If I have this schema...

person = {
    name : String,
    favoriteFoods : Array
}

... where the favoriteFoods array is populated with strings. How can I find all persons that have "sushi" as their favorite food using mongoose?

I was hoping for something along the lines of:

PersonModel.find({ favoriteFoods : { $contains : "sushi" }, function(...) {...});

(I know that there is no $contains in mongodb, just explaining what I was expecting to find before knowing the solution)

up vote 500 down vote accepted

As favouriteFoods is a simple array of strings, you can just query that field directly:

PersonModel.find({ favouriteFoods: "sushi" }, ...);

But I'd also recommend making the string array explicit in your schema:

person = {
    name : String,
    favouriteFoods : [String]
}
  • 43
    By the way here is the documentation: docs.mongodb.org/manual/tutorial/query-documents/… – Yves M. Jan 27 '14 at 17:07
  • 8
    This works also if favouriteFoods is: favouriteFoods:[{type:Schema.Types.ObjectId, ref:'Food'}] – ZzKr Dec 10 '14 at 19:21
  • 8
    As someone new to Mongo coming from an RDBMS like MySQL, to find that such solutions work so simply without needing JOINs and additional tables makes me wonder why I haven't started on Mongo sooner. But that's not to say either DBMS is superior over the other - it depends on your use case. – Irvin Lim Jun 18 '15 at 14:37
  • 4
    Don't mistake it. Even if it's a list of dict, you can still query it this way. Sample: PersonModel.find({ favouriteFoods.text: "sushi" }, ...); person = { name : String, favouriteFoods : [{text:String}] } – Aminah Nuraini Dec 14 '15 at 10:39
  • 8
    Here's the new documentation: docs.mongodb.com/manual/tutorial/query-arrays (previous link given by Yves doesn't lead to the right place anymore) – Joe May 1 '17 at 3:10

There is no $contains operator in mongodb.

You can use the answer from JohnnyHK as that works. The closest analogy to contains that mongo has is $in, using this your query would look like:

PersonModel.find({ favouriteFoods: { "$in" : ["sushi"]} }, ...);
  • 9
    Is this correct? Isn't mongodb expecting an array of values when using $in? like { name : { $in : [ "Paul", "Dave", "Larry" , "Adam"] }}? – Ludwig Magnusson Aug 9 '13 at 14:39
  • 22
    Huh? This is unnecessary. $in is used when you have multiple query values and the document needs to match one of them. For the reverse (which is what this question is about), JohnnyHK's answer is correct. I was going to downvote but I guess this answer may be helpful to other people who end up on this page. – MalcolmOcean Dec 19 '15 at 8:15
  • 7
    There's no point in using $in with a single value. – UpTheCreek Mar 13 '16 at 9:41
  • 4
    But this helped me to actually query with several values :D Many thanks ! – Alexandre Bourlier May 23 '16 at 17:05
  • 5
    Thanks. This is what I was actually looking for, the way to search for multiple values: PersonModel.find({favouriteFoods: {"$in": ["sushi", "hotdog"]}}) – totymedli Jun 17 '16 at 12:12

I feel like $all would be more appropriate in this situation. If you are looking for person that is into sushi you do :

PersonModel.find({ favoriteFood : { $all : ["sushi"] }, ...})

As you might want to filter more your search, like so :

PersonModel.find({ favoriteFood : { $all : ["sushi", "bananas"] }, ...})

$in is like OR and $all like AND. Check this : https://docs.mongodb.com/manual/reference/operator/query/all/

  • Sorry, this is an incorrect answer to my question. I am not looking for an exact match but just for arrays that contains at least the value specified. – Ludwig Magnusson Jan 20 '17 at 8:27
  • 10
    This is a perfectly valid answer to your question! For one value there is no difference in using $all or $in. If you have several values like "sushi", "bananas", $all is looking for persons that have "sushi" AND "bananas" in their favoriteFood array, if using $in you are getting persons that have "sushi" OR "bananas" in their favorite food array. – Jodo Feb 25 '17 at 8:21
  • yeah, there is no $contains but $all is sort of it – datdinhquoc May 28 at 2:27

In case you need to find documents which contain NULL elements inside an array of sub-documents, I've found this query which works pretty well:

db.collection.find({"keyWithArray":{$elemMatch:{"$in":[null], "$exists":true}}})

This query is taken from this post: MongoDb query array with null values

It was a great find and it works much better than my own initial and wrong version (which turned out to work fine only for arrays with one element):

.find({
    'MyArrayOfSubDocuments': { $not: { $size: 0 } },
    'MyArrayOfSubDocuments._id': { $exists: false }
})

In case that the array contains objects for example if favouriteFoods is an array of objects of the following:

{
  name: 'Sushi',
  type: 'Japanese'
}

you can use the following query:

PersonModel.find({"favouriteFoods.name": "Sushi"});

For Loopback3 all the examples given did not work for me, or as fast as using REST API anyway. But it helped me to figure out the exact answer I needed.

{"where":{"arrayAttribute":{ "all" :[String]}}}

  • You are a life saver, thanks! Where is that documented and I missed it? Can you post the link please? Thanks. – user2078023 May 23 at 15:36

Though agree with find() is most effective in your usecase. Still there is $match of aggregation framework, to ease the query of a big number of entries and generate a low number of results that hold value to you especially for grouping and creating new files.

  PersonModel.aggregate([
            { 
                 "$match": { 
                     $and : [{ 'favouriteFoods' : { $exists: true, $in: [ 'sushi']}}, ........ ]  }
             },
             { $project : {"_id": 0, "name" : 1} }
            ]);

If you'd want to use something like a "contains" operator through javascript, you can always use a Regular expression for that...

eg. Say you want to retrieve a customer having "Bartolomew" as name

async function getBartolomew() {
    const custStartWith_Bart = await Customers.find({name: /^Bart/ }); // Starts with Bart
    const custEndWith_lomew = await Customers.find({name: /lomew$/ }); // Ends with lomew
    const custContains_rtol = await Customers.find({name: /.*rtol.*/ }); // Contains rtol

    console.log(custStartWith_Bart);
    console.log(custEndWith_lomew);
    console.log(custContains_rtol);
}

I know this topic is old, but for future people who could wonder the same question, another incredibly inefficient solution could be to do:

PersonModel.find({$where : 'this.favouriteFoods.indexOf("sushi") != -1'});

This avoids all optimisations by MongoDB so do not use in production code.

  • Out of curiosity, is there any advantage of doing it this way? – Ludwig Magnusson May 7 '14 at 6:41
  • 42
    Actually this is super innefficient... – Crasher Jul 9 '14 at 21:46
  • 4
    This is incredibly inefficient compared to the accepted answer; it circumvents all of the optimisation Mongo puts in behind the scenes for a straight find as in the accepted. – unwitting Sep 4 '14 at 16:44
  • 9
    And user3027146 never posted again... – OpenUserX03 May 1 '15 at 4:48
  • 17
    I love the edit of @RobChurch. – Fabio Poloni Aug 30 '15 at 8:00

Your Answer

 

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

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