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I noticed a while ago already that in zsh, you can get a \ by typing \\ like in bash.

> echo \\
\

But, there's a strange phenomenon with 4 backlashes in zsh.

bash$ echo \\\\
\\

zsh> echo \\\\
\

Do you know why ? Is it a bug ?

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Heh, and I realize by posting this that Stackoverflow prints \ whether you type \ or \\ ! –  double_squeeze May 8 '13 at 0:13
    
But it's not the same inside the comments -_-, that's really weird. –  double_squeeze May 8 '13 at 0:14

1 Answer 1

up vote 2 down vote accepted

No, this is not a bug. It's just that the echo implementation in these shells have a different default settings for interpretation of backslash sequences.

In either shell the command-line parser will remove one layer of backslashes converting 4 backslashes to 2. That argument is then passed to the echo builtin command. When echo interprets backslash sequences 1 backslash is output for that sequence, if backslash interpretation isn't being done by echo 2 backslashes will be output.

In either shell's implementation of echo the -e or -E option can be used to respectively enable or disable backslash interpretation. So the following will produce the same output in either shell:

echo -e \\\\
echo -E \\\\

Both shells also have shell-level options to alter the default behaviour of their echo command. In zsh the default can be changed with setopt BSD_echo, to change the default in bash the command is shopt -s xpg_echo.

If you're trying to write portable shell scripts, you'd be best served by avoiding use of echo altogether; it is one of the least portable commands around. Use printf instead.

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Thank makes sense. But now, why does it work to do echo -e \\ ? After reading you, I would think that \ would be sent to echo, which would try to interpret the symbol after it, but there is none. So I would expect it to wait for more data, or return an error. What happens ? –  double_squeeze May 8 '13 at 2:52
    
echo only processes supplied arguments, it doesn't read input so it can't wait for additional data. Any backslash that isn't part of a recognized sequence is simply output verbatim. –  qqx May 8 '13 at 2:57
    
OK. But why does this difference exist ? Is there a situation where you need one and not the other ? –  double_squeeze May 8 '13 at 7:18

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