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The click works for the initially loaded elements in the dom but when I try clicking the recently appended items it does not work. I have tried .live, .delegate and .on and they do not work at all. Here is the code:

I used this and it did not work, it still does a page refresh:

$('.forms').on('click', '.button-like', function() {
    var $parent = $(this).parent('.forms');
    var $thisItem = $parent.find('.button-like');
    console.log($parent);
    $(this).submit(function () {
        var data = {
            "action": "like"
        };
        data = $parent.serialize() + "&" + $.param(data);
        var itemId = $parent.find('input.id').val();
        $.ajax({
            type: "POST",
            url: "/actions/",
            data: data,
            success: function (data) {
                console.log('Like submitted successfully sent');
                //$thisItem.addClass('isliked');
                $thisItem.after('<button class="ajax instabtn button-unlike unlike icon-heart" type="submit" name="action" value="Unlike"></button>');
                $thisItem.remove();
            }
        });
        return false;
    });
    $(this).submit();
});

This above code does not work at all with newly added items to the page, it keeps refreshing the page?

Here is the append code for your interest:

success: function(data) {
            // Output data
            $.each(data.images, function(i, src) {
            var $content = $('<article class="instagram-image"><form id="'+ data.images[i].data_token +'" class="forms status-'+ data.images[i].data_like +'" action="'+base+'" method="post"><a class="fancybox" href="'+ data.images[i].data_link +'"><img alt="' + data.images[i].data_text + '" src="' + data.images[i].data_url + '" alt="' + data.images[i].data_text + '" /></a><input type="hidden" name="id" value="'+ data.images[i].data_id +'"><p>'+ data.images[i].data_likes +'</p></form></article>');
              $('section#images').append($content);
              if( $content.find('form').hasClass("status-false") ){
                    $content.find('form').addClass("notLiked");
                    //$('.notLiked').find('button.unlike').hide();
                    $content.find('form a').after('<button class="ajax instabtn button-like like icon-heart" type="submit" name="action" value="Like"></button>');
                }
                if( $content.find('form').hasClass("status-true") ){
                    $content.find('form').addClass("Liked");
                    //$('.Liked').find('button.like').hide();
                    $content.find('form a').after('<button class="ajax instabtn button-unlike unlike icon-heart" type="submit" name="action" value="Unlike"></button>');
                }
              });
            // Store new maxid
            $('#more').data('maxid', data.next_id);
          }

I have tried absolutely everything and it still wont work. I wondered if it was the logic that is wrong?

Cheers, Mark

share|improve this question
1  
Here this refers to the button (submit???) not the form. The onsubmit handler must be applied to the form, not the button. BTW, on your code, $thisItem == $(this) –  A. Wolff Aug 9 '13 at 10:41
    
Can I just ask how that would work? In my on click it sets it to the form and then I delegate .button-like to be the click handler and then that submits the form. I tried changing $(this).submit to $('.button-like') and nothing changed at all it still refreshes the page! –  M dunbavan Aug 9 '13 at 10:54
1  
If .forms, its a FORM-TAG then just use your $parent, so $parent.submit(... –  reyaner Aug 9 '13 at 10:55
    
Like i said and like @reyaner comment, the onsubmit is for the form, not the button. BTW, nesting a handler inside an other one is just wrong. You should use your console to check which element is targeted by which variable and you should see where your problems come from. –  A. Wolff Aug 9 '13 at 10:59
    
@reyaner Be careful with '.parent()'. It won't work if the submit button is not a children from form tag. In my eyes '$(this).parents("form:first")' is more save. –  reporter Aug 9 '13 at 10:59

1 Answer 1

Would this work maybe?

$('.forms').submit(function() {
    var $parent = $(this);
    var $button = $parent.find('.button-like');

    var data = {
        "action": "like"
    };
    data = $parent.serialize() + "&" + $.param(data);
    var itemId = $parent.find('input.id').val();
    $.ajax({
        type: "POST",
        url: "/actions/",
        data: data,
        success: function (data) {
            console.log('Like submitted successfully sent');
            //$thisItem.addClass('isliked');
            $button.after('<button class="ajax instabtn button-unlike unlike icon-heart" type="submit" name="action" value="Unlike"></button>');
            $button.remove();
        }
    });
    return false;
});
share|improve this answer
    
Suppose this would not get over the fact that newly appended items on the DOM are not taking this script and using ajax to post the form –  M dunbavan Aug 9 '13 at 11:20
    
i thout new content is in .forms... so you could use then a parent-warpper, that is not getting loaded, and go with $("parent-warpper").on("submit", ".forms"... –  reyaner Aug 9 '13 at 11:25

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