103

When I try to change any part of the data returned by a Mongoose Query it has no effect.

I was trying to figure this out for about 2 hours yesterday, with all kinds of _.clone()s, using temporary storage variables, etc. Finally, just when I though I was going crazy, I found a solution. So I figured somebody in the future (fyuuuture!) might have the save issue.

Survey.findById(req.params.id, function(err, data){
    var len = data.survey_questions.length;
    var counter = 0;

    _.each(data.survey_questions, function(sq){
        Question.findById(sq.question, function(err, q){
            sq.question = q; //has no effect

            if(++counter == len) {
                res.send(data);
            }
        });
    });
});
2

3 Answers 3

173

For cases like this where you want a plain JS object instead of a full model instance, you can call lean() on the query chain like so:

Survey.findById(req.params.id).lean().exec(function(err, data){
    var len = data.survey_questions.length;
    var counter = 0;

    _.each(data.survey_questions, function(sq){
        Question.findById(sq.question, function(err, q){
            sq.question = q;

            if(++counter == len) {
                res.send(data);
            }
        });
    });
});

This way data is already a plain JS object you can manipulate as you need to.

8
  • 9
    Btw @JohnnyHK just wanted to say thanks again. A year and a half later was helping a client debug something. He spent a weekend trying to figure something out, turns out it was because he was trying to modify the Mongoose Object ;P
    – Toli
    Jul 14, 2014 at 13:54
  • 1
    2 years later and still crushing it. Didn't even realize lean() was there.
    – Petrogad
    Dec 17, 2015 at 12:43
  • 1
    @Fizzix aggregate always provides its results as plain objects, so there's no need for lean().
    – JohnnyHK
    Jun 1, 2016 at 3:59
  • 1
    3 years later and spent and entire hour trying to figure it out. Saved my whole day! Thanks
    – Noy
    Oct 19, 2016 at 10:22
  • 2
    Thank you! This really helped, but why is it impossible to modify the object? What kind of special object is it? Apr 13, 2020 at 22:44
49

I think the Mongoose documentation doesn't make this clear enough, but the data returned in the query (although you can res.send() it) is actually a Mongoose Document object, and NOT a JSON object. But you can fix this with one line...

Survey.findById(req.params.id, function(err, data){
    var len = data.survey_questions.length;
    var counter = 0;

    var data = data.toJSON(); //turns it into JSON YAY!

    _.each(data.survey_questions, function(sq){
        Question.findById(sq.question, function(err, q){
            sq.question = q;

            if(++counter == len) {
                res.send(data);
            }
        });
    });
});
6
  • 13
    You can also use toObject(), which does the same thing as toJSON() but with a less confusing name.
    – JohnnyHK
    May 31, 2015 at 14:35
  • 2
    Will this also get rid of virtuals put on by the developer as well?
    – mjwrazor
    Sep 14, 2016 at 19:14
  • 5
    TypeError: data.toObject is not a function I got this, same with toJSON May 23, 2018 at 11:05
  • Instead of modifying the result, I was able to modify result._doc.
    – nth-chile
    Nov 22, 2018 at 1:18
  • 1
    @Luzan Baral Thats because you are using these function for Array object. Use JSON.parse(JSON.stringify(data)) instead for Arrays of object
    – mohit
    Apr 27, 2020 at 18:13
0

I was using mongoose and here are the workaround I did to resolve it:

1): Mongoose returns MongooseDocument objects and not plain JSON objects. So use the lean() method on object which will convert it into JSON, and from there you can change it

const leanDoc = await MyModel.findOne().lean();

---------------------------------OR---------------------------------

2): Create a deep copy of the result returned by find query as shown below

Books.find({}).then(books => { 
    books = JSON.parse(JSON.stringify(books));
    //now you can update the books object
}

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