module: encapsulate percpu handling better and record percpu_size
[deliverable/linux.git] / include / linux / percpu.h
CommitLineData
1da177e4
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1#ifndef __LINUX_PERCPU_H
2#define __LINUX_PERCPU_H
7ff6f082 3
0a3021f4 4#include <linux/preempt.h>
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5#include <linux/slab.h> /* For kmalloc() */
6#include <linux/smp.h>
7ff6f082 7#include <linux/cpumask.h>
6a242909 8#include <linux/pfn.h>
7ff6f082 9
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10#include <asm/percpu.h>
11
6a242909 12/* enough to cover all DEFINE_PER_CPUs in modules */
b00742d3 13#ifdef CONFIG_MODULES
6a242909 14#define PERCPU_MODULE_RESERVE (8 << 10)
b00742d3 15#else
6a242909 16#define PERCPU_MODULE_RESERVE 0
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17#endif
18
6a242909 19#ifndef PERCPU_ENOUGH_ROOM
b00742d3 20#define PERCPU_ENOUGH_ROOM \
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21 (ALIGN(__per_cpu_end - __per_cpu_start, SMP_CACHE_BYTES) + \
22 PERCPU_MODULE_RESERVE)
23#endif
b00742d3 24
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25/*
26 * Must be an lvalue. Since @var must be a simple identifier,
27 * we force a syntax error here if it isn't.
28 */
29#define get_cpu_var(var) (*({ \
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30 preempt_disable(); \
31 &__get_cpu_var(var); }))
f7b64fe8 32
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33/*
34 * The weird & is necessary because sparse considers (void)(var) to be
35 * a direct dereference of percpu variable (var).
36 */
f7b64fe8 37#define put_cpu_var(var) do { \
e0fdb0e0 38 (void)&(var); \
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39 preempt_enable(); \
40} while (0)
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41
42#ifdef CONFIG_SMP
43
8d408b4b 44/* minimum unit size, also is the maximum supported allocation size */
6a242909 45#define PCPU_MIN_UNIT_SIZE PFN_ALIGN(64 << 10)
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46
47/*
48 * PERCPU_DYNAMIC_RESERVE indicates the amount of free area to piggy
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49 * back on the first chunk for dynamic percpu allocation if arch is
50 * manually allocating and mapping it for faster access (as a part of
51 * large page mapping for example).
8d408b4b 52 *
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53 * The following values give between one and two pages of free space
54 * after typical minimal boot (2-way SMP, single disk and NIC) with
55 * both defconfig and a distro config on x86_64 and 32. More
56 * intelligent way to determine this would be nice.
8d408b4b 57 */
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58#if BITS_PER_LONG > 32
59#define PERCPU_DYNAMIC_RESERVE (20 << 10)
60#else
61#define PERCPU_DYNAMIC_RESERVE (12 << 10)
62#endif
8d408b4b 63
fbf59bc9 64extern void *pcpu_base_addr;
fb435d52 65extern const unsigned long *pcpu_unit_offsets;
1da177e4 66
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67struct pcpu_group_info {
68 int nr_units; /* aligned # of units */
69 unsigned long base_offset; /* base address offset */
70 unsigned int *cpu_map; /* unit->cpu map, empty
71 * entries contain NR_CPUS */
72};
73
74struct pcpu_alloc_info {
75 size_t static_size;
76 size_t reserved_size;
77 size_t dyn_size;
78 size_t unit_size;
79 size_t atom_size;
80 size_t alloc_size;
81 size_t __ai_size; /* internal, don't use */
82 int nr_groups; /* 0 if grouping unnecessary */
83 struct pcpu_group_info groups[];
84};
85
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86enum pcpu_fc {
87 PCPU_FC_AUTO,
88 PCPU_FC_EMBED,
89 PCPU_FC_PAGE,
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90
91 PCPU_FC_NR,
92};
93extern const char *pcpu_fc_names[PCPU_FC_NR];
94
95extern enum pcpu_fc pcpu_chosen_fc;
96
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97typedef void * (*pcpu_fc_alloc_fn_t)(unsigned int cpu, size_t size,
98 size_t align);
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99typedef void (*pcpu_fc_free_fn_t)(void *ptr, size_t size);
100typedef void (*pcpu_fc_populate_pte_fn_t)(unsigned long addr);
a530b795 101typedef int (pcpu_fc_cpu_distance_fn_t)(unsigned int from, unsigned int to);
fbf59bc9 102
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103extern struct pcpu_alloc_info * __init pcpu_alloc_alloc_info(int nr_groups,
104 int nr_units);
105extern void __init pcpu_free_alloc_info(struct pcpu_alloc_info *ai);
106
107extern struct pcpu_alloc_info * __init pcpu_build_alloc_info(
108 size_t reserved_size, ssize_t dyn_size,
109 size_t atom_size,
033e48fb 110 pcpu_fc_cpu_distance_fn_t cpu_distance_fn);
033e48fb 111
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112extern int __init pcpu_setup_first_chunk(const struct pcpu_alloc_info *ai,
113 void *base_addr);
8d408b4b 114
08fc4580 115#ifdef CONFIG_NEED_PER_CPU_EMBED_FIRST_CHUNK
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116extern int __init pcpu_embed_first_chunk(size_t reserved_size, ssize_t dyn_size,
117 size_t atom_size,
118 pcpu_fc_cpu_distance_fn_t cpu_distance_fn,
119 pcpu_fc_alloc_fn_t alloc_fn,
120 pcpu_fc_free_fn_t free_fn);
08fc4580 121#endif
66c3a757 122
08fc4580 123#ifdef CONFIG_NEED_PER_CPU_PAGE_FIRST_CHUNK
fb435d52 124extern int __init pcpu_page_first_chunk(size_t reserved_size,
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125 pcpu_fc_alloc_fn_t alloc_fn,
126 pcpu_fc_free_fn_t free_fn,
127 pcpu_fc_populate_pte_fn_t populate_pte_fn);
08fc4580 128#endif
d4b95f80 129
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130/*
131 * Use this to get to a cpu's version of the per-cpu object
132 * dynamically allocated. Non-atomic access to the current CPU's
133 * version should probably be combined with get_cpu()/put_cpu().
134 */
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135#define per_cpu_ptr(ptr, cpu) SHIFT_PERCPU_PTR((ptr), per_cpu_offset((cpu)))
136
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137extern void __percpu *__alloc_reserved_percpu(size_t size, size_t align);
138extern void __percpu *__alloc_percpu(size_t size, size_t align);
139extern void free_percpu(void __percpu *__pdata);
3b034b0d 140extern phys_addr_t per_cpu_ptr_to_phys(void *addr);
1da177e4 141
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142#ifndef CONFIG_HAVE_SETUP_PER_CPU_AREA
143extern void __init setup_per_cpu_areas(void);
144#endif
145
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146#else /* CONFIG_SMP */
147
b36128c8 148#define per_cpu_ptr(ptr, cpu) ({ (void)(cpu); (ptr); })
7ff6f082 149
e0fdb0e0 150static inline void __percpu *__alloc_percpu(size_t size, size_t align)
7ff6f082 151{
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152 /*
153 * Can't easily make larger alignment work with kmalloc. WARN
154 * on it. Larger alignment should only be used for module
155 * percpu sections on SMP for which this path isn't used.
156 */
e3176036 157 WARN_ON_ONCE(align > SMP_CACHE_BYTES);
d2b02615 158 return kzalloc(size, GFP_KERNEL);
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159}
160
e0fdb0e0 161static inline void free_percpu(void __percpu *p)
7ff6f082 162{
f2a8205c 163 kfree(p);
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164}
165
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166static inline phys_addr_t per_cpu_ptr_to_phys(void *addr)
167{
168 return __pa(addr);
169}
170
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171static inline void __init setup_per_cpu_areas(void) { }
172
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173static inline void *pcpu_lpage_remapped(void *kaddr)
174{
175 return NULL;
176}
177
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178#endif /* CONFIG_SMP */
179
64ef291f 180#define alloc_percpu(type) \
e0fdb0e0 181 (typeof(type) __percpu *)__alloc_percpu(sizeof(type), __alignof__(type))
1da177e4 182
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183/*
184 * Optional methods for optimized non-lvalue per-cpu variable access.
185 *
186 * @var can be a percpu variable or a field of it and its size should
187 * equal char, int or long. percpu_read() evaluates to a lvalue and
188 * all others to void.
189 *
190 * These operations are guaranteed to be atomic w.r.t. preemption.
191 * The generic versions use plain get/put_cpu_var(). Archs are
192 * encouraged to implement single-instruction alternatives which don't
193 * require preemption protection.
194 */
195#ifndef percpu_read
196# define percpu_read(var) \
197 ({ \
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198 typeof(var) *pr_ptr__ = &(var); \
199 typeof(var) pr_ret__; \
200 pr_ret__ = get_cpu_var(*pr_ptr__); \
201 put_cpu_var(*pr_ptr__); \
202 pr_ret__; \
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203 })
204#endif
205
206#define __percpu_generic_to_op(var, val, op) \
207do { \
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208 typeof(var) *pgto_ptr__ = &(var); \
209 get_cpu_var(*pgto_ptr__) op val; \
210 put_cpu_var(*pgto_ptr__); \
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211} while (0)
212
213#ifndef percpu_write
214# define percpu_write(var, val) __percpu_generic_to_op(var, (val), =)
215#endif
216
217#ifndef percpu_add
218# define percpu_add(var, val) __percpu_generic_to_op(var, (val), +=)
219#endif
220
221#ifndef percpu_sub
222# define percpu_sub(var, val) __percpu_generic_to_op(var, (val), -=)
223#endif
224
225#ifndef percpu_and
226# define percpu_and(var, val) __percpu_generic_to_op(var, (val), &=)
227#endif
228
229#ifndef percpu_or
230# define percpu_or(var, val) __percpu_generic_to_op(var, (val), |=)
231#endif
232
233#ifndef percpu_xor
234# define percpu_xor(var, val) __percpu_generic_to_op(var, (val), ^=)
235#endif
236
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237/*
238 * Branching function to split up a function into a set of functions that
239 * are called for different scalar sizes of the objects handled.
240 */
241
242extern void __bad_size_call_parameter(void);
243
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244#define __pcpu_size_call_return(stem, variable) \
245({ typeof(variable) pscr_ret__; \
545695fb 246 __verify_pcpu_ptr(&(variable)); \
7340a0b1 247 switch(sizeof(variable)) { \
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248 case 1: pscr_ret__ = stem##1(variable);break; \
249 case 2: pscr_ret__ = stem##2(variable);break; \
250 case 4: pscr_ret__ = stem##4(variable);break; \
251 case 8: pscr_ret__ = stem##8(variable);break; \
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252 default: \
253 __bad_size_call_parameter();break; \
254 } \
0f5e4816 255 pscr_ret__; \
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256})
257
0f5e4816 258#define __pcpu_size_call(stem, variable, ...) \
7340a0b1 259do { \
545695fb 260 __verify_pcpu_ptr(&(variable)); \
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261 switch(sizeof(variable)) { \
262 case 1: stem##1(variable, __VA_ARGS__);break; \
263 case 2: stem##2(variable, __VA_ARGS__);break; \
264 case 4: stem##4(variable, __VA_ARGS__);break; \
265 case 8: stem##8(variable, __VA_ARGS__);break; \
266 default: \
267 __bad_size_call_parameter();break; \
268 } \
269} while (0)
270
271/*
272 * Optimized manipulation for memory allocated through the per cpu
dd17c8f7 273 * allocator or for addresses of per cpu variables.
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274 *
275 * These operation guarantee exclusivity of access for other operations
276 * on the *same* processor. The assumption is that per cpu data is only
277 * accessed by a single processor instance (the current one).
278 *
279 * The first group is used for accesses that must be done in a
280 * preemption safe way since we know that the context is not preempt
281 * safe. Interrupts may occur. If the interrupt modifies the variable
282 * too then RMW actions will not be reliable.
283 *
284 * The arch code can provide optimized functions in two ways:
285 *
286 * 1. Override the function completely. F.e. define this_cpu_add().
287 * The arch must then ensure that the various scalar format passed
288 * are handled correctly.
289 *
290 * 2. Provide functions for certain scalar sizes. F.e. provide
291 * this_cpu_add_2() to provide per cpu atomic operations for 2 byte
292 * sized RMW actions. If arch code does not provide operations for
293 * a scalar size then the fallback in the generic code will be
294 * used.
295 */
296
297#define _this_cpu_generic_read(pcp) \
298({ typeof(pcp) ret__; \
299 preempt_disable(); \
300 ret__ = *this_cpu_ptr(&(pcp)); \
301 preempt_enable(); \
302 ret__; \
303})
304
305#ifndef this_cpu_read
306# ifndef this_cpu_read_1
307# define this_cpu_read_1(pcp) _this_cpu_generic_read(pcp)
308# endif
309# ifndef this_cpu_read_2
310# define this_cpu_read_2(pcp) _this_cpu_generic_read(pcp)
311# endif
312# ifndef this_cpu_read_4
313# define this_cpu_read_4(pcp) _this_cpu_generic_read(pcp)
314# endif
315# ifndef this_cpu_read_8
316# define this_cpu_read_8(pcp) _this_cpu_generic_read(pcp)
317# endif
0f5e4816 318# define this_cpu_read(pcp) __pcpu_size_call_return(this_cpu_read_, (pcp))
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319#endif
320
321#define _this_cpu_generic_to_op(pcp, val, op) \
322do { \
323 preempt_disable(); \
f7b64fe8 324 *__this_cpu_ptr(&(pcp)) op val; \
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325 preempt_enable(); \
326} while (0)
327
328#ifndef this_cpu_write
329# ifndef this_cpu_write_1
330# define this_cpu_write_1(pcp, val) _this_cpu_generic_to_op((pcp), (val), =)
331# endif
332# ifndef this_cpu_write_2
333# define this_cpu_write_2(pcp, val) _this_cpu_generic_to_op((pcp), (val), =)
334# endif
335# ifndef this_cpu_write_4
336# define this_cpu_write_4(pcp, val) _this_cpu_generic_to_op((pcp), (val), =)
337# endif
338# ifndef this_cpu_write_8
339# define this_cpu_write_8(pcp, val) _this_cpu_generic_to_op((pcp), (val), =)
340# endif
0f5e4816 341# define this_cpu_write(pcp, val) __pcpu_size_call(this_cpu_write_, (pcp), (val))
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342#endif
343
344#ifndef this_cpu_add
345# ifndef this_cpu_add_1
346# define this_cpu_add_1(pcp, val) _this_cpu_generic_to_op((pcp), (val), +=)
347# endif
348# ifndef this_cpu_add_2
349# define this_cpu_add_2(pcp, val) _this_cpu_generic_to_op((pcp), (val), +=)
350# endif
351# ifndef this_cpu_add_4
352# define this_cpu_add_4(pcp, val) _this_cpu_generic_to_op((pcp), (val), +=)
353# endif
354# ifndef this_cpu_add_8
355# define this_cpu_add_8(pcp, val) _this_cpu_generic_to_op((pcp), (val), +=)
356# endif
0f5e4816 357# define this_cpu_add(pcp, val) __pcpu_size_call(this_cpu_add_, (pcp), (val))
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358#endif
359
360#ifndef this_cpu_sub
361# define this_cpu_sub(pcp, val) this_cpu_add((pcp), -(val))
362#endif
363
364#ifndef this_cpu_inc
365# define this_cpu_inc(pcp) this_cpu_add((pcp), 1)
366#endif
367
368#ifndef this_cpu_dec
369# define this_cpu_dec(pcp) this_cpu_sub((pcp), 1)
370#endif
371
372#ifndef this_cpu_and
373# ifndef this_cpu_and_1
374# define this_cpu_and_1(pcp, val) _this_cpu_generic_to_op((pcp), (val), &=)
375# endif
376# ifndef this_cpu_and_2
377# define this_cpu_and_2(pcp, val) _this_cpu_generic_to_op((pcp), (val), &=)
378# endif
379# ifndef this_cpu_and_4
380# define this_cpu_and_4(pcp, val) _this_cpu_generic_to_op((pcp), (val), &=)
381# endif
382# ifndef this_cpu_and_8
383# define this_cpu_and_8(pcp, val) _this_cpu_generic_to_op((pcp), (val), &=)
384# endif
0f5e4816 385# define this_cpu_and(pcp, val) __pcpu_size_call(this_cpu_and_, (pcp), (val))
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386#endif
387
388#ifndef this_cpu_or
389# ifndef this_cpu_or_1
390# define this_cpu_or_1(pcp, val) _this_cpu_generic_to_op((pcp), (val), |=)
391# endif
392# ifndef this_cpu_or_2
393# define this_cpu_or_2(pcp, val) _this_cpu_generic_to_op((pcp), (val), |=)
394# endif
395# ifndef this_cpu_or_4
396# define this_cpu_or_4(pcp, val) _this_cpu_generic_to_op((pcp), (val), |=)
397# endif
398# ifndef this_cpu_or_8
399# define this_cpu_or_8(pcp, val) _this_cpu_generic_to_op((pcp), (val), |=)
400# endif
0f5e4816 401# define this_cpu_or(pcp, val) __pcpu_size_call(this_cpu_or_, (pcp), (val))
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402#endif
403
404#ifndef this_cpu_xor
405# ifndef this_cpu_xor_1
406# define this_cpu_xor_1(pcp, val) _this_cpu_generic_to_op((pcp), (val), ^=)
407# endif
408# ifndef this_cpu_xor_2
409# define this_cpu_xor_2(pcp, val) _this_cpu_generic_to_op((pcp), (val), ^=)
410# endif
411# ifndef this_cpu_xor_4
412# define this_cpu_xor_4(pcp, val) _this_cpu_generic_to_op((pcp), (val), ^=)
413# endif
414# ifndef this_cpu_xor_8
415# define this_cpu_xor_8(pcp, val) _this_cpu_generic_to_op((pcp), (val), ^=)
416# endif
0f5e4816 417# define this_cpu_xor(pcp, val) __pcpu_size_call(this_cpu_or_, (pcp), (val))
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418#endif
419
420/*
421 * Generic percpu operations that do not require preemption handling.
422 * Either we do not care about races or the caller has the
423 * responsibility of handling preemptions issues. Arch code can still
424 * override these instructions since the arch per cpu code may be more
425 * efficient and may actually get race freeness for free (that is the
426 * case for x86 for example).
427 *
428 * If there is no other protection through preempt disable and/or
429 * disabling interupts then one of these RMW operations can show unexpected
430 * behavior because the execution thread was rescheduled on another processor
431 * or an interrupt occurred and the same percpu variable was modified from
432 * the interrupt context.
433 */
434#ifndef __this_cpu_read
435# ifndef __this_cpu_read_1
436# define __this_cpu_read_1(pcp) (*__this_cpu_ptr(&(pcp)))
437# endif
438# ifndef __this_cpu_read_2
439# define __this_cpu_read_2(pcp) (*__this_cpu_ptr(&(pcp)))
440# endif
441# ifndef __this_cpu_read_4
442# define __this_cpu_read_4(pcp) (*__this_cpu_ptr(&(pcp)))
443# endif
444# ifndef __this_cpu_read_8
445# define __this_cpu_read_8(pcp) (*__this_cpu_ptr(&(pcp)))
446# endif
0f5e4816 447# define __this_cpu_read(pcp) __pcpu_size_call_return(__this_cpu_read_, (pcp))
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448#endif
449
450#define __this_cpu_generic_to_op(pcp, val, op) \
451do { \
452 *__this_cpu_ptr(&(pcp)) op val; \
453} while (0)
454
455#ifndef __this_cpu_write
456# ifndef __this_cpu_write_1
457# define __this_cpu_write_1(pcp, val) __this_cpu_generic_to_op((pcp), (val), =)
458# endif
459# ifndef __this_cpu_write_2
460# define __this_cpu_write_2(pcp, val) __this_cpu_generic_to_op((pcp), (val), =)
461# endif
462# ifndef __this_cpu_write_4
463# define __this_cpu_write_4(pcp, val) __this_cpu_generic_to_op((pcp), (val), =)
464# endif
465# ifndef __this_cpu_write_8
466# define __this_cpu_write_8(pcp, val) __this_cpu_generic_to_op((pcp), (val), =)
467# endif
0f5e4816 468# define __this_cpu_write(pcp, val) __pcpu_size_call(__this_cpu_write_, (pcp), (val))
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469#endif
470
471#ifndef __this_cpu_add
472# ifndef __this_cpu_add_1
473# define __this_cpu_add_1(pcp, val) __this_cpu_generic_to_op((pcp), (val), +=)
474# endif
475# ifndef __this_cpu_add_2
476# define __this_cpu_add_2(pcp, val) __this_cpu_generic_to_op((pcp), (val), +=)
477# endif
478# ifndef __this_cpu_add_4
479# define __this_cpu_add_4(pcp, val) __this_cpu_generic_to_op((pcp), (val), +=)
480# endif
481# ifndef __this_cpu_add_8
482# define __this_cpu_add_8(pcp, val) __this_cpu_generic_to_op((pcp), (val), +=)
483# endif
0f5e4816 484# define __this_cpu_add(pcp, val) __pcpu_size_call(__this_cpu_add_, (pcp), (val))
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485#endif
486
487#ifndef __this_cpu_sub
488# define __this_cpu_sub(pcp, val) __this_cpu_add((pcp), -(val))
489#endif
490
491#ifndef __this_cpu_inc
492# define __this_cpu_inc(pcp) __this_cpu_add((pcp), 1)
493#endif
494
495#ifndef __this_cpu_dec
496# define __this_cpu_dec(pcp) __this_cpu_sub((pcp), 1)
497#endif
498
499#ifndef __this_cpu_and
500# ifndef __this_cpu_and_1
501# define __this_cpu_and_1(pcp, val) __this_cpu_generic_to_op((pcp), (val), &=)
502# endif
503# ifndef __this_cpu_and_2
504# define __this_cpu_and_2(pcp, val) __this_cpu_generic_to_op((pcp), (val), &=)
505# endif
506# ifndef __this_cpu_and_4
507# define __this_cpu_and_4(pcp, val) __this_cpu_generic_to_op((pcp), (val), &=)
508# endif
509# ifndef __this_cpu_and_8
510# define __this_cpu_and_8(pcp, val) __this_cpu_generic_to_op((pcp), (val), &=)
511# endif
0f5e4816 512# define __this_cpu_and(pcp, val) __pcpu_size_call(__this_cpu_and_, (pcp), (val))
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513#endif
514
515#ifndef __this_cpu_or
516# ifndef __this_cpu_or_1
517# define __this_cpu_or_1(pcp, val) __this_cpu_generic_to_op((pcp), (val), |=)
518# endif
519# ifndef __this_cpu_or_2
520# define __this_cpu_or_2(pcp, val) __this_cpu_generic_to_op((pcp), (val), |=)
521# endif
522# ifndef __this_cpu_or_4
523# define __this_cpu_or_4(pcp, val) __this_cpu_generic_to_op((pcp), (val), |=)
524# endif
525# ifndef __this_cpu_or_8
526# define __this_cpu_or_8(pcp, val) __this_cpu_generic_to_op((pcp), (val), |=)
527# endif
0f5e4816 528# define __this_cpu_or(pcp, val) __pcpu_size_call(__this_cpu_or_, (pcp), (val))
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529#endif
530
531#ifndef __this_cpu_xor
532# ifndef __this_cpu_xor_1
533# define __this_cpu_xor_1(pcp, val) __this_cpu_generic_to_op((pcp), (val), ^=)
534# endif
535# ifndef __this_cpu_xor_2
536# define __this_cpu_xor_2(pcp, val) __this_cpu_generic_to_op((pcp), (val), ^=)
537# endif
538# ifndef __this_cpu_xor_4
539# define __this_cpu_xor_4(pcp, val) __this_cpu_generic_to_op((pcp), (val), ^=)
540# endif
541# ifndef __this_cpu_xor_8
542# define __this_cpu_xor_8(pcp, val) __this_cpu_generic_to_op((pcp), (val), ^=)
543# endif
0f5e4816 544# define __this_cpu_xor(pcp, val) __pcpu_size_call(__this_cpu_xor_, (pcp), (val))
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545#endif
546
547/*
548 * IRQ safe versions of the per cpu RMW operations. Note that these operations
549 * are *not* safe against modification of the same variable from another
550 * processors (which one gets when using regular atomic operations)
551 . They are guaranteed to be atomic vs. local interrupts and
552 * preemption only.
553 */
554#define irqsafe_cpu_generic_to_op(pcp, val, op) \
555do { \
556 unsigned long flags; \
557 local_irq_save(flags); \
558 *__this_cpu_ptr(&(pcp)) op val; \
559 local_irq_restore(flags); \
560} while (0)
561
562#ifndef irqsafe_cpu_add
563# ifndef irqsafe_cpu_add_1
564# define irqsafe_cpu_add_1(pcp, val) irqsafe_cpu_generic_to_op((pcp), (val), +=)
565# endif
566# ifndef irqsafe_cpu_add_2
567# define irqsafe_cpu_add_2(pcp, val) irqsafe_cpu_generic_to_op((pcp), (val), +=)
568# endif
569# ifndef irqsafe_cpu_add_4
570# define irqsafe_cpu_add_4(pcp, val) irqsafe_cpu_generic_to_op((pcp), (val), +=)
571# endif
572# ifndef irqsafe_cpu_add_8
573# define irqsafe_cpu_add_8(pcp, val) irqsafe_cpu_generic_to_op((pcp), (val), +=)
574# endif
0f5e4816 575# define irqsafe_cpu_add(pcp, val) __pcpu_size_call(irqsafe_cpu_add_, (pcp), (val))
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576#endif
577
578#ifndef irqsafe_cpu_sub
579# define irqsafe_cpu_sub(pcp, val) irqsafe_cpu_add((pcp), -(val))
580#endif
581
582#ifndef irqsafe_cpu_inc
583# define irqsafe_cpu_inc(pcp) irqsafe_cpu_add((pcp), 1)
584#endif
585
586#ifndef irqsafe_cpu_dec
587# define irqsafe_cpu_dec(pcp) irqsafe_cpu_sub((pcp), 1)
588#endif
589
590#ifndef irqsafe_cpu_and
591# ifndef irqsafe_cpu_and_1
592# define irqsafe_cpu_and_1(pcp, val) irqsafe_cpu_generic_to_op((pcp), (val), &=)
593# endif
594# ifndef irqsafe_cpu_and_2
595# define irqsafe_cpu_and_2(pcp, val) irqsafe_cpu_generic_to_op((pcp), (val), &=)
596# endif
597# ifndef irqsafe_cpu_and_4
598# define irqsafe_cpu_and_4(pcp, val) irqsafe_cpu_generic_to_op((pcp), (val), &=)
599# endif
600# ifndef irqsafe_cpu_and_8
601# define irqsafe_cpu_and_8(pcp, val) irqsafe_cpu_generic_to_op((pcp), (val), &=)
602# endif
0f5e4816 603# define irqsafe_cpu_and(pcp, val) __pcpu_size_call(irqsafe_cpu_and_, (val))
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604#endif
605
606#ifndef irqsafe_cpu_or
607# ifndef irqsafe_cpu_or_1
608# define irqsafe_cpu_or_1(pcp, val) irqsafe_cpu_generic_to_op((pcp), (val), |=)
609# endif
610# ifndef irqsafe_cpu_or_2
611# define irqsafe_cpu_or_2(pcp, val) irqsafe_cpu_generic_to_op((pcp), (val), |=)
612# endif
613# ifndef irqsafe_cpu_or_4
614# define irqsafe_cpu_or_4(pcp, val) irqsafe_cpu_generic_to_op((pcp), (val), |=)
615# endif
616# ifndef irqsafe_cpu_or_8
617# define irqsafe_cpu_or_8(pcp, val) irqsafe_cpu_generic_to_op((pcp), (val), |=)
618# endif
0f5e4816 619# define irqsafe_cpu_or(pcp, val) __pcpu_size_call(irqsafe_cpu_or_, (val))
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620#endif
621
622#ifndef irqsafe_cpu_xor
623# ifndef irqsafe_cpu_xor_1
624# define irqsafe_cpu_xor_1(pcp, val) irqsafe_cpu_generic_to_op((pcp), (val), ^=)
625# endif
626# ifndef irqsafe_cpu_xor_2
627# define irqsafe_cpu_xor_2(pcp, val) irqsafe_cpu_generic_to_op((pcp), (val), ^=)
628# endif
629# ifndef irqsafe_cpu_xor_4
630# define irqsafe_cpu_xor_4(pcp, val) irqsafe_cpu_generic_to_op((pcp), (val), ^=)
631# endif
632# ifndef irqsafe_cpu_xor_8
633# define irqsafe_cpu_xor_8(pcp, val) irqsafe_cpu_generic_to_op((pcp), (val), ^=)
634# endif
0f5e4816 635# define irqsafe_cpu_xor(pcp, val) __pcpu_size_call(irqsafe_cpu_xor_, (val))
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636#endif
637
1da177e4 638#endif /* __LINUX_PERCPU_H */
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