162306a36Sopenharmony_ci/* SPDX-License-Identifier: GPL-2.0 */ 262306a36Sopenharmony_ci#ifndef _ASM_GENERIC_BITOPS_NON_ATOMIC_H_ 362306a36Sopenharmony_ci#define _ASM_GENERIC_BITOPS_NON_ATOMIC_H_ 462306a36Sopenharmony_ci 562306a36Sopenharmony_ci#include <linux/bits.h> 662306a36Sopenharmony_ci 762306a36Sopenharmony_ci/** 862306a36Sopenharmony_ci * ___set_bit - Set a bit in memory 962306a36Sopenharmony_ci * @nr: the bit to set 1062306a36Sopenharmony_ci * @addr: the address to start counting from 1162306a36Sopenharmony_ci * 1262306a36Sopenharmony_ci * Unlike set_bit(), this function is non-atomic and may be reordered. 1362306a36Sopenharmony_ci * If it's called on the same region of memory simultaneously, the effect 1462306a36Sopenharmony_ci * may be that only one operation succeeds. 1562306a36Sopenharmony_ci */ 1662306a36Sopenharmony_cistatic __always_inline void 1762306a36Sopenharmony_ci___set_bit(unsigned long nr, volatile unsigned long *addr) 1862306a36Sopenharmony_ci{ 1962306a36Sopenharmony_ci unsigned long mask = BIT_MASK(nr); 2062306a36Sopenharmony_ci unsigned long *p = ((unsigned long *)addr) + BIT_WORD(nr); 2162306a36Sopenharmony_ci 2262306a36Sopenharmony_ci *p |= mask; 2362306a36Sopenharmony_ci} 2462306a36Sopenharmony_ci 2562306a36Sopenharmony_cistatic __always_inline void 2662306a36Sopenharmony_ci___clear_bit(unsigned long nr, volatile unsigned long *addr) 2762306a36Sopenharmony_ci{ 2862306a36Sopenharmony_ci unsigned long mask = BIT_MASK(nr); 2962306a36Sopenharmony_ci unsigned long *p = ((unsigned long *)addr) + BIT_WORD(nr); 3062306a36Sopenharmony_ci 3162306a36Sopenharmony_ci *p &= ~mask; 3262306a36Sopenharmony_ci} 3362306a36Sopenharmony_ci 3462306a36Sopenharmony_ci/** 3562306a36Sopenharmony_ci * ___change_bit - Toggle a bit in memory 3662306a36Sopenharmony_ci * @nr: the bit to change 3762306a36Sopenharmony_ci * @addr: the address to start counting from 3862306a36Sopenharmony_ci * 3962306a36Sopenharmony_ci * Unlike change_bit(), this function is non-atomic and may be reordered. 4062306a36Sopenharmony_ci * If it's called on the same region of memory simultaneously, the effect 4162306a36Sopenharmony_ci * may be that only one operation succeeds. 4262306a36Sopenharmony_ci */ 4362306a36Sopenharmony_cistatic __always_inline void 4462306a36Sopenharmony_ci___change_bit(unsigned long nr, volatile unsigned long *addr) 4562306a36Sopenharmony_ci{ 4662306a36Sopenharmony_ci unsigned long mask = BIT_MASK(nr); 4762306a36Sopenharmony_ci unsigned long *p = ((unsigned long *)addr) + BIT_WORD(nr); 4862306a36Sopenharmony_ci 4962306a36Sopenharmony_ci *p ^= mask; 5062306a36Sopenharmony_ci} 5162306a36Sopenharmony_ci 5262306a36Sopenharmony_ci/** 5362306a36Sopenharmony_ci * ___test_and_set_bit - Set a bit and return its old value 5462306a36Sopenharmony_ci * @nr: Bit to set 5562306a36Sopenharmony_ci * @addr: Address to count from 5662306a36Sopenharmony_ci * 5762306a36Sopenharmony_ci * This operation is non-atomic and can be reordered. 5862306a36Sopenharmony_ci * If two examples of this operation race, one can appear to succeed 5962306a36Sopenharmony_ci * but actually fail. You must protect multiple accesses with a lock. 6062306a36Sopenharmony_ci */ 6162306a36Sopenharmony_cistatic __always_inline bool 6262306a36Sopenharmony_ci___test_and_set_bit(unsigned long nr, volatile unsigned long *addr) 6362306a36Sopenharmony_ci{ 6462306a36Sopenharmony_ci unsigned long mask = BIT_MASK(nr); 6562306a36Sopenharmony_ci unsigned long *p = ((unsigned long *)addr) + BIT_WORD(nr); 6662306a36Sopenharmony_ci unsigned long old = *p; 6762306a36Sopenharmony_ci 6862306a36Sopenharmony_ci *p = old | mask; 6962306a36Sopenharmony_ci return (old & mask) != 0; 7062306a36Sopenharmony_ci} 7162306a36Sopenharmony_ci 7262306a36Sopenharmony_ci/** 7362306a36Sopenharmony_ci * ___test_and_clear_bit - Clear a bit and return its old value 7462306a36Sopenharmony_ci * @nr: Bit to clear 7562306a36Sopenharmony_ci * @addr: Address to count from 7662306a36Sopenharmony_ci * 7762306a36Sopenharmony_ci * This operation is non-atomic and can be reordered. 7862306a36Sopenharmony_ci * If two examples of this operation race, one can appear to succeed 7962306a36Sopenharmony_ci * but actually fail. You must protect multiple accesses with a lock. 8062306a36Sopenharmony_ci */ 8162306a36Sopenharmony_cistatic __always_inline bool 8262306a36Sopenharmony_ci___test_and_clear_bit(unsigned long nr, volatile unsigned long *addr) 8362306a36Sopenharmony_ci{ 8462306a36Sopenharmony_ci unsigned long mask = BIT_MASK(nr); 8562306a36Sopenharmony_ci unsigned long *p = ((unsigned long *)addr) + BIT_WORD(nr); 8662306a36Sopenharmony_ci unsigned long old = *p; 8762306a36Sopenharmony_ci 8862306a36Sopenharmony_ci *p = old & ~mask; 8962306a36Sopenharmony_ci return (old & mask) != 0; 9062306a36Sopenharmony_ci} 9162306a36Sopenharmony_ci 9262306a36Sopenharmony_ci/* WARNING: non atomic and it can be reordered! */ 9362306a36Sopenharmony_cistatic __always_inline bool 9462306a36Sopenharmony_ci___test_and_change_bit(unsigned long nr, volatile unsigned long *addr) 9562306a36Sopenharmony_ci{ 9662306a36Sopenharmony_ci unsigned long mask = BIT_MASK(nr); 9762306a36Sopenharmony_ci unsigned long *p = ((unsigned long *)addr) + BIT_WORD(nr); 9862306a36Sopenharmony_ci unsigned long old = *p; 9962306a36Sopenharmony_ci 10062306a36Sopenharmony_ci *p = old ^ mask; 10162306a36Sopenharmony_ci return (old & mask) != 0; 10262306a36Sopenharmony_ci} 10362306a36Sopenharmony_ci 10462306a36Sopenharmony_ci/** 10562306a36Sopenharmony_ci * _test_bit - Determine whether a bit is set 10662306a36Sopenharmony_ci * @nr: bit number to test 10762306a36Sopenharmony_ci * @addr: Address to start counting from 10862306a36Sopenharmony_ci */ 10962306a36Sopenharmony_cistatic __always_inline bool 11062306a36Sopenharmony_ci_test_bit(unsigned long nr, const volatile unsigned long *addr) 11162306a36Sopenharmony_ci{ 11262306a36Sopenharmony_ci return 1UL & (addr[BIT_WORD(nr)] >> (nr & (BITS_PER_LONG-1))); 11362306a36Sopenharmony_ci} 11462306a36Sopenharmony_ci 11562306a36Sopenharmony_ci#endif /* _ASM_GENERIC_BITOPS_NON_ATOMIC_H_ */ 116