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I am trying the submit the form on button click but want user to confirm whether he is sure or not. I have mutiple submit button on form and I just want pop-up in case of delete. When I make the type of my button submit. My form gets submitted twice If I confirm else It gets submitted once (I don't want it to submitted in that case).

I have multiple form on the page. That's why I am trying to submit the form getting parent Node and not using getElementbyId.

JavaScript function

function deleteEvent(btn){
      var confirmed=confirm('Do you want to delete the event?');
      if(confirmed){
          var f = btn.parentNode;
          f.submit();
          }
      else{
          return false;
          }
    }

HTML Code

<form action="#" method="POST">
<input type="button" name="delete" value="Delete" onClick ="deleteEvent(this)">
</form>

Thanks.

Working Solution:

<input type="submit" name="delete" value="Delete" onClick ="return confirm('Do you want to delete the event?');">
share|improve this question
    
if the input is of type submit it will continue unless you use event.preventDefault or any of the other methods to stop the form from submitting. –  abc123 Jul 1 '13 at 4:40
    
That's why I made it type of button, but then I am not able to submit it. –  PhantomM Jul 1 '13 at 4:43
    
you could place an ID for the form and using that you could submit it instead of using parent –  Varada Jul 1 '13 at 4:44
    
@Varada But I am getting the form object, then submit should work ? I am generating multiple similar forms on run-time, so anyway I have to find the "form" from parent of button only. –  PhantomM Jul 1 '13 at 4:51
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1 Answer

up vote 2 down vote accepted

try this

use onclick="return deleteEvent(this);" if button type is submit

<input type="submit" name="delete" value="Delete" onclick="return deleteEvent(this);">
share|improve this answer
    
Thanks it worked. –  PhantomM Jul 1 '13 at 5:18
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