Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm running an app built with Angular, built on a Node/Express/MongoDB stack.

In my Mongo database, I have objects that look like this:

{
    "infoLink" : "http://foo.com",
    "name" : "Fossil Watch",
    "gender" : "mens",
    "price" : "$166.44",
    "store" : "Store Name",
    "designer" : "Fossil",
},
{
    "infoLink" : "http://foo.com",
    "name" : "Timex Watch",
    "gender" : "mens",
    "price" : "$166.44",
    "store" : "Store Name",
    "designer" : "Timex",
},
{
    "name" : "Casio Watch",
    "gender" : "mens",
    "price" : "$166.44",
    "store" : "Store Name",
    "designer" : "Casio",
}

I want to find a way to search mongoDB to find and list all of the elements from one parameter. For instance, I want to search through all entries and extract their "designer" value, so as to return:

record = ['Fossil', 'Timex', 'Casio']

In practice I have about 20,000 records that I'm searching through here, so I'd like it to be as speedy and efficient as possible.

Is there a way to do this without resorting to getting all records then looping through each to find the desired parameter and adding it to an array? That solution would be like this:

var arr=[];
db.products.find(criteria, function (err, record) {
        if (err) {
            console.log("Lookup Error: " + err);
        } else{
            record.forEach(function(data){
              if (arr.indexOf(data.designer) > -1){
                  arr.push(data.designer);
               }
            });
        }
    });

but I feel like this is a pretty clunky way to do it. Any better options?

share|improve this question

1 Answer 1

up vote 1 down vote accepted

How about using a distinct query:

db.products.distinct("designer")

db.collection.distinct()

share|improve this answer
    
Yes! This is exactly what I was looking for, works perfectly. Don't know why that other answer was talking about. –  Jascination Jul 10 '13 at 8:18

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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