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From bash manpage

Enclosing characters in double quotes preserves the literal value of all characters within the quotes, with the exception of $, `, \, and, when history expansion is enabled, !.

With this in mind, how is it that echo -ne "\n" produces a newline? Wouldn't the shell expand "\n" before it ever gets passed to echo?

I thought it might work because echo is a builtin and so the shell is smart enough to do the right thing. However, even calling the external /usr/bin/echo -ne "\n" works.

What's even more curious is that regardless if I double-quote or single-quote \n, the following two commands show that bash is passing \\n as the argument:

$ strace /usr/bin/echo "\n" 2>&1 | head -n1
execve("/usr/bin/echo", ["/usr/bin/echo", "\\n"], [/* 33 vars */]) = 0
$ strace /usr/bin/echo '\n' 2>&1 | head -n1
execve("/usr/bin/echo", ["/usr/bin/echo", "\\n"], [/* 33 vars */]) = 0

What's going on here?

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1 Answer 1

up vote 4 down vote accepted

Read on:

The backslash retains its special meaning only when followed by one of the following characters: $, `, ", \, or <newline>.

Since it’s just followed by a letter, it does not retain its special meaning and is passed literally to the program.

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Thanks, this is definitely what's going on. –  SiegeX Dec 26 '11 at 4:57

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