I have a collection in MongoDB where there are around (~3 million records). My sample record would look like,

 { "_id" = ObjectId("50731xxxxxxxxxxxxxxxxxxxx"),
   "source_references" : [
                           "_id" : ObjectId("5045xxxxxxxxxxxxxx"),
                           "name" : "xxx",
                           "key" : 123
                          ]
 }

I am having a lot of duplicate records in the collection having same source_references.key. (By Duplicate I mean, source_references.key not the _id).

I want to remove duplicate records based on source_references.key, I'm thinking of writing some PHP code to traverse each record and remove the record if exists.

Is there a way to remove the duplicates in Mongo Internal command line?

up vote 73 down vote accepted

If you are certain that the source_references.key identifies duplicate records, you can ensure a unique index with the dropDups:true index creation option in MongoDB 2.6 or older:

db.things.ensureIndex({'source_references.key' : 1}, {unique : true, dropDups : true})

This will keep the first unique document for each source_references.key value, and drop any subsequent documents that would otherwise cause a duplicate key violation.

Important Notes:

  • The dropDups option was removed in MongoDB 3.0, so a different approach will be required. For example, you could use aggregation as suggested on: MongoDB duplicate documents even after adding unique key.
  • Any documents missing the source_references.key field will be considered as having a null value, so subsequent documents missing the key field will be deleted. You can add the sparse:true index creation option so the index only applies to documents with a source_references.key field.

Obvious caution: Take a backup of your database, and try this in a staging environment first if you are concerned about unintended data loss.

  • 2
    Hands on explanations like this should be mandatory in all docs – Erik Nov 16 '12 at 19:46
  • Can we delete only the newest duplicates ? I prefeer to keep the old ones , How can I do this ? – Sekai Feb 19 '14 at 9:08
  • @Sekai: If you want to delete the newest duplicates (or have more control) you'll have to write a bit of custom script/code to find duplicates and work out which document(s) you want to delete. – Stennie Feb 19 '14 at 13:24
  • 1
    @NicCottrell: the dropDups option only applies when the unique index is created. Future inserts with duplicate keys will generate a duplicate key error. – Stennie Sep 4 '14 at 11:26
  • 1
    @wordsforthewise Obvious reasons to deprecate dropDups: it was not clear which duplicate would be removed and more importantly deleting documents is an unexpected side effect of creating an index. Worst case scenario: if you create a unique index with dropDups:true on a field that doesn't exist (eg. due to a typo) the indexed value will be null and you'll be left with exactly one document in the collection. – Stennie Oct 26 '16 at 6:20

This is the easiest query I used on my MongoDB 3.2

db.myCollection.find({}, {myCustomKey:1}).sort({_id:1}).forEach(function(doc){
    db.myCollection.remove({_id:{$gt:doc._id}, myCustomKey:doc.myCustomKey});
})

Index your customKey before running this to increase speed

  • If i have more duplicates means it will remove the all duplicates – sara Apr 6 '16 at 15:05
  • Yes @sara. It will delete all duplicates until you specify limit in remove query – Kanak Singhal Apr 20 '16 at 5:10
  • How would this work if I need to search on multiple keys instead of just one? – 3zzy May 7 '17 at 0:40
  • also works on mongo 2.6 – Jean-Philippe Caruana May 31 '17 at 15:08
  • FYI, if you want to leave the newest record change the $gt to $lt db.myCollection.find({}, {myCustomKey:1}).sort({_id:1}).forEach(function(doc){ db.myCollection.remove({_id:{$lt:doc._id}, myCustomKey:doc.myCustomKey}); }) – SteveO7 Jun 19 '17 at 20:44

Remove duplicates by aggregation framework.

a. If you want to delete in one go.

var duplicates = [];

db.collectionName.aggregate([
  // discard selection criteria, You can remove "$match" section if you want
  { $match: { 
    source_references.key: { "$ne": '' }  
  }},
  { $group: { 
    _id: { source_references.key: "$source_references.key"}, // can be grouped on multiple properties 
    dups: { "$addToSet": "$_id" }, 
    count: { "$sum": 1 } 
  }}, 
  { $match: { 
    count: { "$gt": 1 }    // Duplicates considered as count greater than one
  }}
])               // You can display result until this and check duplicates 
.forEach(function(doc) {
    doc.dups.shift();      // First element skipped for deleting
    doc.dups.forEach( function(dupId){ 
        duplicates.push(dupId);   // Getting all duplicate ids
        }
    )    
})

// If you want to Check all "_id" which you are deleting else print statement not needed
printjson(duplicates);     

// Remove all duplicates in one go    
db.collectionName.remove({_id:{$in:duplicates}})

b. You can delete documents one by one.

db.collectionName.aggregate([
  // discard selection criteria, You can remove "$match" section if you want
  { $match: { 
    source_references.key: { "$ne": '' }  
  }},
  { $group: { 
    _id: { source_references.key: "$source_references.key"}, // can be grouped on multiple properties 
    dups: { "$addToSet": "$_id" }, 
    count: { "$sum": 1 } 
  }}, 
  { $match: { 
    count: { "$gt": 1 }    // Duplicates considered as count greater than one
  }}
])               // You can display result until this and check duplicates 
.forEach(function(doc) {
    doc.dups.shift();      // First element skipped for deleting
    db.collectionName.remove({_id : {$in: doc.dups }});  // Delete remaining duplicates
})
  • can you explain this line // If your result getting response in "result" then use else don't use ".result" in query I am getting a syntax error SyntaxError: Unexpected token . – Vaulstein Sep 12 '16 at 6:20
  • 1
    In Mongodb old version or Robomongo, I was getting output in result object. I hope you are using new version and you won't need it. Updated answer. – Somnath Muluk Sep 12 '16 at 6:44
  • 1
    Yeah, that's a lot simpler than db.things.ensureIndex({'source_references.key' : 1}, {unique : true, dropDups : true}), I totally understand why they deprecated ensureIndex..................... (◟ ;益;◞) – wordsforthewise Oct 26 '16 at 6:14
  • NOTE: $addToSet does not guarantee a particular ordering of elements in the modified set as per docs.mongodb.com/manual/reference/operator/update/addToSet ...use $push if you'd like to preserve order ...ALSO NOTE: $addToSet will not add duplicates to the array whereas $push will – Benjamin Hoffman Mar 21 '17 at 18:26

While @Stennie's is a valid answer, it is not the only way. Infact the MongoDB manual asks you to be very cautious while doing that. There are two other options

  1. Let the MongoDB do that for you using Map Reduce
  2. You do programatically which is less efficient.

Here is a slightly more 'manual' way of doing it:

Essentially, first, get a list of all the unique keys you are interested.

Then perform a search using each of those keys and delete if that search returns bigger than one.

    db.collection.distinct("key").forEach((num)=>{
      var i = 0;
      db.collection.find({key: num}).forEach((doc)=>{
        if (i)   db.collection.remove({key: num}, { justOne: true })
        i++
      })
    });

pip install mongo_remove_duplicate_indexes

  1. create a script in any language
  2. iterate over your collection
  3. create new collection and create new index in this collection with unique set to true ,remember this index has to be same as index u wish to remove duplicates from in ur original collection with same name for ex-u have a collection gaming,and in this collection u have field genre which contains duplicates,which u wish to remove,so just create new collection db.createCollection("cname") create new index db.cname.createIndex({'genre':1},unique:1) now when u will insert document with similar genre only first will be accepted,other will be rejected with duplicae key error
  4. now just insert the json format values u received into new collection and handle exception using exception handling for ex pymongo.errors.DuplicateKeyError

check out the package source code for the mongo_remove_duplicate_indexes for better understanding

If you have enough memory, you can in scala do something like that:

cole.find().groupBy(_.customField).filter(_._2.size>1).map(_._2.tail).flatten.map(_.id)
.foreach(x=>cole.remove({id $eq x})

Your Answer

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

Not the answer you're looking for? Browse other questions tagged or ask your own question.