1			 ============================
2			 LINUX KERNEL MEMORY BARRIERS
3			 ============================
4
5By: David Howells <dhowells@redhat.com>
6    Paul E. McKenney <paulmck@linux.ibm.com>
7    Will Deacon <will.deacon@arm.com>
8    Peter Zijlstra <peterz@infradead.org>
9
10==========
11DISCLAIMER
12==========
13
14This document is not a specification; it is intentionally (for the sake of
15brevity) and unintentionally (due to being human) incomplete. This document is
16meant as a guide to using the various memory barriers provided by Linux, but
17in case of any doubt (and there are many) please ask.  Some doubts may be
18resolved by referring to the formal memory consistency model and related
19documentation at tools/memory-model/.  Nevertheless, even this memory
20model should be viewed as the collective opinion of its maintainers rather
21than as an infallible oracle.
22
23To repeat, this document is not a specification of what Linux expects from
24hardware.
25
26The purpose of this document is twofold:
27
28 (1) to specify the minimum functionality that one can rely on for any
29     particular barrier, and
30
31 (2) to provide a guide as to how to use the barriers that are available.
32
33Note that an architecture can provide more than the minimum requirement
34for any particular barrier, but if the architecture provides less than
35that, that architecture is incorrect.
36
37Note also that it is possible that a barrier may be a no-op for an
38architecture because the way that arch works renders an explicit barrier
39unnecessary in that case.
40
41
42========
43CONTENTS
44========
45
46 (*) Abstract memory access model.
47
48     - Device operations.
49     - Guarantees.
50
51 (*) What are memory barriers?
52
53     - Varieties of memory barrier.
54     - What may not be assumed about memory barriers?
55     - Address-dependency barriers (historical).
56     - Control dependencies.
57     - SMP barrier pairing.
58     - Examples of memory barrier sequences.
59     - Read memory barriers vs load speculation.
60     - Multicopy atomicity.
61
62 (*) Explicit kernel barriers.
63
64     - Compiler barrier.
65     - CPU memory barriers.
66
67 (*) Implicit kernel memory barriers.
68
69     - Lock acquisition functions.
70     - Interrupt disabling functions.
71     - Sleep and wake-up functions.
72     - Miscellaneous functions.
73
74 (*) Inter-CPU acquiring barrier effects.
75
76     - Acquires vs memory accesses.
77
78 (*) Where are memory barriers needed?
79
80     - Interprocessor interaction.
81     - Atomic operations.
82     - Accessing devices.
83     - Interrupts.
84
85 (*) Kernel I/O barrier effects.
86
87 (*) Assumed minimum execution ordering model.
88
89 (*) The effects of the cpu cache.
90
91     - Cache coherency.
92     - Cache coherency vs DMA.
93     - Cache coherency vs MMIO.
94
95 (*) The things CPUs get up to.
96
97     - And then there's the Alpha.
98     - Virtual Machine Guests.
99
100 (*) Example uses.
101
102     - Circular buffers.
103
104 (*) References.
105
106
107============================
108ABSTRACT MEMORY ACCESS MODEL
109============================
110
111Consider the following abstract model of the system:
112
113		            :                :
114		            :                :
115		            :                :
116		+-------+   :   +--------+   :   +-------+
117		|       |   :   |        |   :   |       |
118		|       |   :   |        |   :   |       |
119		| CPU 1 |<----->| Memory |<----->| CPU 2 |
120		|       |   :   |        |   :   |       |
121		|       |   :   |        |   :   |       |
122		+-------+   :   +--------+   :   +-------+
123		    ^       :       ^        :       ^
124		    |       :       |        :       |
125		    |       :       |        :       |
126		    |       :       v        :       |
127		    |       :   +--------+   :       |
128		    |       :   |        |   :       |
129		    |       :   |        |   :       |
130		    +---------->| Device |<----------+
131		            :   |        |   :
132		            :   |        |   :
133		            :   +--------+   :
134		            :                :
135
136Each CPU executes a program that generates memory access operations.  In the
137abstract CPU, memory operation ordering is very relaxed, and a CPU may actually
138perform the memory operations in any order it likes, provided program causality
139appears to be maintained.  Similarly, the compiler may also arrange the
140instructions it emits in any order it likes, provided it doesn't affect the
141apparent operation of the program.
142
143So in the above diagram, the effects of the memory operations performed by a
144CPU are perceived by the rest of the system as the operations cross the
145interface between the CPU and rest of the system (the dotted lines).
146
147
148For example, consider the following sequence of events:
149
150	CPU 1		CPU 2
151	===============	===============
152	{ A == 1; B == 2 }
153	A = 3;		x = B;
154	B = 4;		y = A;
155
156The set of accesses as seen by the memory system in the middle can be arranged
157in 24 different combinations:
158
159	STORE A=3,	STORE B=4,	y=LOAD A->3,	x=LOAD B->4
160	STORE A=3,	STORE B=4,	x=LOAD B->4,	y=LOAD A->3
161	STORE A=3,	y=LOAD A->3,	STORE B=4,	x=LOAD B->4
162	STORE A=3,	y=LOAD A->3,	x=LOAD B->2,	STORE B=4
163	STORE A=3,	x=LOAD B->2,	STORE B=4,	y=LOAD A->3
164	STORE A=3,	x=LOAD B->2,	y=LOAD A->3,	STORE B=4
165	STORE B=4,	STORE A=3,	y=LOAD A->3,	x=LOAD B->4
166	STORE B=4, ...
167	...
168
169and can thus result in four different combinations of values:
170
171	x == 2, y == 1
172	x == 2, y == 3
173	x == 4, y == 1
174	x == 4, y == 3
175
176
177Furthermore, the stores committed by a CPU to the memory system may not be
178perceived by the loads made by another CPU in the same order as the stores were
179committed.
180
181
182As a further example, consider this sequence of events:
183
184	CPU 1		CPU 2
185	===============	===============
186	{ A == 1, B == 2, C == 3, P == &A, Q == &C }
187	B = 4;		Q = P;
188	P = &B;		D = *Q;
189
190There is an obvious address dependency here, as the value loaded into D depends
191on the address retrieved from P by CPU 2.  At the end of the sequence, any of
192the following results are possible:
193
194	(Q == &A) and (D == 1)
195	(Q == &B) and (D == 2)
196	(Q == &B) and (D == 4)
197
198Note that CPU 2 will never try and load C into D because the CPU will load P
199into Q before issuing the load of *Q.
200
201
202DEVICE OPERATIONS
203-----------------
204
205Some devices present their control interfaces as collections of memory
206locations, but the order in which the control registers are accessed is very
207important.  For instance, imagine an ethernet card with a set of internal
208registers that are accessed through an address port register (A) and a data
209port register (D).  To read internal register 5, the following code might then
210be used:
211
212	*A = 5;
213	x = *D;
214
215but this might show up as either of the following two sequences:
216
217	STORE *A = 5, x = LOAD *D
218	x = LOAD *D, STORE *A = 5
219
220the second of which will almost certainly result in a malfunction, since it set
221the address _after_ attempting to read the register.
222
223
224GUARANTEES
225----------
226
227There are some minimal guarantees that may be expected of a CPU:
228
229 (*) On any given CPU, dependent memory accesses will be issued in order, with
230     respect to itself.  This means that for:
231
232	Q = READ_ONCE(P); D = READ_ONCE(*Q);
233
234     the CPU will issue the following memory operations:
235
236	Q = LOAD P, D = LOAD *Q
237
238     and always in that order.  However, on DEC Alpha, READ_ONCE() also
239     emits a memory-barrier instruction, so that a DEC Alpha CPU will
240     instead issue the following memory operations:
241
242	Q = LOAD P, MEMORY_BARRIER, D = LOAD *Q, MEMORY_BARRIER
243
244     Whether on DEC Alpha or not, the READ_ONCE() also prevents compiler
245     mischief.
246
247 (*) Overlapping loads and stores within a particular CPU will appear to be
248     ordered within that CPU.  This means that for:
249
250	a = READ_ONCE(*X); WRITE_ONCE(*X, b);
251
252     the CPU will only issue the following sequence of memory operations:
253
254	a = LOAD *X, STORE *X = b
255
256     And for:
257
258	WRITE_ONCE(*X, c); d = READ_ONCE(*X);
259
260     the CPU will only issue:
261
262	STORE *X = c, d = LOAD *X
263
264     (Loads and stores overlap if they are targeted at overlapping pieces of
265     memory).
266
267And there are a number of things that _must_ or _must_not_ be assumed:
268
269 (*) It _must_not_ be assumed that the compiler will do what you want
270     with memory references that are not protected by READ_ONCE() and
271     WRITE_ONCE().  Without them, the compiler is within its rights to
272     do all sorts of "creative" transformations, which are covered in
273     the COMPILER BARRIER section.
274
275 (*) It _must_not_ be assumed that independent loads and stores will be issued
276     in the order given.  This means that for:
277
278	X = *A; Y = *B; *D = Z;
279
280     we may get any of the following sequences:
281
282	X = LOAD *A,  Y = LOAD *B,  STORE *D = Z
283	X = LOAD *A,  STORE *D = Z, Y = LOAD *B
284	Y = LOAD *B,  X = LOAD *A,  STORE *D = Z
285	Y = LOAD *B,  STORE *D = Z, X = LOAD *A
286	STORE *D = Z, X = LOAD *A,  Y = LOAD *B
287	STORE *D = Z, Y = LOAD *B,  X = LOAD *A
288
289 (*) It _must_ be assumed that overlapping memory accesses may be merged or
290     discarded.  This means that for:
291
292	X = *A; Y = *(A + 4);
293
294     we may get any one of the following sequences:
295
296	X = LOAD *A; Y = LOAD *(A + 4);
297	Y = LOAD *(A + 4); X = LOAD *A;
298	{X, Y} = LOAD {*A, *(A + 4) };
299
300     And for:
301
302	*A = X; *(A + 4) = Y;
303
304     we may get any of:
305
306	STORE *A = X; STORE *(A + 4) = Y;
307	STORE *(A + 4) = Y; STORE *A = X;
308	STORE {*A, *(A + 4) } = {X, Y};
309
310And there are anti-guarantees:
311
312 (*) These guarantees do not apply to bitfields, because compilers often
313     generate code to modify these using non-atomic read-modify-write
314     sequences.  Do not attempt to use bitfields to synchronize parallel
315     algorithms.
316
317 (*) Even in cases where bitfields are protected by locks, all fields
318     in a given bitfield must be protected by one lock.  If two fields
319     in a given bitfield are protected by different locks, the compiler's
320     non-atomic read-modify-write sequences can cause an update to one
321     field to corrupt the value of an adjacent field.
322
323 (*) These guarantees apply only to properly aligned and sized scalar
324     variables.  "Properly sized" currently means variables that are
325     the same size as "char", "short", "int" and "long".  "Properly
326     aligned" means the natural alignment, thus no constraints for
327     "char", two-byte alignment for "short", four-byte alignment for
328     "int", and either four-byte or eight-byte alignment for "long",
329     on 32-bit and 64-bit systems, respectively.  Note that these
330     guarantees were introduced into the C11 standard, so beware when
331     using older pre-C11 compilers (for example, gcc 4.6).  The portion
332     of the standard containing this guarantee is Section 3.14, which
333     defines "memory location" as follows:
334
335     	memory location
336		either an object of scalar type, or a maximal sequence
337		of adjacent bit-fields all having nonzero width
338
339		NOTE 1: Two threads of execution can update and access
340		separate memory locations without interfering with
341		each other.
342
343		NOTE 2: A bit-field and an adjacent non-bit-field member
344		are in separate memory locations. The same applies
345		to two bit-fields, if one is declared inside a nested
346		structure declaration and the other is not, or if the two
347		are separated by a zero-length bit-field declaration,
348		or if they are separated by a non-bit-field member
349		declaration. It is not safe to concurrently update two
350		bit-fields in the same structure if all members declared
351		between them are also bit-fields, no matter what the
352		sizes of those intervening bit-fields happen to be.
353
354
355=========================
356WHAT ARE MEMORY BARRIERS?
357=========================
358
359As can be seen above, independent memory operations are effectively performed
360in random order, but this can be a problem for CPU-CPU interaction and for I/O.
361What is required is some way of intervening to instruct the compiler and the
362CPU to restrict the order.
363
364Memory barriers are such interventions.  They impose a perceived partial
365ordering over the memory operations on either side of the barrier.
366
367Such enforcement is important because the CPUs and other devices in a system
368can use a variety of tricks to improve performance, including reordering,
369deferral and combination of memory operations; speculative loads; speculative
370branch prediction and various types of caching.  Memory barriers are used to
371override or suppress these tricks, allowing the code to sanely control the
372interaction of multiple CPUs and/or devices.
373
374
375VARIETIES OF MEMORY BARRIER
376---------------------------
377
378Memory barriers come in four basic varieties:
379
380 (1) Write (or store) memory barriers.
381
382     A write memory barrier gives a guarantee that all the STORE operations
383     specified before the barrier will appear to happen before all the STORE
384     operations specified after the barrier with respect to the other
385     components of the system.
386
387     A write barrier is a partial ordering on stores only; it is not required
388     to have any effect on loads.
389
390     A CPU can be viewed as committing a sequence of store operations to the
391     memory system as time progresses.  All stores _before_ a write barrier
392     will occur _before_ all the stores after the write barrier.
393
394     [!] Note that write barriers should normally be paired with read or
395     address-dependency barriers; see the "SMP barrier pairing" subsection.
396
397
398 (2) Address-dependency barriers (historical).
399     [!] This section is marked as HISTORICAL: it covers the long-obsolete
400     smp_read_barrier_depends() macro, the semantics of which are now
401     implicit in all marked accesses.  For more up-to-date information,
402     including how compiler transformations can sometimes break address
403     dependencies, see Documentation/RCU/rcu_dereference.rst.
404
405     An address-dependency barrier is a weaker form of read barrier.  In the
406     case where two loads are performed such that the second depends on the
407     result of the first (eg: the first load retrieves the address to which
408     the second load will be directed), an address-dependency barrier would
409     be required to make sure that the target of the second load is updated
410     after the address obtained by the first load is accessed.
411
412     An address-dependency barrier is a partial ordering on interdependent
413     loads only; it is not required to have any effect on stores, independent
414     loads or overlapping loads.
415
416     As mentioned in (1), the other CPUs in the system can be viewed as
417     committing sequences of stores to the memory system that the CPU being
418     considered can then perceive.  An address-dependency barrier issued by
419     the CPU under consideration guarantees that for any load preceding it,
420     if that load touches one of a sequence of stores from another CPU, then
421     by the time the barrier completes, the effects of all the stores prior to
422     that touched by the load will be perceptible to any loads issued after
423     the address-dependency barrier.
424
425     See the "Examples of memory barrier sequences" subsection for diagrams
426     showing the ordering constraints.
427
428     [!] Note that the first load really has to have an _address_ dependency and
429     not a control dependency.  If the address for the second load is dependent
430     on the first load, but the dependency is through a conditional rather than
431     actually loading the address itself, then it's a _control_ dependency and
432     a full read barrier or better is required.  See the "Control dependencies"
433     subsection for more information.
434
435     [!] Note that address-dependency barriers should normally be paired with
436     write barriers; see the "SMP barrier pairing" subsection.
437
438     [!] Kernel release v5.9 removed kernel APIs for explicit address-
439     dependency barriers.  Nowadays, APIs for marking loads from shared
440     variables such as READ_ONCE() and rcu_dereference() provide implicit
441     address-dependency barriers.
442
443 (3) Read (or load) memory barriers.
444
445     A read barrier is an address-dependency barrier plus a guarantee that all
446     the LOAD operations specified before the barrier will appear to happen
447     before all the LOAD operations specified after the barrier with respect to
448     the other components of the system.
449
450     A read barrier is a partial ordering on loads only; it is not required to
451     have any effect on stores.
452
453     Read memory barriers imply address-dependency barriers, and so can
454     substitute for them.
455
456     [!] Note that read barriers should normally be paired with write barriers;
457     see the "SMP barrier pairing" subsection.
458
459
460 (4) General memory barriers.
461
462     A general memory barrier gives a guarantee that all the LOAD and STORE
463     operations specified before the barrier will appear to happen before all
464     the LOAD and STORE operations specified after the barrier with respect to
465     the other components of the system.
466
467     A general memory barrier is a partial ordering over both loads and stores.
468
469     General memory barriers imply both read and write memory barriers, and so
470     can substitute for either.
471
472
473And a couple of implicit varieties:
474
475 (5) ACQUIRE operations.
476
477     This acts as a one-way permeable barrier.  It guarantees that all memory
478     operations after the ACQUIRE operation will appear to happen after the
479     ACQUIRE operation with respect to the other components of the system.
480     ACQUIRE operations include LOCK operations and both smp_load_acquire()
481     and smp_cond_load_acquire() operations.
482
483     Memory operations that occur before an ACQUIRE operation may appear to
484     happen after it completes.
485
486     An ACQUIRE operation should almost always be paired with a RELEASE
487     operation.
488
489
490 (6) RELEASE operations.
491
492     This also acts as a one-way permeable barrier.  It guarantees that all
493     memory operations before the RELEASE operation will appear to happen
494     before the RELEASE operation with respect to the other components of the
495     system. RELEASE operations include UNLOCK operations and
496     smp_store_release() operations.
497
498     Memory operations that occur after a RELEASE operation may appear to
499     happen before it completes.
500
501     The use of ACQUIRE and RELEASE operations generally precludes the need
502     for other sorts of memory barrier.  In addition, a RELEASE+ACQUIRE pair is
503     -not- guaranteed to act as a full memory barrier.  However, after an
504     ACQUIRE on a given variable, all memory accesses preceding any prior
505     RELEASE on that same variable are guaranteed to be visible.  In other
506     words, within a given variable's critical section, all accesses of all
507     previous critical sections for that variable are guaranteed to have
508     completed.
509
510     This means that ACQUIRE acts as a minimal "acquire" operation and
511     RELEASE acts as a minimal "release" operation.
512
513A subset of the atomic operations described in atomic_t.txt have ACQUIRE and
514RELEASE variants in addition to fully-ordered and relaxed (no barrier
515semantics) definitions.  For compound atomics performing both a load and a
516store, ACQUIRE semantics apply only to the load and RELEASE semantics apply
517only to the store portion of the operation.
518
519Memory barriers are only required where there's a possibility of interaction
520between two CPUs or between a CPU and a device.  If it can be guaranteed that
521there won't be any such interaction in any particular piece of code, then
522memory barriers are unnecessary in that piece of code.
523
524
525Note that these are the _minimum_ guarantees.  Different architectures may give
526more substantial guarantees, but they may _not_ be relied upon outside of arch
527specific code.
528
529
530WHAT MAY NOT BE ASSUMED ABOUT MEMORY BARRIERS?
531----------------------------------------------
532
533There are certain things that the Linux kernel memory barriers do not guarantee:
534
535 (*) There is no guarantee that any of the memory accesses specified before a
536     memory barrier will be _complete_ by the completion of a memory barrier
537     instruction; the barrier can be considered to draw a line in that CPU's
538     access queue that accesses of the appropriate type may not cross.
539
540 (*) There is no guarantee that issuing a memory barrier on one CPU will have
541     any direct effect on another CPU or any other hardware in the system.  The
542     indirect effect will be the order in which the second CPU sees the effects
543     of the first CPU's accesses occur, but see the next point:
544
545 (*) There is no guarantee that a CPU will see the correct order of effects
546     from a second CPU's accesses, even _if_ the second CPU uses a memory
547     barrier, unless the first CPU _also_ uses a matching memory barrier (see
548     the subsection on "SMP Barrier Pairing").
549
550 (*) There is no guarantee that some intervening piece of off-the-CPU
551     hardware[*] will not reorder the memory accesses.  CPU cache coherency
552     mechanisms should propagate the indirect effects of a memory barrier
553     between CPUs, but might not do so in order.
554
555	[*] For information on bus mastering DMA and coherency please read:
556
557	    Documentation/driver-api/pci/pci.rst
558	    Documentation/core-api/dma-api-howto.rst
559	    Documentation/core-api/dma-api.rst
560
561
562ADDRESS-DEPENDENCY BARRIERS (HISTORICAL)
563----------------------------------------
564[!] This section is marked as HISTORICAL: it covers the long-obsolete
565smp_read_barrier_depends() macro, the semantics of which are now implicit
566in all marked accesses.  For more up-to-date information, including
567how compiler transformations can sometimes break address dependencies,
568see Documentation/RCU/rcu_dereference.rst.
569
570As of v4.15 of the Linux kernel, an smp_mb() was added to READ_ONCE() for
571DEC Alpha, which means that about the only people who need to pay attention
572to this section are those working on DEC Alpha architecture-specific code
573and those working on READ_ONCE() itself.  For those who need it, and for
574those who are interested in the history, here is the story of
575address-dependency barriers.
576
577[!] While address dependencies are observed in both load-to-load and
578load-to-store relations, address-dependency barriers are not necessary
579for load-to-store situations.
580
581The requirement of address-dependency barriers is a little subtle, and
582it's not always obvious that they're needed.  To illustrate, consider the
583following sequence of events:
584
585	CPU 1		      CPU 2
586	===============	      ===============
587	{ A == 1, B == 2, C == 3, P == &A, Q == &C }
588	B = 4;
589	<write barrier>
590	WRITE_ONCE(P, &B);
591			      Q = READ_ONCE_OLD(P);
592			      D = *Q;
593
594[!] READ_ONCE_OLD() corresponds to READ_ONCE() of pre-4.15 kernel, which
595doesn't imply an address-dependency barrier.
596
597There's a clear address dependency here, and it would seem that by the end of
598the sequence, Q must be either &A or &B, and that:
599
600	(Q == &A) implies (D == 1)
601	(Q == &B) implies (D == 4)
602
603But!  CPU 2's perception of P may be updated _before_ its perception of B, thus
604leading to the following situation:
605
606	(Q == &B) and (D == 2) ????
607
608While this may seem like a failure of coherency or causality maintenance, it
609isn't, and this behaviour can be observed on certain real CPUs (such as the DEC
610Alpha).
611
612To deal with this, READ_ONCE() provides an implicit address-dependency barrier
613since kernel release v4.15:
614
615	CPU 1		      CPU 2
616	===============	      ===============
617	{ A == 1, B == 2, C == 3, P == &A, Q == &C }
618	B = 4;
619	<write barrier>
620	WRITE_ONCE(P, &B);
621			      Q = READ_ONCE(P);
622			      <implicit address-dependency barrier>
623			      D = *Q;
624
625This enforces the occurrence of one of the two implications, and prevents the
626third possibility from arising.
627
628
629[!] Note that this extremely counterintuitive situation arises most easily on
630machines with split caches, so that, for example, one cache bank processes
631even-numbered cache lines and the other bank processes odd-numbered cache
632lines.  The pointer P might be stored in an odd-numbered cache line, and the
633variable B might be stored in an even-numbered cache line.  Then, if the
634even-numbered bank of the reading CPU's cache is extremely busy while the
635odd-numbered bank is idle, one can see the new value of the pointer P (&B),
636but the old value of the variable B (2).
637
638
639An address-dependency barrier is not required to order dependent writes
640because the CPUs that the Linux kernel supports don't do writes until they
641are certain (1) that the write will actually happen, (2) of the location of
642the write, and (3) of the value to be written.
643But please carefully read the "CONTROL DEPENDENCIES" section and the
644Documentation/RCU/rcu_dereference.rst file:  The compiler can and does break
645dependencies in a great many highly creative ways.
646
647	CPU 1		      CPU 2
648	===============	      ===============
649	{ A == 1, B == 2, C = 3, P == &A, Q == &C }
650	B = 4;
651	<write barrier>
652	WRITE_ONCE(P, &B);
653			      Q = READ_ONCE_OLD(P);
654			      WRITE_ONCE(*Q, 5);
655
656Therefore, no address-dependency barrier is required to order the read into
657Q with the store into *Q.  In other words, this outcome is prohibited,
658even without an implicit address-dependency barrier of modern READ_ONCE():
659
660	(Q == &B) && (B == 4)
661
662Please note that this pattern should be rare.  After all, the whole point
663of dependency ordering is to -prevent- writes to the data structure, along
664with the expensive cache misses associated with those writes.  This pattern
665can be used to record rare error conditions and the like, and the CPUs'
666naturally occurring ordering prevents such records from being lost.
667
668
669Note well that the ordering provided by an address dependency is local to
670the CPU containing it.  See the section on "Multicopy atomicity" for
671more information.
672
673
674The address-dependency barrier is very important to the RCU system,
675for example.  See rcu_assign_pointer() and rcu_dereference() in
676include/linux/rcupdate.h.  This permits the current target of an RCU'd
677pointer to be replaced with a new modified target, without the replacement
678target appearing to be incompletely initialised.
679
680See also the subsection on "Cache Coherency" for a more thorough example.
681
682
683CONTROL DEPENDENCIES
684--------------------
685
686Control dependencies can be a bit tricky because current compilers do
687not understand them.  The purpose of this section is to help you prevent
688the compiler's ignorance from breaking your code.
689
690A load-load control dependency requires a full read memory barrier, not
691simply an (implicit) address-dependency barrier to make it work correctly.
692Consider the following bit of code:
693
694	q = READ_ONCE(a);
695	<implicit address-dependency barrier>
696	if (q) {
697		/* BUG: No address dependency!!! */
698		p = READ_ONCE(b);
699	}
700
701This will not have the desired effect because there is no actual address
702dependency, but rather a control dependency that the CPU may short-circuit
703by attempting to predict the outcome in advance, so that other CPUs see
704the load from b as having happened before the load from a.  In such a case
705what's actually required is:
706
707	q = READ_ONCE(a);
708	if (q) {
709		<read barrier>
710		p = READ_ONCE(b);
711	}
712
713However, stores are not speculated.  This means that ordering -is- provided
714for load-store control dependencies, as in the following example:
715
716	q = READ_ONCE(a);
717	if (q) {
718		WRITE_ONCE(b, 1);
719	}
720
721Control dependencies pair normally with other types of barriers.
722That said, please note that neither READ_ONCE() nor WRITE_ONCE()
723are optional! Without the READ_ONCE(), the compiler might combine the
724load from 'a' with other loads from 'a'.  Without the WRITE_ONCE(),
725the compiler might combine the store to 'b' with other stores to 'b'.
726Either can result in highly counterintuitive effects on ordering.
727
728Worse yet, if the compiler is able to prove (say) that the value of
729variable 'a' is always non-zero, it would be well within its rights
730to optimize the original example by eliminating the "if" statement
731as follows:
732
733	q = a;
734	b = 1;  /* BUG: Compiler and CPU can both reorder!!! */
735
736So don't leave out the READ_ONCE().
737
738It is tempting to try to enforce ordering on identical stores on both
739branches of the "if" statement as follows:
740
741	q = READ_ONCE(a);
742	if (q) {
743		barrier();
744		WRITE_ONCE(b, 1);
745		do_something();
746	} else {
747		barrier();
748		WRITE_ONCE(b, 1);
749		do_something_else();
750	}
751
752Unfortunately, current compilers will transform this as follows at high
753optimization levels:
754
755	q = READ_ONCE(a);
756	barrier();
757	WRITE_ONCE(b, 1);  /* BUG: No ordering vs. load from a!!! */
758	if (q) {
759		/* WRITE_ONCE(b, 1); -- moved up, BUG!!! */
760		do_something();
761	} else {
762		/* WRITE_ONCE(b, 1); -- moved up, BUG!!! */
763		do_something_else();
764	}
765
766Now there is no conditional between the load from 'a' and the store to
767'b', which means that the CPU is within its rights to reorder them:
768The conditional is absolutely required, and must be present in the
769assembly code even after all compiler optimizations have been applied.
770Therefore, if you need ordering in this example, you need explicit
771memory barriers, for example, smp_store_release():
772
773	q = READ_ONCE(a);
774	if (q) {
775		smp_store_release(&b, 1);
776		do_something();
777	} else {
778		smp_store_release(&b, 1);
779		do_something_else();
780	}
781
782In contrast, without explicit memory barriers, two-legged-if control
783ordering is guaranteed only when the stores differ, for example:
784
785	q = READ_ONCE(a);
786	if (q) {
787		WRITE_ONCE(b, 1);
788		do_something();
789	} else {
790		WRITE_ONCE(b, 2);
791		do_something_else();
792	}
793
794The initial READ_ONCE() is still required to prevent the compiler from
795proving the value of 'a'.
796
797In addition, you need to be careful what you do with the local variable 'q',
798otherwise the compiler might be able to guess the value and again remove
799the needed conditional.  For example:
800
801	q = READ_ONCE(a);
802	if (q % MAX) {
803		WRITE_ONCE(b, 1);
804		do_something();
805	} else {
806		WRITE_ONCE(b, 2);
807		do_something_else();
808	}
809
810If MAX is defined to be 1, then the compiler knows that (q % MAX) is
811equal to zero, in which case the compiler is within its rights to
812transform the above code into the following:
813
814	q = READ_ONCE(a);
815	WRITE_ONCE(b, 2);
816	do_something_else();
817
818Given this transformation, the CPU is not required to respect the ordering
819between the load from variable 'a' and the store to variable 'b'.  It is
820tempting to add a barrier(), but this does not help.  The conditional
821is gone, and the barrier won't bring it back.  Therefore, if you are
822relying on this ordering, you should make sure that MAX is greater than
823one, perhaps as follows:
824
825	q = READ_ONCE(a);
826	BUILD_BUG_ON(MAX <= 1); /* Order load from a with store to b. */
827	if (q % MAX) {
828		WRITE_ONCE(b, 1);
829		do_something();
830	} else {
831		WRITE_ONCE(b, 2);
832		do_something_else();
833	}
834
835Please note once again that the stores to 'b' differ.  If they were
836identical, as noted earlier, the compiler could pull this store outside
837of the 'if' statement.
838
839You must also be careful not to rely too much on boolean short-circuit
840evaluation.  Consider this example:
841
842	q = READ_ONCE(a);
843	if (q || 1 > 0)
844		WRITE_ONCE(b, 1);
845
846Because the first condition cannot fault and the second condition is
847always true, the compiler can transform this example as following,
848defeating control dependency:
849
850	q = READ_ONCE(a);
851	WRITE_ONCE(b, 1);
852
853This example underscores the need to ensure that the compiler cannot
854out-guess your code.  More generally, although READ_ONCE() does force
855the compiler to actually emit code for a given load, it does not force
856the compiler to use the results.
857
858In addition, control dependencies apply only to the then-clause and
859else-clause of the if-statement in question.  In particular, it does
860not necessarily apply to code following the if-statement:
861
862	q = READ_ONCE(a);
863	if (q) {
864		WRITE_ONCE(b, 1);
865	} else {
866		WRITE_ONCE(b, 2);
867	}
868	WRITE_ONCE(c, 1);  /* BUG: No ordering against the read from 'a'. */
869
870It is tempting to argue that there in fact is ordering because the
871compiler cannot reorder volatile accesses and also cannot reorder
872the writes to 'b' with the condition.  Unfortunately for this line
873of reasoning, the compiler might compile the two writes to 'b' as
874conditional-move instructions, as in this fanciful pseudo-assembly
875language:
876
877	ld r1,a
878	cmp r1,$0
879	cmov,ne r4,$1
880	cmov,eq r4,$2
881	st r4,b
882	st $1,c
883
884A weakly ordered CPU would have no dependency of any sort between the load
885from 'a' and the store to 'c'.  The control dependencies would extend
886only to the pair of cmov instructions and the store depending on them.
887In short, control dependencies apply only to the stores in the then-clause
888and else-clause of the if-statement in question (including functions
889invoked by those two clauses), not to code following that if-statement.
890
891
892Note well that the ordering provided by a control dependency is local
893to the CPU containing it.  See the section on "Multicopy atomicity"
894for more information.
895
896
897In summary:
898
899  (*) Control dependencies can order prior loads against later stores.
900      However, they do -not- guarantee any other sort of ordering:
901      Not prior loads against later loads, nor prior stores against
902      later anything.  If you need these other forms of ordering,
903      use smp_rmb(), smp_wmb(), or, in the case of prior stores and
904      later loads, smp_mb().
905
906  (*) If both legs of the "if" statement begin with identical stores to
907      the same variable, then those stores must be ordered, either by
908      preceding both of them with smp_mb() or by using smp_store_release()
909      to carry out the stores.  Please note that it is -not- sufficient
910      to use barrier() at beginning of each leg of the "if" statement
911      because, as shown by the example above, optimizing compilers can
912      destroy the control dependency while respecting the letter of the
913      barrier() law.
914
915  (*) Control dependencies require at least one run-time conditional
916      between the prior load and the subsequent store, and this
917      conditional must involve the prior load.  If the compiler is able
918      to optimize the conditional away, it will have also optimized
919      away the ordering.  Careful use of READ_ONCE() and WRITE_ONCE()
920      can help to preserve the needed conditional.
921
922  (*) Control dependencies require that the compiler avoid reordering the
923      dependency into nonexistence.  Careful use of READ_ONCE() or
924      atomic{,64}_read() can help to preserve your control dependency.
925      Please see the COMPILER BARRIER section for more information.
926
927  (*) Control dependencies apply only to the then-clause and else-clause
928      of the if-statement containing the control dependency, including
929      any functions that these two clauses call.  Control dependencies
930      do -not- apply to code following the if-statement containing the
931      control dependency.
932
933  (*) Control dependencies pair normally with other types of barriers.
934
935  (*) Control dependencies do -not- provide multicopy atomicity.  If you
936      need all the CPUs to see a given store at the same time, use smp_mb().
937
938  (*) Compilers do not understand control dependencies.  It is therefore
939      your job to ensure that they do not break your code.
940
941
942SMP BARRIER PAIRING
943-------------------
944
945When dealing with CPU-CPU interactions, certain types of memory barrier should
946always be paired.  A lack of appropriate pairing is almost certainly an error.
947
948General barriers pair with each other, though they also pair with most
949other types of barriers, albeit without multicopy atomicity.  An acquire
950barrier pairs with a release barrier, but both may also pair with other
951barriers, including of course general barriers.  A write barrier pairs
952with an address-dependency barrier, a control dependency, an acquire barrier,
953a release barrier, a read barrier, or a general barrier.  Similarly a
954read barrier, control dependency, or an address-dependency barrier pairs
955with a write barrier, an acquire barrier, a release barrier, or a
956general barrier:
957
958	CPU 1		      CPU 2
959	===============	      ===============
960	WRITE_ONCE(a, 1);
961	<write barrier>
962	WRITE_ONCE(b, 2);     x = READ_ONCE(b);
963			      <read barrier>
964			      y = READ_ONCE(a);
965
966Or:
967
968	CPU 1		      CPU 2
969	===============	      ===============================
970	a = 1;
971	<write barrier>
972	WRITE_ONCE(b, &a);    x = READ_ONCE(b);
973			      <implicit address-dependency barrier>
974			      y = *x;
975
976Or even:
977
978	CPU 1		      CPU 2
979	===============	      ===============================
980	r1 = READ_ONCE(y);
981	<general barrier>
982	WRITE_ONCE(x, 1);     if (r2 = READ_ONCE(x)) {
983			         <implicit control dependency>
984			         WRITE_ONCE(y, 1);
985			      }
986
987	assert(r1 == 0 || r2 == 0);
988
989Basically, the read barrier always has to be there, even though it can be of
990the "weaker" type.
991
992[!] Note that the stores before the write barrier would normally be expected to
993match the loads after the read barrier or the address-dependency barrier, and
994vice versa:
995
996	CPU 1                               CPU 2
997	===================                 ===================
998	WRITE_ONCE(a, 1);    }----   --->{  v = READ_ONCE(c);
999	WRITE_ONCE(b, 2);    }    \ /    {  w = READ_ONCE(d);
1000	<write barrier>            \        <read barrier>
1001	WRITE_ONCE(c, 3);    }    / \    {  x = READ_ONCE(a);
1002	WRITE_ONCE(d, 4);    }----   --->{  y = READ_ONCE(b);
1003
1004
1005EXAMPLES OF MEMORY BARRIER SEQUENCES
1006------------------------------------
1007
1008Firstly, write barriers act as partial orderings on store operations.
1009Consider the following sequence of events:
1010
1011	CPU 1
1012	=======================
1013	STORE A = 1
1014	STORE B = 2
1015	STORE C = 3
1016	<write barrier>
1017	STORE D = 4
1018	STORE E = 5
1019
1020This sequence of events is committed to the memory coherence system in an order
1021that the rest of the system might perceive as the unordered set of { STORE A,
1022STORE B, STORE C } all occurring before the unordered set of { STORE D, STORE E
1023}:
1024
1025	+-------+       :      :
1026	|       |       +------+
1027	|       |------>| C=3  |     }     /\
1028	|       |  :    +------+     }-----  \  -----> Events perceptible to
1029	|       |  :    | A=1  |     }        \/       the rest of the system
1030	|       |  :    +------+     }
1031	| CPU 1 |  :    | B=2  |     }
1032	|       |       +------+     }
1033	|       |   wwwwwwwwwwwwwwww }   <--- At this point the write barrier
1034	|       |       +------+     }        requires all stores prior to the
1035	|       |  :    | E=5  |     }        barrier to be committed before
1036	|       |  :    +------+     }        further stores may take place
1037	|       |------>| D=4  |     }
1038	|       |       +------+
1039	+-------+       :      :
1040	                   |
1041	                   | Sequence in which stores are committed to the
1042	                   | memory system by CPU 1
1043	                   V
1044
1045
1046Secondly, address-dependency barriers act as partial orderings on address-
1047dependent loads.  Consider the following sequence of events:
1048
1049	CPU 1			CPU 2
1050	=======================	=======================
1051		{ B = 7; X = 9; Y = 8; C = &Y }
1052	STORE A = 1
1053	STORE B = 2
1054	<write barrier>
1055	STORE C = &B		LOAD X
1056	STORE D = 4		LOAD C (gets &B)
1057				LOAD *C (reads B)
1058
1059Without intervention, CPU 2 may perceive the events on CPU 1 in some
1060effectively random order, despite the write barrier issued by CPU 1:
1061
1062	+-------+       :      :                :       :
1063	|       |       +------+                +-------+  | Sequence of update
1064	|       |------>| B=2  |-----       --->| Y->8  |  | of perception on
1065	|       |  :    +------+     \          +-------+  | CPU 2
1066	| CPU 1 |  :    | A=1  |      \     --->| C->&Y |  V
1067	|       |       +------+       |        +-------+
1068	|       |   wwwwwwwwwwwwwwww   |        :       :
1069	|       |       +------+       |        :       :
1070	|       |  :    | C=&B |---    |        :       :       +-------+
1071	|       |  :    +------+   \   |        +-------+       |       |
1072	|       |------>| D=4  |    ----------->| C->&B |------>|       |
1073	|       |       +------+       |        +-------+       |       |
1074	+-------+       :      :       |        :       :       |       |
1075	                               |        :       :       |       |
1076	                               |        :       :       | CPU 2 |
1077	                               |        +-------+       |       |
1078	    Apparently incorrect --->  |        | B->7  |------>|       |
1079	    perception of B (!)        |        +-------+       |       |
1080	                               |        :       :       |       |
1081	                               |        +-------+       |       |
1082	    The load of X holds --->    \       | X->9  |------>|       |
1083	    up the maintenance           \      +-------+       |       |
1084	    of coherence of B             ----->| B->2  |       +-------+
1085	                                        +-------+
1086	                                        :       :
1087
1088
1089In the above example, CPU 2 perceives that B is 7, despite the load of *C
1090(which would be B) coming after the LOAD of C.
1091
1092If, however, an address-dependency barrier were to be placed between the load
1093of C and the load of *C (ie: B) on CPU 2:
1094
1095	CPU 1			CPU 2
1096	=======================	=======================
1097		{ B = 7; X = 9; Y = 8; C = &Y }
1098	STORE A = 1
1099	STORE B = 2
1100	<write barrier>
1101	STORE C = &B		LOAD X
1102	STORE D = 4		LOAD C (gets &B)
1103				<address-dependency barrier>
1104				LOAD *C (reads B)
1105
1106then the following will occur:
1107
1108	+-------+       :      :                :       :
1109	|       |       +------+                +-------+
1110	|       |------>| B=2  |-----       --->| Y->8  |
1111	|       |  :    +------+     \          +-------+
1112	| CPU 1 |  :    | A=1  |      \     --->| C->&Y |
1113	|       |       +------+       |        +-------+
1114	|       |   wwwwwwwwwwwwwwww   |        :       :
1115	|       |       +------+       |        :       :
1116	|       |  :    | C=&B |---    |        :       :       +-------+
1117	|       |  :    +------+   \   |        +-------+       |       |
1118	|       |------>| D=4  |    ----------->| C->&B |------>|       |
1119	|       |       +------+       |        +-------+       |       |
1120	+-------+       :      :       |        :       :       |       |
1121	                               |        :       :       |       |
1122	                               |        :       :       | CPU 2 |
1123	                               |        +-------+       |       |
1124	                               |        | X->9  |------>|       |
1125	                               |        +-------+       |       |
1126	  Makes sure all effects --->   \   aaaaaaaaaaaaaaaaa   |       |
1127	  prior to the store of C        \      +-------+       |       |
1128	  are perceptible to              ----->| B->2  |------>|       |
1129	  subsequent loads                      +-------+       |       |
1130	                                        :       :       +-------+
1131
1132
1133And thirdly, a read barrier acts as a partial order on loads.  Consider the
1134following sequence of events:
1135
1136	CPU 1			CPU 2
1137	=======================	=======================
1138		{ A = 0, B = 9 }
1139	STORE A=1
1140	<write barrier>
1141	STORE B=2
1142				LOAD B
1143				LOAD A
1144
1145Without intervention, CPU 2 may then choose to perceive the events on CPU 1 in
1146some effectively random order, despite the write barrier issued by CPU 1:
1147
1148	+-------+       :      :                :       :
1149	|       |       +------+                +-------+
1150	|       |------>| A=1  |------      --->| A->0  |
1151	|       |       +------+      \         +-------+
1152	| CPU 1 |   wwwwwwwwwwwwwwww   \    --->| B->9  |
1153	|       |       +------+        |       +-------+
1154	|       |------>| B=2  |---     |       :       :
1155	|       |       +------+   \    |       :       :       +-------+
1156	+-------+       :      :    \   |       +-------+       |       |
1157	                             ---------->| B->2  |------>|       |
1158	                                |       +-------+       | CPU 2 |
1159	                                |       | A->0  |------>|       |
1160	                                |       +-------+       |       |
1161	                                |       :       :       +-------+
1162	                                 \      :       :
1163	                                  \     +-------+
1164	                                   ---->| A->1  |
1165	                                        +-------+
1166	                                        :       :
1167
1168
1169If, however, a read barrier were to be placed between the load of B and the
1170load of A on CPU 2:
1171
1172	CPU 1			CPU 2
1173	=======================	=======================
1174		{ A = 0, B = 9 }
1175	STORE A=1
1176	<write barrier>
1177	STORE B=2
1178				LOAD B
1179				<read barrier>
1180				LOAD A
1181
1182then the partial ordering imposed by CPU 1 will be perceived correctly by CPU
11832:
1184
1185	+-------+       :      :                :       :
1186	|       |       +------+                +-------+
1187	|       |------>| A=1  |------      --->| A->0  |
1188	|       |       +------+      \         +-------+
1189	| CPU 1 |   wwwwwwwwwwwwwwww   \    --->| B->9  |
1190	|       |       +------+        |       +-------+
1191	|       |------>| B=2  |---     |       :       :
1192	|       |       +------+   \    |       :       :       +-------+
1193	+-------+       :      :    \   |       +-------+       |       |
1194	                             ---------->| B->2  |------>|       |
1195	                                |       +-------+       | CPU 2 |
1196	                                |       :       :       |       |
1197	                                |       :       :       |       |
1198	  At this point the read ---->   \  rrrrrrrrrrrrrrrrr   |       |
1199	  barrier causes all effects      \     +-------+       |       |
1200	  prior to the storage of B        ---->| A->1  |------>|       |
1201	  to be perceptible to CPU 2            +-------+       |       |
1202	                                        :       :       +-------+
1203
1204
1205To illustrate this more completely, consider what could happen if the code
1206contained a load of A either side of the read barrier:
1207
1208	CPU 1			CPU 2
1209	=======================	=======================
1210		{ A = 0, B = 9 }
1211	STORE A=1
1212	<write barrier>
1213	STORE B=2
1214				LOAD B
1215				LOAD A [first load of A]
1216				<read barrier>
1217				LOAD A [second load of A]
1218
1219Even though the two loads of A both occur after the load of B, they may both
1220come up with different values:
1221
1222	+-------+       :      :                :       :
1223	|       |       +------+                +-------+
1224	|       |------>| A=1  |------      --->| A->0  |
1225	|       |       +------+      \         +-------+
1226	| CPU 1 |   wwwwwwwwwwwwwwww   \    --->| B->9  |
1227	|       |       +------+        |       +-------+
1228	|       |------>| B=2  |---     |       :       :
1229	|       |       +------+   \    |       :       :       +-------+
1230	+-------+       :      :    \   |       +-------+       |       |
1231	                             ---------->| B->2  |------>|       |
1232	                                |       +-------+       | CPU 2 |
1233	                                |       :       :       |       |
1234	                                |       :       :       |       |
1235	                                |       +-------+       |       |
1236	                                |       | A->0  |------>| 1st   |
1237	                                |       +-------+       |       |
1238	  At this point the read ---->   \  rrrrrrrrrrrrrrrrr   |       |
1239	  barrier causes all effects      \     +-------+       |       |
1240	  prior to the storage of B        ---->| A->1  |------>| 2nd   |
1241	  to be perceptible to CPU 2            +-------+       |       |
1242	                                        :       :       +-------+
1243
1244
1245But it may be that the update to A from CPU 1 becomes perceptible to CPU 2
1246before the read barrier completes anyway:
1247
1248	+-------+       :      :                :       :
1249	|       |       +------+                +-------+
1250	|       |------>| A=1  |------      --->| A->0  |
1251	|       |       +------+      \         +-------+
1252	| CPU 1 |   wwwwwwwwwwwwwwww   \    --->| B->9  |
1253	|       |       +------+        |       +-------+
1254	|       |------>| B=2  |---     |       :       :
1255	|       |       +------+   \    |       :       :       +-------+
1256	+-------+       :      :    \   |       +-------+       |       |
1257	                             ---------->| B->2  |------>|       |
1258	                                |       +-------+       | CPU 2 |
1259	                                |       :       :       |       |
1260	                                 \      :       :       |       |
1261	                                  \     +-------+       |       |
1262	                                   ---->| A->1  |------>| 1st   |
1263	                                        +-------+       |       |
1264	                                    rrrrrrrrrrrrrrrrr   |       |
1265	                                        +-------+       |       |
1266	                                        | A->1  |------>| 2nd   |
1267	                                        +-------+       |       |
1268	                                        :       :       +-------+
1269
1270
1271The guarantee is that the second load will always come up with A == 1 if the
1272load of B came up with B == 2.  No such guarantee exists for the first load of
1273A; that may come up with either A == 0 or A == 1.
1274
1275
1276READ MEMORY BARRIERS VS LOAD SPECULATION
1277----------------------------------------
1278
1279Many CPUs speculate with loads: that is they see that they will need to load an
1280item from memory, and they find a time where they're not using the bus for any
1281other loads, and so do the load in advance - even though they haven't actually
1282got to that point in the instruction execution flow yet.  This permits the
1283actual load instruction to potentially complete immediately because the CPU
1284already has the value to hand.
1285
1286It may turn out that the CPU didn't actually need the value - perhaps because a
1287branch circumvented the load - in which case it can discard the value or just
1288cache it for later use.
1289
1290Consider:
1291
1292	CPU 1			CPU 2
1293	=======================	=======================
1294				LOAD B
1295				DIVIDE		} Divide instructions generally
1296				DIVIDE		} take a long time to perform
1297				LOAD A
1298
1299Which might appear as this:
1300
1301	                                        :       :       +-------+
1302	                                        +-------+       |       |
1303	                                    --->| B->2  |------>|       |
1304	                                        +-------+       | CPU 2 |
1305	                                        :       :DIVIDE |       |
1306	                                        +-------+       |       |
1307	The CPU being busy doing a --->     --->| A->0  |~~~~   |       |
1308	division speculates on the              +-------+   ~   |       |
1309	LOAD of A                               :       :   ~   |       |
1310	                                        :       :DIVIDE |       |
1311	                                        :       :   ~   |       |
1312	Once the divisions are complete -->     :       :   ~-->|       |
1313	the CPU can then perform the            :       :       |       |
1314	LOAD with immediate effect              :       :       +-------+
1315
1316
1317Placing a read barrier or an address-dependency barrier just before the second
1318load:
1319
1320	CPU 1			CPU 2
1321	=======================	=======================
1322				LOAD B
1323				DIVIDE
1324				DIVIDE
1325				<read barrier>
1326				LOAD A
1327
1328will force any value speculatively obtained to be reconsidered to an extent
1329dependent on the type of barrier used.  If there was no change made to the
1330speculated memory location, then the speculated value will just be used:
1331
1332	                                        :       :       +-------+
1333	                                        +-------+       |       |
1334	                                    --->| B->2  |------>|       |
1335	                                        +-------+       | CPU 2 |
1336	                                        :       :DIVIDE |       |
1337	                                        +-------+       |       |
1338	The CPU being busy doing a --->     --->| A->0  |~~~~   |       |
1339	division speculates on the              +-------+   ~   |       |
1340	LOAD of A                               :       :   ~   |       |
1341	                                        :       :DIVIDE |       |
1342	                                        :       :   ~   |       |
1343	                                        :       :   ~   |       |
1344	                                    rrrrrrrrrrrrrrrr~   |       |
1345	                                        :       :   ~   |       |
1346	                                        :       :   ~-->|       |
1347	                                        :       :       |       |
1348	                                        :       :       +-------+
1349
1350
1351but if there was an update or an invalidation from another CPU pending, then
1352the speculation will be cancelled and the value reloaded:
1353
1354	                                        :       :       +-------+
1355	                                        +-------+       |       |
1356	                                    --->| B->2  |------>|       |
1357	                                        +-------+       | CPU 2 |
1358	                                        :       :DIVIDE |       |
1359	                                        +-------+       |       |
1360	The CPU being busy doing a --->     --->| A->0  |~~~~   |       |
1361	division speculates on the              +-------+   ~   |       |
1362	LOAD of A                               :       :   ~   |       |
1363	                                        :       :DIVIDE |       |
1364	                                        :       :   ~   |       |
1365	                                        :       :   ~   |       |
1366	                                    rrrrrrrrrrrrrrrrr   |       |
1367	                                        +-------+       |       |
1368	The speculation is discarded --->   --->| A->1  |------>|       |
1369	and an updated value is                 +-------+       |       |
1370	retrieved                               :       :       +-------+
1371
1372
1373MULTICOPY ATOMICITY
1374--------------------
1375
1376Multicopy atomicity is a deeply intuitive notion about ordering that is
1377not always provided by real computer systems, namely that a given store
1378becomes visible at the same time to all CPUs, or, alternatively, that all
1379CPUs agree on the order in which all stores become visible.  However,
1380support of full multicopy atomicity would rule out valuable hardware
1381optimizations, so a weaker form called ``other multicopy atomicity''
1382instead guarantees only that a given store becomes visible at the same
1383time to all -other- CPUs.  The remainder of this document discusses this
1384weaker form, but for brevity will call it simply ``multicopy atomicity''.
1385
1386The following example demonstrates multicopy atomicity:
1387
1388	CPU 1			CPU 2			CPU 3
1389	=======================	=======================	=======================
1390		{ X = 0, Y = 0 }
1391	STORE X=1		r1=LOAD X (reads 1)	LOAD Y (reads 1)
1392				<general barrier>	<read barrier>
1393				STORE Y=r1		LOAD X
1394
1395Suppose that CPU 2's load from X returns 1, which it then stores to Y,
1396and CPU 3's load from Y returns 1.  This indicates that CPU 1's store
1397to X precedes CPU 2's load from X and that CPU 2's store to Y precedes
1398CPU 3's load from Y.  In addition, the memory barriers guarantee that
1399CPU 2 executes its load before its store, and CPU 3 loads from Y before
1400it loads from X.  The question is then "Can CPU 3's load from X return 0?"
1401
1402Because CPU 3's load from X in some sense comes after CPU 2's load, it
1403is natural to expect that CPU 3's load from X must therefore return 1.
1404This expectation follows from multicopy atomicity: if a load executing
1405on CPU B follows a load from the same variable executing on CPU A (and
1406CPU A did not originally store the value which it read), then on
1407multicopy-atomic systems, CPU B's load must return either the same value
1408that CPU A's load did or some later value.  However, the Linux kernel
1409does not require systems to be multicopy atomic.
1410
1411The use of a general memory barrier in the example above compensates
1412for any lack of multicopy atomicity.  In the example, if CPU 2's load
1413from X returns 1 and CPU 3's load from Y returns 1, then CPU 3's load
1414from X must indeed also return 1.
1415
1416However, dependencies, read barriers, and write barriers are not always
1417able to compensate for non-multicopy atomicity.  For example, suppose
1418that CPU 2's general barrier is removed from the above example, leaving
1419only the data dependency shown below:
1420
1421	CPU 1			CPU 2			CPU 3
1422	=======================	=======================	=======================
1423		{ X = 0, Y = 0 }
1424	STORE X=1		r1=LOAD X (reads 1)	LOAD Y (reads 1)
1425				<data dependency>	<read barrier>
1426				STORE Y=r1		LOAD X (reads 0)
1427
1428This substitution allows non-multicopy atomicity to run rampant: in
1429this example, it is perfectly legal for CPU 2's load from X to return 1,
1430CPU 3's load from Y to return 1, and its load from X to return 0.
1431
1432The key point is that although CPU 2's data dependency orders its load
1433and store, it does not guarantee to order CPU 1's store.  Thus, if this
1434example runs on a non-multicopy-atomic system where CPUs 1 and 2 share a
1435store buffer or a level of cache, CPU 2 might have early access to CPU 1's
1436writes.  General barriers are therefore required to ensure that all CPUs
1437agree on the combined order of multiple accesses.
1438
1439General barriers can compensate not only for non-multicopy atomicity,
1440but can also generate additional ordering that can ensure that -all-
1441CPUs will perceive the same order of -all- operations.  In contrast, a
1442chain of release-acquire pairs do not provide this additional ordering,
1443which means that only those CPUs on the chain are guaranteed to agree
1444on the combined order of the accesses.  For example, switching to C code
1445in deference to the ghost of Herman Hollerith:
1446
1447	int u, v, x, y, z;
1448
1449	void cpu0(void)
1450	{
1451		r0 = smp_load_acquire(&x);
1452		WRITE_ONCE(u, 1);
1453		smp_store_release(&y, 1);
1454	}
1455
1456	void cpu1(void)
1457	{
1458		r1 = smp_load_acquire(&y);
1459		r4 = READ_ONCE(v);
1460		r5 = READ_ONCE(u);
1461		smp_store_release(&z, 1);
1462	}
1463
1464	void cpu2(void)
1465	{
1466		r2 = smp_load_acquire(&z);
1467		smp_store_release(&x, 1);
1468	}
1469
1470	void cpu3(void)
1471	{
1472		WRITE_ONCE(v, 1);
1473		smp_mb();
1474		r3 = READ_ONCE(u);
1475	}
1476
1477Because cpu0(), cpu1(), and cpu2() participate in a chain of
1478smp_store_release()/smp_load_acquire() pairs, the following outcome
1479is prohibited:
1480
1481	r0 == 1 && r1 == 1 && r2 == 1
1482
1483Furthermore, because of the release-acquire relationship between cpu0()
1484and cpu1(), cpu1() must see cpu0()'s writes, so that the following
1485outcome is prohibited:
1486
1487	r1 == 1 && r5 == 0
1488
1489However, the ordering provided by a release-acquire chain is local
1490to the CPUs participating in that chain and does not apply to cpu3(),
1491at least aside from stores.  Therefore, the following outcome is possible:
1492
1493	r0 == 0 && r1 == 1 && r2 == 1 && r3 == 0 && r4 == 0
1494
1495As an aside, the following outcome is also possible:
1496
1497	r0 == 0 && r1 == 1 && r2 == 1 && r3 == 0 && r4 == 0 && r5 == 1
1498
1499Although cpu0(), cpu1(), and cpu2() will see their respective reads and
1500writes in order, CPUs not involved in the release-acquire chain might
1501well disagree on the order.  This disagreement stems from the fact that
1502the weak memory-barrier instructions used to implement smp_load_acquire()
1503and smp_store_release() are not required to order prior stores against
1504subsequent loads in all cases.  This means that cpu3() can see cpu0()'s
1505store to u as happening -after- cpu1()'s load from v, even though
1506both cpu0() and cpu1() agree that these two operations occurred in the
1507intended order.
1508
1509However, please keep in mind that smp_load_acquire() is not magic.
1510In particular, it simply reads from its argument with ordering.  It does
1511-not- ensure that any particular value will be read.  Therefore, the
1512following outcome is possible:
1513
1514	r0 == 0 && r1 == 0 && r2 == 0 && r5 == 0
1515
1516Note that this outcome can happen even on a mythical sequentially
1517consistent system where nothing is ever reordered.
1518
1519To reiterate, if your code requires full ordering of all operations,
1520use general barriers throughout.
1521
1522
1523========================
1524EXPLICIT KERNEL BARRIERS
1525========================
1526
1527The Linux kernel has a variety of different barriers that act at different
1528levels:
1529
1530  (*) Compiler barrier.
1531
1532  (*) CPU memory barriers.
1533
1534
1535COMPILER BARRIER
1536----------------
1537
1538The Linux kernel has an explicit compiler barrier function that prevents the
1539compiler from moving the memory accesses either side of it to the other side:
1540
1541	barrier();
1542
1543This is a general barrier -- there are no read-read or write-write
1544variants of barrier().  However, READ_ONCE() and WRITE_ONCE() can be
1545thought of as weak forms of barrier() that affect only the specific
1546accesses flagged by the READ_ONCE() or WRITE_ONCE().
1547
1548The barrier() function has the following effects:
1549
1550 (*) Prevents the compiler from reordering accesses following the
1551     barrier() to precede any accesses preceding the barrier().
1552     One example use for this property is to ease communication between
1553     interrupt-handler code and the code that was interrupted.
1554
1555 (*) Within a loop, forces the compiler to load the variables used
1556     in that loop's conditional on each pass through that loop.
1557
1558The READ_ONCE() and WRITE_ONCE() functions can prevent any number of
1559optimizations that, while perfectly safe in single-threaded code, can
1560be fatal in concurrent code.  Here are some examples of these sorts
1561of optimizations:
1562
1563 (*) The compiler is within its rights to reorder loads and stores
1564     to the same variable, and in some cases, the CPU is within its
1565     rights to reorder loads to the same variable.  This means that
1566     the following code:
1567
1568	a[0] = x;
1569	a[1] = x;
1570
1571     Might result in an older value of x stored in a[1] than in a[0].
1572     Prevent both the compiler and the CPU from doing this as follows:
1573
1574	a[0] = READ_ONCE(x);
1575	a[1] = READ_ONCE(x);
1576
1577     In short, READ_ONCE() and WRITE_ONCE() provide cache coherence for
1578     accesses from multiple CPUs to a single variable.
1579
1580 (*) The compiler is within its rights to merge successive loads from
1581     the same variable.  Such merging can cause the compiler to "optimize"
1582     the following code:
1583
1584	while (tmp = a)
1585		do_something_with(tmp);
1586
1587     into the following code, which, although in some sense legitimate
1588     for single-threaded code, is almost certainly not what the developer
1589     intended:
1590
1591	if (tmp = a)
1592		for (;;)
1593			do_something_with(tmp);
1594
1595     Use READ_ONCE() to prevent the compiler from doing this to you:
1596
1597	while (tmp = READ_ONCE(a))
1598		do_something_with(tmp);
1599
1600 (*) The compiler is within its rights to reload a variable, for example,
1601     in cases where high register pressure prevents the compiler from
1602     keeping all data of interest in registers.  The compiler might
1603     therefore optimize the variable 'tmp' out of our previous example:
1604
1605	while (tmp = a)
1606		do_something_with(tmp);
1607
1608     This could result in the following code, which is perfectly safe in
1609     single-threaded code, but can be fatal in concurrent code:
1610
1611	while (a)
1612		do_something_with(a);
1613
1614     For example, the optimized version of this code could result in
1615     passing a zero to do_something_with() in the case where the variable
1616     a was modified by some other CPU between the "while" statement and
1617     the call to do_something_with().
1618
1619     Again, use READ_ONCE() to prevent the compiler from doing this:
1620
1621	while (tmp = READ_ONCE(a))
1622		do_something_with(tmp);
1623
1624     Note that if the compiler runs short of registers, it might save
1625     tmp onto the stack.  The overhead of this saving and later restoring
1626     is why compilers reload variables.  Doing so is perfectly safe for
1627     single-threaded code, so you need to tell the compiler about cases
1628     where it is not safe.
1629
1630 (*) The compiler is within its rights to omit a load entirely if it knows
1631     what the value will be.  For example, if the compiler can prove that
1632     the value of variable 'a' is always zero, it can optimize this code:
1633
1634	while (tmp = a)
1635		do_something_with(tmp);
1636
1637     Into this:
1638
1639	do { } while (0);
1640
1641     This transformation is a win for single-threaded code because it
1642     gets rid of a load and a branch.  The problem is that the compiler
1643     will carry out its proof assuming that the current CPU is the only
1644     one updating variable 'a'.  If variable 'a' is shared, then the
1645     compiler's proof will be erroneous.  Use READ_ONCE() to tell the
1646     compiler that it doesn't know as much as it thinks it does:
1647
1648	while (tmp = READ_ONCE(a))
1649		do_something_with(tmp);
1650
1651     But please note that the compiler is also closely watching what you
1652     do with the value after the READ_ONCE().  For example, suppose you
1653     do the following and MAX is a preprocessor macro with the value 1:
1654
1655	while ((tmp = READ_ONCE(a)) % MAX)
1656		do_something_with(tmp);
1657
1658     Then the compiler knows that the result of the "%" operator applied
1659     to MAX will always be zero, again allowing the compiler to optimize
1660     the code into near-nonexistence.  (It will still load from the
1661     variable 'a'.)
1662
1663 (*) Similarly, the compiler is within its rights to omit a store entirely
1664     if it knows that the variable already has the value being stored.
1665     Again, the compiler assumes that the current CPU is the only one
1666     storing into the variable, which can cause the compiler to do the
1667     wrong thing for shared variables.  For example, suppose you have
1668     the following:
1669
1670	a = 0;
1671	... Code that does not store to variable a ...
1672	a = 0;
1673
1674     The compiler sees that the value of variable 'a' is already zero, so
1675     it might well omit the second store.  This would come as a fatal
1676     surprise if some other CPU might have stored to variable 'a' in the
1677     meantime.
1678
1679     Use WRITE_ONCE() to prevent the compiler from making this sort of
1680     wrong guess:
1681
1682	WRITE_ONCE(a, 0);
1683	... Code that does not store to variable a ...
1684	WRITE_ONCE(a, 0);
1685
1686 (*) The compiler is within its rights to reorder memory accesses unless
1687     you tell it not to.  For example, consider the following interaction
1688     between process-level code and an interrupt handler:
1689
1690	void process_level(void)
1691	{
1692		msg = get_message();
1693		flag = true;
1694	}
1695
1696	void interrupt_handler(void)
1697	{
1698		if (flag)
1699			process_message(msg);
1700	}
1701
1702     There is nothing to prevent the compiler from transforming
1703     process_level() to the following, in fact, this might well be a
1704     win for single-threaded code:
1705
1706	void process_level(void)
1707	{
1708		flag = true;
1709		msg = get_message();
1710	}
1711
1712     If the interrupt occurs between these two statement, then
1713     interrupt_handler() might be passed a garbled msg.  Use WRITE_ONCE()
1714     to prevent this as follows:
1715
1716	void process_level(void)
1717	{
1718		WRITE_ONCE(msg, get_message());
1719		WRITE_ONCE(flag, true);
1720	}
1721
1722	void interrupt_handler(void)
1723	{
1724		if (READ_ONCE(flag))
1725			process_message(READ_ONCE(msg));
1726	}
1727
1728     Note that the READ_ONCE() and WRITE_ONCE() wrappers in
1729     interrupt_handler() are needed if this interrupt handler can itself
1730     be interrupted by something that also accesses 'flag' and 'msg',
1731     for example, a nested interrupt or an NMI.  Otherwise, READ_ONCE()
1732     and WRITE_ONCE() are not needed in interrupt_handler() other than
1733     for documentation purposes.  (Note also that nested interrupts
1734     do not typically occur in modern Linux kernels, in fact, if an
1735     interrupt handler returns with interrupts enabled, you will get a
1736     WARN_ONCE() splat.)
1737
1738     You should assume that the compiler can move READ_ONCE() and
1739     WRITE_ONCE() past code not containing READ_ONCE(), WRITE_ONCE(),
1740     barrier(), or similar primitives.
1741
1742     This effect could also be achieved using barrier(), but READ_ONCE()
1743     and WRITE_ONCE() are more selective:  With READ_ONCE() and
1744     WRITE_ONCE(), the compiler need only forget the contents of the
1745     indicated memory locations, while with barrier() the compiler must
1746     discard the value of all memory locations that it has currently
1747     cached in any machine registers.  Of course, the compiler must also
1748     respect the order in which the READ_ONCE()s and WRITE_ONCE()s occur,
1749     though the CPU of course need not do so.
1750
1751 (*) The compiler is within its rights to invent stores to a variable,
1752     as in the following example:
1753
1754	if (a)
1755		b = a;
1756	else
1757		b = 42;
1758
1759     The compiler might save a branch by optimizing this as follows:
1760
1761	b = 42;
1762	if (a)
1763		b = a;
1764
1765     In single-threaded code, this is not only safe, but also saves
1766     a branch.  Unfortunately, in concurrent code, this optimization
1767     could cause some other CPU to see a spurious value of 42 -- even
1768     if variable 'a' was never zero -- when loading variable 'b'.
1769     Use WRITE_ONCE() to prevent this as follows:
1770
1771	if (a)
1772		WRITE_ONCE(b, a);
1773	else
1774		WRITE_ONCE(b, 42);
1775
1776     The compiler can also invent loads.  These are usually less
1777     damaging, but they can result in cache-line bouncing and thus in
1778     poor performance and scalability.  Use READ_ONCE() to prevent
1779     invented loads.
1780
1781 (*) For aligned memory locations whose size allows them to be accessed
1782     with a single memory-reference instruction, prevents "load tearing"
1783     and "store tearing," in which a single large access is replaced by
1784     multiple smaller accesses.  For example, given an architecture having
1785     16-bit store instructions with 7-bit immediate fields, the compiler
1786     might be tempted to use two 16-bit store-immediate instructions to
1787     implement the following 32-bit store:
1788
1789	p = 0x00010002;
1790
1791     Please note that GCC really does use this sort of optimization,
1792     which is not surprising given that it would likely take more
1793     than two instructions to build the constant and then store it.
1794     This optimization can therefore be a win in single-threaded code.
1795     In fact, a recent bug (since fixed) caused GCC to incorrectly use
1796     this optimization in a volatile store.  In the absence of such bugs,
1797     use of WRITE_ONCE() prevents store tearing in the following example:
1798
1799	WRITE_ONCE(p, 0x00010002);
1800
1801     Use of packed structures can also result in load and store tearing,
1802     as in this example:
1803
1804	struct __attribute__((__packed__)) foo {
1805		short a;
1806		int b;
1807		short c;
1808	};
1809	struct foo foo1, foo2;
1810	...
1811
1812	foo2.a = foo1.a;
1813	foo2.b = foo1.b;
1814	foo2.c = foo1.c;
1815
1816     Because there are no READ_ONCE() or WRITE_ONCE() wrappers and no
1817     volatile markings, the compiler would be well within its rights to
1818     implement these three assignment statements as a pair of 32-bit
1819     loads followed by a pair of 32-bit stores.  This would result in
1820     load tearing on 'foo1.b' and store tearing on 'foo2.b'.  READ_ONCE()
1821     and WRITE_ONCE() again prevent tearing in this example:
1822
1823	foo2.a = foo1.a;
1824	WRITE_ONCE(foo2.b, READ_ONCE(foo1.b));
1825	foo2.c = foo1.c;
1826
1827All that aside, it is never necessary to use READ_ONCE() and
1828WRITE_ONCE() on a variable that has been marked volatile.  For example,
1829because 'jiffies' is marked volatile, it is never necessary to
1830say READ_ONCE(jiffies).  The reason for this is that READ_ONCE() and
1831WRITE_ONCE() are implemented as volatile casts, which has no effect when
1832its argument is already marked volatile.
1833
1834Please note that these compiler barriers have no direct effect on the CPU,
1835which may then reorder things however it wishes.
1836
1837
1838CPU MEMORY BARRIERS
1839-------------------
1840
1841The Linux kernel has seven basic CPU memory barriers:
1842
1843	TYPE			MANDATORY	SMP CONDITIONAL
1844	=======================	===============	===============
1845	GENERAL			mb()		smp_mb()
1846	WRITE			wmb()		smp_wmb()
1847	READ			rmb()		smp_rmb()
1848	ADDRESS DEPENDENCY			READ_ONCE()
1849
1850
1851All memory barriers except the address-dependency barriers imply a compiler
1852barrier.  Address dependencies do not impose any additional compiler ordering.
1853
1854Aside: In the case of address dependencies, the compiler would be expected
1855to issue the loads in the correct order (eg. `a[b]` would have to load
1856the value of b before loading a[b]), however there is no guarantee in
1857the C specification that the compiler may not speculate the value of b
1858(eg. is equal to 1) and load a[b] before b (eg. tmp = a[1]; if (b != 1)
1859tmp = a[b]; ).  There is also the problem of a compiler reloading b after
1860having loaded a[b], thus having a newer copy of b than a[b].  A consensus
1861has not yet been reached about these problems, however the READ_ONCE()
1862macro is a good place to start looking.
1863
1864SMP memory barriers are reduced to compiler barriers on uniprocessor compiled
1865systems because it is assumed that a CPU will appear to be self-consistent,
1866and will order overlapping accesses correctly with respect to itself.
1867However, see the subsection on "Virtual Machine Guests" below.
1868
1869[!] Note that SMP memory barriers _must_ be used to control the ordering of
1870references to shared memory on SMP systems, though the use of locking instead
1871is sufficient.
1872
1873Mandatory barriers should not be used to control SMP effects, since mandatory
1874barriers impose unnecessary overhead on both SMP and UP systems. They may,
1875however, be used to control MMIO effects on accesses through relaxed memory I/O
1876windows.  These barriers are required even on non-SMP systems as they affect
1877the order in which memory operations appear to a device by prohibiting both the
1878compiler and the CPU from reordering them.
1879
1880
1881There are some more advanced barrier functions:
1882
1883 (*) smp_store_mb(var, value)
1884
1885     This assigns the value to the variable and then inserts a full memory
1886     barrier after it.  It isn't guaranteed to insert anything more than a
1887     compiler barrier in a UP compilation.
1888
1889
1890 (*) smp_mb__before_atomic();
1891 (*) smp_mb__after_atomic();
1892
1893     These are for use with atomic RMW functions that do not imply memory
1894     barriers, but where the code needs a memory barrier. Examples for atomic
1895     RMW functions that do not imply a memory barrier are e.g. add,
1896     subtract, (failed) conditional operations, _relaxed functions,
1897     but not atomic_read or atomic_set. A common example where a memory
1898     barrier may be required is when atomic ops are used for reference
1899     counting.
1900
1901     These are also used for atomic RMW bitop functions that do not imply a
1902     memory barrier (such as set_bit and clear_bit).
1903
1904     As an example, consider a piece of code that marks an object as being dead
1905     and then decrements the object's reference count:
1906
1907	obj->dead = 1;
1908	smp_mb__before_atomic();
1909	atomic_dec(&obj->ref_count);
1910
1911     This makes sure that the death mark on the object is perceived to be set
1912     *before* the reference counter is decremented.
1913
1914     See Documentation/atomic_{t,bitops}.txt for more information.
1915
1916
1917 (*) dma_wmb();
1918 (*) dma_rmb();
1919 (*) dma_mb();
1920
1921     These are for use with consistent memory to guarantee the ordering
1922     of writes or reads of shared memory accessible to both the CPU and a
1923     DMA capable device. See Documentation/core-api/dma-api.rst file for more
1924     information about consistent memory.
1925
1926     For example, consider a device driver that shares memory with a device
1927     and uses a descriptor status value to indicate if the descriptor belongs
1928     to the device or the CPU, and a doorbell to notify it when new
1929     descriptors are available:
1930
1931	if (desc->status != DEVICE_OWN) {
1932		/* do not read data until we own descriptor */
1933		dma_rmb();
1934
1935		/* read/modify data */
1936		read_data = desc->data;
1937		desc->data = write_data;
1938
1939		/* flush modifications before status update */
1940		dma_wmb();
1941
1942		/* assign ownership */
1943		desc->status = DEVICE_OWN;
1944
1945		/* Make descriptor status visible to the device followed by
1946		 * notify device of new descriptor
1947		 */
1948		writel(DESC_NOTIFY, doorbell);
1949	}
1950
1951     The dma_rmb() allows us to guarantee that the device has released ownership
1952     before we read the data from the descriptor, and the dma_wmb() allows
1953     us to guarantee the data is written to the descriptor before the device
1954     can see it now has ownership.  The dma_mb() implies both a dma_rmb() and
1955     a dma_wmb().
1956
1957     Note that the dma_*() barriers do not provide any ordering guarantees for
1958     accesses to MMIO regions.  See the later "KERNEL I/O BARRIER EFFECTS"
1959     subsection for more information about I/O accessors and MMIO ordering.
1960
1961 (*) pmem_wmb();
1962
1963     This is for use with persistent memory to ensure that stores for which
1964     modifications are written to persistent storage reached a platform
1965     durability domain.
1966
1967     For example, after a non-temporal write to pmem region, we use pmem_wmb()
1968     to ensure that stores have reached a platform durability domain. This ensures
1969     that stores have updated persistent storage before any data access or
1970     data transfer caused by subsequent instructions is initiated. This is
1971     in addition to the ordering done by wmb().
1972
1973     For load from persistent memory, existing read memory barriers are sufficient
1974     to ensure read ordering.
1975
1976 (*) io_stop_wc();
1977
1978     For memory accesses with write-combining attributes (e.g. those returned
1979     by ioremap_wc()), the CPU may wait for prior accesses to be merged with
1980     subsequent ones. io_stop_wc() can be used to prevent the merging of
1981     write-combining memory accesses before this macro with those after it when
1982     such wait has performance implications.
1983
1984===============================
1985IMPLICIT KERNEL MEMORY BARRIERS
1986===============================
1987
1988Some of the other functions in the linux kernel imply memory barriers, amongst
1989which are locking and scheduling functions.
1990
1991This specification is a _minimum_ guarantee; any particular architecture may
1992provide more substantial guarantees, but these may not be relied upon outside
1993of arch specific code.
1994
1995
1996LOCK ACQUISITION FUNCTIONS
1997--------------------------
1998
1999The Linux kernel has a number of locking constructs:
2000
2001 (*) spin locks
2002 (*) R/W spin locks
2003 (*) mutexes
2004 (*) semaphores
2005 (*) R/W semaphores
2006
2007In all cases there are variants on "ACQUIRE" operations and "RELEASE" operations
2008for each construct.  These operations all imply certain barriers:
2009
2010 (1) ACQUIRE operation implication:
2011
2012     Memory operations issued after the ACQUIRE will be completed after the
2013     ACQUIRE operation has completed.
2014
2015     Memory operations issued before the ACQUIRE may be completed after
2016     the ACQUIRE operation has completed.
2017
2018 (2) RELEASE operation implication:
2019
2020     Memory operations issued before the RELEASE will be completed before the
2021     RELEASE operation has completed.
2022
2023     Memory operations issued after the RELEASE may be completed before the
2024     RELEASE operation has completed.
2025
2026 (3) ACQUIRE vs ACQUIRE implication:
2027
2028     All ACQUIRE operations issued before another ACQUIRE operation will be
2029     completed before that ACQUIRE operation.
2030
2031 (4) ACQUIRE vs RELEASE implication:
2032
2033     All ACQUIRE operations issued before a RELEASE operation will be
2034     completed before the RELEASE operation.
2035
2036 (5) Failed conditional ACQUIRE implication:
2037
2038     Certain locking variants of the ACQUIRE operation may fail, either due to
2039     being unable to get the lock immediately, or due to receiving an unblocked
2040     signal while asleep waiting for the lock to become available.  Failed
2041     locks do not imply any sort of barrier.
2042
2043[!] Note: one of the consequences of lock ACQUIREs and RELEASEs being only
2044one-way barriers is that the effects of instructions outside of a critical
2045section may seep into the inside of the critical section.
2046
2047An ACQUIRE followed by a RELEASE may not be assumed to be full memory barrier
2048because it is possible for an access preceding the ACQUIRE to happen after the
2049ACQUIRE, and an access following the RELEASE to happen before the RELEASE, and
2050the two accesses can themselves then cross:
2051
2052	*A = a;
2053	ACQUIRE M
2054	RELEASE M
2055	*B = b;
2056
2057may occur as:
2058
2059	ACQUIRE M, STORE *B, STORE *A, RELEASE M
2060
2061When the ACQUIRE and RELEASE are a lock acquisition and release,
2062respectively, this same reordering can occur if the lock's ACQUIRE and
2063RELEASE are to the same lock variable, but only from the perspective of
2064another CPU not holding that lock.  In short, a ACQUIRE followed by an
2065RELEASE may -not- be assumed to be a full memory barrier.
2066
2067Similarly, the reverse case of a RELEASE followed by an ACQUIRE does
2068not imply a full memory barrier.  Therefore, the CPU's execution of the
2069critical sections corresponding to the RELEASE and the ACQUIRE can cross,
2070so that:
2071
2072	*A = a;
2073	RELEASE M
2074	ACQUIRE N
2075	*B = b;
2076
2077could occur as:
2078
2079	ACQUIRE N, STORE *B, STORE *A, RELEASE M
2080
2081It might appear that this reordering could introduce a deadlock.
2082However, this cannot happen because if such a deadlock threatened,
2083the RELEASE would simply complete, thereby avoiding the deadlock.
2084
2085	Why does this work?
2086
2087	One key point is that we are only talking about the CPU doing
2088	the reordering, not the compiler.  If the compiler (or, for
2089	that matter, the developer) switched the operations, deadlock
2090	-could- occur.
2091
2092	But suppose the CPU reordered the operations.  In this case,
2093	the unlock precedes the lock in the assembly code.  The CPU
2094	simply elected to try executing the later lock operation first.
2095	If there is a deadlock, this lock operation will simply spin (or
2096	try to sleep, but more on that later).	The CPU will eventually
2097	execute the unlock operation (which preceded the lock operation
2098	in the assembly code), which will unravel the potential deadlock,
2099	allowing the lock operation to succeed.
2100
2101	But what if the lock is a sleeplock?  In that case, the code will
2102	try to enter the scheduler, where it will eventually encounter
2103	a memory barrier, which will force the earlier unlock operation
2104	to complete, again unraveling the deadlock.  There might be
2105	a sleep-unlock race, but the locking primitive needs to resolve
2106	such races properly in any case.
2107
2108Locks and semaphores may not provide any guarantee of ordering on UP compiled
2109systems, and so cannot be counted on in such a situation to actually achieve
2110anything at all - especially with respect to I/O accesses - unless combined
2111with interrupt disabling operations.
2112
2113See also the section on "Inter-CPU acquiring barrier effects".
2114
2115
2116As an example, consider the following:
2117
2118	*A = a;
2119	*B = b;
2120	ACQUIRE
2121	*C = c;
2122	*D = d;
2123	RELEASE
2124	*E = e;
2125	*F = f;
2126
2127The following sequence of events is acceptable:
2128
2129	ACQUIRE, {*F,*A}, *E, {*C,*D}, *B, RELEASE
2130
2131	[+] Note that {*F,*A} indicates a combined access.
2132
2133But none of the following are:
2134
2135	{*F,*A}, *B,	ACQUIRE, *C, *D,	RELEASE, *E
2136	*A, *B, *C,	ACQUIRE, *D,		RELEASE, *E, *F
2137	*A, *B,		ACQUIRE, *C,		RELEASE, *D, *E, *F
2138	*B,		ACQUIRE, *C, *D,	RELEASE, {*F,*A}, *E
2139
2140
2141
2142INTERRUPT DISABLING FUNCTIONS
2143-----------------------------
2144
2145Functions that disable interrupts (ACQUIRE equivalent) and enable interrupts
2146(RELEASE equivalent) will act as compiler barriers only.  So if memory or I/O
2147barriers are required in such a situation, they must be provided from some
2148other means.
2149
2150
2151SLEEP AND WAKE-UP FUNCTIONS
2152---------------------------
2153
2154Sleeping and waking on an event flagged in global data can be viewed as an
2155interaction between two pieces of data: the task state of the task waiting for
2156the event and the global data used to indicate the event.  To make sure that
2157these appear to happen in the right order, the primitives to begin the process
2158of going to sleep, and the primitives to initiate a wake up imply certain
2159barriers.
2160
2161Firstly, the sleeper normally follows something like this sequence of events:
2162
2163	for (;;) {
2164		set_current_state(TASK_UNINTERRUPTIBLE);
2165		if (event_indicated)
2166			break;
2167		schedule();
2168	}
2169
2170A general memory barrier is interpolated automatically by set_current_state()
2171after it has altered the task state:
2172
2173	CPU 1
2174	===============================
2175	set_current_state();
2176	  smp_store_mb();
2177	    STORE current->state
2178	    <general barrier>
2179	LOAD event_indicated
2180
2181set_current_state() may be wrapped by:
2182
2183	prepare_to_wait();
2184	prepare_to_wait_exclusive();
2185
2186which therefore also imply a general memory barrier after setting the state.
2187The whole sequence above is available in various canned forms, all of which
2188interpolate the memory barrier in the right place:
2189
2190	wait_event();
2191	wait_event_interruptible();
2192	wait_event_interruptible_exclusive();
2193	wait_event_interruptible_timeout();
2194	wait_event_killable();
2195	wait_event_timeout();
2196	wait_on_bit();
2197	wait_on_bit_lock();
2198
2199
2200Secondly, code that performs a wake up normally follows something like this:
2201
2202	event_indicated = 1;
2203	wake_up(&event_wait_queue);
2204
2205or:
2206
2207	event_indicated = 1;
2208	wake_up_process(event_daemon);
2209
2210A general memory barrier is executed by wake_up() if it wakes something up.
2211If it doesn't wake anything up then a memory barrier may or may not be
2212executed; you must not rely on it.  The barrier occurs before the task state
2213is accessed, in particular, it sits between the STORE to indicate the event
2214and the STORE to set TASK_RUNNING:
2215
2216	CPU 1 (Sleeper)			CPU 2 (Waker)
2217	===============================	===============================
2218	set_current_state();		STORE event_indicated
2219	  smp_store_mb();		wake_up();
2220	    STORE current->state	  ...
2221	    <general barrier>		  <general barrier>
2222	LOAD event_indicated		  if ((LOAD task->state) & TASK_NORMAL)
2223					    STORE task->state
2224
2225where "task" is the thread being woken up and it equals CPU 1's "current".
2226
2227To repeat, a general memory barrier is guaranteed to be executed by wake_up()
2228if something is actually awakened, but otherwise there is no such guarantee.
2229To see this, consider the following sequence of events, where X and Y are both
2230initially zero:
2231
2232	CPU 1				CPU 2
2233	===============================	===============================
2234	X = 1;				Y = 1;
2235	smp_mb();			wake_up();
2236	LOAD Y				LOAD X
2237
2238If a wakeup does occur, one (at least) of the two loads must see 1.  If, on
2239the other hand, a wakeup does not occur, both loads might see 0.
2240
2241wake_up_process() always executes a general memory barrier.  The barrier again
2242occurs before the task state is accessed.  In particular, if the wake_up() in
2243the previous snippet were replaced by a call to wake_up_process() then one of
2244the two loads would be guaranteed to see 1.
2245
2246The available waker functions include:
2247
2248	complete();
2249	wake_up();
2250	wake_up_all();
2251	wake_up_bit();
2252	wake_up_interruptible();
2253	wake_up_interruptible_all();
2254	wake_up_interruptible_nr();
2255	wake_up_interruptible_poll();
2256	wake_up_interruptible_sync();
2257	wake_up_interruptible_sync_poll();
2258	wake_up_locked();
2259	wake_up_locked_poll();
2260	wake_up_nr();
2261	wake_up_poll();
2262	wake_up_process();
2263
2264In terms of memory ordering, these functions all provide the same guarantees of
2265a wake_up() (or stronger).
2266
2267[!] Note that the memory barriers implied by the sleeper and the waker do _not_
2268order multiple stores before the wake-up with respect to loads of those stored
2269values after the sleeper has called set_current_state().  For instance, if the
2270sleeper does:
2271
2272	set_current_state(TASK_INTERRUPTIBLE);
2273	if (event_indicated)
2274		break;
2275	__set_current_state(TASK_RUNNING);
2276	do_something(my_data);
2277
2278and the waker does:
2279
2280	my_data = value;
2281	event_indicated = 1;
2282	wake_up(&event_wait_queue);
2283
2284there's no guarantee that the change to event_indicated will be perceived by
2285the sleeper as coming after the change to my_data.  In such a circumstance, the
2286code on both sides must interpolate its own memory barriers between the
2287separate data accesses.  Thus the above sleeper ought to do:
2288
2289	set_current_state(TASK_INTERRUPTIBLE);
2290	if (event_indicated) {
2291		smp_rmb();
2292		do_something(my_data);
2293	}
2294
2295and the waker should do:
2296
2297	my_data = value;
2298	smp_wmb();
2299	event_indicated = 1;
2300	wake_up(&event_wait_queue);
2301
2302
2303MISCELLANEOUS FUNCTIONS
2304-----------------------
2305
2306Other functions that imply barriers:
2307
2308 (*) schedule() and similar imply full memory barriers.
2309
2310
2311===================================
2312INTER-CPU ACQUIRING BARRIER EFFECTS
2313===================================
2314
2315On SMP systems locking primitives give a more substantial form of barrier: one
2316that does affect memory access ordering on other CPUs, within the context of
2317conflict on any particular lock.
2318
2319
2320ACQUIRES VS MEMORY ACCESSES
2321---------------------------
2322
2323Consider the following: the system has a pair of spinlocks (M) and (Q), and
2324three CPUs; then should the following sequence of events occur:
2325
2326	CPU 1				CPU 2
2327	===============================	===============================
2328	WRITE_ONCE(*A, a);		WRITE_ONCE(*E, e);
2329	ACQUIRE M			ACQUIRE Q
2330	WRITE_ONCE(*B, b);		WRITE_ONCE(*F, f);
2331	WRITE_ONCE(*C, c);		WRITE_ONCE(*G, g);
2332	RELEASE M			RELEASE Q
2333	WRITE_ONCE(*D, d);		WRITE_ONCE(*H, h);
2334
2335Then there is no guarantee as to what order CPU 3 will see the accesses to *A
2336through *H occur in, other than the constraints imposed by the separate locks
2337on the separate CPUs.  It might, for example, see:
2338
2339	*E, ACQUIRE M, ACQUIRE Q, *G, *C, *F, *A, *B, RELEASE Q, *D, *H, RELEASE M
2340
2341But it won't see any of:
2342
2343	*B, *C or *D preceding ACQUIRE M
2344	*A, *B or *C following RELEASE M
2345	*F, *G or *H preceding ACQUIRE Q
2346	*E, *F or *G following RELEASE Q
2347
2348
2349=================================
2350WHERE ARE MEMORY BARRIERS NEEDED?
2351=================================
2352
2353Under normal operation, memory operation reordering is generally not going to
2354be a problem as a single-threaded linear piece of code will still appear to
2355work correctly, even if it's in an SMP kernel.  There are, however, four
2356circumstances in which reordering definitely _could_ be a problem:
2357
2358 (*) Interprocessor interaction.
2359
2360 (*) Atomic operations.
2361
2362 (*) Accessing devices.
2363
2364 (*) Interrupts.
2365
2366
2367INTERPROCESSOR INTERACTION
2368--------------------------
2369
2370When there's a system with more than one processor, more than one CPU in the
2371system may be working on the same data set at the same time.  This can cause
2372synchronisation problems, and the usual way of dealing with them is to use
2373locks.  Locks, however, are quite expensive, and so it may be preferable to
2374operate without the use of a lock if at all possible.  In such a case
2375operations that affect both CPUs may have to be carefully ordered to prevent
2376a malfunction.
2377
2378Consider, for example, the R/W semaphore slow path.  Here a waiting process is
2379queued on the semaphore, by virtue of it having a piece of its stack linked to
2380the semaphore's list of waiting processes:
2381
2382	struct rw_semaphore {
2383		...
2384		spinlock_t lock;
2385		struct list_head waiters;
2386	};
2387
2388	struct rwsem_waiter {
2389		struct list_head list;
2390		struct task_struct *task;
2391	};
2392
2393To wake up a particular waiter, the up_read() or up_write() functions have to:
2394
2395 (1) read the next pointer from this waiter's record to know as to where the
2396     next waiter record is;
2397
2398 (2) read the pointer to the waiter's task structure;
2399
2400 (3) clear the task pointer to tell the waiter it has been given the semaphore;
2401
2402 (4) call wake_up_process() on the task; and
2403
2404 (5) release the reference held on the waiter's task struct.
2405
2406In other words, it has to perform this sequence of events:
2407
2408	LOAD waiter->list.next;
2409	LOAD waiter->task;
2410	STORE waiter->task;
2411	CALL wakeup
2412	RELEASE task
2413
2414and if any of these steps occur out of order, then the whole thing may
2415malfunction.
2416
2417Once it has queued itself and dropped the semaphore lock, the waiter does not
2418get the lock again; it instead just waits for its task pointer to be cleared
2419before proceeding.  Since the record is on the waiter's stack, this means that
2420if the task pointer is cleared _before_ the next pointer in the list is read,
2421another CPU might start processing the waiter and might clobber the waiter's
2422stack before the up*() function has a chance to read the next pointer.
2423
2424Consider then what might happen to the above sequence of events:
2425
2426	CPU 1				CPU 2
2427	===============================	===============================
2428					down_xxx()
2429					Queue waiter
2430					Sleep
2431	up_yyy()
2432	LOAD waiter->task;
2433	STORE waiter->task;
2434					Woken up by other event
2435	<preempt>
2436					Resume processing
2437					down_xxx() returns
2438					call foo()
2439					foo() clobbers *waiter
2440	</preempt>
2441	LOAD waiter->list.next;
2442	--- OOPS ---
2443
2444This could be dealt with using the semaphore lock, but then the down_xxx()
2445function has to needlessly get the spinlock again after being woken up.
2446
2447The way to deal with this is to insert a general SMP memory barrier:
2448
2449	LOAD waiter->list.next;
2450	LOAD waiter->task;
2451	smp_mb();
2452	STORE waiter->task;
2453	CALL wakeup
2454	RELEASE task
2455
2456In this case, the barrier makes a guarantee that all memory accesses before the
2457barrier will appear to happen before all the memory accesses after the barrier
2458with respect to the other CPUs on the system.  It does _not_ guarantee that all
2459the memory accesses before the barrier will be complete by the time the barrier
2460instruction itself is complete.
2461
2462On a UP system - where this wouldn't be a problem - the smp_mb() is just a
2463compiler barrier, thus making sure the compiler emits the instructions in the
2464right order without actually intervening in the CPU.  Since there's only one
2465CPU, that CPU's dependency ordering logic will take care of everything else.
2466
2467
2468ATOMIC OPERATIONS
2469-----------------
2470
2471While they are technically interprocessor interaction considerations, atomic
2472operations are noted specially as some of them imply full memory barriers and
2473some don't, but they're very heavily relied on as a group throughout the
2474kernel.
2475
2476See Documentation/atomic_t.txt for more information.
2477
2478
2479ACCESSING DEVICES
2480-----------------
2481
2482Many devices can be memory mapped, and so appear to the CPU as if they're just
2483a set of memory locations.  To control such a device, the driver usually has to
2484make the right memory accesses in exactly the right order.
2485
2486However, having a clever CPU or a clever compiler creates a potential problem
2487in that the carefully sequenced accesses in the driver code won't reach the
2488device in the requisite order if the CPU or the compiler thinks it is more
2489efficient to reorder, combine or merge accesses - something that would cause
2490the device to malfunction.
2491
2492Inside of the Linux kernel, I/O should be done through the appropriate accessor
2493routines - such as inb() or writel() - which know how to make such accesses
2494appropriately sequential.  While this, for the most part, renders the explicit
2495use of memory barriers unnecessary, if the accessor functions are used to refer
2496to an I/O memory window with relaxed memory access properties, then _mandatory_
2497memory barriers are required to enforce ordering.
2498
2499See Documentation/driver-api/device-io.rst for more information.
2500
2501
2502INTERRUPTS
2503----------
2504
2505A driver may be interrupted by its own interrupt service routine, and thus the
2506two parts of the driver may interfere with each other's attempts to control or
2507access the device.
2508
2509This may be alleviated - at least in part - by disabling local interrupts (a
2510form of locking), such that the critical operations are all contained within
2511the interrupt-disabled section in the driver.  While the driver's interrupt
2512routine is executing, the driver's core may not run on the same CPU, and its
2513interrupt is not permitted to happen again until the current interrupt has been
2514handled, thus the interrupt handler does not need to lock against that.
2515
2516However, consider a driver that was talking to an ethernet card that sports an
2517address register and a data register.  If that driver's core talks to the card
2518under interrupt-disablement and then the driver's interrupt handler is invoked:
2519
2520	LOCAL IRQ DISABLE
2521	writew(ADDR, 3);
2522	writew(DATA, y);
2523	LOCAL IRQ ENABLE
2524	<interrupt>
2525	writew(ADDR, 4);
2526	q = readw(DATA);
2527	</interrupt>
2528
2529The store to the data register might happen after the second store to the
2530address register if ordering rules are sufficiently relaxed:
2531
2532	STORE *ADDR = 3, STORE *ADDR = 4, STORE *DATA = y, q = LOAD *DATA
2533
2534
2535If ordering rules are relaxed, it must be assumed that accesses done inside an
2536interrupt disabled section may leak outside of it and may interleave with
2537accesses performed in an interrupt - and vice versa - unless implicit or
2538explicit barriers are used.
2539
2540Normally this won't be a problem because the I/O accesses done inside such
2541sections will include synchronous load operations on strictly ordered I/O
2542registers that form implicit I/O barriers.
2543
2544
2545A similar situation may occur between an interrupt routine and two routines
2546running on separate CPUs that communicate with each other.  If such a case is
2547likely, then interrupt-disabling locks should be used to guarantee ordering.
2548
2549
2550==========================
2551KERNEL I/O BARRIER EFFECTS
2552==========================
2553
2554Interfacing with peripherals via I/O accesses is deeply architecture and device
2555specific. Therefore, drivers which are inherently non-portable may rely on
2556specific behaviours of their target systems in order to achieve synchronization
2557in the most lightweight manner possible. For drivers intending to be portable
2558between multiple architectures and bus implementations, the kernel offers a
2559series of accessor functions that provide various degrees of ordering
2560guarantees:
2561
2562 (*) readX(), writeX():
2563
2564	The readX() and writeX() MMIO accessors take a pointer to the
2565	peripheral being accessed as an __iomem * parameter. For pointers
2566	mapped with the default I/O attributes (e.g. those returned by
2567	ioremap()), the ordering guarantees are as follows:
2568
2569	1. All readX() and writeX() accesses to the same peripheral are ordered
2570	   with respect to each other. This ensures that MMIO register accesses
2571	   by the same CPU thread to a particular device will arrive in program
2572	   order.
2573
2574	2. A writeX() issued by a CPU thread holding a spinlock is ordered
2575	   before a writeX() to the same peripheral from another CPU thread
2576	   issued after a later acquisition of the same spinlock. This ensures
2577	   that MMIO register writes to a particular device issued while holding
2578	   a spinlock will arrive in an order consistent with acquisitions of
2579	   the lock.
2580
2581	3. A writeX() by a CPU thread to the peripheral will first wait for the
2582	   completion of all prior writes to memory either issued by, or
2583	   propagated to, the same thread. This ensures that writes by the CPU
2584	   to an outbound DMA buffer allocated by dma_alloc_coherent() will be
2585	   visible to a DMA engine when the CPU writes to its MMIO control
2586	   register to trigger the transfer.
2587
2588	4. A readX() by a CPU thread from the peripheral will complete before
2589	   any subsequent reads from memory by the same thread can begin. This
2590	   ensures that reads by the CPU from an incoming DMA buffer allocated
2591	   by dma_alloc_coherent() will not see stale data after reading from
2592	   the DMA engine's MMIO status register to establish that the DMA
2593	   transfer has completed.
2594
2595	5. A readX() by a CPU thread from the peripheral will complete before
2596	   any subsequent delay() loop can begin execution on the same thread.
2597	   This ensures that two MMIO register writes by the CPU to a peripheral
2598	   will arrive at least 1us apart if the first write is immediately read
2599	   back with readX() and udelay(1) is called prior to the second
2600	   writeX():
2601
2602		writel(42, DEVICE_REGISTER_0); // Arrives at the device...
2603		readl(DEVICE_REGISTER_0);
2604		udelay(1);
2605		writel(42, DEVICE_REGISTER_1); // ...at least 1us before this.
2606
2607	The ordering properties of __iomem pointers obtained with non-default
2608	attributes (e.g. those returned by ioremap_wc()) are specific to the
2609	underlying architecture and therefore the guarantees listed above cannot
2610	generally be relied upon for accesses to these types of mappings.
2611
2612 (*) readX_relaxed(), writeX_relaxed():
2613
2614	These are similar to readX() and writeX(), but provide weaker memory
2615	ordering guarantees. Specifically, they do not guarantee ordering with
2616	respect to locking, normal memory accesses or delay() loops (i.e.
2617	bullets 2-5 above) but they are still guaranteed to be ordered with
2618	respect to other accesses from the same CPU thread to the same
2619	peripheral when operating on __iomem pointers mapped with the default
2620	I/O attributes.
2621
2622 (*) readsX(), writesX():
2623
2624	The readsX() and writesX() MMIO accessors are designed for accessing
2625	register-based, memory-mapped FIFOs residing on peripherals that are not
2626	capable of performing DMA. Consequently, they provide only the ordering
2627	guarantees of readX_relaxed() and writeX_relaxed(), as documented above.
2628
2629 (*) inX(), outX():
2630
2631	The inX() and outX() accessors are intended to access legacy port-mapped
2632	I/O peripherals, which may require special instructions on some
2633	architectures (notably x86). The port number of the peripheral being
2634	accessed is passed as an argument.
2635
2636	Since many CPU architectures ultimately access these peripherals via an
2637	internal virtual memory mapping, the portable ordering guarantees
2638	provided by inX() and outX() are the same as those provided by readX()
2639	and writeX() respectively when accessing a mapping with the default I/O
2640	attributes.
2641
2642	Device drivers may expect outX() to emit a non-posted write transaction
2643	that waits for a completion response from the I/O peripheral before
2644	returning. This is not guaranteed by all architectures and is therefore
2645	not part of the portable ordering semantics.
2646
2647 (*) insX(), outsX():
2648
2649	As above, the insX() and outsX() accessors provide the same ordering
2650	guarantees as readsX() and writesX() respectively when accessing a
2651	mapping with the default I/O attributes.
2652
2653 (*) ioreadX(), iowriteX():
2654
2655	These will perform appropriately for the type of access they're actually
2656	doing, be it inX()/outX() or readX()/writeX().
2657
2658With the exception of the string accessors (insX(), outsX(), readsX() and
2659writesX()), all of the above assume that the underlying peripheral is
2660little-endian and will therefore perform byte-swapping operations on big-endian
2661architectures.
2662
2663
2664========================================
2665ASSUMED MINIMUM EXECUTION ORDERING MODEL
2666========================================
2667
2668It has to be assumed that the conceptual CPU is weakly-ordered but that it will
2669maintain the appearance of program causality with respect to itself.  Some CPUs
2670(such as i386 or x86_64) are more constrained than others (such as powerpc or
2671frv), and so the most relaxed case (namely DEC Alpha) must be assumed outside
2672of arch-specific code.
2673
2674This means that it must be considered that the CPU will execute its instruction
2675stream in any order it feels like - or even in parallel - provided that if an
2676instruction in the stream depends on an earlier instruction, then that
2677earlier instruction must be sufficiently complete[*] before the later
2678instruction may proceed; in other words: provided that the appearance of
2679causality is maintained.
2680
2681 [*] Some instructions have more than one effect - such as changing the
2682     condition codes, changing registers or changing memory - and different
2683     instructions may depend on different effects.
2684
2685A CPU may also discard any instruction sequence that winds up having no
2686ultimate effect.  For example, if two adjacent instructions both load an
2687immediate value into the same register, the first may be discarded.
2688
2689
2690Similarly, it has to be assumed that compiler might reorder the instruction
2691stream in any way it sees fit, again provided the appearance of causality is
2692maintained.
2693
2694
2695============================
2696THE EFFECTS OF THE CPU CACHE
2697============================
2698
2699The way cached memory operations are perceived across the system is affected to
2700a certain extent by the caches that lie between CPUs and memory, and by the
2701memory coherence system that maintains the consistency of state in the system.
2702
2703As far as the way a CPU interacts with another part of the system through the
2704caches goes, the memory system has to include the CPU's caches, and memory
2705barriers for the most part act at the interface between the CPU and its cache
2706(memory barriers logically act on the dotted line in the following diagram):
2707
2708	    <--- CPU --->         :       <----------- Memory ----------->
2709	                          :
2710	+--------+    +--------+  :   +--------+    +-----------+
2711	|        |    |        |  :   |        |    |           |    +--------+
2712	|  CPU   |    | Memory |  :   | CPU    |    |           |    |        |
2713	|  Core  |--->| Access |----->| Cache  |<-->|           |    |        |
2714	|        |    | Queue  |  :   |        |    |           |--->| Memory |
2715	|        |    |        |  :   |        |    |           |    |        |
2716	+--------+    +--------+  :   +--------+    |           |    |        |
2717	                          :                 | Cache     |    +--------+
2718	                          :                 | Coherency |
2719	                          :                 | Mechanism |    +--------+
2720	+--------+    +--------+  :   +--------+    |           |    |	      |
2721	|        |    |        |  :   |        |    |           |    |        |
2722	|  CPU   |    | Memory |  :   | CPU    |    |           |--->| Device |
2723	|  Core  |--->| Access |----->| Cache  |<-->|           |    |        |
2724	|        |    | Queue  |  :   |        |    |           |    |        |
2725	|        |    |        |  :   |        |    |           |    +--------+
2726	+--------+    +--------+  :   +--------+    +-----------+
2727	                          :
2728	                          :
2729
2730Although any particular load or store may not actually appear outside of the
2731CPU that issued it since it may have been satisfied within the CPU's own cache,
2732it will still appear as if the full memory access had taken place as far as the
2733other CPUs are concerned since the cache coherency mechanisms will migrate the
2734cacheline over to the accessing CPU and propagate the effects upon conflict.
2735
2736The CPU core may execute instructions in any order it deems fit, provided the
2737expected program causality appears to be maintained.  Some of the instructions
2738generate load and store operations which then go into the queue of memory
2739accesses to be performed.  The core may place these in the queue in any order
2740it wishes, and continue execution until it is forced to wait for an instruction
2741to complete.
2742
2743What memory barriers are concerned with is controlling the order in which
2744accesses cross from the CPU side of things to the memory side of things, and
2745the order in which the effects are perceived to happen by the other observers
2746in the system.
2747
2748[!] Memory barriers are _not_ needed within a given CPU, as CPUs always see
2749their own loads and stores as if they had happened in program order.
2750
2751[!] MMIO or other device accesses may bypass the cache system.  This depends on
2752the properties of the memory window through which devices are accessed and/or
2753the use of any special device communication instructions the CPU may have.
2754
2755
2756CACHE COHERENCY VS DMA
2757----------------------
2758
2759Not all systems maintain cache coherency with respect to devices doing DMA.  In
2760such cases, a device attempting DMA may obtain stale data from RAM because
2761dirty cache lines may be resident in the caches of various CPUs, and may not
2762have been written back to RAM yet.  To deal with this, the appropriate part of
2763the kernel must flush the overlapping bits of cache on each CPU (and maybe
2764invalidate them as well).
2765
2766In addition, the data DMA'd to RAM by a device may be overwritten by dirty
2767cache lines being written back to RAM from a CPU's cache after the device has
2768installed its own data, or cache lines present in the CPU's cache may simply
2769obscure the fact that RAM has been updated, until at such time as the cacheline
2770is discarded from the CPU's cache and reloaded.  To deal with this, the
2771appropriate part of the kernel must invalidate the overlapping bits of the
2772cache on each CPU.
2773
2774See Documentation/core-api/cachetlb.rst for more information on cache
2775management.
2776
2777
2778CACHE COHERENCY VS MMIO
2779-----------------------
2780
2781Memory mapped I/O usually takes place through memory locations that are part of
2782a window in the CPU's memory space that has different properties assigned than
2783the usual RAM directed window.
2784
2785Amongst these properties is usually the fact that such accesses bypass the
2786caching entirely and go directly to the device buses.  This means MMIO accesses
2787may, in effect, overtake accesses to cached memory that were emitted earlier.
2788A memory barrier isn't sufficient in such a case, but rather the cache must be
2789flushed between the cached memory write and the MMIO access if the two are in
2790any way dependent.
2791
2792
2793=========================
2794THE THINGS CPUS GET UP TO
2795=========================
2796
2797A programmer might take it for granted that the CPU will perform memory
2798operations in exactly the order specified, so that if the CPU is, for example,
2799given the following piece of code to execute:
2800
2801	a = READ_ONCE(*A);
2802	WRITE_ONCE(*B, b);
2803	c = READ_ONCE(*C);
2804	d = READ_ONCE(*D);
2805	WRITE_ONCE(*E, e);
2806
2807they would then expect that the CPU will complete the memory operation for each
2808instruction before moving on to the next one, leading to a definite sequence of
2809operations as seen by external observers in the system:
2810
2811	LOAD *A, STORE *B, LOAD *C, LOAD *D, STORE *E.
2812
2813
2814Reality is, of course, much messier.  With many CPUs and compilers, the above
2815assumption doesn't hold because:
2816
2817 (*) loads are more likely to need to be completed immediately to permit
2818     execution progress, whereas stores can often be deferred without a
2819     problem;
2820
2821 (*) loads may be done speculatively, and the result discarded should it prove
2822     to have been unnecessary;
2823
2824 (*) loads may be done speculatively, leading to the result having been fetched
2825     at the wrong time in the expected sequence of events;
2826
2827 (*) the order of the memory accesses may be rearranged to promote better use
2828     of the CPU buses and caches;
2829
2830 (*) loads and stores may be combined to improve performance when talking to
2831     memory or I/O hardware that can do batched accesses of adjacent locations,
2832     thus cutting down on transaction setup costs (memory and PCI devices may
2833     both be able to do this); and
2834
2835 (*) the CPU's data cache may affect the ordering, and while cache-coherency
2836     mechanisms may alleviate this - once the store has actually hit the cache
2837     - there's no guarantee that the coherency management will be propagated in
2838     order to other CPUs.
2839
2840So what another CPU, say, might actually observe from the above piece of code
2841is:
2842
2843	LOAD *A, ..., LOAD {*C,*D}, STORE *E, STORE *B
2844
2845	(Where "LOAD {*C,*D}" is a combined load)
2846
2847
2848However, it is guaranteed that a CPU will be self-consistent: it will see its
2849_own_ accesses appear to be correctly ordered, without the need for a memory
2850barrier.  For instance with the following code:
2851
2852	U = READ_ONCE(*A);
2853	WRITE_ONCE(*A, V);
2854	WRITE_ONCE(*A, W);
2855	X = READ_ONCE(*A);
2856	WRITE_ONCE(*A, Y);
2857	Z = READ_ONCE(*A);
2858
2859and assuming no intervention by an external influence, it can be assumed that
2860the final result will appear to be:
2861
2862	U == the original value of *A
2863	X == W
2864	Z == Y
2865	*A == Y
2866
2867The code above may cause the CPU to generate the full sequence of memory
2868accesses:
2869
2870	U=LOAD *A, STORE *A=V, STORE *A=W, X=LOAD *A, STORE *A=Y, Z=LOAD *A
2871
2872in that order, but, without intervention, the sequence may have almost any
2873combination of elements combined or discarded, provided the program's view
2874of the world remains consistent.  Note that READ_ONCE() and WRITE_ONCE()
2875are -not- optional in the above example, as there are architectures
2876where a given CPU might reorder successive loads to the same location.
2877On such architectures, READ_ONCE() and WRITE_ONCE() do whatever is
2878necessary to prevent this, for example, on Itanium the volatile casts
2879used by READ_ONCE() and WRITE_ONCE() cause GCC to emit the special ld.acq
2880and st.rel instructions (respectively) that prevent such reordering.
2881
2882The compiler may also combine, discard or defer elements of the sequence before
2883the CPU even sees them.
2884
2885For instance:
2886
2887	*A = V;
2888	*A = W;
2889
2890may be reduced to:
2891
2892	*A = W;
2893
2894since, without either a write barrier or an WRITE_ONCE(), it can be
2895assumed that the effect of the storage of V to *A is lost.  Similarly:
2896
2897	*A = Y;
2898	Z = *A;
2899
2900may, without a memory barrier or an READ_ONCE() and WRITE_ONCE(), be
2901reduced to:
2902
2903	*A = Y;
2904	Z = Y;
2905
2906and the LOAD operation never appear outside of the CPU.
2907
2908
2909AND THEN THERE'S THE ALPHA
2910--------------------------
2911
2912The DEC Alpha CPU is one of the most relaxed CPUs there is.  Not only that,
2913some versions of the Alpha CPU have a split data cache, permitting them to have
2914two semantically-related cache lines updated at separate times.  This is where
2915the address-dependency barrier really becomes necessary as this synchronises
2916both caches with the memory coherence system, thus making it seem like pointer
2917changes vs new data occur in the right order.
2918
2919The Alpha defines the Linux kernel's memory model, although as of v4.15
2920the Linux kernel's addition of smp_mb() to READ_ONCE() on Alpha greatly
2921reduced its impact on the memory model.
2922
2923
2924VIRTUAL MACHINE GUESTS
2925----------------------
2926
2927Guests running within virtual machines might be affected by SMP effects even if
2928the guest itself is compiled without SMP support.  This is an artifact of
2929interfacing with an SMP host while running an UP kernel.  Using mandatory
2930barriers for this use-case would be possible but is often suboptimal.
2931
2932To handle this case optimally, low-level virt_mb() etc macros are available.
2933These have the same effect as smp_mb() etc when SMP is enabled, but generate
2934identical code for SMP and non-SMP systems.  For example, virtual machine guests
2935should use virt_mb() rather than smp_mb() when synchronizing against a
2936(possibly SMP) host.
2937
2938These are equivalent to smp_mb() etc counterparts in all other respects,
2939in particular, they do not control MMIO effects: to control
2940MMIO effects, use mandatory barriers.
2941
2942
2943============
2944EXAMPLE USES
2945============
2946
2947CIRCULAR BUFFERS
2948----------------
2949
2950Memory barriers can be used to implement circular buffering without the need
2951of a lock to serialise the producer with the consumer.  See:
2952
2953	Documentation/core-api/circular-buffers.rst
2954
2955for details.
2956
2957
2958==========
2959REFERENCES
2960==========
2961
2962Alpha AXP Architecture Reference Manual, Second Edition (Sites & Witek,
2963Digital Press)
2964	Chapter 5.2: Physical Address Space Characteristics
2965	Chapter 5.4: Caches and Write Buffers
2966	Chapter 5.5: Data Sharing
2967	Chapter 5.6: Read/Write Ordering
2968
2969AMD64 Architecture Programmer's Manual Volume 2: System Programming
2970	Chapter 7.1: Memory-Access Ordering
2971	Chapter 7.4: Buffering and Combining Memory Writes
2972
2973ARM Architecture Reference Manual (ARMv8, for ARMv8-A architecture profile)
2974	Chapter B2: The AArch64 Application Level Memory Model
2975
2976IA-32 Intel Architecture Software Developer's Manual, Volume 3:
2977System Programming Guide
2978	Chapter 7.1: Locked Atomic Operations
2979	Chapter 7.2: Memory Ordering
2980	Chapter 7.4: Serializing Instructions
2981
2982The SPARC Architecture Manual, Version 9
2983	Chapter 8: Memory Models
2984	Appendix D: Formal Specification of the Memory Models
2985	Appendix J: Programming with the Memory Models
2986
2987Storage in the PowerPC (Stone and Fitzgerald)
2988
2989UltraSPARC Programmer Reference Manual
2990	Chapter 5: Memory Accesses and Cacheability
2991	Chapter 15: Sparc-V9 Memory Models
2992
2993UltraSPARC III Cu User's Manual
2994	Chapter 9: Memory Models
2995
2996UltraSPARC IIIi Processor User's Manual
2997	Chapter 8: Memory Models
2998
2999UltraSPARC Architecture 2005
3000	Chapter 9: Memory
3001	Appendix D: Formal Specifications of the Memory Models
3002
3003UltraSPARC T1 Supplement to the UltraSPARC Architecture 2005
3004	Chapter 8: Memory Models
3005	Appendix F: Caches and Cache Coherency
3006
3007Solaris Internals, Core Kernel Architecture, p63-68:
3008	Chapter 3.3: Hardware Considerations for Locks and
3009			Synchronization
3010
3011Unix Systems for Modern Architectures, Symmetric Multiprocessing and Caching
3012for Kernel Programmers:
3013	Chapter 13: Other Memory Models
3014
3015Intel Itanium Architecture Software Developer's Manual: Volume 1:
3016	Section 2.6: Speculation
3017	Section 4.4: Memory Access
3018