this is my html

$(function(){
    $(".button1").on("click",function(){
        $(".img").css("display","block");
        $(".bord").append('<div class="test1">11111111</div>');
        $(".img").css("display","none");
    });
});
<script src="https://ajax.googleapis.com/ajax/libs/jquery/3.1.1/jquery.min.js"></script>
         
<div class="parent">
     <div class="button1">button1</div>
     <div class="button2">button2</div>
</div>
            
<div class="bord">
     <img src="http://www.mtlexs.com/images/reload.gif" class="img" style="display: none;">
 </div>
         
        
            

Here i write the code , when button1 click show image, then display text, then hide image . But here image is not showing

Then i change the code so show image and display text , and it is working

 $(function(){
       $(".button1").on("click",function(){
             $(".img").css("display","block");
             $(".bord").append('<div class="test1">11111111</div>');
       });   
 });
<script src="https://ajax.googleapis.com/ajax/libs/jquery/3.1.1/jquery.min.js"></script>
<div class="parent">
      <div class="button1">button1</div>
      <div class="button2">button2</div>
</div>
                
<div class="bord">
      <img src="http://www.mtlexs.com/images/reload.gif" class="img" style="display: none;">
</div>

So what is the problem in my first code ?

I need to show image->show text-->hide image

Please check .

  • You're hiding the image immediately after you show text. You'll have to add a timer if you want the image to be visible. – H77 Nov 8 '16 at 9:24
up vote 0 down vote accepted

You are updating the value of display to quicky. If you add a timeout you will see that the image is actually showing then hidding.

The change are not directly rendered (See @Maximus's answer)

Add a timeout and it will work as you want

$(function() {

  $(".button1").on("click", function() {

    $(".img").css("display", "block");
    $(".bord").append('<div class="test1">11111111</div>');
    setTimeout(
      function() {
            $(".img").css("display", "none");
      }, 2000);
  });

});
<script src="https://ajax.googleapis.com/ajax/libs/jquery/3.1.1/jquery.min.js"></script>

<div class="parent">
  <div class="button1">button1</div>
  <div class="button2">button2</div>
</div>

<div class="bord">
  <img src="http://www.mtlexs.com/images/reload.gif" class="img" style="display: none;">
</div>

In order to show the .img, a browser needs to go through reflow and repaint process and it's possible only when callstack is empty (your code is not running). This means that when you put the following:

$(".img").css("display","block");

The .img is not yet rendered on the screen, because the call stack is still busy and so a browser does nothing and waits for your code to finish executing. Then you put this code

$(".img").css("display","none");

And this returns to the previous state. When your code is finished executing, no reflow or repaint process happens at all. And you don't see your button on the screen.

Your Answer

 

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.