13

Very similar to this question.

I'm iterating through a few things with an automated script in BASH. Occasionally the script will come across "-n" and echo will attempt to interpret this.

Attempted this:

 $ POSIXLY_CORRECT=1 /bin/echo -n

and

 $ POSIXLY_CORRECT=1 /bin/echo "-n"

But it interpreted the argument each time.

Then this, which works but it's possible to hit escaped characters in the strings, which is why I don't want to apply a null character to all input and use -e.

$ echo -e "\x00-n"
-n

printf is possible, but is to be avoided unless there are no other options (Not all machines have printf as a utility).

$printf "%s" "-n"
-n

So is there a way to get echo to print "-n"?

2
9

printf should be a built-in in all your shells, unless some of your machines have very old shell versions. It's been a built-in in bash for a long time. It's probably more portable than echo -e.

Otherwise, there's really no way to get echo options it cares about.

Edit: from an answer to another similar question; avoid quoting issues with printf by using this handy no-digital-rights-retained wrapper:

ech-o() { printf "%s\n" "$*"; }

(That's ech-o, as in "without options")

6
  • 1
    printf is way more portable than echo, but be sure to pass the string you want to print as an argument, not as a format string (i.e. printf "%s\n" "$stringtoprint" instead of printf "$stringtoprint\n") -- see @djhaskin987's answer. Nov 7 '12 at 2:01
  • @GordonDavisson: I egotistically added a note from a different answer of mine, which I think is a nice solution.
    – rici
    Nov 7 '12 at 3:42
  • 3
    Hah! +1 for an actual appropriate use of "$*" Nov 7 '12 at 8:16
  • 1
    Note that printf is not built-in in pdksh and many of its modern derivatives like mksh. May 2 '17 at 14:56
  • 1
    Also note that several shells (ksh93, dash, yash at least) won't accept ech-o as a function name. May 2 '17 at 15:00
4

What about prefixing the string with a character ("x" for instance) that gets removed on-the-fly with a cut:

echo "x-n" | cut -c 2-
3

If you invoke Bash with the name sh, it will mimic sh, where the -n option was not available to echo. I'm not sure if that fits your needs though.

$ /bin/sh -c 'echo -n'
1
  • That -n is unspecified in the POSIX.2 shell command specification is flatly untrue. Option (non-string) behavior for -n is specified as part of the baseline (non-XSI) standard behavior for echo; it's only shells implementing the optional XSI extensions where it isn't present. See pubs.opengroup.org/onlinepubs/009604599/utilities/echo.html -- now, granted, your /bin/sh may follow XSI, but that's not universally guaranteed. Dec 7 '14 at 19:49
3

echo "-n" tells the shell to put '-n' as echo's first argument, character for character. Semantically, echo "-n" is the same as echo -n. Try this instead (it's a POSIX standard and should work on any shell):

printf '%s\n' "-n"
0

echo "-n" will not print -n because -n is interpreted as an option for echo (see help echo). But you can use:

echo -e "\055n"
1
  • 1
    This is supported with GNU's implementation of echo, but not with any POSIX-compliant version -- an XSI-compliant POSIX implementation of echo would print the literal -e, and a non-XSI one wouldn't interpret the \055. Indeed, if you export POSIXLY_CORRECT=1 on a GNU system, you'll see the former behavior. Dec 7 '14 at 19:46
-1

Cheating method:

echo -e  "\r-n"
1
  • 1
    ...which works if your output is for human consumption, but not if it's to be read by a program or other non-terminal consumer. Dec 7 '14 at 19:44

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