xref: /linux/tools/testing/selftests/kvm/lib/kvm_util.c (revision 7bb6284aa7b3c369b41e7f33fcbe193161f008e7)
1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3  * tools/testing/selftests/kvm/lib/kvm_util.c
4  *
5  * Copyright (C) 2018, Google LLC.
6  */
7 #include "test_util.h"
8 #include "kvm_syscalls.h"
9 #include "kvm_util.h"
10 #include "processor.h"
11 #include "ucall_common.h"
12 
13 #include <assert.h>
14 #include <sched.h>
15 #include <sys/resource.h>
16 #include <sys/types.h>
17 #include <sys/stat.h>
18 #include <time.h>
19 #include <unistd.h>
20 #include <linux/kernel.h>
21 
22 #define KVM_UTIL_MIN_PFN	2
23 
24 u32 kvm_random_seed;
25 struct kvm_random_state kvm_rng;
26 static u32 last_kvm_seed;
27 
28 static void kvm_seed_rng(u32 seed)
29 {
30 	kvm_random_seed = last_kvm_seed = seed;
31 	pr_info("Random seed: 0x%x\n", kvm_random_seed);
32 	kvm_rng = new_kvm_random_state(kvm_random_seed);
33 }
34 
35 static size_t vcpu_mmap_sz(void);
36 
37 int __open_path_or_exit(const char *path, int flags, const char *enoent_help)
38 {
39 	int fd;
40 
41 	fd = open(path, flags);
42 	if (fd < 0)
43 		goto error;
44 
45 	return fd;
46 
47 error:
48 	if (errno == EACCES || errno == ENOENT)
49 		ksft_exit_skip("- Cannot open '%s': %s.  %s\n",
50 			       path, strerror(errno),
51 			       errno == EACCES ? "Root required?" : enoent_help);
52 	TEST_FAIL("Failed to open '%s'", path);
53 }
54 
55 int open_path_or_exit(const char *path, int flags)
56 {
57 	return __open_path_or_exit(path, flags, "");
58 }
59 
60 /*
61  * Open KVM_DEV_PATH if available, otherwise exit the entire program.
62  *
63  * Input Args:
64  *   flags - The flags to pass when opening KVM_DEV_PATH.
65  *
66  * Return:
67  *   The opened file descriptor of /dev/kvm.
68  */
69 static int _open_kvm_dev_path_or_exit(int flags)
70 {
71 	return __open_path_or_exit(KVM_DEV_PATH, flags, "Is KVM loaded and enabled?");
72 }
73 
74 int open_kvm_dev_path_or_exit(void)
75 {
76 	return _open_kvm_dev_path_or_exit(O_RDONLY);
77 }
78 
79 static ssize_t get_module_param(const char *module_name, const char *param,
80 				void *buffer, size_t buffer_size)
81 {
82 	const int path_size = 128;
83 	char path[path_size];
84 	ssize_t bytes_read;
85 	int fd, r;
86 
87 	/* Verify KVM is loaded, to provide a more helpful SKIP message. */
88 	fd = open_kvm_dev_path_or_exit();
89 	kvm_free_fd(fd);
90 
91 	r = snprintf(path, path_size, "/sys/module/%s/parameters/%s",
92 		     module_name, param);
93 	TEST_ASSERT(r < path_size,
94 		    "Failed to construct sysfs path in %d bytes.", path_size);
95 
96 	fd = open_path_or_exit(path, O_RDONLY);
97 
98 	bytes_read = read(fd, buffer, buffer_size);
99 	TEST_ASSERT(bytes_read > 0, "read(%s) returned %ld, wanted %ld bytes",
100 		    path, bytes_read, buffer_size);
101 
102 	kvm_free_fd(fd);
103 	return bytes_read;
104 }
105 
106 int kvm_get_module_param_integer(const char *module_name, const char *param)
107 {
108 	/*
109 	 * 16 bytes to hold a 64-bit value (1 byte per char), 1 byte for the
110 	 * NUL char, and 1 byte because the kernel sucks and inserts a newline
111 	 * at the end.
112 	 */
113 	char value[16 + 1 + 1];
114 	ssize_t r;
115 
116 	memset(value, '\0', sizeof(value));
117 
118 	r = get_module_param(module_name, param, value, sizeof(value));
119 	TEST_ASSERT(value[r - 1] == '\n',
120 		    "Expected trailing newline, got char '%c'", value[r - 1]);
121 
122 	/*
123 	 * Squash the newline, otherwise atoi_paranoid() will complain about
124 	 * trailing non-NUL characters in the string.
125 	 */
126 	value[r - 1] = '\0';
127 	return atoi_paranoid(value);
128 }
129 
130 bool kvm_get_module_param_bool(const char *module_name, const char *param)
131 {
132 	char value;
133 	ssize_t r;
134 
135 	r = get_module_param(module_name, param, &value, sizeof(value));
136 	TEST_ASSERT_EQ(r, 1);
137 
138 	if (value == 'Y')
139 		return true;
140 	else if (value == 'N')
141 		return false;
142 
143 	TEST_FAIL("Unrecognized value '%c' for boolean module param", value);
144 }
145 
146 /*
147  * Capability
148  *
149  * Input Args:
150  *   cap - Capability
151  *
152  * Output Args: None
153  *
154  * Return:
155  *   On success, the Value corresponding to the capability (KVM_CAP_*)
156  *   specified by the value of cap.  On failure a TEST_ASSERT failure
157  *   is produced.
158  *
159  * Looks up and returns the value corresponding to the capability
160  * (KVM_CAP_*) given by cap.
161  */
162 unsigned int kvm_check_cap(long cap)
163 {
164 	int ret;
165 	int kvm_fd;
166 
167 	kvm_fd = open_kvm_dev_path_or_exit();
168 	ret = __kvm_ioctl(kvm_fd, KVM_CHECK_EXTENSION, (void *)cap);
169 	TEST_ASSERT(ret >= 0, KVM_IOCTL_ERROR(KVM_CHECK_EXTENSION, ret));
170 
171 	kvm_free_fd(kvm_fd);
172 
173 	return (unsigned int)ret;
174 }
175 
176 void vm_enable_dirty_ring(struct kvm_vm *vm, u32 ring_size)
177 {
178 	if (vm_check_cap(vm, KVM_CAP_DIRTY_LOG_RING_ACQ_REL))
179 		vm_enable_cap(vm, KVM_CAP_DIRTY_LOG_RING_ACQ_REL, ring_size);
180 	else
181 		vm_enable_cap(vm, KVM_CAP_DIRTY_LOG_RING, ring_size);
182 	vm->dirty_ring_size = ring_size;
183 }
184 
185 static void vm_open(struct kvm_vm *vm)
186 {
187 	vm->kvm_fd = _open_kvm_dev_path_or_exit(O_RDWR);
188 
189 	TEST_REQUIRE(kvm_has_cap(KVM_CAP_IMMEDIATE_EXIT));
190 
191 	vm->fd = __kvm_ioctl(vm->kvm_fd, KVM_CREATE_VM, (void *)vm->type);
192 	TEST_ASSERT(vm->fd >= 0, KVM_IOCTL_ERROR(KVM_CREATE_VM, vm->fd));
193 
194 	if (kvm_has_cap(KVM_CAP_BINARY_STATS_FD))
195 		vm->stats.fd = vm_get_stats_fd(vm);
196 	else
197 		vm->stats.fd = -1;
198 }
199 
200 const char *vm_guest_mode_string(u32 i)
201 {
202 	static const char * const strings[] = {
203 		[VM_MODE_P52V48_4K]	= "PA-bits:52,  VA-bits:48,  4K pages",
204 		[VM_MODE_P52V48_16K]	= "PA-bits:52,  VA-bits:48, 16K pages",
205 		[VM_MODE_P52V48_64K]	= "PA-bits:52,  VA-bits:48, 64K pages",
206 		[VM_MODE_P48V48_4K]	= "PA-bits:48,  VA-bits:48,  4K pages",
207 		[VM_MODE_P48V48_16K]	= "PA-bits:48,  VA-bits:48, 16K pages",
208 		[VM_MODE_P48V48_64K]	= "PA-bits:48,  VA-bits:48, 64K pages",
209 		[VM_MODE_P40V48_4K]	= "PA-bits:40,  VA-bits:48,  4K pages",
210 		[VM_MODE_P40V48_16K]	= "PA-bits:40,  VA-bits:48, 16K pages",
211 		[VM_MODE_P40V48_64K]	= "PA-bits:40,  VA-bits:48, 64K pages",
212 		[VM_MODE_PXXVYY_4K]	= "PA-bits:ANY, VA-bits:48 or 57, 4K pages",
213 		[VM_MODE_P47V64_4K]	= "PA-bits:47,  VA-bits:64,  4K pages",
214 		[VM_MODE_P44V64_4K]	= "PA-bits:44,  VA-bits:64,  4K pages",
215 		[VM_MODE_P36V48_4K]	= "PA-bits:36,  VA-bits:48,  4K pages",
216 		[VM_MODE_P36V48_16K]	= "PA-bits:36,  VA-bits:48, 16K pages",
217 		[VM_MODE_P36V48_64K]	= "PA-bits:36,  VA-bits:48, 64K pages",
218 		[VM_MODE_P47V47_16K]	= "PA-bits:47,  VA-bits:47, 16K pages",
219 		[VM_MODE_P36V47_16K]	= "PA-bits:36,  VA-bits:47, 16K pages",
220 		[VM_MODE_P56V57_4K]	= "PA-bits:56,  VA-bits:57,  4K pages",
221 		[VM_MODE_P56V48_4K]	= "PA-bits:56,  VA-bits:48,  4K pages",
222 		[VM_MODE_P56V39_4K]	= "PA-bits:56,  VA-bits:39,  4K pages",
223 		[VM_MODE_P50V57_4K]	= "PA-bits:50,  VA-bits:57,  4K pages",
224 		[VM_MODE_P50V48_4K]	= "PA-bits:50,  VA-bits:48,  4K pages",
225 		[VM_MODE_P50V39_4K]	= "PA-bits:50,  VA-bits:39,  4K pages",
226 		[VM_MODE_P41V57_4K]	= "PA-bits:41,  VA-bits:57,  4K pages",
227 		[VM_MODE_P41V48_4K]	= "PA-bits:41,  VA-bits:48,  4K pages",
228 		[VM_MODE_P41V39_4K]	= "PA-bits:41,  VA-bits:39,  4K pages",
229 	};
230 	_Static_assert(sizeof(strings)/sizeof(char *) == NUM_VM_MODES,
231 		       "Missing new mode strings?");
232 
233 	TEST_ASSERT(i < NUM_VM_MODES, "Guest mode ID %d too big", i);
234 
235 	return strings[i];
236 }
237 
238 const struct vm_guest_mode_params vm_guest_mode_params[] = {
239 	[VM_MODE_P52V48_4K]	= { 52, 48,  0x1000, 12 },
240 	[VM_MODE_P52V48_16K]	= { 52, 48,  0x4000, 14 },
241 	[VM_MODE_P52V48_64K]	= { 52, 48, 0x10000, 16 },
242 	[VM_MODE_P48V48_4K]	= { 48, 48,  0x1000, 12 },
243 	[VM_MODE_P48V48_16K]	= { 48, 48,  0x4000, 14 },
244 	[VM_MODE_P48V48_64K]	= { 48, 48, 0x10000, 16 },
245 	[VM_MODE_P40V48_4K]	= { 40, 48,  0x1000, 12 },
246 	[VM_MODE_P40V48_16K]	= { 40, 48,  0x4000, 14 },
247 	[VM_MODE_P40V48_64K]	= { 40, 48, 0x10000, 16 },
248 	[VM_MODE_PXXVYY_4K]	= {  0,  0,  0x1000, 12 },
249 	[VM_MODE_P47V64_4K]	= { 47, 64,  0x1000, 12 },
250 	[VM_MODE_P44V64_4K]	= { 44, 64,  0x1000, 12 },
251 	[VM_MODE_P36V48_4K]	= { 36, 48,  0x1000, 12 },
252 	[VM_MODE_P36V48_16K]	= { 36, 48,  0x4000, 14 },
253 	[VM_MODE_P36V48_64K]	= { 36, 48, 0x10000, 16 },
254 	[VM_MODE_P47V47_16K]	= { 47, 47,  0x4000, 14 },
255 	[VM_MODE_P36V47_16K]	= { 36, 47,  0x4000, 14 },
256 	[VM_MODE_P56V57_4K]	= { 56, 57,  0x1000, 12 },
257 	[VM_MODE_P56V48_4K]	= { 56, 48,  0x1000, 12 },
258 	[VM_MODE_P56V39_4K]	= { 56, 39,  0x1000, 12 },
259 	[VM_MODE_P50V57_4K]	= { 50, 57,  0x1000, 12 },
260 	[VM_MODE_P50V48_4K]	= { 50, 48,  0x1000, 12 },
261 	[VM_MODE_P50V39_4K]	= { 50, 39,  0x1000, 12 },
262 	[VM_MODE_P41V57_4K]	= { 41, 57,  0x1000, 12 },
263 	[VM_MODE_P41V48_4K]	= { 41, 48,  0x1000, 12 },
264 	[VM_MODE_P41V39_4K]	= { 41, 39,  0x1000, 12 },
265 };
266 _Static_assert(sizeof(vm_guest_mode_params)/sizeof(struct vm_guest_mode_params) == NUM_VM_MODES,
267 	       "Missing new mode params?");
268 
269 /*
270  * Initializes vm->vpages_valid to match the canonical VA space of the
271  * architecture.
272  *
273  * The default implementation is valid for architectures which split the
274  * range addressed by a single page table into a low and high region
275  * based on the MSB of the VA. On architectures with this behavior
276  * the VA region spans [0, 2^(va_bits - 1)), [-(2^(va_bits - 1), -1].
277  */
278 __weak void vm_populate_gva_bitmap(struct kvm_vm *vm)
279 {
280 	sparsebit_set_num(vm->vpages_valid,
281 		0, (1ULL << (vm->va_bits - 1)) >> vm->page_shift);
282 	sparsebit_set_num(vm->vpages_valid,
283 		(~((1ULL << (vm->va_bits - 1)) - 1)) >> vm->page_shift,
284 		(1ULL << (vm->va_bits - 1)) >> vm->page_shift);
285 }
286 
287 struct kvm_vm *____vm_create(struct vm_shape shape)
288 {
289 	struct kvm_vm *vm;
290 
291 	vm = calloc(1, sizeof(*vm));
292 	TEST_ASSERT(vm != NULL, "Insufficient Memory");
293 
294 	INIT_LIST_HEAD(&vm->vcpus);
295 	vm->regions.gpa_tree = RB_ROOT;
296 	vm->regions.hva_tree = RB_ROOT;
297 	hash_init(vm->regions.slot_hash);
298 
299 	vm->mode = shape.mode;
300 	vm->type = shape.type;
301 
302 	vm->pa_bits = vm_guest_mode_params[vm->mode].pa_bits;
303 	vm->va_bits = vm_guest_mode_params[vm->mode].va_bits;
304 	vm->page_size = vm_guest_mode_params[vm->mode].page_size;
305 	vm->page_shift = vm_guest_mode_params[vm->mode].page_shift;
306 
307 	/* Setup mode specific traits. */
308 	switch (vm->mode) {
309 	case VM_MODE_P52V48_4K:
310 		vm->mmu.pgtable_levels = 4;
311 		break;
312 	case VM_MODE_P52V48_64K:
313 		vm->mmu.pgtable_levels = 3;
314 		break;
315 	case VM_MODE_P48V48_4K:
316 		vm->mmu.pgtable_levels = 4;
317 		break;
318 	case VM_MODE_P48V48_64K:
319 		vm->mmu.pgtable_levels = 3;
320 		break;
321 	case VM_MODE_P40V48_4K:
322 	case VM_MODE_P36V48_4K:
323 		vm->mmu.pgtable_levels = 4;
324 		break;
325 	case VM_MODE_P40V48_64K:
326 	case VM_MODE_P36V48_64K:
327 		vm->mmu.pgtable_levels = 3;
328 		break;
329 	case VM_MODE_P52V48_16K:
330 	case VM_MODE_P48V48_16K:
331 	case VM_MODE_P40V48_16K:
332 	case VM_MODE_P36V48_16K:
333 		vm->mmu.pgtable_levels = 4;
334 		break;
335 	case VM_MODE_P47V47_16K:
336 	case VM_MODE_P36V47_16K:
337 		vm->mmu.pgtable_levels = 3;
338 		break;
339 	case VM_MODE_PXXVYY_4K:
340 #ifdef __x86_64__
341 		kvm_get_cpu_address_width(&vm->pa_bits, &vm->va_bits);
342 		kvm_init_vm_address_properties(vm);
343 
344 		pr_debug("Guest physical address width detected: %d\n",
345 			 vm->pa_bits);
346 		pr_debug("Guest virtual address width detected: %d\n",
347 			 vm->va_bits);
348 
349 		if (vm->va_bits == 57) {
350 			vm->mmu.pgtable_levels = 5;
351 		} else {
352 			TEST_ASSERT(vm->va_bits == 48,
353 				    "Unexpected guest virtual address width: %d",
354 				    vm->va_bits);
355 			vm->mmu.pgtable_levels = 4;
356 		}
357 #else
358 		TEST_FAIL("VM_MODE_PXXVYY_4K not supported on non-x86 platforms");
359 #endif
360 		break;
361 	case VM_MODE_P47V64_4K:
362 		vm->mmu.pgtable_levels = 5;
363 		break;
364 	case VM_MODE_P44V64_4K:
365 		vm->mmu.pgtable_levels = 5;
366 		break;
367 	case VM_MODE_P56V57_4K:
368 	case VM_MODE_P50V57_4K:
369 	case VM_MODE_P41V57_4K:
370 		vm->mmu.pgtable_levels = 5;
371 		break;
372 	case VM_MODE_P56V48_4K:
373 	case VM_MODE_P50V48_4K:
374 	case VM_MODE_P41V48_4K:
375 		vm->mmu.pgtable_levels = 4;
376 		break;
377 	case VM_MODE_P56V39_4K:
378 	case VM_MODE_P50V39_4K:
379 	case VM_MODE_P41V39_4K:
380 		vm->mmu.pgtable_levels = 3;
381 		break;
382 	default:
383 		TEST_FAIL("Unknown guest mode: 0x%x", vm->mode);
384 	}
385 
386 #ifdef __aarch64__
387 	TEST_ASSERT(!vm->type, "ARM doesn't support test-provided types");
388 	if (vm->pa_bits != 40)
389 		vm->type = KVM_VM_TYPE_ARM_IPA_SIZE(vm->pa_bits);
390 #endif
391 
392 	vm_open(vm);
393 
394 	/* Limit to VA-bit canonical virtual addresses. */
395 	vm->vpages_valid = sparsebit_alloc();
396 	vm_populate_gva_bitmap(vm);
397 
398 	/* Limit physical addresses to PA-bits. */
399 	vm->max_gfn = vm_compute_max_gfn(vm);
400 
401 	/* Allocate and setup memory for guest. */
402 	vm->vpages_mapped = sparsebit_alloc();
403 
404 	return vm;
405 }
406 
407 static u64 vm_nr_pages_required(enum vm_guest_mode mode,
408 				u32 nr_runnable_vcpus,
409 				u64 extra_mem_pages)
410 {
411 	u64 page_size = vm_guest_mode_params[mode].page_size;
412 	u64 nr_pages;
413 
414 	TEST_ASSERT(nr_runnable_vcpus,
415 		    "Use vm_create_barebones() for VMs that _never_ have vCPUs");
416 
417 	TEST_ASSERT(nr_runnable_vcpus <= kvm_check_cap(KVM_CAP_MAX_VCPUS),
418 		    "nr_vcpus = %d too large for host, max-vcpus = %d",
419 		    nr_runnable_vcpus, kvm_check_cap(KVM_CAP_MAX_VCPUS));
420 
421 	/*
422 	 * Arbitrarily allocate 512 pages (2mb when page size is 4kb) for the
423 	 * test code and other per-VM assets that will be loaded into memslot0.
424 	 */
425 	nr_pages = 512;
426 
427 	/* Account for the per-vCPU stacks on behalf of the test. */
428 	nr_pages += nr_runnable_vcpus * DEFAULT_STACK_PGS;
429 
430 	/*
431 	 * Account for the number of pages needed for the page tables.  The
432 	 * maximum page table size for a memory region will be when the
433 	 * smallest page size is used. Considering each page contains x page
434 	 * table descriptors, the total extra size for page tables (for extra
435 	 * N pages) will be: N/x+N/x^2+N/x^3+... which is definitely smaller
436 	 * than N/x*2.
437 	 */
438 	nr_pages += (nr_pages + extra_mem_pages) / PTES_PER_MIN_PAGE * 2;
439 
440 	/* Account for the number of pages needed by ucall. */
441 	nr_pages += ucall_nr_pages_required(page_size);
442 
443 	return vm_adjust_num_guest_pages(mode, nr_pages);
444 }
445 
446 void kvm_set_files_rlimit(u32 nr_vcpus)
447 {
448 	/*
449 	 * Each vCPU will open two file descriptors: the vCPU itself and the
450 	 * vCPU's binary stats file descriptor.  Add an arbitrary amount of
451 	 * buffer for all other files a test may open.
452 	 */
453 	int nr_fds_wanted = nr_vcpus * 2 + 100;
454 	struct rlimit rl;
455 
456 	/*
457 	 * Check that we're allowed to open nr_fds_wanted file descriptors and
458 	 * try raising the limits if needed.
459 	 */
460 	TEST_ASSERT(!getrlimit(RLIMIT_NOFILE, &rl), "getrlimit() failed!");
461 
462 	if (rl.rlim_cur < nr_fds_wanted) {
463 		rl.rlim_cur = nr_fds_wanted;
464 		if (rl.rlim_max < nr_fds_wanted) {
465 			int old_rlim_max = rl.rlim_max;
466 
467 			rl.rlim_max = nr_fds_wanted;
468 			__TEST_REQUIRE(setrlimit(RLIMIT_NOFILE, &rl) >= 0,
469 				       "RLIMIT_NOFILE hard limit is too low (%d, wanted %d)",
470 				       old_rlim_max, nr_fds_wanted);
471 		} else {
472 			TEST_ASSERT(!setrlimit(RLIMIT_NOFILE, &rl), "setrlimit() failed!");
473 		}
474 	}
475 
476 }
477 
478 static bool is_guest_memfd_required(struct vm_shape shape)
479 {
480 #ifdef __x86_64__
481 	return shape.type == KVM_X86_SNP_VM;
482 #else
483 	return false;
484 #endif
485 }
486 
487 struct kvm_vm *__vm_create(struct vm_shape shape, u32 nr_runnable_vcpus,
488 			   u64 nr_extra_pages)
489 {
490 	u64 nr_pages = vm_nr_pages_required(shape.mode, nr_runnable_vcpus,
491 						 nr_extra_pages);
492 	struct userspace_mem_region *slot0;
493 	struct kvm_vm *vm;
494 	int i, flags;
495 
496 	kvm_set_files_rlimit(nr_runnable_vcpus);
497 
498 	pr_debug("%s: mode='%s' type='%d', pages='%ld'\n", __func__,
499 		 vm_guest_mode_string(shape.mode), shape.type, nr_pages);
500 
501 	vm = ____vm_create(shape);
502 
503 	/*
504 	 * Force GUEST_MEMFD for the primary memory region if necessary, e.g.
505 	 * for CoCo VMs that require GUEST_MEMFD backed private memory.
506 	 */
507 	flags = 0;
508 	if (is_guest_memfd_required(shape))
509 		flags |= KVM_MEM_GUEST_MEMFD;
510 
511 	vm_userspace_mem_region_add(vm, VM_MEM_SRC_ANONYMOUS, 0, 0, nr_pages, flags);
512 	for (i = 0; i < NR_MEM_REGIONS; i++)
513 		vm->memslots[i] = 0;
514 
515 	kvm_vm_elf_load(vm, program_invocation_name);
516 
517 	/*
518 	 * TODO: Add proper defines to protect the library's memslots, and then
519 	 * carve out memslot1 for the ucall MMIO address.  KVM treats writes to
520 	 * read-only memslots as MMIO, and creating a read-only memslot for the
521 	 * MMIO region would prevent silently clobbering the MMIO region.
522 	 */
523 	slot0 = memslot2region(vm, 0);
524 	ucall_init(vm, slot0->region.guest_phys_addr + slot0->region.memory_size);
525 
526 	if (kvm_random_seed != last_kvm_seed)
527 		kvm_seed_rng(kvm_random_seed);
528 
529 	sync_global_to_guest(vm, kvm_rng);
530 
531 	kvm_arch_vm_post_create(vm, nr_runnable_vcpus);
532 
533 	return vm;
534 }
535 
536 /*
537  * VM Create with customized parameters
538  *
539  * Input Args:
540  *   mode - VM Mode (e.g. VM_MODE_P52V48_4K)
541  *   nr_vcpus - VCPU count
542  *   extra_mem_pages - Non-slot0 physical memory total size
543  *   guest_code - Guest entry point
544  *   vcpuids - VCPU IDs
545  *
546  * Output Args: None
547  *
548  * Return:
549  *   Pointer to opaque structure that describes the created VM.
550  *
551  * Creates a VM with the mode specified by mode (e.g. VM_MODE_P52V48_4K).
552  * extra_mem_pages is only used to calculate the maximum page table size,
553  * no real memory allocation for non-slot0 memory in this function.
554  */
555 struct kvm_vm *__vm_create_with_vcpus(struct vm_shape shape, u32 nr_vcpus,
556 				      u64 extra_mem_pages,
557 				      void *guest_code, struct kvm_vcpu *vcpus[])
558 {
559 	struct kvm_vm *vm;
560 	int i;
561 
562 	TEST_ASSERT(!nr_vcpus || vcpus, "Must provide vCPU array");
563 
564 	vm = __vm_create(shape, nr_vcpus, extra_mem_pages);
565 
566 	for (i = 0; i < nr_vcpus; ++i)
567 		vcpus[i] = vm_vcpu_add(vm, i, guest_code);
568 
569 	kvm_arch_vm_finalize_vcpus(vm);
570 	return vm;
571 }
572 
573 struct kvm_vm *__vm_create_shape_with_one_vcpu(struct vm_shape shape,
574 					       struct kvm_vcpu **vcpu,
575 					       u64 extra_mem_pages,
576 					       void *guest_code)
577 {
578 	struct kvm_vcpu *vcpus[1];
579 	struct kvm_vm *vm;
580 
581 	vm = __vm_create_with_vcpus(shape, 1, extra_mem_pages, guest_code, vcpus);
582 
583 	*vcpu = vcpus[0];
584 	return vm;
585 }
586 
587 /*
588  * VM Restart
589  *
590  * Input Args:
591  *   vm - VM that has been released before
592  *
593  * Output Args: None
594  *
595  * Reopens the file descriptors associated to the VM and reinstates the
596  * global state, such as the irqchip and the memory regions that are mapped
597  * into the guest.
598  */
599 void kvm_vm_restart(struct kvm_vm *vmp)
600 {
601 	int ctr;
602 	struct userspace_mem_region *region;
603 
604 	vm_open(vmp);
605 	if (vmp->has_irqchip)
606 		vm_create_irqchip(vmp);
607 
608 	hash_for_each(vmp->regions.slot_hash, ctr, region, slot_node) {
609 		int ret = ioctl(vmp->fd, KVM_SET_USER_MEMORY_REGION2, &region->region);
610 
611 		TEST_ASSERT(ret == 0, "KVM_SET_USER_MEMORY_REGION2 IOCTL failed,\n"
612 			    "  rc: %i errno: %i\n"
613 			    "  slot: %u flags: 0x%x\n"
614 			    "  guest_phys_addr: 0x%llx size: 0x%llx",
615 			    ret, errno, region->region.slot,
616 			    region->region.flags,
617 			    region->region.guest_phys_addr,
618 			    region->region.memory_size);
619 	}
620 }
621 
622 __weak struct kvm_vcpu *vm_arch_vcpu_recreate(struct kvm_vm *vm,
623 					      u32 vcpu_id)
624 {
625 	return __vm_vcpu_add(vm, vcpu_id);
626 }
627 
628 struct kvm_vcpu *vm_recreate_with_one_vcpu(struct kvm_vm *vm)
629 {
630 	kvm_vm_restart(vm);
631 
632 	return vm_vcpu_recreate(vm, 0);
633 }
634 
635 int __pin_task_to_cpu(pthread_t task, int cpu)
636 {
637 	cpu_set_t cpuset;
638 
639 	CPU_ZERO(&cpuset);
640 	CPU_SET(cpu, &cpuset);
641 
642 	return pthread_setaffinity_np(task, sizeof(cpuset), &cpuset);
643 }
644 
645 static u32 parse_pcpu(const char *cpu_str, const cpu_set_t *allowed_mask)
646 {
647 	u32 pcpu = atoi_non_negative("CPU number", cpu_str);
648 
649 	TEST_ASSERT(CPU_ISSET(pcpu, allowed_mask),
650 		    "Not allowed to run on pCPU '%d', check cgroups?", pcpu);
651 	return pcpu;
652 }
653 
654 void kvm_print_vcpu_pinning_help(void)
655 {
656 	const char *name = program_invocation_name;
657 
658 	printf(" -c: Pin tasks to physical CPUs.  Takes a list of comma separated\n"
659 	       "     values (target pCPU), one for each vCPU, plus an optional\n"
660 	       "     entry for the main application task (specified via entry\n"
661 	       "     <nr_vcpus + 1>).  If used, entries must be provided for all\n"
662 	       "     vCPUs, i.e. pinning vCPUs is all or nothing.\n\n"
663 	       "     E.g. to create 3 vCPUs, pin vCPU0=>pCPU22, vCPU1=>pCPU23,\n"
664 	       "     vCPU2=>pCPU24, and pin the application task to pCPU50:\n\n"
665 	       "         %s -v 3 -c 22,23,24,50\n\n"
666 	       "     To leave the application task unpinned, drop the final entry:\n\n"
667 	       "         %s -v 3 -c 22,23,24\n\n"
668 	       "     (default: no pinning)\n", name, name);
669 }
670 
671 int kvm_pick_random_cpu(cpu_set_t *possible_cpus)
672 {
673 	int target_idx;
674 	int nr_cpus;
675 	int cpu;
676 
677 	nr_cpus = CPU_COUNT(possible_cpus);
678 	TEST_ASSERT(nr_cpus > 0, "No CPUs available in possible_cpus");
679 
680 	target_idx = kvm_random_u64(&kvm_rng) % nr_cpus;
681 
682 	for (cpu = 0; cpu < CPU_SETSIZE; cpu++) {
683 		if (CPU_ISSET(cpu, possible_cpus) && target_idx-- == 0)
684 			return cpu;
685 	}
686 	TEST_FAIL("Failed to find random CPU in possible_cpus");
687 	return -1;
688 }
689 
690 void kvm_parse_vcpu_pinning(const char *pcpus_string, u32 vcpu_to_pcpu[],
691 			    int nr_vcpus)
692 {
693 	cpu_set_t allowed_mask;
694 	char *cpu, *cpu_list;
695 	char delim[2] = ",";
696 	int i;
697 
698 	cpu_list = strdup(pcpus_string);
699 	TEST_ASSERT(cpu_list, "strdup() allocation failed.");
700 
701 	kvm_sched_getaffinity(0, sizeof(allowed_mask), &allowed_mask);
702 
703 	cpu = strtok(cpu_list, delim);
704 
705 	/* 1. Get all pcpus for vcpus. */
706 	for (i = 0; i < nr_vcpus; i++) {
707 		TEST_ASSERT(cpu, "pCPU not provided for vCPU '%d'", i);
708 		vcpu_to_pcpu[i] = parse_pcpu(cpu, &allowed_mask);
709 		cpu = strtok(NULL, delim);
710 	}
711 
712 	/* 2. Check if the main worker needs to be pinned. */
713 	if (cpu) {
714 		pin_self_to_cpu(parse_pcpu(cpu, &allowed_mask));
715 		cpu = strtok(NULL, delim);
716 	}
717 
718 	TEST_ASSERT(!cpu, "pCPU list contains trailing garbage characters '%s'", cpu);
719 	free(cpu_list);
720 }
721 
722 /*
723  * Userspace Memory Region Find
724  *
725  * Input Args:
726  *   vm - Virtual Machine
727  *   start - Starting VM physical address
728  *   end - Ending VM physical address, inclusive.
729  *
730  * Output Args: None
731  *
732  * Return:
733  *   Pointer to overlapping region, NULL if no such region.
734  *
735  * Searches for a region with any physical memory that overlaps with
736  * any portion of the guest physical addresses from start to end
737  * inclusive.  If multiple overlapping regions exist, a pointer to any
738  * of the regions is returned.  Null is returned only when no overlapping
739  * region exists.
740  */
741 static struct userspace_mem_region *
742 userspace_mem_region_find(struct kvm_vm *vm, u64 start, u64 end)
743 {
744 	struct rb_node *node;
745 
746 	for (node = vm->regions.gpa_tree.rb_node; node; ) {
747 		struct userspace_mem_region *region =
748 			container_of(node, struct userspace_mem_region, gpa_node);
749 		u64 existing_start = region->region.guest_phys_addr;
750 		u64 existing_end = region->region.guest_phys_addr
751 			+ region->region.memory_size - 1;
752 		if (start <= existing_end && end >= existing_start)
753 			return region;
754 
755 		if (start < existing_start)
756 			node = node->rb_left;
757 		else
758 			node = node->rb_right;
759 	}
760 
761 	return NULL;
762 }
763 
764 static void kvm_stats_release(struct kvm_binary_stats *stats)
765 {
766 	if (stats->fd < 0)
767 		return;
768 
769 	if (stats->desc) {
770 		free(stats->desc);
771 		stats->desc = NULL;
772 	}
773 
774 	kvm_free_fd(stats->fd);
775 }
776 
777 __weak void vcpu_arch_free(struct kvm_vcpu *vcpu)
778 {
779 
780 }
781 
782 /*
783  * VM VCPU Remove
784  *
785  * Input Args:
786  *   vcpu - VCPU to remove
787  *
788  * Output Args: None
789  *
790  * Return: None, TEST_ASSERT failures for all error conditions
791  *
792  * Removes a vCPU from a VM and frees its resources.
793  */
794 static void vm_vcpu_rm(struct kvm_vm *vm, struct kvm_vcpu *vcpu)
795 {
796 	if (vcpu->dirty_gfns) {
797 		kvm_munmap(vcpu->dirty_gfns, vm->dirty_ring_size);
798 		vcpu->dirty_gfns = NULL;
799 	}
800 
801 	kvm_munmap(vcpu->run, vcpu_mmap_sz());
802 
803 	kvm_free_fd(vcpu->fd);
804 	kvm_stats_release(&vcpu->stats);
805 
806 	list_del(&vcpu->list);
807 
808 	vcpu_arch_free(vcpu);
809 	free(vcpu);
810 }
811 
812 void kvm_vm_release(struct kvm_vm *vmp)
813 {
814 	struct kvm_vcpu *vcpu, *tmp;
815 
816 	list_for_each_entry_safe(vcpu, tmp, &vmp->vcpus, list)
817 		vm_vcpu_rm(vmp, vcpu);
818 
819 	kvm_free_fd(vmp->fd);
820 	kvm_free_fd(vmp->kvm_fd);
821 
822 	/* Free cached stats metadata and close FD */
823 	kvm_stats_release(&vmp->stats);
824 
825 	kvm_arch_vm_release(vmp);
826 }
827 
828 static void __vm_mem_region_delete(struct kvm_vm *vm,
829 				   struct userspace_mem_region *region)
830 {
831 	rb_erase(&region->gpa_node, &vm->regions.gpa_tree);
832 	rb_erase(&region->hva_node, &vm->regions.hva_tree);
833 	hash_del(&region->slot_node);
834 
835 	sparsebit_free(&region->unused_phy_pages);
836 	sparsebit_free(&region->protected_phy_pages);
837 	kvm_munmap(region->mmap_start, region->mmap_size);
838 	if (region->fd >= 0) {
839 		/* There's an extra map when using shared memory. */
840 		kvm_munmap(region->mmap_alias, region->mmap_size);
841 		kvm_free_fd(region->fd);
842 	}
843 	if ((int)region->region.guest_memfd >= 0)
844 		kvm_free_fd(region->region.guest_memfd);
845 
846 	free(region);
847 }
848 
849 /*
850  * Destroys and frees the VM pointed to by vmp.
851  */
852 void kvm_vm_free(struct kvm_vm *vmp)
853 {
854 	int ctr;
855 	struct hlist_node *node;
856 	struct userspace_mem_region *region;
857 
858 	if (vmp == NULL)
859 		return;
860 
861 	/* Free userspace_mem_regions. */
862 	hash_for_each_safe(vmp->regions.slot_hash, ctr, node, region, slot_node)
863 		__vm_mem_region_delete(vmp, region);
864 
865 	/* Free sparsebit arrays. */
866 	sparsebit_free(&vmp->vpages_valid);
867 	sparsebit_free(&vmp->vpages_mapped);
868 
869 	kvm_vm_release(vmp);
870 
871 	/* Free the structure describing the VM. */
872 	free(vmp);
873 }
874 
875 int kvm_memfd_alloc(size_t size, bool hugepages)
876 {
877 	int memfd_flags = MFD_CLOEXEC;
878 	int fd;
879 
880 	if (hugepages)
881 		memfd_flags |= MFD_HUGETLB;
882 
883 	fd = memfd_create("kvm_selftest", memfd_flags);
884 	TEST_ASSERT(fd != -1, __KVM_SYSCALL_ERROR("memfd_create()", fd));
885 
886 	kvm_ftruncate(fd, size);
887 	kvm_fallocate(fd, FALLOC_FL_PUNCH_HOLE | FALLOC_FL_KEEP_SIZE, 0, size);
888 
889 	return fd;
890 }
891 
892 static void vm_userspace_mem_region_gpa_insert(struct rb_root *gpa_tree,
893 					       struct userspace_mem_region *region)
894 {
895 	struct rb_node **cur, *parent;
896 
897 	for (cur = &gpa_tree->rb_node, parent = NULL; *cur; ) {
898 		struct userspace_mem_region *cregion;
899 
900 		cregion = container_of(*cur, typeof(*cregion), gpa_node);
901 		parent = *cur;
902 		if (region->region.guest_phys_addr <
903 		    cregion->region.guest_phys_addr)
904 			cur = &(*cur)->rb_left;
905 		else {
906 			TEST_ASSERT(region->region.guest_phys_addr !=
907 				    cregion->region.guest_phys_addr,
908 				    "Duplicate GPA in region tree");
909 
910 			cur = &(*cur)->rb_right;
911 		}
912 	}
913 
914 	rb_link_node(&region->gpa_node, parent, cur);
915 	rb_insert_color(&region->gpa_node, gpa_tree);
916 }
917 
918 static void vm_userspace_mem_region_hva_insert(struct rb_root *hva_tree,
919 					       struct userspace_mem_region *region)
920 {
921 	struct rb_node **cur, *parent;
922 
923 	for (cur = &hva_tree->rb_node, parent = NULL; *cur; ) {
924 		struct userspace_mem_region *cregion;
925 
926 		cregion = container_of(*cur, typeof(*cregion), hva_node);
927 		parent = *cur;
928 		if (region->host_mem < cregion->host_mem)
929 			cur = &(*cur)->rb_left;
930 		else {
931 			TEST_ASSERT(region->host_mem !=
932 				    cregion->host_mem,
933 				    "Duplicate HVA in region tree");
934 
935 			cur = &(*cur)->rb_right;
936 		}
937 	}
938 
939 	rb_link_node(&region->hva_node, parent, cur);
940 	rb_insert_color(&region->hva_node, hva_tree);
941 }
942 
943 
944 int __vm_set_user_memory_region(struct kvm_vm *vm, u32 slot, u32 flags,
945 				gpa_t gpa, u64 size, void *hva)
946 {
947 	struct kvm_userspace_memory_region region = {
948 		.slot = slot,
949 		.flags = flags,
950 		.guest_phys_addr = gpa,
951 		.memory_size = size,
952 		.userspace_addr = (uintptr_t)hva,
953 	};
954 
955 	return ioctl(vm->fd, KVM_SET_USER_MEMORY_REGION, &region);
956 }
957 
958 void vm_set_user_memory_region(struct kvm_vm *vm, u32 slot, u32 flags,
959 			       gpa_t gpa, u64 size, void *hva)
960 {
961 	int ret = __vm_set_user_memory_region(vm, slot, flags, gpa, size, hva);
962 
963 	TEST_ASSERT(!ret, "KVM_SET_USER_MEMORY_REGION failed, errno = %d (%s)",
964 		    errno, strerror(errno));
965 }
966 
967 #define TEST_REQUIRE_SET_USER_MEMORY_REGION2()			\
968 	__TEST_REQUIRE(kvm_has_cap(KVM_CAP_USER_MEMORY2),	\
969 		       "KVM selftests now require KVM_SET_USER_MEMORY_REGION2 (introduced in v6.8)")
970 
971 int __vm_set_user_memory_region2(struct kvm_vm *vm, u32 slot, u32 flags,
972 				 gpa_t gpa, u64 size, void *hva,
973 				 u32 guest_memfd, u64 guest_memfd_offset)
974 {
975 	struct kvm_userspace_memory_region2 region = {
976 		.slot = slot,
977 		.flags = flags,
978 		.guest_phys_addr = gpa,
979 		.memory_size = size,
980 		.userspace_addr = (uintptr_t)hva,
981 		.guest_memfd = guest_memfd,
982 		.guest_memfd_offset = guest_memfd_offset,
983 	};
984 
985 	TEST_REQUIRE_SET_USER_MEMORY_REGION2();
986 
987 	return ioctl(vm->fd, KVM_SET_USER_MEMORY_REGION2, &region);
988 }
989 
990 void vm_set_user_memory_region2(struct kvm_vm *vm, u32 slot, u32 flags,
991 				gpa_t gpa, u64 size, void *hva,
992 				u32 guest_memfd, u64 guest_memfd_offset)
993 {
994 	int ret = __vm_set_user_memory_region2(vm, slot, flags, gpa, size, hva,
995 					       guest_memfd, guest_memfd_offset);
996 
997 	TEST_ASSERT(!ret, "KVM_SET_USER_MEMORY_REGION2 failed, errno = %d (%s)",
998 		    errno, strerror(errno));
999 }
1000 
1001 
1002 /* FIXME: This thing needs to be ripped apart and rewritten. */
1003 void vm_mem_add(struct kvm_vm *vm, enum vm_mem_backing_src_type src_type,
1004 		gpa_t gpa, u32 slot, u64 npages, u32 flags,
1005 		int guest_memfd, u64 guest_memfd_offset)
1006 {
1007 	int ret;
1008 	struct userspace_mem_region *region;
1009 	size_t backing_src_pagesz = get_backing_src_pagesz(src_type);
1010 	size_t mem_size = npages * vm->page_size;
1011 	size_t alignment = 1;
1012 
1013 	TEST_REQUIRE_SET_USER_MEMORY_REGION2();
1014 
1015 	TEST_ASSERT(vm_adjust_num_guest_pages(vm->mode, npages) == npages,
1016 		"Number of guest pages is not compatible with the host. "
1017 		"Try npages=%d", vm_adjust_num_guest_pages(vm->mode, npages));
1018 
1019 	TEST_ASSERT((gpa % vm->page_size) == 0, "Guest physical "
1020 		"address not on a page boundary.\n"
1021 		"  gpa: 0x%lx vm->page_size: 0x%x",
1022 		gpa, vm->page_size);
1023 	TEST_ASSERT((((gpa >> vm->page_shift) + npages) - 1)
1024 		<= vm->max_gfn, "Physical range beyond maximum "
1025 		"supported physical address,\n"
1026 		"  gpa: 0x%lx npages: 0x%lx\n"
1027 		"  vm->max_gfn: 0x%lx vm->page_size: 0x%x",
1028 		gpa, npages, vm->max_gfn, vm->page_size);
1029 
1030 	/*
1031 	 * Confirm a mem region with an overlapping address doesn't
1032 	 * already exist.
1033 	 */
1034 	region = (struct userspace_mem_region *) userspace_mem_region_find(
1035 		vm, gpa, (gpa + npages * vm->page_size) - 1);
1036 	if (region != NULL)
1037 		TEST_FAIL("overlapping userspace_mem_region already "
1038 			"exists\n"
1039 			"  requested gpa: 0x%lx npages: 0x%lx page_size: 0x%x\n"
1040 			"  existing gpa: 0x%lx size: 0x%lx",
1041 			gpa, npages, vm->page_size,
1042 			(u64)region->region.guest_phys_addr,
1043 			(u64)region->region.memory_size);
1044 
1045 	/* Confirm no region with the requested slot already exists. */
1046 	hash_for_each_possible(vm->regions.slot_hash, region, slot_node,
1047 			       slot) {
1048 		if (region->region.slot != slot)
1049 			continue;
1050 
1051 		TEST_FAIL("A mem region with the requested slot "
1052 			"already exists.\n"
1053 			"  requested slot: %u gpa: 0x%lx npages: 0x%lx\n"
1054 			"  existing slot: %u gpa: 0x%lx size: 0x%lx",
1055 			slot, gpa, npages, region->region.slot,
1056 			(u64)region->region.guest_phys_addr,
1057 			(u64)region->region.memory_size);
1058 	}
1059 
1060 	/* Allocate and initialize new mem region structure. */
1061 	region = calloc(1, sizeof(*region));
1062 	TEST_ASSERT(region != NULL, "Insufficient Memory");
1063 	region->mmap_size = mem_size;
1064 
1065 	/*
1066 	 * When using THP mmap is not guaranteed to returned a hugepage aligned
1067 	 * address so we have to pad the mmap. Padding is not needed for HugeTLB
1068 	 * because mmap will always return an address aligned to the HugeTLB
1069 	 * page size.
1070 	 */
1071 	if (src_type == VM_MEM_SRC_ANONYMOUS_THP)
1072 		alignment = max(backing_src_pagesz, alignment);
1073 
1074 	TEST_ASSERT_EQ(gpa, align_up(gpa, backing_src_pagesz));
1075 
1076 	/* Add enough memory to align up if necessary */
1077 	if (alignment > 1)
1078 		region->mmap_size += alignment;
1079 
1080 	region->fd = -1;
1081 	if (backing_src_is_shared(src_type))
1082 		region->fd = kvm_memfd_alloc(region->mmap_size,
1083 					     src_type == VM_MEM_SRC_SHARED_HUGETLB);
1084 
1085 	region->mmap_start = kvm_mmap(region->mmap_size, PROT_READ | PROT_WRITE,
1086 				      vm_mem_backing_src_alias(src_type)->flag,
1087 				      region->fd);
1088 
1089 	TEST_ASSERT(!is_backing_src_hugetlb(src_type) ||
1090 		    region->mmap_start == align_ptr_up(region->mmap_start, backing_src_pagesz),
1091 		    "mmap_start %p is not aligned to HugeTLB page size 0x%lx",
1092 		    region->mmap_start, backing_src_pagesz);
1093 
1094 	/* Align host address */
1095 	region->host_mem = align_ptr_up(region->mmap_start, alignment);
1096 
1097 	/* As needed perform madvise */
1098 	if ((src_type == VM_MEM_SRC_ANONYMOUS ||
1099 	     src_type == VM_MEM_SRC_ANONYMOUS_THP) && thp_configured()) {
1100 		ret = madvise(region->host_mem, mem_size,
1101 			      src_type == VM_MEM_SRC_ANONYMOUS ? MADV_NOHUGEPAGE : MADV_HUGEPAGE);
1102 		TEST_ASSERT(ret == 0, "madvise failed, addr: %p length: 0x%lx src_type: %s",
1103 			    region->host_mem, mem_size,
1104 			    vm_mem_backing_src_alias(src_type)->name);
1105 	}
1106 
1107 	region->backing_src_type = src_type;
1108 
1109 	if (flags & KVM_MEM_GUEST_MEMFD) {
1110 		if (guest_memfd < 0) {
1111 			u32 guest_memfd_flags = 0;
1112 			TEST_ASSERT(!guest_memfd_offset,
1113 				    "Offset must be zero when creating new guest_memfd");
1114 			guest_memfd = vm_create_guest_memfd(vm, mem_size, guest_memfd_flags);
1115 		} else {
1116 			/*
1117 			 * Install a unique fd for each memslot so that the fd
1118 			 * can be closed when the region is deleted without
1119 			 * needing to track if the fd is owned by the framework
1120 			 * or by the caller.
1121 			 */
1122 			guest_memfd = kvm_dup(guest_memfd);
1123 		}
1124 
1125 		region->region.guest_memfd = guest_memfd;
1126 		region->region.guest_memfd_offset = guest_memfd_offset;
1127 	} else {
1128 		region->region.guest_memfd = -1;
1129 	}
1130 
1131 	region->unused_phy_pages = sparsebit_alloc();
1132 	if (vm_arch_has_protected_memory(vm))
1133 		region->protected_phy_pages = sparsebit_alloc();
1134 	sparsebit_set_num(region->unused_phy_pages, gpa >> vm->page_shift, npages);
1135 	region->region.slot = slot;
1136 	region->region.flags = flags;
1137 	region->region.guest_phys_addr = gpa;
1138 	region->region.memory_size = npages * vm->page_size;
1139 	region->region.userspace_addr = (uintptr_t) region->host_mem;
1140 	ret = __vm_ioctl(vm, KVM_SET_USER_MEMORY_REGION2, &region->region);
1141 	TEST_ASSERT(ret == 0, "KVM_SET_USER_MEMORY_REGION2 IOCTL failed,\n"
1142 		"  rc: %i errno: %i\n"
1143 		"  slot: %u flags: 0x%x\n"
1144 		"  guest_phys_addr: 0x%lx size: 0x%llx guest_memfd: %d",
1145 		ret, errno, slot, flags, gpa, region->region.memory_size,
1146 		region->region.guest_memfd);
1147 
1148 	/* Add to quick lookup data structures */
1149 	vm_userspace_mem_region_gpa_insert(&vm->regions.gpa_tree, region);
1150 	vm_userspace_mem_region_hva_insert(&vm->regions.hva_tree, region);
1151 	hash_add(vm->regions.slot_hash, &region->slot_node, slot);
1152 
1153 	/* If shared memory, create an alias. */
1154 	if (region->fd >= 0) {
1155 		region->mmap_alias = kvm_mmap(region->mmap_size,
1156 					      PROT_READ | PROT_WRITE,
1157 					      vm_mem_backing_src_alias(src_type)->flag,
1158 					      region->fd);
1159 
1160 		/* Align host alias address */
1161 		region->host_alias = align_ptr_up(region->mmap_alias, alignment);
1162 	}
1163 }
1164 
1165 void vm_userspace_mem_region_add(struct kvm_vm *vm,
1166 				 enum vm_mem_backing_src_type src_type,
1167 				 gpa_t gpa, u32 slot, u64 npages, u32 flags)
1168 {
1169 	vm_mem_add(vm, src_type, gpa, slot, npages, flags, -1, 0);
1170 }
1171 
1172 /*
1173  * Memslot to region
1174  *
1175  * Input Args:
1176  *   vm - Virtual Machine
1177  *   memslot - KVM memory slot ID
1178  *
1179  * Output Args: None
1180  *
1181  * Return:
1182  *   Pointer to memory region structure that describe memory region
1183  *   using kvm memory slot ID given by memslot.  TEST_ASSERT failure
1184  *   on error (e.g. currently no memory region using memslot as a KVM
1185  *   memory slot ID).
1186  */
1187 struct userspace_mem_region *
1188 memslot2region(struct kvm_vm *vm, u32 memslot)
1189 {
1190 	struct userspace_mem_region *region;
1191 
1192 	hash_for_each_possible(vm->regions.slot_hash, region, slot_node,
1193 			       memslot)
1194 		if (region->region.slot == memslot)
1195 			return region;
1196 
1197 	fprintf(stderr, "No mem region with the requested slot found,\n"
1198 		"  requested slot: %u\n", memslot);
1199 	fputs("---- vm dump ----\n", stderr);
1200 	vm_dump(stderr, vm, 2);
1201 	TEST_FAIL("Mem region not found");
1202 	return NULL;
1203 }
1204 
1205 /*
1206  * VM Memory Region Flags Set
1207  *
1208  * Input Args:
1209  *   vm - Virtual Machine
1210  *   flags - Starting guest physical address
1211  *
1212  * Output Args: None
1213  *
1214  * Return: None
1215  *
1216  * Sets the flags of the memory region specified by the value of slot,
1217  * to the values given by flags.
1218  */
1219 void vm_mem_region_set_flags(struct kvm_vm *vm, u32 slot, u32 flags)
1220 {
1221 	int ret;
1222 	struct userspace_mem_region *region;
1223 
1224 	region = memslot2region(vm, slot);
1225 
1226 	region->region.flags = flags;
1227 
1228 	ret = __vm_ioctl(vm, KVM_SET_USER_MEMORY_REGION2, &region->region);
1229 
1230 	TEST_ASSERT(ret == 0, "KVM_SET_USER_MEMORY_REGION2 IOCTL failed,\n"
1231 		"  rc: %i errno: %i slot: %u flags: 0x%x",
1232 		ret, errno, slot, flags);
1233 }
1234 
1235 void vm_mem_region_reload(struct kvm_vm *vm, u32 slot)
1236 {
1237 	struct userspace_mem_region *region = memslot2region(vm, slot);
1238 	struct kvm_userspace_memory_region2 tmp = region->region;
1239 
1240 	tmp.memory_size = 0;
1241 	vm_ioctl(vm, KVM_SET_USER_MEMORY_REGION2, &tmp);
1242 	vm_ioctl(vm, KVM_SET_USER_MEMORY_REGION2, &region->region);
1243 }
1244 
1245 /*
1246  * VM Memory Region Move
1247  *
1248  * Input Args:
1249  *   vm - Virtual Machine
1250  *   slot - Slot of the memory region to move
1251  *   new_gpa - Starting guest physical address
1252  *
1253  * Output Args: None
1254  *
1255  * Return: None
1256  *
1257  * Change the gpa of a memory region.
1258  */
1259 void vm_mem_region_move(struct kvm_vm *vm, u32 slot, u64 new_gpa)
1260 {
1261 	struct userspace_mem_region *region;
1262 	int ret;
1263 
1264 	region = memslot2region(vm, slot);
1265 
1266 	region->region.guest_phys_addr = new_gpa;
1267 
1268 	ret = __vm_ioctl(vm, KVM_SET_USER_MEMORY_REGION2, &region->region);
1269 
1270 	TEST_ASSERT(!ret, "KVM_SET_USER_MEMORY_REGION2 failed\n"
1271 		    "ret: %i errno: %i slot: %u new_gpa: 0x%lx",
1272 		    ret, errno, slot, new_gpa);
1273 }
1274 
1275 /*
1276  * VM Memory Region Delete
1277  *
1278  * Input Args:
1279  *   vm - Virtual Machine
1280  *   slot - Slot of the memory region to delete
1281  *
1282  * Output Args: None
1283  *
1284  * Return: None
1285  *
1286  * Delete a memory region.
1287  */
1288 void vm_mem_region_delete(struct kvm_vm *vm, u32 slot)
1289 {
1290 	struct userspace_mem_region *region = memslot2region(vm, slot);
1291 
1292 	region->region.memory_size = 0;
1293 	vm_ioctl(vm, KVM_SET_USER_MEMORY_REGION2, &region->region);
1294 
1295 	__vm_mem_region_delete(vm, region);
1296 }
1297 
1298 void vm_guest_mem_fallocate(struct kvm_vm *vm, u64 base, u64 size,
1299 			    bool punch_hole)
1300 {
1301 	const int mode = FALLOC_FL_KEEP_SIZE | (punch_hole ? FALLOC_FL_PUNCH_HOLE : 0);
1302 	struct userspace_mem_region *region;
1303 	u64 end = base + size;
1304 	gpa_t gpa, len;
1305 	off_t fd_offset;
1306 	int ret;
1307 
1308 	for (gpa = base; gpa < end; gpa += len) {
1309 		u64 offset;
1310 
1311 		region = userspace_mem_region_find(vm, gpa, gpa);
1312 		TEST_ASSERT(region && region->region.flags & KVM_MEM_GUEST_MEMFD,
1313 			    "Private memory region not found for GPA 0x%lx", gpa);
1314 
1315 		offset = gpa - region->region.guest_phys_addr;
1316 		fd_offset = region->region.guest_memfd_offset + offset;
1317 		len = min_t(u64, end - gpa, region->region.memory_size - offset);
1318 
1319 		ret = fallocate(region->region.guest_memfd, mode, fd_offset, len);
1320 		TEST_ASSERT(!ret, "fallocate() failed to %s at %lx (len = %lu), fd = %d, mode = %x, offset = %lx",
1321 			    punch_hole ? "punch hole" : "allocate", gpa, len,
1322 			    region->region.guest_memfd, mode, fd_offset);
1323 	}
1324 }
1325 
1326 /* Returns the size of a vCPU's kvm_run structure. */
1327 static size_t vcpu_mmap_sz(void)
1328 {
1329 	int dev_fd, ret;
1330 
1331 	dev_fd = open_kvm_dev_path_or_exit();
1332 
1333 	ret = ioctl(dev_fd, KVM_GET_VCPU_MMAP_SIZE, NULL);
1334 	TEST_ASSERT(ret >= 0 && ret >= sizeof(struct kvm_run),
1335 		    KVM_IOCTL_ERROR(KVM_GET_VCPU_MMAP_SIZE, ret));
1336 
1337 	kvm_free_fd(dev_fd);
1338 
1339 	return ret;
1340 }
1341 
1342 static bool vcpu_exists(struct kvm_vm *vm, u32 vcpu_id)
1343 {
1344 	struct kvm_vcpu *vcpu;
1345 
1346 	list_for_each_entry(vcpu, &vm->vcpus, list) {
1347 		if (vcpu->id == vcpu_id)
1348 			return true;
1349 	}
1350 
1351 	return false;
1352 }
1353 
1354 /*
1355  * Adds a virtual CPU to the VM specified by vm with the ID given by vcpu_id.
1356  * No additional vCPU setup is done.  Returns the vCPU.
1357  */
1358 struct kvm_vcpu *__vm_vcpu_add(struct kvm_vm *vm, u32 vcpu_id)
1359 {
1360 	struct kvm_vcpu *vcpu;
1361 
1362 	/* Confirm a vcpu with the specified id doesn't already exist. */
1363 	TEST_ASSERT(!vcpu_exists(vm, vcpu_id), "vCPU%d already exists", vcpu_id);
1364 
1365 	/* Allocate and initialize new vcpu structure. */
1366 	vcpu = calloc(1, sizeof(*vcpu));
1367 	TEST_ASSERT(vcpu != NULL, "Insufficient Memory");
1368 
1369 	vcpu->vm = vm;
1370 	vcpu->id = vcpu_id;
1371 	vcpu->fd = __vm_ioctl(vm, KVM_CREATE_VCPU, (void *)(unsigned long)vcpu_id);
1372 	TEST_ASSERT_VM_VCPU_IOCTL(vcpu->fd >= 0, KVM_CREATE_VCPU, vcpu->fd, vm);
1373 
1374 	TEST_ASSERT(vcpu_mmap_sz() >= sizeof(*vcpu->run), "vcpu mmap size "
1375 		"smaller than expected, vcpu_mmap_sz: %zi expected_min: %zi",
1376 		vcpu_mmap_sz(), sizeof(*vcpu->run));
1377 	vcpu->run = kvm_mmap(vcpu_mmap_sz(), PROT_READ | PROT_WRITE,
1378 			     MAP_SHARED, vcpu->fd);
1379 
1380 	if (kvm_has_cap(KVM_CAP_BINARY_STATS_FD))
1381 		vcpu->stats.fd = vcpu_get_stats_fd(vcpu);
1382 	else
1383 		vcpu->stats.fd = -1;
1384 
1385 	/* Add to linked-list of VCPUs. */
1386 	list_add(&vcpu->list, &vm->vcpus);
1387 
1388 	return vcpu;
1389 }
1390 
1391 /*
1392  * Within the VM specified by @vm, locates the lowest starting guest virtual
1393  * address >= @min_gva, that has at least @sz unallocated bytes.  A
1394  * TEST_ASSERT failure occurs for invalid input or no area of at least
1395  * @sz unallocated bytes >= @min_gva is available.
1396  */
1397 gva_t vm_unused_gva_gap(struct kvm_vm *vm, size_t sz, gva_t min_gva)
1398 {
1399 	u64 pages = (sz + vm->page_size - 1) >> vm->page_shift;
1400 
1401 	/* Determine lowest permitted virtual page index. */
1402 	u64 pgidx_start = (min_gva + vm->page_size - 1) >> vm->page_shift;
1403 	if ((pgidx_start * vm->page_size) < min_gva)
1404 		goto no_va_found;
1405 
1406 	/* Loop over section with enough valid virtual page indexes. */
1407 	if (!sparsebit_is_set_num(vm->vpages_valid,
1408 		pgidx_start, pages))
1409 		pgidx_start = sparsebit_next_set_num(vm->vpages_valid,
1410 			pgidx_start, pages);
1411 	do {
1412 		/*
1413 		 * Are there enough unused virtual pages available at
1414 		 * the currently proposed starting virtual page index.
1415 		 * If not, adjust proposed starting index to next
1416 		 * possible.
1417 		 */
1418 		if (sparsebit_is_clear_num(vm->vpages_mapped,
1419 			pgidx_start, pages))
1420 			goto va_found;
1421 		pgidx_start = sparsebit_next_clear_num(vm->vpages_mapped,
1422 			pgidx_start, pages);
1423 		if (pgidx_start == 0)
1424 			goto no_va_found;
1425 
1426 		/*
1427 		 * If needed, adjust proposed starting virtual address,
1428 		 * to next range of valid virtual addresses.
1429 		 */
1430 		if (!sparsebit_is_set_num(vm->vpages_valid,
1431 			pgidx_start, pages)) {
1432 			pgidx_start = sparsebit_next_set_num(
1433 				vm->vpages_valid, pgidx_start, pages);
1434 			if (pgidx_start == 0)
1435 				goto no_va_found;
1436 		}
1437 	} while (pgidx_start != 0);
1438 
1439 no_va_found:
1440 	TEST_FAIL("No gva of specified pages available, pages: 0x%lx", pages);
1441 
1442 	/* NOT REACHED */
1443 	return -1;
1444 
1445 va_found:
1446 	TEST_ASSERT(sparsebit_is_set_num(vm->vpages_valid,
1447 		pgidx_start, pages),
1448 		"Unexpected, invalid virtual page index range,\n"
1449 		"  pgidx_start: 0x%lx\n"
1450 		"  pages: 0x%lx",
1451 		pgidx_start, pages);
1452 	TEST_ASSERT(sparsebit_is_clear_num(vm->vpages_mapped,
1453 		pgidx_start, pages),
1454 		"Unexpected, pages already mapped,\n"
1455 		"  pgidx_start: 0x%lx\n"
1456 		"  pages: 0x%lx",
1457 		pgidx_start, pages);
1458 
1459 	return pgidx_start * vm->page_size;
1460 }
1461 
1462 static gva_t ____vm_alloc(struct kvm_vm *vm, size_t sz, gva_t min_gva,
1463 			  enum kvm_mem_region_type type, bool protected)
1464 {
1465 	u64 pages = (sz >> vm->page_shift) + ((sz % vm->page_size) != 0);
1466 
1467 	virt_pgd_alloc(vm);
1468 	gpa_t gpa = __vm_phy_pages_alloc(vm, pages,
1469 					   KVM_UTIL_MIN_PFN * vm->page_size,
1470 					   vm->memslots[type], protected);
1471 
1472 	/*
1473 	 * Find an unused range of virtual page addresses of at least
1474 	 * pages in length.
1475 	 */
1476 	gva_t gva_start = vm_unused_gva_gap(vm, sz, min_gva);
1477 
1478 	/* Map the virtual pages. */
1479 	for (gva_t gva = gva_start; pages > 0;
1480 		pages--, gva += vm->page_size, gpa += vm->page_size) {
1481 
1482 		virt_pg_map(vm, gva, gpa);
1483 	}
1484 
1485 	return gva_start;
1486 }
1487 
1488 gva_t __vm_alloc(struct kvm_vm *vm, size_t sz, gva_t min_gva,
1489 		 enum kvm_mem_region_type type)
1490 {
1491 	return ____vm_alloc(vm, sz, min_gva, type,
1492 			    vm_arch_has_protected_memory(vm));
1493 }
1494 
1495 gva_t vm_alloc_shared(struct kvm_vm *vm, size_t sz, gva_t min_gva,
1496 		      enum kvm_mem_region_type type)
1497 {
1498 	return ____vm_alloc(vm, sz, min_gva, type, false);
1499 }
1500 
1501 /*
1502  * Allocates at least sz bytes within the virtual address space of the VM
1503  * given by @vm.  The allocated bytes are mapped to a virtual address >= the
1504  * address given by @min_gva.  Note that each allocation uses a a unique set
1505  * of pages, with the minimum real allocation being at least a page. The
1506  * allocated physical space comes from the TEST_DATA memory region.
1507  */
1508 gva_t vm_alloc(struct kvm_vm *vm, size_t sz, gva_t min_gva)
1509 {
1510 	return __vm_alloc(vm, sz, min_gva, MEM_REGION_TEST_DATA);
1511 }
1512 
1513 gva_t vm_alloc_pages(struct kvm_vm *vm, int nr_pages)
1514 {
1515 	return vm_alloc(vm, nr_pages * getpagesize(), KVM_UTIL_MIN_VADDR);
1516 }
1517 
1518 gva_t __vm_alloc_page(struct kvm_vm *vm, enum kvm_mem_region_type type)
1519 {
1520 	return __vm_alloc(vm, getpagesize(), KVM_UTIL_MIN_VADDR, type);
1521 }
1522 
1523 gva_t vm_alloc_page(struct kvm_vm *vm)
1524 {
1525 	return vm_alloc_pages(vm, 1);
1526 }
1527 
1528 /*
1529  * Map a range of VM virtual address to the VM's physical address.
1530  *
1531  * Within the VM given by @vm, creates a virtual translation for @npages
1532  * starting at @gva to the page range starting at @gpa.
1533  */
1534 void virt_map(struct kvm_vm *vm, gva_t gva, gpa_t gpa, unsigned int npages)
1535 {
1536 	size_t page_size = vm->page_size;
1537 	size_t size = npages * page_size;
1538 
1539 	TEST_ASSERT(gva + size > gva, "Vaddr overflow");
1540 	TEST_ASSERT(gpa + size > gpa, "Paddr overflow");
1541 
1542 	while (npages--) {
1543 		virt_pg_map(vm, gva, gpa);
1544 
1545 		gva += page_size;
1546 		gpa += page_size;
1547 	}
1548 }
1549 
1550 /*
1551  * Address VM Physical to Host Virtual
1552  *
1553  * Input Args:
1554  *   vm - Virtual Machine
1555  *   gpa - VM physical address
1556  *
1557  * Output Args: None
1558  *
1559  * Return:
1560  *   Equivalent host virtual address
1561  *
1562  * Locates the memory region containing the VM physical address given
1563  * by gpa, within the VM given by vm.  When found, the host virtual
1564  * address providing the memory to the vm physical address is returned.
1565  * A TEST_ASSERT failure occurs if no region containing gpa exists.
1566  */
1567 void *addr_gpa2hva(struct kvm_vm *vm, gpa_t gpa)
1568 {
1569 	struct userspace_mem_region *region;
1570 
1571 	gpa = vm_untag_gpa(vm, gpa);
1572 
1573 	region = userspace_mem_region_find(vm, gpa, gpa);
1574 	if (!region) {
1575 		TEST_FAIL("No vm physical memory at 0x%lx", gpa);
1576 		return NULL;
1577 	}
1578 
1579 	return (void *)((uintptr_t)region->host_mem
1580 		+ (gpa - region->region.guest_phys_addr));
1581 }
1582 
1583 /*
1584  * Address Host Virtual to VM Physical
1585  *
1586  * Input Args:
1587  *   vm - Virtual Machine
1588  *   hva - Host virtual address
1589  *
1590  * Output Args: None
1591  *
1592  * Return:
1593  *   Equivalent VM physical address
1594  *
1595  * Locates the memory region containing the host virtual address given
1596  * by hva, within the VM given by vm.  When found, the equivalent
1597  * VM physical address is returned. A TEST_ASSERT failure occurs if no
1598  * region containing hva exists.
1599  */
1600 gpa_t addr_hva2gpa(struct kvm_vm *vm, void *hva)
1601 {
1602 	struct rb_node *node;
1603 
1604 	for (node = vm->regions.hva_tree.rb_node; node; ) {
1605 		struct userspace_mem_region *region =
1606 			container_of(node, struct userspace_mem_region, hva_node);
1607 
1608 		if (hva >= region->host_mem) {
1609 			if (hva <= (region->host_mem
1610 				+ region->region.memory_size - 1))
1611 				return (gpa_t)((uintptr_t)
1612 					region->region.guest_phys_addr
1613 					+ (hva - (uintptr_t)region->host_mem));
1614 
1615 			node = node->rb_right;
1616 		} else
1617 			node = node->rb_left;
1618 	}
1619 
1620 	TEST_FAIL("No mapping to a guest physical address, hva: %p", hva);
1621 	return -1;
1622 }
1623 
1624 /*
1625  * Address VM physical to Host Virtual *alias*.
1626  *
1627  * Input Args:
1628  *   vm - Virtual Machine
1629  *   gpa - VM physical address
1630  *
1631  * Output Args: None
1632  *
1633  * Return:
1634  *   Equivalent address within the host virtual *alias* area, or NULL
1635  *   (without failing the test) if the guest memory is not shared (so
1636  *   no alias exists).
1637  *
1638  * Create a writable, shared virtual=>physical alias for the specific GPA.
1639  * The primary use case is to allow the host selftest to manipulate guest
1640  * memory without mapping said memory in the guest's address space. And, for
1641  * userfaultfd-based demand paging, to do so without triggering userfaults.
1642  */
1643 void *addr_gpa2alias(struct kvm_vm *vm, gpa_t gpa)
1644 {
1645 	struct userspace_mem_region *region;
1646 	uintptr_t offset;
1647 
1648 	region = userspace_mem_region_find(vm, gpa, gpa);
1649 	if (!region)
1650 		return NULL;
1651 
1652 	if (!region->host_alias)
1653 		return NULL;
1654 
1655 	offset = gpa - region->region.guest_phys_addr;
1656 	return (void *) ((uintptr_t) region->host_alias + offset);
1657 }
1658 
1659 /* Create an interrupt controller chip for the specified VM. */
1660 void vm_create_irqchip(struct kvm_vm *vm)
1661 {
1662 	int r;
1663 
1664 	/*
1665 	 * Allocate a fully in-kernel IRQ chip by default, but fall back to a
1666 	 * split model (x86 only) if that fails (KVM x86 allows compiling out
1667 	 * support for KVM_CREATE_IRQCHIP).
1668 	 */
1669 	r = __vm_ioctl(vm, KVM_CREATE_IRQCHIP, NULL);
1670 	if (r && errno == ENOTTY && kvm_has_cap(KVM_CAP_SPLIT_IRQCHIP))
1671 		vm_enable_cap(vm, KVM_CAP_SPLIT_IRQCHIP, 24);
1672 	else
1673 		TEST_ASSERT_VM_VCPU_IOCTL(!r, KVM_CREATE_IRQCHIP, r, vm);
1674 
1675 	vm->has_irqchip = true;
1676 }
1677 
1678 int _vcpu_run(struct kvm_vcpu *vcpu)
1679 {
1680 	int rc;
1681 
1682 	do {
1683 		rc = __vcpu_run(vcpu);
1684 	} while (rc == -1 && errno == EINTR);
1685 
1686 	if (!rc)
1687 		assert_on_unhandled_exception(vcpu);
1688 
1689 	return rc;
1690 }
1691 
1692 /*
1693  * Invoke KVM_RUN on a vCPU until KVM returns something other than -EINTR.
1694  * Assert if the KVM returns an error (other than -EINTR).
1695  */
1696 void vcpu_run(struct kvm_vcpu *vcpu)
1697 {
1698 	int ret = _vcpu_run(vcpu);
1699 
1700 	TEST_ASSERT(!ret, KVM_IOCTL_ERROR(KVM_RUN, ret));
1701 }
1702 
1703 void vcpu_run_complete_io(struct kvm_vcpu *vcpu)
1704 {
1705 	int ret;
1706 
1707 	vcpu->run->immediate_exit = 1;
1708 	ret = __vcpu_run(vcpu);
1709 	vcpu->run->immediate_exit = 0;
1710 
1711 	TEST_ASSERT(ret == -1 && errno == EINTR,
1712 		    "KVM_RUN IOCTL didn't exit immediately, rc: %i, errno: %i",
1713 		    ret, errno);
1714 }
1715 
1716 /*
1717  * Get the list of guest registers which are supported for
1718  * KVM_GET_ONE_REG/KVM_SET_ONE_REG ioctls.  Returns a kvm_reg_list pointer,
1719  * it is the caller's responsibility to free the list.
1720  */
1721 struct kvm_reg_list *vcpu_get_reg_list(struct kvm_vcpu *vcpu)
1722 {
1723 	struct kvm_reg_list reg_list_n = { .n = 0 }, *reg_list;
1724 	int ret;
1725 
1726 	ret = __vcpu_ioctl(vcpu, KVM_GET_REG_LIST, &reg_list_n);
1727 	TEST_ASSERT(ret == -1 && errno == E2BIG, "KVM_GET_REG_LIST n=0");
1728 
1729 	reg_list = calloc(1, sizeof(*reg_list) + reg_list_n.n * sizeof(__u64));
1730 	reg_list->n = reg_list_n.n;
1731 	vcpu_ioctl(vcpu, KVM_GET_REG_LIST, reg_list);
1732 	return reg_list;
1733 }
1734 
1735 void *vcpu_map_dirty_ring(struct kvm_vcpu *vcpu)
1736 {
1737 	u32 page_size = getpagesize();
1738 	u32 size = vcpu->vm->dirty_ring_size;
1739 
1740 	TEST_ASSERT(size > 0, "Should enable dirty ring first");
1741 
1742 	if (!vcpu->dirty_gfns) {
1743 		void *addr;
1744 
1745 		addr = mmap(NULL, size, PROT_READ, MAP_PRIVATE, vcpu->fd,
1746 			    page_size * KVM_DIRTY_LOG_PAGE_OFFSET);
1747 		TEST_ASSERT(addr == MAP_FAILED, "Dirty ring mapped private");
1748 
1749 		addr = mmap(NULL, size, PROT_READ | PROT_EXEC, MAP_PRIVATE, vcpu->fd,
1750 			    page_size * KVM_DIRTY_LOG_PAGE_OFFSET);
1751 		TEST_ASSERT(addr == MAP_FAILED, "Dirty ring mapped exec");
1752 
1753 		addr = __kvm_mmap(size, PROT_READ | PROT_WRITE, MAP_SHARED, vcpu->fd,
1754 				  page_size * KVM_DIRTY_LOG_PAGE_OFFSET);
1755 
1756 		vcpu->dirty_gfns = addr;
1757 		vcpu->dirty_gfns_count = size / sizeof(struct kvm_dirty_gfn);
1758 	}
1759 
1760 	return vcpu->dirty_gfns;
1761 }
1762 
1763 /*
1764  * Device Ioctl
1765  */
1766 
1767 int __kvm_has_device_attr(int dev_fd, u32 group, u64 attr)
1768 {
1769 	struct kvm_device_attr attribute = {
1770 		.group = group,
1771 		.attr = attr,
1772 		.flags = 0,
1773 	};
1774 
1775 	return ioctl(dev_fd, KVM_HAS_DEVICE_ATTR, &attribute);
1776 }
1777 
1778 int __kvm_test_create_device(struct kvm_vm *vm, u64 type)
1779 {
1780 	struct kvm_create_device create_dev = {
1781 		.type = type,
1782 		.flags = KVM_CREATE_DEVICE_TEST,
1783 	};
1784 
1785 	return __vm_ioctl(vm, KVM_CREATE_DEVICE, &create_dev);
1786 }
1787 
1788 int __kvm_create_device(struct kvm_vm *vm, u64 type)
1789 {
1790 	struct kvm_create_device create_dev = {
1791 		.type = type,
1792 		.fd = -1,
1793 		.flags = 0,
1794 	};
1795 	int err;
1796 
1797 	err = __vm_ioctl(vm, KVM_CREATE_DEVICE, &create_dev);
1798 	TEST_ASSERT(err <= 0, "KVM_CREATE_DEVICE shouldn't return a positive value");
1799 	return err ? : create_dev.fd;
1800 }
1801 
1802 int __kvm_device_attr_get(int dev_fd, u32 group, u64 attr, void *val)
1803 {
1804 	struct kvm_device_attr kvmattr = {
1805 		.group = group,
1806 		.attr = attr,
1807 		.flags = 0,
1808 		.addr = (uintptr_t)val,
1809 	};
1810 
1811 	return __kvm_ioctl(dev_fd, KVM_GET_DEVICE_ATTR, &kvmattr);
1812 }
1813 
1814 int __kvm_device_attr_set(int dev_fd, u32 group, u64 attr, void *val)
1815 {
1816 	struct kvm_device_attr kvmattr = {
1817 		.group = group,
1818 		.attr = attr,
1819 		.flags = 0,
1820 		.addr = (uintptr_t)val,
1821 	};
1822 
1823 	return __kvm_ioctl(dev_fd, KVM_SET_DEVICE_ATTR, &kvmattr);
1824 }
1825 
1826 /*
1827  * IRQ related functions.
1828  */
1829 
1830 int _kvm_irq_line(struct kvm_vm *vm, u32 irq, int level)
1831 {
1832 	struct kvm_irq_level irq_level = {
1833 		.irq    = irq,
1834 		.level  = level,
1835 	};
1836 
1837 	return __vm_ioctl(vm, KVM_IRQ_LINE, &irq_level);
1838 }
1839 
1840 void kvm_irq_line(struct kvm_vm *vm, u32 irq, int level)
1841 {
1842 	int ret = _kvm_irq_line(vm, irq, level);
1843 
1844 	TEST_ASSERT(ret >= 0, KVM_IOCTL_ERROR(KVM_IRQ_LINE, ret));
1845 }
1846 
1847 struct kvm_irq_routing *kvm_gsi_routing_create(void)
1848 {
1849 	struct kvm_irq_routing *routing;
1850 	size_t size;
1851 
1852 	size = sizeof(struct kvm_irq_routing);
1853 	/* Allocate space for the max number of entries: this wastes 196 KBs. */
1854 	size += KVM_MAX_IRQ_ROUTES * sizeof(struct kvm_irq_routing_entry);
1855 	routing = calloc(1, size);
1856 	assert(routing);
1857 
1858 	return routing;
1859 }
1860 
1861 void kvm_gsi_routing_irqchip_add(struct kvm_irq_routing *routing,
1862 		u32 gsi, u32 pin)
1863 {
1864 	int i;
1865 
1866 	assert(routing);
1867 	assert(routing->nr < KVM_MAX_IRQ_ROUTES);
1868 
1869 	i = routing->nr;
1870 	routing->entries[i].gsi = gsi;
1871 	routing->entries[i].type = KVM_IRQ_ROUTING_IRQCHIP;
1872 	routing->entries[i].flags = 0;
1873 	routing->entries[i].u.irqchip.irqchip = 0;
1874 	routing->entries[i].u.irqchip.pin = pin;
1875 	routing->nr++;
1876 }
1877 
1878 int _kvm_gsi_routing_write(struct kvm_vm *vm, struct kvm_irq_routing *routing)
1879 {
1880 	int ret;
1881 
1882 	assert(routing);
1883 	ret = __vm_ioctl(vm, KVM_SET_GSI_ROUTING, routing);
1884 	free(routing);
1885 
1886 	return ret;
1887 }
1888 
1889 void kvm_gsi_routing_write(struct kvm_vm *vm, struct kvm_irq_routing *routing)
1890 {
1891 	int ret;
1892 
1893 	ret = _kvm_gsi_routing_write(vm, routing);
1894 	TEST_ASSERT(!ret, KVM_IOCTL_ERROR(KVM_SET_GSI_ROUTING, ret));
1895 }
1896 
1897 /*
1898  * VM Dump
1899  *
1900  * Input Args:
1901  *   vm - Virtual Machine
1902  *   indent - Left margin indent amount
1903  *
1904  * Output Args:
1905  *   stream - Output FILE stream
1906  *
1907  * Return: None
1908  *
1909  * Dumps the current state of the VM given by vm, to the FILE stream
1910  * given by stream.
1911  */
1912 void vm_dump(FILE *stream, struct kvm_vm *vm, u8 indent)
1913 {
1914 	int ctr;
1915 	struct userspace_mem_region *region;
1916 	struct kvm_vcpu *vcpu;
1917 
1918 	fprintf(stream, "%*smode: 0x%x\n", indent, "", vm->mode);
1919 	fprintf(stream, "%*sfd: %i\n", indent, "", vm->fd);
1920 	fprintf(stream, "%*spage_size: 0x%x\n", indent, "", vm->page_size);
1921 	fprintf(stream, "%*sMem Regions:\n", indent, "");
1922 	hash_for_each(vm->regions.slot_hash, ctr, region, slot_node) {
1923 		fprintf(stream, "%*sguest_phys: 0x%lx size: 0x%lx "
1924 			"host_virt: %p\n", indent + 2, "",
1925 			(u64)region->region.guest_phys_addr,
1926 			(u64)region->region.memory_size,
1927 			region->host_mem);
1928 		fprintf(stream, "%*sunused_phy_pages: ", indent + 2, "");
1929 		sparsebit_dump(stream, region->unused_phy_pages, 0);
1930 		if (region->protected_phy_pages) {
1931 			fprintf(stream, "%*sprotected_phy_pages: ", indent + 2, "");
1932 			sparsebit_dump(stream, region->protected_phy_pages, 0);
1933 		}
1934 	}
1935 	fprintf(stream, "%*sMapped Virtual Pages:\n", indent, "");
1936 	sparsebit_dump(stream, vm->vpages_mapped, indent + 2);
1937 	fprintf(stream, "%*spgd_created: %u\n", indent, "",
1938 		vm->mmu.pgd_created);
1939 	if (vm->mmu.pgd_created) {
1940 		fprintf(stream, "%*sVirtual Translation Tables:\n",
1941 			indent + 2, "");
1942 		virt_dump(stream, vm, indent + 4);
1943 	}
1944 	fprintf(stream, "%*sVCPUs:\n", indent, "");
1945 
1946 	list_for_each_entry(vcpu, &vm->vcpus, list)
1947 		vcpu_dump(stream, vcpu, indent + 2);
1948 }
1949 
1950 #define KVM_EXIT_STRING(x) {KVM_EXIT_##x, #x}
1951 
1952 /* Known KVM exit reasons */
1953 static struct exit_reason {
1954 	unsigned int reason;
1955 	const char *name;
1956 } exit_reasons_known[] = {
1957 	KVM_EXIT_STRING(UNKNOWN),
1958 	KVM_EXIT_STRING(EXCEPTION),
1959 	KVM_EXIT_STRING(IO),
1960 	KVM_EXIT_STRING(HYPERCALL),
1961 	KVM_EXIT_STRING(DEBUG),
1962 	KVM_EXIT_STRING(HLT),
1963 	KVM_EXIT_STRING(MMIO),
1964 	KVM_EXIT_STRING(IRQ_WINDOW_OPEN),
1965 	KVM_EXIT_STRING(SHUTDOWN),
1966 	KVM_EXIT_STRING(FAIL_ENTRY),
1967 	KVM_EXIT_STRING(INTR),
1968 	KVM_EXIT_STRING(SET_TPR),
1969 	KVM_EXIT_STRING(TPR_ACCESS),
1970 	KVM_EXIT_STRING(S390_SIEIC),
1971 	KVM_EXIT_STRING(S390_RESET),
1972 	KVM_EXIT_STRING(DCR),
1973 	KVM_EXIT_STRING(NMI),
1974 	KVM_EXIT_STRING(INTERNAL_ERROR),
1975 	KVM_EXIT_STRING(OSI),
1976 	KVM_EXIT_STRING(PAPR_HCALL),
1977 	KVM_EXIT_STRING(S390_UCONTROL),
1978 	KVM_EXIT_STRING(WATCHDOG),
1979 	KVM_EXIT_STRING(S390_TSCH),
1980 	KVM_EXIT_STRING(EPR),
1981 	KVM_EXIT_STRING(SYSTEM_EVENT),
1982 	KVM_EXIT_STRING(S390_STSI),
1983 	KVM_EXIT_STRING(IOAPIC_EOI),
1984 	KVM_EXIT_STRING(HYPERV),
1985 	KVM_EXIT_STRING(ARM_NISV),
1986 	KVM_EXIT_STRING(X86_RDMSR),
1987 	KVM_EXIT_STRING(X86_WRMSR),
1988 	KVM_EXIT_STRING(DIRTY_RING_FULL),
1989 	KVM_EXIT_STRING(AP_RESET_HOLD),
1990 	KVM_EXIT_STRING(X86_BUS_LOCK),
1991 	KVM_EXIT_STRING(XEN),
1992 	KVM_EXIT_STRING(RISCV_SBI),
1993 	KVM_EXIT_STRING(RISCV_CSR),
1994 	KVM_EXIT_STRING(NOTIFY),
1995 	KVM_EXIT_STRING(LOONGARCH_IOCSR),
1996 	KVM_EXIT_STRING(MEMORY_FAULT),
1997 	KVM_EXIT_STRING(ARM_SEA),
1998 };
1999 
2000 /*
2001  * Exit Reason String
2002  *
2003  * Input Args:
2004  *   exit_reason - Exit reason
2005  *
2006  * Output Args: None
2007  *
2008  * Return:
2009  *   Constant string pointer describing the exit reason.
2010  *
2011  * Locates and returns a constant string that describes the KVM exit
2012  * reason given by exit_reason.  If no such string is found, a constant
2013  * string of "Unknown" is returned.
2014  */
2015 const char *exit_reason_str(unsigned int exit_reason)
2016 {
2017 	unsigned int n1;
2018 
2019 	for (n1 = 0; n1 < ARRAY_SIZE(exit_reasons_known); n1++) {
2020 		if (exit_reason == exit_reasons_known[n1].reason)
2021 			return exit_reasons_known[n1].name;
2022 	}
2023 
2024 	return "Unknown";
2025 }
2026 
2027 /*
2028  * Physical Contiguous Page Allocator
2029  *
2030  * Input Args:
2031  *   vm - Virtual Machine
2032  *   num - number of pages
2033  *   min_gpa - Physical address minimum
2034  *   memslot - Memory region to allocate page from
2035  *   protected - True if the pages will be used as protected/private memory
2036  *
2037  * Output Args: None
2038  *
2039  * Return:
2040  *   Starting physical address
2041  *
2042  * Within the VM specified by vm, locates a range of available physical
2043  * pages at or above min_gpa. If found, the pages are marked as in use
2044  * and their base address is returned. A TEST_ASSERT failure occurs if
2045  * not enough pages are available at or above min_gpa.
2046  */
2047 gpa_t __vm_phy_pages_alloc(struct kvm_vm *vm, size_t num,
2048 			   gpa_t min_gpa, u32 memslot,
2049 			   bool protected)
2050 {
2051 	struct userspace_mem_region *region;
2052 	sparsebit_idx_t pg, base;
2053 
2054 	TEST_ASSERT(num > 0, "Must allocate at least one page");
2055 
2056 	TEST_ASSERT((min_gpa % vm->page_size) == 0, "Min physical address "
2057 		"not divisible by page size.\n"
2058 		"  min_gpa: 0x%lx page_size: 0x%x",
2059 		min_gpa, vm->page_size);
2060 
2061 	region = memslot2region(vm, memslot);
2062 	TEST_ASSERT(!protected || region->protected_phy_pages,
2063 		    "Region doesn't support protected memory");
2064 
2065 	base = pg = min_gpa >> vm->page_shift;
2066 	do {
2067 		for (; pg < base + num; ++pg) {
2068 			if (!sparsebit_is_set(region->unused_phy_pages, pg)) {
2069 				base = pg = sparsebit_next_set(region->unused_phy_pages, pg);
2070 				break;
2071 			}
2072 		}
2073 	} while (pg && pg != base + num);
2074 
2075 	if (pg == 0) {
2076 		fprintf(stderr, "No guest physical page available, "
2077 			"min_gpa: 0x%lx page_size: 0x%x memslot: %u\n",
2078 			min_gpa, vm->page_size, memslot);
2079 		fputs("---- vm dump ----\n", stderr);
2080 		vm_dump(stderr, vm, 2);
2081 		abort();
2082 	}
2083 
2084 	for (pg = base; pg < base + num; ++pg) {
2085 		sparsebit_clear(region->unused_phy_pages, pg);
2086 		if (protected)
2087 			sparsebit_set(region->protected_phy_pages, pg);
2088 	}
2089 
2090 	return base * vm->page_size;
2091 }
2092 
2093 gpa_t vm_phy_page_alloc(struct kvm_vm *vm, gpa_t min_gpa, u32 memslot)
2094 {
2095 	return vm_phy_pages_alloc(vm, 1, min_gpa, memslot);
2096 }
2097 
2098 gpa_t vm_alloc_page_table(struct kvm_vm *vm)
2099 {
2100 	return vm_phy_page_alloc(vm, KVM_GUEST_PAGE_TABLE_MIN_PADDR,
2101 				 vm->memslots[MEM_REGION_PT]);
2102 }
2103 
2104 /*
2105  * Address Guest Virtual to Host Virtual
2106  *
2107  * Input Args:
2108  *   vm - Virtual Machine
2109  *   gva - VM virtual address
2110  *
2111  * Output Args: None
2112  *
2113  * Return:
2114  *   Equivalent host virtual address
2115  */
2116 void *addr_gva2hva(struct kvm_vm *vm, gva_t gva)
2117 {
2118 	return addr_gpa2hva(vm, addr_gva2gpa(vm, gva));
2119 }
2120 
2121 unsigned long __weak vm_compute_max_gfn(struct kvm_vm *vm)
2122 {
2123 	return ((1ULL << vm->pa_bits) >> vm->page_shift) - 1;
2124 }
2125 
2126 static unsigned int vm_calc_num_pages(unsigned int num_pages,
2127 				      unsigned int page_shift,
2128 				      unsigned int new_page_shift,
2129 				      bool ceil)
2130 {
2131 	unsigned int n = 1 << (new_page_shift - page_shift);
2132 
2133 	if (page_shift >= new_page_shift)
2134 		return num_pages * (1 << (page_shift - new_page_shift));
2135 
2136 	return num_pages / n + !!(ceil && num_pages % n);
2137 }
2138 
2139 static inline int getpageshift(void)
2140 {
2141 	return __builtin_ffs(getpagesize()) - 1;
2142 }
2143 
2144 unsigned int
2145 vm_num_host_pages(enum vm_guest_mode mode, unsigned int num_guest_pages)
2146 {
2147 	return vm_calc_num_pages(num_guest_pages,
2148 				 vm_guest_mode_params[mode].page_shift,
2149 				 getpageshift(), true);
2150 }
2151 
2152 unsigned int
2153 vm_num_guest_pages(enum vm_guest_mode mode, unsigned int num_host_pages)
2154 {
2155 	return vm_calc_num_pages(num_host_pages, getpageshift(),
2156 				 vm_guest_mode_params[mode].page_shift, false);
2157 }
2158 
2159 unsigned int vm_calc_num_guest_pages(enum vm_guest_mode mode, size_t size)
2160 {
2161 	unsigned int n;
2162 	n = DIV_ROUND_UP(size, vm_guest_mode_params[mode].page_size);
2163 	return vm_adjust_num_guest_pages(mode, n);
2164 }
2165 
2166 /*
2167  * Read binary stats descriptors
2168  *
2169  * Input Args:
2170  *   stats_fd - the file descriptor for the binary stats file from which to read
2171  *   header - the binary stats metadata header corresponding to the given FD
2172  *
2173  * Output Args: None
2174  *
2175  * Return:
2176  *   A pointer to a newly allocated series of stat descriptors.
2177  *   Caller is responsible for freeing the returned kvm_stats_desc.
2178  *
2179  * Read the stats descriptors from the binary stats interface.
2180  */
2181 struct kvm_stats_desc *read_stats_descriptors(int stats_fd,
2182 					      struct kvm_stats_header *header)
2183 {
2184 	struct kvm_stats_desc *stats_desc;
2185 	ssize_t desc_size, total_size, ret;
2186 
2187 	desc_size = get_stats_descriptor_size(header);
2188 	total_size = header->num_desc * desc_size;
2189 
2190 	stats_desc = calloc(header->num_desc, desc_size);
2191 	TEST_ASSERT(stats_desc, "Allocate memory for stats descriptors");
2192 
2193 	ret = pread(stats_fd, stats_desc, total_size, header->desc_offset);
2194 	TEST_ASSERT(ret == total_size, "Read KVM stats descriptors");
2195 
2196 	return stats_desc;
2197 }
2198 
2199 /*
2200  * Read stat data for a particular stat
2201  *
2202  * Input Args:
2203  *   stats_fd - the file descriptor for the binary stats file from which to read
2204  *   header - the binary stats metadata header corresponding to the given FD
2205  *   desc - the binary stat metadata for the particular stat to be read
2206  *   max_elements - the maximum number of 8-byte values to read into data
2207  *
2208  * Output Args:
2209  *   data - the buffer into which stat data should be read
2210  *
2211  * Read the data values of a specified stat from the binary stats interface.
2212  */
2213 void read_stat_data(int stats_fd, struct kvm_stats_header *header,
2214 		    struct kvm_stats_desc *desc, u64 *data,
2215 		    size_t max_elements)
2216 {
2217 	size_t nr_elements = min_t(ssize_t, desc->size, max_elements);
2218 	size_t size = nr_elements * sizeof(*data);
2219 	ssize_t ret;
2220 
2221 	TEST_ASSERT(desc->size, "No elements in stat '%s'", desc->name);
2222 	TEST_ASSERT(max_elements, "Zero elements requested for stat '%s'", desc->name);
2223 
2224 	ret = pread(stats_fd, data, size,
2225 		    header->data_offset + desc->offset);
2226 
2227 	TEST_ASSERT(ret >= 0, "pread() failed on stat '%s', errno: %i (%s)",
2228 		    desc->name, errno, strerror(errno));
2229 	TEST_ASSERT(ret == size,
2230 		    "pread() on stat '%s' read %ld bytes, wanted %lu bytes",
2231 		    desc->name, size, ret);
2232 }
2233 
2234 void kvm_get_stat(struct kvm_binary_stats *stats, const char *name,
2235 		  u64 *data, size_t max_elements)
2236 {
2237 	struct kvm_stats_desc *desc;
2238 	size_t size_desc;
2239 	int i;
2240 
2241 	if (!stats->desc) {
2242 		read_stats_header(stats->fd, &stats->header);
2243 		stats->desc = read_stats_descriptors(stats->fd, &stats->header);
2244 	}
2245 
2246 	size_desc = get_stats_descriptor_size(&stats->header);
2247 
2248 	for (i = 0; i < stats->header.num_desc; ++i) {
2249 		desc = (void *)stats->desc + (i * size_desc);
2250 
2251 		if (strcmp(desc->name, name))
2252 			continue;
2253 
2254 		read_stat_data(stats->fd, &stats->header, desc, data, max_elements);
2255 		return;
2256 	}
2257 
2258 	TEST_FAIL("Unable to find stat '%s'", name);
2259 }
2260 
2261 __weak void kvm_arch_vm_post_create(struct kvm_vm *vm, unsigned int nr_vcpus)
2262 {
2263 }
2264 
2265 __weak void kvm_arch_vm_finalize_vcpus(struct kvm_vm *vm)
2266 {
2267 }
2268 
2269 __weak void kvm_arch_vm_release(struct kvm_vm *vm)
2270 {
2271 }
2272 
2273 __weak void kvm_selftest_arch_init(void)
2274 {
2275 }
2276 
2277 static void report_unexpected_signal(int signum)
2278 {
2279 #define KVM_CASE_SIGNUM(sig)					\
2280 	case sig: TEST_FAIL("Unexpected " #sig " (%d)\n", signum)
2281 
2282 	switch (signum) {
2283 	KVM_CASE_SIGNUM(SIGBUS);
2284 	KVM_CASE_SIGNUM(SIGSEGV);
2285 	KVM_CASE_SIGNUM(SIGILL);
2286 	KVM_CASE_SIGNUM(SIGFPE);
2287 	default:
2288 		TEST_FAIL("Unexpected signal %d\n", signum);
2289 	}
2290 }
2291 
2292 void __attribute((constructor)) kvm_selftest_init(void)
2293 {
2294 	struct sigaction sig_sa = {
2295 		.sa_handler = report_unexpected_signal,
2296 	};
2297 
2298 	/* Tell stdout not to buffer its content. */
2299 	setbuf(stdout, NULL);
2300 
2301 	sigaction(SIGBUS, &sig_sa, NULL);
2302 	sigaction(SIGSEGV, &sig_sa, NULL);
2303 	sigaction(SIGILL, &sig_sa, NULL);
2304 	sigaction(SIGFPE, &sig_sa, NULL);
2305 
2306 	srandom(time(0));
2307 	kvm_seed_rng(random());
2308 
2309 	kvm_selftest_arch_init();
2310 }
2311 
2312 bool vm_is_gpa_protected(struct kvm_vm *vm, gpa_t gpa)
2313 {
2314 	sparsebit_idx_t pg = 0;
2315 	struct userspace_mem_region *region;
2316 
2317 	if (!vm_arch_has_protected_memory(vm))
2318 		return false;
2319 
2320 	region = userspace_mem_region_find(vm, gpa, gpa);
2321 	TEST_ASSERT(region, "No vm physical memory at 0x%lx", gpa);
2322 
2323 	pg = gpa >> vm->page_shift;
2324 	return sparsebit_is_set(region->protected_phy_pages, pg);
2325 }
2326 
2327 __weak bool kvm_arch_has_default_irqchip(void)
2328 {
2329 	return false;
2330 }
2331