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I have written this little script to find executables that are passed as arguments e.g.

./testexec du ls md 

How do I get the script to not output commands that are not found - e.g. not to display error output for "md" command ??

  #!/bin/sh

    for filename in "$@"
    do
    which $filename
    done
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2 Answers 2

up vote 6 down vote accepted

If you are using bash, you should use the builtin "type" rather than the external utility "which". The type command will return a non-zero exit status if the command is not found, which makes it easy to use with a conditional.

for filename in "$@"; do
   if type -P "$filename" >/dev/null; then
       echo "found in PATH: $filename"
   fi
done
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1  
@frodo: You can also capture the location of the executable like this: for filename in "$@"; do if dir=$(type -P "$filename"); then echo "found in PATH: $dir"; fi; done –  Dennis Williamson Dec 6 '11 at 17:14

Just redirect the error message (coming from stderr) into /dev/null:

which $filename 2>/dev/null
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Thank you eduffy - I take it this means the "2" means "standard error " so any errors will be sent to /dev/null ? - apologies for the basic newbie question –  frodo Dec 6 '11 at 15:05
1  
Yes, "2" is stderr. Processes in *NIX start with 3 file descriptors: 0 - stdin 1 - stdout 2 - stderr –  jordanm Dec 6 '11 at 16:00

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