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I have str = "1, 2, a, 3, 4, z"

I want to use Regex to find and add .3 to the end of all the digits and a colon : to the beginning of all the characters. So the desired output would be:

"1.3, 2.3, :a, 3.3, 4.3, :z"

Can I do that with gsub in Ruby? Is that the most efficient way?

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closed as off-topic by Joseph Silber, HamZa, carols10cents, OGHaza, eugen Feb 28 '14 at 10:27

This question appears to be off-topic. The users who voted to close gave this specific reason:

  • "Questions asking for code must demonstrate a minimal understanding of the problem being solved. Include attempted solutions, why they didn't work, and the expected results. See also: Stack Overflow question checklist" – Joseph Silber, HamZa, carols10cents, OGHaza
If this question can be reworded to fit the rules in the help center, please edit the question.

up vote 5 down vote accepted

String#gsub accepts optional block. The return value of the block is used as substitution string.

str = "1, 2, a, 3, 4, z"
str.gsub(/\d+|[a-z]+/i) { |x| x =~ /\d/ ? x + '.3' : ':' + x }
# => "1.3, 2.3, :a, 3.3, 4.3, :z"

using capturing group:

str.gsub(/(\d+)|([a-z]+)/i) { $1 ? $1 + '.3' : ':' + $2 }
# => "1.3, 2.3, :a, 3.3, 4.3, :z"
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2  
Downvoter: How can I improve the answer? – falsetru Nov 20 '13 at 15:29
1  
@falstru: no idea why you got downvoted. Your answer is better than Marek's imo. – Denis de Bernardy Nov 20 '13 at 15:30
1  
I upvoted, but x =~ /\d/ is redundant. You can improve the answer by using named capture. – sawa Nov 20 '13 at 15:32
1  
@sawa, Thank you for advice. I added another version that use capturing group. Is that what you mean? – falsetru Nov 20 '13 at 15:38
    
That is what I meant. – sawa Nov 20 '13 at 15:39

From String#gsub documentation:

If replacement is a String it will be substituted for the matched text. It may contain back-references to the pattern’s capture groups of the form \d, where d is a group number, or \k, where n is a group name. If it is a double-quoted string, both back-references must be preceded by an additional backslash. However, within replacement the special match variables, such as $&, will not refer to the current match.

The solution:

str = "1, 2, a, 3, 4, z"
str.gsub(/(\d)+/, '\1.3').gsub(/([a-z])+/i, ':\1')
# => "1.3, 2.3, :a, 3.3, 4.3, :z"
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Non-regexp and gsub version:

str = "1, 2, a, 3, 4, z"

result = str.split(', ').map do |chr|
  case chr.downcase
    when 'a'..'z' then  ":#{chr}"
    when '1'..'9' then  "#{chr}.3"
  end
end.join(', ')
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