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We have the following use case: Due to protocolling reasons we do not remove deleted or updated records from the database. We $set their deleted field to the date/time when they were updated/deleted and create a new record( if updated). So all "current" records do not have the deleted field". All indexes on current records look like this:

{ 
    field_a: 1, 
    field_b: 1, 
    ..., 
    deleted: 1 
} 

A query concerning current records looks like this:

find( {
    field_a: "...", 
    field_b: "...", 
    deleted: { $exists: false}
} )

Because I am not sure if the {$exists: false} uses the index, I have added a field current set to true to all current fields (those without deleted) and I changed the indexes to:

{ 
    field_a: 1, 
    field_b: 1, 
    ..., 
    current: 1 
} 

and my query to:

find( {
    field_a: "...", 
    field_b: "...", 
    current: true
} )

Can anyone tell me if the latter case is really the better one? Or do they perform indetically and I can spare the additional current field?

Thanks for any hint.

share|improve this question
    
Did you use explain with one of your queries to check whether it uses the index? Is it a sparse index? –  WiredPrairie Mar 27 '13 at 10:40
    
No, I have not checked via explain yet. I thought there might be a general answer on this question. And no, it is no sparse index, because sparse:true does not work with compound indexes. –  heinob Mar 27 '13 at 11:47
1  
It's always best to check explain as I've seen a lot of developers surprised by MongoDB's index usage patterns. –  WiredPrairie Mar 27 '13 at 12:44
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