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I can't find anywhere it has been documented this. By default, the find() operation will get the records from beginning. How can I get the last N records in mongodb?

Edit: also I want the returned result ordered from less recent to most recent, not the reverse.

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@Haim, plase be specific to answer, which part of the web page resolves my question? –  Bin Chen Dec 12 '10 at 10:46

8 Answers 8

up vote 166 down vote accepted

If I understand your question, you need to sort in ascending order.

Assuming you have some id or date field called "x" you would do ...

.sort()


db.foo.find().sort({x:1});

The 1 will sort ascending (oldest to newest) and -1 will sort descending (newest to oldest.)

If you use the auto created _id field it has a date embedded in it ... so you can use that to order by ...

db.foo.find().sort({_id:1});

That will return back all your documents sorted from oldest to newest.

Natural Order


You can also use a Natural Order mentioned above ...

db.foo.find().sort({$natural:1});

Again, using 1 or -1 depending on the order you want.

Use .limit()


Lastly, it's good practice to add a limit when doing this sort of wide open query so you could do either ...

db.foo.find().sort({_id:1}).limit(50);

or

db.foo.find().sort({$natural:1}).limit(50);
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@MortezaM. I'm pretty sure you've got your query order mixed up ... your sort() should be run last, not first (much like a SQL ORDER BY) .find({}).skip(1).limit(50).sort({"date":-1}) –  Justin Jenkins Mar 6 '12 at 19:11
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What ever it is, the order of calling functions should have nothing to do with the end result. –  Morteza M. Mar 9 '12 at 9:21
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answer still current in 2013 –  Bent Cardan Jan 15 '13 at 5:01
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@MortezaM. Of course the order matters. item = 3; item.add(3).divide(3) == 2; item.divide(3).add(3) == 4; With no order what would be the outcome??? I agree with you that this reversed order is not intuitive. This is no SQL after all it should follow normal OO paradigms. –  RickyA Feb 17 '13 at 14:25
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and yet the order DOES NOT matter. All you have to do is try it to see that it does not. all of these are called on the cursor and passed to the server so the server limits the results of the sort (top N) as anything else wouldn't make sense. –  Asya Kamsky May 12 '13 at 15:42

The last N added records, from less recent to most recent, can be seen with this query:

db.collection.find().skip(db.collection.count() - N)

If you want them in the reverse order:

db.collection.find().sort({ $natural: -1 }).limit(N)

If you install Mongo-Hacker you can also use:

db.collection.find().reverse().limit(N)

If you get tired of writing these commands all the time you can create custom functions in your ~/.mongorc.js. E.g.

function last(N) { return db.collection.find().skip(db.collection.count() - N); }

then from a mongo shell just type last(N)

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db.collection.find().reverse().limit(1) gives me the error ... has no method reverse –  Catfish May 9 at 18:48
    
@Catfish you are right, I just noticed that reverse() was added by [Mongo-Hacker ](tylerbrock.github.com/mongo-hacker), I'll update my answer. Thanks. –  Marco Dinacci May 9 at 19:27

Look under Querying: Sorting and Natural Order, http://www.mongodb.org/display/DOCS/Sorting+and+Natural+Order as well as sort() under Cursor Methods http://www.mongodb.org/display/DOCS/Advanced+Queries

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Thanks for your anwser, it is close,but I want to retured records ordered from less recent to most recent, is it possible? –  Bin Chen Dec 12 '10 at 10:43

you can use sort() , limit() ,skip() to get last N record start from any skipped value

db.collections.find().sort(key:value).limit(int value).skip(some int value);
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last function should be Sort not limit.

Eg. db.testcollection.find().limit(3).sort({timestamp:-1});

Thnx

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You can't "skip" based on the size of the collection, because it will not take the query conditions into account.

The correct solution is to sort from the desired end-point, limit the size of the result set, then adjust the order of the results if necessary.

Here is an example, based on real-world code.

var query = collection.find( { conditions } ).sort({$natural : -1}).limit(N);

query.exec(function(err, results) {
    if (err) { 
    }
    else if (results.length == 0) {
    }
    else {
        results.reverse(); // put the results into the desired order
        results.forEach(function(result) {
            // do something with each result
        });
    }
});
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In order to get last N records you can execute below query:

db.yourcollectionname.find({$query:{},$orderby : {$natural : -1}).limit(yournumber)

if you want only one last record:

db.yourcollectionname.findOne({$query:{},$orderby : {$natural : -1})

Note: In place of $natural you can use one of the columns from your collection.

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Apply the sort twice:

This gets you the last 10 items -- but last entry first (which isn't what you want):

db.events.find().sort({$natural:-1}).limit(10)

So to fix that, you can sort again, now you get the last 10 entries, last entry last:

db.events.find().sort({$natural:-1}).limit(10).sort({$natural: 1})
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-1: applying sort() twice overrides previous settings with the latest settings. So your second example is equivalent to db.events.find().sort({$natural: 1}).limit(10), in other words, the first 10 items (assuming on-disk order is chronological, which is only guaranteed true for capped collections). –  dcrosta Dec 12 '11 at 14:56

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