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'm new to Ruby and trying to solve a problem. I have an array of hashes:

list = [{"amount"=>2.25,"rel_id"=>1103, "date"=>"2012-12-21"},
 {"amount"=>2.75,"rel_id"=>1103, "date"=>"2012-12-24"},
 {"amount"=>2.85,"rel_id"=>666, "date"=>"2012-12-27"},
 {"amount"=>3.15,"rel_id"=>666, "date"=>"2012-12-28"}
 #and many many more..
]

I need to group them by rel_id, that i could see total amount and dates they were given, in this kind of format:

{1103=>{:total_amount=>5.0, :dates=>["2012-12-21", "2012-12-24"]}, 666=>{:total_amount=>6.0, :dates=>["2012-12-27", "2012-12-28"]}}

I solved this in this way, but i'm pretty sure it's one of the worst approach to do that and i think it's not a ruby way..

results = {}

list.each do |line|
 if !(results.has_key?(line["rel_id"]))
 results[line["rel_id"]]={:total_amount=>line["amount"],:dates=>[line["date"]]}
 else
 results[line["rel_id"]][:total_amount] = results[line["rel_id"]][:total_amount]+line["amount"]
 results[line["rel_id"]][:dates]<<line["date"]
 end
end

Maybe you could give me or explain how to implement a nicer, more beautiful approach in a ruby way?

share|improve this question

4 Answers 4

You can do something like this:

list.each_with_object({}) do |details, rollup|
  rollup[details["rel_id"]] ||= { total_amount: 0, dates: [] }
  rollup[details["rel_id"]][:total_amount] += details["amount"]
  rollup[details["rel_id"]][:dates] << details["date"]
end

Edited for readability/names.

share|improve this answer
    
Very good solution... –  Arup Rakshit Aug 14 '13 at 18:37
    
out of curiosity what does the ||= do? –  Tall Paul Aug 14 '13 at 18:52
1  
@Tall Paul, If the value for the key is nil, e.g. it doesn't exist, ||= sets the hash key to the value on the right. Almost the same as: hash[key] = 0 if hash[key].nil? Testing for nil is actually more precise because both the values nil and false will cause ||= to set the value for the key. –  7stud Aug 14 '13 at 18:53
    
canonical imperative solution, +1. I'd just give more meaningful names to variables (and a space after a comma). –  tokland Aug 14 '13 at 19:09
    
@Babai, It can be improved further. Fewer lines doesn't always mean most efficient. –  7stud Aug 14 '13 at 19:10

Functional approach (I'll use mash, use Hash[...] if no Facets):

purchases_grouped = list.group_by { |p| p["rel_id"] }
result = purchases_grouped.mash do |rel_id, purchases|
  total_amount = purchases.map { |p| p["amount"] }.reduce(:+)
  dates = purchases.map { |p| p["date"] }
  accumulated = {total_amount: total_amount, dates: dates}
  [rel_id, accumulated]
end
#=> {1103=>{:total_amount=>5.0, :dates=>["2012-12-21", "2012-12-24"]}, 
#    666 =>{:total_amount=>6.0, :dates=>["2012-12-27", "2012-12-28"]}}
share|improve this answer
    
This is not much elegant... sorry.. :( @alex one is very clear.. each_with_object is good one for this problem.. I think.. –  Arup Rakshit Aug 14 '13 at 18:55
    
@Babai: How would you write it in functional style? –  tokland Aug 14 '13 at 18:56
1  
As soon as you chose group_by, you weren't going to have the best solution. Too many traversals of the data. The data can be accumulated in one pass. –  7stud Aug 14 '13 at 19:00
2  
I like a functional approach, you don't know what the best solution is until you run it with a large data set. –  squiguy Aug 14 '13 at 19:01
    
@7stud: First I write functional solutions with no inplace updates. If I see this particular snippet is slowing my app, then I write some imperative hack, but not before. No doubt this is slower than using a each. –  tokland Aug 14 '13 at 19:03
h = list.group_by{|h| h["rel_id"]}
h.each{|k, v| h[k] = {
  total_amount: v.inject(0){|x, h| x + h["amount"]},
  dates: v.map{|h| h["date"]},
}}

h # => ...

Or

h = list.group_by{|h| h["rel_id"]}
h.each{|k, v| h[k] = {
  total_amount: v.map{|h| h["amount"]}.inject(:+),
  dates: v.map{|h| h["date"]},
}}

h # => ...
share|improve this answer
1  
I did some benchmarking with your first solution. It was surprisingly fast. –  7stud Aug 14 '13 at 23:56
list = [
 {amount: 2.25, rel_id: 1103, date: "2012-12-21"},
 {amount: 2.75, rel_id: 1103, date: "2012-12-24"},
 {amount: 2.85, rel_id: 666, date: "2012-12-27"},
 {amount: 3.15, rel_id: 666, date: "2012-12-28"},
]

results = Hash.new do |hash, key| 
  hash[key] = {}
end

list.each do |hash|
  totals = results[hash[:rel_id]]

  totals[:amount] ||= 0
  totals[:amount] += hash[:amount]

  totals[:dates] ||= []
  totals[:dates] << hash[:date]
end

p results

--output:--
{1103=>{:amount=>5.0, :dates=>["2012-12-21", "2012-12-24"]}, 
 666=>{:amount=>6.0, :dates=>["2012-12-27", "2012-12-28"]}}

Alex Peachey's each_with_object solution modified:

results =  list.each_with_object({}) do |h, acc|
  record = acc[h["rel_id"]] 
  record ||= { total_amount: 0, dates: [] }
  record[:total_amount] += h["amount"]
  record[:dates] << h["date"]
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.