0

Here's my aggregation. I would want to only get one field from the resulting JSON not whole document.

 Listings.aggregate([
    {
        $lookup: {
            from: "users",
            localField: "userid",
            foreignField: "_id",
            as: "user"
        }
    },  
    { $sort : { _id : -1 } }
]).exec(function (err, data) {
    if (err) {
        return res.status(500).json({
            title: 'An error occurred',
            error: err
        });
    }
    res.json(data);
});

Here's the resulting JSON I'm getting from the request.

{
   _id: "5c8b5c148ee19c6a092a76fe",
   name: "Brian Ken",
   email: "brian@kena.com",
   pass: "sdlajsdlj99939*&*&sdsdljsjdljllj"
}

Ideally I would only like to pull only the email field and not everything from this document. I hope my explanation is satisfactory. Anyone help?

  • Possible duplicate of exclude fields in $lookup aggregation – Anthony Winzlet Mar 15 at 12:40
  • I think they are abit different, also can you help with this? – Dng Mar 15 at 12:42
  • Please try to go through the above answer it is same as your posted question. If you need any help then let me know I will surely help you – Anthony Winzlet Mar 15 at 12:44
  • I've tried to replicate your answer from the other response - I get an error 500 $lookup: { from: "uploads", pipeline: [ { "$match": { "uuid" : "uuid" }}, { "$project": { "_id": 0 }} ], as: "uploads" } – Dng Mar 15 at 13:01
  • try this { $lookup: { from: "users", let: { userId: '$userId' }, pipeline: [ { $match: { $expr: { $eq: ['$$userId', '$_id'] }}}, { $project: { email: 1 }} ], as: "user" }} – Anthony Winzlet Mar 15 at 13:03
0

Follow up after the $sort pipeline with a $project pipeline

.
.   // SORT
.
},
{
    $project: {
        _id: 0,
        name: 0,
        email: 1,
        pass: 0
    }
}

In $project, 0 means to now show that field in the result, and 1 is to show

You study more about $project from the MongoDB's official website

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