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As far as I know, if you prefix a bash command with variable assignment the variable will take effect immediately. And it will only have effect within that command.

I tried this command in bash:

V=1 echo $V

However 1 is not printed out in the terminal which is not what I expected. So why it doesn't work?

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1 Answer 1

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The variable will be passed in the environment of the command following it, not when the command is being evaluated (expanded). Any variable expansion will be done earlier by shell.

$ V=1 env | grep V=
V=1

To get it working:

$ V=1; echo $V
1
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  • 2
    Actually: V=1 eval echo \$V also work as it is delaying the expansion of the variable V until after it is set in the environment. Without a permanent change that a semicolon (;) will cause, of course.
    – user2350426
    Apr 3, 2016 at 2:16
  • @BinaryZebra It definitely would but it's a lazy evaluation with some trick involved..should be avoided in most cases..
    – heemayl
    Apr 3, 2016 at 2:22
  • I meant no "trick". Just a explicit demonstration of delayed evaluation. Yes, I agree that it should be avoided in "production code". But it is invaluable as a learning tool.
    – user2350426
    Apr 3, 2016 at 2:27

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