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To count the number of spaces at the beginning and end of string s I do:

s.index(/[^ ]/)              # Number of spaces at the beginning of s
s.reverse.index(/[^ ]/)      # Number of spaces at the end of s

This approach requires the edge case when s contains spaces only to be handled separately.

Is there a better (more elegant / efficient) method to do so?

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5 Answers 5

up vote 9 down vote accepted

another version, this must be the shortest possible

s[/\A */].size
s[/ *\z/].size
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Better * instead of + for cases like " aa" or empty strings. –  steenslag May 4 '12 at 12:46
    
Great solution, Thanks! –  Misha Moroshko May 4 '12 at 12:49
    
thanks for the edit Misha, is better indeed –  peter May 4 '12 at 12:54

You could do it at once:

_, spaces_at_beginning, spaces_at_end = /^( *).*?( *)$/.match(s).to_a.map(&:length)

Definitely not more elegant though.

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I don't know if it is more efficient, but this works as well.

s.count(' ') - s.lstrip.count(' ')
s.count(' ') - s.rstrip.count(' ')
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It's also easy to do:

beginning =  s.length - s.lstrip.length
ending = s.length - s.rstrip.length
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This approach won't work if s contains other white spaces, e.g. s = "\tx" –  Misha Moroshko May 4 '12 at 11:51
    
The \t would count as a single space. However, probably I've not understood what you meant; how would you want to treat the tab case? –  Alberto Moriconi May 4 '12 at 14:27
    
\t should be treated as any other character. The question is about counting spaces. –  Misha Moroshko May 4 '12 at 23:24
    
I'm sorry then, i didn't understand properly your question :) –  Alberto Moriconi May 5 '12 at 10:05
s.split(s.strip).first.size
s.split(s.strip).last.size

you could also do

beginning_spaces_length , ending_spaces_length = s.split(s.strip).map(&:size) 
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