129

I have problem with Bash, and I don't know why.
Under shell, I enter:

echo $$    ## print 2433
(echo $$)  ## also print 2433
(./getpid) ## print 2602

"getpid" is a C program to get current pid, like:

   int main() {
    printf("%d", (int)getpid());
    return 0;
   }

What confuses me is that:

  1. I think "(command)" is a sub-process (am i right?), and i think its pid should be different with its parent pid, but they are the same, why...
  2. when i use my program to show pid between parenthesis, the pid it shows is different, is it right?
  3. is '$$' something like macro?

Can you help me?

  • 6
    Note that getpid would show a different process ID even if it weren't run in a subshell. – chepner Jan 11 '14 at 15:06
  • No matter other explications refering to the manual page of bash, etc. I would bet that (xx) does not actually invoke a separate Linux process (nor a thread). They would be stupid to implement it in such inefficient way. – Marian Jan 11 '14 at 18:29
179

$$ is defined to return the process ID of the parent in a subshell; from the man page under "Special Parameters":

$ Expands to the process ID of the shell. In a () subshell, it expands to the process ID of the current shell, not the subshell.

In bash 4, you can get the process ID of the child with BASHPID.

~ $ echo $$
17601
~ $ ( echo $$; echo $BASHPID )
17601
17634
  • 12
    "parent" is a bit misleading (at least it was to me), it's actually the "top level" shell. For instance : echo $$; (echo $$; (echo $$)) echoes the same pid three times – Martin Bouladour Jul 20 '17 at 9:59
  • 1
    Right; I should have said that the value is inherited from a parent shell (which inherited its value from its parent, etc). The top level shell sets it initially, rather than inheriting from its (non-shell) parent process. – chepner Jul 20 '17 at 11:38
  • $ Expands to the process ID of the shell does it tho? echo $ just echoes the literal $. – Alexander Mills May 31 at 20:47
  • @AlexanderMills Well, yes; $ alone is not a parameter expansion. The man page is referring to the name of the special parameter, which is $; it's not claiming that $ alone expands. – chepner May 31 at 20:55
  • Ok I honestly have no idea what that means, but echo $BASHPID works in bash 4 and 5 (but not version 3.2.57 on MacOS) – Alexander Mills May 31 at 20:56
73

You can use one of the following.

  • $! is the PID of the last backgrounded process.
  • kill -0 $PID checks whether it's still running.
  • $$ is the PID of the current shell.
24
  1. Parentheses invoke a subshell in Bash. Since it's only a subshell it might have the same PID - depends on implementation.
  2. The C program you invoke is a separate process, which has its own unique PID - doesn't matter if it's in a subshell or not.
  3. $$ is an alias in Bash to the current script PID. See differences between $$ and $BASHPID here, and right above that the additional variable $BASH_SUBSHELL which contains the nesting level.
4

Try getppid() if you want your C program to print your shell's PID.

1

If you were asking how to get the PID of a known command it would resemble something like this:

If you had issued the command below #The command issued was ***

dd if=/dev/diskx of=/dev/disky


Then you would use:

PIDs=$(ps | grep dd | grep if | cut -b 1-5)

What happens here is it pipes all needed unique characters to a field and that field can be echoed using

echo $PIDs

0

this one univesal way to get correct pid

pid=$(cut -d' ' -f4 < /proc/self/stat)

same nice worked for sub

SUB(){
    pid=$(cut -d' ' -f4 < /proc/self/stat)
    echo "$$ != $pid"
}

echo "pid = $$"

(SUB)

check output

pid = 8099
8099 != 8100
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