72
var thename = 'Andrew';
db.collection.find({'name':thename});

How do I query case insensitive? I want to find result even if "andrew";

11 Answers 11

103

Chris Fulstow's solution will work (+1), however, it may not be efficient, especially if your collection is very large. Non-rooted regular expressions (those not beginning with ^, which anchors the regular expression to the start of the string), and those using the i flag for case insensitivity will not use indexes, even if they exist.

An alternative option you might consider is to denormalize your data to store a lower-case version of the name field, for instance as name_lower. You can then query that efficiently (especially if it is indexed) for case-insensitive exact matches like:

db.collection.find({"name_lower": thename.toLowerCase()})

Or with a prefix match (a rooted regular expression) as:

db.collection.find( {"name_lower":
    { $regex: new RegExp("^" + thename.toLowerCase(), "i") } }
);

Both of these queries will use an index on name_lower.

  • Great answer, my regex approach really slows down once it has to scan a few million docs. – Chris Fulstow Aug 18 '11 at 3:25
  • 25
    This is actually not fully correct, because you might find "Andrew something" while looking for "Andrew". So adjust the regex to: new RegExp('^'+ username + '$', "i") to be an exact match. – Tarion Jan 21 '14 at 19:13
  • 8
    According to MongoDB website any case insensitive regex is not index efficient "$regex can only use an index efficiently when the regular expression has an anchor for the beginning (i.e. ^) of a string and is a case-sensitive match" – Ryan Schumacher Feb 4 '14 at 14:47
  • 2
    With Mongoose this worked for me : User.find({'username': {$regex: new RegExp('^' + username.toLowerCase(), 'i')}}, function(err, res){ if(err) throw err; next(null, res); }); – ChrisRich Oct 16 '14 at 4:53
  • 2
    Never forget to escape the name when working with regular expressions. We do not want injections to take over the beauty of mongodb. Just imagine you used this code for a login page and the username was ".*". – still_learning Oct 28 '14 at 9:53
65

You'd need to use a case-insensitive regular expression for this one, e.g.

db.collection.find( { "name" : { $regex : /Andrew/i } } );

To use the regex pattern from your thename variable, construct a new RegExp object:

var thename = "Andrew";
db.collection.find( { "name" : { $regex : new RegExp(thename, "i") } } );

Update: For exact match, you should use the regex "name": /^Andrew$/i. Thanks to Yannick L.

  • 5
    Do you know how to do this using Node.js mongoose ? – user847495 Aug 18 '11 at 3:43
  • 1
    I wonder how well this will work with large collections. You'd loose the benefit of a sort functinon – Wilfred Springer Feb 8 '13 at 9:16
  • 4
    This is wrong, it will match any document containing "andrew" for name, not just equaling. – Jonathan Cremin May 5 '14 at 12:14
  • 12
    @JonathanCremin to help people you should post the correct answer: { "name": /^Andrew$/i } – Yannick Loriot May 6 '14 at 19:07
  • @YannickL. 1+ for doing the common sense thing. I was just passing by not what i was looking for. – Lpc_dark Jul 14 '15 at 0:08
27

I have solved it like this.

 var thename = 'Andrew';
 db.collection.find({'name': {'$regex': thename,$options:'i'}});

If you want to query on 'case-insensitive exact matchcing' then you can go like this.

var thename =  '^Andrew$';
db.collection.find({'name': {'$regex': thename,$options:'i'}});
  • Thanks, this worked great! – jpincheira May 13 '18 at 13:21
6

MongoDB 3.4 now includes the ability to make a true case-insensitive index, which will dramtically increase the speed of case insensitive lookups on large datasets. It is made by specifying a collation with a strength of 2.

Probably the easiest way to do it is to set a collation on the database. Then all queries inherit that collation and will use it:

db.createCollection("cities", { collation: { locale: 'en_US', strength: 2 } } )
db.names.createIndex( { city: 1 } ) // inherits the default collation

You can also do it like this:

db.myCollection.createIndex({city: 1}, {collation: {locale: "en", strength: 2}});

And use it like this:

db.myCollection.find({city: "new york"}).collation({locale: "en", strength: 2});

This will return cities named "new york", "New York", "New york", etc.

For more info: https://jira.mongodb.org/browse/SERVER-90

5

I just solved this problem a few hours ago.

var thename = 'Andrew'
db.collection.find({ $text: { $search: thename } });
  • Case sensitivity and diacritic sensitivity are set to false by default when doing queries this way.

You can even expand upon this by selecting on the fields you need from Andrew's user object by doing it this way:

db.collection.find({ $text: { $search: thename } }).select('age height weight');

Reference: https://docs.mongodb.org/manual/reference/operator/query/text/#text

  • $text performs a text search on the content of the fields indexed with a text index. – SSH This Aug 2 '16 at 20:12
4
  1. With Mongoose (and Node), this worked:

    • User.find({ email: /^name@company.com$/i })

    • User.find({ email: new RegExp(`^${emailVariable}$`, 'i') })

  2. In MongoDB, this worked:

    • db.users.find({ email: { $regex: /^name@company.com$/i }})

Both lines are case-insensitive. The email in the DB could be NaMe@CompanY.Com and both lines will still find the object in the DB.

Likewise, we could use /^NaMe@CompanY.Com$/i and it would still find email: name@company.com in the DB.

2

To find case-insensitive literals string:

Using regex (recommended)

db.collection.find({
    name: {
        $regex: new RegExp('^' + name.replace(/[-\/\\^$*+?.()|[\]{}]/g, '\\$&') + '$', 'i')
    }
});

Using lower-case index (faster)

db.collection.find({
    name_lower: name.toLowerCase()
});

Regular expressions are slower than literal string matching. However, an additional lowercase field will increase your code complexity. When in doubt, use regular expressions. I would suggest to only use an explicitly lower-case field if it can replace your field, that is, you don't care about the case in the first place.

Note that you will need to escape the name prior to regex. If you want user-input wildcards, prefer appending .replace(/%/g, '.*') after escaping so that you can match "a%" to find all names starting with 'a'.

2

To find case Insensitive string use this,

var thename = "Andrew";
db.collection.find({"name":/^thename$/i})
1

The following query will find the documents with required string insensitively and with global occurrence also

db.collection.find({name:{
                             $regex: new RegExp(thename, "ig")
                         }
                    },function(err, doc) {
                                         //Your code here...
                  });
1

You can use Case Insensitive Indexes:

The following example creates a collection with no default collation, then adds an index on the name field with a case insensitive collation. International Components for Unicode

/*
* strength: CollationStrength.Secondary
* Secondary level of comparison. Collation performs comparisons up to secondary * differences, such as diacritics. That is, collation performs comparisons of 
* base characters (primary differences) and diacritics (secondary differences). * Differences between base characters takes precedence over secondary 
* differences.
*/
db.users.createIndex( { name: 1 }, collation: { locale: 'tr', strength: 2 } } )

To use the index, queries must specify the same collation.

db.users.insert( [ { name: "Oğuz" },
                            { name: "oğuz" },
                            { name: "OĞUZ" } ] )

// does not use index, finds one result
db.users.find( { name: "oğuz" } )

// uses the index, finds three results
db.users.find( { name: "oğuz" } ).collation( { locale: 'tr', strength: 2 } )

// does not use the index, finds three results (different strength)
db.users.find( { name: "oğuz" } ).collation( { locale: 'tr', strength: 1 } )

or you can create a collection with default collation:

db.createCollection("users", { collation: { locale: 'tr', strength: 2 } } )
db.users.createIndex( { name : 1 } ) // inherits the default collation
-1

An easy way would be to use $toLower as below.

db.users.aggregate([
    {
        $project: {
            name: { $toLower: "$name" }
        }
    },
    {
        $match: {
            name: the_name_to_search
        }
    }
])

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