kernel_factory.cc 14.6 KB
Newer Older
1 2 3 4 5 6 7 8 9 10 11 12 13 14
//   Copyright (c) 2021 PaddlePaddle Authors. All Rights Reserved.
//
// Licensed under the Apache License, Version 2.0 (the "License");
// you may not use this file except in compliance with the License.
// You may obtain a copy of the License at
//
//     http://www.apache.org/licenses/LICENSE-2.0
//
// Unless required by applicable law or agreed to in writing, software
// distributed under the License is distributed on an "AS IS" BASIS,
// WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
// See the License for the specific language governing permissions and
// limitations under the License.

15
#include "paddle/phi/core/kernel_factory.h"
16

17
#include "glog/logging.h"
18
#include "paddle/phi/core/enforce.h"
19
#if defined(PADDLE_WITH_XPU) && !defined(PADDLE_WITH_XPU_KP)
20
#include "paddle/phi/backends/xpu/xpu_op_list.h"
21 22
#include "paddle/phi/core/compat/convert_utils.h"
#endif
23
#include "paddle/phi/core/compat/op_utils.h"
24
#include "paddle/utils/string/string_helper.h"
25

26
DECLARE_int32(low_precision_op_list);
27 28
DECLARE_bool(enable_api_kernel_fallback);

29
namespace phi {
30

31 32
const static Kernel empty_kernel;  // NOLINT

33 34
std::string KernelSelectionErrorMessage(const std::string& kernel_name,
                                        const KernelKey& target_key);
35

36 37 38 39 40 41 42 43 44
uint32_t KernelKey::Hash::operator()(const KernelKey& key) const {
  uint32_t hash_value = 0;
  // |----31-20------|---19-12---|---11-8----|---7-0---|
  // | For extension | DataType | DataLayout | Backend |
  hash_value |= static_cast<uint8_t>(key.backend());
  hash_value |=
      (static_cast<uint8_t>(key.layout()) << KernelKey::kBackendBitLength);
  hash_value |=
      (static_cast<uint16_t>(key.dtype())
45
       << (KernelKey::kBackendBitLength + KernelKey::kDataLayoutBitLength));
46 47 48 49 50 51 52 53
  return hash_value;
}

KernelFactory& KernelFactory::Instance() {
  static KernelFactory g_op_kernel_factory;
  return g_op_kernel_factory;
}

54 55 56 57 58 59 60 61 62 63 64
bool KernelFactory::HasCompatiblePhiKernel(const std::string& op_type) const {
  if (deprecated_op_names.find(op_type) == deprecated_op_names.end()) {
    if (phi::OpUtilsMap::Instance().Contains(op_type)) {
      return true;
    } else if (kernels_.find(op_type) != kernels_.end()) {
      return true;
    }
  }
  return false;
}

65 66
const Kernel& KernelFactory::SelectKernel(const std::string& kernel_name,
                                          const KernelKey& kernel_key) const {
67 68
  auto iter = kernels_.find(kernel_name);
  if (iter == kernels_.end()) {
69
    return empty_kernel;
70 71
  }
  auto kernel_iter = iter->second.find(kernel_key);
72 73 74 75 76 77 78
  if (kernel_iter == iter->second.end() &&
      kernel_key.layout() != phi::DataLayout::ALL_LAYOUT) {
    phi::KernelKey any_layout_kernel_key(
        kernel_key.backend(), phi::DataLayout::ALL_LAYOUT, kernel_key.dtype());
    kernel_iter = iter->second.find(any_layout_kernel_key);
  }

79
  if (kernel_iter == iter->second.end()) {
80
    return empty_kernel;
81
  }
82

83 84 85
  return kernel_iter->second;
}

86 87
KernelKeyMap KernelFactory::SelectKernelMap(
    const std::string& kernel_name) const {
88 89
  auto iter = kernels_.find(kernel_name);
  if (iter == kernels_.end()) {
90
    return KernelKeyMap();
91 92 93 94
  }
  return iter->second;
}

95 96
bool KernelFactory::HasKernel(const std::string& kernel_name,
                              const KernelKey& kernel_key) const {
97 98 99 100 101 102 103 104 105 106 107 108 109
  auto iter = kernels_.find(kernel_name);
  PADDLE_ENFORCE_NE(
      iter,
      kernels_.end(),
      phi::errors::NotFound("The kernel `%s` is not registered.", kernel_name));

  auto kernel_iter = iter->second.find(kernel_key);
  if (kernel_iter == iter->second.end()) {
    return false;
  }
  return true;
}

110 111 112 113 114 115 116 117
void KernelFactory::AddToLowPrecisionKernelList(
    const std::string& name,
    const paddle::experimental::DataType& kernel_key_type) {
  if (FLAGS_low_precision_op_list >= 1) {
    auto op_name = phi::TransToFluidOpName(name);
    if (op_name.find("_grad") != std::string::npos) {
      return;  // only record forward api
    }
118 119 120 121 122 123 124 125 126 127 128 129 130

    if (low_precision_kernels_.find(op_name) == low_precision_kernels_.end()) {
      auto count = OpCount();
      low_precision_kernels_[op_name] = count;
    }
    if (kernel_key_type == paddle::experimental::DataType::FLOAT16) {
      low_precision_kernels_[op_name].fp16_called_ += 1;
    } else if (kernel_key_type == paddle::experimental::DataType::BFLOAT16) {
      low_precision_kernels_[op_name].bf16_called_ += 1;
    } else if (kernel_key_type == paddle::experimental::DataType::FLOAT32) {
      low_precision_kernels_[op_name].fp32_called_ += 1;
    } else {
      low_precision_kernels_[op_name].other_called_ += 1;
131 132 133 134
    }
  }
}

135 136
std::map<const std::string, OpCount>
KernelFactory::GetLowPrecisionKernelList() {
137 138 139
  return low_precision_kernels_;
}

140
KernelResult KernelFactory::SelectKernelOrThrowError(
141
    const std::string& kernel_name, const KernelKey& const_kernel_key) const {
142
  auto iter = kernels_.find(kernel_name);
143

144 145 146 147
  PADDLE_ENFORCE_NE(
      iter,
      kernels_.end(),
      phi::errors::NotFound("The kernel `%s` is not registered.", kernel_name));
148

149 150 151
  KernelKey kernel_key = KernelKey(const_kernel_key.backend(),
                                   phi::DataLayout::ALL_LAYOUT,
                                   const_kernel_key.dtype());
Z
zyfncg 已提交
152
#if defined(PADDLE_WITH_CUDA) || defined(PADDLE_WITH_HIP)
153
  if (kernel_key.backend() == Backend::GPUDNN) {
Z
zyfncg 已提交
154
    auto kernel_iter = iter->second.find(
155
        {Backend::GPUDNN, phi::DataLayout::ALL_LAYOUT, kernel_key.dtype()});
Z
zyfncg 已提交
156
    if (kernel_iter != iter->second.end()) {
157
      return {kernel_iter->second, false};
Z
zyfncg 已提交
158
    }
159 160
    kernel_key =
        KernelKey(Backend::GPU, kernel_key.layout(), kernel_key.dtype());
Z
zyfncg 已提交
161 162
  }
#endif
163
  auto kernel_iter = iter->second.find(kernel_key);
164

165 166 167 168
  PADDLE_ENFORCE_NE(
      kernel_iter == iter->second.end() && kernel_key.backend() == Backend::CPU,
      true,
      phi::errors::NotFound(
169
          "The kernel with key %s of kernel `%s` is not registered. %s",
170
          kernel_key,
171
          kernel_name,
172
          KernelSelectionErrorMessage(kernel_name, kernel_key)));
173

174
#if defined(PADDLE_WITH_XPU) && !defined(PADDLE_WITH_XPU_KP)
175 176
  VLOG(6) << "fluid_op_name: " << TransToFluidOpName(kernel_name);
  if ((FLAGS_enable_api_kernel_fallback && kernel_iter == iter->second.end()) ||
Q
QingshuChen 已提交
177 178
      !phi::backends::xpu::is_xpu_support_op(TransToFluidOpName(kernel_name),
                                             kernel_key.dtype())
179 180
#else
  if ((FLAGS_enable_api_kernel_fallback && kernel_iter == iter->second.end())
181 182
#endif
  ) {
183 184 185 186
    // Fallback CPU backend
    phi::KernelKey cpu_kernel_key(
        phi::Backend::CPU, kernel_key.layout(), kernel_key.dtype());
    kernel_iter = iter->second.find(cpu_kernel_key);
187 188 189 190 191

    PADDLE_ENFORCE_NE(
        kernel_iter,
        iter->second.end(),
        phi::errors::NotFound(
192 193
            "The kernel with key %s of kernel `%s` is not registered and "
            "fail to fallback to CPU one. %s",
194
            kernel_key,
195
            kernel_name,
196
            KernelSelectionErrorMessage(kernel_name, kernel_key)));
197 198 199 200 201 202

    VLOG(3) << "missing " << kernel_key.backend() << " kernel: " << kernel_name
            << ", expected_kernel_key:" << kernel_key
            << ", fallbacking to CPU one!";

    return {kernel_iter->second, true};
203 204
  }

205 206 207
  PADDLE_ENFORCE_NE(
      kernel_iter,
      iter->second.end(),
208
      phi::errors::NotFound(
209 210
          "The kernel with key %s of kernel `%s` is not registered. %s "
          "The current value of FLAGS_enable_api_kernel_fallback(bool,"
211 212
          " default true) is false. If you want to fallback this kernel"
          " to CPU one, please set the flag true before run again.",
213
          kernel_key,
214
          kernel_name,
215
          KernelSelectionErrorMessage(kernel_name, kernel_key)));
216

217
  return {kernel_iter->second, false};
218 219
}

220 221 222 223 224 225 226 227 228 229
const KernelArgsDef& KernelFactory::GetFirstKernelArgsDef(
    const std::string& kernel_name) const {
  auto iter = kernels_.find(kernel_name);
  PADDLE_ENFORCE_NE(
      iter,
      kernels_.end(),
      phi::errors::NotFound("The kernel `%s` is not registered.", kernel_name));
  return iter->second.cbegin()->second.args_def();
}

230 231 232 233 234 235 236 237 238 239 240 241 242 243 244 245 246 247 248 249 250 251 252 253 254 255 256 257 258 259 260 261 262 263 264 265 266 267 268 269 270 271 272 273 274 275 276 277 278 279 280 281 282 283 284 285 286 287 288 289 290 291
std::ostream& operator<<(std::ostream& os, AttributeType attr_type) {
  switch (attr_type) {
    case AttributeType::BOOL:
      os << "bool";
      break;
    case AttributeType::INT32:
      os << "int";
      break;
    case AttributeType::INT64:
      os << "int64_t";
      break;
    case AttributeType::FLOAT32:
      os << "float";
      break;
    case AttributeType::FLOAT64:
      os << "double";
      break;
    case AttributeType::STRING:
      os << "string";
      break;
    case AttributeType::BOOLS:
      os << "vector<bool>";
      break;
    case AttributeType::INT32S:
      os << "vector<int>";
      break;
    case AttributeType::INT64S:
      os << "vector<int64_t>";
      break;
    case AttributeType::FLOAT32S:
      os << "vector<float>";
      break;
    case AttributeType::FLOAT64S:
      os << "vector<double>";
      break;
    case AttributeType::STRINGS:
      os << "vector<string>";
      break;
    case AttributeType::SCALAR:
      os << "Scalar";
      break;
    case AttributeType::SCALARS:
      os << "vector<Scalar>";
      break;
    case AttributeType::INT_ARRAY:
      os << "IntArray";
      break;
    case AttributeType::DATA_TYPE:
      os << "DataType";
      break;
    case AttributeType::DATA_LAYOUT:
      os << "DataLayout";
      break;
    case AttributeType::PLACE:
      os << "Place";
      break;
    default:
      os << "Undefined";
  }
  return os;
}

292 293 294 295 296 297 298
// print kernel info with json format:
// {
//   "(CPU, Undefined(AnyLayout), complex64)": {
//   "input": ["CPU, NCHW, complex64", "CPU, NCHW, complex64"],
//   "output": ["CPU, NCHW, complex64"],
//   "attribute": ["i"]
// }
299
std::ostream& operator<<(std::ostream& os, const Kernel& kernel) {
300 301 302
  // input
  os << "{\"input\":[";
  bool need_comma = false;
303
  for (auto& in_def : kernel.args_def().input_defs()) {
304 305 306 307
    if (need_comma) os << ",";
    os << "\"" << in_def.backend << ", " << in_def.layout << ", "
       << in_def.dtype << "\"";
    need_comma = true;
308
  }
309 310 311 312 313 314 315 316 317 318 319 320 321 322 323 324 325 326
  os << "],";

  // output
  os << "\"output\":[";
  need_comma = false;
  for (auto& out_def : kernel.args_def().output_defs()) {
    if (need_comma) os << ",";
    os << "\"" << out_def.backend << ", " << out_def.layout << ", "
       << out_def.dtype << "\"";
    need_comma = true;
  }
  os << "],";

  // attr
  os << "\"attribute\":[";
  need_comma = false;
  for (auto& arg_def : kernel.args_def().attribute_defs()) {
    if (need_comma) os << ",";
327
    os << "\"" << arg_def.type_index << "\"";
328 329 330 331
    need_comma = true;
  }
  os << "]}";

332 333 334
  return os;
}

335 336 337 338 339 340 341 342 343 344 345 346 347 348 349
// print all kernels info with json format:
// {
//  "kernel_name1":
//      [
//        {
//          "(CPU, Undefined(AnyLayout), complex64)": {
//          "input": ["CPU, NCHW, complex64", "CPU, NCHW, complex64"],
//          "output": ["CPU, NCHW, complex64"],
//          "attribute": ["i"]
//        },
//        ...
//      ],
//    "kernel_name2": []
//    ...
// }
350
std::ostream& operator<<(std::ostream& os, KernelFactory& kernel_factory) {
351 352
  os << "{";
  bool need_comma_kernels = false;
353
  for (const auto& op_kernel_pair : kernel_factory.kernels()) {
354 355 356 357 358
    if (need_comma_kernels) {
      os << ",";
      os << std::endl;
    }
    os << "\"" << op_kernel_pair.first << " \":[" << std::endl;
359
    bool need_comma_per_kernel = false;
360
    for (const auto& kernel_pair : op_kernel_pair.second) {
361 362 363 364
      if (need_comma_per_kernel) {
        os << ",";
        os << std::endl;
      }
365 366
      os << "{\"" << kernel_pair.first << "\":" << kernel_pair.second << "}";
      need_comma_per_kernel = true;
367
    }
368 369
    os << "]";
    need_comma_kernels = true;
370
  }
371 372
  os << "}";

373 374 375
  return os;
}

376 377 378 379 380 381 382 383 384 385 386 387
// return all kernel selection error message of specific kernel_name:
// 1. If target_key not supports target backend, output "Selected wrong Backend
// ..."
// 2. If target_key not supports target datatype, output "Selected wrong
// DataType ..."
// 3. `target_key` is still not supported, output all kernel keys of
// corresponding kernel_name:
// {
//   (CPU, NCHW, [int8, int16, ...]);
//   (GPU, Undefined(AnyLayout), [float32, float64, ...]);
//   ...
// }
388 389
std::string KernelSelectionErrorMessage(const std::string& kernel_name,
                                        const KernelKey& target_key) {
390 391 392 393 394 395 396 397 398 399 400 401 402 403 404 405 406 407 408 409 410 411 412 413 414 415 416 417 418 419 420 421
  PADDLE_ENFORCE_NE(
      KernelFactory::Instance().kernels().find(kernel_name),
      KernelFactory::Instance().kernels().end(),
      phi::errors::NotFound("The kernel `%s` is not registered.", kernel_name));

  // Init data structure
  bool support_backend = false;
  bool support_dtype = false;
  std::unordered_map<std::string, std::vector<std::string>> all_kernel_key;
  std::unordered_set<std::string> backend_set;
  std::unordered_set<std::string> dtype_set;

  // Record all kernel information of kernel_name
  for (auto iter : KernelFactory::Instance().kernels()[kernel_name]) {
    KernelKey kernel_key = iter.first;
    if (kernel_key.backend() == target_key.backend()) {
      support_backend = true;
      if (kernel_key.dtype() == target_key.dtype()) {
        support_dtype = true;
      }
      dtype_set.insert(
          paddle::experimental::DataTypeToString(kernel_key.dtype()));
    }
    backend_set.insert(
        paddle::experimental::BackendToString(kernel_key.backend()));
    all_kernel_key[paddle::experimental::BackendToString(kernel_key.backend()) +
                   ", " + phi::DataLayoutToString(kernel_key.layout())]
        .push_back(paddle::experimental::DataTypeToString(kernel_key.dtype()));
  }
  // 1. If target_key not supports target backend, output "Selected wrong
  // Backend ..."
  if (!support_backend) {
422
    std::string error_message = paddle::string::join_strings(backend_set, ", ");
423 424 425 426 427 428 429
    return "Selected wrong Backend `" +
           paddle::experimental::BackendToString(target_key.backend()) +
           "`. Paddle support following Backends: " + error_message + ".";
  }
  // 2. If target_key not supports target datatype, output "Selected wrong
  // DataType ..."
  if (!support_dtype) {
430
    std::string error_message = paddle::string::join_strings(dtype_set, ", ");
431 432 433 434 435 436 437 438 439 440 441
    return "Selected wrong DataType `" +
           paddle::experimental::DataTypeToString(target_key.dtype()) +
           "`. Paddle support following DataTypes: " + error_message + ".";
  }
  // 3. `target_key` is still not supported, output all kernel keys of
  // corresponding kernel_name
  std::string message = "Currently, paddle support following kernel keys of `" +
                        kernel_name + "`: { ";
  for (auto iter = all_kernel_key.begin(); iter != all_kernel_key.end();
       ++iter) {
    std::vector<std::string>& dtype_vec = iter->second;
442 443
    message += "(" + iter->first + ", [";
    message += paddle::string::join_strings(dtype_vec, ", ");
444 445 446 447 448 449
    message += "]); ";
  }
  message += "}.";
  return message;
}

450
}  // namespace phi