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Is there some way to get bash into a sort of verbose mode where, such that, when it's running a shell script, it echoes out the command it's going to run before running it? That is, so that it's possible to see the commands that were run (as well as their output), similar to the output of make?

That is, if running a shell script like

echo "Hello, World"

I would like the following output

echo "Hello, World"
Hello, World

Alternatively, is it possible to write a bash function called echo_and_run that will output a command and then run it?

$ echo_and_run echo "Hello, World"
echo "Hello, World"
Hello, World
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4 Answers 4

You could make your own function to echo commands before calling eval.

Bash also has a debugging feature. Once you set -x bash will display each command before executing it.

cnicutar@shell:~/dir$ set -x
cnicutar@shell:~/dir$ ls
+ ls --color=auto
a  b  c  d  e  f
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+1 and also, if it's not obvious, set -x can also go in shell scripts and will last the length of the script. –  jedwards Sep 2 '12 at 3:13
    
This does seem like the best, most reliable approach. (And also works with redirection, which I was prepared to not worry about, though it's nice to have.) The only problem is set +x commands appear in the output as well... Also discovered this: I want a log of my script's actions. –  mjs Sep 2 '12 at 7:35
3  
@mjs: If you want the command echo-ing for the whole runtime of your script, you can run it via bash -x (which enables set -x implicitly and does not output it). –  Michał Górny Sep 2 '12 at 21:24
    
@MichałGórny Thanks, "bash -cx ..." works almost perfectly; it only fails to solve the quoted argument problem. But, close enough! –  mjs Sep 12 '13 at 10:55
    
You can also do ( set -x ; ls ; echo blah ) which might be helpful in some situations. (The set -x is reverted when the subshell exits.) –  mjs Jun 3 at 15:24
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Create executable(+x) base script named as "echo_and_run" with below mentioned simple shell script!

#!/bin/bash
echo "$1"
$1

$ ./echo_and_run "echo Hello, World"

echo Hello, World
Hello, World

However, cnicutar's approch to set -x is reliable and strongly recommended.

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No, do echo "$@"; "$@" –  glenn jackman Sep 2 '12 at 2:14
    
This swallows quotes--for the example above, you get echo Hello, World instead of echo "Hello, World". –  mjs Sep 2 '12 at 7:30
    
Right, if we use "$@", it swallows quotes. one may use something like, ./echo_and_run 'echo "Hello, World"' –  Mayur Pipaliya Sep 2 '12 at 15:13
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To answer the second part of your question, here's a shell function that does what you want:

echo_and_run() { echo "$@" ; "$@" ; }

I use something similar to this:

echo_and_run() { echo "\$ $@" ; "$@" ; }

which prints $ in front of the command (it looks like a shell prompt and makes it clearer that it's a command). I sometimes use this in scripts when I want to show some (but not all) of the commands it's executing.

As others have mentioned, it does lose quotation marks:

$ echo_and_run echo "Hello, world"
$ echo Hello, world
Hello, world
$ 

but I don't think there's any good way to avoid that; the shell strips quotation marks before echo_and_run gets a chance to see them. You could write a script that would check for arguments containing spaces and other shell metacharacters and add quotation marks as needed (which still wouldn't necessarily match the quotation marks you actually typed).

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up vote 0 down vote accepted

It's possible to use bash's printf in conjunction with the %q format specifier to escape the arguments so that spaces are preserved:

function echo_and_run {
  echo "$" "$@"
  eval $(printf '%q ' "$@") < /dev/tty
}
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