I would like to get a sorted form of names from mongodb.I had done this through the following

query.sort().on("name", Order.ASCENDING)

with this query execution I was able to found the sorted results with case sensitive. But i Just want to obtain the results in case ignored form. How to do it? Please guide me through this.

I'm working on java code. So please suggest me with appropriate methods.

  • Please, elaborate a little more your question – rpax Apr 8 '14 at 8:29
up vote 33 down vote accepted

Update: This answer is out of date, 3.4 will have case insensitive indexes. Look to the JIRA for more information https://jira.mongodb.org/browse/SERVER-90


Unfortunately MongoDB does not yet have case insensitive indexes: https://jira.mongodb.org/browse/SERVER-90 and the task has been pushed back.

This means the only way to sort case insensitive currently is to actually create a specific "lower cased" field, copying the value (lower cased of course) of the sort field in question and sorting on that instead.

  • So there is no option for sorting the results with insensitive unless creating a new field with lower or upper cased values only. ryt?? – Varun Kumar Apr 8 '14 at 11:07
  • 1
    @VarunKumar yep it is one of the bad points of MongoDB, I personally wouldn't use the below answer, MongoDB will be limited to 32meg of sort without the index resulting in very small result sets being allowed. – Sammaye Apr 8 '14 at 11:16
  • 1
    @VarunKumar to be more precise you will be limited to between sorting 2 to 32,000 records depending on the size of the documents, not only that but the sort will be completely in memory, which will be a killer – Sammaye Apr 8 '14 at 11:17
  • That issue has been resolved.. – SSH This Sep 16 '16 at 16:33
  • Holy *** it finally has! – Sammaye Sep 16 '16 at 18:16

Sorting does work like that in MongoDB but you can do this on the fly with aggregate:

Take the following data:

{ "field" : "BBB" }
{ "field" : "aaa" }
{ "field" : "AAA" }

So with the following statement:

db.collection.aggregate([
    { "$project": {
       "field": 1,
       "insensitive": { "$toLower": "$field" }
    }},
    { "$sort": { "insensitive": 1 } }
])

Would produce results like:

{
    "field" : "aaa",
    "insensitive" : "aaa"
},
{
    "field" : "AAA",
    "insensitive" : "aaa"
},
{
    "field" : "BBB",
    "insensitive" : "bbb"
}

The actual order of insertion would be maintained for any values resulting in the same key when converted.

  • Yup.. this looks gud.. but I want to implement the same from a java code.. So it'll more helpful if you share me that how this can be achieved from Java class with handling mongodb and query object. – Varun Kumar Apr 8 '14 at 11:10
  • @VarunKumar You basically need to construct DBObject entries that you pass to the aggregate method. There is this example in the documentation resources. So it should not be hard to translate. And considering that it is an actual answer to show how it can be done that should not be too hard. – Neil Lunn Apr 8 '14 at 11:30
  • Would this be slow (i.e. does the aggregate get evaluated every time?) – Archimedes Trajano Mar 19 '16 at 0:13
  • Did anyone solve the issue using spring-data-mongo or Java? – freak007 Jan 2 at 19:07

This has been an issue for quite a long time on MongoDB JIRA, but it is solved now. Take a look at this release notes for detailed documentation. You should use collation.

User.find()
    .collation({locale: "en" }) //or whatever collation you want
    .sort({name:'asc'})
    .exec(function(err, users) {
        // use your case insensitive sorted results
    });
  • This didn't work for me – CodeHacker Nov 17 '17 at 10:37

Here it is in Java. I mixed no-args and first key-val variants of BasicDBObject just for variety

        DBCollection coll = db.getCollection("foo");

        List<DBObject> pipe = new ArrayList<DBObject>();

        DBObject prjflds = new BasicDBObject();
        prjflds.put("field", 1);
        prjflds.put("insensitive", new BasicDBObject("$toLower", "$field"));

        DBObject project = new BasicDBObject();
        project.put("$project", prjflds);
        pipe.add(project);

        DBObject sort = new BasicDBObject();
        sort.put("$sort", new BasicDBObject("insensitive", 1));
        pipe.add(sort);

        AggregationOutput agg = coll.aggregate(pipe);

        for (DBObject result : agg.results()) {
            System.out.println(result);
        }

We solve this problem with the help of .sort function in JavaScript array

Here is the code


    function foo() {
      let results = collections.find({
        _id: _id
      }, {
        fields: {
          'username': 1,
        }
      }).fetch();

      results.sort((a, b)=>{
        var nameA = a.username.toUpperCase();
        var nameB = b.username.toUpperCase();

        if (nameA  nameB) {
          return 1;
        }
        return 0;
      });

      return results;
    }

  • 2
    this will kill app in case of huge data... – Stepan Yakovenko Apr 19 at 15:27
  • Sorting in your app is a bad idea – arg20 Sep 27 at 1:59

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