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I am a MongoDB novice. I am trying to group data from a document, which works. But I now want to add a column with static data in it.

For example, I could write something like this in SQL.

select e.dptId, count(e.empId), 'foo' as foo
from employee e
group by e.dptId, 'foo'

I have tried this,

db.employee.aggregate(
    { $group: {
        _id: { dptId: '$dptId', foo: 'foo' }, 
        empCount: { $sum: 1 }
    }}
);

which gives me "exception: field path references must be prefixed with a '$'. I cant prefix it with $, as that would be a field reference.

I have also tried this,

db.employee.aggregate(
    { $group: {
        _id: { dptId: '$dptId' }, 
        empCount: { $sum: 1 },
        foo: 'foo'
    }}
);

which gives me "exception: the group aggregate field 'temp' must be defined as an expression inside an object".

I have tried playing with braces, without braces (as shown) etc. Still no luck. Is it even possible in mongodb.

share|improve this question
up vote 0 down vote accepted

One trick would be to conditionally assign a value with the $ifNull operator:

db.employee.aggregate(
    { $group: {
        _id: { dptId: '$dptId', 
               foo: { $ifNull: ['$foo', 'foo'] }
             }, 
        empCount: { $sum: 1 }
    }}
);

Above, it just looks for a field called foo and if it's not present, sets the foo grouped field to the value of foo. You could change the field MongoDB checks for as well.

You may be able to use $concat as well to get your desired outcome:

db.employee.aggregate( 
{ $group : { 
    _id : { dptId: '$dptId', 
            foo: { $concat : [ "foo" ] }
          },
    empCount: { $sum: 1 }
}}); 
share|improve this answer
    
Thanks for your response. The first one, where we try to make it part of _id, fails with 'Unexpected token }' even though I have copied and re-verified the script over and over. All the { and } are matching up. If I remove the foo part, it works properly. As for concat, I cant use it, as its not part of group operator. – etrast81 Sep 30 '13 at 16:45
    
$concat definitely can work with $group. I expanded the code. – WiredPrairie Sep 30 '13 at 17:28
    
Also -- I'd accidentally left out the [ and ] array markers for the $isNull when I typed in the code. – WiredPrairie Sep 30 '13 at 17:30
    
Thank you very much. They both worked!!! The square brackets helped. As for the concat, I was trying to do that outside of the _id field. Coming from sql background, I should've known it should be within the id field. Duh! – etrast81 Oct 1 '13 at 0:31

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