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I want to obtain an array of ActiveRecord objects given an array of ids.

I assumed that

Object.find([5,2,3])

Would return an array with object 5, object 2, then object 3 in that order, but instead I get an array ordered as object 2, object 3 and then object 5.

The ActiveRecord Base find method API mentions that you shouldn't expect it in the order provided (other documentation doesn't give this warning).

One potential solution was given in Find by array of ids in the same order?, but the order option doesn't seem to be valid for SQLite.

I can write some ruby code to sort the objects myself (either somewhat simple and poorly scaling or better scaling and more complex), but is there A Better Way?

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1  
Where are those id's coming from? If it is the UI (via a user selecting them) then scaling shouldn't be an issue, that is the user is unlikely to spend time selecting 1000's of ids). If it's the database (e.g. from a join table), could you store the order in the join table and issue the find based on that? –  pauliephonic Apr 29 '09 at 11:13

7 Answers 7

up vote 18 down vote accepted

It's not that MySQL and other DBs sort things on their own, it's that they don't sort them. When you call Model.find([5, 2, 3]), the SQL generated is something like:

SELECT * FROM models WHERE models.id IN (5, 2, 3)

This doesn't specify an order, just the set of records you want returned. It turns out that generally MySQL will return the database rows in 'id' order, but there's no guarantee of this.

The only way to get the database to return records in a guaranteed order is to add an order clause. If your records will always be returned in a particular order, then you can add a sort column to the db and do Model.find([5, 2, 3], :order => 'sort_column'). If this isn't the case, you'll have to do the sorting in code:

ids = [5, 2, 3]
records = Model.find(ids)
sorted_records = ids.collect {|id| records.detect {|x| x.id == id}}
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4  
Another solution that is more performant than using #detect to avoid O(N) performance: records = Model.find(ids).group_by(&:id); sorted_records = ids.map { |id| records[id].first } –  Ryan LeCompte Dec 17 '11 at 0:04

Based on my previous comment to Jeroen van Dijk you can do this more efficiently and in two lines using each_with_object

result_hash = Model.find(ids).each_with_object({}) {|result,result_hash| result_hash[result.id] = result }
ids.map {|id| result_hash[id]}

For reference here is the benchmark i used

ids = [5,3,1,4,11,13,10]
results = Model.find(ids)

Benchmark.measure do 
  100000.times do 
    result_hash = results.each_with_object({}) {|result,result_hash| result_hash[result.id] = result }
    ids.map {|id| result_hash[id]}
  end
end.real
#=>  4.45757484436035 seconds

Now the other one

ids = [5,3,1,4,11,13,10]
results = Model.find(ids)
Benchmark.measure do 
  100000.times do 
    ids.collect {|id| results.detect {|result| result.id == id}}
  end
end.real
# => 6.10875988006592

Update

You can do this in most using order and case statements, here is a class method you could use.

def self.order_by_ids(ids)
  order_by = ["case"]
  ids.each_with_index.map do |id, index|
    order_by << "WHEN id='#{id}' THEN #{index}"
  end
  order_by << "end"
  order(order_by.join(" "))
end

#   User.where(:id => [3,2,1]).order_by_ids([3,2,1]).map(&:id) 
#   #=> [3,2,1]
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Apparently mySQL and other DB management system sort things on their own. I think that you can bypass that doing :

ids = [5,2,3]
@things = Object.find( ids, :order => "field(id,#{ids.join(',')})" )
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That was the answer suggested in the link "Find by arrays of id in the same order?", but it doesn't seem to work for SQLite. –  Andrew Grimm Apr 29 '09 at 23:30
3  
And it doesn't seem to work for Postgres 9 –  Jeroen van Dijk Aug 24 '11 at 13:31

A portable solution would be to use an SQL CASE statement in your ORDER BY. You can use pretty much arbitrary expressions in an ORDER BY and you can use a CASE as an inlined lookup table. For example, the SQL you're after would look like this:

select ...
order by
    case id
    when 5 then 0
    when 2 then 1
    when 3 then 2
    end

That's pretty easy to generate with a bit of Ruby:

ids = [5, 2, 3]
order = 'case id ' + (0 .. ids.length).map { |i| "when #{ids[i]} then #{i}" }.join(' ') + ' end'

Then use the order string as your ordering condition:

Object.find(ids, :order => order)

or in the modern world:

Object.where(:id => ids).order(order)

This is a bit verbose but it should work the same with any SQL database and it isn't that difficult to hide the ugliness.

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1  
I did it with Object.order('case id ' + ids.each_with_index.map { |id, i| "when #{id} then #{i}" }.join(' ') + ' end') –  Peter Hamilton Feb 13 at 14:00

Another (probably more efficient) way to do it in Ruby:

ids = [5, 2, 3]
records_by_id = Model.find(ids).inject({}) do |result, record| 
  result[record.id] = record
  result
end
sorted_records = ids.map {|id| records_by_id[id] }
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you can use each_with_object to make this code two lines FWIW. also did some benchmarking and it looks like this code is much faster if you're iterating over a large set. –  Schneems Sep 13 '11 at 19:07
    
Thanks for your comment. I didn't know of the existence of #each_with_object (api.rubyonrails.org/classes/…). Is there a significant difference between the above #inject and #each_with_object approach? –  Jeroen van Dijk Sep 14 '11 at 14:19
    
Nope, each_with_object is essentially the same as inject except you don't have to return the object your modifying (in your case result) at the end of your block. It simplifies building hashes IMHO. –  Schneems Sep 16 '11 at 20:14

Here's the simplest thing I could come up with:

ids = [200, 107, 247, 189]
results = ModelObject.find(ids).group_by(&:id)
sorted_results = ids.map {|id| results[id].first }
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@things = [5,2,3].map{|id| Object.find(id)}

This is probably the easiest way, assuming you don't have too many objects to find, since it requires a trip to the database for each id.

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you shouldn't do this (N+1 queries) –  Schneems Sep 13 '11 at 19:20
    
It's N queries, not N+1. There are much better ways to do this, but as I said, this is the easiest. For performance, look them all up, then dump them in a hash with the ids as keys. –  jcnnghm Sep 14 '11 at 2:43

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