98

I returned mongoose docs as json in this way:

UserModel.find({}, function (err, users) {
    return res.end(JSON.stringify(users));
}

However, user.__proto__ was also returned. How can I return without it? I tried this but not worked:

UserModel.find({}, function (err, users) {
    return res.end(users.toJSON());    // has no method 'toJSON'
}
0

10 Answers 10

173

You may also try mongoosejs's lean() :

UserModel.find().lean().exec(function (err, users) {
    return res.end(JSON.stringify(users));
});
4
  • 10
    Shouldn't it be: JSON.stringify(users); since the docs returned with lean() are plain JS objects?
    – enyo
    Commented Jan 9, 2013 at 14:30
  • Yeah, you are right, thanks. JSON.stringify(users) should be used. Commented Oct 20, 2013 at 11:13
  • If you still want to use the mongoose instance object in the callback function after querying the database, you shouldn't use lean function. See my answer for the solution. :)
    – eAbi
    Commented Aug 29, 2014 at 7:29
  • 3
    beware, lean() will strip out virtual properties
    – Emmanuel
    Commented Dec 25, 2019 at 3:48
61

Late answer but you can also try this when defining your schema.

/**
 * toJSON implementation
 */
schema.options.toJSON = {
    transform: function(doc, ret, options) {
        ret.id = ret._id;
        delete ret._id;
        delete ret.__v;
        return ret;
    }
};

Note that ret is the JSON'ed object, and it's not an instance of the mongoose model. You'll operate on it right on object hashes, without getters/setters.

And then:

Model
    .findById(modelId)
    .exec(function (dbErr, modelDoc){
         if(dbErr) return handleErr(dbErr);

         return res.send(modelDoc.toJSON(), 200);
     });

Edit: Feb 2015

Because I didn't provide a solution to the missing toJSON (or toObject) method(s) I will explain the difference between my usage example and OP's usage example.

OP:

UserModel
    .find({}) // will get all users
    .exec(function(err, users) {
        // supposing that we don't have an error
        // and we had users in our collection,
        // the users variable here is an array
        // of mongoose instances;

        // wrong usage (from OP's example)
        // return res.end(users.toJSON()); // has no method toJSON

        // correct usage
        // to apply the toJSON transformation on instances, you have to
        // iterate through the users array

        var transformedUsers = users.map(function(user) {
            return user.toJSON();
        });

        // finish the request
        res.end(transformedUsers);
    });

My Example:

UserModel
    .findById(someId) // will get a single user
    .exec(function(err, user) {
        // handle the error, if any
        if(err) return handleError(err);

        if(null !== user) {
            // user might be null if no user matched
            // the given id (someId)

            // the toJSON method is available here,
            // since the user variable here is a 
            // mongoose model instance
            return res.end(user.toJSON());
        }
    });
8
  • 3
    It's the best way to go.
    – Daniel
    Commented Dec 5, 2014 at 20:08
  • @eAbi both toJSON and toObject are not defined
    – OMGPOP
    Commented Feb 17, 2015 at 8:13
  • @OMGPOP both toJSON and toObject are methods defined on mongoose model instances. You can either provide your usage example or post another question on stackoverflow. Both toJSON and toObject methods were not deprecated/removed regardless of Mongoose version used, as far as I know.
    – eAbi
    Commented Feb 17, 2015 at 9:58
  • @eAbi it is not there. the asker also has the same problem. Are you sure you are calling toJSON instead of JSON.stringify()?
    – OMGPOP
    Commented Feb 18, 2015 at 2:25
  • 2
    @OMGPOP Yes I am sure that I am using toJSON method. The difference between OP's usage example and mine, is that in OP's question the returned users variable is an array of mongoose instances. You must iterate through the array and call the toJSON method on each instance. In my example I am using the findById method which directly passes the found mongoose instance to the callback function. Then you can directly call the toJSON (or toObject) method on this instance.
    – eAbi
    Commented Feb 18, 2015 at 10:38
29

First of all, try toObject() instead of toJSON() maybe?

Secondly, you'll need to call it on the actual documents and not the array, so maybe try something more annoying like this:

var flatUsers = users.map(function() {
  return user.toObject();
})
return res.end(JSON.stringify(flatUsers));

It's a guess, but I hope it helps

1
  • 1
    Having to map it is so annoying, isn't there something in the library to do that?
    – Anthony
    Commented Sep 14, 2017 at 3:49
17
model.find({Branch:branch},function (err, docs){
  if (err) res.send(err)

  res.send(JSON.parse(JSON.stringify(docs)))
});
2
  • This is the best answer for this question. The 'magic' that hides the technical fields of mongoose seems to be hidden somewhere behind JSON.stringify.
    – mischka
    Commented Mar 27, 2017 at 14:08
  • You know why exactly ? Commented Sep 20, 2021 at 22:19
8

I found out I made a mistake. There's no need to call toObject() or toJSON() at all. The __proto__ in the question came from jquery, not mongoose. Here's my test:

UserModel.find({}, function (err, users) {
    console.log(users.save);    // { [Function] numAsyncPres: 0 }
    var json = JSON.stringify(users);
    users = users.map(function (user) {
        return user.toObject();
    }
    console.log(user.save);    // undefined
    console.log(json == JSON.stringify(users));    // true
}

doc.toObject() removes doc.prototype from a doc. But it makes no difference in JSON.stringify(doc). And it's not needed in this case.

4

Maybe a bit astray to the answer, but if anyone who is looking to do the other way around, you can use Model.hydrate() (since mongoose v4) to convert a javascript object (JSON) to a mongoose document.

An useful case would be when you using Model.aggregate(...). Because it is actually returning plain JS object, so you may want to convert it into a mongoose document in order to get access to Model.method (e.g. your virtual property defined in the schema).

PS. I thought it should have a thread running like "Convert json to Mongoose docs", but actually not, and since I've found out the answer, so I think it is not good to do self-post-and-self-answer.

2

You can use res.json() to jsonify any object. lean() will remove all the empty fields in the mongoose query.

UserModel.find().lean().exec(function (err, users) { return res.json(users); }

2

It worked for me:

Products.find({}).then(a => console.log(a.map(p => p.toJSON())))


also if you want use getters, you should add its option also (on defining schema):

new mongoose.Schema({...}, {toJSON: {getters: true}})

2

Try this options:

  UserModel.find({}, function (err, users) {
    //i got into errors using so i changed to res.send()
    return res.send( JSON.parse(JSON.stringify(users)) );
    //Or
    //return JSON.parse(JSON.stringify(users));
  }
0

Was kinda laughing at how cumbersome this was for a second, given that this must be extremely common.

Did not bother digging in the docs and hacked this together instead.

        const data =   await this.model.logs.find({ "case_id": { $regex: /./, $options: 'i' }})              
        let res = data.map(e=>e._doc)
        res.forEach(element => {
            //del unwanted data
            delete element._id
            delete element.__v
        });
        return res
  1. First i get all docs which have any value at all for the case_id field(just get all docs in collection)
  2. Then get the actual data from the mongoose document via array.map
  3. Remove unwanted props on object by mutating i directly

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