5

Let says I have a Users collection in MongoDB whose schema looks like this:

{
    name: String,
    sport: String,
    favoriteColor: String
}

And lets say I passed in values like this to match a user on:

{ name: "Thomas", sport: "Tennis", favoriteColor:"blue" }

What I would like to do is match the user based off all those properties. However, if no user comes back, I would like to match a user on just these properties:

{sport: "Tennis", favoriteColor:"blue" }

And if no user comes back, I would like to match a user on just this property:

{ favoriteColor: "blue" }

Is it possible to do something like this in one query with Mongo? I saw the $switch condition in Mongo that will match on a case and then immediately return, but the problem is that I can't access the document it would have retrieved in the then block. It looks like you can only write strings in there.

Any suggestions on how to accomplish what I'm looking for?

Is the best thing (and only way) to just execute multiple User.find({...}) queries?

  • There is no such functionality built in mongodb. Do you have a specific reason to perform such operation on server side ? You should use client side if else blocks to perform such requests. You can run all queries although not ideal in separate pipeline inside the $facet stage. – Veeram Feb 26 '18 at 16:15
4
+25

This is a good case to use MongoDB text index:

First you need to create text index on those fields:

db.users.ensureIndex({ name: "text", sport: "text", favoriteColor: "text" });

Then you can search the best match with "$text" limited by a number to show:

db.users.find( { $text: { $search: "Tennis blue Thomas" } } ).limit(10)
  • I think this is the most suitable case for you @Thomas (because you're performing a search query) especially that you could even Control Search Results with Weights so you could consume your result by returned documents scores. – Lefi Tarik Feb 25 '18 at 14:55
2

Try adding rank to all documents with weightage in aggregation pipeline, and sum the rank, $sort descending to get most matched documents on top

  1. name -> 1
  2. sport -> 2
  3. favoriteColor -> 4

by doing this matching favoriteColor will always have higher weightage then sport and name or combination of both

aggregate pipeline

db.col.aggregate([
    {$match : {
        $or : [
            {"name" : {$eq :"Thomas"}},
            {"sport" : {$eq : "Tennis"}},
            {"favoriteColor" : {$eq : "blue"}}
        ]
    }},
    {$addFields : {
        rank : {$sum : [
            {$cond : [{$eq : ["$name", "Thomas"]}, 1, 0]},
            {$cond : [{$eq : ["$sport", "Tennis"]}, 2, 0]},
            {$cond : [{$eq : ["$favoriteColor", "blue"]}, 4, 0]}
        ]}
    }},
    {$match : {rank :{$gt : 0}}},
    {$sort : {rank : -1}}
])
2

Hope this query will satisfy your require condition, you can get relevant result in single db hit. Just create a query in aggregate pipeline

db.collection.aggregate([
{$match : {
        $or : [
            {"name" : {$eq :"Thomas"}},
            {"sport" : {$eq : "Tennis"}},
            {"favoriteColor" : {$eq : "blue"}}
        ]
}},
 {$addFields : {
        rank : {$sum : [
            {$cond : [{$and:[{$eq : ["$name", "Thomas"]},{$eq : ["$sport", "Tennis"]},{$eq : ["$favoriteColor", "blue"]}]  }  , 1, 0]},
            {$cond : [{$and:[{$eq : ["$name", "Thomas"]},{$eq : ["$sport", "Tennis"]}]  }  , 2, 0]},
            {$cond : [{$and:[{$eq : ["$name", "Thomas"]}]  } , 3, 0]},
        ]}
}},

{$group:{
    _id:null,
    doc:{$push:'$$ROOT'},
    rank:{$max:'$rank'}
}},
{$unwind:'$doc'},
{$redact: {
    $cond: {
      if: { $eq: [ "$doc.rank", '$rank' ] },
      then: "$$KEEP",
      else: "$$PRUNE"
    }
  }},
  {
      $project:{
            name:'$doc.name',
            sport:'$doc.sport',
            favoriteColor:'$doc.favoriteColor',
    }}
])
2

Simply create a query builder for $match pipe in mongoDB aggregate pipeline or use it for find also, create JavaScript object variable and build your query dynamically.

var query={};

if(name!=null){
        query['name']={ '$eq': name};
}
if(sport!=null){
            query['sport']={ '$eq': sport};
}
if(favoriteColor!=null){
            query['favoriteColor']={ '$eq': favoriteColor};
}

db.collection.find(query)

It will give exactly matched result on dynamic basis

1

Did you try with $or:https://docs.mongodb.com/manual/reference/operator/query/or/

I used it when I wanted to check if username or email exists..

  • Yeah but the problem is, it will always return the collection that meets the most basic $or condition, which would be { favoriteColor: blue } – Thomas Feb 17 '18 at 17:56
  • 1
    I guess I could do a complicated` $or` with an $and that would account for that – Thomas Feb 17 '18 at 17:56
  • I thought it maybe query for first condition and then the second one, probably it's not the option. – merko Feb 17 '18 at 18:24

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