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I want to remove characters &%*@()!{} from a string. I tried this code:

keyword.gsub!(/[\&\%\*\@\(\)\!\{\}]/, '')`

but it failed.

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1 Answer 1

up vote 6 down vote accepted

Your regex isn't right. It appears you don't understand how [...] works in a regex.

You can use:

gsub(/[&%*@()!{}]+/, '')

For instance:

'foo&%*@()!{}bar'.gsub(/[&%*@()!{}]+/, '') # => "foobar"

An alternate way to do this, without using a regex is to use the tr method:

'foo&%*@()!{}bar'.tr('&%*@()!{}', '') # => "foobar"

The benefit of using tr, AKA "translate" is it doesn't take a regex, and can do deletions, like here, or translations from one character to another. It's also very fast.

require 'benchmark'

n = 1_000_000
Benchmark.bm() do |b|

  b.report { n.times { 'foo&%*@()!{}bar'.gsub(/[&%*@()!{}]+/, '') } }
  b.report { n.times { 'foo&%*@()!{}bar'.tr('&%*@()!{}', '')   } }

end

Returns on my machine running 1.9.3-p362:

   user     system      total        real
4.120000   0.010000   4.130000 (  4.125929)
1.280000   0.000000   1.280000 (  1.282932)
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That benchmark difference is pretty interesting. With ruby 1.8.7, I see 1.21 and 0.9. Under ruby 1.9.2, I see 1.67 and 0.88 and roughly the same for 1.9.3. I wonder why your values for gsub differ so much? –  Jim Schubert Jan 13 '13 at 4:32
    
Don't know. I'm on 1.9.3-p362, and, running it several times shows consistent results on my system. The important thing is, tr is faster than gsub when doing deletes or changes of single characters. –  the Tin Man Jan 13 '13 at 4:51
    
@theTinMan: Your tr function is wrong. It removes []+, which are not invalid character according to OP's question. –  nhahtdh Jan 13 '13 at 6:56
    
You're right. I copied the same line for gsub to tr. It's an easy fix. –  the Tin Man Jan 13 '13 at 6:58
    
@JimSchubert: a hypothesis: 1.9 uses Oniguruma, a much more powerful regexp engine. Power usually comes at a loss of speed, so might be related. –  Amadan Jan 13 '13 at 8:33

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