6

Say I have a file myfile in my current working directory. I want to set a variable if a command executes normally, but also use its result.

$ ls myfile && v=3
myfile
$ echo "$v"
3

But now I also want to pipe the result, so I use the { list; } syntax to group the commands:

$ unset v
$ { ls myfile && v=3; } | grep myf
myfile
$ echo "$v"
                  # v is not set

Bash reference manual -> 3.2.4.3 Grouping Commands says:

{ list; }

Placing a list of commands between curly braces causes the list to be executed in the current shell context. No subshell is created. The semicolon (or newline) following list is required.

So, to my understanding, v should be set to 3. But it is not happening. Why?

6

It's not the curly braces that are causing a subshell to be created, it's the pipe.

To prove it:

$ { ls && v=3; } > tmp
$ echo "$v"
3

To quote Greg:

In most shells, each command of a pipeline is executed in a separate SubShell.

  • Ooooh, so v=1 | echo "hi" would be the same case. – fedorqui Jun 9 '15 at 9:09
  • Yes, the change to v would only last for the lifetime of the subshell. – Tom Fenech Jun 9 '15 at 9:12
  • 2
    True, because v=2; v=1 | echo "hi, v=$v" return "hi, v=2". Interesting, many thanks! – fedorqui Jun 9 '15 at 9:13
  • 1
    @fedorqui Look at my answer here. It's pretty much the same thing. – 123 Jun 9 '15 at 9:14
4

You can use BASH_SUBSHELL variable to verify whether you're in subshell or not.

# BASH_SUBSHELL will print level of subshell from top due to pipe
{ unset v && ls file && v=3 && echo "$BASH_SUBSHELL - $v"; } | nl
     1  file
     2  1 - 3

# outside BASH_SUBSHELL will print 0
echo "$BASH_SUBSHELL - $v";
0 -

You can use for piped command it prints 1 meaning it is in a subshell hence value of v isn't available outside (evident from 2nd output)

  • 1
    Thanks for the trick, anubhava, you always come with some interesting stuff : ) – fedorqui Jun 9 '15 at 9:19
  • $BASHPID can also be used to get the real PID of the shell instance. – Eugeniu Rosca Jun 9 '15 at 9:30

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