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I've read [this][1] and [this][2], but they didn't quite answer my question.

Suppose I have the following product name & code:

Cool Product 9000 (CP9000)

I want to strip off the last space and everything after it to just be left with:

Cool Product 9000

How would I accomplish that?

And if you know of a guide or tutorial out there that would have explained this, feel free to just point me to that instead.

EDIT: My apologies if my original question was slightly unclear. I appreciate all the answers, and I'll test them all to see which I like best before marking one as the answer.

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4 Answers 4

up vote 2 down vote accepted

Same as OMG's approach but modifying s itself:

s = 'Cool Product 9000 (CP9000)'
s[s.rindex(' ')..-1] = ''

s
# => "Cool Product 9000"
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This should do:

string.sub!(/\s+\S*$/, '')

But, for parenthesized goodness, you can also do:

string.sub!(/\s+\(.*?$/, '')

and it will catch (and not catch) the examples given by @Phrogz below:

foo bar baz

will not be altered and

foo bar (bar baz)

will be turned into

foo bar
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1  
The OP said explicitly <<I want to strip off the last space and everything after it to just be left with>> –  Massa Jun 20 '13 at 4:06
    
+1, as I don't love to guess beyond more whenever OP already mentioned his/her requirement. –  Arup Rakshit Jun 20 '13 at 4:18
    
My mistake, Massa. +1 :) I was misled by the disparity between the question title and sample data and that sentence. I have deleted my disparaging (and incorrect) comment. –  Phrogz Jun 20 '13 at 5:07
    
While probably not the cleanest (but sure easy), couldn't ".split"ing the string into an array, deleting last element, then rejoining it work too? I thought about that after you answered. –  Kyle Carlson Jun 28 '13 at 20:37
s = 'Cool Product 9000 (CP9000)'
s[0...s.rindex(" ")]
# => "Cool Product 9000"
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stripped = string.sub /\s*\([^)]+\)\z/, ''

That says:

  • Find some optional whitespace \s*
  • …followed by a literal open parenthesis \(
  • …followed by one or more characters that are not a literal close parenthesis [^)]+
  • …followed by a literal close parenthesis \)
  • …followed by the end of the string \z

and replace it with nothing.

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use the ungreedy-qualifier, Luke! /\s*\(.*?\)\z/ :D –  Massa Jun 20 '13 at 4:11
    
@Massa - That does the same thing but performs less well in general because of backtracking. –  pguardiario Jun 20 '13 at 4:51

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