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I'm using the kernel_fpu_begin and kernel_fpu_end functions in asm/i387.h to protect the FPU register states for some simple floating point arithmetic inside of a Linux kernel module.

I'm curious about the behavior of calling the kernel_fpu_begin function twice before the kernel_fpu_end function, and vice versa. For example:

#include <asm/i387.h>

double foo(unsigned num){
    kernel_fpu_begin();

    double x = 3.14;
    x += num;

    kernel_fpu_end();

    return x;
}

...

kernel_fpu_begin();

double y = 1.23;
unsigned z = 42;
y -= foo(z);

kernel_fpu_end();

In the foo function, I call kernel_fpu_begin and kernel_fpu_end; but kernel_fpu_begin was already called before the call to foo. Would this result in undefined behavior?

Furthermore, should I even be calling kernel_fpu_end inside the foo function? I return a double after the kernel_fpu_end call, which means accessing floating point registers is unsafe right?

My initial guess is just not to use the kernel_fpu_begin and kernel_fpu_end calls inside the foo function; but what if foo returned the double cast to unsigned instead -- the programmer wouldn't know to use kernel_fpu_begin and kernel_fpu_end outside of foo?

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3 Answers

up vote 2 down vote accepted
+50

Short answer: no, it is incorrect to nest kernel_fpu_begin() calls, and it will lead to the userspace FPU state getting corrupted.

Medium answer: This won't work because kernel_fpu_begin() use the current thread's struct task_struct to save off the FPU state (task_struct has an architecture-dependent member thread, and on x86, thread.fpu holds the thread's FPU state), and doing a second kernel_fpu_begin() will overwrite the original saved state. Then doing kernel_fpu_end() will end up restoring the wrong FPU state.

Long answer: As you saw looking at the actual implementation in <asm/i387.h>, the details are a bit tricky. In older kernels (like the 3.2 source you looked at), the FPU handling is always "lazy" -- the kernel wants to avoid the overhead of reloading the FPU until it really needs it, because the thread might run and be scheduled out again without ever actually using the FPU or needing its FPU state. So kernel_fpu_end() just sets the TS flag, which causes the next access of the FPU to trap and cause the FPU state to be reloaded. The hope is that we don't actually use the FPU enough of the time for this to be cheaper overall.

However, if you look at newer kernels (3.7 or newer, I believe), you'll see that there is actually a second code path for all of this -- "eager" FPU. This is because newer CPUs have the "optimized" XSAVEOPT instruction, and newer userspace uses the FPU more often (for SSE in memcpy, etc). The cost of XSAVEOPT / XRSTOR is less and the chance of the lazy optimization actually avoiding an FPU reload is less too, so with a new kernel on a new CPU, kernel_fpu_end() just goes ahead and restores the FPU state. (

However in both the "lazy" and "eager" FPU modes, there is still only one slot in the task_struct to save the FPU state, so nesting kernel_fpu_begin() will end up corrupting userspace's FPU state.

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Theoretically, if I spawned a new kernel thread, would it be safe to call kernel_fpu_begin since the state would be saved to a different task_struct structure? –  Vilhelm Gray Apr 17 '13 at 19:15
1  
Sure, in the context of a different thread, you could call kernel_fpu_begin again. That wouldn't truly be nested usage, since you are creating a new thread of execution. (An analogy would be that you can do mutex_lock() twice on the same mutex if and only if you have two different threads) –  Roland Apr 17 '13 at 20:56
    
By the way, in kernel_fpu_begin do you happen to know why the TS flag is only cleared if TS_USEDFPU is not set; is the TS flag just assumed to already be cleared if TS_USEDFPU is not set? –  Vilhelm Gray Apr 17 '13 at 21:04
1  
TS_USEDFPU being set means "FPU was used by this task this quantum". I think you typed the opposite of what you meant, but the idea is correct: if TS_USEDFPU is set, then this thread already used the FPU and hasn't been scheduled out, and so TS can't be set (since TS=1 means FPU instructions would cause an exception, and the kernel must already have dealt with that and cleared TS). –  Roland Apr 18 '13 at 0:57
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Yes, as you defined some double variable & foo is also returning the double value; you have to use kernel_fpu_begin and kernel_fpu_end calls outside foo also.


Similar Problem also have this which have certain instances where you can code without using kernel_fpu_begin and kernel_fpu_end calls.

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This is wrong. You'll corrupt FPU state if you nest kernel_fpu_begin. –  Roland Apr 17 '13 at 20:59
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I'm commenting the asm/i387.h Linux source code (version 3.2) with what I understand to be occurring.

static inline void kernel_fpu_begin(void)
{
        /* get thread_info structure for current thread */
        struct thread_info *me = current_thread_info();

        /* preempt_count is incremented by 1
         * (preempt_count > 0 disables preemption,
         *  while preempt_count < 0 signifies a bug) */
        preempt_disable();

        /* check if FPU has been used before by this thread */
        if (me->status & TS_USEDFPU)
                /* save the FPU state to prevent clobbering of
                 * FPU registers, then reset the TS_USEDFPU flag */
                __save_init_fpu(me->task);
        else
                /* clear the CR0.TS bit to prevent
                 * unnecessary FPU task context saving */
                clts();
}

static inline void kernel_fpu_end(void)
{
        /* set CR0.TS bit (signifying the processor switched
         * to a new task) to enable FPU task context saving */
        stts();

        /* attempt to re-enable preemption
         * (preempt_count is decremented by 1);
         * reschedule thread if needed
         * (thread will not be preempted if preempt_count != 0) */
        preempt_enable();
}

The FXSAVE instruction is typically used to save the FPU state. However, I believe the memory destination stays the same every time kernel_fpu_begin is called within the same thread; unfortunately that would mean that FXSAVE will overwrite the previously saved FPU state.

Therefore I suspect that you CANNOT safely nest kernel_fpu_begin calls.

What I still cannot understand though is how the FPU state is being restored, since the kernel_fpu_end call does not appear to execute a FXRSTOR instruction. Also, why is the CR0.TS bit set in the kernel_fpu_end call if we are no longer using the FPU?

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