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After doing an insert I want to pass the object to the client using json_encode(). The problem is, the _id value is not included.

$widget = array('text' => 'Some text');

$this->mongo->db->insert($widget);


If I echo $widget['_id'] the string value gets displays on the screen, but I want to do something like this:

$widget['widgetId'] = $widget['_id']->id;


So I can do json_encode() and include the widget id:

echo json_encode($widget);
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up vote 24 down vote accepted

Believe this is what you're after.

$widget['_id']->{'$id'};

Something like this.

$widget = array('text' => 'Some text');
$this->mongo->db->insert($widget);
$widget['widgetId'] = $widget['_id']->{'$id'};
echo json_encode($widget);
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1  
lol.. really? I love SO – abbood Sep 3 '14 at 13:46
    
Reference here: php.net/manual/en/class.mongoid.php. I'd prefer the (string) typecast below myself but at the time of the question I was using the method outlined in the docs. – John Pancoast Nov 18 '14 at 21:27
    
thanks a ton .... – stackMonk Jul 23 '15 at 16:04
    
Never ending war between PHP & Mongo for the custody of the lil $ – mixdev Nov 27 '15 at 9:30

You can also use:

(string)$widget['_id']
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1  
This is the better of the two answers, since it's easier to type and prettier to look at. – Max Felker Mar 7 '13 at 17:29

I used something similar:

(string)$widget->_id

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