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Let's say I have an array like this:

[
  {
    "player_id"         => 1,
    "number_of_matches" => 2,
    "goals"             => 5
  },
  {
    "player_id"         => 2,
    "number_of_matches" => 4,
    "goals"             => 10
  }
]

I want to have the average goals per match among all the players, not the average for each individual player, but the total average.

I have in mind doing it with .each and storing each of the individual averages, and at the end add them all and divide by the number of players I have. However, I am looking for a Ruby/ one-liner way of doing this.

share|improve this question
    
You might want to fix your array/hash so that it's actually valid Ruby. – Dominik Honnef Mar 9 '12 at 18:45
    
Sorry, I get a JSON and I map it to a hash. Let me edit that. – Nobita Mar 9 '12 at 18:46
2  
One-liners are interesting, but often overrated, IMO. I think asking for an elegant and clean solution is better than asking for a one-liner. – Andrew Marshall Mar 9 '12 at 19:02
    
@Andrew: Agreed, especially because this doesn't seem to be a problem that can be solved elegantly in one libe. – Niklas B. Mar 9 '12 at 19:04
    
@AndrewMarshall You are right. I will take that into account when formulating this kind of questions to avoid confusion in answers. – Nobita Mar 9 '12 at 19:05
up vote 10 down vote accepted

As requested, a one-liner:

average = xs.map { |x| x["goals"].to_f / x["number_of_matches"] }.reduce(:+) / xs.size

Another approach, less space-efficient but more clear and maintainablem wold be:

goals, matches = xs.map { |x| [x["goals"], x["number_of_matches"]] }.transpose 
average = goals.reduce(:+).to_f / matches.reduce(:+) if goals
share|improve this answer
    
Nice and clean. – Niklas B. Mar 9 '12 at 18:54
    
-1 OP asked for a one liner. – Kyle Mar 9 '12 at 18:58
    
Kyle: Doing this in one line will require code repetition or inaccurate results. – Niklas B. Mar 9 '12 at 19:01
    
Niklas: code repetition? Please explain how my solution is repeating code? It makes one pass over the array and produces the result. – Kyle Mar 9 '12 at 19:18
    
@Kyle: I said or inaccurate results, like your solution, which sums up the individual division errors. If at all, you'd have to use Rational. – Niklas B. Mar 9 '12 at 19:21

A slight modification to tokland's answer.

items.map{|e| e.values_at("goals", "number_of_matches")}.transpose.map{|e| e.inject(:+)}.instance_eval{|goals, matches| goals.to_f/matches}
share|improve this answer
    
Heh, nice trick with instance_eval :) I'd rather not see that in production code, though :P – Niklas B. Mar 9 '12 at 19:11
1  
that's a witty use of instance_eval, I hadn't seen it previously. I use a similar pattern (sparingly): class Object; def as; yield self; end; end. And now as can be used the same way than in your code. – tokland Mar 9 '12 at 19:32
a = [{player_id:1 , match_num:2, goals: 5}, {player_id:2 , match_num:4, goals: 10}]

a.reduce(0){|avg, p| avg += p[:goals].to_f/p[:match_num]}/a.size

Edit: renamed keys and block args to reduce char count. For those who care.

First, your keys need to use => if your going to use strings as keys.

reduce will iterate over the array and sum the individual averages for each player and finally we divide that result by the number of total players. The '0' in the parenthesis is your starting number for reduce.

share|improve this answer
1  
arr.map { |p| p[:goals].to_f / p[:number_of_matches] }.reduce(:+) / arr.size would be a bit shorter (and not overflow the code div). – Niklas B. Mar 9 '12 at 19:05
    
Out of 93 characters in your one-liner, only 3 are spaces, and a few more around operators would make it far more readable. – Andrew Marshall Mar 9 '12 at 19:05
    
Niklas: you are mapping and then reducing, thus iterating over the array twice when only one pass is required. – Kyle Mar 9 '12 at 19:14
1  
@Kyle: Yes, but a one-liner that does not fit the screen is not a one-liner. Usually code should wrap at about column 80. If performance were a concern, one would probably not choose Ruby for the job. Also, both solutions are O(n), so it's not a "real" algorithmic difference. – Niklas B. Mar 9 '12 at 19:21

To make string shorter, lets rename "number_of_matches" to "matches"

a = [
  {"player_id":1 , "matches":2, "goals": 5}, 
  {"player_id":2 , "matches":4, "goals": 10}
]

a.reduce([0,0]){|sum,h|[sum.first+h["goals"],sum.last+h["matches"]]}.reduce{|sum,m|sum.to_f/m}
#=> 2.5
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