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I have a PHP site I'm working on, and need to allow the user to select data and have different data appear on the next DIV (see attached image). Essentially I'd like a DIV (overflow:auto, so it scrolls) to populate using the SQL SELECT statement, and allow a user to click on a list item. That item creates a new SELECT statement for the div to the right, if that makes sense. Any input on the best way to go about this? New to PHP, not HTML/CSS though.

Zach

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Not sure what your question is? This is probably best done using JavaScript so you don't have to reload the page –  Pekka 웃 Aug 10 '11 at 7:26
    
@Pekka: It's a column view. I need the columns to populate based on the previous columns' selection. For example: If I press Company 2 (on attached image), the next column would show all files associated to Company2 in the SQL database (using a SELECT statement). –  Zakman411 Aug 10 '11 at 7:32
    
Looks like the same style of interface as the file explorer in Mac OS. –  cbednarski Aug 10 '11 at 7:53

2 Answers 2

up vote 1 down vote accepted

I think the best way to achieve this is with jQuery (a JavaScript-Library). I is quite easy to use, and if you got the trick, you can do amazing things with it.

For PHP/MySQL, you could use jQuerys Ajax functionalities (see http://api.jquery.com/jQuery.ajax/). Use the callback to display the loaded data (see below).

Here is a very simple example on how to show another div (in which could be more links to select) with dynamic content. If you combine this with Ajax, you should get what you need.

Include jQuery in within head tag:

<script src="http://ajax.googleapis.com/ajax/libs/jquery/1.6.2/jquery.min.js" type="text/javascript"></script>

Code for the body:

<!-- First Box: click on link shows up second box -->
<div id="selectOne" style="float: left; margin-right: 10px; border: #666 thin solid; padding: 10px;">
  <a href="#" id="one">One</a><br />
  <a href="#" id="two">Two</a><br />
  <a href="#" id="three">Three</a>
</div>

<!-- Second Box: initially hidden with CSS "display: none;" -->
<div id="selectTwo" style="float: left; margin-right: 10px; display: none; border: #666 thin solid; padding: 10px;"></div>

<!-- The JavaScript (jQuery) -->
<script type="text/javascript">

//Do something when the DOM is ready:
$(document).ready(function() {

//When a link in div with id "selectOne" is clicked, do something:
$('#selectOne a').click(function() {
    //Fade in second box:
    $('#selectTwo').fadeIn(500);

    //Get id from clicked link:
    var id = $(this).attr('id');

    //Depending on the id of the link, do something:
    if (id == 'one') {
        //Insert html into the second box which was faded in before:
        $('#selectTwo').html('One<br />is<br />selected')
    } else if (id == 'two') {
        $('#selectTwo').html('Two<br />is<br />selected')
    } else if (id == 'three') {
        $('#selectTwo').html('Three<br />is<br />selected')
    }
});
});
</script>

So if you would use jQuerys Ajax-Functionality, you could use something like that (not tested!):

$('#selectOne a').click(function() {

var id = $(this).attr('id');

    $.ajax({
        type: 'POST',
        url: 'getYourData.php',
        data: 'thisIsSentToPHPFile='+id,
        success: function(msg){
            //everything echoed in your PHP-File will be in the 'msg' variable:
            $('#selectTwo').html(msg)
            $('#selectTwo').fadeIn(500);
        }
    });
});

The getYourData.php could be:

$id = $_POST['id'];
$query = mysql_query('SELECT * FROM table WHERE id='.$id);
$result = mysql_fetch_assoc($query);

//Now echo the results - they will be in the callback variable:
echo $result['tablefield1'].', '.$result['tablefield2'];

Give it some tries, tweak it a little bit and you should get it working.

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Thanks! I'll give this a shot - where do I put the AJAX code you provided? Does it go in the same BODY section? –  Zakman411 Aug 10 '11 at 20:21
    
Hey Zakman, sorry for the late answer. Yes, you could do it in the same body-section or in a separate JavaScript-File (.js). If you do that, you have to include the js-file in the header like the jQuery-File, but under the inclusion of the jQuery file! –  Mike Aug 13 '11 at 7:09

The most straightforward way to do this is probably to make the right portion an iframe.

Then each item in the middle list could be a link like so:

<a href="displaySubItems.php?company=2" target="rightColumn">Company 2</a>

In displaySubItems.php you would then use the $_GET['company'] value in your select statement to populate the table.

Alternatively you could make use of AJAX methods to populate the table on the right though I'm personally not that familiar with AJAX so I can't tell you more about that. Also I suspect iframes are more widely supported.

EDIT: changed some parts based on one of your comments

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Thanks for the reply! Only issue with this is that my data is linked to a mySQL database. So how could I populate the list of items in the first place? The 'href="displaySubItems.php?company=2' obviously knows there's a company2. How would I dynamically create those links to push to displaySubItems.php? –  Zakman411 Aug 10 '11 at 7:42
    
How familiar are you with the PHP MySQL classes? Read through the introduction for these and pick one or the other (not both): php.net/manual/en/book.mysql.php and php.net/manual/en/book.mysqli.php. Basically you'd get your results out and loop through them to get your values. –  potNPan Aug 10 '11 at 7:50

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