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My question deals with my next/previous buttons. I can get my update/delete buttons to work, but I'm so ready to tear out my hair when dealing with the next/previous buttons. Any help would be spectacular! Here's my code. Also, I'm pretty new to PHP so if this is bad coding, please let me know and point me in the right direction so I can fix my mistakes. Thanks!!!

session_start();

include "connectionfile.php";

if (isset($_POST['fname']) &&
isset($_POST['lname']) &&
isset($_POST['email']) &&
isset($_POST['login']) &&
isset($_POST['password']) &&
isset($_POST['super']) &&
isset($_POST['foldername']))
{
$id = get_post('id');
$fname = get_post('fname');
$lname = get_post('lname');
$email = get_post('email');
$login = get_post('login');
$password = hash('sha256', get_post('password'));
$super = get_post('super');
$foldername = get_post('foldername');

if ($_POST['submit']==0){

$query = mysql_query("SELECT * FROM `Logins` WHERE ID < '".$id."'  ORDER BY ID DESC LIMIT 1;");
while($row = mysql_fetch_array($query)){
   $id = $row['ID'];
   $fname = $row['fname'];
   $lname = $row['lname'];
   $email = $row['email'];
   $login = $row['login'];
   $password = $row['password'];
   $super = $row['super'];
   $foldername = $row['foldername'];

}
}else if ($_POST['submit']==1){
$query = "UPDATE Logins SET fname = '$fname', lname='$lname', email='$email".'@carouselclinical.com'."', login='$login', password='$password', super='$super', foldername='$foldername'";
$query .= "WHERE ID = '$id';";
if (!mysql_query($query, $connect))
echo "INSERT failed: $query<br />" .
mysql_error() . "<br /><br />";

}else if($_POST['submit']==2){

$delete_query = "DELETE FROM Logins WHERE ID = '".$id."';";
mysql_query($delete_query);
$rc = mysql_affected_rows();
echo "Rows Affected " . $rc;

}


if ($_POST['submit']==3){

$query = mysql_query("SELECT * FROM `Logins` WHERE ID= '". $id ."' ORDER BY ID ASC LIMIT 1;");
while($row = mysql_fetch_array($query)){
   $id = $row['ID'];
   $fname = $row['fname'];
   $lname = $row['lname'];
   $email = $row['email'];
   $login = $row['login'];
   $password = $row['password'];
   $super = $row['super'];
   $foldername = $row['foldername'];

}

}
}

mysql_close($connect);

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

<form action="" method="post"><pre>
id <input type="text" readonly="readonly" name="id" value="<?php echo "$id"; ?>" />
First Name <input type="text" name="fname" value="<?php echo "$fname"; ?>" />
Last Name <input type="text" name="lname" value="<?php echo "$lname"; ?>" />
Email <input type="text" name="email" value="<?php echo "$email"; ?>" /> There's no need to put @carouselclinical.com.
Login <input type="text" name="login" value="<?php echo "$login"; ?>"/>
Password <input type="text" name="password" value="<?php echo "$password"; ?>"/>
Super? <input type="text" name="super" value="<?php echo "$super"; ?>" />
foldername <input type="text" name="foldername" value="<?php echo "$foldername"; ?>" />
<button name="submit" value="0">Previous</button>
<button name="submit" value="1">UPDATE</button>
<button name="submit" value="2">Delete</button>
<button name="submit" value="3">Next</button>
</pre>
<a href="super.php">Home</a> <br />
<a href="logout.php">Log out</a>
</form>
share|improve this question
    
Your question isn't all that clear, but it seems that you might need to pass the ids for next and previous so in mysql you can actually access the right data set. –  Horen Sep 24 '12 at 18:11
    
Not sure exactly what problem you're having, but one thing that might throw you off is that you are using == instead of === for checking $_POST['submit']. Any string value, when compared to 0 using == will evaluate to true. Not sure if this is causing a problem for you, but you should definitely be aware of it. –  Travesty3 Sep 24 '12 at 18:12
    
Also, you should avoid using mysql_* functions, and use mysqli_* or PDO instead. And you also shouldn't use mysql_fetch_array() if you just need the string keys. Use mysql_fetch_assoc() instead. Well, don't use mysql_fetch_assoc() either. Use mysqli or PDO. –  Travesty3 Sep 24 '12 at 18:15
    
I'm sorry for being unclear. I can't get my previous/next buttons to work. I don't think I fully understand what needs to happen. Right now, I have a page that is supposed to show different information about the user, but all I get is a bunch of blank text boxes. How do I pass the information from either the $_POST['submit']==0 or the $_POST['submit']==3 section to the form at the bottom? –  Michael Harvey Sep 24 '12 at 18:21
    
You need to explain what you mean "Previous and next buttons to work" - what do you WANT them to do? Is this a form of pagination? –  cale_b Sep 24 '12 at 18:56

1 Answer 1

up vote 0 down vote accepted

Try adding an else right above mysql_close($connect);. My guess is that on the initial page load you are not posting any values, so no action is taken. This will create a default ID if none is defined in your top if.

else{
$query = mysql_query("SELECT * FROM `Logins` ORDER BY ID ASC LIMIT 1;");
while($row = mysql_fetch_array($query)){
  $id = $row['ID'];
  $fname = $row['fname'];
  $lname = $row['lname'];
  $email = $row['email'];
  $login = $row['login'];
  $password = $row['password'];
  $super = $row['super'];
  $foldername = $row['foldername'];
}

Also, on your if ($_POST['submit']==3), you need to change the = to > in your $query so you can get the next record. Currently you would be selecting the same ID, not the next higher.

$query = mysql_query("SELECT * FROM `Logins` WHERE ID > '". $id ."' ORDER BY ID ASC LIMIT 1;");

Finally, when doing Previous/Next you also need to take into consideration how you will deal with Previous when you are on the first ID, and Next when you are on the last id, as you will return an empty result set from MySQL.

share|improve this answer
    
Holy crap! @Sean That was exactly the problem. I wasn't populating the textboxes on the initial page load. Also thanks for spotting the query error! –  Michael Harvey Sep 24 '12 at 22:12

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