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how could i skip or replace every other character (could be anything) with regex?

"abc123.-def45".gsub(/.(.)?/, '@')

to get

"a@c@2@.@d@f@5"
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3 Answers 3

up vote 5 down vote accepted

Capture the first character instead, and write it back:

"abc123.-def45".gsub(/(.)./, '\1@')

It's important that you don't make the second character optional. Otherwise, in an odd-length string, the last character would lead to a match, and a @ would be appended. Without the ?, the last character will simply fail and remain untouched.

Working demo.

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thank you very much thats an excellent explanation –  user1297102 Jun 13 '13 at 10:52

You can also do this to avoid replacing @ in sequences

"abc123.-def45".gsub(/([^@])[^@]/, '\1@')
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2  
That will offset the alternation by one (so that odd instead of even positions are replaced) if there's a single @ though. E.g. abcd@efgh would lead to a@c@@e@g@ instead of a@c@@@f@h. –  Martin Büttner Jun 13 '13 at 10:36
    
thanks to you both for showing different methods of using regex –  user1297102 Jun 13 '13 at 10:55

The below code will also work:

irb(main):005:0> "abc123.-def45".chars.each_with_index.map {|e,i| !i.even? ? e = "@" : e}.join
=> "a@c@2@.@d@f@5"
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thanks i'm looking to work on my regex :-) –  user1297102 Jun 13 '13 at 10:55
    
ah, may be I didn't read in between the lines :-) –  Anand Jun 13 '13 at 10:55

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