      // Idiom for string.startsWith
      if (parts[i].lastIndexOf(prefix, 0) !== -1) {
        parts.splice(i, 1);
      }
    }

    url = urlBase + '?' + parts.join('&');
  }

  return url;
}
  • 2
    I believe the ??? is invalid syntax and should never occur in a URL`. – user663031 Sep 23 '16 at 18:30
  • @torazaburo Have a look at the stackoverflow question I posted: "Is it valid to have more than one question mark in a URL?", the answer appears to be yes. Also this was years ago so I cannot remember the details but I ran into problems when this wasn't correctly handled. – LukePH Sep 24 '16 at 8:30
  • I'm not saying they do not exist in the real world, and one would probably want to be able to handle them, but in a properly formed URL, the question mark is a "reserved character" and any question mark other than the one introducing the query parameters should be URL-encoded. – user663031 Sep 24 '16 at 9:23
  • 1
    You may want to replace the last line with return url.endsWith("?") ? url.slice(0,-1) : url; to cover the case where the parameter to be removed is the only one in the query string – Konamiman Nov 25 '16 at 11:33
  • @Konamiman That would change parameter data when for example removing 'aq' from: google.com/search?q=test???&aq=f but I get what you mean, it would be nice to clean up the url even if the ? doesn't do any harm. The logic just need to make sure the last ? is also the first ?. – LukePH Nov 25 '16 at 14:29
20

Modern browsers provide URLSearchParams interface to work with search params. Which has delete method that removes param by name.

if (typeof URLSearchParams !== 'undefined') {
  const params = new URLSearchParams('param1=1&param2=2&param3=3')
  
  console.log(params.toString())
  
  params.delete('param2')
  
  console.log(params.toString())

} else {
  console.log(`Your browser ${navigator.appVersion} does not support URLSearchParams`)
}

18

I don't see major issues with a regex solution. But, don't forget to preserve the fragment identifier (text after the #).

Here's my solution:

function RemoveParameterFromUrl(url, parameter) {
  return url
    .replace(new RegExp('[?&]' + parameter + '=[^&#]*(#.*)?$'), '$1')
    .replace(new RegExp('([?&])' + parameter + '=[^&]*&'), '$1');
}

And to bobince's point, yes - you'd need to escape . characters in parameter names.

  • 1
    Here is an improved regex that works when the paramater has no value (i.e. 'ex.com?removeMe'), and will not replace the parameter in fragments (i.e. 'ex.com?#&dont=removeMe') or paths (i.e. 'ex.com/&dont=removeMe'): url.replace(new RegExp('^([^#]*\?)(([^#]*)&)?' + parameter + '(\=[^&#]*)?(&|#|$)' ), '$1$3$5').replace(/^([^#]*)((\?)&|\?(#|$))/,'$1$3$4') – Stephen M. Harris Sep 3 '15 at 16:19
  • This won't work Stephen M. Harris. Try to give your code an empty String as a param and see what happens... – David Fischer Feb 25 '18 at 15:48
13

Anyone interested in a regex solution I have put together this function to add/remove/update a querystring parameter. Not supplying a value will remove the parameter, supplying one will add/update the paramter. If no URL is supplied, it will be grabbed from window.location. This solution also takes the url's anchor into consideration.

function UpdateQueryString(key, value, url) {
    if (!url) url = window.location.href;
    var re = new RegExp("([?&])" + key + "=.*?(&|#|$)(.*)", "gi"),
        hash;

    if (re.test(url)) {
        if (typeof value !== 'undefined' && value !== null)
            return url.replace(re, '$1' + key + "=" + value + '$2$3');
        else {
            hash = url.split('#');
            url = hash[0].replace(re, '$1$3').replace(/(&|\?)$/, '');
            if (typeof hash[1] !== 'undefined' && hash[1] !== null) 
                url += '#' + hash[1];
            return url;
        }
    }
    else {
        if (typeof value !== 'undefined' && value !== null) {
            var separator = url.indexOf('?') !== -1 ? '&' : '?';
            hash = url.split('#');
            url = hash[0] + separator + key + '=' + value;
            if (typeof hash[1] !== 'undefined' && hash[1] !== null) 
                url += '#' + hash[1];
            return url;
        }
        else
            return url;
    }
}

UPDATE

There was a bug when removing the first parameter in the querystring, I have reworked the regex and test to include a fix.

UPDATE 2

@schellmax update to fix situation where hashtag symbol is lost when removing a querystring variable directly before a hashtag

  • 1
    This doesn't work if you have two query strings and remove the first. The passed in url becomes invalid because the ? is removed when it should be preserved. – Blake Niemyjski Mar 6 '13 at 15:07
  • 1
    @BlakeNiemyjski thanks for finding that bug, I have updated the script to include a workaround for the first parameter – ellemayo Mar 7 '13 at 15:34
  • 1
    will accidentally remove the hash here: UpdateQueryString('a', null, 'http://www.test.com?a=b#c'); – schellmax Sep 13 '13 at 16:07
  • @schellmax Made an update that should fix this issue – ellemayo Sep 16 '13 at 14:41
  • Cool function, thanks. FYI: while using this with an ignore array keys in each()` loops, you may need to define an ever shrinking url for each replacement iteration. But, that means you must enter a value in the arguments, which will leave the querystring half removed. To counter this, use undefined or null for value argument like: url_from_last_iteration = UpdateQueryString(current_ignore_key, undefined/null, url_from_last_iteration); – dhaupin Jun 28 '17 at 15:56
8

You can change the URL with:

window.history.pushState({}, document.title, window.location.pathname);

this way, you can overwrite the URL without the search parameter, I use it to clean the URL after take the GET parameters.

7

Assuming you want to remove key=val parameter from URI:

function removeParam(uri) {
   return uri.replace(/([&\?]key=val*$|key=val&|[?&]key=val(?=#))/, '');
}
  • 1
    thanks for the simple solution – James Gentes Feb 24 '16 at 17:49
  • Works well but escaping the first question mark in the regex is unnecessary and can cause linter error: /([&?]key=val*$|key=val&|[?&]key=val(?=#))/ may be preferable when using a linter like eslint – quetzaluz Jul 17 '18 at 20:59
5

Heres a complete function for adding and removing parameters based on this question and this github gist: https://gist.github.com/excalq/2961415

var updateQueryStringParam = function (key, value) {

    var baseUrl = [location.protocol, '//', location.host, location.pathname].join(''),
        urlQueryString = document.location.search,
        newParam = key + '=' + value,
        params = '?' + newParam;

    // If the "search" string exists, then build params from it
    if (urlQueryString) {

        updateRegex = new RegExp('([\?&])' + key + '[^&]*');
        removeRegex = new RegExp('([\?&])' + key + '=[^&;]+[&;]?');

        if( typeof value == 'undefined' || value == null || value == '' ) { // Remove param if value is empty

            params = urlQueryString.replace(removeRegex, "$1");
            params = params.replace( /[&;]$/, "" );

        } else if (urlQueryString.match(updateRegex) !== null) { // If param exists already, update it

            params = urlQueryString.replace(updateRegex, "$1" + newParam);

        } else { // Otherwise, add it to end of query string

            params = urlQueryString + '&' + newParam;

        }

    }
    window.history.replaceState({}, "", baseUrl + params);
};

You can add parameters like this:

updateQueryStringParam( 'myparam', 'true' );

And remove it like this:

updateQueryStringParam( 'myparam', null );

In this thread many said that the regex is probably not the best/stable solution ... so im not 100% sure if this thing has some flaws but as far as i tested it it works pretty fine.

5

Here is what I'm using:

if (location.href.includes('?')) { 
    history.pushState({}, null, location.href.split('?')[0]); 
}

Original URL: http://www.example.com/test/hello?id=123&foo=bar
Destination URL: http://www.example.com/test/hello

4

Using jQuery:

function removeParam(key) {
    var url = document.location.href;
    var params = url.split('?');
    if (params.length == 1) return;

    url = params[0] + '?';
    params = params[1];
    params = params.split('&');

    $.each(params, function (index, value) {
        var v = value.split('=');
        if (v[0] != key) url += value + '&';
    });

    url = url.replace(/&$/, '');
    url = url.replace(/\?$/, '');

    document.location.href = url;
}
3

The above version as a function

function removeURLParam(url, param)
{
 var urlparts= url.split('?');
 if (urlparts.length>=2)
 {
  var prefix= encodeURIComponent(param)+'=';
  var pars= urlparts[1].split(/[&;]/g);
  for (var i=pars.length; i-- > 0;)
   if (pars[i].indexOf(prefix, 0)==0)
    pars.splice(i, 1);
  if (pars.length > 0)
   return urlparts[0]+'?'+pars.join('&');
  else
   return urlparts[0];
 }
 else
  return url;
}
2

You should be using a library to do URI manipulation as it is more complicated than it seems on the surface to do it yourself. Take a look at: http://medialize.github.io/URI.js/

2

From what I can see, none of the above can handle normal parameters and array parameters. Here's one that does.

function removeURLParameter(param, url) {
    url = decodeURI(url).split("?");
    path = url.length == 1 ? "" : url[1];
    path = path.replace(new RegExp("&?"+param+"\\[\\d*\\]=[\\w]+", "g"), "");
    path = path.replace(new RegExp("&?"+param+"=[\\w]+", "g"), "");
    path = path.replace(/^&/, "");
    return url[0] + (path.length
        ? "?" + path
        : "");
}

function addURLParameter(param, val, url) {
    if(typeof val === "object") {
        // recursively add in array structure
        if(val.length) {
            return addURLParameter(
                param + "[]",
                val.splice(-1, 1)[0],
                addURLParameter(param, val, url)
            )
        } else {
            return url;
        }
    } else {
        url = decodeURI(url).split("?");
        path = url.length == 1 ? "" : url[1];
        path += path.length
            ? "&"
            : "";
        path += decodeURI(param + "=" + val);
        return url[0] + "?" + path;
    }
}

How to use it:

url = location.href;
    -> http://example.com/?tags[]=single&tags[]=promo&sold=1

url = removeURLParameter("sold", url)
    -> http://example.com/?tags[]=single&tags[]=promo

url = removeURLParameter("tags", url)
    -> http://example.com/

url = addURLParameter("tags", ["single", "promo"], url)
    -> http://example.com/?tags[]=single&tags[]=promo

url = addURLParameter("sold", 1, url)
    -> http://example.com/?tags[]=single&tags[]=promo&sold=1

Of course, to update a parameter, just remove then add. Feel free to make a dummy function for it.

  • path.replace(new RegExp("&?"+param+"=[\\w]+", "g"), ""); I would change the regex to [\\w]* to include parameters like "param=" without values. – Tomas Prado May 29 '17 at 9:02
2

All of the responses on this thread have a flaw in that they do not preserve anchor/fragment parts of URLs.

So if your URL looks like:

http://dns-entry/path?parameter=value#fragment-text

and you replace 'parameter'

you will lose your fragment text.

The following is adaption of previous answers (bobince via LukePH) that addresses this problem:

function removeParameter(url, parameter)
{
  var fragment = url.split('#');
  var urlparts= fragment[0].split('?');

  if (urlparts.length>=2)
  {
    var urlBase=urlparts.shift(); //get first part, and remove from array
    var queryString=urlparts.join("?"); //join it back up

    var prefix = encodeURIComponent(parameter)+'=';
    var pars = queryString.split(/[&;]/g);
    for (var i= pars.length; i-->0;) {               //reverse iteration as may be destructive
      if (pars[i].lastIndexOf(prefix, 0)!==-1) {   //idiom for string.startsWith
        pars.splice(i, 1);
      }
    }
    url = urlBase + (pars.length > 0 ? '?' + pars.join('&') : '');
    if (fragment[1]) {
      url += "#" + fragment[1];
    }
  }
  return url;
}
  • 1
    Mild improvement, so that when the final URL Parameter is removed, the '?' gets removed too: Change the line url = urlBase+'?'+pars.join('&'); to url = urlBase + (pars.length > 0 ? '?' + pars.join('&') : ""); – Cody S Sep 24 '15 at 17:36
  • Updated, that's a good comment. – Will Lanni Aug 11 '17 at 22:24
  • what if # comes first ? dns-entry/path#fragment-text?parameter=value – ajayv Feb 4 at 9:32
1

Here a solution that:

  1. uses URLSearchParams (no difficult to understand regex)
  2. updates the URL in the search bar without reload
  3. maintains all other parts of the URL (e.g. hash)
  4. removes superflous ? in query string if the last parameter was removed
function removeParam(paramName) {
    let searchParams = new URLSearchParams(window.location.search);
    searchParams.delete(paramName);
    if (history.replaceState) {
        let searchString = searchParams.toString().length > 0 ? '?' + searchParams.toString() : '';
        let newUrl = window.location.protocol + "//" + window.location.host + window.location.pathname +  searchString + window.location.hash;
        history.replaceState(null, '', newUrl);
    }
}

Note: as pointed out in other answers URLSearchParams is not supported in IE, so use a polyfill.

0

A modified version of solution by ssh_imov

function removeParam(uri, keyValue) {
      var re = new RegExp("([&\?]"+ keyValue + "*$|" + keyValue + "&|[?&]" + keyValue + "(?=#))", "i"); 
      return uri.replace(re, '');
    }

Call like this

removeParam("http://google.com?q=123&q1=234&q2=567", "q1=234");
// returns http://google.com?q=123&q2=567
0

This returns the URL w/o ANY GET Parameters:

var href = document.location.href;
var search = document.location.search;
var pos = href.indexOf( search );
if ( pos !== -1 ){
    href = href.slice( 0, pos );
    console.log( href );
}
0

This is a clean version remove query parameter with the URL class for today browsers:

function removeUrlParameter(url, paramKey)
{
  var r = new URL(url);
  r.searchParams.delete(paramKey);
  return r.href;
}

URLSearchParams not supported on old browsers

https://caniuse.com/#feat=urlsearchparams

IE, Edge (below 17) and Safari (below 10.3) do not support URLSearchParams inside URL class.

Polyfills

URLSearchParams only polyfill

https://github.com/WebReflection/url-search-params

Complete Polyfill URL and URLSearchParams to match last WHATWG specifications

https://github.com/lifaon74/url-polyfill

-2

If you're into jQuery, there is a good query string manipulation plugin:

-2
function removeQueryStringParameter(uri, key, value) 
{

var re = new RegExp("([?&])" + key + "=.*?(&|$)", "i");

    var separator = uri.indexOf('?') !== -1 ? "&" : "?";

    if (uri.match(re)) {

        return uri.replace(re, '');

    }
}

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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