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I get a piece of code for PID file control.

The style of programmers, I don't understand..

I don't know -->

Use of && on

[[ $mypid -ne $procpid ]] **&&**

And relaunch ourselves properly (does not work on MacosX)

$0 $@ &

Code complete...

function createpidfile() {
  mypid=$1
  pidfile=$2
  #Close stderr, don't overwrite existing file, shove my pid in the lock file.
  $(exec 2>&-; set -o noclobber; echo "$mypid" > "$pidfile") 
  [[ ! -f "$pidfile" ]] && exit #Lock file creation failed
  procpid=$(<"$pidfile")
  [[ $mypid -ne $procpid ]] && {
    #I'm not the pid in the lock file
    # Is the process pid in the lockfile still running?
    isrunning "$pidfile" || {
      # No.  Kill the pidfile and relaunch ourselves properly.
      rm "$pidfile"
      $0 $@ &
    }
    exit
  }
}

I'm lost

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2  
That code looks pretty good. I don't understand why they did line 4 of the function as they did. That should be an error unless one of those commands produces a valid command name, which they shouldn't, and it should be quoted rather than relying on word-splitting. They probably meant it to be a subshell with no preceding $ sign to isolate the noclobber. Also, don't use the function name() { syntax. If it's Bash just use name(). If you're doing some unusual ksh/bash polyglot library, use function name {. – ormaaj Apr 19 '12 at 15:45
3  
To properly protect the arguments with whitespace, change $0 $@ & to "$0" "$@" & -- gnu.org/software/bash/manual/bashref.html#Special-Parameters – glenn jackman Apr 19 '12 at 17:28

[[ ! -f "$pidfile" ]] && exit means "if there is no file called $pidfile then exit" (using the short-circuit evaluation) - exit will not be evaluated if the file exists.

$0 $@ &:

  • $0 - the first argument in the command line (meaning the executable itself);
  • $@ - all the remaining arguments passed onto the command line;
  • & - send the process to background after the launch.
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    command1 && command2

command2 is executed if, and only if, command1 returns an exit status of zero.

$0 is the name of the actual binary.

$@ are all parameters.

and the closing & sends the process to the background.

Everything is documented in the bash manual See e.g. section 3.4.2 Special Parameters

share|improve this answer
    
command2 is executed if, and only if, command1 returns an exit status of zero -> should be non-zero (since if command1 evaluates to zero, there is no sense in evaluating command2 - the expression is guaranteed to be false). – Alexander Pavlov Apr 19 '12 at 14:18
    
@AlexanderPavlov - that line is a copy-paste from the bash-manual, but yes, you are of course correct. – Fredrik Pihl Apr 19 '12 at 14:22
    
Ohh... time to fix bash manuals... – Alexander Pavlov Apr 19 '12 at 14:23
    
disagree, bash manual is correct as is. try this for example false && echo got here VS. true && echo got here2. And, false; echo $?; true ; echo $?. Good luck to all. – shellter Apr 19 '12 at 14:46
1  
this is no C code, bash has it inverted afaik. – AoeAoe Apr 25 '12 at 16:16
  1. && is a logical AND.

    If the condition [[ $mypid -ne $procpid ]] is true, the code in the block {...} gets executed.

  2. $0 $@ & restarts the script in the background (with the same arguments).

    • $0 is the command that invoked the script

    • $@ is the list of all arguments passed to the script

    • & indicates the previous command should be executed in the background

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It's boolean short-circuiting - if the bit before the && (and) operator evaluates to be false then there's no need to execute the second part (the block between { and }. The same trick is used with the || operator, which will only execute the second block if the first block returned false.

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