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Here is the content of my bash script:

 #!/bin/bash

 set INPFILE=$argv[1]

 echo "Your input file is "
 echo $INPFILE

and I execute it as:

 $ ./script.sh inputfile.in

For some reason, bash doesn't accept the argval[1]. I do not receive an error either.

BTW, the output is:

 Your input file is
3
  • You will have to learn to be precise. You script references $argv[1]; your question asks about argval[1] — the names are wholly unrelated. You need to read the manual on positional parameters and eventually on arrays. Immediately, you need to use $1, which is the positional parameter notation. – Jonathan Leffler Jun 30 '15 at 14:07
  • 1
    Incidentally, Bash is not a C shell derivative so you don't need to use the set command like that, either. It doesn't do what you seem to think it does. You could usefully add echo "$1" at the end of your script to see what you are doing. – Jonathan Leffler Jun 30 '15 at 14:14
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    echo $INPFILE is also wrong (doesn't work in all cases) -- look at what happens when $1 is -n, or "*". Use printf '%s\n' "$INPFILE" instead. Also, using at least one lower-case character in variable names avoids overwriting system variables, and is in line with best practices; see also the fourth paragraph of pubs.opengroup.org/onlinepubs/009695399/basedefs/… on environment variable naming convention, keeping in mind that shell variables and environment variables share a namespace. – Charles Duffy Jun 30 '15 at 18:07
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Change set INPFILE=$argv[1] to:

INPFILE="$1"

$1, $2, $3 .... etc are the positional parameters passed to the script/function.

See the manual for more info.

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