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I am reading the code of someone who built a domain crawler method using ruby. I am new to the concept of recursion and can not wrap my head on how to read their code.

Code:

def crawl_domain(url, page_limit = 100)
  return if @already_visited.size == page_limit                # [1]
  url_object = open_url(url)
  return if url_object == nil                                  # [2]
  parsed_url = parse_url(url_object)
  return if parsed_url == nil                                  # [3]
  @already_visited[url]=true if @already_visited[url] == nil
  page_urls = find_urls_on_page(parsed_url, url)
  page_urls.each do |page_url|
    if urls_on_same_domain?(url, page_url) and @already_visited[page_url] == nil
      crawl_domain(page_url)
    end
  end
end

Questions:

  1. What do the combination of consecutive return statements mean?
  2. At line [1], if @already_visited's size is NOT the same as page_limit does the program break out of the crawl_domain method and skips the rest of the code?
  3. if @already_visited's size is the same as page_limit, does it move on to the next return statement after it sets url_object = open_url(url)

Thanks for any help in advance!

Source: http://www.skorks.com/2009/07/how-to-write-a-web-crawler-in-ruby/

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3  
Don't ask the same question twice... – squiguy Apr 1 '13 at 3:24
1  
I don't think it is.. it is different code and a different concept I am having trouble understanding. If you still feel it's the same then I'll try to add it to my previous question on if statements – andy4thehuynh Apr 1 '13 at 3:25

Confused by recursion? Read this book:

http://mitpress.mit.edu/sicp/

You'll be a better programmer and you'll recurse a blue streak forever after.

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+1 for Structure and Interpretation of Computer Programs – dbenhur Apr 1 '13 at 3:53

Forget the web crawler. Consider how to use recursion to add the numbers constituting an array:

arr = [1, 2, 3, 4]
def sum(array)
  # ??
end
puts sum(arr) #=> 10, please

Pretend that the problem is already solved. (All recursion depends on pretending this.) Then sum([1, 2, 3, 4]) is 1 + sum([2, 3, 4]), and in general sum for any array is the first element plus sum for the remainder of the array. In ruby, the method that splits an array into its first and its remainder is shift; calling shift returns the first element of the array and removes it from the array. So we may write:

arr = [1, 2, 3, 4]
def sum(array)
  return array.shift + sum(array)
end
puts sum(arr)

Behold, a recursive solution! However, there's a problem: we recurse forever (or, at least, until some sort of error is encountered). It is crucial in all recursions to put in a "stop" of some sort in the degenerate case before recursing. What is that degenerate case in our situation? It's when the array is empty! (Which it eventually will be, since every sum call removes an element from the array.) For an empty array, obviously the sum is zero. So:

arr = [1, 2, 3, 4]
def sum(array)
  return 0 unless array.length > 0
  return array.shift + sum(array)
end
puts sum(arr)

The end.

Your web crawler is similar. We will recurse to crawl each sublevel of the current page, but first we have some "stops" (the return statements) to prevent banging into an error situation in various degenerate cases. (In the case of the web crawler, there is no need to check for whether the current page actually has sublevels, because if it doesn't, each will do nothing and we won't recurse.)

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Very good presentation! :) – Arup Rakshit Apr 1 '13 at 6:21
    
@matt That was awesome! Great explanation. So the return statements act as a base case correct? – andy4thehuynh Apr 1 '13 at 6:31

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