5

I would like to paginate the following relationship (a Category having many Apps):

class Category extends Model
{
    public function apps()
    {
        return $this->hasMany('App\App')->orderBy('current_price', 'asc');
    }
}

The problem is, when I add ->paginate(10); to the end of that line, I get the following error:

Relationship method must return an object of type Illuminate\Database\Eloquent\Relations\Relation

What am I missing here?

  • 1
    I don't think you can add a paginate method to an relation. Implementing pagination to a relationship. What you'll have to do is paginate the apps variable when returning in controller.. – Bharat Geleda Nov 3 '15 at 19:47
14

Have you tried this?

$category = Category::first();
$apps = $category->apps()->paginate(10);
return view('example', compact('category', 'apps'));

Then, on your view, you can just loop through the apps.

@foreach ($apps as $app)
    {{ $app->id }}
@endforeach

{!! $apps->render() !!}

If you want to set it as a relationship to category, you can use the setRelation method:

$category = Category::first();
$category->setRelation('apps', $category->apps()->paginate(10));
return view('example', compact('category');

Then in your view:

@foreach ($category->apps as $app)
    {{ $app->id }}
@endforeach

{!! $category->apps->render() !!}
  • This worked like a charm! It's not eager loading, but it works. Thanks! – cbloss793 Feb 17 '17 at 21:30
  • This is just what I needed! Thank you! – sehummel Oct 2 '17 at 16:57
1

To get this to work, I had to bypass the Eloquent Relationships. I created a repository instead.

In this example, a user has lots of reports.

App\Repositories\ReportsRepository

This will get the reports records for a user.

namespace App\Repositories;

use App\User;

class ReportsRepository
{
    public function findByUser(User $user, $paginate = 10)
    {
        $reports = User::find($user->id)
            ->reports()
            ->orderBy('created_at', 'DESC')
            ->paginate($paginate);
        return $reports;
    }
}

ReportController

Here we call the ReportsRepositroy to get the records (I've removed the Auth code).

class ReportController extends Controller
{
    public function index(\App\Repositories\ReportsRepository $repo)
    {
        $reports = $repo->findByUser(Auth::user());
        return view('report.index', ['reports' => $reports]);
    }
}

View - report/index.blade.php

The important bit for pagination here is {!! $reports->render() !!}. This generates the links of the pagination.

@extends('layout.master')

@section('content')
    <div class="content">
        <h1>Reports</h1>

        @if ($reports->count())
            <table class="table">
                <thead>
                    <tr>
                        <th>Status</th>
                        <th>Info</th>
                        <th>Date</th>
                    </tr>
                </thead>

                <tbody>
                @foreach($reports as $report)
                    <tr class="{{ $report['status'] }}">
                        <td>{{ $report['status'] }}</td>
                        <td>{{ $report['info'] }}</td>
                        <td>{{ $report['created_at'] }}</td>
                    </tr>
                @endforeach
                </tbody>
            </table>
        @else
            <p>No records exist.</p>
        @endif

        {!! $reports->render() !!}

    </div>
@stop

This is all that's needed. Laravel deals with the rest of the pagination magic itself.

Hope this helps.

  • @Aine.i think you can change it below code $reports = User::find($user->id) as $reports = $user->find($user->id) since you are injecting User model in parameter – iCoders Sep 11 '18 at 7:28

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.