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I am trying to parse through URLs using Ruby and return the URLs that match a word after the "/" in .com , .org , etc.

If I am trying to capture "questions" in a URL such as https://stackoverflow.com/questions I also want to be able to capture https://stackoverflow.com/blah/questions. But I do not want to capture https://stackoverflow.com/queStioNs.

Currently my expression can match https://stackoverflow.com/questions but cannot match with "questions" after another "/", or 2 "/"s, etc.

The end of my regular expression is using \bquestions\.

I tried doing ([a-zA-Z]+\W{1}+\bjob\b|\bjob\b) but this only gets me URLs with /questions and /blah/questions but not /blah/bleh/questions.

What am I doing wrong and how do I match what I need?

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'/blah/bleh/questions'.match(/\/([a-z]+)\/?$/); –  plalx Apr 10 '14 at 0:40
    
Is there a certain part of the URL that you need to capture for later use, or do you just need a pattern that matches any string that ends with /questions? –  CAustin Apr 10 '14 at 0:43
    
@CAustin I have the pattern to match a URL up to the / but I just need the regex to match the rest of a string that ends with /questions or /BLAH/questions or /blah/questions. Etc. –  RoyValentine Apr 10 '14 at 0:49
    
In that case, wouldn't this simply be a matter of using ^.+\/questions$? –  CAustin Apr 10 '14 at 0:51
    
@plalx I added \/([a-zA-Z]+)\/?$ to my regex and the result matches anything after the /. I added the A-Z because I need it to match /BLAH/questions as well. –  RoyValentine Apr 10 '14 at 0:54

2 Answers 2

up vote 0 down vote accepted

I don't know whether there is any simple way around, here is my solution:

regexp = '^(https|http)?:\/\/[\w]+\.(com|org|edu)(\/{1}[a-z]+)*$'
group_length = "https://stackoverflow.com/blah/questions".match(regexp).length
"https://stackoverflow.com/blah/questions".match(regexp)[group_length - 1].gsub("/","")

It will return 'questions'.

Update as per you comments below:

use [\S]*(\/questions){1}$

Hope it helps :)

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@RoyValentine: Please try it and let me know if it worked. –  Rajesh Omanakuttan Apr 10 '14 at 2:22
    
I tried your expression and it worked but it also picked up anything I typed in such as http://this.com/blah. Someone else in my question's comments provided me with the answer. It was ^.+[^\/]\/questions.*$ –  RoyValentine Apr 10 '14 at 2:36
    
I thought you need the word after '/', and I did take 'questions' as an example. –  Rajesh Omanakuttan Apr 10 '14 at 2:39
    
@RoyValentine: this '^.+[^\/]\/questions.*$' returns the whole URL, right? not the word you have asked for. Also it will not validate the protocol portion, it also takes 'htt://this.com/blah/questions'. So, how that can be valid? –  Rajesh Omanakuttan Apr 10 '14 at 2:45
    
I did not need just the questions. I needed the whole URL. And I see that that my regex will not validate the URL but I am not trying to validate the URLs with this regex. If I needed to I assume I would add the (https|http) part and the (com|org|edu)? –  RoyValentine Apr 10 '14 at 3:04

You don't actually need a regex for this, you can instead use the URI module:

require 'uri'

urls = ['https://stackoverflow.com/blah/questions', 'https://stackoverflow.com/queStioNs']

urls.each do |url|
    the_path = URI(url).path
    puts the_path if the_path.include?'questions' 
end
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