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.

How to switch an image when the page refreshes, using Javascript?

Let's say I have 2 images:

  • ImageA.jpg
  • ImageB.jpg

I want to switch those images at locationA and locationB when the page is refreshed.

Simulation:

- Page Refresh #1
<img id='locationA' src='ImageA.jpg'>
<img id='locationB ' src='ImageB.jpg'>


- Page Refresh #2
<img id='locationA' src='ImageB.jpg'>
<img id='locationB ' src='ImageA.jpg'>


- Page Refresh #3
<img id='locationA' src='ImageA.jpg'>
<img id='locationB ' src='ImageB.jpg'>

[Update #1]

I try this implementation, but it doesn't work. Could anyone tell me whats wrong with this code?

<html>
  <head>
    <script type="text/javascript">
      var images = [];
      images[0] = "I_am_Super_Magnet%21.jpg";
      images[1] = "World_In_My_Hand%21.jpg";

      var index = sessionStorage.getItem('index');
      if(index) index = 0;

      if(index==0)
      {
        document.getElementById("locationA").src=images[index];
        document.getElementById("locationB").src=images[index+1];
        index = index + 1;
      }
      else if(index==1)
      {
        document.getElementById("locationA").src=images[index];
        document.getElementById("locationB").src=images[index-1];
        index = index - 1;
      }
     sessionStorage.setItem('index', index);
    </script>
  </head>
  <body>
    <img id='locationA' src=''>     
    <img id='locationB' src=''>
  </body>
</html>

[Update #2]

Tested on:

  • FF 16.0.1 --> Working!
  • IE 8 --> doesn't work

Here is the code:

<html>
  <head>
    <script type="text/javascript">
    function switchImage()
    {
      var images = [];
      images[0] = "I_am_Super_Magnet%21.jpg";
      images[1] = "World_In_My_Hand%21.jpg";

      var index = sessionStorage.getItem('index');

      if(index == null) index = 0;//set index to zero if null

      index = parseInt(index);// parse index to integer, because sessionStorage.getItem() return string data type.

      if(index == 0)
      {
        document.getElementById("locationA").src=images[index];
        document.getElementById("locationB").src=images[index+1];
        index = index + 1;
      }
      else if(index == 1)
      {
        document.getElementById("locationA").src=images[index];
        document.getElementById("locationB").src=images[index-1];
        index = index - 1;
      }
      sessionStorage.setItem('index', index);
    }
    </script>
  </head>
  <body onload="switchImage()">
    <img id='locationA' src='src_locationA'>        
    <img id='locationB' src='src_locationB'>
  </body>
</html>

Thanks to Jack for the clue! and thanks to Jon Kartago Lamida for the sample!

Thanks.

share|improve this question
    
You'd have to maintain state within JavaScript, either with cookie or local storage and toggle it at every page load; server side state management is also possible of course. Lastly, you could randomize the positions (though that would not always result in the same behaviour). –  Ja͢ck Jan 15 '13 at 6:56
    
did you mean like this one –  CodeGhoib Jan 15 '13 at 7:01
1  
That would sound like a good start; sessionStorage is another option to think about (more modern browsers support it). –  Ja͢ck Jan 15 '13 at 7:07
    
Thanks for the response and suggestion. I will try it! –  CodeGhoib Jan 15 '13 at 7:12
    
Hi Jack, I try to implemented the code based on Jon Kartago Lamida sample, but it doesn't work :( –  CodeGhoib Jan 15 '13 at 7:40

3 Answers 3

Set a flag variable in your cookie ( Check Javascript Cookie SO Question for setting a cookie ).

Every time the page loads, ( in your onload function ) check the value of the flag.

  1. Say if value is 0 . Show ImageA in LocationA. Then invert the flag value to 1.
  2. Else if value is 1 . Show ImageB in LocationA. Then invert the flag value to 0.

The flag value will be stored in your cookie.

Hope this helps, Shoubhik

share|improve this answer

I try to give example according to Jack, using localStorage. Most modern browser have support this. I haven't this this code yet, but more or less should be like this.

 <html>
  <head>
    <script type="text/javascript">
     function init(){

var imageA = 'imageA.jpg';
var imageB = 'imageB.jpg';

// state maintaned using localStorage
var toggle = localStorage.getItem('toggle');

if(toggle) toggle = "A"; // if no state yet, initialize

if(toggle == "A"){
toggle = "B";
document.getElementById('locationA').src=imageA;
document.getElementById('locationB').src=imageB;
}else{
toggle = "A";
document.getElementById('locationA').src=imageB;
document.getElementById('locationB').src=imageA;
}
// put state back to local storage
localStorage.setItem('toggle', toggle);
}
    </script>
  </head>
  <body onload="init()">
    <img id='locationA' src=''>     
    <img id='locationB' src=''>
  </body>
</html>
share|improve this answer
    
Hi Jon, i have one question. in your code when we set the 'state' value to localStorage for the first time? sorry new to this stuff :) –  CodeGhoib Jan 15 '13 at 7:21
    
And what is 'state' variable for? is that suppose 'var toggle'? –  CodeGhoib Jan 15 '13 at 7:23
    
Yes sorry. It supposed to be toggle. –  Jon Kartago Lamida Jan 15 '13 at 7:39
    
Hi Jon, I try to implemented the code based on your sample, but it doesn't work :( could you help me what is wrong with my code? (see my update in original post) –  CodeGhoib Jan 15 '13 at 7:41
    
The javascript should be called after img rendered. You can try to call the script in onload body event or put javascript code at the bottom of body. See my code above for the update. –  Jon Kartago Lamida Jan 15 '13 at 7:50
up vote 0 down vote accepted

Base on Damien_The_Unbeliever comment I create this answer post for my own question.

This is final working solution that I use.

[Update #3]

Tested on:

  • FF 16.0.1 --> Working!
  • IE 8 --> Working!
  • Chrome 24 --> Working! (Note: this browser need a little extra effort to make it can read cookie. see this link)

Basically the code is still same as Update #2, the different is I use cookie instead of sessionStorage. Here is the complete code:

<html>
  <head>
    <script type="text/javascript">
    function createCookie(name,value,days) {
        if (days) {
            var date = new Date();
            date.setTime(date.getTime()+(days*24*60*60*1000));
            var expires = "; expires="+date.toGMTString();
        }
        else var expires = "";
        document.cookie = name+"="+value+expires+"; path=/";
    }

    function readCookie(name) {
        var nameEQ = name + "=";
        var ca = document.cookie.split(';');
        for(var i=0;i < ca.length;i++) {
            var c = ca[i];
            while (c.charAt(0)==' ') c = c.substring(1,c.length);
            if (c.indexOf(nameEQ) == 0) return c.substring(nameEQ.length,c.length);
        }
        return null;
    }

    function eraseCookie(name) {
        createCookie(name,"",-1);
    }

    function switchImage()
    {
      var images = [];
      images[0] = "I_am_Super_Magnet%21.jpg";
      images[1] = "World_In_My_Hand%21.jpg";

      var index = readCookie('index'); //sessionStorage.getItem('index');

      if(index == null) index = 0;//set index to zero if null

      index = parseInt(index);// parse index to integer, because sessionStorage.getItem() return string data type.

      if(index == 0)
      {
        document.getElementById("locationA").src=images[index];
        document.getElementById("locationB").src=images[index+1];
        index = index + 1;
      }
      else if(index == 1)
      {
        document.getElementById("locationA").src=images[index];
        document.getElementById("locationB").src=images[index-1];
        index = index - 1;
      }
      createCookie('index', index); //sessionStorage.setItem('index', index);
    }
    </script>
  </head>
  <body onload="switchImage()">
    <img id='locationA' src='src_locationA'>        
    <img id='locationB' src='src_locationB'>
  </body>
</html>
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.