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1 #define LOG_TAG "hidl_test_client"
2 
3 #include "FooCallback.h"
4 #include "hidl_test.h"
5 
6 #include <android-base/file.h>
7 #include <android-base/logging.h>
8 
9 #include <android/hidl/manager/1.0/IServiceNotification.h>
10 #include <android/hidl/manager/1.2/IServiceManager.h>
11 
12 #include <android/hidl/allocator/1.0/IAllocator.h>
13 #include <android/hidl/memory/1.0/IMemory.h>
14 #include <android/hidl/memory/token/1.0/IMemoryToken.h>
15 #include <android/hidl/token/1.0/ITokenManager.h>
16 
17 #include <android/hardware/tests/bar/1.0/BnHwBar.h>
18 #include <android/hardware/tests/bar/1.0/BpHwBar.h>
19 #include <android/hardware/tests/bar/1.0/IBar.h>
20 #include <android/hardware/tests/bar/1.0/IComplicated.h>
21 #include <android/hardware/tests/bar/1.0/IImportRules.h>
22 #include <android/hardware/tests/baz/1.0/BnHwBaz.h>
23 #include <android/hardware/tests/baz/1.0/IBaz.h>
24 #include <android/hardware/tests/expression/1.0/IExpression.h>
25 #include <android/hardware/tests/foo/1.0/BnHwSimple.h>
26 #include <android/hardware/tests/foo/1.0/BpHwSimple.h>
27 #include <android/hardware/tests/foo/1.0/BsSimple.h>
28 #include <android/hardware/tests/foo/1.0/IFoo.h>
29 #include <android/hardware/tests/hash/1.0/IHash.h>
30 #include <android/hardware/tests/inheritance/1.0/IChild.h>
31 #include <android/hardware/tests/inheritance/1.0/IFetcher.h>
32 #include <android/hardware/tests/inheritance/1.0/IGrandparent.h>
33 #include <android/hardware/tests/inheritance/1.0/IParent.h>
34 #include <android/hardware/tests/memory/1.0/IMemoryTest.h>
35 #include <android/hardware/tests/multithread/1.0/IMultithread.h>
36 #include <android/hardware/tests/safeunion/1.0/ISafeUnion.h>
37 #include <android/hardware/tests/safeunion/cpp/1.0/ICppSafeUnion.h>
38 #include <android/hardware/tests/trie/1.0/ITrie.h>
39 
40 #include <gtest/gtest.h>
41 #if GTEST_IS_THREADSAFE
42 #include <sys/types.h>
43 #include <sys/wait.h>
44 #include <signal.h>
45 #include <errno.h>
46 #include <pthread.h>
47 #else
48 #error "GTest did not detect pthread library."
49 #endif
50 
51 #include <getopt.h>
52 #include <inttypes.h>
53 #include <algorithm>
54 #include <condition_variable>
55 #include <fstream>
56 #include <future>
57 #include <limits>
58 #include <mutex>
59 #include <random>
60 #include <set>
61 #include <sstream>
62 #include <sys/stat.h>
63 #include <thread>
64 #include <type_traits>
65 #include <unordered_set>
66 #include <utility>
67 #include <vector>
68 
69 #include <hidl-test/FooHelper.h>
70 #include <hidl-util/FQName.h>
71 
72 #include <hidl/ServiceManagement.h>
73 #include <hidl/Status.h>
74 #include <hidlmemory/HidlMemoryToken.h>
75 #include <hidlmemory/mapping.h>
76 
77 #include <utils/Condition.h>
78 #include <utils/Timers.h>
79 
80 #define EXPECT_OK(__ret__) EXPECT_TRUE(isOk(__ret__))
81 #define EXPECT_FAIL(__ret__) EXPECT_FALSE(isOk(__ret__))
82 #define EXPECT_ARRAYEQ(__a1__, __a2__, __size__) EXPECT_TRUE(isArrayEqual(__a1__, __a2__, __size__))
83 
84 // forward declarations.
85 class HidlEnvironment;
86 
87 // static storage
88 enum TestMode {
89     BINDERIZED,
90     PASSTHROUGH
91 };
92 
93 static HidlEnvironment *gHidlEnvironment = nullptr;
94 
95 using ::android::Condition;
96 using ::android::DELAY_NS;
97 using ::android::DELAY_S;
98 using ::android::FQName;
99 using ::android::MultiDimensionalToString;
100 using ::android::Mutex;
101 using ::android::ONEWAY_TOLERANCE_NS;
102 using ::android::sp;
103 using ::android::to_string;
104 using ::android::TOLERANCE_NS;
105 using ::android::wp;
106 using ::android::hardware::GrantorDescriptor;
107 using ::android::hardware::hidl_array;
108 using ::android::hardware::hidl_death_recipient;
109 using ::android::hardware::hidl_handle;
110 using ::android::hardware::hidl_memory;
111 using ::android::hardware::hidl_string;
112 using ::android::hardware::hidl_vec;
113 using ::android::hardware::HidlMemory;
114 using ::android::hardware::MQDescriptor;
115 using ::android::hardware::MQFlavor;
116 using ::android::hardware::Return;
117 using ::android::hardware::Void;
118 using ::android::hardware::tests::bar::V1_0::IBar;
119 using ::android::hardware::tests::bar::V1_0::IComplicated;
120 using ::android::hardware::tests::baz::V1_0::IBaz;
121 using ::android::hardware::tests::expression::V1_0::IExpression;
122 using ::android::hardware::tests::foo::V1_0::Abc;
123 using ::android::hardware::tests::foo::V1_0::IFoo;
124 using ::android::hardware::tests::foo::V1_0::IFooCallback;
125 using ::android::hardware::tests::foo::V1_0::ISimple;
126 using ::android::hardware::tests::foo::V1_0::implementation::FooCallback;
127 using ::android::hardware::tests::hash::V1_0::IHash;
128 using ::android::hardware::tests::inheritance::V1_0::IChild;
129 using ::android::hardware::tests::inheritance::V1_0::IFetcher;
130 using ::android::hardware::tests::inheritance::V1_0::IGrandparent;
131 using ::android::hardware::tests::inheritance::V1_0::IParent;
132 using ::android::hardware::tests::memory::V1_0::IMemoryTest;
133 using ::android::hardware::tests::multithread::V1_0::IMultithread;
134 using ::android::hardware::tests::safeunion::cpp::V1_0::ICppSafeUnion;
135 using ::android::hardware::tests::safeunion::V1_0::ISafeUnion;
136 using ::android::hardware::tests::trie::V1_0::ITrie;
137 using ::android::hardware::tests::trie::V1_0::TrieNode;
138 using ::android::hidl::allocator::V1_0::IAllocator;
139 using ::android::hidl::base::V1_0::IBase;
140 using ::android::hidl::manager::V1_0::IServiceNotification;
141 using ::android::hidl::manager::V1_2::IServiceManager;
142 using ::android::hidl::memory::block::V1_0::MemoryBlock;
143 using ::android::hidl::memory::token::V1_0::IMemoryToken;
144 using ::android::hidl::memory::V1_0::IMemory;
145 using ::android::hidl::token::V1_0::ITokenManager;
146 using std::to_string;
147 
148 using HandleTypeSafeUnion = ISafeUnion::HandleTypeSafeUnion;
149 using InterfaceTypeSafeUnion = ISafeUnion::InterfaceTypeSafeUnion;
150 using LargeSafeUnion = ISafeUnion::LargeSafeUnion;
151 using SmallSafeUnion = ISafeUnion::SmallSafeUnion;
152 
153 template <typename T>
154 using hidl_enum_range = ::android::hardware::hidl_enum_range<T>;
155 
156 template <typename T>
isOk(const::android::hardware::Return<T> & ret)157 static inline ::testing::AssertionResult isOk(const ::android::hardware::Return<T> &ret) {
158     return ret.isOk()
159         ? (::testing::AssertionSuccess() << ret.description())
160         : (::testing::AssertionFailure() << ret.description());
161 }
162 
163 template<typename T, typename S>
isArrayEqual(const T arr1,const S arr2,size_t size)164 static inline bool isArrayEqual(const T arr1, const S arr2, size_t size) {
165     for(size_t i = 0; i < size; i++)
166         if(arr1[i] != arr2[i])
167             return false;
168     return true;
169 }
170 
171 template<typename T>
to_string(std::set<T> set)172 std::string to_string(std::set<T> set) {
173     std::stringstream ss;
174     ss << "{";
175 
176     bool first = true;
177     for (const T &item : set) {
178         if (first) {
179             first = false;
180         } else {
181             ss << ", ";
182         }
183 
184         ss << to_string(item);
185     }
186 
187     ss << "}";
188 
189     return ss.str();
190 }
191 
192 // does not check for fd equality
checkNativeHandlesDataEquality(const native_handle_t * reference,const native_handle_t * result)193 static void checkNativeHandlesDataEquality(const native_handle_t* reference,
194                                            const native_handle_t* result) {
195     if (reference == nullptr || result == nullptr) {
196         EXPECT_EQ(reference, result);
197         return;
198     }
199 
200     ASSERT_EQ(reference->version, result->version);
201     EXPECT_EQ(reference->numFds, result->numFds);
202     EXPECT_EQ(reference->numInts, result->numInts);
203 
204     int offset = reference->numFds;
205     int numInts = reference->numInts;
206     EXPECT_ARRAYEQ(&(reference->data[offset]), &(result->data[offset]), numInts);
207 }
208 
209 template <typename T, MQFlavor flavor>
checkMQDescriptorEquality(const MQDescriptor<T,flavor> & expected,const MQDescriptor<T,flavor> & actual)210 static void checkMQDescriptorEquality(const MQDescriptor<T, flavor>& expected,
211                                       const MQDescriptor<T, flavor>& actual) {
212     checkNativeHandlesDataEquality(expected.handle(), actual.handle());
213     EXPECT_EQ(expected.grantors().size(), actual.grantors().size());
214     EXPECT_EQ(expected.getQuantum(), actual.getQuantum());
215     EXPECT_EQ(expected.getFlags(), actual.getFlags());
216 }
217 
218 struct Simple : public ISimple {
SimpleSimple219     Simple(int32_t cookie)
220         : mCookie(cookie) {
221     }
222 
getCookieSimple223     Return<int32_t> getCookie() override {
224         return mCookie;
225     }
226 
customVecIntSimple227     Return<void> customVecInt(customVecInt_cb _cb) override {
228         _cb(hidl_vec<int32_t>());
229         return Void();
230     }
231 
customVecStrSimple232     Return<void> customVecStr(customVecStr_cb _cb) override {
233         hidl_vec<hidl_string> vec;
234         vec.resize(2);
235         _cb(vec);
236         return Void();
237     }
238 
mystrSimple239     Return<void> mystr(mystr_cb _cb) override {
240         _cb(hidl_string());
241         return Void();
242     }
243 
myhandleSimple244     Return<void> myhandle(myhandle_cb _cb) override {
245         auto h = native_handle_create(0, 1);
246         _cb(h);
247         native_handle_delete(h);
248         return Void();
249     }
250 
251 private:
252     int32_t mCookie;
253 };
254 
255 struct SimpleParent : public IParent {
doGrandparentSimpleParent256     Return<void> doGrandparent() override {
257         return Void();
258     }
doParentSimpleParent259     Return<void> doParent() override {
260         return Void();
261     }
262 };
263 
264 struct SimpleChild : public IChild {
doGrandparentSimpleChild265     Return<void> doGrandparent() override {
266         return Void();
267     }
doParentSimpleChild268     Return <void> doParent() override {
269         return Void();
270     }
doChildSimpleChild271     Return <void> doChild() override {
272         return Void();
273     }
274 };
275 
276 struct Complicated : public IComplicated {
ComplicatedComplicated277     Complicated(int32_t cookie)
278         : mCookie(cookie) {
279     }
280 
getCookieComplicated281     Return<int32_t> getCookie() override {
282         return mCookie;
283     }
284 
customVecIntComplicated285     Return<void> customVecInt(customVecInt_cb _cb) override {
286         _cb(hidl_vec<int32_t>());
287         return Void();
288     }
customVecStrComplicated289     Return<void> customVecStr(customVecStr_cb _cb) override {
290         hidl_vec<hidl_string> vec;
291         vec.resize(2);
292         _cb(vec);
293         return Void();
294     }
295 
mystrComplicated296     Return<void> mystr(mystr_cb _cb) override {
297         _cb(hidl_string());
298         return Void();
299     }
300 
myhandleComplicated301     Return<void> myhandle(myhandle_cb _cb) override {
302         auto h = native_handle_create(0, 1);
303         _cb(h);
304         native_handle_delete(h);
305         return Void();
306     }
307 
308 private:
309     int32_t mCookie;
310 };
311 
312 struct ServiceNotification : public IServiceNotification {
313     std::mutex mutex;
314     std::condition_variable condition;
315 
onRegistrationServiceNotification316     Return<void> onRegistration(const hidl_string &fqName,
317                                 const hidl_string &name,
318                                 bool preexisting) override {
319         if (preexisting) {
320             // not interested in things registered from previous runs of hidl_test
321             return Void();
322         }
323 
324         std::unique_lock<std::mutex> lock(mutex);
325 
326         mRegistered.push_back(std::string(fqName.c_str()) + "/" + name.c_str());
327 
328         lock.unlock();
329         condition.notify_one();
330 
331         return Void();
332     }
333 
getRegistrationsServiceNotification334     const std::vector<std::string> &getRegistrations() const {
335         return mRegistered;
336     }
337 
338 private:
339     std::vector<std::string> mRegistered{};
340 };
341 
342 class HidlEnvironment : public ::testing::Environment {
343 public:
344     sp<IServiceManager> manager;
345     sp<ITokenManager> tokenManager;
346     sp<IAllocator> ashmemAllocator;
347     sp<IMemoryTest> memoryTest;
348     sp<IFetcher> fetcher;
349     sp<IFoo> foo;
350     sp<IBaz> baz;
351     sp<IBaz> dyingBaz;
352     sp<IBar> bar;
353     sp<IMultithread> multithreadInterface;
354     sp<ITrie> trieInterface;
355     sp<ICppSafeUnion> cppSafeunionInterface;
356     sp<ISafeUnion> safeunionInterface;
357     TestMode mode;
358     bool enableDelayMeasurementTests;
HidlEnvironment(TestMode mode,bool enableDelayMeasurementTests)359     HidlEnvironment(TestMode mode, bool enableDelayMeasurementTests) :
360         mode(mode), enableDelayMeasurementTests(enableDelayMeasurementTests) {};
361 
getServices()362     void getServices() {
363         manager = IServiceManager::getService();
364 
365         // alternatively:
366         // manager = defaultServiceManager()
367 
368         ASSERT_NE(manager, nullptr);
369         ASSERT_TRUE(manager->isRemote()); // manager is always remote
370 
371         tokenManager = ITokenManager::getService();
372         ASSERT_NE(tokenManager, nullptr);
373         ASSERT_TRUE(tokenManager->isRemote()); // tokenManager is always remote
374 
375         ashmemAllocator = IAllocator::getService("ashmem");
376         ASSERT_NE(ashmemAllocator, nullptr);
377         ASSERT_TRUE(ashmemAllocator->isRemote()); // allocator is always remote
378 
379         // getStub is true if we are in passthrough mode to skip checking
380         // binderized server, false for binderized mode.
381 
382         memoryTest = IMemoryTest::getService("memory", mode == PASSTHROUGH /* getStub */);
383         ASSERT_NE(memoryTest, nullptr);
384         ASSERT_EQ(memoryTest->isRemote(), mode == BINDERIZED);
385 
386         fetcher = IFetcher::getService("fetcher", mode == PASSTHROUGH /* getStub */);
387         ASSERT_NE(fetcher, nullptr);
388         ASSERT_EQ(fetcher->isRemote(), mode == BINDERIZED);
389 
390         foo = IFoo::getService("foo", mode == PASSTHROUGH /* getStub */);
391         ASSERT_NE(foo, nullptr);
392         ASSERT_EQ(foo->isRemote(), mode == BINDERIZED);
393 
394         baz = IBaz::getService("baz", mode == PASSTHROUGH /* getStub */);
395         ASSERT_NE(baz, nullptr);
396         ASSERT_EQ(baz->isRemote(), mode == BINDERIZED);
397 
398         dyingBaz = IBaz::getService("dyingBaz", mode == PASSTHROUGH /* getStub */);
399         ASSERT_NE(dyingBaz, nullptr);
400         ASSERT_EQ(dyingBaz->isRemote(), mode == BINDERIZED);
401 
402         bar = IBar::getService("foo", mode == PASSTHROUGH /* getStub */);
403         ASSERT_NE(bar, nullptr);
404         ASSERT_EQ(bar->isRemote(), mode == BINDERIZED);
405 
406         multithreadInterface =
407             IMultithread::getService("multithread", mode == PASSTHROUGH /* getStub */);
408         ASSERT_NE(multithreadInterface, nullptr);
409         ASSERT_EQ(multithreadInterface->isRemote(), mode == BINDERIZED);
410 
411         trieInterface = ITrie::getService("trie", mode == PASSTHROUGH /* getStub */);
412         ASSERT_NE(trieInterface, nullptr);
413         ASSERT_EQ(trieInterface->isRemote(), mode == BINDERIZED);
414 
415         cppSafeunionInterface =
416             ICppSafeUnion::getService("default", mode == PASSTHROUGH /* getStub */);
417         ASSERT_NE(cppSafeunionInterface, nullptr);
418         ASSERT_EQ(cppSafeunionInterface->isRemote(), mode == BINDERIZED);
419 
420         safeunionInterface = ISafeUnion::getService("safeunion", mode == PASSTHROUGH /* getStub */);
421         ASSERT_NE(safeunionInterface, nullptr);
422         ASSERT_EQ(safeunionInterface->isRemote(), mode == BINDERIZED);
423     }
424 
SetUp()425     void SetUp() override {
426         ALOGI("Environment setup beginning...");
427         getServices();
428         ALOGI("Environment setup complete.");
429     }
430 };
431 
432 class HidlTest : public ::testing::Test {
433 public:
434     sp<IServiceManager> manager;
435     sp<ITokenManager> tokenManager;
436     sp<IAllocator> ashmemAllocator;
437     sp<IMemoryTest> memoryTest;
438     sp<IFetcher> fetcher;
439     sp<IFoo> foo;
440     sp<IBaz> baz;
441     sp<IBaz> dyingBaz;
442     sp<IBar> bar;
443     sp<ITrie> trieInterface;
444     sp<ICppSafeUnion> cppSafeunionInterface;
445     sp<ISafeUnion> safeunionInterface;
446     TestMode mode = TestMode::PASSTHROUGH;
447 
SetUp()448     void SetUp() override {
449         ALOGI("Test setup beginning...");
450         manager = gHidlEnvironment->manager;
451         tokenManager = gHidlEnvironment->tokenManager;
452         ashmemAllocator = gHidlEnvironment->ashmemAllocator;
453         memoryTest = gHidlEnvironment->memoryTest;
454         fetcher = gHidlEnvironment->fetcher;
455         foo = gHidlEnvironment->foo;
456         baz = gHidlEnvironment->baz;
457         dyingBaz = gHidlEnvironment->dyingBaz;
458         bar = gHidlEnvironment->bar;
459         trieInterface = gHidlEnvironment->trieInterface;
460         cppSafeunionInterface = gHidlEnvironment->cppSafeunionInterface;
461         safeunionInterface = gHidlEnvironment->safeunionInterface;
462         mode = gHidlEnvironment->mode;
463         ALOGI("Test setup complete");
464     }
465 };
466 
TEST_F(HidlTest,ToStringTest)467 TEST_F(HidlTest, ToStringTest) {
468     using namespace android::hardware;
469 
470     LOG(INFO) << toString(IFoo::Everything{});
471 
472     // Note that handles don't need to be deleted because MQDescriptor takes ownership
473     // and deletes them when destructed.
474     auto handle = native_handle_create(0, 1);
475     auto handle2 = native_handle_create(0, 1);
476     handle->data[0] = 5;
477     handle2->data[0] = 6;
478     IFoo::Everything e{
479         .u = {.number = 3},
480         .number = 10,
481         .h = handle,
482         .descSync = {std::vector<GrantorDescriptor>(), handle, 5},
483         .descUnsync = {std::vector<GrantorDescriptor>(), handle2, 6},
484         .mem = hidl_memory("mymem", handle, 5),
485         .p = reinterpret_cast<void*>(0x6),
486         .vs = {"hello", "world"},
487         .multidimArray = hidl_vec<hidl_string>{"hello", "great", "awesome", "nice"}.data(),
488         .sArray = hidl_vec<hidl_string>{"awesome", "thanks", "you're welcome"}.data(),
489         .anotherStruct = {.first = "first", .last = "last"},
490         .bf = IFoo::BitField::V0 | IFoo::BitField::V2};
491     LOG(INFO) << toString(e);
492     LOG(INFO) << toString(foo);
493     // toString is for debugging purposes only; no good EXPECT
494     // statement can be written here.
495 }
496 
TEST_F(HidlTest,PrintToTest)497 TEST_F(HidlTest, PrintToTest) {
498     using namespace android::hardware::tests;
499     using ::testing::PrintToString;
500 
501     trie::V1_0::TrieNode trieNode;
502     trieNode.isTerminal = true;
503     LOG(INFO) << PrintToString(trieNode);
504 
505     // The exact contents of the string are for debugging purposes, but to be
506     // friendly it should provide a name for the boolean field.
507     EXPECT_TRUE(PrintToString(trieNode).find("isTerminal") != std::string::npos);
508 
509     LOG(INFO) << PrintToString(trie::V1_0::E1::OK);
510     LOG(INFO) << PrintToString(trie::V1_0::E1::ANOTHER);
511     LOG(INFO) << PrintToString(trie::V1_0::E2::ACCEPT);
512 
513     // The exact contents of the string are for debugging purposes, but to be
514     // friendly it should provide a name for each enum value.
515     EXPECT_TRUE(PrintToString(trie::V1_0::E1::OK).find("OK") != std::string::npos);
516     EXPECT_TRUE(PrintToString(trie::V1_0::E1::ANOTHER).find("ANOTHER") != std::string::npos);
517     EXPECT_TRUE(PrintToString(trie::V1_0::E2::ACCEPT).find("ACCEPT") != std::string::npos);
518 }
519 
TEST_F(HidlTest,ConstantExpressionTest)520 TEST_F(HidlTest, ConstantExpressionTest) {
521     // these tests are written so that these always evaluate to one
522 
523     for (const auto value : hidl_enum_range<IExpression::OperatorSanityCheck>()) {
524         EXPECT_EQ(1, static_cast<int32_t>(value));
525     }
526     for (const auto value : hidl_enum_range<IExpression::EnumTagTest>()) {
527         EXPECT_EQ(1, static_cast<int32_t>(value));
528     }
529 }
530 
TEST_F(HidlTest,PassthroughLookupTest)531 TEST_F(HidlTest, PassthroughLookupTest) {
532     // IFoo is special because it returns an interface no matter
533     //   what instance name is requested. In general, this is BAD!
534     EXPECT_NE(nullptr, IFoo::getService("", true /* getStub */).get());
535     EXPECT_NE(nullptr, IFoo::getService("a", true /* getStub */).get());
536     EXPECT_NE(nullptr, IFoo::getService("asdf", true /* getStub */).get());
537     EXPECT_NE(nullptr, IFoo::getService("::::::::", true /* getStub */).get());
538     EXPECT_NE(nullptr, IFoo::getService("/////", true /* getStub */).get());
539     EXPECT_NE(nullptr, IFoo::getService("\n", true /* getStub */).get());
540 }
541 
TEST_F(HidlTest,EnumIteratorTest)542 TEST_F(HidlTest, EnumIteratorTest) {
543     using Empty = ::android::hardware::tests::foo::V1_0::EnumIterators::Empty;
544     using Grandchild = ::android::hardware::tests::foo::V1_0::EnumIterators::Grandchild;
545     using SkipsValues = ::android::hardware::tests::foo::V1_0::EnumIterators::SkipsValues;
546     using MultipleValues = ::android::hardware::tests::foo::V1_0::EnumIterators::MultipleValues;
547 
548     for (const auto value : hidl_enum_range<Empty>()) {
549         (void)value;
550         ADD_FAILURE() << "Empty range should not iterate";
551     }
552 
553     EXPECT_EQ(hidl_enum_range<Grandchild>().begin(), hidl_enum_range<Grandchild>().cbegin());
554     EXPECT_EQ(hidl_enum_range<Grandchild>().end(), hidl_enum_range<Grandchild>().cend());
555     EXPECT_EQ(hidl_enum_range<Grandchild>().rbegin(), hidl_enum_range<Grandchild>().crbegin());
556     EXPECT_EQ(hidl_enum_range<Grandchild>().rend(), hidl_enum_range<Grandchild>().crend());
557 
558     auto it1 = hidl_enum_range<Grandchild>().begin();
559     EXPECT_EQ(Grandchild::A, *it1++);
560     EXPECT_EQ(Grandchild::B, *it1++);
561     EXPECT_EQ(hidl_enum_range<Grandchild>().end(), it1);
562     auto it1r = hidl_enum_range<Grandchild>().rbegin();
563     EXPECT_EQ(Grandchild::B, *it1r++);
564     EXPECT_EQ(Grandchild::A, *it1r++);
565     EXPECT_EQ(hidl_enum_range<Grandchild>().rend(), it1r);
566 
567     auto it2 = hidl_enum_range<SkipsValues>().begin();
568     EXPECT_EQ(SkipsValues::A, *it2++);
569     EXPECT_EQ(SkipsValues::B, *it2++);
570     EXPECT_EQ(SkipsValues::C, *it2++);
571     EXPECT_EQ(SkipsValues::D, *it2++);
572     EXPECT_EQ(SkipsValues::E, *it2++);
573     EXPECT_EQ(hidl_enum_range<SkipsValues>().end(), it2);
574     auto it2r = hidl_enum_range<SkipsValues>().rbegin();
575     EXPECT_EQ(SkipsValues::E, *it2r++);
576     EXPECT_EQ(SkipsValues::D, *it2r++);
577     EXPECT_EQ(SkipsValues::C, *it2r++);
578     EXPECT_EQ(SkipsValues::B, *it2r++);
579     EXPECT_EQ(SkipsValues::A, *it2r++);
580     EXPECT_EQ(hidl_enum_range<SkipsValues>().rend(), it2r);
581 
582     auto it3 = hidl_enum_range<MultipleValues>().begin();
583     EXPECT_EQ(MultipleValues::A, *it3++);
584     EXPECT_EQ(MultipleValues::B, *it3++);
585     EXPECT_EQ(MultipleValues::C, *it3++);
586     EXPECT_EQ(MultipleValues::D, *it3++);
587     EXPECT_EQ(hidl_enum_range<MultipleValues>().end(), it3);
588     auto it3r = hidl_enum_range<MultipleValues>().rbegin();
589     EXPECT_EQ(MultipleValues::D, *it3r++);
590     EXPECT_EQ(MultipleValues::C, *it3r++);
591     EXPECT_EQ(MultipleValues::B, *it3r++);
592     EXPECT_EQ(MultipleValues::A, *it3r++);
593     EXPECT_EQ(hidl_enum_range<MultipleValues>().rend(), it3r);
594 }
595 
TEST_F(HidlTest,EnumToStringTest)596 TEST_F(HidlTest, EnumToStringTest) {
597     using namespace std::string_literals;
598     using ::android::hardware::tests::foo::V1_0::toString;
599     // toString for enum
600     EXPECT_EQ(toString(IFoo::BitField::V0), "V0"s);
601     EXPECT_EQ(toString(static_cast<IFoo::BitField>(0)), "0"s)
602             << "Invalid enum isn't stringified correctly.";
603     EXPECT_EQ(toString(static_cast<IFoo::BitField>(IFoo::BitField::V0 | IFoo::BitField::V2)), "0x5"s)
604             << "Invalid enum isn't stringified correctly.";
605     // dump bitfields
606     EXPECT_EQ(toString<IFoo::BitField>((uint8_t)0 | IFoo::BitField::V0), "V0 (0x1)"s);
607     EXPECT_EQ(toString<IFoo::BitField>((uint8_t)0 | IFoo::BitField::V0 | IFoo::BitField::V2),
608               "V0 | V2 (0x5)"s);
609     EXPECT_EQ(toString<IFoo::BitField>((uint8_t)0xF), "V0 | V1 | V2 | V3 | VALL (0xf)"s);
610     EXPECT_EQ(toString<IFoo::BitField>((uint8_t)0xFF), "V0 | V1 | V2 | V3 | VALL | 0xf0 (0xff)"s);
611 
612     // inheritance
613     using Parent = ::android::hardware::tests::foo::V1_0::EnumIterators::Parent;
614     using EmptyChild = ::android::hardware::tests::foo::V1_0::EnumIterators::EmptyChild;
615     using Grandchild = ::android::hardware::tests::foo::V1_0::EnumIterators::Grandchild;
616     EXPECT_EQ(toString(Parent::A), "A"s);
617     EXPECT_EQ(toString(EmptyChild::A), "A"s);
618     EXPECT_EQ(toString(Grandchild::A), "A"s);
619     EXPECT_EQ(toString(Grandchild::B), "B"s);
620 }
621 
TEST_F(HidlTest,PingTest)622 TEST_F(HidlTest, PingTest) {
623     EXPECT_OK(manager->ping());
624 }
625 
TEST_F(HidlTest,TryGetServiceTest)626 TEST_F(HidlTest, TryGetServiceTest) {
627     sp<IServiceManager> dne = IServiceManager::tryGetService("boss");
628     ASSERT_EQ(dne, nullptr);
629 
630     sp<IServiceManager> manager = IServiceManager::tryGetService();
631     ASSERT_NE(manager, nullptr);
632 }
633 
TEST_F(HidlTest,ServiceListTest)634 TEST_F(HidlTest, ServiceListTest) {
635     static const std::set<std::string> binderizedSet = {
636         "android.hardware.tests.bar@1.0::IBar/foo",
637         "android.hardware.tests.inheritance@1.0::IFetcher/fetcher",
638         "android.hardware.tests.inheritance@1.0::IParent/parent",
639         "android.hardware.tests.inheritance@1.0::IParent/child",
640         "android.hardware.tests.inheritance@1.0::IChild/child",
641         "android.hardware.tests.inheritance@1.0::IGrandparent/child",
642         "android.hardware.tests.foo@1.0::IFoo/foo",
643         "android.hidl.manager@1.0::IServiceManager/default",
644         "android.hidl.manager@1.1::IServiceManager/default",
645     };
646 
647     static const std::set<std::string> passthroughSet = {
648         "android.hidl.manager@1.0::IServiceManager/default",
649         "android.hidl.manager@1.1::IServiceManager/default",
650     };
651 
652     std::set<std::string> activeSet;
653 
654     switch(mode) {
655         case BINDERIZED: {
656             activeSet = binderizedSet;
657         } break;
658 
659         case PASSTHROUGH: {
660             activeSet = passthroughSet;
661         } break;
662         default:
663             EXPECT_TRUE(false) << "unrecognized mode";
664     }
665 
666     EXPECT_OK(manager->list([&activeSet](const hidl_vec<hidl_string> &registered){
667         std::set<std::string> registeredSet;
668 
669         for (size_t i = 0; i < registered.size(); i++) {
670             registeredSet.insert(registered[i]);
671         }
672 
673         std::set<std::string> difference;
674         std::set_difference(activeSet.begin(), activeSet.end(),
675                             registeredSet.begin(), registeredSet.end(),
676                             std::inserter(difference, difference.begin()));
677 
678         EXPECT_EQ(difference.size(), 0u) << "service(s) not registered " << to_string(difference);
679     }));
680 }
681 
TEST_F(HidlTest,ServiceListByInterfaceTest)682 TEST_F(HidlTest, ServiceListByInterfaceTest) {
683     if (mode != BINDERIZED) {
684         // passthrough service manager does not know about services
685         return;
686     }
687 
688     EXPECT_OK(
689         manager->listByInterface(IParent::descriptor, [](const hidl_vec<hidl_string>& registered) {
690             std::set<std::string> registeredSet;
691 
692             for (size_t i = 0; i < registered.size(); i++) {
693                 registeredSet.insert(registered[i]);
694             }
695 
696             std::set<std::string> activeSet = {"parent", "child"};
697             std::set<std::string> difference;
698             std::set_difference(activeSet.begin(), activeSet.end(), registeredSet.begin(),
699                                 registeredSet.end(), std::inserter(difference, difference.begin()));
700 
701             EXPECT_EQ(difference.size(), 0u)
702                 << "service(s) not registered " << to_string(difference);
703         }));
704 }
705 
TEST_F(HidlTest,ServiceListManifestByInterfaceTest)706 TEST_F(HidlTest, ServiceListManifestByInterfaceTest) {
707     // system service
708     EXPECT_OK(manager->listManifestByInterface(IServiceManager::descriptor,
709                                                [](const hidl_vec<hidl_string>& registered) {
710                                                    ASSERT_EQ(1, registered.size());
711                                                    EXPECT_EQ("default", registered[0]);
712                                                }));
713 
714     // test service that will never be in a manifest
715     EXPECT_OK(manager->listManifestByInterface(
716         IParent::descriptor,
717         [](const hidl_vec<hidl_string>& registered) { ASSERT_EQ(0, registered.size()); }));
718     // invalid service
719     EXPECT_OK(manager->listManifestByInterface(
720         "!(*#&$ASDASLKDJasdlkjfads",
721         [](const hidl_vec<hidl_string>& registered) { ASSERT_EQ(0, registered.size()); }));
722 }
723 
TEST_F(HidlTest,SubInterfaceServiceRegistrationTest)724 TEST_F(HidlTest, SubInterfaceServiceRegistrationTest) {
725     using ::android::hardware::interfacesEqual;
726 
727     const std::string kInstanceName = "no-matter-what-it-is";
728     const std::string kOtherName = "something-different";
729 
730     sp<IChild> child = new SimpleChild();
731     sp<IParent> parent = new SimpleParent();
732 
733     EXPECT_EQ(::android::OK, child->registerAsService(kInstanceName));
734     EXPECT_EQ(::android::OK, child->registerAsService(kOtherName));
735 
736     EXPECT_TRUE(interfacesEqual(child, IChild::getService(kInstanceName)));
737     EXPECT_TRUE(interfacesEqual(child, IParent::getService(kInstanceName)));
738 
739     EXPECT_EQ(::android::OK, parent->registerAsService(kInstanceName));
740 
741     // FALSE since passthrough HAL will return an instance
742     // since binderized instance is nullptr
743     EXPECT_FALSE(interfacesEqual(parent, IChild::getService(kInstanceName)));
744     EXPECT_TRUE(interfacesEqual(parent, IParent::getService(kInstanceName)));
745 
746     // other instance name is unchanged
747     EXPECT_TRUE(interfacesEqual(child, IChild::getService(kOtherName)));
748     EXPECT_TRUE(interfacesEqual(child, IParent::getService(kOtherName)));
749 }
750 
TEST_F(HidlTest,ServiceNotificationTest)751 TEST_F(HidlTest, ServiceNotificationTest) {
752     if (mode != BINDERIZED) {
753         // service notifications aren't supported in passthrough mode
754         return;
755     }
756 
757     ServiceNotification* notification = new ServiceNotification();
758 
759     std::string instanceName = "test-instance";
760     EXPECT_TRUE(IParent::registerForNotifications(instanceName, notification));
761 
762     EXPECT_EQ(::android::OK, (new SimpleChild())->registerAsService(instanceName));
763     EXPECT_EQ(::android::OK, (new SimpleParent())->registerAsService(instanceName));
764 
765     std::unique_lock<std::mutex> lock(notification->mutex);
766 
767     notification->condition.wait_for(lock, std::chrono::milliseconds(500), [&notification]() {
768         return notification->getRegistrations().size() >= 2;
769     });
770 
771     std::vector<std::string> registrations = notification->getRegistrations();
772 
773     EXPECT_EQ(registrations.size(), 2u);
774 
775     EXPECT_EQ(to_string(registrations.data(), registrations.size()),
776               std::string("['") + IParent::descriptor + "/" + instanceName + "', '" +
777                   IParent::descriptor + "/" + instanceName + "']");
778 }
779 
TEST_F(HidlTest,ServiceUnregisterTest)780 TEST_F(HidlTest, ServiceUnregisterTest) {
781     const std::string instance = "some-instance-name";
782 
783     sp<ServiceNotification> sNotification = new ServiceNotification();
784 
785     // unregister all
786     EXPECT_TRUE(IParent::registerForNotifications(instance, sNotification));
787     EXPECT_TRUE(manager->unregisterForNotifications("", "", sNotification));
788 
789     // unregister all with instance name
790     EXPECT_TRUE(IParent::registerForNotifications(instance, sNotification));
791     EXPECT_TRUE(manager->unregisterForNotifications(IParent::descriptor, "", sNotification));
792 
793     // unregister package listener
794     EXPECT_TRUE(IParent::registerForNotifications("", sNotification));
795     EXPECT_TRUE(manager->unregisterForNotifications(IParent::descriptor, "", sNotification));
796 
797     // unregister listener for specific service and name
798     EXPECT_TRUE(IParent::registerForNotifications(instance, sNotification));
799     EXPECT_TRUE(manager->unregisterForNotifications(IParent::descriptor, instance, sNotification));
800 
801     EXPECT_FALSE(manager->unregisterForNotifications("", "", sNotification));
802 
803     // TODO(b/32837397): remote destructor is lazy
804     // wp<ServiceNotification> wNotification = sNotification;
805     // sNotification = nullptr;
806     // EXPECT_EQ(nullptr, wNotification.promote().get());
807 }
808 
TEST_F(HidlTest,ServiceAllNotificationTest)809 TEST_F(HidlTest, ServiceAllNotificationTest) {
810     ServiceNotification* notification = new ServiceNotification();
811 
812     std::string instanceOne = "test-instance-one";
813     std::string instanceTwo = "test-instance-two";
814     EXPECT_TRUE(ISimple::registerForNotifications("", notification));
815 
816     Simple* instanceA = new Simple(1);
817     EXPECT_EQ(::android::OK, instanceA->registerAsService(instanceOne));
818     Simple* instanceB = new Simple(2);
819     EXPECT_EQ(::android::OK, instanceB->registerAsService(instanceTwo));
820 
821     std::unique_lock<std::mutex> lock(notification->mutex);
822 
823     notification->condition.wait_for(lock, std::chrono::milliseconds(500), [&notification]() {
824         return notification->getRegistrations().size() >= 2;
825     });
826 
827     std::vector<std::string> registrations = notification->getRegistrations();
828     std::sort(registrations.begin(), registrations.end());
829 
830     EXPECT_EQ(registrations.size(), 2u);
831 
832     std::string descriptor = ISimple::descriptor;
833 
834     EXPECT_EQ(
835         to_string(registrations.data(), registrations.size()),
836         "['" + descriptor + "/" + instanceOne + "', '" + descriptor + "/" + instanceTwo + "']");
837 }
838 
TEST_F(HidlTest,DebugDumpTest)839 TEST_F(HidlTest, DebugDumpTest) {
840     EXPECT_OK(manager->debugDump([](const auto& list) {
841         for (const auto& debugInfo : list) {
842             FQName name;
843             EXPECT_TRUE(FQName::parse(debugInfo.interfaceName, &name)) << debugInfo.interfaceName;
844             EXPECT_TRUE(debugInfo.instanceName.size() > 0);
845         }
846     }));
847 }
848 
TEST_F(HidlTest,InterfacesEqualTest)849 TEST_F(HidlTest, InterfacesEqualTest) {
850     using android::hardware::interfacesEqual;
851 
852     sp<IParent> service1 = IParent::getService("child", mode == PASSTHROUGH /* getStub */);
853     sp<IParent> service2 = service1;
854 
855     // Passthrough services are reinstantiated whenever getService is called.
856     if (mode == BINDERIZED) {
857         service2 = IParent::getService("child");
858     }
859 
860     EXPECT_NE(nullptr, service1.get());
861     EXPECT_NE(nullptr, service2.get());
862     EXPECT_TRUE(interfacesEqual(service1, service2));
863 
864     sp<IChild> child = IChild::castFrom(service1);
865     EXPECT_NE(nullptr, child.get());  // it is actually a child
866 
867     EXPECT_TRUE(interfacesEqual(service1, child));
868     EXPECT_TRUE(interfacesEqual(service2, child));
869 }
870 
TEST_F(HidlTest,TestToken)871 TEST_F(HidlTest, TestToken) {
872     using android::hardware::interfacesEqual;
873 
874     Return<void> ret = tokenManager->createToken(manager, [&] (const hidl_vec<uint8_t> &token) {
875         Return<sp<IBase>> retService = tokenManager->get(token);
876         EXPECT_OK(retService);
877         if (retService.isOk()) {
878             sp<IBase> service = retService;
879             EXPECT_NE(nullptr, service.get());
880             sp<IServiceManager> retManager = IServiceManager::castFrom(service);
881 
882             EXPECT_TRUE(interfacesEqual(manager, retManager));
883         }
884 
885         Return<bool> unregisterRet = tokenManager->unregister(token);
886 
887         EXPECT_OK(unregisterRet);
888         if (unregisterRet.isOk()) {
889             EXPECT_TRUE(unregisterRet);
890         }
891     });
892     EXPECT_OK(ret);
893 }
894 
TEST_F(HidlTest,TestSharedMemory)895 TEST_F(HidlTest, TestSharedMemory) {
896     const uint8_t kValue = 0xCA;
897     hidl_memory mem_copy;
898     EXPECT_OK(ashmemAllocator->allocate(1024, [&](bool success, const hidl_memory& mem) {
899         EXPECT_EQ(success, true);
900 
901         sp<IMemory> memory = mapMemory(mem);
902 
903         EXPECT_NE(memory, nullptr);
904 
905         uint8_t* data = static_cast<uint8_t*>(static_cast<void*>(memory->getPointer()));
906         EXPECT_NE(data, nullptr);
907 
908         EXPECT_EQ(memory->getSize(), mem.size());
909 
910         memory->update();
911         memset(data, 0, memory->getSize());
912         memory->commit();
913 
914         mem_copy = mem;
915         memoryTest->fillMemory(mem, kValue);
916 
917         memory->read();
918         for (size_t i = 0; i < mem.size(); i++) {
919             EXPECT_EQ(kValue, data[i]);
920         }
921         memory->commit();
922     }));
923 
924     // Test the memory persists after the call
925     sp<IMemory> memory = mapMemory(mem_copy);
926 
927     EXPECT_NE(memory, nullptr);
928 
929     uint8_t* data = static_cast<uint8_t*>(static_cast<void*>(memory->getPointer()));
930     EXPECT_NE(data, nullptr);
931 
932     memory->read();
933     for (size_t i = 0; i < mem_copy.size(); i++) {
934         EXPECT_EQ(kValue, data[i]);
935     }
936     memory->commit();
937 
938     hidl_memory mem_move(std::move(mem_copy));
939     ASSERT_EQ(nullptr, mem_copy.handle());
940     ASSERT_EQ(0UL, mem_copy.size());
941     ASSERT_EQ("", mem_copy.name());
942 
943     memory.clear();
944     memory = mapMemory(mem_move);
945 
946     EXPECT_NE(memory, nullptr);
947 
948     data = static_cast<uint8_t*>(static_cast<void*>(memory->getPointer()));
949     EXPECT_NE(data, nullptr);
950 
951     memory->read();
952     for (size_t i = 0; i < mem_move.size(); i++) {
953         EXPECT_EQ(kValue, data[i]);
954     }
955     memory->commit();
956 }
957 
TEST_F(HidlTest,BatchSharedMemory)958 TEST_F(HidlTest, BatchSharedMemory) {
959     const uint8_t kValue = 0xCA;
960     const uint64_t kBatchSize = 2;
961     hidl_vec<hidl_memory> batchCopy;
962 
963     EXPECT_OK(ashmemAllocator->batchAllocate(1024, kBatchSize,
964         [&](bool success, const hidl_vec<hidl_memory>& batch) {
965             ASSERT_TRUE(success);
966             EXPECT_EQ(kBatchSize, batch.size());
967 
968             for (uint64_t i = 0; i < batch.size(); i++) {
969                 sp<IMemory> memory = mapMemory(batch[i]);
970 
971                 EXPECT_NE(nullptr, memory.get());
972 
973                 uint8_t* data = static_cast<uint8_t*>(static_cast<void*>(memory->getPointer()));
974                 EXPECT_NE(nullptr, data);
975 
976                 EXPECT_EQ(memory->getSize(), batch[i].size());
977 
978                 memory->update();
979                 memset(data, kValue, memory->getSize());
980                 memory->commit();
981             }
982 
983             batchCopy = batch;
984         }));
985 
986     for (uint64_t i = 0; i < batchCopy.size(); i++) {
987         // Test the memory persists after the call
988         sp<IMemory> memory = mapMemory(batchCopy[i]);
989 
990         EXPECT_NE(memory, nullptr);
991 
992         uint8_t* data = static_cast<uint8_t*>(static_cast<void*>(memory->getPointer()));
993         EXPECT_NE(data, nullptr);
994 
995         memory->read();
996         for (size_t i = 0; i < batchCopy[i].size(); i++) {
997             EXPECT_EQ(kValue, data[i]);
998         }
999         memory->commit();
1000     }
1001 }
1002 
TEST_F(HidlTest,MemoryBlock)1003 TEST_F(HidlTest, MemoryBlock) {
1004     const uint8_t kValue = 0xCA;
1005     using ::android::hardware::IBinder;
1006     using ::android::hardware::interfacesEqual;
1007     using ::android::hardware::toBinder;
1008 
1009     sp<HidlMemory> mem;
1010     EXPECT_OK(ashmemAllocator->allocate(1024, [&](bool success, const hidl_memory& _mem) {
1011         ASSERT_TRUE(success);
1012         mem = HidlMemory::getInstance(_mem);
1013     }));
1014     memoryTest->set(*mem);
1015     Return<sp<IMemoryToken>> tokenRet = memoryTest->get();
1016     EXPECT_OK(tokenRet);
1017     sp<IMemoryToken> token = tokenRet;
1018     EXPECT_NE(nullptr, token.get());
1019     EXPECT_OK(token->get([&](const hidl_memory& mem) {
1020         sp<IMemory> memory = mapMemory(mem);
1021 
1022         EXPECT_NE(nullptr, memory.get());
1023 
1024         uint8_t* data = static_cast<uint8_t*>(static_cast<void*>(memory->getPointer()));
1025         EXPECT_NE(data, nullptr);
1026 
1027         EXPECT_EQ(memory->getSize(), mem.size());
1028 
1029         memory->update();
1030         memset(data, 0, memory->getSize());
1031         memory->commit();
1032 
1033         memoryTest->fillMemory(mem, kValue);
1034         memory->commit();
1035     }));
1036     MemoryBlock blk = {token, 0x200 /* size */, 0x100 /* offset */};
1037     EXPECT_OK(memoryTest->haveSomeMemoryBlock(blk, [&](const MemoryBlock& blkBack) {
1038         sp<IMemoryToken> tokenBack = blkBack.token;
1039         EXPECT_TRUE(interfacesEqual(token, tokenBack));
1040         EXPECT_EQ(blkBack.size, 0x200ULL);
1041         EXPECT_EQ(blkBack.offset, 0x100ULL);
1042         blk = blkBack;
1043     }));
1044 
1045     sp<IMemoryToken> mtoken = blk.token;
1046     mtoken->get([&](const hidl_memory& mem) {
1047         sp<IMemory> memory = mapMemory(mem);
1048         uint8_t* data = static_cast<uint8_t*>(static_cast<void*>(memory->getPointer()));
1049         EXPECT_NE(data, nullptr);
1050         for (size_t i = 0; i < mem.size(); i++) {
1051             EXPECT_EQ(kValue, data[i]);
1052         }
1053     });
1054 }
1055 
TEST_F(HidlTest,NullSharedMemory)1056 TEST_F(HidlTest, NullSharedMemory) {
1057     hidl_memory memory{};
1058 
1059     EXPECT_EQ(nullptr, memory.handle());
1060 
1061     EXPECT_OK(memoryTest->haveSomeMemory(memory, [&](const hidl_memory &mem) {
1062         EXPECT_EQ(nullptr, mem.handle());
1063     }));
1064 }
1065 
TEST_F(HidlTest,FooGetDescriptorTest)1066 TEST_F(HidlTest, FooGetDescriptorTest) {
1067     EXPECT_OK(foo->interfaceDescriptor([&] (const auto &desc) {
1068         EXPECT_EQ(desc, mode == BINDERIZED
1069                 ? IBar::descriptor // service is actually IBar in binderized mode
1070                 : IFoo::descriptor); // dlopened, so service is IFoo
1071     }));
1072 }
1073 
TEST_F(HidlTest,FooConvertToBoolIfSmallTest)1074 TEST_F(HidlTest, FooConvertToBoolIfSmallTest) {
1075     hidl_vec<IFoo::Union> u = {
1076         {.intValue = 7}, {.intValue = 0}, {.intValue = 1}, {.intValue = 8},
1077     };
1078     EXPECT_OK(foo->convertToBoolIfSmall(IFoo::Discriminator::INT, u, [&](const auto& res) {
1079         ASSERT_EQ(4u, res.size());
1080         EXPECT_EQ(IFoo::Discriminator::INT, res[0].discriminator);
1081         EXPECT_EQ(u[0].intValue, res[0].value.intValue);
1082         EXPECT_EQ(IFoo::Discriminator::BOOL, res[1].discriminator);
1083         EXPECT_EQ(static_cast<bool>(u[1].intValue), res[1].value.boolValue);
1084         EXPECT_EQ(IFoo::Discriminator::BOOL, res[2].discriminator);
1085         EXPECT_EQ(static_cast<bool>(u[2].intValue), res[2].value.boolValue);
1086         EXPECT_EQ(IFoo::Discriminator::INT, res[3].discriminator);
1087         EXPECT_EQ(u[3].intValue, res[3].value.intValue);
1088     }));
1089 }
1090 
TEST_F(HidlTest,FooDoThisTest)1091 TEST_F(HidlTest, FooDoThisTest) {
1092     ALOGI("CLIENT call doThis.");
1093     EXPECT_OK(foo->doThis(1.0f));
1094     ALOGI("CLIENT doThis returned.");
1095 }
1096 
TEST_F(HidlTest,FooDoThatAndReturnSomethingTest)1097 TEST_F(HidlTest, FooDoThatAndReturnSomethingTest) {
1098     ALOGI("CLIENT call doThatAndReturnSomething.");
1099     int32_t result = foo->doThatAndReturnSomething(2.0f);
1100     ALOGI("CLIENT doThatAndReturnSomething returned %d.", result);
1101     EXPECT_EQ(result, 666);
1102 }
1103 
TEST_F(HidlTest,FooDoQuiteABitTest)1104 TEST_F(HidlTest, FooDoQuiteABitTest) {
1105     ALOGI("CLIENT call doQuiteABit");
1106     double something = foo->doQuiteABit(1, 2, 3.0f, 4.0);
1107     ALOGI("CLIENT doQuiteABit returned %f.", something);
1108     EXPECT_DOUBLE_EQ(something, 666.5);
1109 }
1110 
TEST_F(HidlTest,FooDoSomethingElseTest)1111 TEST_F(HidlTest, FooDoSomethingElseTest) {
1112 
1113     ALOGI("CLIENT call doSomethingElse");
1114     hidl_array<int32_t, 15> param;
1115     for (size_t i = 0; i < sizeof(param) / sizeof(param[0]); ++i) {
1116         param[i] = i;
1117     }
1118     EXPECT_OK(foo->doSomethingElse(param, [&](const auto &something) {
1119             ALOGI("CLIENT doSomethingElse returned %s.",
1120                   to_string(something).c_str());
1121             int32_t expect[] = {0, 2, 4, 6, 8, 10, 12, 14, 16, 18, 20, 22, 24,
1122                 26, 28, 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 1, 2};
1123             EXPECT_TRUE(isArrayEqual(something, expect, 32));
1124         }));
1125 }
1126 
TEST_F(HidlTest,FooDoStuffAndReturnAStringTest)1127 TEST_F(HidlTest, FooDoStuffAndReturnAStringTest) {
1128     ALOGI("CLIENT call doStuffAndReturnAString");
1129     EXPECT_OK(foo->doStuffAndReturnAString([&](const auto &something) {
1130             ALOGI("CLIENT doStuffAndReturnAString returned '%s'.",
1131                   something.c_str());
1132             EXPECT_STREQ(something.c_str(), "Hello, world");
1133             EXPECT_EQ(strlen("Hello, world"), something.size());
1134         }));
1135 }
1136 
TEST_F(HidlTest,FooMapThisVectorTest)1137 TEST_F(HidlTest, FooMapThisVectorTest) {
1138     hidl_vec<int32_t> vecParam;
1139     vecParam.resize(10);
1140     for (size_t i = 0; i < 10; ++i) {
1141         vecParam[i] = i;
1142     }
1143     EXPECT_OK(foo->mapThisVector(vecParam, [&](const auto &something) {
1144             ALOGI("CLIENT mapThisVector returned %s.",
1145                   to_string(something).c_str());
1146             int32_t expect[] = {0, 2, 4, 6, 8, 10, 12, 14, 16, 18};
1147             EXPECT_TRUE(isArrayEqual(something, expect, something.size()));
1148         }));
1149 }
1150 
TEST_F(HidlTest,WrapTest)1151 TEST_F(HidlTest, WrapTest) {
1152     if (!gHidlEnvironment->enableDelayMeasurementTests) {
1153         return;
1154     }
1155 
1156     using ::android::hardware::tests::foo::V1_0::BnHwSimple;
1157     using ::android::hardware::tests::foo::V1_0::BsSimple;
1158     using ::android::hardware::tests::foo::V1_0::BpHwSimple;
1159     using ::android::hardware::details::HidlInstrumentor;
1160     nsecs_t now;
1161     int i = 0;
1162 
1163     now = systemTime();
1164     new BnHwSimple(new Simple(1));
1165     EXPECT_LT(systemTime() - now, 2000000) << "    for BnHwSimple(nonnull)";
1166 
1167     now = systemTime();
1168     new BnHwSimple(nullptr);
1169     EXPECT_LT(systemTime() - now, 2000000) << "    for BnHwSimple(null)";
1170 
1171     now = systemTime();
1172     new BsSimple(new Simple(1));
1173     EXPECT_LT(systemTime() - now, 2000000) << "    for BsSimple(nonnull)";
1174 
1175     now = systemTime();
1176     new BsSimple(nullptr);
1177     EXPECT_LT(systemTime() - now, 2000000) << "    for BsSimple(null)";
1178 
1179     now = systemTime();
1180     new BpHwSimple(nullptr);
1181     EXPECT_LT(systemTime() - now, 2000000) << "    for BpHwSimple(null)";
1182 
1183     now = systemTime();
1184     new ::android::hardware::details::HidlInstrumentor("", "");
1185     EXPECT_LT(systemTime() - now, 2000000) << "    for HidlInstrumentor";
1186 
1187     now = systemTime();
1188     i++;
1189     EXPECT_LT(systemTime() - now,    1000) << "    for nothing";
1190 }
1191 
TEST_F(HidlTest,FooCallMeTest)1192 TEST_F(HidlTest, FooCallMeTest) {
1193     if (!gHidlEnvironment->enableDelayMeasurementTests) {
1194         return;
1195     }
1196     sp<IFooCallback> fooCb = new FooCallback();
1197     ALOGI("CLIENT call callMe.");
1198     // callMe is oneway, should return instantly.
1199     nsecs_t now;
1200     now = systemTime();
1201     EXPECT_OK(foo->callMe(fooCb));
1202     EXPECT_LT(systemTime() - now, ONEWAY_TOLERANCE_NS);
1203     ALOGI("CLIENT callMe returned.");
1204 
1205     // Bar::callMe will invoke three methods on FooCallback; one will return
1206     // right away (even though it is a two-way method); the second one will
1207     // block Bar for DELAY_S seconds, and the third one will return
1208     // to Bar right away (is oneway) but will itself block for DELAY_S seconds.
1209     // We need a way to make sure that these three things have happened within
1210     // 2*DELAY_S seconds plus some small tolerance.
1211     //
1212     // Method FooCallback::reportResults() takes a timeout parameter.  It blocks for
1213     // that length of time, while waiting for the three methods above to
1214     // complete.  It returns the information of whether each method was invoked,
1215     // as well as how long the body of the method took to execute.  We verify
1216     // the information returned by reportResults() against the timeout we pass (which
1217     // is long enough for the method bodies to execute, plus tolerance), and
1218     // verify that eachof them executed, as expected, and took the length of
1219     // time to execute that we also expect.
1220 
1221     const nsecs_t waitNs =
1222         3 * DELAY_NS + TOLERANCE_NS;
1223     const nsecs_t reportResultsNs =
1224         2 * DELAY_NS + TOLERANCE_NS;
1225 
1226     ALOGI("CLIENT: Waiting for up to %" PRId64 " seconds.",
1227           nanoseconds_to_seconds(waitNs));
1228 
1229     fooCb->reportResults(waitNs,
1230                 [&](int64_t timeLeftNs,
1231                     const hidl_array<IFooCallback::InvokeInfo, 3> &invokeResults) {
1232         ALOGI("CLIENT: FooCallback::reportResults() is returning data.");
1233         ALOGI("CLIENT: Waited for %" PRId64 " milliseconds.",
1234               nanoseconds_to_milliseconds(waitNs - timeLeftNs));
1235 
1236         EXPECT_LE(waitNs - timeLeftNs, reportResultsNs)
1237                 << "waited for "
1238                 << (timeLeftNs >= 0 ? "" : "more than ")
1239                 << (timeLeftNs >= 0 ? (waitNs - timeLeftNs) : waitNs)
1240                 << "ns, expect to finish in "
1241                 << reportResultsNs << " ns";
1242 
1243         // two-way method, was supposed to return right away
1244         EXPECT_TRUE(invokeResults[0].invoked);
1245         EXPECT_LE(invokeResults[0].timeNs, invokeResults[0].callerBlockedNs);
1246         EXPECT_LE(invokeResults[0].callerBlockedNs, TOLERANCE_NS);
1247         // two-way method, was supposed to block caller for DELAY_NS
1248         EXPECT_TRUE(invokeResults[1].invoked);
1249         EXPECT_LE(invokeResults[1].timeNs, invokeResults[1].callerBlockedNs);
1250         EXPECT_LE(invokeResults[1].callerBlockedNs,
1251                     DELAY_NS + TOLERANCE_NS);
1252         // one-way method, do not block caller, but body was supposed to block for DELAY_NS
1253         EXPECT_TRUE(invokeResults[2].invoked);
1254         EXPECT_LE(invokeResults[2].callerBlockedNs, ONEWAY_TOLERANCE_NS);
1255         EXPECT_LE(invokeResults[2].timeNs, DELAY_NS + TOLERANCE_NS);
1256     });
1257 }
1258 
1259 
1260 
TEST_F(HidlTest,FooUseAnEnumTest)1261 TEST_F(HidlTest, FooUseAnEnumTest) {
1262     ALOGI("CLIENT call useAnEnum.");
1263     IFoo::SomeEnum sleepy = foo->useAnEnum(IFoo::SomeEnum::quux);
1264     ALOGI("CLIENT useAnEnum returned %u", (unsigned)sleepy);
1265     EXPECT_EQ(sleepy, IFoo::SomeEnum::goober);
1266 }
1267 
TEST_F(HidlTest,FooHaveAGooberTest)1268 TEST_F(HidlTest, FooHaveAGooberTest) {
1269     hidl_vec<IFoo::Goober> gooberVecParam;
1270     gooberVecParam.resize(2);
1271     gooberVecParam[0].name = "Hello";
1272     gooberVecParam[1].name = "World";
1273 
1274     ALOGI("CLIENT call haveAGooberVec.");
1275     EXPECT_OK(foo->haveAGooberVec(gooberVecParam));
1276     ALOGI("CLIENT haveAGooberVec returned.");
1277 
1278     ALOGI("CLIENT call haveaGoober.");
1279     EXPECT_OK(foo->haveAGoober(gooberVecParam[0]));
1280     ALOGI("CLIENT haveaGoober returned.");
1281 
1282     ALOGI("CLIENT call haveAGooberArray.");
1283     hidl_array<IFoo::Goober, 20> gooberArrayParam;
1284     EXPECT_OK(foo->haveAGooberArray(gooberArrayParam));
1285     ALOGI("CLIENT haveAGooberArray returned.");
1286 }
1287 
TEST_F(HidlTest,FooHaveATypeFromAnotherFileTest)1288 TEST_F(HidlTest, FooHaveATypeFromAnotherFileTest) {
1289     ALOGI("CLIENT call haveATypeFromAnotherFile.");
1290     Abc abcParam{};
1291     abcParam.x = "alphabet";
1292     abcParam.y = 3.14f;
1293     native_handle_t *handle = native_handle_create(0, 0);
1294     abcParam.z = handle;
1295     EXPECT_OK(foo->haveATypeFromAnotherFile(abcParam));
1296     ALOGI("CLIENT haveATypeFromAnotherFile returned.");
1297     native_handle_delete(handle);
1298     abcParam.z = nullptr;
1299 }
1300 
TEST_F(HidlTest,FooHaveSomeStringsTest)1301 TEST_F(HidlTest, FooHaveSomeStringsTest) {
1302     ALOGI("CLIENT call haveSomeStrings.");
1303     hidl_array<hidl_string, 3> stringArrayParam;
1304     stringArrayParam[0] = "What";
1305     stringArrayParam[1] = "a";
1306     stringArrayParam[2] = "disaster";
1307     EXPECT_OK(foo->haveSomeStrings(
1308                 stringArrayParam,
1309                 [&](const auto &out) {
1310                     ALOGI("CLIENT haveSomeStrings returned %s.",
1311                           to_string(out).c_str());
1312 
1313                     EXPECT_EQ(to_string(out), "['Hello', 'World']");
1314                 }));
1315     ALOGI("CLIENT haveSomeStrings returned.");
1316 }
1317 
TEST_F(HidlTest,FooHaveAStringVecTest)1318 TEST_F(HidlTest, FooHaveAStringVecTest) {
1319     ALOGI("CLIENT call haveAStringVec.");
1320     hidl_vec<hidl_string> stringVecParam;
1321     stringVecParam.resize(3);
1322     stringVecParam[0] = "What";
1323     stringVecParam[1] = "a";
1324     stringVecParam[2] = "disaster";
1325     EXPECT_OK(foo->haveAStringVec(
1326                 stringVecParam,
1327                 [&](const auto &out) {
1328                     ALOGI("CLIENT haveAStringVec returned %s.",
1329                           to_string(out).c_str());
1330 
1331                     EXPECT_EQ(to_string(out), "['Hello', 'World']");
1332                 }));
1333     ALOGI("CLIENT haveAStringVec returned.");
1334 }
1335 
TEST_F(HidlTest,FooTransposeMeTest)1336 TEST_F(HidlTest, FooTransposeMeTest) {
1337     hidl_array<float, 3, 5> in;
1338     float k = 1.0f;
1339     for (size_t i = 0; i < 3; ++i) {
1340         for (size_t j = 0; j < 5; ++j, ++k) {
1341             in[i][j] = k;
1342         }
1343     }
1344 
1345     ALOGI("CLIENT call transposeMe(%s).", to_string(in).c_str());
1346 
1347     EXPECT_OK(foo->transposeMe(
1348                 in,
1349                 [&](const auto &out) {
1350                     ALOGI("CLIENT transposeMe returned %s.",
1351                           to_string(out).c_str());
1352 
1353                     for (size_t i = 0; i < 3; ++i) {
1354                         for (size_t j = 0; j < 5; ++j) {
1355                             EXPECT_EQ(out[j][i], in[i][j]);
1356                         }
1357                     }
1358                 }));
1359 }
1360 
TEST_F(HidlTest,FooCallingDrWhoTest)1361 TEST_F(HidlTest, FooCallingDrWhoTest) {
1362     IFoo::MultiDimensional in;
1363 
1364     size_t k = 0;
1365     for (size_t i = 0; i < 5; ++i) {
1366         for (size_t j = 0; j < 3; ++j, ++k) {
1367             in.quuxMatrix[i][j].first = ("First " + std::to_string(k)).c_str();
1368             in.quuxMatrix[i][j].last = ("Last " + std::to_string(15-k)).c_str();
1369         }
1370     }
1371 
1372     ALOGI("CLIENT call callingDrWho(%s).",
1373           MultiDimensionalToString(in).c_str());
1374 
1375     EXPECT_OK(foo->callingDrWho(
1376                 in,
1377                 [&](const auto &out) {
1378                     ALOGI("CLIENT callingDrWho returned %s.",
1379                           MultiDimensionalToString(out).c_str());
1380 
1381                     size_t k = 0;
1382                     for (size_t i = 0; i < 5; ++i) {
1383                         for (size_t j = 0; j < 3; ++j, ++k) {
1384                             EXPECT_STREQ(
1385                                 out.quuxMatrix[i][j].first.c_str(),
1386                                 in.quuxMatrix[4 - i][2 - j].last.c_str());
1387 
1388                             EXPECT_STREQ(
1389                                 out.quuxMatrix[i][j].last.c_str(),
1390                                 in.quuxMatrix[4 - i][2 - j].first.c_str());
1391                         }
1392                     }
1393                 }));
1394 }
1395 
numberToEnglish(int x)1396 static std::string numberToEnglish(int x) {
1397     static const char *const kDigits[] = {
1398         "zero",
1399         "one",
1400         "two",
1401         "three",
1402         "four",
1403         "five",
1404         "six",
1405         "seven",
1406         "eight",
1407         "nine",
1408     };
1409 
1410     if (x < 0) {
1411         return "negative " + numberToEnglish(-x);
1412     }
1413 
1414     if (x < 10) {
1415         return kDigits[x];
1416     }
1417 
1418     if (x <= 15) {
1419         static const char *const kSpecialTens[] = {
1420             "ten", "eleven", "twelve", "thirteen", "fourteen", "fifteen",
1421         };
1422 
1423         return kSpecialTens[x - 10];
1424     }
1425 
1426     if (x < 20) {
1427         return std::string(kDigits[x % 10]) + "teen";
1428     }
1429 
1430     if (x < 100) {
1431         static const char *const kDecades[] = {
1432             "twenty", "thirty", "forty", "fifty", "sixty", "seventy",
1433             "eighty", "ninety",
1434         };
1435 
1436         return std::string(kDecades[x / 10 - 2]) + kDigits[x % 10];
1437     }
1438 
1439     return "positively huge!";
1440 }
1441 
TEST_F(HidlTest,FooTransposeTest)1442 TEST_F(HidlTest, FooTransposeTest) {
1443     IFoo::StringMatrix5x3 in;
1444 
1445     for (int i = 0; i < 5; ++i) {
1446         for (int j = 0; j < 3; ++j) {
1447             in.s[i][j] = numberToEnglish(3 * i + j + 1).c_str();
1448         }
1449     }
1450 
1451     EXPECT_OK(foo->transpose(
1452                 in,
1453                 [&](const auto &out) {
1454                     EXPECT_EQ(
1455                         to_string(out),
1456                         "[['one', 'four', 'seven', 'ten', 'thirteen'], "
1457                          "['two', 'five', 'eight', 'eleven', 'fourteen'], "
1458                          "['three', 'six', 'nine', 'twelve', 'fifteen']]");
1459                 }));
1460 }
1461 
TEST_F(HidlTest,FooTranspose2Test)1462 TEST_F(HidlTest, FooTranspose2Test) {
1463     hidl_array<hidl_string, 5, 3> in;
1464 
1465     for (int i = 0; i < 5; ++i) {
1466         for (int j = 0; j < 3; ++j) {
1467             in[i][j] = numberToEnglish(3 * i + j + 1).c_str();
1468         }
1469     }
1470 
1471     EXPECT_OK(foo->transpose2(
1472                 in,
1473                 [&](const auto &out) {
1474                     EXPECT_EQ(
1475                         to_string(out),
1476                         "[['one', 'four', 'seven', 'ten', 'thirteen'], "
1477                          "['two', 'five', 'eight', 'eleven', 'fourteen'], "
1478                          "['three', 'six', 'nine', 'twelve', 'fifteen']]");
1479                 }));
1480 }
1481 
TEST_F(HidlTest,FooNullNativeHandleTest)1482 TEST_F(HidlTest, FooNullNativeHandleTest) {
1483     Abc xyz;
1484     xyz.z = nullptr;
1485     EXPECT_OK(bar->expectNullHandle(nullptr, xyz, [](bool hIsNull, bool xyzHasNull) {
1486         EXPECT_TRUE(hIsNull);
1487         EXPECT_TRUE(xyzHasNull);
1488     }));
1489 }
1490 
TEST_F(HidlTest,FooNullCallbackTest)1491 TEST_F(HidlTest, FooNullCallbackTest) {
1492     EXPECT_OK(foo->echoNullInterface(nullptr,
1493                 [](const auto receivedNull, const auto &intf) {
1494                    EXPECT_TRUE(receivedNull);
1495                    EXPECT_EQ(intf, nullptr);
1496                 }));
1497 }
1498 
TEST_F(HidlTest,StructWithFmq)1499 TEST_F(HidlTest, StructWithFmq) {
1500     IFoo::WithFmq w = {
1501         .scatterGathered =
1502             {
1503                 .descSync = {std::vector<GrantorDescriptor>(), native_handle_create(0, 1), 5},
1504             },
1505         .containsPointer =
1506             {
1507                 .descSync = {std::vector<GrantorDescriptor>(), native_handle_create(0, 1), 5},
1508                 .foo = nullptr,
1509             },
1510     };
1511     EXPECT_OK(foo->repeatWithFmq(w, [&](const IFoo::WithFmq& returned) {
1512         checkMQDescriptorEquality(w.scatterGathered.descSync, returned.scatterGathered.descSync);
1513         checkMQDescriptorEquality(w.containsPointer.descSync, returned.containsPointer.descSync);
1514 
1515         EXPECT_EQ(w.containsPointer.foo, returned.containsPointer.foo);
1516     }));
1517 }
1518 
TEST_F(HidlTest,FooSendVecTest)1519 TEST_F(HidlTest, FooSendVecTest) {
1520     hidl_vec<uint8_t> in;
1521     in.resize(16);
1522     for (size_t i = 0; i < in.size(); ++i) {
1523         in[i] = i;
1524     }
1525 
1526     EXPECT_OK(foo->sendVec(
1527                 in,
1528                 [&](const auto &out) {
1529                     EXPECT_EQ(to_string(in), to_string(out));
1530                 }));
1531 }
1532 
TEST_F(HidlTest,FooSendEmptyVecTest)1533 TEST_F(HidlTest, FooSendEmptyVecTest) {
1534     hidl_vec<uint8_t> in;
1535     EXPECT_OK(foo->sendVec(
1536                 in,
1537                 [&](const auto &out) {
1538                     EXPECT_EQ(out.size(), 0u);
1539                     EXPECT_EQ(to_string(in), to_string(out));
1540                 }));
1541 }
1542 
TEST_F(HidlTest,FooHaveAVectorOfInterfacesTest)1543 TEST_F(HidlTest, FooHaveAVectorOfInterfacesTest) {
1544     hidl_vec<sp<ISimple> > in;
1545     in.resize(16);
1546     for (size_t i = 0; i < in.size(); ++i) {
1547         in[i] = new Simple(i);
1548     }
1549 
1550     EXPECT_OK(foo->haveAVectorOfInterfaces(
1551                 in,
1552                 [&](const auto &out) {
1553                     EXPECT_EQ(in.size(), out.size());
1554                     for (size_t i = 0; i < in.size(); ++i) {
1555                         int32_t inCookie = in[i]->getCookie();
1556                         int32_t outCookie = out[i]->getCookie();
1557                         EXPECT_EQ(inCookie, outCookie);
1558                     }
1559                 }));
1560 }
1561 
TEST_F(HidlTest,FooHaveAVectorOfGenericInterfacesTest)1562 TEST_F(HidlTest, FooHaveAVectorOfGenericInterfacesTest) {
1563 
1564     hidl_vec<sp<::android::hidl::base::V1_0::IBase> > in;
1565     in.resize(16);
1566     for (size_t i = 0; i < in.size(); ++i) {
1567         sp<ISimple> s = new Simple(i);
1568         in[i] = s;
1569     }
1570 
1571     EXPECT_OK(foo->haveAVectorOfGenericInterfaces(
1572                 in,
1573                 [&](const auto &out) {
1574                     EXPECT_EQ(in.size(), out.size());
1575 
1576                     EXPECT_OK(out[0]->interfaceDescriptor([](const auto &name) {
1577                         ASSERT_STREQ(name.c_str(), ISimple::descriptor);
1578                     }));
1579                     for (size_t i = 0; i < in.size(); ++i) {
1580                         sp<ISimple> inSimple = ISimple::castFrom(in[i]);
1581                         sp<ISimple> outSimple = ISimple::castFrom(out[i]);
1582 
1583                         ASSERT_NE(inSimple.get(), nullptr);
1584                         ASSERT_NE(outSimple.get(), nullptr);
1585                         EXPECT_EQ(in[i], inSimple.get()); // pointers must be equal!
1586                         int32_t inCookie = inSimple->getCookie();
1587                         int32_t outCookie = outSimple->getCookie();
1588                         EXPECT_EQ(inCookie, outCookie);
1589                     }
1590                 }));
1591 }
1592 
TEST_F(HidlTest,FooStructEmbeddedHandleTest)1593 TEST_F(HidlTest, FooStructEmbeddedHandleTest) {
1594     EXPECT_OK(foo->createMyHandle([&](const auto &myHandle) {
1595         EXPECT_EQ(myHandle.guard, 666);
1596         const native_handle_t* handle = myHandle.h.getNativeHandle();
1597         EXPECT_EQ(handle->numInts, 10);
1598         EXPECT_EQ(handle->numFds, 0);
1599         int data[] = {2,3,5,7,11,13,17,19,21,23};
1600         EXPECT_ARRAYEQ(handle->data, data, 10);
1601     }));
1602 
1603     EXPECT_OK(foo->closeHandles());
1604 }
1605 
TEST_F(HidlTest,FooHandleVecTest)1606 TEST_F(HidlTest, FooHandleVecTest) {
1607     EXPECT_OK(foo->createHandles(3, [&](const auto &handles) {
1608         EXPECT_EQ(handles.size(), 3ull);
1609         int data[] = {2,3,5,7,11,13,17,19,21,23};
1610         for (size_t i = 0; i < 3; i++) {
1611             const native_handle_t *h = handles[i];
1612             EXPECT_EQ(h->numInts, 10) << " for element " << i;
1613             EXPECT_EQ(h->numFds, 0) << " for element " << i;
1614             EXPECT_ARRAYEQ(h->data, data, 10);
1615         }
1616     }));
1617 
1618     EXPECT_OK(foo->closeHandles());
1619 }
1620 
TEST_F(HidlTest,BazStructWithInterfaceTest)1621 TEST_F(HidlTest, BazStructWithInterfaceTest) {
1622     using ::android::hardware::interfacesEqual;
1623 
1624     const std::string testString = "Hello, World!";
1625     const std::array<int8_t, 7> testArray{-1, -2, -3, 0, 1, 2, 3};
1626     const hidl_vec<hidl_string> testStrings{"So", "Many", "Words"};
1627     const hidl_vec<bool> testVector{false, true, false, true, true, true};
1628 
1629     hidl_vec<bool> goldenResult(testVector.size());
1630     for (size_t i = 0; i < testVector.size(); i++) {
1631         goldenResult[i] = !testVector[i];
1632     }
1633 
1634     IBaz::StructWithInterface swi;
1635     swi.number = 42;
1636     swi.array = testArray;
1637     swi.oneString = testString;
1638     swi.vectorOfStrings = testStrings;
1639     swi.iface = baz;
1640 
1641     EXPECT_OK(baz->haveSomeStructWithInterface(swi, [&](const IBaz::StructWithInterface& swiBack) {
1642         EXPECT_EQ(42, swiBack.number);
1643         for (size_t i = 0; i < testArray.size(); i++) {
1644             EXPECT_EQ(testArray[i], swiBack.array[i]);
1645         }
1646 
1647         EXPECT_EQ(testString, std::string(swiBack.oneString));
1648         EXPECT_EQ(testStrings, swiBack.vectorOfStrings);
1649 
1650         EXPECT_TRUE(interfacesEqual(swi.iface, swiBack.iface));
1651     }));
1652 }
1653 
1654 struct HidlDeathRecipient : hidl_death_recipient {
1655     std::mutex mutex;
1656     std::condition_variable condition;
1657     wp<IBase> who;
1658     bool fired = false;
1659     uint64_t cookie = 0;
1660 
serviceDiedHidlDeathRecipient1661     void serviceDied(uint64_t cookie, const wp<IBase>& who) override {
1662         std::unique_lock<std::mutex> lock(mutex);
1663         fired = true;
1664         this->cookie = cookie;
1665         this->who = who;
1666         condition.notify_one();
1667     };
1668 };
1669 
TEST_F(HidlTest,DeathRecipientTest)1670 TEST_F(HidlTest, DeathRecipientTest) {
1671     sp<HidlDeathRecipient> recipient = new HidlDeathRecipient();
1672     sp<HidlDeathRecipient> recipient2 = new HidlDeathRecipient();
1673 
1674     EXPECT_TRUE(dyingBaz->linkToDeath(recipient, 0x1481));
1675 
1676     EXPECT_TRUE(dyingBaz->linkToDeath(recipient, 0x1482));
1677     EXPECT_TRUE(dyingBaz->unlinkToDeath(recipient));
1678 
1679     EXPECT_TRUE(dyingBaz->linkToDeath(recipient2, 0x2592));
1680     EXPECT_TRUE(dyingBaz->unlinkToDeath(recipient2));
1681 
1682     if (mode != BINDERIZED) {
1683         // Passthrough doesn't fire, nor does it keep state of
1684         // registered death recipients (so it won't fail unlinking
1685         // the same recipient twice).
1686         return;
1687     }
1688 
1689     EXPECT_FALSE(dyingBaz->unlinkToDeath(recipient2));
1690     auto ret = dyingBaz->dieNow();
1691     if (!ret.isOk()) {
1692         //do nothing, this is expected
1693     }
1694 
1695     // further calls fail
1696     EXPECT_FAIL(dyingBaz->ping());
1697 
1698     std::unique_lock<std::mutex> lock(recipient->mutex);
1699     recipient->condition.wait_for(lock, std::chrono::milliseconds(100), [&recipient]() {
1700             return recipient->fired;
1701     });
1702     EXPECT_TRUE(recipient->fired);
1703     EXPECT_EQ(recipient->cookie, 0x1481u);
1704     EXPECT_EQ(recipient->who, dyingBaz);
1705     std::unique_lock<std::mutex> lock2(recipient2->mutex);
1706     recipient2->condition.wait_for(lock2, std::chrono::milliseconds(100), [&recipient2]() {
1707             return recipient2->fired;
1708     });
1709     EXPECT_FALSE(recipient2->fired);
1710 
1711     // Verify servicemanager dropped its reference too
1712     sp<IBaz> deadBaz = IBaz::getService("dyingBaz", false);
1713     if (deadBaz != nullptr) {
1714         // Got a passthrough
1715         EXPECT_FALSE(deadBaz->isRemote());
1716     }
1717 }
1718 
TEST_F(HidlTest,BarThisIsNewTest)1719 TEST_F(HidlTest, BarThisIsNewTest) {
1720     // Now the tricky part, get access to the derived interface.
1721     ALOGI("CLIENT call thisIsNew.");
1722     EXPECT_OK(bar->thisIsNew());
1723     ALOGI("CLIENT thisIsNew returned.");
1724 }
1725 
expectGoodChild(sp<IChild> child)1726 static void expectGoodChild(sp<IChild> child) {
1727     ASSERT_NE(child.get(), nullptr);
1728     child = IChild::castFrom(child);
1729     ASSERT_NE(child.get(), nullptr);
1730     EXPECT_OK(child->doGrandparent());
1731     EXPECT_OK(child->doParent());
1732     EXPECT_OK(child->doChild());
1733 }
1734 
expectGoodParent(sp<IParent> parent)1735 static void expectGoodParent(sp<IParent> parent) {
1736     ASSERT_NE(parent.get(), nullptr);
1737     parent = IParent::castFrom(parent);
1738     ASSERT_NE(parent.get(), nullptr);
1739     EXPECT_OK(parent->doGrandparent());
1740     EXPECT_OK(parent->doParent());
1741     sp<IChild> child = IChild::castFrom(parent);
1742     expectGoodChild(child);
1743 }
1744 
expectGoodGrandparent(sp<IGrandparent> grandparent)1745 static void expectGoodGrandparent(sp<IGrandparent> grandparent) {
1746     ASSERT_NE(grandparent.get(), nullptr);
1747     grandparent = IGrandparent::castFrom(grandparent);
1748     ASSERT_NE(grandparent.get(), nullptr);
1749     EXPECT_OK(grandparent->doGrandparent());
1750     sp<IParent> parent = IParent::castFrom(grandparent);
1751     expectGoodParent(parent);
1752 }
1753 
TEST_F(HidlTest,FooHaveAnInterfaceTest)1754 TEST_F(HidlTest, FooHaveAnInterfaceTest) {
1755     sp<ISimple> in = new Complicated(42);
1756     Return<sp<ISimple>> ret = bar->haveAInterface(in);
1757     EXPECT_OK(ret);
1758     sp<ISimple> out = ret;
1759     ASSERT_NE(out.get(), nullptr);
1760     EXPECT_EQ(out->getCookie(), 42);
1761     EXPECT_OK(out->customVecInt([](const auto &) { }));
1762     EXPECT_OK(out->customVecStr([](const auto &) { }));
1763     EXPECT_OK(out->ping());
1764     EXPECT_OK(out->mystr([](const auto &) { }));
1765     EXPECT_OK(out->myhandle([](const auto &) { }));
1766 }
1767 
TEST_F(HidlTest,InheritRemoteGrandparentTest)1768 TEST_F(HidlTest, InheritRemoteGrandparentTest) {
1769     Return<sp<IGrandparent>> ret = fetcher->getGrandparent(true);
1770     EXPECT_OK(ret);
1771     expectGoodGrandparent(ret);
1772 }
1773 
TEST_F(HidlTest,InheritLocalGrandparentTest)1774 TEST_F(HidlTest, InheritLocalGrandparentTest) {
1775     Return<sp<IGrandparent>> ret = fetcher->getGrandparent(false);
1776     EXPECT_OK(ret);
1777     expectGoodGrandparent(ret);
1778 }
1779 
TEST_F(HidlTest,InheritRemoteParentTest)1780 TEST_F(HidlTest, InheritRemoteParentTest) {
1781     Return<sp<IParent>> ret = fetcher->getParent(true);
1782     EXPECT_OK(ret);
1783     expectGoodParent(ret);
1784 }
1785 
TEST_F(HidlTest,InheritLocalParentTest)1786 TEST_F(HidlTest, InheritLocalParentTest) {
1787     Return<sp<IParent>> ret = fetcher->getParent(false);
1788     EXPECT_OK(ret);
1789     expectGoodParent(ret);
1790 }
1791 
TEST_F(HidlTest,InheritRemoteChildTest)1792 TEST_F(HidlTest, InheritRemoteChildTest) {
1793     Return<sp<IChild>> ret = fetcher->getChild(true);
1794     EXPECT_OK(ret);
1795     expectGoodChild(ret);
1796 }
1797 
TEST_F(HidlTest,InheritLocalChildTest)1798 TEST_F(HidlTest, InheritLocalChildTest) {
1799     Return<sp<IChild>> ret = fetcher->getChild(false);
1800     EXPECT_OK(ret);
1801     expectGoodChild(ret);
1802 }
1803 
TEST_F(HidlTest,TestArrayDimensionality)1804 TEST_F(HidlTest, TestArrayDimensionality) {
1805     hidl_array<int, 2> oneDim;
1806     hidl_array<int, 2, 3> twoDim;
1807     hidl_array<int, 2, 3, 4> threeDim;
1808 
1809     EXPECT_EQ(oneDim.size(), 2u);
1810     EXPECT_EQ(twoDim.size(), std::make_tuple(2u, 3u));
1811     EXPECT_EQ(threeDim.size(), std::make_tuple(2u, 3u, 4u));
1812 }
1813 
TEST_F(HidlTest,StructEqualTest)1814 TEST_F(HidlTest, StructEqualTest) {
1815     using G = IFoo::Goober;
1816     using F = IFoo::Fumble;
1817     G g1{
1818         .q = 42,
1819         .name = "The Ultimate Question of Life, the Universe, and Everything",
1820         .address = "North Pole",
1821         .numbers = std::array<double, 10>{ {1, 2, 3, 4, 5, 6, 7, 8, 9, 10} },
1822         .fumble = F{.data = {.data = 50}},
1823         .gumble = F{.data = {.data = 60}}
1824     };
1825     G g2{
1826         .q = 42,
1827         .name = "The Ultimate Question of Life, the Universe, and Everything",
1828         .address = "North Pole",
1829         .numbers = std::array<double, 10>{ {1, 2, 3, 4, 5, 6, 7, 8, 9, 10} },
1830         .fumble = F{.data = {.data = 50}},
1831         .gumble = F{.data = {.data = 60}}
1832     };
1833     G g3{
1834         .q = 42,
1835         .name = "The Ultimate Question of Life, the Universe, and Everything",
1836         .address = "North Pole",
1837         .numbers = std::array<double, 10>{ {1, 2, 3, 4, 5, 6, 7, 8, 9, 10} },
1838         .fumble = F{.data = {.data = 50}},
1839         .gumble = F{.data = {.data = 61}}
1840     };
1841     // explicitly invoke operator== here.
1842     EXPECT_TRUE(g1 == g2);
1843     EXPECT_TRUE(g1 != g3);
1844 }
1845 
TEST_F(HidlTest,EnumEqualTest)1846 TEST_F(HidlTest, EnumEqualTest) {
1847     using E = IFoo::SomeEnum;
1848     E e1 = E::quux;
1849     E e2 = E::quux;
1850     E e3 = E::goober;
1851     // explicitly invoke operator== here.
1852     EXPECT_TRUE(e1 == e2);
1853     EXPECT_TRUE(e1 != e3);
1854 }
1855 
TEST_F(HidlTest,InvalidTransactionTest)1856 TEST_F(HidlTest, InvalidTransactionTest) {
1857     using ::android::hardware::tests::bar::V1_0::BnHwBar;
1858     using ::android::hardware::IBinder;
1859     using ::android::hardware::Parcel;
1860 
1861     sp<IBinder> binder = ::android::hardware::toBinder(bar);
1862 
1863     Parcel request, reply;
1864     EXPECT_EQ(::android::OK, request.writeInterfaceToken(IBar::descriptor));
1865     EXPECT_EQ(::android::UNKNOWN_TRANSACTION, binder->transact(1234, request, &reply));
1866 
1867     EXPECT_OK(bar->ping());  // still works
1868 }
1869 
TEST_F(HidlTest,EmptyTransactionTest)1870 TEST_F(HidlTest, EmptyTransactionTest) {
1871     using ::android::hardware::IBinder;
1872     using ::android::hardware::Parcel;
1873     using ::android::hardware::tests::bar::V1_0::BnHwBar;
1874 
1875     sp<IBinder> binder = ::android::hardware::toBinder(bar);
1876 
1877     Parcel request, reply;
1878     EXPECT_EQ(::android::BAD_TYPE, binder->transact(3 /*someBoolMethod*/, request, &reply));
1879 
1880     EXPECT_OK(bar->ping());  // still works
1881 }
1882 
TEST_F(HidlTest,WrongDescriptorTest)1883 TEST_F(HidlTest, WrongDescriptorTest) {
1884     using ::android::hardware::IBinder;
1885     using ::android::hardware::Parcel;
1886     using ::android::hardware::tests::bar::V1_0::BnHwBar;
1887 
1888     sp<IBinder> binder = ::android::hardware::toBinder(bar);
1889 
1890     Parcel request, reply;
1891     // wrong descriptor
1892     EXPECT_EQ(::android::OK, request.writeInterfaceToken("not a real descriptor"));
1893     EXPECT_EQ(::android::BAD_TYPE, binder->transact(3 /*someBoolMethod*/, request, &reply));
1894 
1895     EXPECT_OK(bar->ping());  // still works
1896 }
1897 
TEST_F(HidlTest,TwowayMethodOnewayEnabledTest)1898 TEST_F(HidlTest, TwowayMethodOnewayEnabledTest) {
1899     using ::android::hardware::IBinder;
1900     using ::android::hardware::Parcel;
1901     using ::android::hardware::tests::baz::V1_0::BnHwBaz;
1902 
1903     sp<IBinder> binder = ::android::hardware::toBinder(baz);
1904 
1905     Parcel request, reply;
1906     EXPECT_EQ(::android::OK, request.writeInterfaceToken(IBaz::descriptor));
1907     EXPECT_EQ(::android::OK, request.writeInt64(1234));
1908     // IBaz::doThatAndReturnSomething is two-way but we call it using FLAG_ONEWAY.
1909     EXPECT_EQ(::android::OK, binder->transact(19 /*doThatAndReturnSomething*/, request, &reply,
1910                                               IBinder::FLAG_ONEWAY));
1911 
1912     ::android::hardware::Status status;
1913     ::android::status_t readFromParcelStatus = ::android::hardware::readFromParcel(&status, reply);
1914     if (mode == BINDERIZED) {
1915         EXPECT_EQ(::android::NOT_ENOUGH_DATA, readFromParcelStatus);
1916         EXPECT_EQ(::android::hardware::Status::EX_TRANSACTION_FAILED, status.exceptionCode());
1917     } else {
1918         EXPECT_EQ(666, reply.readInt32());
1919     }
1920 
1921     EXPECT_OK(baz->ping());  // still works
1922 }
1923 
TEST_F(HidlTest,OnewayMethodOnewayDisabledTest)1924 TEST_F(HidlTest, OnewayMethodOnewayDisabledTest) {
1925     using ::android::hardware::IBinder;
1926     using ::android::hardware::Parcel;
1927     using ::android::hardware::tests::baz::V1_0::BnHwBaz;
1928 
1929     sp<IBinder> binder = ::android::hardware::toBinder(baz);
1930 
1931     Parcel request, reply;
1932     EXPECT_EQ(::android::OK, request.writeInterfaceToken(IBaz::descriptor));
1933     EXPECT_EQ(::android::OK, request.writeFloat(1.0f));
1934     nsecs_t now = systemTime();
1935     // IBaz::doThis is oneway but we call it without using FLAG_ONEWAY.
1936     EXPECT_EQ(
1937             // Expect OK because IPCThreadState::executeCommand for BR_TRANSACTION
1938             // sends an empty reply for two-way transactions if the transaction itself
1939             // did not send a reply.
1940             ::android::OK,
1941             binder->transact(18 /*doThis*/, request, &reply, 0 /* Not FLAG_ONEWAY */));
1942     if (gHidlEnvironment->enableDelayMeasurementTests) {
1943         // IBaz::doThis is oneway, should return instantly.
1944         EXPECT_LT(systemTime() - now, ONEWAY_TOLERANCE_NS);
1945     }
1946 
1947     EXPECT_OK(baz->ping());  // still works
1948 }
1949 
TEST_F(HidlTest,TrieSimpleTest)1950 TEST_F(HidlTest, TrieSimpleTest) {
1951     trieInterface->newTrie([&](const TrieNode& trie) {
1952         trieInterface->addStrings(trie, {"a", "ba"}, [&](const TrieNode& trie) {
1953             trieInterface->containsStrings(
1954                 trie, {"", "a", "b", "ab", "ba", "c"}, [](const hidl_vec<bool>& response) {
1955                     EXPECT_EQ(response,
1956                               std::vector<bool>({false, true, false, false, true, false}));
1957                 });
1958 
1959             trieInterface->addStrings(trie, {"", "ab", "bab"}, [&](const TrieNode& trie) {
1960                 trieInterface->containsStrings(
1961                     trie, {"", "a", "b", "ab", "ba", "c"}, [](const hidl_vec<bool>& response) {
1962                         EXPECT_EQ(response,
1963                                   std::vector<bool>({true, true, false, true, true, false}));
1964                     });
1965             });
1966         });
1967     });
1968 }
1969 
1970 struct RandomString {
nextRandomString1971     std::string next() {
1972         std::string ret(lengthDist(rng), 0);
1973         std::generate(ret.begin(), ret.end(), [&]() { return charDist(rng); });
1974         return ret;
1975     }
1976 
RandomStringRandomString1977     RandomString() : rng(std::random_device{}()), lengthDist(5, 10), charDist('a', 'a' + 10) {}
1978 
1979    private:
1980     std::default_random_engine rng;
1981     std::uniform_int_distribution<> lengthDist;
1982     std::uniform_int_distribution<> charDist;
1983 };
1984 
TEST_F(HidlTest,TrieStressTest)1985 TEST_F(HidlTest, TrieStressTest) {
1986     const size_t REQUEST_NUM = 1000;
1987     RandomString stringGenerator;
1988 
1989     trieInterface->newTrie([&](const TrieNode& trie) {
1990         std::vector<std::string> strings(REQUEST_NUM);
1991         for (auto& str : strings) {
1992             str = stringGenerator.next();
1993         }
1994 
1995         trieInterface->addStrings(
1996             trie, hidl_vec<hidl_string>(strings.begin(), strings.end()), [&](const TrieNode& trie) {
1997                 std::unordered_set<std::string> addedStrings(strings.begin(), strings.end());
1998 
1999                 for (size_t i = 0; i != REQUEST_NUM; ++i) {
2000                     strings.push_back(stringGenerator.next());
2001                 }
2002 
2003                 std::vector<bool> trueResponse(strings.size());
2004                 std::transform(strings.begin(), strings.end(), trueResponse.begin(),
2005                                [&](const std::string& str) {
2006                                    return addedStrings.find(str) != addedStrings.end();
2007                                });
2008 
2009                 trieInterface->containsStrings(
2010                     trie, hidl_vec<hidl_string>(strings.begin(), strings.end()),
2011                     [&](const hidl_vec<bool>& response) { EXPECT_EQ(response, trueResponse); });
2012             });
2013     });
2014 }
2015 
TEST_F(HidlTest,SafeUnionNoInitTest)2016 TEST_F(HidlTest, SafeUnionNoInitTest) {
2017     EXPECT_OK(safeunionInterface->newLargeSafeUnion([&](const LargeSafeUnion& safeUnion) {
2018         EXPECT_EQ(LargeSafeUnion::hidl_discriminator::noinit, safeUnion.getDiscriminator());
2019     }));
2020 }
2021 
TEST_F(HidlTest,SafeUnionSimpleTest)2022 TEST_F(HidlTest, SafeUnionSimpleTest) {
2023     EXPECT_OK(safeunionInterface->newLargeSafeUnion([&](const LargeSafeUnion& safeUnion) {
2024         EXPECT_OK(safeunionInterface->setA(safeUnion, -5, [&](const LargeSafeUnion& safeUnion) {
2025             EXPECT_EQ(LargeSafeUnion::hidl_discriminator::a, safeUnion.getDiscriminator());
2026             EXPECT_EQ(-5, safeUnion.a());
2027 
2028             uint64_t max = std::numeric_limits<uint64_t>::max();
2029             EXPECT_OK(
2030                 safeunionInterface->setD(safeUnion, max, [&](const LargeSafeUnion& safeUnion) {
2031                     EXPECT_EQ(LargeSafeUnion::hidl_discriminator::d, safeUnion.getDiscriminator());
2032                     EXPECT_EQ(max, safeUnion.d());
2033                 }));
2034         }));
2035     }));
2036 }
2037 
TEST_F(HidlTest,SafeUnionArrayLikeTypesTest)2038 TEST_F(HidlTest, SafeUnionArrayLikeTypesTest) {
2039     const std::array<int64_t, 5> testArray{1, -2, 3, -4, 5};
2040     const hidl_vec<uint64_t> testVector{std::numeric_limits<uint64_t>::max()};
2041 
2042     EXPECT_OK(safeunionInterface->newLargeSafeUnion([&](const LargeSafeUnion& safeUnion) {
2043         EXPECT_OK(
2044             safeunionInterface->setF(safeUnion, testArray, [&](const LargeSafeUnion& safeUnion) {
2045                 EXPECT_EQ(LargeSafeUnion::hidl_discriminator::f, safeUnion.getDiscriminator());
2046 
2047                 for (size_t i = 0; i < testArray.size(); i++) {
2048                     EXPECT_EQ(testArray[i], safeUnion.f()[i]);
2049                 }
2050             }));
2051 
2052         EXPECT_OK(
2053             safeunionInterface->setI(safeUnion, testVector, [&](const LargeSafeUnion& safeUnion) {
2054                 EXPECT_EQ(LargeSafeUnion::hidl_discriminator::i, safeUnion.getDiscriminator());
2055                 EXPECT_EQ(testVector, safeUnion.i());
2056             }));
2057     }));
2058 }
2059 
TEST_F(HidlTest,SafeUnionStringTypeTest)2060 TEST_F(HidlTest, SafeUnionStringTypeTest) {
2061     const std::string testString =
2062         "This is an inordinately long test string to exercise hidl_string types in safe unions.";
2063 
2064     EXPECT_OK(safeunionInterface->newLargeSafeUnion([&](const LargeSafeUnion& safeUnion) {
2065         EXPECT_OK(safeunionInterface->setG(
2066             safeUnion, hidl_string(testString), [&](const LargeSafeUnion& safeUnion) {
2067                 EXPECT_EQ(LargeSafeUnion::hidl_discriminator::g, safeUnion.getDiscriminator());
2068                 EXPECT_EQ(testString, std::string(safeUnion.g()));
2069             }));
2070     }));
2071 }
2072 
TEST_F(HidlTest,SafeUnionCopyConstructorTest)2073 TEST_F(HidlTest, SafeUnionCopyConstructorTest) {
2074     const hidl_vec<bool> testVector{true, false, true, false, false, false, true,  false,
2075                                     true, true,  true, false, false, true,  false, true};
2076 
2077     EXPECT_OK(safeunionInterface->newLargeSafeUnion([&](const LargeSafeUnion& safeUnion) {
2078         EXPECT_OK(
2079             safeunionInterface->setH(safeUnion, testVector, [&](const LargeSafeUnion& safeUnion) {
2080                 LargeSafeUnion safeUnionCopy(safeUnion);
2081 
2082                 EXPECT_EQ(LargeSafeUnion::hidl_discriminator::h, safeUnionCopy.getDiscriminator());
2083                 EXPECT_EQ(testVector, safeUnionCopy.h());
2084             }));
2085     }));
2086 }
2087 
2088 template <typename T>
testZeroInit(const std::string & header)2089 void testZeroInit(const std::string& header) {
2090     uint8_t buf[sizeof(T)];
2091     memset(buf, 0xFF, sizeof(buf));
2092 
2093     T* t = new (buf) T;
2094 
2095     for (size_t i = 0; i < sizeof(T); i++) {
2096         EXPECT_EQ(0, buf[i]) << header << " at offset: " << i;
2097     }
2098 
2099     t->~T();
2100     t = nullptr;
2101 
2102     memset(buf, 0xFF, sizeof(buf));
2103     t = new (buf) T(T());  // copy constructor
2104 
2105     for (size_t i = 0; i < sizeof(T); i++) {
2106         EXPECT_EQ(0, buf[i]) << header << " at offset: " << i;
2107     }
2108 
2109     t->~T();
2110     t = nullptr;
2111 
2112     memset(buf, 0xFF, sizeof(buf));
2113     const T aT = T();
2114     t = new (buf) T(std::move(aT));  // move constructor
2115 
2116     for (size_t i = 0; i < sizeof(T); i++) {
2117         EXPECT_EQ(0, buf[i]) << header << " at offset: " << i;
2118     }
2119 
2120     t->~T();
2121     t = nullptr;
2122 }
2123 
TEST_F(HidlTest,SafeUnionUninit)2124 TEST_F(HidlTest, SafeUnionUninit) {
2125     testZeroInit<SmallSafeUnion>("SmallSafeUnion");
2126     testZeroInit<LargeSafeUnion>("LargeSafeUnion");
2127     testZeroInit<InterfaceTypeSafeUnion>("InterfaceTypeSafeUnion");
2128     testZeroInit<HandleTypeSafeUnion>("HandleTypeSafeUnion");
2129 }
2130 
TEST_F(HidlTest,SafeUnionMoveConstructorTest)2131 TEST_F(HidlTest, SafeUnionMoveConstructorTest) {
2132     sp<SimpleChild> otherInterface = new SimpleChild();
2133     ASSERT_EQ(1, otherInterface->getStrongCount());
2134 
2135     InterfaceTypeSafeUnion safeUnion;
2136     safeUnion.c(otherInterface);
2137     EXPECT_EQ(2, otherInterface->getStrongCount());
2138 
2139     InterfaceTypeSafeUnion anotherSafeUnion(std::move(safeUnion));
2140     EXPECT_EQ(InterfaceTypeSafeUnion::hidl_discriminator::c,
2141               anotherSafeUnion.getDiscriminator());
2142     EXPECT_EQ(2, otherInterface->getStrongCount());
2143 }
2144 
TEST_F(HidlTest,SafeUnionCopyAssignmentTest)2145 TEST_F(HidlTest, SafeUnionCopyAssignmentTest) {
2146     const hidl_vec<hidl_string> testVector{"So", "Many", "Words"};
2147     InterfaceTypeSafeUnion safeUnion;
2148     safeUnion.e(testVector);
2149 
2150     InterfaceTypeSafeUnion anotherSafeUnion;
2151     anotherSafeUnion = safeUnion;
2152 
2153     EXPECT_EQ(InterfaceTypeSafeUnion::hidl_discriminator::e, anotherSafeUnion.getDiscriminator());
2154     EXPECT_EQ(InterfaceTypeSafeUnion::hidl_discriminator::e, safeUnion.getDiscriminator());
2155     EXPECT_NE(&(safeUnion.e()), &(anotherSafeUnion.e()));
2156     EXPECT_EQ(testVector, anotherSafeUnion.e());
2157     EXPECT_EQ(testVector, safeUnion.e());
2158 }
2159 
TEST_F(HidlTest,SafeUnionMoveAssignmentTest)2160 TEST_F(HidlTest, SafeUnionMoveAssignmentTest) {
2161     sp<SimpleChild> otherInterface = new SimpleChild();
2162     ASSERT_EQ(1, otherInterface->getStrongCount());
2163 
2164     InterfaceTypeSafeUnion safeUnion;
2165     safeUnion.c(otherInterface);
2166     EXPECT_EQ(2, otherInterface->getStrongCount());
2167 
2168     InterfaceTypeSafeUnion anotherSafeUnion;
2169     anotherSafeUnion.a(255);
2170     anotherSafeUnion = std::move(safeUnion);
2171 
2172     EXPECT_EQ(InterfaceTypeSafeUnion::hidl_discriminator::c,
2173               anotherSafeUnion.getDiscriminator());
2174     EXPECT_EQ(2, otherInterface->getStrongCount());
2175 }
2176 
TEST_F(HidlTest,SafeUnionMutateTest)2177 TEST_F(HidlTest, SafeUnionMutateTest) {
2178     const std::array<int64_t, 5> testArray{-1, -2, -3, -4, -5};
2179     const std::string testString = "Test string";
2180     LargeSafeUnion safeUnion;
2181 
2182     safeUnion.f(testArray);
2183     safeUnion.f()[0] += 10;
2184     EXPECT_EQ(testArray[0] + 10, safeUnion.f()[0]);
2185 
2186     safeUnion.j(ISafeUnion::J());
2187     safeUnion.j().j3 = testString;
2188     EXPECT_EQ(testString, std::string(safeUnion.j().j3));
2189 }
2190 
TEST_F(HidlTest,SafeUnionNestedTest)2191 TEST_F(HidlTest, SafeUnionNestedTest) {
2192     SmallSafeUnion smallSafeUnion;
2193     smallSafeUnion.a(1);
2194 
2195     EXPECT_OK(safeunionInterface->newLargeSafeUnion([&](const LargeSafeUnion& safeUnion) {
2196         EXPECT_OK(safeunionInterface->setL(
2197             safeUnion, smallSafeUnion, [&](const LargeSafeUnion& safeUnion) {
2198                 EXPECT_EQ(LargeSafeUnion::hidl_discriminator::l, safeUnion.getDiscriminator());
2199 
2200                 EXPECT_EQ(SmallSafeUnion::hidl_discriminator::a, safeUnion.l().getDiscriminator());
2201                 EXPECT_EQ(1, safeUnion.l().a());
2202             }));
2203     }));
2204 }
2205 
TEST_F(HidlTest,SafeUnionEnumTest)2206 TEST_F(HidlTest, SafeUnionEnumTest) {
2207     EXPECT_OK(safeunionInterface->newLargeSafeUnion([&](const LargeSafeUnion& safeUnion) {
2208         EXPECT_OK(safeunionInterface->setM(
2209             safeUnion, ISafeUnion::BitField::V1, [&](const LargeSafeUnion& safeUnion) {
2210                 EXPECT_EQ(LargeSafeUnion::hidl_discriminator::m, safeUnion.getDiscriminator());
2211                 EXPECT_EQ(ISafeUnion::BitField::V1, safeUnion.m());
2212             }));
2213     }));
2214 }
2215 
TEST_F(HidlTest,SafeUnionBitFieldTest)2216 TEST_F(HidlTest, SafeUnionBitFieldTest) {
2217     EXPECT_OK(safeunionInterface->newLargeSafeUnion([&](const LargeSafeUnion& safeUnion) {
2218         EXPECT_OK(safeunionInterface->setN(
2219             safeUnion, 0 | ISafeUnion::BitField::V1, [&](const LargeSafeUnion& safeUnion) {
2220                 EXPECT_EQ(LargeSafeUnion::hidl_discriminator::n, safeUnion.getDiscriminator());
2221                 EXPECT_EQ(0 | ISafeUnion::BitField::V1, safeUnion.n());
2222             }));
2223     }));
2224 }
2225 
TEST_F(HidlTest,SafeUnionInterfaceTest)2226 TEST_F(HidlTest, SafeUnionInterfaceTest) {
2227     const std::array<int8_t, 7> testArray{-1, -2, -3, 0, 1, 2, 3};
2228     const hidl_vec<hidl_string> testVector{"So", "Many", "Words"};
2229     const std::string testStringA = "Hello";
2230     const std::string testStringB = "World";
2231 
2232     EXPECT_OK(
2233         safeunionInterface->newInterfaceTypeSafeUnion([&](const InterfaceTypeSafeUnion& safeUnion) {
2234             EXPECT_EQ(InterfaceTypeSafeUnion::hidl_discriminator::noinit,
2235                       safeUnion.getDiscriminator());
2236 
2237             isOk(safeunionInterface->setInterfaceB(
2238                 safeUnion, testArray, [&](const InterfaceTypeSafeUnion& safeUnion) {
2239                     EXPECT_EQ(InterfaceTypeSafeUnion::hidl_discriminator::b,
2240                               safeUnion.getDiscriminator());
2241 
2242                     for (size_t i = 0; i < testArray.size(); i++) {
2243                         EXPECT_EQ(testArray[i], safeUnion.b()[i]);
2244                     }
2245 
2246                     EXPECT_OK(safeunionInterface->setInterfaceC(
2247                             safeUnion, manager, [&](const InterfaceTypeSafeUnion& safeUnion) {
2248                                 EXPECT_EQ(InterfaceTypeSafeUnion::hidl_discriminator::c,
2249                                           safeUnion.getDiscriminator());
2250 
2251                                 using ::android::hardware::interfacesEqual;
2252                                 EXPECT_TRUE(interfacesEqual(safeUnion.c(), manager));
2253                             }));
2254                 }));
2255 
2256             EXPECT_OK(safeunionInterface->setInterfaceD(
2257                 safeUnion, testStringA, [&](const InterfaceTypeSafeUnion& safeUnion) {
2258                     EXPECT_EQ(InterfaceTypeSafeUnion::hidl_discriminator::d,
2259                               safeUnion.getDiscriminator());
2260                     EXPECT_EQ(testStringA, safeUnion.d());
2261                 }));
2262 
2263             EXPECT_OK(safeunionInterface->setInterfaceE(
2264                 safeUnion, testVector, [&](const InterfaceTypeSafeUnion& safeUnion) {
2265                     EXPECT_EQ(InterfaceTypeSafeUnion::hidl_discriminator::e,
2266                               safeUnion.getDiscriminator());
2267                     EXPECT_EQ(testVector, safeUnion.e());
2268                 }));
2269         }));
2270 }
2271 
TEST_F(HidlTest,SafeUnionNullHandleTest)2272 TEST_F(HidlTest, SafeUnionNullHandleTest) {
2273     HandleTypeSafeUnion safeUnion;
2274 
2275     EXPECT_OK(safeunionInterface->setHandleA(
2276         safeUnion, hidl_handle(nullptr), [&](const HandleTypeSafeUnion& safeUnion) {
2277             EXPECT_EQ(HandleTypeSafeUnion::hidl_discriminator::a,
2278                       safeUnion.getDiscriminator());
2279 
2280             checkNativeHandlesDataEquality(nullptr, safeUnion.a().getNativeHandle());
2281         }));
2282 }
2283 
TEST_F(HidlTest,SafeUnionSimpleHandleTest)2284 TEST_F(HidlTest, SafeUnionSimpleHandleTest) {
2285     const std::array<int, 6> testData{2, -32, 10, -4329454, 11, 24};
2286     native_handle_t* h = native_handle_create(0, testData.size());
2287     ASSERT_EQ(sizeof(testData), testData.size() * sizeof(int));
2288     std::memcpy(h->data, testData.data(), sizeof(testData));
2289 
2290     std::array<hidl_handle, 5> testArray;
2291     for (size_t i = 0; i < testArray.size(); i++) {
2292         testArray[i].setTo(native_handle_clone(h), true /* shouldOwn */);
2293     }
2294 
2295     std::vector<hidl_handle> testVector(256);
2296     for (size_t i = 0; i < testVector.size(); i++) {
2297         testVector[i].setTo(native_handle_clone(h), true /* shouldOwn */);
2298     }
2299 
2300     EXPECT_OK(
2301         safeunionInterface->newHandleTypeSafeUnion([&](const HandleTypeSafeUnion& safeUnion) {
2302             EXPECT_OK(safeunionInterface->setHandleA(
2303                 safeUnion, hidl_handle(h), [&](const HandleTypeSafeUnion& safeUnion) {
2304                     EXPECT_EQ(HandleTypeSafeUnion::hidl_discriminator::a,
2305                               safeUnion.getDiscriminator());
2306 
2307                     checkNativeHandlesDataEquality(h, safeUnion.a().getNativeHandle());
2308                 }));
2309 
2310             EXPECT_OK(safeunionInterface->setHandleB(
2311                 safeUnion, testArray, [&](const HandleTypeSafeUnion& safeUnion) {
2312                     EXPECT_EQ(HandleTypeSafeUnion::hidl_discriminator::b,
2313                               safeUnion.getDiscriminator());
2314 
2315                     for (size_t i = 0; i < testArray.size(); i++) {
2316                         checkNativeHandlesDataEquality(h, safeUnion.b()[i].getNativeHandle());
2317                     }
2318                 }));
2319 
2320             EXPECT_OK(safeunionInterface->setHandleC(
2321                 safeUnion, testVector, [&](const HandleTypeSafeUnion& safeUnion) {
2322                     EXPECT_EQ(HandleTypeSafeUnion::hidl_discriminator::c,
2323                               safeUnion.getDiscriminator());
2324 
2325                     for (size_t i = 0; i < testVector.size(); i++) {
2326                         checkNativeHandlesDataEquality(h, safeUnion.c()[i].getNativeHandle());
2327                     }
2328                 }));
2329         }));
2330 
2331     native_handle_delete(h);
2332 }
2333 
TEST_F(HidlTest,SafeUnionVecOfHandlesWithOneFdTest)2334 TEST_F(HidlTest, SafeUnionVecOfHandlesWithOneFdTest) {
2335     const std::vector<std::string> testStrings{"This ", "is ", "so ", "much ", "data!\n"};
2336     const std::string testFileName = "/data/local/tmp/SafeUnionVecOfHandlesWithOneFdTest";
2337     const std::array<int, 6> testData{2, -32, 10, -4329454, 11, 24};
2338     ASSERT_EQ(sizeof(testData), testData.size() * sizeof(int));
2339 
2340     const std::string goldenResult = std::accumulate(testStrings.begin(),
2341                                                      testStrings.end(),
2342                                                      std::string());
2343 
2344     int fd = open(testFileName.c_str(), (O_RDWR | O_TRUNC | O_CREAT), (S_IRUSR | S_IWUSR));
2345     ASSERT_TRUE(fd >= 0);
2346 
2347     native_handle* h = native_handle_create(1 /* numFds */, testData.size() /* numInts */);
2348     std::memcpy(&(h->data[1]), testData.data(), sizeof(testData));
2349     h->data[0] = fd;
2350 
2351     hidl_vec<hidl_handle> testHandles(testStrings.size());
2352     for (size_t i = 0; i < testHandles.size(); i++) {
2353         testHandles[i].setTo(native_handle_clone(h), true /* shouldOwn */);
2354     }
2355 
2356     EXPECT_OK(
2357         safeunionInterface->newHandleTypeSafeUnion([&](const HandleTypeSafeUnion& safeUnion) {
2358             EXPECT_OK(safeunionInterface->setHandleC(
2359                 safeUnion, testHandles, [&](const HandleTypeSafeUnion& safeUnion) {
2360                     EXPECT_EQ(HandleTypeSafeUnion::hidl_discriminator::c,
2361                               safeUnion.getDiscriminator());
2362 
2363                     for (size_t i = 0; i < safeUnion.c().size(); i++) {
2364                         const native_handle_t* reference = testHandles[i].getNativeHandle();
2365                         const native_handle_t* result = safeUnion.c()[i].getNativeHandle();
2366                         checkNativeHandlesDataEquality(reference, result);
2367 
2368                         // Original FDs should be dup'd
2369                         int resultFd = result->data[0];
2370                         EXPECT_NE(reference->data[0], resultFd);
2371 
2372                         EXPECT_TRUE(android::base::WriteStringToFd(testStrings[i], resultFd));
2373                         EXPECT_EQ(0, fsync(resultFd));
2374                     }
2375                 }));
2376         }));
2377 
2378     std::string result;
2379     lseek(fd, 0, SEEK_SET);
2380 
2381     EXPECT_TRUE(android::base::ReadFdToString(fd, &result));
2382     EXPECT_EQ(goldenResult, result);
2383 
2384     native_handle_delete(h);
2385     EXPECT_EQ(0, close(fd));
2386     EXPECT_EQ(0, remove(testFileName.c_str()));
2387 }
2388 
TEST_F(HidlTest,SafeUnionHandleWithMultipleFdsTest)2389 TEST_F(HidlTest, SafeUnionHandleWithMultipleFdsTest) {
2390     const std::vector<std::string> testStrings{"This ", "is ", "so ", "much ", "data!\n"};
2391     const std::string testFileName = "/data/local/tmp/SafeUnionHandleWithMultipleFdsTest";
2392     const std::array<int, 6> testData{2, -32, 10, -4329454, 11, 24};
2393     ASSERT_EQ(sizeof(testData), testData.size() * sizeof(int));
2394 
2395     const std::string goldenResult = std::accumulate(testStrings.begin(),
2396                                                      testStrings.end(),
2397                                                      std::string());
2398 
2399     int fd = open(testFileName.c_str(), (O_RDWR | O_TRUNC | O_CREAT), (S_IRUSR | S_IWUSR));
2400     ASSERT_TRUE(fd >= 0);
2401 
2402     const int numFds = testStrings.size();
2403     native_handle* h = native_handle_create(numFds, testData.size() /* numInts */);
2404     std::memcpy(&(h->data[numFds]), testData.data(), sizeof(testData));
2405     for (size_t i = 0; i < numFds; i++) {
2406         h->data[i] = fd;
2407     }
2408 
2409     hidl_handle testHandle;
2410     testHandle.setTo(h, false /* shouldOwn */);
2411 
2412     EXPECT_OK(
2413         safeunionInterface->newHandleTypeSafeUnion([&](const HandleTypeSafeUnion& safeUnion) {
2414             EXPECT_OK(safeunionInterface->setHandleA(
2415                 safeUnion, testHandle, [&](const HandleTypeSafeUnion& safeUnion) {
2416                     EXPECT_EQ(HandleTypeSafeUnion::hidl_discriminator::a,
2417                               safeUnion.getDiscriminator());
2418 
2419                     const native_handle_t* result = safeUnion.a().getNativeHandle();
2420                     checkNativeHandlesDataEquality(h, result);
2421 
2422                     for (size_t i = 0; i < result->numFds; i++) {
2423                         // Original FDs should be dup'd
2424                         int resultFd = result->data[i];
2425                         EXPECT_NE(h->data[i], resultFd);
2426 
2427                         EXPECT_TRUE(android::base::WriteStringToFd(testStrings[i], resultFd));
2428                         EXPECT_EQ(0, fsync(resultFd));
2429                     }
2430                 }));
2431         }));
2432 
2433     std::string result;
2434     lseek(fd, 0, SEEK_SET);
2435 
2436     EXPECT_TRUE(android::base::ReadFdToString(fd, &result));
2437     EXPECT_EQ(goldenResult, result);
2438 
2439     native_handle_delete(h);
2440     EXPECT_EQ(0, close(fd));
2441     EXPECT_EQ(0, remove(testFileName.c_str()));
2442 }
2443 
TEST_F(HidlTest,SafeUnionEqualityTest)2444 TEST_F(HidlTest, SafeUnionEqualityTest) {
2445     EXPECT_OK(safeunionInterface->newLargeSafeUnion([&](const LargeSafeUnion& one) {
2446         EXPECT_OK(safeunionInterface->newLargeSafeUnion([&](const LargeSafeUnion& two) {
2447             EXPECT_TRUE(one == two);
2448             EXPECT_FALSE(one != two);
2449         }));
2450 
2451         EXPECT_OK(safeunionInterface->setA(one, 1, [&](const LargeSafeUnion& one) {
2452             EXPECT_OK(safeunionInterface->newLargeSafeUnion([&](const LargeSafeUnion& two) {
2453                 EXPECT_FALSE(one == two);
2454                 EXPECT_TRUE(one != two);
2455             }));
2456 
2457             EXPECT_OK(safeunionInterface->newLargeSafeUnion([&](const LargeSafeUnion& two) {
2458                 EXPECT_OK(safeunionInterface->setB(two, 1, [&](const LargeSafeUnion& two) {
2459                     EXPECT_FALSE(one == two);
2460                     EXPECT_TRUE(one != two);
2461                 }));
2462             }));
2463 
2464             EXPECT_OK(safeunionInterface->newLargeSafeUnion([&](const LargeSafeUnion& two) {
2465                 EXPECT_OK(safeunionInterface->setA(two, 2, [&](const LargeSafeUnion& two) {
2466                     EXPECT_FALSE(one == two);
2467                     EXPECT_TRUE(one != two);
2468                 }));
2469             }));
2470 
2471             EXPECT_OK(safeunionInterface->newLargeSafeUnion([&](const LargeSafeUnion& two) {
2472                 EXPECT_OK(safeunionInterface->setA(two, 1, [&](const LargeSafeUnion& two) {
2473                     EXPECT_TRUE(one == two);
2474                     EXPECT_FALSE(one != two);
2475                 }));
2476             }));
2477         }));
2478     }));
2479 }
2480 
TEST_F(HidlTest,SafeUnionSimpleDestructorTest)2481 TEST_F(HidlTest, SafeUnionSimpleDestructorTest) {
2482     sp<SimpleChild> otherInterface = new SimpleChild();
2483     ASSERT_EQ(1, otherInterface->getStrongCount());
2484 
2485     {
2486         InterfaceTypeSafeUnion safeUnion;
2487         safeUnion.c(otherInterface);
2488         EXPECT_EQ(2, otherInterface->getStrongCount());
2489     }
2490 
2491     EXPECT_EQ(1, otherInterface->getStrongCount());
2492 }
2493 
TEST_F(HidlTest,SafeUnionSwitchActiveComponentsDestructorTest)2494 TEST_F(HidlTest, SafeUnionSwitchActiveComponentsDestructorTest) {
2495     sp<SimpleChild> otherInterface = new SimpleChild();
2496     ASSERT_EQ(1, otherInterface->getStrongCount());
2497 
2498     InterfaceTypeSafeUnion safeUnion;
2499     safeUnion.c(otherInterface);
2500     EXPECT_EQ(2, otherInterface->getStrongCount());
2501 
2502     safeUnion.a(1);
2503     EXPECT_EQ(1, otherInterface->getStrongCount());
2504 }
2505 
TEST_F(HidlTest,SafeUnionCppSpecificTest)2506 TEST_F(HidlTest, SafeUnionCppSpecificTest) {
2507     ICppSafeUnion::PointerFmqSafeUnion pointerFmqSafeUnion;
2508     pointerFmqSafeUnion.fmqSync({std::vector<GrantorDescriptor>(), native_handle_create(0, 1), 5});
2509 
2510     EXPECT_OK(cppSafeunionInterface->repeatPointerFmqSafeUnion(
2511         pointerFmqSafeUnion, [&](const ICppSafeUnion::PointerFmqSafeUnion& fmq) {
2512             ASSERT_EQ(pointerFmqSafeUnion.getDiscriminator(), fmq.getDiscriminator());
2513             checkMQDescriptorEquality(pointerFmqSafeUnion.fmqSync(), fmq.fmqSync());
2514         }));
2515 
2516     ICppSafeUnion::FmqSafeUnion fmqSafeUnion;
2517     fmqSafeUnion.fmqUnsync({std::vector<GrantorDescriptor>(), native_handle_create(0, 1), 5});
2518 
2519     EXPECT_OK(cppSafeunionInterface->repeatFmqSafeUnion(
2520         fmqSafeUnion, [&](const ICppSafeUnion::FmqSafeUnion& fmq) {
2521             ASSERT_EQ(fmqSafeUnion.getDiscriminator(), fmq.getDiscriminator());
2522             checkMQDescriptorEquality(fmqSafeUnion.fmqUnsync(), fmq.fmqUnsync());
2523         }));
2524 }
2525 
2526 class HidlMultithreadTest : public ::testing::Test {
2527    public:
2528     sp<IMultithread> multithreadInterface;
2529     TestMode mode = TestMode::PASSTHROUGH;
2530 
SetUp()2531     void SetUp() override {
2532         ALOGI("Test setup beginning...");
2533         multithreadInterface = gHidlEnvironment->multithreadInterface;
2534         mode = gHidlEnvironment->mode;
2535         ALOGI("Test setup complete");
2536     }
2537 
test_multithread(int maxThreads,int numThreads)2538     void test_multithread(int maxThreads, int numThreads) {
2539         LOG(INFO) << "CLIENT call setNumThreads("
2540                   << maxThreads << ", " << numThreads << ")";
2541         EXPECT_OK(multithreadInterface->setNumThreads(maxThreads, numThreads));
2542 
2543         std::vector<std::future<bool>> threads;
2544 
2545         for (int i = 0; i != numThreads; ++i) {
2546             LOG(INFO) << "CLIENT call runNewThread";
2547             threads.emplace_back(std::async(
2548                 std::launch::async, [&]() { return (bool)multithreadInterface->runNewThread(); }));
2549         }
2550 
2551         bool noTimeout = std::all_of(threads.begin(), threads.end(),
2552                                      [](std::future<bool>& thread) { return thread.get(); });
2553         EXPECT_EQ(noTimeout, maxThreads >= numThreads || mode == PASSTHROUGH);
2554     }
2555 };
2556 
2557 // If it fails first try to increment timeout duration at
2558 // hardware/interfaces/tests/multithread/1.0/default
TEST_F(HidlMultithreadTest,MultithreadTest)2559 TEST_F(HidlMultithreadTest, MultithreadTest) {
2560     // configureRpcThreadpool doesn't stop threads,
2561     // so maxThreads should not decrease
2562     test_multithread(1, 1);
2563     test_multithread(2, 1);
2564     test_multithread(2, 2);
2565     test_multithread(2, 3);
2566     test_multithread(10, 5);
2567     test_multithread(10, 10);
2568     test_multithread(10, 15);
2569     test_multithread(20, 30);
2570     test_multithread(20, 20);
2571     test_multithread(20, 10);
2572 }
2573 
2574 template <class T>
2575 struct WaitForServer {
runWaitForServer2576     static void run(const std::string& serviceName) {
2577         ::android::hardware::details::waitForHwService(T::descriptor, serviceName);
2578     }
2579 };
2580 
forkAndRunTests(TestMode mode,bool enableDelayMeasurementTests)2581 int forkAndRunTests(TestMode mode, bool enableDelayMeasurementTests) {
2582     pid_t child;
2583     int status;
2584 
2585     const char* modeText = (mode == BINDERIZED) ? "BINDERIZED" : "PASSTHROUGH";
2586     ALOGI("Start running tests in %s mode...", modeText);
2587     fprintf(stdout, "Start running tests in %s mode...\n", modeText);
2588     fflush(stdout);
2589 
2590     if ((child = fork()) == 0) {
2591         gHidlEnvironment = static_cast<HidlEnvironment *>(
2592                 ::testing::AddGlobalTestEnvironment(new HidlEnvironment(
2593                         mode, enableDelayMeasurementTests)));
2594         int testStatus = RUN_ALL_TESTS();
2595         if(testStatus == 0) {
2596             exit(0);
2597         }
2598         int failed = ::testing::UnitTest::GetInstance()->failed_test_count();
2599         if (failed == 0) {
2600             exit(-testStatus);
2601         }
2602         exit(failed);
2603     }
2604     waitpid(child, &status, 0 /* options */);
2605     ALOGI("All tests finished in %s mode.", modeText);
2606     fprintf(stdout, "All tests finished in %s mode.\n", modeText);
2607     fflush(stdout);
2608     return status;
2609 }
2610 
handleStatus(int status,const char * mode)2611 void handleStatus(int status, const char *mode) {
2612     if (status != 0) {
2613         if (WIFEXITED(status)) {
2614             status = WEXITSTATUS(status);
2615             if (status < 0) {
2616                 fprintf(stdout, "    RUN_ALL_TESTS returns %d for %s mode.\n", -status, mode);
2617             } else {
2618                 fprintf(stdout, "    %d test(s) failed for %s mode.\n", status, mode);
2619             }
2620         } else {
2621             fprintf(stdout, "    ERROR: %s child process exited abnormally with %d\n", mode, status);
2622         }
2623     }
2624 }
2625 
usage(const char * me)2626 static void usage(const char *me) {
2627     fprintf(stderr,
2628             "usage: %s [-b] [-p] [-d] [GTEST_OPTIONS]\n",
2629             me);
2630 
2631     fprintf(stderr, "         -b binderized mode only\n");
2632     fprintf(stderr, "         -p passthrough mode only\n");
2633     fprintf(stderr, "            (if -b and -p are both missing or both present, "
2634                                  "both modes are tested.)\n");
2635     fprintf(stderr, "         -d Enable delay measurement tests\n");
2636 }
2637 
main(int argc,char ** argv)2638 int main(int argc, char **argv) {
2639     android::hardware::details::setTrebleTestingOverride(true);
2640 
2641     const char *me = argv[0];
2642     bool b = false;
2643     bool p = false;
2644     bool d = false;
2645     struct option longopts[] = {{nullptr,0,nullptr,0}};
2646     int res;
2647     while ((res = getopt_long(argc, argv, "hbpd", longopts, nullptr)) >= 0) {
2648         switch (res) {
2649             case 'h': {
2650                 usage(me);
2651                 exit(1);
2652             } break;
2653 
2654             case 'b': {
2655                 b = true;
2656             } break;
2657 
2658             case 'p': {
2659                 p = true;
2660             } break;
2661 
2662             case 'd': {
2663                 d = true;
2664             } break;
2665 
2666             case '?':
2667             default: {
2668                 // ignore. pass to gTest.
2669             } break;
2670         }
2671     }
2672     if (!b && !p) {
2673         b = p = true;
2674     }
2675 
2676     ::testing::InitGoogleTest(&argc, argv);
2677     // put test in child process because RUN_ALL_TESTS
2678     // should not be run twice.
2679     int pStatus = p ? forkAndRunTests(PASSTHROUGH, d) : 0;
2680     int bStatus = b ? forkAndRunTests(BINDERIZED, d)  : 0;
2681 
2682     fprintf(stdout, "\n=========================================================\n\n"
2683                     "    Summary:\n\n");
2684     if (p) {
2685         ALOGI("PASSTHROUGH Test result = %d", pStatus);
2686         handleStatus(pStatus, "PASSTHROUGH");
2687     }
2688     if (b) {
2689         runOnEachServer<WaitForServer>();
2690         ALOGI("BINDERIZED Test result = %d", bStatus);
2691         handleStatus(bStatus, "BINDERIZED ");
2692     }
2693 
2694     if (pStatus == 0 && bStatus == 0) {
2695         fprintf(stdout, "    Hooray! All tests passed.\n");
2696     }
2697     fprintf(stdout, "\n=========================================================\n\n");
2698 
2699     return pStatus + bStatus != 0;
2700 }
2701