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I want to show/hide images with the click on a <button>

This is what i tried:

Script:

<script type="text/javascript" >
$(document).ready(function () { 
  $('#buttontest').toggle(function() {
    $('#LogoTest').fadeOut('slow');
  }, function() {
    $('#LogoTest').fadeIn('slow');
  });
});
</script>

HTML:

<input type="button" id="buttontest" value="Show/Hide 1">
<a href="image1.jpg">
 <img src="image1.jpg" border="0" width="900" height="300" alt="image1" target="nowa_strona" id="LogoTest">
</a>
<br>
<input type="button" id="buttontest1" value="Show/Hide 2">
<a href="image2.jpg">
  <img src="image2.jpg" border="0" width="900" height="300" alt="image2" target="nowa_strona" id="LogoTest1">
</a>
<br>

How can i show/hide the images when i click on the corresponding <button>

share|improve this question
    
jqeury version used? –  Arun P Johny Jun 6 '13 at 8:35

5 Answers 5

up vote 0 down vote accepted

The best ways is wrap your button and image in a div element. Althrough in this case it's not necessary, but by this way you alway sure show/hide correct image. Just add a class name logotest in image, you can make it show/hide when click button with class buttontest.

Here's my example: http://jsfiddle.net/7xhxq/

share|improve this answer
    
what "it" are you mean? A image or a button? –  user1912285 Jun 6 '13 at 9:35
    
Image will show after click button. –  user2458768 Jun 6 '13 at 9:37
    
Just use the function toggle(). The function toggle("slow") will show image if it hidding, and hide image if it's shown. See my example again! –  user1912285 Jun 6 '13 at 9:42
    
Yes, but when site is loaded, we see button and below image, when i click on button image will hide, but i want to that when site is loaded, i will see only button, and image will show when i click on button, next click will hide image. –  user2458768 Jun 6 '13 at 9:50
    
Insert $('img.logotest').hide() blow the $(document).ready(function (){. See: jsfiddle.net/7xhxq/1 –  user1912285 Jun 6 '13 at 10:05

.toggle()

This method signature was deprecated in jQuery 1.8 and removed in jQuery 1.9. jQuery also provides an animation method named .toggle() that toggles the visibility of elements. Whether the animation or the event method is fired depends on the set of arguments passed.

share|improve this answer
$('#buttontest').on("click",function(e)
{  
 $('#LogoTest').toggle();
});

$('#buttontest1').on("click",function(e)
{  
 $('#LogoTest1').toggle();
});

See Demo

Hope It helps you

share|improve this answer

Use the following code:

$(document).ready(function () { 
    $('#buttontest').click(function() {
       $('#LogoTest').toggle('slow');
    }
 });
share|improve this answer

You can use the following code:

$(document).ready(function () { 
    $('#YourButtonID').click(function() {
       $('#YourImageID').toggle('slow');
    }
 });

Please Note, the above code works superb. But I don't recommend it since jQuery’s $(document).ready() slows down. Here is the document for your reference.

So, according to that you you should go with alternative for $(document).ready().

For your question, you can do the alternative code something like:

$('#YourButtonID').on("click",function(e)
{  
 $('#YourImageID').toggle('slow');
});

Happy Exploring :)

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