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arr = [1,2,1,3,5,2,4]

How to count the array by group value with sorting. I need the following output..

x[1] = 2  
x[2] = 2  
x[3] = 1  
x[4] = 1  
x[5] = 1

thanks in advance.

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possible duplicate of How to count duplicates in Ruby Arrays –  Andrew Grimm Mar 29 '11 at 22:33
    
Why without a loop? There's going to be a loop going on somewhere. –  the Tin Man Nov 15 '12 at 16:07

9 Answers 9

up vote 36 down vote accepted
x = arr.inject(Hash.new(0)) { |h, e| h[e] += 1 ; h }
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Many thanks michael and Terw. I like this very short. But, can you please briefly explain the above short line. :). –  Mr. Black Mar 29 '11 at 10:24
2  
inject "injects" an accumulator into an Enumerable, which in our case is a Hash with a default value of 0. On every iteration, we add one to the value with the key of the current element (e). Finally we return the accumulator. ruby-doc.org/core/classes/Enumerable.html#M001494 –  Michael Kohl Mar 29 '11 at 10:30
    
The "inject" operation is often called "fold" in functional programming languages, which I think is a more intuitive name. –  JesperE Mar 29 '11 at 20:27
    
But that code doesn't sort hash. So in the end it's need more: Hash[#code here#.sort] or even sort_by –  Dmitry Polushkin Jan 24 '12 at 8:28

Only available under ruby 1.9

Basically the same as Michael's answer, but a slightly shorter way:

x = arr.each_with_object(Hash.new(0)) {|e, h| h[e] += 1}

In similar situations,

  • When the starting element is a mutable object such as an Array, Hash, String, you can use each_with_object, as in the case above.
  • When the starting element is an immutable object such as Numeric, you have to use inject as below.

    sum = (1..10).inject(0) {|sum, n| sum + n} # => 55

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Nice, even though in this specific case it's actually longer. I'll keep each_with_object in mind though :-) –  Michael Kohl Mar 29 '11 at 16:51
1  
In terms of characters, it's longer. In terms of tokens, it's shorter. Thanks for comment. –  sawa Mar 29 '11 at 20:26
    
Thanks @sawa. Absolutely it's very shorter and faster. Because, my actual array is mutable format and it holds a very large amount of data. thanks once again. –  Mr. Black Mar 30 '11 at 3:44
    
Though I've noticed with this approach that the values isn't in sorted order like the answer said. –  Hengjie Oct 7 at 1:21

This should do it

arr = [1,2,1,3,5,2,4]

puts arr.inject(Hash.new(0)) {|h, v| h[v] += 1; h}
#=> {1=>2, 2=>2, 3=>1, 5=>1, 4=>1}
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x = Hash[arr.uniq.map{ |i| [i, arr.count(i)] }]
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smart :) like it –  fl00r Mar 29 '11 at 10:15
1  
but performance-wise, Michael and Terv's answer are better. –  rubyprince Mar 29 '11 at 10:18
    
Michael Kohl beat me, but he's code should be faster. This code takes about twice as long –  ThoKra Mar 29 '11 at 10:18
    
@fl00r..that is interesting..I thought this would be slower as it loops through and then again use count method on the array. Maybe using built in methods has their advantage. :) –  rubyprince Mar 29 '11 at 10:29
    
@fl00r: Really? I originally had a version using count, but thought it wouldn't scale well with array length, so replaced it by my current answer. Can you run your benchmark with somewhat bigger array and compare again. –  Michael Kohl Mar 29 '11 at 10:39

I am sure there are better ways,

>> arr.sort.group_by {|x|x}.each{|x,y| print "#{x} #{y.size}\n"}
1 2
2 2
3 1
4 1
5 1

assign x and y values to a hash as needed.

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it is not necessary to sort before group_by. arr.group_by {...} will do the same thing –  user102008 Aug 25 '11 at 21:37
    
@user102008 The OP implied the results are to be presented in order. Not [2,1].group_by {|x|x} #=> {2=>[2], 1=>[1]} kurumi, what ways are better? –  Cary Swoveland Oct 27 at 19:58
    
@CarySwoveland: group_by returns a Hash which has no order. The order in which entries in a Hash is iterated is unpredictable. –  user102008 Oct 27 at 20:04
    
@user102008, group_by preserves order, at least in MRI 1.9+. AFAIK, it is not documented, but should be, as it's part of the spec. –  Cary Swoveland Oct 27 at 20:14
    
@CarySwoveland: The values corresponding to each key have an order; sorting might be relevant if you cared about that. But there is no order among the keys, for the very fact that the returned value is a Hash. So it would NOT have anything to do with [2,1].group_by {|x|x} #=> {2=>[2], 1=>[1]} –  user102008 Oct 27 at 23:19

Whenever you find someone asserting that something is the fastest on this type of primitive routine, I always find its interesting to confirm that because without confirmation most of us are really just guessing. So I took all of the methods here and benchmarked them.

I took an array of 120 links I extracted from a web page that I needed to group by count and implemented all of these using a seconds = Benchmark.realtime do loop and got all the times.

Assume links is the name of the array I need to count:

#0.00077
seconds = Benchmark.realtime do
  counted_links = {}
  links.each { |e| counted_links[e] = links.count(e) if counted_links[e].nil?}
end
seconds

#0.000232
seconds = Benchmark.realtime do
  counted_links = {}
  links.sort.group_by {|x|x}.each{|x,y| counted_links[x] = y.size}
end

#0.00076
seconds = Benchmark.realtime do 
  Hash[links.uniq.map{ |i| [i, links.count(i)] }]
end

#0.000107 
seconds = Benchmark.realtime do 
  links.inject(Hash.new(0)) {|h, v| h[v] += 1; h}
end

#0.000109
seconds = Benchmark.realtime do 
  links.each_with_object(Hash.new(0)) {|e, h| h[e] += 1}
end

#0.000143
seconds = Benchmark.realtime do 
  links.inject(Hash.new(0)) { |h, e| h[e] += 1 ; h }
end

And then a little bit of ruby to figure out the answer:

times = [0.00077, 0.000232, 0.00076, 0.000107, 0.000109, 0.000143].min
==> 0.000107

So the actual fastest method, ymmv of course, is:

links.inject(Hash.new(0)) {|h, v| h[v] += 1; h}
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I think "leap in logic" befits your conclusion. :-) –  Cary Swoveland Oct 27 at 20:06
arr = [1,2,1,3,5,2,4]
r = {}
arr.each { |e| r[e] = arr.count(e) if r[e].nil?}

Outputs

p r
#==> {1=>2, 2=>2, 3=>1, 5=>1, 4=>1}
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Thanks @thebugfinder –  Mr. Black Oct 22 '12 at 4:16

Just for the record, I recently read about Object#tap here. My solution would be:

Hash.new(0).tap{|h| arr.each{|i| h[i] += 1}}

The #tap method passes the caller to the block and then returns it. This is pretty handy when you have to incrementally build an array/hash.

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Thanks for your record!. –  Mr. Black Jun 16 at 4:22

Yet another - similar to others - approach:

result=Hash[arr.group_by{|x|x}.map{|k,v| [k,v.size]}]
  1. Group by each element's value.
  2. Map the grouping to an array of [value, counter] pairs.
  3. Turn the array of paris into key-values within a Hash, i.e. accessible via result[1]=2 ....
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