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I thought I understood *nix pipes until now... I have an executable called studio which symlinks to my install of Android Studio and I had assumed I could get the linked-to location with

which studio | ls -l

But that doesn't work. What it gives me is equivalent to having just run ls -l in the current directory.

If I run which studio, I get /home/me/bin/studio. And if I run ls -l /home/me/bin/studio I get the expected output showing me the symlink location.

So why doesn't the piped version work? What haven't I grokked about pipes?

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up vote 23 down vote accepted

To do that you need xargs:

which studio | xargs ls -l

From man xargs:

xargs - build and execute command lines from standard input

To fully understand how pipes work, you can read What is a simple explanation for how pipes work in BASH?:

A Unix pipe connects the STDOUT (standard output) file descriptor of the first process to the STDIN (standard input) of the second. What happens then is that when the first process writes to its STDOUT, that output can be immediately read (from STDIN) by the second process.

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ls does not read its arguments from standard input, but from the command line. To get the directory at the command line, you have to use command substitution:

ls -l "$( which studio )"

(The double quotes are needed if the path might contain whitespace.)

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The answer involving xargs is cleaner, but this honors my shell's color coding, which is a nice boon! – Dannid Oct 15 '14 at 16:48

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