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I have a Bash script that performs actions based on the value of a variable. The general syntax of the case statement is:

case ${command} in
   start)  do_start ;;
   stop)   do_stop ;;
   config) do_config ;;
   *)      do_help ;;

I'd like to execute a default routine if no command is provided, and do_help if the command is unrecognized. I tried omitting the case value thus:

case ${command} in
   )       do_default ;;
   *)      do_help ;;

The result was predictable, I suppose:

syntax error near unexpected token `)'

Then I tried using my best shot at a regex:

case ${command} in
   ^$)     do_default ;;
   *)      do_help ;;

With this, an empty ${command} falls through to the * case.

Am I trying to do the impossible?

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how is the command being provided? through stdin? –  Oak Jul 10 '13 at 16:04

3 Answers 3

up vote 34 down vote accepted

The case statement uses globs, not regexes, and insists on exact matches.

So the empty string is written, as usual, as "" or '':

case "$command" in
  "")        do_empty ;;
  something) do_something ;;
  prefix*)   do_prefix ;;
  *)         do_other ;;
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Well, don't I feel foolish. Thanks. :) –  Singlestone Jul 10 '13 at 16:18

Here's one workaround:

case _${command} in
   _start)  do_start ;;
   _stop)   do_stop ;;
   _config) do_config ;;
   _)       do_default ;;
   *)       do_help ;;

Obviously you can use whatever prefix you like.

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I use a simple fall through. no parameters passed ($1="") will be caught by the second case statement, yet the following * will catch any unknown parameter. Flipping the "") and *) will not work as *) will catch everything every time in that case, even blanks.

case "$1" in
    echo "this $1 word was seen."
    echo "no $1 word at all was seen."
    echo "any $1 word was seen."
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