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sometimes I need to follow a process and I always find a bash-script doing pid=$1. As far as I understand, it should get the process ID that I sent to the first shell instance I created that is running that particular process, and I could use it later (for instance, to kill it, or follow memory usage, or whatever). pid=$0 should get the current instance (bash) and pid=$! the latest one. (Please, correct if I'm wrong)

Problem is: every time I need to run pid=$1 command, pid gets nothing and echo $pid or echo ${pid} prints and empty line, I always need to fancy a way of doing it using pid=$! instead, since it's the only thing that gets my process ID. Does anyone know why my terminals behavior like that? (it's happening either in Linux Mint or in Fedora)

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$0 and $1 get the positional parameters fed to the script (or function). In order for those to be PIDs, the script/function would need to have been passed the PIDs as arguments. Oh, and $0 will likely never be a PID, because it's generally the name of the script/function - the actuall arguments start with $1... –  twalberg Jul 16 '13 at 15:40
    
@twalberg Does it only work in a script file? I mean, if I try to run it directly on terminal, is that not supposed to work? –  rafa Jul 16 '13 at 15:54
    
Typically, the shell running in your terminal will have been called with no arguments, so $1 will be empty, and $0 will just contain the name of your shell. You may have used set to change that at some point, though, so check things out with e.g. echo "$1", etc... –  twalberg Jul 16 '13 at 16:21
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rafa, you've misunderstood, or picked very bad code as an example. !sorry!.. as others have said, $$ current shells pid, $! most recent process put in back ground, etc. Do set -- "my First Position" "2" 3; echo $1; echo $2; echo $3; for a non-typical example of positional parameters. Good luck. –  shellter Jul 17 '13 at 2:03
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As I said, set .... is a non-typical use of positional params. You're more likely to see them inside a script like #....script code ... if [[ -d $1 ]] ; then ls -l $1 ; echo first arg on cmdline was a Dir; echo the dirname submitted was $1; fi #.... more script, possibly other refs to other pos params... if [[ -f $2 ]] ; then ls -l $2; echo 2nd arg was file; echo filename submitted was $2; fi . Good luck. –  shellter Jul 17 '13 at 13:41

1 Answer 1

up vote 4 down vote accepted

$$ should give you the script pid

$PPID should give you the caller (parent) pid


Answer of comment

sleep 100 &
sleeppid=$!
echo "PID=$sleeppid"
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ok so, for instance, if I run sleep 100 &, how can I get the pid os this? –  rafa Jul 16 '13 at 15:50
    
$! see answer for example –  Eun Jul 16 '13 at 15:54
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use $! for getting PID of last started background process. –  anishsane Jul 16 '13 at 15:55
    
@Eun, ok, that's the pid=$! way I said I always need to use, but I see people use pid=$1 and be happy with that and that does not work with me... For example, here –  rafa Jul 16 '13 at 15:56
    
Normaly $1 is the first argument –  Eun Jul 16 '13 at 15:57

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