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I have a dropdown menu that is generated in a different file. It is generated with a while loop, and I would like to add one static value ( Select contract ).

Right now a dropdown menu looks like this:

1234
4321
2323
3232

And I would like to make it like this:

Select contracr
1234
4321
2323
3232

Here is my code in index.php:

<select id="text2" name="text2">

</select>

And here is my code in process.php (where items are generated):

<?php
$selectedKey = $_GET['selected_key'];
$query = "SELECT * FROM `1 received` WHERE Key = '".$selectedKey."'";
$run = mysql_query($query);
while($row = mysql_fetch_assoc($run)) {
    echo "<option value='".$row['Number']."'>".$row['Number']."</option>";
}
?>

Ajax code:

<script>
$("select#select2").change(function(){
    $.ajax({
        type: "GET",
        url: "process.php",
        data: "selected_key=" + $(this).val(),
        success: function(result) {
            $("select#text2").html(result);
        }
    });
});
</script>
share|improve this question

closed as too localized by tereško, Sgoettschkes, Anders R. Bystrup, Sameer, Kuf Feb 6 '13 at 9:00

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1  
By the way... you really should be using PDO or mysqli instead. –  user985189 Jan 3 '13 at 8:45
    
you should cast that $selectedKey to an int to close a big security hole. –  pduersteler Feb 6 '13 at 8:26

4 Answers 4

up vote 3 down vote accepted

I think you're overthinking this.

Just add an extra option to the <select> - i.e. a literal value, not something PHP generates - before you add all the other values from the database. Give it a value like "0" or "NotSelected", then check for that in your validation routines.

Oh, and as an unrelated issue, don't do this:

$selectedKey = $_GET['selected_key'];
$query = "SELECT * FROM `1 received` WHERE Key = '".$selectedKey."'";

You're opening yourself to SQL injections. If you don't know what that is, look it up. You should be using prepared/parameterized queries for this. Both the PDO and mysqli extensions have this capability, so you should be using one of those instead of the mysql extension, which has been deprecated (i.e. "this will be removed from the language soon, so stop using it") in the latest version of PHP.


Update:

Based on the fact that you're updating the HTML directly using an AJAX request to get new content for the <select> element, you need to move the <option> item I mentioned to be part of the script you call in your AJAX request.

Specifically, you should do it directly before your foreach loop:

<?php
$selectedKey = $_GET['selected_key'];

// DO SOME VALIDATION ON $selectedKey here
// Remember what I said about SQL injection and using mysqli/PDO

$query = "SELECT * FROM `1 received` WHERE Key = '".$selectedKey."'";
$run = mysql_query($query);
echo "<option value='NotSelected'>Select Contract</option>";
while($row = mysql_fetch_assoc($run)) {
    echo "<option value='".$row['Number']."'>".$row['Number']."</option>";
}
?>
share|improve this answer
    
Well I am trying to add one <select> by myself, but the dropdown is generated in a different file and thats what confuses me. –  Smiley Jan 3 '13 at 8:15
    
@user1914940 - I think you need to clarify what you mean by the drop down being generated in a different file. –  user985189 Jan 3 '13 at 8:18
    
@user1914940 It doesn't matter where the rest of the <option> elements are generated. Since this <option> needs to be the first one, you can just add it directly after the <select>. –  AgentConundrum Jan 3 '13 at 8:18
    
You can see in my original question, <select> tags are in index.php, but while loop that generates dropdown menu is in process.php –  Smiley Jan 3 '13 at 8:19
    
@AgentConundrum If I put my static value after <select> the it will be generated everytime while loop runs, I only need it once. –  Smiley Jan 3 '13 at 8:22
<?php
$selectedKey = $_GET['selected_key'];
$query = "SELECT * FROM `1 received` WHERE Key = '".$selectedKey."'";
$run = mysql_query($query);

echo "<option value='0'>Select Contractor</option>"; //Simply add this

while($row = mysql_fetch_assoc($run)) {
    echo "<option value='".$row['Number']."'>".$row['Number']."</option>";
}
?>
share|improve this answer
    
Well, since this is in another file it will not appear in dropdown menu. –  Smiley Jan 3 '13 at 8:08
    
@user1914940 - Huh? That doesn't make sense to me. How is it that you are populating the drop down not if now using the script your provide and I modified? –  user985189 Jan 3 '13 at 8:10

Try this..

<?php
$selectedKey = $_GET['selected_key'];
$query = "SELECT * FROM `1 received` WHERE Key = '".$selectedKey."'";
$run = mysql_query($query);
$str = "<option value='0'>Select anyone</option>";
while($row = mysql_fetch_assoc($run)) {
    $str .= "<option value='".$row['Number']."'>".$row['Number']."</option>";
}
echo $str;
?>

Likt this you can add static options

share|improve this answer
    
This will add Select anyone at the end of dropdown menu, need it at the top :) –  Smiley Jan 3 '13 at 8:11
    
It will show Select anyone as the first option. .Then it will populate other options from your loop.. –  Edwin Alex Jan 3 '13 at 8:14
please used this code......
<?php
$selectedKey = $_GET['selected_key'];
$query = "SELECT * FROM `1 received` WHERE Key = '".$selectedKey."'";
$run = mysql_query($query);

$str = "<option value='0'>Select Contractor</option>"; //Simply add this

while($row = mysql_fetch_assoc($run)) {
    $str .= "<option value='".$row['Number']."'>".$row['Number']."</option>";
}
?>


echo $str variable into your select box like this:-


<select id="text2" name="text2">
<?php echo $str;?>
</select>
share|improve this answer
2  
So do you normally copy and paste other people's answers and post them as your own?? –  user985189 Jan 3 '13 at 8:14
    
no i have not copy pasted please see properly i have concatenated the variable and then echo it into select box this is what my logic was please see it properly..... –  THE ONLY ONE Jan 3 '13 at 8:17
3  
The identical comment '//Simply add this' with Nicarus' earlier solution is a complete coincidence is it? –  Pankrates Jan 3 '13 at 8:45

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