14 Jul, 2020

1 commit


24 May, 2019

1 commit

  • Based on 1 normalized pattern(s):

    this module is free software you can redistribute it and or modify
    it under the terms of the gnu general public license as published by
    the free software foundation either version 2 of the license or at
    your option any later version

    extracted by the scancode license scanner the SPDX license identifier

    GPL-2.0-or-later

    has been chosen to replace the boilerplate/reference in 18 file(s).

    Signed-off-by: Thomas Gleixner
    Reviewed-by: Allison Randal
    Cc: linux-spdx@vger.kernel.org
    Link: https://lkml.kernel.org/r/20190520170858.008906948@linutronix.de
    Signed-off-by: Greg Kroah-Hartman

    Thomas Gleixner
     

22 Nov, 2017

1 commit

  • This converts all remaining cases of the old setup_timer() API into using
    timer_setup(), where the callback argument is the structure already
    holding the struct timer_list. These should have no behavioral changes,
    since they just change which pointer is passed into the callback with
    the same available pointers after conversion. It handles the following
    examples, in addition to some other variations.

    Casting from unsigned long:

    void my_callback(unsigned long data)
    {
    struct something *ptr = (struct something *)data;
    ...
    }
    ...
    setup_timer(&ptr->my_timer, my_callback, ptr);

    and forced object casts:

    void my_callback(struct something *ptr)
    {
    ...
    }
    ...
    setup_timer(&ptr->my_timer, my_callback, (unsigned long)ptr);

    become:

    void my_callback(struct timer_list *t)
    {
    struct something *ptr = from_timer(ptr, t, my_timer);
    ...
    }
    ...
    timer_setup(&ptr->my_timer, my_callback, 0);

    Direct function assignments:

    void my_callback(unsigned long data)
    {
    struct something *ptr = (struct something *)data;
    ...
    }
    ...
    ptr->my_timer.function = my_callback;

    have a temporary cast added, along with converting the args:

    void my_callback(struct timer_list *t)
    {
    struct something *ptr = from_timer(ptr, t, my_timer);
    ...
    }
    ...
    ptr->my_timer.function = (TIMER_FUNC_TYPE)my_callback;

    And finally, callbacks without a data assignment:

    void my_callback(unsigned long data)
    {
    ...
    }
    ...
    setup_timer(&ptr->my_timer, my_callback, 0);

    have their argument renamed to verify they're unused during conversion:

    void my_callback(struct timer_list *unused)
    {
    ...
    }
    ...
    timer_setup(&ptr->my_timer, my_callback, 0);

    The conversion is done with the following Coccinelle script:

    spatch --very-quiet --all-includes --include-headers \
    -I ./arch/x86/include -I ./arch/x86/include/generated \
    -I ./include -I ./arch/x86/include/uapi \
    -I ./arch/x86/include/generated/uapi -I ./include/uapi \
    -I ./include/generated/uapi --include ./include/linux/kconfig.h \
    --dir . \
    --cocci-file ~/src/data/timer_setup.cocci

    @fix_address_of@
    expression e;
    @@

    setup_timer(
    -&(e)
    +&e
    , ...)

    // Update any raw setup_timer() usages that have a NULL callback, but
    // would otherwise match change_timer_function_usage, since the latter
    // will update all function assignments done in the face of a NULL
    // function initialization in setup_timer().
    @change_timer_function_usage_NULL@
    expression _E;
    identifier _timer;
    type _cast_data;
    @@

    (
    -setup_timer(&_E->_timer, NULL, _E);
    +timer_setup(&_E->_timer, NULL, 0);
    |
    -setup_timer(&_E->_timer, NULL, (_cast_data)_E);
    +timer_setup(&_E->_timer, NULL, 0);
    |
    -setup_timer(&_E._timer, NULL, &_E);
    +timer_setup(&_E._timer, NULL, 0);
    |
    -setup_timer(&_E._timer, NULL, (_cast_data)&_E);
    +timer_setup(&_E._timer, NULL, 0);
    )

    @change_timer_function_usage@
    expression _E;
    identifier _timer;
    struct timer_list _stl;
    identifier _callback;
    type _cast_func, _cast_data;
    @@

    (
    -setup_timer(&_E->_timer, _callback, _E);
    +timer_setup(&_E->_timer, _callback, 0);
    |
    -setup_timer(&_E->_timer, &_callback, _E);
    +timer_setup(&_E->_timer, _callback, 0);
    |
    -setup_timer(&_E->_timer, _callback, (_cast_data)_E);
    +timer_setup(&_E->_timer, _callback, 0);
    |
    -setup_timer(&_E->_timer, &_callback, (_cast_data)_E);
    +timer_setup(&_E->_timer, _callback, 0);
    |
    -setup_timer(&_E->_timer, (_cast_func)_callback, _E);
    +timer_setup(&_E->_timer, _callback, 0);
    |
    -setup_timer(&_E->_timer, (_cast_func)&_callback, _E);
    +timer_setup(&_E->_timer, _callback, 0);
    |
    -setup_timer(&_E->_timer, (_cast_func)_callback, (_cast_data)_E);
    +timer_setup(&_E->_timer, _callback, 0);
    |
    -setup_timer(&_E->_timer, (_cast_func)&_callback, (_cast_data)_E);
    +timer_setup(&_E->_timer, _callback, 0);
    |
    -setup_timer(&_E._timer, _callback, (_cast_data)_E);
    +timer_setup(&_E._timer, _callback, 0);
    |
    -setup_timer(&_E._timer, _callback, (_cast_data)&_E);
    +timer_setup(&_E._timer, _callback, 0);
    |
    -setup_timer(&_E._timer, &_callback, (_cast_data)_E);
    +timer_setup(&_E._timer, _callback, 0);
    |
    -setup_timer(&_E._timer, &_callback, (_cast_data)&_E);
    +timer_setup(&_E._timer, _callback, 0);
    |
    -setup_timer(&_E._timer, (_cast_func)_callback, (_cast_data)_E);
    +timer_setup(&_E._timer, _callback, 0);
    |
    -setup_timer(&_E._timer, (_cast_func)_callback, (_cast_data)&_E);
    +timer_setup(&_E._timer, _callback, 0);
    |
    -setup_timer(&_E._timer, (_cast_func)&_callback, (_cast_data)_E);
    +timer_setup(&_E._timer, _callback, 0);
    |
    -setup_timer(&_E._timer, (_cast_func)&_callback, (_cast_data)&_E);
    +timer_setup(&_E._timer, _callback, 0);
    |
    _E->_timer@_stl.function = _callback;
    |
    _E->_timer@_stl.function = &_callback;
    |
    _E->_timer@_stl.function = (_cast_func)_callback;
    |
    _E->_timer@_stl.function = (_cast_func)&_callback;
    |
    _E._timer@_stl.function = _callback;
    |
    _E._timer@_stl.function = &_callback;
    |
    _E._timer@_stl.function = (_cast_func)_callback;
    |
    _E._timer@_stl.function = (_cast_func)&_callback;
    )

    // callback(unsigned long arg)
    @change_callback_handle_cast
    depends on change_timer_function_usage@
    identifier change_timer_function_usage._callback;
    identifier change_timer_function_usage._timer;
    type _origtype;
    identifier _origarg;
    type _handletype;
    identifier _handle;
    @@

    void _callback(
    -_origtype _origarg
    +struct timer_list *t
    )
    {
    (
    ... when != _origarg
    _handletype *_handle =
    -(_handletype *)_origarg;
    +from_timer(_handle, t, _timer);
    ... when != _origarg
    |
    ... when != _origarg
    _handletype *_handle =
    -(void *)_origarg;
    +from_timer(_handle, t, _timer);
    ... when != _origarg
    |
    ... when != _origarg
    _handletype *_handle;
    ... when != _handle
    _handle =
    -(_handletype *)_origarg;
    +from_timer(_handle, t, _timer);
    ... when != _origarg
    |
    ... when != _origarg
    _handletype *_handle;
    ... when != _handle
    _handle =
    -(void *)_origarg;
    +from_timer(_handle, t, _timer);
    ... when != _origarg
    )
    }

    // callback(unsigned long arg) without existing variable
    @change_callback_handle_cast_no_arg
    depends on change_timer_function_usage &&
    !change_callback_handle_cast@
    identifier change_timer_function_usage._callback;
    identifier change_timer_function_usage._timer;
    type _origtype;
    identifier _origarg;
    type _handletype;
    @@

    void _callback(
    -_origtype _origarg
    +struct timer_list *t
    )
    {
    + _handletype *_origarg = from_timer(_origarg, t, _timer);
    +
    ... when != _origarg
    - (_handletype *)_origarg
    + _origarg
    ... when != _origarg
    }

    // Avoid already converted callbacks.
    @match_callback_converted
    depends on change_timer_function_usage &&
    !change_callback_handle_cast &&
    !change_callback_handle_cast_no_arg@
    identifier change_timer_function_usage._callback;
    identifier t;
    @@

    void _callback(struct timer_list *t)
    { ... }

    // callback(struct something *handle)
    @change_callback_handle_arg
    depends on change_timer_function_usage &&
    !match_callback_converted &&
    !change_callback_handle_cast &&
    !change_callback_handle_cast_no_arg@
    identifier change_timer_function_usage._callback;
    identifier change_timer_function_usage._timer;
    type _handletype;
    identifier _handle;
    @@

    void _callback(
    -_handletype *_handle
    +struct timer_list *t
    )
    {
    + _handletype *_handle = from_timer(_handle, t, _timer);
    ...
    }

    // If change_callback_handle_arg ran on an empty function, remove
    // the added handler.
    @unchange_callback_handle_arg
    depends on change_timer_function_usage &&
    change_callback_handle_arg@
    identifier change_timer_function_usage._callback;
    identifier change_timer_function_usage._timer;
    type _handletype;
    identifier _handle;
    identifier t;
    @@

    void _callback(struct timer_list *t)
    {
    - _handletype *_handle = from_timer(_handle, t, _timer);
    }

    // We only want to refactor the setup_timer() data argument if we've found
    // the matching callback. This undoes changes in change_timer_function_usage.
    @unchange_timer_function_usage
    depends on change_timer_function_usage &&
    !change_callback_handle_cast &&
    !change_callback_handle_cast_no_arg &&
    !change_callback_handle_arg@
    expression change_timer_function_usage._E;
    identifier change_timer_function_usage._timer;
    identifier change_timer_function_usage._callback;
    type change_timer_function_usage._cast_data;
    @@

    (
    -timer_setup(&_E->_timer, _callback, 0);
    +setup_timer(&_E->_timer, _callback, (_cast_data)_E);
    |
    -timer_setup(&_E._timer, _callback, 0);
    +setup_timer(&_E._timer, _callback, (_cast_data)&_E);
    )

    // If we fixed a callback from a .function assignment, fix the
    // assignment cast now.
    @change_timer_function_assignment
    depends on change_timer_function_usage &&
    (change_callback_handle_cast ||
    change_callback_handle_cast_no_arg ||
    change_callback_handle_arg)@
    expression change_timer_function_usage._E;
    identifier change_timer_function_usage._timer;
    identifier change_timer_function_usage._callback;
    type _cast_func;
    typedef TIMER_FUNC_TYPE;
    @@

    (
    _E->_timer.function =
    -_callback
    +(TIMER_FUNC_TYPE)_callback
    ;
    |
    _E->_timer.function =
    -&_callback
    +(TIMER_FUNC_TYPE)_callback
    ;
    |
    _E->_timer.function =
    -(_cast_func)_callback;
    +(TIMER_FUNC_TYPE)_callback
    ;
    |
    _E->_timer.function =
    -(_cast_func)&_callback
    +(TIMER_FUNC_TYPE)_callback
    ;
    |
    _E._timer.function =
    -_callback
    +(TIMER_FUNC_TYPE)_callback
    ;
    |
    _E._timer.function =
    -&_callback;
    +(TIMER_FUNC_TYPE)_callback
    ;
    |
    _E._timer.function =
    -(_cast_func)_callback
    +(TIMER_FUNC_TYPE)_callback
    ;
    |
    _E._timer.function =
    -(_cast_func)&_callback
    +(TIMER_FUNC_TYPE)_callback
    ;
    )

    // Sometimes timer functions are called directly. Replace matched args.
    @change_timer_function_calls
    depends on change_timer_function_usage &&
    (change_callback_handle_cast ||
    change_callback_handle_cast_no_arg ||
    change_callback_handle_arg)@
    expression _E;
    identifier change_timer_function_usage._timer;
    identifier change_timer_function_usage._callback;
    type _cast_data;
    @@

    _callback(
    (
    -(_cast_data)_E
    +&_E->_timer
    |
    -(_cast_data)&_E
    +&_E._timer
    |
    -_E
    +&_E->_timer
    )
    )

    // If a timer has been configured without a data argument, it can be
    // converted without regard to the callback argument, since it is unused.
    @match_timer_function_unused_data@
    expression _E;
    identifier _timer;
    identifier _callback;
    @@

    (
    -setup_timer(&_E->_timer, _callback, 0);
    +timer_setup(&_E->_timer, _callback, 0);
    |
    -setup_timer(&_E->_timer, _callback, 0L);
    +timer_setup(&_E->_timer, _callback, 0);
    |
    -setup_timer(&_E->_timer, _callback, 0UL);
    +timer_setup(&_E->_timer, _callback, 0);
    |
    -setup_timer(&_E._timer, _callback, 0);
    +timer_setup(&_E._timer, _callback, 0);
    |
    -setup_timer(&_E._timer, _callback, 0L);
    +timer_setup(&_E._timer, _callback, 0);
    |
    -setup_timer(&_E._timer, _callback, 0UL);
    +timer_setup(&_E._timer, _callback, 0);
    |
    -setup_timer(&_timer, _callback, 0);
    +timer_setup(&_timer, _callback, 0);
    |
    -setup_timer(&_timer, _callback, 0L);
    +timer_setup(&_timer, _callback, 0);
    |
    -setup_timer(&_timer, _callback, 0UL);
    +timer_setup(&_timer, _callback, 0);
    |
    -setup_timer(_timer, _callback, 0);
    +timer_setup(_timer, _callback, 0);
    |
    -setup_timer(_timer, _callback, 0L);
    +timer_setup(_timer, _callback, 0);
    |
    -setup_timer(_timer, _callback, 0UL);
    +timer_setup(_timer, _callback, 0);
    )

    @change_callback_unused_data
    depends on match_timer_function_unused_data@
    identifier match_timer_function_unused_data._callback;
    type _origtype;
    identifier _origarg;
    @@

    void _callback(
    -_origtype _origarg
    +struct timer_list *unused
    )
    {
    ... when != _origarg
    }

    Signed-off-by: Kees Cook

    Kees Cook
     

05 Jul, 2017

1 commit

  • refcount_t type and corresponding API should be
    used instead of atomic_t when the variable is used as
    a reference counter. This allows to avoid accidental
    refcounter overflows that might lead to use-after-free
    situations.

    Signed-off-by: Elena Reshetova
    Signed-off-by: Hans Liljestrand
    Signed-off-by: Kees Cook
    Signed-off-by: David Windsor
    Signed-off-by: David S. Miller

    Reshetova, Elena
     

25 Dec, 2016

1 commit


10 Dec, 2013

1 commit


18 Oct, 2011

1 commit

  • There are multiple locations in the X.25 packet layer where a skb is
    assumed to be of at least a certain size and that all its data is
    currently available at skb->data. These assumptions are not checked,
    hence buffer overreads may occur. Use pskb_may_pull to check these
    minimal size assumptions and ensure that data is available at skb->data
    when necessary, as well as use skb_copy_bits where needed.

    Signed-off-by: Matthew Daley
    Cc: Eric Dumazet
    Cc: Andrew Hendry
    Cc: stable
    Acked-by: Andrew Hendry
    Signed-off-by: David S. Miller

    Matthew Daley
     

02 Jul, 2011

1 commit


10 Feb, 2011

1 commit


09 Dec, 2010

2 commits


29 Nov, 2010

1 commit


30 Mar, 2010

1 commit

  • …it slab.h inclusion from percpu.h

    percpu.h is included by sched.h and module.h and thus ends up being
    included when building most .c files. percpu.h includes slab.h which
    in turn includes gfp.h making everything defined by the two files
    universally available and complicating inclusion dependencies.

    percpu.h -> slab.h dependency is about to be removed. Prepare for
    this change by updating users of gfp and slab facilities include those
    headers directly instead of assuming availability. As this conversion
    needs to touch large number of source files, the following script is
    used as the basis of conversion.

    http://userweb.kernel.org/~tj/misc/slabh-sweep.py

    The script does the followings.

    * Scan files for gfp and slab usages and update includes such that
    only the necessary includes are there. ie. if only gfp is used,
    gfp.h, if slab is used, slab.h.

    * When the script inserts a new include, it looks at the include
    blocks and try to put the new include such that its order conforms
    to its surrounding. It's put in the include block which contains
    core kernel includes, in the same order that the rest are ordered -
    alphabetical, Christmas tree, rev-Xmas-tree or at the end if there
    doesn't seem to be any matching order.

    * If the script can't find a place to put a new include (mostly
    because the file doesn't have fitting include block), it prints out
    an error message indicating which .h file needs to be added to the
    file.

    The conversion was done in the following steps.

    1. The initial automatic conversion of all .c files updated slightly
    over 4000 files, deleting around 700 includes and adding ~480 gfp.h
    and ~3000 slab.h inclusions. The script emitted errors for ~400
    files.

    2. Each error was manually checked. Some didn't need the inclusion,
    some needed manual addition while adding it to implementation .h or
    embedding .c file was more appropriate for others. This step added
    inclusions to around 150 files.

    3. The script was run again and the output was compared to the edits
    from #2 to make sure no file was left behind.

    4. Several build tests were done and a couple of problems were fixed.
    e.g. lib/decompress_*.c used malloc/free() wrappers around slab
    APIs requiring slab.h to be added manually.

    5. The script was run on all .h files but without automatically
    editing them as sprinkling gfp.h and slab.h inclusions around .h
    files could easily lead to inclusion dependency hell. Most gfp.h
    inclusion directives were ignored as stuff from gfp.h was usually
    wildly available and often used in preprocessor macros. Each
    slab.h inclusion directive was examined and added manually as
    necessary.

    6. percpu.h was updated not to include slab.h.

    7. Build test were done on the following configurations and failures
    were fixed. CONFIG_GCOV_KERNEL was turned off for all tests (as my
    distributed build env didn't work with gcov compiles) and a few
    more options had to be turned off depending on archs to make things
    build (like ipr on powerpc/64 which failed due to missing writeq).

    * x86 and x86_64 UP and SMP allmodconfig and a custom test config.
    * powerpc and powerpc64 SMP allmodconfig
    * sparc and sparc64 SMP allmodconfig
    * ia64 SMP allmodconfig
    * s390 SMP allmodconfig
    * alpha SMP allmodconfig
    * um on x86_64 SMP allmodconfig

    8. percpu.h modifications were reverted so that it could be applied as
    a separate patch and serve as bisection point.

    Given the fact that I had only a couple of failures from tests on step
    6, I'm fairly confident about the coverage of this conversion patch.
    If there is a breakage, it's likely to be something in one of the arch
    headers which should be easily discoverable easily on most builds of
    the specific arch.

    Signed-off-by: Tejun Heo <tj@kernel.org>
    Guess-its-ok-by: Christoph Lameter <cl@linux-foundation.org>
    Cc: Ingo Molnar <mingo@redhat.com>
    Cc: Lee Schermerhorn <Lee.Schermerhorn@hp.com>

    Tejun Heo
     

29 Jan, 2008

2 commits

  • single list_head variable initialized with LIST_HEAD_INIT could almost
    always can be replaced with LIST_HEAD declaration, this shrinks the code
    and looks better.

    Signed-off-by: Denis Cheng
    Signed-off-by: David S. Miller

    Denis Cheng
     
  • Many-many code in the kernel initialized the timer->function
    and timer->data together with calling init_timer(timer). There
    is already a helper for this. Use it for networking code.

    The patch is HUGE, but makes the code 130 lines shorter
    (98 insertions(+), 228 deletions(-)).

    Signed-off-by: Pavel Emelyanov
    Acked-by: Arnaldo Carvalho de Melo
    Signed-off-by: David S. Miller

    Pavel Emelyanov
     

11 Feb, 2007

1 commit


17 Apr, 2005

1 commit

  • Initial git repository build. I'm not bothering with the full history,
    even though we have it. We can create a separate "historical" git
    archive of that later if we want to, and in the meantime it's about
    3.2GB when imported into git - space that would just make the early
    git days unnecessarily complicated, when we don't have a lot of good
    infrastructure for it.

    Let it rip!

    Linus Torvalds