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I got a little problem. I am trying to send some data from my page to my database.

HTML Code:

[insert_php]
    $current_user = wp_get_current_user(); //I am using wordpress and I need php on page script.
    echo $current_user->ID; // here it shows "1" because I am admin.
[/insert_php]

<form action="http://mysitee.com/xxx.php" method="post">
    E-mail: <input type="text" name="email">
    Nick: <input type="text" name="user_name">
    Server: <select name="server">
        <option value="1">1</option>
        <option value="2">2</option>
        <option value="3" selected>3</option>
        <option value="4">4</option>
    </select>
    <input type="hidden" name="reward" value="123">
    <input type="hidden" name="user_id" value="[insert_php]echo "$current_user->ID";[/insert_php]">
    <input type="submit" value="Submit">
</form>

And heres the PHP Code:

<?php
    $link = mysql_connect('site.com', 'login', 'pass');
    mysql_select_db('mydb');

    // Check connection
    if (!$link) {
        die('Could not connect: ' . mysql_error());
    }

    $user_id = mysql_real_escape_string($link, $_POST['user_id']);
    $user_name = mysql_real_escape_string($link, $_POST['user_name']);
    $server = mysql_real_escape_string($link, $_POST['server']);
    $email = mysql_real_escape_string($link, $_POST['email']);
    $nagroda = mysql_real_escape_string($link, $_POST['reward']);

    mysql_query("INSERT INTO winners (user_id, user_name, server, email, reward)
    VALUES ('$user_id', '$user_name', '$server', '$email', '$nagroda')");

    if (!mysql_query($link)) {
        die('Error: ' . mysql_error($link));
    }

    echo "1 record added";

    mysql_close($link);
?> 

After all I should get user_id 1 in my database table but I am getting "0" and I am getting no varbiables in other columns. Also when I start this script I am just getting "Error:". Any ideas?

share|improve this question
    
Your error handling is incorrect. Capture the result of the first call to mysql_query() in a variable and check to see if that is false. If so, then display mysql_error(). – John Conde Apr 23 '14 at 18:39
    
You're using a mysqli based method mysql_real_escape_string($link get rid of the $link, or better yet, use mysqli_* exclusively. – Fred -ii- Apr 23 '14 at 18:39
    
Sorry guys. I am really newbie at PHP/HTML. Could you explain me a little more better what to change and where? – user3565273 Apr 23 '14 at 18:42
1  
What is the "exact" error message? – Fred -ii- Apr 23 '14 at 18:47
2  
You're running mysql_query twice. The first time with your query, and the second time with $link. The latter is failing - you're not checking the first call at all. – andrewsi Apr 23 '14 at 18:51
up vote 5 down vote accepted

Here. You were calling mysql_query() twice as Andrewsi stated, when using mysql_query("INSERT... and if (!mysql_query($link))

Plus, you're using a mysqli-based method mysql_real_escape_string($link get rid of the $link, or better yet, use mysqli_* exclusively.

Modified to read as $query = mysql_query("INSERT... then using the query variable
if (!$query,$link) instead.

<?php
    $link = mysql_connect('site.com', 'login', 'pass');
    mysql_select_db('mydb');

    // Check connection
    if (!$link) {
        die('Could not connect: ' . mysql_error());
    }

    $user_id = mysql_real_escape_string($_POST['user_id']);
    $user_name = mysql_real_escape_string($_POST['user_name']);
    $server = mysql_real_escape_string($_POST['server']);
    $email = mysql_real_escape_string($_POST['email']);
    $nagroda = mysql_real_escape_string($_POST['reward']);

    $query = mysql_query("INSERT INTO winners (user_id, user_name, server, email, reward)
    VALUES ('$user_id', '$user_name', '$server', '$email', '$nagroda')");

    if (!$query) {
        die('Error: ' . mysql_error());
    }

    echo "1 record added";

    mysql_close($link);
?> 

Footnotes:

mysql_* functions deprecation notice:

http://www.php.net/manual/en/intro.mysql.php

This extension is deprecated as of PHP 5.5.0, and is not recommended for writing new code as it will be removed in the future. Instead, either the mysqli or PDO_MySQL extension should be used. See also the MySQL API Overview for further help while choosing a MySQL API.

These functions allow you to access MySQL database servers. More information about MySQL can be found at » http://www.mysql.com/.

Documentation for MySQL can be found at » http://dev.mysql.com/doc/.


Plus,

Here are a few tutorials on (mysqli) prepared statements that you can study and try:

Here are a few tutorials on PDO:

share|improve this answer
    
"Parse error: syntax error, unexpected ',' in /home/script.php on line 19 " – user3565273 Apr 23 '14 at 19:05
    
Give me a sec. I'll check it. @user3565273 – Fred -ii- Apr 23 '14 at 19:06
    
I changed it to if (!$query) try it now @user3565273 and mysql_error($link) to mysql_error() – Fred -ii- Apr 23 '14 at 19:10
    
Working, thanks you Fred ;) One more question if you could. How can I make this echo on same page? I don't want people to get redirected to another page, just I want that notify "1 record added" at same page when they click "submit". Any ideas or links?:) – user3565273 Apr 23 '14 at 19:13
    
You're welcome. In order for it to echo on the same page, you would need to have your form on the same page, and using action="" instead of action="handler.php" for example @user3565273 – Fred -ii- Apr 23 '14 at 19:15

Its -

mysql_real_escape_string(string, connection)

and you have done the opposite of it. Fix as below -

mysql_real_escape_string($_POST['user_id'], $link)


SUGGESTION: Don't use mysql_* statements as they are deprecated in recent PHP versions. Learn mysqli prepared or PDO.

share|improve this answer
    
, $link is not really needed. (link_identifier) The MySQL connection. If the link identifier is not specified, the last link opened by mysql_connect() is assumed. If no such link is found, it will try to create one as if mysql_connect() was called with no arguments. If no connection is found or established, an E_WARNING level error is generated. As per the manual php.net/mysql_real_escape_string – Fred -ii- Apr 23 '14 at 18:44
    
@Fred-ii- Yes, it is optional. Still showing what mistake OP has done in his code. – Parag Tyagi -morpheus- Apr 23 '14 at 18:45
    
True, yet as I stated in a comment however it seems like the OP is faced with another problem, so get ready ;-) – Fred -ii- Apr 23 '14 at 18:47
    
Still got one problem (sorry for doubling). Even if my whole record has been added I am still getting echo with "error:". Any ideas why when I actually got filled my whole record in my database? – user3565273 Apr 23 '14 at 18:47
    
@Fred-ii- Error means, OP is getting some error here if (!mysql_query($link)) { die('Error: ' . mysql_error($link)); } – Parag Tyagi -morpheus- Apr 23 '14 at 18:50
There is a little modification in the code. I think it ll help
    <?php
        $link = mysql_connect('site.com', 'login', 'pass');
        mysql_select_db('mydb');

        // Check connection
        if (!$link) {
            die('Could not connect: ' . mysql_error());
        }

        $user_id = mysql_real_escape_string($link, $_POST['user_id']);
        $user_name = mysql_real_escape_string($link, $_POST['user_name']);
        $server = mysql_real_escape_string($link, $_POST['server']);
        $email = mysql_real_escape_string($link, $_POST['email']);
        $reward = mysql_real_escape_string($link, $_POST['reward']);

        $sql="INSERT INTO winners (user_id, user_name, server, email, reward)
        VALUES ('$user_id', '$user_name', '$server', '$email', '$nagroda')";

        if (!mysql_query($sql,$link)) {
            die('Error: ' . mysql_error($link));
        }

        echo "1 record added";

        mysql_close($link);
    ?> 
share|improve this answer

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