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I want to extract links from; My HTML code looks like this:

<a href="" class="l"

I took me around five minutes to find a regex that works using It is:

"(.*?)" class="l"

The code is:

require "open-uri"
url = ""

source = open(url).read()
links = source.scan(/"(.*?)" class="l"/) 

links.each { |link| puts #{link} 

The problem is, is it not outputting the websites links.

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3 Answers 3

Those links actually have class=l not class="l". By the way, to figure this put I added some logging to the method so that you can see the output at various stages and debug it. I searched for the string you were expecting to find and didn't find it, which is why your regex failed. So I looked for the right string you actually wanted and changed the regex accordingly. Debugging skills are handy.

require "open-uri"
url = ""

source = open(url).read

puts "--- PAGE SOURCE ---"
puts source

links = source.scan(/<a.+?href="(.+?)".+?class=l/)

puts "--- FOUND THIS MANY LINKS ---"
puts links.size

puts "--- PRINTING LINKS ---"
links.each do |link|
  puts "- #{link}"

I also improved your regex. You are looking for some text that starts with the opening of an a tag (<a), then some characters of some sort that you dont care about (.+?), an href attribute (href="), the contents of the href attribute that you want to capture ((.+?)), some spaces or other attributes (.+?), and lastly the class attrubute (class=l).

I have .+? in three places there. the . means any character, the + means there must be one or more of the things right before it, and the ? means that the .+ should try to match as short a string as possible.

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To put it bluntly, the problem is that you're using regexes. The problem is that HTML is what is known as a context-free language, while regular expressions can only the class of languages that are known as regular languages.

What you should do is send the page data to a parser that can handle HTML code, such as Hpricot, and then walk the parse tree you get from the parser.

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What im going wrong?

You're trying to parse HTML with regex. Don't do that. Regular expressions cannot cover the range of syntax allowed even by valid XHTML, let alone real-world tag soup. Use an HTML parser library such as Hpricot.

FWIW, when I fetch ‘’ I do not receive ‘class="l"’ anywhere in the returned markup. Perhaps it depends on which local Google you are using and/or whether you are logged in or otherwise have a Google cookie. (Your script, like me, would not.)

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Well, yeah. That too. HTML parsers are much better at this. –  Alex Wayne Feb 8 '09 at 0:36

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