Before we get into this, I've found the exact issue i'm dealing with, however the solution does not fix my issue.
Access a PHP-object with dollar-sign as node name
Here is the relevant PHP code.
$user = 'officialtiesto';
$artist_json = file_get_contents('https://gdata.youtube.com/feeds/api/users/' . $user . '?alt=json');
$artist_object = json_decode($artist_json, FALSE);
var_dump($artist_object->'yt$googlePlusUser');
I have also tried this:
var_dump($artist_object->{'yt$googlePlusUser'})
Both present me with the following error:
Parse error: syntax error, unexpected ''yt$googlePlusUser'' (T_CONSTANT_ENCAPSED_STRING), expecting identifier (T_STRING) or variable (T_VARIABLE) or '{' or '$' in C:\Users\astark\Desktop\charts\youtube.php on line 22
I read somewhere that having an out of date version of PHP can cause issues similar to this so i've included a link to a JSBin (http://jsbin.com/yahevoyo) with the specs of the XAMPP setup i'm running. Pretty stumped here on this one and not sure if its just the late night getting to me, or a larger problem. Please advise.
First, there is no yt$googlePlusUser, it's yt$googlePlusUserId.
Then you've missed one level. Instead of
$artist_object->{'yt$googlePlusUserId'}
use
$artist_object->entry->{'yt$googlePlusUserId'}
And finally, as a bonus, to get the ID:
$artist_object->entry->{'yt$googlePlusUserId'}->{'$t'}
Alternatively as it's written in the answer to the question you referred to you could convert the JSON object to an array using $artist = json_decode($artist_json, true) and access the property as $artist['entry']['yt$googlePlusUserId']['$t].
Update:
Regarding PHP version, etc. you seem to have 5.4.19 installed, I've tested the above on 5.4.0 and it works.