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Ok, so after installing wamp server, I have gone to the phpMyAdmin page and created a database called db2. After that, I have created a table inside of that database called cnt2. It has 5 columns, ID, Name, Mark1, Mark2 and Mark3. So, I have one html php file that allows you to view the information in the database, and this works just fine. However, my second html php document is supposed to allow you to add new information into the database. I have followed 2 different tutorials on this as I have never done php or any html script before, but it just isn't working. I'll post both codes/scripts below.

http://gyazo.com/467f8e3a066992c0753eec2d5912bdba << Database page

http://gyazo.com/82a1c2107fb75c4c2941583449b4504a << Input page with error

Database code

<html>
<body>

<?php

$username = "root";
$password = "";
$hostname = "localhost";

$dbhandle = mysql_connect($hostname, $username, $password)
    or die("Unable to connect to MySQL");
echo "Connected to MySQL<br>";

$selected = mysql_select_db("db2",$dbhandle)
    or die("Could not selected db2");
echo "Coneted to db2<br>", "<br>";

$result = mysql_query("SELECT ID, Name, Mark1, Mark2, Mark3 FROM cnt2");

while($row = mysql_fetch_array($result)){
    echo "<b>Name: </b>".$row{'Name'}." <b>ID: </b>".$row{'ID'}." <b>First Mark: </b>".$row{'Mark1'}." <b>Second Mark: </b>".$row{'Mark2'}." <b>Third Mark: </b>".$row{'Mark3'}."<br>";
}

mysql_close($dbhandle);

?>

</body>
</html> 

Input code

<HTML>
<?php

if($submit){
    $db = mysql_connect("localhost", "root","");
    mysql_select_db("db",$db);
    $sql = "INSERT INTO cnt2 (ID, Name, Mark1, Mark2, Mark3) VALUES ('$id','$name','$markone','$marktwo','$markthree','$result = mysql_query($sql))";
    echo "Thanks! Data received and entered.\n";
}

else{
    ?>
    <form method="post" action="datain.php">
    id:<input type="Int" name="ID"><br>
    name:<input type="Text" name="Name"><br>
    markone:<input type="Int" name="Mark1"><br>
    marktwo:<input type="Int" name="Mark2"><br>
    markthree:<input type="Int" name="Mark3"><br>
    <input type="Submit" name="submit" value="Enter information">
    </form>
<?  
}

?>
</HTML>

Thanks for any help :)

share|improve this question
2  
Please, looking at your code, I'm guessing you're still learning PHP. If so, don't waste your time learning a deprecated extension like mysql_* is. Learn to use PDO or mysqli_*. Both have things going for them: PDO offers (IMO) the cleanest API, though it's OOP only. mysqli_* ofers a procedural and an OO API, and may be a bit more confusing, and tedious to learn, but in its code, it is slightly more powerful when writing more complex DB-driven apps – Elias Van Ootegem Dec 3 '13 at 13:11
1  
On your insert statement it looks like you have more inserting values than you have columns. I would check this as a start. – AgnosticDev Dec 3 '13 at 13:12
    
You are sure that your insert code is exactly the same as in the file? Because $result = mysql_query(.. is a value in the code you posted above. – Marcel Balzer Dec 3 '13 at 13:13
up vote 1 down vote accepted

You're not actually requesting your post headers to pull your vars in

<html>
<?php

if($submit){
    //need to request post vars here
    $id=mysql_real_escape_string($_POST['ID']);
    $name=mysql_real_escape_string($_POST['Name']);
    $markone=mysql_real_escape_string($_POST['Mark1']);
    $marktwo=mysql_real_escape_string($_POST['Mark2']);
    $markthree=mysql_real_escape_string($_POST['Mark3']);


    $db = mysql_connect("localhost", "root","");
    mysql_select_db("db",$db);
    $sql = "INSERT INTO cnt2 (ID, Name, Mark1, Mark2, Mark3) VALUES ('$id','$name','$markone','$marktwo','$markthree')";
    mysql_query($sql) or die(mysql_error()."<br />".$sql);
    echo "Thanks! Data received and entered.\n";
}

else{
    ?>
    <form method="post" action="datain.php">
    id:<input type="Int" name="ID"><br>
    name:<input type="Text" name="Name"><br>
    markone:<input type="Int" name="Mark1"><br>
    marktwo:<input type="Int" name="Mark2"><br>
    markthree:<input type="Int" name="Mark3"><br>
    <input type="Submit" name="submit" value="Enter information">
    </form>
<?php  // stop using short tags i've swapped it to a proper open
}

?>
</html>

Also if you're only just using don't use mysql_ functions look into mysqli or pdo especially prepared statements instead of directly injecting variables into queries as we have done above

share|improve this answer
    
That won't work: mysql_query() missing. – Marcel Balzer Dec 3 '13 at 13:19
    
Thanks for the help, but this just throws me the same error but on line 33 instead of line 25. I don't really understand this too well, this was literally like our introduction task to php with no real teachning, just a tutorial sheet – Daniel Speed Dec 3 '13 at 13:24
    
@MarcelBalzer thanks didn't notice that I just copy and pasted his code and added the requests for the post vars – Dave Dec 3 '13 at 14:45
    
@DanielSpeed the error is lack of a closing tag in the screen shot means its lacking a } which is due to you using shorttags <? instead of a full open <?php never ever ever use short tags – Dave Dec 3 '13 at 14:48
    
Oh I see, I'm sorry about that, I have no excuse for that. I've been glued to a tutorial sheet and must have just missed it. Thanks a lot :) – Daniel Speed Dec 3 '13 at 16:26

The problem may be in this line:

$sql = "INSERT INTO cnt2 (ID, Name, Mark1, Mark2, Mark3) VALUES ('$id','$name','$markone','$marktwo','$markthree','$result = mysql_query($sql))";

As You may notice (at the end), it should probably be like this:

$sql = "INSERT INTO cnt2 (ID, Name, Mark1, Mark2, Mark3) VALUES ('$id','$name','$markone','$marktwo','$markthree')";
$result = mysql_query($sql);

As all other people mentioned, do not use mysql_* functions as they are DEPRECATED, instead of this stick with PDO or at least mysqli.

Also, the part

if($submit){

may never be satisfied unless You set the $submit variable somewhere before... Shouldn't it rather be

if (isset($_POST['submit'])) {

???

And, please, read about code formatting - Your code looks like crap... Best choice is to stick with PSR-0, PSR-1 and PSR-3 - use Google to read something about it...

share|improve this answer
    
Thanks for the help, but it still gives the same error. I would sit and actually read some stuff on this, but I'll never be using it again. this task is a one off, it's suppose to help us understand some server stuff in one of our lessons, but they're making us actually write it. – Daniel Speed Dec 3 '13 at 13:28
    
Why are You then learning PHP when You will never use it? Why are we loosing time with somebody who does not will to learn something? And what is the error actually? You didn't mention any error message in Your question... – shadyyx Dec 3 '13 at 13:32
    
We have to complete this task that requires php, which I would be happy to learn, but we do our programming unit using Java. The actually question posted has a link to the error message as a gyazo screen shot. – Daniel Speed Dec 3 '13 at 13:38

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