40

I need to rename indentifier in this:

{ "general" : 
  { "files" : 
    { "file" : 
      [  
        {  "version" : 
          {  "software_program" : "MonkeyPlus",      
             "indentifier" : "6.0.0" 
          } 
        } 
      ] 
    } 
  } 
}

I've tried

db.nrel.component.update(
  {},
  { $rename: {
    "general.files.file.$.version.indentifier" : "general.files.file.$.version.identifier"
  } },
  false, true
)

but it returns: $rename source may not be dynamic array.

  • 1
    $rename does not expand arrays, doc – Alexander Azarov Feb 3 '12 at 4:30
  • @Alexander Azarov, any ideas on fixing this? i've heard of people copying to fields in which $rename can go... – Andrew Samuelsen Feb 3 '12 at 5:01
  • Personally I am writing scripts walking through the collection and doing migrations – Alexander Azarov Feb 3 '12 at 5:15
20

As mentioned in the documentation there is no way to directly rename fields within arrays with a single command. Your only option is to iterate over your collection documents, read them and update each with $unset old/$set new operations.

| improve this answer | |
  • 23
    Stuck with MongoDB... things like this make me sad :( – Shannon Jun 27 '13 at 15:56
  • I don't disagree. This is relatively low hanging fruit I'd imagine. – Remon van Vliet Jul 4 '13 at 9:21
48

For what it's worth, while it sounds awful to have to do, the solution is actually pretty easy. This of course depends on how many records you have. But here's my example:

db.Setting.find({ 'Value.Tiers.0.AssetsUnderManagement': { $exists: 1 } }).snapshot().forEach(function(item)
{    
    for(i = 0; i != item.Value.Tiers.length; ++i)
    {
        item.Value.Tiers[i].Aum = item.Value.Tiers[i].AssetsUnderManagement;
        delete item.Value.Tiers[i].AssetsUnderManagement;
    }

    db.Setting.update({_id: item._id}, item);
});

I iterate over my collection where the array is found and the "wrong" name is found. I then iterate over the sub collection, set the new value, delete the old, and update the whole document. It was relatively painless. Granted I only have a few tens of thousands of rows to search through, of which only a few dozen meet the criteria.

Still, I hope this answer helps someone!

Edit: Added snapshot() to the query. See why in the comments.

You must apply snapshot() to the cursor before retrieving any documents from the database. You can only use snapshot() with unsharded collections.

From MongoDB 3.4, snapshot() function was removed. So if using Mongo 3.4+ ,the example above should remove snapshot() function.

| improve this answer | |
  • 3
    Imho this should be the accepted answer. I performed this approach on several collections with up to twelve million documents each and it worked like a charm! – Xatoo Jul 27 '15 at 10:19
  • 2
    Absolutely. This works great. A pity MongoDB is not able yet to include this behaviour natively. – Faliorn Oct 3 '15 at 12:06
  • 2
    It's better to use snapshot(): db.Setting.find({ 'Value.Tiers.0.AssetsUnderManagement': { $exists: 1 } }).snapshot().forEach(...) Otherwise you can end up in an infinite loop. See also docs.mongodb.org/v3.0/reference/method/cursor.snapshot – Patrycja K Jan 19 '16 at 14:58
  • New one to me. Thanks for the details, @PatrycjaK! Updating my answer. – Eli Gassert Jan 19 '16 at 15:12
  • @Andrew Samuelsen I think this should be the selected answer - a script to work around the "by design" problem – NoamG Jul 18 '18 at 12:30
20

I had a similar problem. In my situation I found the following was much easier:

  1. I exported the collection to json:
mongoexport --db mydb --collection modules --out modules.json
  1. I did a find and replace on the json using my favoured text editing utility.

  2. I reimported the edited file, dropping the old collection along the way:

mongoimport --db mydb --collection modules --drop --file modules.json
| improve this answer | |
  • 3
    I'm kinda skeptical how well this approach works on a large dataset. Say my db is 5gb, this process sounds slow. Or perhaps I'm not using the right text editing tools =-} – Matthew Bonig Oct 13 '15 at 19:42
  • 3
    Also be cautious of live databases. If records get added/modified in the time it takes to do these steps, changes will be lost. – Eli Gassert Jan 18 '16 at 11:16
  • This is okay if you have something that only runs on your laptop but isn't a viable solution if you're working in a production environment. – Valerie R. Coffman Jul 12 '19 at 1:03
10

Starting Mongo 4.2, db.collection.update() can accept an aggregation pipeline, finally allowing the update of a field based on its own value:

// { general: { files: { file: [
//   { version: { software_program: "MonkeyPlus", indentifier: "6.0.0" } }
// ] } } }
db.collection.updateMany(
  {},
  [{ $set: { "general.files.file": {
       $map: {
         input: "$general.files.file",
         as: "file",
         in: {
           version: {
             software_program: "$$file.version.software_program",
             identifier: "$$file.version.indentifier" // fixing the typo here
           }
         }
       }
  }}}]
)
// { general: { files: { file: [
//   { version: { software_program: "MonkeyPlus", identifier: "6.0.0" } }
// ] } } }

Literally, this updates documents by (re)$setting the "general.files.file" array by $mapping its "file" elements in a "version" object containing the same "software_program" field and the renamed "identifier" field which contains what used to be the value of "indentifier".


A couple additional details:

  • The first part {} is the match query, filtering which documents to update (in this case all documents).

  • The second part [{ $set: { "general.files.file": { ... }}}] is the update aggregation pipeline (note the squared brackets signifying the use of an aggregation pipeline):

    • $set is a new aggregation operator which in this case replaces the value of the "general.files.file" array.
    • Using a $map operation, we replace all elements from the "general.files.file" array by basically the same elements, but with an "identifier" field rather than "indentifier":
    • input is the array to map.
    • as is the variable name given to looped elements
    • in is the actual transformation applied on elements. In this case, it replaces elements by a "version" object composed by a "software_program" and a "identifier" fields. These fields are populated by extracting their previous values using the $$file.xxxx notation (where file is the name given to elements from the as part).
| improve this answer | |
  • You were keep software_program manually. But what if version field has alot of children fields, and may be difference fields in each documents? – Haidang Nguyen Jun 18 at 7:45
5

I also would like rename a property in array: and I used thaht

db.getCollection('YourCollectionName').find({}).snapshot().forEach(function(a){
    a.Array1.forEach(function(b){
        b.Array2.forEach(function(c){
            c.NewPropertyName = c.OldPropertyName;
            delete c["OldPropertyName"];                   
        });
    });
    db.getCollection('YourCollectionName').save(a)  
});
| improve this answer | |
0

My proposal would be this one:

db.nrel.component.aggregate([
   { $unwind: "$general.files.file" },
   {
      $set: {
         "general.files.file.version.identifier": {
            $ifNull: ["$general.files.file.version.indentifier", "$general.files.file.version.identifier"]
         }
      }
   },
   { $unset: "general.files.file.version.indentifier" },
   { $set: { "general.files.file": ["$general.files.file"] } },
   { $out: "nrel.component" } // carefully - it replaces entire collection.
])

However, this works only when array general.files.file has a single document only. Most likely this will not always be the case, then you can use this one:

db.nrel.componen.aggregate([
   { $unwind: "$general.files.file" },
   {
      $set: {
         "general.files.file.version.identifier": {
            $ifNull: ["$general.files.file.version.indentifier", "$general.files.file.version.identifier"]
         }
      }
   },
   { $unset: "general.files.file.version.indentifier" },
   { $group: { _id: "$_id", general_new: { $addToSet: "$general.files.file" } } },
   { $set: { "general.files.file": "$general_new" } },
   { $unset: "general_new" },
   { $out: "nrel.component" } // carefully - it replaces entire collection.
])
| improve this answer | |

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