1 // SPDX-License-Identifier: GPL-2.0
2 /*
3 * access_tracking_perf_test
4 *
5 * Copyright (C) 2021, Google, Inc.
6 *
7 * This test measures the performance effects of KVM's access tracking.
8 * Access tracking is driven by the MMU notifiers test_young, clear_young, and
9 * clear_flush_young. These notifiers do not have a direct userspace API,
10 * however the clear_young notifier can be triggered by marking a pages as idle
11 * in /sys/kernel/mm/page_idle/bitmap. This test leverages that mechanism to
12 * enable access tracking on guest memory.
13 *
14 * To measure performance this test runs a VM with a configurable number of
15 * vCPUs that each touch every page in disjoint regions of memory. Performance
16 * is measured in the time it takes all vCPUs to finish touching their
17 * predefined region.
18 *
19 * Note that a deterministic correctness test of access tracking is not possible
20 * by using page_idle as it exists today. This is for a few reasons:
21 *
22 * 1. page_idle only issues clear_young notifiers, which lack a TLB flush. This
23 * means subsequent guest accesses are not guaranteed to see page table
24 * updates made by KVM until some time in the future.
25 *
26 * 2. page_idle only operates on LRU pages. Newly allocated pages are not
27 * immediately allocated to LRU lists. Instead they are held in a "pagevec",
28 * which is drained to LRU lists some time in the future. There is no
29 * userspace API to force this drain to occur.
30 *
31 * These limitations are worked around in this test by using a large enough
32 * region of memory for each vCPU such that the number of translations cached in
33 * the TLB and the number of pages held in pagevecs are a small fraction of the
34 * overall workload. And if either of those conditions are not true (for example
35 * in nesting, where TLB size is unlimited) this test will print a warning
36 * rather than silently passing.
37 */
38 #include <inttypes.h>
39 #include <limits.h>
40 #include <pthread.h>
41 #include <sys/mman.h>
42 #include <sys/types.h>
43 #include <sys/stat.h>
44
45 #include "kvm_util.h"
46 #include "test_util.h"
47 #include "perf_test_util.h"
48 #include "guest_modes.h"
49
50 /* Global variable used to synchronize all of the vCPU threads. */
51 static int iteration;
52
53 /* Defines what vCPU threads should do during a given iteration. */
54 static enum {
55 /* Run the vCPU to access all its memory. */
56 ITERATION_ACCESS_MEMORY,
57 /* Mark the vCPU's memory idle in page_idle. */
58 ITERATION_MARK_IDLE,
59 } iteration_work;
60
61 /* Set to true when vCPU threads should exit. */
62 static bool done;
63
64 /* The iteration that was last completed by each vCPU. */
65 static int vcpu_last_completed_iteration[KVM_MAX_VCPUS];
66
67 /* Whether to overlap the regions of memory vCPUs access. */
68 static bool overlap_memory_access;
69
70 struct test_params {
71 /* The backing source for the region of memory. */
72 enum vm_mem_backing_src_type backing_src;
73
74 /* The amount of memory to allocate for each vCPU. */
75 uint64_t vcpu_memory_bytes;
76
77 /* The number of vCPUs to create in the VM. */
78 int nr_vcpus;
79 };
80
pread_uint64(int fd,const char * filename,uint64_t index)81 static uint64_t pread_uint64(int fd, const char *filename, uint64_t index)
82 {
83 uint64_t value;
84 off_t offset = index * sizeof(value);
85
86 TEST_ASSERT(pread(fd, &value, sizeof(value), offset) == sizeof(value),
87 "pread from %s offset 0x%" PRIx64 " failed!",
88 filename, offset);
89
90 return value;
91
92 }
93
94 #define PAGEMAP_PRESENT (1ULL << 63)
95 #define PAGEMAP_PFN_MASK ((1ULL << 55) - 1)
96
lookup_pfn(int pagemap_fd,struct kvm_vm * vm,uint64_t gva)97 static uint64_t lookup_pfn(int pagemap_fd, struct kvm_vm *vm, uint64_t gva)
98 {
99 uint64_t hva = (uint64_t) addr_gva2hva(vm, gva);
100 uint64_t entry;
101 uint64_t pfn;
102
103 entry = pread_uint64(pagemap_fd, "pagemap", hva / getpagesize());
104 if (!(entry & PAGEMAP_PRESENT))
105 return 0;
106
107 pfn = entry & PAGEMAP_PFN_MASK;
108 __TEST_REQUIRE(pfn, "Looking up PFNs requires CAP_SYS_ADMIN");
109
110 return pfn;
111 }
112
is_page_idle(int page_idle_fd,uint64_t pfn)113 static bool is_page_idle(int page_idle_fd, uint64_t pfn)
114 {
115 uint64_t bits = pread_uint64(page_idle_fd, "page_idle", pfn / 64);
116
117 return !!((bits >> (pfn % 64)) & 1);
118 }
119
mark_page_idle(int page_idle_fd,uint64_t pfn)120 static void mark_page_idle(int page_idle_fd, uint64_t pfn)
121 {
122 uint64_t bits = 1ULL << (pfn % 64);
123
124 TEST_ASSERT(pwrite(page_idle_fd, &bits, 8, 8 * (pfn / 64)) == 8,
125 "Set page_idle bits for PFN 0x%" PRIx64, pfn);
126 }
127
mark_vcpu_memory_idle(struct kvm_vm * vm,struct perf_test_vcpu_args * vcpu_args)128 static void mark_vcpu_memory_idle(struct kvm_vm *vm,
129 struct perf_test_vcpu_args *vcpu_args)
130 {
131 int vcpu_idx = vcpu_args->vcpu_idx;
132 uint64_t base_gva = vcpu_args->gva;
133 uint64_t pages = vcpu_args->pages;
134 uint64_t page;
135 uint64_t still_idle = 0;
136 uint64_t no_pfn = 0;
137 int page_idle_fd;
138 int pagemap_fd;
139
140 /* If vCPUs are using an overlapping region, let vCPU 0 mark it idle. */
141 if (overlap_memory_access && vcpu_idx)
142 return;
143
144 page_idle_fd = open("/sys/kernel/mm/page_idle/bitmap", O_RDWR);
145 TEST_ASSERT(page_idle_fd > 0, "Failed to open page_idle.");
146
147 pagemap_fd = open("/proc/self/pagemap", O_RDONLY);
148 TEST_ASSERT(pagemap_fd > 0, "Failed to open pagemap.");
149
150 for (page = 0; page < pages; page++) {
151 uint64_t gva = base_gva + page * perf_test_args.guest_page_size;
152 uint64_t pfn = lookup_pfn(pagemap_fd, vm, gva);
153
154 if (!pfn) {
155 no_pfn++;
156 continue;
157 }
158
159 if (is_page_idle(page_idle_fd, pfn)) {
160 still_idle++;
161 continue;
162 }
163
164 mark_page_idle(page_idle_fd, pfn);
165 }
166
167 /*
168 * Assumption: Less than 1% of pages are going to be swapped out from
169 * under us during this test.
170 */
171 TEST_ASSERT(no_pfn < pages / 100,
172 "vCPU %d: No PFN for %" PRIu64 " out of %" PRIu64 " pages.",
173 vcpu_idx, no_pfn, pages);
174
175 /*
176 * Check that at least 90% of memory has been marked idle (the rest
177 * might not be marked idle because the pages have not yet made it to an
178 * LRU list or the translations are still cached in the TLB). 90% is
179 * arbitrary; high enough that we ensure most memory access went through
180 * access tracking but low enough as to not make the test too brittle
181 * over time and across architectures.
182 *
183 * Note that when run in nested virtualization, this check will trigger
184 * much more frequently because TLB size is unlimited and since no flush
185 * happens, much more pages are cached there and guest won't see the
186 * "idle" bit cleared.
187 */
188 if (still_idle < pages / 10)
189 printf("WARNING: vCPU%d: Too many pages still idle (%" PRIu64
190 "out of %" PRIu64 "), this will affect performance results"
191 ".\n",
192 vcpu_idx, still_idle, pages);
193
194 close(page_idle_fd);
195 close(pagemap_fd);
196 }
197
assert_ucall(struct kvm_vcpu * vcpu,uint64_t expected_ucall)198 static void assert_ucall(struct kvm_vcpu *vcpu, uint64_t expected_ucall)
199 {
200 struct ucall uc;
201 uint64_t actual_ucall = get_ucall(vcpu, &uc);
202
203 TEST_ASSERT(expected_ucall == actual_ucall,
204 "Guest exited unexpectedly (expected ucall %" PRIu64
205 ", got %" PRIu64 ")",
206 expected_ucall, actual_ucall);
207 }
208
spin_wait_for_next_iteration(int * current_iteration)209 static bool spin_wait_for_next_iteration(int *current_iteration)
210 {
211 int last_iteration = *current_iteration;
212
213 do {
214 if (READ_ONCE(done))
215 return false;
216
217 *current_iteration = READ_ONCE(iteration);
218 } while (last_iteration == *current_iteration);
219
220 return true;
221 }
222
vcpu_thread_main(struct perf_test_vcpu_args * vcpu_args)223 static void vcpu_thread_main(struct perf_test_vcpu_args *vcpu_args)
224 {
225 struct kvm_vcpu *vcpu = vcpu_args->vcpu;
226 struct kvm_vm *vm = perf_test_args.vm;
227 int vcpu_idx = vcpu_args->vcpu_idx;
228 int current_iteration = 0;
229
230 while (spin_wait_for_next_iteration(¤t_iteration)) {
231 switch (READ_ONCE(iteration_work)) {
232 case ITERATION_ACCESS_MEMORY:
233 vcpu_run(vcpu);
234 assert_ucall(vcpu, UCALL_SYNC);
235 break;
236 case ITERATION_MARK_IDLE:
237 mark_vcpu_memory_idle(vm, vcpu_args);
238 break;
239 };
240
241 vcpu_last_completed_iteration[vcpu_idx] = current_iteration;
242 }
243 }
244
spin_wait_for_vcpu(int vcpu_idx,int target_iteration)245 static void spin_wait_for_vcpu(int vcpu_idx, int target_iteration)
246 {
247 while (READ_ONCE(vcpu_last_completed_iteration[vcpu_idx]) !=
248 target_iteration) {
249 continue;
250 }
251 }
252
253 /* The type of memory accesses to perform in the VM. */
254 enum access_type {
255 ACCESS_READ,
256 ACCESS_WRITE,
257 };
258
run_iteration(struct kvm_vm * vm,int nr_vcpus,const char * description)259 static void run_iteration(struct kvm_vm *vm, int nr_vcpus, const char *description)
260 {
261 struct timespec ts_start;
262 struct timespec ts_elapsed;
263 int next_iteration, i;
264
265 /* Kick off the vCPUs by incrementing iteration. */
266 next_iteration = ++iteration;
267
268 clock_gettime(CLOCK_MONOTONIC, &ts_start);
269
270 /* Wait for all vCPUs to finish the iteration. */
271 for (i = 0; i < nr_vcpus; i++)
272 spin_wait_for_vcpu(i, next_iteration);
273
274 ts_elapsed = timespec_elapsed(ts_start);
275 pr_info("%-30s: %ld.%09lds\n",
276 description, ts_elapsed.tv_sec, ts_elapsed.tv_nsec);
277 }
278
access_memory(struct kvm_vm * vm,int nr_vcpus,enum access_type access,const char * description)279 static void access_memory(struct kvm_vm *vm, int nr_vcpus,
280 enum access_type access, const char *description)
281 {
282 perf_test_set_wr_fract(vm, (access == ACCESS_READ) ? INT_MAX : 1);
283 iteration_work = ITERATION_ACCESS_MEMORY;
284 run_iteration(vm, nr_vcpus, description);
285 }
286
mark_memory_idle(struct kvm_vm * vm,int nr_vcpus)287 static void mark_memory_idle(struct kvm_vm *vm, int nr_vcpus)
288 {
289 /*
290 * Even though this parallelizes the work across vCPUs, this is still a
291 * very slow operation because page_idle forces the test to mark one pfn
292 * at a time and the clear_young notifier serializes on the KVM MMU
293 * lock.
294 */
295 pr_debug("Marking VM memory idle (slow)...\n");
296 iteration_work = ITERATION_MARK_IDLE;
297 run_iteration(vm, nr_vcpus, "Mark memory idle");
298 }
299
run_test(enum vm_guest_mode mode,void * arg)300 static void run_test(enum vm_guest_mode mode, void *arg)
301 {
302 struct test_params *params = arg;
303 struct kvm_vm *vm;
304 int nr_vcpus = params->nr_vcpus;
305
306 vm = perf_test_create_vm(mode, nr_vcpus, params->vcpu_memory_bytes, 1,
307 params->backing_src, !overlap_memory_access);
308
309 perf_test_start_vcpu_threads(nr_vcpus, vcpu_thread_main);
310
311 pr_info("\n");
312 access_memory(vm, nr_vcpus, ACCESS_WRITE, "Populating memory");
313
314 /* As a control, read and write to the populated memory first. */
315 access_memory(vm, nr_vcpus, ACCESS_WRITE, "Writing to populated memory");
316 access_memory(vm, nr_vcpus, ACCESS_READ, "Reading from populated memory");
317
318 /* Repeat on memory that has been marked as idle. */
319 mark_memory_idle(vm, nr_vcpus);
320 access_memory(vm, nr_vcpus, ACCESS_WRITE, "Writing to idle memory");
321 mark_memory_idle(vm, nr_vcpus);
322 access_memory(vm, nr_vcpus, ACCESS_READ, "Reading from idle memory");
323
324 /* Set done to signal the vCPU threads to exit */
325 done = true;
326
327 perf_test_join_vcpu_threads(nr_vcpus);
328 perf_test_destroy_vm(vm);
329 }
330
help(char * name)331 static void help(char *name)
332 {
333 puts("");
334 printf("usage: %s [-h] [-m mode] [-b vcpu_bytes] [-v vcpus] [-o] [-s mem_type]\n",
335 name);
336 puts("");
337 printf(" -h: Display this help message.");
338 guest_modes_help();
339 printf(" -b: specify the size of the memory region which should be\n"
340 " dirtied by each vCPU. e.g. 10M or 3G.\n"
341 " (default: 1G)\n");
342 printf(" -v: specify the number of vCPUs to run.\n");
343 printf(" -o: Overlap guest memory accesses instead of partitioning\n"
344 " them into a separate region of memory for each vCPU.\n");
345 backing_src_help("-s");
346 puts("");
347 exit(0);
348 }
349
main(int argc,char * argv[])350 int main(int argc, char *argv[])
351 {
352 struct test_params params = {
353 .backing_src = DEFAULT_VM_MEM_SRC,
354 .vcpu_memory_bytes = DEFAULT_PER_VCPU_MEM_SIZE,
355 .nr_vcpus = 1,
356 };
357 int page_idle_fd;
358 int opt;
359
360 guest_modes_append_default();
361
362 while ((opt = getopt(argc, argv, "hm:b:v:os:")) != -1) {
363 switch (opt) {
364 case 'm':
365 guest_modes_cmdline(optarg);
366 break;
367 case 'b':
368 params.vcpu_memory_bytes = parse_size(optarg);
369 break;
370 case 'v':
371 params.nr_vcpus = atoi(optarg);
372 break;
373 case 'o':
374 overlap_memory_access = true;
375 break;
376 case 's':
377 params.backing_src = parse_backing_src_type(optarg);
378 break;
379 case 'h':
380 default:
381 help(argv[0]);
382 break;
383 }
384 }
385
386 page_idle_fd = open("/sys/kernel/mm/page_idle/bitmap", O_RDWR);
387 __TEST_REQUIRE(page_idle_fd >= 0,
388 "CONFIG_IDLE_PAGE_TRACKING is not enabled");
389 close(page_idle_fd);
390
391 for_each_guest_mode(run_test, ¶ms);
392
393 return 0;
394 }
395