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I am a Javascript noob and I need help adding a codeblock after a div.

i want to add code after the following class

<div class='post-body entry-content'> 

So mu JQuery code must be

$('post-body entry-content').add('<img border="0" src="http://4.bp.blogspot.com/-C4vvMEB9MyI/TfW0lduV2NI/AAAAAAAAAZc/N7HL1pUusGw/s1600/some image.png" />');

Right ??

If I am wrong please correct me !

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4 Answers 4

up vote 1 down vote accepted

No, that is incorrect.

  • Use the . to select by class and join them together if you want to match elements which include all classes.
  • To make the image come after, use after().
  • Also make sure this code is executed after the element exists. Best way to do that is wrap it with the DOM ready event.
$(function() {

    $('.post-body.entry-content')
       .after('<img border="0" src="http://4.bp.blogspot.com/-C4vvMEB9MyI/TfW0lduV2NI/AAAAAAAAAZc/N7HL1pUusGw/s1600/some image.png" />');

});
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thanks ! I will check and see –  HackToHell Jun 13 '11 at 8:14
    
can I use this within a function? –  HackToHell Jun 13 '11 at 8:15
1  
@Hack You can use it wherever you like, including a function. –  alex Jun 13 '11 at 8:16
    
@alex I am getting this error Uncaught TypeError: Property '$' of object [object DOMWindow] is not a function –  HackToHell Jun 13 '11 at 8:24
1  
@Hack Wrap the code in $(function() { ... }). See update. –  alex Jun 13 '11 at 8:26

Use .after() to insert something after a certain element.

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Depending on what you want:

// inside, before all existing content
$(".post-body.entry-content").prepend('<img src="some image.png" />');

// inside, after all existing content
$(".post-body.entry-content").append('<img src="some image.png" />');

// outside, after
$(".post-body.entry-content").after('<img src="some image.png" />');

Demo here.

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it works there but not on my blog :( –  HackToHell Jun 13 '11 at 8:54
    
here is my code <script type="text/javascript"> function _enabled() { $(function(){ $('.debug').after('<img border="0" src="http://4.bp.blogspot.com/-C4vvMEB9MyI/TfW0lduV2NI/AAAAAAZc/N7HL1pUusGw/s160‌​0/alock+plus+witelist.png" />'); }); var _abdDetectedFnc = '_enabled'; var _abdNotDetectedFnc = '_disabled'; } </script> –  HackToHell Jun 13 '11 at 8:54
    
Not sure you you plan to call/use _enabled(). can you edit the question and post further details. In the mean time remove the $(function () { wrapper and the corresponding });. I believe _enabled function is called sometime after dom is ready so no need to use $(function) wrapper. –  Salman A Jun 13 '11 at 9:18

You can insert the code block inside the document ready event.

$(function(){
    $('div.post-body.entry-content').after('<img border="0" src="http://4.bp.blogspot.com/-C4vvMEB9MyI/TfW0lduV2NI/AAAAAAAAAZc/N7HL1pUusGw/s1600/some image.png" />');
});
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.add() does not add an element to the DOM. –  Salman A Jun 13 '11 at 8:41
    
Fixed the typo. Copy pasted the code from the post and forgot to change the method name. –  rahul Jun 13 '11 at 9:35

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