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I'm trying to create a new entry in the database by submitting the form data. It does the whole code without any errors but doesn't show any new elements in the db.

Does anybody have any idea whats going on?

}elseif(isset($_GET["new"])){//add new 
        if($_GET['changeme']=="yes") //if user pressed save, then update table
    {
        $name = $_POST["name"];
        $active = $_POST["active"];
        $email = $_POST["email"];
        $training = $_POST["training"];
        $trials = $_POST["trials"];
        $BHV = $_POST["BHV"];
        $tours = $_POST["tours"];
        $pasnr = $_POST["pasnr"];
        $pasactivated = $_POST["pasactivated"];
        $pastested = $_POST["pastested"];   

        mysql_query("INSERT INTO Members (name, active, email, training, trials, BHV, tours, pasnr, pasactivates, pastested) VALUES
                    ('$name', '$active', '$email', '$training', '$trials', '$BHV', '$tours', '$pasnr', '$pasactivates', '$pastested')"); 
        //show end text
        echo "Edit complete!<br />
        <form><input type='button' onClick=\"parent.location='users.php'\" value='OK'></form>";
    }else{//user didn't press save

    ?>
    <!--Edit form-->
    <form action="users.php?new=1&changeme=yes" method="post">
    Name:<br>
    <input name="name" type="text" value="name" size="79"><br>
    <input type="checkbox" name="active" value="1" />Active 
    <input type="checkbox" name="BHV" value="1"  />BHV 
    <input type="checkbox" name="pasactivated" value="1"  />Pas activated 
    <input type="checkbox" name="pastested" value="1"  />Pas Tested <br>
    E-mail: <br>
    <input name="email" type="text" value="email" size="79"><br>
    Training Dates: <br>
    <input name="training" type="text" value="training" size="79"><br>
    Trial Dates: <br>
    <input name="trials" type="text" value="trials" size="79"><br>
    # Tours: <br>
    <input name="tours" type="text" value="tours" size="79"><br>
    Pas Nummer: <br>
    <input name="pasnr" type="text" value="pasnr" size="79"><br>
    <input type="submit" name="Submit" value="Create">
    <input type='button' onClick="parent.location='users.php'" value='Back to list'>
    </form>

    <?
}}
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closed as too localized by mario, p.s.w.g, Alexandre Lavoie, Stony, JMK Jun 15 '13 at 13:43

This question is unlikely to help any future visitors; it is only relevant to a small geographic area, a specific moment in time, or an extraordinarily narrow situation that is not generally applicable to the worldwide audience of the internet. For help making this question more broadly applicable, visit the help center. If this question can be reworded to fit the rules in the help center, please edit the question.

1  
Read up on mysql_error() and bobby-tables.com –  mario Jun 14 '13 at 21:36
    
You are my hero. :P But how exactly do I use the mysql_error() to find these tings in the future? (I used to have all errors on on my server, but now my host changed it so I'm not used to error handling in this way) –  Coolcrab Jun 14 '13 at 21:47
    
Ah ok, that works thanks. :P And this is also not very safe from what I understand? –  Coolcrab Jun 14 '13 at 21:55
    
So basically putting every var trough $any_variable = mysql_real_escape_string($any_variable); is enough? –  Coolcrab Jun 14 '13 at 22:04

2 Answers 2

up vote 2 down vote accepted

Your code assumes that mysql_query() was successful without checking. The statement will return true if your query was successful and false if it was not. You should check the return value and use mysql_error() to get the error message as needed.

For debugging purposes, this can be accomplished as:

mysql_query(...) or die( mysql_query() )

However, in production code this could present ugly errors to users. A production-safe method is to log or email the errors:

$response = msyql_query('INSERT INTO ...');
if (false === $response) { 
    // Log or email the output of mysql_error()
}

When you implement error logging, you may find that your query is failing because of a mis-named variable. You assign a variable here:

$pasactivated = $_POST["pasactivated"];

but in the query, it is spelled differently:

mysql_query(...'$pasactivates'...);

Finally, you should note that your query leaves your database open to SQL injection attacks. All user input should be sanitized before insertion into a database. If you must use the mysql_ functions, you can use mysql_real_escape_string() to escape the input, but for best results, consider replacing the deprecated mysql_* functions with PDO and using parameterized queries.

share|improve this answer

Use this line instead :

mysql_query("INSERT INTO Members (name, active, email, training, trials, BHV, tours, pasnr, pasactivates, pastested) VALUES
                    ('$name', '$active', '$email', '$training', '$trials', '$BHV', '$tours', '$pasnr', '$pasactivates', '$pastested')");

Remember to sanitize your variables before inserting them in this manner, or alternatively, you can use prepared statements.

Also, if possible, it is encouraged to use the mysqli extension instead of mysql.

Please read the following link which will help you handle mysql errors :

http://php.net/manual/en/mysqli.error.php

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