40

I am working on search filter on checkbox click, with Laravel and Ajax call. So I get results when I click on a checkbox. my query is as follows:

    $editors = User::with(['editor.credentials','editor.specialties','editor.ratings']);
        $temp=$editors->whereHas('editor', function($q) use ($a_data){
            $q->whereHas('specialties',function($sq) use($a_data){
            $sq->whereIn('specialty',$a_data);
            });
        })->paginate(2);

This gives me all the data I need. however how should I get the links for pagination?

    $temp->setBaseUrl('editors');
    $links = $temp->links()->render();

I am currently doing this and with $links which I am sending over as response to ajax call, I set the pagination with $links data. Now, I need to append the query to next page like page=2?query="something". I don't know how should I go about appending the remaining query result links to next page links. i.e. I don;t know what should come in the query="something" part. Can someone guide me. thanks

10 Answers 10

127
{{ $users->appends($_GET)->links() }}

It will append all query string parameters into pagination link

3
  • 25
    Based on this, I used request helper in view: {{ $users->appends(request()->query())->links() }}
    – Ehsan
    Sep 26 '17 at 21:52
  • 5
    Or even better {{ $posts->appends(request()->except('page'))->links() }}
    – FosAvance
    Mar 11 '19 at 19:51
  • @FosAvance thanks. this hadn't any value added. worked like Ehsan code for me. what is the difference?? Oct 5 '20 at 5:10
28

As of Laravel 7, you can call the withQueryString() method on your Paginator instance.

Quote from the documentation:

If you wish to append all current query string values to the pagination links you may use the withQueryString method:

{{ $users->withQueryString()->links() }}

See "Appending To Pagination Links": https://laravel.com/docs/7.x/pagination#displaying-pagination-results

2
  • 2
    You can also apply this directly to your model query. User::paginate()->withQueryString() which lets you do this inside your view: {{ $users->links() }} Jun 2 '21 at 9:33
  • Thanks bro this is the best solution. Jun 22 '21 at 17:23
25

Check the answer from @Arda, as it's global solution. Below you can find how to do it manually.

Use appends on Paginator:

$querystringArray = Input::only(['search','filter','order']); // sensible examples

// or:
$querystringArray = ['queryVar' => 'something', 'anotherVar' => 'something_else'];

$temp->appends($querystringArray);
0
16

Add this anywhere in your app (e.g routes.php, filters.php or anything that's autoloaded), no need to edit any pagination codes that is written already. This works flawlessly using view composers, and you don't need to know any query string parameters:

////////PAGINATION QUERY STRING APPEND
View::composer(Paginator::getViewName(), function($view) {
    $queryString = array_except(Input::query(), Paginator::getPageName());
    $view->paginator->appends($queryString);
});
//////////////////
6
  • FatalErrorException in routes.php line 20: Class 'Paginator' not found
    – Mr. Tomar
    Nov 26 '15 at 7:49
  • 1
    This Answer is for Laravel 4 @Tarzan, In Laravel 5, classes are PSR-4 standards, so you need to add \ character before. But I've not tried this in LAravel 5.
    – Arda
    Nov 26 '15 at 10:09
  • View::composer(\Paginator::getViewName(), function($view) { $queryString = array_except(Input::query(), \Paginator::getPageName()); $view->paginator->appends($queryString); }); not working
    – Mr. Tomar
    Nov 26 '15 at 11:07
  • Which version of Laravel are you using ? @Tarzan
    – Arda
    Nov 26 '15 at 11:23
  • Laravel 5, Can u suggest me how i get localhost/search/Filipino Filipino in my controller, want a filter according to filipino
    – Mr. Tomar
    Nov 26 '15 at 12:17
16

For the latest version of Laravel at the moment (5.2), you can just use the Request facade to retrieve the query string and pass that to your paginator's appends() method

$input = Request::input();
$myModelsPaginator = App\Models\MyModel::paginate();
$myModelsPaginator->appends($input);
0
16

Append all input except the actual page, form token and what you don't want to pass:

$paginatedCollection->appends($request->except(['page','_token']));
13

Inspired from previous answers I ended up using the service container for both frontend + api support.

In your AppServiceProvider@boot() method:

$this->app->resolving(LengthAwarePaginator::class, function ($paginator) {
    return $paginator->appends(array_except(Input::query(), $paginator->getPageName()));
});
1
  • 1
    worth notting, that you better bind both paginator types, lenghaware and normal
    – ctf0
    Feb 17 '20 at 21:10
11

you can used request helper in view as same

{{ $users->appends(request()->query())->links() }}
1
  • 3
    Perfect Answer. Thanks Jan 10 '20 at 6:32
9

in your view where you display pagination...

{{ $results->appends(Request::except('page'))->links() }}

appends keeps the query string value except "page". not sure if it will work with POST request

2
  {{ $users->appends(Request::only(['filter','search']))->links()}}

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