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Here's my PHP:

    $db = new mysqli($db_host, $db_user, $db_pass, $db_database);

    if (mysqli_connect_errno()) {
        echo "Could not connect to database.";
    }

    // On first connect to database, create a user to hold data for users not logged in
    $stmt = $db->prepare("SELECT id FROM users WHERE id = ?");
    $stmt->bind_param("i" , 1);
    $stmt->execute();

    if ($stmt->num_rows == 0) {
        $stmt = $db->prepare("INSERT INTO users (id, username, email, password) VALUES (?, ?, ?, ?");
        $stmt->bind_param("isss", 1, "anonymous", "anonymous", password_hash("noidentity", PASSWORD_BCRYPT));
        $stmt->execute();
    }

But when it runs, I get this error:

Fatal error: Cannot pass parameter 2 by reference

And it points to the line that I have $stmt->bind_param("i" , 1);

I'm not sure what I'm doing wrong.

Also, if I want to set the value of a field in a row to 1 higher than it currently is, how do I do that with prepared statements?

This, for example: UPDATE users SET wins = wins + 1 WHERE id = ? Setting wins to something is a value, so I assume it should be used with a prepared statement, but do I consider "wins + 1" to be a string, and include that in a prepared statement?

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4 Answers 4

up vote 4 down vote accepted

All arguments to bind_param (except the first) must be variables passed by reference, you can't just pass literal values such as 1, "anonymous"...

If the values to be inserted are fixed like these, there is no point in using bind_param at all, as it is completely safe to just have them in the query:

$stmt = $bd->prepare("INSERT INTO users (id, username, email, password) VALUES (1, 'anonymous',...)");

However in general you will need to put these parameters into variables, such as:

$params = Array(1,"anonymous","anonymous",password_hash("noidentity",PASSWORD_BCRYPT));
$stmt->bind_param("isss",$params[0],$params[1],$params[2],$params[3]);
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This is why I prefer PDO over Mysqli.

In PDO, you don't need to bind anything, you just pass values to execute() and you can pass them by value so you can use literals and expressions.

$stmt = $pdo->prepare("INSERT INTO users (id, username, email, password) 
    VALUES (?, ?, ?, ?");

$status = $stmt->execute(array(1, "anonymous", "anonymous", 
    password_hash("noidentity", PASSWORD_BCRYPT));

Of course check for success after each prepare() and execute().

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(I'm making this a CW post since this is basically a comment but won't fit in a comment.) –  Bill Karwin Feb 21 '13 at 16:28
$param = 1;
$stmt->bind_param("i" , $param);

Because you cannot pass a value in the bind, only a parameter.

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This question has an answer already. What's the point in adding another? –  Your Common Sense Jul 15 '13 at 14:53
    
not adding another. check the date. just update the formatting a little. –  Aris Jul 15 '13 at 14:54
    
Ops. I am sorry. –  Your Common Sense Jul 15 '13 at 15:01

This block of code is logically flawed:

if (mysqli_connect_errno()) {
    echo "Could not connect to database.";
}

In the case that there was not an error this function will return 0 aka false, not to mention that this does not cause the script to exit or otherwise skip the query execution. You should change it to something like:

$db = new mysqli($db_host, $db_user, $db_pass, $db_database)
if( $db->connect_error ) {
    echo "Could not connect to database.\n" .
        "Err: " . $db->connect_errno() . "\n" . $db->connect_error();
    // die/exit/return error/throw exception, or...
} else {
    // query prep/execution here
}

You're also mixing OO and procedural calls, I don't know if that's significant or not execution-wise, but it's confusing.

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In some older versions of PHP, you need to use mysqli_connect_error() in the procedural form because new mysqli() isn't guaranteed to return an object when the connect fails. Calling false->connect_error() would be a fatal mistake. –  Bill Karwin Feb 21 '13 at 16:22
    
Thanks. Also, it's $db -> connect_err without the parantheses. –  Doug Smith Feb 21 '13 at 16:29
    
@BillKarwin I originally had the $db = new... bit in the if condition, but the PHP docs are not clear on what is assigned to $db if the constructor fails. My assumption is that an exception would be thrown if the constructor fails, and some Object otherwise. –  Sammitch Feb 21 '13 at 16:36
    
@Sammitch, it's easy to test, just misspell your hostname or username and see what happens. FWIW, what happens depends on your version of PHP. –  Bill Karwin Feb 21 '13 at 16:42
    
This does not seem to answer the question. –  Belinda Jul 15 '13 at 15:41

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