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If I want to remove last character from a string, then I simply use

'string'[0..-1]

But how do I remove the second character from a string?

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2  
I do not want to vote down because I don't wanna be mean, but did you even think about it? Or did you read any book or documentation? –  texasbruce May 22 '12 at 18:03
    
'string'[0..-1] doesn't remove the character. It returns all characters up to the end of the string. 'string'[0..-1] => "string" –  the Tin Man May 22 '12 at 20:24

4 Answers 4

up vote 2 down vote accepted

I'm assuming you mean remove the second character and keep the rest of the string.

hello => hllo

s[0].chr+s[2..-1]

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2  
I failed at reading comprehension :D. +1 –  Ed S. May 22 '12 at 18:06
    
thanks, pretty cool –  user984621 May 22 '12 at 18:10

Easiest way is

str[1] = ''   #1.9.3

or

str[1,1] = '' #1.8.7

I am not sure if it will work in Jruby because it has different way of manipulating string. If it does not work, use @Finbarr 's method and it should work.

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Beside the question How it may be important to now which is the fastest method.

I made a benchmark with the other answers and with a solution with slice! and sub!.

require 'benchmark'
N = 100_000 #Number of Test loop

STR = '0123456789'

REGEXP = /\A(.)./
Benchmark.bmbm(10) {|b|

  b.report('str[0].chr+str[2..-1]') { N.times { 
        str = STR.dup
        str = str[0].chr+str[2..-1]
      }}
  b.report('str[1]') { N.times { 
        str = STR.dup
        str[1] = ''
      }}
  b.report('slice!') { N.times { 
        str = STR.dup
        str.slice!(1)
      }}          
  b.report('sub!') { N.times { 
        str = STR.dup
        str.sub!(/\A(.)./, '\1')
      }}          
  b.report('sub!/REGEXP') { N.times { 
        str = STR.dup
        str.sub!(REGEXP, '\1')  #Avoid reinitialization of regex for each loop
      }}
} #Benchmark

My results (windows, Ruby 1.9.3)

Rehearsal ---------------------------------------------------------
str[0].chr+str[2..-1]   0.203000   0.000000   0.203000 (  0.171875)
str[1]                  0.094000   0.000000   0.094000 (  0.109375)
slice!                  0.094000   0.000000   0.094000 (  0.125000)
sub!                    0.250000   0.016000   0.266000 (  0.265625)
sub!/REGEXP             0.265000   0.016000   0.281000 (  0.234375)
------------------------------------------------ total: 0.938000sec

                            user     system      total        real
str[0].chr+str[2..-1]   0.188000   0.000000   0.188000 (  0.171875)
str[1]                  0.125000   0.000000   0.125000 (  0.109375)
slice!                  0.172000   0.000000   0.172000 (  0.125000)
sub!                    0.218000   0.015000   0.233000 (  0.265625)
sub!/REGEXP             0.282000   0.000000   0.282000 (  0.250000)
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Benchmarks for the win! –  Wayne Conrad May 23 '12 at 0:25
sin = 'string'
sout = sin[0] + sin[2..-1]
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