1 /*
2 * Copyright (C) 2017 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 // This file contains the functions that initialize SELinux during boot as well as helper functions
18 // for SELinux operation for init.
19
20 // When the system boots, there is no SEPolicy present and init is running in the kernel domain.
21 // Init loads the SEPolicy from the file system, restores the context of /system/bin/init based on
22 // this SEPolicy, and finally exec()'s itself to run in the proper domain.
23
24 // The SEPolicy on Android comes in two variants: monolithic and split.
25
26 // The monolithic policy variant is for legacy non-treble devices that contain a single SEPolicy
27 // file located at /sepolicy and is directly loaded into the kernel SELinux subsystem.
28
29 // The split policy is for supporting treble devices. It splits the SEPolicy across files on
30 // /system/etc/selinux (the 'plat' portion of the policy) and /vendor/etc/selinux (the 'nonplat'
31 // portion of the policy). This is necessary to allow the system image to be updated independently
32 // of the vendor image, while maintaining contributions from both partitions in the SEPolicy. This
33 // is especially important for VTS testing, where the SEPolicy on the Google System Image may not be
34 // identical to the system image shipped on a vendor's device.
35
36 // The split SEPolicy is loaded as described below:
37 // 1) There is a precompiled SEPolicy located at either /vendor/etc/selinux/precompiled_sepolicy or
38 // /odm/etc/selinux/precompiled_sepolicy if odm parition is present. Stored along with this file
39 // are the sha256 hashes of the parts of the SEPolicy on /system and /product that were used to
40 // compile this precompiled policy. The system partition contains a similar sha256 of the parts
41 // of the SEPolicy that it currently contains. Symmetrically, product paritition contains a
42 // sha256 of its SEPolicy. System loads this precompiled_sepolicy directly if and only if hashes
43 // for system policy match and hashes for product policy match.
44 // 2) If these hashes do not match, then either /system or /product (or both) have been updated out
45 // of sync with /vendor and the init needs to compile the SEPolicy. /system contains the
46 // SEPolicy compiler, secilc, and it is used by the LoadSplitPolicy() function below to compile
47 // the SEPolicy to a temp directory and load it. That function contains even more documentation
48 // with the specific implementation details of how the SEPolicy is compiled if needed.
49
50 #include "selinux.h"
51
52 #include <android/api-level.h>
53 #include <fcntl.h>
54 #include <stdlib.h>
55 #include <sys/wait.h>
56 #include <unistd.h>
57
58 #include <android-base/chrono_utils.h>
59 #include <android-base/file.h>
60 #include <android-base/logging.h>
61 #include <android-base/parseint.h>
62 #include <android-base/unique_fd.h>
63 #include <fs_avb/fs_avb.h>
64 #include <selinux/android.h>
65
66 #include "debug_ramdisk.h"
67 #include "reboot_utils.h"
68 #include "util.h"
69
70 using namespace std::string_literals;
71
72 using android::base::ParseInt;
73 using android::base::Timer;
74 using android::base::unique_fd;
75 using android::fs_mgr::AvbHandle;
76
77 namespace android {
78 namespace init {
79
80 namespace {
81
82 selabel_handle* sehandle = nullptr;
83
84 enum EnforcingStatus { SELINUX_PERMISSIVE, SELINUX_ENFORCING };
85
StatusFromCmdline()86 EnforcingStatus StatusFromCmdline() {
87 EnforcingStatus status = SELINUX_ENFORCING;
88
89 import_kernel_cmdline(false,
90 [&](const std::string& key, const std::string& value, bool in_qemu) {
91 if (key == "androidboot.selinux" && value == "permissive") {
92 status = SELINUX_PERMISSIVE;
93 }
94 });
95
96 return status;
97 }
98
IsEnforcing()99 bool IsEnforcing() {
100 if (ALLOW_PERMISSIVE_SELINUX) {
101 return StatusFromCmdline() == SELINUX_ENFORCING;
102 }
103 return true;
104 }
105
106 // Forks, executes the provided program in the child, and waits for the completion in the parent.
107 // Child's stderr is captured and logged using LOG(ERROR).
ForkExecveAndWaitForCompletion(const char * filename,char * const argv[])108 bool ForkExecveAndWaitForCompletion(const char* filename, char* const argv[]) {
109 // Create a pipe used for redirecting child process's output.
110 // * pipe_fds[0] is the FD the parent will use for reading.
111 // * pipe_fds[1] is the FD the child will use for writing.
112 int pipe_fds[2];
113 if (pipe(pipe_fds) == -1) {
114 PLOG(ERROR) << "Failed to create pipe";
115 return false;
116 }
117
118 pid_t child_pid = fork();
119 if (child_pid == -1) {
120 PLOG(ERROR) << "Failed to fork for " << filename;
121 return false;
122 }
123
124 if (child_pid == 0) {
125 // fork succeeded -- this is executing in the child process
126
127 // Close the pipe FD not used by this process
128 close(pipe_fds[0]);
129
130 // Redirect stderr to the pipe FD provided by the parent
131 if (TEMP_FAILURE_RETRY(dup2(pipe_fds[1], STDERR_FILENO)) == -1) {
132 PLOG(ERROR) << "Failed to redirect stderr of " << filename;
133 _exit(127);
134 return false;
135 }
136 close(pipe_fds[1]);
137
138 if (execv(filename, argv) == -1) {
139 PLOG(ERROR) << "Failed to execve " << filename;
140 return false;
141 }
142 // Unreachable because execve will have succeeded and replaced this code
143 // with child process's code.
144 _exit(127);
145 return false;
146 } else {
147 // fork succeeded -- this is executing in the original/parent process
148
149 // Close the pipe FD not used by this process
150 close(pipe_fds[1]);
151
152 // Log the redirected output of the child process.
153 // It's unfortunate that there's no standard way to obtain an istream for a file descriptor.
154 // As a result, we're buffering all output and logging it in one go at the end of the
155 // invocation, instead of logging it as it comes in.
156 const int child_out_fd = pipe_fds[0];
157 std::string child_output;
158 if (!android::base::ReadFdToString(child_out_fd, &child_output)) {
159 PLOG(ERROR) << "Failed to capture full output of " << filename;
160 }
161 close(child_out_fd);
162 if (!child_output.empty()) {
163 // Log captured output, line by line, because LOG expects to be invoked for each line
164 std::istringstream in(child_output);
165 std::string line;
166 while (std::getline(in, line)) {
167 LOG(ERROR) << filename << ": " << line;
168 }
169 }
170
171 // Wait for child to terminate
172 int status;
173 if (TEMP_FAILURE_RETRY(waitpid(child_pid, &status, 0)) != child_pid) {
174 PLOG(ERROR) << "Failed to wait for " << filename;
175 return false;
176 }
177
178 if (WIFEXITED(status)) {
179 int status_code = WEXITSTATUS(status);
180 if (status_code == 0) {
181 return true;
182 } else {
183 LOG(ERROR) << filename << " exited with status " << status_code;
184 }
185 } else if (WIFSIGNALED(status)) {
186 LOG(ERROR) << filename << " killed by signal " << WTERMSIG(status);
187 } else if (WIFSTOPPED(status)) {
188 LOG(ERROR) << filename << " stopped by signal " << WSTOPSIG(status);
189 } else {
190 LOG(ERROR) << "waitpid for " << filename << " returned unexpected status: " << status;
191 }
192
193 return false;
194 }
195 }
196
ReadFirstLine(const char * file,std::string * line)197 bool ReadFirstLine(const char* file, std::string* line) {
198 line->clear();
199
200 std::string contents;
201 if (!android::base::ReadFileToString(file, &contents, true /* follow symlinks */)) {
202 return false;
203 }
204 std::istringstream in(contents);
205 std::getline(in, *line);
206 return true;
207 }
208
FindPrecompiledSplitPolicy(std::string * file)209 bool FindPrecompiledSplitPolicy(std::string* file) {
210 file->clear();
211 // If there is an odm partition, precompiled_sepolicy will be in
212 // odm/etc/selinux. Otherwise it will be in vendor/etc/selinux.
213 static constexpr const char vendor_precompiled_sepolicy[] =
214 "/vendor/etc/selinux/precompiled_sepolicy";
215 static constexpr const char odm_precompiled_sepolicy[] =
216 "/odm/etc/selinux/precompiled_sepolicy";
217 if (access(odm_precompiled_sepolicy, R_OK) == 0) {
218 *file = odm_precompiled_sepolicy;
219 } else if (access(vendor_precompiled_sepolicy, R_OK) == 0) {
220 *file = vendor_precompiled_sepolicy;
221 } else {
222 PLOG(INFO) << "No precompiled sepolicy";
223 return false;
224 }
225 std::string actual_plat_id;
226 if (!ReadFirstLine("/system/etc/selinux/plat_sepolicy_and_mapping.sha256", &actual_plat_id)) {
227 PLOG(INFO) << "Failed to read "
228 "/system/etc/selinux/plat_sepolicy_and_mapping.sha256";
229 return false;
230 }
231 std::string actual_product_id;
232 if (!ReadFirstLine("/product/etc/selinux/product_sepolicy_and_mapping.sha256",
233 &actual_product_id)) {
234 PLOG(INFO) << "Failed to read "
235 "/product/etc/selinux/product_sepolicy_and_mapping.sha256";
236 return false;
237 }
238
239 std::string precompiled_plat_id;
240 std::string precompiled_plat_sha256 = *file + ".plat_sepolicy_and_mapping.sha256";
241 if (!ReadFirstLine(precompiled_plat_sha256.c_str(), &precompiled_plat_id)) {
242 PLOG(INFO) << "Failed to read " << precompiled_plat_sha256;
243 file->clear();
244 return false;
245 }
246 std::string precompiled_product_id;
247 std::string precompiled_product_sha256 = *file + ".product_sepolicy_and_mapping.sha256";
248 if (!ReadFirstLine(precompiled_product_sha256.c_str(), &precompiled_product_id)) {
249 PLOG(INFO) << "Failed to read " << precompiled_product_sha256;
250 file->clear();
251 return false;
252 }
253 if (actual_plat_id.empty() || actual_plat_id != precompiled_plat_id ||
254 actual_product_id.empty() || actual_product_id != precompiled_product_id) {
255 file->clear();
256 return false;
257 }
258 return true;
259 }
260
GetVendorMappingVersion(std::string * plat_vers)261 bool GetVendorMappingVersion(std::string* plat_vers) {
262 if (!ReadFirstLine("/vendor/etc/selinux/plat_sepolicy_vers.txt", plat_vers)) {
263 PLOG(ERROR) << "Failed to read /vendor/etc/selinux/plat_sepolicy_vers.txt";
264 return false;
265 }
266 if (plat_vers->empty()) {
267 LOG(ERROR) << "No version present in plat_sepolicy_vers.txt";
268 return false;
269 }
270 return true;
271 }
272
273 constexpr const char plat_policy_cil_file[] = "/system/etc/selinux/plat_sepolicy.cil";
274
IsSplitPolicyDevice()275 bool IsSplitPolicyDevice() {
276 return access(plat_policy_cil_file, R_OK) != -1;
277 }
278
LoadSplitPolicy()279 bool LoadSplitPolicy() {
280 // IMPLEMENTATION NOTE: Split policy consists of three CIL files:
281 // * platform -- policy needed due to logic contained in the system image,
282 // * non-platform -- policy needed due to logic contained in the vendor image,
283 // * mapping -- mapping policy which helps preserve forward-compatibility of non-platform policy
284 // with newer versions of platform policy.
285 //
286 // secilc is invoked to compile the above three policy files into a single monolithic policy
287 // file. This file is then loaded into the kernel.
288
289 // See if we need to load userdebug_plat_sepolicy.cil instead of plat_sepolicy.cil.
290 const char* force_debuggable_env = getenv("INIT_FORCE_DEBUGGABLE");
291 bool use_userdebug_policy =
292 ((force_debuggable_env && "true"s == force_debuggable_env) &&
293 AvbHandle::IsDeviceUnlocked() && access(kDebugRamdiskSEPolicy, F_OK) == 0);
294 if (use_userdebug_policy) {
295 LOG(WARNING) << "Using userdebug system sepolicy";
296 }
297
298 // Load precompiled policy from vendor image, if a matching policy is found there. The policy
299 // must match the platform policy on the system image.
300 std::string precompiled_sepolicy_file;
301 // use_userdebug_policy requires compiling sepolicy with userdebug_plat_sepolicy.cil.
302 // Thus it cannot use the precompiled policy from vendor image.
303 if (!use_userdebug_policy && FindPrecompiledSplitPolicy(&precompiled_sepolicy_file)) {
304 unique_fd fd(open(precompiled_sepolicy_file.c_str(), O_RDONLY | O_CLOEXEC | O_BINARY));
305 if (fd != -1) {
306 if (selinux_android_load_policy_from_fd(fd, precompiled_sepolicy_file.c_str()) < 0) {
307 LOG(ERROR) << "Failed to load SELinux policy from " << precompiled_sepolicy_file;
308 return false;
309 }
310 return true;
311 }
312 }
313 // No suitable precompiled policy could be loaded
314
315 LOG(INFO) << "Compiling SELinux policy";
316
317 // We store the output of the compilation on /dev because this is the most convenient tmpfs
318 // storage mount available this early in the boot sequence.
319 char compiled_sepolicy[] = "/dev/sepolicy.XXXXXX";
320 unique_fd compiled_sepolicy_fd(mkostemp(compiled_sepolicy, O_CLOEXEC));
321 if (compiled_sepolicy_fd < 0) {
322 PLOG(ERROR) << "Failed to create temporary file " << compiled_sepolicy;
323 return false;
324 }
325
326 // Determine which mapping file to include
327 std::string vend_plat_vers;
328 if (!GetVendorMappingVersion(&vend_plat_vers)) {
329 return false;
330 }
331 std::string plat_mapping_file("/system/etc/selinux/mapping/" + vend_plat_vers + ".cil");
332
333 std::string product_policy_cil_file("/product/etc/selinux/product_sepolicy.cil");
334 if (access(product_policy_cil_file.c_str(), F_OK) == -1) {
335 product_policy_cil_file.clear();
336 }
337
338 std::string product_mapping_file("/product/etc/selinux/mapping/" + vend_plat_vers + ".cil");
339 if (access(product_mapping_file.c_str(), F_OK) == -1) {
340 product_mapping_file.clear();
341 }
342
343 // vendor_sepolicy.cil and plat_pub_versioned.cil are the new design to replace
344 // nonplat_sepolicy.cil.
345 std::string plat_pub_versioned_cil_file("/vendor/etc/selinux/plat_pub_versioned.cil");
346 std::string vendor_policy_cil_file("/vendor/etc/selinux/vendor_sepolicy.cil");
347
348 if (access(vendor_policy_cil_file.c_str(), F_OK) == -1) {
349 // For backward compatibility.
350 // TODO: remove this after no device is using nonplat_sepolicy.cil.
351 vendor_policy_cil_file = "/vendor/etc/selinux/nonplat_sepolicy.cil";
352 plat_pub_versioned_cil_file.clear();
353 } else if (access(plat_pub_versioned_cil_file.c_str(), F_OK) == -1) {
354 LOG(ERROR) << "Missing " << plat_pub_versioned_cil_file;
355 return false;
356 }
357
358 // odm_sepolicy.cil is default but optional.
359 std::string odm_policy_cil_file("/odm/etc/selinux/odm_sepolicy.cil");
360 if (access(odm_policy_cil_file.c_str(), F_OK) == -1) {
361 odm_policy_cil_file.clear();
362 }
363 const std::string version_as_string = std::to_string(SEPOLICY_VERSION);
364
365 // clang-format off
366 std::vector<const char*> compile_args {
367 "/system/bin/secilc",
368 use_userdebug_policy ? kDebugRamdiskSEPolicy: plat_policy_cil_file,
369 "-m", "-M", "true", "-G", "-N",
370 "-c", version_as_string.c_str(),
371 plat_mapping_file.c_str(),
372 "-o", compiled_sepolicy,
373 // We don't care about file_contexts output by the compiler
374 "-f", "/sys/fs/selinux/null", // /dev/null is not yet available
375 };
376 // clang-format on
377
378 if (!product_policy_cil_file.empty()) {
379 compile_args.push_back(product_policy_cil_file.c_str());
380 }
381 if (!product_mapping_file.empty()) {
382 compile_args.push_back(product_mapping_file.c_str());
383 }
384 if (!plat_pub_versioned_cil_file.empty()) {
385 compile_args.push_back(plat_pub_versioned_cil_file.c_str());
386 }
387 if (!vendor_policy_cil_file.empty()) {
388 compile_args.push_back(vendor_policy_cil_file.c_str());
389 }
390 if (!odm_policy_cil_file.empty()) {
391 compile_args.push_back(odm_policy_cil_file.c_str());
392 }
393 compile_args.push_back(nullptr);
394
395 if (!ForkExecveAndWaitForCompletion(compile_args[0], (char**)compile_args.data())) {
396 unlink(compiled_sepolicy);
397 return false;
398 }
399 unlink(compiled_sepolicy);
400
401 LOG(INFO) << "Loading compiled SELinux policy";
402 if (selinux_android_load_policy_from_fd(compiled_sepolicy_fd, compiled_sepolicy) < 0) {
403 LOG(ERROR) << "Failed to load SELinux policy from " << compiled_sepolicy;
404 return false;
405 }
406
407 return true;
408 }
409
LoadMonolithicPolicy()410 bool LoadMonolithicPolicy() {
411 LOG(VERBOSE) << "Loading SELinux policy from monolithic file";
412 if (selinux_android_load_policy() < 0) {
413 PLOG(ERROR) << "Failed to load monolithic SELinux policy";
414 return false;
415 }
416 return true;
417 }
418
LoadPolicy()419 bool LoadPolicy() {
420 return IsSplitPolicyDevice() ? LoadSplitPolicy() : LoadMonolithicPolicy();
421 }
422
SelinuxInitialize()423 void SelinuxInitialize() {
424 Timer t;
425
426 LOG(INFO) << "Loading SELinux policy";
427 if (!LoadPolicy()) {
428 LOG(FATAL) << "Unable to load SELinux policy";
429 }
430
431 bool kernel_enforcing = (security_getenforce() == 1);
432 bool is_enforcing = IsEnforcing();
433 if (kernel_enforcing != is_enforcing) {
434 if (security_setenforce(is_enforcing)) {
435 PLOG(FATAL) << "security_setenforce(%s) failed" << (is_enforcing ? "true" : "false");
436 }
437 }
438
439 if (auto result = WriteFile("/sys/fs/selinux/checkreqprot", "0"); !result) {
440 LOG(FATAL) << "Unable to write to /sys/fs/selinux/checkreqprot: " << result.error();
441 }
442
443 // init's first stage can't set properties, so pass the time to the second stage.
444 setenv("INIT_SELINUX_TOOK", std::to_string(t.duration().count()).c_str(), 1);
445 }
446
447 } // namespace
448
449 // The files and directories that were created before initial sepolicy load or
450 // files on ramdisk need to have their security context restored to the proper
451 // value. This must happen before /dev is populated by ueventd.
SelinuxRestoreContext()452 void SelinuxRestoreContext() {
453 LOG(INFO) << "Running restorecon...";
454 selinux_android_restorecon("/dev", 0);
455 selinux_android_restorecon("/dev/kmsg", 0);
456 if constexpr (WORLD_WRITABLE_KMSG) {
457 selinux_android_restorecon("/dev/kmsg_debug", 0);
458 }
459 selinux_android_restorecon("/dev/null", 0);
460 selinux_android_restorecon("/dev/ptmx", 0);
461 selinux_android_restorecon("/dev/socket", 0);
462 selinux_android_restorecon("/dev/random", 0);
463 selinux_android_restorecon("/dev/urandom", 0);
464 selinux_android_restorecon("/dev/__properties__", 0);
465
466 selinux_android_restorecon("/dev/block", SELINUX_ANDROID_RESTORECON_RECURSE);
467 selinux_android_restorecon("/dev/device-mapper", 0);
468
469 selinux_android_restorecon("/apex", 0);
470 }
471
SelinuxKlogCallback(int type,const char * fmt,...)472 int SelinuxKlogCallback(int type, const char* fmt, ...) {
473 android::base::LogSeverity severity = android::base::ERROR;
474 if (type == SELINUX_WARNING) {
475 severity = android::base::WARNING;
476 } else if (type == SELINUX_INFO) {
477 severity = android::base::INFO;
478 }
479 char buf[1024];
480 va_list ap;
481 va_start(ap, fmt);
482 vsnprintf(buf, sizeof(buf), fmt, ap);
483 va_end(ap);
484 android::base::KernelLogger(android::base::MAIN, severity, "selinux", nullptr, 0, buf);
485 return 0;
486 }
487
488 // This function sets up SELinux logging to be written to kmsg, to match init's logging.
SelinuxSetupKernelLogging()489 void SelinuxSetupKernelLogging() {
490 selinux_callback cb;
491 cb.func_log = SelinuxKlogCallback;
492 selinux_set_callback(SELINUX_CB_LOG, cb);
493 }
494
495 // This function returns the Android version with which the vendor SEPolicy was compiled.
496 // It is used for version checks such as whether or not vendor_init should be used
SelinuxGetVendorAndroidVersion()497 int SelinuxGetVendorAndroidVersion() {
498 if (!IsSplitPolicyDevice()) {
499 // If this device does not split sepolicy files, it's not a Treble device and therefore,
500 // we assume it's always on the latest platform.
501 return __ANDROID_API_FUTURE__;
502 }
503
504 std::string version;
505 if (!GetVendorMappingVersion(&version)) {
506 LOG(FATAL) << "Could not read vendor SELinux version";
507 }
508
509 int major_version;
510 std::string major_version_str(version, 0, version.find('.'));
511 if (!ParseInt(major_version_str, &major_version)) {
512 PLOG(FATAL) << "Failed to parse the vendor sepolicy major version " << major_version_str;
513 }
514
515 return major_version;
516 }
517
518 // This function initializes SELinux then execs init to run in the init SELinux context.
SetupSelinux(char ** argv)519 int SetupSelinux(char** argv) {
520 InitKernelLogging(argv);
521
522 if (REBOOT_BOOTLOADER_ON_PANIC) {
523 InstallRebootSignalHandlers();
524 }
525
526 // Set up SELinux, loading the SELinux policy.
527 SelinuxSetupKernelLogging();
528 SelinuxInitialize();
529
530 // We're in the kernel domain and want to transition to the init domain. File systems that
531 // store SELabels in their xattrs, such as ext4 do not need an explicit restorecon here,
532 // but other file systems do. In particular, this is needed for ramdisks such as the
533 // recovery image for A/B devices.
534 if (selinux_android_restorecon("/system/bin/init", 0) == -1) {
535 PLOG(FATAL) << "restorecon failed of /system/bin/init failed";
536 }
537
538 const char* path = "/system/bin/init";
539 const char* args[] = {path, "second_stage", nullptr};
540 execv(path, const_cast<char**>(args));
541
542 // execv() only returns if an error happened, in which case we
543 // panic and never return from this function.
544 PLOG(FATAL) << "execv(\"" << path << "\") failed";
545
546 return 1;
547 }
548
549 // selinux_android_file_context_handle() takes on the order of 10+ms to run, so we want to cache
550 // its value. selinux_android_restorecon() also needs an sehandle for file context look up. It
551 // will create and store its own copy, but selinux_android_set_sehandle() can be used to provide
552 // one, thus eliminating an extra call to selinux_android_file_context_handle().
SelabelInitialize()553 void SelabelInitialize() {
554 sehandle = selinux_android_file_context_handle();
555 selinux_android_set_sehandle(sehandle);
556 }
557
558 // A C++ wrapper around selabel_lookup() using the cached sehandle.
559 // If sehandle is null, this returns success with an empty context.
SelabelLookupFileContext(const std::string & key,int type,std::string * result)560 bool SelabelLookupFileContext(const std::string& key, int type, std::string* result) {
561 result->clear();
562
563 if (!sehandle) return true;
564
565 char* context;
566 if (selabel_lookup(sehandle, &context, key.c_str(), type) != 0) {
567 return false;
568 }
569 *result = context;
570 free(context);
571 return true;
572 }
573
574 // A C++ wrapper around selabel_lookup_best_match() using the cached sehandle.
575 // If sehandle is null, this returns success with an empty context.
SelabelLookupFileContextBestMatch(const std::string & key,const std::vector<std::string> & aliases,int type,std::string * result)576 bool SelabelLookupFileContextBestMatch(const std::string& key,
577 const std::vector<std::string>& aliases, int type,
578 std::string* result) {
579 result->clear();
580
581 if (!sehandle) return true;
582
583 std::vector<const char*> c_aliases;
584 for (const auto& alias : aliases) {
585 c_aliases.emplace_back(alias.c_str());
586 }
587 c_aliases.emplace_back(nullptr);
588
589 char* context;
590 if (selabel_lookup_best_match(sehandle, &context, key.c_str(), &c_aliases[0], type) != 0) {
591 return false;
592 }
593 *result = context;
594 free(context);
595 return true;
596 }
597
598 } // namespace init
599 } // namespace android
600