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I am currently using Python to build many of my results instead of MongoDB itself. I am trying to get my head around Aggregation, but I'm struggling a bit. Here is an example of what I am doing currently which perhaps could be better handled by MongoDB.

I have a collection of programs and a collection of episodes. Each program has a list of episodes (DBRefs) associated with it. (The episodes are stored in their own collection because both programs and episodes are quite complex and deep, so embedding is impractical). Each episode has a duration (float). If I want to find a program's average episode duration, I do this:

episodes = list(db.Episodes.find({'Program':DBRef('Programs',ObjectId(...))}))
durations = set(e['Duration'] for e in episodes if e['Duration'] > 0)
avg_mins = int(sum(durations) / len(durations) / 60

This is pretty slow when a program has over 1000 episodes. Is there a way I can do it in MongoDB?

Here is some sample data in Mongo shell format. There are three episodes belonging to the same program. How can I calculate the average episode duration for the program?

> db.Episodes.find({
    '_Program':DBRef('Programs',ObjectId('4ec634fbf4c4005664000313'))},
   {'_Program':1,'Duration':1}).limit(3)

{
    "_id" : ObjectId("506c15cbf4c4005f9c40f830"),
    "Duration" : 1643.856,
    "_Program" : DBRef("Programs", ObjectId("4ec634fbf4c4005664000313"))
}
{
    "_id" : ObjectId("506c15d3f4c4005f9c40f8cf"),
    "Duration" : 1598.088,
    "_Program" : DBRef("Programs", ObjectId("4ec634fbf4c4005664000313"))
}
{
    "_id" : ObjectId("506c15caf4c4005f9c40f80e"),
    "_Program" : DBRef("Programs", ObjectId("4ec634fbf4c4005664000313")),
    "Duration" : 1667.04
}
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How have you tried to do it w/aggregation framework? Looks like you want to group episodes by programId and find average duration matching only durations > 0 first? –  Asya Kamsky Oct 29 '12 at 5:11
    
I think you're right, but I don't really understand the syntax. Care to spell it out for me? –  MFB Oct 29 '12 at 5:46
    
Can you show a sample of your DB in shell format and the desired output? Someone may be able to help you put together an AF query. –  cirrus Oct 29 '12 at 9:54
    
@cirrus Great suggestion. I've done it. –  MFB Oct 29 '12 at 23:16
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1 Answer 1

up vote 2 down vote accepted

I figured it out, and it is ridiculously fast compared to pulling it all into Python.

p = db.Programs.find_one({'Title':'...'})

pipe = [
        {'$match':{'_Program':DBRef('Programs',p['_id']),'Duration':{'$gt':0}}},
        {'$group':{'_id':'$_Program', 'AverageDuration':{'$avg':'$Duration'}}}
        ]

eps = db.Episodes.aggregate(pipeline=pipe)

print eps['result']
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