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I want to display particular image(among them) on the side when I do mouseover on certain coordinates on image2. Using document.getElementById("xyz1").style.display="block" works but not document.getElementById("xyz1").fadeIn(). Any ideas how to cause fadeIn and fadeOut effects?

What I wanna do is that when I mouseover on image1, image0 should fadeOut and image1 should fadeIn and then when I mouseover on image0, image1 should fadeOut and image0 should fadeIn

HTML:

<area shape="rect" coords="1,1,40,40" onmouseover ="f(0)">
<area shape="rect" coords="50,50,100,100" onmouseover ="f(1)">

<img id="image0"  src="../img1.jpg" style="display:block">
<img id="image1"  src="../img2.jpg" style="display:none">

JS: Version that works:

function f(i){
  document.getElementById("image0").style.display="block";
  document.getElementById("image1").style.display="none";

JS: Version that does not work(nothing happens, no change):

function f(i){
  document.getElementById("image0").fadeIn();
  document.getElementById("image1").fadeOut;
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2  
fadeIn() is a jquery method not pure JS method. You have to put your DOM element into $() before being able to use fadeIn(). –  King King Jun 11 '14 at 22:07
    
Just a quick note: when you are trying to figure out a problem in javascript always check the developer console for errors. In this case it probably would have displayed a useful message like undefined is not a function then you will have a clue to go on. –  Nick Jun 11 '14 at 22:11

2 Answers 2

up vote 3 down vote accepted

fadeIn() and fadeOut() are jQuery methods (not native JavaScript methods). If you reference the latest jQuery library, you can turn your elements into jQuery objects and then apply your fadeIn and fadeOut.

$('#image0').fadeIn();
$('#image1').fadeOut();
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I think fadeIn() and fadeOut() exists only in jQuery

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