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I need to use the <!= ... !> tags in my code as part of a a jQuery plugin but Chrome is displaying it as <!--= ... !-->, presumably because it thinks it's a malformed comment.

Is there a way of forcing browsers to print the tags as is, allowing for the jQuery plugin to work properly?

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Looks like template tags, which plugin? –  Ford Mar 19 '14 at 13:28
    
Yes, they are template tags for the jQuery Feeds plugin: github.com/camagu/jquery-feeds –  user3423062 Mar 19 '14 at 13:29
    
Does this render for you? jsfiddle.net/zazvs/5 –  Ford Mar 19 '14 at 13:33
    
Yes! Though it loads some of my tags incorrectly: jsfiddle.net/zazvs/7 Link should be an image link and description doesn't load. The RSS is here: comfyshoulderrest.com/scrape.php?id=1 But this is very close to what I want to achieve! –  user3423062 Mar 19 '14 at 14:17

1 Answer 1

Yes, there is a way of doing this and it is by using the ANSI code for them. for example you can try this:

&lt;!--= ... !--&gt;

The above HTML will be rendered as:

<!--= ... !-->

Using this method, you can convert the part of the code to ANSI code, by which Browser won't confuse it with a comment and will display it.

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Thanks for your reply. I've tried using ASCII but that simply prints it out and still isn't picked up by the jQuery plugin because it renders as "<!= ... !>" rather than simply <!= ... !>. –  user3423062 Mar 19 '14 at 13:27
    
@user3423062 is it possible you are using .text() in your jQuery? If so use .html(). Might be barking up the wrong tree but it's what popped into my head when reading your comment. –  martincarlin87 Mar 19 '14 at 13:28
    
@martincarlin87 my function is $('div.feed').append($fragment); if that's useful, and I've looked in the plugin source code and it doesn't use .text() at any point. –  user3423062 Mar 19 '14 at 13:42
    
It doesn't matter, whether the plugin author have used the .text() method or not. Ever long there is a jQuery plugin, you can use the methods of the API. And the code you're having would append the value of $fragment in the div with class feed. Check for the value in that variable... –  Afzaal Ahmad Zeeshan Mar 19 '14 at 13:44
    
As in, window.console&&console.log($fragment);? –  user3423062 Mar 19 '14 at 13:53

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