17

I have

a = ["a", "d", "c", "b", "b", "c", "c"]

and need to print something like (sorted descending by number of occurrences):

c:3
b:2

I understand first part (finding NON-unique) is:

b = a.select{ |e| a.count(e) > 1 }
=> ["c", "b", "b", "c", "c"] 

or

puts b.select{|e, c| [e, a.count(e)] }.uniq

c
b

How to output each non-unique with number of occurrences sorted backwards?

22
puts a.uniq.
       map { | e | [a.count(e), e] }.
       select { | c, _ | c > 1 }.
       sort.reverse.
       map { | c, e | "#{e}:#{c}" }
| improve this answer | |
  • Very elegant! What does the '_' represent? I've not seen that before. – Richard Brown Mar 8 '13 at 0:08
  • 3
    @RichardBrown: A variable name that usually means unused. – Linuxios Mar 8 '13 at 0:08
  • 2
    You can also use underscores before unused variable names like _temporary. It serves the same purpose, but is a little more descriptive. – Ryan Clark Mar 8 '13 at 0:51
  • 1
    It's not the same purpose. _ is a special variable name in Ruby, (inherited from Perl), that many methods write to by default. _temporary or any other variable starting with _... isn't in that category, and is a stand-alone and separate variable in the normal variable list. – the Tin Man Mar 8 '13 at 0:53
  • 3
    I know _ also serves a special purpose, but in this instance, where it was used as an assigned but unused variable and in order to suppress the warning ruby generates in this instance, both options serve the same purpose I believe. – Ryan Clark Mar 8 '13 at 1:15
7

The group_by method is used for this often:

a.group_by{ |i| i }
{
    "a" => [
        [0] "a"
    ],
    "d" => [
        [0] "d"
    ],
    "c" => [
        [0] "c",
        [1] "c",
        [2] "c"
    ],
    "b" => [
        [0] "b",
        [1] "b"
    ]
}

I like:

a.group_by{ |i| i }.each_with_object({}) { |(k,v), h| h[k] = v.size }
{
    "a" => 1,
    "d" => 1,
    "c" => 3,
    "b" => 2
}

Or:

Hash[a.group_by{ |i| i }.map{ |k,v| [k, v.size] }]
{
    "a" => 1,
    "d" => 1,
    "c" => 3,
    "b" => 2
}

One of those might scratch your itch. From there you can reduce the result using a little test:

Hash[a.group_by{ |i| i }.map{ |k,v| v.size > 1 && [k, v.size] }]
{
    "c" => 3,
    "b" => 2
}

If you just want to print the information use:

puts a.group_by{ |i| i }.map{ |k,v| "#{k}: #{v.size}" }
a: 1
d: 1
c: 3
b: 2
| improve this answer | |
  • 1
    group_by{|i| i} can now be expressed as group_by(&:itself) – Rich Feb 26 '19 at 1:10
1

How about:

a.sort.chunk{|x| a.count(x)}.sort.reverse.each do |n, v|
  puts "#{v[0]}:#{n}" if n > 1
end
| improve this answer | |
1

I personally like this solution:

 a.inject({}) {|hash, val| hash[val] ||= 0; hash[val] += 1; hash}.
   reject{|key, value| value == 1}.sort.reverse.
   each_pair{|k,v| puts("#{k}:#{v}")}
| improve this answer | |
0
a.reduce(Hash.new(0)) { |memo,x| memo[x] += 1; memo } # Frequency count.
  .select { |_,count| count > 1 } # Choose non-unique items.
  .sort_by { |x| -x[1] } # Sort by number of occurrences descending.
# => [["c", 3], ["b", 2]]

Also:

a.group_by{|x|x}.map{|k,v|[k,v.size]}.select{|x|x[1]>1}.sort_by{|x|-x[1]}
# => [["c", 3], ["b", 2]]
| improve this answer | |
0

This will give you a hash with element => occurrences:

b.reduce(Hash.new(0)) do |hash, element|
  hash[element] += 1
  hash
end
| improve this answer | |
  • 1
    The block could be put a little bit more elegantly: hash.update(element => hash[element] + 1) – undur_gongor Mar 8 '13 at 0:24
0
puts a.uniq.
     map { |e| a.count(e) > 1 ? [e, a.count(e)] : nil }.compact.
     sort { |a, b| b.last <=> a.last }
| improve this answer | |
  • 2
    @undur_gongor I don't think it is, but it's the same as just having a.uniq... Any way, I kept uniq values as well in my code which makes it bad for the question and I fixed it. – oldergod Mar 8 '13 at 0:32
0

From Ruby 2.7, you can utilise Enumerable#tally and numbered block arguments:

a = ["a", "d", "c", "b", "b", "c", "c"]
puts a.tally.filter { _2 > 1 }.sort_by { -_2 }.map &:first

Here, Enumerable#tally returns a hash like { 'a' => 1, 'b' => 2, ... }, which you then have to filter and sort. After sorting, the hash would've collapsed to a nested array, e.g. [['b', 2], ...]. The last step is to take the first argument of each array element, using &:first.

| improve this answer | |

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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