Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

i have this error from the tutorial in http://www.mybringback.com/tutorial-series/12992/android-mysql-php-json-part-2-setting-up-a-xampp-server-and-mysql/

When i click the register button, this line of statement appears: Failed to run query: SQLSTATE[HY093]: Invalid parameter number: parameter was not defined

Also in this tutorial, they are using XAMPP while i am using WAMP, i have a connection in the database but does it affect something if I use WAMP instead of XAMPP?

this is the simple code from the tutorial

<?php

/*
Our "config.inc.php" file connects to database every time we include or require
it within a php script.  Since we want this script to add a new user to our db,
we will be talking with our database, and therefore,
let's require the connection to happen:
*/
require("config.inc.php");

//if posted data is not empty
if (!empty($_POST)) {
//If the username or password is empty when the user submits
//the form, the page will die.
//Using die isn't a very good practice, you may want to look into
//displaying an error message within the form instead.  
//We could also do front-end form validation from within our Android App,
//but it is good to have a have the back-end code do a double check.
if (empty($_POST['username']) || empty($_POST['password'])) {


    // Create some data that will be the JSON response 
    $response["success"] = 0;
    $response["message"] = "Please Enter Both a Username and Password.";

    //die will kill the page and not execute any code below, it will also
    //display the parameter... in this case the JSON data our Android
    //app will parse
    die(json_encode($response));
}

//if the page hasn't died, we will check with our database to see if there is
//already a user with the username specificed in the form.  ":user" is just
//a blank variable that we will change before we execute the query.  We
//do it this way to increase security, and defend against sql injections
$query        = " SELECT 1 FROM users WHERE username = :user";
//now lets update what :user should be
$query_params = array(
    ':user' => $_POST['username']
);

//Now let's make run the query:
try {
    // These two statements run the query against your database table. 
    $stmt   = $db->prepare($query);
    $result = $stmt->execute($query_params);
}
catch (PDOException $ex) {
    // Note: On a production website, you should not output $ex->getMessage(). 
    // It may provide an attacker with helpful information about your code.  
    die("Failed to run query: " . $ex->getMessage());

    //You eventually want to comment out the above die and use this one:
    $response["success"] = 0;
    $response["message"] = "Database Error. Please Try Again!";
    die(json_encode($response));
}

//fetch is an array of returned data.  If any data is returned,
//we know that the username is already in use, so we murder our
//page
$row = $stmt->fetch();
if ($row) {
    die("This username is already in use");
    //You could comment out the above die and use this one:
    $response["success"] = 0;
    $response["message"] = "I'm sorry, this username is already in use";
    die(json_encode($response));
}

//If we have made it here without dying, then we are in the clear to 
//create a new user.  Let's setup our new query to create a user.  
//Again, to protect against sql injects, user tokens such as :user and :pass
$query = "INSERT INTO users ( username, password ) VALUES ( :user, :pass ) ";

//Again, we need to update our tokens with the actual data:
$query_params = array(
    ':username' => $_POST['username'],
    ':password' => $_POST['password']
);

//time to run our query, and create the user
try {
    $stmt   = $db->prepare($query);
    $result = $stmt->execute($query_params);
}
catch (PDOException $ex) {
    // Again, don't display $ex->getMessage() when you go live. 
    die("Failed to run query: " . $ex->getMessage());
    //You could comment out the above die and use this one:
    $response["success"] = 0;
    $response["message"] = "Database Error. Please Try Again!";
    die(json_encode($response));
}

//If we have made it this far without dying, we have successfully added
//a new user to our database.  We could do a few things here, such as 
//redirect to the login page.  Instead we are going to echo out some
//json data that will be read by the Android application, which will login
//the user (or redirect to a different activity, I'm not sure yet..)
$response["success"] = 1;
$response["message"] = "Username Successfully Added!";
echo json_encode($response);

//for a php webservice you could do a simple redirect and die.
//header("Location: login.php"); 
//die("Redirecting to login.php");


} else {
?>
<h1>Register</h1> 
<form action="index.php" method="post"> 
    Username:<br /> 
    <input type="text" name="username" value="" /> 
    <br /><br /> 
    Password:<br /> 
    <input type="password" name="password" value="" /> 
    <br /><br /> 
    <input type="submit" value="Register New User" /> 
</form>
<?php
}

?>
share|improve this question

1 Answer 1

Syntax errors:

Note the parameter names you're using here: :name and :pass:

$query = "INSERT INTO users ( username, password ) VALUES ( :user, :pass ) ";

Which you then totally ignore when you try to define values for those parameters:

$query_params = array(
    ':username' => $_POST['username'],
    ':password' => $_POST['password']
);

The parameter names MUST match in both sections. You're putting in parameters that never get values assigned, and assigning values to parameters that don't exist.

share|improve this answer
    
got it! thanks Marc –  Dale II Calderon Dec 28 '13 at 17:41

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.