54

I am trying to retrieve one element from a mongo collection, the one with the greatest _id field. I know this can be done by querying:

db.collection.find().sort({_id: -1}).limit(1)

But it kind of seems unelegant and I was wondering whether there is a way to get that specific element using findOne()

Note: I want to do this because, from what I've read in ObjectId, the first bytes correspond to the miliseconds since the Epoch and thus, the last element being inserted will have the greatest _id. Is there any other way to retrieve the last element inserted in a collection?

  • 4
    There's nothing inelegant about your original method, actually. – JohnnyHK Mar 1 '14 at 20:14
  • 1
    Reminder that the ObjectId is usually created by the client driver, so it's only as accurate/reliable as the clients being used. If two drivers insert at the same second, the results won't be predictable. – WiredPrairie Mar 1 '14 at 22:06
83

You should use find, like you already are, and not aggregation which will be slower since it needs to scan all the values of _id fields to figure out the max.

As comments pointed out there is no difference between using find() and findOne() - functionally or elegance-wise. In fact, findOne in the shell (and in the drivers which implement it) is defined in terms of find (with limit -1 and with pretty print in the shell).

If you really want to do the equivalent of

db.collection.find().sort({_id:-1}).limit(1).pretty()

as findOne you can do it with this syntax:

db.collection.findOne({$query:{},$orderby:{_id:-1}})
  • 1
    Thank you for your answer! I expected there'd be some kind of better implementation for my query than calling find just to get that 1 result, but if findOne is simply an elegant find I guess there really is no difference. – Jorge Mar 2 '14 at 0:25
  • 1
    correct. and aggregation (which you accepted as correct answer) is actually a very much wrong answer because it would scan all the _id values, where find uses _id index to only scan a single value. – Asya Kamsky Mar 2 '14 at 0:30
  • The $orderby operator is deprecated since version 3.2 . Use cursor.sort() instead. – Vadim May 27 '16 at 4:59
  • @Avishay there is absolutely no reason that I can think of that what you say would be true. If you don't find a match findOne and find limit 1 are absolutely identical, just like if you do find a match. – Asya Kamsky Aug 8 '16 at 13:53
  • @Avishay the blog post you linked to is quite wrong - it was constructing find() but not actually checking if anything was matched. There are comments that explain why it's wrong. – Asya Kamsky Aug 8 '16 at 14:05
9

You can get max _id using aggregation of mongodb. Find and sort may overkill's.

db.myCollection.aggregate({
    $group: {
        _id: '',
        last: {
            $max: "$_id"
        }
    }
});
  • 5
    how is this more elegant than find()? It's never going to be faster and in most instances could be a lot slower. – Asya Kamsky Mar 1 '14 at 23:33
  • 2
    in fact, it's not find and sort - find with sort uses an index to immediately select a single value. Your aggregation answer would have to scan the entire range of values). – Asya Kamsky Mar 2 '14 at 0:31
  • 3
    [citation needed] – joeytwiddle Apr 12 '16 at 4:02
1

with PHP driver (mongodb)
using findOne()

$filter=[];
$options = ['sort' => ['_id' => -1]]; // -1 is for DESC
$result = $collection->findOne(filter, $options);
$maxAge = $result['age']
0
import pymongo

tonystark = pymongo.MongoClient("mongodb://localhost:27017/")

mydb = tonystark["tonystark_db"]
savings = mydb["customers"]

x = savings.find().sort("_id")
for s in x:
    print(s)
  • Welcome to SO and thanks for your answer! Can you offer an explanation as to how this works and why this is a strong solution to the problem? – ggorlen Apr 21 at 1:30
-1
$maxId="";

$Cursor =$collection->find();

foreach($cursor as $document) { 
    $maxid =max($arr=(array($document['id'])));
}

print_r($maxid+1);

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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