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This is my jQuery

$(document).ready(function() {
  $('#name').load('file.php?query=<?php echo urlencode($query); ?>', function() {
    $('#loading').hide();
  });
});

after the initial html loads it then loads the content from file.php into the div with the id=name. this enalbes me to show a loading image while the slow moving content loads. its slow because it uses a few different json apis to get its content. now, file.php has a bunch of different links on it. will google follow those links to other pages. or will google only follow the links on the initial loading of the webpages html?

i ask this because the dynamically loaded content loaded with jquery doesn show up in the webpages source code when i look at it with my browser.

share|improve this question
    
Google Developers: Making AJAX Applications Crawlable developers.google.com/webmasters/ajax-crawling – Cymen Nov 29 '12 at 18:21
up vote 5 down vote accepted

No Google will not see that content. Google does not run any client side javascript, so the content above will never be loaded.

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I believe that if you add an empty anchor to your page, it will be found by Google, but of course, won't show up to your viewers.

In my case, I do a PHP scandir() to dynamically create a list of files:

echo "<li rel=$curr_name>".$curr_name."</li>\n";

The viewer sees the list and can click on each item. The jQuery click() function then gets added to each <li> and uses the rel's value to do its thing (replacing a div with the content of the page).

Now, if we add an empty anchor to the mix:

echo "<li rel=$curr_name>".$curr_name."<a href=\".$curr_path."\"></a></li>\n";

the user still sees the same list, and the jQuery will still do its thing. BUT, there will also be an anchor to each of the files that Google will find and follow.

I couldn't find anything that says a search engine would penalize you for this. And if you're worried, you could always wrap it around an image.

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@jhanifen is right

However, your jquery does not look right, it should not have php in it but instead should be javascript and the backend file will take care of the rest, maybe something like this...

$(document).ready(function() {
  query = 'SELECT * FROM `table`';
  $('#name').load('file.php?query=' + escape(query), function() {
    $('#loading').hide();
  });
});
share|improve this answer
    
The cost posted by the asker is perfectly valid - and while the method is dirty, for the sake of his demo it's actually very concise. Perhaps you could expand a little on "the backend will take care of the rest" by suggesting an alternative way for him to pass $query to his script? – Kelvin Nov 29 '12 at 23:12
    
Well what I meant was that the PHP and JQuery should not be mixed. I guess what I dont understand is this file.php?query=<?php echo urlencode($query); the query var has spaces so it wouldn't send properly.. I guess I would just have to see more to understand.. – MoMo Nov 30 '12 at 20:54
    
Got you - what's actually happening here is the PHP is executed server side, so by the time the javascript is seen by the browser it's become file.php?query=some_query, with urlencode taking care of escaping any special characters :) – Kelvin Dec 1 '12 at 0:27
    
Oh alright, makes sense, and that is a good way to "complie" Javascript.. I do the same thing, but wasn't sure @user1356835 was. – MoMo Dec 1 '12 at 22:05

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