2

I have this example code:

find "$1" ! -regex "$regex" 2>/dev/null | while read line ; do
    a="$line"
done

echo ("$a") # prints nothing because of subshell

I need:

  • Workaround for subshell to make $a visible outside (in global scope)
  • To NOT use bash's process substitution
  • To have compatible with dash, bash and korn shell

How can I achieve this? Is there any simple solution?

1

Use an explicit named pipe.

mkfifo named_pipe
find "$1" ! -regex "$regex" 2> /dev/null > named_pipe &

while read line; do
    a=$line
done < named_pipe
  • Is there any way to avoid creating file? We can't make temporary files :S – Mára Toner Mar 28 '16 at 18:45
  • 1
    Afraid not. Your only other choice is to replace the call to find with a shell function (recursive, if you need to descend into subdirectories) that uses a for loop to iterate over all the files in the current directory hierarchy. expr can be used to check each file agains the regular expression, or you might be able to get away with a filename pattern if the regex isn't too complicated. – chepner Mar 28 '16 at 18:52
  • Okay, well, it works perfectly anyway, so marking as solved. Thanks a lot! :) – Mára Toner Mar 28 '16 at 19:02
4

If I understand you correctly, it is not so much the subshell that is bothering you, but the fact that the variable does not retain its value outside the subshell. You could use code grouping like this:

find "$1" ! -regex "$regex" 2>/dev/null | 
{ 
  while read line
  do
    a=$line
  done
  echo "$a"
}

You can use the value of variable a as long as it is inside the curly braces.

0

Without a named pipe and without running the whole thing in a subshell, you can use a here-doc with a command substitution inside the here-doc:

while read line; do
    a=$line
done <<EOF
    $(find "$1" ! -regex "$regex" 2>/dev/null)
EOF

echo "$a"

This should be portable.

See also. BashFAQ/024.

Note. Parsing the output of find like this is an antipattern.

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