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I have a query to get the IDs of people in a particular order, say: ids = [1, 3, 5, 9, 6, 2]

I then want to fetch those people by Person.find(ids)

But they are always fetched in numerical order, I know this by performing:

people = Person.find(ids).map(&:id)
 => [1, 2, 3, 5, 6, 9]

How can I run this query so that the order is the same as the order of the ids array?

I made this task more difficult as I wanted to only perform the query to fetch people once, from the IDs given. So, performing multiple queries is out of the question.

I tried something like:

ids.each do |i|
  person = people.where('id = ?', i)

But I don't think this works.

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I'm a Rails newbie, so~ I'm probably missing something elemental ^^ –  defaye Apr 14 '12 at 1:17

5 Answers 5

up vote 12 down vote accepted

Note on this code:

ids.each do |i|
  person = people.where('id = ?', i)

There are two issues with it:

First, the #each method returns the array it iterated on, so you'd just get the ids back. What you want is a collect

Second, the where will return an Arel::Relation object, which in the end will evaluate as an array. So you'd end up with an array of arrays. You could fix two ways.

The first way would be by flattening:

ids.collect {|i| Person.where('id => ?', i) }.flatten

Even better version:

ids.collect {|i| Person.where(:id => i) }.flatten

A second way would by to simply do a find:

ids.collect {|i| Person.find(i) }

That's nice and simple

You'll find, however, that these all do a query for each iteration, so not very efficient.

I like Sergio's solution, but here's another I would have suggested:

people_by_id = Person.find(ids).index_by(&:id) # Gives you a hash indexed by ID
ids.collect {|id| people_by_id[id] }

I swear that I remember that ActiveRecord used to do this ID ordering for us. Maybe it went away with Arel ;)

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1  
Just tried it in an old 2.3.8 project that I had and it turns out the find method doesn't order by the IDs automatically. I must be getting old... ;) –  Brian Underwood Apr 14 '12 at 1:57
    
Could you explain your altered suggestion a little? At what point can this then be used to iterate through the new people result in the correct order? Or did you comment because it wasn't working? Thank you for your input though, I found it very useful –  defaye Apr 14 '12 at 6:39
    
I've tried your solution and it's benchmarking slightly faster than any other solution here, thanks! –  defaye Apr 14 '12 at 7:20
1  
I probably should have been clearer that you can take the second line and assign it or further iterate upon it. I also probably should have started with my alternate solution, though I like starting from a bit of code and showing incremental changes until a more ideal solution is reached ;) –  Brian Underwood Apr 15 '12 at 12:31
    
Yes I have to agree, it's always good to see contrast between alternatives that may work but are inferior! –  defaye Apr 15 '12 at 16:32

There are two ways to get entries by given an array of ids. If you are working on Rails 4, dynamic method are deprecated, you need to look at the Rails 4 specific solution below.

Solution one:

Person.find([1,2,3,4])

This will raise ActiveRecord::RecordNotFound if no record exists

Solution two [Rails 3 only]:

Person.find_all_by_id([1,2,3,4])

This will not cause exception, simply return empty array if no record matches your query.

Based on your requirement choosing the method you would like to use above, then sorting them by given ids

ids = [1,2,3,4]
people = Person.find_all_by_id(ids)
# alternatively: people = Person.find(ids)
ordered_people = ids.collect {|id| people.detect {|x| x.id == id}}

Solution [Rails 4 only]:

I think Rails 4 offers a better solution.

# without eager loading
Person.where(id: [1,2,3,4]).order('id DESC')

# with eager loading.
# Note that you can not call deprecated `all`
Person.where(id: [1,2,3,4]).order('id DESC').load
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Thank you, this definitely works and is a very valuable answer, thanks for contributing! –  defaye Apr 14 '12 at 6:46
    
You are welcome! –  activars Apr 14 '12 at 16:03

As I see it, you can either map the IDs or sort the result. For the latter, there already are solutions, though I find them inefficient.

Mapping the IDs:

ids = [1, 3, 5, 9, 6, 2]
people_in_order = ids.map { |id| Person.find(id) }

Note that this will cause multiple queries to be executed, which is potentially inefficient.

Sorting the result:

ids = [1, 3, 5, 9, 6, 2]
id_indices = Hash[ids.map.with_index { |id,idx| [id,idx] }] # requires ruby 1.8.7+
people_in_order = Person.find(ids).sort_by { |person| id_indices[person.id] }

Or, expanding on Brian Underwoods answer:

ids = [1, 3, 5, 9, 6, 2]
indexed_people = Person.find(ids).index_by(&:id) # I didn't know this method, TIL :)
people_in_order = indexed_people.values_at(*ids)

Hope that helps

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Thank you, I tried your expanded answer which works - is this your preferred solution? –  defaye Apr 14 '12 at 6:49
    
I haven't used index_by yet, but assuming it doesn't come with some inexplicably high performance penalty, then yes. It's quite concise in my opinion. –  apeiros Apr 14 '12 at 8:33
    
Actually it seemed to be one of the faster solutions here - but each solution was very closely timed, I didn't test your first solution though - I'd have to take your word on whether or not you feel it would be more efficient –  defaye Apr 14 '12 at 8:40
1  
As I say in the answer, the first solution is probably quite slow due to the overhead of using multiple queries. For small number of ids, that shouldn't matter. But my preference is on the third. –  apeiros Apr 14 '12 at 8:46
    
thank you,this is the perfect solution for me –  Jigar Bhatt Nov 25 at 6:59

You can get users sorted by id asc from the database and then rearrange them in the application any way you want. Check this out:

ids = [1, 3, 5, 9, 6, 2]
users = ids.sort.map {|i| {id: i}} # Or User.find(ids) or another query

# users sorted by id asc (from the query)
users # => [{:id=>1}, {:id=>2}, {:id=>3}, {:id=>5}, {:id=>6}, {:id=>9}]

users.sort_by! {|u| ids.index u[:id]} 

# users sorted as you wanted
users # => [{:id=>1}, {:id=>3}, {:id=>5}, {:id=>9}, {:id=>6}, {:id=>2}]

The trick here is sorting the array by an artificial value: index of object's id in another array.

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Just getting some sleep, will try this in the morning, thanks! –  defaye Apr 14 '12 at 1:27
    
Could you elaborate on your answer for me please? I can see that it works but, not sure how to use it with a result of people, with names, emails, etc. –  defaye Apr 14 '12 at 6:45
1  
Yeah, sure. The key line is the one with sort_by!. You provide a block that is then called with an instance of user. You extract an id from this object, find position of this id in your original id array, and this position will also be position of user object in the sorted array. User with id=5 will come third because ids array has 3 at third position. –  Sergio Tulentsev Apr 14 '12 at 6:51
1  
Right before that. See my edit. –  Sergio Tulentsev Apr 14 '12 at 7:09
1  
No problem. Pick the best answer :) –  Sergio Tulentsev Apr 14 '12 at 7:28

If you have ids array then it is as simple as - Person.where(id: ids).sort_by {|p| ids.index(p.id) } OR

persons = Hash[ Person.where(id: ids).map {|p| [p.id, p] }] ids.map {|i| persons[i] }

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