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This url:

url = rtmp://xxxxxxxxxxxxxx.cloudfront.net/cfx/st/mp3:audios/lesson/2/cancion?Expires=1386332537&Signature=mysignature__&Key-Pair-Id=my-key-par-id

I would like to add the extension mp3 to all file name.

In this case the file name is cancion

The id of lesson is a dynamic value.

I would like to get this url something like:

url = rtmp://xxxxxxxxxxxxxx.cloudfront.net/cfx/st/mp3:audios/lesson/2/cancion.mp3?Expires=1386332537&Signature=mysignature__&Key-Pair-Id=my-key-par-id

Thanks!

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2 Answers 2

up vote 1 down vote accepted

You can do simple gsub since this is URL and you can expect one occurrence of ? so simple do.

url.gsub!('?', '.mp3?')

Usually I would go regex here but no need from previously stated reason.

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Thanks. It does works :) –  hyperrjas Dec 6 '13 at 11:42

You can parse the URI, edit the path, then return the value

require 'uri/http'

u = URI.parse('rtmp://xxxxxxxxxxxxxx.cloudfront.net/cfx/st/mp3:audios/lesson/2/cancion?Expires=1386332537&Signature=mysignature__&Key-Pair-Id=my-key-par-id')
u.path += ".mp3"
puts u.to_s

or use a simple regexp replace

u = 'rtmp://xxxxxxxxxxxxxx.cloudfront.net/cfx/st/mp3:audios/lesson/2/cancion?Expires=1386332537&Signature=mysignature__&Key-Pair-Id=my-key-par-id'
u.gsub('?', '.mp3?')

The second approach can be used only if you can assume the format of the input is always the same.

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Thank you very much your answer also works correctly :) –  hyperrjas Dec 6 '13 at 11:46

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