29

I'm getting the error "SQLSTATE[HY093]: Invalid parameter number" when I try to run the below function:

function add_persist($db, $user_id) {
    $hash = md5("per11".$user_id."sist11".time());
    $future = time()+(60*60*24*14);
    $sql = "INSERT INTO persist (user_id, hash, expire) VALUES (:user_id, :hash, :expire) ON DUPLICATE KEY UPDATE hash=:hash";
    $stm = $db->prepare($sql);
    $stm->execute(array(":user_id" => $user_id, ":hash" => $hash, ":expire" => $future));
    return $hash;
}

I feel like it's something simple that I'm just not catching. Any ideas?

4
  • 14
    You cannot use a named parameter marker of the same name twice in a prepared statement. http://php.net/manual/en/pdo.prepare.php
    – bitWorking
    Aug 3 '13 at 2:42
  • I understand that that post has an answer that answers my question as well, but my question definitely isn't a possible duplicate.
    – vijrox
    Aug 3 '13 at 2:50
  • 1
    In the other question, fetchAll() returns nothing because the query failed just as yours. The other author just did not notice it. This is essentially the same problem, so it is worth linking these two.
    – RandomSeed
    Aug 3 '13 at 2:58
  • 2
    yes they are linked in that the answers are the same, but there is no way of knowing that based on the questions
    – vijrox
    Aug 3 '13 at 7:32
47

Try:

$sql = "INSERT INTO persist (user_id, hash, expire)
        VALUES (:user_id, :hash, :expire)
        ON DUPLICATE KEY UPDATE hash=:hash2";

and

$stm->execute(
    array(":user_id" => $user_id, 
          ":hash" => $hash, 
          ":expire" => $future,
          ":hash2" => $hash)
);

Excerpt from the documentation (http://php.net/manual/en/pdo.prepare.php):

You must include a unique parameter marker for each value you wish to pass in to the statement when you call PDOStatement::execute(). You cannot use a named parameter marker of the same name twice in a prepared statement. You cannot bind multiple values to a single named parameter in, for example, the IN() clause of an SQL statement.

3
  • 1
    it worked! I'll accept your answer as soon as stack lets me. Why doesn't the original method work?
    – vijrox
    Aug 3 '13 at 2:42
  • @VijayRamamurthy, please read through this: php.net/manual/en/pdo.prepare.php
    – vee
    Aug 3 '13 at 2:43
  • What is the difference between your answer and OP's question?
    – Shafizadeh
    Nov 18 '15 at 14:22
17

This is one limitation to using PDO. PDO simply acknowledges the number of parameters in the query and the execution and throws an error on any mismatch. If you need to use parameter repetition in your queries, you have to go about it using a workaround

$sql = "insert into persist(user_id, hash, expire) values
    (:user_id, :hash, :value) on duplicate key update
    hash = :hash2";
$stm->execute(array(':user_id' => $user_id, ':hash' => $hash, ':hash2' => $hash,
    ':expire' => $expire));

You can refer to this for a more elaborate workaround - https://stackoverflow.com/a/7604080/1957346

1
  • 3
    Awesome! I spent two days debugging code that worked on everything else except one particular query. The answer was (as mentioned by "vijrox" above in a comment) that you cannot reuse the same named parameter in PDO. I had UPDATE users SET username = :username, caption = :caption WHERE username = :username, which will not work because :username appears twice. The fix was to rename the second one, ending up with this: UPDATE users SET username = :username, caption = :caption WHERE username = :user (the last :user is different). Apr 27 '16 at 21:34
5

I know this is an old question, however I think it's worth noting that a more appropriate solution would be to avoid clunky workarounds in PHP by leveraging SQL appropriately:

INSERT INTO `persist` (`user_id`, `hash`, `expire`)
VALUES (:user_id, :hash, :expire)
ON DUPLICATE KEY UPDATE `hash`=VALUES(`hash`)

This way, you only need to send the value once.

-2
$stmt = $con->prepare("INSERT INTO items(Name, Description, Price, Country_Made, Status, Add_Date)  VALUES( :zname, :zdesc, :zprice, :zcountry, zstatus, now())");

$stmt-> execute(array(
   "zname" => $name,
   "zdesc" => $desc,
   "zprice" => $price,
   "zcountry" => $country,
   "zstatus" => $status 
));
1
  • Although this code may help to solve the problem, it doesn't explain why and/or how it answers the question. Providing this additional context would significantly improve its long-term educational value. Please edit your answer to add explanation, including what limitations and assumptions apply. Sep 27 '16 at 17:27

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