14

I have found some information to accomplish this in mongoDB, but I need it with mongoid. So I can do something like:

User.last(7000).each do ....

I'm using:

  • MongoDB shell version: 2.4.3

  • Mongoid 2.6.0

Thanks!

  • Try to translate JS solution to Mongoid. I bet it'll work. – Sergio Tulentsev May 23 '13 at 17:18
28

Now I found a solution from mongoid origin:

User.all.desc('_id').limit(7000)

It sorts the users in descending order according to the id.

  • 4
    IMPORTANT! Assuming you have 9000 records if you do u = User.all.desc('_id').limit(7000) and then u.delete it would delete the 9000 records! Just happened to me on a production app. Luckily I always do a fresh backup before doing such things. – Pod Jun 4 '15 at 6:34
  • @Pod you should convert to array to_a after limit() (before destroy), read this stackoverflow.com/a/20368143/1297435 – rails_id Sep 7 '17 at 9:23
  • 2
    ...and to get the nth record from last User.all.desc('_id').offset(n).first – Ravi Misra Jun 14 '19 at 8:21

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