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I'm trying to use mysqli instead of mysql queries, and it's not working. Mysqli:

$mysqli->connect($db1['host'], $db1['user'], $db1['password'], $db1['database']);
if ($mysqli->connect_errno) {
        printf("Connect failed: %s\n", $mysqli->connect_error);
        exit();
    }

no errors. If I try this query:

if(isset($_POST['username']))
{
    $password = $_POST['p']; 

    $random_salt = hash('sha512', uniqid(mt_rand(1, mt_getrandmax()), true));

    $password = hash('sha512', $password.$random_salt);

    if ($insert_stmt = $mysqli->prepare("INSERT INTO members (username, email, password, salt) VALUES (?, ?, ?, ?)")) {    
       $insert_stmt->bind_param('ssss', $username, $email, $password, $random_salt); 

       $insert_stmt->execute();
    }
    echo "Success";
}

nothing is inserted, no errors with mysqli error. Table structure is correct, and it says success. I'm new to mysqli, I'm used to mysql. Is there something I've missed with error reporting?

share|improve this question
    
Your echo Success is in wrong place. It should be inside that if –  Hanky 웃 Panky Jan 28 '13 at 10:20
    
I added the Success in if, and "No success" in else. I get No success. This query owrks: mysqli_query($link", "Insert into members set username='a'"); <br/><br/> Something isn't working with the query and I can't seem to find how to output error. –  William N Jan 28 '13 at 10:54

3 Answers 3

up vote 0 down vote accepted

you have to do it like this way

$password = hash('sha512', $password.$random_salt);

$insert_stmt = $mysqli->prepare("INSERT INTO members (username, email, password, salt) VALUES (?, ?, ?, ?)");     
$insert_stmt->bind_param('ssss', $username, $email, $password, $random_salt); 

if($insert_stmt->execute())
{
    echo "Success";
}

Actually you are first checking the query and after that binding the params, because of that it was just displaying Success.

share|improve this answer
    
<code>if(isset($_POST['username'])) { $password = $_POST['p']; $random_salt = hash('sha512', uniqid(mt_rand(1, mt_getrandmax()), true)); $password = hash('sha512', $password.$random_salt); $insert_stmt = $mysqli->prepare("INSERT INTO members (username, email, password, salt) VALUES (?, ?, ?, ?)"); $insert_stmt->bind_param('ssss', $username, $email, $password, $random_salt); if($insert_stmt->execute()) { echo "Success"; } else { echo "Not success"; } } /*<--- not success, this works */ mysqli_query($link", "Insert into members set username='a'"); </code> –  William N Jan 28 '13 at 10:27

Better try this, its from php manual

<?php
$mysqli = new mysqli("localhost", "user", "password", "database");
if ($mysqli->connect_errno) 
{
echo "Failed to connect to MySQL: (" . $mysqli->connect_errno . ") " . $mysqli- >connect_error;
}
share|improve this answer

You could do the $stmt->execute(); in an if loop like this:

if ($stmt->execute()){

    $result = $stmt->affected_rows;

    if ($result) { echo "yay" } else { echo "boo"; }
}
else {
    printf("Execute error: %s", $stmt->error);
}
share|improve this answer

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