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I was wondering how one would go about changing the first digit (0-9) that comes after a capital letter (A-Z) in a string to an asterisk WITHOUT using sub. You can put this in a method called replace_digit if you want.

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What about just going through the string, character by character? –  Tim N Dec 6 '12 at 1:40
    
Does no sub mean regex's aren't actually an option? –  rjz Dec 6 '12 at 1:40
1  
@oldergod a regex or brute force, anyway :^) –  rjz Dec 6 '12 at 1:41

1 Answer 1

up vote 2 down vote accepted
a = "not here 0 but here A5 and here B7, okay?"
begin
  loop do
    a[/(?<=[A-Z])\d/] = "*"
  end
rescue IndexError
end
puts a
# not here 0 but here A* and here B*, okay?

No sub :)

EDIT: I just noticed "first digit" - so just remove the loop; and if you can assume there will always be a match, you can remove the exception handling too.

a = "not here 0 but here A5 and here B7, okay?"
a[/(?<=[A-Z])\d/] = "*"
puts a
# not here 0 but here A* and here B7, okay?

EDIT2:

this works too, without lookbehind: a[/[A-Z](\d)/, 1] = "*"

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hi amadan. What does the ?<= stand for in your reg ex? –  Edmund Dec 6 '12 at 2:02
    
@edmund: Positive lookbehind. It means: from here to the left, I want to match an uppercase letter, but I don't want it to become the content of the match. If I put regexp like this: /[A-Z]\d/, then both the uppercase letter and the digit would have been replaced by the asterisk. The regexp as I wrote it says, replace the digit only if preceded by a capital letter (but leave the letter out of it). –  Amadan Dec 6 '12 at 2:04
    
ooo I learned something. nice! But I thought when you do a[something], something is supposed to be an index number (e.g. a[0] would equal "o"). Why is it that you can stuff in a regex in a[something]? –  Edmund Dec 6 '12 at 2:09
    
@Edmund: Because Ruby :p –  Amadan Dec 6 '12 at 2:10
    
haha wow I learned two things –  Edmund Dec 6 '12 at 2:11

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