Here's my attempt at it:

$query = $database->prepare('SELECT * FROM table WHERE column LIKE "?%"');

$query->execute(array('value'));

while ($results = $query->fetch()) 
{
    echo $results['column'];
}
up vote 109 down vote accepted

Figured it out right after I posted:

$query = $database->prepare('SELECT * FROM table WHERE column LIKE ?');
$query->execute(array('value%'));

while ($results = $query->fetch())
{
    echo $results['column'];
}
  • 1
    @Andrew: what if multiple like is used ? how should the execute array executes in order ? – logan Apr 3 '14 at 18:00
  • thanks. had similar issue with csharp + Mysql + ODBC using like it would not return any rows using "select * from table where column like '%?%';" but will if I do like you did "select * from table where column like ?;" and set the parameter string so: string frag = $"%{searchFragment}%"; then use frag for the parameter value. Weird – sdjuan Nov 8 '16 at 19:34
  • 2
    PDO should be escaping that % in the execute call. Kaqai's answer is better – Peter Bagnall Nov 13 '16 at 14:52
  • It seems worth noting that the top user-contributed note on the PDOStatement::bindParam documentation page offers a different approach: Add the percent sign(s) to the variable before binding it. – Dan Robinson Mar 7 at 16:31

To use Like with % partial matching you can also do this: column like concat('%', :dangerousstring, '%') with the named parameter :dangerousstring. In other words, using explicitly unescaped % signs in your own query that are separated and definitely not the user input.

Edit: An alternative concatenation syntax that I've found is to use the concatenation operator: ||, so it'll become simply: where column like '%' || :dangerousstring || '%' etc

@bobince mentions here that:

The difficulty comes when you want to allow a literal % or _ character in the search string, without having it act as a wildcard.

So that's something else to watch out for when combining like and parameterization.

  • 5
    +1 - this seems like a good approach to me since all of the concatenation happens in the database after the placeholder has been substituted, and it means named placeholders can be used. It's worth mentioning that the above syntax is for Oracle - in MySQL the syntax is LIKE CONCAT('%', :something, '%'). Reference: stackoverflow.com/a/661207/201648 – Aaron Newton Apr 21 '15 at 12:59
  • 1
    This did not work for me exactly, but got me on the right track. I had to do LIKE '%' :something '%' for it to work. – Christopher Smit Jun 17 '17 at 9:58
  • i know this is off-topic but i was able to peform sql injection with even using this statment, why? – NBA YoungCode Jan 10 at 2:13
  • This didn't work for me, I also tested it with SQL command SELECT * FROM calculation WHERE ( email LIKE '%' || luza || '%' OR siteLocation LIKE '%'|| luza ||'%' OR company LIKE '%' ||luza ||'%' ) this would give me error. – Luzan Baral Oct 26 at 14:28
$query = $database->prepare('SELECT * FROM table WHERE column LIKE ?');
$query->bindValue(1, "%$value%", PDO::PARAM_STR);
$query->execute();

if (!$query->rowCount() == 0) 
{
    while ($results = $query->fetch()) 
    {
        echo $results['column'] . "<br />\n";
    }       
} 
else 
{
    echo 'Nothing found';
}
  • 1
    Is there any advantage of using this over the accepted answer? Does using bindValue protect against injection attacks? The accepted answer basically negates the value of using ? placeholders by concatenating the search string to % like in ye days of olde. – felwithe May 15 '15 at 13:40
  • What is the point of using negation before the $query->rowCount() == 0 ? Does this actually make sense? – ssi-anik Jul 4 '15 at 14:30
  • can you just explian your code – rupesh Oct 30 '17 at 6:56

You can also try this one. I face similar problem but got result after research.

$query = $pdo_connection->prepare('SELECT * FROM table WHERE column LIKE :search');

$stmt= $pdo_connection->prepare($query);

$stmt->execute(array(':search' => '%'.$search_term.'%'));

$result = $stmt->fetchAll(PDO::FETCH_ASSOC);

print_r($result);
  • I edited your post to put the code into a code block -- you can read more about post formatting at stackoverflow.com/help/formatting. Some other user chose to downvote your answer without leaving a comment, so I'm not sure about the cause of the downvote. – josliber Sep 27 '15 at 14:39
  • 2
    To repeat, I did not vote on your question; somebody else downvoted. – josliber Sep 28 '15 at 15:41

This works:

search `table` where `column` like concat('%', :column, '%')

PDO escapes "%" (May lead to sql injection): The use of the previous code will give the desire results when looking to match partial strings BUT if a visitor types the character "%" you will still get results even if you don't have anything stored in the data base (it may lead sql injections)

I've tried a lot of variation all with the same result PDO is escaping "%" leading unwanted/unexcited search results.

I though it was worth sharing if anyone has found a word around it please share it

  • 1
    This is from the Manual: us3.php.net/manual/en/pdo.prepared-statements.php This is another post where about the subject: stackoverflow.com/questions/22030451/… I owuld really like to know your opinion about this issu. – Ozkar R Sep 27 '15 at 0:41
  • Possible solution(No tested) Use CONCAT, like:$sql = “SELECT item_title FROM item WHERE item_title LIKE CONCAT(‘%’,?,’%’)”; Reference: blog.mclaughlinsoftware.com/2010/02/21/php-binding-a-wildcard – Ozkar R Sep 27 '15 at 1:37
  • 2
    PDO doesn't escape %. It's your code that does it wrong. For the solution you are are supposed to read answers already provided here – Your Common Sense Sep 27 '15 at 8:34
  • Thanks you for you suggestions. Anyway the code tested was the code from the manual, using placeholder to avoid SQL injection, I'm still getting the same result Example #6 Invalid use of placeholder PDO does escape % using the above code, not my code. I'm new to forum and I may not understand how the process of comment, post and reputation work here, I'll keep it in mind for my next, because based on the previous comment you need reputation to help others or make comments. thanks. – Ozkar R Sep 27 '15 at 14:52

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