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I can't validate forms which have dynamic rows. When I click the button I add new rows. But these rows do not validate.

$("#add").click(function() {
    //event.preventDefault();
    $v = $v+1;

    $("#zamowione_produkty").find('tbody')     
        .append($('<tr>')
            .append($('<td class = "licz">'+$v+'</td>'))
            .append($('<td><input type="text" name ="nazwa[]" size="40" class="required" /></td>'))
            .append($('<td><input type="text" name ="warianty[]"  size="60" class="required" /></td>'))
            .append($('<td><input type="text" name ="ilosc[]"  size="10" class="required" onkeypress=validate(event) /></td>'))
            .append($('<td><input type="text" name="data[]"  size="15" class="data required"  /></td>'))
        );

    $('.data').datepicker({dateFormat: 'yy-mm-dd'});
    $.datepicker.setDefaults( $.datepicker.regional[ "pl" ] );

Zamowione_produkty is table in form2

Tu add validate

$(document).ready(function() {
    $("#form2").validate();
});
share|improve this question
    
I don't think the problem is the dynamic rows (jsfiddle.net/KJvLU). I think the problem is that you have multiple inputs with the same name attribute. validate interprets this as meaning that any input with that name can be filled out to meet the required rule. What exactly are you trying to accomplish by naming things the same way? – Andrew Whitaker Sep 18 '12 at 16:48
    
I add same name because next I use submit to send value to controller. If I use name[] I will have everyone value in table – marczak Sep 18 '12 at 17:56
    
I use same name because I don't know how I can send all to controller and get it them – marczak Sep 18 '12 at 18:28

I wrote a blog post about how to use jQuery's unobtrusive validation on dynamic content. You may want to check this out as a good starting point.

From that blog post, the important part is setting validation on new fields as they are added.

$.ajax({
    type: 'GET',
    url: '/Home/TreeNode',
    data: {
        id: id
    },
    success: function(data) {
        $('#ajaxform').html(data);
        $.validator.unobtrusive.parse($("#validation"));  // this is important
    }
});
share|improve this answer
    
The link is broken. – Steven Aug 4 '14 at 12:27

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