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The format I'm trying to match is:

# (Apple push notification codes)
"11a735e9 9f696c2f 700b2700 728042c6 137eeb7a 8442c27d 40e59d9e 3c7e0de7"

The simplest expression I can think of is: /((\w{8}\s){7}\w{8})/i

Can anyone think of a simpler one?

(I'm using Ruby regular expressions)

UPDATE - thanks to user1096188, I've removed \d - this is included in \w

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4  
\w captures both letters and digits, you don't need [\w\d] –  user1096188 Feb 3 '12 at 9:20
    
ah - smashing! thanks :) –  bodacious Feb 3 '12 at 9:25
2  
You don't need the i at the end either since \w matches upper and lower case letters. –  pguardiario Feb 3 '12 at 9:27
    
You can add ?: in the parentheses so it won't capture backreferences. Also, don't you need the "^" and "$" ? –  A.B.Cade Feb 3 '12 at 9:33
    
Yes - strictly speaking. This is the best I have now: /^(\w{8}(\s|$)){8}/ Seems to work a treat :) –  bodacious Feb 3 '12 at 9:37

4 Answers 4

up vote 3 down vote accepted

You can detect a word boundary using \b, and use (?: to prevent capturing groups

/(?:\w{8}\b\s?){8}/
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minus the i /(?:\w{8}\b\s?){8}/ :) –  bodacious Feb 3 '12 at 10:51
    
Thanks, the i is not necessary, since \w matches any case. Edited. –  Pumbaa80 Feb 3 '12 at 12:06

You could do this if the end of the match is the end of the whole string. (\w{8}(:?\s|$)){7}

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the Ruby scan() and match() methods return nested arrays when comparing a Regex with parenthesis. I was hoping for something simpler - regexes are not my forte though and I've already learned 3 or 4 things from this Q - that's why I asked :) –  bodacious Feb 3 '12 at 9:32
    
/(\w{8}(\s|$)){8}/ –  bodacious Feb 3 '12 at 9:34
    
In Ruby regexps, $ is not the end of the string but the end of a line. The end of string is \z. See ruby-doc.org/core-1.9.3/Regexp.html. –  undur_gongor Feb 3 '12 at 11:15
> "11a735e9 9f696c2f 700b2700 728042c6 137eeb7a 8442c27d 40e59d9e 3c7e0de7".match(/((\w{8}\s)+)/)
> $&
 => "11a735e9 9f696c2f 700b2700 728042c6 137eeb7a 8442c27d 40e59d9e 3c7e0de7"
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This would also match "11a735e99f696c2f700b2700728042c6137eeb7a8442c27d40e59d9e3c7e0de7" - the spaces are not optional –  bodacious Feb 3 '12 at 10:52

Taking @zapthedingbat's solution one stage further, it looks like the code only contains hexadecimal characters (0-9 and a-f) and spaces. So you could possibly sacrifice a little simplicity for accuracy.

I'm making an assumption, but I suspect letters g to z are invalid. If the format is hexadecimal only (you should check Apple's documentation to be sure), a tighter match would be:

/(?:[0-9a-f]{8}\b\s?){8}/

EDIT

In fact, in Ruby, it looks like you should be able to do:

/(?:\h{8}\b\s?){8}/
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Thanks for the suggestion - I'm not sure if it's hex or just a random string... I'll check that though –  bodacious Feb 3 '12 at 16:16

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