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I'm experiencing a serious problem when I'm trying to make my CodeIgniter model comunicate with database properly.

In the answer I found in this topic I read that I shouldn't make queries like this:

            $query2 = $this->db->query("SELECT patient_id FROM visits
                          WHERE date LIKE DATE_FORMAT('$row->date', '%Y-%m-%d') GROUP BY date");    

but like that:

$this->db->select('patient_id');
$this->db->from('visits');
$this->db->like('date', "DATE_FORMAT($row->date, '%Y-%m-%d')"); 

Although, still can't figure out how to make it work. I'm also not sure if I used $this->db->like properly.

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What's your previous query? Are you sere there's a 'date' row, and that you returned an object? –  Damien Pirsy Dec 22 '12 at 12:23

1 Answer 1

up vote 1 down vote accepted

you just need to call:

$query = $this->db->get();

to get the results. Also, you dont need to $this->db each time, so your query could look like this:

$this->db
    ->select('patient_id')
    ->from('visits')
    ->like('date', "DATE_FORMAT($row->date, '%Y-%m-%d')", FALSE); 
 $query = $this->db->get();
share|improve this answer
    
You need to pass FALSE as 3rd argument in the like() call, or the whole query expression will be escaped and compared as is –  Damien Pirsy Dec 22 '12 at 12:25
    
good call, changed my answer –  WebweaverD Dec 22 '12 at 12:29
    
Thank you so much for the answer! :) That's actually nice and clean solution. And definitely easier to read. Sometimes you just need another brain ;) Thanks again! –  coobek Dec 22 '12 at 12:40

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