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I'm trying to use IFNULL() function to prevent the result of the query from being null, because null values causes errors when result are converted to JSON array.

$sql = mysql_query("select IFNULL(status,'nothing'),
    foodname from disease_food,
    food where disease_food.Disease_ID=$d1 or disease_food.Disease_ID=$d2 and    
    Food_ID=$res1 and disease_food.Food_ID=food.ID");

while($row=mysql_fetch_assoc($sql)) {
    $output[] = $row;
}

$data = json_encode($output);
print($data);
mysql_close();

The errors:(when the result is null)

Undefined variable: output

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3  
You must use prepared statements these days, that kind of query is dangerous and archaic: php.net/manual/en/pdo.prepared-statements.php –  freshnode May 1 '12 at 9:08
    
Try $sql=mysql_query("select IFNULL(status,'nothing'),foodname from disease_food,food where disease_food.Disease_ID=$d1 or disease_food.Disease_ID=$d2 and Food_ID=$res1 and disease_food.Food_ID=food.ID") OR die(mysql_error()); and tell me what error (if any, you get) –  freshnode May 1 '12 at 9:10
    
How about locating and fixing that error first? –  Salman A May 1 '12 at 9:25
    
@user2012: What's wrong with that? Were you not expecting status to be راض ("satisfied" in Arabic)? –  eggyal May 1 '12 at 9:32
    
@eggyal: I think he's looking for a more readable/addressable attribute name, like IFNULL(status, 'nothing') AS status. –  DCoder May 1 '12 at 9:40

1 Answer 1

i think you hava a typo. there is a ' missing before status.

   IFNULL(status,'nothing')
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