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I have the following strings:

src = "dav://w.lvh.me:3000/Home/Transit/file"
host = "w.lvh.me:3000"

What I want to obtain is "/Home/Transit/file" using those two strings

I thought of searching for host in src and delete it the first time it appears, and everything before it, but I'm not sure exactly how to do that. Or maybe there's a better way?

Any help would be appreciated!

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2 Answers 2

up vote 8 down vote accepted

There is a better way indeed:

require 'uri'
src = "dav://w.lvh.me:3000/Home/Transit/file"
src = URI.parse src

src.path      # => "/Home/Transit/file"

When there are spaces in the string, you must pass extra step of escaping/unescaping. Fortunantly, this is simple:

require 'uri'
src = "dav://w.lvh.me:3000/Home/Transit/Folder 144/webdav_put_request"
src = URI.parse(URL.escape src)

URL.unescape(src.path)      # => "/Home/Transit/Folder 144/webdav_put_request"
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1  
Perfect answer. Not everything should be boiled down to a regular expression. You want a URI parser for parsing URIs, not yet another busted regular expression. –  meagar May 26 '11 at 12:33
    
i forgot to ask, what if there are spaces in src ? URI.parse raises an error for example if src = "dav://w.lvh.me:3000/Home/Transit/Folder 144/webdav_put_request" –  Andrei S May 26 '11 at 13:08
    
@andrei-s, covered this case in edit. –  Victor Deryagin May 26 '11 at 14:23
    
Thank you. I tried escaping with a custom function but I think it did not escape right. URI.escape works ok! –  Andrei S May 26 '11 at 14:31

This should do the job:

src = "dav://w.lvh.me:3000/Home/Transit/file"
host = "w.lvh.me:3000"
result = src.sub(/.*#{host}/, '')
#=> "/Home/Transit/file"
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