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1 /*
2  * Copyright (C) 2016 The Android Open Source Project
3  *
4  * Licensed under the Apache License, Version 2.0 (the "License");
5  * you may not use this file except in compliance with the License.
6  * You may obtain a copy of the License at
7  *
8  *      http://www.apache.org/licenses/LICENSE-2.0
9  *
10  * Unless required by applicable law or agreed to in writing, software
11  * distributed under the License is distributed on an "AS IS" BASIS,
12  * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
13  * See the License for the specific language governing permissions and
14  * limitations under the License.
15  */
16 
17 #define LOG_TAG "storaged"
18 
19 #include <dirent.h>
20 #include <stdlib.h>
21 #include <stdio.h>
22 #include <time.h>
23 #include <unistd.h>
24 #include <zlib.h>
25 
26 #include <chrono>
27 #include <fstream>
28 #include <sstream>
29 #include <string>
30 
31 #include <android-base/file.h>
32 #include <android-base/logging.h>
33 #include <android-base/unique_fd.h>
34 #include <android/hidl/manager/1.0/IServiceManager.h>
35 #include <batteryservice/BatteryServiceConstants.h>
36 #include <cutils/properties.h>
37 #include <healthhalutils/HealthHalUtils.h>
38 #include <hidl/HidlTransportSupport.h>
39 #include <hwbinder/IPCThreadState.h>
40 #include <log/log.h>
41 
42 #include <storaged.h>
43 #include <storaged_utils.h>
44 
45 using namespace android::base;
46 using namespace chrono;
47 using namespace google::protobuf::io;
48 using namespace storaged_proto;
49 
50 namespace {
51 
52 /*
53  * The system user is the initial user that is implicitly created on first boot
54  * and hosts most of the system services. Keep this in sync with
55  * frameworks/base/core/java/android/os/UserManager.java
56  */
57 constexpr int USER_SYSTEM = 0;
58 
59 constexpr ssize_t benchmark_unit_size = 16 * 1024;  // 16KB
60 
61 constexpr ssize_t min_benchmark_size = 128 * 1024;  // 128KB
62 
63 }  // namespace
64 
65 const uint32_t storaged_t::current_version = 4;
66 
67 using android::hardware::interfacesEqual;
68 using android::hardware::Return;
69 using android::hardware::health::V1_0::BatteryStatus;
70 using android::hardware::health::V1_0::toString;
71 using android::hardware::health::V2_0::get_health_service;
72 using android::hardware::health::V2_0::HealthInfo;
73 using android::hardware::health::V2_0::IHealth;
74 using android::hardware::health::V2_0::Result;
75 using android::hidl::manager::V1_0::IServiceManager;
76 
77 
is_charger_on(BatteryStatus prop)78 inline charger_stat_t is_charger_on(BatteryStatus prop) {
79     return (prop == BatteryStatus::CHARGING || prop == BatteryStatus::FULL) ?
80         CHARGER_ON : CHARGER_OFF;
81 }
82 
healthInfoChanged(const HealthInfo & props)83 Return<void> storaged_t::healthInfoChanged(const HealthInfo& props) {
84     mUidm.set_charger_state(is_charger_on(props.legacy.batteryStatus));
85     return android::hardware::Void();
86 }
87 
init()88 void storaged_t::init() {
89     init_health_service();
90     mDsm = std::make_unique<disk_stats_monitor>(health);
91     storage_info.reset(storage_info_t::get_storage_info(health));
92 }
93 
init_health_service()94 void storaged_t::init_health_service() {
95     if (!mUidm.enabled())
96         return;
97 
98     health = get_health_service();
99     if (health == NULL) {
100         LOG(WARNING) << "health: failed to find IHealth service";
101         return;
102     }
103 
104     BatteryStatus status = BatteryStatus::UNKNOWN;
105     auto ret = health->getChargeStatus([&](Result r, BatteryStatus v) {
106         if (r != Result::SUCCESS) {
107             LOG(WARNING) << "health: cannot get battery status " << toString(r);
108             return;
109         }
110         if (v == BatteryStatus::UNKNOWN) {
111             LOG(WARNING) << "health: invalid battery status";
112         }
113         status = v;
114     });
115     if (!ret.isOk()) {
116         LOG(WARNING) << "health: get charge status transaction error " << ret.description();
117     }
118 
119     mUidm.init(is_charger_on(status));
120     // register listener after init uid_monitor
121     health->registerCallback(this);
122     health->linkToDeath(this, 0 /* cookie */);
123 }
124 
serviceDied(uint64_t cookie,const wp<::android::hidl::base::V1_0::IBase> & who)125 void storaged_t::serviceDied(uint64_t cookie, const wp<::android::hidl::base::V1_0::IBase>& who) {
126     if (health != NULL && interfacesEqual(health, who.promote())) {
127         LOG(ERROR) << "health service died, exiting";
128         android::hardware::IPCThreadState::self()->stopProcess();
129         exit(1);
130     } else {
131         LOG(ERROR) << "unknown service died";
132     }
133 }
134 
report_storage_info()135 void storaged_t::report_storage_info() {
136     storage_info->report();
137 }
138 
139 /* storaged_t */
storaged_t(void)140 storaged_t::storaged_t(void) {
141     mConfig.periodic_chores_interval_unit =
142         property_get_int32("ro.storaged.event.interval",
143                            DEFAULT_PERIODIC_CHORES_INTERVAL_UNIT);
144 
145     mConfig.event_time_check_usec =
146         property_get_int32("ro.storaged.event.perf_check", 0);
147 
148     mConfig.periodic_chores_interval_disk_stats_publish =
149         property_get_int32("ro.storaged.disk_stats_pub",
150                            DEFAULT_PERIODIC_CHORES_INTERVAL_DISK_STATS_PUBLISH);
151 
152     mConfig.periodic_chores_interval_uid_io =
153         property_get_int32("ro.storaged.uid_io.interval",
154                            DEFAULT_PERIODIC_CHORES_INTERVAL_UID_IO);
155 
156     mConfig.periodic_chores_interval_flush_proto =
157         property_get_int32("ro.storaged.flush_proto.interval",
158                            DEFAULT_PERIODIC_CHORES_INTERVAL_FLUSH_PROTO);
159 
160     mStarttime = time(NULL);
161     mTimer = 0;
162 }
163 
add_user_ce(userid_t user_id)164 void storaged_t::add_user_ce(userid_t user_id) {
165     Mutex::Autolock _l(proto_lock);
166 
167     if (!proto_loaded[user_id]) {
168         load_proto(user_id);
169         proto_loaded[user_id] = true;
170     }
171 }
172 
remove_user_ce(userid_t user_id)173 void storaged_t::remove_user_ce(userid_t user_id) {
174     Mutex::Autolock _l(proto_lock);
175 
176     proto_loaded[user_id] = false;
177     mUidm.clear_user_history(user_id);
178     RemoveFileIfExists(proto_path(user_id), nullptr);
179 }
180 
load_proto(userid_t user_id)181 void storaged_t::load_proto(userid_t user_id) {
182     string proto_file = proto_path(user_id);
183     ifstream in(proto_file, ofstream::in | ofstream::binary);
184 
185     if (!in.good()) return;
186 
187     stringstream ss;
188     ss << in.rdbuf();
189     StoragedProto proto;
190     proto.ParseFromString(ss.str());
191 
192     const UidIOUsage& uid_io_usage = proto.uid_io_usage();
193     uint32_t computed_crc = crc32(current_version,
194         reinterpret_cast<const Bytef*>(uid_io_usage.SerializeAsString().c_str()),
195         uid_io_usage.ByteSize());
196     if (proto.crc() != computed_crc) {
197         LOG(WARNING) << "CRC mismatch in " << proto_file;
198         return;
199     }
200 
201     mUidm.load_uid_io_proto(user_id, proto.uid_io_usage());
202 
203     if (user_id == USER_SYSTEM) {
204         storage_info->load_perf_history_proto(proto.perf_history());
205     }
206 }
207 
prepare_proto(userid_t user_id,StoragedProto * proto)208 char* storaged_t:: prepare_proto(userid_t user_id, StoragedProto* proto) {
209     proto->set_version(current_version);
210 
211     const UidIOUsage& uid_io_usage = proto->uid_io_usage();
212     proto->set_crc(crc32(current_version,
213         reinterpret_cast<const Bytef*>(uid_io_usage.SerializeAsString().c_str()),
214         uid_io_usage.ByteSize()));
215 
216     uint32_t pagesize = sysconf(_SC_PAGESIZE);
217     if (user_id == USER_SYSTEM) {
218         proto->set_padding("", 1);
219         vector<char> padding;
220         ssize_t size = ROUND_UP(MAX(min_benchmark_size, proto->ByteSize()),
221                                 pagesize);
222         padding = vector<char>(size - proto->ByteSize(), 0xFD);
223         proto->set_padding(padding.data(), padding.size());
224         while (!IS_ALIGNED(proto->ByteSize(), pagesize)) {
225             padding.push_back(0xFD);
226             proto->set_padding(padding.data(), padding.size());
227         }
228     }
229 
230     char* data = nullptr;
231     if (posix_memalign(reinterpret_cast<void**>(&data),
232                        pagesize, proto->ByteSize())) {
233         PLOG(ERROR) << "Faied to alloc aligned buffer (size: " << proto->ByteSize() << ")";
234         return data;
235     }
236 
237     proto->SerializeToArray(data, proto->ByteSize());
238     return data;
239 }
240 
flush_proto_data(userid_t user_id,const char * data,ssize_t size)241 void storaged_t::flush_proto_data(userid_t user_id,
242                                   const char* data, ssize_t size) {
243     string proto_file = proto_path(user_id);
244     string tmp_file = proto_file + "_tmp";
245     unique_fd fd(TEMP_FAILURE_RETRY(open(tmp_file.c_str(),
246                  O_SYNC | O_CREAT | O_TRUNC | O_WRONLY | O_CLOEXEC |
247                     (user_id == USER_SYSTEM ? O_DIRECT : 0),
248                  S_IRUSR | S_IWUSR)));
249     if (fd == -1) {
250         PLOG(ERROR) << "Faied to open tmp file: " << tmp_file;
251         return;
252     }
253 
254     if (user_id == USER_SYSTEM) {
255         time_point<steady_clock> start, end;
256         uint32_t benchmark_size = 0;
257         uint64_t benchmark_time_ns = 0;
258         ssize_t ret;
259         bool first_write = true;
260 
261         while (size > 0) {
262             start = steady_clock::now();
263             ret = write(fd, data, MIN(benchmark_unit_size, size));
264             if (ret <= 0) {
265                 PLOG(ERROR) << "Faied to write tmp file: " << tmp_file;
266                 return;
267             }
268             end = steady_clock::now();
269             /*
270             * compute bandwidth after the first write and if write returns
271             * exactly unit size.
272             */
273             if (!first_write && ret == benchmark_unit_size) {
274                 benchmark_size += benchmark_unit_size;
275                 benchmark_time_ns += duration_cast<nanoseconds>(end - start).count();
276             }
277             size -= ret;
278             data += ret;
279             first_write = false;
280         }
281 
282         if (benchmark_size) {
283             int perf = benchmark_size * 1000000LLU / benchmark_time_ns;
284             storage_info->update_perf_history(perf, system_clock::now());
285         }
286     } else {
287         if (!WriteFully(fd, data, size)) {
288             PLOG(ERROR) << "Faied to write tmp file: " << tmp_file;
289             return;
290         }
291     }
292 
293     fd.reset(-1);
294     rename(tmp_file.c_str(), proto_file.c_str());
295 }
296 
flush_proto(userid_t user_id,StoragedProto * proto)297 void storaged_t::flush_proto(userid_t user_id, StoragedProto* proto) {
298     unique_ptr<char> proto_data(prepare_proto(user_id, proto));
299     if (proto_data == nullptr) return;
300 
301     flush_proto_data(user_id, proto_data.get(), proto->ByteSize());
302 }
303 
flush_protos(unordered_map<int,StoragedProto> * protos)304 void storaged_t::flush_protos(unordered_map<int, StoragedProto>* protos) {
305     Mutex::Autolock _l(proto_lock);
306 
307     for (auto& it : *protos) {
308         /*
309          * Don't flush proto if we haven't attempted to load it from file.
310          */
311         if (proto_loaded[it.first]) {
312             flush_proto(it.first, &it.second);
313         }
314     }
315 }
316 
event(void)317 void storaged_t::event(void) {
318     unordered_map<int, StoragedProto> protos;
319 
320     if (mDsm->enabled()) {
321         mDsm->update();
322         if (!(mTimer % mConfig.periodic_chores_interval_disk_stats_publish)) {
323             mDsm->publish();
324         }
325     }
326 
327     if (!(mTimer % mConfig.periodic_chores_interval_uid_io)) {
328         mUidm.report(&protos);
329     }
330 
331     if (storage_info) {
332         storage_info->refresh(protos[USER_SYSTEM].mutable_perf_history());
333     }
334 
335     if (!(mTimer % mConfig.periodic_chores_interval_flush_proto)) {
336         flush_protos(&protos);
337     }
338 
339     mTimer += mConfig.periodic_chores_interval_unit;
340 }
341 
event_checked(void)342 void storaged_t::event_checked(void) {
343     struct timespec start_ts, end_ts;
344     bool check_time = true;
345 
346     if (mConfig.event_time_check_usec &&
347         clock_gettime(CLOCK_PROCESS_CPUTIME_ID, &start_ts) < 0) {
348         check_time = false;
349         PLOG(ERROR) << "clock_gettime() failed";
350     }
351 
352     event();
353 
354     if (mConfig.event_time_check_usec && check_time) {
355         if (clock_gettime(CLOCK_PROCESS_CPUTIME_ID, &end_ts) < 0) {
356             PLOG(ERROR) << "clock_gettime() failed";
357             return;
358         }
359         int64_t cost = (end_ts.tv_sec - start_ts.tv_sec) * SEC_TO_USEC +
360                        (end_ts.tv_nsec - start_ts.tv_nsec) / USEC_TO_NSEC;
361         if (cost > mConfig.event_time_check_usec) {
362             LOG(ERROR) << "event loop spent " << cost << " usec, threshold "
363                        << mConfig.event_time_check_usec << " usec";
364         }
365     }
366 }
367