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I have a small problem. I have a edit.php page. This page list the products information that can be edited.

I run a query

while($rows=mysql_fetch_assoc($query)){


echo"<form method=\"POST\" action=\"edit.php\">";
echo "<input type ='hidden' name='ID' value = '{$rows['ID']}'>"; 
echo "Product:&nbsp <input type='text' name='product' value = '{$rows['ProductName']}'>"; 

Before the while loop I store the details in variables as such:

$hiddenid = $_POST['ID'];   
$productName = $_POST['product'];

and this works. when I load the php form it shows the product name (in a text field) retrieved from the DB. However the problem is I want to store the product name as a drop down list box that has already been selected by the user and then select that.

So, basically what I wish to do is instead of displaying the DB retrieved options in a text box I wish the option the user has selected to be displayed in a dropdown list box.

I hope this makes sence? Why are my option values not showing at all and secondly they are not showing the SELECTED option either (retrieved from the DB).

Any help please?

share|improve this question
    
You didn't end your foreach loop –  ioums Mar 13 '13 at 17:15
    
@ioums Sorry about that I have ended it. Just forgot the last } edited it now:) –  Jsmith Mar 13 '13 at 17:17
    
Maybe just another typo, but it should be closed before the </select> –  ioums Mar 13 '13 at 17:20
    
I just dont know why none of the options are showing at all. I am storing them in the array. And then the SELECTED is based on what has been retrieved from the DB. I don't understand why it is not showing any options let alone the selected option? –  Jsmith Mar 13 '13 at 17:21
    
Please, don't use mysql_* functions in new code. They are no longer maintained and are officially deprecated. See the red box? Learn about prepared statements instead, and use PDO or MySQLi - this article will help you decide which. –  Kermit Mar 13 '13 at 17:21

2 Answers 2

up vote 1 down vote accepted

Focusing on this one area, you should be getting a PHP error unless it is a copy error. Notice the following changes:

while($rows=mysql_fetch_assoc($query)){
?>
    <form method=\"POST\" action=\"edit.php\">
    <input type ='hidden' name='ID' value = '<?php echo $rows['ID'];?>'>
    <select name ="pnames">
        <?php foreach ($arrayproducts as $key => $value) {
        ?>  
            <option value = "<?php echo $key; ?>" 
            <?php
                if ($key == $productName){
                    echo 'selected="selected"';
                } 
            ?> >
            <?php echo $value; ?> 
            </option>
     <?php } //end foreach ?>   
   </select>
<?php }//end while ?>

You had plain HTML code in the PHP segment in the beginning.

Also, I believe you want

if ($value == $productName){
share|improve this answer
    
Okay I got it working... I decided to do everything within the PHP Tags.. Here is what I mean the error was I was closing the > incorrectly after echoing echo"<form method = \"POST\" action =\"edit.php\">"; echo "<input type ='hidden' name='ID' value = '{$rows['ID']}'>"; // echo "Product: <input type='hidden' name='product' value = '{$rows['ProductName']}'>"; echo "Product: <input type='text' name='PName' value = '{$rows['PID']}'>"; echo "<select name =\"pNames\">"; –  Jsmith Mar 13 '13 at 19:41
    
` foreach ($productsarry as $key => $value) { echo"<option value = \"$key\""; if ($key == $productName){ echo "selected=\"selected\""; }echo">"; echo "$value"; echo "</option>"; }//end of foreach loop echo"</select>";` Okay, so at least now the options show. However, another darn problem:'( Basically the page shows the first option on the drop down i.e. 'cholcate' and not specifically what the user has saved in the DB. Why might this be. Any ideas? –  Jsmith Mar 13 '13 at 19:43
    
was the last line of my answer your problem? –  UnholyRanger Mar 13 '13 at 19:47
    
For the problem of the options not showing up I think it was because I had it like this: ` if ($key == $productName){ echo "selected=\"selected\">"; }; ` then I changed it to : if ($key == $productName){ echo "selected=\"selected\""; }echo">" I believe that was the issue why the options were not showing. I will now try and fix that options not showing error using your extra line too. –  Jsmith Mar 13 '13 at 20:02
1  
FIXED IT!! WOO... basically I changed the thing to $key==$rows['productid'] finally! lol!! thanks so much for your help provided. Really appreciate it... I have one more major thing I'm stuck on but I feel bad to keep asking you :$ –  Jsmith Mar 13 '13 at 21:21

This probably isn't such a good place for this, but since I see tons of code daily that is horrible I figured I would chime in.

First of all, check your inputs. You should never trust any variables from a user $_GET, $_POST, etc. The looseness of the original code is just looking for an SQL injection attack.

<?php

This thing looks like it's expecting some sort of passed ID which would then pull the productName from the database... it's really unclear. So we're assuming variables are already defined. Need to use code like this:

if(!empty($_GET['id'])&&is_numeric($_GET['id'])){
   $id=$_GET['id'];
} else {
   $id='';
}

//Declare your array
$arrayproducts = array();


while($rows=mysql_fetch_array($query)){

You need to call something out here for the returned array... without seeing the SQL it's hard to say what you're expecting, but your callouts should look like this...

//Whatever the name from SQL is for the column
$temp_ID = $rows['id'];

//Whatever the name for the product column is
$temp_Prod = $rows['prod'];

//Load the array
$arrayproducts[$temp_ID]=$temp_Prod;
}

It's best to load a var for everything and then post it in one shot rather than in and out of PHP. The code will be much faster and you'll be able to keep track of the code.

$page = "<form method=\"POST\" action=\"edit.php\">";

Check to see if that ID worked. Regex would be best, but one thing at a time here.

if(!empty($id)){
    $page .= "<input type =\"hidden\" name=\"ID\" value = \"$id\">";
} 
$page .= "<select name =\"pnames\">\n";

foreach ($arrayproducts as $key => $value) {

   $page .= "<option value = \"$key\"";

It's best to use the auto-increment fields and built-in IDs for mysql so there isn't a chance of having a duplicate ID taking over an existing record.

      if ($id == $key){
        $page .= ' selected="selected"';
      }
   $page .= ">$value</option>\n";

//close the foreach
}

$page .= "</select>\n"; 

print $page;
?>
share|improve this answer
    
Thanks so much for your reply and help. I have fixed it now and it was because of how I was closing one small '>' inside the echo !!! Outrageous right? The problem now is the SELECTED doesn't show based on what the users original choice was:'( –  Jsmith Mar 13 '13 at 19:44

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