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This is probably a very simple / stupid question, but I am not understanding why I am not getting the expected value when I run this:

FOUND_FRONTDEV=false

echo "$PATHS" |
  while IFS= read -r line
do
    FOUND_FRONTDEV=true
    echo "$FOUND_FRONTDEV"
    break
done

echo "$FOUND_FRONTDEV"

It returns "true" then "false". It looks like the variable is local but it should not be. I am really confused why my second echo prints false. Does anyone know please?

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3 Answers 3

The while loop part is executed in a subshell. Hence the change you do to FOUND_FRONTDEV is not visible in the parent shell as the FOUND_FRONTDEV inside the while loop dies once the subshell exits.

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Thanks! This was so stupid :) Thank you so much! I modified my loop to not pipe the echo :) Perfect! Thank you. –  user1777907 Apr 3 '13 at 21:15

Because of your pipe, bash is executing the loop in a subshell, so it can't affect the environment outside it. You can get around this by changing the echo | while ... to while ... done <<<$PATHS

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You have to change the while loop so that the echo part is run in a subshell and not the while loop itself. When the variable is changed in a subshell it is only changed there and not changed within the context of the parent shell.

So try:

FOUND_FRONTDEV=false

while IFS= read -r line ; do
    FOUND_FRONTDEV=true
    echo "$FOUND_FRONTDEV"
    break
done < <(echo "$PATHS")

echo "$FOUND_FRONTDEV"
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