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I do have programming experience, but new to php. I do have an issue with an example I was doing from this tutorial. I looked over it millions of times, googled, ect ect. I don't have an idea why my code isnt working.

The purpose is to basically just test inserting and deleting in sql from php, using a button for Add Record and Delete Record. The Add record button works perfectly, but delete doesnt do a thing other than reload the page. Heres the code...

<?php // sqltest.php

require_once 'login.php';

$db_server = mysql_connect($db_hostname, $db_username, $db_password);

if (!$db_server) die("Unable to connect to MySQL: " . mysql_error());

mysql_select_db($db_database, $db_server)
     or die("Unable to select database: " . mysql_error());

if (isset($_POST['author'])   &&
    isset($_POST['title'])    &&
    isset($_POST['type'])     &&
    isset($_POST['year'])      &&
    isset($_POST['isbn']))
{
    $author = get_post('author');
    $title = get_post('title');
    $type = get_post('type');
    $year = get_post('year');
    $isbn = get_post('isbn');

    if (isset($_POST['delete']) && $isbn != "")
    {
        echo "worked!!!!!!!!!!!!!!"; 
        $query = "DELETE FROM classics WHERE isbn='$isbn'";
        $result = mysql_query($query) or die(mysql_error());
        if(mysql_affected_rows($result) > 0) echo 'user deleted';

        //if (!mysql_query($query, $db_server))
        //echo "DELETE failed: $query" . mysql_error();
    }
    else
    {
        echo "nooooooooooooooooooo";
        $query = "INSERT INTO classics VALUES" .
        "('$author', '$title', '$type', '$year', '$isbn')";
        if (!mysql_query($query, $db_server)) 
        {
            echo "INSERT failed: $query" . mysql_error();
        }
    }
}

echo <<<_END
<form action="sqltest.php" method="post"><pre>
Author <input type="text" name="author" />
Title  <input type="text" name="title" />
Type   <input type="text" name="type" />
Year   <input type="text" name="year" />
ISBN   <input type="text" name="isbn" />
<input type='submit' value='ADD RECORD' />
</pre></form>
_END;



$query = "SELECT * FROM classics";

$result = mysql_query($query);

if (!$result) die ("Database access failed: " . mysql_error());

$rows = mysql_num_rows($result);

for ($j = 0 ; $j < $rows ; ++$j)
{
        $row = mysql_fetch_row($result);

echo <<<_END
<pre>
Author $row[0]
Title $row[1]
Type $row[2]
Year $row[3]
ISBN $row[4]
<form action="sqltest.php" method="post">
<input type="hidden" name="delete" value="yes" />
<input type="hidden" name='isbn' value="$row[4]" />
<input type='submit' value='DELETE RECORD' />
</form>
</pre>
_END;
}

mysql_close($db_server);

function get_post($var)
{
    return mysql_real_escape_string($_POST[$var]);
}

?>

I have looked over this many times, still no idea why this won't work. Is it the for loop that is making this button not work? Note, you will see echo "worked!!!"; and in the else echo "noooooooo"; that was for me to test whether the button was being tested, yet nothing prints. So maybe i missed something in the button code itself? Also, no errors are printed, and my editor (and myself) have missed the syntax error (if thats the case).

The code for the delete button is at the end, before I closed the DB.

Thanks for your help in advance.

share|improve this question
    
Do a var_dump() on $_POST and make sure you're getting the values you are expecting –  John Conde Jul 1 '12 at 0:59
    
@JohnConde Hey just noticed this. Sorry to be a noob to you here but how would I go about doing that? New to this =( Thank you for you input! –  TheNoob Jul 1 '12 at 1:27
    
found the answer to this look at code here: stackoverflow.com/questions/14077539/… the reason it doesn't work is because the if/else statement for the delete is nested inside the other if statement. if you unnest it it works. –  user2023318 Jan 29 '13 at 21:47

3 Answers 3

Your problem is your first if block.

You're checking for the presence of the posted variables author title type year isbn. Whereas in your delete code the only variables sent are delete and isbn. Therefore the first if block is completely missed (including the delete code).

You need to modify your first if to be if(isset($_POST)) { // a form has been posted. Then it should work.

Another way to do it:

if(isset($_POST['delete']) && isset($_POST['isbn']) && !empty($_POST['isbn'])){
    //delete code here
}

if(isset($_POST['author']) && isset($_POST['title']) && isset....){
    // insert code here
}

EDIT: rewritten code:

<?php // sqltest.php

// I don't know what's in here, so I've left it
require_once 'login.php';

$db_server = mysql_connect($db_hostname, $db_username, $db_password);

if (!$db_server) die("Unable to connect to MySQL: " . mysql_error());

mysql_select_db($db_database, $db_server)
     or die("Unable to select database: " . mysql_error());

if (isset($_POST))
{

    if (isset($_POST['delete']) && !empty($_POST['isbn']))
    {
        echo "Deleting"; 
        $query = "DELETE FROM classics WHERE isbn='".mysql_real_escape_string($_POST['isbn'])."'";
        $result = mysql_query($query) or die(mysql_error());
        if(mysql_affected_rows($result) > 0) echo 'user deleted';
    }
    else
    {
        echo "Inserting";
        $query = "INSERT INTO classics VALUES ('".mysql_real_escape_string($_POST['author'])."', '".mysql_real_escape_string($_POST['title'])."', '".mysql_real_escape_string($_POST['type'])."', '".mysql_real_escape_string($_POST['year'])."', '".mysql_real_escape_string($_POST['isbn'])."')";
        if (!mysql_query($query)) 
        {
            echo "INSERT failed: $query" . mysql_error();
        }
    }
}

// you don't need echo's here... just html
?>

<form action="sqltest.php" method="post">
    <pre>
        Author <input type="text" name="author" />
        Title  <input type="text" name="title" />
        Type   <input type="text" name="type" />
        Year   <input type="text" name="year" />
        ISBN   <input type="text" name="isbn" />
        <input type='submit' value='ADD RECORD' />
    </pre>
</form>

<?php

$query = "SELECT * FROM classics";

$result = mysql_query($query);

if (!$result) die ("Database access failed: " . mysql_error());

// a better way to do this:
while($row = mysql_fetch_array($result)){
?>

<pre>
    Author <?php echo $row[0]; ?>
    Title <?php echo $row[1]; ?>
    Type <?php echo $row[2]; ?>
    Year <?php echo $row[3]; ?>
    ISBN <?php echo $row[4]; ?>
    <form action="sqltest.php" method="post">
        <input type="hidden" name="delete" value="yes" />
        <input type="hidden" name='isbn' value="<?php echo $row[4]; ?>" />
        <input type='submit' value='DELETE RECORD' />
    </form>
</pre>

<?php
}

mysql_close($db_server);

?>
share|improve this answer
    
Same result =/ its acting exactly like you described it too. augh, thanks a lot for your input though! –  TheNoob Jul 1 '12 at 1:15
    
I did try it, although when I tested it, it printed row[0] row[1] and when I hit delete it had the same result. =/ I am reading through the link you posted right now. Thank you for your input –  TheNoob Jul 1 '12 at 1:23
    
@TheNoob please see my edit. I've rewritten your code to a) be more readable b) educate you on a few points (such as a better/easier way to loop through db rows) and c) hopefully fix your issue. Please have a look through and see if it works. –  Thomas Clayson Jul 1 '12 at 1:27
    
Okay, thanks ill read it now. =] –  TheNoob Jul 1 '12 at 1:29
    
Okay, I see what you did. I didn't know you could do a loop and pop in and out of php like that. This did make the delete button work, but nothing deletes, instead I get this at the top Deleting Warning: mysql_affected_rows() expects parameter 1 to be resource, boolean given in C:\xampp\htdocs\sqltest.php on line 21 Also, instead of the data being printed inside of row[0] ect, its actually printing row[0] which is something I can prolly fix. I just wish it would delete. The add buttons works still. –  TheNoob Jul 1 '12 at 1:37

Verify the method you used in your form. Make sure it's POST like this:

Form action="yourpage.php" method="POST"

and in your code above, replace the following:

$author = get_post('author');
    $title = get_post('title');
    $type = get_post('type');
    $year = get_post('year');
    $isbn = get_post('isbn');

with

$author = $_POST['author'];
$title = $_POST['title'];
$type = $_POST['type'];
$year = $_POST['year'];
$isbn = $_POST['isbn'];

Finally, there is no need to check again if the $isbn is not null as you did it in your isset() method. So remove $isbn!="" in the if below:

if (isset($_POST['delete']) && $isbn != "")
    {
}

becomes:

if (isset($_POST['delete']))
    {
}

Since you are testing, checking if the user clicked the delete button is of less importance. So you can also remove it for a while and add it later because you are sure that, that code is accessible after clicking the delete button.

share|improve this answer

You have no form field named delete, so it is impossible for your delete code path to ever be taken.

I'm guessing you're tryign to use the value of the submit button to decide what to do? In that case, you're also missing a name attribute on the submit button - without that, it cannot submit any value with the form. You probably want:

<input type="submit" name="submit" value="DELETE RECORD" />

and then have

if (isset($_POST['submit']) && ($_POST['submit'] == 'DELETE RECORD')) {
   ...
}
share|improve this answer
    
There is a delete field in his form. –  Rawkode Jul 1 '12 at 1:02
    
@rawkode: d'oh... didn't scroll far enough in that wall of code. –  Marc B Jul 1 '12 at 1:03
    
Thanks for your input. I did try, same result. This is just really annoying. lol Again thanks though –  TheNoob Jul 1 '12 at 1:07

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