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I'm writing a long-polling script to check for new documents in my mongo collection and the only way I know of checking to see whether or not changes have been made in the past iteration of my loop is to do a query getting the last document's ID and parsing out the timestamp in that ID and seeing if it's greater than the timestamp left since I last made a request.

Is there some kind of approach that doesn't involve making a query every time or something that makes that query the fastest?

I was thinking a query like this:

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

But it would be using the PHP driver.

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By pulling latest document ID you will find latest insert, but won't catch latest update to existing document. Is this what you want? –  Sergio Tulentsev Jan 15 '13 at 6:19
    
@SergioTulentsev I want the latest insert. These documents are not going to be updated assuming it's going to work the way I think it will. But either should work for my purposes, I think. –  Kevin Beal Jan 15 '13 at 6:20
    
In this case the query should be fast enough. _id field is indexed. Anyway, how are you going to get data without a query of some sort? –  Sergio Tulentsev Jan 15 '13 at 6:25
    
Is there a performance problem with your query? What does it look like, by the way? –  Sergio Tulentsev Jan 15 '13 at 6:26
    
@SergioTulentsev That makes sense I guess. I'm pretty new to this sort of thing. I just want it to be as fast as possible because I'm trying to build a chatroom that may have a couple hundred users each doing this iteration every 10ms. I don't even know if what I'm trying is practical. –  Kevin Beal Jan 15 '13 at 6:28

2 Answers 2

up vote 1 down vote accepted

The fastest way will be creating indexes on timestamp field.

Creating index:

db.posts.ensureIndex( { timestamp : 1 } )

Optimizes this query:

db.posts.find().sort( { timestamp : -1 } )

findOne give you only one the last timestamp.

nice to help you.

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@Zagorulkin Your suggestion is surely going to help in the required scenario. However i don't think so sort() works with findOne().

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