Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I use the following function to make a slideshow of images with fade in and out effects.

var project_photos = ['image1.jpg', 'image2.jpg', 'image3.jpg'];
var project_photo_index = 0;

function nextPhoto() {
  $('#background').fadeOut();
  $('#background').css('background-image', 
    "url('images/" + project_photos[project_photo_index] + "')");
  $('#background').fadeIn();
  timer = setTimeout(function() {
    if (project_photo_index+1 > project_photos.length) {
      project_photo_index = 0;
    } else {
      project_photo_index++;
    }
    nextPhoto();
  }, 5000);
}

However, I want to tweak the function a bit to remove the white moments in between fadeOut() and fadeIn(). What I want to achieve is:

assuming the fade in and out time is 400ms, and the display time of each image is 5s

  1. Image 1 shows on-screen for 0 to 5s, starts fading out from 5 to 5.4s
  2. Image 2 hides at first, start fading in from 4.8s to 5.2s (in order to fill the white gap between fade in and out), holds from 5.2 to 10.2s, then starts fading out from 10.2 to 10.6s
  3. Image 3 hides at first, start fading in from 10.4s to 10.8s, holds from 10.8s to 15.8s, then starts fading out from 15.8s to 16.2s
  4. (and Image 1 comes back with similar logic, loops forever until the timer has cleared)

How can I adjust the code to make this working as described?

share|improve this question
    
can you edit jsfiddle.net/arunpjohny/HcfyD/1 to recreate the case – Arun P Johny Jan 19 '14 at 4:56
    
also there is a bug in the use of setInterval - it should be setTimeout – Arun P Johny Jan 19 '14 at 4:59
    
the blank space could be because of the loading time for the image.... you preloading to fix it – Arun P Johny Jan 19 '14 at 5:02
    
changed the setTimeout() and added back fadeOut() – Raptor Jan 19 '14 at 5:04
1  
see jsfiddle.net/arunpjohny/HcfyD/4 – Arun P Johny Jan 19 '14 at 5:09
up vote 2 down vote accepted

LIVE DEMO

If you use 2 DIV elements you can fade the inner one:

<div id="bg2"><div id="bg1"></div></div>

than this is all you need:

var images = ['image1.jpg', 'image2.jpg', 'image3.jpg'],
    n = images.length,
    c = 0,
    $1 = $('#bg1'),
    $2 = $('#bg2');

$.fn.setBG = function(){
  return this.css({backgroundImage: "url(images/"+ images[c] +")"});
};

(function loop(){
  $1.setBG().fadeTo(0,1).delay(2000).fadeTo(1000, 0, loop);
  c = ++c%n;
  $2.setBG();
})();

How this works:

#bg1:      set1 -- fadeOut -- set2 -- fadeOut -- set3 -- fadeOut -- set1 - ...
#bg2:      - set2 ------------- set3 ------------- set1 ------------- set2 ...
share|improve this answer
    
how to stop the loop() in case I want to stop/pause the effect? – Raptor Jan 19 '14 at 8:43
1  
@ShivanRaptor than you can do it like jsbin.com/owiqIxA/6/edit using setInterval – Roko C. Buljan Jan 19 '14 at 8:59
1  
@ShivanRaptor or like this using almost the same code but setting a hover flag : jsbin.com/owiqIxA/7/edit – Roko C. Buljan Jan 19 '14 at 9:02
    
both looking good! – Raptor Jan 19 '14 at 9:03
1  
@ShivanRaptor Made it a bit nicer: jsbin.com/owiqIxA/9/edit – Roko C. Buljan Jan 19 '14 at 9:15

Try something like

var project_photos = ['//placehold.it/128/ff0000', '//placehold.it/128/ffff00', '//placehold.it/128/00ff00', '//placehold.it/128/00ffff'];
var project_photo_index = 0;

//preload the images
$.each(project_photos, function (i, src) {
    var img = $('<img />', {
        src: src
    })
})

function nextPhoto() {
    $('#background').fadeTo('normal', .5, function () {
        $(this).css('background-image', "url('" + project_photos[project_photo_index] + "')")
        $(this).fadeTo('normal', 1)
    });

    project_photo_index++;
    project_photo_index = project_photo_index < project_photos.length ? project_photo_index : 0;

    setTimeout(nextPhoto, 5000)
}

nextPhoto();

Demo: Fiddle

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.