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I have a jquery delete statement and it's only deleting the NEWEST upload on my files (using mysql) Say I had "file uploaded first", "file uploaded second", "file uploaded last(newest file)". If I click "file uploaded first or second", it deletes the newest (file uploaded third).

    $(document).on('click', '.del', function(){
    var sid = $(this).next('.hiddenVid').val();
    $.ajax({
        type: "GET",
        url: "delete.php",
        data: {id:sid}
    });
    return false;
});
share|improve this question
    
The thing is you only delete the same file right? What is sid? Does alert(sid) show the same thing? – Littm Sep 18 '12 at 2:52
    
How I have it layed out is like little buttons next to each. When I click the button on a certain row(for instance, the first file) I want it to delete THAT FILE, not the last one. sid is the vid just clearer incase I ever need to change something – user1678514 Sep 18 '12 at 2:54
    
var sid = "$vid";. You sure that $vid evaluates to a value in this statement? It's a PHP variable which you are trying to use in your jQuery?? – verisimilitude Sep 18 '12 at 2:55
    
The php variable reads just not as the right value? I guess you could say that.. Also, it's embedded in the PHP file. – user1678514 Sep 18 '12 at 2:55
    
perform delete in through post ajax and make sure server only entertain post requests only. delete through get is risky – Rab Nawaz Sep 18 '12 at 3:04
up vote 3 down vote accepted

this is your error ->

var sid = "$vid";. 

It will only produce the ID for the latest item that you put in.

Add an item to your echo statement so you can reference it later in the click function.

Add a reference to the vid in a hidden input.

Change this

$option = "<td><form method='POST'><button type='submit' name='del' class='del'><i class='icon-remove'></i></button></form></td>";

To this:

$option = "<td><form method='POST'><button type='submit' name='del' class='del'><i class='icon-remove'></i></button><input type='hidden' class='hiddenVid' value='".$vid."'/></td>";

Change your click function to reference the real sid now.

$(function(){
    $(".del").click(function(){
        var row = $(this).parent();
        var sid = $(this).next('.hiddenVid').val();
        alert(sid);
        $.ajax({
            type: "GET",
            url: "delete.php",
            data: {id:sid}
        });
        return false;
    });
 });

If you want to return the rows after the update, you'll need to spit the data back to be printed, based on the above method you use to retrieve the rows and return them, you could reuse it.

$id = mysql_real_escape_string($_REQUEST['id']);
$DB->Query("DELETE FROM `files` WHERE `id`='$id'");

if(TRUE == (unlink("uploads/$id")):
    $DB->Query("SELECT * FROM `files` WHERE `author`='$username'");
    $file = $DB->Get();
    $obj = new stdClass();
    $i = 0;
    foreach($file as $key => $value){
        $n = $value['name'];
        $vid = $value['id'];
        $date = "<td>".$value['date']."</td>";
        $fname = "<td><a id='$vid' href='download.php?id=$vid'>$n</a></td>";
        $option = "<td><form method='POST'><button type='submit' name='del' class='del'><i class='icon-remove'></i></button></form></td>";
        $size = "<td>".filesize("uploads/".$vid."/".$value['name'])." bytes</td>";
        $obj->$i = $files = "<tr>".$fname.$size.$date.$option."</tr>";
        $i++;
    }
    echo json_encode($obj);
endif;

Now we need to change the click handler to expect a dataType and replace the existing data in the table.

$(function(){
    $(".del").click(function(){
        var row = $(this).parent();
        var sid = $(this).next('.hiddenVid').val();
        alert(sid);
        $.ajax({
            type: "GET",
            url: "delete.php",
            dataType: 'json',
            data: {id:sid},
            success: function(data){
              $('table').empty();
              $.each(data, function(i,obj){
                  $('table').append(obj);
              }
            }
        });
        return false;
    });
 });
share|improve this answer
    
This should work fine for you. – verisimilitude Sep 18 '12 at 2:58
    
Worked great, thanks. Can you post a little thing to make it refresh when it's done? The table row doesn't get removed until I refresh. – user1678514 Sep 18 '12 at 3:06
    
@user1678514 Check the updated answer . You're welcome. – Ohgodwhy Sep 18 '12 at 3:20
    
Thanks but didn't work. Any way I can just make it refresh? – user1678514 Sep 18 '12 at 3:34
    
@user1678514 the refresh you're talking about is exactly what this method does. There isn't a "refresh" table method or something that you're looking for unless you've written the class for this. What the above does is to check if the unlink function actually works. it returns 0 for false and 1 for true. if it's true, then we create a new object, create an iterator, then run a for loop. In this loop, we then tell it to push the $files string into the object $obj. Then, we encode this object and send it back. The ajax functione xpects json, so it evaluates the response. – Ohgodwhy Sep 18 '12 at 3:37

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