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I have 4 image button containing a image. on mouse over i have to change the image(i.e load a new image on the button). Here is the code.

<div class ="submit" id="submit" >
    <input  type="image" src="dump.png" value="Dumb" class ="Dumb" id="Dumb" onclick="posting_by_user('Dumb')" />
    <input  type="image" src="informative.png" value="Informative" class ="Informative" id="Informative" onclick="posting_by_user('Informative')"/>
    <input  type="image" src="brilliant.png" value="Brilliant" class ="Brilliant" id="Brilliant" onclick="posting_by_user('Brilliant')"/>
    <input  type="image" src="cool.png" value="Cool" class ="Cool" id="Cool" onclick="posting_by_user('Cool')"/>
</div>

Here I have loaded dump.png, informative.png, brilliant.png and cool.png. on mouse over on each button i have to change the image.

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where is the code? –  Exor Feb 7 '12 at 6:35
    
Possible answer? stackoverflow.com/questions/540349/… –  Melros Feb 7 '12 at 6:38
    
@ Exor : i can view the code. –  Raju.allen Feb 7 '12 at 6:40
    
@Raju.allen : Yea i could see it now.. :) –  Exor Feb 7 '12 at 6:42

5 Answers 5

up vote 2 down vote accepted
<input  type="image" src="dump.png" value="Dumb" class ="Dumb" id="Dumb" onclick="posting_by_user('Dumb')" onmouseover="changeImg.call(this)" />

function changeImg(){
this.setAttribute("src","newImageFileName.jpg");
}

Segregating your code from html is always advised.. this answer will be helpful as it is cleaner and good for debugging..

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thanks Vivek Chandra. Its working now. –  Raju.allen Feb 7 '12 at 6:46
    
@raju.allen if you are new to stackoverflow,there is a tick mark next to each answer,you can accept an answer by clicking on that tick mark.. accept the answer which best suits/fixes your problem.. –  Vivek Chandra Feb 7 '12 at 6:49
<input  type="image" src="dump.png" value="Dumb" class ="Dumb" id="Dumb" 
onclick="posting_by_user('Dumb')" 
onmouseover="this.src='informative.png';" 
onmouseout="this.src='dump.png';" />
share|improve this answer

Try this

$(document).ready(function() {
$('input[type=img]')
    .mouseover(function() { 
        var src =  "mouseover.png";
        $(this).attr("src", src);
    });
share|improve this answer

You can use either Javascript or CSS for this, below is the javascript approach.

window.addEventListener("load", function load (event) {
    window.removeEventListener("load", load, false);
    tieEvents();
}, false);

function tieEvents() {
    var button = document.getElementById('Dumb');

    button.addEventListener("mouseover", hovered, false);
    button.addEventListener("mouseout", unhovered, false);

    function hovered() {
        button.src = "anotherimg.png";
    }

    function unhovered() {
        button.src = "anotherimg.png";
    }
};

JSFiddle Demo

Note that setting events in HTML is not a good practice, it's better to tie them up in Javascript.


The CSS way is as follows:

#Dumb {
    backgroud: url("dump.png");
}

#Dumb:hover {
    backgroud: url("another.png");
}

JS Fiddle Demo

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you can use CSS

  1. rule will display default look
  2. on mouse hover shows another image in same size basic example

    button1 {background: url(img/button1.png)}
    button1:hover {background: url(img/button1_hover.png)}

or you can use sprite image, have both in one image and use CSS rules to change its position

http://cssglobe.com/post/3028/creating-easy-and-useful-css-sprites

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