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I am using mapReduce in MongoDB to generate the trending songs for a user form his/her friends network. so I iterate over all users and check if the user_id exists in their friends array, if it exists I emit their songs and then merge the whole emitted songs to find the top songs for all his friends network.

The problem is that i need to iterate over all users to find the (network trending songs) for every user in the collection. How can I accomplish this, Is there way like nested mapReduce. or do I have to iterate from the application layer, like excuting mapReduce through a for loop!.

my current mapReduce that i am using is this one:

var map = function() {
users = [];
songs = [];
    if(this.value.friends !== undefined && this.value.friends.length !== 0 && this.value.songs !== undefined && this.value.songs.length !== 0){
        key = this._id.user_id;
        for(var x=0; x<this.value.songs.length; x++)
            emit({user_id:user_id,song_id:this.value.songs[x][0]},{played:this.value.songs[x][1], counter:1});
    }
};
var reduce = function(key, values) {
    var counter = 0;
    var played = 0;
    values.forEach(function(val){
        counter += val.counter;
        played += val.played;
    });
    return {played : played, counter : counter};
};
db.runCommand({"mapreduce":"trending_users", "map":map, "reduce":reduce, "scope":{user_id: "111222333444"} ,"query":{'value.friends':{$in : ['111222333444'] }},'out':{merge:'trending_user_network'}})    
db.trending_user_network.find({'_id.user_id':'111222333444'}).sort({'value.counter':-1, 'value.played':-1})
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1 Answer 1

up vote 0 down vote accepted

You could certainly use a for-loop in your application to cycle over the user IDs and run your map reduce for each one. However, for something like this, you might have better luck using the aggregation framework to create a pipeline of aggregate operations to do it all at once.

I don't know the precise details of your schema, but I think you could build an aggregation pipeline along the lines of this:

  • $unwind to get a flat list of users mapped to their friends' user IDs
  • $unwind again to map the friends' user IDs to their list of songs
  • $group to get the aggregates of each song in the resulting list
  • $sort to put the resulting stuff in order

In reality your pipeline might require a few more steps, but I think that if you look at this problem in terms of aggregation rather than map-reduce, it will be easier.

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I am expecting to run the database over a shard environment, in this case the mapReduce will be more efficient. at the same time, if I had like 100k users, then iterating over them and calling mapReduce each time will be really a resource consuming task, and its a blocking job too. this is what confuses me. Thank you. –  Alaa Qutaish Sep 28 '12 at 19:25
1  
I believe the 2.2 aggregation framework supports sharded collections and it's much quicker than MR for on-demand queries, but the main issue is that it has to do everything in RAM. So for really big collections that's still a problem. Aggregation still isn't quick, but 2.2 as heads and shoulders over the old JS engine. With MR, you're using the JS engine, and it can't really be used on-demand. It's much better suited to stuff that you can pre-calculate and cache when it's less important how long it takes to build. –  cirrus Sep 30 '12 at 9:53
    
If you post some sample DB schema data and show some desired output we can have a go at building the aggregation query for you. –  cirrus Sep 30 '12 at 9:56
    
Here is the sample data, please note that this collection "tending_users" is the result of an intermediate mapReduce so i avoid having very large and complicated mapReduce functions. paste2.org/p/2288624 the desired output is every user_id with the all songs from his/her friends network. Thanks! –  Alaa Qutaish Oct 1 '12 at 8:13

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