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I've got an problem.

How could I validate an search function? Like if it fails to find the user, it'll display an error message. I've tried several things, but none of them works. Here's my form:

(search/search.blade.php)

<form id="custom-search-form" class="form-search form-horizontal pull-right" action="{{ URL::action('CharactersController@search') }}" method="get">
<div class="input-append span9">
    <input type="text" class="search-query" name="character" placeholder="Character/guild name">
    <button type="submit" class="btn"><i class="icon-search"></i></button>
</div>

I've tried to do something like: @if ($searchResult->count()) - it works, but it displays every time I enter the search site.

Here's my controller's acction:

public function search()
{
    $name = Input::get('character');
    $searchResult = Player::where('name', '=', $name)->get();
    return View::make('search.search')
            ->with('name', $name)
            ->with('searchResult', $searchResult);
}
share|improve this question

Shouldn't it be

@if(count($searchResult) > 0)
  //Show results?
@endif
share|improve this answer
    
Pretty feasible to me. No need for complicated solution – Andreyco Aug 13 '13 at 12:32
    
Laravel's eloquent implements a count() method for counting results and what is displayed above would work but his problem is that he is using one action to display a search form and display the results. – DanielOR Aug 13 '13 at 12:40
    
Even if he kept it on a single action, it should still work. using count($searchResult) you would probably reduce the step of performing isset($searchResult) as the count($searchResult) takes care of it. php.net/manual/en/… – Abishek R Srikaanth Aug 13 '13 at 12:46
    
If its going to work with count($searchResults) why wouldn't it work with $searchResults->count()? Why run a database query every time the page is loaded? – DanielOR Aug 13 '13 at 12:56
    
@DanielOR, I don't see an issue with your code, but why waste on 2 steps, when you can finish it in one. Secondly, you can still ignore the additional query if Input::get('character') is empty. Keeping it on a single action has its own advantage, you don't have to have a seperate action for managing pagination or paginating for the search made already – Abishek R Srikaanth Aug 13 '13 at 13:07

You could split your controllers methods into getSearch() to display the search form and then use postSearch() to display the results.

public function getSearch()
{
    return View::make('search.search');
}

public function postSearch()
{
    $name = Input::get('character');
    $searchResult = Player::where('name', '=', $name)->get();
       return View::make('search.search')
            ->with('name', $name)
            ->with('searchResult', $searchResult);
}

//search.blade example

@if(isset($searchResult))
    @if($searchResult->count() > 0)
        //display results
    @else
        //no results to display
    @endif
@endif  
share|improve this answer
    
Here's my view: paste.laravel.com/J6o , also here are my routes: Route::get('characters/search', 'CharactersController@getSearch'); Route::post('characters/search', array('as' => 'search', 'uses' => 'CharactersController@postSearch')); The problem is the browser doesn't change the form action, it's still <form id="custom-search-form" class="form-search form-horizontal pull-right" action="<?php echo URL::action('CharactersController@search'); ?>" method="get"> I thought it's browsers cache, I've changed three browsers. – erm_durr Aug 13 '13 at 12:58
    
change action="<?php echo URL::action('CharactersController@search'); ?>" to action="" – DanielOR Aug 13 '13 at 13:02
    
also you will have to add a foreach in there. @foreach($searchResults as $s) – DanielOR Aug 13 '13 at 13:04
    
Changed, but still it displays the same error. Whenever I change something in the action, it doesn't change. I've tried different browsers, but nothing. Could you write the form in laravel's form system? – erm_durr Aug 13 '13 at 13:04
    
Can you paste your controller? – DanielOR Aug 13 '13 at 13:10

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