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I have a simple query in PHP but I can't get Like to work.

Here is the code:

$var = $_GET['q'];
$trimmed = trim($var);
$query = "SELECT * FROM vm_regiony WHERE nazev LIKE "%$trimmed%" order by id     LIMIT 10";
$result = mysql_query($query);
if(mysql_num_rows($result)==0){
  echo "nothing";
  echo "<br />";
  echo $trimmed;
}else{
  while($rene=mysql_fetch_array($result)){
    $jmeno = $rene['nazev'];
    echo '<a id="hled" onclick="javascript:vybrat()">'.$jmeno.'</a>';
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A little code formatting please. That hurts my eyes. –  rdlowrey Dec 7 '11 at 21:12
    
i was just about to fix it too lol couldn't understand a word.. –  Andres Dec 7 '11 at 21:14
    
Please note that you have written a script that is vulnerable to SQL Injection vulnerabilities because you have not sanitized any of the user-supplied variables in your SQL queries. Please use PHP Prepared Statements to prevent these vulnerabilities. Thanks. –  sarnold Jan 21 '12 at 1:41
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2 Answers

up vote 5 down vote accepted

For one you need to use single quotes there

$query = "SELECT * FROM vm_regiony WHERE nazev LIKE '%$trimmed%' order by id LIMIT 10";
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Yeah, thanks you really much man, really quick answer THANKS! –  René Beneš Dec 7 '11 at 21:15
    
Or escape the double quotes - but single quotes is simpler :-) –  Adrian Cornish Dec 7 '11 at 21:15
    
no problem - to ensure fast response in the future you should check this answer as accepted. –  Kai Qing Dec 7 '11 at 21:28
    
Yeah, i was waiting, bacause there was 10 miutes remaining, and Ive forgot about it :D sorry –  René Beneš Dec 7 '11 at 21:43
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$query = "SELECT * FROM vm_regiony 
          WHERE nazev LIKE '%' . $trimmed . '%' 
          ORDER BY id LIMIT 10";
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