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I have a shell script that executes a number of commands. How do I make the shell script exit if any of the commands exit with a non-zero exit code?

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I answered assuming you're using bash, but if it's a very different shell can you specify in your post? –  Martin W Sep 18 '08 at 6:11

10 Answers 10

up vote 209 down vote accepted

After each command, the exit code can be found in the $? variable so you would have something like:

ls -al file.ext
rc=$?; if [[ $rc != 0 ]]; then exit $rc; fi

You need to be careful of piped commands since the $? only gives you the return code of the last element in the pipe so, in the code:

ls -al file.ext | sed 's/^/xx: /"

will not return an error code if the file doesn't exist (since the sed part of the pipeline actually works, returning 0).

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21  
Same feature in just one line of portable code: ls -al file.ext || exit $? ( [[ ]] is not portable ) –  MarcH Nov 10 '10 at 23:44
8  
MarcH, I think you'll find that [[ ]] is pretty portable in bash, which is what the question is tagged :-) Strangely enough, ls doesn't work in command.com so it's not portable either, specious I know, but it's the same sort of argument you present. –  paxdiablo Nov 11 '10 at 0:04
27  
I know this is ancient, but it should be noted that you can get the exit code of commands in a pipe via the array PIPESTATUS (i.e., ${PIPESTATUS[0]} for the first command, ${PIPESTATUS[1]} for the second, or ${PIPESTATUS[*]} for a list of all exit stati. –  DevSolar Jul 19 '12 at 15:13
9  
It needs to be emphasized that elegant and idiomatic shell scripting very rarely needs to examine $? directly. You usually want something like if ls -al file.ext; then : nothing; else exit $?; fi which of course like @MarcH says is equivalent to ls -al file.ext || exit $? but if the then or else clauses are somewhat more complex, it is more maintainable. –  tripleee Aug 23 '12 at 7:14
3  
[[ $rc != 0 ]] will give you an 0: not found or 1: not found error. This should be changed to [ $rc -ne 0 ]. Also rc=$? could then be removed and just used [ $? -ne 0 ]. –  curtlee2002 May 21 '13 at 15:15

If you want to work with $?, you'll need to check it after each command, since $? is updated after each command exits. This means that if you execute a pipeline, you'll only get the exit code of the last process in the pipeline.

Another approach is to do this:

set -e
set -o pipefail

If you put this at the top of the shell script, it looks like bash will take care of this for you. As a previous poster noted, "set -e" will cause bash to exit with an error on any simple command. "set -o pipefail" will cause bash to exit with an error on any command in a pipeline as well.

See here or here for a little more discussion on this problem. Here is the bash manual section on the set builtin.

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Works like a charm! –  Joseph Lust Apr 30 at 16:04

"set -e" is probably the easiest way to do this. Just put that before any commands in your program.

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12  
What does it do? Any link to docs please? –  Swaroop C H Sep 18 '08 at 6:15
1  
@SwaroopCH set -e your script will abort if any command in your script exit with error status and you didn't handle this error. –  Andrew Jan 28 '13 at 4:43

http://cfaj.freeshell.org/shell/cus-faq-2.html#11

  1. How do I get the exit code of cmd1 in cmd1|cmd2

    First, note that cmd1 exit code could be non-zero and still don't mean an error. This happens for instance in

    cmd | head -1
    

    you might observe a 141 (or 269 with ksh93) exit status of cmd1, but it's because cmd was interrupted by a SIGPIPE signal when head -1 terminated after having read one line.

    To know the exit status of the elements of a pipeline cmd1 | cmd2 | cmd3

    a. with zsh:

    The exit codes are provided in the pipestatus special array. cmd1 exit code is in $pipestatus[1], cmd3 exit code in $pipestatus[3], so that $? is always the same as $pipestatus[-1].

    b. with bash:

    The exit codes are provided in the PIPESTATUS special array. cmd1 exit code is in ${PIPESTATUS[0]}, cmd3 exit code in ${PIPESTATUS[2]}, so that $? is always the same as ${PIPESTATUS: -1}.

    ...

    For more details see the following link.

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If you just call exit in the bash with no parameters, it will return the exit code of the last command. Combined with OR the bash should only invoke exit, if the previous command fails. But I haven't tested this.

command1 || exit;
command2 || exit;

The Bash will also store the exit code of the last command in the variable $?.

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this is clever! –  br1ckb0t Oct 22 at 17:23

for bash:

# this will trap any errors or commands with non-zero exit status
# by calling function catch_errors()
trap catch_errors ERR;

#
# ... the rest of the script goes here
#  

function catch_errors() {
   # do whatever on errors
   # 
   #
   echo "script aborted, because of errors";
   exit 0;
}
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15  
Probably shouldn't "exit 0", since that indicates success. –  nobar Oct 24 '10 at 19:14
2  
exit_code=$?;echo "script aborted, because of errors";exit $exit_code –  RaSergiy Nov 13 '12 at 19:54
1  
@HAL9001 do you have evidence of this? IBM documentation says otherwise. –  Patrick James McDougle Aug 12 at 20:56
[ $? -eq 0 ] || exit $?; # exit for none-zero return code
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1  
Shouldn't this be exit $? (no parens)? –  malthe Dec 7 '13 at 15:10

In bash this is easy, just tie them together with &&:

command1 && command2 && command3

You can also use the nested if construct:

if command1
   then
       if command2
           then
               do_something
           else
               exit
       fi
   else
       exit
fi
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  # v1.9.2
  #------------------------------------------------------------------------------
  # echo pass params and print them to a log file and terminal
  # with timestamp and $host_name and $0 PID
  #------------------------------------------------------------------------------
  doLog(){
     type_of_msg=$1
     [[ $type_of_msg == *DEBUG* ]] && [[ $PrintDebugMsgs -ne 1 ]] && return


     # print to the terminal if we have one
     test -t 1 && echo "`date +%Y.%m.%d-%H:%M:%S` [@$host_name] [$$] $*"

     # define default log file none specified in conf file
     test -z $log_file && log_file="$component_dir/$component_name.log"
     echo "`date +%Y.%m.%d-%H:%M:%S` [@$host_name] [$$] $*" >> $log_file
  }
  #eof func doLog


  # v1.9.2
  #------------------------------------------------------------------------------
  # run a command and log the call and its output to the log_file
  # doPrintHelp: doRunCmdAndLog "$cmd"
  #------------------------------------------------------------------------------
  doRunCmdAndLog(){
     cmd="$*" ; 
     doLog " DEBUG running cmd and log: \"$cmd\""

     msg=$($cmd 2>&1)
     ret_cmd=$?
     error_msg="ERROR : Failed to run the command \"$cmd\" with the output \"$msg\" !!!"

     [ $ret_cmd -eq 0 ] || doLog "$error_msg"
     doLog " DEBUG : cmdoutput : \"$msg\""
  }
  #eof func doRunCmdAndLog


  # v1.9.2
  #------------------------------------------------------------------------------
  # run a command on failure exit with message
  # doPrintHelp: doRunCmdOrExit "$cmd"
  #------------------------------------------------------------------------------
  doRunCmdOrExit(){
     cmd="$*" ; 

     doLog " DEBUG running cmd or exit: \"$cmd\""
     msg=$($cmd 2>&1)
     ret_cmd=$?
     # if error occured during the execution exit with error
     error_msg="ERROR : FATAL : Failed to run the command \"$cmd\" with the output \"$msg\" !!!"
     [ $ret_cmd -eq 0 ] || doExit "$ret_cmd" "$error_msg"

     #if no error occured just log the message
     doLog " DEBUG : cmdoutput : \"$msg\""
  }
  #eof func doRunCmdOrExit
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Unfortunately set -e and set -o pipefail alone do not make your scripts bulletproof.

The script x.sh

function calc { echo 42; exit 1; }
function test { local v; v=$(calc); echo ${v}; }
set -e
test

works "as expected". Invoked with bash x.sh; echo $? the exit 1 command aborts the script and thwarts the echo within test. It displays:

1

But modifying the function test to read

function test { local v=$(calc); echo ${v}; }

results in

42
0

This is because local overwrites the error code of calc. See exit code of command substitution in bash local variable assignment. In other words: local can shipwreck exit. Even worse, local variables appear implicitly as parameters to functions. This makes the script

function calc { echo 42; exit 1; }

set -e
echo $(calc)

failing too. I.e., the function calc evaluates as a parameter to echo without error and thus ignores the exit 1 command. Again, invoked with bash x.sh; echo $? it outputs:

42
0
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