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I am using Ruby1.9.3. I am newbie to this platform.

From the doc I just got familiared with two anchor which are \z and \G. Now I little bit played with \z to see how it works, as the definition(End or End of String) made me confused, I can't understand what it meant say - by End. So I tried the below small snippets. But still unable to catch.

CODE

irb(main):011:0> str = "Hit him on the head me 2\n" + "Hit him on the head wit>
=> "Hit him on the head me 2\nHit him on the head with a 24\n"
irb(main):012:0> str =~ /\d\z/
=> nil

irb(main):013:0> str = "Hit him on the head me 24 2\n" + "Hit him on the head >
=> "Hit him on the head me 24 2\nHit him on the head with a 24\n"
irb(main):014:0> str =~ /\d\z/
=> nil

irb(main):018:0> str = "Hit1 him on the head me 24 2\n" + "Hit him on the head>
=> "Hit1 him on the head me 24 2\nHit him on the head with a11 11 24\n"
irb(main):019:0> str =~ /\d\z/
=> nil
irb(main):020:0>

Every time I got nil as the output. So how the calculation is going on for \z ? what does End mean? - I think my concept took anything wrong with the End word in the doc. So anyone could help me out to understand the reason what is happening with the out why so happening?

And also i didn't find any example for the anchor \G . Any example please from you people to make visualize how \G used in real time programming?

EDIT

irb(main):029:0>
irb(main):030:0*  ("{123}{45}{6789}").scan(/\G(?!^)\{\d+\}/)
=> []
irb(main):031:0>  ('{123}{45}{6789}').scan(/\G(?!^)\{\d+\}/)
=> []
irb(main):032:0>

Thanks

share|improve this question
    
What pattern are you trying to match? –  Zach Jan 16 '13 at 19:33
    
I am looking for a code to visualize how to use \G looks like and how it works in pattern matching? –  Arup Rakshit Jan 16 '13 at 19:39
1  
You should not include code from answers into your question. It is confusing to new readers who may assume that this is your code (and try to help you with it). I've updated my answer with a tested and working example. –  JDB Jan 16 '13 at 20:28
    
@Cyborgx37 thanks to guide me in a correct directions! +1 to your comment! –  Arup Rakshit Jan 16 '13 at 20:32

2 Answers 2

up vote 4 down vote accepted

\z matches the end of the input. You are trying to find a match where 4 occurs at the end of the input. Problem is, there is a newline at the end of the input, so you don't find a match. \Z matches either the end of the input or a newline at the end of the input.

So:

/\d\z/

matches the "4" in:

"24"

and:

/\d\Z/

matches the "4" in the above example and the "4" in:

"24\n"

Check out this question for example of using \G:
Examples of regex matcher \G (The end of the previous match) in Java would be nice


UPDATE: Real-World uses for \G

I came up with a more real world example. Say you have a list of words that are separated by arbitrary characters that cannot be well predicted (or there's too many possibilities to list). You'd like to match these words where each word is its own match up until a particular word, after which you don't want to match any more words. For example:

foo,bar.baz:buz'fuzz*hoo-har/haz|fil^bil!bak

You want to match each word until 'har'. You don't want to match 'har' or any of the words that follow. You can do this relatively easily using the following pattern:

/(?<=^|\G\W)\w+\b(?<!har)/

rubular

The first attempt will match the beginning of the input followed by zero non-word character followed by 3 word characters ('foo') followed by a word boundary. Finally, a negative lookbehind assures that the word which has just been matched is not 'har'.

On the second attempt, matching picks back up at the end of the last match. 1 non-word character is matched (',' - though it is not captured due to the lookbehind, which is a zero-width assertion), followed by 3 characters ('bar').

This continues until 'har' is matched, at which point the negative lookbehind is triggered and the match fails. Because all matches are supposed to be "attached" to the last successful match, no additional words will be matched.

The result is:

foo
bar
baz
buz
fuzz
hoo

If you want to reverse it and have all words after 'har' (but, again, not including 'har'), you can use an expression like this:

/(?!^)(?<=har\W|\G\W)\w+\b/

rubular

This will match either a word which is immediately preceeded by 'har' or the end of the last match (except we have to make sure not to match the beginning of the input). The list of matches is:

haz
fil
bil
bak

If you do want to match 'har' and all following words, you could use this:

/\bhar\b|(?!^)(?<=\G\W)\w+\b/

rubular

This produces the following matches:

har
haz
fil
bil
bak
share|improve this answer
    
Didn't get your point correctly. can you take any of the code what i pasted and accordingly why i failed and adjust there itself to show what can make it success ? –  Arup Rakshit Jan 16 '13 at 19:21
    
Use \Z (uppercase) –  JDB Jan 16 '13 at 19:25
    
I want Ruby like code for \G. I am not god with Java syntax! –  Arup Rakshit Jan 16 '13 at 19:27
    
+1 to you for explanation, but really would like to see a small ruby code for \G –  Arup Rakshit Jan 16 '13 at 19:34
1  
@RubyTheBang - I've updated my answer with a possible example. –  JDB Jan 16 '13 at 20:04

Sounds like you want to know how Regex works? Or do you want to know how Regex works with ruby?

Check these out.

Regexp Class description

The Regex Coach - Great for testing regex matching

Regex cheat sheet

I understand \G to be a boundary match character. So it would tell the next match to start at the end of the last match. Perhaps since you haven't made a match yet you cant have a second.

Here is the best example I can find. Its not in ruby but the concept should be the same.

I take it back this might be more useful

share|improve this answer
    
I want Regex with Ruby 1.9.3 –  Arup Rakshit Jan 16 '13 at 19:22
    
+1 for all your references! –  Arup Rakshit Jan 16 '13 at 19:34
    
a little code with your statement would be much appreciated! it would help me to understand the concept quickly! –  Arup Rakshit Jan 16 '13 at 19:47

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