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Hi all i have a simple stored procedure in mysql db

DELIMITER $$
CREATE DEFINER=`vidhu`@`%` PROCEDURE `test`(var_datain TEXT)
BEGIN
    SELECT var_datain;
END

When i call this procedure in mysql-workbench it returns me the data i put in. see screenshot: Screenshot form mysql work bench

ok so now when I call it from php using pdo I get an error:

Fatal error: Cannot pass parameter 2 by reference in C:/apache......(3rd line)

Here is my php code:

$db = new PDO(DSN, DBUSER, DBPASS);
$stmt = $db->prepare("CALL test(?)");
$stmt->bindParam(1, 'hai!', PDO::PARAM_STR);
$rs = $stmt->execute();
$result = $stmt->fetchAll(PDO::FETCH_ASSOC);
echo $result[0];

Thanks a bunch!!! Vidhu

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Which line? I don't see anything being passed by reference –  Mike B Aug 7 '12 at 0:48
    
the line which has $stmt->bindParam(1, 'hai!', PDO::PARAM_STR); –  Krimson Aug 7 '12 at 0:49

1 Answer 1

up vote 6 down vote accepted

You need to use bindValue instead of bindParam.

When you use bindParam, it binds the variable provided to the parameter, not the value of the variable.

So, if you do:

$x = 5;
$stmt->bindParam(1, $x, PDO::PARAM_INT);
$x = 6;
$stmt->execute(); //executes with 6 instead of 5

It's actually executed with 6 rather than 5. To do this, the method must have a reference to the variable. You cannot have a reference to a literal, so this means that bindParam cannot be used with literals (or anything you can't have a reference to).

$x = 5;
$stmt->bindValue(1, $x, PDO::PARAM_INT);
$x = 6;
$stmt->execute(); //executes with 5 instead of 6

Then:

$stmt->bindParam(1, 1, PDO::PARAM_INT); 
//invalid because there's no way to pass a literal 1 by reference
$stmt->bindValue(1, 1, PDO::PARAM_INT);
//valid
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