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I've read the man pages on echo, and it tells me that the -e parameter will allow an escaped character, such as an escaped n for newline, to have its special meaning. When I type the command

$ echo -e 'foo\nbar'

into an interactive bash shell, I get the expected output:

foo
bar

But when I use this same command (i've tried this command character for character as a test case) I get the following output:

-e foo
 bar

It's as if echo is interpretting the -e as a parameter (because the newline still shows up) yet also it interprets the -e as a string to echo. What's going on here? How can I prevent the -e showing up?

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I'm running Ubuntu Lucid 10.04 in case this is important –  Sam Svenbjorgchristiensensen Dec 14 '10 at 4:30
    
which echo are you using? type 'which echo' on the command line. –  Amir Afghani Dec 14 '10 at 4:33
    
It turns out I was using the 'Bourne Shell' version in my scripts but the Bash version in the interactive version. –  Sam Svenbjorgchristiensensen Dec 14 '10 at 9:49

3 Answers 3

up vote 16 down vote accepted

You need to use #!/bin/bash as the first line in your script. If you don't, or if you use #!/bin/sh, the script will be run by the Bourne shell and its echo doesn't recognize the -e option. In general, it is recommended that all new scripts use printf instead of echo if portability is important.

In Ubuntu, sh is provided by a symlink to /bin/dash.

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Oh that's it. I had !#/bin/sh, which was obviously running in Bourne but my interactive shell was Bash. Cheers. –  Sam Svenbjorgchristiensensen Dec 14 '10 at 9:35
    
+1. Saved my logs from certain ugliness even 7 months later –  Vlueboy Jul 6 '11 at 22:24

Different implementations of echo behave in annoyingly different ways. Some don't take options (i.e. will simply echo -e as you describe) and automatically interpret escape sequences in their parameters. Some take flags, and don't interpret escapes unless given the -e flag. Some take flags, and interpret different escape sequences depending on whether the -e flag was passed. Some will cause you to tear your hair out if you try to get them to behave in a predictable manner... oh, wait, that's all of them.

What you're probably seeing here is a difference between the version of echo built into bash vs /bin/echo or maybe vs. some other shell's builtin. This bit me when Mac OS X v10.5 shipped with a bash builtin echo that echoed flags, unlike what all my scripts expected...

In any case, there's a solution: use printf instead. It always interprets escape sequences in its first argument (the format string). The problems are that it doesn't automatically add a newline (so you have to remember do that explicitly), and it also interprets % sequences in its first argument (it is, after all, a format string). Generally, you want to put all the formatting stuff in the format string, then put variable strings in the rest of the arguments so you can control how they're interpreted by which % format you use to interpolate them into the output. Some examples:

printf "foo\nbar\n"      # this does what you're trying to do in the example
printf "%s\n" "$var"     # behaves like 'echo "$var"', except escapes will never be interpreted
printf "%b\n" "$var"     # behaves like 'echo "$var"', except escapes will always be interpreted
printf "%b\n" "foo\nbar" # also does your example
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Great, thanks for the detail. I'm quite fond of printf in C so it should be a snap. –  Sam Svenbjorgchristiensensen Dec 14 '10 at 9:33

Use

alias echo /usr/bin/echo

to force 'echo' invoking coreutils' echo which interpret '-e' parameter.

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