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      1 /*	$NetBSD: nvmm_x86_vmx.c,v 1.97 2026/08/08 12:47:47 riastradh Exp $	*/
      2 
      3 /*
      4  * Copyright (c) 2018-2020 Maxime Villard, m00nbsd.net
      5  * All rights reserved.
      6  *
      7  * This code is part of the NVMM hypervisor.
      8  *
      9  * Redistribution and use in source and binary forms, with or without
     10  * modification, are permitted provided that the following conditions
     11  * are met:
     12  * 1. Redistributions of source code must retain the above copyright
     13  *    notice, this list of conditions and the following disclaimer.
     14  * 2. Redistributions in binary form must reproduce the above copyright
     15  *    notice, this list of conditions and the following disclaimer in the
     16  *    documentation and/or other materials provided with the distribution.
     17  *
     18  * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
     19  * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
     20  * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
     21  * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
     22  * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING,
     23  * BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES;
     24  * LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED
     25  * AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY,
     26  * OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     27  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     28  * SUCH DAMAGE.
     29  */
     30 
     31 #include <sys/cdefs.h>
     32 __KERNEL_RCSID(0, "$NetBSD: nvmm_x86_vmx.c,v 1.97 2026/08/08 12:47:47 riastradh Exp $");
     33 
     34 #include <sys/param.h>
     35 #include <sys/systm.h>
     36 #include <sys/kernel.h>
     37 #include <sys/kmem.h>
     38 #include <sys/cpu.h>
     39 #include <sys/xcall.h>
     40 #include <sys/mman.h>
     41 #include <sys/bitops.h>
     42 
     43 #include <uvm/uvm_extern.h>
     44 #include <uvm/uvm_page.h>
     45 
     46 #include <x86/cputypes.h>
     47 #include <x86/specialreg.h>
     48 #include <x86/dbregs.h>
     49 #include <x86/cpu_counter.h>
     50 #include <x86/nmi.h>
     51 
     52 #include <machine/cpuvar.h>
     53 #include <machine/pmap_private.h>
     54 
     55 #include <dev/nvmm/nvmm.h>
     56 #include <dev/nvmm/nvmm_internal.h>
     57 #include <dev/nvmm/x86/nvmm_x86.h>
     58 
     59 int _vmx_vmxon(paddr_t *pa);
     60 int _vmx_vmxoff(void);
     61 int vmx_vmlaunch(uint64_t *gprs);
     62 int vmx_vmresume(uint64_t *gprs);
     63 
     64 #define vmx_vmxon(a) \
     65 	if (__predict_false(_vmx_vmxon(a) != 0)) { \
     66 		panic("%s: VMXON failed", __func__); \
     67 	}
     68 #define vmx_vmxoff() \
     69 	if (__predict_false(_vmx_vmxoff() != 0)) { \
     70 		panic("%s: VMXOFF failed", __func__); \
     71 	}
     72 
     73 struct ept_desc {
     74 	uint64_t eptp;
     75 	uint64_t mbz;
     76 } __packed;
     77 
     78 struct vpid_desc {
     79 	uint64_t vpid;
     80 	uint64_t addr;
     81 } __packed;
     82 
     83 static inline void
     84 vmx_invept(uint64_t op, struct ept_desc *desc)
     85 {
     86 	asm volatile (
     87 		"invept		%[desc],%[op];"
     88 		"jz		vmx_insn_failvalid;"
     89 		"jc		vmx_insn_failinvalid;"
     90 		:
     91 		: [desc] "m" (*desc), [op] "r" (op)
     92 		: "memory", "cc"
     93 	);
     94 }
     95 
     96 static inline void
     97 vmx_invvpid(uint64_t op, struct vpid_desc *desc)
     98 {
     99 	asm volatile (
    100 		"invvpid	%[desc],%[op];"
    101 		"jz		vmx_insn_failvalid;"
    102 		"jc		vmx_insn_failinvalid;"
    103 		:
    104 		: [desc] "m" (*desc), [op] "r" (op)
    105 		: "memory", "cc"
    106 	);
    107 }
    108 
    109 static inline uint64_t
    110 vmx_vmread(uint64_t field)
    111 {
    112 	uint64_t value;
    113 
    114 	asm volatile (
    115 		"vmread		%[field],%[value];"
    116 		"jz		vmx_insn_failvalid;"
    117 		"jc		vmx_insn_failinvalid;"
    118 		: [value] "=r" (value)
    119 		: [field] "r" (field)
    120 		: "cc"
    121 	);
    122 
    123 	return value;
    124 }
    125 
    126 static inline void
    127 vmx_vmwrite(uint64_t field, uint64_t value)
    128 {
    129 	asm volatile (
    130 		"vmwrite	%[value],%[field];"
    131 		"jz		vmx_insn_failvalid;"
    132 		"jc		vmx_insn_failinvalid;"
    133 		:
    134 		: [field] "r" (field), [value] "r" (value)
    135 		: "cc"
    136 	);
    137 }
    138 
    139 static inline paddr_t __diagused
    140 vmx_vmptrst(void)
    141 {
    142 	paddr_t pa;
    143 
    144 	asm volatile (
    145 		"vmptrst	%[pa];"
    146 		:
    147 		: [pa] "m" (*(paddr_t *)&pa)
    148 		: "memory"
    149 	);
    150 
    151 	return pa;
    152 }
    153 
    154 static inline void
    155 vmx_vmptrld(paddr_t *pa)
    156 {
    157 	asm volatile (
    158 		"vmptrld	%[pa];"
    159 		"jz		vmx_insn_failvalid;"
    160 		"jc		vmx_insn_failinvalid;"
    161 		:
    162 		: [pa] "m" (*pa)
    163 		: "memory", "cc"
    164 	);
    165 }
    166 
    167 static inline void
    168 vmx_vmclear(paddr_t *pa)
    169 {
    170 	asm volatile (
    171 		"vmclear	%[pa];"
    172 		"jz		vmx_insn_failvalid;"
    173 		"jc		vmx_insn_failinvalid;"
    174 		:
    175 		: [pa] "m" (*pa)
    176 		: "memory", "cc"
    177 	);
    178 }
    179 
    180 static inline void
    181 vmx_cli(void)
    182 {
    183 	asm volatile ("cli" ::: "memory");
    184 }
    185 
    186 static inline void
    187 vmx_sti(void)
    188 {
    189 	asm volatile ("sti" ::: "memory");
    190 }
    191 
    192 #define MSR_IA32_FEATURE_CONTROL	0x003A
    193 #define		IA32_FEATURE_CONTROL_LOCK	__BIT(0)
    194 #define		IA32_FEATURE_CONTROL_IN_SMX	__BIT(1)
    195 #define		IA32_FEATURE_CONTROL_OUT_SMX	__BIT(2)
    196 
    197 #define MSR_IA32_VMX_BASIC		0x0480
    198 #define		IA32_VMX_BASIC_IDENT		__BITS(30,0)
    199 #define		IA32_VMX_BASIC_DATA_SIZE	__BITS(44,32)
    200 #define		IA32_VMX_BASIC_MEM_WIDTH	__BIT(48)
    201 #define		IA32_VMX_BASIC_DUAL		__BIT(49)
    202 #define		IA32_VMX_BASIC_MEM_TYPE		__BITS(53,50)
    203 #define			MEM_TYPE_UC		0
    204 #define			MEM_TYPE_WB		6
    205 #define		IA32_VMX_BASIC_IO_REPORT	__BIT(54)
    206 #define		IA32_VMX_BASIC_TRUE_CTLS	__BIT(55)
    207 
    208 #define MSR_IA32_VMX_PINBASED_CTLS		0x0481
    209 #define MSR_IA32_VMX_PROCBASED_CTLS		0x0482
    210 #define MSR_IA32_VMX_EXIT_CTLS			0x0483
    211 #define MSR_IA32_VMX_ENTRY_CTLS			0x0484
    212 #define MSR_IA32_VMX_PROCBASED_CTLS2		0x048B
    213 
    214 #define MSR_IA32_VMX_TRUE_PINBASED_CTLS		0x048D
    215 #define MSR_IA32_VMX_TRUE_PROCBASED_CTLS	0x048E
    216 #define MSR_IA32_VMX_TRUE_EXIT_CTLS		0x048F
    217 #define MSR_IA32_VMX_TRUE_ENTRY_CTLS		0x0490
    218 
    219 #define MSR_IA32_VMX_CR0_FIXED0			0x0486
    220 #define MSR_IA32_VMX_CR0_FIXED1			0x0487
    221 #define MSR_IA32_VMX_CR4_FIXED0			0x0488
    222 #define MSR_IA32_VMX_CR4_FIXED1			0x0489
    223 
    224 #define MSR_IA32_VMX_EPT_VPID_CAP	0x048C
    225 #define		IA32_VMX_EPT_VPID_XO			__BIT(0)
    226 #define		IA32_VMX_EPT_VPID_WALKLENGTH_4		__BIT(6)
    227 #define		IA32_VMX_EPT_VPID_UC			__BIT(8)
    228 #define		IA32_VMX_EPT_VPID_WB			__BIT(14)
    229 #define		IA32_VMX_EPT_VPID_2MB			__BIT(16)
    230 #define		IA32_VMX_EPT_VPID_1GB			__BIT(17)
    231 #define		IA32_VMX_EPT_VPID_INVEPT		__BIT(20)
    232 #define		IA32_VMX_EPT_VPID_FLAGS_AD		__BIT(21)
    233 #define		IA32_VMX_EPT_VPID_ADVANCED_VMEXIT_INFO	__BIT(22)
    234 #define		IA32_VMX_EPT_VPID_SHSTK			__BIT(23)
    235 #define		IA32_VMX_EPT_VPID_INVEPT_CONTEXT	__BIT(25)
    236 #define		IA32_VMX_EPT_VPID_INVEPT_ALL		__BIT(26)
    237 #define		IA32_VMX_EPT_VPID_INVVPID		__BIT(32)
    238 #define		IA32_VMX_EPT_VPID_INVVPID_ADDR		__BIT(40)
    239 #define		IA32_VMX_EPT_VPID_INVVPID_CONTEXT	__BIT(41)
    240 #define		IA32_VMX_EPT_VPID_INVVPID_ALL		__BIT(42)
    241 #define		IA32_VMX_EPT_VPID_INVVPID_CONTEXT_NOG	__BIT(43)
    242 
    243 /* -------------------------------------------------------------------------- */
    244 
    245 /* 16-bit control fields */
    246 #define VMCS_VPID				0x00000000
    247 #define VMCS_PIR_VECTOR				0x00000002
    248 #define VMCS_EPTP_INDEX				0x00000004
    249 /* 16-bit guest-state fields */
    250 #define VMCS_GUEST_ES_SELECTOR			0x00000800
    251 #define VMCS_GUEST_CS_SELECTOR			0x00000802
    252 #define VMCS_GUEST_SS_SELECTOR			0x00000804
    253 #define VMCS_GUEST_DS_SELECTOR			0x00000806
    254 #define VMCS_GUEST_FS_SELECTOR			0x00000808
    255 #define VMCS_GUEST_GS_SELECTOR			0x0000080A
    256 #define VMCS_GUEST_LDTR_SELECTOR		0x0000080C
    257 #define VMCS_GUEST_TR_SELECTOR			0x0000080E
    258 #define VMCS_GUEST_INTR_STATUS			0x00000810
    259 #define VMCS_PML_INDEX				0x00000812
    260 /* 16-bit host-state fields */
    261 #define VMCS_HOST_ES_SELECTOR			0x00000C00
    262 #define VMCS_HOST_CS_SELECTOR			0x00000C02
    263 #define VMCS_HOST_SS_SELECTOR			0x00000C04
    264 #define VMCS_HOST_DS_SELECTOR			0x00000C06
    265 #define VMCS_HOST_FS_SELECTOR			0x00000C08
    266 #define VMCS_HOST_GS_SELECTOR			0x00000C0A
    267 #define VMCS_HOST_TR_SELECTOR			0x00000C0C
    268 /* 64-bit control fields */
    269 #define VMCS_IO_BITMAP_A			0x00002000
    270 #define VMCS_IO_BITMAP_B			0x00002002
    271 #define VMCS_MSR_BITMAP				0x00002004
    272 #define VMCS_EXIT_MSR_STORE_ADDRESS		0x00002006
    273 #define VMCS_EXIT_MSR_LOAD_ADDRESS		0x00002008
    274 #define VMCS_ENTRY_MSR_LOAD_ADDRESS		0x0000200A
    275 #define VMCS_EXECUTIVE_VMCS			0x0000200C
    276 #define VMCS_PML_ADDRESS			0x0000200E
    277 #define VMCS_TSC_OFFSET				0x00002010
    278 #define VMCS_VIRTUAL_APIC			0x00002012
    279 #define VMCS_APIC_ACCESS			0x00002014
    280 #define VMCS_PIR_DESC				0x00002016
    281 #define VMCS_VM_CONTROL				0x00002018
    282 #define VMCS_EPTP				0x0000201A
    283 #define		EPTP_TYPE			__BITS(2,0)
    284 #define			EPTP_TYPE_UC		0
    285 #define			EPTP_TYPE_WB		6
    286 #define		EPTP_WALKLEN			__BITS(5,3)
    287 #define		EPTP_FLAGS_AD			__BIT(6)
    288 #define		EPTP_SSS			__BIT(7)
    289 #define		EPTP_PHYSADDR			__BITS(63,12)
    290 #define VMCS_EOI_EXIT0				0x0000201C
    291 #define VMCS_EOI_EXIT1				0x0000201E
    292 #define VMCS_EOI_EXIT2				0x00002020
    293 #define VMCS_EOI_EXIT3				0x00002022
    294 #define VMCS_EPTP_LIST				0x00002024
    295 #define VMCS_VMREAD_BITMAP			0x00002026
    296 #define VMCS_VMWRITE_BITMAP			0x00002028
    297 #define VMCS_VIRTUAL_EXCEPTION			0x0000202A
    298 #define VMCS_XSS_EXIT_BITMAP			0x0000202C
    299 #define VMCS_ENCLS_EXIT_BITMAP			0x0000202E
    300 #define VMCS_SUBPAGE_PERM_TABLE_PTR		0x00002030
    301 #define VMCS_TSC_MULTIPLIER			0x00002032
    302 #define VMCS_ENCLV_EXIT_BITMAP			0x00002036
    303 /* 64-bit read-only fields */
    304 #define VMCS_GUEST_PHYSICAL_ADDRESS		0x00002400
    305 /* 64-bit guest-state fields */
    306 #define VMCS_LINK_POINTER			0x00002800
    307 #define VMCS_GUEST_IA32_DEBUGCTL		0x00002802
    308 #define VMCS_GUEST_IA32_PAT			0x00002804
    309 #define VMCS_GUEST_IA32_EFER			0x00002806
    310 #define VMCS_GUEST_IA32_PERF_GLOBAL_CTRL	0x00002808
    311 #define VMCS_GUEST_PDPTE0			0x0000280A
    312 #define VMCS_GUEST_PDPTE1			0x0000280C
    313 #define VMCS_GUEST_PDPTE2			0x0000280E
    314 #define VMCS_GUEST_PDPTE3			0x00002810
    315 #define VMCS_GUEST_BNDCFGS			0x00002812
    316 #define VMCS_GUEST_RTIT_CTL			0x00002814
    317 #define VMCS_GUEST_PKRS				0x00002818
    318 /* 64-bit host-state fields */
    319 #define VMCS_HOST_IA32_PAT			0x00002C00
    320 #define VMCS_HOST_IA32_EFER			0x00002C02
    321 #define VMCS_HOST_IA32_PERF_GLOBAL_CTRL		0x00002C04
    322 #define VMCS_HOST_IA32_PKRS			0x00002C06
    323 /* 32-bit control fields */
    324 #define VMCS_PINBASED_CTLS			0x00004000
    325 #define		PIN_CTLS_INT_EXITING		__BIT(0)
    326 #define		PIN_CTLS_NMI_EXITING		__BIT(3)
    327 #define		PIN_CTLS_VIRTUAL_NMIS		__BIT(5)
    328 #define		PIN_CTLS_ACTIVATE_PREEMPT_TIMER	__BIT(6)
    329 #define		PIN_CTLS_PROCESS_POSTED_INTS	__BIT(7)
    330 #define VMCS_PROCBASED_CTLS			0x00004002
    331 #define		PROC_CTLS_INT_WINDOW_EXITING	__BIT(2)
    332 #define		PROC_CTLS_USE_TSC_OFFSETTING	__BIT(3)
    333 #define		PROC_CTLS_HLT_EXITING		__BIT(7)
    334 #define		PROC_CTLS_INVLPG_EXITING	__BIT(9)
    335 #define		PROC_CTLS_MWAIT_EXITING		__BIT(10)
    336 #define		PROC_CTLS_RDPMC_EXITING		__BIT(11)
    337 #define		PROC_CTLS_RDTSC_EXITING		__BIT(12)
    338 #define		PROC_CTLS_RCR3_EXITING		__BIT(15)
    339 #define		PROC_CTLS_LCR3_EXITING		__BIT(16)
    340 #define		PROC_CTLS_RCR8_EXITING		__BIT(19)
    341 #define		PROC_CTLS_LCR8_EXITING		__BIT(20)
    342 #define		PROC_CTLS_USE_TPR_SHADOW	__BIT(21)
    343 #define		PROC_CTLS_NMI_WINDOW_EXITING	__BIT(22)
    344 #define		PROC_CTLS_DR_EXITING		__BIT(23)
    345 #define		PROC_CTLS_UNCOND_IO_EXITING	__BIT(24)
    346 #define		PROC_CTLS_USE_IO_BITMAPS	__BIT(25)
    347 #define		PROC_CTLS_MONITOR_TRAP_FLAG	__BIT(27)
    348 #define		PROC_CTLS_USE_MSR_BITMAPS	__BIT(28)
    349 #define		PROC_CTLS_MONITOR_EXITING	__BIT(29)
    350 #define		PROC_CTLS_PAUSE_EXITING		__BIT(30)
    351 #define		PROC_CTLS_ACTIVATE_CTLS2	__BIT(31)
    352 #define VMCS_EXCEPTION_BITMAP			0x00004004
    353 #define VMCS_PF_ERROR_MASK			0x00004006
    354 #define VMCS_PF_ERROR_MATCH			0x00004008
    355 #define VMCS_CR3_TARGET_COUNT			0x0000400A
    356 #define VMCS_EXIT_CTLS				0x0000400C
    357 #define		EXIT_CTLS_SAVE_DEBUG_CONTROLS	__BIT(2)
    358 #define		EXIT_CTLS_HOST_LONG_MODE	__BIT(9)
    359 #define		EXIT_CTLS_LOAD_PERFGLOBALCTRL	__BIT(12)
    360 #define		EXIT_CTLS_ACK_INTERRUPT		__BIT(15)
    361 #define		EXIT_CTLS_SAVE_PAT		__BIT(18)
    362 #define		EXIT_CTLS_LOAD_PAT		__BIT(19)
    363 #define		EXIT_CTLS_SAVE_EFER		__BIT(20)
    364 #define		EXIT_CTLS_LOAD_EFER		__BIT(21)
    365 #define		EXIT_CTLS_SAVE_PREEMPT_TIMER	__BIT(22)
    366 #define		EXIT_CTLS_CLEAR_BNDCFGS		__BIT(23)
    367 #define		EXIT_CTLS_CONCEAL_PT		__BIT(24)
    368 #define		EXIT_CTLS_CLEAR_RTIT_CTL	__BIT(25)
    369 #define		EXIT_CTLS_LOAD_CET		__BIT(28)
    370 #define		EXIT_CTLS_LOAD_PKRS		__BIT(29)
    371 #define VMCS_EXIT_MSR_STORE_COUNT		0x0000400E
    372 #define VMCS_EXIT_MSR_LOAD_COUNT		0x00004010
    373 #define VMCS_ENTRY_CTLS				0x00004012
    374 #define		ENTRY_CTLS_LOAD_DEBUG_CONTROLS	__BIT(2)
    375 #define		ENTRY_CTLS_LONG_MODE		__BIT(9)
    376 #define		ENTRY_CTLS_SMM			__BIT(10)
    377 #define		ENTRY_CTLS_DISABLE_DUAL		__BIT(11)
    378 #define		ENTRY_CTLS_LOAD_PERFGLOBALCTRL	__BIT(13)
    379 #define		ENTRY_CTLS_LOAD_PAT		__BIT(14)
    380 #define		ENTRY_CTLS_LOAD_EFER		__BIT(15)
    381 #define		ENTRY_CTLS_LOAD_BNDCFGS		__BIT(16)
    382 #define		ENTRY_CTLS_CONCEAL_PT		__BIT(17)
    383 #define		ENTRY_CTLS_LOAD_RTIT_CTL	__BIT(18)
    384 #define		ENTRY_CTLS_LOAD_CET		__BIT(20)
    385 #define		ENTRY_CTLS_LOAD_PKRS		__BIT(22)
    386 #define VMCS_ENTRY_MSR_LOAD_COUNT		0x00004014
    387 #define VMCS_ENTRY_INTR_INFO			0x00004016
    388 #define		INTR_INFO_VECTOR		__BITS(7,0)
    389 #define		INTR_INFO_TYPE			__BITS(10,8)
    390 #define			INTR_TYPE_EXT_INT	0
    391 #define			INTR_TYPE_NMI		2
    392 #define			INTR_TYPE_HW_EXC	3
    393 #define			INTR_TYPE_SW_INT	4
    394 #define			INTR_TYPE_PRIV_SW_EXC	5
    395 #define			INTR_TYPE_SW_EXC	6
    396 #define			INTR_TYPE_OTHER		7
    397 #define		INTR_INFO_ERROR			__BIT(11)
    398 #define		INTR_INFO_VALID			__BIT(31)
    399 #define VMCS_ENTRY_EXCEPTION_ERROR		0x00004018
    400 #define VMCS_ENTRY_INSTRUCTION_LENGTH		0x0000401A
    401 #define VMCS_TPR_THRESHOLD			0x0000401C
    402 #define VMCS_PROCBASED_CTLS2			0x0000401E
    403 #define		PROC_CTLS2_VIRT_APIC_ACCESSES	__BIT(0)
    404 #define		PROC_CTLS2_ENABLE_EPT		__BIT(1)
    405 #define		PROC_CTLS2_DESC_TABLE_EXITING	__BIT(2)
    406 #define		PROC_CTLS2_ENABLE_RDTSCP	__BIT(3)
    407 #define		PROC_CTLS2_VIRT_X2APIC		__BIT(4)
    408 #define		PROC_CTLS2_ENABLE_VPID		__BIT(5)
    409 #define		PROC_CTLS2_WBINVD_EXITING	__BIT(6)
    410 #define		PROC_CTLS2_UNRESTRICTED_GUEST	__BIT(7)
    411 #define		PROC_CTLS2_APIC_REG_VIRT	__BIT(8)
    412 #define		PROC_CTLS2_VIRT_INT_DELIVERY	__BIT(9)
    413 #define		PROC_CTLS2_PAUSE_LOOP_EXITING	__BIT(10)
    414 #define		PROC_CTLS2_RDRAND_EXITING	__BIT(11)
    415 #define		PROC_CTLS2_INVPCID_ENABLE	__BIT(12)
    416 #define		PROC_CTLS2_VMFUNC_ENABLE	__BIT(13)
    417 #define		PROC_CTLS2_VMCS_SHADOWING	__BIT(14)
    418 #define		PROC_CTLS2_ENCLS_EXITING	__BIT(15)
    419 #define		PROC_CTLS2_RDSEED_EXITING	__BIT(16)
    420 #define		PROC_CTLS2_PML_ENABLE		__BIT(17)
    421 #define		PROC_CTLS2_EPT_VIOLATION	__BIT(18)
    422 #define		PROC_CTLS2_CONCEAL_VMX_FROM_PT	__BIT(19)
    423 #define		PROC_CTLS2_XSAVES_ENABLE	__BIT(20)
    424 #define		PROC_CTLS2_MODE_BASED_EXEC_EPT	__BIT(22)
    425 #define		PROC_CTLS2_SUBPAGE_PERMISSIONS	__BIT(23)
    426 #define		PROC_CTLS2_PT_USES_GPA		__BIT(24)
    427 #define		PROC_CTLS2_USE_TSC_SCALING	__BIT(25)
    428 #define		PROC_CTLS2_WAIT_PAUSE_ENABLE	__BIT(26)
    429 #define		PROC_CTLS2_ENCLV_EXITING	__BIT(28)
    430 #define VMCS_PLE_GAP				0x00004020
    431 #define VMCS_PLE_WINDOW				0x00004022
    432 /* 32-bit read-only data fields */
    433 #define VMCS_INSTRUCTION_ERROR			0x00004400
    434 #define VMCS_EXIT_REASON			0x00004402
    435 #define VMCS_EXIT_INTR_INFO			0x00004404
    436 #define VMCS_EXIT_INTR_ERRCODE			0x00004406
    437 #define VMCS_IDT_VECTORING_INFO			0x00004408
    438 #define VMCS_IDT_VECTORING_ERROR		0x0000440A
    439 #define VMCS_EXIT_INSTRUCTION_LENGTH		0x0000440C
    440 #define VMCS_EXIT_INSTRUCTION_INFO		0x0000440E
    441 /* 32-bit guest-state fields */
    442 #define VMCS_GUEST_ES_LIMIT			0x00004800
    443 #define VMCS_GUEST_CS_LIMIT			0x00004802
    444 #define VMCS_GUEST_SS_LIMIT			0x00004804
    445 #define VMCS_GUEST_DS_LIMIT			0x00004806
    446 #define VMCS_GUEST_FS_LIMIT			0x00004808
    447 #define VMCS_GUEST_GS_LIMIT			0x0000480A
    448 #define VMCS_GUEST_LDTR_LIMIT			0x0000480C
    449 #define VMCS_GUEST_TR_LIMIT			0x0000480E
    450 #define VMCS_GUEST_GDTR_LIMIT			0x00004810
    451 #define VMCS_GUEST_IDTR_LIMIT			0x00004812
    452 #define VMCS_GUEST_ES_ACCESS_RIGHTS		0x00004814
    453 #define VMCS_GUEST_CS_ACCESS_RIGHTS		0x00004816
    454 #define VMCS_GUEST_SS_ACCESS_RIGHTS		0x00004818
    455 #define VMCS_GUEST_DS_ACCESS_RIGHTS		0x0000481A
    456 #define VMCS_GUEST_FS_ACCESS_RIGHTS		0x0000481C
    457 #define VMCS_GUEST_GS_ACCESS_RIGHTS		0x0000481E
    458 #define VMCS_GUEST_LDTR_ACCESS_RIGHTS		0x00004820
    459 #define VMCS_GUEST_TR_ACCESS_RIGHTS		0x00004822
    460 #define VMCS_GUEST_INTERRUPTIBILITY		0x00004824
    461 #define		INT_STATE_STI			__BIT(0)
    462 #define		INT_STATE_MOVSS			__BIT(1)
    463 #define		INT_STATE_SMI			__BIT(2)
    464 #define		INT_STATE_NMI			__BIT(3)
    465 #define		INT_STATE_ENCLAVE		__BIT(4)
    466 #define VMCS_GUEST_ACTIVITY			0x00004826
    467 #define VMCS_GUEST_SMBASE			0x00004828
    468 #define VMCS_GUEST_IA32_SYSENTER_CS		0x0000482A
    469 #define VMCS_PREEMPTION_TIMER_VALUE		0x0000482E
    470 /* 32-bit host state fields */
    471 #define VMCS_HOST_IA32_SYSENTER_CS		0x00004C00
    472 /* Natural-Width control fields */
    473 #define VMCS_CR0_MASK				0x00006000
    474 #define VMCS_CR4_MASK				0x00006002
    475 #define VMCS_CR0_SHADOW				0x00006004
    476 #define VMCS_CR4_SHADOW				0x00006006
    477 #define VMCS_CR3_TARGET0			0x00006008
    478 #define VMCS_CR3_TARGET1			0x0000600A
    479 #define VMCS_CR3_TARGET2			0x0000600C
    480 #define VMCS_CR3_TARGET3			0x0000600E
    481 /* Natural-Width read-only fields */
    482 #define VMCS_EXIT_QUALIFICATION			0x00006400
    483 #define VMCS_IO_RCX				0x00006402
    484 #define VMCS_IO_RSI				0x00006404
    485 #define VMCS_IO_RDI				0x00006406
    486 #define VMCS_IO_RIP				0x00006408
    487 #define VMCS_GUEST_LINEAR_ADDRESS		0x0000640A
    488 /* Natural-Width guest-state fields */
    489 #define VMCS_GUEST_CR0				0x00006800
    490 #define VMCS_GUEST_CR3				0x00006802
    491 #define VMCS_GUEST_CR4				0x00006804
    492 #define VMCS_GUEST_ES_BASE			0x00006806
    493 #define VMCS_GUEST_CS_BASE			0x00006808
    494 #define VMCS_GUEST_SS_BASE			0x0000680A
    495 #define VMCS_GUEST_DS_BASE			0x0000680C
    496 #define VMCS_GUEST_FS_BASE			0x0000680E
    497 #define VMCS_GUEST_GS_BASE			0x00006810
    498 #define VMCS_GUEST_LDTR_BASE			0x00006812
    499 #define VMCS_GUEST_TR_BASE			0x00006814
    500 #define VMCS_GUEST_GDTR_BASE			0x00006816
    501 #define VMCS_GUEST_IDTR_BASE			0x00006818
    502 #define VMCS_GUEST_DR7				0x0000681A
    503 #define VMCS_GUEST_RSP				0x0000681C
    504 #define VMCS_GUEST_RIP				0x0000681E
    505 #define VMCS_GUEST_RFLAGS			0x00006820
    506 #define VMCS_GUEST_PENDING_DBG_EXCEPTIONS	0x00006822
    507 #define VMCS_GUEST_IA32_SYSENTER_ESP		0x00006824
    508 #define VMCS_GUEST_IA32_SYSENTER_EIP		0x00006826
    509 #define VMCS_GUEST_IA32_S_CET			0x00006828
    510 #define VMCS_GUEST_SSP				0x0000682A
    511 #define VMCS_GUEST_IA32_INTR_SSP_TABLE		0x0000682C
    512 /* Natural-Width host-state fields */
    513 #define VMCS_HOST_CR0				0x00006C00
    514 #define VMCS_HOST_CR3				0x00006C02
    515 #define VMCS_HOST_CR4				0x00006C04
    516 #define VMCS_HOST_FS_BASE			0x00006C06
    517 #define VMCS_HOST_GS_BASE			0x00006C08
    518 #define VMCS_HOST_TR_BASE			0x00006C0A
    519 #define VMCS_HOST_GDTR_BASE			0x00006C0C
    520 #define VMCS_HOST_IDTR_BASE			0x00006C0E
    521 #define VMCS_HOST_IA32_SYSENTER_ESP		0x00006C10
    522 #define VMCS_HOST_IA32_SYSENTER_EIP		0x00006C12
    523 #define VMCS_HOST_RSP				0x00006C14
    524 #define VMCS_HOST_RIP				0x00006C16
    525 #define VMCS_HOST_IA32_S_CET			0x00006C18
    526 #define VMCS_HOST_SSP				0x00006C1A
    527 #define VMCS_HOST_IA32_INTR_SSP_TABLE		0x00006C1C
    528 
    529 /* VMX basic exit reasons. */
    530 #define VMCS_EXITCODE_EXC_NMI			0
    531 #define VMCS_EXITCODE_EXT_INT			1
    532 #define VMCS_EXITCODE_SHUTDOWN			2
    533 #define VMCS_EXITCODE_INIT			3
    534 #define VMCS_EXITCODE_SIPI			4
    535 #define VMCS_EXITCODE_SMI			5
    536 #define VMCS_EXITCODE_OTHER_SMI			6
    537 #define VMCS_EXITCODE_INT_WINDOW		7
    538 #define VMCS_EXITCODE_NMI_WINDOW		8
    539 #define VMCS_EXITCODE_TASK_SWITCH		9
    540 #define VMCS_EXITCODE_CPUID			10
    541 #define VMCS_EXITCODE_GETSEC			11
    542 #define VMCS_EXITCODE_HLT			12
    543 #define VMCS_EXITCODE_INVD			13
    544 #define VMCS_EXITCODE_INVLPG			14
    545 #define VMCS_EXITCODE_RDPMC			15
    546 #define VMCS_EXITCODE_RDTSC			16
    547 #define VMCS_EXITCODE_RSM			17
    548 #define VMCS_EXITCODE_VMCALL			18
    549 #define VMCS_EXITCODE_VMCLEAR			19
    550 #define VMCS_EXITCODE_VMLAUNCH			20
    551 #define VMCS_EXITCODE_VMPTRLD			21
    552 #define VMCS_EXITCODE_VMPTRST			22
    553 #define VMCS_EXITCODE_VMREAD			23
    554 #define VMCS_EXITCODE_VMRESUME			24
    555 #define VMCS_EXITCODE_VMWRITE			25
    556 #define VMCS_EXITCODE_VMXOFF			26
    557 #define VMCS_EXITCODE_VMXON			27
    558 #define VMCS_EXITCODE_CR			28
    559 #define VMCS_EXITCODE_DR			29
    560 #define VMCS_EXITCODE_IO			30
    561 #define VMCS_EXITCODE_RDMSR			31
    562 #define VMCS_EXITCODE_WRMSR			32
    563 #define VMCS_EXITCODE_FAIL_GUEST_INVALID	33
    564 #define VMCS_EXITCODE_FAIL_MSR_INVALID		34
    565 #define VMCS_EXITCODE_MWAIT			36
    566 #define VMCS_EXITCODE_TRAP_FLAG			37
    567 #define VMCS_EXITCODE_MONITOR			39
    568 #define VMCS_EXITCODE_PAUSE			40
    569 #define VMCS_EXITCODE_FAIL_MACHINE_CHECK	41
    570 #define VMCS_EXITCODE_TPR_BELOW			43
    571 #define VMCS_EXITCODE_APIC_ACCESS		44
    572 #define VMCS_EXITCODE_VEOI			45
    573 #define VMCS_EXITCODE_GDTR_IDTR			46
    574 #define VMCS_EXITCODE_LDTR_TR			47
    575 #define VMCS_EXITCODE_EPT_VIOLATION		48
    576 #define VMCS_EXITCODE_EPT_MISCONFIG		49
    577 #define VMCS_EXITCODE_INVEPT			50
    578 #define VMCS_EXITCODE_RDTSCP			51
    579 #define VMCS_EXITCODE_PREEMPT_TIMEOUT		52
    580 #define VMCS_EXITCODE_INVVPID			53
    581 #define VMCS_EXITCODE_WBINVD			54
    582 #define VMCS_EXITCODE_XSETBV			55
    583 #define VMCS_EXITCODE_APIC_WRITE		56
    584 #define VMCS_EXITCODE_RDRAND			57
    585 #define VMCS_EXITCODE_INVPCID			58
    586 #define VMCS_EXITCODE_VMFUNC			59
    587 #define VMCS_EXITCODE_ENCLS			60
    588 #define VMCS_EXITCODE_RDSEED			61
    589 #define VMCS_EXITCODE_PAGE_LOG_FULL		62
    590 #define VMCS_EXITCODE_XSAVES			63
    591 #define VMCS_EXITCODE_XRSTORS			64
    592 #define VMCS_EXITCODE_SPP			66
    593 #define VMCS_EXITCODE_UMWAIT			67
    594 #define VMCS_EXITCODE_TPAUSE			68
    595 
    596 /* -------------------------------------------------------------------------- */
    597 
    598 static void vmx_vcpu_state_provide(struct nvmm_cpu *, uint64_t);
    599 static void vmx_vcpu_state_commit(struct nvmm_cpu *);
    600 
    601 #define VMX_MSRLIST_STAR		0
    602 #define VMX_MSRLIST_LSTAR		1
    603 #define VMX_MSRLIST_CSTAR		2
    604 #define VMX_MSRLIST_SFMASK		3
    605 #define VMX_MSRLIST_KERNELGSBASE	4
    606 #define VMX_MSRLIST_EXIT_NMSR		5
    607 #define VMX_MSRLIST_L1DFLUSH		5
    608 
    609 /* On entry, we may do +1 to include L1DFLUSH. */
    610 static size_t vmx_msrlist_entry_nmsr __read_mostly = VMX_MSRLIST_EXIT_NMSR;
    611 
    612 struct vmxon {
    613 	uint32_t ident;
    614 #define VMXON_IDENT_REVISION	__BITS(30,0)
    615 
    616 	uint8_t data[PAGE_SIZE - 4];
    617 } __packed;
    618 
    619 CTASSERT(sizeof(struct vmxon) == PAGE_SIZE);
    620 
    621 struct vmxoncpu {
    622 	vaddr_t va;
    623 	paddr_t pa;
    624 };
    625 
    626 static struct vmxoncpu vmxoncpu[MAXCPUS];
    627 
    628 struct vmcs {
    629 	uint32_t ident;
    630 #define VMCS_IDENT_REVISION	__BITS(30,0)
    631 #define VMCS_IDENT_SHADOW	__BIT(31)
    632 
    633 	uint32_t abort;
    634 	uint8_t data[PAGE_SIZE - 8];
    635 } __packed;
    636 
    637 CTASSERT(sizeof(struct vmcs) == PAGE_SIZE);
    638 
    639 struct msr_entry {
    640 	uint32_t msr;
    641 	uint32_t rsvd;
    642 	uint64_t val;
    643 } __packed;
    644 
    645 #define VPID_MAX	0xFFFF
    646 
    647 /* Make sure we never run out of VPIDs. */
    648 CTASSERT(VPID_MAX-1 >= NVMM_MAX_MACHINES * NVMM_MAX_VCPUS);
    649 
    650 static uint64_t vmx_tlb_flush_op __read_mostly;
    651 static uint64_t vmx_ept_flush_op __read_mostly;
    652 static uint64_t vmx_eptp_type __read_mostly;
    653 
    654 static uint64_t vmx_pinbased_ctls __read_mostly;
    655 static uint64_t vmx_procbased_ctls __read_mostly;
    656 static uint64_t vmx_procbased_ctls2 __read_mostly;
    657 static uint64_t vmx_entry_ctls __read_mostly;
    658 static uint64_t vmx_exit_ctls __read_mostly;
    659 
    660 static uint64_t vmx_cr0_fixed0 __read_mostly;
    661 static uint64_t vmx_cr0_fixed1 __read_mostly;
    662 static uint64_t vmx_cr4_fixed0 __read_mostly;
    663 static uint64_t vmx_cr4_fixed1 __read_mostly;
    664 
    665 extern bool pmap_ept_has_ad;
    666 
    667 #define VMX_PINBASED_CTLS_ONE	\
    668 	(PIN_CTLS_INT_EXITING| \
    669 	 PIN_CTLS_NMI_EXITING| \
    670 	 PIN_CTLS_VIRTUAL_NMIS)
    671 
    672 #define VMX_PINBASED_CTLS_ZERO	0
    673 
    674 #define VMX_PROCBASED_CTLS_ONE	\
    675 	(PROC_CTLS_USE_TSC_OFFSETTING| \
    676 	 PROC_CTLS_HLT_EXITING| \
    677 	 PROC_CTLS_MWAIT_EXITING | \
    678 	 PROC_CTLS_RDPMC_EXITING | \
    679 	 PROC_CTLS_RCR8_EXITING | \
    680 	 PROC_CTLS_LCR8_EXITING | \
    681 	 PROC_CTLS_UNCOND_IO_EXITING | /* no I/O bitmap */ \
    682 	 PROC_CTLS_USE_MSR_BITMAPS | \
    683 	 PROC_CTLS_MONITOR_EXITING | \
    684 	 PROC_CTLS_ACTIVATE_CTLS2)
    685 
    686 #define VMX_PROCBASED_CTLS_ZERO	\
    687 	(PROC_CTLS_RCR3_EXITING| \
    688 	 PROC_CTLS_LCR3_EXITING)
    689 
    690 #define VMX_PROCBASED_CTLS2_ONE	\
    691 	(PROC_CTLS2_ENABLE_EPT| \
    692 	 PROC_CTLS2_ENABLE_VPID| \
    693 	 PROC_CTLS2_UNRESTRICTED_GUEST)
    694 
    695 #define VMX_PROCBASED_CTLS2_ZERO	0
    696 
    697 #define VMX_ENTRY_CTLS_ONE	\
    698 	(ENTRY_CTLS_LOAD_DEBUG_CONTROLS| \
    699 	 ENTRY_CTLS_LOAD_EFER| \
    700 	 ENTRY_CTLS_LOAD_PAT)
    701 
    702 #define VMX_ENTRY_CTLS_ZERO	\
    703 	(ENTRY_CTLS_SMM| \
    704 	 ENTRY_CTLS_DISABLE_DUAL)
    705 
    706 #define VMX_EXIT_CTLS_ONE	\
    707 	(EXIT_CTLS_SAVE_DEBUG_CONTROLS| \
    708 	 EXIT_CTLS_HOST_LONG_MODE| \
    709 	 EXIT_CTLS_SAVE_PAT| \
    710 	 EXIT_CTLS_LOAD_PAT| \
    711 	 EXIT_CTLS_SAVE_EFER| \
    712 	 EXIT_CTLS_LOAD_EFER)
    713 
    714 #define VMX_EXIT_CTLS_ZERO	0
    715 
    716 static uint8_t *vmx_asidmap __read_mostly;
    717 static uint32_t vmx_maxasid __read_mostly;
    718 static kmutex_t vmx_asidlock __cacheline_aligned;
    719 
    720 static uint64_t vmx_xcr0_mask __read_mostly;
    721 
    722 #define VMX_NCPUIDS	32
    723 
    724 #define VMCS_NPAGES	1
    725 #define VMCS_SIZE	(VMCS_NPAGES * PAGE_SIZE)
    726 
    727 #define MSRBM_NPAGES	1
    728 #define MSRBM_SIZE	(MSRBM_NPAGES * PAGE_SIZE)
    729 
    730 #define CR0_STATIC_MASK \
    731 	(CR0_ET | CR0_NW | CR0_CD)
    732 
    733 #define CR4_VALID \
    734 	(CR4_VME |			\
    735 	 CR4_PVI |			\
    736 	 CR4_TSD |			\
    737 	 CR4_DE |			\
    738 	 CR4_PSE |			\
    739 	 CR4_PAE |			\
    740 	 CR4_MCE |			\
    741 	 CR4_PGE |			\
    742 	 CR4_PCE |			\
    743 	 CR4_OSFXSR |			\
    744 	 CR4_OSXMMEXCPT |		\
    745 	 CR4_UMIP |			\
    746 	 /* CR4_LA57 excluded */	\
    747 	 /* CR4_VMXE excluded */	\
    748 	 /* CR4_SMXE excluded */	\
    749 	 CR4_FSGSBASE |			\
    750 	 CR4_PCIDE |			\
    751 	 CR4_OSXSAVE |			\
    752 	 CR4_SMEP |			\
    753 	 CR4_SMAP			\
    754 	 /* CR4_PKE excluded */		\
    755 	 /* CR4_CET excluded */		\
    756 	 /* CR4_PKS excluded */)
    757 #define CR4_INVALID \
    758 	(0xFFFFFFFFFFFFFFFFULL & ~CR4_VALID)
    759 
    760 #define EFER_TLB_FLUSH \
    761 	(EFER_NXE|EFER_LMA|EFER_LME)
    762 #define CR0_TLB_FLUSH \
    763 	(CR0_PG|CR0_WP|CR0_CD|CR0_NW)
    764 #define CR4_TLB_FLUSH \
    765 	(CR4_PSE|CR4_PAE|CR4_PGE|CR4_PCIDE|CR4_SMEP)
    766 
    767 /* -------------------------------------------------------------------------- */
    768 
    769 struct vmx_machdata {
    770 	volatile uint64_t mach_htlb_gen;
    771 };
    772 
    773 static const size_t vmx_vcpu_conf_sizes[NVMM_X86_VCPU_NCONF] = {
    774 	[NVMM_VCPU_CONF_MD(NVMM_VCPU_CONF_CPUID)] =
    775 	    sizeof(struct nvmm_vcpu_conf_cpuid),
    776 	[NVMM_VCPU_CONF_MD(NVMM_VCPU_CONF_TPR)] =
    777 	    sizeof(struct nvmm_vcpu_conf_tpr),
    778 	[NVMM_VCPU_CONF_MD(NVMM_VCPU_CONF_XCR0_MASK)] =
    779 	    sizeof(uint64_t),
    780 };
    781 
    782 struct vmx_cpudata {
    783 	/* General */
    784 	uint64_t asid;
    785 	bool gtlb_want_flush;
    786 	bool gtsc_want_update;
    787 	uint64_t vcpu_htlb_gen;
    788 	kcpuset_t *htlb_want_flush;
    789 
    790 	/* VMCS */
    791 	struct vmcs *vmcs;
    792 	paddr_t vmcs_pa;
    793 	size_t vmcs_refcnt;
    794 	struct cpu_info *vmcs_ci;
    795 	bool vmcs_launched;
    796 
    797 	/* MSR bitmap */
    798 	uint8_t *msrbm;
    799 	paddr_t msrbm_pa;
    800 
    801 	/* Host state */
    802 	uint64_t hxcr0;
    803 	uint64_t star;
    804 	uint64_t lstar;
    805 	uint64_t cstar;
    806 	uint64_t sfmask;
    807 	uint64_t kernelgsbase;
    808 
    809 	/* Intr state */
    810 	bool int_window_exit;
    811 	bool nmi_window_exit;
    812 	bool evt_pending;
    813 
    814 	/* Guest state */
    815 	struct msr_entry *gmsr;
    816 	paddr_t gmsr_pa;
    817 	uint64_t gmsr_misc_enable;
    818 	uint64_t gcr2;
    819 	uint64_t gcr8;
    820 	uint64_t gxcr0;
    821 	uint64_t gprs[NVMM_X64_NGPR];
    822 	uint64_t drs[NVMM_X64_NDR];
    823 	uint64_t gtsc;
    824 
    825 	/* VCPU configuration. */
    826 	bool cpuidpresent[VMX_NCPUIDS];
    827 	struct nvmm_vcpu_conf_cpuid cpuid[VMX_NCPUIDS];
    828 	struct nvmm_vcpu_conf_tpr tpr;
    829 	uint64_t xcr0_mask;
    830 
    831 	/*
    832 	 * Guest XSAVE state.  Must be the last member because it may
    833 	 * be extended variably by whatever CPU we're running on.  We
    834 	 * add a flexible array member afterward to ward UB-exploiting
    835 	 * compilers away from memset/memcpy calls that access it.
    836 	 */
    837 	struct xsave_header gfpu __aligned(64);
    838 	uint8_t gfpu_ext[];
    839 };
    840 
    841 static const struct {
    842 	uint64_t selector;
    843 	uint64_t attrib;
    844 	uint64_t limit;
    845 	uint64_t base;
    846 } vmx_guest_segs[NVMM_X64_NSEG] = {
    847 	[NVMM_X64_SEG_ES] = {
    848 		VMCS_GUEST_ES_SELECTOR,
    849 		VMCS_GUEST_ES_ACCESS_RIGHTS,
    850 		VMCS_GUEST_ES_LIMIT,
    851 		VMCS_GUEST_ES_BASE
    852 	},
    853 	[NVMM_X64_SEG_CS] = {
    854 		VMCS_GUEST_CS_SELECTOR,
    855 		VMCS_GUEST_CS_ACCESS_RIGHTS,
    856 		VMCS_GUEST_CS_LIMIT,
    857 		VMCS_GUEST_CS_BASE
    858 	},
    859 	[NVMM_X64_SEG_SS] = {
    860 		VMCS_GUEST_SS_SELECTOR,
    861 		VMCS_GUEST_SS_ACCESS_RIGHTS,
    862 		VMCS_GUEST_SS_LIMIT,
    863 		VMCS_GUEST_SS_BASE
    864 	},
    865 	[NVMM_X64_SEG_DS] = {
    866 		VMCS_GUEST_DS_SELECTOR,
    867 		VMCS_GUEST_DS_ACCESS_RIGHTS,
    868 		VMCS_GUEST_DS_LIMIT,
    869 		VMCS_GUEST_DS_BASE
    870 	},
    871 	[NVMM_X64_SEG_FS] = {
    872 		VMCS_GUEST_FS_SELECTOR,
    873 		VMCS_GUEST_FS_ACCESS_RIGHTS,
    874 		VMCS_GUEST_FS_LIMIT,
    875 		VMCS_GUEST_FS_BASE
    876 	},
    877 	[NVMM_X64_SEG_GS] = {
    878 		VMCS_GUEST_GS_SELECTOR,
    879 		VMCS_GUEST_GS_ACCESS_RIGHTS,
    880 		VMCS_GUEST_GS_LIMIT,
    881 		VMCS_GUEST_GS_BASE
    882 	},
    883 	[NVMM_X64_SEG_GDT] = {
    884 		0, /* doesn't exist */
    885 		0, /* doesn't exist */
    886 		VMCS_GUEST_GDTR_LIMIT,
    887 		VMCS_GUEST_GDTR_BASE
    888 	},
    889 	[NVMM_X64_SEG_IDT] = {
    890 		0, /* doesn't exist */
    891 		0, /* doesn't exist */
    892 		VMCS_GUEST_IDTR_LIMIT,
    893 		VMCS_GUEST_IDTR_BASE
    894 	},
    895 	[NVMM_X64_SEG_LDT] = {
    896 		VMCS_GUEST_LDTR_SELECTOR,
    897 		VMCS_GUEST_LDTR_ACCESS_RIGHTS,
    898 		VMCS_GUEST_LDTR_LIMIT,
    899 		VMCS_GUEST_LDTR_BASE
    900 	},
    901 	[NVMM_X64_SEG_TR] = {
    902 		VMCS_GUEST_TR_SELECTOR,
    903 		VMCS_GUEST_TR_ACCESS_RIGHTS,
    904 		VMCS_GUEST_TR_LIMIT,
    905 		VMCS_GUEST_TR_BASE
    906 	}
    907 };
    908 
    909 /* -------------------------------------------------------------------------- */
    910 
    911 static uint64_t
    912 vmx_get_revision(void)
    913 {
    914 	uint64_t msr;
    915 
    916 	msr = rdmsr(MSR_IA32_VMX_BASIC);
    917 	msr &= IA32_VMX_BASIC_IDENT;
    918 
    919 	return msr;
    920 }
    921 
    922 static void
    923 vmx_vmclear_ipi(void *arg1, void *arg2)
    924 {
    925 	paddr_t vmcs_pa = (paddr_t)arg1;
    926 	vmx_vmclear(&vmcs_pa);
    927 }
    928 
    929 static void
    930 vmx_vmclear_remote(struct cpu_info *ci, paddr_t vmcs_pa)
    931 {
    932 	uint64_t xc;
    933 	int bound;
    934 
    935 	KASSERT(kpreempt_disabled());
    936 
    937 	bound = curlwp_bind();
    938 	kpreempt_enable();
    939 
    940 	xc = xc_unicast(XC_HIGHPRI, vmx_vmclear_ipi, (void *)vmcs_pa, NULL, ci);
    941 	xc_wait(xc);
    942 
    943 	kpreempt_disable();
    944 	curlwp_bindx(bound);
    945 }
    946 
    947 static void
    948 vmx_vmcs_enter(struct nvmm_cpu *vcpu)
    949 {
    950 	struct vmx_cpudata *cpudata = vcpu->cpudata;
    951 	struct cpu_info *vmcs_ci;
    952 
    953 	cpudata->vmcs_refcnt++;
    954 	if (cpudata->vmcs_refcnt > 1) {
    955 		KASSERT(kpreempt_disabled());
    956 		KASSERT(vmx_vmptrst() == cpudata->vmcs_pa);
    957 		return;
    958 	}
    959 
    960 	vmcs_ci = cpudata->vmcs_ci;
    961 	cpudata->vmcs_ci = (void *)0x00FFFFFFFFFFFFFF; /* clobber */
    962 
    963 	kpreempt_disable();
    964 
    965 	if (vmcs_ci == NULL) {
    966 		/* This VMCS is loaded for the first time. */
    967 		vmx_vmclear(&cpudata->vmcs_pa);
    968 		cpudata->vmcs_launched = false;
    969 	} else if (vmcs_ci != curcpu()) {
    970 		/* This VMCS is active on a remote CPU. */
    971 		vmx_vmclear_remote(vmcs_ci, cpudata->vmcs_pa);
    972 		cpudata->vmcs_launched = false;
    973 	} else {
    974 		/* This VMCS is active on curcpu, nothing to do. */
    975 	}
    976 
    977 	vmx_vmptrld(&cpudata->vmcs_pa);
    978 }
    979 
    980 static void
    981 vmx_vmcs_leave(struct nvmm_cpu *vcpu)
    982 {
    983 	struct vmx_cpudata *cpudata = vcpu->cpudata;
    984 
    985 	KASSERT(kpreempt_disabled());
    986 	KASSERT(vmx_vmptrst() == cpudata->vmcs_pa);
    987 	KASSERT(cpudata->vmcs_refcnt > 0);
    988 	cpudata->vmcs_refcnt--;
    989 
    990 	if (cpudata->vmcs_refcnt > 0) {
    991 		return;
    992 	}
    993 
    994 	cpudata->vmcs_ci = curcpu();
    995 	kpreempt_enable();
    996 }
    997 
    998 static void
    999 vmx_vmcs_destroy(struct nvmm_cpu *vcpu)
   1000 {
   1001 	struct vmx_cpudata *cpudata = vcpu->cpudata;
   1002 
   1003 	KASSERT(kpreempt_disabled());
   1004 	KASSERT(vmx_vmptrst() == cpudata->vmcs_pa);
   1005 	KASSERT(cpudata->vmcs_refcnt == 1);
   1006 	cpudata->vmcs_refcnt--;
   1007 
   1008 	vmx_vmclear(&cpudata->vmcs_pa);
   1009 	kpreempt_enable();
   1010 }
   1011 
   1012 /* -------------------------------------------------------------------------- */
   1013 
   1014 static void
   1015 vmx_event_waitexit_enable(struct nvmm_cpu *vcpu, bool nmi)
   1016 {
   1017 	struct vmx_cpudata *cpudata = vcpu->cpudata;
   1018 	uint64_t ctls1;
   1019 
   1020 	ctls1 = vmx_vmread(VMCS_PROCBASED_CTLS);
   1021 
   1022 	if (nmi) {
   1023 		// XXX INT_STATE_NMI?
   1024 		ctls1 |= PROC_CTLS_NMI_WINDOW_EXITING;
   1025 		cpudata->nmi_window_exit = true;
   1026 	} else {
   1027 		ctls1 |= PROC_CTLS_INT_WINDOW_EXITING;
   1028 		cpudata->int_window_exit = true;
   1029 	}
   1030 
   1031 	vmx_vmwrite(VMCS_PROCBASED_CTLS, ctls1);
   1032 }
   1033 
   1034 static void
   1035 vmx_event_waitexit_disable(struct nvmm_cpu *vcpu, bool nmi)
   1036 {
   1037 	struct vmx_cpudata *cpudata = vcpu->cpudata;
   1038 	uint64_t ctls1;
   1039 
   1040 	ctls1 = vmx_vmread(VMCS_PROCBASED_CTLS);
   1041 
   1042 	if (nmi) {
   1043 		ctls1 &= ~PROC_CTLS_NMI_WINDOW_EXITING;
   1044 		cpudata->nmi_window_exit = false;
   1045 	} else {
   1046 		ctls1 &= ~PROC_CTLS_INT_WINDOW_EXITING;
   1047 		cpudata->int_window_exit = false;
   1048 	}
   1049 
   1050 	vmx_vmwrite(VMCS_PROCBASED_CTLS, ctls1);
   1051 }
   1052 
   1053 static inline bool
   1054 vmx_excp_has_rf(uint8_t vector)
   1055 {
   1056 	switch (vector) {
   1057 	case 1:		/* #DB */
   1058 	case 4:		/* #OF */
   1059 	case 8:		/* #DF */
   1060 	case 18:	/* #MC */
   1061 		return false;
   1062 	default:
   1063 		return true;
   1064 	}
   1065 }
   1066 
   1067 static inline int
   1068 vmx_excp_has_error(uint8_t vector)
   1069 {
   1070 	switch (vector) {
   1071 	case 8:		/* #DF */
   1072 	case 10:	/* #TS */
   1073 	case 11:	/* #NP */
   1074 	case 12:	/* #SS */
   1075 	case 13:	/* #GP */
   1076 	case 14:	/* #PF */
   1077 	case 17:	/* #AC */
   1078 	case 21:	/* #CP */
   1079 	case 30:	/* #SX */
   1080 		return 1;
   1081 	default:
   1082 		return 0;
   1083 	}
   1084 }
   1085 
   1086 static int
   1087 vmx_vcpu_inject(struct nvmm_cpu *vcpu)
   1088 {
   1089 	struct nvmm_comm_page *comm = vcpu->comm;
   1090 	struct vmx_cpudata *cpudata = vcpu->cpudata;
   1091 	int type = 0, err = 0, ret = EINVAL;
   1092 	uint64_t rflags, info, error;
   1093 	u_int evtype;
   1094 	uint8_t vector;
   1095 
   1096 	evtype = comm->event.type;
   1097 	vector = comm->event.vector;
   1098 	error = comm->event.u.excp.error;
   1099 	__insn_barrier();
   1100 
   1101 	vmx_vmcs_enter(vcpu);
   1102 
   1103 	switch (evtype) {
   1104 	case NVMM_VCPU_EVENT_EXCP:
   1105 		if (vector == 2 || vector >= 32)
   1106 			goto out;
   1107 		if (vector == 3 || vector == 0)
   1108 			goto out;
   1109 		if (vmx_excp_has_rf(vector)) {
   1110 			rflags = vmx_vmread(VMCS_GUEST_RFLAGS);
   1111 			vmx_vmwrite(VMCS_GUEST_RFLAGS, rflags | PSL_RF);
   1112 		}
   1113 		type = INTR_TYPE_HW_EXC;
   1114 		err = vmx_excp_has_error(vector);
   1115 		break;
   1116 	case NVMM_VCPU_EVENT_INTR:
   1117 		type = INTR_TYPE_EXT_INT;
   1118 		if (vector == 2) {
   1119 			type = INTR_TYPE_NMI;
   1120 			vmx_event_waitexit_enable(vcpu, true);
   1121 		}
   1122 		err = 0;
   1123 		break;
   1124 	default:
   1125 		goto out;
   1126 	}
   1127 
   1128 	info =
   1129 	    __SHIFTIN(vector, INTR_INFO_VECTOR) |
   1130 	    __SHIFTIN(type, INTR_INFO_TYPE) |
   1131 	    __SHIFTIN(err, INTR_INFO_ERROR) |
   1132 	    __SHIFTIN(1, INTR_INFO_VALID);
   1133 	vmx_vmwrite(VMCS_ENTRY_INTR_INFO, info);
   1134 	vmx_vmwrite(VMCS_ENTRY_EXCEPTION_ERROR, error);
   1135 
   1136 	cpudata->evt_pending = true;
   1137 	ret = 0;
   1138 
   1139 out:
   1140 	vmx_vmcs_leave(vcpu);
   1141 	return ret;
   1142 }
   1143 
   1144 static void
   1145 vmx_inject_ud(struct nvmm_cpu *vcpu)
   1146 {
   1147 	struct nvmm_comm_page *comm = vcpu->comm;
   1148 	int ret __diagused;
   1149 
   1150 	comm->event.type = NVMM_VCPU_EVENT_EXCP;
   1151 	comm->event.vector = 6;
   1152 	comm->event.u.excp.error = 0;
   1153 
   1154 	ret = vmx_vcpu_inject(vcpu);
   1155 	KASSERT(ret == 0);
   1156 }
   1157 
   1158 static void
   1159 vmx_inject_gp(struct nvmm_cpu *vcpu)
   1160 {
   1161 	struct nvmm_comm_page *comm = vcpu->comm;
   1162 	int ret __diagused;
   1163 
   1164 	comm->event.type = NVMM_VCPU_EVENT_EXCP;
   1165 	comm->event.vector = 13;
   1166 	comm->event.u.excp.error = 0;
   1167 
   1168 	ret = vmx_vcpu_inject(vcpu);
   1169 	KASSERT(ret == 0);
   1170 }
   1171 
   1172 static inline int
   1173 vmx_vcpu_event_commit(struct nvmm_cpu *vcpu)
   1174 {
   1175 	if (__predict_true(!vcpu->comm->event_commit)) {
   1176 		return 0;
   1177 	}
   1178 	vcpu->comm->event_commit = false;
   1179 	return vmx_vcpu_inject(vcpu);
   1180 }
   1181 
   1182 static inline void
   1183 vmx_inkernel_advance(void)
   1184 {
   1185 	uint64_t rip, inslen, intstate, rflags;
   1186 
   1187 	/*
   1188 	 * Maybe we should also apply single-stepping and debug exceptions.
   1189 	 * Matters for guest-ring3, because it can execute 'cpuid' under a
   1190 	 * debugger.
   1191 	 */
   1192 
   1193 	inslen = vmx_vmread(VMCS_EXIT_INSTRUCTION_LENGTH);
   1194 	rip = vmx_vmread(VMCS_GUEST_RIP);
   1195 	vmx_vmwrite(VMCS_GUEST_RIP, rip + inslen);
   1196 
   1197 	rflags = vmx_vmread(VMCS_GUEST_RFLAGS);
   1198 	vmx_vmwrite(VMCS_GUEST_RFLAGS, rflags & ~PSL_RF);
   1199 
   1200 	intstate = vmx_vmread(VMCS_GUEST_INTERRUPTIBILITY);
   1201 	vmx_vmwrite(VMCS_GUEST_INTERRUPTIBILITY,
   1202 	    intstate & ~(INT_STATE_STI|INT_STATE_MOVSS));
   1203 }
   1204 
   1205 static void
   1206 vmx_exit_invalid(struct nvmm_vcpu_exit *exit, uint64_t code)
   1207 {
   1208 	exit->u.inv.hwcode = code;
   1209 	exit->reason = NVMM_VCPU_EXIT_INVALID;
   1210 }
   1211 
   1212 static void
   1213 vmx_exit_exc_nmi(struct nvmm_machine *mach, struct nvmm_cpu *vcpu,
   1214     struct nvmm_vcpu_exit *exit)
   1215 {
   1216 	struct trapframe fake;
   1217 	uint64_t qual;
   1218 
   1219 	qual = vmx_vmread(VMCS_EXIT_INTR_INFO);
   1220 
   1221 	if ((qual & INTR_INFO_VALID) == 0) {
   1222 		goto error;
   1223 	}
   1224 	if (__SHIFTOUT(qual, INTR_INFO_TYPE) != INTR_TYPE_NMI) {
   1225 		goto error;
   1226 	}
   1227 
   1228 	/*
   1229 	 * this fake frame is ok for tprof.
   1230 	 */
   1231 	memset(&fake, 0, sizeof(fake));
   1232 #if defined(__x86_64__)
   1233 	fake.tf_rip = (uintptr_t)vmx_exit_exc_nmi;
   1234 #else
   1235 	fake.tf_eip = (uintptr_t)vmx_exit_exc_nmi;
   1236 #endif
   1237 	if (!nmi_dispatch(&fake)) {
   1238 		/* XXX what to do for kgdb/ddb? */
   1239 		x86_nmi();
   1240 	}
   1241 
   1242 	exit->reason = NVMM_VCPU_EXIT_NONE;
   1243 	return;
   1244 
   1245 error:
   1246 	vmx_exit_invalid(exit, VMCS_EXITCODE_EXC_NMI);
   1247 }
   1248 
   1249 #define VMX_CPUID_MAX_BASIC		0x16
   1250 #define VMX_CPUID_MAX_HYPERVISOR	0x40000000
   1251 #define VMX_CPUID_MAX_EXTENDED		0x80000008
   1252 static uint32_t vmx_cpuid_max_basic __read_mostly;
   1253 static uint32_t vmx_cpuid_max_extended __read_mostly;
   1254 
   1255 static void
   1256 vmx_inkernel_exec_cpuid(struct vmx_cpudata *cpudata, uint64_t eax, uint64_t ecx)
   1257 {
   1258 	u_int descs[4];
   1259 
   1260 	x86_cpuid2(eax, ecx, descs);
   1261 	cpudata->gprs[NVMM_X64_GPR_RAX] = descs[0];
   1262 	cpudata->gprs[NVMM_X64_GPR_RBX] = descs[1];
   1263 	cpudata->gprs[NVMM_X64_GPR_RCX] = descs[2];
   1264 	cpudata->gprs[NVMM_X64_GPR_RDX] = descs[3];
   1265 }
   1266 
   1267 static void
   1268 vmx_inkernel_handle_cpuid(struct nvmm_machine *mach, struct nvmm_cpu *vcpu,
   1269     uint64_t eax, uint64_t ecx)
   1270 {
   1271 	struct vmx_cpudata *cpudata = vcpu->cpudata;
   1272 	unsigned int ncpus;
   1273 	uint64_t cr4;
   1274 
   1275 	/*
   1276 	 * `If a value entered for CPUID.EAX is higher than the maximum
   1277 	 *  input value for basic or extended function for that
   1278 	 *  processor then the data for the highest basic information
   1279 	 *  leaf is returned.'
   1280 	 *
   1281 	 * --Intel 64 and IA-32 Architectures Software Developer's
   1282 	 *   Manual, Vol. 2A, Order Number: 325383-077US, April 2022,
   1283 	 *   Sec. 3.2 `Instructions (A-L)', CPUID--CPU Identification,
   1284 	 *   p. 3-214.
   1285 	 *
   1286 	 * We take the same to hold for the hypervisor range,
   1287 	 * 0x40000000-0x4fffffff.
   1288 	 *
   1289 	 * (Sync with nvmm_x86_svm.c.)
   1290 	 */
   1291 	if (eax < 0x40000000) {		/* basic CPUID range */
   1292 		if (__predict_false(eax > vmx_cpuid_max_basic)) {
   1293 			eax = vmx_cpuid_max_basic;
   1294 			vmx_inkernel_exec_cpuid(cpudata, eax, ecx);
   1295 		}
   1296 	} else if (eax < 0x80000000) {	/* hypervisor CPUID range */
   1297 		if (__predict_false(eax > VMX_CPUID_MAX_HYPERVISOR)) {
   1298 			eax = vmx_cpuid_max_basic;
   1299 			vmx_inkernel_exec_cpuid(cpudata, eax, ecx);
   1300 		}
   1301 	} else {			/* extended CPUID range */
   1302 		if (__predict_false(eax > vmx_cpuid_max_extended)) {
   1303 			eax = vmx_cpuid_max_basic;
   1304 			vmx_inkernel_exec_cpuid(cpudata, eax, ecx);
   1305 		}
   1306 	}
   1307 
   1308 	switch (eax) {
   1309 
   1310 	/*
   1311 	 * basic CPUID range
   1312 	 */
   1313 	case 0x00000000:
   1314 		cpudata->gprs[NVMM_X64_GPR_RAX] = vmx_cpuid_max_basic;
   1315 		break;
   1316 	case 0x00000001:
   1317 		cpudata->gprs[NVMM_X64_GPR_RAX] &= nvmm_cpuid_00000001.eax;
   1318 
   1319 		cpudata->gprs[NVMM_X64_GPR_RBX] &= ~CPUID_LOCAL_APIC_ID;
   1320 		cpudata->gprs[NVMM_X64_GPR_RBX] |= __SHIFTIN(vcpu->cpuid,
   1321 		    CPUID_LOCAL_APIC_ID);
   1322 
   1323 		cpudata->gprs[NVMM_X64_GPR_RCX] &= nvmm_cpuid_00000001.ecx;
   1324 		cpudata->gprs[NVMM_X64_GPR_RCX] |= CPUID2_RAZ;
   1325 		if (vmx_procbased_ctls2 & PROC_CTLS2_INVPCID_ENABLE) {
   1326 			cpudata->gprs[NVMM_X64_GPR_RCX] |= CPUID2_PCID;
   1327 		}
   1328 
   1329 		cpudata->gprs[NVMM_X64_GPR_RDX] &= nvmm_cpuid_00000001.edx;
   1330 
   1331 		/* CPUID2_OSXSAVE depends on CR4. */
   1332 		cr4 = vmx_vmread(VMCS_GUEST_CR4);
   1333 		if (!(cr4 & CR4_OSXSAVE)) {
   1334 			cpudata->gprs[NVMM_X64_GPR_RCX] &= ~CPUID2_OSXSAVE;
   1335 		}
   1336 		break;
   1337 	case 0x00000002:
   1338 		break;
   1339 	case 0x00000003:
   1340 		cpudata->gprs[NVMM_X64_GPR_RAX] = 0;
   1341 		cpudata->gprs[NVMM_X64_GPR_RBX] = 0;
   1342 		cpudata->gprs[NVMM_X64_GPR_RCX] = 0;
   1343 		cpudata->gprs[NVMM_X64_GPR_RDX] = 0;
   1344 		break;
   1345 	case 0x00000004: /* Deterministic Cache Parameters */
   1346 		break; /* TODO? */
   1347 	case 0x00000005: /* MONITOR/MWAIT */
   1348 	case 0x00000006: /* Thermal and Power Management */
   1349 		cpudata->gprs[NVMM_X64_GPR_RAX] = 0;
   1350 		cpudata->gprs[NVMM_X64_GPR_RBX] = 0;
   1351 		cpudata->gprs[NVMM_X64_GPR_RCX] = 0;
   1352 		cpudata->gprs[NVMM_X64_GPR_RDX] = 0;
   1353 		break;
   1354 	case 0x00000007: /* Structured Extended Feature Flags Enumeration */
   1355 		switch (ecx) {
   1356 		case 0:
   1357 			cpudata->gprs[NVMM_X64_GPR_RAX] = 0;
   1358 			cpudata->gprs[NVMM_X64_GPR_RBX] &= nvmm_cpuid_00000007.ebx;
   1359 			cpudata->gprs[NVMM_X64_GPR_RCX] &= nvmm_cpuid_00000007.ecx;
   1360 			cpudata->gprs[NVMM_X64_GPR_RDX] &= nvmm_cpuid_00000007.edx;
   1361 			if (vmx_procbased_ctls2 & PROC_CTLS2_INVPCID_ENABLE) {
   1362 				cpudata->gprs[NVMM_X64_GPR_RBX] |= CPUID_SEF_INVPCID;
   1363 			}
   1364 			break;
   1365 		default:
   1366 			cpudata->gprs[NVMM_X64_GPR_RAX] = 0;
   1367 			cpudata->gprs[NVMM_X64_GPR_RBX] = 0;
   1368 			cpudata->gprs[NVMM_X64_GPR_RCX] = 0;
   1369 			cpudata->gprs[NVMM_X64_GPR_RDX] = 0;
   1370 			break;
   1371 		}
   1372 		break;
   1373 	case 0x00000008: /* Empty */
   1374 	case 0x00000009: /* Direct Cache Access Information */
   1375 		cpudata->gprs[NVMM_X64_GPR_RAX] = 0;
   1376 		cpudata->gprs[NVMM_X64_GPR_RBX] = 0;
   1377 		cpudata->gprs[NVMM_X64_GPR_RCX] = 0;
   1378 		cpudata->gprs[NVMM_X64_GPR_RDX] = 0;
   1379 		break;
   1380 	case 0x0000000A: /* Architectural Performance Monitoring */
   1381 		cpudata->gprs[NVMM_X64_GPR_RAX] = 0;
   1382 		cpudata->gprs[NVMM_X64_GPR_RBX] = 0;
   1383 		cpudata->gprs[NVMM_X64_GPR_RCX] = 0;
   1384 		cpudata->gprs[NVMM_X64_GPR_RDX] = 0;
   1385 		break;
   1386 	case 0x0000000B: /* Extended Topology Enumeration */
   1387 		switch (ecx) {
   1388 		case 0: /* Threads */
   1389 			cpudata->gprs[NVMM_X64_GPR_RAX] = 0;
   1390 			cpudata->gprs[NVMM_X64_GPR_RBX] = 0;
   1391 			cpudata->gprs[NVMM_X64_GPR_RCX] =
   1392 			    __SHIFTIN(ecx, CPUID_TOP_LVLNUM) |
   1393 			    __SHIFTIN(CPUID_TOP_LVLTYPE_SMT, CPUID_TOP_LVLTYPE);
   1394 			cpudata->gprs[NVMM_X64_GPR_RDX] = vcpu->cpuid;
   1395 			break;
   1396 		case 1: /* Cores */
   1397 			ncpus = atomic_load_relaxed(&mach->ncpus);
   1398 			cpudata->gprs[NVMM_X64_GPR_RAX] = ilog2(ncpus);
   1399 			cpudata->gprs[NVMM_X64_GPR_RBX] = ncpus;
   1400 			cpudata->gprs[NVMM_X64_GPR_RCX] =
   1401 			    __SHIFTIN(ecx, CPUID_TOP_LVLNUM) |
   1402 			    __SHIFTIN(CPUID_TOP_LVLTYPE_CORE, CPUID_TOP_LVLTYPE);
   1403 			cpudata->gprs[NVMM_X64_GPR_RDX] = vcpu->cpuid;
   1404 			break;
   1405 		default:
   1406 			cpudata->gprs[NVMM_X64_GPR_RAX] = 0;
   1407 			cpudata->gprs[NVMM_X64_GPR_RBX] = 0;
   1408 			cpudata->gprs[NVMM_X64_GPR_RCX] = 0; /* LVLTYPE_INVAL */
   1409 			cpudata->gprs[NVMM_X64_GPR_RDX] = 0;
   1410 			break;
   1411 		}
   1412 		break;
   1413 	case 0x0000000C: /* Empty */
   1414 		cpudata->gprs[NVMM_X64_GPR_RAX] = 0;
   1415 		cpudata->gprs[NVMM_X64_GPR_RBX] = 0;
   1416 		cpudata->gprs[NVMM_X64_GPR_RCX] = 0;
   1417 		cpudata->gprs[NVMM_X64_GPR_RDX] = 0;
   1418 		break;
   1419 	case 0x0000000D: /* Processor Extended State Enumeration */
   1420 		if (cpudata->xcr0_mask == 0) {
   1421 			cpudata->gprs[NVMM_X64_GPR_RAX] = 0;
   1422 			cpudata->gprs[NVMM_X64_GPR_RBX] = 0;
   1423 			cpudata->gprs[NVMM_X64_GPR_RCX] = 0;
   1424 			cpudata->gprs[NVMM_X64_GPR_RDX] = 0;
   1425 			break;
   1426 		}
   1427 		switch (ecx) {
   1428 		case 0:
   1429 			cpudata->gprs[NVMM_X64_GPR_RAX] =
   1430 			    cpudata->xcr0_mask & 0xFFFFFFFF;
   1431 			cpudata->gprs[NVMM_X64_GPR_RBX] =
   1432 			    nvmm_x86_xsave_size(cpudata->gxcr0);
   1433 			cpudata->gprs[NVMM_X64_GPR_RCX] =
   1434 			    nvmm_x86_xsave_size(cpudata->xcr0_mask);
   1435 			cpudata->gprs[NVMM_X64_GPR_RDX] =
   1436 			    cpudata->xcr0_mask >> 32;
   1437 			break;
   1438 		case 1:
   1439 			cpudata->gprs[NVMM_X64_GPR_RAX] &=
   1440 			    (CPUID_PES1_XSAVEOPT | CPUID_PES1_XSAVEC |
   1441 			     CPUID_PES1_XGETBV);
   1442 			cpudata->gprs[NVMM_X64_GPR_RBX] = 0;
   1443 			cpudata->gprs[NVMM_X64_GPR_RCX] = 0;
   1444 			cpudata->gprs[NVMM_X64_GPR_RDX] = 0;
   1445 			break;
   1446 		case 2 ... 62:
   1447 			/*
   1448 			 * CPUID[EAX=0x0d,ECX=n], 2 <= n <= 62: size
   1449 			 * and offset of nth component in XSAVE area.
   1450 			 * If the nth bit of XCR0 is disabled in the
   1451 			 * vCPU configuration, we return all-zero
   1452 			 * instead.
   1453 			 */
   1454 			if ((cpudata->xcr0_mask & __BIT(ecx)) == 0) {
   1455 				cpudata->gprs[NVMM_X64_GPR_RAX] = 0;
   1456 				cpudata->gprs[NVMM_X64_GPR_RBX] = 0;
   1457 				cpudata->gprs[NVMM_X64_GPR_RCX] = 0;
   1458 				cpudata->gprs[NVMM_X64_GPR_RDX] = 0;
   1459 			}
   1460 			break;
   1461 		default:
   1462 			cpudata->gprs[NVMM_X64_GPR_RAX] = 0;
   1463 			cpudata->gprs[NVMM_X64_GPR_RBX] = 0;
   1464 			cpudata->gprs[NVMM_X64_GPR_RCX] = 0;
   1465 			cpudata->gprs[NVMM_X64_GPR_RDX] = 0;
   1466 			break;
   1467 		}
   1468 		break;
   1469 	case 0x0000000E: /* Empty */
   1470 	case 0x0000000F: /* Intel RDT Monitoring Enumeration */
   1471 	case 0x00000010: /* Intel RDT Allocation Enumeration */
   1472 		cpudata->gprs[NVMM_X64_GPR_RAX] = 0;
   1473 		cpudata->gprs[NVMM_X64_GPR_RBX] = 0;
   1474 		cpudata->gprs[NVMM_X64_GPR_RCX] = 0;
   1475 		cpudata->gprs[NVMM_X64_GPR_RDX] = 0;
   1476 		break;
   1477 	case 0x00000011: /* Empty */
   1478 	case 0x00000012: /* Intel SGX Capability Enumeration */
   1479 	case 0x00000013: /* Empty */
   1480 	case 0x00000014: /* Intel Processor Trace Enumeration */
   1481 		cpudata->gprs[NVMM_X64_GPR_RAX] = 0;
   1482 		cpudata->gprs[NVMM_X64_GPR_RBX] = 0;
   1483 		cpudata->gprs[NVMM_X64_GPR_RCX] = 0;
   1484 		cpudata->gprs[NVMM_X64_GPR_RDX] = 0;
   1485 		break;
   1486 	case 0x00000015: /* TSC and Nominal Core Crystal Clock Information */
   1487 	case 0x00000016: /* Processor Frequency Information */
   1488 		break;
   1489 
   1490 	/*
   1491 	 * hypervisor CPUID range
   1492 	 */
   1493 	case 0x40000000: /* Hypervisor Information */
   1494 		cpudata->gprs[NVMM_X64_GPR_RAX] = VMX_CPUID_MAX_HYPERVISOR;
   1495 		cpudata->gprs[NVMM_X64_GPR_RBX] = 0;
   1496 		cpudata->gprs[NVMM_X64_GPR_RCX] = 0;
   1497 		cpudata->gprs[NVMM_X64_GPR_RDX] = 0;
   1498 		memcpy(&cpudata->gprs[NVMM_X64_GPR_RBX], "___ ", 4);
   1499 		memcpy(&cpudata->gprs[NVMM_X64_GPR_RCX], "NVMM", 4);
   1500 		memcpy(&cpudata->gprs[NVMM_X64_GPR_RDX], " ___", 4);
   1501 		break;
   1502 
   1503 	/*
   1504 	 * extended CPUID range
   1505 	 */
   1506 	case 0x80000000:
   1507 		cpudata->gprs[NVMM_X64_GPR_RAX] = vmx_cpuid_max_extended;
   1508 		break;
   1509 	case 0x80000001:
   1510 		cpudata->gprs[NVMM_X64_GPR_RAX] &= nvmm_cpuid_80000001.eax;
   1511 		cpudata->gprs[NVMM_X64_GPR_RBX] &= nvmm_cpuid_80000001.ebx;
   1512 		cpudata->gprs[NVMM_X64_GPR_RCX] &= nvmm_cpuid_80000001.ecx;
   1513 		cpudata->gprs[NVMM_X64_GPR_RDX] &= nvmm_cpuid_80000001.edx;
   1514 		break;
   1515 	case 0x80000002: /* Processor Brand String */
   1516 	case 0x80000003: /* Processor Brand String */
   1517 	case 0x80000004: /* Processor Brand String */
   1518 	case 0x80000005: /* Reserved Zero */
   1519 	case 0x80000006: /* Cache Information */
   1520 		break;
   1521 	case 0x80000007: /* TSC Information */
   1522 		cpudata->gprs[NVMM_X64_GPR_RAX] &= nvmm_cpuid_80000007.eax;
   1523 		cpudata->gprs[NVMM_X64_GPR_RBX] &= nvmm_cpuid_80000007.ebx;
   1524 		cpudata->gprs[NVMM_X64_GPR_RCX] &= nvmm_cpuid_80000007.ecx;
   1525 		cpudata->gprs[NVMM_X64_GPR_RDX] &= nvmm_cpuid_80000007.edx;
   1526 		break;
   1527 	case 0x80000008: /* Address Sizes */
   1528 		cpudata->gprs[NVMM_X64_GPR_RAX] &= nvmm_cpuid_80000008.eax;
   1529 		cpudata->gprs[NVMM_X64_GPR_RBX] &= nvmm_cpuid_80000008.ebx;
   1530 		cpudata->gprs[NVMM_X64_GPR_RCX] &= nvmm_cpuid_80000008.ecx;
   1531 		cpudata->gprs[NVMM_X64_GPR_RDX] &= nvmm_cpuid_80000008.edx;
   1532 		break;
   1533 
   1534 	default:
   1535 		break;
   1536 	}
   1537 }
   1538 
   1539 static void
   1540 vmx_exit_insn(struct nvmm_vcpu_exit *exit, uint64_t reason)
   1541 {
   1542 	uint64_t inslen, rip;
   1543 
   1544 	inslen = vmx_vmread(VMCS_EXIT_INSTRUCTION_LENGTH);
   1545 	rip = vmx_vmread(VMCS_GUEST_RIP);
   1546 	exit->u.insn.npc = rip + inslen;
   1547 	exit->reason = reason;
   1548 }
   1549 
   1550 static void
   1551 vmx_exit_cpuid(struct nvmm_machine *mach, struct nvmm_cpu *vcpu,
   1552     struct nvmm_vcpu_exit *exit)
   1553 {
   1554 	struct vmx_cpudata *cpudata = vcpu->cpudata;
   1555 	struct nvmm_vcpu_conf_cpuid *cpuid;
   1556 	uint64_t eax, ecx;
   1557 	size_t i;
   1558 
   1559 	eax = cpudata->gprs[NVMM_X64_GPR_RAX];
   1560 	ecx = cpudata->gprs[NVMM_X64_GPR_RCX];
   1561 	vmx_inkernel_exec_cpuid(cpudata, eax, ecx);
   1562 	vmx_inkernel_handle_cpuid(mach, vcpu, eax, ecx);
   1563 
   1564 	for (i = 0; i < VMX_NCPUIDS; i++) {
   1565 		if (!cpudata->cpuidpresent[i]) {
   1566 			continue;
   1567 		}
   1568 		cpuid = &cpudata->cpuid[i];
   1569 		if (cpuid->leaf != eax) {
   1570 			continue;
   1571 		}
   1572 
   1573 		if (cpuid->exit) {
   1574 			vmx_exit_insn(exit, NVMM_VCPU_EXIT_CPUID);
   1575 			return;
   1576 		}
   1577 		KASSERT(cpuid->mask);
   1578 
   1579 		/* del */
   1580 		cpudata->gprs[NVMM_X64_GPR_RAX] &= ~cpuid->u.mask.del.eax;
   1581 		cpudata->gprs[NVMM_X64_GPR_RBX] &= ~cpuid->u.mask.del.ebx;
   1582 		cpudata->gprs[NVMM_X64_GPR_RCX] &= ~cpuid->u.mask.del.ecx;
   1583 		cpudata->gprs[NVMM_X64_GPR_RDX] &= ~cpuid->u.mask.del.edx;
   1584 
   1585 		/* set */
   1586 		cpudata->gprs[NVMM_X64_GPR_RAX] |= cpuid->u.mask.set.eax;
   1587 		cpudata->gprs[NVMM_X64_GPR_RBX] |= cpuid->u.mask.set.ebx;
   1588 		cpudata->gprs[NVMM_X64_GPR_RCX] |= cpuid->u.mask.set.ecx;
   1589 		cpudata->gprs[NVMM_X64_GPR_RDX] |= cpuid->u.mask.set.edx;
   1590 
   1591 		break;
   1592 	}
   1593 
   1594 	vmx_inkernel_advance();
   1595 	exit->reason = NVMM_VCPU_EXIT_NONE;
   1596 }
   1597 
   1598 static void
   1599 vmx_exit_hlt(struct nvmm_machine *mach, struct nvmm_cpu *vcpu,
   1600     struct nvmm_vcpu_exit *exit)
   1601 {
   1602 	struct vmx_cpudata *cpudata = vcpu->cpudata;
   1603 	uint64_t rflags;
   1604 
   1605 	if (cpudata->int_window_exit) {
   1606 		rflags = vmx_vmread(VMCS_GUEST_RFLAGS);
   1607 		if (rflags & PSL_I) {
   1608 			vmx_event_waitexit_disable(vcpu, false);
   1609 		}
   1610 	}
   1611 
   1612 	vmx_inkernel_advance();
   1613 	exit->reason = NVMM_VCPU_EXIT_HALTED;
   1614 }
   1615 
   1616 #define VMX_QUAL_CR_NUM		__BITS(3,0)
   1617 #define VMX_QUAL_CR_TYPE	__BITS(5,4)
   1618 #define		CR_TYPE_WRITE	0
   1619 #define		CR_TYPE_READ	1
   1620 #define		CR_TYPE_CLTS	2
   1621 #define		CR_TYPE_LMSW	3
   1622 #define VMX_QUAL_CR_LMSW_OPMEM	__BIT(6)
   1623 #define VMX_QUAL_CR_GPR		__BITS(11,8)
   1624 #define VMX_QUAL_CR_LMSW_SRC	__BIT(31,16)
   1625 
   1626 static inline int
   1627 vmx_check_cr(uint64_t crval, uint64_t fixed0, uint64_t fixed1)
   1628 {
   1629 	/* Bits set to 1 in fixed0 are fixed to 1. */
   1630 	if ((crval & fixed0) != fixed0) {
   1631 		return -1;
   1632 	}
   1633 	/* Bits set to 0 in fixed1 are fixed to 0. */
   1634 	if (crval & ~fixed1) {
   1635 		return -1;
   1636 	}
   1637 	return 0;
   1638 }
   1639 
   1640 static int
   1641 vmx_inkernel_handle_cr0(struct nvmm_machine *mach, struct nvmm_cpu *vcpu,
   1642     uint64_t qual)
   1643 {
   1644 	struct vmx_cpudata *cpudata = vcpu->cpudata;
   1645 	uint64_t type, gpr, oldcr0, realcr0, fakecr0;
   1646 	uint64_t efer, ctls1;
   1647 
   1648 	type = __SHIFTOUT(qual, VMX_QUAL_CR_TYPE);
   1649 	if (type != CR_TYPE_WRITE) {
   1650 		return -1;
   1651 	}
   1652 
   1653 	gpr = __SHIFTOUT(qual, VMX_QUAL_CR_GPR);
   1654 	KASSERT(gpr < 16);
   1655 
   1656 	if (gpr == NVMM_X64_GPR_RSP) {
   1657 		fakecr0 = vmx_vmread(VMCS_GUEST_RSP);
   1658 	} else {
   1659 		fakecr0 = cpudata->gprs[gpr];
   1660 	}
   1661 
   1662 	/*
   1663 	 * fakecr0 is the value the guest believes is in %cr0. realcr0 is the
   1664 	 * actual value in %cr0.
   1665 	 *
   1666 	 * In fakecr0 we must force CR0_ET to 1.
   1667 	 *
   1668 	 * In realcr0 we must force CR0_NW and CR0_CD to 0, and CR0_ET and
   1669 	 * CR0_NE to 1.
   1670 	 */
   1671 	fakecr0 |= CR0_ET;
   1672 	realcr0 = (fakecr0 & ~CR0_STATIC_MASK) | CR0_ET | CR0_NE;
   1673 
   1674 	if (vmx_check_cr(realcr0, vmx_cr0_fixed0, vmx_cr0_fixed1) == -1) {
   1675 		return -1;
   1676 	}
   1677 
   1678 	/*
   1679 	 * XXX Handle 32bit PAE paging, need to set PDPTEs, fetched manually
   1680 	 * from CR3.
   1681 	 */
   1682 
   1683 	if (realcr0 & CR0_PG) {
   1684 		ctls1 = vmx_vmread(VMCS_ENTRY_CTLS);
   1685 		efer = vmx_vmread(VMCS_GUEST_IA32_EFER);
   1686 		if (efer & EFER_LME) {
   1687 			ctls1 |= ENTRY_CTLS_LONG_MODE;
   1688 			efer |= EFER_LMA;
   1689 		} else {
   1690 			ctls1 &= ~ENTRY_CTLS_LONG_MODE;
   1691 			efer &= ~EFER_LMA;
   1692 		}
   1693 		vmx_vmwrite(VMCS_GUEST_IA32_EFER, efer);
   1694 		vmx_vmwrite(VMCS_ENTRY_CTLS, ctls1);
   1695 	}
   1696 
   1697 	oldcr0 = (vmx_vmread(VMCS_CR0_SHADOW) & CR0_STATIC_MASK) |
   1698 	    (vmx_vmread(VMCS_GUEST_CR0) & ~CR0_STATIC_MASK);
   1699 	if ((oldcr0 ^ fakecr0) & CR0_TLB_FLUSH) {
   1700 		cpudata->gtlb_want_flush = true;
   1701 	}
   1702 
   1703 	vmx_vmwrite(VMCS_CR0_SHADOW, fakecr0);
   1704 	vmx_vmwrite(VMCS_GUEST_CR0, realcr0);
   1705 	vmx_inkernel_advance();
   1706 	return 0;
   1707 }
   1708 
   1709 static int
   1710 vmx_inkernel_handle_cr4(struct nvmm_machine *mach, struct nvmm_cpu *vcpu,
   1711     uint64_t qual)
   1712 {
   1713 	struct vmx_cpudata *cpudata = vcpu->cpudata;
   1714 	uint64_t type, gpr, oldcr4, cr4;
   1715 
   1716 	type = __SHIFTOUT(qual, VMX_QUAL_CR_TYPE);
   1717 	if (type != CR_TYPE_WRITE) {
   1718 		return -1;
   1719 	}
   1720 
   1721 	gpr = __SHIFTOUT(qual, VMX_QUAL_CR_GPR);
   1722 	KASSERT(gpr < 16);
   1723 
   1724 	if (gpr == NVMM_X64_GPR_RSP) {
   1725 		gpr = vmx_vmread(VMCS_GUEST_RSP);
   1726 	} else {
   1727 		gpr = cpudata->gprs[gpr];
   1728 	}
   1729 
   1730 	if (gpr & CR4_INVALID) {
   1731 		return -1;
   1732 	}
   1733 	cr4 = gpr | CR4_VMXE;
   1734 	if (vmx_check_cr(cr4, vmx_cr4_fixed0, vmx_cr4_fixed1) == -1) {
   1735 		return -1;
   1736 	}
   1737 
   1738 	oldcr4 = vmx_vmread(VMCS_GUEST_CR4);
   1739 	if ((oldcr4 ^ gpr) & CR4_TLB_FLUSH) {
   1740 		cpudata->gtlb_want_flush = true;
   1741 	}
   1742 
   1743 	vmx_vmwrite(VMCS_GUEST_CR4, cr4);
   1744 	vmx_inkernel_advance();
   1745 	return 0;
   1746 }
   1747 
   1748 static int
   1749 vmx_inkernel_handle_cr8(struct nvmm_machine *mach, struct nvmm_cpu *vcpu,
   1750     uint64_t qual, struct nvmm_vcpu_exit *exit)
   1751 {
   1752 	struct vmx_cpudata *cpudata = vcpu->cpudata;
   1753 	uint64_t type, gpr;
   1754 	bool write;
   1755 
   1756 	type = __SHIFTOUT(qual, VMX_QUAL_CR_TYPE);
   1757 	if (type == CR_TYPE_WRITE) {
   1758 		write = true;
   1759 	} else if (type == CR_TYPE_READ) {
   1760 		write = false;
   1761 	} else {
   1762 		return -1;
   1763 	}
   1764 
   1765 	gpr = __SHIFTOUT(qual, VMX_QUAL_CR_GPR);
   1766 	KASSERT(gpr < 16);
   1767 
   1768 	if (write) {
   1769 		if (gpr == NVMM_X64_GPR_RSP) {
   1770 			cpudata->gcr8 = vmx_vmread(VMCS_GUEST_RSP);
   1771 		} else {
   1772 			cpudata->gcr8 = cpudata->gprs[gpr];
   1773 		}
   1774 		if (cpudata->tpr.exit_changed) {
   1775 			exit->reason = NVMM_VCPU_EXIT_TPR_CHANGED;
   1776 		}
   1777 	} else {
   1778 		if (gpr == NVMM_X64_GPR_RSP) {
   1779 			vmx_vmwrite(VMCS_GUEST_RSP, cpudata->gcr8);
   1780 		} else {
   1781 			cpudata->gprs[gpr] = cpudata->gcr8;
   1782 		}
   1783 	}
   1784 
   1785 	vmx_inkernel_advance();
   1786 	return 0;
   1787 }
   1788 
   1789 static void
   1790 vmx_exit_cr(struct nvmm_machine *mach, struct nvmm_cpu *vcpu,
   1791     struct nvmm_vcpu_exit *exit)
   1792 {
   1793 	uint64_t qual;
   1794 	int ret;
   1795 
   1796 	exit->reason = NVMM_VCPU_EXIT_NONE;
   1797 
   1798 	qual = vmx_vmread(VMCS_EXIT_QUALIFICATION);
   1799 
   1800 	switch (__SHIFTOUT(qual, VMX_QUAL_CR_NUM)) {
   1801 	case 0:
   1802 		ret = vmx_inkernel_handle_cr0(mach, vcpu, qual);
   1803 		break;
   1804 	case 4:
   1805 		ret = vmx_inkernel_handle_cr4(mach, vcpu, qual);
   1806 		break;
   1807 	case 8:
   1808 		ret = vmx_inkernel_handle_cr8(mach, vcpu, qual, exit);
   1809 		break;
   1810 	default:
   1811 		ret = -1;
   1812 		break;
   1813 	}
   1814 
   1815 	if (ret == -1) {
   1816 		vmx_inject_gp(vcpu);
   1817 	}
   1818 }
   1819 
   1820 #define VMX_QUAL_IO_SIZE	__BITS(2,0)
   1821 #define		IO_SIZE_8	0
   1822 #define		IO_SIZE_16	1
   1823 #define		IO_SIZE_32	3
   1824 #define VMX_QUAL_IO_IN		__BIT(3)
   1825 #define VMX_QUAL_IO_STR		__BIT(4)
   1826 #define VMX_QUAL_IO_REP		__BIT(5)
   1827 #define VMX_QUAL_IO_DX		__BIT(6)
   1828 #define VMX_QUAL_IO_PORT	__BITS(31,16)
   1829 
   1830 #define VMX_INFO_IO_ADRSIZE	__BITS(9,7)
   1831 #define		IO_ADRSIZE_16	0
   1832 #define		IO_ADRSIZE_32	1
   1833 #define		IO_ADRSIZE_64	2
   1834 #define VMX_INFO_IO_SEG		__BITS(17,15)
   1835 
   1836 static void
   1837 vmx_exit_io(struct nvmm_machine *mach, struct nvmm_cpu *vcpu,
   1838     struct nvmm_vcpu_exit *exit)
   1839 {
   1840 	uint64_t qual, info, inslen, rip;
   1841 
   1842 	qual = vmx_vmread(VMCS_EXIT_QUALIFICATION);
   1843 	info = vmx_vmread(VMCS_EXIT_INSTRUCTION_INFO);
   1844 
   1845 	exit->reason = NVMM_VCPU_EXIT_IO;
   1846 
   1847 	exit->u.io.in = (qual & VMX_QUAL_IO_IN) != 0;
   1848 	exit->u.io.port = __SHIFTOUT(qual, VMX_QUAL_IO_PORT);
   1849 
   1850 	KASSERT(__SHIFTOUT(info, VMX_INFO_IO_SEG) < 6);
   1851 	exit->u.io.seg = __SHIFTOUT(info, VMX_INFO_IO_SEG);
   1852 
   1853 	if (__SHIFTOUT(info, VMX_INFO_IO_ADRSIZE) == IO_ADRSIZE_64) {
   1854 		exit->u.io.address_size = 8;
   1855 	} else if (__SHIFTOUT(info, VMX_INFO_IO_ADRSIZE) == IO_ADRSIZE_32) {
   1856 		exit->u.io.address_size = 4;
   1857 	} else if (__SHIFTOUT(info, VMX_INFO_IO_ADRSIZE) == IO_ADRSIZE_16) {
   1858 		exit->u.io.address_size = 2;
   1859 	}
   1860 
   1861 	if (__SHIFTOUT(qual, VMX_QUAL_IO_SIZE) == IO_SIZE_32) {
   1862 		exit->u.io.operand_size = 4;
   1863 	} else if (__SHIFTOUT(qual, VMX_QUAL_IO_SIZE) == IO_SIZE_16) {
   1864 		exit->u.io.operand_size = 2;
   1865 	} else if (__SHIFTOUT(qual, VMX_QUAL_IO_SIZE) == IO_SIZE_8) {
   1866 		exit->u.io.operand_size = 1;
   1867 	}
   1868 
   1869 	exit->u.io.rep = (qual & VMX_QUAL_IO_REP) != 0;
   1870 	exit->u.io.str = (qual & VMX_QUAL_IO_STR) != 0;
   1871 
   1872 	if (exit->u.io.in && exit->u.io.str) {
   1873 		exit->u.io.seg = NVMM_X64_SEG_ES;
   1874 	}
   1875 
   1876 	inslen = vmx_vmread(VMCS_EXIT_INSTRUCTION_LENGTH);
   1877 	rip = vmx_vmread(VMCS_GUEST_RIP);
   1878 	exit->u.io.npc = rip + inslen;
   1879 
   1880 	vmx_vcpu_state_provide(vcpu,
   1881 	    NVMM_X64_STATE_GPRS | NVMM_X64_STATE_SEGS |
   1882 	    NVMM_X64_STATE_CRS | NVMM_X64_STATE_MSRS);
   1883 }
   1884 
   1885 static const uint64_t msr_ignore_list[] = {
   1886 	MSR_BIOS_SIGN,
   1887 	MSR_IA32_PLATFORM_ID
   1888 };
   1889 
   1890 static bool
   1891 vmx_inkernel_handle_msr(struct nvmm_machine *mach, struct nvmm_cpu *vcpu,
   1892     struct nvmm_vcpu_exit *exit)
   1893 {
   1894 	struct vmx_cpudata *cpudata = vcpu->cpudata;
   1895 	uint64_t val;
   1896 	size_t i;
   1897 
   1898 	if (exit->reason == NVMM_VCPU_EXIT_RDMSR) {
   1899 		if (exit->u.rdmsr.msr == MSR_CR_PAT) {
   1900 			val = vmx_vmread(VMCS_GUEST_IA32_PAT);
   1901 			cpudata->gprs[NVMM_X64_GPR_RAX] = (val & 0xFFFFFFFF);
   1902 			cpudata->gprs[NVMM_X64_GPR_RDX] = (val >> 32);
   1903 			goto handled;
   1904 		}
   1905 		if (exit->u.rdmsr.msr == MSR_MISC_ENABLE) {
   1906 			val = cpudata->gmsr_misc_enable;
   1907 			cpudata->gprs[NVMM_X64_GPR_RAX] = (val & 0xFFFFFFFF);
   1908 			cpudata->gprs[NVMM_X64_GPR_RDX] = (val >> 32);
   1909 			goto handled;
   1910 		}
   1911 		if (exit->u.rdmsr.msr == MSR_IA32_ARCH_CAPABILITIES) {
   1912 			u_int descs[4];
   1913 			if (cpuid_level < 7) {
   1914 				goto error;
   1915 			}
   1916 			x86_cpuid(7, descs);
   1917 			if (!(descs[3] & CPUID_SEF_ARCH_CAP)) {
   1918 				goto error;
   1919 			}
   1920 			val = rdmsr(MSR_IA32_ARCH_CAPABILITIES);
   1921 			val &= (IA32_ARCH_RDCL_NO |
   1922 			    IA32_ARCH_SSB_NO |
   1923 			    IA32_ARCH_MDS_NO |
   1924 			    IA32_ARCH_TAA_NO);
   1925 			cpudata->gprs[NVMM_X64_GPR_RAX] = (val & 0xFFFFFFFF);
   1926 			cpudata->gprs[NVMM_X64_GPR_RDX] = (val >> 32);
   1927 			goto handled;
   1928 		}
   1929 		for (i = 0; i < __arraycount(msr_ignore_list); i++) {
   1930 			if (msr_ignore_list[i] != exit->u.rdmsr.msr)
   1931 				continue;
   1932 			val = 0;
   1933 			cpudata->gprs[NVMM_X64_GPR_RAX] = (val & 0xFFFFFFFF);
   1934 			cpudata->gprs[NVMM_X64_GPR_RDX] = (val >> 32);
   1935 			goto handled;
   1936 		}
   1937 	} else {
   1938 		if (exit->u.wrmsr.msr == MSR_TSC) {
   1939 			cpudata->gtsc = exit->u.wrmsr.val;
   1940 			cpudata->gtsc_want_update = true;
   1941 			goto handled;
   1942 		}
   1943 		if (exit->u.wrmsr.msr == MSR_CR_PAT) {
   1944 			val = exit->u.wrmsr.val;
   1945 			if (__predict_false(!nvmm_x86_pat_validate(val))) {
   1946 				goto error;
   1947 			}
   1948 			vmx_vmwrite(VMCS_GUEST_IA32_PAT, val);
   1949 			goto handled;
   1950 		}
   1951 		if (exit->u.wrmsr.msr == MSR_MISC_ENABLE) {
   1952 			/* Don't care. */
   1953 			goto handled;
   1954 		}
   1955 		for (i = 0; i < __arraycount(msr_ignore_list); i++) {
   1956 			if (msr_ignore_list[i] != exit->u.wrmsr.msr)
   1957 				continue;
   1958 			goto handled;
   1959 		}
   1960 	}
   1961 
   1962 	return false;
   1963 
   1964 handled:
   1965 	vmx_inkernel_advance();
   1966 	return true;
   1967 
   1968 error:
   1969 	vmx_inject_gp(vcpu);
   1970 	return true;
   1971 }
   1972 
   1973 static void
   1974 vmx_exit_rdmsr(struct nvmm_machine *mach, struct nvmm_cpu *vcpu,
   1975     struct nvmm_vcpu_exit *exit)
   1976 {
   1977 	struct vmx_cpudata *cpudata = vcpu->cpudata;
   1978 	uint64_t inslen, rip;
   1979 
   1980 	exit->reason = NVMM_VCPU_EXIT_RDMSR;
   1981 	exit->u.rdmsr.msr = (cpudata->gprs[NVMM_X64_GPR_RCX] & 0xFFFFFFFF);
   1982 
   1983 	if (vmx_inkernel_handle_msr(mach, vcpu, exit)) {
   1984 		exit->reason = NVMM_VCPU_EXIT_NONE;
   1985 		return;
   1986 	}
   1987 
   1988 	inslen = vmx_vmread(VMCS_EXIT_INSTRUCTION_LENGTH);
   1989 	rip = vmx_vmread(VMCS_GUEST_RIP);
   1990 	exit->u.rdmsr.npc = rip + inslen;
   1991 
   1992 	vmx_vcpu_state_provide(vcpu, NVMM_X64_STATE_GPRS);
   1993 }
   1994 
   1995 static void
   1996 vmx_exit_wrmsr(struct nvmm_machine *mach, struct nvmm_cpu *vcpu,
   1997     struct nvmm_vcpu_exit *exit)
   1998 {
   1999 	struct vmx_cpudata *cpudata = vcpu->cpudata;
   2000 	uint64_t rdx, rax, inslen, rip;
   2001 
   2002 	rdx = cpudata->gprs[NVMM_X64_GPR_RDX];
   2003 	rax = cpudata->gprs[NVMM_X64_GPR_RAX];
   2004 
   2005 	exit->reason = NVMM_VCPU_EXIT_WRMSR;
   2006 	exit->u.wrmsr.msr = (cpudata->gprs[NVMM_X64_GPR_RCX] & 0xFFFFFFFF);
   2007 	exit->u.wrmsr.val = (rdx << 32) | (rax & 0xFFFFFFFF);
   2008 
   2009 	if (vmx_inkernel_handle_msr(mach, vcpu, exit)) {
   2010 		exit->reason = NVMM_VCPU_EXIT_NONE;
   2011 		return;
   2012 	}
   2013 
   2014 	inslen = vmx_vmread(VMCS_EXIT_INSTRUCTION_LENGTH);
   2015 	rip = vmx_vmread(VMCS_GUEST_RIP);
   2016 	exit->u.wrmsr.npc = rip + inslen;
   2017 
   2018 	vmx_vcpu_state_provide(vcpu, NVMM_X64_STATE_GPRS);
   2019 }
   2020 
   2021 static void
   2022 vmx_exit_xsetbv(struct nvmm_machine *mach, struct nvmm_cpu *vcpu,
   2023     struct nvmm_vcpu_exit *exit)
   2024 {
   2025 	struct vmx_cpudata *cpudata = vcpu->cpudata;
   2026 	uint64_t val;
   2027 
   2028 	exit->reason = NVMM_VCPU_EXIT_NONE;
   2029 
   2030 	val = (cpudata->gprs[NVMM_X64_GPR_RDX] << 32) |
   2031 	    (cpudata->gprs[NVMM_X64_GPR_RAX] & 0xFFFFFFFF);
   2032 
   2033 	if (__predict_false(cpudata->gprs[NVMM_X64_GPR_RCX] != 0)) {
   2034 		goto error;
   2035 	} else if (__predict_false(cpudata->xcr0_mask == 0)) {
   2036 		goto error;
   2037 	} else if (__predict_false(!nvmm_x86_xcr0_valid(val,
   2038 		    cpudata->xcr0_mask))) {
   2039 		goto error;
   2040 	}
   2041 
   2042 	KASSERTMSG(nvmm_x86_xcr0_valid(val, cpudata->xcr0_mask),
   2043 	    "val=0x%"PRIx64" xcr0_mask=0x%"PRIx64" (gxcr0=0x%"PRIx64")",
   2044 	    val, cpudata->xcr0_mask, cpudata->gxcr0);
   2045 	cpudata->gxcr0 = val;
   2046 
   2047 	vmx_inkernel_advance();
   2048 	return;
   2049 
   2050 error:
   2051 	vmx_inject_gp(vcpu);
   2052 }
   2053 
   2054 #define VMX_EPT_VIOLATION_READ		__BIT(0)
   2055 #define VMX_EPT_VIOLATION_WRITE		__BIT(1)
   2056 #define VMX_EPT_VIOLATION_EXECUTE	__BIT(2)
   2057 
   2058 static void
   2059 vmx_exit_epf(struct nvmm_machine *mach, struct nvmm_cpu *vcpu,
   2060     struct nvmm_vcpu_exit *exit)
   2061 {
   2062 	uint64_t perm;
   2063 	gpaddr_t gpa;
   2064 
   2065 	gpa = vmx_vmread(VMCS_GUEST_PHYSICAL_ADDRESS);
   2066 
   2067 	exit->reason = NVMM_VCPU_EXIT_MEMORY;
   2068 	perm = vmx_vmread(VMCS_EXIT_QUALIFICATION);
   2069 	if (perm & VMX_EPT_VIOLATION_WRITE)
   2070 		exit->u.mem.prot = PROT_WRITE;
   2071 	else if (perm & VMX_EPT_VIOLATION_EXECUTE)
   2072 		exit->u.mem.prot = PROT_EXEC;
   2073 	else
   2074 		exit->u.mem.prot = PROT_READ;
   2075 	exit->u.mem.gpa = gpa;
   2076 	exit->u.mem.inst_len = 0;
   2077 
   2078 	vmx_vcpu_state_provide(vcpu,
   2079 	    NVMM_X64_STATE_GPRS | NVMM_X64_STATE_SEGS |
   2080 	    NVMM_X64_STATE_CRS | NVMM_X64_STATE_MSRS);
   2081 }
   2082 
   2083 /* -------------------------------------------------------------------------- */
   2084 
   2085 static void
   2086 vmx_vcpu_guest_fpu_enter(struct nvmm_cpu *vcpu)
   2087 {
   2088 	struct vmx_cpudata *cpudata = vcpu->cpudata;
   2089 
   2090 	/*
   2091 	 * The guest's XCR0 had better not have any bits that aren't
   2092 	 * allowed in the vCPU configuration, and the current XSAVE
   2093 	 * area had better not store any either according to
   2094 	 * cpudata->gfpu.xsh_xstate_bv.
   2095 	 *
   2096 	 * Note that XRSTOR will trap if XSTATE_BV has any bits that
   2097 	 * are not set in XCR0.
   2098 	 */
   2099 	KASSERTMSG((cpudata->gxcr0 & ~cpudata->xcr0_mask) == 0,
   2100 	    "gxcr0=0x%"PRIx64" xcr0_mask=0x%"PRIx64,
   2101 	    cpudata->gxcr0, cpudata->xcr0_mask);
   2102 	KASSERTMSG((cpudata->gfpu.xsh_xstate_bv & ~cpudata->xcr0_mask) == 0,
   2103 	    "XSTATE_BV=0x%"PRIx64" xcr0_mask=0x%"PRIx64,
   2104 	    cpudata->gfpu.xsh_xstate_bv, cpudata->xcr0_mask);
   2105 
   2106 	/*
   2107 	 * Save anything in the FPU registers that this thread might
   2108 	 * have been using to memory, and raise the IPL to IPL_VM to
   2109 	 * block interrupt handlers that might use the FPU.  This also
   2110 	 * zeroes any FPU registers that the NetBSD host uses.
   2111 	 *
   2112 	 * After this point, we are free to use the FPU registers.
   2113 	 */
   2114 	fpu_kern_enter();
   2115 
   2116 	/*
   2117 	 * If the host CPU doesn't support XSAVE or we're simulating a
   2118 	 * vCPU without it, just restore the x87 and SSE state.  The
   2119 	 * host should already have both x87 and SSE enabled in XCR0,
   2120 	 * if the host uses XSAVE.
   2121 	 */
   2122 	if (cpudata->xcr0_mask == 0) {
   2123 		/* TODO: should we use *XSAVE64 here? */
   2124 		fpu_area_restore(&cpudata->gfpu, XCR0_X87|XCR0_SSE, false);
   2125 		return;
   2126 	}
   2127 
   2128 	/*
   2129 	 * Set XCR0 to allow access to anything the guest has
   2130 	 * previously used and is saved to memory, _and_ to anything
   2131 	 * the guest has asked to use in cpudata->gxcr0.
   2132 	 *
   2133 	 * The guest may have used some extended CPU state like the
   2134 	 * zmmN registers, and then later disabled them in XCR0; in
   2135 	 * that case, the state must be preserved in case the guest
   2136 	 * later enables it in XCR0, but we can only load while all
   2137 	 * bits in cpudata->gfpu.xsh_xstate_bv are set in XCR0.
   2138 	 *
   2139 	 * Similarly, the guest may _not_ have used some extended CPU
   2140 	 * state since reset, but may have since enabled it in XCR0.
   2141 	 * Such state will be clear in cpudata->gfpu.xsh_xstate_bv and
   2142 	 * must be initialized afresh by the CPU, which requires the
   2143 	 * bits be set in XCR0 to allow that.
   2144 	 */
   2145 	cpudata->hxcr0 = rdxcr(0);
   2146 	wrxcr(0, cpudata->xcr0_mask &
   2147 	    (cpudata->gfpu.xsh_xstate_bv | cpudata->gxcr0));
   2148 
   2149 	/*
   2150 	 * Load the guest's saved extended CPU state from memory into
   2151 	 * the CPU.
   2152 	 */
   2153 	/* TODO: should we use *XSAVE64 here? */
   2154 	fpu_area_restore(&cpudata->gfpu, cpudata->xcr0_mask, true);
   2155 
   2156 	/*
   2157 	 * If we temporarily set XCR0 beyond what the guest asked for
   2158 	 * in order to restore state that is currently disabled, reduce
   2159 	 * it down to what the guest asked for.
   2160 	 */
   2161 	if (__predict_false(cpudata->gxcr0 != (cpudata->xcr0_mask &
   2162 		    (cpudata->gfpu.xsh_xstate_bv | cpudata->gxcr0))))
   2163 		wrxcr(0, cpudata->xcr0_mask & cpudata->gxcr0);
   2164 }
   2165 
   2166 static void
   2167 vmx_vcpu_guest_fpu_leave(struct nvmm_cpu *vcpu)
   2168 {
   2169 	struct vmx_cpudata *cpudata = vcpu->cpudata;
   2170 
   2171 	/*
   2172 	 * If the host CPU doesn't support XSAVE or we're simulating a
   2173 	 * vCPU without it, just save the x87 and SSE state.  If the
   2174 	 * host uses XSAVE, it should still have both x87 and SSE
   2175 	 * enabled in XCR0; if the host doesn't use XSAVE, doesn't
   2176 	 * matter.
   2177 	 */
   2178 	if (cpudata->xcr0_mask == 0) {
   2179 		/* TODO: should we use *XSAVE64 here? */
   2180 		fpu_area_save(&cpudata->gfpu, XCR0_X87|XCR0_SSE, false);
   2181 		goto leave;
   2182 	}
   2183 
   2184 	/*
   2185 	 * In case the guest has cleared some XCR0 bits but used the
   2186 	 * corresponding extended CPU state, increase XCR0 to the
   2187 	 * maximum supported for this guest before we XSAVE.
   2188 	 *
   2189 	 * Note that XRSTOR will trap if XSTATE_BV has any bits that
   2190 	 * are not set in XCR0.
   2191 	 */
   2192 	cpudata->gxcr0 = rdxcr(0);
   2193 	wrxcr(0, cpudata->xcr0_mask);
   2194 
   2195 	/*
   2196 	 * Paranoia: Ensure the guest's XCR0 has no forbidden bits.
   2197 	 * Should not be possible because we filter them on XSETBV
   2198 	 * exits.
   2199 	 */
   2200 	KASSERTMSG((cpudata->gxcr0 & ~cpudata->xcr0_mask) == 0,
   2201 	    "gxcr0=0x%"PRIx64" xcr0_mask=0x%"PRIx64,
   2202 	    cpudata->gxcr0, cpudata->xcr0_mask);
   2203 	cpudata->gxcr0 &= cpudata->xcr0_mask;
   2204 
   2205 	/*
   2206 	 * Save any extended CPU state that could be in use by the
   2207 	 * guest.
   2208 	 */
   2209 	/* TODO: should we use *XSAVE64 here? */
   2210 	fpu_area_save(&cpudata->gfpu, cpudata->xcr0_mask, false);
   2211 
   2212 	/*
   2213 	 * If the host XCR0 is different from the maximum guest XCR0,
   2214 	 * switch back to the host XCR0 so we can restore NetBSD's FPU
   2215 	 * state.
   2216 	 */
   2217 	if (cpudata->xcr0_mask != cpudata->hxcr0)
   2218 		wrxcr(0, cpudata->hxcr0);
   2219 
   2220 leave:	/*
   2221 	 * Restore any FPU registers that we might have saved in
   2222 	 * vmx_vcpu_guest_fpu_enter for this thread, and restore the
   2223 	 * IPL from IPL_VM.
   2224 	 *
   2225 	 * After this point, we must not touch the FPU registers.
   2226 	 */
   2227 	fpu_kern_leave();
   2228 
   2229 	/*
   2230 	 * The guest's XCR0 had better not have any bits that aren't
   2231 	 * allowed in the vCPU configuration, and the current XSAVE
   2232 	 * area had better not store any either according to
   2233 	 * cpudata->gfpu.xsh_xstate_bv.
   2234 	 */
   2235 	KASSERTMSG((cpudata->gxcr0 & ~cpudata->xcr0_mask) == 0,
   2236 	    "gxcr0=0x%"PRIx64" xcr0_mask=0x%"PRIx64,
   2237 	    cpudata->gxcr0, cpudata->xcr0_mask);
   2238 	KASSERTMSG((cpudata->gfpu.xsh_xstate_bv & ~cpudata->xcr0_mask) == 0,
   2239 	    "XSTATE_BV=0x%"PRIx64" xcr0_mask=0x%"PRIx64,
   2240 	    cpudata->gfpu.xsh_xstate_bv, cpudata->xcr0_mask);
   2241 }
   2242 
   2243 static void
   2244 vmx_vcpu_guest_dbregs_enter(struct nvmm_cpu *vcpu)
   2245 {
   2246 	struct vmx_cpudata *cpudata = vcpu->cpudata;
   2247 
   2248 	x86_dbregs_save(curlwp);
   2249 
   2250 	ldr7(0);
   2251 
   2252 	ldr0(cpudata->drs[NVMM_X64_DR_DR0]);
   2253 	ldr1(cpudata->drs[NVMM_X64_DR_DR1]);
   2254 	ldr2(cpudata->drs[NVMM_X64_DR_DR2]);
   2255 	ldr3(cpudata->drs[NVMM_X64_DR_DR3]);
   2256 	ldr6(cpudata->drs[NVMM_X64_DR_DR6]);
   2257 }
   2258 
   2259 static void
   2260 vmx_vcpu_guest_dbregs_leave(struct nvmm_cpu *vcpu)
   2261 {
   2262 	struct vmx_cpudata *cpudata = vcpu->cpudata;
   2263 
   2264 	cpudata->drs[NVMM_X64_DR_DR0] = rdr0();
   2265 	cpudata->drs[NVMM_X64_DR_DR1] = rdr1();
   2266 	cpudata->drs[NVMM_X64_DR_DR2] = rdr2();
   2267 	cpudata->drs[NVMM_X64_DR_DR3] = rdr3();
   2268 	cpudata->drs[NVMM_X64_DR_DR6] = rdr6();
   2269 
   2270 	x86_dbregs_restore(curlwp);
   2271 }
   2272 
   2273 static void
   2274 vmx_vcpu_guest_misc_enter(struct nvmm_cpu *vcpu)
   2275 {
   2276 	struct vmx_cpudata *cpudata = vcpu->cpudata;
   2277 
   2278 	/* This gets restored automatically by the CPU. */
   2279 	vmx_vmwrite(VMCS_HOST_IDTR_BASE, (uint64_t)curcpu()->ci_idtvec.iv_idt);
   2280 	vmx_vmwrite(VMCS_HOST_FS_BASE, rdmsr(MSR_FSBASE));
   2281 	vmx_vmwrite(VMCS_HOST_CR3, rcr3());
   2282 	vmx_vmwrite(VMCS_HOST_CR4, rcr4());
   2283 
   2284 	cpudata->kernelgsbase = rdmsr(MSR_KERNELGSBASE);
   2285 }
   2286 
   2287 static void
   2288 vmx_vcpu_guest_misc_leave(struct nvmm_cpu *vcpu)
   2289 {
   2290 	struct vmx_cpudata *cpudata = vcpu->cpudata;
   2291 
   2292 	wrmsr(MSR_STAR, cpudata->star);
   2293 	wrmsr(MSR_LSTAR, cpudata->lstar);
   2294 	wrmsr(MSR_CSTAR, cpudata->cstar);
   2295 	wrmsr(MSR_SFMASK, cpudata->sfmask);
   2296 	wrmsr(MSR_KERNELGSBASE, cpudata->kernelgsbase);
   2297 }
   2298 
   2299 /* -------------------------------------------------------------------------- */
   2300 
   2301 #define VMX_INVVPID_ADDRESS		0
   2302 #define VMX_INVVPID_CONTEXT		1
   2303 #define VMX_INVVPID_ALL			2
   2304 #define VMX_INVVPID_CONTEXT_NOGLOBAL	3
   2305 
   2306 #define VMX_INVEPT_CONTEXT		1
   2307 #define VMX_INVEPT_ALL			2
   2308 
   2309 static inline void
   2310 vmx_gtlb_catchup(struct nvmm_cpu *vcpu, int hcpu)
   2311 {
   2312 	struct vmx_cpudata *cpudata = vcpu->cpudata;
   2313 
   2314 	if (vcpu->hcpu_last != hcpu) {
   2315 		cpudata->gtlb_want_flush = true;
   2316 	}
   2317 }
   2318 
   2319 static inline void
   2320 vmx_htlb_catchup(struct nvmm_cpu *vcpu, int hcpu)
   2321 {
   2322 	struct vmx_cpudata *cpudata = vcpu->cpudata;
   2323 	struct ept_desc ept_desc;
   2324 
   2325 	if (__predict_true(!kcpuset_isset(cpudata->htlb_want_flush, hcpu))) {
   2326 		return;
   2327 	}
   2328 
   2329 	ept_desc.eptp = vmx_vmread(VMCS_EPTP);
   2330 	ept_desc.mbz = 0;
   2331 	vmx_invept(vmx_ept_flush_op, &ept_desc);
   2332 	kcpuset_clear(cpudata->htlb_want_flush, hcpu);
   2333 }
   2334 
   2335 static inline uint64_t
   2336 vmx_htlb_flush(struct vmx_machdata *machdata, struct vmx_cpudata *cpudata)
   2337 {
   2338 	struct ept_desc ept_desc;
   2339 	uint64_t machgen;
   2340 
   2341 	machgen = machdata->mach_htlb_gen;
   2342 	if (__predict_true(machgen == cpudata->vcpu_htlb_gen)) {
   2343 		return machgen;
   2344 	}
   2345 
   2346 	kcpuset_copy(cpudata->htlb_want_flush, kcpuset_running);
   2347 
   2348 	ept_desc.eptp = vmx_vmread(VMCS_EPTP);
   2349 	ept_desc.mbz = 0;
   2350 	vmx_invept(vmx_ept_flush_op, &ept_desc);
   2351 
   2352 	return machgen;
   2353 }
   2354 
   2355 static inline void
   2356 vmx_htlb_flush_ack(struct vmx_cpudata *cpudata, uint64_t machgen)
   2357 {
   2358 	cpudata->vcpu_htlb_gen = machgen;
   2359 	kcpuset_clear(cpudata->htlb_want_flush, cpu_number());
   2360 }
   2361 
   2362 static inline void
   2363 vmx_exit_evt(struct vmx_cpudata *cpudata)
   2364 {
   2365 	uint64_t info, err, inslen;
   2366 
   2367 	cpudata->evt_pending = false;
   2368 
   2369 	info = vmx_vmread(VMCS_IDT_VECTORING_INFO);
   2370 	if (__predict_true((info & INTR_INFO_VALID) == 0)) {
   2371 		return;
   2372 	}
   2373 	err = vmx_vmread(VMCS_IDT_VECTORING_ERROR);
   2374 
   2375 	vmx_vmwrite(VMCS_ENTRY_INTR_INFO, info);
   2376 	vmx_vmwrite(VMCS_ENTRY_EXCEPTION_ERROR, err);
   2377 
   2378 	switch (__SHIFTOUT(info, INTR_INFO_TYPE)) {
   2379 	case INTR_TYPE_SW_INT:
   2380 	case INTR_TYPE_PRIV_SW_EXC:
   2381 	case INTR_TYPE_SW_EXC:
   2382 		inslen = vmx_vmread(VMCS_EXIT_INSTRUCTION_LENGTH);
   2383 		vmx_vmwrite(VMCS_ENTRY_INSTRUCTION_LENGTH, inslen);
   2384 	}
   2385 
   2386 	cpudata->evt_pending = true;
   2387 }
   2388 
   2389 static int
   2390 vmx_vcpu_run(struct nvmm_machine *mach, struct nvmm_cpu *vcpu,
   2391     struct nvmm_vcpu_exit *exit)
   2392 {
   2393 	struct nvmm_comm_page *comm = vcpu->comm;
   2394 	struct vmx_machdata *machdata = mach->machdata;
   2395 	struct vmx_cpudata *cpudata = vcpu->cpudata;
   2396 	struct vpid_desc vpid_desc;
   2397 	struct cpu_info *ci;
   2398 	uint64_t exitcode;
   2399 	uint64_t intstate;
   2400 	uint64_t machgen;
   2401 	int hcpu, ret;
   2402 	bool launched;
   2403 
   2404 	vmx_vmcs_enter(vcpu);
   2405 
   2406 	vmx_vcpu_state_commit(vcpu);
   2407 	comm->state_cached = 0;
   2408 
   2409 	if (__predict_false(vmx_vcpu_event_commit(vcpu) != 0)) {
   2410 		vmx_vmcs_leave(vcpu);
   2411 		return EINVAL;
   2412 	}
   2413 
   2414 	ci = curcpu();
   2415 	hcpu = cpu_number();
   2416 	launched = cpudata->vmcs_launched;
   2417 
   2418 	vmx_gtlb_catchup(vcpu, hcpu);
   2419 	vmx_htlb_catchup(vcpu, hcpu);
   2420 
   2421 	if (vcpu->hcpu_last != hcpu) {
   2422 		vmx_vmwrite(VMCS_HOST_TR_SELECTOR, ci->ci_tss_sel);
   2423 		vmx_vmwrite(VMCS_HOST_TR_BASE, (uint64_t)ci->ci_tss);
   2424 		vmx_vmwrite(VMCS_HOST_GDTR_BASE, (uint64_t)ci->ci_gdt);
   2425 		vmx_vmwrite(VMCS_HOST_GS_BASE, rdmsr(MSR_GSBASE));
   2426 		cpudata->gtsc_want_update = true;
   2427 		vcpu->hcpu_last = hcpu;
   2428 	}
   2429 
   2430 	vmx_vcpu_guest_dbregs_enter(vcpu);
   2431 	vmx_vcpu_guest_misc_enter(vcpu);
   2432 
   2433 	while (1) {
   2434 		if (cpudata->gtlb_want_flush) {
   2435 			vpid_desc.vpid = cpudata->asid;
   2436 			vpid_desc.addr = 0;
   2437 			vmx_invvpid(vmx_tlb_flush_op, &vpid_desc);
   2438 			cpudata->gtlb_want_flush = false;
   2439 		}
   2440 
   2441 		if (__predict_false(cpudata->gtsc_want_update)) {
   2442 			vmx_vmwrite(VMCS_TSC_OFFSET, cpudata->gtsc - rdtsc());
   2443 			cpudata->gtsc_want_update = false;
   2444 		}
   2445 
   2446 		vmx_vcpu_guest_fpu_enter(vcpu);
   2447 		vmx_cli();
   2448 		machgen = vmx_htlb_flush(machdata, cpudata);
   2449 		lcr2(cpudata->gcr2);
   2450 		if (launched) {
   2451 			ret = vmx_vmresume(cpudata->gprs);
   2452 		} else {
   2453 			ret = vmx_vmlaunch(cpudata->gprs);
   2454 		}
   2455 		cpudata->gcr2 = rcr2();
   2456 		vmx_htlb_flush_ack(cpudata, machgen);
   2457 		if (__predict_true(ret == 0)) {
   2458 			exitcode = vmx_vmread(VMCS_EXIT_REASON);
   2459 			exitcode &= __BITS(15,0);
   2460 			if (exitcode == VMCS_EXITCODE_EXC_NMI) {
   2461 				/* handle nmi before vmx_sti() */
   2462 				vmx_exit_exc_nmi(mach, vcpu, exit);
   2463 			}
   2464 		}
   2465 		vmx_sti();
   2466 		vmx_vcpu_guest_fpu_leave(vcpu);
   2467 
   2468 		if (__predict_false(ret != 0)) {
   2469 			vmx_exit_invalid(exit, -1);
   2470 			break;
   2471 		}
   2472 		vmx_exit_evt(cpudata);
   2473 
   2474 		launched = true;
   2475 
   2476 		switch (exitcode) {
   2477 		case VMCS_EXITCODE_EXC_NMI:
   2478 			/* handled earlier */
   2479 			break;
   2480 		case VMCS_EXITCODE_EXT_INT:
   2481 			exit->reason = NVMM_VCPU_EXIT_NONE;
   2482 			break;
   2483 		case VMCS_EXITCODE_CPUID:
   2484 			vmx_exit_cpuid(mach, vcpu, exit);
   2485 			break;
   2486 		case VMCS_EXITCODE_HLT:
   2487 			vmx_exit_hlt(mach, vcpu, exit);
   2488 			break;
   2489 		case VMCS_EXITCODE_CR:
   2490 			vmx_exit_cr(mach, vcpu, exit);
   2491 			break;
   2492 		case VMCS_EXITCODE_IO:
   2493 			vmx_exit_io(mach, vcpu, exit);
   2494 			break;
   2495 		case VMCS_EXITCODE_RDMSR:
   2496 			vmx_exit_rdmsr(mach, vcpu, exit);
   2497 			break;
   2498 		case VMCS_EXITCODE_WRMSR:
   2499 			vmx_exit_wrmsr(mach, vcpu, exit);
   2500 			break;
   2501 		case VMCS_EXITCODE_SHUTDOWN:
   2502 			exit->reason = NVMM_VCPU_EXIT_SHUTDOWN;
   2503 			break;
   2504 		case VMCS_EXITCODE_MONITOR:
   2505 			vmx_exit_insn(exit, NVMM_VCPU_EXIT_MONITOR);
   2506 			break;
   2507 		case VMCS_EXITCODE_MWAIT:
   2508 			vmx_exit_insn(exit, NVMM_VCPU_EXIT_MWAIT);
   2509 			break;
   2510 		case VMCS_EXITCODE_XSETBV:
   2511 			vmx_exit_xsetbv(mach, vcpu, exit);
   2512 			break;
   2513 		case VMCS_EXITCODE_RDPMC:
   2514 		case VMCS_EXITCODE_RDTSCP:
   2515 		case VMCS_EXITCODE_INVVPID:
   2516 		case VMCS_EXITCODE_INVEPT:
   2517 		case VMCS_EXITCODE_VMCALL:
   2518 		case VMCS_EXITCODE_VMCLEAR:
   2519 		case VMCS_EXITCODE_VMLAUNCH:
   2520 		case VMCS_EXITCODE_VMPTRLD:
   2521 		case VMCS_EXITCODE_VMPTRST:
   2522 		case VMCS_EXITCODE_VMREAD:
   2523 		case VMCS_EXITCODE_VMRESUME:
   2524 		case VMCS_EXITCODE_VMWRITE:
   2525 		case VMCS_EXITCODE_VMXOFF:
   2526 		case VMCS_EXITCODE_VMXON:
   2527 			vmx_inject_ud(vcpu);
   2528 			exit->reason = NVMM_VCPU_EXIT_NONE;
   2529 			break;
   2530 		case VMCS_EXITCODE_EPT_VIOLATION:
   2531 			vmx_exit_epf(mach, vcpu, exit);
   2532 			break;
   2533 		case VMCS_EXITCODE_INT_WINDOW:
   2534 			vmx_event_waitexit_disable(vcpu, false);
   2535 			exit->reason = NVMM_VCPU_EXIT_INT_READY;
   2536 			break;
   2537 		case VMCS_EXITCODE_NMI_WINDOW:
   2538 			vmx_event_waitexit_disable(vcpu, true);
   2539 			exit->reason = NVMM_VCPU_EXIT_NMI_READY;
   2540 			break;
   2541 		default:
   2542 			vmx_exit_invalid(exit, exitcode);
   2543 			break;
   2544 		}
   2545 
   2546 		/* If no reason to return to userland, keep rolling. */
   2547 		if (nvmm_return_needed(vcpu, exit)) {
   2548 			break;
   2549 		}
   2550 		if (exit->reason != NVMM_VCPU_EXIT_NONE) {
   2551 			break;
   2552 		}
   2553 	}
   2554 
   2555 	cpudata->vmcs_launched = launched;
   2556 
   2557 	cpudata->gtsc = vmx_vmread(VMCS_TSC_OFFSET) + rdtsc();
   2558 
   2559 	vmx_vcpu_guest_misc_leave(vcpu);
   2560 	vmx_vcpu_guest_dbregs_leave(vcpu);
   2561 
   2562 	exit->exitstate.rflags = vmx_vmread(VMCS_GUEST_RFLAGS);
   2563 	exit->exitstate.cr8 = cpudata->gcr8;
   2564 	intstate = vmx_vmread(VMCS_GUEST_INTERRUPTIBILITY);
   2565 	exit->exitstate.int_shadow =
   2566 	    (intstate & (INT_STATE_STI|INT_STATE_MOVSS)) != 0;
   2567 	exit->exitstate.int_window_exiting = cpudata->int_window_exit;
   2568 	exit->exitstate.nmi_window_exiting = cpudata->nmi_window_exit;
   2569 	exit->exitstate.evt_pending = cpudata->evt_pending;
   2570 
   2571 	vmx_vmcs_leave(vcpu);
   2572 
   2573 	return 0;
   2574 }
   2575 
   2576 /* -------------------------------------------------------------------------- */
   2577 
   2578 static int
   2579 vmx_memalloc(paddr_t *pa, vaddr_t *va, size_t npages)
   2580 {
   2581 	struct pglist pglist;
   2582 	paddr_t _pa;
   2583 	vaddr_t _va;
   2584 	size_t i;
   2585 	int ret;
   2586 
   2587 	ret = uvm_pglistalloc(npages * PAGE_SIZE, 0, ~0UL, PAGE_SIZE, 0,
   2588 	    &pglist, 1, 0);
   2589 	if (ret != 0)
   2590 		return ENOMEM;
   2591 	_pa = VM_PAGE_TO_PHYS(TAILQ_FIRST(&pglist));
   2592 	_va = uvm_km_alloc(kernel_map, npages * PAGE_SIZE, 0,
   2593 	    UVM_KMF_VAONLY | UVM_KMF_NOWAIT);
   2594 	if (_va == 0)
   2595 		goto error;
   2596 
   2597 	for (i = 0; i < npages; i++) {
   2598 		pmap_kenter_pa(_va + i * PAGE_SIZE, _pa + i * PAGE_SIZE,
   2599 		    VM_PROT_READ | VM_PROT_WRITE, PMAP_WRITE_BACK);
   2600 	}
   2601 	pmap_update(pmap_kernel());
   2602 
   2603 	memset((void *)_va, 0, npages * PAGE_SIZE);
   2604 
   2605 	*pa = _pa;
   2606 	*va = _va;
   2607 	return 0;
   2608 
   2609 error:
   2610 	for (i = 0; i < npages; i++) {
   2611 		uvm_pagefree(PHYS_TO_VM_PAGE(_pa + i * PAGE_SIZE));
   2612 	}
   2613 	return ENOMEM;
   2614 }
   2615 
   2616 static void
   2617 vmx_memfree(paddr_t pa, vaddr_t va, size_t npages)
   2618 {
   2619 	size_t i;
   2620 
   2621 	pmap_kremove(va, npages * PAGE_SIZE);
   2622 	pmap_update(pmap_kernel());
   2623 	uvm_km_free(kernel_map, va, npages * PAGE_SIZE, UVM_KMF_VAONLY);
   2624 	for (i = 0; i < npages; i++) {
   2625 		uvm_pagefree(PHYS_TO_VM_PAGE(pa + i * PAGE_SIZE));
   2626 	}
   2627 }
   2628 
   2629 /* -------------------------------------------------------------------------- */
   2630 
   2631 static void
   2632 vmx_vcpu_msr_allow(uint8_t *bitmap, uint64_t msr, bool read, bool write)
   2633 {
   2634 	uint64_t byte;
   2635 	uint8_t bitoff;
   2636 
   2637 	if (msr < 0x00002000) {
   2638 		/* Range 1 */
   2639 		byte = ((msr - 0x00000000) / 8) + 0;
   2640 	} else if (msr >= 0xC0000000 && msr < 0xC0002000) {
   2641 		/* Range 2 */
   2642 		byte = ((msr - 0xC0000000) / 8) + 1024;
   2643 	} else {
   2644 		panic("%s: wrong range", __func__);
   2645 	}
   2646 
   2647 	bitoff = (msr & 0x7);
   2648 
   2649 	if (read) {
   2650 		bitmap[byte] &= ~__BIT(bitoff);
   2651 	}
   2652 	if (write) {
   2653 		bitmap[2048 + byte] &= ~__BIT(bitoff);
   2654 	}
   2655 }
   2656 
   2657 #define VMX_SEG_ATTRIB_TYPE		__BITS(3,0)
   2658 #define VMX_SEG_ATTRIB_S		__BIT(4)
   2659 #define VMX_SEG_ATTRIB_DPL		__BITS(6,5)
   2660 #define VMX_SEG_ATTRIB_P		__BIT(7)
   2661 #define VMX_SEG_ATTRIB_AVL		__BIT(12)
   2662 #define VMX_SEG_ATTRIB_L		__BIT(13)
   2663 #define VMX_SEG_ATTRIB_DEF		__BIT(14)
   2664 #define VMX_SEG_ATTRIB_G		__BIT(15)
   2665 #define VMX_SEG_ATTRIB_UNUSABLE		__BIT(16)
   2666 
   2667 static void
   2668 vmx_vcpu_setstate_seg(const struct nvmm_x64_state_seg *segs, int idx)
   2669 {
   2670 	uint64_t attrib;
   2671 
   2672 	attrib =
   2673 	    __SHIFTIN(segs[idx].attrib.type, VMX_SEG_ATTRIB_TYPE) |
   2674 	    __SHIFTIN(segs[idx].attrib.s, VMX_SEG_ATTRIB_S) |
   2675 	    __SHIFTIN(segs[idx].attrib.dpl, VMX_SEG_ATTRIB_DPL) |
   2676 	    __SHIFTIN(segs[idx].attrib.p, VMX_SEG_ATTRIB_P) |
   2677 	    __SHIFTIN(segs[idx].attrib.avl, VMX_SEG_ATTRIB_AVL) |
   2678 	    __SHIFTIN(segs[idx].attrib.l, VMX_SEG_ATTRIB_L) |
   2679 	    __SHIFTIN(segs[idx].attrib.def, VMX_SEG_ATTRIB_DEF) |
   2680 	    __SHIFTIN(segs[idx].attrib.g, VMX_SEG_ATTRIB_G) |
   2681 	    (!segs[idx].attrib.p ? VMX_SEG_ATTRIB_UNUSABLE : 0);
   2682 
   2683 	if (idx != NVMM_X64_SEG_GDT && idx != NVMM_X64_SEG_IDT) {
   2684 		vmx_vmwrite(vmx_guest_segs[idx].selector, segs[idx].selector);
   2685 		vmx_vmwrite(vmx_guest_segs[idx].attrib, attrib);
   2686 	}
   2687 	vmx_vmwrite(vmx_guest_segs[idx].limit, segs[idx].limit);
   2688 	vmx_vmwrite(vmx_guest_segs[idx].base, segs[idx].base);
   2689 }
   2690 
   2691 static void
   2692 vmx_vcpu_getstate_seg(struct nvmm_x64_state_seg *segs, int idx)
   2693 {
   2694 	uint64_t selector = 0, attrib = 0, base, limit;
   2695 
   2696 	if (idx != NVMM_X64_SEG_GDT && idx != NVMM_X64_SEG_IDT) {
   2697 		selector = vmx_vmread(vmx_guest_segs[idx].selector);
   2698 		attrib = vmx_vmread(vmx_guest_segs[idx].attrib);
   2699 	}
   2700 	limit = vmx_vmread(vmx_guest_segs[idx].limit);
   2701 	base = vmx_vmread(vmx_guest_segs[idx].base);
   2702 
   2703 	segs[idx].selector = selector;
   2704 	segs[idx].limit = limit;
   2705 	segs[idx].base = base;
   2706 	segs[idx].attrib.type = __SHIFTOUT(attrib, VMX_SEG_ATTRIB_TYPE);
   2707 	segs[idx].attrib.s = __SHIFTOUT(attrib, VMX_SEG_ATTRIB_S);
   2708 	segs[idx].attrib.dpl = __SHIFTOUT(attrib, VMX_SEG_ATTRIB_DPL);
   2709 	segs[idx].attrib.p = __SHIFTOUT(attrib, VMX_SEG_ATTRIB_P);
   2710 	segs[idx].attrib.avl = __SHIFTOUT(attrib, VMX_SEG_ATTRIB_AVL);
   2711 	segs[idx].attrib.l = __SHIFTOUT(attrib, VMX_SEG_ATTRIB_L);
   2712 	segs[idx].attrib.def = __SHIFTOUT(attrib, VMX_SEG_ATTRIB_DEF);
   2713 	segs[idx].attrib.g = __SHIFTOUT(attrib, VMX_SEG_ATTRIB_G);
   2714 	if (attrib & VMX_SEG_ATTRIB_UNUSABLE) {
   2715 		segs[idx].attrib.p = 0;
   2716 	}
   2717 }
   2718 
   2719 static inline bool
   2720 vmx_state_tlb_flush(const struct nvmm_x64_state *state, uint64_t flags)
   2721 {
   2722 	uint64_t cr0, cr3, cr4, efer;
   2723 
   2724 	if (flags & NVMM_X64_STATE_CRS) {
   2725 		cr0 = vmx_vmread(VMCS_GUEST_CR0);
   2726 		if ((cr0 ^ state->crs[NVMM_X64_CR_CR0]) & CR0_TLB_FLUSH) {
   2727 			return true;
   2728 		}
   2729 		cr3 = vmx_vmread(VMCS_GUEST_CR3);
   2730 		if (cr3 != state->crs[NVMM_X64_CR_CR3]) {
   2731 			return true;
   2732 		}
   2733 		cr4 = vmx_vmread(VMCS_GUEST_CR4);
   2734 		if ((cr4 ^ state->crs[NVMM_X64_CR_CR4]) & CR4_TLB_FLUSH) {
   2735 			return true;
   2736 		}
   2737 	}
   2738 
   2739 	if (flags & NVMM_X64_STATE_MSRS) {
   2740 		efer = vmx_vmread(VMCS_GUEST_IA32_EFER);
   2741 		if ((efer ^
   2742 		     state->msrs[NVMM_X64_MSR_EFER]) & EFER_TLB_FLUSH) {
   2743 			return true;
   2744 		}
   2745 	}
   2746 
   2747 	return false;
   2748 }
   2749 
   2750 static void
   2751 vmx_vcpu_setstate(struct nvmm_cpu *vcpu)
   2752 {
   2753 	struct nvmm_comm_page *comm = vcpu->comm;
   2754 	const struct nvmm_x64_state *state = &comm->state;
   2755 	struct vmx_cpudata *cpudata = vcpu->cpudata;
   2756 	struct fxsave *fpustate;
   2757 	uint64_t ctls1, intstate;
   2758 	uint64_t flags;
   2759 
   2760 	flags = comm->state_wanted;
   2761 
   2762 	vmx_vmcs_enter(vcpu);
   2763 
   2764 	if (vmx_state_tlb_flush(state, flags)) {
   2765 		cpudata->gtlb_want_flush = true;
   2766 	}
   2767 
   2768 	if (flags & NVMM_X64_STATE_SEGS) {
   2769 		vmx_vcpu_setstate_seg(state->segs, NVMM_X64_SEG_CS);
   2770 		vmx_vcpu_setstate_seg(state->segs, NVMM_X64_SEG_DS);
   2771 		vmx_vcpu_setstate_seg(state->segs, NVMM_X64_SEG_ES);
   2772 		vmx_vcpu_setstate_seg(state->segs, NVMM_X64_SEG_FS);
   2773 		vmx_vcpu_setstate_seg(state->segs, NVMM_X64_SEG_GS);
   2774 		vmx_vcpu_setstate_seg(state->segs, NVMM_X64_SEG_SS);
   2775 		vmx_vcpu_setstate_seg(state->segs, NVMM_X64_SEG_GDT);
   2776 		vmx_vcpu_setstate_seg(state->segs, NVMM_X64_SEG_IDT);
   2777 		vmx_vcpu_setstate_seg(state->segs, NVMM_X64_SEG_LDT);
   2778 		vmx_vcpu_setstate_seg(state->segs, NVMM_X64_SEG_TR);
   2779 	}
   2780 
   2781 	CTASSERT(sizeof(cpudata->gprs) == sizeof(state->gprs));
   2782 	if (flags & NVMM_X64_STATE_GPRS) {
   2783 		memcpy(cpudata->gprs, state->gprs, sizeof(state->gprs));
   2784 
   2785 		vmx_vmwrite(VMCS_GUEST_RIP, state->gprs[NVMM_X64_GPR_RIP]);
   2786 		vmx_vmwrite(VMCS_GUEST_RSP, state->gprs[NVMM_X64_GPR_RSP]);
   2787 		vmx_vmwrite(VMCS_GUEST_RFLAGS, state->gprs[NVMM_X64_GPR_RFLAGS]);
   2788 	}
   2789 
   2790 	if (flags & NVMM_X64_STATE_CRS) {
   2791 		/*
   2792 		 * CR0_ET must be 1 both in the shadow and the real register.
   2793 		 * CR0_NE must be 1 in the real register.
   2794 		 * CR0_NW and CR0_CD must be 0 in the real register.
   2795 		 */
   2796 		vmx_vmwrite(VMCS_CR0_SHADOW,
   2797 		    (state->crs[NVMM_X64_CR_CR0] & CR0_STATIC_MASK) |
   2798 		    CR0_ET);
   2799 		vmx_vmwrite(VMCS_GUEST_CR0,
   2800 		    (state->crs[NVMM_X64_CR_CR0] & ~CR0_STATIC_MASK) |
   2801 		    CR0_ET | CR0_NE);
   2802 
   2803 		cpudata->gcr2 = state->crs[NVMM_X64_CR_CR2];
   2804 
   2805 		/* XXX We are not handling PDPTE here. */
   2806 		vmx_vmwrite(VMCS_GUEST_CR3, state->crs[NVMM_X64_CR_CR3]);
   2807 
   2808 		/* CR4_VMXE is mandatory. */
   2809 		vmx_vmwrite(VMCS_GUEST_CR4,
   2810 		    (state->crs[NVMM_X64_CR_CR4] & CR4_VALID) | CR4_VMXE);
   2811 
   2812 		cpudata->gcr8 = state->crs[NVMM_X64_CR_CR8];
   2813 
   2814 		if (cpudata->xcr0_mask != 0) {
   2815 			const uint64_t xcr0 = state->crs[NVMM_X64_CR_XCR0];
   2816 
   2817 			cpudata->gxcr0 = nvmm_x86_munge_xcr0(xcr0,
   2818 			    cpudata->xcr0_mask);
   2819 		}
   2820 	}
   2821 
   2822 	CTASSERT(sizeof(cpudata->drs) == sizeof(state->drs));
   2823 	if (flags & NVMM_X64_STATE_DRS) {
   2824 		memcpy(cpudata->drs, state->drs, sizeof(state->drs));
   2825 
   2826 		cpudata->drs[NVMM_X64_DR_DR6] &= 0xFFFFFFFF;
   2827 		vmx_vmwrite(VMCS_GUEST_DR7, cpudata->drs[NVMM_X64_DR_DR7]);
   2828 	}
   2829 
   2830 	if (flags & NVMM_X64_STATE_MSRS) {
   2831 		cpudata->gmsr[VMX_MSRLIST_STAR].val =
   2832 		    state->msrs[NVMM_X64_MSR_STAR];
   2833 		cpudata->gmsr[VMX_MSRLIST_LSTAR].val =
   2834 		    state->msrs[NVMM_X64_MSR_LSTAR];
   2835 		cpudata->gmsr[VMX_MSRLIST_CSTAR].val =
   2836 		    state->msrs[NVMM_X64_MSR_CSTAR];
   2837 		cpudata->gmsr[VMX_MSRLIST_SFMASK].val =
   2838 		    state->msrs[NVMM_X64_MSR_SFMASK];
   2839 		cpudata->gmsr[VMX_MSRLIST_KERNELGSBASE].val =
   2840 		    state->msrs[NVMM_X64_MSR_KERNELGSBASE];
   2841 
   2842 		vmx_vmwrite(VMCS_GUEST_IA32_EFER,
   2843 		    state->msrs[NVMM_X64_MSR_EFER]);
   2844 		vmx_vmwrite(VMCS_GUEST_IA32_PAT,
   2845 		    state->msrs[NVMM_X64_MSR_PAT]);
   2846 		vmx_vmwrite(VMCS_GUEST_IA32_SYSENTER_CS,
   2847 		    state->msrs[NVMM_X64_MSR_SYSENTER_CS]);
   2848 		vmx_vmwrite(VMCS_GUEST_IA32_SYSENTER_ESP,
   2849 		    state->msrs[NVMM_X64_MSR_SYSENTER_ESP]);
   2850 		vmx_vmwrite(VMCS_GUEST_IA32_SYSENTER_EIP,
   2851 		    state->msrs[NVMM_X64_MSR_SYSENTER_EIP]);
   2852 
   2853 		cpudata->gtsc = state->msrs[NVMM_X64_MSR_TSC];
   2854 		cpudata->gtsc_want_update = true;
   2855 
   2856 		/* ENTRY_CTLS_LONG_MODE must match EFER_LMA. */
   2857 		ctls1 = vmx_vmread(VMCS_ENTRY_CTLS);
   2858 		if (state->msrs[NVMM_X64_MSR_EFER] & EFER_LMA) {
   2859 			ctls1 |= ENTRY_CTLS_LONG_MODE;
   2860 		} else {
   2861 			ctls1 &= ~ENTRY_CTLS_LONG_MODE;
   2862 		}
   2863 		vmx_vmwrite(VMCS_ENTRY_CTLS, ctls1);
   2864 	}
   2865 
   2866 	if (flags & NVMM_X64_STATE_INTR) {
   2867 		intstate = vmx_vmread(VMCS_GUEST_INTERRUPTIBILITY);
   2868 		intstate &= ~(INT_STATE_STI|INT_STATE_MOVSS);
   2869 		if (state->intr.int_shadow) {
   2870 			intstate |= INT_STATE_MOVSS;
   2871 		}
   2872 		vmx_vmwrite(VMCS_GUEST_INTERRUPTIBILITY, intstate);
   2873 
   2874 		if (state->intr.int_window_exiting) {
   2875 			vmx_event_waitexit_enable(vcpu, false);
   2876 		} else {
   2877 			vmx_event_waitexit_disable(vcpu, false);
   2878 		}
   2879 
   2880 		if (state->intr.nmi_window_exiting) {
   2881 			vmx_event_waitexit_enable(vcpu, true);
   2882 		} else {
   2883 			vmx_event_waitexit_disable(vcpu, true);
   2884 		}
   2885 	}
   2886 
   2887 	CTASSERT(sizeof(cpudata->gfpu.xsh_fxsave) == sizeof(state->fpu));
   2888 	if (flags & NVMM_X64_STATE_FPU) {
   2889 		memcpy(cpudata->gfpu.xsh_fxsave, &state->fpu,
   2890 		    sizeof(state->fpu));
   2891 
   2892 		fpustate = (struct fxsave *)cpudata->gfpu.xsh_fxsave;
   2893 		fpustate->fx_mxcsr_mask &= x86_fpu_mxcsr_mask;
   2894 		fpustate->fx_mxcsr &= fpustate->fx_mxcsr_mask;
   2895 
   2896 		if (cpudata->xcr0_mask != 0) {
   2897 			/* Reset XSTATE_BV, to force a reload. */
   2898 			cpudata->gfpu.xsh_xstate_bv = cpudata->xcr0_mask;
   2899 		}
   2900 	}
   2901 	/*
   2902 	 * XXX XSAVE area -- need to allocate and map it separately
   2903 	 * since it may exceed the comm page size
   2904 	 */
   2905 
   2906 	vmx_vmcs_leave(vcpu);
   2907 
   2908 	comm->state_wanted = 0;
   2909 	comm->state_cached |= flags;
   2910 }
   2911 
   2912 static void
   2913 vmx_vcpu_getstate(struct nvmm_cpu *vcpu)
   2914 {
   2915 	struct nvmm_comm_page *comm = vcpu->comm;
   2916 	struct nvmm_x64_state *state = &comm->state;
   2917 	struct vmx_cpudata *cpudata = vcpu->cpudata;
   2918 	uint64_t intstate, flags;
   2919 
   2920 	flags = comm->state_wanted;
   2921 
   2922 	vmx_vmcs_enter(vcpu);
   2923 
   2924 	if (flags & NVMM_X64_STATE_SEGS) {
   2925 		vmx_vcpu_getstate_seg(state->segs, NVMM_X64_SEG_CS);
   2926 		vmx_vcpu_getstate_seg(state->segs, NVMM_X64_SEG_DS);
   2927 		vmx_vcpu_getstate_seg(state->segs, NVMM_X64_SEG_ES);
   2928 		vmx_vcpu_getstate_seg(state->segs, NVMM_X64_SEG_FS);
   2929 		vmx_vcpu_getstate_seg(state->segs, NVMM_X64_SEG_GS);
   2930 		vmx_vcpu_getstate_seg(state->segs, NVMM_X64_SEG_SS);
   2931 		vmx_vcpu_getstate_seg(state->segs, NVMM_X64_SEG_GDT);
   2932 		vmx_vcpu_getstate_seg(state->segs, NVMM_X64_SEG_IDT);
   2933 		vmx_vcpu_getstate_seg(state->segs, NVMM_X64_SEG_LDT);
   2934 		vmx_vcpu_getstate_seg(state->segs, NVMM_X64_SEG_TR);
   2935 	}
   2936 
   2937 	CTASSERT(sizeof(cpudata->gprs) == sizeof(state->gprs));
   2938 	if (flags & NVMM_X64_STATE_GPRS) {
   2939 		memcpy(state->gprs, cpudata->gprs, sizeof(state->gprs));
   2940 
   2941 		state->gprs[NVMM_X64_GPR_RIP] = vmx_vmread(VMCS_GUEST_RIP);
   2942 		state->gprs[NVMM_X64_GPR_RSP] = vmx_vmread(VMCS_GUEST_RSP);
   2943 		state->gprs[NVMM_X64_GPR_RFLAGS] = vmx_vmread(VMCS_GUEST_RFLAGS);
   2944 	}
   2945 
   2946 	if (flags & NVMM_X64_STATE_CRS) {
   2947 		state->crs[NVMM_X64_CR_CR0] =
   2948 		    (vmx_vmread(VMCS_CR0_SHADOW) & CR0_STATIC_MASK) |
   2949 		    (vmx_vmread(VMCS_GUEST_CR0) & ~CR0_STATIC_MASK);
   2950 		state->crs[NVMM_X64_CR_CR2] = cpudata->gcr2;
   2951 		state->crs[NVMM_X64_CR_CR3] = vmx_vmread(VMCS_GUEST_CR3);
   2952 		state->crs[NVMM_X64_CR_CR4] = vmx_vmread(VMCS_GUEST_CR4);
   2953 		state->crs[NVMM_X64_CR_CR8] = cpudata->gcr8;
   2954 		state->crs[NVMM_X64_CR_XCR0] = cpudata->gxcr0;
   2955 
   2956 		/* Hide VMXE. */
   2957 		state->crs[NVMM_X64_CR_CR4] &= ~CR4_VMXE;
   2958 	}
   2959 
   2960 	CTASSERT(sizeof(cpudata->drs) == sizeof(state->drs));
   2961 	if (flags & NVMM_X64_STATE_DRS) {
   2962 		memcpy(state->drs, cpudata->drs, sizeof(state->drs));
   2963 
   2964 		state->drs[NVMM_X64_DR_DR7] = vmx_vmread(VMCS_GUEST_DR7);
   2965 	}
   2966 
   2967 	if (flags & NVMM_X64_STATE_MSRS) {
   2968 		state->msrs[NVMM_X64_MSR_STAR] =
   2969 		    cpudata->gmsr[VMX_MSRLIST_STAR].val;
   2970 		state->msrs[NVMM_X64_MSR_LSTAR] =
   2971 		    cpudata->gmsr[VMX_MSRLIST_LSTAR].val;
   2972 		state->msrs[NVMM_X64_MSR_CSTAR] =
   2973 		    cpudata->gmsr[VMX_MSRLIST_CSTAR].val;
   2974 		state->msrs[NVMM_X64_MSR_SFMASK] =
   2975 		    cpudata->gmsr[VMX_MSRLIST_SFMASK].val;
   2976 		state->msrs[NVMM_X64_MSR_KERNELGSBASE] =
   2977 		    cpudata->gmsr[VMX_MSRLIST_KERNELGSBASE].val;
   2978 		state->msrs[NVMM_X64_MSR_EFER] =
   2979 		    vmx_vmread(VMCS_GUEST_IA32_EFER);
   2980 		state->msrs[NVMM_X64_MSR_PAT] =
   2981 		    vmx_vmread(VMCS_GUEST_IA32_PAT);
   2982 		state->msrs[NVMM_X64_MSR_SYSENTER_CS] =
   2983 		    vmx_vmread(VMCS_GUEST_IA32_SYSENTER_CS);
   2984 		state->msrs[NVMM_X64_MSR_SYSENTER_ESP] =
   2985 		    vmx_vmread(VMCS_GUEST_IA32_SYSENTER_ESP);
   2986 		state->msrs[NVMM_X64_MSR_SYSENTER_EIP] =
   2987 		    vmx_vmread(VMCS_GUEST_IA32_SYSENTER_EIP);
   2988 		state->msrs[NVMM_X64_MSR_TSC] = cpudata->gtsc;
   2989 	}
   2990 
   2991 	if (flags & NVMM_X64_STATE_INTR) {
   2992 		intstate = vmx_vmread(VMCS_GUEST_INTERRUPTIBILITY);
   2993 		state->intr.int_shadow =
   2994 		    (intstate & (INT_STATE_STI|INT_STATE_MOVSS)) != 0;
   2995 		state->intr.int_window_exiting = cpudata->int_window_exit;
   2996 		state->intr.nmi_window_exiting = cpudata->nmi_window_exit;
   2997 		state->intr.evt_pending = cpudata->evt_pending;
   2998 	}
   2999 
   3000 	CTASSERT(sizeof(cpudata->gfpu.xsh_fxsave) == sizeof(state->fpu));
   3001 	if (flags & NVMM_X64_STATE_FPU) {
   3002 		memcpy(&state->fpu, cpudata->gfpu.xsh_fxsave,
   3003 		    sizeof(state->fpu));
   3004 	}
   3005 	/*
   3006 	 * XXX XSAVE area -- need to allocate and map it separately
   3007 	 * since it may exceed the comm page size
   3008 	 */
   3009 
   3010 	vmx_vmcs_leave(vcpu);
   3011 
   3012 	comm->state_wanted = 0;
   3013 	comm->state_cached |= flags;
   3014 }
   3015 
   3016 static void
   3017 vmx_vcpu_state_provide(struct nvmm_cpu *vcpu, uint64_t flags)
   3018 {
   3019 	vcpu->comm->state_wanted = flags;
   3020 	vmx_vcpu_getstate(vcpu);
   3021 }
   3022 
   3023 static void
   3024 vmx_vcpu_state_commit(struct nvmm_cpu *vcpu)
   3025 {
   3026 	vcpu->comm->state_wanted = vcpu->comm->state_commit;
   3027 	vcpu->comm->state_commit = 0;
   3028 	vmx_vcpu_setstate(vcpu);
   3029 }
   3030 
   3031 /* -------------------------------------------------------------------------- */
   3032 
   3033 static void
   3034 vmx_asid_alloc(struct nvmm_cpu *vcpu)
   3035 {
   3036 	struct vmx_cpudata *cpudata = vcpu->cpudata;
   3037 	size_t i, oct, bit;
   3038 
   3039 	mutex_enter(&vmx_asidlock);
   3040 
   3041 	for (i = 0; i < vmx_maxasid; i++) {
   3042 		oct = i / 8;
   3043 		bit = i % 8;
   3044 
   3045 		if (vmx_asidmap[oct] & __BIT(bit)) {
   3046 			continue;
   3047 		}
   3048 
   3049 		cpudata->asid = i;
   3050 
   3051 		vmx_asidmap[oct] |= __BIT(bit);
   3052 		vmx_vmwrite(VMCS_VPID, i);
   3053 		mutex_exit(&vmx_asidlock);
   3054 		return;
   3055 	}
   3056 
   3057 	mutex_exit(&vmx_asidlock);
   3058 
   3059 	panic("%s: impossible", __func__);
   3060 }
   3061 
   3062 static void
   3063 vmx_asid_free(struct nvmm_cpu *vcpu)
   3064 {
   3065 	size_t oct, bit;
   3066 	uint64_t asid;
   3067 
   3068 	asid = vmx_vmread(VMCS_VPID);
   3069 
   3070 	oct = asid / 8;
   3071 	bit = asid % 8;
   3072 
   3073 	mutex_enter(&vmx_asidlock);
   3074 	vmx_asidmap[oct] &= ~__BIT(bit);
   3075 	mutex_exit(&vmx_asidlock);
   3076 }
   3077 
   3078 static void
   3079 vmx_vcpu_init(struct nvmm_machine *mach, struct nvmm_cpu *vcpu)
   3080 {
   3081 	struct vmx_cpudata *cpudata = vcpu->cpudata;
   3082 	struct vmcs *vmcs = cpudata->vmcs;
   3083 	struct msr_entry *gmsr = cpudata->gmsr;
   3084 	extern uint8_t vmx_resume_rip;
   3085 	uint64_t rev, eptp;
   3086 
   3087 	rev = vmx_get_revision();
   3088 
   3089 	memset(vmcs, 0, VMCS_SIZE);
   3090 	vmcs->ident = __SHIFTIN(rev, VMCS_IDENT_REVISION);
   3091 	vmcs->abort = 0;
   3092 
   3093 	vmx_vmcs_enter(vcpu);
   3094 
   3095 	/* No link pointer. */
   3096 	vmx_vmwrite(VMCS_LINK_POINTER, 0xFFFFFFFFFFFFFFFF);
   3097 
   3098 	/* Install the CTLSs. */
   3099 	vmx_vmwrite(VMCS_PINBASED_CTLS, vmx_pinbased_ctls);
   3100 	vmx_vmwrite(VMCS_PROCBASED_CTLS, vmx_procbased_ctls);
   3101 	vmx_vmwrite(VMCS_PROCBASED_CTLS2, vmx_procbased_ctls2);
   3102 	vmx_vmwrite(VMCS_ENTRY_CTLS, vmx_entry_ctls);
   3103 	vmx_vmwrite(VMCS_EXIT_CTLS, vmx_exit_ctls);
   3104 
   3105 	/* Allow direct access to certain MSRs. */
   3106 	memset(cpudata->msrbm, 0xFF, MSRBM_SIZE);
   3107 	vmx_vcpu_msr_allow(cpudata->msrbm, MSR_EFER, true, true);
   3108 	vmx_vcpu_msr_allow(cpudata->msrbm, MSR_STAR, true, true);
   3109 	vmx_vcpu_msr_allow(cpudata->msrbm, MSR_LSTAR, true, true);
   3110 	vmx_vcpu_msr_allow(cpudata->msrbm, MSR_CSTAR, true, true);
   3111 	vmx_vcpu_msr_allow(cpudata->msrbm, MSR_SFMASK, true, true);
   3112 	vmx_vcpu_msr_allow(cpudata->msrbm, MSR_KERNELGSBASE, true, true);
   3113 	vmx_vcpu_msr_allow(cpudata->msrbm, MSR_SYSENTER_CS, true, true);
   3114 	vmx_vcpu_msr_allow(cpudata->msrbm, MSR_SYSENTER_ESP, true, true);
   3115 	vmx_vcpu_msr_allow(cpudata->msrbm, MSR_SYSENTER_EIP, true, true);
   3116 	vmx_vcpu_msr_allow(cpudata->msrbm, MSR_FSBASE, true, true);
   3117 	vmx_vcpu_msr_allow(cpudata->msrbm, MSR_GSBASE, true, true);
   3118 	vmx_vcpu_msr_allow(cpudata->msrbm, MSR_TSC, true, false);
   3119 	vmx_vmwrite(VMCS_MSR_BITMAP, (uint64_t)cpudata->msrbm_pa);
   3120 
   3121 	/*
   3122 	 * List of Guest MSRs loaded on VMENTRY, saved on VMEXIT. This
   3123 	 * includes the L1D_FLUSH MSR, to mitigate L1TF.
   3124 	 */
   3125 	gmsr[VMX_MSRLIST_STAR].msr = MSR_STAR;
   3126 	gmsr[VMX_MSRLIST_STAR].val = 0;
   3127 	gmsr[VMX_MSRLIST_LSTAR].msr = MSR_LSTAR;
   3128 	gmsr[VMX_MSRLIST_LSTAR].val = 0;
   3129 	gmsr[VMX_MSRLIST_CSTAR].msr = MSR_CSTAR;
   3130 	gmsr[VMX_MSRLIST_CSTAR].val = 0;
   3131 	gmsr[VMX_MSRLIST_SFMASK].msr = MSR_SFMASK;
   3132 	gmsr[VMX_MSRLIST_SFMASK].val = 0;
   3133 	gmsr[VMX_MSRLIST_KERNELGSBASE].msr = MSR_KERNELGSBASE;
   3134 	gmsr[VMX_MSRLIST_KERNELGSBASE].val = 0;
   3135 	gmsr[VMX_MSRLIST_L1DFLUSH].msr = MSR_IA32_FLUSH_CMD;
   3136 	gmsr[VMX_MSRLIST_L1DFLUSH].val = IA32_FLUSH_CMD_L1D_FLUSH;
   3137 	vmx_vmwrite(VMCS_ENTRY_MSR_LOAD_ADDRESS, cpudata->gmsr_pa);
   3138 	vmx_vmwrite(VMCS_EXIT_MSR_STORE_ADDRESS, cpudata->gmsr_pa);
   3139 	vmx_vmwrite(VMCS_ENTRY_MSR_LOAD_COUNT, vmx_msrlist_entry_nmsr);
   3140 	vmx_vmwrite(VMCS_EXIT_MSR_STORE_COUNT, VMX_MSRLIST_EXIT_NMSR);
   3141 
   3142 	/* Set the CR0 mask. Any change of these bits causes a VMEXIT. */
   3143 	vmx_vmwrite(VMCS_CR0_MASK, CR0_STATIC_MASK);
   3144 
   3145 	/* Force unsupported CR4 fields to zero. */
   3146 	vmx_vmwrite(VMCS_CR4_MASK, CR4_INVALID);
   3147 	vmx_vmwrite(VMCS_CR4_SHADOW, 0);
   3148 
   3149 	/* Set the Host state for resuming. */
   3150 	vmx_vmwrite(VMCS_HOST_RIP, (uint64_t)&vmx_resume_rip);
   3151 	vmx_vmwrite(VMCS_HOST_CS_SELECTOR, GSEL(GCODE_SEL, SEL_KPL));
   3152 	vmx_vmwrite(VMCS_HOST_SS_SELECTOR, GSEL(GDATA_SEL, SEL_KPL));
   3153 	vmx_vmwrite(VMCS_HOST_DS_SELECTOR, GSEL(GDATA_SEL, SEL_KPL));
   3154 	vmx_vmwrite(VMCS_HOST_ES_SELECTOR, GSEL(GDATA_SEL, SEL_KPL));
   3155 	vmx_vmwrite(VMCS_HOST_FS_SELECTOR, 0);
   3156 	vmx_vmwrite(VMCS_HOST_GS_SELECTOR, 0);
   3157 	vmx_vmwrite(VMCS_HOST_IA32_SYSENTER_CS, 0);
   3158 	vmx_vmwrite(VMCS_HOST_IA32_SYSENTER_ESP, 0);
   3159 	vmx_vmwrite(VMCS_HOST_IA32_SYSENTER_EIP, 0);
   3160 	vmx_vmwrite(VMCS_HOST_IA32_PAT, rdmsr(MSR_CR_PAT));
   3161 	vmx_vmwrite(VMCS_HOST_IA32_EFER, rdmsr(MSR_EFER));
   3162 	vmx_vmwrite(VMCS_HOST_CR0, rcr0() & ~CR0_TS);
   3163 
   3164 	/* Generate ASID. */
   3165 	vmx_asid_alloc(vcpu);
   3166 
   3167 	/* Enable Extended Paging, 4-Level. */
   3168 	eptp =
   3169 	    __SHIFTIN(vmx_eptp_type, EPTP_TYPE) |
   3170 	    __SHIFTIN(4-1, EPTP_WALKLEN) |
   3171 	    (pmap_ept_has_ad ? EPTP_FLAGS_AD : 0) |
   3172 	    mach->vm->vm_map.pmap->pm_pdirpa[0];
   3173 	vmx_vmwrite(VMCS_EPTP, eptp);
   3174 
   3175 	/* Init IA32_MISC_ENABLE. */
   3176 	cpudata->gmsr_misc_enable = rdmsr(MSR_MISC_ENABLE);
   3177 	cpudata->gmsr_misc_enable &=
   3178 	    ~(IA32_MISC_PERFMON_EN|IA32_MISC_EISST_EN|IA32_MISC_MWAIT_EN);
   3179 	cpudata->gmsr_misc_enable |=
   3180 	    (IA32_MISC_BTS_UNAVAIL|IA32_MISC_PEBS_UNAVAIL);
   3181 
   3182 	/* Init XSAVE header. */
   3183 	cpudata->xcr0_mask = vmx_xcr0_mask;
   3184 	KASSERTMSG(nvmm_x86_xcr0_valid(cpudata->xcr0_mask, vmx_xcr0_mask),
   3185 	    "cpudata->xcr0_mask=0x%"PRIx64" vmx_xcr0_mask=0x%"PRIx64,
   3186 	    cpudata->xcr0_mask, vmx_xcr0_mask);
   3187 	cpudata->gfpu.xsh_xstate_bv = cpudata->xcr0_mask;
   3188 	cpudata->gfpu.xsh_xcomp_bv = 0;
   3189 
   3190 	/* These MSRs are static. */
   3191 	cpudata->star = rdmsr(MSR_STAR);
   3192 	cpudata->lstar = rdmsr(MSR_LSTAR);
   3193 	cpudata->cstar = rdmsr(MSR_CSTAR);
   3194 	cpudata->sfmask = rdmsr(MSR_SFMASK);
   3195 
   3196 	/* Install the RESET state. */
   3197 	memcpy(&vcpu->comm->state, &nvmm_x86_reset_state,
   3198 	    sizeof(nvmm_x86_reset_state));
   3199 	vcpu->comm->state_wanted = NVMM_X64_STATE_ALL;
   3200 	vcpu->comm->state_cached = 0;
   3201 	vmx_vcpu_setstate(vcpu);
   3202 
   3203 	vmx_vmcs_leave(vcpu);
   3204 }
   3205 
   3206 static int
   3207 vmx_vcpu_create(struct nvmm_machine *mach, struct nvmm_cpu *vcpu)
   3208 {
   3209 	size_t xsave_size, cpudata_size;
   3210 	struct vmx_cpudata *cpudata;
   3211 	int error;
   3212 
   3213 	/*
   3214 	 * Compute the size of the VMX cpudata.  We put the
   3215 	 * variable-length XSAVE area at the end so if it's small
   3216 	 * enough, it stays within a single page.  We size the XSAVE
   3217 	 * area for the maximum set of features supported by the CPU
   3218 	 * which a guest can enable (which may be more than the NetBSD
   3219 	 * host enables for itself -- hence we don't use
   3220 	 * x86_fpu_save_size here!).
   3221 	 */
   3222 	xsave_size = nvmm_x86_xsave_size(vmx_xcr0_mask);
   3223 	KASSERT(xsave_size < SIZE_MAX - offsetof(struct vmx_cpudata, gfpu));
   3224 	cpudata_size = MAX(sizeof(*cpudata),
   3225 	    offsetof(struct vmx_cpudata, gfpu) + xsave_size);
   3226 
   3227 	/* Allocate the VMX cpudata. */
   3228 	cpudata = (struct vmx_cpudata *)uvm_km_alloc(kernel_map,
   3229 	    roundup(cpudata_size, PAGE_SIZE), 0,
   3230 	    UVM_KMF_WIRED|UVM_KMF_ZERO);
   3231 	vcpu->cpudata = cpudata;
   3232 
   3233 	/* VMCS */
   3234 	error = vmx_memalloc(&cpudata->vmcs_pa, (vaddr_t *)&cpudata->vmcs,
   3235 	    VMCS_NPAGES);
   3236 	if (error)
   3237 		goto error;
   3238 
   3239 	/* MSR Bitmap */
   3240 	error = vmx_memalloc(&cpudata->msrbm_pa, (vaddr_t *)&cpudata->msrbm,
   3241 	    MSRBM_NPAGES);
   3242 	if (error)
   3243 		goto error;
   3244 
   3245 	/* Guest MSR List */
   3246 	error = vmx_memalloc(&cpudata->gmsr_pa, (vaddr_t *)&cpudata->gmsr, 1);
   3247 	if (error)
   3248 		goto error;
   3249 
   3250 	kcpuset_create(&cpudata->htlb_want_flush, true);
   3251 
   3252 	/* Init the VCPU info. */
   3253 	vmx_vcpu_init(mach, vcpu);
   3254 
   3255 	return 0;
   3256 
   3257 error:
   3258 	if (cpudata->vmcs_pa) {
   3259 		vmx_memfree(cpudata->vmcs_pa, (vaddr_t)cpudata->vmcs,
   3260 		    VMCS_NPAGES);
   3261 	}
   3262 	if (cpudata->msrbm_pa) {
   3263 		vmx_memfree(cpudata->msrbm_pa, (vaddr_t)cpudata->msrbm,
   3264 		    MSRBM_NPAGES);
   3265 	}
   3266 	if (cpudata->gmsr_pa) {
   3267 		vmx_memfree(cpudata->gmsr_pa, (vaddr_t)cpudata->gmsr, 1);
   3268 	}
   3269 
   3270 	kmem_free(cpudata, sizeof(*cpudata));
   3271 	return error;
   3272 }
   3273 
   3274 static void
   3275 vmx_vcpu_destroy(struct nvmm_machine *mach, struct nvmm_cpu *vcpu)
   3276 {
   3277 	struct vmx_cpudata *cpudata = vcpu->cpudata;
   3278 
   3279 	vmx_vmcs_enter(vcpu);
   3280 	vmx_asid_free(vcpu);
   3281 	vmx_vmcs_destroy(vcpu);
   3282 
   3283 	kcpuset_destroy(cpudata->htlb_want_flush);
   3284 
   3285 	vmx_memfree(cpudata->vmcs_pa, (vaddr_t)cpudata->vmcs, VMCS_NPAGES);
   3286 	vmx_memfree(cpudata->msrbm_pa, (vaddr_t)cpudata->msrbm, MSRBM_NPAGES);
   3287 	vmx_memfree(cpudata->gmsr_pa, (vaddr_t)cpudata->gmsr, 1);
   3288 	uvm_km_free(kernel_map, (vaddr_t)cpudata,
   3289 	    roundup(sizeof(*cpudata), PAGE_SIZE), UVM_KMF_WIRED);
   3290 }
   3291 
   3292 /* -------------------------------------------------------------------------- */
   3293 
   3294 static int
   3295 vmx_vcpu_configure_cpuid(struct vmx_cpudata *cpudata, void *data)
   3296 {
   3297 	struct nvmm_vcpu_conf_cpuid *cpuid = data;
   3298 	size_t i;
   3299 
   3300 	if (__predict_false(cpuid->mask && cpuid->exit)) {
   3301 		return EINVAL;
   3302 	}
   3303 	if (__predict_false(cpuid->mask &&
   3304 	    ((cpuid->u.mask.set.eax & cpuid->u.mask.del.eax) ||
   3305 	     (cpuid->u.mask.set.ebx & cpuid->u.mask.del.ebx) ||
   3306 	     (cpuid->u.mask.set.ecx & cpuid->u.mask.del.ecx) ||
   3307 	     (cpuid->u.mask.set.edx & cpuid->u.mask.del.edx)))) {
   3308 		return EINVAL;
   3309 	}
   3310 
   3311 	/* If unset, delete, to restore the default behavior. */
   3312 	if (!cpuid->mask && !cpuid->exit) {
   3313 		for (i = 0; i < VMX_NCPUIDS; i++) {
   3314 			if (!cpudata->cpuidpresent[i]) {
   3315 				continue;
   3316 			}
   3317 			if (cpudata->cpuid[i].leaf == cpuid->leaf) {
   3318 				cpudata->cpuidpresent[i] = false;
   3319 			}
   3320 		}
   3321 		return 0;
   3322 	}
   3323 
   3324 	/* If already here, replace. */
   3325 	for (i = 0; i < VMX_NCPUIDS; i++) {
   3326 		if (!cpudata->cpuidpresent[i]) {
   3327 			continue;
   3328 		}
   3329 		if (cpudata->cpuid[i].leaf == cpuid->leaf) {
   3330 			memcpy(&cpudata->cpuid[i], cpuid,
   3331 			    sizeof(struct nvmm_vcpu_conf_cpuid));
   3332 			return 0;
   3333 		}
   3334 	}
   3335 
   3336 	/* Not here, insert. */
   3337 	for (i = 0; i < VMX_NCPUIDS; i++) {
   3338 		if (!cpudata->cpuidpresent[i]) {
   3339 			cpudata->cpuidpresent[i] = true;
   3340 			memcpy(&cpudata->cpuid[i], cpuid,
   3341 			    sizeof(struct nvmm_vcpu_conf_cpuid));
   3342 			return 0;
   3343 		}
   3344 	}
   3345 
   3346 	return ENOBUFS;
   3347 }
   3348 
   3349 static int
   3350 vmx_vcpu_configure_tpr(struct vmx_cpudata *cpudata, void *data)
   3351 {
   3352 	struct nvmm_vcpu_conf_tpr *tpr = data;
   3353 
   3354 	memcpy(&cpudata->tpr, tpr, sizeof(*tpr));
   3355 	return 0;
   3356 }
   3357 
   3358 static int
   3359 vmx_vcpu_configure_xcr0_mask(struct vmx_cpudata *cpudata, void *data)
   3360 {
   3361 	const uint64_t *xcr0_maskp = data;
   3362 
   3363 	/*
   3364 	 * Refuse to enable XCR0 bits (extended CPU state components)
   3365 	 * not supported by this system, or to set up otherwise
   3366 	 * nonsensical masks like AVX (YMM_Hi128) but not SSE (XMM)
   3367 	 * registers.  Exception: The mask can be all-zero to disable
   3368 	 * all XSAVE state components.
   3369 	 */
   3370 	if (*xcr0_maskp != 0 &&
   3371 	    !nvmm_x86_xcr0_valid(*xcr0_maskp, vmx_xcr0_mask))
   3372 		return EINVAL;
   3373 
   3374 	/*
   3375 	 * Out of paranoia, clear any existing extended CPU state.
   3376 	 * This operation is unlikely to be used before the guest has
   3377 	 * begun execution at all, so the extended CPU state is
   3378 	 * probably all zero.  But in case some weird hypervisor
   3379 	 * software tries to change the XCR0 mask dynamically, let's
   3380 	 * avoid accidentally leaking things through any extended CPU
   3381 	 * state.
   3382 	 *
   3383 	 * We could zero only the components that are getting disabled.
   3384 	 * But if the saved state is compated (XSAVEC), we wouldd also
   3385 	 * have to move the remaining components around in order to
   3386 	 * avoid zeroing them.  Since no software is likely to try this
   3387 	 * anyway, we'll just zero everything to keep it simple and
   3388 	 * avoid having to test the difficult-and-unused paths.
   3389 	 */
   3390 	memset(&cpudata->gfpu, 0, nvmm_x86_xsave_size(vmx_xcr0_mask));
   3391 
   3392 	/*
   3393 	 * Set the XCR0 mask, and limit the guest's XCR0 to this mask.
   3394 	 * Any extended CPU state the guest had previously been using
   3395 	 * will be wiped out.
   3396 	 */
   3397 	cpudata->xcr0_mask = *xcr0_maskp;
   3398 	cpudata->gxcr0 &= cpudata->xcr0_mask;
   3399 	KASSERTMSG((cpudata->xcr0_mask == 0 ||
   3400 		nvmm_x86_xcr0_valid(cpudata->gxcr0, cpudata->xcr0_mask)),
   3401 	    "gxcr0=0x%"PRIx64" xcr0_mask=0x%"PRIx64,
   3402 	    cpudata->gxcr0, cpudata->xcr0_mask);
   3403 	return 0;
   3404 }
   3405 
   3406 static int
   3407 vmx_vcpu_configure(struct nvmm_cpu *vcpu, uint64_t op, void *data)
   3408 {
   3409 	struct vmx_cpudata *cpudata = vcpu->cpudata;
   3410 
   3411 	switch (op) {
   3412 	case NVMM_VCPU_CONF_MD(NVMM_VCPU_CONF_CPUID):
   3413 		return vmx_vcpu_configure_cpuid(cpudata, data);
   3414 	case NVMM_VCPU_CONF_MD(NVMM_VCPU_CONF_TPR):
   3415 		return vmx_vcpu_configure_tpr(cpudata, data);
   3416 	case NVMM_VCPU_CONF_MD(NVMM_VCPU_CONF_XCR0_MASK):
   3417 		return vmx_vcpu_configure_xcr0_mask(cpudata, data);
   3418 	default:
   3419 		return EINVAL;
   3420 	}
   3421 }
   3422 
   3423 static void
   3424 vmx_vcpu_suspend(struct nvmm_machine *mach, struct nvmm_cpu *vcpu)
   3425 {
   3426 	struct vmx_cpudata *cpudata = vcpu->cpudata;
   3427 	struct cpu_info *vmcs_ci;
   3428 
   3429 	KASSERT(cpudata->vmcs_refcnt == 0);
   3430 
   3431 	vmcs_ci = cpudata->vmcs_ci;
   3432 	cpudata->vmcs_ci = (void *)0x00FFFFFFFFFFFFFF; /* clobber */
   3433 
   3434 	kpreempt_disable();
   3435 	if (vmcs_ci == NULL) {
   3436 		/* VMCS is inactive, nothing to do.  */
   3437 	} else if (vmcs_ci != curcpu()) {
   3438 		/* VMCS is active on a remote CPU; clear it there.  */
   3439 		vmx_vmclear_remote(vmcs_ci, cpudata->vmcs_pa);
   3440 	} else {
   3441 		/* VMCS is active on this CPU; clear it here.  */
   3442 		vmx_vmclear(&cpudata->vmcs_pa);
   3443 	}
   3444 	kpreempt_enable();
   3445 }
   3446 
   3447 static void
   3448 vmx_vcpu_resume(struct nvmm_machine *mach, struct nvmm_cpu *vcpu)
   3449 {
   3450 	struct vmx_cpudata *cpudata = vcpu->cpudata;
   3451 
   3452 	KASSERT(cpudata->vmcs_refcnt == 0);
   3453 
   3454 	/* Mark VMCS as inactive.  */
   3455 	cpudata->vmcs_ci = NULL;
   3456 }
   3457 
   3458 /* -------------------------------------------------------------------------- */
   3459 
   3460 static void
   3461 vmx_tlb_flush(struct pmap *pm)
   3462 {
   3463 	struct nvmm_machine *mach = pm->pm_data;
   3464 	struct vmx_machdata *machdata = mach->machdata;
   3465 
   3466 	atomic_inc_64(&machdata->mach_htlb_gen);
   3467 
   3468 	/* Generates IPIs, which cause #VMEXITs. */
   3469 	pmap_tlb_shootdown(pmap_kernel(), -1, PTE_G, TLBSHOOT_NVMM);
   3470 }
   3471 
   3472 static void
   3473 vmx_machine_create(struct nvmm_machine *mach)
   3474 {
   3475 	struct pmap *pmap = mach->vm->vm_map.pmap;
   3476 	struct vmx_machdata *machdata;
   3477 
   3478 	/* Convert to EPT. */
   3479 	pmap_ept_transform(pmap);
   3480 
   3481 	/* Fill in pmap info. */
   3482 	pmap->pm_data = (void *)mach;
   3483 	pmap->pm_tlb_flush = vmx_tlb_flush;
   3484 
   3485 	machdata = kmem_zalloc(sizeof(struct vmx_machdata), KM_SLEEP);
   3486 	mach->machdata = machdata;
   3487 
   3488 	/* Start with an hTLB flush everywhere. */
   3489 	machdata->mach_htlb_gen = 1;
   3490 }
   3491 
   3492 static void
   3493 vmx_machine_destroy(struct nvmm_machine *mach)
   3494 {
   3495 	struct vmx_machdata *machdata = mach->machdata;
   3496 
   3497 	kmem_free(machdata, sizeof(struct vmx_machdata));
   3498 }
   3499 
   3500 static int
   3501 vmx_machine_configure(struct nvmm_machine *mach, uint64_t op, void *data)
   3502 {
   3503 	panic("%s: impossible", __func__);
   3504 }
   3505 
   3506 /* -------------------------------------------------------------------------- */
   3507 
   3508 #define CTLS_ONE_ALLOWED(msrval, bitoff) \
   3509 	((msrval & __BIT(32 + bitoff)) != 0)
   3510 #define CTLS_ZERO_ALLOWED(msrval, bitoff) \
   3511 	((msrval & __BIT(bitoff)) == 0)
   3512 
   3513 static int
   3514 vmx_check_ctls(uint64_t msr_ctls, uint64_t msr_true_ctls, uint64_t set_one)
   3515 {
   3516 	uint64_t basic, val, true_val;
   3517 	bool has_true;
   3518 	size_t i;
   3519 
   3520 	basic = rdmsr(MSR_IA32_VMX_BASIC);
   3521 	has_true = (basic & IA32_VMX_BASIC_TRUE_CTLS) != 0;
   3522 
   3523 	val = rdmsr(msr_ctls);
   3524 	if (has_true) {
   3525 		true_val = rdmsr(msr_true_ctls);
   3526 	} else {
   3527 		true_val = val;
   3528 	}
   3529 
   3530 	for (i = 0; i < 32; i++) {
   3531 		if (!(set_one & __BIT(i))) {
   3532 			continue;
   3533 		}
   3534 		if (!CTLS_ONE_ALLOWED(true_val, i)) {
   3535 			return -1;
   3536 		}
   3537 	}
   3538 
   3539 	return 0;
   3540 }
   3541 
   3542 static int
   3543 vmx_init_ctls(uint64_t msr_ctls, uint64_t msr_true_ctls,
   3544     uint64_t set_one, uint64_t set_zero, uint64_t *res)
   3545 {
   3546 	uint64_t basic, val, true_val;
   3547 	bool one_allowed, zero_allowed, has_true;
   3548 	size_t i;
   3549 
   3550 	basic = rdmsr(MSR_IA32_VMX_BASIC);
   3551 	has_true = (basic & IA32_VMX_BASIC_TRUE_CTLS) != 0;
   3552 
   3553 	val = rdmsr(msr_ctls);
   3554 	if (has_true) {
   3555 		true_val = rdmsr(msr_true_ctls);
   3556 	} else {
   3557 		true_val = val;
   3558 	}
   3559 
   3560 	for (i = 0; i < 32; i++) {
   3561 		one_allowed = CTLS_ONE_ALLOWED(true_val, i);
   3562 		zero_allowed = CTLS_ZERO_ALLOWED(true_val, i);
   3563 
   3564 		if (zero_allowed && !one_allowed) {
   3565 			if (set_one & __BIT(i))
   3566 				return -1;
   3567 			*res &= ~__BIT(i);
   3568 		} else if (one_allowed && !zero_allowed) {
   3569 			if (set_zero & __BIT(i))
   3570 				return -1;
   3571 			*res |= __BIT(i);
   3572 		} else {
   3573 			if (set_zero & __BIT(i)) {
   3574 				*res &= ~__BIT(i);
   3575 			} else if (set_one & __BIT(i)) {
   3576 				*res |= __BIT(i);
   3577 			} else if (!has_true) {
   3578 				*res &= ~__BIT(i);
   3579 			} else if (CTLS_ZERO_ALLOWED(val, i)) {
   3580 				*res &= ~__BIT(i);
   3581 			} else if (CTLS_ONE_ALLOWED(val, i)) {
   3582 				*res |= __BIT(i);
   3583 			} else {
   3584 				return -1;
   3585 			}
   3586 		}
   3587 	}
   3588 
   3589 	return 0;
   3590 }
   3591 
   3592 static bool
   3593 vmx_ident(void)
   3594 {
   3595 	uint64_t msr;
   3596 	int ret;
   3597 
   3598 	if (!(cpu_feature[1] & CPUID2_VMX)) {
   3599 		return false;
   3600 	}
   3601 
   3602 	msr = rdmsr(MSR_IA32_FEATURE_CONTROL);
   3603 	if ((msr & IA32_FEATURE_CONTROL_LOCK) != 0 &&
   3604 	    (msr & IA32_FEATURE_CONTROL_OUT_SMX) == 0) {
   3605 		printf("NVMM: VMX disabled in BIOS\n");
   3606 		return false;
   3607 	}
   3608 
   3609 	msr = rdmsr(MSR_IA32_VMX_BASIC);
   3610 	if ((msr & IA32_VMX_BASIC_IO_REPORT) == 0) {
   3611 		printf("NVMM: I/O reporting not supported\n");
   3612 		return false;
   3613 	}
   3614 	if (__SHIFTOUT(msr, IA32_VMX_BASIC_MEM_TYPE) != MEM_TYPE_WB) {
   3615 		printf("NVMM: WB memory not supported\n");
   3616 		return false;
   3617 	}
   3618 
   3619 	/* PG and PE are reported, even if Unrestricted Guests is supported. */
   3620 	vmx_cr0_fixed0 = rdmsr(MSR_IA32_VMX_CR0_FIXED0) & ~(CR0_PG|CR0_PE);
   3621 	vmx_cr0_fixed1 = rdmsr(MSR_IA32_VMX_CR0_FIXED1) | (CR0_PG|CR0_PE);
   3622 	ret = vmx_check_cr(rcr0(), vmx_cr0_fixed0, vmx_cr0_fixed1);
   3623 	if (ret == -1) {
   3624 		printf("NVMM: CR0 requirements not satisfied\n");
   3625 		return false;
   3626 	}
   3627 
   3628 	vmx_cr4_fixed0 = rdmsr(MSR_IA32_VMX_CR4_FIXED0);
   3629 	vmx_cr4_fixed1 = rdmsr(MSR_IA32_VMX_CR4_FIXED1);
   3630 	ret = vmx_check_cr(rcr4() | CR4_VMXE, vmx_cr4_fixed0, vmx_cr4_fixed1);
   3631 	if (ret == -1) {
   3632 		printf("NVMM: CR4 requirements not satisfied\n");
   3633 		return false;
   3634 	}
   3635 
   3636 	/* Init the CTLSs right now, and check for errors. */
   3637 	ret = vmx_init_ctls(
   3638 	    MSR_IA32_VMX_PINBASED_CTLS, MSR_IA32_VMX_TRUE_PINBASED_CTLS,
   3639 	    VMX_PINBASED_CTLS_ONE, VMX_PINBASED_CTLS_ZERO,
   3640 	    &vmx_pinbased_ctls);
   3641 	if (ret == -1) {
   3642 		printf("NVMM: pin-based-ctls requirements not satisfied\n");
   3643 		return false;
   3644 	}
   3645 	ret = vmx_init_ctls(
   3646 	    MSR_IA32_VMX_PROCBASED_CTLS, MSR_IA32_VMX_TRUE_PROCBASED_CTLS,
   3647 	    VMX_PROCBASED_CTLS_ONE, VMX_PROCBASED_CTLS_ZERO,
   3648 	    &vmx_procbased_ctls);
   3649 	if (ret == -1) {
   3650 		printf("NVMM: proc-based-ctls requirements not satisfied\n");
   3651 		return false;
   3652 	}
   3653 	ret = vmx_init_ctls(
   3654 	    MSR_IA32_VMX_PROCBASED_CTLS2, MSR_IA32_VMX_PROCBASED_CTLS2,
   3655 	    VMX_PROCBASED_CTLS2_ONE, VMX_PROCBASED_CTLS2_ZERO,
   3656 	    &vmx_procbased_ctls2);
   3657 	if (ret == -1) {
   3658 		printf("NVMM: proc-based-ctls2 requirements not satisfied\n");
   3659 		return false;
   3660 	}
   3661 	ret = vmx_check_ctls(
   3662 	    MSR_IA32_VMX_PROCBASED_CTLS2, MSR_IA32_VMX_PROCBASED_CTLS2,
   3663 	    PROC_CTLS2_INVPCID_ENABLE);
   3664 	if (ret != -1) {
   3665 		vmx_procbased_ctls2 |= PROC_CTLS2_INVPCID_ENABLE;
   3666 	}
   3667 	ret = vmx_init_ctls(
   3668 	    MSR_IA32_VMX_ENTRY_CTLS, MSR_IA32_VMX_TRUE_ENTRY_CTLS,
   3669 	    VMX_ENTRY_CTLS_ONE, VMX_ENTRY_CTLS_ZERO,
   3670 	    &vmx_entry_ctls);
   3671 	if (ret == -1) {
   3672 		printf("NVMM: entry-ctls requirements not satisfied\n");
   3673 		return false;
   3674 	}
   3675 	ret = vmx_init_ctls(
   3676 	    MSR_IA32_VMX_EXIT_CTLS, MSR_IA32_VMX_TRUE_EXIT_CTLS,
   3677 	    VMX_EXIT_CTLS_ONE, VMX_EXIT_CTLS_ZERO,
   3678 	    &vmx_exit_ctls);
   3679 	if (ret == -1) {
   3680 		printf("NVMM: exit-ctls requirements not satisfied\n");
   3681 		return false;
   3682 	}
   3683 
   3684 	msr = rdmsr(MSR_IA32_VMX_EPT_VPID_CAP);
   3685 	if ((msr & IA32_VMX_EPT_VPID_WALKLENGTH_4) == 0) {
   3686 		printf("NVMM: 4-level page tree not supported\n");
   3687 		return false;
   3688 	}
   3689 	if ((msr & IA32_VMX_EPT_VPID_INVEPT) == 0) {
   3690 		printf("NVMM: INVEPT not supported\n");
   3691 		return false;
   3692 	}
   3693 	if ((msr & IA32_VMX_EPT_VPID_INVVPID) == 0) {
   3694 		printf("NVMM: INVVPID not supported\n");
   3695 		return false;
   3696 	}
   3697 	if ((msr & IA32_VMX_EPT_VPID_FLAGS_AD) != 0) {
   3698 		pmap_ept_has_ad = true;
   3699 	} else {
   3700 		pmap_ept_has_ad = false;
   3701 	}
   3702 	if (!(msr & IA32_VMX_EPT_VPID_UC) && !(msr & IA32_VMX_EPT_VPID_WB)) {
   3703 		printf("NVMM: EPT UC/WB memory types not supported\n");
   3704 		return false;
   3705 	}
   3706 
   3707 	return true;
   3708 }
   3709 
   3710 static void
   3711 vmx_init_asid(uint32_t maxasid)
   3712 {
   3713 	size_t allocsz;
   3714 
   3715 	mutex_init(&vmx_asidlock, MUTEX_DEFAULT, IPL_NONE);
   3716 
   3717 	vmx_maxasid = maxasid;
   3718 	allocsz = roundup(maxasid, 8) / 8;
   3719 	vmx_asidmap = kmem_zalloc(allocsz, KM_SLEEP);
   3720 
   3721 	/* ASID 0 is reserved for the host. */
   3722 	vmx_asidmap[0] |= __BIT(0);
   3723 }
   3724 
   3725 static void
   3726 vmx_change_cpu(void *arg1, void *arg2)
   3727 {
   3728 	struct cpu_info *ci = curcpu();
   3729 	bool enable = arg1 != NULL;
   3730 	uint64_t msr, cr4;
   3731 
   3732 	if (enable) {
   3733 		msr = rdmsr(MSR_IA32_FEATURE_CONTROL);
   3734 		if ((msr & IA32_FEATURE_CONTROL_LOCK) == 0) {
   3735 			/* Lock now, with VMX-outside-SMX enabled. */
   3736 			wrmsr(MSR_IA32_FEATURE_CONTROL, msr |
   3737 			    IA32_FEATURE_CONTROL_LOCK |
   3738 			    IA32_FEATURE_CONTROL_OUT_SMX);
   3739 		}
   3740 	}
   3741 
   3742 	if (!enable) {
   3743 		vmx_vmxoff();
   3744 	}
   3745 
   3746 	cr4 = rcr4();
   3747 	if (enable) {
   3748 		cr4 |= CR4_VMXE;
   3749 	} else {
   3750 		cr4 &= ~CR4_VMXE;
   3751 	}
   3752 	lcr4(cr4);
   3753 
   3754 	if (enable) {
   3755 		vmx_vmxon(&vmxoncpu[cpu_index(ci)].pa);
   3756 	}
   3757 }
   3758 
   3759 static void
   3760 vmx_init_l1tf(void)
   3761 {
   3762 	u_int descs[4];
   3763 	uint64_t msr;
   3764 
   3765 	if (cpuid_level < 7) {
   3766 		return;
   3767 	}
   3768 
   3769 	x86_cpuid(7, descs);
   3770 
   3771 	if (descs[3] & CPUID_SEF_ARCH_CAP) {
   3772 		msr = rdmsr(MSR_IA32_ARCH_CAPABILITIES);
   3773 		if (msr & IA32_ARCH_SKIP_L1DFL_VMENTRY) {
   3774 			/* No mitigation needed. */
   3775 			return;
   3776 		}
   3777 	}
   3778 
   3779 	if (descs[3] & CPUID_SEF_L1D_FLUSH) {
   3780 		/* Enable hardware mitigation. */
   3781 		vmx_msrlist_entry_nmsr += 1;
   3782 	}
   3783 }
   3784 
   3785 static void
   3786 vmx_suspend_interrupt(void)
   3787 {
   3788 
   3789 	/*
   3790 	 * Generates IPIs, which cause #VMEXITs.  No other purpose for
   3791 	 * the TLB business; the #VMEXIT triggered by IPI is the only
   3792 	 * effect that matters here.
   3793 	 */
   3794 	pmap_tlb_shootdown(pmap_kernel(), -1, PTE_G, TLBSHOOT_NVMM);
   3795 }
   3796 
   3797 static void
   3798 vmx_suspend(void)
   3799 {
   3800 	uint64_t xc;
   3801 
   3802 	xc = xc_broadcast(0, vmx_change_cpu, (void *)false, NULL);
   3803 	xc_wait(xc);
   3804 }
   3805 
   3806 static void
   3807 vmx_resume(void)
   3808 {
   3809 	uint64_t xc;
   3810 
   3811 	xc = xc_broadcast(0, vmx_change_cpu, (void *)true, NULL);
   3812 	xc_wait(xc);
   3813 }
   3814 
   3815 static void
   3816 vmx_init(void)
   3817 {
   3818 	CPU_INFO_ITERATOR cii;
   3819 	struct cpu_info *ci;
   3820 	uint64_t msr;
   3821 	struct vmxon *vmxon;
   3822 	uint32_t revision;
   3823 	u_int descs[4];
   3824 	paddr_t pa;
   3825 	vaddr_t va;
   3826 	int error;
   3827 
   3828 	/* Init the ASID bitmap (VPID). */
   3829 	vmx_init_asid(VPID_MAX);
   3830 
   3831 	/*
   3832 	 * Init the XCR0 mask.
   3833 	 *
   3834 	 * x86_xsave_features is the cached result of
   3835 	 * CPUID[EAX=0x0000000d,ECX=0].EDX:EAX, the set of all
   3836 	 * supported XCR0 bits for user XSAVE state components on the
   3837 	 * physical CPU.  Hypervisor software can use
   3838 	 * nvmm_vcpu_configure(NVMM_VCPU_CONF_XCR0_MASK) to restrict
   3839 	 * the available features on a per-vCPU basis, e.g. in order to
   3840 	 * limit guests to compatible features for migration.
   3841 	 *
   3842 	 * Out of paranoia, we mask off bit 63 which is reserved for
   3843 	 * future extension which we don't understand because it's not
   3844 	 * yet defined.
   3845 	 */
   3846 	vmx_xcr0_mask = x86_xsave_features & __BITS(62, 0);
   3847 	KASSERTMSG((vmx_xcr0_mask == 0 ||
   3848 		nvmm_x86_xcr0_valid(vmx_xcr0_mask, vmx_xcr0_mask)),
   3849 	    "vmx_xcr0_mask=0x%"PRIx64, vmx_xcr0_mask);
   3850 
   3851 	/* Init the max basic CPUID leaf. */
   3852 	vmx_cpuid_max_basic = uimin(cpuid_level, VMX_CPUID_MAX_BASIC);
   3853 
   3854 	/* Init the max extended CPUID leaf. */
   3855 	x86_cpuid(0x80000000, descs);
   3856 	vmx_cpuid_max_extended = uimin(descs[0], VMX_CPUID_MAX_EXTENDED);
   3857 
   3858 	/* Init the TLB flush op, the EPT flush op and the EPTP type. */
   3859 	msr = rdmsr(MSR_IA32_VMX_EPT_VPID_CAP);
   3860 	if ((msr & IA32_VMX_EPT_VPID_INVVPID_CONTEXT) != 0) {
   3861 		vmx_tlb_flush_op = VMX_INVVPID_CONTEXT;
   3862 	} else {
   3863 		vmx_tlb_flush_op = VMX_INVVPID_ALL;
   3864 	}
   3865 	if ((msr & IA32_VMX_EPT_VPID_INVEPT_CONTEXT) != 0) {
   3866 		vmx_ept_flush_op = VMX_INVEPT_CONTEXT;
   3867 	} else {
   3868 		vmx_ept_flush_op = VMX_INVEPT_ALL;
   3869 	}
   3870 	if ((msr & IA32_VMX_EPT_VPID_WB) != 0) {
   3871 		vmx_eptp_type = EPTP_TYPE_WB;
   3872 	} else {
   3873 		vmx_eptp_type = EPTP_TYPE_UC;
   3874 	}
   3875 
   3876 	/* Init the L1TF mitigation. */
   3877 	vmx_init_l1tf();
   3878 
   3879 	memset(vmxoncpu, 0, sizeof(vmxoncpu));
   3880 	revision = vmx_get_revision();
   3881 
   3882 	for (CPU_INFO_FOREACH(cii, ci)) {
   3883 		error = vmx_memalloc(&pa, &va, 1);
   3884 		if (error) {
   3885 			panic("%s: out of memory", __func__);
   3886 		}
   3887 		vmxoncpu[cpu_index(ci)].pa = pa;
   3888 		vmxoncpu[cpu_index(ci)].va = va;
   3889 
   3890 		vmxon = (struct vmxon *)vmxoncpu[cpu_index(ci)].va;
   3891 		vmxon->ident = __SHIFTIN(revision, VMXON_IDENT_REVISION);
   3892 	}
   3893 
   3894 	vmx_resume();
   3895 }
   3896 
   3897 static void
   3898 vmx_fini_asid(void)
   3899 {
   3900 	size_t allocsz;
   3901 
   3902 	allocsz = roundup(vmx_maxasid, 8) / 8;
   3903 	kmem_free(vmx_asidmap, allocsz);
   3904 
   3905 	mutex_destroy(&vmx_asidlock);
   3906 }
   3907 
   3908 static void
   3909 vmx_fini(void)
   3910 {
   3911 	size_t i;
   3912 
   3913 	vmx_suspend();
   3914 
   3915 	for (i = 0; i < MAXCPUS; i++) {
   3916 		if (vmxoncpu[i].pa != 0)
   3917 			vmx_memfree(vmxoncpu[i].pa, vmxoncpu[i].va, 1);
   3918 	}
   3919 
   3920 	vmx_fini_asid();
   3921 }
   3922 
   3923 static void
   3924 vmx_capability(struct nvmm_capability *cap)
   3925 {
   3926 	cap->arch.mach_conf_support = 0;
   3927 	cap->arch.vcpu_conf_support =
   3928 	    NVMM_CAP_ARCH_VCPU_CONF_CPUID |
   3929 	    NVMM_CAP_ARCH_VCPU_CONF_TPR;
   3930 	cap->arch.xcr0_mask = vmx_xcr0_mask;
   3931 	cap->arch.mxcsr_mask = x86_fpu_mxcsr_mask;
   3932 	cap->arch.conf_cpuid_maxops = VMX_NCPUIDS;
   3933 }
   3934 
   3935 const struct nvmm_impl nvmm_x86_vmx = {
   3936 	.name = "x86-vmx",
   3937 	.ident = vmx_ident,
   3938 	.init = vmx_init,
   3939 	.fini = vmx_fini,
   3940 	.suspend_interrupt = vmx_suspend_interrupt,
   3941 	.suspend = vmx_suspend,
   3942 	.resume = vmx_resume,
   3943 	.capability = vmx_capability,
   3944 	.mach_conf_max = NVMM_X86_MACH_NCONF,
   3945 	.mach_conf_sizes = NULL,
   3946 	.vcpu_conf_max = NVMM_X86_VCPU_NCONF,
   3947 	.vcpu_conf_sizes = vmx_vcpu_conf_sizes,
   3948 	.state_size = sizeof(struct nvmm_x64_state),
   3949 	.machine_create = vmx_machine_create,
   3950 	.machine_destroy = vmx_machine_destroy,
   3951 	.machine_configure = vmx_machine_configure,
   3952 	.vcpu_create = vmx_vcpu_create,
   3953 	.vcpu_destroy = vmx_vcpu_destroy,
   3954 	.vcpu_configure = vmx_vcpu_configure,
   3955 	.vcpu_setstate = vmx_vcpu_setstate,
   3956 	.vcpu_getstate = vmx_vcpu_getstate,
   3957 	.vcpu_inject = vmx_vcpu_inject,
   3958 	.vcpu_run = vmx_vcpu_run,
   3959 	.vcpu_suspend = vmx_vcpu_suspend,
   3960 	.vcpu_resume = vmx_vcpu_resume,
   3961 };
   3962