10

I want to do something like:

db.ratings.find().forEach(function(doc){

  var item = db.items.find({_id: doc.item_id})
  var ry = item.detail.ry
  db.ratings.update(doc,{$set: {itd: ry}})

})

The problem is that db.items.find({_id: doc.item_id}) is returning something to which I cannot call document properties directly. Which would it be the correct way of doing this? Thanks!

db.items:

{
    "_id" : ObjectId("5461c8f0426f727f16000000"),
    "n" : "The Shawshank Redemption",
    "detail" : {
      "ry": 1992
    }
}
1
  • 1
    use db.items.findOne({_id: doc.item_id});
    – Disposer
    Dec 2, 2014 at 19:40

1 Answer 1

20

The find() function returns a cursor, you need to iterate it:

When the find() method “returns documents,” the method is actually returning a cursor to the documents

Your code, updated:

db.ratings.find().forEach(function(doc){

  db.items.find({_id: doc.item_id}).forEach(function(item){
   var ry = item.detail.ry;
   db.ratings.update(doc,{$set: {itd: ry}});
   })
})

or you may use findOne() which returns one of the matching documents.

db.ratings.find().forEach(function(doc){

  var item = db.items.findOne({_id: doc.item_id})
  var ry = item.detail.ry
  db.ratings.update(doc,{$set: {itd: ry}})

})
2
  • @BatScream How to handle Duplicate Error?
    – 6339
    Jul 12, 2017 at 12:05
  • I tried for MongoDb: schema.find().forEach() and got not a function... Is this still relevant?
    – Izzi
    Sep 18, 2021 at 9:22

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

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