Flutter Impeller
reflector.cc
Go to the documentation of this file.
1 // Copyright 2013 The Flutter Authors. All rights reserved.
2 // Use of this source code is governed by a BSD-style license that can be
3 // found in the LICENSE file.
4 
5 // FLUTTER_NOLINT: https://github.com/flutter/flutter/issues/105732
6 
8 
9 #include <atomic>
10 #include <optional>
11 #include <set>
12 #include <sstream>
13 
14 #include "flutter/fml/logging.h"
15 #include "fml/backtrace.h"
16 #include "impeller/base/strings.h"
24 #include "impeller/geometry/half.h"
28 #include "spirv_common.hpp"
29 
30 namespace impeller {
31 namespace compiler {
32 
33 static std::string ExecutionModelToString(spv::ExecutionModel model) {
34  switch (model) {
35  case spv::ExecutionModel::ExecutionModelVertex:
36  return "vertex";
37  case spv::ExecutionModel::ExecutionModelFragment:
38  return "fragment";
39  case spv::ExecutionModel::ExecutionModelGLCompute:
40  return "compute";
41  default:
42  return "unsupported";
43  }
44 }
45 
46 static std::string StringToShaderStage(const std::string& str) {
47  if (str == "vertex") {
48  return "ShaderStage::kVertex";
49  }
50 
51  if (str == "fragment") {
52  return "ShaderStage::kFragment";
53  }
54 
55  if (str == "compute") {
56  return "ShaderStage::kCompute";
57  }
58 
59  return "ShaderStage::kUnknown";
60 }
61 
63  const std::shared_ptr<const spirv_cross::ParsedIR>& ir,
64  const std::shared_ptr<fml::Mapping>& shader_data,
65  const CompilerBackend& compiler)
66  : options_(std::move(options)),
67  ir_(ir),
68  shader_data_(shader_data),
69  compiler_(compiler) {
70  if (!ir_ || !compiler_) {
71  return;
72  }
73 
74  if (auto template_arguments = GenerateTemplateArguments();
75  template_arguments.has_value()) {
76  template_arguments_ =
77  std::make_unique<nlohmann::json>(std::move(template_arguments.value()));
78  } else {
79  return;
80  }
81 
82  reflection_header_ = GenerateReflectionHeader();
83  if (!reflection_header_) {
84  return;
85  }
86 
87  reflection_cc_ = GenerateReflectionCC();
88  if (!reflection_cc_) {
89  return;
90  }
91 
92  runtime_stage_shader_ = GenerateRuntimeStageData();
93 
94  shader_bundle_data_ = GenerateShaderBundleData();
95  if (!shader_bundle_data_) {
96  return;
97  }
98 
99  is_valid_ = true;
100 }
101 
102 Reflector::~Reflector() = default;
103 
104 bool Reflector::IsValid() const {
105  return is_valid_;
106 }
107 
108 std::shared_ptr<fml::Mapping> Reflector::GetReflectionJSON() const {
109  if (!is_valid_) {
110  return nullptr;
111  }
112 
113  auto json_string =
114  std::make_shared<std::string>(template_arguments_->dump(2u));
115 
116  return std::make_shared<fml::NonOwnedMapping>(
117  reinterpret_cast<const uint8_t*>(json_string->data()),
118  json_string->size(), [json_string](auto, auto) {});
119 }
120 
121 std::shared_ptr<fml::Mapping> Reflector::GetReflectionHeader() const {
122  return reflection_header_;
123 }
124 
125 std::shared_ptr<fml::Mapping> Reflector::GetReflectionCC() const {
126  return reflection_cc_;
127 }
128 
129 std::shared_ptr<RuntimeStageData::Shader> Reflector::GetRuntimeStageShaderData()
130  const {
131  return runtime_stage_shader_;
132 }
133 
134 std::shared_ptr<ShaderBundleData> Reflector::GetShaderBundleData() const {
135  return shader_bundle_data_;
136 }
137 
138 std::optional<nlohmann::json> Reflector::GenerateTemplateArguments() const {
139  nlohmann::json root;
140 
141  const auto& entrypoints = compiler_->get_entry_points_and_stages();
142  if (entrypoints.size() != 1) {
143  VALIDATION_LOG << "Incorrect number of entrypoints in the shader. Found "
144  << entrypoints.size() << " but expected 1.";
145  return std::nullopt;
146  }
147 
148  auto execution_model = entrypoints.front().execution_model;
149  {
150  root["entrypoint"] = options_.entry_point_name;
151  root["shader_name"] = options_.shader_name;
152  root["shader_stage"] = ExecutionModelToString(execution_model);
153  root["header_file_name"] = options_.header_file_name;
154  }
155 
156  const auto shader_resources = compiler_->get_shader_resources();
157 
158  // Subpass Inputs.
159  {
160  auto& subpass_inputs = root["subpass_inputs"] = nlohmann::json::array_t{};
161  if (auto subpass_inputs_json =
162  ReflectResources(shader_resources.subpass_inputs);
163  subpass_inputs_json.has_value()) {
164  for (auto subpass_input : subpass_inputs_json.value()) {
165  subpass_input["descriptor_type"] = "DescriptorType::kInputAttachment";
166  subpass_inputs.emplace_back(std::move(subpass_input));
167  }
168  } else {
169  return std::nullopt;
170  }
171  }
172 
173  // Uniform and storage buffers.
174  {
175  auto& buffers = root["buffers"] = nlohmann::json::array_t{};
176  if (auto uniform_buffers_json =
177  ReflectResources(shader_resources.uniform_buffers);
178  uniform_buffers_json.has_value()) {
179  for (auto uniform_buffer : uniform_buffers_json.value()) {
180  uniform_buffer["descriptor_type"] = "DescriptorType::kUniformBuffer";
181  buffers.emplace_back(std::move(uniform_buffer));
182  }
183  } else {
184  return std::nullopt;
185  }
186  if (auto storage_buffers_json =
187  ReflectResources(shader_resources.storage_buffers);
188  storage_buffers_json.has_value()) {
189  for (auto uniform_buffer : storage_buffers_json.value()) {
190  uniform_buffer["descriptor_type"] = "DescriptorType::kStorageBuffer";
191  buffers.emplace_back(std::move(uniform_buffer));
192  }
193  } else {
194  return std::nullopt;
195  }
196  }
197 
198  {
199  auto& stage_inputs = root["stage_inputs"] = nlohmann::json::array_t{};
200  if (auto stage_inputs_json = ReflectResources(
201  shader_resources.stage_inputs,
202  /*compute_offsets=*/execution_model == spv::ExecutionModelVertex);
203  stage_inputs_json.has_value()) {
204  stage_inputs = std::move(stage_inputs_json.value());
205  } else {
206  return std::nullopt;
207  }
208  }
209 
210  {
211  auto combined_sampled_images =
212  ReflectResources(shader_resources.sampled_images);
213  auto images = ReflectResources(shader_resources.separate_images);
214  auto samplers = ReflectResources(shader_resources.separate_samplers);
215  if (!combined_sampled_images.has_value() || !images.has_value() ||
216  !samplers.has_value()) {
217  return std::nullopt;
218  }
219  auto& sampled_images = root["sampled_images"] = nlohmann::json::array_t{};
220  for (auto value : combined_sampled_images.value()) {
221  value["descriptor_type"] = "DescriptorType::kSampledImage";
222  sampled_images.emplace_back(std::move(value));
223  }
224  for (auto value : images.value()) {
225  value["descriptor_type"] = "DescriptorType::kImage";
226  sampled_images.emplace_back(std::move(value));
227  }
228  for (auto value : samplers.value()) {
229  value["descriptor_type"] = "DescriptorType::kSampledSampler";
230  sampled_images.emplace_back(std::move(value));
231  }
232  }
233 
234  if (auto stage_outputs = ReflectResources(shader_resources.stage_outputs);
235  stage_outputs.has_value()) {
236  root["stage_outputs"] = std::move(stage_outputs.value());
237  } else {
238  return std::nullopt;
239  }
240 
241  {
242  auto& struct_definitions = root["struct_definitions"] =
243  nlohmann::json::array_t{};
244  if (entrypoints.front().execution_model ==
245  spv::ExecutionModel::ExecutionModelVertex &&
246  !shader_resources.stage_inputs.empty()) {
247  if (auto struc =
248  ReflectPerVertexStructDefinition(shader_resources.stage_inputs);
249  struc.has_value()) {
250  struct_definitions.emplace_back(EmitStructDefinition(struc.value()));
251  } else {
252  // If there are stage inputs, it is an error to not generate a per
253  // vertex data struct for a vertex like shader stage.
254  return std::nullopt;
255  }
256  }
257 
258  std::set<spirv_cross::ID> known_structs;
259  ir_->for_each_typed_id<spirv_cross::SPIRType>(
260  [&](uint32_t, const spirv_cross::SPIRType& type) {
261  if (type.basetype != spirv_cross::SPIRType::BaseType::Struct) {
262  return;
263  }
264  // Skip structs that do not have layout offset decorations.
265  // These structs are used internally within the shader and are not
266  // part of the shader's interface.
267  for (size_t i = 0; i < type.member_types.size(); i++) {
268  if (!compiler_->has_member_decoration(type.self, i,
269  spv::DecorationOffset)) {
270  return;
271  }
272  }
273  if (known_structs.find(type.self) != known_structs.end()) {
274  // Iterating over types this way leads to duplicates which may cause
275  // duplicate struct definitions.
276  return;
277  }
278  known_structs.insert(type.self);
279  if (auto struc = ReflectStructDefinition(type.self);
280  struc.has_value()) {
281  struct_definitions.emplace_back(
282  EmitStructDefinition(struc.value()));
283  }
284  });
285  }
286 
287  root["bind_prototypes"] =
288  EmitBindPrototypes(shader_resources, execution_model);
289 
290  return root;
291 }
292 
293 std::shared_ptr<fml::Mapping> Reflector::GenerateReflectionHeader() const {
294  return InflateTemplate(kReflectionHeaderTemplate);
295 }
296 
297 std::shared_ptr<fml::Mapping> Reflector::GenerateReflectionCC() const {
298  return InflateTemplate(kReflectionCCTemplate);
299 }
300 
301 static std::optional<RuntimeStageBackend> GetRuntimeStageBackend(
302  TargetPlatform target_platform) {
303  switch (target_platform) {
310  return std::nullopt;
319  }
320  FML_UNREACHABLE();
321 }
322 
323 std::shared_ptr<RuntimeStageData::Shader> Reflector::GenerateRuntimeStageData()
324  const {
325  auto backend = GetRuntimeStageBackend(options_.target_platform);
326  if (!backend.has_value()) {
327  return nullptr;
328  }
329 
330  const auto& entrypoints = compiler_->get_entry_points_and_stages();
331  if (entrypoints.size() != 1u) {
332  VALIDATION_LOG << "Single entrypoint not found.";
333  return nullptr;
334  }
335  auto data = std::make_unique<RuntimeStageData::Shader>();
336  data->entrypoint = options_.entry_point_name;
337  data->stage = entrypoints.front().execution_model;
338  data->shader = shader_data_;
339  data->backend = backend.value();
340 
341  // Sort the IR so that the uniforms are in declaration order.
342  std::vector<spirv_cross::ID> uniforms =
343  SortUniforms(ir_.get(), compiler_.GetCompiler());
344  for (auto& sorted_id : uniforms) {
345  auto var = ir_->ids[sorted_id].get<spirv_cross::SPIRVariable>();
346  const auto spir_type = compiler_->get_type(var.basetype);
347  UniformDescription uniform_description;
348  uniform_description.name = compiler_->get_name(var.self);
349  uniform_description.location = compiler_->get_decoration(
350  var.self, spv::Decoration::DecorationLocation);
351  uniform_description.binding =
352  compiler_->get_decoration(var.self, spv::Decoration::DecorationBinding);
353  uniform_description.type = spir_type.basetype;
354  uniform_description.rows = spir_type.vecsize;
355  uniform_description.columns = spir_type.columns;
356  uniform_description.bit_width = spir_type.width;
357  uniform_description.array_elements = GetArrayElements(spir_type);
358  FML_CHECK(data->backend != RuntimeStageBackend::kVulkan ||
359  spir_type.basetype ==
360  spirv_cross::SPIRType::BaseType::SampledImage)
361  << "Vulkan runtime effect had unexpected uniforms outside of the "
362  "uniform buffer object.";
363  data->uniforms.emplace_back(std::move(uniform_description));
364  }
365 
366  const auto ubos = compiler_->get_shader_resources().uniform_buffers;
367  if (data->backend == RuntimeStageBackend::kVulkan && !ubos.empty()) {
368  if (ubos.size() != 1 && ubos[0].name != RuntimeStage::kVulkanUBOName) {
369  VALIDATION_LOG << "Expected a single UBO resource named "
370  "'"
372  << "' "
373  "for Vulkan runtime stage backend.";
374  return nullptr;
375  }
376 
377  const auto& ubo = ubos[0];
378 
379  size_t binding =
380  compiler_->get_decoration(ubo.id, spv::Decoration::DecorationBinding);
381  auto members = ReadStructMembers(ubo.type_id);
382  std::vector<uint8_t> struct_layout;
383  size_t float_count = 0;
384 
385  for (size_t i = 0; i < members.size(); i += 1) {
386  const auto& member = members[i];
387  std::vector<int> bytes;
388  switch (member.underlying_type) {
390  size_t padding_count =
391  (member.size + sizeof(float) - 1) / sizeof(float);
392  while (padding_count > 0) {
393  struct_layout.push_back(0);
394  padding_count--;
395  }
396  break;
397  }
399  size_t member_float_count = member.byte_length / sizeof(float);
400  float_count += member_float_count;
401  while (member_float_count > 0) {
402  struct_layout.push_back(1);
403  member_float_count--;
404  }
405  break;
406  }
408  VALIDATION_LOG << "Non-floating-type struct member " << member.name
409  << " is not supported.";
410  return nullptr;
411  }
412  }
413  data->uniforms.emplace_back(UniformDescription{
414  .name = ubo.name,
415  .location = binding,
416  .binding = binding,
417  .type = spirv_cross::SPIRType::Struct,
418  .struct_layout = std::move(struct_layout),
419  .struct_float_count = float_count,
420  });
421  }
422 
423  // We only need to worry about storing vertex attributes.
424  if (entrypoints.front().execution_model == spv::ExecutionModelVertex) {
425  const auto inputs = compiler_->get_shader_resources().stage_inputs;
426  auto input_offsets = ComputeOffsets(inputs);
427  for (const auto& input : inputs) {
428  std::optional<size_t> offset = GetOffset(input.id, input_offsets);
429 
430  const auto type = compiler_->get_type(input.type_id);
431 
432  InputDescription input_description;
433  input_description.name = input.name;
434  input_description.location = compiler_->get_decoration(
435  input.id, spv::Decoration::DecorationLocation);
436  input_description.set = compiler_->get_decoration(
437  input.id, spv::Decoration::DecorationDescriptorSet);
438  input_description.binding = compiler_->get_decoration(
439  input.id, spv::Decoration::DecorationBinding);
440  input_description.type = type.basetype;
441  input_description.bit_width = type.width;
442  input_description.vec_size = type.vecsize;
443  input_description.columns = type.columns;
444  input_description.offset = offset.value_or(0u);
445  data->inputs.emplace_back(std::move(input_description));
446  }
447  }
448 
449  return data;
450 }
451 
452 std::shared_ptr<ShaderBundleData> Reflector::GenerateShaderBundleData() const {
453  const auto& entrypoints = compiler_->get_entry_points_and_stages();
454  if (entrypoints.size() != 1u) {
455  VALIDATION_LOG << "Single entrypoint not found.";
456  return nullptr;
457  }
458  auto data = std::make_shared<ShaderBundleData>(
459  options_.entry_point_name, //
460  entrypoints.front().execution_model, //
461  options_.target_platform //
462  );
463  data->SetShaderData(shader_data_);
464 
465  const auto uniforms = compiler_->get_shader_resources().uniform_buffers;
466  for (const auto& uniform : uniforms) {
467  ShaderBundleData::ShaderUniformStruct uniform_struct;
468  uniform_struct.name = uniform.name;
469  uniform_struct.ext_res_0 = compiler_.GetExtendedMSLResourceBinding(
471  uniform_struct.set = compiler_->get_decoration(
472  uniform.id, spv::Decoration::DecorationDescriptorSet);
473  uniform_struct.binding = compiler_->get_decoration(
474  uniform.id, spv::Decoration::DecorationBinding);
475 
476  const auto type = compiler_->get_type(uniform.type_id);
477  if (type.basetype != spirv_cross::SPIRType::BaseType::Struct) {
478  std::cerr << "Error: Uniform \"" << uniform.name
479  << "\" is not a struct. All Flutter GPU shader uniforms must "
480  "be structs."
481  << std::endl;
482  return nullptr;
483  }
484 
485  size_t size_in_bytes = 0;
486  for (const auto& struct_member : ReadStructMembers(uniform.type_id)) {
487  size_in_bytes += struct_member.byte_length;
488  if (StringStartsWith(struct_member.name, "_PADDING_")) {
489  continue;
490  }
491  ShaderBundleData::ShaderUniformStructField uniform_struct_field;
492  uniform_struct_field.name = struct_member.name;
493  uniform_struct_field.type = struct_member.base_type;
494  uniform_struct_field.offset_in_bytes = struct_member.offset;
495  uniform_struct_field.element_size_in_bytes = struct_member.size;
496  uniform_struct_field.total_size_in_bytes = struct_member.byte_length;
497  uniform_struct_field.array_elements = struct_member.array_elements;
498  uniform_struct.fields.push_back(uniform_struct_field);
499  }
500  uniform_struct.size_in_bytes = size_in_bytes;
501 
502  data->AddUniformStruct(uniform_struct);
503  }
504 
505  const auto sampled_images = compiler_->get_shader_resources().sampled_images;
506  for (const auto& image : sampled_images) {
507  ShaderBundleData::ShaderUniformTexture uniform_texture;
508  uniform_texture.name = image.name;
509  uniform_texture.ext_res_0 = compiler_.GetExtendedMSLResourceBinding(
511  uniform_texture.set = compiler_->get_decoration(
512  image.id, spv::Decoration::DecorationDescriptorSet);
513  uniform_texture.binding =
514  compiler_->get_decoration(image.id, spv::Decoration::DecorationBinding);
515  data->AddUniformTexture(uniform_texture);
516  }
517 
518  // We only need to worry about storing vertex attributes.
519  if (entrypoints.front().execution_model == spv::ExecutionModelVertex) {
520  const auto inputs = compiler_->get_shader_resources().stage_inputs;
521  auto input_offsets = ComputeOffsets(inputs);
522  for (const auto& input : inputs) {
523  std::optional<size_t> offset = GetOffset(input.id, input_offsets);
524 
525  const auto type = compiler_->get_type(input.type_id);
526 
527  InputDescription input_description;
528  input_description.name = input.name;
529  input_description.location = compiler_->get_decoration(
530  input.id, spv::Decoration::DecorationLocation);
531  input_description.set = compiler_->get_decoration(
532  input.id, spv::Decoration::DecorationDescriptorSet);
533  input_description.binding = compiler_->get_decoration(
534  input.id, spv::Decoration::DecorationBinding);
535  input_description.type = type.basetype;
536  input_description.bit_width = type.width;
537  input_description.vec_size = type.vecsize;
538  input_description.columns = type.columns;
539  input_description.offset = offset.value_or(0u);
540  data->AddInputDescription(std::move(input_description));
541  }
542  }
543 
544  return data;
545 }
546 
547 std::optional<uint32_t> Reflector::GetArrayElements(
548  const spirv_cross::SPIRType& type) const {
549  if (type.array.empty()) {
550  return std::nullopt;
551  }
552  FML_CHECK(type.array.size() == 1)
553  << "Multi-dimensional arrays are not supported.";
554  FML_CHECK(type.array_size_literal.front())
555  << "Must use a literal for array sizes.";
556  return type.array.front();
557 }
558 
559 static std::string ToString(CompilerBackend::Type type) {
560  switch (type) {
562  return "Metal Shading Language";
564  return "OpenGL Shading Language";
566  return "OpenGL Shading Language (Relaxed Vulkan Semantics)";
568  return "SkSL Shading Language";
569  }
570  FML_UNREACHABLE();
571 }
572 
573 std::shared_ptr<fml::Mapping> Reflector::InflateTemplate(
574  std::string_view tmpl) const {
575  inja::Environment env;
576  env.set_trim_blocks(true);
577  env.set_lstrip_blocks(true);
578 
579  env.add_callback("camel_case", 1u, [](inja::Arguments& args) {
580  return ToCamelCase(args.at(0u)->get<std::string>());
581  });
582 
583  env.add_callback("to_shader_stage", 1u, [](inja::Arguments& args) {
584  return StringToShaderStage(args.at(0u)->get<std::string>());
585  });
586 
587  env.add_callback("get_generator_name", 0u,
588  [type = compiler_.GetType()](inja::Arguments& args) {
589  return ToString(type);
590  });
591 
592  auto inflated_template =
593  std::make_shared<std::string>(env.render(tmpl, *template_arguments_));
594 
595  return std::make_shared<fml::NonOwnedMapping>(
596  reinterpret_cast<const uint8_t*>(inflated_template->data()),
597  inflated_template->size(), [inflated_template](auto, auto) {});
598 }
599 
600 std::vector<size_t> Reflector::ComputeOffsets(
601  const spirv_cross::SmallVector<spirv_cross::Resource>& resources) const {
602  std::vector<size_t> offsets(resources.size(), 0);
603  if (resources.size() == 0) {
604  return offsets;
605  }
606  for (const auto& resource : resources) {
607  const auto type = compiler_->get_type(resource.type_id);
608  auto location = compiler_->get_decoration(
609  resource.id, spv::Decoration::DecorationLocation);
610  // Malformed shader, will be caught later on.
611  if (location >= resources.size() || location < 0) {
612  location = 0;
613  }
614  offsets[location] = (type.width * type.vecsize) / 8;
615  }
616  for (size_t i = 1; i < resources.size(); i++) {
617  offsets[i] += offsets[i - 1];
618  }
619  for (size_t i = resources.size() - 1; i > 0; i--) {
620  offsets[i] = offsets[i - 1];
621  }
622  offsets[0] = 0;
623 
624  return offsets;
625 }
626 
627 std::optional<size_t> Reflector::GetOffset(
628  spirv_cross::ID id,
629  const std::vector<size_t>& offsets) const {
630  uint32_t location =
631  compiler_->get_decoration(id, spv::Decoration::DecorationLocation);
632  if (location >= offsets.size()) {
633  return std::nullopt;
634  }
635  return offsets[location];
636 }
637 
638 std::optional<nlohmann::json::object_t> Reflector::ReflectResource(
639  const spirv_cross::Resource& resource,
640  std::optional<size_t> offset) const {
641  nlohmann::json::object_t result;
642 
643  result["name"] = resource.name;
644  result["descriptor_set"] = compiler_->get_decoration(
645  resource.id, spv::Decoration::DecorationDescriptorSet);
646  result["binding"] = compiler_->get_decoration(
647  resource.id, spv::Decoration::DecorationBinding);
648  result["set"] = compiler_->get_decoration(
649  resource.id, spv::Decoration::DecorationDescriptorSet);
650  result["location"] = compiler_->get_decoration(
651  resource.id, spv::Decoration::DecorationLocation);
652  result["index"] =
653  compiler_->get_decoration(resource.id, spv::Decoration::DecorationIndex);
654  result["ext_res_0"] = compiler_.GetExtendedMSLResourceBinding(
656  result["ext_res_1"] = compiler_.GetExtendedMSLResourceBinding(
658  auto type = ReflectType(resource.type_id);
659  if (!type.has_value()) {
660  return std::nullopt;
661  }
662  result["type"] = std::move(type.value());
663  result["offset"] = offset.value_or(0u);
664  return result;
665 }
666 
667 std::optional<nlohmann::json::object_t> Reflector::ReflectType(
668  const spirv_cross::TypeID& type_id) const {
669  nlohmann::json::object_t result;
670 
671  const auto type = compiler_->get_type(type_id);
672 
673  result["type_name"] = StructMember::BaseTypeToString(type.basetype);
674  result["bit_width"] = type.width;
675  result["vec_size"] = type.vecsize;
676  result["columns"] = type.columns;
677  auto& members = result["members"] = nlohmann::json::array_t{};
678  if (type.basetype == spirv_cross::SPIRType::BaseType::Struct) {
679  for (const auto& struct_member : ReadStructMembers(type_id)) {
680  auto member = nlohmann::json::object_t{};
681  member["name"] = struct_member.name;
682  member["type"] = struct_member.type;
683  member["base_type"] =
684  StructMember::BaseTypeToString(struct_member.base_type);
685  member["offset"] = struct_member.offset;
686  member["size"] = struct_member.size;
687  member["byte_length"] = struct_member.byte_length;
688  if (struct_member.array_elements.has_value()) {
689  member["array_elements"] = struct_member.array_elements.value();
690  } else {
691  member["array_elements"] = "std::nullopt";
692  }
693  members.emplace_back(std::move(member));
694  }
695  }
696 
697  return result;
698 }
699 
700 std::optional<nlohmann::json::array_t> Reflector::ReflectResources(
701  const spirv_cross::SmallVector<spirv_cross::Resource>& resources,
702  bool compute_offsets) const {
703  nlohmann::json::array_t result;
704  result.reserve(resources.size());
705  std::vector<size_t> offsets;
706  if (compute_offsets) {
707  offsets = ComputeOffsets(resources);
708  }
709  for (const auto& resource : resources) {
710  std::optional<size_t> maybe_offset = std::nullopt;
711  if (compute_offsets) {
712  maybe_offset = GetOffset(resource.id, offsets);
713  }
714  if (auto reflected = ReflectResource(resource, maybe_offset);
715  reflected.has_value()) {
716  result.emplace_back(std::move(reflected.value()));
717  } else {
718  return std::nullopt;
719  }
720  }
721  return result;
722 }
723 
724 static std::string TypeNameWithPaddingOfSize(size_t size) {
725  std::stringstream stream;
726  stream << "Padding<" << size << ">";
727  return stream.str();
728 }
729 
730 struct KnownType {
731  std::string name;
732  size_t byte_size = 0;
733 };
734 
735 static std::optional<KnownType> ReadKnownScalarType(
736  spirv_cross::SPIRType::BaseType type) {
737  switch (type) {
738  case spirv_cross::SPIRType::BaseType::Boolean:
739  return KnownType{
740  .name = "bool",
741  .byte_size = sizeof(bool),
742  };
743  case spirv_cross::SPIRType::BaseType::Float:
744  return KnownType{
745  .name = "Scalar",
746  .byte_size = sizeof(Scalar),
747  };
748  case spirv_cross::SPIRType::BaseType::Half:
749  return KnownType{
750  .name = "Half",
751  .byte_size = sizeof(Half),
752  };
753  case spirv_cross::SPIRType::BaseType::UInt:
754  return KnownType{
755  .name = "uint32_t",
756  .byte_size = sizeof(uint32_t),
757  };
758  case spirv_cross::SPIRType::BaseType::Int:
759  return KnownType{
760  .name = "int32_t",
761  .byte_size = sizeof(int32_t),
762  };
763  default:
764  break;
765  }
766  return std::nullopt;
767 }
768 
769 //------------------------------------------------------------------------------
770 /// @brief Get the reflected struct size. In the vast majority of the
771 /// cases, this is the same as the declared struct size as given by
772 /// the compiler. But, additional padding may need to be introduced
773 /// after the end of the struct to keep in line with the alignment
774 /// requirement of the individual struct members. This method
775 /// figures out the actual size of the reflected struct that can be
776 /// referenced in native code.
777 ///
778 /// @param[in] members The members
779 ///
780 /// @return The reflected structure size.
781 ///
782 static size_t GetReflectedStructSize(const std::vector<StructMember>& members) {
783  auto struct_size = 0u;
784  for (const auto& member : members) {
785  struct_size += member.byte_length;
786  }
787  return struct_size;
788 }
789 
790 std::vector<StructMember> Reflector::ReadStructMembers(
791  const spirv_cross::TypeID& type_id) const {
792  const auto& struct_type = compiler_->get_type(type_id);
793  FML_CHECK(struct_type.basetype == spirv_cross::SPIRType::BaseType::Struct);
794 
795  std::vector<StructMember> result;
796 
797  size_t current_byte_offset = 0;
798  size_t max_member_alignment = 0;
799 
800  for (size_t i = 0; i < struct_type.member_types.size(); i++) {
801  const auto& member = compiler_->get_type(struct_type.member_types[i]);
802  const auto struct_member_offset =
803  compiler_->type_struct_member_offset(struct_type, i);
804  auto array_elements = GetArrayElements(member);
805 
806  if (struct_member_offset > current_byte_offset) {
807  const auto alignment_pad = struct_member_offset - current_byte_offset;
808  result.emplace_back(StructMember{
809  TypeNameWithPaddingOfSize(alignment_pad), // type
810  spirv_cross::SPIRType::BaseType::Void, // basetype
811  SPrintF("_PADDING_%s_",
812  GetMemberNameAtIndex(struct_type, i).c_str()), // name
813  current_byte_offset, // offset
814  alignment_pad, // size
815  alignment_pad, // byte_length
816  std::nullopt, // array_elements
817  0, // element_padding
818  });
819  current_byte_offset += alignment_pad;
820  }
821 
822  max_member_alignment =
823  std::max<size_t>(max_member_alignment,
824  (member.width / 8) * member.columns * member.vecsize);
825 
826  FML_CHECK(current_byte_offset == struct_member_offset);
827 
828  // A user defined struct.
829  if (member.basetype == spirv_cross::SPIRType::BaseType::Struct) {
830  const size_t size =
831  GetReflectedStructSize(ReadStructMembers(member.self));
832  uint32_t stride = GetArrayStride<0>(struct_type, member, i);
833  if (stride == 0) {
834  stride = size;
835  }
836  uint32_t element_padding = stride - size;
837  result.emplace_back(StructMember{
838  compiler_->get_name(member.self), // type
839  member.basetype, // basetype
840  GetMemberNameAtIndex(struct_type, i), // name
841  struct_member_offset, // offset
842  size, // size
843  stride * array_elements.value_or(1), // byte_length
844  array_elements, // array_elements
845  element_padding, // element_padding
846  });
847  current_byte_offset += stride * array_elements.value_or(1);
848  continue;
849  }
850 
851  // Tightly packed 4x4 Matrix is special cased as we know how to work with
852  // those.
853  if (member.basetype == spirv_cross::SPIRType::BaseType::Float && //
854  member.width == sizeof(Scalar) * 8 && //
855  member.columns == 4 && //
856  member.vecsize == 4 //
857  ) {
858  uint32_t stride = GetArrayStride<sizeof(Matrix)>(struct_type, member, i);
859  uint32_t element_padding = stride - sizeof(Matrix);
860  result.emplace_back(StructMember{
861  "Matrix", // type
862  member.basetype, // basetype
863  GetMemberNameAtIndex(struct_type, i), // name
864  struct_member_offset, // offset
865  sizeof(Matrix), // size
866  stride * array_elements.value_or(1), // byte_length
867  array_elements, // array_elements
868  element_padding, // element_padding
869  });
870  current_byte_offset += stride * array_elements.value_or(1);
871  continue;
872  }
873 
874  // Tightly packed UintPoint32 (uvec2)
875  if (member.basetype == spirv_cross::SPIRType::BaseType::UInt && //
876  member.width == sizeof(uint32_t) * 8 && //
877  member.columns == 1 && //
878  member.vecsize == 2 //
879  ) {
880  uint32_t stride =
881  GetArrayStride<sizeof(UintPoint32)>(struct_type, member, i);
882  uint32_t element_padding = stride - sizeof(UintPoint32);
883  result.emplace_back(StructMember{
884  "UintPoint32", // type
885  member.basetype, // basetype
886  GetMemberNameAtIndex(struct_type, i), // name
887  struct_member_offset, // offset
888  sizeof(UintPoint32), // size
889  stride * array_elements.value_or(1), // byte_length
890  array_elements, // array_elements
891  element_padding, // element_padding
892  });
893  current_byte_offset += stride * array_elements.value_or(1);
894  continue;
895  }
896 
897  // Tightly packed UintPoint32 (ivec2)
898  if (member.basetype == spirv_cross::SPIRType::BaseType::Int && //
899  member.width == sizeof(int32_t) * 8 && //
900  member.columns == 1 && //
901  member.vecsize == 2 //
902  ) {
903  uint32_t stride =
904  GetArrayStride<sizeof(IPoint32)>(struct_type, member, i);
905  uint32_t element_padding = stride - sizeof(IPoint32);
906  result.emplace_back(StructMember{
907  "IPoint32", // type
908  member.basetype, // basetype
909  GetMemberNameAtIndex(struct_type, i), // name
910  struct_member_offset, // offset
911  sizeof(IPoint32), // size
912  stride * array_elements.value_or(1), // byte_length
913  array_elements, // array_elements
914  element_padding, // element_padding
915  });
916  current_byte_offset += stride * array_elements.value_or(1);
917  continue;
918  }
919 
920  // Tightly packed Point (vec2).
921  if (member.basetype == spirv_cross::SPIRType::BaseType::Float && //
922  member.width == sizeof(float) * 8 && //
923  member.columns == 1 && //
924  member.vecsize == 2 //
925  ) {
926  uint32_t stride = GetArrayStride<sizeof(Point)>(struct_type, member, i);
927  uint32_t element_padding = stride - sizeof(Point);
928  result.emplace_back(StructMember{
929  "Point", // type
930  member.basetype, // basetype
931  GetMemberNameAtIndex(struct_type, i), // name
932  struct_member_offset, // offset
933  sizeof(Point), // size
934  stride * array_elements.value_or(1), // byte_length
935  array_elements, // array_elements
936  element_padding, // element_padding
937  });
938  current_byte_offset += stride * array_elements.value_or(1);
939  continue;
940  }
941 
942  // Tightly packed Vector3.
943  if (member.basetype == spirv_cross::SPIRType::BaseType::Float && //
944  member.width == sizeof(float) * 8 && //
945  member.columns == 1 && //
946  member.vecsize == 3 //
947  ) {
948  uint32_t stride = GetArrayStride<sizeof(Vector3)>(struct_type, member, i);
949  uint32_t element_padding = stride - sizeof(Vector3);
950  result.emplace_back(StructMember{
951  "Vector3", // type
952  member.basetype, // basetype
953  GetMemberNameAtIndex(struct_type, i), // name
954  struct_member_offset, // offset
955  sizeof(Vector3), // size
956  stride * array_elements.value_or(1), // byte_length
957  array_elements, // array_elements
958  element_padding, // element_padding
959  });
960  current_byte_offset += stride * array_elements.value_or(1);
961  continue;
962  }
963 
964  // Tightly packed Vector4.
965  if (member.basetype == spirv_cross::SPIRType::BaseType::Float && //
966  member.width == sizeof(float) * 8 && //
967  member.columns == 1 && //
968  member.vecsize == 4 //
969  ) {
970  uint32_t stride = GetArrayStride<sizeof(Vector4)>(struct_type, member, i);
971  uint32_t element_padding = stride - sizeof(Vector4);
972  result.emplace_back(StructMember{
973  "Vector4", // type
974  member.basetype, // basetype
975  GetMemberNameAtIndex(struct_type, i), // name
976  struct_member_offset, // offset
977  sizeof(Vector4), // size
978  stride * array_elements.value_or(1), // byte_length
979  array_elements, // array_elements
980  element_padding, // element_padding
981  });
982  current_byte_offset += stride * array_elements.value_or(1);
983  continue;
984  }
985 
986  // Tightly packed half Point (vec2).
987  if (member.basetype == spirv_cross::SPIRType::BaseType::Half && //
988  member.width == sizeof(Half) * 8 && //
989  member.columns == 1 && //
990  member.vecsize == 2 //
991  ) {
992  uint32_t stride =
993  GetArrayStride<sizeof(HalfVector2)>(struct_type, member, i);
994  uint32_t element_padding = stride - sizeof(HalfVector2);
995  result.emplace_back(StructMember{
996  "HalfVector2", // type
997  member.basetype, // basetype
998  GetMemberNameAtIndex(struct_type, i), // name
999  struct_member_offset, // offset
1000  sizeof(HalfVector2), // size
1001  stride * array_elements.value_or(1), // byte_length
1002  array_elements, // array_elements
1003  element_padding, // element_padding
1004  });
1005  current_byte_offset += stride * array_elements.value_or(1);
1006  continue;
1007  }
1008 
1009  // Tightly packed Half Float Vector3.
1010  if (member.basetype == spirv_cross::SPIRType::BaseType::Half && //
1011  member.width == sizeof(Half) * 8 && //
1012  member.columns == 1 && //
1013  member.vecsize == 3 //
1014  ) {
1015  uint32_t stride =
1016  GetArrayStride<sizeof(HalfVector3)>(struct_type, member, i);
1017  uint32_t element_padding = stride - sizeof(HalfVector3);
1018  result.emplace_back(StructMember{
1019  "HalfVector3", // type
1020  member.basetype, // basetype
1021  GetMemberNameAtIndex(struct_type, i), // name
1022  struct_member_offset, // offset
1023  sizeof(HalfVector3), // size
1024  stride * array_elements.value_or(1), // byte_length
1025  array_elements, // array_elements
1026  element_padding, // element_padding
1027  });
1028  current_byte_offset += stride * array_elements.value_or(1);
1029  continue;
1030  }
1031 
1032  // Tightly packed Half Float Vector4.
1033  if (member.basetype == spirv_cross::SPIRType::BaseType::Half && //
1034  member.width == sizeof(Half) * 8 && //
1035  member.columns == 1 && //
1036  member.vecsize == 4 //
1037  ) {
1038  uint32_t stride =
1039  GetArrayStride<sizeof(HalfVector4)>(struct_type, member, i);
1040  uint32_t element_padding = stride - sizeof(HalfVector4);
1041  result.emplace_back(StructMember{
1042  "HalfVector4", // type
1043  member.basetype, // basetype
1044  GetMemberNameAtIndex(struct_type, i), // name
1045  struct_member_offset, // offset
1046  sizeof(HalfVector4), // size
1047  stride * array_elements.value_or(1), // byte_length
1048  array_elements, // array_elements
1049  element_padding, // element_padding
1050  });
1051  current_byte_offset += stride * array_elements.value_or(1);
1052  continue;
1053  }
1054 
1055  // Other isolated scalars (like bool, int, float/Scalar, etc..).
1056  {
1057  auto maybe_known_type = ReadKnownScalarType(member.basetype);
1058  if (maybe_known_type.has_value() && //
1059  member.columns == 1 && //
1060  member.vecsize == 1 //
1061  ) {
1062  uint32_t stride = GetArrayStride<0>(struct_type, member, i);
1063  if (stride == 0) {
1064  stride = maybe_known_type.value().byte_size;
1065  }
1066  uint32_t element_padding = stride - maybe_known_type.value().byte_size;
1067  // Add the type directly.
1068  result.emplace_back(StructMember{
1069  maybe_known_type.value().name, // type
1070  member.basetype, // basetype
1071  GetMemberNameAtIndex(struct_type, i), // name
1072  struct_member_offset, // offset
1073  maybe_known_type.value().byte_size, // size
1074  stride * array_elements.value_or(1), // byte_length
1075  array_elements, // array_elements
1076  element_padding, // element_padding
1077  });
1078  current_byte_offset += stride * array_elements.value_or(1);
1079  continue;
1080  }
1081  }
1082 
1083  // Catch all for unknown types. Just add the necessary padding to the struct
1084  // and move on.
1085  {
1086  const size_t size = (member.width * member.columns * member.vecsize) / 8u;
1087  uint32_t stride = GetArrayStride<0>(struct_type, member, i);
1088  if (stride == 0) {
1089  stride = size;
1090  }
1091  auto element_padding = stride - size;
1092  result.emplace_back(StructMember{
1093  TypeNameWithPaddingOfSize(size), // type
1094  member.basetype, // basetype
1095  GetMemberNameAtIndex(struct_type, i), // name
1096  struct_member_offset, // offset
1097  size, // size
1098  stride * array_elements.value_or(1), // byte_length
1099  array_elements, // array_elements
1100  element_padding, // element_padding
1101  });
1102  current_byte_offset += stride * array_elements.value_or(1);
1103  continue;
1104  }
1105  }
1106 
1107  if (max_member_alignment > 0u) {
1108  const auto struct_length = current_byte_offset;
1109  {
1110  const auto excess = struct_length % max_member_alignment;
1111  if (excess != 0) {
1112  const auto padding = max_member_alignment - excess;
1113  result.emplace_back(StructMember{
1115  spirv_cross::SPIRType::BaseType::Void, // basetype
1116  "_PADDING_", // name
1117  current_byte_offset, // offset
1118  padding, // size
1119  padding, // byte_length
1120  std::nullopt, // array_elements
1121  0, // element_padding
1122  });
1123  }
1124  }
1125  }
1126 
1127  return result;
1128 }
1129 
1130 std::optional<Reflector::StructDefinition> Reflector::ReflectStructDefinition(
1131  const spirv_cross::TypeID& type_id) const {
1132  const auto& type = compiler_->get_type(type_id);
1133  if (type.basetype != spirv_cross::SPIRType::BaseType::Struct) {
1134  return std::nullopt;
1135  }
1136 
1137  const auto struct_name = compiler_->get_name(type_id);
1138  if (struct_name.find("_RESERVED_IDENTIFIER_") != std::string::npos) {
1139  return std::nullopt;
1140  }
1141 
1142  auto struct_members = ReadStructMembers(type_id);
1143  auto reflected_struct_size = GetReflectedStructSize(struct_members);
1144 
1145  StructDefinition struc;
1146  struc.name = struct_name;
1147  struc.byte_length = reflected_struct_size;
1148  struc.members = std::move(struct_members);
1149  return struc;
1150 }
1151 
1152 nlohmann::json::object_t Reflector::EmitStructDefinition(
1153  std::optional<Reflector::StructDefinition> struc) const {
1154  nlohmann::json::object_t result;
1155  result["name"] = struc->name;
1156  result["byte_length"] = struc->byte_length;
1157  auto& members = result["members"] = nlohmann::json::array_t{};
1158  for (const auto& struct_member : struc->members) {
1159  auto& member = members.emplace_back(nlohmann::json::object_t{});
1160  member["name"] = struct_member.name;
1161  member["type"] = struct_member.type;
1162  member["base_type"] =
1163  StructMember::BaseTypeToString(struct_member.base_type);
1164  member["offset"] = struct_member.offset;
1165  member["byte_length"] = struct_member.byte_length;
1166  if (struct_member.array_elements.has_value()) {
1167  member["array_elements"] = struct_member.array_elements.value();
1168  } else {
1169  member["array_elements"] = "std::nullopt";
1170  }
1171  member["element_padding"] = struct_member.element_padding;
1172  }
1173  return result;
1174 }
1175 
1176 struct VertexType {
1177  std::string type_name;
1178  spirv_cross::SPIRType::BaseType base_type;
1179  std::string variable_name;
1180  size_t byte_length = 0u;
1181 };
1182 
1184  const spirv_cross::Compiler& compiler,
1185  const spirv_cross::Resource* resource) {
1186  VertexType result;
1187  result.variable_name = resource->name;
1188  const auto& type = compiler.get_type(resource->type_id);
1189  result.base_type = type.basetype;
1190  const auto total_size = type.columns * type.vecsize * type.width / 8u;
1191  result.byte_length = total_size;
1192 
1193  if (type.basetype == spirv_cross::SPIRType::BaseType::Float &&
1194  type.columns == 1u && type.vecsize == 2u &&
1195  type.width == sizeof(float) * 8u) {
1196  result.type_name = "Point";
1197  } else if (type.basetype == spirv_cross::SPIRType::BaseType::Float &&
1198  type.columns == 1u && type.vecsize == 4u &&
1199  type.width == sizeof(float) * 8u) {
1200  result.type_name = "Vector4";
1201  } else if (type.basetype == spirv_cross::SPIRType::BaseType::Float &&
1202  type.columns == 1u && type.vecsize == 3u &&
1203  type.width == sizeof(float) * 8u) {
1204  result.type_name = "Vector3";
1205  } else if (type.basetype == spirv_cross::SPIRType::BaseType::Float &&
1206  type.columns == 1u && type.vecsize == 1u &&
1207  type.width == sizeof(float) * 8u) {
1208  result.type_name = "Scalar";
1209  } else if (type.basetype == spirv_cross::SPIRType::BaseType::Int &&
1210  type.columns == 1u && type.vecsize == 1u &&
1211  type.width == sizeof(int32_t) * 8u) {
1212  result.type_name = "int32_t";
1213  } else {
1214  // Catch all unknown padding.
1215  result.type_name = TypeNameWithPaddingOfSize(total_size);
1216  }
1217 
1218  return result;
1219 }
1220 
1221 std::optional<Reflector::StructDefinition>
1222 Reflector::ReflectPerVertexStructDefinition(
1223  const spirv_cross::SmallVector<spirv_cross::Resource>& stage_inputs) const {
1224  // Avoid emitting a zero sized structure. The code gen templates assume a
1225  // non-zero size.
1226  if (stage_inputs.empty()) {
1227  return std::nullopt;
1228  }
1229 
1230  // Validate locations are contiguous and there are no duplicates.
1231  std::set<uint32_t> locations;
1232  for (const auto& input : stage_inputs) {
1233  auto location = compiler_->get_decoration(
1234  input.id, spv::Decoration::DecorationLocation);
1235  if (locations.count(location) != 0) {
1236  // Duplicate location. Bail.
1237  return std::nullopt;
1238  }
1239  locations.insert(location);
1240  }
1241 
1242  for (size_t i = 0; i < locations.size(); i++) {
1243  if (locations.count(i) != 1) {
1244  // Locations are not contiguous. This usually happens when a single stage
1245  // input takes multiple input slots. No reflection information can be
1246  // generated for such cases anyway. So bail! It is up to the shader author
1247  // to make sure one stage input maps to a single input slot.
1248  return std::nullopt;
1249  }
1250  }
1251 
1252  auto input_for_location =
1253  [&](uint32_t queried_location) -> const spirv_cross::Resource* {
1254  for (const auto& input : stage_inputs) {
1255  auto location = compiler_->get_decoration(
1256  input.id, spv::Decoration::DecorationLocation);
1257  if (location == queried_location) {
1258  return &input;
1259  }
1260  }
1261  // This really cannot happen with all the validation above.
1262  FML_UNREACHABLE();
1263  return nullptr;
1264  };
1265 
1266  StructDefinition struc;
1267  struc.name = "PerVertexData";
1268  struc.byte_length = 0u;
1269  for (size_t i = 0; i < locations.size(); i++) {
1270  auto resource = input_for_location(i);
1271  if (resource == nullptr) {
1272  return std::nullopt;
1273  }
1274  const auto vertex_type =
1275  VertexTypeFromInputResource(*compiler_.GetCompiler(), resource);
1276 
1277  auto member = StructMember{
1278  vertex_type.type_name, // type
1279  vertex_type.base_type, // base type
1280  vertex_type.variable_name, // name
1281  struc.byte_length, // offset
1282  vertex_type.byte_length, // size
1283  vertex_type.byte_length, // byte_length
1284  std::nullopt, // array_elements
1285  0, // element_padding
1286  };
1287  struc.byte_length += vertex_type.byte_length;
1288  struc.members.emplace_back(std::move(member));
1289  }
1290  return struc;
1291 }
1292 
1293 std::optional<std::string> Reflector::GetMemberNameAtIndexIfExists(
1294  const spirv_cross::SPIRType& parent_type,
1295  size_t index) const {
1296  if (parent_type.type_alias != 0) {
1297  return GetMemberNameAtIndexIfExists(
1298  compiler_->get_type(parent_type.type_alias), index);
1299  }
1300 
1301  if (auto found = ir_->meta.find(parent_type.self); found != ir_->meta.end()) {
1302  const auto& members = found->second.members;
1303  if (index < members.size() && !members[index].alias.empty()) {
1304  return members[index].alias;
1305  }
1306  }
1307  return std::nullopt;
1308 }
1309 
1310 std::string Reflector::GetMemberNameAtIndex(
1311  const spirv_cross::SPIRType& parent_type,
1312  size_t index,
1313  std::string suffix) const {
1314  if (auto name = GetMemberNameAtIndexIfExists(parent_type, index);
1315  name.has_value()) {
1316  return name.value();
1317  }
1318  static std::atomic_size_t sUnnamedMembersID;
1319  std::stringstream stream;
1320  stream << "unnamed_" << sUnnamedMembersID++ << suffix;
1321  return stream.str();
1322 }
1323 
1324 std::vector<Reflector::BindPrototype> Reflector::ReflectBindPrototypes(
1325  const spirv_cross::ShaderResources& resources,
1326  spv::ExecutionModel execution_model) const {
1327  std::vector<BindPrototype> prototypes;
1328  for (const auto& uniform_buffer : resources.uniform_buffers) {
1329  auto& proto = prototypes.emplace_back(BindPrototype{});
1330  proto.return_type = "bool";
1331  proto.name = ToCamelCase(uniform_buffer.name);
1332  proto.descriptor_type = "DescriptorType::kUniformBuffer";
1333  {
1334  std::stringstream stream;
1335  stream << "Bind uniform buffer for resource named " << uniform_buffer.name
1336  << ".";
1337  proto.docstring = stream.str();
1338  }
1339  proto.args.push_back(BindPrototypeArgument{
1340  .type_name = "ResourceBinder&",
1341  .argument_name = "command",
1342  });
1343  proto.args.push_back(BindPrototypeArgument{
1344  .type_name = "BufferView",
1345  .argument_name = "view",
1346  });
1347  }
1348  for (const auto& storage_buffer : resources.storage_buffers) {
1349  auto& proto = prototypes.emplace_back(BindPrototype{});
1350  proto.return_type = "bool";
1351  proto.name = ToCamelCase(storage_buffer.name);
1352  proto.descriptor_type = "DescriptorType::kStorageBuffer";
1353  {
1354  std::stringstream stream;
1355  stream << "Bind storage buffer for resource named " << storage_buffer.name
1356  << ".";
1357  proto.docstring = stream.str();
1358  }
1359  proto.args.push_back(BindPrototypeArgument{
1360  .type_name = "ResourceBinder&",
1361  .argument_name = "command",
1362  });
1363  proto.args.push_back(BindPrototypeArgument{
1364  .type_name = "BufferView",
1365  .argument_name = "view",
1366  });
1367  }
1368  for (const auto& sampled_image : resources.sampled_images) {
1369  auto& proto = prototypes.emplace_back(BindPrototype{});
1370  proto.return_type = "bool";
1371  proto.name = ToCamelCase(sampled_image.name);
1372  proto.descriptor_type = "DescriptorType::kSampledImage";
1373  {
1374  std::stringstream stream;
1375  stream << "Bind combined image sampler for resource named "
1376  << sampled_image.name << ".";
1377  proto.docstring = stream.str();
1378  }
1379  proto.args.push_back(BindPrototypeArgument{
1380  .type_name = "ResourceBinder&",
1381  .argument_name = "command",
1382  });
1383  proto.args.push_back(BindPrototypeArgument{
1384  .type_name = "std::shared_ptr<const Texture>",
1385  .argument_name = "texture",
1386  });
1387  proto.args.push_back(BindPrototypeArgument{
1388  .type_name = "const std::unique_ptr<const Sampler>&",
1389  .argument_name = "sampler",
1390  });
1391  }
1392  for (const auto& separate_image : resources.separate_images) {
1393  auto& proto = prototypes.emplace_back(BindPrototype{});
1394  proto.return_type = "bool";
1395  proto.name = ToCamelCase(separate_image.name);
1396  proto.descriptor_type = "DescriptorType::kImage";
1397  {
1398  std::stringstream stream;
1399  stream << "Bind separate image for resource named " << separate_image.name
1400  << ".";
1401  proto.docstring = stream.str();
1402  }
1403  proto.args.push_back(BindPrototypeArgument{
1404  .type_name = "Command&",
1405  .argument_name = "command",
1406  });
1407  proto.args.push_back(BindPrototypeArgument{
1408  .type_name = "std::shared_ptr<const Texture>",
1409  .argument_name = "texture",
1410  });
1411  }
1412  for (const auto& separate_sampler : resources.separate_samplers) {
1413  auto& proto = prototypes.emplace_back(BindPrototype{});
1414  proto.return_type = "bool";
1415  proto.name = ToCamelCase(separate_sampler.name);
1416  proto.descriptor_type = "DescriptorType::kSampler";
1417  {
1418  std::stringstream stream;
1419  stream << "Bind separate sampler for resource named "
1420  << separate_sampler.name << ".";
1421  proto.docstring = stream.str();
1422  }
1423  proto.args.push_back(BindPrototypeArgument{
1424  .type_name = "Command&",
1425  .argument_name = "command",
1426  });
1427  proto.args.push_back(BindPrototypeArgument{
1428  .type_name = "std::shared_ptr<const Sampler>",
1429  .argument_name = "sampler",
1430  });
1431  }
1432  return prototypes;
1433 }
1434 
1435 nlohmann::json::array_t Reflector::EmitBindPrototypes(
1436  const spirv_cross::ShaderResources& resources,
1437  spv::ExecutionModel execution_model) const {
1438  const auto prototypes = ReflectBindPrototypes(resources, execution_model);
1439  nlohmann::json::array_t result;
1440  for (const auto& res : prototypes) {
1441  auto& item = result.emplace_back(nlohmann::json::object_t{});
1442  item["return_type"] = res.return_type;
1443  item["name"] = res.name;
1444  item["docstring"] = res.docstring;
1445  item["descriptor_type"] = res.descriptor_type;
1446  auto& args = item["args"] = nlohmann::json::array_t{};
1447  for (const auto& arg : res.args) {
1448  auto& json_arg = args.emplace_back(nlohmann::json::object_t{});
1449  json_arg["type_name"] = arg.type_name;
1450  json_arg["argument_name"] = arg.argument_name;
1451  }
1452  }
1453  return result;
1454 }
1455 
1456 } // namespace compiler
1457 } // namespace impeller
impeller::compiler::ToCamelCase
std::string ToCamelCase(std::string_view string)
Definition: utilities.cc:39
impeller::compiler::GetRuntimeStageBackend
static std::optional< RuntimeStageBackend > GetRuntimeStageBackend(TargetPlatform target_platform)
Definition: reflector.cc:301
uniform_sorter.h
impeller::Scalar
float Scalar
Definition: scalar.h:18
impeller::RuntimeStageBackend::kVulkan
@ kVulkan
impeller::compiler::VertexType::byte_length
size_t byte_length
Definition: reflector.cc:1180
impeller::compiler::CompilerBackend
Definition: compiler_backend.h:19
impeller::compiler::VertexType::variable_name
std::string variable_name
Definition: reflector.cc:1179
data
std::shared_ptr< const fml::Mapping > data
Definition: texture_gles.cc:63
impeller::RuntimeStage::kVulkanUBOName
static const char * kVulkanUBOName
Definition: runtime_stage.h:22
impeller::compiler::TargetPlatform::kMetalDesktop
@ kMetalDesktop
impeller::compiler::VertexType::base_type
spirv_cross::SPIRType::BaseType base_type
Definition: reflector.cc:1178
impeller::compiler::StructMember::UnderlyingType::kFloat
@ kFloat
impeller::UintPoint32
TPoint< uint32_t > UintPoint32
Definition: point.h:325
padding
Vector2 padding
The halo padding in source space.
Definition: gaussian_blur_filter_contents.cc:91
impeller::compiler::StructMember::UnderlyingType::kOther
@ kOther
impeller::compiler::TargetPlatform::kMetalIOS
@ kMetalIOS
impeller::compiler::KnownType
Definition: reflector.cc:730
impeller::compiler::CompilerBackend::Type::kGLSLVulkan
@ kGLSLVulkan
impeller::compiler::Reflector::GetReflectionCC
std::shared_ptr< fml::Mapping > GetReflectionCC() const
Definition: reflector.cc:125
impeller::compiler::Reflector::Options::header_file_name
std::string header_file_name
Definition: reflector.h:150
validation.h
impeller::compiler::TargetPlatform
TargetPlatform
Definition: types.h:28
offset
SeparatedVector2 offset
Definition: stroke_path_geometry.cc:311
impeller::compiler::VertexTypeFromInputResource
static VertexType VertexTypeFromInputResource(const spirv_cross::Compiler &compiler, const spirv_cross::Resource *resource)
Definition: reflector.cc:1183
impeller::compiler::Reflector::GetReflectionHeader
std::shared_ptr< fml::Mapping > GetReflectionHeader() const
Definition: reflector.cc:121
runtime_types.h
impeller::RuntimeStageBackend::kOpenGLES
@ kOpenGLES
impeller::compiler::Reflector::Options::target_platform
TargetPlatform target_platform
Definition: reflector.h:147
code_gen_template.h
reflector.h
impeller::compiler::Reflector::GetRuntimeStageShaderData
std::shared_ptr< RuntimeStageData::Shader > GetRuntimeStageShaderData() const
Definition: reflector.cc:129
matrix.h
shader_bundle_data.h
impeller::compiler::KnownType::byte_size
size_t byte_size
Definition: reflector.cc:732
impeller::compiler::StructMember::UnderlyingType::kPadding
@ kPadding
impeller::Point
TPoint< Scalar > Point
Definition: point.h:322
runtime_stage.h
impeller::Half
A storage only class for half precision floating point.
Definition: half.h:41
impeller::compiler::CompilerBackend::Type
Type
Definition: compiler_backend.h:25
impeller::compiler::KnownType::name
std::string name
Definition: reflector.cc:731
impeller::SortUniforms
std::vector< spirv_cross::ID > SortUniforms(const spirv_cross::ParsedIR *ir, const spirv_cross::Compiler *compiler, std::optional< spirv_cross::SPIRType::BaseType > type_filter, bool include)
Sorts uniform declarations in an IR according to decoration order.
Definition: uniform_sorter.cc:11
impeller::compiler::TargetPlatform::kVulkan
@ kVulkan
impeller::SPrintF
std::string SPrintF(const char *format,...)
Definition: strings.cc:12
impeller::compiler::Reflector::Options::shader_name
std::string shader_name
Definition: reflector.h:149
impeller::compiler::TargetPlatform::kRuntimeStageVulkan
@ kRuntimeStageVulkan
impeller::compiler::kReflectionCCTemplate
constexpr std::string_view kReflectionCCTemplate
Definition: code_gen_template.h:204
impeller::compiler::CompilerBackend::ExtendedResourceIndex::kSecondary
@ kSecondary
impeller::compiler::ExecutionModelToString
static std::string ExecutionModelToString(spv::ExecutionModel model)
Definition: reflector.cc:33
impeller::compiler::CompilerBackend::GetExtendedMSLResourceBinding
uint32_t GetExtendedMSLResourceBinding(ExtendedResourceIndex index, spirv_cross::ID id) const
Definition: compiler_backend.cc:35
impeller::IPoint32
TPoint< int32_t > IPoint32
Definition: point.h:324
impeller::compiler::CompilerBackend::Type::kGLSL
@ kGLSL
impeller::compiler::CompilerBackend::GetType
Type GetType() const
Definition: compiler_backend.cc:108
impeller::compiler::VertexType::type_name
std::string type_name
Definition: reflector.cc:1177
impeller::compiler::ReadKnownScalarType
static std::optional< KnownType > ReadKnownScalarType(spirv_cross::SPIRType::BaseType type)
Definition: reflector.cc:735
impeller::compiler::Reflector::~Reflector
~Reflector()
type
GLenum type
Definition: blit_command_gles.cc:126
impeller::compiler::Reflector::Options
Definition: reflector.h:146
impeller::compiler::kReflectionHeaderTemplate
constexpr std::string_view kReflectionHeaderTemplate
Definition: code_gen_template.h:10
impeller::compiler::StructMember::BaseTypeToString
static std::string BaseTypeToString(spirv_cross::SPIRType::BaseType type)
Definition: reflector.h:44
impeller::compiler::ToString
static std::string ToString(CompilerBackend::Type type)
Definition: reflector.cc:559
utilities.h
strings.h
impeller::compiler::CompilerBackend::GetCompiler
spirv_cross::Compiler * GetCompiler()
Definition: compiler_backend.cc:54
impeller::compiler::StringToShaderStage
static std::string StringToShaderStage(const std::string &str)
Definition: reflector.cc:46
scalar.h
VALIDATION_LOG
#define VALIDATION_LOG
Definition: validation.h:73
impeller::compiler::CompilerBackend::Type::kSkSL
@ kSkSL
half.h
impeller::RuntimeStageBackend::kSkSL
@ kSkSL
std
Definition: comparable.h:95
impeller::compiler::TargetPlatform::kOpenGLDesktop
@ kOpenGLDesktop
impeller::compiler::TargetPlatform::kUnknown
@ kUnknown
impeller::compiler::TargetPlatform::kOpenGLES
@ kOpenGLES
impeller::compiler::CompilerBackend::Type::kMSL
@ kMSL
impeller::compiler::Reflector::GetShaderBundleData
std::shared_ptr< ShaderBundleData > GetShaderBundleData() const
Definition: reflector.cc:134
impeller::compiler::TargetPlatform::kRuntimeStageMetal
@ kRuntimeStageMetal
impeller::compiler::Reflector::GetReflectionJSON
std::shared_ptr< fml::Mapping > GetReflectionJSON() const
Definition: reflector.cc:108
impeller::compiler::CompilerBackend::ExtendedResourceIndex::kPrimary
@ kPrimary
impeller::compiler::Reflector::Options::entry_point_name
std::string entry_point_name
Definition: reflector.h:148
impeller::compiler::Reflector::IsValid
bool IsValid() const
Definition: reflector.cc:104
impeller::compiler::GetReflectedStructSize
static size_t GetReflectedStructSize(const std::vector< StructMember > &members)
Get the reflected struct size. In the vast majority of the cases, this is the same as the declared st...
Definition: reflector.cc:782
impeller::RuntimeStageBackend::kMetal
@ kMetal
impeller::compiler::StringStartsWith
bool StringStartsWith(const std::string &target, const std::string &prefix)
Definition: utilities.cc:87
impeller
Definition: aiks_blend_unittests.cc:18
impeller::compiler::TypeNameWithPaddingOfSize
static std::string TypeNameWithPaddingOfSize(size_t size)
Definition: reflector.cc:724
impeller::compiler::Reflector::Reflector
Reflector(Options options, const std::shared_ptr< const spirv_cross::ParsedIR > &ir, const std::shared_ptr< fml::Mapping > &shader_data, const CompilerBackend &compiler)
Definition: reflector.cc:62
types.h
impeller::compiler::VertexType
Definition: reflector.cc:1176
impeller::compiler::TargetPlatform::kSkSL
@ kSkSL
impeller::compiler::TargetPlatform::kRuntimeStageGLES
@ kRuntimeStageGLES