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Here is my original code

    <center>
    <html>
    <body>
    <form method="post" name="AwardList" action="<?php echo $_SERVER['PHP_SELF']?>"> 
    <table border=1>
    <tr>  
    <th><b>Award</b></th>
    <th><b>Issue ID</b></th>
    <th><b>Sort #</b></th>
    <th><b>Submit</b></th>
    </tr>

    <?php
    $userid = ($vbulletin->userinfo['userid']);
    $query = ("select a.*, userdisplayorder, issue_id from award a join award_user aw on a.award_id = aw.award_id where aw.userid = '$userid'");   

    if (isset($_POST['submit'])){
    $userdisplayorder = mysql_real_escape_string($_POST['userdisplayorder']);
    echo $_POST[issueid];
    echo '<br>';
    echo $userdisplayorder; 

    $sql = mysql_query("UPDATE award_user SET userdisplayorder='$userdisplayorder' WHERE issue_id='$_POST[issueid]'");
    }

    $result = mysql_query($query) or die(mysql_error());
$count = 1;
while ($row = mysql_fetch_array($result)){
    $awardimgurl = $row['award_img_url'];
    $ID = $row['issue_id'];

    // don't get it from the database since its not unique in the database itself
    // $userdisplayorder = $row['userdisplayorder'];

    echo '<tr>';        
    echo '<th>'; 
    echo "<img src='$awardimgurl'>"; echo '</th>';                    
    echo '<th>';
    echo '<input type="text" name="issueid" readonly="readonly" value="' . $ID . '" size="5">'; 
    echo '</th>';
    echo '<th>'; 
    echo '<input type="text" name="userdisplayorder" value="' . $count . '" size="5">';              
    echo '</th>';
    echo '<th>'; 
    echo "<center><input type='submit' name='submit' value='Submit'></center>"; 
    echo '</th>';
    echo '</tr>'; 
    $count ++;     
}   
    ?>   
    </table> 
    </html></center>

I need to make the userdisplayorder field unique as well. I already have the issueid unique. How can I do this? Please help me by providing code as well, I am new to PHP and only know basics. I do not know PDO yet and I am a visual learner Thank you!

share|improve this question
    
you can make it an array: name="userdisplayorder[]". Have you tried that ? –  Maximus2012 Aug 10 '13 at 20:06
    
Also, it looks like you are getting value as 0 for the userdisplayorder field from the database itself. You might want to look into it and try to fix it at the database level itself. –  Maximus2012 Aug 10 '13 at 20:11
    
@Maximus2012 Thanks but that did not work. It first gave off Warning: mysql_real_escape_string() expects parameter 1 to be string, array given so I just had it post it into the query without escaping and it doesn't work. –  alfredo Aug 10 '13 at 20:12
1  
@Panique I am just using what works. I am a beginner with PHP. I don't understand why people are so harsh when I am just trying to use what I know works already. I don't know where to start with more advanced coding like PDO and MySQLi –  alfredo Aug 10 '13 at 20:20
1  
Thanks @pattyd This is how I learned what to do and it works for me.. I can try to learn more advanced code but this is what I know right now and I'm trying to make this work. –  alfredo Aug 10 '13 at 20:32
show 9 more comments

2 Answers

up vote 1 down vote accepted

You'd do well to group your items into arrays.

for ($i = 0; $row = mysql_fetch_array($result); ++$i) {

    // I took the liberty of adding HTML-encoding to the output.
    // This prevents issues if a field contains quotes, etc.
    $hrow = array_map('htmlentities', $row);
    extract($hrow, EXTR_PREFIX_ALL, 'html');

    $item_name = "items[$i]";
    echo <<<ENDHTML
    <tr>
     <th><img src="{$html_award_img_url}"></th>
     <th><input type="text" name="{$item_name}[issue_id]" readonly size="5"
               value="{$html_issue_id}"></th>
     <th><input type="text" name="{$item_name}[userdisplayorder]" size="5"
               value="{$html_userdisplayorder}"></th>
     <th><center><input type="submit" name="submitted[{$i}]" value="Submit"></center></th>
    </tr>
ENDHTML;
}

At that point, because of how PHP processes forms, $_POST['items'] will be an array, and each entry of it will itself be an array containing each item field. It'd be almost like you said $_POST['items'] = array(0 => array('issue_id' => '3', 'userdisplayorder' => '0'), 1 => array('issue_id'... . And submitted will be like array($index_of_row => 'Submit'). You can use it to determine which item had its submit button clicked, like so:

if (!empty($_POST['submitted'])) {
foreach ($_POST['submitted'] as $key => $unused) {
    $row = $_POST['items'][$key];
    # if you don't want to manually `mysql_real_escape_string` everything...
    $srow = array_map('mysql_real_escape_string', $row);
    ... process $srow ... which now has its own unique userdisplayorder field
}

Or if you just want to process all the items each time:

if (!empty($_POST['items'])) {
    foreach ($_POST['items'] as $row) {
        $srow = array_map('mysql_real_escape_string', $row);
        ... process $srow ...
    }
}
share|improve this answer
    
Thanks for this.. however, I am assuming this is PDO, which I have never touched before. I have replaced your code with the piece in mine and the table isn't extracting anything from the database. I will update the original question with the new code, if you could look at it. :) –  alfredo Aug 10 '13 at 21:06
    
This has nothing to do with PDO. It's all to do with how PHP deals with forms. –  cHao Aug 10 '13 at 21:10
    
You're using $sql to refer to your result; my example used $result. Change that variable, and you should be fine. BTW, it's typically frowned upon to radically change the question's code after posting it; it invalidates other answers. –  cHao Aug 10 '13 at 21:11
    
Ugh, I didn't know, sorry. I will just edit in the new code but keep the old code up there as well. Will change to $result and see what happens –  alfredo Aug 10 '13 at 21:12
    
I changed $query to $result and I'm getting this error: Warning: mysql_fetch_array() expects parameter 1 to be resource, string given I added the code I'm using with your bits of code to my OP –  alfredo Aug 10 '13 at 21:18
show 10 more comments

Change this:

$sql = mysql_query("UPDATE award_user 
SET userdisplayorder='$userdisplayorder' 
WHERE issue_id='$_POST[hiddenID]'");

to this:

$sql = mysql_query("UPDATE award_user SET 
userdisplayorder='$userdisplayorder' 
WHERE issue_id='$_POST['issueid']'");

Plus you should use MySQLi/PDO in place of mysql_ functions. Also, I don't think you need JavaScript functions for submitting to the form. You can do that directly. So you can change this:

echo '<th>'; echo "<center><input type='submit' 
name='submit' value='Submit' onclick=awardSort('$ID')></center>"; echo '</th>';

to this:

echo '<th>'; 
echo "<center><input type='submit' name='submit' value='Submit' </center>"; 
echo '</th>';

UPDATE. This is when the OP wants to make the userdisplayorder field unique. One way to do that is making changes at the form level like so:

$count = 1;
while ($row = mysql_fetch_array($result)){
    $awardimgurl = $row['award_img_url'];
    $ID = $row['issue_id'];

    // don't get it from the database since its not unique in the database itself
    // $userdisplayorder = $row['userdisplayorder'];

    echo '<tr>';        
    echo '<th>'; 
    echo "<img src='$awardimgurl'>"; echo '</th>';                    
    echo '<th>';
    echo '<input type="text" name="issueid" readonly="readonly" value="' . $ID . '" size="5">'; 
    echo '</th>';
    echo '<th>'; 
    echo '<input type="text" name="userdisplayorder" value="' . $count . '" size="5">';              
    echo '</th>';
    echo '<th>'; 
    echo "<center><input type='submit' name='submit' value='Submit'></center>"; 
    echo '</th>';
    echo '</tr>'; 
    $count ++;     
}            
share|improve this answer
    
Thanks but the userdisplayfield still isn't unique by row. How can I do that? It has to be unique or it's not working.. If I change the 0 to any other number, it's not saving the change unless it's for the award with issue_id 14537 shown in the picture.. –  alfredo Aug 10 '13 at 20:22
    
You need additional logic in your mysql query to implement that. Your current logic puts in the database whatever value you are passing through the form. So if you need those values to be unique, then you need to make sure that you are passing unique values for that field through your form. –  Maximus2012 Aug 10 '13 at 20:26
    
Now nothing is unique. If I press submit for issue_id 88, it is using issue_id 14537 as shown in the picture. (this happened after removing the javascript) –  alfredo Aug 10 '13 at 20:27
    
How can I make the values unique? That is what I'm asking. I was trying to use Javascript :) I edited my original question with the code as per your answer. –  alfredo Aug 10 '13 at 20:28
    
what exactly are you trying to do with JavaScript ? –  Maximus2012 Aug 10 '13 at 20:31
show 4 more comments

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