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I can do this in Code Igniter

$this->db->select();
$this->from->('node');
if ($published == true)
{
$this->db->where('published', 'true');
}
if (isset($year))
{
$this->db->where('year >', $year);
}
$this->db->get();

I am not able to do this in Laravel. Guys can you please help.

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3 Answers 3

up vote 8 down vote accepted

In Fluent you can do:

$query = DB::table('node');

if ($published == true)
    $query->where('published', '=', 1);

if (isset($year))
    $query->where('year', '>', $year);

$result = $query->get();
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Thanks man this is exactly what I wanted to know. Cheers mate. –  Amitav Roy Jan 6 '13 at 6:27
4  
This only returns an array. is there a way for this to return a collection? –  Oli Folkerd Oct 28 '14 at 14:45
    
this works on paginated date too, just swap get for paginate or simplePaginate –  Sam Jun 23 at 12:17

Here is how you can accomplish your query:

$year = 2012;
$published = true;

DB::table('node')
->where(function($query) use ($published, $year)
{
    if ($published) {
        $query->where('published', 'true');
    }

    if (!empty($year) && is_numeric($year)) {
        $query->where('year', '>', $year);
    }
})
->get( array('column1','column2') );

To find more information, I recommend reading through Fluent and Eloquent in the Laravel docs. http://laravel.com/docs/database/fluent

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If you need to use Eloquent you can use it like, I'm not sure that whereNotNull is the best use but I couldn't find another method to return what we really want to be an empty query instance:

$query = Model::whereNotNull('someColumn');
if(x < y)   
    {
        $query->where('column1', 'LIKE', '%'. $a .'%');
    }else{
        $query->where('column2', 'LIKE', '%'. $b .'%');
    }
$results = $query->get();

This way any relationships still work, for example in your view you can still use

foreach($results as $result){
    echo $result->someRelationship()->someValue;
}

There is a good amount of info on here http://daylerees.com/codebright/eloquent-queries about this sort of stuff.

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