17

This question already has an answer here:

Is there a command that not just echos it's argument but also escapes them if needed (e.g. if a argument contains white space or a special character)?

I'd need it in some shell magic where instead of executing a command in one script I echo the command. This output gets piped to a python script that finally executes the commands in a more efficient manner (it loads the main() method of the actual target python script and executes it with the given arguments and an additional parameter by witch calculated data is cached between runs of main()).

Instead of that I could of course port all the shell magic to python where I wouldn't need to pipe anything.

marked as duplicate by kenorb, tripleee bash Apr 11 '18 at 10:51

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

25

With bash, the printf builtin has an additional format specifier %q, which prints the corresponding argument in a friendly way:

In addition to the standard printf(1) formats, %b causes printf to expand backslash escape sequences in the corresponding argument (except that \c terminates output, backslashes in \', \", and \? are not removed, and octal escapes beginning with \0 may contain up to four digits), and %q causes printf to output the corresponding argument in a format that can be reused as shell input.

So you can do something like this:

printf %q "$VARIABLE"
printf %q "$(my_command)"

to get the contents of a variable or a command's output in a format which is safe to pass in as input again (i.e. spaces escaped). For example:

$ printf "%q\n" "foo bar"
foo\ bar

(I added a newline just so it'll be pretty in an interactive shell.)

  • 1
    Thanks, I did not know about that. If you use zsh, you can also use the q modifier: ${(q)VAR} escapes variable in a similar way. – ZyX Apr 28 '10 at 18:30
  • Thanks, but using printf I'd have to know the number of arguments in advance. Well I guess I figure something out. – panzi Apr 29 '10 at 22:35
  • 2
    Er, is there some reason you can't do something like for arg in "$@"; do printf %q "$arg"; done? – Cascabel Apr 29 '10 at 23:16
  • Doh! I didn't think of that! :) – panzi Jun 1 '10 at 22:32

Not the answer you're looking for? Browse other questions tagged or ask your own question.