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The script is:

function cDelete() {
    $("#dialog-confirm").dialog({
        resizable: false,
        height: 240,
        modal: true,
        buttons: {
            "Delete item": function () {
                $(this).dialog("close");
                $('form#someform').submit();
            },
            Cancel: function () {
                $(this).dialog("close");
                return false;
            }
        }
    });
    return false; 
}

and the form elements:

<form id="someform" action="somefile.php" method="POST">
    <button name="delete" type="submit" class="cancel" onclick="return cDelete();">Delete</button>
    <input type='checkbox' class='toggle' value='$article_id' name='page-id[]'>
</form>

In php file i check the data like this:

if (isset($_POST['delete']) && isset($_POST['page-id'])){}

So here is the problem: the script sends POST of checked checkboxes ($_POST['page-id']) correctly but it doesn't send POST of pressed button ($_POST['delete']). Ok It does but only when i put into form hidden input like: <input type="hidden" name="delete">.

I'd like to make this work whitout hidden input. Im trying to solve this but still no results. Maybe someone could help me?

And the second question: Is it possible that script will be working onsubmit(form) instead onclick(button)?

share|improve this question
    
It does not send the button value because using the dialog introduces asynchronism, so that it is not the clicking on the button that actually sends the form – you calling the form’s submit method is. And using onsubmit won’t change that. If you don’t want the hidden field to be part of your HTML, then you could insert it dynamically. –  CBroe Jan 28 '14 at 13:01
    
Ok. Thanks for answer. I dont know what is better : dynamically insert or hidden input, but in this case I think it doesn't matter what will I pick. Important is to make it work. Anyway I'll try with dynamically insert. PS i know onsubmit won't change that. I just wanted to use onsubmit becouse I think it's better way to validate form than onclick (some people use enter) especially when you have few submit buttons or input[submit]. But in this case i have only 1 so enter works exactly like click so I'll stay by onclick i think. Thanks again –  RysQ Jan 28 '14 at 13:38

1 Answer 1

you need to define name and value for button, this will send the value of button too

<button name="delete" type="submit" class="cancel" onclick="return cDelete();" value="Delete">Delete</button>

For second question check this out

Jquery trap form submit()

share|improve this answer
    
Sory I didnt specify my form declaration. I'll correct it. It has ofcourse action and method. Like I said I recive POST of checked checkboxes ($_POST['page-id']) but I cant receiving POST of pressed button ($_POST['delete']) –  RysQ Jan 28 '14 at 12:54
    
@RysQ you need to define value to button –  Ergec Jan 28 '14 at 12:57
    
I've defined value to button but it's still not working. Thanks for link –  RysQ Jan 28 '14 at 13:02
    
@RysQ I tested and it definitely sends the button value. Also check your closing tag for form element you put div instead –  Ergec Jan 28 '14 at 13:09
    
I do not know how you get button value. I just made another document only with script, form and print_r($POST). Double check of form elements attributes, classes, ids. Still nothing. But i think i've got answer under my post. Anyway thanks for answers. Ps.. yep i closed form with div accidentally (on this listing). I'll correct it –  RysQ Jan 28 '14 at 13:43

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