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I've been looking for a while now and can't seem to sort an inner array and keep that in the doc that I'm currently working with.

    {
    "service":
    {
        "apps":
        {
            "updates":
            [{
                "n" : 1
                "date": ISODate("2012-03-10T16:15:00Z")
              },
              {
                "n" : 2
                "date": ISODate("2012-01-10T16:15:00Z")
              },
              {
                "n" : 5
                "date": ISODate("2012-07-10T16:15:00Z")
              }]
        }
     }
     }

So I want to keep the item to be returned as the service, but have my updates array sorted. So far with the shell I have:

db.servers.aggregate( {$unwind:'$service'} ,{$project:{'service.apps':1}} ,{$unwind:'$service.apps'}, {$project: {'service.apps.updates':1}}, {$sort:{'service.apps.updates.date':1}} );

Anyone think they can help on this?

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1 Answer 1

up vote 6 down vote accepted

You can do this by $unwinding the updates array, sorting the resulting docs by date, and then $grouping them back together on _id using the sorted order.

db.servers.aggregate(
    {$unwind: '$service.apps.updates'}, 
    {$sort: {'service.apps.updates.date': 1}}, 
    {$group: {_id: '$_id', 'updates': {$push: '$service.apps.updates'}}}, 
    {$project: {'service.apps.updates': '$updates'}})
share|improve this answer
    
Awesome! I'm pretty new to aggregation and had a feeling it could do something like this. –  Ricky Hartmann Mar 13 '13 at 15:26
    
what about if apps had a field like "name" and I wanted to keep the name in the result set as well? –  Ricky Hartmann Mar 13 '13 at 15:57
    
@user1251624 You would include that field in the $group (in the _id or as a separate field) and $project. If you need more help on that it's probably best to ask that as a separate question as it can be non-trivial. –  JohnnyHK Mar 13 '13 at 16:06

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