19

After reading and processing a query-string value from the URL, for example

http://myurl.com/#/?foo=baa

I can change the URL to

http://myurl.com/#/?foo=

by using

$location.search('myQueryStringParameter', '');

How do I get rid of the query-string altogether (without explicit redirects or server side action and so on) so that only

http://myurl.com/#/

remains in the browser? It should be fairly simple, but I can't find any reference.

26

Try this:

$location.url($location.path())

See documentation for more information.

  • Of course! Thanks, works exactly as it should. – Olaf Sep 16 '13 at 17:05
  • 6
    but it reloads the page – saf Sep 14 '15 at 13:23
  • 1
    This clears all querystring key/value-s. What if I just want to remove only one of them? – Korayem Nov 24 '15 at 1:16
  • 1
    @saf don't forget to set reloadOnSearch:false in your route – Korayem Nov 24 '15 at 1:17
  • It gives error - 'transition superseded' in the console. – Aman Srivastava Apr 4 '18 at 7:40
41

You were close, you needed to set null

$location.search('myQueryStringParameter', null); 

From ng.$location documentation

If search is a string, then paramValue will override only a single search parameter. If paramValue is an array, it will set the parameter as a comma-separated value. If paramValue is null, the parameter will be deleted.

  • This for some reason is deleting all my parameters. If I have name=Olly&position=forward and I call $location.search(position, null), everything gets deleted. – Alessandro Sep 17 '14 at 20:32
  • 1
    @Alessandro if you can create a test project that reproduces it log it as a bug. It has worked as documented for me for a long (in Angular land) time now. – toxaq Sep 17 '14 at 21:33
  • 2
    @toxaq but it reloads the page – saf Sep 14 '15 at 13:23
  • @saf that's true of any change to $location.search you need reloadOnSearch:false in your route (if using default routing). – toxaq Sep 14 '15 at 21:53
6

The easiest solution is to do the same as internaly in $location.url

$location.search('')
-2

try this

$location.url('/');

See documentation for more information.

  • 1
    This would redirect the user to the root path and that's NOT what the OP wanted. – Ashwin Apr 6 '17 at 14:50

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