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I'm trying to group a string by three (but could be any number) characters at a time. Using this code:

"this gets three at a time".scan(/\w\w\w/)

I get:


But what I'm trying to get is:

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can you please replace <space> with <empty string> ? – NeverHopeless Jun 13 '13 at 10:47

3 Answers 3

up vote 3 down vote accepted

\w matches letters digits and underscores (i.e. it's shorthand for [a-zA-Z0-9_]), not spaces. It does not magically skip spaces though, as you seem to expect.

So you'll first have to remove the spaces:

"this gets three at a time".gsub(/\s+/, "").scan(/.../)

or non-word characters:

"this gets three at a time".gsub(/\W+/, "").scan(/.../)

before you match the three characters.

Although you should rather use

"this gets three at a time".gsub(/\W+/, "").scan(/.{1,3}/)

to also obtain the last 1 or 2, if the length is not divisible by 3.

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thanks again for a thorough explanation and answer :-) – user1297102 Jun 13 '13 at 11:06
 "this gets three at a time".tr(" \t\n\r", "").scan(/.{1,3}/)
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yours is a brilliant solution as well and essentially the same as the accepted answer, but I thought I should go with the one which had a complimenting explanation. I will keep your use of 'tr' in mind for the future, Thank you. – user1297102 Jun 13 '13 at 11:12

You can try these as well:

sentence = "this gets three at a time"
sentence[" "] = ""
sentence.scan(/\w\w\w/)  // no change in regex


sentence = "this gets three at a time"
sentence[" "] = ""


sentence = "this gets three at a time"
sentence[" "] = ""
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thanks for the response, it was explained in another post that I would need to remove spaces first. I guess everyone knows about the {1,3} syntax except me! – user1297102 Jun 13 '13 at 11:14
Yeah i told you to do so. Since i found your regex complete but missing the removal of space. – NeverHopeless Jun 13 '13 at 11:25
you are correct, repped up. thanks! :) – user1297102 Jun 13 '13 at 19:29

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