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Slava Shklyaev871be942018-09-12 14:52:02 +01001/*
2 * Copyright (C) 2018 The Android Open Source Project
3 *
4 * Licensed under the Apache License, Version 2.0 (the "License");
5 * you may not use this file except in compliance with the License.
6 * You may obtain a copy of the License at
7 *
8 * http://www.apache.org/licenses/LICENSE-2.0
9 *
10 * Unless required by applicable law or agreed to in writing, software
11 * distributed under the License is distributed on an "AS IS" BASIS,
12 * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
13 * See the License for the specific language governing permissions and
14 * limitations under the License.
15 */
16
17#define LOG_TAG "neuralnetworks_hidl_hal_test"
18
19#include "VtsHalNeuralnetworks.h"
20
21#include "Callbacks.h"
22
23namespace android {
24namespace hardware {
25namespace neuralnetworks {
26namespace V1_2 {
27
Slava Shklyaev871be942018-09-12 14:52:02 +010028using V1_0::OperandLifeTime;
Slava Shklyaev871be942018-09-12 14:52:02 +010029using V1_1::ExecutionPreference;
30
31namespace vts {
32namespace functional {
33
Xusong Wangb5cb8f72018-10-31 08:43:12 -070034using ::android::hardware::neuralnetworks::V1_2::implementation::ExecutionCallback;
35using ::android::hardware::neuralnetworks::V1_2::implementation::PreparedModelCallback;
Slava Shklyaev871be942018-09-12 14:52:02 +010036
37///////////////////////// UTILITY FUNCTIONS /////////////////////////
38
39static void validateGetSupportedOperations(const sp<IDevice>& device, const std::string& message,
40 const Model& model) {
41 SCOPED_TRACE(message + " [getSupportedOperations_1_2]");
42
43 Return<void> ret =
44 device->getSupportedOperations_1_2(model, [&](ErrorStatus status, const hidl_vec<bool>&) {
45 EXPECT_EQ(ErrorStatus::INVALID_ARGUMENT, status);
46 });
47 EXPECT_TRUE(ret.isOk());
48}
49
50static void validatePrepareModel(const sp<IDevice>& device, const std::string& message,
51 const Model& model, ExecutionPreference preference) {
52 SCOPED_TRACE(message + " [prepareModel_1_2]");
53
54 sp<PreparedModelCallback> preparedModelCallback = new PreparedModelCallback();
55 ASSERT_NE(nullptr, preparedModelCallback.get());
56 Return<ErrorStatus> prepareLaunchStatus =
57 device->prepareModel_1_2(model, preference, preparedModelCallback);
58 ASSERT_TRUE(prepareLaunchStatus.isOk());
59 ASSERT_EQ(ErrorStatus::INVALID_ARGUMENT, static_cast<ErrorStatus>(prepareLaunchStatus));
60
61 preparedModelCallback->wait();
62 ErrorStatus prepareReturnStatus = preparedModelCallback->getStatus();
63 ASSERT_EQ(ErrorStatus::INVALID_ARGUMENT, prepareReturnStatus);
Xusong Wangb5cb8f72018-10-31 08:43:12 -070064 sp<IPreparedModel> preparedModel = getPreparedModel_1_2(preparedModelCallback);
Slava Shklyaev871be942018-09-12 14:52:02 +010065 ASSERT_EQ(nullptr, preparedModel.get());
66}
67
68static bool validExecutionPreference(ExecutionPreference preference) {
69 return preference == ExecutionPreference::LOW_POWER ||
70 preference == ExecutionPreference::FAST_SINGLE_ANSWER ||
71 preference == ExecutionPreference::SUSTAINED_SPEED;
72}
73
74// Primary validation function. This function will take a valid model, apply a
75// mutation to it to invalidate the model, then pass it to interface calls that
76// use the model. Note that the model here is passed by value, and any mutation
77// to the model does not leave this function.
78static void validate(const sp<IDevice>& device, const std::string& message, Model model,
79 const std::function<void(Model*)>& mutation,
80 ExecutionPreference preference = ExecutionPreference::FAST_SINGLE_ANSWER) {
81 mutation(&model);
82 if (validExecutionPreference(preference)) {
83 validateGetSupportedOperations(device, message, model);
84 }
85 validatePrepareModel(device, message, model, preference);
86}
87
88// Delete element from hidl_vec. hidl_vec doesn't support a "remove" operation,
89// so this is efficiently accomplished by moving the element to the end and
90// resizing the hidl_vec to one less.
91template <typename Type>
92static void hidl_vec_removeAt(hidl_vec<Type>* vec, uint32_t index) {
93 if (vec) {
94 std::rotate(vec->begin() + index, vec->begin() + index + 1, vec->end());
95 vec->resize(vec->size() - 1);
96 }
97}
98
99template <typename Type>
100static uint32_t hidl_vec_push_back(hidl_vec<Type>* vec, const Type& value) {
101 // assume vec is valid
102 const uint32_t index = vec->size();
103 vec->resize(index + 1);
104 (*vec)[index] = value;
105 return index;
106}
107
108static uint32_t addOperand(Model* model) {
109 return hidl_vec_push_back(&model->operands,
110 {
111 .type = OperandType::INT32,
112 .dimensions = {},
113 .numberOfConsumers = 0,
114 .scale = 0.0f,
115 .zeroPoint = 0,
116 .lifetime = OperandLifeTime::MODEL_INPUT,
117 .location = {.poolIndex = 0, .offset = 0, .length = 0},
118 });
119}
120
121static uint32_t addOperand(Model* model, OperandLifeTime lifetime) {
122 uint32_t index = addOperand(model);
123 model->operands[index].numberOfConsumers = 1;
124 model->operands[index].lifetime = lifetime;
125 return index;
126}
127
128///////////////////////// VALIDATE MODEL OPERAND TYPE /////////////////////////
129
Michael K. Sandersc785d462018-10-30 15:16:54 +0000130static const uint32_t invalidOperandTypes[] = {
Slava Shklyaev794703d2019-01-17 15:37:05 +0000131 static_cast<uint32_t>(OperandTypeRange::FUNDAMENTAL_MIN) - 1,
132 static_cast<uint32_t>(OperandTypeRange::FUNDAMENTAL_MAX) + 1,
133 static_cast<uint32_t>(OperandTypeRange::OEM_MIN) - 1,
134 static_cast<uint32_t>(OperandTypeRange::OEM_MAX) + 1,
Slava Shklyaev871be942018-09-12 14:52:02 +0100135};
136
137static void mutateOperandTypeTest(const sp<IDevice>& device, const Model& model) {
138 for (size_t operand = 0; operand < model.operands.size(); ++operand) {
Michael K. Sandersc785d462018-10-30 15:16:54 +0000139 for (uint32_t invalidOperandType : invalidOperandTypes) {
Slava Shklyaev871be942018-09-12 14:52:02 +0100140 const std::string message = "mutateOperandTypeTest: operand " +
141 std::to_string(operand) + " set to value " +
142 std::to_string(invalidOperandType);
143 validate(device, message, model, [operand, invalidOperandType](Model* model) {
144 model->operands[operand].type = static_cast<OperandType>(invalidOperandType);
145 });
146 }
147 }
148}
149
150///////////////////////// VALIDATE OPERAND RANK /////////////////////////
151
152static uint32_t getInvalidRank(OperandType type) {
153 switch (type) {
Xusong Wang7bca34b2018-12-05 14:21:51 -0800154 case OperandType::FLOAT16:
Slava Shklyaev871be942018-09-12 14:52:02 +0100155 case OperandType::FLOAT32:
156 case OperandType::INT32:
157 case OperandType::UINT32:
Lev Proleevabad9ea2018-10-01 11:18:31 +0100158 case OperandType::BOOL:
Slava Shklyaev871be942018-09-12 14:52:02 +0100159 return 1;
Lev Proleev923b8c52019-01-30 17:14:40 +0000160 case OperandType::TENSOR_BOOL8:
Michael K. Sanders19d63452018-10-12 09:10:15 +0100161 case OperandType::TENSOR_FLOAT16:
Slava Shklyaev871be942018-09-12 14:52:02 +0100162 case OperandType::TENSOR_FLOAT32:
163 case OperandType::TENSOR_INT32:
164 case OperandType::TENSOR_QUANT8_ASYMM:
Hervé Guihotbae91692019-01-23 19:18:59 -0800165 case OperandType::TENSOR_QUANT8_SYMM:
Xusong Wangd49f6652019-01-16 18:32:24 -0800166 case OperandType::TENSOR_QUANT16_ASYMM:
Lev Proleev48c88202018-11-13 15:42:36 +0000167 case OperandType::TENSOR_QUANT16_SYMM:
Przemyslaw Szczepaniakfaa59b82018-11-08 15:22:17 +0000168 case OperandType::TENSOR_QUANT8_SYMM_PER_CHANNEL:
Slava Shklyaev871be942018-09-12 14:52:02 +0100169 return 0;
170 default:
171 return 0;
172 }
173}
174
175static void mutateOperandRankTest(const sp<IDevice>& device, const Model& model) {
176 for (size_t operand = 0; operand < model.operands.size(); ++operand) {
177 const uint32_t invalidRank = getInvalidRank(model.operands[operand].type);
Xusong Wanga3165812018-11-19 18:26:08 -0800178 if (invalidRank == 0) {
179 continue;
180 }
Slava Shklyaev871be942018-09-12 14:52:02 +0100181 const std::string message = "mutateOperandRankTest: operand " + std::to_string(operand) +
182 " has rank of " + std::to_string(invalidRank);
183 validate(device, message, model, [operand, invalidRank](Model* model) {
184 model->operands[operand].dimensions = std::vector<uint32_t>(invalidRank, 0);
185 });
186 }
187}
188
189///////////////////////// VALIDATE OPERAND SCALE /////////////////////////
190
191static float getInvalidScale(OperandType type) {
192 switch (type) {
Xusong Wang7bca34b2018-12-05 14:21:51 -0800193 case OperandType::FLOAT16:
Slava Shklyaev871be942018-09-12 14:52:02 +0100194 case OperandType::FLOAT32:
195 case OperandType::INT32:
196 case OperandType::UINT32:
Lev Proleevabad9ea2018-10-01 11:18:31 +0100197 case OperandType::BOOL:
Lev Proleev923b8c52019-01-30 17:14:40 +0000198 case OperandType::TENSOR_BOOL8:
Michael K. Sanders19d63452018-10-12 09:10:15 +0100199 case OperandType::TENSOR_FLOAT16:
Slava Shklyaev871be942018-09-12 14:52:02 +0100200 case OperandType::TENSOR_FLOAT32:
Przemyslaw Szczepaniakfaa59b82018-11-08 15:22:17 +0000201 case OperandType::TENSOR_QUANT8_SYMM_PER_CHANNEL:
Slava Shklyaev871be942018-09-12 14:52:02 +0100202 return 1.0f;
203 case OperandType::TENSOR_INT32:
204 return -1.0f;
Hervé Guihotbae91692019-01-23 19:18:59 -0800205 case OperandType::TENSOR_QUANT8_SYMM:
Slava Shklyaev871be942018-09-12 14:52:02 +0100206 case OperandType::TENSOR_QUANT8_ASYMM:
Xusong Wangd49f6652019-01-16 18:32:24 -0800207 case OperandType::TENSOR_QUANT16_ASYMM:
Lev Proleev48c88202018-11-13 15:42:36 +0000208 case OperandType::TENSOR_QUANT16_SYMM:
Slava Shklyaev871be942018-09-12 14:52:02 +0100209 return 0.0f;
210 default:
211 return 0.0f;
212 }
213}
214
215static void mutateOperandScaleTest(const sp<IDevice>& device, const Model& model) {
216 for (size_t operand = 0; operand < model.operands.size(); ++operand) {
217 const float invalidScale = getInvalidScale(model.operands[operand].type);
218 const std::string message = "mutateOperandScaleTest: operand " + std::to_string(operand) +
219 " has scale of " + std::to_string(invalidScale);
220 validate(device, message, model, [operand, invalidScale](Model* model) {
221 model->operands[operand].scale = invalidScale;
222 });
223 }
224}
225
226///////////////////////// VALIDATE OPERAND ZERO POINT /////////////////////////
227
228static std::vector<int32_t> getInvalidZeroPoints(OperandType type) {
229 switch (type) {
Xusong Wang7bca34b2018-12-05 14:21:51 -0800230 case OperandType::FLOAT16:
Slava Shklyaev871be942018-09-12 14:52:02 +0100231 case OperandType::FLOAT32:
232 case OperandType::INT32:
233 case OperandType::UINT32:
Lev Proleevabad9ea2018-10-01 11:18:31 +0100234 case OperandType::BOOL:
Lev Proleev923b8c52019-01-30 17:14:40 +0000235 case OperandType::TENSOR_BOOL8:
Michael K. Sanders19d63452018-10-12 09:10:15 +0100236 case OperandType::TENSOR_FLOAT16:
Slava Shklyaev871be942018-09-12 14:52:02 +0100237 case OperandType::TENSOR_FLOAT32:
238 case OperandType::TENSOR_INT32:
Przemyslaw Szczepaniakfaa59b82018-11-08 15:22:17 +0000239 case OperandType::TENSOR_QUANT8_SYMM_PER_CHANNEL:
Slava Shklyaev871be942018-09-12 14:52:02 +0100240 return {1};
241 case OperandType::TENSOR_QUANT8_ASYMM:
242 return {-1, 256};
Hervé Guihotbae91692019-01-23 19:18:59 -0800243 case OperandType::TENSOR_QUANT8_SYMM:
244 return {-129, -1, 1, 128};
Xusong Wangd49f6652019-01-16 18:32:24 -0800245 case OperandType::TENSOR_QUANT16_ASYMM:
246 return {-1, 65536};
Lev Proleev48c88202018-11-13 15:42:36 +0000247 case OperandType::TENSOR_QUANT16_SYMM:
248 return {-32769, -1, 1, 32768};
Slava Shklyaev871be942018-09-12 14:52:02 +0100249 default:
250 return {};
251 }
252}
253
254static void mutateOperandZeroPointTest(const sp<IDevice>& device, const Model& model) {
255 for (size_t operand = 0; operand < model.operands.size(); ++operand) {
256 const std::vector<int32_t> invalidZeroPoints =
257 getInvalidZeroPoints(model.operands[operand].type);
258 for (int32_t invalidZeroPoint : invalidZeroPoints) {
259 const std::string message = "mutateOperandZeroPointTest: operand " +
260 std::to_string(operand) + " has zero point of " +
261 std::to_string(invalidZeroPoint);
262 validate(device, message, model, [operand, invalidZeroPoint](Model* model) {
263 model->operands[operand].zeroPoint = invalidZeroPoint;
264 });
265 }
266 }
267}
268
269///////////////////////// VALIDATE EXTRA ??? /////////////////////////
270
271// TODO: Operand::lifetime
272// TODO: Operand::location
273
274///////////////////////// VALIDATE OPERATION OPERAND TYPE /////////////////////////
275
276static void mutateOperand(Operand* operand, OperandType type) {
277 Operand newOperand = *operand;
278 newOperand.type = type;
279 switch (type) {
Xusong Wang7bca34b2018-12-05 14:21:51 -0800280 case OperandType::FLOAT16:
Slava Shklyaev871be942018-09-12 14:52:02 +0100281 case OperandType::FLOAT32:
282 case OperandType::INT32:
283 case OperandType::UINT32:
Lev Proleevabad9ea2018-10-01 11:18:31 +0100284 case OperandType::BOOL:
Slava Shklyaev871be942018-09-12 14:52:02 +0100285 newOperand.dimensions = hidl_vec<uint32_t>();
286 newOperand.scale = 0.0f;
287 newOperand.zeroPoint = 0;
288 break;
Lev Proleev923b8c52019-01-30 17:14:40 +0000289 case OperandType::TENSOR_BOOL8:
Michael K. Sanders19d63452018-10-12 09:10:15 +0100290 case OperandType::TENSOR_FLOAT16:
Slava Shklyaev871be942018-09-12 14:52:02 +0100291 case OperandType::TENSOR_FLOAT32:
292 newOperand.dimensions =
293 operand->dimensions.size() > 0 ? operand->dimensions : hidl_vec<uint32_t>({1});
294 newOperand.scale = 0.0f;
295 newOperand.zeroPoint = 0;
296 break;
297 case OperandType::TENSOR_INT32:
298 newOperand.dimensions =
299 operand->dimensions.size() > 0 ? operand->dimensions : hidl_vec<uint32_t>({1});
300 newOperand.zeroPoint = 0;
301 break;
302 case OperandType::TENSOR_QUANT8_ASYMM:
Hervé Guihotbae91692019-01-23 19:18:59 -0800303 case OperandType::TENSOR_QUANT8_SYMM:
Xusong Wangd49f6652019-01-16 18:32:24 -0800304 case OperandType::TENSOR_QUANT16_ASYMM:
Lev Proleev48c88202018-11-13 15:42:36 +0000305 case OperandType::TENSOR_QUANT16_SYMM:
Slava Shklyaev871be942018-09-12 14:52:02 +0100306 newOperand.dimensions =
307 operand->dimensions.size() > 0 ? operand->dimensions : hidl_vec<uint32_t>({1});
308 newOperand.scale = operand->scale != 0.0f ? operand->scale : 1.0f;
309 break;
Przemyslaw Szczepaniakfaa59b82018-11-08 15:22:17 +0000310 case OperandType::TENSOR_QUANT8_SYMM_PER_CHANNEL: {
311 newOperand.dimensions =
312 operand->dimensions.size() > 0 ? operand->dimensions : hidl_vec<uint32_t>({1});
313 newOperand.scale = 0.0f;
314 newOperand.zeroPoint = 0;
315
316 SymmPerChannelQuantParams channelQuant;
317 channelQuant.channelDim = 0;
318 channelQuant.scales = hidl_vec<float>(
319 operand->dimensions.size() > 0 ? static_cast<size_t>(operand->dimensions[0]) : 0);
320 for (size_t i = 0; i < channelQuant.scales.size(); ++i) {
321 channelQuant.scales[i] = 1.0f;
322 }
323 newOperand.extraParams.channelQuant(std::move(channelQuant));
324 } break;
Slava Shklyaev871be942018-09-12 14:52:02 +0100325 case OperandType::OEM:
326 case OperandType::TENSOR_OEM_BYTE:
327 default:
328 break;
329 }
330 *operand = newOperand;
331}
332
Xusong Wang5b747ae2018-10-05 11:49:13 -0700333static bool mutateOperationOperandTypeSkip(size_t operand, OperandType type, const Model& model) {
334 // Do not test OEM types
335 if (type == model.operands[operand].type || type == OperandType::OEM ||
336 type == OperandType::TENSOR_OEM_BYTE) {
337 return true;
338 }
Slava Shklyaev871be942018-09-12 14:52:02 +0100339 for (const Operation& operation : model.operations) {
Xusong Wang5b747ae2018-10-05 11:49:13 -0700340 // Skip mutateOperationOperandTypeTest for the following operations.
341 // - LSH_PROJECTION's second argument is allowed to have any type.
Michael K. Sandersbbdab2f2018-11-28 10:35:08 +0000342 // - ARGMIN and ARGMAX's first argument can be any of
343 // TENSOR_(FLOAT16|FLOAT32|INT32|QUANT8_ASYMM).
344 // - CAST's argument can be any of TENSOR_(FLOAT16|FLOAT32|INT32|QUANT8_ASYMM).
Michael K. Sanders5b2615b2018-12-06 12:34:07 +0000345 // - RANDOM_MULTINOMIAL's argument can be either TENSOR_FLOAT16 or TENSOR_FLOAT32.
Lev Proleev923b8c52019-01-30 17:14:40 +0000346 // - DEQUANTIZE input can be any of
347 // TENSOR_(QUANT8_ASYMM|QUANT8_SYMM|QUANT8_SYMM_PER_CHANNEL), output can
348 // be of either TENSOR_FLOAT16 or TENSOR_FLOAT32.
349 // - QUANTIZE input can be either TENSOR_FLOAT16 or TENSOR_FLOAT32
Przemyslaw Szczepaniakf54f1262018-11-26 14:10:06 +0000350 // - CONV_2D filter type (arg 1) can be QUANT8_ASYMM or QUANT8_SYMM_PER_CHANNEL
Przemyslaw Szczepaniak47b91412018-12-11 13:42:27 +0000351 // - DEPTHWISE_CONV_2D filter type (arg 1) can be QUANT8_ASYMM or QUANT8_SYMM_PER_CHANNEL
Lev Proleevb0762cc2019-01-15 17:53:46 +0000352 // - GROUPED_CONV_2D filter type (arg 1) can be QUANT8_ASYMM or QUANT8_SYMM_PER_CHANNEL
Lev Proleev1509a262019-01-15 17:49:24 +0000353 // - TRANSPOSE_CONV_2D filter type (arg 1) can be QUANT8_ASYMM or QUANT8_SYMM_PER_CHANNEL
Xusong Wang5b747ae2018-10-05 11:49:13 -0700354 switch (operation.type) {
355 case OperationType::LSH_PROJECTION: {
356 if (operand == operation.inputs[1]) {
357 return true;
358 }
359 } break;
360 case OperationType::CAST:
361 case OperationType::ARGMAX:
362 case OperationType::ARGMIN: {
Michael K. Sandersbbdab2f2018-11-28 10:35:08 +0000363 if (type == OperandType::TENSOR_FLOAT16 || type == OperandType::TENSOR_FLOAT32 ||
364 type == OperandType::TENSOR_INT32 || type == OperandType::TENSOR_QUANT8_ASYMM) {
Xusong Wang5b747ae2018-10-05 11:49:13 -0700365 return true;
366 }
367 } break;
Lev Proleev923b8c52019-01-30 17:14:40 +0000368 case OperationType::QUANTIZE:
Michael K. Sanders5b2615b2018-12-06 12:34:07 +0000369 case OperationType::RANDOM_MULTINOMIAL: {
Lev Proleev923b8c52019-01-30 17:14:40 +0000370 if (operand == operation.inputs[0] &&
371 (type == OperandType::TENSOR_FLOAT16 || type == OperandType::TENSOR_FLOAT32)) {
372 return true;
373 }
374 } break;
375 case OperationType::DEQUANTIZE: {
376 if (operand == operation.inputs[0] &&
377 (type == OperandType::TENSOR_QUANT8_ASYMM ||
378 type == OperandType::TENSOR_QUANT8_SYMM ||
379 type == OperandType::TENSOR_QUANT8_SYMM_PER_CHANNEL)) {
380 return true;
381 }
382 if (operand == operation.outputs[0] &&
383 (type == OperandType::TENSOR_FLOAT16 || type == OperandType::TENSOR_FLOAT32)) {
Michael K. Sanders5b2615b2018-12-06 12:34:07 +0000384 return true;
385 }
386 } break;
Lev Proleev1509a262019-01-15 17:49:24 +0000387 case OperationType::TRANSPOSE_CONV_2D:
Lev Proleevb0762cc2019-01-15 17:53:46 +0000388 case OperationType::GROUPED_CONV_2D:
Przemyslaw Szczepaniak47b91412018-12-11 13:42:27 +0000389 case OperationType::DEPTHWISE_CONV_2D:
Przemyslaw Szczepaniakf54f1262018-11-26 14:10:06 +0000390 case OperationType::CONV_2D: {
391 if (operand == 1 && (type == OperandType::TENSOR_QUANT8_ASYMM ||
392 type == OperandType::TENSOR_QUANT8_SYMM_PER_CHANNEL)) {
393 return true;
394 }
395 } break;
Xusong Wang5b747ae2018-10-05 11:49:13 -0700396 default:
397 break;
Slava Shklyaev871be942018-09-12 14:52:02 +0100398 }
399 }
400 return false;
401}
402
403static void mutateOperationOperandTypeTest(const sp<IDevice>& device, const Model& model) {
404 for (size_t operand = 0; operand < model.operands.size(); ++operand) {
Slava Shklyaev871be942018-09-12 14:52:02 +0100405 for (OperandType invalidOperandType : hidl_enum_range<OperandType>{}) {
Xusong Wang5b747ae2018-10-05 11:49:13 -0700406 if (mutateOperationOperandTypeSkip(operand, invalidOperandType, model)) {
Slava Shklyaev871be942018-09-12 14:52:02 +0100407 continue;
408 }
409 const std::string message = "mutateOperationOperandTypeTest: operand " +
410 std::to_string(operand) + " set to type " +
411 toString(invalidOperandType);
412 validate(device, message, model, [operand, invalidOperandType](Model* model) {
413 mutateOperand(&model->operands[operand], invalidOperandType);
414 });
415 }
416 }
417}
418
419///////////////////////// VALIDATE MODEL OPERATION TYPE /////////////////////////
420
Michael K. Sandersc785d462018-10-30 15:16:54 +0000421static const uint32_t invalidOperationTypes[] = {
Slava Shklyaev794703d2019-01-17 15:37:05 +0000422 static_cast<uint32_t>(OperationTypeRange::FUNDAMENTAL_MAX) + 1,
423 static_cast<uint32_t>(OperationTypeRange::OEM_MIN) - 1,
424 static_cast<uint32_t>(OperationTypeRange::OEM_MAX) + 1,
Slava Shklyaev871be942018-09-12 14:52:02 +0100425};
426
427static void mutateOperationTypeTest(const sp<IDevice>& device, const Model& model) {
428 for (size_t operation = 0; operation < model.operations.size(); ++operation) {
Michael K. Sandersc785d462018-10-30 15:16:54 +0000429 for (uint32_t invalidOperationType : invalidOperationTypes) {
Slava Shklyaev871be942018-09-12 14:52:02 +0100430 const std::string message = "mutateOperationTypeTest: operation " +
431 std::to_string(operation) + " set to value " +
432 std::to_string(invalidOperationType);
433 validate(device, message, model, [operation, invalidOperationType](Model* model) {
434 model->operations[operation].type =
435 static_cast<OperationType>(invalidOperationType);
436 });
437 }
438 }
439}
440
441///////////////////////// VALIDATE MODEL OPERATION INPUT OPERAND INDEX /////////////////////////
442
443static void mutateOperationInputOperandIndexTest(const sp<IDevice>& device, const Model& model) {
444 for (size_t operation = 0; operation < model.operations.size(); ++operation) {
445 const uint32_t invalidOperand = model.operands.size();
446 for (size_t input = 0; input < model.operations[operation].inputs.size(); ++input) {
447 const std::string message = "mutateOperationInputOperandIndexTest: operation " +
448 std::to_string(operation) + " input " +
449 std::to_string(input);
450 validate(device, message, model, [operation, input, invalidOperand](Model* model) {
451 model->operations[operation].inputs[input] = invalidOperand;
452 });
453 }
454 }
455}
456
457///////////////////////// VALIDATE MODEL OPERATION OUTPUT OPERAND INDEX /////////////////////////
458
459static void mutateOperationOutputOperandIndexTest(const sp<IDevice>& device, const Model& model) {
460 for (size_t operation = 0; operation < model.operations.size(); ++operation) {
461 const uint32_t invalidOperand = model.operands.size();
462 for (size_t output = 0; output < model.operations[operation].outputs.size(); ++output) {
463 const std::string message = "mutateOperationOutputOperandIndexTest: operation " +
464 std::to_string(operation) + " output " +
465 std::to_string(output);
466 validate(device, message, model, [operation, output, invalidOperand](Model* model) {
467 model->operations[operation].outputs[output] = invalidOperand;
468 });
469 }
470 }
471}
472
473///////////////////////// REMOVE OPERAND FROM EVERYTHING /////////////////////////
474
475static void removeValueAndDecrementGreaterValues(hidl_vec<uint32_t>* vec, uint32_t value) {
476 if (vec) {
477 // remove elements matching "value"
478 auto last = std::remove(vec->begin(), vec->end(), value);
479 vec->resize(std::distance(vec->begin(), last));
480
481 // decrement elements exceeding "value"
482 std::transform(vec->begin(), vec->end(), vec->begin(),
483 [value](uint32_t v) { return v > value ? v-- : v; });
484 }
485}
486
487static void removeOperand(Model* model, uint32_t index) {
488 hidl_vec_removeAt(&model->operands, index);
489 for (Operation& operation : model->operations) {
490 removeValueAndDecrementGreaterValues(&operation.inputs, index);
491 removeValueAndDecrementGreaterValues(&operation.outputs, index);
492 }
493 removeValueAndDecrementGreaterValues(&model->inputIndexes, index);
494 removeValueAndDecrementGreaterValues(&model->outputIndexes, index);
495}
496
Xusong Wang5b747ae2018-10-05 11:49:13 -0700497static bool removeOperandSkip(size_t operand, const Model& model) {
498 for (const Operation& operation : model.operations) {
499 // Skip removeOperandTest for the following operations.
500 // - SPLIT's outputs are not checked during prepareModel.
501 if (operation.type == OperationType::SPLIT) {
502 for (const size_t outOprand : operation.outputs) {
503 if (operand == outOprand) {
504 return true;
505 }
506 }
507 }
Lev Proleev923b8c52019-01-30 17:14:40 +0000508 // BIDIRECTIONAL_SEQUENCE_RNN can have either on or two outputs
509 // depending on a mergeOutputs parameter
510 if (operation.type == OperationType::BIDIRECTIONAL_SEQUENCE_RNN) {
511 for (const size_t outOprand : operation.outputs) {
512 if (operand == outOprand) {
513 return true;
514 }
515 }
516 }
Xusong Wang5b747ae2018-10-05 11:49:13 -0700517 }
518 return false;
519}
520
Slava Shklyaev871be942018-09-12 14:52:02 +0100521static void removeOperandTest(const sp<IDevice>& device, const Model& model) {
522 for (size_t operand = 0; operand < model.operands.size(); ++operand) {
Xusong Wang5b747ae2018-10-05 11:49:13 -0700523 if (removeOperandSkip(operand, model)) {
524 continue;
525 }
Slava Shklyaev871be942018-09-12 14:52:02 +0100526 const std::string message = "removeOperandTest: operand " + std::to_string(operand);
527 validate(device, message, model,
528 [operand](Model* model) { removeOperand(model, operand); });
529 }
530}
531
532///////////////////////// REMOVE OPERATION /////////////////////////
533
534static void removeOperation(Model* model, uint32_t index) {
535 for (uint32_t operand : model->operations[index].inputs) {
536 model->operands[operand].numberOfConsumers--;
537 }
538 hidl_vec_removeAt(&model->operations, index);
539}
540
541static void removeOperationTest(const sp<IDevice>& device, const Model& model) {
542 for (size_t operation = 0; operation < model.operations.size(); ++operation) {
543 const std::string message = "removeOperationTest: operation " + std::to_string(operation);
544 validate(device, message, model,
545 [operation](Model* model) { removeOperation(model, operation); });
546 }
547}
548
549///////////////////////// REMOVE OPERATION INPUT /////////////////////////
550
Xusong Wang5b747ae2018-10-05 11:49:13 -0700551static bool removeOperationInputSkip(const Operation& op, size_t input) {
552 // Skip removeOperationInputTest for the following operations.
553 // - CONCATENATION has at least 2 inputs, with the last element being INT32.
554 // - CONV_2D, DEPTHWISE_CONV_2D, MAX_POOL_2D, AVERAGE_POOL_2D, L2_POOL_2D, RESIZE_BILINEAR,
555 // SPACE_TO_DEPTH, SPACE_TO_DEPTH, SPACE_TO_BATCH_ND, BATCH_TO_SPACE_ND can have an optional
556 // layout parameter.
557 // - L2_NORMALIZATION, LOCAL_RESPONSE_NORMALIZATION, SOFTMAX can have an optional axis
558 // parameter.
559 switch (op.type) {
560 case OperationType::CONCATENATION: {
561 if (op.inputs.size() > 2 && input != op.inputs.size() - 1) {
562 return true;
563 }
564 } break;
565 case OperationType::DEPTHWISE_CONV_2D: {
566 if ((op.inputs.size() == 12 && input == 11) || (op.inputs.size() == 9 && input == 8)) {
567 return true;
568 }
569 } break;
570 case OperationType::CONV_2D:
571 case OperationType::AVERAGE_POOL_2D:
572 case OperationType::MAX_POOL_2D:
573 case OperationType::L2_POOL_2D: {
574 if ((op.inputs.size() == 11 && input == 10) || (op.inputs.size() == 8 && input == 7)) {
575 return true;
576 }
577 } break;
578 case OperationType::RESIZE_BILINEAR: {
579 if (op.inputs.size() == 4 && input == 3) {
580 return true;
581 }
582 } break;
583 case OperationType::SPACE_TO_DEPTH:
584 case OperationType::DEPTH_TO_SPACE:
585 case OperationType::BATCH_TO_SPACE_ND: {
586 if (op.inputs.size() == 3 && input == 2) {
587 return true;
588 }
589 } break;
590 case OperationType::SPACE_TO_BATCH_ND: {
591 if (op.inputs.size() == 4 && input == 3) {
592 return true;
593 }
594 } break;
595 case OperationType::L2_NORMALIZATION: {
596 if (op.inputs.size() == 2 && input == 1) {
597 return true;
598 }
599 } break;
600 case OperationType::LOCAL_RESPONSE_NORMALIZATION: {
601 if (op.inputs.size() == 6 && input == 5) {
602 return true;
603 }
604 } break;
605 case OperationType::SOFTMAX: {
606 if (op.inputs.size() == 3 && input == 2) {
607 return true;
608 }
609 } break;
610 default:
611 break;
612 }
613 return false;
614}
615
Slava Shklyaev871be942018-09-12 14:52:02 +0100616static void removeOperationInputTest(const sp<IDevice>& device, const Model& model) {
617 for (size_t operation = 0; operation < model.operations.size(); ++operation) {
618 for (size_t input = 0; input < model.operations[operation].inputs.size(); ++input) {
619 const Operation& op = model.operations[operation];
Xusong Wang5b747ae2018-10-05 11:49:13 -0700620 if (removeOperationInputSkip(op, input)) {
Slava Shklyaev871be942018-09-12 14:52:02 +0100621 continue;
622 }
623 const std::string message = "removeOperationInputTest: operation " +
624 std::to_string(operation) + ", input " +
625 std::to_string(input);
626 validate(device, message, model, [operation, input](Model* model) {
627 uint32_t operand = model->operations[operation].inputs[input];
628 model->operands[operand].numberOfConsumers--;
629 hidl_vec_removeAt(&model->operations[operation].inputs, input);
630 });
631 }
632 }
633}
634
635///////////////////////// REMOVE OPERATION OUTPUT /////////////////////////
636
637static void removeOperationOutputTest(const sp<IDevice>& device, const Model& model) {
638 for (size_t operation = 0; operation < model.operations.size(); ++operation) {
639 for (size_t output = 0; output < model.operations[operation].outputs.size(); ++output) {
640 const std::string message = "removeOperationOutputTest: operation " +
641 std::to_string(operation) + ", output " +
642 std::to_string(output);
643 validate(device, message, model, [operation, output](Model* model) {
644 hidl_vec_removeAt(&model->operations[operation].outputs, output);
645 });
646 }
647 }
648}
649
650///////////////////////// MODEL VALIDATION /////////////////////////
651
652// TODO: remove model input
653// TODO: remove model output
654// TODO: add unused operation
655
656///////////////////////// ADD OPERATION INPUT /////////////////////////
657
Xusong Wang5b747ae2018-10-05 11:49:13 -0700658static bool addOperationInputSkip(const Operation& op) {
Xusong Wang64337282018-10-22 13:49:00 -0700659 // Skip addOperationInputTest for the following operations.
Xusong Wang5b747ae2018-10-05 11:49:13 -0700660 // - L2_NORMALIZATION, LOCAL_RESPONSE_NORMALIZATION, SOFTMAX can have an optional INT32 axis
661 // parameter.
662 if ((op.type == OperationType::L2_NORMALIZATION && op.inputs.size() == 1) ||
663 (op.type == OperationType::LOCAL_RESPONSE_NORMALIZATION && op.inputs.size() == 5) ||
664 (op.type == OperationType::SOFTMAX && op.inputs.size() == 2)) {
Xusong Wang64337282018-10-22 13:49:00 -0700665 return true;
666 }
667 return false;
668}
669
Slava Shklyaev871be942018-09-12 14:52:02 +0100670static void addOperationInputTest(const sp<IDevice>& device, const Model& model) {
671 for (size_t operation = 0; operation < model.operations.size(); ++operation) {
Xusong Wang64337282018-10-22 13:49:00 -0700672 if (addOperationInputSkip(model.operations[operation])) {
673 continue;
674 }
Slava Shklyaev871be942018-09-12 14:52:02 +0100675 const std::string message = "addOperationInputTest: operation " + std::to_string(operation);
676 validate(device, message, model, [operation](Model* model) {
677 uint32_t index = addOperand(model, OperandLifeTime::MODEL_INPUT);
678 hidl_vec_push_back(&model->operations[operation].inputs, index);
679 hidl_vec_push_back(&model->inputIndexes, index);
680 });
681 }
682}
683
684///////////////////////// ADD OPERATION OUTPUT /////////////////////////
685
686static void addOperationOutputTest(const sp<IDevice>& device, const Model& model) {
687 for (size_t operation = 0; operation < model.operations.size(); ++operation) {
688 const std::string message =
689 "addOperationOutputTest: operation " + std::to_string(operation);
690 validate(device, message, model, [operation](Model* model) {
691 uint32_t index = addOperand(model, OperandLifeTime::MODEL_OUTPUT);
692 hidl_vec_push_back(&model->operations[operation].outputs, index);
693 hidl_vec_push_back(&model->outputIndexes, index);
694 });
695 }
696}
697
698///////////////////////// VALIDATE EXECUTION PREFERENCE /////////////////////////
699
700static const int32_t invalidExecutionPreferences[] = {
701 static_cast<int32_t>(ExecutionPreference::LOW_POWER) - 1, // lower bound
702 static_cast<int32_t>(ExecutionPreference::SUSTAINED_SPEED) + 1, // upper bound
703};
704
705static void mutateExecutionPreferenceTest(const sp<IDevice>& device, const Model& model) {
706 for (int32_t preference : invalidExecutionPreferences) {
707 const std::string message =
708 "mutateExecutionPreferenceTest: preference " + std::to_string(preference);
709 validate(device, message, model, [](Model*) {},
710 static_cast<ExecutionPreference>(preference));
711 }
712}
713
714////////////////////////// ENTRY POINT //////////////////////////////
715
716void ValidationTest::validateModel(const Model& model) {
717 mutateOperandTypeTest(device, model);
718 mutateOperandRankTest(device, model);
719 mutateOperandScaleTest(device, model);
720 mutateOperandZeroPointTest(device, model);
721 mutateOperationOperandTypeTest(device, model);
722 mutateOperationTypeTest(device, model);
723 mutateOperationInputOperandIndexTest(device, model);
724 mutateOperationOutputOperandIndexTest(device, model);
725 removeOperandTest(device, model);
726 removeOperationTest(device, model);
727 removeOperationInputTest(device, model);
728 removeOperationOutputTest(device, model);
729 addOperationInputTest(device, model);
730 addOperationOutputTest(device, model);
731 mutateExecutionPreferenceTest(device, model);
732}
733
734} // namespace functional
735} // namespace vts
736} // namespace V1_2
737} // namespace neuralnetworks
738} // namespace hardware
739} // namespace android