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I have strings containing percent-escaped characters like %20 and %5B, and I would like to transform it to "normal" characters like \ for %20 and [ for %5B.

How can I do that?

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2 Answers 2

up vote 7 down vote accepted

The builtin printf in bash has a special format specifier (i.e. %b) which converts \x** to the corresponding value:

$ str='foo%20%5B12%5D'
$ printf "%b\n" "${str//%/\\x}"
foo [12]
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1  
Ok, thanks, here is my script if you want : pastebin.com/jN862wFZ –  Dorian Feb 22 '11 at 19:21
1  
I have done some minor corrections and written a condensed version here: pastebin.com/y8KBgVA2 –  marco Feb 22 '11 at 19:57
    
Thanks a lot, the short version is hard to maintain for me, so I keep the long one. –  Dorian Feb 22 '11 at 20:09
    
Using echo this can be made a tiny bit shorter: echo -e "${str//%/\x}". Using either printf or echo the \\x need not to be escaped twice: \x. –  Kohányi Róbert Jan 16 '12 at 19:03

Finally, thanks to #bash IRC channel, I found a "not so bad" solution :

echo `echo string%20with%5Bsome%23 | sed 's/%/\\\x/g'`
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I don't see what the surrounding echo buys you. Does echo string%20with%5Bsome%23 | sed 's/%/\\\x/g' not work? –  Thanatos Feb 22 '11 at 18:37
1  
@Thanatos: The sed merely changes string%20with%5Bsome%23 into string\x20with\x5Bsome\x23. Passing this to echo -e will mean that the \x.. escapes are correctly processed. [Missing -e and the backticks should be wrapped in double quotes: echo -e "$(echo string%20with%5Bsome%23 | sed 's/%/\\\x/g')".] –  bobbogo Feb 22 '11 at 18:52

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