Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have an array called records with thousand of hashes (see the first array showed below). Every hash contains currently two fields id and parent_id. I want to add a new field called updated_at which is stored in the database (see the second array below).

records = [{"id"=>3, "parent_id"=>2}, 
           {"id"=>4, "parent_id"=>2}]

records = [{"id"=>3, "parent_id"=>2, "updated_at"=>"2014-03-21 20:44:35 UTC"}, 
           {"id"=>4, "parent_id"=>2, "updated_at"=>"2014-03-21 20:44:34 UTC"}] 

My first approach is the following one, but it executes a query to the database for every hash, so if I have 1K hashes in the array, it is going to execute 1K queries, which I think is not very good from the performance point of view.

records.each do |record|
  record['updated_at'] = Record.find(record['id']).updated_at.utc.to_s
end

Can you suggest me a better solution?

share|improve this question
1  
Good question to follow bookmarked :-) –  Arup Rakshit Mar 21 at 21:22

3 Answers 3

up vote 1 down vote accepted

How about something like this? Bulk up the queries by aggregating the ids a slice at a time. Adjust each_slice amount to something that performs well...

records.each_slice(250) do |records|
  ids = records.map { |r| r['id'] }
  results = Record.select([:id, :updated_at]).find(ids)
  records.each do |rec|
    result = results.find { |res| res.id == rec.id }
    rec['updated_at'] = result.updated_at.utc.to_s
  end
end
share|improve this answer
    
Splitting an 'n+1 queries' problem into chunks is still an 'n+1 queries' problem. –  Mark Thomas Mar 21 at 21:39
    
But this 'n+1' queries is could be much better than doing 1 query and then performing a Ruby .find in a long list (with 1K items or more). I say that because I already tried that with 1 query and then I moved the performance issue from MySQL to Ruby and it was even slower than doing 1K queries. So something mixed could work. –  Rafa Paez Mar 21 at 21:44
    
Agreed. You could also limit what is selected by .select([:id, :updated_at]). Just added that to my answer. If Record is huge, it may squeak out some more speed. –  Nick Veys Mar 21 at 21:50
    
Thanks @Nick for you answer, it makes sense. Good correction replacing the .select .. fist by .find. I also think that you can retrieve less fields from your select, but not the whole record model (you just realised before I wrote that, thanks!). I hope to see more approaches. –  Rafa Paez Mar 21 at 21:51
1  
Seemed like a fun exercise for a Friday afternoon. :) –  Nick Veys Mar 21 at 21:55

How about this?

plucked_records = Record.pluck(:id, :updated_at).find(records.map { |a| a.fetch("id") })

records.map! do |record|
  plucked_records.each do |plucked_record|
    record["updated_at"] = plucked_record.last.utc.to_s if plucked_record.first == record["id"]
  end
  record
end

May be someone can improvise it better. :)

share|improve this answer
    
Thanks @Kirti, I will try it soon. I will use select instead of pluck since I am on Rails 3 and pluck does not accept more than one argument in this version. But leave as it is because I did not mention the Rails version and its better than the select for this case. –  Rafa Paez Mar 21 at 22:08
    
No Problem. I thought you were on Rails 4. Let me know. –  Kirti Thorat Mar 21 at 22:10

After doing a lot of benchmarks and trying different algorithms I have come up with a solution that performs very fast and seems it is the most efficient one for now.

The idea is to convert the resulted array of db records into an hash, so finding items into the hash is much faster than doing it into an array.

The time of the results came from benchmarks ran using an array of about 4.5K hashes.

# My last approach
# Converting the returning records Array into a Hash (thus faster searchs)
# Benchmarks average results: 0.5 seconds
ids = records.map { |rec| rec['id'] }
db_records = Record.select([:id, :updated_at]).find(ids)
hash_records = Hash[db_records.map { |r| [r.id, r.updated_at.utc.to_s] }]
records.each do |rec|
  rec["updated_at"] = hash_records[rec["id"]]
end

# Original approach
# Doing a SQL query for each pair (4.5K queries against MySQL)
# Benchmarks average results: ~10 seconds
records.each do |rec|
  db_rec = Record.find(pair['id'])
  rec["updated_at"] = db_rec.updated_at.utc.to_s
end

# Kirti's approach (slightly improved). Thanks Kirti! 
# Unfortunaly searching into a lar
# Doing a single SQL query for all the pairs (then find in the array)
# Benchmarks average results: ~18 seconds
ids = records.map { |rec| rec['id'] }
db_records = Record.select([:id, :updated_at]).find(ids)
records.each do |rec|
  db_rec = db_records.find { |f| f.id == pair["id"] }
  rec["updated_at"] = db_rec.updated_at.utc.to_s
end  

# Nick's approach. Thanks Nick! very good solution.
# Mixed solution levering in SQL and Ruby using each_slice.
# Very interesting results:
# [slice, seconds]:
# 5000, 18.0 
# 1000, 4.3
#  500, 2.6
#  250, 1.5
#  100, 1.0
#   50, 0.9 <- :)
#   25, 1.0
#   10, 1.8
#    5, 2.3
#    1, 10.0
# Optimal slice value is 50 elements! (for this scenario)
# An scenario with a much costly SQL query might require a higher slice number
slice = 50
records.each_slice(slice) do |recs|
  ids = recs.map { |pair| pair['id'] }
  db_records = Record.select([:id, :updated_at]).find(ids)
  recs.each do |rec|
    db_rec = db_records.find { |f| f.id == rec["id"] }
    rec["updated_at"] = db_rec.updated_at.utc.to_s
  end
end 
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.