Fastest way to check if a string matches a regexp in ruby?
This is a simple benchmark:
require 'benchmark'
"test123" =~ /1/
=> 4
Benchmark.measure{ 1000000.times { "test123" =~ /1/ } }
=> 0.610000 0.000000 0.610000 ( 0.578133)
"test123"[/1/]
=> "1"
Benchmark.measure{ 1000000.times { "test123"[/1/] } }
=> 0.718000 0.000000 0.718000 ( 0.750010)
irb(main):019:0> "test123".match(/1/)
=> #<MatchData "1">
Benchmark.measure{ 1000000.times { "test123".match(/1/) } }
=> 1.703000 0.000000 1.703000 ( 1.578146)
So =~ is faster but it depends what you want to have as a returned value. If you just want to check if the text contains a regex or not use =~
This is the benchmark I have run after finding some articles around the net.
With 2.4.0 the winner is re.match?(str) (as suggested by @wiktor-stribiżew), on previous versions, re =~ str seems to be fastest, although str =~ re is almost as fast.
#!/usr/bin/env ruby
require 'benchmark'
str = "aacaabc"
re = Regexp.new('a+b').freeze
N = 4_000_000
Benchmark.bm do |b|
b.report("str.match re\t") { N.times { str.match re } }
b.report("str =~ re\t") { N.times { str =~ re } }
b.report("str[re] \t") { N.times { str[re] } }
b.report("re =~ str\t") { N.times { re =~ str } }
b.report("re.match str\t") { N.times { re.match str } }
if re.respond_to?(:match?)
b.report("re.match? str\t") { N.times { re.match? str } }
end
end
Results MRI 1.9.3-o551:
$ ./bench-re.rb | sort -t $'\t' -k 2
user system total real
re =~ str 2.390000 0.000000 2.390000 ( 2.397331)
str =~ re 2.450000 0.000000 2.450000 ( 2.446893)
str[re] 2.940000 0.010000 2.950000 ( 2.941666)
re.match str 3.620000 0.000000 3.620000 ( 3.619922)
str.match re 4.180000 0.000000 4.180000 ( 4.180083)
Results MRI 2.1.5:
$ ./bench-re.rb | sort -t $'\t' -k 2
user system total real
re =~ str 1.150000 0.000000 1.150000 ( 1.144880)
str =~ re 1.160000 0.000000 1.160000 ( 1.150691)
str[re] 1.330000 0.000000 1.330000 ( 1.337064)
re.match str 2.250000 0.000000 2.250000 ( 2.255142)
str.match re 2.270000 0.000000 2.270000 ( 2.270948)
Results MRI 2.3.3 (there is a regression in regex matching, it seems):
$ ./bench-re.rb | sort -t $'\t' -k 2
user system total real
re =~ str 3.540000 0.000000 3.540000 ( 3.535881)
str =~ re 3.560000 0.000000 3.560000 ( 3.560657)
str[re] 4.300000 0.000000 4.300000 ( 4.299403)
re.match str 5.210000 0.010000 5.220000 ( 5.213041)
str.match re 6.000000 0.000000 6.000000 ( 6.000465)
Results MRI 2.4.0:
$ ./bench-re.rb | sort -t $'\t' -k 2
user system total real
re.match? str 0.690000 0.010000 0.700000 ( 0.682934)
re =~ str 1.040000 0.000000 1.040000 ( 1.035863)
str =~ re 1.040000 0.000000 1.040000 ( 1.042963)
str[re] 1.340000 0.000000 1.340000 ( 1.339704)
re.match str 2.040000 0.000000 2.040000 ( 2.046464)
str.match re 2.180000 0.000000 2.180000 ( 2.174691)
Starting with Ruby 2.4.0, you may use RegExp#match?:
pattern.match?(string)
Regexp#match? is explicitly listed as a performance enhancement in the release notes for 2.4.0, as it avoids object allocations performed by other methods such as Regexp#match and =~:
Regexp#match?
AddedRegexp#match?, which executes a regexp match without creating a back reference object and changing$~to reduce object allocation.