Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I need some jquery help. I have a simple image gallery and I'd like to add some jquery effect (particulary fading in/out of the images in #actimg). Keep in mind, Im not very familiar with jquery.

js

<script type="text/javascript">
function showPic (whichpic) {
  if (document.getElementById) {
  document.getElementById('actimg').src = whichpic.href; 
  return false; 
 } else {
  return true;
 } 
}
</script>

and body

<ul>
<li><a onclick="return showPic(this)" href="images/girl_01.jpg"><img height="50px" width="50px" src="images/girl_01.jpg" /></a></li>
<li><a onclick="return showPic(this)" href="images/girl_02.jpg"><img height="50px" width="50px" src="images/girl_02.jpg" /></a></li>
<li><a onclick="return showPic(this)" href="images/girl_03.jpg"><img height="50px" width="50px" src="images/girl_03.jpg" /></a></li>
</ul>

<img id="actimg" src="images/girl_04.jpg" alt="" />
share|improve this question
    
what are you trying to do ? –  Ryu Kaplan Jul 29 '11 at 20:43
    
no naked girls there :) ... just image gallery with fashion and stuff. –  Madr Jul 29 '11 at 21:49

4 Answers 4

up vote 0 down vote accepted
function showPic (whichpic) {
  if (document.getElementById) {
  $('#actimg').fadeOut('slow');
  document.getElementById('actimg').src = whichpic.href; 
  $('#actimg').fadeIn('slow');
  return false; 
 } else {
  return true;
 } 
}

I have added two lines around the line where you change the source of the #actimg img tag. The one just before fades the #actimg out and the one just after fades it back in.

---- EDIT ----

change:

  $('#actimg').fadeOut('slow');
  document.getElementById('actimg').src = whichpic.href; 
  $('#actimg').fadeIn('slow');

to:

  $('#actimg').fadeOut(250);
  setTimeout(function() {
      document.getElementById('actimg').src = whichpic.href; 
      $('#actimg').fadeIn(250);
  }, 250);

This will fadeOut the #actimg element, then it will change the source of that element and fadeIn the element. Note that the fadeOut duration should be the same or less than the duration of the timeout so that the fade can complete before the source of the image is changed.

share|improve this answer
1  
this seems like the effect Id like to achieve, but now when I click on some image I can see this image before it flashes/fades. ps. (I am using latest jquery 1.6.2) –  Madr Jul 29 '11 at 21:46
    
ah yeah I've had that problem before as well, the way I got around it was to add a timeout to changing the source of the image, see my edit above –  Jasper Jul 29 '11 at 23:55
    
yes, thank you very much Jasper, it works perfectly now. –  Madr Jul 30 '11 at 10:28
    
Using setTimeout to get around that is quite hackish... why don't you take a look at other less complicated answers with better results. –  tybro0103 Jul 31 '11 at 15:10
    
Also, if you're using jQuery already, using "document.getElementById" is a little silly. –  tybro0103 Jul 31 '11 at 15:10

try something like:

$("li a").click(function(){
       $("#actimg").fadeOut();
        var imghref = $(this).attr("href");
        $("#actimg").attr("src",imghref);
        $("#actimg").fadeIn();

} and get rid of your showpic function...

share|improve this answer

In jquery to select an element by id you use "#"+id selector.

function showPic (whichpic) {
  $('#actimg').attr("src", whichpic.href).hide().fadeIn(); 
}
share|improve this answer

ShankarSangoli's answer looks great. However, if you want the displayed image to fade away before the new one fades in, which is an awesome effect, do this:

function showPic(whichPic) {
  $('#actimg').fadeOut('fast', function() {
    $('#actimg').attr('src', $(whichPic).attr('href'));
    $('#actimg').fadeIn('fast');
  });
}

This takes advantage of the callback on fadeOut. The callback is called once the animation is finished.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.