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What is the best way to set up a bash script that prints each command before it executes it?

That would be great for debugging purposes.

I already tried this:

CMD="./my-command --params >stdout.txt 2>stderr.txt"
echo $CMD
`$CMD`

What it's supposed to do is to print this first:

./my-command --params >stdout.txt 2>stderr.txt

and then execute ./my-command --params, with the output redirected to the files specified.

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If you want to expand the variables (-x), possible duplicate of: stackoverflow.com/questions/2853803/… –  Ciro Santilli 六四事件 法轮功 Mar 9 '14 at 8:24
    
Possible cross site duplicate of: serverfault.com/questions/16204/… –  Ciro Santilli 六四事件 法轮功 Mar 9 '14 at 8:26

3 Answers 3

up vote 59 down vote accepted
set -o xtrace

or

bash -x myscript.sh

This works with standard /bin/sh as well IIRC (it might be a POSIX thing then)

And remember, there is bashdb (bash Shell Debugger, release 4.0-0.4)


To revert to normal, exit the subshell or

set +o xtrace
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Perfect, here's more information about this (on a page where you may find more useful information as well): Bash Hackers Wiki: Bash debugging tips - shell debug output –  entropo Apr 21 '11 at 22:33
1  
Note also bash -v / set -v which is slightly different, and slightly less verbose. –  tripleee Aug 12 '13 at 5:35
    
    
Also it may be usefull the kind of "logical brackets": OPT=$- to save all the keys, and set -$OPT to restore. –  Orient Jul 10 '14 at 3:39

set -x is fine.

Another way to print each executed command is to use trap with DEBUG. Put this line at the beginning of your script :

trap 'echo "# $BASH_COMMAND"' DEBUG

You can find a lot of other trap usages here.

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The easiest way to do this is to let bash do it:

set -x

Or run it explicitly as bash -x myscript.

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