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riting a very simple search using like and have an option to omit options, however I find the like statement is making query ignore the where statement

$this->db->like('LOWER(location) OR LOWER(name)', strtolower($term));
$this->db->where('stage', 1);
$this->db->order_by("name", "asc"); 
$query = $this->db->get($this->user_table);
return $query->result();

Example of what the above produces with $term = "dublin";

SELECT * FROM (`users`) WHERE `stage` = 1 AND LOWER(location) OR LOWER(name) LIKE '%dublin%' ORDER BY `name` asc"

It still returns rows where 'stage' is not equal to 1.

Any ideas? Thank you!

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look at this answer an alternative stackoverflow.com/questions/11023318/… –  raheel shan Jun 25 '12 at 10:50

3 Answers 3

up vote 7 down vote accepted
$term = strtolower($term);
$this->db->where("(LOWER(location) LIKE '%{$term}%' OR LOWER(name) LIKE '%{$term}%')");
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Gentleman and a scholar, thank you! :) –  DexCurl Jun 25 '12 at 11:03
$query = $this->db->query("SELECT id_alimento, nombre, unidad, energia_kcal FROM catalogo_alimentos WHERE LOWER(nombre) LIKE '%".$this->db->escape_like_str($search)."%'");
if($query != false){
  if ($query->num_rows() > 0) {
    return $query->result();
  }
}
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Please provide some information here about why this is an answer. –  Spencer Wieczorek Dec 11 '14 at 16:58

Substitute this for the query

$term = strtolower($term);
$this->db->where("stage= 1 AND (LOWER(location) LIKE '%{$term}%' OR LOWER(name) LIKE '%{$term}%')");
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Please don't give code-only answers. Explain what your code does, and how does it fulfill OPs requirements. –  Gaurang Tandon Mar 30 '14 at 6:23
    
ok thank you , I am a new joint Active –  user3460632 Apr 1 '14 at 4:54

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