49

I'm doing a $lookup from a _id. So the result is always 1 document. Hence, I want the result to be an object instead an array with one item.

let query = mongoose.model('Discipline').aggregate([
    {
      $match: {
        project: mongoose.Types.ObjectId(req.params.projectId)
      },
    },
    {
      $lookup: {
        from: "typecategories",
        localField: "typeCategory",
        foreignField: "_id",
        as: "typeCategory"
      }
    },
    {
      $project: {
        title: 1, typeCategory: "$typeCategory[0]"
      }
    }
  ]);

This notation: "$typeCategory[0]" is not working. Is there any smart way of doing this?

2

4 Answers 4

104

You can just use $unwind. It deconstructs an array field from the input documents to output a document for each element

let query = mongoose.model('Discipline').aggregate([
    {
      $match: {
        project: mongoose.Types.ObjectId(req.params.projectId)
      },
    },
    {
      $lookup: {
        from: "typecategories",
        localField: "typeCategory",
        foreignField: "_id",
        as: "typeCategory"
      }
    },
    {$unwind: '$typeCategory'},
    {
      $project: {
        title: 1, typeCategory: "$typeCategory"
      }
    }
  ]);
1
  • Just putting it out here that $typeCategory used in $unwind is the name that is being returned here(as: "typeCategory") and, not that of localField. Commented Oct 15, 2020 at 11:33
9

You can use $arrayElemAt in $project stage.

Syntax of $arrayElemAt is { $arrayElemAt: [ <array>, <idxexOfArray> ] }

like:

mongoose.model('Discipline').aggregate([
   {
      $match: {
        project: mongoose.Types.ObjectId(req.params.projectId)
      },
   },
   {
      $lookup: {
        from: "typecategories",
        localField: "typeCategory",
        foreignField: "_id",
        as: "typeCategory"
      }
   },
   {
      $project: {
         name: 1, typeCategory: {$arrayElemAt:["$typeCategory",0]}
      }
   }
]);
1
  • Please note this syntax only works if you're not excluding properties in the projection. In your example, if name would be set to 0, you'd get a BadProjection error
    – thomaux
    Commented Apr 8, 2020 at 8:50
3

Use $first to return the first element in the array:

$project: {
    title: 1, 
    typeCategory: {$first: "$typeCategory"}
}
1

For merging two collections:

{$replaceRoot: { newRoot: { $mergeObjects: [ { $arrayElemAt: [ "$typeCategory", 0 ] }, "$$ROOT" ] } }    }, 

{ $project: { typeCategory: 0 } }

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