/* We use the MSB mostly because its available */ #define PREEMPT_NEED_RESCHED 0x80000000
/* * We use the PREEMPT_NEED_RESCHED bit as an inverted NEED_RESCHED such * that a decrement hitting 0 means we can and should reschedule.
*/ #define PREEMPT_ENABLED (0 + PREEMPT_NEED_RESCHED)
/* * We mask the PREEMPT_NEED_RESCHED bit so as not to confuse all current users * that think a non-zero value indicates we cannot preempt.
*/ static __always_inline int preempt_count(void)
{ return raw_cpu_read_4(__preempt_count) & ~PREEMPT_NEED_RESCHED;
}
static __always_inline void preempt_count_set(int pc)
{ int old, new;
old = raw_cpu_read_4(__preempt_count); do { new = (old & PREEMPT_NEED_RESCHED) |
(pc & ~PREEMPT_NEED_RESCHED);
} while (!raw_cpu_try_cmpxchg_4(__preempt_count, &old, new));
}
/* * must be macros to avoid header recursion hell
*/ #define init_task_preempt_count(p) do { } while (0)
#define init_idle_preempt_count(p, cpu) do { \
per_cpu(__preempt_count, (cpu)) = PREEMPT_DISABLED; \
} while (0)
/* * We fold the NEED_RESCHED bit into the preempt count such that * preempt_enable() can decrement and test for needing to reschedule with a * single instruction. * * We invert the actual bit, so that when the decrement hits 0 we know we both * need to resched (the bit is cleared) and can resched (no preempt count).
*/
/* * Because we keep PREEMPT_NEED_RESCHED set when we do _not_ need to reschedule * a decrement which hits zero means we have no preempt_count and should * reschedule.
*/ static __always_inline bool __preempt_count_dec_and_test(void)
{ return GEN_UNARY_RMWcc("decl", __my_cpu_var(__preempt_count), e,
__percpu_arg([var]));
}
/* * Returns true when we need to resched and can (barring IRQ state).
*/ static __always_inline bool should_resched(int preempt_offset)
{ return unlikely(raw_cpu_read_4(__preempt_count) == preempt_offset);
}
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