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I have a collection: "foo"

foo: {name: 'steve'}

So to make the name a unique index you would run:

db.foo.ensureIndex( {{name: 1}}, { unique: true } )

However what I want to do is make sure that only ONE name with a value of 'steve' is allowed. Is there a way to make a field a unique index but specify that it should only enforce if the value of that property is of a certain value?

Pseudo query..... db.foo.ensureIndex( {{name: 'steve'}}, { unique: true } )

Good

foo: {name: 'steve');
foo: {name: 'chris'};
foo: {name: 'chris'};
foo: {name: 'mike'};
foo: {name: 'mike'};

Bad

foo: {name: 'steve');
foo: {name: 'steve'};
foo: {name: 'chris'};
foo: {name: 'chris'};
foo: {name: 'mike'};
foo: {name: 'mike'};
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1  
I'm not sure of any way to do this through indexing, but will be watching this question with curiosity. Might just have to handle this through the code. –  Tom Swifty Oct 17 '13 at 18:27

1 Answer 1

If you're really, really desperate, make your value a key:

db.uniq.insert( { "name" : {"steve" : null } }); 
db.uniq.insert( { "name" : {"john" : null } });

db.uniq.ensureIndex( {"name.steve" : 1}, {unique : true, sparse: true} );

Instead of null, you could use 1 or "bogus" or whatever. Just make sure it's always the same, and preferably small.

Note that the key must be unique and sparse, otherwise the missing steve field will be intepreted like "steve" : null. Because the sparse key is really only on a single document, this solution isn't even particularly expensive I guess.

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Thanks for the reply unfortunately I can't really change the code/values or I'll need to go through a bunch of red tape. Was hoping there was some usage of ensureIndex I wasn't aware of as a simple fix. –  nwkeeley Oct 18 '13 at 20:59

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