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What is the most efficient way to get the content-type of a given URL using Ruby?

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up vote 13 down vote accepted

This is what I'd do if I want simple code:

require 'open-uri'
str = open('http://example.com')
str.content_type #=> "text/html"

The big advantage is it follows redirects.

If you're checking a bunch of URLs you might want to call close on the handles after you've found what you want.

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Cool, didn't know about open-uri :) Found this blog post as a result. Quite handy: juretta.com/log/2006/08/13/ruby_net_http_and_open-uri – Chris Jun 19 '11 at 5:47
1  
Open-URI is a great little tool when you want to handle URLs transparently, whether they are "file:", "ftp:" or "http:". It handles timeouts and redirects also, so it's good for most things I do, unless I need fine-grained control over a connection, then I'll either drop to Net::HTTP, or use something like Typhoeus or Curb or one of those gems. – the Tin Man Jun 19 '11 at 5:51
    
To follow redirections, you may need to use github.com/jaimeiniesta/open_uri_redirections – halfcube Apr 11 '14 at 14:28
    
This saved me many more hours of working on a connection refused on port 80. Thank you! – chipmunk Mar 21 '15 at 19:40

Take a look at the Net::HTTP library.

require 'net/http'

response = nil
uri, path = 'google.com', '/'
Net::HTTP.start(uri, 80) { |http| response = http.head(path) }
p response['content-type']
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