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I want to use a script that checks whether a list of directories exists or not and at the same time it should print some custom message that I am sending.

For example:

I have a script that validates if directory exists or not:

**check.sh**

for i in $*
   if [ -d "$i" ]; then
      echo Found <msg-i> directory.
   else
       echo <msg-i> directory not found.

Now I want to call this script like this:

./check.sh $DIR1 msg1 $Dir2 msg2 $Dir3 msg3

So if DIR1 doesn't exist then I want to display message as "msg1 directory not found", similarly for DIR2 I want to show "msg2 directory not found". Here msg1 and msg2 are something I want to pass as string. How to achieve this? I am using bash shell.

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3 Answers 3

up vote 7 down vote accepted

Try this:

while [ -n "$1" ]
do
    dir="$1"
    msg="$2"
    if [ -d "$dir" ]; then
        echo "$msg dir FOUND"
    else
        echo "$msg dir NOT FOUND"
    fi
    shift 2
done

shift <n> command simply shifts left positional parameters passed to the script of n positions. For example if you call a script with:

./myscript 1 2 3 4

$1 is "1" and $2 is "2"

but if you shift 2 then $1 is "3" and $2 is "4".

In this way the loop consumes 2 parameters per cycle until $1 parameter is an empty string ( -n "$1").

while condition can be written more elegantly as:

while (( $# ))

obtaining the same result.

You can also check for the ssecond parameter (while [ -n "$2" ]) but this changes the behavior when user provides an odd number of parameters:

  • in the first case last directory will be checked but you'll have a strange message because $msg il empty
  • il the second case you'll not have strange messages, but last directory will silently not be checked

Better test parameters at the beginning:

if (( $# % 2 ))
then
    echo "Provide an even number of parameters"
    exit 1
fi
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2  
The while condition can simply be (( $# )) (test if the number of positional parameters is non-zero). –  chepner May 24 '13 at 12:51
1  
Since you want 2 parameters per loop: while [[ "$2" ]] –  glenn jackman May 24 '13 at 19:09
    
Thanks to @chepner: I reported your suggestions in my answer –  Zac May 25 '13 at 8:52
    
Thanks to @glennjackman I reported your suggestion in my answer –  Zac May 25 '13 at 8:53

Chepner Says:

The while condition can simply be (( $# )) (test if the number of positional parameters is non-zero).

Chaitanya Says:

Hi Chepner, thanks for providing alternate solution, can you please tell me how the while condition should actually look like in order to use $# , I tried different ways but it is not working for me.

Here's a quick sample:

while (( $# ))
do
   dir=$1
   msg=$2
   shift 2
   [...]
done

The while (( $# )) will be true as long as there are any command line arguments. Doing the shift twice removes arguments from the list. When no more arguments, the while loop ends.

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@Zac has the correct answer.

One tip for the message: use a printf format string:

./check.sh dir1 "can't locate %s directory"

and in the script:

if [[ ! -d "$dir" ]]; then
    printf "$msg" "$dir"
share|improve this answer
    
Thanks Glenn, can you please let me know when can I use echo command and when should I use printf? –  chaitanya May 24 '13 at 22:29
    
echo just concatenates its arguments and outputs them. You can use printf if you need finer-grained control over the formatting (e.g. print a number with leading zeros printf %05d $n). printf also has a nice feature that it will re-use the format string if there are more arguments than placeholders, so printf "%s\n" "$@" is a nice shortcut for for arg in "$@"; do echo "$arg"; done –  glenn jackman May 24 '13 at 23:19

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