我有下一个结构:表菜单(id,title,type,parent_id,page_id)和页面(id,别名标题,内容)模型菜单
class Menu extends Model
{
public function parent()
{
return $this->belongsTo('App\Menu', 'parent_id');
}
public function children()
{
return $this->hasMany('App\Menu', 'parent_id');
}
public function page()
{
return $this->belongsTo('App\Page', 'page_id');
}
}
I want get the next result:
-Item 1 (show name menu table)
-Item 2
-Subitem 1 and alias (show name **menu** table and show alias **page** table)
-Subitem 2 and alias
-Item 3
- Suitem 1 and alias
雄辩的查询
$items = Menu::with(['children' => function($query){
$query->with('page');
}])->where(['parent_id' => null])->get();
视图
@foreach($items as $item)
@if($item->children()->count() > 0)
@foreach($item->children as $child)
<li><a href="/page/">{{$child->title}}</a></li>
@endforeach
@else
<li><a href="/page/{{$item->page->alias}}">{{$item->title}}
@endforeach
如何将别名页面嵌套在foreach中?
您可以使用:
{{ $child->page->alias }}
显示子菜单页面别名,假设您有每个孩子的page。
否则你可以使用:
{{ optional($child->page)->alias }}
如果您正在运行Laravel 5.5或:
{{ $child->page ? $child->page->alias : '' }}
如果您正在运行Laravel <5.5
您还可以改善预先加载和编码:
$items = Menu::with('children.page', 'page')->whereNull('parent_id')->get();