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umask(0);

fd = open("/dev/null", O_RDWR);

Here's man 2 umask:

umask() sets the calling process’s file mode creation mask (umask) to mask & 0777.

But it doesn't make sense for me,as when we call open ,we will also provide a mode parameter.

So what's the point of umask?

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3 Answers 3

up vote 2 down vote accepted

The umask is applied to all modes used in file system operations. From the manual open(2):

The permissions of the created file are (mode & ~umask)

So with a single call to umask, you can influence the mode of all create files.

This is usually used when a program wants the user to allow to overrule the default grants for files/directories it creates. A paranoid user (or root) can set the umask to 0077 which means that even if you specify 0777 in open(2), only the current user will have access.

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what if umask is 777,no one can modify it then? –  cpuer Jun 1 '11 at 9:27
    
seems open can also be called without the mode parameter,int open(const char *pathname, int flags);,what will be the permission of created files in that case? –  cpuer Jun 1 '11 at 9:35
    
Yes. Doesn't make a lot of sense but nothing stops you from creating files that you can't access yourself. Actually, I use that to stop programs to create/modify unwanted files and folders with chmod 0 .configdir –  Aaron Digulla Jun 1 '11 at 9:36
    
re open without mode: That depends on your flavor of Unix. On my Linux, you must specify mode when you use O_CREAT. Some Unixes build the mode from the mode of the directory which contains the new file. For details, read the docs. –  Aaron Digulla Jun 1 '11 at 9:38

Citing this article:

The purpose of the umask is to allow users to influence the permissions given to newly created files and directories. Daemons should not allow themselves to be affected by this setting, because what was appropriate for the user will not necessarily be suitable for the daemon.

In some cases it may be more convenient for the umask to be set to a non-zero value. This is equally acceptable: the important point is that the daemon has taken control of the value, as opposed to merely accepting what it was given.

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@Blagovest Buyukliev,I still don't see the purpose of umask,isn't it already available in the parameter of open? –  cpuer Jun 1 '11 at 9:05
1  
The second argument of open specifies the mode of opening the file, i.e. which operations will be available on the returned descriptor. umask, on the other hand, specifies the filesystem permissions that will be set for each newly created file. –  Blagovest Buyukliev Jun 1 '11 at 9:12
    
@Blagovest Buyukliev,isn't that also available out there? int creat(const char *pathname, mode_t mode); –  cpuer Jun 1 '11 at 9:14
    
creat is the old, deprecated way to create a new empty file. It is the same as open with the flag O_CREAT. –  Blagovest Buyukliev Jun 1 '11 at 9:16
    
@Blagovest Buyukliev,I mean,either creat or open has their parameter for mode and flag,umask still seems useless to me. –  cpuer Jun 1 '11 at 9:18

I know this is and old question but here is my two cents:

Permissions of shared memory object

I was trying to make a shared memory object, with:

int shm_open(const char *name, int oflag, mode_t mode); 

The resulting shared memory did not have the permission set in mode argument, so I read the shm_open man page which led me to the open function man page and there it says:

mode specifies the permissions to use in case a new file is created. This argument must be supplied when O_CREAT is specified in flags; if O_CREAT is not specified, then mode is ignored. The effective permissions are modified by the process's umask in the usual way: The permissions of the created file are (mode & ~umask). Note that this mode only applies to future accesses of the newly created file

So I tried to modify the umask with:

mode_t umask(mode_t mask); 

but it did not work either, so after more google I found this Setting Permission document in gnu.org

Which recommends:

When your program needs to create a file and bypass the umask for its access permissions, the easiest way to do this is to use fchmod after opening the file, rather than changing the umask. In fact, changing the umask is usually done only by shells. They use the umask function.

and with fchmod my function worked as I wanted :) her it is:

int open_signals_shmem(struct signal_shmem **shmem, int size)
{
    int fd, ret;
    void *ptr;

    *shmem = NULL;
    ret = 1;

    fd = shm_open(SIGNALS_SHMEM_NAME, O_RDWR | O_CREAT, S_IRWXU | S_IRWXG | S_IRWXO);
    if (fd == -1)
    {
        printf("error: signals shmem could not be allocated (%s, errno=%d)\n", SIGNALS_SHMEM_NAME, errno);
    }
    else
    {
        // Change permissions of shared memory, so every body can access it
        fchmod(fd, S_IRWXU | S_IRWXG | S_IRWXO);

        if (ftruncate(fd, size) == -1)
        {
            printf("error: signals shmem could not be truncated (%s, errno=%d)\n", SIGNALS_SHMEM_NAME, errno);
        }
        else
        {
            ptr = mmap(NULL, size, PROT_READ | PROT_WRITE, MAP_SHARED, fd, 0);
            if (ptr == MAP_FAILED)
            {
                printf("error: signals shmem could not be mapped (%s, errno=%d)\n", SIGNALS_SHMEM_NAME, errno);
            }
            else
            {
                *shmem = ptr;
                ret = 0;
            }
        }
    }
    return ret;
}
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