0

Im trying to create dynamic menu. Basically,I have two tables :Category and pages.Not sure how should I do this but following is something I have tried

<nav class="navbar navbar-inverse">
    <div class="container-fluid">
        <div class="navbar-header">
            <a class="navbar-brand" href="{{url('/',null)}}" class="pull-left">Consulate</a>
        </div>
    <div>
    <ul class="nav navbar-nav">
        <li class="active"><a href="{{url('/',null)}}">Home</a></li>
        @foreach($categories as $category )
        <li class="dropdown">
            <a  class="dropdown-toggle" data-toggle="dropdown" role="button" aria-haspopup="true" aria-expanded="false">{{$category->title}}<span class="caret"></span></a>
            <ul class="dropdown-menu">
            @foreach($pages as $page)
                <li><a href="{{action('publicpagecontroller@show',[$page->id])}}">{{$page->title}}</a></li>
            @endforeach
            </ul>
        </li>
        @endforeach

With above code, I got the same drop down menus in all the categories.I require dropdown only if the category have pages. example1 example2

My models looks like following: Pages model

<?php
namespace App;
use Illuminate\Database\Eloquent\Model;

class Pages extends Model
{
    protected $fillable=[
        'title',
        'details',
        'image',
        'category_id',
    ];

    //A page has a category

    public function category()
    {
        return $this->belongsTo('App\Categories');
    }
}

categories model

<?php
namespace App;
use Illuminate\Database\Eloquent\Model;

class Categories extends Model
{
    protected $fillable=[
        'title',
        'details',
    ];
    public function pages()
    {
        return $this->hasMany('App\Pages');
    }
}
  • What is your database structure and what are you passing through for the categories and pages values from your controller. Your current code dosen't seem to show any relationship between the two. – Mark Davidson Jan 7 '16 at 9:18
  • @user3810794 you can delete that comment if its not relevant. You can also update your original question with any additional information needed. :) – lagbox Jan 7 '16 at 10:03
1
0

You could store your categories in a database table called categories (id, name, url). You could then also have another table called pages (id, name, url, category_id).

Create a Category and Page model.

Define a one-to-many relationship (one category-to-many pages).

You could then do:

@foreach( $categories as $category )
  <!-- display your category html -->

  @foreach( $category->pages as $page )
    <!-- display your page html -->
  @endforeach

@endforeach

Have a look at one-to-many relaitonships in Laravel: Eloquent: Relationships - one-to-many

| improve this answer | |
  • Hi my database is similar as you have stated. I get following error after doing the loop "Invalid argument supplied for foreach() ....." – user3810794 Jan 7 '16 at 9:49
  • I noticed few mistakes and corrected them now im getting this error: SQLSTATE[42S22]: Column not found: 1054 Unknown column 'pages.categories_id' in 'where clause' (SQL: select * from pages where pages.categories_id = 4 and pages.categories_id is not null) – user3810794 Jan 7 '16 at 10:35
  • Hmm is your column called categories_id or category_id? Could you post your code for the pages migration? – Matt Inamdar Jan 7 '16 at 12:24
  • $table->increments('id'); $table->integer('category_id')->unsigned(); $table->string('title'); $table->text('details'); $table->boolean('is_published'); $table->timestamps(); $table->foreign('category_id') ->references('id') ->on('categories') ->onDelete('cascade'); I have category_id in my migration. – user3810794 Jan 10 '16 at 3:28
  • @user3810794 add protected $table = 'categories'; to your categories model. – Matt Inamdar Jan 10 '16 at 15:03

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.