38

How can I with mysqli make a query with LIKE and get all results?

This is my code but it dosn't work:

$param = "%{$_POST['user']}%";
$stmt = $db->prepare("SELECT id,Username FROM users WHERE Username LIKE ?");
$stmt->bind_param("s", $param);
$stmt->execute();
$stmt->bind_result($id,$username);
$stmt->fetch();

This code it doesn't seem to work. I have searched it a lot. Also it may return more than 1 row. So how can I get all the results even if it returns more than 1 row?

  • 2
    Please define "does not work" - PHP error? MySQL error? No error but 0 results? – Mołot Aug 30 '13 at 7:50
  • I want to loop through all results. How can i do this? When i say doesn't work. It returns nothing... – user2493164 Aug 30 '13 at 7:56
  • there is no return operator in this code. How it is supposed to return anything? – Your Common Sense Aug 30 '13 at 8:00
60

Here's how you properly fetch the result

$param = "%{$_POST['user']}%";
$stmt = $db->prepare("SELECT id,Username FROM users WHERE Username LIKE ?");
$stmt->bind_param("s", $param);
$stmt->execute();
$stmt->bind_result($id,$username);

while ($stmt->fetch()) {
  echo "Id: {$id}, Username: {$username}";
}

or you can also do:

$param = "%{$_POST['user']}%";
$stmt = $db->prepare("SELECT id,Username FROM users WHERE Username LIKE ?");
$stmt->bind_param("s", $param);
$stmt->execute();

$result = $stmt->get_result();
while ($row = $result->fetch_array(MYSQLI_NUM)) {
  foreach ($row as $r) {
    print "$r ";
  }
  print "\n";
}

I hope you realise I got the answer directly from the manual here and here, which is where you should've gone first.

  • 3
    In defense of the OP, neither manual page makes any mention of the LIKE comparison "function" – Brad Kent Aug 22 '17 at 0:12
29

Updated

From comments it is found that LIKE wildcard characters (_and %) are not escaped by default on Paramaterised queries and so can cause unexpected results.

Therefore when using "LIKE" statements, use this 'negative lookahead' Regex to ensure these characters are escaped :

$param = preg_replace('/(?<!\\\)([%_])/', '\\\$1',$param);

As an alternative to the given answer above you can also use the MySQL CONCAT function thus:

$stmt = $db->prepare("SELECT id,Username FROM users WHERE Username LIKE CONCAT('%',?,'%') ");
$stmt->bind_param("s", $param);
$stmt->execute();

Which means you do not need to edit your $param value but does make for slightly longer queries.

  • Hi is concat safe from sql injection? I'm asking because it has quotes. Thanks – mike vorisis Feb 15 '17 at 23:29
  • @mikevorisis Yes, it's safe because the query is still parameterised (using ?) . the quotes are because MySQL is CONCATenating three strings. – Martin Feb 16 '17 at 9:52
  • ok Thanks @Martin – mike vorisis Feb 16 '17 at 9:53
  • 3
    @MikeVorisis, CONCAT in prepared statements are safe from injection, but you should be cautious while using LIKE clause in prepared statements. Consider this: $stmt=$db->prepare("SELECT customer` as suggestion WHERE customername LIKE CONCAT('cust_', ?, '%');");` and then $key='J%'; (Or even $key='';), $stmt->bind_param('s', $key);. Now $stmt->execute(); will return ALL records. So, when dealing with Prepared statements having 'LIKE' clause, you still need to handle _ and % in proper way. Even if using prepared statements, escaping like $key='J\%'; is needed. – Jay Dadhania Jul 13 '18 at 14:28
  • 1
    @mikevorisis Though I think you are probably aware of this and have already taken steps to handle such queries properly, I thought it'd be important to share as it may help others reading this too. – Jay Dadhania Jul 13 '18 at 14:30

protected by bummi Dec 10 '15 at 12:42

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