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What is the difference between calling mlock() on some memory and calling shmctl(SHM_LOCK) on that same memory?

These are the only differences I can ascertain:

  • mlock() guarantees that all locked pages are loaded when it returns. shmctl(SHM_LOCK) prevents swapping, but doesn't proactively load non-resident pages.
  • shmctl(SHM_LOCK) can only be used on shared memory segments.
  • shmctl(SHM_LOCK) sets an extra flag (SHM_LOCKED) on the permissions of the shared memory segment.

Are there other differences? In particular, is there any reason not to use mlock() on a shared memory segment?

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I'm not sure, but seems like mlock is more strict that shmctl. Therefore, it may impose constraints that reduce efficiency. –  Shahbaz Jun 16 '12 at 22:13

1 Answer 1

up vote 1 down vote accepted

First of all, mlock() is the syscall to lock process memory in the RAM, and shmctl(X,SHM_LOCK,Y) is used to do shared (IPC) memory, which requires more control from all the producers and consumers, so, that is why mlock() syscall is much easier as:

     int mlock(const void *addr, size_t len);

While shmctl is much more complex to operate, as:

   int shmctl(int shmid, SHM_LOCK, struct shmid_ds *buf);

Where: The buf argument is a pointer to a shmid_ds structure, defined in as follows:

       struct shmid_ds {
           struct ipc_perm shm_perm;    /* Ownership and permissions */
           size_t          shm_segsz;   /* Size of segment (bytes) */
           time_t          shm_atime;   /* Last attach time */
           time_t          shm_dtime;   /* Last detach time */
           time_t          shm_ctime;   /* Last change time */
           pid_t           shm_cpid;    /* PID of creator */
           pid_t           shm_lpid;    /* PID of last shmat(2)/shmdt(2) */
           shmatt_t        shm_nattch;  /* No. of current attaches */
           ...
       };
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