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I'm performing an aggregation operation using the java mongodb driver, and I followed the example from the docs (pasted below). According to this, the _id field should be hidden. However, in my experience with my own code as well as the output of this example, the _id field doesn't hide even when setting the projection value to 0 (it works from the mongo shell). Does anyone know if this is a bug in the mongodb java driver? Or am I doing something incorrectly?

// create our pipeline operations, first with the $match
DBObject match = new BasicDBObject("$match", new BasicDBObject("type", "airfare") );

// build the $projection operation
DBObject fields = new BasicDBObject("department", 1);
fields.put("amount", 1);
fields.put("_id", 0);
DBObject project = new BasicDBObject("$project", fields );

// Now the $group operation
DBObject groupFields = new BasicDBObject( "_id", "$department");
groupFields.put("average", new BasicDBObject( "$avg", "$amount"));
DBObject group = new BasicDBObject("$group", groupFields);

// run aggregation
AggregationOutput output = collection.aggregate( match, project, group );
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1 Answer 1

up vote 2 down vote accepted

The _id field you are getting at the end is from the $group operator. If you want to rename it back to department, add another $project to the end of the pipeline and translate _id to department.

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I want to hide the _id field all together, which I thought putting _id as a 0 in projection should hide it –  Jeff Storey Jan 14 '13 at 3:37
    
Look at the $group step - it's not getting the _id passed to it, but you are telling it to use $department as the _id (or key) that it's going to group by. The original _id is not present in your result set. –  Asya Kamsky Jan 14 '13 at 3:38
    
Right, but I don't want to show _id at all in the resulting json. I want to group by department, but hide the _id field in the output. –  Jeff Storey Jan 14 '13 at 3:40
1  
What do you want the result to look like? A single field called "average"? I'm guessing you want two fields, one called department and one called average. So you need to $project _id to department –  Asya Kamsky Jan 14 '13 at 3:42
    
Right, I'd actually like it two fields department and average, but have it labeled as department, not _id in the json –  Jeff Storey Jan 14 '13 at 3:43
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