Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I need a one line gsub to replace all the non-digits in a string but only if the non-digits are not more than three and if the total length of the digits is 10

I have this which fits the first condition

p "0177/385490".gsub(/((\d+)\D?(\d+)\D?(\d+)\D?+(\d+))/,'\2\3\4\5') 
#=>"0177385490"

but when i try this the {10} check doesn't work

p "0177/385490".gsub(/((\d+)\D?(\d+)\D?(\d+)\D?+(\d+)){10}/,'\2\3\4\5') 
#=>"0177/385490"

how to do this please ?

EDIT

i managed to to it like this, but how to do this in a oneline gsub ?

strings = [
   "0473/385 490",
   "0473/385490",
   "0473 38 54 90",
   "0473/385 4901"    #this one is't captured
 ]

 strings.each do |s|
   if /((\d+)\D?(\d+)\D?(\d+)\D?+(\d+))/ =~ s
     if "#{$2}#{$3}#{$4}#{$5}".length == 10
       puts "#{$2}#{$3}#{$4}#{$5}"
     end
   end
 end

EDIT: to show why it really needs to be a onle line gsub here my routine, there will be more replacements added

def cleanup text
  replacements = [
     {:pattern => /(04\d{2}) (\d{2}) (\d{2}) (\d{2})/, :replace_with => '\1\2\3\4'},
     {:pattern => /(0\d)(\/| |-)(\d{3}) (\d{2}) (\d{2})/, :replace_with => '\1\3\4\5'},
     {:pattern => /(\d{6} )(\d{3})-(\d{2})/, :replace_with => '\1\2 \3'},
     {:pattern => /(\d{2,4})\D?(\d{2,3})\D?(\d{2,3})/, :replace_with => '\1\2\3'}
  ].each{|replacement|text.gsub!(replacement[:pattern], replacement[:replace_with])}
  text
end
share|improve this question
    
Why do you need a one-liner, and why does it need to use gsub? –  Lars Haugseth Jun 21 '12 at 12:13
    
i do a series of replacements which are put in an array, each time the searchpattern and the replacementpattern, this needs to be added to that array –  peter Jun 21 '12 at 12:36
    
You should consider implementing each processing step as a method instead, and using an array of method names, so that some other programmer (or yourself in 6 months) can get at least a hint of what is going on. –  Lars Haugseth Jun 21 '12 at 13:23
    
tens of methods each doing the same thing ? sorry but that is not efficient, i use this little routine in all script that do mupltiple regex replacements, all i have to do is adjust the search and replace patterns and done –  peter Jun 21 '12 at 13:35

5 Answers 5

I think a one-line gsub wouldn't be overly readable. Here's my approach:

chars, non_chars = s.each_char.partition { |c| c =~ /\d/ }
puts chars.join if chars.size == 10 && non_chars.size <= 3

Clean and easy to read, without any magic variables. Plus it clearly shows the rules you have imposed on the string.

share|improve this answer

Here's a one-liner with gsub, mostly to illustrate why Michael Kohl's approach is better:

(digits = s.gsub(/\D/, '')).length == 10 && s.length < 14 ? digits : s
share|improve this answer

You may use something like this:

puts s.gsub(/\D/, '') if (/\A(\d\D?){10}\z/ =~ s) && (/\A(\d+\D){0,3}\d*\z/ =~ s)
share|improve this answer
    
This doesn't check whether there are more than 3 non-digits in the string. –  Lars Haugseth Jun 21 '12 at 12:26
    
Now it does (I've edited the answer). –  Denis Novikov Jun 21 '12 at 12:33

You might also want to know about the scan method.

strings.each do |s|
  numbers = s.scan(/\d/).join
  non_numbers = s.scan(/\D/)
  puts numbers if numbers.length == 10 && non_numbers.length < 4
end

But I like the solution by @MichaelKohl better.

And then a silly example:

strings.select{|s| s.scan(/\D/).length < 4}.map{|s| s.scan(/\d/).join}.select{|s| s.length==10}
share|improve this answer
up vote 0 down vote accepted

Thanks everyone but i can't use the answers because i can't insert them in my routine (edited my answer to make that more clear). Found a sollution myself. I give everyone an upvote who had a one line solution as requested, now i still need to find a way to insert my block as a replacementpattern in the cleanup routine

p "0177/3854901".gsub(/(\d+)\D?(\d+)\D?(\d+)\D?+(\d+)/){ |m| "#{$1}#{$2}#{$3}#{$4}".length==10 ? "#{$1}#{$2}#{$3}#{$4}":m} 
#=> "0177/3854901" isn't replaced because it has 11 digits
p "0177/385490".gsub(/(\d+)\D?(\d+)\D?(\d+)\D?+(\d+)/){ |m| "#{$1}#{$2}#{$3}#{$4}".length==10 ? "#{$1}#{$2}#{$3}#{$4}":m} 
#=> "0177385490"
share|improve this answer
2  
I fail to see how that handles but only if the non-digits are not more than three. –  Jonas Elfström Jun 21 '12 at 13:06
    
simple, \D? stands for only one non-digit (they may not succeed each other), so if a fourth non-digit is there the replacement is not made, try it –  peter Jun 21 '12 at 13:30
    
I see. Still, your definition said nothing about 0aaa123456789 being invalid. Also still0a1b2c3456789here will be partially replaced. –  Jonas Elfström Jun 21 '12 at 13:56
    
you'r right, thanks for pointing that out, must be sparated from other text with \b So .gsub(/\b(\d+)\D?(\d+)\D?(\d+)\D?+(\d+)\b/){ |m| "#{$1}#{$2}#{$3}#{$4}".length==10 ? "#{$1}#{$2}#{$3}#{$4}":m} it will be –  peter Jun 21 '12 at 14:10

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.