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I can't remove the _id index, why?

When I try running the dropIndexes command, it removes all indexes but not the _id index.

Doing 'db.runCommand' doesn't work either:

> db.runCommand({dropIndexes:'fs_files',index:{_id:1}})
{ "nIndexesWas" : 2, "errmsg" : "may not delete _id index", "ok" : 0 }

not ok.

Can i use a field including _id in a composite index?

I couldn't find anything online, the ensureindex command can't do it.

db.fs_files.ensureIndex({'_id':1, 'created':1});

the above command just created a new composite index. i haven't found some similar 'create Index' command.

the default _id index is a unique index?

the getIndexes returns it's not a unique index.

     "v" : 1,
     "key" : {
             "_id" : 1
     "ns" : "gridfs.fs_files",
     "name" : "_id_"
     "v" : 1,
     "key" : {
             "created" : 1
     "unique" : true,
     "ns" : "gridfs.fs_files",
     "name" : "created_1"
share|improve this question
As Tyler said you can't drop an index _id. But you can create a compound index which includes _id. - And yes _id is the default unique index. – GianPaJ May 9 '13 at 18:05

2 Answers 2

up vote 3 down vote accepted

You cannot delete the index on "_id" in mongodb.

Please see the documentation here

share|improve this answer

There is a createIndex command in addition to ensureIndex also.


share|improve this answer
so,i cannot create the compound index for the _id index? – springchun Jan 5 '12 at 5:34
You can create compound indexes with _id. createIndex() is actually called inside ensureIndex() to add the index to the collection. The difference is that ensureIndex() calls getLastError to make sure there was no error during the index creation. So it's best to use ensureIndex() – GianPaJ May 9 '13 at 18:29

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