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I've got very little javascript programming skill, so this must be the problem with it. My problem is not so complicated, but I just can't find the answer for it, I tried nearly everything, but as I said, I'm lame in javascript programming.

My problem is, that I have got a php page, on this page there are multiple forms generated by mysql queries. I use them to post dynamiccally generated hidden field values to another php file and in that file I can use their post values without refreshing the main page. The form id's (or names) are also generated by the mysql queries. I use javascript to validate (?) a form and send it's hidden contents to the another page.

Javascript:

<script type="text/javascript" src="http://code.jquery.com/jquery-1.4.2.min.js"></script>
    <script type="text/javascript" src="http://ajax.microsoft.com/ajax/jquery.validate/1.7/jquery.validate.min.js"></script>
    <script type="text/javascript">
        $(document).ready(function(){
        $("#1").validate({
            debug: false,
            submitHandler: function(form) {
                $.post('process_like_dislike.php', $("#1").serialize(), function(data) {
                    $('#results').html(data);
                });
            }
            });
    });
    </script>

As you can see, the form id in this case is 1. I generate nearly 40 unique forms on one page, it depends on the mysql queries.

Php:

<form name='$formnumber' id='$formnumber' action='' method='POST'>
<input type=hidden value='$us_id' name='us_id' id='us_id'>
<input type=hidden value='$an_id' name='an_id' id='an_id'>
<input type=hidden value='1' name='on' id='on'>
<input type=submit class=something value='' title='Something'>
</form>

I don't know how should I make the javascript code to dynamically validate the chosen form on submit. I tried to get the php formnumber variable in the javascript, but that didn't help. I don't know if there is another way, but I only know this one. I need to pass the dynamically generated hidden values to another page, but I need a dynamically generated javascript for it, or I don't know.

The main concept of this code, that I made a page where you can rate a thing and that thing has got hidden values that I need to get in post format, because this is the only way that I can decide which button has been pressed to do the mysql query in the second php file without refreshing the current one. I don't want simple posts, because I would lose the previous page and I don't want to refresh the page.

Please help me out, thank you guys.

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Are you meaning to have that same code for all of the forms on the page? I think you should be able to do it by changing the .validate call to $("form").validate and the other $("#1") to $(this) –  Michael Wheeler Aug 29 '12 at 23:26

2 Answers 2

up vote 0 down vote accepted

@Michael Wheeler's solution is more elegant than what I came up with originally -- however, 'this' is not set to the form (I tested) so you'd have to change his solution to $(form) for the other $("#1") instead of $(this) and it'll work perfect. =)

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If I use $(form) or $(this) the post values will be empty but it takes me to the other page. I need the hidden form values, so I think this isn't working. Any solution? –  thenamelesshero Aug 30 '12 at 0:40
    
I think the problem has been solved: function submitreg (id){ $.ajax({ type: "POST", url: "process_like_dislike.php", data: $(id).serialize(), success: function(data){ $('#results').html(data); } }); } and I used onclick event like this: <input type=button class=something value='' title='Something' onClick='submitreg($formid)'> $formid holds the dynamically generated form id. Thanks anyway. –  thenamelesshero Aug 30 '12 at 3:06
    
In case you're at at all interested in still using the validate plugin in the same manner as originally: When applying the validate function to the $('form') list for whatever reason it only worked (properly) with 1 form (I just went to post a link to my test code (When I tested earlier it was with a single form). This will work with any number though: link Anyway there are duplicate IDs in my test code so I know the html won't validate but the ids aren't necessary at all - I just left them in since they're part of the original form. –  Chelsea Aug 30 '12 at 7:11

You would benefit greatly from AJAX: http://www.w3schools.com/ajax/default.asp and probably from jquery, though I know you didn't mention it, to simplify your AJAX issues: http://api.jquery.com/jQuery.ajax/

share|improve this answer
    
downvoted why? He said he's new to javascript... –  K'shin Aug 29 '12 at 23:39

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