I have an array of hashes like following

[
  { :foo => 'foo', :bar => 2 },
  { :foo => 'foo', :bar => 3 },
  { :foo => 'foo', :bar => 5 },
]

I am trying to sort above array in descending order according to the value of :bar in each hash.

I am using sort_by like following to sort above array.

a.sort_by { |h| h[:bar] }

However above sorts the array in ascending order. How do I make it sort in descending order?

One solution was to do following:

a.sort_by { |h| -h[:bar] }

But that negative sign does not seem appropriate. Any views?

  • 3
    Given the other options I still think -h[:bar] is the most elegant. What do you not like about it? – Michael Kohl Apr 15 '10 at 10:34
  • 1
    I was much more interested on conveying the intent of code. – Waseem Apr 17 '10 at 9:58
  • @Waseem could I trouble you to update the accepted answer? – colllin Feb 22 '13 at 3:05
  • 6
    @Waseem There's nothing wrong with the current answer. There's just happens to be a far better answer. the Tin Man's answer is much more thorough and shows that sort_by.reverse is dramatically more efficient than the currently accepted answer. I believe it also better addresses the concern you mentioned above for "conveying the intent of code". On top of that, the Tin Man has updated his answer for the current version of ruby. This question has been viewed over 15k times. If you can save even 1 second of each viewer's time, I think it's worth it. – colllin Feb 26 '13 at 5:36
  • 3
    @collindo Thanks I did it. :) – Waseem Feb 26 '13 at 18:40
up vote 487 down vote accepted

It's always enlightening to do a benchmark on the various suggested answers. Here's what I found out:

#!/usr/bin/ruby

require 'benchmark'

ary = []
1000.times { 
  ary << {:bar => rand(1000)} 
}

n = 500
Benchmark.bm(20) do |x|
  x.report("sort")               { n.times { ary.sort{ |a,b| b[:bar] <=> a[:bar] } } }
  x.report("sort reverse")       { n.times { ary.sort{ |a,b| a[:bar] <=> b[:bar] }.reverse } }
  x.report("sort_by -a[:bar]")   { n.times { ary.sort_by{ |a| -a[:bar] } } }
  x.report("sort_by a[:bar]*-1") { n.times { ary.sort_by{ |a| a[:bar]*-1 } } }
  x.report("sort_by.reverse!")   { n.times { ary.sort_by{ |a| a[:bar] }.reverse } }
end

                          user     system      total        real
sort                  3.960000   0.010000   3.970000 (  3.990886)
sort reverse          4.040000   0.000000   4.040000 (  4.038849)
sort_by -a[:bar]      0.690000   0.000000   0.690000 (  0.692080)
sort_by a[:bar]*-1    0.700000   0.000000   0.700000 (  0.699735)
sort_by.reverse!      0.650000   0.000000   0.650000 (  0.654447)

I think it's interesting that @Pablo's sort_by{...}.reverse! is fastest. Before running the test I thought it would be slower than "-a[:bar]" but negating the value turns out to take longer than it does to reverse the entire array in one pass. It's not much of a difference, but every little speed-up helps.


Please note that these results are different in Ruby 1.9

Here are results for Ruby 1.9.3p194 (2012-04-20 revision 35410) [x86_64-darwin10.8.0]:

                           user     system      total        real
sort                   1.340000   0.010000   1.350000 (  1.346331)
sort reverse           1.300000   0.000000   1.300000 (  1.310446)
sort_by -a[:bar]       0.430000   0.000000   0.430000 (  0.429606)
sort_by a[:bar]*-1     0.420000   0.000000   0.420000 (  0.414383)
sort_by.reverse!       0.400000   0.000000   0.400000 (  0.401275)

These are on an old MacBook Pro. Newer, or faster machines, will have lower values, but the relative differences will remain.


Here's a bit updated version on newer hardware and the 2.1.1 version of Ruby:

#!/usr/bin/ruby

require 'benchmark'

puts "Running Ruby #{RUBY_VERSION}"

ary = []
1000.times {
  ary << {:bar => rand(1000)}
}

n = 500

puts "n=#{n}"
Benchmark.bm(20) do |x|
  x.report("sort")               { n.times { ary.dup.sort{ |a,b| b[:bar] <=> a[:bar] } } }
  x.report("sort reverse")       { n.times { ary.dup.sort{ |a,b| a[:bar] <=> b[:bar] }.reverse } }
  x.report("sort_by -a[:bar]")   { n.times { ary.dup.sort_by{ |a| -a[:bar] } } }
  x.report("sort_by a[:bar]*-1") { n.times { ary.dup.sort_by{ |a| a[:bar]*-1 } } }
  x.report("sort_by.reverse")    { n.times { ary.dup.sort_by{ |a| a[:bar] }.reverse } }
  x.report("sort_by.reverse!")   { n.times { ary.dup.sort_by{ |a| a[:bar] }.reverse! } }
end

# >> Running Ruby 2.1.1
# >> n=500
# >>                            user     system      total        real
# >> sort                   0.670000   0.000000   0.670000 (  0.667754)
# >> sort reverse           0.650000   0.000000   0.650000 (  0.655582)
# >> sort_by -a[:bar]       0.260000   0.010000   0.270000 (  0.255919)
# >> sort_by a[:bar]*-1     0.250000   0.000000   0.250000 (  0.258924)
# >> sort_by.reverse        0.250000   0.000000   0.250000 (  0.245179)
# >> sort_by.reverse!       0.240000   0.000000   0.240000 (  0.242340)

New results running the above code using Ruby 2.2.1 on a more recent Macbook Pro. Again, the exact numbers aren't important, it's their relationships:

Running Ruby 2.2.1
n=500
                           user     system      total        real
sort                   0.650000   0.000000   0.650000 (  0.653191)
sort reverse           0.650000   0.000000   0.650000 (  0.648761)
sort_by -a[:bar]       0.240000   0.010000   0.250000 (  0.245193)
sort_by a[:bar]*-1     0.240000   0.000000   0.240000 (  0.240541)
sort_by.reverse        0.230000   0.000000   0.230000 (  0.228571)
sort_by.reverse!       0.230000   0.000000   0.230000 (  0.230040)
  • 34
    Super useful. Thanks for the extra effort. – Joshua Pinter Jan 25 '12 at 23:36
  • 7
    i love it when people provide the benchmark proof like this!! Awesome! – ktec Oct 12 '12 at 12:43
  • 24
    "i love it when people provide the benchmark proof like this!!" I do too, because then I don't have to. – the Tin Man Oct 24 '12 at 4:21
  • 7
    @theTinMan Can you please provide a TL;DR for your answer. All this benchmark information is quite useful. But a TL;DR on top of the answer will be useful for people who just want the answer. I know they should read the whole explanation and I think they will. Still a TL;DR will be quite useful IMHO. Thanks for your effort. – Waseem Feb 26 '13 at 18:45
  • 6
    I agree with @Waseem. As well-researched as this answer is, the OP did not ask "what's the fastest way to do a descending sort in Ruby". A TL;DR at the top showing simple uses, followed by the benchmarks, would improve this answer IMO. – user2189331 Jan 9 '15 at 0:57

Just a quick thing, that denotes the intent of descending order.

descending = -1
a.sort_by { |h| h[:bar] * descending }

(Will think of a better way in the mean time) ;)


a.sort_by { |h| h[:bar] }.reverse!
  • Pablo, nice job on finding a better way! See the benchmark I did. – the Tin Man Apr 16 '10 at 6:25
  • the first method is faster (though maybe uglier) because it only loops once. As for the second, you don't need the !, that's for inplace operations. – tokland Nov 19 '10 at 12:13
  • 3
    If you don't use the bang after reverse you won't be reversing the array but creating another one that's reversed. – Pablo Fernandez Nov 19 '10 at 15:17
  • 3
    this works for numbers, but not other types like strings – user102008 Sep 28 '11 at 19:33

You could do:

a.sort{|a,b| b[:bar] <=> a[:bar]}
  • 4
    but the whole point of using sort_by was that it avoided running the comparison function so many times – user102008 Sep 28 '11 at 19:33
  • 2
    -1. sort_by is so much more efficient, and more readable. Negating the value or doing a reverse at the end will be faster and more readable. – Marc-André Lafortune Nov 5 '12 at 1:20

What about:

 a.sort {|x,y| y[:bar]<=>x[:bar]}

It works!!

irb
>> a = [
?>   { :foo => 'foo', :bar => 2 },
?>   { :foo => 'foo', :bar => 3 },
?>   { :foo => 'foo', :bar => 5 },
?> ]
=> [{:bar=>2, :foo=>"foo"}, {:bar=>3, :foo=>"foo"}, {:bar=>5, :foo=>"foo"}]

>>  a.sort {|x,y| y[:bar]<=>x[:bar]}
=> [{:bar=>5, :foo=>"foo"}, {:bar=>3, :foo=>"foo"}, {:bar=>2, :foo=>"foo"}]
  • Yeah it actually works, but I think the PO wants to show intent with the code (he has a working solution already). – Pablo Fernandez Apr 15 '10 at 1:42

Regarding the benchmark suite mentioned... these results also hold for sorted arrays. sort_by / reverse it is :)

Eg:

# foo.rb
require 'benchmark'

NUM_RUNS = 1000

# arr = []
arr1 = 3000.times.map { { num: rand(1000) } }
arr2 = 3000.times.map { |n| { num: n } }.reverse

Benchmark.bm(20) do |x|
  { 'randomized'     => arr1,
    'sorted'         => arr2 }.each do |label, arr|
    puts '---------------------------------------------------'
    puts label

    x.report('sort_by / reverse') {
      NUM_RUNS.times { arr.sort_by { |h| h[:num] }.reverse }
    }
    x.report('sort_by -') {
      NUM_RUNS.times { arr.sort_by { |h| -h[:num] } }
    }
  end
end

And the results:

$: ruby foo.rb
                           user     system      total        real
---------------------------------------------------
randomized
sort_by / reverse      1.680000   0.010000   1.690000 (  1.682051)
sort_by -              1.830000   0.000000   1.830000 (  1.830359)
---------------------------------------------------
sorted
sort_by / reverse      0.400000   0.000000   0.400000 (  0.402990)
sort_by -              0.500000   0.000000   0.500000 (  0.499350)
  • You should be able to do sort_by{}.reverse! (reverse without the bang creates an new array and I'd expect that to be slower of course) – bibstha Sep 15 '17 at 18:34

I see that we have (beside others) basically two options:

a.sort_by { |h| -h[:bar] }

and

a.sort_by { |h| h[:bar] }.reverse

While both ways give you the same result when your sorting key is unique, keep in mind that the reverse way will reverse the order of keys that are equal.

Example:

a = [{foo: 1, bar: 1},{foo: 2,bar: 1}]
a.sort_by {|h| -h[:bar]}
 => [{:foo=>1, :bar=>1}, {:foo=>2, :bar=>1}]
a.sort_by {|h| h[:bar]}.reverse
 => [{:foo=>2, :bar=>1}, {:foo=>1, :bar=>1}]

While you often don't need to care about this, sometimes you do. To avoid such behavior you could introduce a second sorting key (that for sure needs to be unique at least for all items that have the same sorting key):

a.sort_by {|h| [-h[:bar],-h[:foo]]}
 => [{:foo=>2, :bar=>1}, {:foo=>1, :bar=>1}]
a.sort_by {|h| [h[:bar],h[:foo]]}.reverse
 => [{:foo=>2, :bar=>1}, {:foo=>1, :bar=>1}]
  • +1 for pointing out that the semantics of reverse are different. I believe it will also mess up a previous sort, in the case where one is trying to apply multiple sorts in some order. – johncip Jun 6 at 7:01

For those folks who like to measure speed in IPS ;)

require 'benchmark/ips'

ary = []
1000.times { 
  ary << {:bar => rand(1000)} 
}

Benchmark.ips do |x|
  x.report("sort")               { ary.sort{ |a,b| b[:bar] <=> a[:bar] } }
  x.report("sort reverse")       { ary.sort{ |a,b| a[:bar] <=> b[:bar] }.reverse }
  x.report("sort_by -a[:bar]")   { ary.sort_by{ |a| -a[:bar] } }
  x.report("sort_by a[:bar]*-1") { ary.sort_by{ |a| a[:bar]*-1 } }
  x.report("sort_by.reverse!")   { ary.sort_by{ |a| a[:bar] }.reverse }
  x.compare!
end

And results:

Warming up --------------------------------------
                sort    93.000  i/100ms
        sort reverse    91.000  i/100ms
    sort_by -a[:bar]   382.000  i/100ms
  sort_by a[:bar]*-1   398.000  i/100ms
    sort_by.reverse!   397.000  i/100ms
Calculating -------------------------------------
                sort    938.530  (± 1.8%) i/s -      4.743k in   5.055290s
        sort reverse    901.157  (± 6.1%) i/s -      4.550k in   5.075351s
    sort_by -a[:bar]      3.814k (± 4.4%) i/s -     19.100k in   5.019260s
  sort_by a[:bar]*-1      3.732k (± 4.3%) i/s -     18.706k in   5.021720s
    sort_by.reverse!      3.928k (± 3.6%) i/s -     19.850k in   5.060202s

Comparison:
    sort_by.reverse!:     3927.8 i/s
    sort_by -a[:bar]:     3813.9 i/s - same-ish: difference falls within error
  sort_by a[:bar]*-1:     3732.3 i/s - same-ish: difference falls within error
                sort:      938.5 i/s - 4.19x  slower
        sort reverse:      901.2 i/s - 4.36x  slower

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