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I have an object called user. I can get its name by user.name, and its value has both the first name and last name such as Jon Doe. What is the most efficient and elegant way of grabbing the first character up until the space character so that I get Jon?

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5  
For a hack this will work (btw it belongs in the User class so that you say user.first_name, not user.name.split.first), but I think you should consider building the first_name and last_name functionality into the User class rather than relying on an unspecified format, which will likely lead to errors. ie (you should keep them as separate attributes, then consolidating them for the name: class User; def name; "#{first_name} #{last_name}" end end) –  Joshua Cheek Jul 3 '11 at 21:37

4 Answers 4

up vote 1 down vote accepted

The following will split the string on spaces, and will output the first element (in your case, this would be the first name).

user.name.split[0]
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I would say:

s.split[0] # s = user.name

or

s.split.first

These both split the string on whitespace into an array of strings and return the first element. It will still work even if only a single name is given instead of both first and last.

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$`

is precisely what you're looking for.

"John Doe" =~ / /
$` # => "John"

It's also faster than the alternatives listed in Knut's answer:

require 'benchmark'

TEST_LOOPS = 10_000_000
NAME = 'Jon Doe the third'

#~ p NAME.split[0]
#~ p NAME.split.first
#~ p NAME[/^\S*/]
#~ p NAME.split(/\s/, 2).first
#~ p NAME.split(/\s/, 2)[0]
#~ p NAME.split(' ', 2)[0]
#~ exit

Benchmark.bmbm(10) {|b|

  b.report('[0]') {
   TEST_LOOPS.times { 
      NAME.split[0]
   }            #Testloops
  }             #b.report

  b.report('[0]2regex') {
   TEST_LOOPS.times { 
      NAME.split(/\s/, 2)[0]
   }            #Testloops
  }             #b.report
  b.report('[0]2string') {
   TEST_LOOPS.times { 
      NAME.split(' ', 2)[0]
   }            #Testloops
  }             #b.report

b.report('first') {
   TEST_LOOPS.times { 
      NAME.split.first
   }            #Testloops
  }             #b.report
  b.report('first2regex') {
   TEST_LOOPS.times { 
      NAME.split(/\s/, 2).first
   }            #Testloops
  }             #b.report
  b.report('first2string') {
   TEST_LOOPS.times { 
      NAME.split(' ', 2).first
   }            #Testloops
  }             #b.report
  b.report('regex') {
   TEST_LOOPS.times { 
      NAME[/^\S*/]
   }            #Testloops
  }             #b.report

  b.report('dollar backtick') {
   TEST_LOOPS.times { 
      NAME =~ / /
      $`
   }            #Testloops
  }             #b.report

} #Benchmark

Gives

Rehearsal ---------------------------------------------------
[0]              30.453000   0.797000  31.250000 ( 31.311608)
[0]2regex        21.094000   0.000000  21.094000 ( 23.651419)
[0]2string       19.188000   0.000000  19.188000 ( 20.999215)
first            34.187000   0.782000  34.969000 ( 39.935742)
first2regex      24.078000   0.000000  24.078000 ( 26.813530)
first2string     19.125000   0.000000  19.125000 ( 19.411310)
regex            13.094000   0.000000  13.094000 ( 13.242792)
dollar backtick  12.219000   0.000000  12.219000 ( 12.227719)
---------------------------------------- total: 175.017000sec

                      user     system      total        real
[0]              30.859000   0.734000  31.593000 ( 33.809723)
[0]2regex        20.891000   0.000000  20.891000 ( 21.156553)
[0]2string       18.890000   0.000000  18.890000 ( 19.997051)
first            32.516000   0.812000  33.328000 ( 36.216360)
first2regex      22.000000   0.000000  22.000000 ( 22.853772)
first2string     19.781000   0.000000  19.781000 ( 22.010805)
regex            13.359000   0.000000  13.359000 ( 14.892417)
dollar backtick  12.328000   0.000000  12.328000 ( 13.253315)
share|improve this answer

I was curious, what's the fastest solution. My result was the regex of Wayne.

One word about split: If your name has more parts, you may stop after the first split. You may do this with

String#split(/\s/, 2)

My Benchmark:

require 'benchmark'

TEST_LOOPS = 10_000_000
NAME = 'Jon Doe the third'

#~ p NAME.split[0]
#~ p NAME.split.first
#~ p NAME[/^\S*/]
#~ p NAME.split(/\s/, 2).first
#~ p NAME.split(/\s/, 2)[0]
#~ p NAME.split(' ', 2)[0]
#~ exit

Benchmark.bmbm(10) {|b|

  b.report('[0]') {
   TEST_LOOPS.times { 
      NAME.split[0]
   }            #Testloops
  }             #b.report

  b.report('[0]2regex') {
   TEST_LOOPS.times { 
      NAME.split(/\s/, 2)[0]
   }            #Testloops
  }             #b.report
  b.report('[0]2string') {
   TEST_LOOPS.times { 
      NAME.split(' ', 2)[0]
   }            #Testloops
  }             #b.report

b.report('first') {
   TEST_LOOPS.times { 
      NAME.split.first
   }            #Testloops
  }             #b.report
  b.report('first2regex') {
   TEST_LOOPS.times { 
      NAME.split(/\s/, 2).first
   }            #Testloops
  }             #b.report
  b.report('first2string') {
   TEST_LOOPS.times { 
      NAME.split(' ', 2).first
   }            #Testloops
  }             #b.report
  b.report('regex') {
   TEST_LOOPS.times { 
      NAME[/^\S*/]
   }            #Testloops
  }             #b.report

  b.report('dollar backtick') {
   TEST_LOOPS.times { 
      NAME =~ / /
      $`
   }            #Testloops
  }             #b.report

} #Benchmark

The Result:

Rehearsal ---------------------------------------------------
[0]              30.453000   0.797000  31.250000 ( 31.311608)
[0]2regex        21.094000   0.000000  21.094000 ( 23.651419)
[0]2string       19.188000   0.000000  19.188000 ( 20.999215)
first            34.187000   0.782000  34.969000 ( 39.935742)
first2regex      24.078000   0.000000  24.078000 ( 26.813530)
first2string     19.125000   0.000000  19.125000 ( 19.411310)
regex            13.094000   0.000000  13.094000 ( 13.242792)
dollar backtick  12.219000   0.000000  12.219000 ( 12.227719)
---------------------------------------- total: 175.017000sec

                      user     system      total        real
[0]              30.859000   0.734000  31.593000 ( 33.809723)
[0]2regex        20.891000   0.000000  20.891000 ( 21.156553)
[0]2string       18.890000   0.000000  18.890000 ( 19.997051)
first            32.516000   0.812000  33.328000 ( 36.216360)
first2regex      22.000000   0.000000  22.000000 ( 22.853772)
first2string     19.781000   0.000000  19.781000 ( 22.010805)
regex            13.359000   0.000000  13.359000 ( 14.892417)
dollar backtick  12.328000   0.000000  12.328000 ( 13.253315)
share|improve this answer
    
Is it ok if I incorporate my results into your answer? –  Andrew Grimm Jul 3 '11 at 22:55
    
It's ok, just do it. –  knut Jul 4 '11 at 6:35

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