6

I'm trying to figure out how to insert a document into a collection iff the document is not already present in that collection. If the document is already present, the statement should be a no-op.

The approach I'm taking it to use an upsert with an empty update document:

db.collection.update({ ...query... }, { }, { upsert: true })

But Mongo tells me that "Update documents cannot be empty". How can I accomplish this without needlessly updating the existing document? Thanks.

Edit: My query document looks like this:

{
    "Chromosome" : "4",
    "Position" : 60000,
    "Identifier" : "rs1345",
    "ReferenceAllele" : "N"
}
  • I added a specific example. – brianberns Jun 10 '15 at 1:48
  • Thanks. Do you need all of those fields in your query to uniquely identity the doc? – JohnnyHK Jun 10 '15 at 1:54
  • Yes, it's a four-part key. I have a unique index on the collection, so the lookup is quick enough. – brianberns Jun 10 '15 at 1:57
5

You can do this by using $setOnInsert in your update object which will only apply in the case the upsert results in an insert:

var query = {
    "Chromosome" : "4",
    "Position" : 60000,
    "Identifier" : "rs1345",
    "ReferenceAllele" : "N"
};
db.collection.update(query, {$setOnInsert: query}, {upsert: true})
  • Thanks. I considered that, but doesn't it double the amount of time needed for the insert? – brianberns Jun 10 '15 at 2:04
  • 2
    It shouldn't as the way it works is that Mongo simply combines the query key parameter and the $setOnInsert value to create the document to insert. It's still just a single operation. – JohnnyHK Jun 10 '15 at 2:09
  • Ah, perfect. Will use this, then. Thanks. – brianberns Jun 10 '15 at 2:10
0

Create a unique index on the fields you use in the query, then use insert. If an identical document already exists, the insert will fail.

(You may want an index anyway to make this operation fast)

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