[issue36648] MAP_SHARED isn't proper for anonymous mappings for VxWorks

LihuaZhao report at bugs.python.org
Thu Apr 18 06:10:19 EDT 2019


LihuaZhao <lihua.zhao at windriver.com> added the comment:

>>What is the current behavior of m = mmap.mmap(-1, 100)? Does it raise an exception?

No, the following statement will return -1 without PR 12394

    m_obj->data = mmap(NULL, map_size,
                       prot, flags,
                       fd, offset);

>>I don't understand why PR 12394 modifies flags afterwards, whereas "m = mmap.mmap(-1, 100)" doesn't specify explicitly flags. So the bug looks to be default flags set by Python, no?

Yes, this statement doesn't specify the flag, but as you said, the new_mmap_object() firstly set MAP_SHARED for flag, and in later code:

    if (fd == -1) {
        m_obj->fd = -1;
    .....
#ifdef MAP_ANONYMOUS
        /* BSD way to map anonymous memory */
        flags |= MAP_ANONYMOUS;

#else
#endif

This routine will pass (MAP_ANONYMOUS | MAP_SHARED) to mmap and fd is -1, this is true for Linux, but for VxWorks, if fd is -1, the flag type should be (MAP_ANONYMOUS | MAP_PRIVATE), and this behavior is not part of the POSIX standard, we can't say VxWorks isn't right.

So my changes clear MAP_SHARED and set MAP_PRIVATE when the system type is VxWorks.

>>Is MAP_SHARED constant available in C on VxWorks?

Yes, but for MAP_ANONYMOUS, it require set MAP_PRIVATE.

This PR still is try to enhance VxWorks support, doesn't affect Python user, and only change the behavior of VxWorks, other system don't have this issue, and also won't be influenced

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<https://bugs.python.org/issue36648>
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