264
FBFriendModel.find({
    id: 333
}, function (err, docs) {
    docs.remove(); //Remove all the documents that match!
});

The above doesn't seem to work. The records are still there.

Can someone fix?

20 Answers 20

462

If you don't feel like iterating, try FBFriendModel.find({ id:333 }).remove( callback ); or FBFriendModel.find({ id:333 }).remove().exec();

mongoose.model.find returns a Query, which has a remove function.

  • 3
    Does this run pre/post-remove middleware? (some model methods bypass document middleware and I'm not sure if this is one of them, the docs are unclear) – hunterloftis Aug 5 '13 at 2:25
  • 11
    I suppose @hunterloftis has figured this out already, but for anyone else reading the answer is no, this will not run pre/post middleware on individual docs. – numbers1311407 Nov 4 '13 at 22:26
  • This seems many of the other answers mention .exec() however this doesn't at all. Is .exec() needed, are there side effects to using it or not? – DanH Feb 2 '14 at 13:52
  • The docs are clear (maybe they've been updated) that this bypasses middleware - see the bottom of mongoosejs.com/docs/middleware.html - so be careful, using this method can cause serious, hard to track down issues. – Jed Watson May 13 '14 at 7:25
  • 1
    great answer! what are the arguments of the callback? – ZzKr Jan 17 '15 at 19:47
279

UPDATE: Mongoose version (5.5.3)

remove() is deprecated and you can use deleteOne(), deleteMany(), or bulkWrite() instead.

As of "mongoose": ">=2.7.1" you can remove the document directly with the .remove() method rather than finding the document and then removing it which seems to me more efficient and easy to maintain.

See example:

Model.remove({ _id: req.body.id }, function(err) {
    if (!err) {
            message.type = 'notification!';
    }
    else {
            message.type = 'error';
    }
});

UPDATE:

As of mongoose 3.8.1, there are several methods that lets you remove directly a document, say:

  • remove
  • findByIdAndRemove
  • findOneAndRemove

Refer to mongoose API docs for further information.

  • 13
    As noted in other comments to other answers, this bypasses middleware that is defined on the schema, and can be really dangerous. So only use it if you understand the impact that will have. For more info, see mongoosejs.com/docs/middleware.html – Jed Watson May 13 '14 at 7:28
  • Sure, the clarification is valid, thanks. – diosney May 14 '14 at 11:43
  • 2
    Just for the record, until now I always have used them without any side effects, sure, I hadn't to use any middleware in my projects :) – diosney May 14 '14 at 11:56
  • 8
    remove(query) could potentially empty your entire collection if you accidentally pass query = {}. For that reason I prefer findOneAndRemove(query) if I am only removing one document. – joeytwiddle Sep 14 '16 at 4:14
  • 1
    Also note that this is not returning a query, so neither a promise. You can't do Model.remove({ _id: 'whatever' }).exec().then(...) – David Sep 20 '16 at 15:01
46

docs is an array of documents. so it doesn't have a mongooseModel.remove() method.

You can iterate and remove each document in the array separately.

Or - since it looks like you are finding the documents by a (probably) unique id - use findOne instead of find.

  • 5
    Seeing as this answer assumes a rather old version of mongoose, I really wouldn't object to someone changing the accepted answer. – mtkopone May 12 '14 at 12:01
  • This is actually one of the best ways to do it because it correctly invokes middleware defined on the schema - see mongoosejs.com/docs/middleware.html. You should only use the other methods if you're NOT using middleware in your application, and then with caution. – Jed Watson May 13 '14 at 7:26
38

This for me is the best as of version 3.8.1:

MyModel.findOneAndRemove({field: 'newValue'}, function(err){...});

And it requires only one DB call. Use this given that you don't perform any remove actions pior to the search and removal.

  • 1
    As long as you don't need to perform pre 'remove' actions it works fine. – Daniel Kmak Dec 14 '14 at 12:36
  • True, I'll update my answer. – José Pinto Dec 16 '14 at 0:35
32

Simply do

FBFriendModel.remove().exec();
  • 1
    Simple and effective. – Rich Apodaca Jun 7 '13 at 20:41
  • 1
    Does this return a Promise? If so, what object is defined when the Promise is resolved? – Kenny Worden Feb 10 '16 at 15:45
  • @KennyWorden an effective approach to find the answer -> mongoosejs.com/docs/api.html then search for what you want but prepend '#' to the in-page search with your browser such as search on '#save' and you'll see it returns a promise. – Jason Sebring Jun 6 '16 at 0:02
  • 3
    This is kind of a dangerous answer without putting the condition the op specified in the remove... – blak3r Aug 8 '16 at 1:48
28

mongoose.model.find() returns a Query Object which also has a remove() function.

You can use mongoose.model.findOne() as well, if you want to remove only one unique document.

Else you can follow traditional approach as well where you first retrieving the document and then remove.

yourModelObj.findById(id, function (err, doc) {
    if (err) {
        // handle error
    }

    doc.remove(callback); //Removes the document
})

Following are the ways on model object you can do any of the following to remove document(s):

yourModelObj.findOneAndRemove(conditions, options, callback)

yourModelObj.findByIdAndRemove(id, options, callback)

yourModelObj.remove(conditions, callback);

var query = Comment.remove({ _id: id });
query.exec();
18

To generalize you can use:

SomeModel.find( $where, function(err,docs){
  if (err) return console.log(err);
  if (!docs || !Array.isArray(docs) || docs.length === 0) 
    return console.log('no docs found');
  docs.forEach( function (doc) {
    doc.remove();
  });
});

Another way to achieve this is:

SomeModel.collection.remove( function (err) {
  if (err) throw err;
  // collection is now empty but not deleted
});
18

Be careful with findOne and remove!

  User.findOne({name: 'Alice'}).remove().exec();

The code above removes ALL users named 'Alice' instead of the first one only.

By the way, I prefer to remove documents like this:

  User.remove({...}).exec();

Or provide a callback and omit the exec()

  User.remove({...}, callback);
15

remove() has been deprecated. Use deleteOne(), deleteMany() or bulkWrite().

The code I use

TeleBot.deleteMany({chatID: chatID}, function (err, _) {
                if (err) {
                    return console.log(err);
                }
            });
  • 1
    This answer honestly needs more upvotes. It's unfairly placed at the bottom of the barrel (because it hasn't been getting a half-decade of antiquated votes), but is the only answer that solves the issue of: (node:9132) DeprecationWarning: collection.remove is deprecated. Use deleteOne, deleteMany, or bulkWrite instead. – Steven Ventimiglia Feb 28 at 7:47
14
model.remove({title:'danish'}, function(err){
    if(err) throw err;
});

Ref: http://mongoosejs.com/docs/api.html#model_Model.remove

11

If you are looking for only one object to be removed, you can use

Person.findOne({_id: req.params.id}, function (error, person){
        console.log("This object will get deleted " + person);
        person.remove();

    });

In this example, Mongoose will delete based on matching req.params.id.

  • Welcome to Stackoverflow. Your answer is a duplicate of multiple answers in this thread. Also, you should always check for error in your callbacks. – VtoCorleone Apr 2 '16 at 18:36
9

.remove() works like .find():

MyModel.remove({search: criteria}, function() {
    // removed.
});
7

I prefer the promise notation, where you need e.g.

Model.findOneAndRemove({_id:id})
    .then( doc => .... )
7

For removing document, I prefer using Model.remove(conditions, [callback])

Please refer API documentation for remove :-

http://mongoosejs.com/docs/api.html#model_Model.remove

For this case, code will be:-

FBFriendModel.remove({ id : 333 }, function(err, callback){
console.log(‘Do Stuff’);
})

If you want to remove documents without waiting for a response from MongoDB, do not pass a callback, then you need to call exec on the returned Query

var removeQuery = FBFriendModel.remove({id : 333 });
removeQuery.exec();
6

You can just use the query directly within the remove function, so:

FBFriendModel.remove({ id: 333}, function(err){});
5

You can always use Mongoose built-in function:

var id = req.params.friendId; //here you pass the id
    FBFriendModel
   .findByIdAndRemove(id)
   .exec()
   .then(function(doc) {
       return doc;
    }).catch(function(error) {
       throw error;
    });
4

Update: .remove() is depreciated but this still works for older versions

YourSchema.remove({
    foo: req.params.foo
}, function(err, _) {
    if (err) return res.send(err)
    res.json({
        message: `deleted ${ req.params.foo }`
    })
});
  • Model.remove is deprecated – Maxwell s.c Mar 29 at 12:24
2

using remove() method you can able to remove.

getLogout(data){
        return this.sessionModel
        .remove({session_id: data.sid})
        .exec()
        .then(data =>{
            return "signup successfully"
        })
    }
  • Model.remove is deprecated – Maxwell s.c Mar 29 at 12:24
  • 1
    Maxwell s.c, make an edit request then, and correct. I know you're new to SO, but it's way more helpful to fix it than to comment that it's depreciated. Maybe you could suggest an edit next time, or make an edit yourself, and take a little ownership of the situation... – Joshua Michael Calafell Mar 29 at 16:10
1

This worked for me, just try this:

const id = req.params.id;
      YourSchema
      .remove({_id: id})
      .exec()
      .then(result => {
        res.status(200).json({
          message: 'deleted',
          request: {
            type: 'POST',
            url: 'http://localhost:3000/yourroutes/'
          }
        })
      })
      .catch(err => {
        res.status(500).json({
          error: err
        })
      });
  • Model.remove is deprecated – Maxwell s.c Mar 29 at 12:24
0
db.collection.remove(<query>,
 {
  justOne: <boolean>,
  writeConcern: <document>
})

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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