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Suppose that a process is creating a mutex in shared memory and locking it and dumps core while the mutex is locked.

Now in another process how do I detect that mutex is already locked but not owned by any process?

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up vote 8 down vote accepted

If you're working in Linux or something similar, consider using named semaphores instead of (what I assume are) pthreads mutexes. I don't think there is a way to determine the locking PID of a pthreads mutex, short of building your own registration table and also putting it in shared memory.

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4  
Agree in general with the semaphore recommendation but POSIX semaphores don't really solve the problem since they also don't record the PID of the locking process nor unlock upon untimely death. Rusty and clumsy though they may be SysV semaphores do keep track of PIDs and can revert when called with the SEM_UNDO option. – Duck Nov 9 '09 at 22:07

It seems that the exact answer has been provided in the form of robust mutexes.

According to POSIX, pthread mutexes can be initialised "robust" using pthread_mutexattr_setrobust(). If a process holding the mutex then dies, the next thread to acquire it will receive EOWNERDEAD (but still acquire the mutex successfully) so that it knows to perform any cleanup. It then needs to notify that the acquired mutex is again consistent using pthread_mutex_consistent().

Obviously you need both kernel and libc support for this to work. On Linux the kernel support behind this is called "robust futexes", and I've found references to userspace updates being applied to glibc HEAD.

In practice, support for this doesn't seem to have filtered down yet, in the Linux world at least. If these functions aren't available, you might find pthread_mutexattr_setrobust_np() there instead, which as far as I can gather appears to be a non-POSIX predecessor providing the same semantics. I've found references to pthread_mutexattr_setrobust_np() both in Solaris documentation and in /usr/include/pthread.h on Debian.

The POSIX spec can be found here: http://www.opengroup.org/onlinepubs/9699919799/functions/pthread_mutexattr_setrobust.html

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3  
I think this is a better answer. I've been using the robust mutex on Solaris so far with success. – Joseph Garvin Oct 18 '10 at 17:03
2  
Robust mutexes are great, but be aware they may not work correctly on GNU/Linux prior to glibc 2.15 if the mutex was created in a parent process which then forks and the child dies while holding the mutex. That bug is fixed in glibc 2.15. If the two processes sharing the mutex are not a parent and child created by forking then robust mutexes work fine even with older glibc versions. – Jonathan Wakely Jan 10 '13 at 23:27

How about file-based locking (using flock(2))? These are automatically released when the process holding it dies.

Demo program:

#include <stdio.h>
#include <time.h>
#include <sys/file.h>

void main() {
  FILE * f = fopen("testfile", "w+");

  printf("pid=%u time=%u Getting lock\n", getpid(), time(NULL));
  flock(fileno(f), LOCK_EX);
  printf("pid=%u time=%u Got lock\n", getpid(), time(NULL));

  sleep(5);
  printf("pid=%u time=%u Crashing\n", getpid(), time(NULL));
  *(int *)NULL = 1;
}

Output (I've truncated the PIDs and times a bit for clarity):

$ ./a.out & sleep 2 ; ./a.out 
[1] 15
pid=15 time=137 Getting lock
pid=15 time=137 Got lock
pid=17 time=139 Getting lock
pid=15 time=142 Crashing
pid=17 time=142 Got lock
pid=17 time=147 Crashing
[1]+  Segmentation fault      ./a.out
Segmentation fault

What happens is that the first program acquires the lock and starts to sleep for 5 seconds. After 2 seconds, a second instance of the program is started which blocks while trying to acquire the lock. 3 seconds later, the first program segfaults (bash doesn't tell you this until later though) and immediately, the second program gets the lock and continues.

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I dont think taht will be removed too as either it is file or memory its same thing for both. – Vivek Nov 14 '09 at 8:05
    
I don't mean by writing something inside the file (which would indeed be similar), but to use flock(2). When your process dies, the file will be closed automatically, and the lock on it should be released. – Wim Nov 14 '09 at 8:21
    
+1 only that flock(fileno(f), LOCK_EX | LOCK_NB) is safer – dashesy May 3 '12 at 17:04
    
Not working on NFS+Cent OS github.com/rubygems/rubygems/issues/806 – Daneel S. Yaitskov May 5 '14 at 12:19

You should use a semaphore as provided by the operating system.

The operating system releases all resources that a process has open whether it dies or exits gracefully.

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Not in all resources. If OP uses the POSIX semaphore as suggested and the process holding the lock dies the value of the semaphore will not revert, potentially deadlocking the other processes. – Duck Nov 9 '09 at 19:37

I left this WRONG post undeleted only if someone will have the same idea and will find this discussion of use!


You can use this approach. 1) Lock the POSIX shared mutex 2) Save the process-id in the shared memory. 3) Unlock the shared mutex 4) On correct exit clean the process-id

If the process coredumps the next process will find that in the shared memory there is a process-id saved on step #2. If there is no process with this process-id in the OS then no one owns the shared mutex. So it's just necessary to replace the process-id.

Update in order to answer the comment:

Scenario 1: 1. P1 starts 2. P1 creates/opens a named mutex if it doesn't exists 3. P1 timed_locks the named mutex and successfuly does it (waits for 10 secs if necessary); 4. P1 coredumps 5. P2 starts after the coredump 6. P2 creates/opens a named mutex, it exists, it's OK 7. P2 timed_locks the named mutex and fails to lock (waits for 10 secs if necessary); 8. P2 remove the named mutex 9. P2 recreates a named mutex & lock it

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I am not seeing a solution here. Scenario 1: (1) P1 locks; (2) P1 dies; (3) deadlock. Scenario 2: (1) P1 locks; (2) P1 writes pid; (3) P1 unlocks; (4) P2 gets control and locks and finds P1 pid. Scenario 3: If the order is switched so that the pid is cleared before the unlock and the process dies you are back to the original problem that the dead process holds the lock and deadlocks the other processes. Am I missing something? – Duck Nov 9 '09 at 21:42
    
Commented Scenario #1 – skwllsp Nov 10 '09 at 16:13
    
The update is unworkable. The reliance on an arbitrary time is bad. But worse, if more than 1 process is trying to execute this formula all hell can break loose during the time of deleting, recreating, locking, etc., the mutex. – Duck Nov 10 '09 at 21:12

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