xen.h 39 KB

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  1. /******************************************************************************
  2. * xen.h
  3. *
  4. * Guest OS interface to Xen.
  5. *
  6. * Permission is hereby granted, free of charge, to any person obtaining a copy
  7. * of this software and associated documentation files (the "Software"), to
  8. * deal in the Software without restriction, including without limitation the
  9. * rights to use, copy, modify, merge, publish, distribute, sublicense, and/or
  10. * sell copies of the Software, and to permit persons to whom the Software is
  11. * furnished to do so, subject to the following conditions:
  12. *
  13. * The above copyright notice and this permission notice shall be included in
  14. * all copies or substantial portions of the Software.
  15. *
  16. * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
  17. * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
  18. * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
  19. * AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
  20. * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING
  21. * FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER
  22. * DEALINGS IN THE SOFTWARE.
  23. *
  24. * Copyright (c) 2004, K A Fraser
  25. */
  26. #ifndef __XEN_PUBLIC_XEN_H__
  27. #define __XEN_PUBLIC_XEN_H__
  28. #include "xen-compat.h"
  29. #if defined(__i386__) || defined(__x86_64__)
  30. #include "arch-x86/xen.h"
  31. #elif defined(__arm__) || defined (__aarch64__)
  32. #include "arch-arm.h"
  33. #else
  34. #error "Unsupported architecture"
  35. #endif
  36. #ifndef __ASSEMBLY__
  37. /* Guest handles for primitive C types. */
  38. DEFINE_XEN_GUEST_HANDLE(char);
  39. __DEFINE_XEN_GUEST_HANDLE(uchar, unsigned char);
  40. DEFINE_XEN_GUEST_HANDLE(int);
  41. __DEFINE_XEN_GUEST_HANDLE(uint, unsigned int);
  42. #if __XEN_INTERFACE_VERSION__ < 0x00040300
  43. DEFINE_XEN_GUEST_HANDLE(long);
  44. __DEFINE_XEN_GUEST_HANDLE(ulong, unsigned long);
  45. #endif
  46. DEFINE_XEN_GUEST_HANDLE(void);
  47. DEFINE_XEN_GUEST_HANDLE(uint64_t);
  48. DEFINE_XEN_GUEST_HANDLE(xen_pfn_t);
  49. DEFINE_XEN_GUEST_HANDLE(xen_ulong_t);
  50. /* Turn a plain number into a C unsigned (long (long)) constant. */
  51. #define __xen_mk_uint(x) x ## U
  52. #define __xen_mk_ulong(x) x ## UL
  53. #ifndef __xen_mk_ullong
  54. # define __xen_mk_ullong(x) x ## ULL
  55. #endif
  56. #define xen_mk_uint(x) __xen_mk_uint(x)
  57. #define xen_mk_ulong(x) __xen_mk_ulong(x)
  58. #define xen_mk_ullong(x) __xen_mk_ullong(x)
  59. #else
  60. /* In assembly code we cannot use C numeric constant suffixes. */
  61. #define xen_mk_uint(x) x
  62. #define xen_mk_ulong(x) x
  63. #define xen_mk_ullong(x) x
  64. #endif
  65. /*
  66. * HYPERCALLS
  67. */
  68. /* `incontents 100 hcalls List of hypercalls
  69. * ` enum hypercall_num { // __HYPERVISOR_* => HYPERVISOR_*()
  70. */
  71. #define __HYPERVISOR_set_trap_table 0
  72. #define __HYPERVISOR_mmu_update 1
  73. #define __HYPERVISOR_set_gdt 2
  74. #define __HYPERVISOR_stack_switch 3
  75. #define __HYPERVISOR_set_callbacks 4
  76. #define __HYPERVISOR_fpu_taskswitch 5
  77. #define __HYPERVISOR_sched_op_compat 6 /* compat since 0x00030101 */
  78. #define __HYPERVISOR_platform_op 7
  79. #define __HYPERVISOR_set_debugreg 8
  80. #define __HYPERVISOR_get_debugreg 9
  81. #define __HYPERVISOR_update_descriptor 10
  82. #define __HYPERVISOR_memory_op 12
  83. #define __HYPERVISOR_multicall 13
  84. #define __HYPERVISOR_update_va_mapping 14
  85. #define __HYPERVISOR_set_timer_op 15
  86. #define __HYPERVISOR_event_channel_op_compat 16 /* compat since 0x00030202 */
  87. #define __HYPERVISOR_xen_version 17
  88. #define __HYPERVISOR_console_io 18
  89. #define __HYPERVISOR_physdev_op_compat 19 /* compat since 0x00030202 */
  90. #define __HYPERVISOR_grant_table_op 20
  91. #define __HYPERVISOR_vm_assist 21
  92. #define __HYPERVISOR_update_va_mapping_otherdomain 22
  93. #define __HYPERVISOR_iret 23 /* x86 only */
  94. #define __HYPERVISOR_vcpu_op 24
  95. #define __HYPERVISOR_set_segment_base 25 /* x86/64 only */
  96. #define __HYPERVISOR_mmuext_op 26
  97. #define __HYPERVISOR_xsm_op 27
  98. #define __HYPERVISOR_nmi_op 28
  99. #define __HYPERVISOR_sched_op 29
  100. #define __HYPERVISOR_callback_op 30
  101. #define __HYPERVISOR_xenoprof_op 31
  102. #define __HYPERVISOR_event_channel_op 32
  103. #define __HYPERVISOR_physdev_op 33
  104. #define __HYPERVISOR_hvm_op 34
  105. #define __HYPERVISOR_sysctl 35
  106. #define __HYPERVISOR_domctl 36
  107. #define __HYPERVISOR_kexec_op 37
  108. #define __HYPERVISOR_tmem_op 38
  109. #define __HYPERVISOR_xc_reserved_op 39 /* reserved for XenClient */
  110. #define __HYPERVISOR_xenpmu_op 40
  111. #define __HYPERVISOR_dm_op 41
  112. /* Architecture-specific hypercall definitions. */
  113. #define __HYPERVISOR_arch_0 48
  114. #define __HYPERVISOR_arch_1 49
  115. #define __HYPERVISOR_arch_2 50
  116. #define __HYPERVISOR_arch_3 51
  117. #define __HYPERVISOR_arch_4 52
  118. #define __HYPERVISOR_arch_5 53
  119. #define __HYPERVISOR_arch_6 54
  120. #define __HYPERVISOR_arch_7 55
  121. /* ` } */
  122. /*
  123. * HYPERCALL COMPATIBILITY.
  124. */
  125. /* New sched_op hypercall introduced in 0x00030101. */
  126. #if __XEN_INTERFACE_VERSION__ < 0x00030101
  127. #undef __HYPERVISOR_sched_op
  128. #define __HYPERVISOR_sched_op __HYPERVISOR_sched_op_compat
  129. #endif
  130. /* New event-channel and physdev hypercalls introduced in 0x00030202. */
  131. #if __XEN_INTERFACE_VERSION__ < 0x00030202
  132. #undef __HYPERVISOR_event_channel_op
  133. #define __HYPERVISOR_event_channel_op __HYPERVISOR_event_channel_op_compat
  134. #undef __HYPERVISOR_physdev_op
  135. #define __HYPERVISOR_physdev_op __HYPERVISOR_physdev_op_compat
  136. #endif
  137. /* New platform_op hypercall introduced in 0x00030204. */
  138. #if __XEN_INTERFACE_VERSION__ < 0x00030204
  139. #define __HYPERVISOR_dom0_op __HYPERVISOR_platform_op
  140. #endif
  141. /*
  142. * VIRTUAL INTERRUPTS
  143. *
  144. * Virtual interrupts that a guest OS may receive from Xen.
  145. *
  146. * In the side comments, 'V.' denotes a per-VCPU VIRQ while 'G.' denotes a
  147. * global VIRQ. The former can be bound once per VCPU and cannot be re-bound.
  148. * The latter can be allocated only once per guest: they must initially be
  149. * allocated to VCPU0 but can subsequently be re-bound.
  150. */
  151. /* ` enum virq { */
  152. #define VIRQ_TIMER 0 /* V. Timebase update, and/or requested timeout. */
  153. #define VIRQ_DEBUG 1 /* V. Request guest to dump debug info. */
  154. #define VIRQ_CONSOLE 2 /* G. (DOM0) Bytes received on emergency console. */
  155. #define VIRQ_DOM_EXC 3 /* G. (DOM0) Exceptional event for some domain. */
  156. #define VIRQ_TBUF 4 /* G. (DOM0) Trace buffer has records available. */
  157. #define VIRQ_DEBUGGER 6 /* G. (DOM0) A domain has paused for debugging. */
  158. #define VIRQ_XENOPROF 7 /* V. XenOprofile interrupt: new sample available */
  159. #define VIRQ_CON_RING 8 /* G. (DOM0) Bytes received on console */
  160. #define VIRQ_PCPU_STATE 9 /* G. (DOM0) PCPU state changed */
  161. #define VIRQ_MEM_EVENT 10 /* G. (DOM0) A memory event has occured */
  162. #define VIRQ_XC_RESERVED 11 /* G. Reserved for XenClient */
  163. #define VIRQ_ENOMEM 12 /* G. (DOM0) Low on heap memory */
  164. #define VIRQ_XENPMU 13 /* V. PMC interrupt */
  165. /* Architecture-specific VIRQ definitions. */
  166. #define VIRQ_ARCH_0 16
  167. #define VIRQ_ARCH_1 17
  168. #define VIRQ_ARCH_2 18
  169. #define VIRQ_ARCH_3 19
  170. #define VIRQ_ARCH_4 20
  171. #define VIRQ_ARCH_5 21
  172. #define VIRQ_ARCH_6 22
  173. #define VIRQ_ARCH_7 23
  174. /* ` } */
  175. #define NR_VIRQS 24
  176. /*
  177. * ` enum neg_errnoval
  178. * ` HYPERVISOR_mmu_update(const struct mmu_update reqs[],
  179. * ` unsigned count, unsigned *done_out,
  180. * ` unsigned foreigndom)
  181. * `
  182. * @reqs is an array of mmu_update_t structures ((ptr, val) pairs).
  183. * @count is the length of the above array.
  184. * @pdone is an output parameter indicating number of completed operations
  185. * @foreigndom[15:0]: FD, the expected owner of data pages referenced in this
  186. * hypercall invocation. Can be DOMID_SELF.
  187. * @foreigndom[31:16]: PFD, the expected owner of pagetable pages referenced
  188. * in this hypercall invocation. The value of this field
  189. * (x) encodes the PFD as follows:
  190. * x == 0 => PFD == DOMID_SELF
  191. * x != 0 => PFD == x - 1
  192. *
  193. * Sub-commands: ptr[1:0] specifies the appropriate MMU_* command.
  194. * -------------
  195. * ptr[1:0] == MMU_NORMAL_PT_UPDATE:
  196. * Updates an entry in a page table belonging to PFD. If updating an L1 table,
  197. * and the new table entry is valid/present, the mapped frame must belong to
  198. * FD. If attempting to map an I/O page then the caller assumes the privilege
  199. * of the FD.
  200. * FD == DOMID_IO: Permit /only/ I/O mappings, at the priv level of the caller.
  201. * FD == DOMID_XEN: Map restricted areas of Xen's heap space.
  202. * ptr[:2] -- Machine address of the page-table entry to modify.
  203. * val -- Value to write.
  204. *
  205. * There also certain implicit requirements when using this hypercall. The
  206. * pages that make up a pagetable must be mapped read-only in the guest.
  207. * This prevents uncontrolled guest updates to the pagetable. Xen strictly
  208. * enforces this, and will disallow any pagetable update which will end up
  209. * mapping pagetable page RW, and will disallow using any writable page as a
  210. * pagetable. In practice it means that when constructing a page table for a
  211. * process, thread, etc, we MUST be very dilligient in following these rules:
  212. * 1). Start with top-level page (PGD or in Xen language: L4). Fill out
  213. * the entries.
  214. * 2). Keep on going, filling out the upper (PUD or L3), and middle (PMD
  215. * or L2).
  216. * 3). Start filling out the PTE table (L1) with the PTE entries. Once
  217. * done, make sure to set each of those entries to RO (so writeable bit
  218. * is unset). Once that has been completed, set the PMD (L2) for this
  219. * PTE table as RO.
  220. * 4). When completed with all of the PMD (L2) entries, and all of them have
  221. * been set to RO, make sure to set RO the PUD (L3). Do the same
  222. * operation on PGD (L4) pagetable entries that have a PUD (L3) entry.
  223. * 5). Now before you can use those pages (so setting the cr3), you MUST also
  224. * pin them so that the hypervisor can verify the entries. This is done
  225. * via the HYPERVISOR_mmuext_op(MMUEXT_PIN_L4_TABLE, guest physical frame
  226. * number of the PGD (L4)). And this point the HYPERVISOR_mmuext_op(
  227. * MMUEXT_NEW_BASEPTR, guest physical frame number of the PGD (L4)) can be
  228. * issued.
  229. * For 32-bit guests, the L4 is not used (as there is less pagetables), so
  230. * instead use L3.
  231. * At this point the pagetables can be modified using the MMU_NORMAL_PT_UPDATE
  232. * hypercall. Also if so desired the OS can also try to write to the PTE
  233. * and be trapped by the hypervisor (as the PTE entry is RO).
  234. *
  235. * To deallocate the pages, the operations are the reverse of the steps
  236. * mentioned above. The argument is MMUEXT_UNPIN_TABLE for all levels and the
  237. * pagetable MUST not be in use (meaning that the cr3 is not set to it).
  238. *
  239. * ptr[1:0] == MMU_MACHPHYS_UPDATE:
  240. * Updates an entry in the machine->pseudo-physical mapping table.
  241. * ptr[:2] -- Machine address within the frame whose mapping to modify.
  242. * The frame must belong to the FD, if one is specified.
  243. * val -- Value to write into the mapping entry.
  244. *
  245. * ptr[1:0] == MMU_PT_UPDATE_PRESERVE_AD:
  246. * As MMU_NORMAL_PT_UPDATE above, but A/D bits currently in the PTE are ORed
  247. * with those in @val.
  248. *
  249. * @val is usually the machine frame number along with some attributes.
  250. * The attributes by default follow the architecture defined bits. Meaning that
  251. * if this is a X86_64 machine and four page table layout is used, the layout
  252. * of val is:
  253. * - 63 if set means No execute (NX)
  254. * - 46-13 the machine frame number
  255. * - 12 available for guest
  256. * - 11 available for guest
  257. * - 10 available for guest
  258. * - 9 available for guest
  259. * - 8 global
  260. * - 7 PAT (PSE is disabled, must use hypercall to make 4MB or 2MB pages)
  261. * - 6 dirty
  262. * - 5 accessed
  263. * - 4 page cached disabled
  264. * - 3 page write through
  265. * - 2 userspace accessible
  266. * - 1 writeable
  267. * - 0 present
  268. *
  269. * The one bits that does not fit with the default layout is the PAGE_PSE
  270. * also called PAGE_PAT). The MMUEXT_[UN]MARK_SUPER arguments to the
  271. * HYPERVISOR_mmuext_op serve as mechanism to set a pagetable to be 4MB
  272. * (or 2MB) instead of using the PAGE_PSE bit.
  273. *
  274. * The reason that the PAGE_PSE (bit 7) is not being utilized is due to Xen
  275. * using it as the Page Attribute Table (PAT) bit - for details on it please
  276. * refer to Intel SDM 10.12. The PAT allows to set the caching attributes of
  277. * pages instead of using MTRRs.
  278. *
  279. * The PAT MSR is as follows (it is a 64-bit value, each entry is 8 bits):
  280. * PAT4 PAT0
  281. * +-----+-----+----+----+----+-----+----+----+
  282. * | UC | UC- | WC | WB | UC | UC- | WC | WB | <= Linux
  283. * +-----+-----+----+----+----+-----+----+----+
  284. * | UC | UC- | WT | WB | UC | UC- | WT | WB | <= BIOS (default when machine boots)
  285. * +-----+-----+----+----+----+-----+----+----+
  286. * | rsv | rsv | WP | WC | UC | UC- | WT | WB | <= Xen
  287. * +-----+-----+----+----+----+-----+----+----+
  288. *
  289. * The lookup of this index table translates to looking up
  290. * Bit 7, Bit 4, and Bit 3 of val entry:
  291. *
  292. * PAT/PSE (bit 7) ... PCD (bit 4) .. PWT (bit 3).
  293. *
  294. * If all bits are off, then we are using PAT0. If bit 3 turned on,
  295. * then we are using PAT1, if bit 3 and bit 4, then PAT2..
  296. *
  297. * As you can see, the Linux PAT1 translates to PAT4 under Xen. Which means
  298. * that if a guest that follows Linux's PAT setup and would like to set Write
  299. * Combined on pages it MUST use PAT4 entry. Meaning that Bit 7 (PAGE_PAT) is
  300. * set. For example, under Linux it only uses PAT0, PAT1, and PAT2 for the
  301. * caching as:
  302. *
  303. * WB = none (so PAT0)
  304. * WC = PWT (bit 3 on)
  305. * UC = PWT | PCD (bit 3 and 4 are on).
  306. *
  307. * To make it work with Xen, it needs to translate the WC bit as so:
  308. *
  309. * PWT (so bit 3 on) --> PAT (so bit 7 is on) and clear bit 3
  310. *
  311. * And to translate back it would:
  312. *
  313. * PAT (bit 7 on) --> PWT (bit 3 on) and clear bit 7.
  314. */
  315. #define MMU_NORMAL_PT_UPDATE 0 /* checked '*ptr = val'. ptr is MA. */
  316. #define MMU_MACHPHYS_UPDATE 1 /* ptr = MA of frame to modify entry for */
  317. #define MMU_PT_UPDATE_PRESERVE_AD 2 /* atomically: *ptr = val | (*ptr&(A|D)) */
  318. /*
  319. * MMU EXTENDED OPERATIONS
  320. *
  321. * ` enum neg_errnoval
  322. * ` HYPERVISOR_mmuext_op(mmuext_op_t uops[],
  323. * ` unsigned int count,
  324. * ` unsigned int *pdone,
  325. * ` unsigned int foreigndom)
  326. */
  327. /* HYPERVISOR_mmuext_op() accepts a list of mmuext_op structures.
  328. * A foreigndom (FD) can be specified (or DOMID_SELF for none).
  329. * Where the FD has some effect, it is described below.
  330. *
  331. * cmd: MMUEXT_(UN)PIN_*_TABLE
  332. * mfn: Machine frame number to be (un)pinned as a p.t. page.
  333. * The frame must belong to the FD, if one is specified.
  334. *
  335. * cmd: MMUEXT_NEW_BASEPTR
  336. * mfn: Machine frame number of new page-table base to install in MMU.
  337. *
  338. * cmd: MMUEXT_NEW_USER_BASEPTR [x86/64 only]
  339. * mfn: Machine frame number of new page-table base to install in MMU
  340. * when in user space.
  341. *
  342. * cmd: MMUEXT_TLB_FLUSH_LOCAL
  343. * No additional arguments. Flushes local TLB.
  344. *
  345. * cmd: MMUEXT_INVLPG_LOCAL
  346. * linear_addr: Linear address to be flushed from the local TLB.
  347. *
  348. * cmd: MMUEXT_TLB_FLUSH_MULTI
  349. * vcpumask: Pointer to bitmap of VCPUs to be flushed.
  350. *
  351. * cmd: MMUEXT_INVLPG_MULTI
  352. * linear_addr: Linear address to be flushed.
  353. * vcpumask: Pointer to bitmap of VCPUs to be flushed.
  354. *
  355. * cmd: MMUEXT_TLB_FLUSH_ALL
  356. * No additional arguments. Flushes all VCPUs' TLBs.
  357. *
  358. * cmd: MMUEXT_INVLPG_ALL
  359. * linear_addr: Linear address to be flushed from all VCPUs' TLBs.
  360. *
  361. * cmd: MMUEXT_FLUSH_CACHE
  362. * No additional arguments. Writes back and flushes cache contents.
  363. *
  364. * cmd: MMUEXT_FLUSH_CACHE_GLOBAL
  365. * No additional arguments. Writes back and flushes cache contents
  366. * on all CPUs in the system.
  367. *
  368. * cmd: MMUEXT_SET_LDT
  369. * linear_addr: Linear address of LDT base (NB. must be page-aligned).
  370. * nr_ents: Number of entries in LDT.
  371. *
  372. * cmd: MMUEXT_CLEAR_PAGE
  373. * mfn: Machine frame number to be cleared.
  374. *
  375. * cmd: MMUEXT_COPY_PAGE
  376. * mfn: Machine frame number of the destination page.
  377. * src_mfn: Machine frame number of the source page.
  378. *
  379. * cmd: MMUEXT_[UN]MARK_SUPER
  380. * mfn: Machine frame number of head of superpage to be [un]marked.
  381. */
  382. /* ` enum mmuext_cmd { */
  383. #define MMUEXT_PIN_L1_TABLE 0
  384. #define MMUEXT_PIN_L2_TABLE 1
  385. #define MMUEXT_PIN_L3_TABLE 2
  386. #define MMUEXT_PIN_L4_TABLE 3
  387. #define MMUEXT_UNPIN_TABLE 4
  388. #define MMUEXT_NEW_BASEPTR 5
  389. #define MMUEXT_TLB_FLUSH_LOCAL 6
  390. #define MMUEXT_INVLPG_LOCAL 7
  391. #define MMUEXT_TLB_FLUSH_MULTI 8
  392. #define MMUEXT_INVLPG_MULTI 9
  393. #define MMUEXT_TLB_FLUSH_ALL 10
  394. #define MMUEXT_INVLPG_ALL 11
  395. #define MMUEXT_FLUSH_CACHE 12
  396. #define MMUEXT_SET_LDT 13
  397. #define MMUEXT_NEW_USER_BASEPTR 15
  398. #define MMUEXT_CLEAR_PAGE 16
  399. #define MMUEXT_COPY_PAGE 17
  400. #define MMUEXT_FLUSH_CACHE_GLOBAL 18
  401. #define MMUEXT_MARK_SUPER 19
  402. #define MMUEXT_UNMARK_SUPER 20
  403. /* ` } */
  404. #ifndef __ASSEMBLY__
  405. struct mmuext_op {
  406. unsigned int cmd; /* => enum mmuext_cmd */
  407. union {
  408. /* [UN]PIN_TABLE, NEW_BASEPTR, NEW_USER_BASEPTR
  409. * CLEAR_PAGE, COPY_PAGE, [UN]MARK_SUPER */
  410. xen_pfn_t mfn;
  411. /* INVLPG_LOCAL, INVLPG_ALL, SET_LDT */
  412. unsigned long linear_addr;
  413. } arg1;
  414. union {
  415. /* SET_LDT */
  416. unsigned int nr_ents;
  417. /* TLB_FLUSH_MULTI, INVLPG_MULTI */
  418. #if __XEN_INTERFACE_VERSION__ >= 0x00030205
  419. XEN_GUEST_HANDLE(const_void) vcpumask;
  420. #else
  421. const void *vcpumask;
  422. #endif
  423. /* COPY_PAGE */
  424. xen_pfn_t src_mfn;
  425. } arg2;
  426. };
  427. typedef struct mmuext_op mmuext_op_t;
  428. DEFINE_XEN_GUEST_HANDLE(mmuext_op_t);
  429. #endif
  430. /*
  431. * ` enum neg_errnoval
  432. * ` HYPERVISOR_update_va_mapping(unsigned long va, u64 val,
  433. * ` enum uvm_flags flags)
  434. * `
  435. * ` enum neg_errnoval
  436. * ` HYPERVISOR_update_va_mapping_otherdomain(unsigned long va, u64 val,
  437. * ` enum uvm_flags flags,
  438. * ` domid_t domid)
  439. * `
  440. * ` @va: The virtual address whose mapping we want to change
  441. * ` @val: The new page table entry, must contain a machine address
  442. * ` @flags: Control TLB flushes
  443. */
  444. /* These are passed as 'flags' to update_va_mapping. They can be ORed. */
  445. /* When specifying UVMF_MULTI, also OR in a pointer to a CPU bitmap. */
  446. /* UVMF_LOCAL is merely UVMF_MULTI with a NULL bitmap pointer. */
  447. /* ` enum uvm_flags { */
  448. #define UVMF_NONE (xen_mk_ulong(0)<<0) /* No flushing at all. */
  449. #define UVMF_TLB_FLUSH (xen_mk_ulong(1)<<0) /* Flush entire TLB(s). */
  450. #define UVMF_INVLPG (xen_mk_ulong(2)<<0) /* Flush only one entry. */
  451. #define UVMF_FLUSHTYPE_MASK (xen_mk_ulong(3)<<0)
  452. #define UVMF_MULTI (xen_mk_ulong(0)<<2) /* Flush subset of TLBs. */
  453. #define UVMF_LOCAL (xen_mk_ulong(0)<<2) /* Flush local TLB. */
  454. #define UVMF_ALL (xen_mk_ulong(1)<<2) /* Flush all TLBs. */
  455. /* ` } */
  456. /*
  457. * Commands to HYPERVISOR_console_io().
  458. */
  459. #define CONSOLEIO_write 0
  460. #define CONSOLEIO_read 1
  461. /*
  462. * Commands to HYPERVISOR_vm_assist().
  463. */
  464. #define VMASST_CMD_enable 0
  465. #define VMASST_CMD_disable 1
  466. /* x86/32 guests: simulate full 4GB segment limits. */
  467. #define VMASST_TYPE_4gb_segments 0
  468. /* x86/32 guests: trap (vector 15) whenever above vmassist is used. */
  469. #define VMASST_TYPE_4gb_segments_notify 1
  470. /*
  471. * x86 guests: support writes to bottom-level PTEs.
  472. * NB1. Page-directory entries cannot be written.
  473. * NB2. Guest must continue to remove all writable mappings of PTEs.
  474. */
  475. #define VMASST_TYPE_writable_pagetables 2
  476. /* x86/PAE guests: support PDPTs above 4GB. */
  477. #define VMASST_TYPE_pae_extended_cr3 3
  478. /*
  479. * x86 guests: Sane behaviour for virtual iopl
  480. * - virtual iopl updated from do_iret() hypercalls.
  481. * - virtual iopl reported in bounce frames.
  482. * - guest kernels assumed to be level 0 for the purpose of iopl checks.
  483. */
  484. #define VMASST_TYPE_architectural_iopl 4
  485. /*
  486. * All guests: activate update indicator in vcpu_runstate_info
  487. * Enable setting the XEN_RUNSTATE_UPDATE flag in guest memory mapped
  488. * vcpu_runstate_info during updates of the runstate information.
  489. */
  490. #define VMASST_TYPE_runstate_update_flag 5
  491. /*
  492. * x86/64 guests: strictly hide M2P from user mode.
  493. * This allows the guest to control respective hypervisor behavior:
  494. * - when not set, L4 tables get created with the respective slot blank,
  495. * and whenever the L4 table gets used as a kernel one the missing
  496. * mapping gets inserted,
  497. * - when set, L4 tables get created with the respective slot initialized
  498. * as before, and whenever the L4 table gets used as a user one the
  499. * mapping gets zapped.
  500. */
  501. #define VMASST_TYPE_m2p_strict 32
  502. #if __XEN_INTERFACE_VERSION__ < 0x00040600
  503. #define MAX_VMASST_TYPE 3
  504. #endif
  505. /* Domain ids >= DOMID_FIRST_RESERVED cannot be used for ordinary domains. */
  506. #define DOMID_FIRST_RESERVED xen_mk_uint(0x7FF0)
  507. /* DOMID_SELF is used in certain contexts to refer to oneself. */
  508. #define DOMID_SELF xen_mk_uint(0x7FF0)
  509. /*
  510. * DOMID_IO is used to restrict page-table updates to mapping I/O memory.
  511. * Although no Foreign Domain need be specified to map I/O pages, DOMID_IO
  512. * is useful to ensure that no mappings to the OS's own heap are accidentally
  513. * installed. (e.g., in Linux this could cause havoc as reference counts
  514. * aren't adjusted on the I/O-mapping code path).
  515. * This only makes sense as HYPERVISOR_mmu_update()'s and
  516. * HYPERVISOR_update_va_mapping_otherdomain()'s "foreigndom" argument. For
  517. * HYPERVISOR_mmu_update() context it can be specified by any calling domain,
  518. * otherwise it's only permitted if the caller is privileged.
  519. */
  520. #define DOMID_IO xen_mk_uint(0x7FF1)
  521. /*
  522. * DOMID_XEN is used to allow privileged domains to map restricted parts of
  523. * Xen's heap space (e.g., the machine_to_phys table).
  524. * This only makes sense as
  525. * - HYPERVISOR_mmu_update()'s, HYPERVISOR_mmuext_op()'s, or
  526. * HYPERVISOR_update_va_mapping_otherdomain()'s "foreigndom" argument,
  527. * - with XENMAPSPACE_gmfn_foreign,
  528. * and is only permitted if the caller is privileged.
  529. */
  530. #define DOMID_XEN xen_mk_uint(0x7FF2)
  531. /*
  532. * DOMID_COW is used as the owner of sharable pages */
  533. #define DOMID_COW xen_mk_uint(0x7FF3)
  534. /* DOMID_INVALID is used to identify pages with unknown owner. */
  535. #define DOMID_INVALID xen_mk_uint(0x7FF4)
  536. /* Idle domain. */
  537. #define DOMID_IDLE xen_mk_uint(0x7FFF)
  538. #ifndef __ASSEMBLY__
  539. typedef uint16_t domid_t;
  540. /*
  541. * Send an array of these to HYPERVISOR_mmu_update().
  542. * NB. The fields are natural pointer/address size for this architecture.
  543. */
  544. struct mmu_update {
  545. uint64_t ptr; /* Machine address of PTE. */
  546. uint64_t val; /* New contents of PTE. */
  547. };
  548. typedef struct mmu_update mmu_update_t;
  549. DEFINE_XEN_GUEST_HANDLE(mmu_update_t);
  550. /*
  551. * ` enum neg_errnoval
  552. * ` HYPERVISOR_multicall(multicall_entry_t call_list[],
  553. * ` uint32_t nr_calls);
  554. *
  555. * NB. The fields are logically the natural register size for this
  556. * architecture. In cases where xen_ulong_t is larger than this then
  557. * any unused bits in the upper portion must be zero.
  558. */
  559. struct multicall_entry {
  560. xen_ulong_t op, result;
  561. xen_ulong_t args[6];
  562. };
  563. typedef struct multicall_entry multicall_entry_t;
  564. DEFINE_XEN_GUEST_HANDLE(multicall_entry_t);
  565. #if __XEN_INTERFACE_VERSION__ < 0x00040400
  566. /*
  567. * Event channel endpoints per domain (when using the 2-level ABI):
  568. * 1024 if a long is 32 bits; 4096 if a long is 64 bits.
  569. */
  570. #define NR_EVENT_CHANNELS EVTCHN_2L_NR_CHANNELS
  571. #endif
  572. struct vcpu_time_info {
  573. /*
  574. * Updates to the following values are preceded and followed by an
  575. * increment of 'version'. The guest can therefore detect updates by
  576. * looking for changes to 'version'. If the least-significant bit of
  577. * the version number is set then an update is in progress and the guest
  578. * must wait to read a consistent set of values.
  579. * The correct way to interact with the version number is similar to
  580. * Linux's seqlock: see the implementations of read_seqbegin/read_seqretry.
  581. */
  582. uint32_t version;
  583. uint32_t pad0;
  584. uint64_t tsc_timestamp; /* TSC at last update of time vals. */
  585. uint64_t system_time; /* Time, in nanosecs, since boot. */
  586. /*
  587. * Current system time:
  588. * system_time +
  589. * ((((tsc - tsc_timestamp) << tsc_shift) * tsc_to_system_mul) >> 32)
  590. * CPU frequency (Hz):
  591. * ((10^9 << 32) / tsc_to_system_mul) >> tsc_shift
  592. */
  593. uint32_t tsc_to_system_mul;
  594. int8_t tsc_shift;
  595. #if __XEN_INTERFACE_VERSION__ > 0x040600
  596. uint8_t flags;
  597. uint8_t pad1[2];
  598. #else
  599. int8_t pad1[3];
  600. #endif
  601. }; /* 32 bytes */
  602. typedef struct vcpu_time_info vcpu_time_info_t;
  603. #define XEN_PVCLOCK_TSC_STABLE_BIT (1 << 0)
  604. #define XEN_PVCLOCK_GUEST_STOPPED (1 << 1)
  605. struct vcpu_info {
  606. /*
  607. * 'evtchn_upcall_pending' is written non-zero by Xen to indicate
  608. * a pending notification for a particular VCPU. It is then cleared
  609. * by the guest OS /before/ checking for pending work, thus avoiding
  610. * a set-and-check race. Note that the mask is only accessed by Xen
  611. * on the CPU that is currently hosting the VCPU. This means that the
  612. * pending and mask flags can be updated by the guest without special
  613. * synchronisation (i.e., no need for the x86 LOCK prefix).
  614. * This may seem suboptimal because if the pending flag is set by
  615. * a different CPU then an IPI may be scheduled even when the mask
  616. * is set. However, note:
  617. * 1. The task of 'interrupt holdoff' is covered by the per-event-
  618. * channel mask bits. A 'noisy' event that is continually being
  619. * triggered can be masked at source at this very precise
  620. * granularity.
  621. * 2. The main purpose of the per-VCPU mask is therefore to restrict
  622. * reentrant execution: whether for concurrency control, or to
  623. * prevent unbounded stack usage. Whatever the purpose, we expect
  624. * that the mask will be asserted only for short periods at a time,
  625. * and so the likelihood of a 'spurious' IPI is suitably small.
  626. * The mask is read before making an event upcall to the guest: a
  627. * non-zero mask therefore guarantees that the VCPU will not receive
  628. * an upcall activation. The mask is cleared when the VCPU requests
  629. * to block: this avoids wakeup-waiting races.
  630. */
  631. uint8_t evtchn_upcall_pending;
  632. #ifdef XEN_HAVE_PV_UPCALL_MASK
  633. uint8_t evtchn_upcall_mask;
  634. #else /* XEN_HAVE_PV_UPCALL_MASK */
  635. uint8_t pad0;
  636. #endif /* XEN_HAVE_PV_UPCALL_MASK */
  637. xen_ulong_t evtchn_pending_sel;
  638. struct arch_vcpu_info arch;
  639. struct vcpu_time_info time;
  640. }; /* 64 bytes (x86) */
  641. #ifndef __XEN__
  642. typedef struct vcpu_info vcpu_info_t;
  643. #endif
  644. /*
  645. * `incontents 200 startofday_shared Start-of-day shared data structure
  646. * Xen/kernel shared data -- pointer provided in start_info.
  647. *
  648. * This structure is defined to be both smaller than a page, and the
  649. * only data on the shared page, but may vary in actual size even within
  650. * compatible Xen versions; guests should not rely on the size
  651. * of this structure remaining constant.
  652. */
  653. struct shared_info {
  654. struct vcpu_info vcpu_info[XEN_LEGACY_MAX_VCPUS];
  655. /*
  656. * A domain can create "event channels" on which it can send and receive
  657. * asynchronous event notifications. There are three classes of event that
  658. * are delivered by this mechanism:
  659. * 1. Bi-directional inter- and intra-domain connections. Domains must
  660. * arrange out-of-band to set up a connection (usually by allocating
  661. * an unbound 'listener' port and avertising that via a storage service
  662. * such as xenstore).
  663. * 2. Physical interrupts. A domain with suitable hardware-access
  664. * privileges can bind an event-channel port to a physical interrupt
  665. * source.
  666. * 3. Virtual interrupts ('events'). A domain can bind an event-channel
  667. * port to a virtual interrupt source, such as the virtual-timer
  668. * device or the emergency console.
  669. *
  670. * Event channels are addressed by a "port index". Each channel is
  671. * associated with two bits of information:
  672. * 1. PENDING -- notifies the domain that there is a pending notification
  673. * to be processed. This bit is cleared by the guest.
  674. * 2. MASK -- if this bit is clear then a 0->1 transition of PENDING
  675. * will cause an asynchronous upcall to be scheduled. This bit is only
  676. * updated by the guest. It is read-only within Xen. If a channel
  677. * becomes pending while the channel is masked then the 'edge' is lost
  678. * (i.e., when the channel is unmasked, the guest must manually handle
  679. * pending notifications as no upcall will be scheduled by Xen).
  680. *
  681. * To expedite scanning of pending notifications, any 0->1 pending
  682. * transition on an unmasked channel causes a corresponding bit in a
  683. * per-vcpu selector word to be set. Each bit in the selector covers a
  684. * 'C long' in the PENDING bitfield array.
  685. */
  686. xen_ulong_t evtchn_pending[sizeof(xen_ulong_t) * 8];
  687. xen_ulong_t evtchn_mask[sizeof(xen_ulong_t) * 8];
  688. /*
  689. * Wallclock time: updated only by control software. Guests should base
  690. * their gettimeofday() syscall on this wallclock-base value.
  691. */
  692. uint32_t wc_version; /* Version counter: see vcpu_time_info_t. */
  693. uint32_t wc_sec; /* Secs 00:00:00 UTC, Jan 1, 1970. */
  694. uint32_t wc_nsec; /* Nsecs 00:00:00 UTC, Jan 1, 1970. */
  695. #if !defined(__i386__)
  696. uint32_t wc_sec_hi;
  697. # define xen_wc_sec_hi wc_sec_hi
  698. #elif !defined(__XEN__) && !defined(__XEN_TOOLS__)
  699. # define xen_wc_sec_hi arch.wc_sec_hi
  700. #endif
  701. struct arch_shared_info arch;
  702. };
  703. #ifndef __XEN__
  704. typedef struct shared_info shared_info_t;
  705. #endif
  706. /*
  707. * `incontents 200 startofday Start-of-day memory layout
  708. *
  709. * 1. The domain is started within contiguous virtual-memory region.
  710. * 2. The contiguous region ends on an aligned 4MB boundary.
  711. * 3. This the order of bootstrap elements in the initial virtual region:
  712. * a. relocated kernel image
  713. * b. initial ram disk [mod_start, mod_len]
  714. * (may be omitted)
  715. * c. list of allocated page frames [mfn_list, nr_pages]
  716. * (unless relocated due to XEN_ELFNOTE_INIT_P2M)
  717. * d. start_info_t structure [register rSI (x86)]
  718. * in case of dom0 this page contains the console info, too
  719. * e. unless dom0: xenstore ring page
  720. * f. unless dom0: console ring page
  721. * g. bootstrap page tables [pt_base and CR3 (x86)]
  722. * h. bootstrap stack [register ESP (x86)]
  723. * 4. Bootstrap elements are packed together, but each is 4kB-aligned.
  724. * 5. The list of page frames forms a contiguous 'pseudo-physical' memory
  725. * layout for the domain. In particular, the bootstrap virtual-memory
  726. * region is a 1:1 mapping to the first section of the pseudo-physical map.
  727. * 6. All bootstrap elements are mapped read-writable for the guest OS. The
  728. * only exception is the bootstrap page table, which is mapped read-only.
  729. * 7. There is guaranteed to be at least 512kB padding after the final
  730. * bootstrap element. If necessary, the bootstrap virtual region is
  731. * extended by an extra 4MB to ensure this.
  732. *
  733. * Note: Prior to 25833:bb85bbccb1c9. ("x86/32-on-64 adjust Dom0 initial page
  734. * table layout") a bug caused the pt_base (3.g above) and cr3 to not point
  735. * to the start of the guest page tables (it was offset by two pages).
  736. * This only manifested itself on 32-on-64 dom0 kernels and not 32-on-64 domU
  737. * or 64-bit kernels of any colour. The page tables for a 32-on-64 dom0 got
  738. * allocated in the order: 'first L1','first L2', 'first L3', so the offset
  739. * to the page table base is by two pages back. The initial domain if it is
  740. * 32-bit and runs under a 64-bit hypervisor should _NOT_ use two of the
  741. * pages preceding pt_base and mark them as reserved/unused.
  742. */
  743. #ifdef XEN_HAVE_PV_GUEST_ENTRY
  744. struct start_info {
  745. /* THE FOLLOWING ARE FILLED IN BOTH ON INITIAL BOOT AND ON RESUME. */
  746. char magic[32]; /* "xen-<version>-<platform>". */
  747. unsigned long nr_pages; /* Total pages allocated to this domain. */
  748. unsigned long shared_info; /* MACHINE address of shared info struct. */
  749. uint32_t flags; /* SIF_xxx flags. */
  750. xen_pfn_t store_mfn; /* MACHINE page number of shared page. */
  751. uint32_t store_evtchn; /* Event channel for store communication. */
  752. union {
  753. struct {
  754. xen_pfn_t mfn; /* MACHINE page number of console page. */
  755. uint32_t evtchn; /* Event channel for console page. */
  756. } domU;
  757. struct {
  758. uint32_t info_off; /* Offset of console_info struct. */
  759. uint32_t info_size; /* Size of console_info struct from start.*/
  760. } dom0;
  761. } console;
  762. /* THE FOLLOWING ARE ONLY FILLED IN ON INITIAL BOOT (NOT RESUME). */
  763. unsigned long pt_base; /* VIRTUAL address of page directory. */
  764. unsigned long nr_pt_frames; /* Number of bootstrap p.t. frames. */
  765. unsigned long mfn_list; /* VIRTUAL address of page-frame list. */
  766. unsigned long mod_start; /* VIRTUAL address of pre-loaded module */
  767. /* (PFN of pre-loaded module if */
  768. /* SIF_MOD_START_PFN set in flags). */
  769. unsigned long mod_len; /* Size (bytes) of pre-loaded module. */
  770. #define MAX_GUEST_CMDLINE 1024
  771. int8_t cmd_line[MAX_GUEST_CMDLINE];
  772. /* The pfn range here covers both page table and p->m table frames. */
  773. unsigned long first_p2m_pfn;/* 1st pfn forming initial P->M table. */
  774. unsigned long nr_p2m_frames;/* # of pfns forming initial P->M table. */
  775. };
  776. typedef struct start_info start_info_t;
  777. /* New console union for dom0 introduced in 0x00030203. */
  778. #if __XEN_INTERFACE_VERSION__ < 0x00030203
  779. #define console_mfn console.domU.mfn
  780. #define console_evtchn console.domU.evtchn
  781. #endif
  782. #endif /* XEN_HAVE_PV_GUEST_ENTRY */
  783. /* These flags are passed in the 'flags' field of start_info_t. */
  784. #define SIF_PRIVILEGED (1<<0) /* Is the domain privileged? */
  785. #define SIF_INITDOMAIN (1<<1) /* Is this the initial control domain? */
  786. #define SIF_MULTIBOOT_MOD (1<<2) /* Is mod_start a multiboot module? */
  787. #define SIF_MOD_START_PFN (1<<3) /* Is mod_start a PFN? */
  788. #define SIF_VIRT_P2M_4TOOLS (1<<4) /* Do Xen tools understand a virt. mapped */
  789. /* P->M making the 3 level tree obsolete? */
  790. #define SIF_PM_MASK (0xFF<<8) /* reserve 1 byte for xen-pm options */
  791. /*
  792. * A multiboot module is a package containing modules very similar to a
  793. * multiboot module array. The only differences are:
  794. * - the array of module descriptors is by convention simply at the beginning
  795. * of the multiboot module,
  796. * - addresses in the module descriptors are based on the beginning of the
  797. * multiboot module,
  798. * - the number of modules is determined by a termination descriptor that has
  799. * mod_start == 0.
  800. *
  801. * This permits to both build it statically and reference it in a configuration
  802. * file, and let the PV guest easily rebase the addresses to virtual addresses
  803. * and at the same time count the number of modules.
  804. */
  805. struct xen_multiboot_mod_list
  806. {
  807. /* Address of first byte of the module */
  808. uint32_t mod_start;
  809. /* Address of last byte of the module (inclusive) */
  810. uint32_t mod_end;
  811. /* Address of zero-terminated command line */
  812. uint32_t cmdline;
  813. /* Unused, must be zero */
  814. uint32_t pad;
  815. };
  816. /*
  817. * `incontents 200 startofday_dom0_console Dom0_console
  818. *
  819. * The console structure in start_info.console.dom0
  820. *
  821. * This structure includes a variety of information required to
  822. * have a working VGA/VESA console.
  823. */
  824. typedef struct dom0_vga_console_info {
  825. uint8_t video_type; /* DOM0_VGA_CONSOLE_??? */
  826. #define XEN_VGATYPE_TEXT_MODE_3 0x03
  827. #define XEN_VGATYPE_VESA_LFB 0x23
  828. #define XEN_VGATYPE_EFI_LFB 0x70
  829. union {
  830. struct {
  831. /* Font height, in pixels. */
  832. uint16_t font_height;
  833. /* Cursor location (column, row). */
  834. uint16_t cursor_x, cursor_y;
  835. /* Number of rows and columns (dimensions in characters). */
  836. uint16_t rows, columns;
  837. } text_mode_3;
  838. struct {
  839. /* Width and height, in pixels. */
  840. uint16_t width, height;
  841. /* Bytes per scan line. */
  842. uint16_t bytes_per_line;
  843. /* Bits per pixel. */
  844. uint16_t bits_per_pixel;
  845. /* LFB physical address, and size (in units of 64kB). */
  846. uint32_t lfb_base;
  847. uint32_t lfb_size;
  848. /* RGB mask offsets and sizes, as defined by VBE 1.2+ */
  849. uint8_t red_pos, red_size;
  850. uint8_t green_pos, green_size;
  851. uint8_t blue_pos, blue_size;
  852. uint8_t rsvd_pos, rsvd_size;
  853. #if __XEN_INTERFACE_VERSION__ >= 0x00030206
  854. /* VESA capabilities (offset 0xa, VESA command 0x4f00). */
  855. uint32_t gbl_caps;
  856. /* Mode attributes (offset 0x0, VESA command 0x4f01). */
  857. uint16_t mode_attrs;
  858. #endif
  859. } vesa_lfb;
  860. } u;
  861. } dom0_vga_console_info_t;
  862. #define xen_vga_console_info dom0_vga_console_info
  863. #define xen_vga_console_info_t dom0_vga_console_info_t
  864. typedef uint8_t xen_domain_handle_t[16];
  865. __DEFINE_XEN_GUEST_HANDLE(uint8, uint8_t);
  866. __DEFINE_XEN_GUEST_HANDLE(uint16, uint16_t);
  867. __DEFINE_XEN_GUEST_HANDLE(uint32, uint32_t);
  868. __DEFINE_XEN_GUEST_HANDLE(uint64, uint64_t);
  869. typedef struct {
  870. uint8_t a[16];
  871. } xen_uuid_t;
  872. /*
  873. * XEN_DEFINE_UUID(0x00112233, 0x4455, 0x6677, 0x8899,
  874. * 0xaa, 0xbb, 0xcc, 0xdd, 0xee, 0xff)
  875. * will construct UUID 00112233-4455-6677-8899-aabbccddeeff presented as
  876. * {0x00, 0x11, 0x22, 0x33, 0x44, 0x55, 0x66, 0x77, 0x88,
  877. * 0x99, 0xaa, 0xbb, 0xcc, 0xdd, 0xee, 0xff};
  878. *
  879. * NB: This is compatible with Linux kernel and with libuuid, but it is not
  880. * compatible with Microsoft, as they use mixed-endian encoding (some
  881. * components are little-endian, some are big-endian).
  882. */
  883. #define XEN_DEFINE_UUID_(a, b, c, d, e1, e2, e3, e4, e5, e6) \
  884. {{((a) >> 24) & 0xFF, ((a) >> 16) & 0xFF, \
  885. ((a) >> 8) & 0xFF, ((a) >> 0) & 0xFF, \
  886. ((b) >> 8) & 0xFF, ((b) >> 0) & 0xFF, \
  887. ((c) >> 8) & 0xFF, ((c) >> 0) & 0xFF, \
  888. ((d) >> 8) & 0xFF, ((d) >> 0) & 0xFF, \
  889. e1, e2, e3, e4, e5, e6}}
  890. #if defined(__STDC_VERSION__) ? __STDC_VERSION__ >= 199901L : defined(__GNUC__)
  891. #define XEN_DEFINE_UUID(a, b, c, d, e1, e2, e3, e4, e5, e6) \
  892. ((xen_uuid_t)XEN_DEFINE_UUID_(a, b, c, d, e1, e2, e3, e4, e5, e6))
  893. #else
  894. #define XEN_DEFINE_UUID(a, b, c, d, e1, e2, e3, e4, e5, e6) \
  895. XEN_DEFINE_UUID_(a, b, c, d, e1, e2, e3, e4, e5, e6)
  896. #endif /* __STDC_VERSION__ / __GNUC__ */
  897. #endif /* !__ASSEMBLY__ */
  898. /* Default definitions for macros used by domctl/sysctl. */
  899. #if defined(__XEN__) || defined(__XEN_TOOLS__)
  900. #ifndef int64_aligned_t
  901. #define int64_aligned_t int64_t
  902. #endif
  903. #ifndef uint64_aligned_t
  904. #define uint64_aligned_t uint64_t
  905. #endif
  906. #ifndef XEN_GUEST_HANDLE_64
  907. #define XEN_GUEST_HANDLE_64(name) XEN_GUEST_HANDLE(name)
  908. #endif
  909. #ifndef __ASSEMBLY__
  910. struct xenctl_bitmap {
  911. XEN_GUEST_HANDLE_64(uint8) bitmap;
  912. uint32_t nr_bits;
  913. };
  914. #endif
  915. #endif /* defined(__XEN__) || defined(__XEN_TOOLS__) */
  916. #endif /* __XEN_PUBLIC_XEN_H__ */
  917. /*
  918. * Local variables:
  919. * mode: C
  920. * c-file-style: "BSD"
  921. * c-basic-offset: 4
  922. * tab-width: 4
  923. * indent-tabs-mode: nil
  924. * End:
  925. */