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I am trying to modify this script;

<script>
function doIt2() {
  $("div.formbut").hide("slow");  
  $("div.inqform").show("slow");  
  }
$("submit2").click(doIt2);
$("form").submit(function () {
  if ($("input").val() == "yes") {
    $("p").show(4000, function () {
      $(this).text("Ok, loaded! (now showing)");
   });
  }
  $("div.rates").hide("slow");
  $("div.ratesbut").hide("slow");  
  $("div.inqform").hide("slow");
  $("div.done").show("slow");
  return false; 
});
</script>

What I wanted to do is, scroll to the top of the "inqform" div. could not.. Then tried to scroll to bottom of the page.. I could not do that either.. I wanted it to happen after " $("div.inqform").show("slow"); " I do not understand much of js..

Can anybody help ?

Thanks in advance..

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To prevent jQuery from searching the whole DOM-tree every time you want to access an element, you should cache the jQuery objects in variables; var $formbut = $("div.formbut");. –  Alexander Wallin Jan 9 '11 at 18:34

2 Answers 2

Just insert below code after $("div.inqform").show("slow"); to scroll to top of it -

var targetOffset = $('div.inqform').offset().top;
$('html,body').animate({scrollTop: targetOffset}, 500);
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Thanks.. just worked fine.. –  Has Jan 9 '11 at 18:59
    
@Has: consider accepting the answer instead of leaving a thank you comment! –  ifaour Jan 9 '11 at 20:13

Trying to put this script live.. but noticed that the form is not being posted. there is a inquiry form in the div.inqform

$("div.inqform").hide("slow");

The done action is done.. but the form is not posted.

wondering.. now.. do we need to wait document.ready until form is submitted to show div.done ?

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