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"/home/chief/project/public/system/uploads/000/000/001/original/1/1.flv

to this:

  /system/uploads/000/000/001/original/1/1.flv
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3 Answers 3

up vote 2 down vote accepted
str = "/home/chief/project/public/system/uploads/000/000/001/original/1/1.flv"
chopped = str.sub(/.*\/public/, "") #=> "/system/uploads/000/000/001/original/1/1.flv" 

This will remove everything to the left of public (including /public). This way your code isn't specific to one location, but rather it is more portable in that you can have anything in front of /public, and it will still strip the characters.

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s = "/home/chief/project/public/system/uploads/000/000/001/original/1/1.flv"
s.sub("/home/chief/project/public", "")

This should do the trick.

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Thanks. How about if I want to strip off the end of it and make it like /home/chief/project/public/system/uploads/000/000/001/. Would that require a regular expression? Considering that the numbers after original would be different. –  merlin Mar 15 '11 at 16:22
    
If you add this line afterwards: s.sub("/original/1/1.flv", "") it should work for you. There might be slightly better ways which I don't know as I haven't done Ruby for a while, but what I've shown should do the trick. –  Dean Barnes Mar 15 '11 at 16:32
    
@dean...Considering that the numbers after original would be different is what she said..your solution wont work... –  rubyprince Mar 15 '11 at 16:57
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You should specify in which language. Using sed is trivial.

echo "\"/home/chief/project/public/system/uploads/000/000/001/original/1/1.flv" | sed -e 's-\"/home/chief/project/public--'
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Question is tagged ruby –  willcodejavaforfood Mar 15 '11 at 16:18
    
Ok. I didn't see the tag. –  Luixv Mar 15 '11 at 16:21
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