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I am unable to delete only one form at a time. In my code, I am able to add forms. But when I want to delete only one form at a time, all the forms that have been created gets deleted except for the first form. My code so far:

<div>
<form class="form" action="" method="" > 
  product:<input type="text">
  price:<input type="text">
  <button class="r">remove</button>
</form>
</div>


<div class="class"> </div>
<button class="add"> add </button>

jquery:

$('.add').on('click', function(){
var $clone = $('.form').clone();
$('.class').append( $clone ); 

}); 

$('.r').on('click', function(){ 
$('this').parent('form').remove();
//$('this').parent('div').remove();// even this gives the same result

});

Thanks. You were right. i got the answer.

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2
  • Do you want to remove the first or the last form created?
    – CAllen
    Oct 23, 2015 at 23:01
  • on needs to be delegated in order to handle events from dynamic elements.
    – Travis J
    Oct 23, 2015 at 23:04

2 Answers 2

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0

Try this. Here are the things to keep in mind. -- If you trying to append a dynamic html during an event, any corresponding events ( such clicks ) needs to be referenced in the same function. Also, Since you are using the buttons for add-remove and not submitting a form, you can replace those with regular input type of button.

<div>
<form class="form" action="" method="" > 
  product:<input type="text">
  price:<input type="text">
  <input type="button" class="r" value="Remove"/>
    </form>
</div>


<div class="class"> </div>
<input type="button" class="add" value="Add"/>

$('.add').on('click', function(){
var $clone = $('.form').clone();
$('.class').append( $clone ); 
$('.r').on('click', function(e){ 
$(this).parent('.form').remove();
});
});

http://jsfiddle.net/gmyag5oe/

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1
  • Thank you but I am still running into same problem.
    – Ann
    Oct 24, 2015 at 0:53
0

The main problem is that $('this') is not $(this). But that is not the only problem.

Your "remove" function was only applied to the first '.r' element and because you don't do a deep clone (you don't want to also copy the values) the event listener will not be cloned as well.

I recommend using event delegation $(document).on('click', '.r', ... which binds the event listener to the document (you can increase specificity to reduce overhead if possible) and listen for events on elements matching a selector (in this case '.r').

Also, because a button will cause the form to submit, you have to make sure to return false (or use the event's .preventDefault() method) to stop the form from submitting if the button is inside a form.

Finally, you should cache your jQuery objects if you use them more than once to limit overhead.

var form = $('.form');
var target = $('.target');
$('.add').on('click', function(){
    target.append(form.clone());
});
$(document).on('click', '.r', function(){ 
    $(this).parent().remove();
    return false;
});
<script src="https://ajax.googleapis.com/ajax/libs/jquery/2.1.1/jquery.min.js"></script>
<div>
    <form class="form" action="" method=""> 
        product:<input type="text">
        price:<input type="text">
        <button class="r">remove</button>
    </form>
</div>

<div class="target"></div>
<button class="add">add</button>

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2
  • Thank you for your explanation. I am still facing the same problem. I have used your full code and same thing happens. I have posted my full code.
    – Ann
    Oct 24, 2015 at 0:52
  • I've edited my answer. I forgot to stop the button from submitting the form. Here's a demo
    – Random Logic
    Oct 24, 2015 at 14:30

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