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I'm trying to get the ASIN of some Amazon items. I found a pattern: the ASIN is always after "/dp/". How can I extract the ASIN (B003CP0V6S) from that string? I'm using ruby

url = "http://www.amazon.it/Calvin-Klein-Deluxe-K0S21120--Orologio/dp/B003CP0V6S/ref=lp_1597641031_1_8?ie=UTF8&qid=1349983393&sr=1-8"
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1  
What have you tried already, and what results did you get? –  Duncan Bayne Oct 11 '12 at 19:50
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When I have a question like this, I always go to rubular.com - a fantastic little utility that lets you tweak regex's and learn how the different options work –  Jim Oct 11 '12 at 19:52

3 Answers 3

up vote 4 down vote accepted
str = "http://www.amazon.it/Calvin-Klein-Deluxe-K0S21120--Orologio/dp/B003CP0V6S/ref=lp_1597641031_1_8?ie=UTF8&qid=1349983393&sr=1-8"
(match = str.match(/\/dp\/([^\/]*)/)) && match[1]
# => "B003CP0V6S"
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I got an error: str.match(/\/dp\/([^\/]*)/)) && match[1] SyntaxError: (irb):27: syntax error, unexpected ')', expecting $end str.match(/\/dp\/([^\/]*)/)) && match[1] –  framomo86 Oct 11 '12 at 20:02
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That's because you cut-and-pasted the code without getting the (match = from the beginning. –  Alex D Oct 11 '12 at 20:04

Some people like to use an alternate syntax when writing Ruby regular expressions for use with URLs, because all the escaping of slash characters hinders readability. Enclosing the regular expression in %r{} lets you leave the forward slashes unescaped.

  str = "http://www.amazon.it/Calvin-Klein-Deluxe-K0S21120--Orologio/dp/B003CP0V6S/ref=lp_1597641031_1_8?ie=UTF8&qid=1349983393&sr=1-8"
  (str =~ %r{/db/(.+?)/} && $1)
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This answer doesn't stand well on its own without a definition of str: it doesn't match the OP's url. –  pje Oct 12 '12 at 5:07
    
@pje, ok, assignment to str is added. –  Stovey May 21 '13 at 18:13
url.split("/dp/").last.split("/", 2).first

should do.

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