1 // Copyright 2013 The Chromium Authors
2 // Use of this source code is governed by a BSD-style license that can be
3 // found in the LICENSE file.
4
5 #include "base/process/process_metrics.h"
6
7 #include <AvailabilityMacros.h>
8 #include <libproc.h>
9 #include <mach/mach.h>
10 #include <mach/mach_time.h>
11 #include <mach/mach_vm.h>
12 #include <mach/shared_region.h>
13 #include <stddef.h>
14 #include <stdint.h>
15 #include <sys/sysctl.h>
16
17 #include "base/logging.h"
18 #include "base/mac/mac_util.h"
19 #include "base/mac/mach_logging.h"
20 #include "base/mac/scoped_mach_port.h"
21 #include "base/memory/ptr_util.h"
22 #include "base/numerics/safe_conversions.h"
23 #include "base/numerics/safe_math.h"
24 #include "base/process/process_metrics_iocounters.h"
25 #include "base/time/time.h"
26 #include "build/build_config.h"
27
28 namespace {
29
30 // This is a standin for the private pm_task_energy_data_t struct.
31 struct OpaquePMTaskEnergyData {
32 // Empirical size of the private struct.
33 uint8_t data[408];
34 };
35
36 // Sample everything but network usage, since fetching network
37 // usage can hang.
38 static constexpr uint8_t kPMSampleFlags = 0xff & ~0x8;
39
40 } // namespace
41
42 extern "C" {
43
44 // From libpmsample.dylib
45 int pm_sample_task(mach_port_t task,
46 OpaquePMTaskEnergyData* pm_energy,
47 uint64_t mach_time,
48 uint8_t flags);
49
50 // From libpmenergy.dylib
51 double pm_energy_impact(OpaquePMTaskEnergyData* pm_energy);
52
53 } // extern "C"
54
55 namespace base {
56
57 namespace {
58
GetTaskInfo(mach_port_t task,task_basic_info_64 * task_info_data)59 bool GetTaskInfo(mach_port_t task, task_basic_info_64* task_info_data) {
60 if (task == MACH_PORT_NULL)
61 return false;
62 mach_msg_type_number_t count = TASK_BASIC_INFO_64_COUNT;
63 kern_return_t kr = task_info(task,
64 TASK_BASIC_INFO_64,
65 reinterpret_cast<task_info_t>(task_info_data),
66 &count);
67 // Most likely cause for failure: |task| is a zombie.
68 return kr == KERN_SUCCESS;
69 }
70
ParseOutputFromMachVMRegion(kern_return_t kr)71 MachVMRegionResult ParseOutputFromMachVMRegion(kern_return_t kr) {
72 if (kr == KERN_INVALID_ADDRESS) {
73 // We're at the end of the address space.
74 return MachVMRegionResult::Finished;
75 } else if (kr != KERN_SUCCESS) {
76 return MachVMRegionResult::Error;
77 }
78 return MachVMRegionResult::Success;
79 }
80
GetPowerInfo(mach_port_t task,task_power_info * power_info_data)81 bool GetPowerInfo(mach_port_t task, task_power_info* power_info_data) {
82 if (task == MACH_PORT_NULL)
83 return false;
84
85 mach_msg_type_number_t power_info_count = TASK_POWER_INFO_COUNT;
86 kern_return_t kr = task_info(task, TASK_POWER_INFO,
87 reinterpret_cast<task_info_t>(power_info_data),
88 &power_info_count);
89 // Most likely cause for failure: |task| is a zombie.
90 return kr == KERN_SUCCESS;
91 }
92
GetEnergyImpactInternal(mach_port_t task,uint64_t mach_time)93 double GetEnergyImpactInternal(mach_port_t task, uint64_t mach_time) {
94 OpaquePMTaskEnergyData energy_info{};
95
96 if (pm_sample_task(task, &energy_info, mach_time, kPMSampleFlags) != 0)
97 return 0.0;
98 return pm_energy_impact(&energy_info);
99 }
100
101 } // namespace
102
103 // Getting a mach task from a pid for another process requires permissions in
104 // general, so there doesn't really seem to be a way to do these (and spinning
105 // up ps to fetch each stats seems dangerous to put in a base api for anyone to
106 // call). Child processes ipc their port, so return something if available,
107 // otherwise return 0.
108
109 // static
CreateProcessMetrics(ProcessHandle process,PortProvider * port_provider)110 std::unique_ptr<ProcessMetrics> ProcessMetrics::CreateProcessMetrics(
111 ProcessHandle process,
112 PortProvider* port_provider) {
113 return WrapUnique(new ProcessMetrics(process, port_provider));
114 }
115
116 #define TIME_VALUE_TO_TIMEVAL(a, r) do { \
117 (r)->tv_sec = (a)->seconds; \
118 (r)->tv_usec = (a)->microseconds; \
119 } while (0)
120
GetCumulativeCPUUsage()121 TimeDelta ProcessMetrics::GetCumulativeCPUUsage() {
122 mach_port_t task = TaskForPid(process_);
123 if (task == MACH_PORT_NULL)
124 return TimeDelta();
125
126 // Libtop explicitly loops over the threads (libtop_pinfo_update_cpu_usage()
127 // in libtop.c), but this is more concise and gives the same results:
128 task_thread_times_info thread_info_data;
129 mach_msg_type_number_t thread_info_count = TASK_THREAD_TIMES_INFO_COUNT;
130 kern_return_t kr = task_info(task,
131 TASK_THREAD_TIMES_INFO,
132 reinterpret_cast<task_info_t>(&thread_info_data),
133 &thread_info_count);
134 if (kr != KERN_SUCCESS) {
135 // Most likely cause: |task| is a zombie.
136 return TimeDelta();
137 }
138
139 task_basic_info_64 task_info_data;
140 if (!GetTaskInfo(task, &task_info_data))
141 return TimeDelta();
142
143 /* Set total_time. */
144 // thread info contains live time...
145 struct timeval user_timeval, system_timeval, task_timeval;
146 TIME_VALUE_TO_TIMEVAL(&thread_info_data.user_time, &user_timeval);
147 TIME_VALUE_TO_TIMEVAL(&thread_info_data.system_time, &system_timeval);
148 timeradd(&user_timeval, &system_timeval, &task_timeval);
149
150 // ... task info contains terminated time.
151 TIME_VALUE_TO_TIMEVAL(&task_info_data.user_time, &user_timeval);
152 TIME_VALUE_TO_TIMEVAL(&task_info_data.system_time, &system_timeval);
153 timeradd(&user_timeval, &task_timeval, &task_timeval);
154 timeradd(&system_timeval, &task_timeval, &task_timeval);
155
156 return Microseconds(TimeValToMicroseconds(task_timeval));
157 }
158
GetPackageIdleWakeupsPerSecond()159 int ProcessMetrics::GetPackageIdleWakeupsPerSecond() {
160 mach_port_t task = TaskForPid(process_);
161 task_power_info power_info_data;
162
163 GetPowerInfo(task, &power_info_data);
164
165 // The task_power_info struct contains two wakeup counters:
166 // task_interrupt_wakeups and task_platform_idle_wakeups.
167 // task_interrupt_wakeups is the total number of wakeups generated by the
168 // process, and is the number that Activity Monitor reports.
169 // task_platform_idle_wakeups is a subset of task_interrupt_wakeups that
170 // tallies the number of times the processor was taken out of its low-power
171 // idle state to handle a wakeup. task_platform_idle_wakeups therefore result
172 // in a greater power increase than the other interrupts which occur while the
173 // CPU is already working, and reducing them has a greater overall impact on
174 // power usage. See the powermetrics man page for more info.
175 return CalculatePackageIdleWakeupsPerSecond(
176 power_info_data.task_platform_idle_wakeups);
177 }
178
GetIdleWakeupsPerSecond()179 int ProcessMetrics::GetIdleWakeupsPerSecond() {
180 mach_port_t task = TaskForPid(process_);
181 task_power_info power_info_data;
182
183 GetPowerInfo(task, &power_info_data);
184
185 return CalculateIdleWakeupsPerSecond(power_info_data.task_interrupt_wakeups);
186 }
187
GetEnergyImpact()188 int ProcessMetrics::GetEnergyImpact() {
189 uint64_t now = mach_absolute_time();
190 if (last_energy_impact_ == 0) {
191 last_energy_impact_ = GetEnergyImpactInternal(TaskForPid(process_), now);
192 last_energy_impact_time_ = now;
193 return 0;
194 }
195
196 double total_energy_impact =
197 GetEnergyImpactInternal(TaskForPid(process_), now);
198 uint64_t delta = now - last_energy_impact_time_;
199 if (delta == 0)
200 return 0;
201
202 // Scale by 100 since the histogram is integral.
203 double seconds_since_last_measurement =
204 base::TimeTicks::FromMachAbsoluteTime(delta).since_origin().InSecondsF();
205 int energy_impact = 100 * (total_energy_impact - last_energy_impact_) /
206 seconds_since_last_measurement;
207 last_energy_impact_ = total_energy_impact;
208 last_energy_impact_time_ = now;
209
210 return energy_impact;
211 }
212
GetOpenFdCount() const213 int ProcessMetrics::GetOpenFdCount() const {
214 // In order to get a true count of the open number of FDs, PROC_PIDLISTFDS
215 // is used. This is done twice: first to get the appropriate size of a
216 // buffer, and then secondly to fill the buffer with the actual FD info.
217 //
218 // The buffer size returned in the first call is an estimate, based on the
219 // number of allocated fileproc structures in the kernel. This number can be
220 // greater than the actual number of open files, since the structures are
221 // allocated in slabs. The value returned in proc_bsdinfo::pbi_nfiles is
222 // also the number of allocated fileprocs, not the number in use.
223 //
224 // However, the buffer size returned in the second call is an accurate count
225 // of the open number of descriptors. The contents of the buffer are unused.
226 int rv = proc_pidinfo(process_, PROC_PIDLISTFDS, 0, nullptr, 0);
227 if (rv < 0)
228 return -1;
229
230 std::unique_ptr<char[]> buffer(new char[static_cast<size_t>(rv)]);
231 rv = proc_pidinfo(process_, PROC_PIDLISTFDS, 0, buffer.get(), rv);
232 if (rv < 0)
233 return -1;
234 return static_cast<int>(static_cast<unsigned long>(rv) / PROC_PIDLISTFD_SIZE);
235 }
236
GetOpenFdSoftLimit() const237 int ProcessMetrics::GetOpenFdSoftLimit() const {
238 return checked_cast<int>(GetMaxFds());
239 }
240
GetIOCounters(IoCounters * io_counters) const241 bool ProcessMetrics::GetIOCounters(IoCounters* io_counters) const {
242 return false;
243 }
244
ProcessMetrics(ProcessHandle process,PortProvider * port_provider)245 ProcessMetrics::ProcessMetrics(ProcessHandle process,
246 PortProvider* port_provider)
247 : process_(process),
248 last_absolute_idle_wakeups_(0),
249 last_absolute_package_idle_wakeups_(0),
250 last_energy_impact_(0),
251 port_provider_(port_provider) {}
252
TaskForPid(ProcessHandle process) const253 mach_port_t ProcessMetrics::TaskForPid(ProcessHandle process) const {
254 mach_port_t task = MACH_PORT_NULL;
255 if (port_provider_)
256 task = port_provider_->TaskForPid(process_);
257 if (task == MACH_PORT_NULL && process_ == getpid())
258 task = mach_task_self();
259 return task;
260 }
261
262 // Bytes committed by the system.
GetSystemCommitCharge()263 size_t GetSystemCommitCharge() {
264 base::mac::ScopedMachSendRight host(mach_host_self());
265 mach_msg_type_number_t count = HOST_VM_INFO_COUNT;
266 vm_statistics_data_t data;
267 kern_return_t kr = host_statistics(host.get(), HOST_VM_INFO,
268 reinterpret_cast<host_info_t>(&data),
269 &count);
270 if (kr != KERN_SUCCESS) {
271 MACH_DLOG(WARNING, kr) << "host_statistics";
272 return 0;
273 }
274
275 return (data.active_count * PAGE_SIZE) / 1024;
276 }
277
GetSystemMemoryInfo(SystemMemoryInfoKB * meminfo)278 bool GetSystemMemoryInfo(SystemMemoryInfoKB* meminfo) {
279 struct host_basic_info hostinfo;
280 mach_msg_type_number_t count = HOST_BASIC_INFO_COUNT;
281 base::mac::ScopedMachSendRight host(mach_host_self());
282 int result = host_info(host.get(), HOST_BASIC_INFO,
283 reinterpret_cast<host_info_t>(&hostinfo), &count);
284 if (result != KERN_SUCCESS)
285 return false;
286
287 DCHECK_EQ(HOST_BASIC_INFO_COUNT, count);
288 meminfo->total = static_cast<int>(hostinfo.max_mem / 1024);
289
290 vm_statistics64_data_t vm_info;
291 count = HOST_VM_INFO64_COUNT;
292
293 if (host_statistics64(host.get(), HOST_VM_INFO64,
294 reinterpret_cast<host_info64_t>(&vm_info),
295 &count) != KERN_SUCCESS) {
296 return false;
297 }
298 DCHECK_EQ(HOST_VM_INFO64_COUNT, count);
299
300 #if defined(ARCH_CPU_ARM64) || \
301 MAC_OS_X_VERSION_MIN_REQUIRED >= MAC_OS_X_VERSION_10_16
302 // PAGE_SIZE is vm_page_size on arm or for deployment targets >= 10.16,
303 // and vm_page_size isn't constexpr.
304 DCHECK_EQ(PAGE_SIZE % 1024, 0u) << "Invalid page size";
305 #else
306 static_assert(PAGE_SIZE % 1024 == 0, "Invalid page size");
307 #endif
308 meminfo->free = saturated_cast<int>(
309 PAGE_SIZE / 1024 * (vm_info.free_count - vm_info.speculative_count));
310 meminfo->speculative =
311 saturated_cast<int>(PAGE_SIZE / 1024 * vm_info.speculative_count);
312 meminfo->file_backed =
313 saturated_cast<int>(PAGE_SIZE / 1024 * vm_info.external_page_count);
314 meminfo->purgeable =
315 saturated_cast<int>(PAGE_SIZE / 1024 * vm_info.purgeable_count);
316
317 return true;
318 }
319
320 // Both |size| and |address| are in-out parameters.
321 // |info| is an output parameter, only valid on Success.
GetTopInfo(mach_port_t task,mach_vm_size_t * size,mach_vm_address_t * address,vm_region_top_info_data_t * info)322 MachVMRegionResult GetTopInfo(mach_port_t task,
323 mach_vm_size_t* size,
324 mach_vm_address_t* address,
325 vm_region_top_info_data_t* info) {
326 mach_msg_type_number_t info_count = VM_REGION_TOP_INFO_COUNT;
327 // The kernel always returns a null object for VM_REGION_TOP_INFO, but
328 // balance it with a deallocate in case this ever changes. See 10.9.2
329 // xnu-2422.90.20/osfmk/vm/vm_map.c vm_map_region.
330 mac::ScopedMachSendRight object_name;
331 kern_return_t kr =
332 mach_vm_region(task, address, size, VM_REGION_TOP_INFO,
333 reinterpret_cast<vm_region_info_t>(info), &info_count,
334 mac::ScopedMachSendRight::Receiver(object_name).get());
335 return ParseOutputFromMachVMRegion(kr);
336 }
337
GetBasicInfo(mach_port_t task,mach_vm_size_t * size,mach_vm_address_t * address,vm_region_basic_info_64 * info)338 MachVMRegionResult GetBasicInfo(mach_port_t task,
339 mach_vm_size_t* size,
340 mach_vm_address_t* address,
341 vm_region_basic_info_64* info) {
342 mach_msg_type_number_t info_count = VM_REGION_BASIC_INFO_COUNT_64;
343 // The kernel always returns a null object for VM_REGION_BASIC_INFO_64, but
344 // balance it with a deallocate in case this ever changes. See 10.9.2
345 // xnu-2422.90.20/osfmk/vm/vm_map.c vm_map_region.
346 mac::ScopedMachSendRight object_name;
347 kern_return_t kr =
348 mach_vm_region(task, address, size, VM_REGION_BASIC_INFO_64,
349 reinterpret_cast<vm_region_info_t>(info), &info_count,
350 mac::ScopedMachSendRight::Receiver(object_name).get());
351 return ParseOutputFromMachVMRegion(kr);
352 }
353
354 } // namespace base
355