1 /******************************************************************************
2 * hypercall.h
3 *
4 * Linux-specific hypervisor handling.
5 *
6 * Copyright (c) 2002-2004, K A Fraser
7 *
8 * This program is free software; you can redistribute it and/or
9 * modify it under the terms of the GNU General Public License version 2
10 * as published by the Free Software Foundation; or, when distributed
11 * separately from the Linux kernel or incorporated into other
12 * software packages, subject to the following license:
13 *
14 * Permission is hereby granted, free of charge, to any person obtaining a copy
15 * of this source file (the "Software"), to deal in the Software without
16 * restriction, including without limitation the rights to use, copy, modify,
17 * merge, publish, distribute, sublicense, and/or sell copies of the Software,
18 * and to permit persons to whom the Software is furnished to do so, subject to
19 * the following conditions:
20 *
21 * The above copyright notice and this permission notice shall be included in
22 * all copies or substantial portions of the Software.
23 *
24 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
25 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
26 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
27 * AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
28 * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING
29 * FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS
30 * IN THE SOFTWARE.
31 */
32
33 #ifndef _ASM_X86_XEN_HYPERCALL_H
34 #define _ASM_X86_XEN_HYPERCALL_H
35
36 #include <linux/kernel.h>
37 #include <linux/spinlock.h>
38 #include <linux/errno.h>
39 #include <linux/string.h>
40 #include <linux/types.h>
41
42 #include <trace/events/xen.h>
43
44 #include <asm/page.h>
45 #include <asm/pgtable.h>
46 #include <asm/smap.h>
47 #include <asm/nospec-branch.h>
48
49 #include <xen/interface/xen.h>
50 #include <xen/interface/sched.h>
51 #include <xen/interface/physdev.h>
52 #include <xen/interface/platform.h>
53 #include <xen/interface/xen-mca.h>
54
55 /*
56 * The hypercall asms have to meet several constraints:
57 * - Work on 32- and 64-bit.
58 * The two architectures put their arguments in different sets of
59 * registers.
60 *
61 * - Work around asm syntax quirks
62 * It isn't possible to specify one of the rNN registers in a
63 * constraint, so we use explicit register variables to get the
64 * args into the right place.
65 *
66 * - Mark all registers as potentially clobbered
67 * Even unused parameters can be clobbered by the hypervisor, so we
68 * need to make sure gcc knows it.
69 *
70 * - Avoid compiler bugs.
71 * This is the tricky part. Because x86_32 has such a constrained
72 * register set, gcc versions below 4.3 have trouble generating
73 * code when all the arg registers and memory are trashed by the
74 * asm. There are syntactically simpler ways of achieving the
75 * semantics below, but they cause the compiler to crash.
76 *
77 * The only combination I found which works is:
78 * - assign the __argX variables first
79 * - list all actually used parameters as "+r" (__argX)
80 * - clobber the rest
81 *
82 * The result certainly isn't pretty, and it really shows up cpp's
83 * weakness as as macro language. Sorry. (But let's just give thanks
84 * there aren't more than 5 arguments...)
85 */
86
87 extern struct { char _entry[32]; } hypercall_page[];
88
89 #define __HYPERCALL "call hypercall_page+%c[offset]"
90 #define __HYPERCALL_ENTRY(x) \
91 [offset] "i" (__HYPERVISOR_##x * sizeof(hypercall_page[0]))
92
93 #ifdef CONFIG_X86_32
94 #define __HYPERCALL_RETREG "eax"
95 #define __HYPERCALL_ARG1REG "ebx"
96 #define __HYPERCALL_ARG2REG "ecx"
97 #define __HYPERCALL_ARG3REG "edx"
98 #define __HYPERCALL_ARG4REG "esi"
99 #define __HYPERCALL_ARG5REG "edi"
100 #else
101 #define __HYPERCALL_RETREG "rax"
102 #define __HYPERCALL_ARG1REG "rdi"
103 #define __HYPERCALL_ARG2REG "rsi"
104 #define __HYPERCALL_ARG3REG "rdx"
105 #define __HYPERCALL_ARG4REG "r10"
106 #define __HYPERCALL_ARG5REG "r8"
107 #endif
108
109 #define __HYPERCALL_DECLS \
110 register unsigned long __res asm(__HYPERCALL_RETREG); \
111 register unsigned long __arg1 asm(__HYPERCALL_ARG1REG) = __arg1; \
112 register unsigned long __arg2 asm(__HYPERCALL_ARG2REG) = __arg2; \
113 register unsigned long __arg3 asm(__HYPERCALL_ARG3REG) = __arg3; \
114 register unsigned long __arg4 asm(__HYPERCALL_ARG4REG) = __arg4; \
115 register unsigned long __arg5 asm(__HYPERCALL_ARG5REG) = __arg5;
116
117 #define __HYPERCALL_0PARAM "=r" (__res)
118 #define __HYPERCALL_1PARAM __HYPERCALL_0PARAM, "+r" (__arg1)
119 #define __HYPERCALL_2PARAM __HYPERCALL_1PARAM, "+r" (__arg2)
120 #define __HYPERCALL_3PARAM __HYPERCALL_2PARAM, "+r" (__arg3)
121 #define __HYPERCALL_4PARAM __HYPERCALL_3PARAM, "+r" (__arg4)
122 #define __HYPERCALL_5PARAM __HYPERCALL_4PARAM, "+r" (__arg5)
123
124 #define __HYPERCALL_0ARG()
125 #define __HYPERCALL_1ARG(a1) \
126 __HYPERCALL_0ARG() __arg1 = (unsigned long)(a1);
127 #define __HYPERCALL_2ARG(a1,a2) \
128 __HYPERCALL_1ARG(a1) __arg2 = (unsigned long)(a2);
129 #define __HYPERCALL_3ARG(a1,a2,a3) \
130 __HYPERCALL_2ARG(a1,a2) __arg3 = (unsigned long)(a3);
131 #define __HYPERCALL_4ARG(a1,a2,a3,a4) \
132 __HYPERCALL_3ARG(a1,a2,a3) __arg4 = (unsigned long)(a4);
133 #define __HYPERCALL_5ARG(a1,a2,a3,a4,a5) \
134 __HYPERCALL_4ARG(a1,a2,a3,a4) __arg5 = (unsigned long)(a5);
135
136 #define __HYPERCALL_CLOBBER5 "memory"
137 #define __HYPERCALL_CLOBBER4 __HYPERCALL_CLOBBER5, __HYPERCALL_ARG5REG
138 #define __HYPERCALL_CLOBBER3 __HYPERCALL_CLOBBER4, __HYPERCALL_ARG4REG
139 #define __HYPERCALL_CLOBBER2 __HYPERCALL_CLOBBER3, __HYPERCALL_ARG3REG
140 #define __HYPERCALL_CLOBBER1 __HYPERCALL_CLOBBER2, __HYPERCALL_ARG2REG
141 #define __HYPERCALL_CLOBBER0 __HYPERCALL_CLOBBER1, __HYPERCALL_ARG1REG
142
143 #define _hypercall0(type, name) \
144 ({ \
145 __HYPERCALL_DECLS; \
146 __HYPERCALL_0ARG(); \
147 asm volatile (__HYPERCALL \
148 : __HYPERCALL_0PARAM \
149 : __HYPERCALL_ENTRY(name) \
150 : __HYPERCALL_CLOBBER0); \
151 (type)__res; \
152 })
153
154 #define _hypercall1(type, name, a1) \
155 ({ \
156 __HYPERCALL_DECLS; \
157 __HYPERCALL_1ARG(a1); \
158 asm volatile (__HYPERCALL \
159 : __HYPERCALL_1PARAM \
160 : __HYPERCALL_ENTRY(name) \
161 : __HYPERCALL_CLOBBER1); \
162 (type)__res; \
163 })
164
165 #define _hypercall2(type, name, a1, a2) \
166 ({ \
167 __HYPERCALL_DECLS; \
168 __HYPERCALL_2ARG(a1, a2); \
169 asm volatile (__HYPERCALL \
170 : __HYPERCALL_2PARAM \
171 : __HYPERCALL_ENTRY(name) \
172 : __HYPERCALL_CLOBBER2); \
173 (type)__res; \
174 })
175
176 #define _hypercall3(type, name, a1, a2, a3) \
177 ({ \
178 __HYPERCALL_DECLS; \
179 __HYPERCALL_3ARG(a1, a2, a3); \
180 asm volatile (__HYPERCALL \
181 : __HYPERCALL_3PARAM \
182 : __HYPERCALL_ENTRY(name) \
183 : __HYPERCALL_CLOBBER3); \
184 (type)__res; \
185 })
186
187 #define _hypercall4(type, name, a1, a2, a3, a4) \
188 ({ \
189 __HYPERCALL_DECLS; \
190 __HYPERCALL_4ARG(a1, a2, a3, a4); \
191 asm volatile (__HYPERCALL \
192 : __HYPERCALL_4PARAM \
193 : __HYPERCALL_ENTRY(name) \
194 : __HYPERCALL_CLOBBER4); \
195 (type)__res; \
196 })
197
198 #define _hypercall5(type, name, a1, a2, a3, a4, a5) \
199 ({ \
200 __HYPERCALL_DECLS; \
201 __HYPERCALL_5ARG(a1, a2, a3, a4, a5); \
202 asm volatile (__HYPERCALL \
203 : __HYPERCALL_5PARAM \
204 : __HYPERCALL_ENTRY(name) \
205 : __HYPERCALL_CLOBBER5); \
206 (type)__res; \
207 })
208
209 static inline long
privcmd_call(unsigned call,unsigned long a1,unsigned long a2,unsigned long a3,unsigned long a4,unsigned long a5)210 privcmd_call(unsigned call,
211 unsigned long a1, unsigned long a2,
212 unsigned long a3, unsigned long a4,
213 unsigned long a5)
214 {
215 __HYPERCALL_DECLS;
216 __HYPERCALL_5ARG(a1, a2, a3, a4, a5);
217
218 if (call >= PAGE_SIZE / sizeof(hypercall_page[0]))
219 return -EINVAL;
220
221 stac();
222 asm volatile(CALL_NOSPEC
223 : __HYPERCALL_5PARAM
224 : [thunk_target] "a" (&hypercall_page[call])
225 : __HYPERCALL_CLOBBER5);
226 clac();
227
228 return (long)__res;
229 }
230
231 static inline int
HYPERVISOR_set_trap_table(struct trap_info * table)232 HYPERVISOR_set_trap_table(struct trap_info *table)
233 {
234 return _hypercall1(int, set_trap_table, table);
235 }
236
237 static inline int
HYPERVISOR_mmu_update(struct mmu_update * req,int count,int * success_count,domid_t domid)238 HYPERVISOR_mmu_update(struct mmu_update *req, int count,
239 int *success_count, domid_t domid)
240 {
241 return _hypercall4(int, mmu_update, req, count, success_count, domid);
242 }
243
244 static inline int
HYPERVISOR_mmuext_op(struct mmuext_op * op,int count,int * success_count,domid_t domid)245 HYPERVISOR_mmuext_op(struct mmuext_op *op, int count,
246 int *success_count, domid_t domid)
247 {
248 return _hypercall4(int, mmuext_op, op, count, success_count, domid);
249 }
250
251 static inline int
HYPERVISOR_set_gdt(unsigned long * frame_list,int entries)252 HYPERVISOR_set_gdt(unsigned long *frame_list, int entries)
253 {
254 return _hypercall2(int, set_gdt, frame_list, entries);
255 }
256
257 static inline int
HYPERVISOR_stack_switch(unsigned long ss,unsigned long esp)258 HYPERVISOR_stack_switch(unsigned long ss, unsigned long esp)
259 {
260 return _hypercall2(int, stack_switch, ss, esp);
261 }
262
263 #ifdef CONFIG_X86_32
264 static inline int
HYPERVISOR_set_callbacks(unsigned long event_selector,unsigned long event_address,unsigned long failsafe_selector,unsigned long failsafe_address)265 HYPERVISOR_set_callbacks(unsigned long event_selector,
266 unsigned long event_address,
267 unsigned long failsafe_selector,
268 unsigned long failsafe_address)
269 {
270 return _hypercall4(int, set_callbacks,
271 event_selector, event_address,
272 failsafe_selector, failsafe_address);
273 }
274 #else /* CONFIG_X86_64 */
275 static inline int
HYPERVISOR_set_callbacks(unsigned long event_address,unsigned long failsafe_address,unsigned long syscall_address)276 HYPERVISOR_set_callbacks(unsigned long event_address,
277 unsigned long failsafe_address,
278 unsigned long syscall_address)
279 {
280 return _hypercall3(int, set_callbacks,
281 event_address, failsafe_address,
282 syscall_address);
283 }
284 #endif /* CONFIG_X86_{32,64} */
285
286 static inline int
HYPERVISOR_callback_op(int cmd,void * arg)287 HYPERVISOR_callback_op(int cmd, void *arg)
288 {
289 return _hypercall2(int, callback_op, cmd, arg);
290 }
291
292 static inline int
HYPERVISOR_fpu_taskswitch(int set)293 HYPERVISOR_fpu_taskswitch(int set)
294 {
295 return _hypercall1(int, fpu_taskswitch, set);
296 }
297
298 static inline int
HYPERVISOR_sched_op(int cmd,void * arg)299 HYPERVISOR_sched_op(int cmd, void *arg)
300 {
301 return _hypercall2(int, sched_op, cmd, arg);
302 }
303
304 static inline long
HYPERVISOR_set_timer_op(u64 timeout)305 HYPERVISOR_set_timer_op(u64 timeout)
306 {
307 unsigned long timeout_hi = (unsigned long)(timeout>>32);
308 unsigned long timeout_lo = (unsigned long)timeout;
309 return _hypercall2(long, set_timer_op, timeout_lo, timeout_hi);
310 }
311
312 static inline int
HYPERVISOR_mca(struct xen_mc * mc_op)313 HYPERVISOR_mca(struct xen_mc *mc_op)
314 {
315 mc_op->interface_version = XEN_MCA_INTERFACE_VERSION;
316 return _hypercall1(int, mca, mc_op);
317 }
318
319 static inline int
HYPERVISOR_dom0_op(struct xen_platform_op * platform_op)320 HYPERVISOR_dom0_op(struct xen_platform_op *platform_op)
321 {
322 platform_op->interface_version = XENPF_INTERFACE_VERSION;
323 return _hypercall1(int, dom0_op, platform_op);
324 }
325
326 static inline int
HYPERVISOR_set_debugreg(int reg,unsigned long value)327 HYPERVISOR_set_debugreg(int reg, unsigned long value)
328 {
329 return _hypercall2(int, set_debugreg, reg, value);
330 }
331
332 static inline unsigned long
HYPERVISOR_get_debugreg(int reg)333 HYPERVISOR_get_debugreg(int reg)
334 {
335 return _hypercall1(unsigned long, get_debugreg, reg);
336 }
337
338 static inline int
HYPERVISOR_update_descriptor(u64 ma,u64 desc)339 HYPERVISOR_update_descriptor(u64 ma, u64 desc)
340 {
341 if (sizeof(u64) == sizeof(long))
342 return _hypercall2(int, update_descriptor, ma, desc);
343 return _hypercall4(int, update_descriptor, ma, ma>>32, desc, desc>>32);
344 }
345
346 static inline long
HYPERVISOR_memory_op(unsigned int cmd,void * arg)347 HYPERVISOR_memory_op(unsigned int cmd, void *arg)
348 {
349 return _hypercall2(long, memory_op, cmd, arg);
350 }
351
352 static inline int
HYPERVISOR_multicall(void * call_list,uint32_t nr_calls)353 HYPERVISOR_multicall(void *call_list, uint32_t nr_calls)
354 {
355 return _hypercall2(int, multicall, call_list, nr_calls);
356 }
357
358 static inline int
HYPERVISOR_update_va_mapping(unsigned long va,pte_t new_val,unsigned long flags)359 HYPERVISOR_update_va_mapping(unsigned long va, pte_t new_val,
360 unsigned long flags)
361 {
362 if (sizeof(new_val) == sizeof(long))
363 return _hypercall3(int, update_va_mapping, va,
364 new_val.pte, flags);
365 else
366 return _hypercall4(int, update_va_mapping, va,
367 new_val.pte, new_val.pte >> 32, flags);
368 }
369 extern int __must_check xen_event_channel_op_compat(int, void *);
370
371 static inline int
HYPERVISOR_event_channel_op(int cmd,void * arg)372 HYPERVISOR_event_channel_op(int cmd, void *arg)
373 {
374 int rc = _hypercall2(int, event_channel_op, cmd, arg);
375 if (unlikely(rc == -ENOSYS))
376 rc = xen_event_channel_op_compat(cmd, arg);
377 return rc;
378 }
379
380 static inline int
HYPERVISOR_xen_version(int cmd,void * arg)381 HYPERVISOR_xen_version(int cmd, void *arg)
382 {
383 return _hypercall2(int, xen_version, cmd, arg);
384 }
385
386 static inline int
HYPERVISOR_console_io(int cmd,int count,char * str)387 HYPERVISOR_console_io(int cmd, int count, char *str)
388 {
389 return _hypercall3(int, console_io, cmd, count, str);
390 }
391
392 extern int __must_check xen_physdev_op_compat(int, void *);
393
394 static inline int
HYPERVISOR_physdev_op(int cmd,void * arg)395 HYPERVISOR_physdev_op(int cmd, void *arg)
396 {
397 int rc = _hypercall2(int, physdev_op, cmd, arg);
398 if (unlikely(rc == -ENOSYS))
399 rc = xen_physdev_op_compat(cmd, arg);
400 return rc;
401 }
402
403 static inline int
HYPERVISOR_grant_table_op(unsigned int cmd,void * uop,unsigned int count)404 HYPERVISOR_grant_table_op(unsigned int cmd, void *uop, unsigned int count)
405 {
406 return _hypercall3(int, grant_table_op, cmd, uop, count);
407 }
408
409 static inline int
HYPERVISOR_update_va_mapping_otherdomain(unsigned long va,pte_t new_val,unsigned long flags,domid_t domid)410 HYPERVISOR_update_va_mapping_otherdomain(unsigned long va, pte_t new_val,
411 unsigned long flags, domid_t domid)
412 {
413 if (sizeof(new_val) == sizeof(long))
414 return _hypercall4(int, update_va_mapping_otherdomain, va,
415 new_val.pte, flags, domid);
416 else
417 return _hypercall5(int, update_va_mapping_otherdomain, va,
418 new_val.pte, new_val.pte >> 32,
419 flags, domid);
420 }
421
422 static inline int
HYPERVISOR_vm_assist(unsigned int cmd,unsigned int type)423 HYPERVISOR_vm_assist(unsigned int cmd, unsigned int type)
424 {
425 return _hypercall2(int, vm_assist, cmd, type);
426 }
427
428 static inline int
HYPERVISOR_vcpu_op(int cmd,int vcpuid,void * extra_args)429 HYPERVISOR_vcpu_op(int cmd, int vcpuid, void *extra_args)
430 {
431 return _hypercall3(int, vcpu_op, cmd, vcpuid, extra_args);
432 }
433
434 #ifdef CONFIG_X86_64
435 static inline int
HYPERVISOR_set_segment_base(int reg,unsigned long value)436 HYPERVISOR_set_segment_base(int reg, unsigned long value)
437 {
438 return _hypercall2(int, set_segment_base, reg, value);
439 }
440 #endif
441
442 static inline int
HYPERVISOR_suspend(unsigned long start_info_mfn)443 HYPERVISOR_suspend(unsigned long start_info_mfn)
444 {
445 struct sched_shutdown r = { .reason = SHUTDOWN_suspend };
446
447 /*
448 * For a PV guest the tools require that the start_info mfn be
449 * present in rdx/edx when the hypercall is made. Per the
450 * hypercall calling convention this is the third hypercall
451 * argument, which is start_info_mfn here.
452 */
453 return _hypercall3(int, sched_op, SCHEDOP_shutdown, &r, start_info_mfn);
454 }
455
456 static inline int
HYPERVISOR_nmi_op(unsigned long op,unsigned long arg)457 HYPERVISOR_nmi_op(unsigned long op, unsigned long arg)
458 {
459 return _hypercall2(int, nmi_op, op, arg);
460 }
461
462 static inline unsigned long __must_check
HYPERVISOR_hvm_op(int op,void * arg)463 HYPERVISOR_hvm_op(int op, void *arg)
464 {
465 return _hypercall2(unsigned long, hvm_op, op, arg);
466 }
467
468 static inline int
HYPERVISOR_tmem_op(struct tmem_op * op)469 HYPERVISOR_tmem_op(
470 struct tmem_op *op)
471 {
472 return _hypercall1(int, tmem_op, op);
473 }
474
475 static inline int
HYPERVISOR_xenpmu_op(unsigned int op,void * arg)476 HYPERVISOR_xenpmu_op(unsigned int op, void *arg)
477 {
478 return _hypercall2(int, xenpmu_op, op, arg);
479 }
480
481 static inline void
MULTI_fpu_taskswitch(struct multicall_entry * mcl,int set)482 MULTI_fpu_taskswitch(struct multicall_entry *mcl, int set)
483 {
484 mcl->op = __HYPERVISOR_fpu_taskswitch;
485 mcl->args[0] = set;
486
487 trace_xen_mc_entry(mcl, 1);
488 }
489
490 static inline void
MULTI_update_va_mapping(struct multicall_entry * mcl,unsigned long va,pte_t new_val,unsigned long flags)491 MULTI_update_va_mapping(struct multicall_entry *mcl, unsigned long va,
492 pte_t new_val, unsigned long flags)
493 {
494 mcl->op = __HYPERVISOR_update_va_mapping;
495 mcl->args[0] = va;
496 if (sizeof(new_val) == sizeof(long)) {
497 mcl->args[1] = new_val.pte;
498 mcl->args[2] = flags;
499 } else {
500 mcl->args[1] = new_val.pte;
501 mcl->args[2] = new_val.pte >> 32;
502 mcl->args[3] = flags;
503 }
504
505 trace_xen_mc_entry(mcl, sizeof(new_val) == sizeof(long) ? 3 : 4);
506 }
507
508 static inline void
MULTI_grant_table_op(struct multicall_entry * mcl,unsigned int cmd,void * uop,unsigned int count)509 MULTI_grant_table_op(struct multicall_entry *mcl, unsigned int cmd,
510 void *uop, unsigned int count)
511 {
512 mcl->op = __HYPERVISOR_grant_table_op;
513 mcl->args[0] = cmd;
514 mcl->args[1] = (unsigned long)uop;
515 mcl->args[2] = count;
516
517 trace_xen_mc_entry(mcl, 3);
518 }
519
520 static inline void
MULTI_update_va_mapping_otherdomain(struct multicall_entry * mcl,unsigned long va,pte_t new_val,unsigned long flags,domid_t domid)521 MULTI_update_va_mapping_otherdomain(struct multicall_entry *mcl, unsigned long va,
522 pte_t new_val, unsigned long flags,
523 domid_t domid)
524 {
525 mcl->op = __HYPERVISOR_update_va_mapping_otherdomain;
526 mcl->args[0] = va;
527 if (sizeof(new_val) == sizeof(long)) {
528 mcl->args[1] = new_val.pte;
529 mcl->args[2] = flags;
530 mcl->args[3] = domid;
531 } else {
532 mcl->args[1] = new_val.pte;
533 mcl->args[2] = new_val.pte >> 32;
534 mcl->args[3] = flags;
535 mcl->args[4] = domid;
536 }
537
538 trace_xen_mc_entry(mcl, sizeof(new_val) == sizeof(long) ? 4 : 5);
539 }
540
541 static inline void
MULTI_update_descriptor(struct multicall_entry * mcl,u64 maddr,struct desc_struct desc)542 MULTI_update_descriptor(struct multicall_entry *mcl, u64 maddr,
543 struct desc_struct desc)
544 {
545 mcl->op = __HYPERVISOR_update_descriptor;
546 if (sizeof(maddr) == sizeof(long)) {
547 mcl->args[0] = maddr;
548 mcl->args[1] = *(unsigned long *)&desc;
549 } else {
550 mcl->args[0] = maddr;
551 mcl->args[1] = maddr >> 32;
552 mcl->args[2] = desc.a;
553 mcl->args[3] = desc.b;
554 }
555
556 trace_xen_mc_entry(mcl, sizeof(maddr) == sizeof(long) ? 2 : 4);
557 }
558
559 static inline void
MULTI_memory_op(struct multicall_entry * mcl,unsigned int cmd,void * arg)560 MULTI_memory_op(struct multicall_entry *mcl, unsigned int cmd, void *arg)
561 {
562 mcl->op = __HYPERVISOR_memory_op;
563 mcl->args[0] = cmd;
564 mcl->args[1] = (unsigned long)arg;
565
566 trace_xen_mc_entry(mcl, 2);
567 }
568
569 static inline void
MULTI_mmu_update(struct multicall_entry * mcl,struct mmu_update * req,int count,int * success_count,domid_t domid)570 MULTI_mmu_update(struct multicall_entry *mcl, struct mmu_update *req,
571 int count, int *success_count, domid_t domid)
572 {
573 mcl->op = __HYPERVISOR_mmu_update;
574 mcl->args[0] = (unsigned long)req;
575 mcl->args[1] = count;
576 mcl->args[2] = (unsigned long)success_count;
577 mcl->args[3] = domid;
578
579 trace_xen_mc_entry(mcl, 4);
580 }
581
582 static inline void
MULTI_mmuext_op(struct multicall_entry * mcl,struct mmuext_op * op,int count,int * success_count,domid_t domid)583 MULTI_mmuext_op(struct multicall_entry *mcl, struct mmuext_op *op, int count,
584 int *success_count, domid_t domid)
585 {
586 mcl->op = __HYPERVISOR_mmuext_op;
587 mcl->args[0] = (unsigned long)op;
588 mcl->args[1] = count;
589 mcl->args[2] = (unsigned long)success_count;
590 mcl->args[3] = domid;
591
592 trace_xen_mc_entry(mcl, 4);
593 }
594
595 static inline void
MULTI_set_gdt(struct multicall_entry * mcl,unsigned long * frames,int entries)596 MULTI_set_gdt(struct multicall_entry *mcl, unsigned long *frames, int entries)
597 {
598 mcl->op = __HYPERVISOR_set_gdt;
599 mcl->args[0] = (unsigned long)frames;
600 mcl->args[1] = entries;
601
602 trace_xen_mc_entry(mcl, 2);
603 }
604
605 static inline void
MULTI_stack_switch(struct multicall_entry * mcl,unsigned long ss,unsigned long esp)606 MULTI_stack_switch(struct multicall_entry *mcl,
607 unsigned long ss, unsigned long esp)
608 {
609 mcl->op = __HYPERVISOR_stack_switch;
610 mcl->args[0] = ss;
611 mcl->args[1] = esp;
612
613 trace_xen_mc_entry(mcl, 2);
614 }
615
616 #endif /* _ASM_X86_XEN_HYPERCALL_H */
617