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Suppose I have:


And I want to replace everything that follows 'foo/' up until I either reach '/' or, if '/' is never reached, then up to the end of the line. For the first part I can use a non-capturing group like this:


And that's where I get stuck. I could match to the second '/' like this:


That doesn't help for the first case though. Desired output is:


I'm using Ruby.

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5 Answers 5

up vote 3 down vote accepted

Try this regex:

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This is short and sweet. Thanks! – Ben Flynn Jan 20 '11 at 23:55
Meh, there's no need for the non-capturing group. – noodl Jan 20 '11 at 23:57

Implementing @Endophage's answer:

def fix_post_foo_portion(string)
  portions = string.split("/")
  index_to_replace = portions.index("foo") + 1
  portions[index_to_replace ] = "blah"

strings = %w{foo/fhqwhgads foo/fhqwhgadshgnsdhjsdbkhsdabkfabkveybvf/bar}
strings.each {|string| puts fix_post_foo_portion(string)}
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I'm not a ruby dev but is there some equivalent of php's explode() so you could explode the string, insert a new item at the second array index then implode the parts with / again... Of course you can match on the first array element if you only want to do the switch in certain cases.

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Ruby supports split('/') and join('/'). – the Tin Man Jan 21 '11 at 0:04
['foo/fhqwhgads', 'foo/fhqwhgadshgnsdhjsdbkhsdabkfabkveybvf/bar'].each do |s|
  puts s.sub(%r|^(foo/)[^/]+(/.*)?|, '\1blah\2')



I'm too tired to think of a nicer way to do it but I'm sure there is one.

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Checking for the end-of-string anchor -- $ -- as well as the / character should do the trick. You'll also need to make the .+ non-greedy by changing it to .+? since the greedy version will always match right up to the end of the string, given the chance.

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Tried this, but it did not work for me. Treated the / and everything after it as part of the captured group. – Ben Flynn Jan 20 '11 at 23:52
@Ben: In that case you probably need to make the capture non-greedy (by appending a ?). I'll edit... – LukeH Jan 20 '11 at 23:55

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