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I have Google Analytics code that I added to my site (in PHP pages), and I also added code to track outbound links/events. The code was modified slightly, since I don't need it to wait a second before opening the links, since they're all being opened in a new window anyway.

The outgoing link are all working correctly.

For some reason though, the events aren't being tracked at all.

Here's the Analytics code in the header:

<script type="text/javascript">

  var _gaq = _gaq || [];
  _gaq.push(['_setAccount', 'UA-XXXXXXX-X']);
  _gaq.push(['_trackPageview']);

  (function() {
    var ga = document.createElement('script'); ga.type = 'text/javascript'; ga.async = true;
    ga.src = ('https:' == document.location.protocol ? 'https://ssl' : 'http://www') + '.google-analytics.com/ga.js';
    var s = document.getElementsByTagName('script')[0]; s.parentNode.insertBefore(ga, s);
  })();

</script>

<script type="text/javascript">
function recordOutboundLink(link, category, action) {
  try {
    var myTracker=_gat._getTrackerByName();
    _gaq.push(['myTracker._trackEvent', category, action]);
  }catch(err){}
}
</script>

And here is the code I have on each link:

<a href="http://sitelink.tld" target="_blank" onClick="recordOutboundLink(this, 'Outbound Links', 'http://sitelink.tld');">

Can someone help me figure out why the events wouldn't be showing up on the Analytics Events page?

Thanks a lot!

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closed as too localized by casperOne Feb 29 '12 at 18:51

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1  
Can you check your javascript debug output. It might contain some helpful warnings or errors. –  CodesInChaos Feb 28 '12 at 9:30
    
Good idea, didn't think of that - I'll figure out how to do that, and check soon... –  IsaacL Feb 28 '12 at 14:13
    
Just did, and it seemed to work right with the new code, but I couldn't really see anything with the old code... –  IsaacL Feb 28 '12 at 16:13
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4 Answers

up vote 1 down vote accepted

You're mixing up the old sync syntax and the new async synteax. You're function should look like this:

function recordOutboundLink(link, category, action) {
    _gaq.push(['_trackEvent', category, action]);
}
share|improve this answer
    
Would I still need the catcherr code then? I'll try that soon - thanks! –  IsaacL Feb 28 '12 at 7:52
    
I don't use it. I never see errors popping out on these places. But feel free to add it if you want. –  Eduardo Feb 28 '12 at 8:20
    
Seems to work - thanks a lot! –  IsaacL Feb 28 '12 at 16:12
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Is it a typo in your code? var myTracker=_gat._getTrackerByName();

Shouldn't _gat be _gaq

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No, I believe that's correct, and a quick search online seems to verify that... Thanks for trying though! –  IsaacL Feb 28 '12 at 7:40
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I use this code on links and form elements with the default tracking code I get events, categories actions etc. This one just has the first two fields set.

onclick="_gaq.push(['_trackEvent', 'Site wide', 'Search Input']);"

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Give the js time to run and send the event to GA by putting a setTimeout in the function. The page is being redirected to the outbound link before the _gaq.push can execute.

function recordOutboundLink(link, category, action) {
    _gaq.push(['_trackEvent', category, action]);
    setTimeout('document.location = "' + link.href + '"', 100);
}

Or, to open in a new window:

function recordOutboundLink(link, category, action) {
    _gaq.push(['_trackEvent', category, action]);
    setTimeout('window.open("' + link.href + '","newsite")', 100);
}

If you are sure the tracker is running and has time to run before the new window loads, then your original solution should work.

share|improve this answer
    
As mentioned above, the timeout isn't necessary, or wanted, because all links are being opened in new tabs/windows anyway, so there's plenty of time for the tracking code to run on the original page as the new page is opening, and the timeout would cause the "target" option not to have any effect. –  IsaacL Feb 28 '12 at 14:10
    
@IsaacL I added an example with a new window opening. But if the tracker has time to run, you should be seeing results or at least the tracker with event being sent in the console of Chrome with GA Debug installed. –  jk. Feb 28 '12 at 14:51
    
I ended up using the code change above, which didn't need the timeout, and it seems to be working correctly, but thanks for the help! –  IsaacL Feb 28 '12 at 16:12
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