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I have the following ruby code which splits a string by each '/', assigns each split to a variable, inserts another string immediately after the last '/' and then rejoins all of them whilst assigning them to a variable.

    object = "uploads/video/screenshot/74/DGSCFUA_video.jpg"
    up, vid, pic, num, file = object.split('/')
    file = "#{up}/#{vid}/#{pic}/#{num}/#{file.insert(0, "mini_")}"
    p file

    >> "uploads/video/screenshot/74/mini_DGSCFUA_video.jpg"

Whilst this works, it feels like I'm missing a trick and this isn't the most efficient way of doing things.

Is it possible to split a string at the last '/', (i.e. object.split('/')[-1]) but capture both parts of the split rather than just the characters after the '/'?

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3 Answers 3

up vote 5 down vote accepted

You're massaging a filepath, so use tools made for that task:

path_to_file = "uploads/video/screenshot/74/DGSCFUA_video.jpg"

file_path, file_name = File.split(path_to_file) 
# => ["uploads/video/screenshot/74", "DGSCFUA_video.jpg"]

Alternately, you can split like this:

file_path, file_name = File.dirname(path_to_file), File.basename(path_to_file) 
# => ["uploads/video/screenshot/74", "DGSCFUA_video.jpg"]

Then build the new path using:

path_to_file = File.join(file_path, "mini_#{ file_name }") 
# => "uploads/video/screenshot/74/mini_DGSCFUA_video.jpg"

The advantage is, Ruby's IO class, which is File's ancestor, takes the OS into account when it determines the path separators, so it will do the right thing if the code is running on Windows or *nix.

Ruby will convert pathnames between different operating system conventions if possible. For instance, on a Windows system the filename "/gumby/ruby/test.rb" will be opened as "\gumby\ruby\test.rb". When specifying a Windows-style filename in a Ruby string, remember to escape the backslashes:

"c:\\gumby\\ruby\\test.rb"
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THIS is the best answer. –  Mark Thomas Aug 31 '13 at 3:40
    
Yes, very nice, +1 –  apneadiving Aug 31 '13 at 6:28

A regexp could be more flexible and more reusable:

 s = 'uploads/video/screenshot/74/DGSCFUA_video.jpg'
 s.scan(/(.*)\/(.*)/)
 => [["uploads/video/screenshot/74", "DGSCFUA_video.jpg"]]
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I would go this way -

str = "uploads/video/screenshot/74/DGSCFUA_video.jpg"
ar = File.split(str) # => ["uploads/video/screenshot/74", "DGSCFUA_video.jpg"]
ar[-1] = ar[-1].prepend("mini_")
File.join(*ar)
# => "uploads/video/screenshot/74/mini_DGSCFUA_video.jpg"
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Thanks for these babai! Any reason why a regex is preferred? –  dodgerogers747 Aug 30 '13 at 22:48
1  
@dodgerogers747 I just tried to show what other ways we could get "uploads/video/screenshot/74/mini_DGSCFUA_video.jpg" . But if you want this ["uploads/video/screenshot/74", "DGSCFUA_video.jpg"] only then File#split most preferable for me.. :) Now your choice.. –  Arup Rakshit Aug 30 '13 at 22:50

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