1 // Copyright (c) 2013 The Chromium 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 #include "gn/ninja_binary_target_writer.h"
6
7 #include <sstream>
8
9 #include "base/strings/string_util.h"
10 #include "gn/config_values_extractors.h"
11 #include "gn/deps_iterator.h"
12 #include "gn/filesystem_utils.h"
13 #include "gn/general_tool.h"
14 #include "gn/ninja_c_binary_target_writer.h"
15 #include "gn/ninja_rust_binary_target_writer.h"
16 #include "gn/ninja_target_command_util.h"
17 #include "gn/ninja_utils.h"
18 #include "gn/settings.h"
19 #include "gn/string_utils.h"
20 #include "gn/substitution_writer.h"
21 #include "gn/target.h"
22 #include "gn/variables.h"
23
24 namespace {
25
26 // Returns the proper escape options for writing compiler and linker flags.
GetFlagOptions()27 EscapeOptions GetFlagOptions() {
28 EscapeOptions opts;
29 opts.mode = ESCAPE_NINJA_COMMAND;
30 return opts;
31 }
32
33 } // namespace
34
NinjaBinaryTargetWriter(const Target * target,std::ostream & out)35 NinjaBinaryTargetWriter::NinjaBinaryTargetWriter(const Target* target,
36 std::ostream& out)
37 : NinjaTargetWriter(target, out),
38 rule_prefix_(GetNinjaRulePrefixForToolchain(settings_)) {}
39
40 NinjaBinaryTargetWriter::~NinjaBinaryTargetWriter() = default;
41
Run()42 void NinjaBinaryTargetWriter::Run() {
43 if (target_->source_types_used().RustSourceUsed()) {
44 NinjaRustBinaryTargetWriter writer(target_, out_);
45 writer.Run();
46 return;
47 }
48
49 NinjaCBinaryTargetWriter writer(target_, out_);
50 writer.Run();
51 }
52
WriteInputsStampAndGetDep(size_t num_stamp_uses) const53 std::vector<OutputFile> NinjaBinaryTargetWriter::WriteInputsStampAndGetDep(
54 size_t num_stamp_uses) const {
55 CHECK(target_->toolchain()) << "Toolchain not set on target "
56 << target_->label().GetUserVisibleName(true);
57
58 UniqueVector<const SourceFile*> inputs;
59 for (ConfigValuesIterator iter(target_); !iter.done(); iter.Next()) {
60 for (const auto& input : iter.cur().inputs()) {
61 inputs.push_back(&input);
62 }
63 }
64
65 if (inputs.size() == 0)
66 return std::vector<OutputFile>(); // No inputs
67
68 // If we only have one input, return it directly instead of writing a stamp
69 // file for it.
70 if (inputs.size() == 1) {
71 return std::vector<OutputFile>{
72 OutputFile(settings_->build_settings(), *inputs[0])};
73 }
74
75 std::vector<OutputFile> outs;
76 for (const SourceFile* source : inputs)
77 outs.push_back(OutputFile(settings_->build_settings(), *source));
78
79 // If there are multiple inputs, but the stamp file would be referenced only
80 // once, don't write it but depend on the inputs directly.
81 if (num_stamp_uses == 1u)
82 return outs;
83
84 // Make a stamp file.
85 OutputFile stamp_file =
86 GetBuildDirForTargetAsOutputFile(target_, BuildDirType::OBJ);
87 stamp_file.value().append(target_->label().name());
88 stamp_file.value().append(".inputs.stamp");
89
90 out_ << "build ";
91 path_output_.WriteFile(out_, stamp_file);
92 out_ << ": " << GetNinjaRulePrefixForToolchain(settings_)
93 << GeneralTool::kGeneralToolStamp;
94
95 // File inputs.
96 for (const auto* input : inputs) {
97 out_ << " ";
98 path_output_.WriteFile(out_, *input);
99 }
100
101 out_ << std::endl;
102 return {stamp_file};
103 }
104
WriteSourceSetStamp(const std::vector<OutputFile> & object_files)105 void NinjaBinaryTargetWriter::WriteSourceSetStamp(
106 const std::vector<OutputFile>& object_files) {
107 // The stamp rule for source sets is generally not used, since targets that
108 // depend on this will reference the object files directly. However, writing
109 // this rule allows the user to type the name of the target and get a build
110 // which can be convenient for development.
111 ClassifiedDeps classified_deps = GetClassifiedDeps();
112
113 // The classifier should never put extra object files in a source sets: any
114 // source sets that we depend on should appear in our non-linkable deps
115 // instead.
116 DCHECK(classified_deps.extra_object_files.empty());
117
118 std::vector<OutputFile> order_only_deps;
119 for (auto* dep : classified_deps.non_linkable_deps)
120 order_only_deps.push_back(dep->dependency_output_file());
121
122 WriteStampForTarget(object_files, order_only_deps);
123 }
124
125 NinjaBinaryTargetWriter::ClassifiedDeps
GetClassifiedDeps() const126 NinjaBinaryTargetWriter::GetClassifiedDeps() const {
127 ClassifiedDeps classified_deps;
128
129 // Normal public/private deps.
130 for (const auto& pair : target_->GetDeps(Target::DEPS_LINKED)) {
131 ClassifyDependency(pair.ptr, &classified_deps);
132 }
133
134 // Inherited libraries.
135 for (auto* inherited_target : target_->inherited_libraries().GetOrdered()) {
136 ClassifyDependency(inherited_target, &classified_deps);
137 }
138
139 // Data deps.
140 for (const auto& data_dep_pair : target_->data_deps())
141 classified_deps.non_linkable_deps.push_back(data_dep_pair.ptr);
142
143 return classified_deps;
144 }
145
ClassifyDependency(const Target * dep,ClassifiedDeps * classified_deps) const146 void NinjaBinaryTargetWriter::ClassifyDependency(
147 const Target* dep,
148 ClassifiedDeps* classified_deps) const {
149 // Only the following types of outputs have libraries linked into them:
150 // EXECUTABLE
151 // SHARED_LIBRARY
152 // _complete_ STATIC_LIBRARY
153 //
154 // Child deps of intermediate static libraries get pushed up the
155 // dependency tree until one of these is reached, and source sets
156 // don't link at all.
157 bool can_link_libs = target_->IsFinal();
158
159 if (can_link_libs && dep->builds_swift_module())
160 classified_deps->swiftmodule_deps.push_back(dep);
161
162 if (dep->output_type() == Target::COPY_FILES &&
163 dep->IsLinkable()) {
164 classified_deps->linkable_deps.push_back(dep);
165 } else if (target_->source_types_used().RustSourceUsed() &&
166 (target_->output_type() == Target::RUST_LIBRARY ||
167 target_->output_type() == Target::STATIC_LIBRARY) &&
168 dep->IsLinkable()) {
169 // Rust libraries and static libraries aren't final, but need to have the
170 // link lines of all transitive deps specified.
171 classified_deps->linkable_deps.push_back(dep);
172 } else if (dep->output_type() == Target::SOURCE_SET ||
173 // If a complete static library depends on an incomplete static
174 // library, manually link in the object files of the dependent
175 // library as if it were a source set. This avoids problems with
176 // braindead tools such as ar which don't properly link dependent
177 // static libraries.
178 (target_->complete_static_lib() &&
179 (dep->output_type() == Target::STATIC_LIBRARY &&
180 !dep->complete_static_lib()))) {
181 // Source sets have their object files linked into final targets
182 // (shared libraries, executables, loadable modules, and complete static
183 // libraries). Intermediate static libraries and other source sets
184 // just forward the dependency, otherwise the files in the source
185 // set can easily get linked more than once which will cause
186 // multiple definition errors.
187 if (can_link_libs)
188 AddSourceSetFiles(dep, &classified_deps->extra_object_files);
189
190 // Add the source set itself as a non-linkable dependency on the current
191 // target. This will make sure that anything the source set's stamp file
192 // depends on (like data deps) are also built before the current target
193 // can be complete. Otherwise, these will be skipped since this target
194 // will depend only on the source set's object files.
195 classified_deps->non_linkable_deps.push_back(dep);
196 } else if (target_->complete_static_lib() && dep->IsFinal()) {
197 classified_deps->non_linkable_deps.push_back(dep);
198 } else if (can_link_libs && dep->IsLinkable()) {
199 classified_deps->linkable_deps.push_back(dep);
200 } else if (dep->output_type() == Target::CREATE_BUNDLE &&
201 dep->bundle_data().is_framework()) {
202 classified_deps->framework_deps.push_back(dep);
203 } else {
204 classified_deps->non_linkable_deps.push_back(dep);
205 }
206 }
207
AddSourceSetFiles(const Target * source_set,UniqueVector<OutputFile> * obj_files) const208 void NinjaBinaryTargetWriter::AddSourceSetFiles(
209 const Target* source_set,
210 UniqueVector<OutputFile>* obj_files) const {
211 std::vector<OutputFile> tool_outputs; // Prevent allocation in loop.
212
213 // Compute object files for all sources. Only link the first output from
214 // the tool if there are more than one.
215 for (const auto& source : source_set->sources()) {
216 const char* tool_name = Tool::kToolNone;
217 if (source_set->GetOutputFilesForSource(source, &tool_name, &tool_outputs))
218 obj_files->push_back(tool_outputs[0]);
219 }
220
221 // Swift files may generate one object file per module or one per source file
222 // depending on how the compiler is invoked (whole module optimization).
223 if (source_set->source_types_used().SwiftSourceUsed()) {
224 const Tool* tool = source_set->toolchain()->GetToolForSourceTypeAsC(
225 SourceFile::SOURCE_SWIFT);
226
227 std::vector<OutputFile> outputs;
228 SubstitutionWriter::ApplyListToLinkerAsOutputFile(
229 source_set, tool, tool->outputs(), &outputs);
230
231 for (const OutputFile& output : outputs) {
232 SourceFile output_as_source =
233 output.AsSourceFile(source_set->settings()->build_settings());
234 if (output_as_source.IsObjectType()) {
235 obj_files->push_back(output);
236 }
237 }
238 }
239
240 // Add MSVC precompiled header object files. GCC .gch files are not object
241 // files so they are omitted.
242 if (source_set->config_values().has_precompiled_headers()) {
243 if (source_set->source_types_used().Get(SourceFile::SOURCE_C)) {
244 const CTool* tool = source_set->toolchain()->GetToolAsC(CTool::kCToolCc);
245 if (tool && tool->precompiled_header_type() == CTool::PCH_MSVC) {
246 GetPCHOutputFiles(source_set, CTool::kCToolCc, &tool_outputs);
247 obj_files->Append(tool_outputs.begin(), tool_outputs.end());
248 }
249 }
250 if (source_set->source_types_used().Get(SourceFile::SOURCE_CPP)) {
251 const CTool* tool = source_set->toolchain()->GetToolAsC(CTool::kCToolCxx);
252 if (tool && tool->precompiled_header_type() == CTool::PCH_MSVC) {
253 GetPCHOutputFiles(source_set, CTool::kCToolCxx, &tool_outputs);
254 obj_files->Append(tool_outputs.begin(), tool_outputs.end());
255 }
256 }
257 if (source_set->source_types_used().Get(SourceFile::SOURCE_M)) {
258 const CTool* tool =
259 source_set->toolchain()->GetToolAsC(CTool::kCToolObjC);
260 if (tool && tool->precompiled_header_type() == CTool::PCH_MSVC) {
261 GetPCHOutputFiles(source_set, CTool::kCToolObjC, &tool_outputs);
262 obj_files->Append(tool_outputs.begin(), tool_outputs.end());
263 }
264 }
265 if (source_set->source_types_used().Get(SourceFile::SOURCE_MM)) {
266 const CTool* tool =
267 source_set->toolchain()->GetToolAsC(CTool::kCToolObjCxx);
268 if (tool && tool->precompiled_header_type() == CTool::PCH_MSVC) {
269 GetPCHOutputFiles(source_set, CTool::kCToolObjCxx, &tool_outputs);
270 obj_files->Append(tool_outputs.begin(), tool_outputs.end());
271 }
272 }
273 }
274 }
275
WriteCompilerBuildLine(const std::vector<SourceFile> & sources,const std::vector<OutputFile> & extra_deps,const std::vector<OutputFile> & order_only_deps,const char * tool_name,const std::vector<OutputFile> & outputs,bool can_write_source_info)276 void NinjaBinaryTargetWriter::WriteCompilerBuildLine(
277 const std::vector<SourceFile>& sources,
278 const std::vector<OutputFile>& extra_deps,
279 const std::vector<OutputFile>& order_only_deps,
280 const char* tool_name,
281 const std::vector<OutputFile>& outputs,
282 bool can_write_source_info) {
283 out_ << "build";
284 path_output_.WriteFiles(out_, outputs);
285
286 out_ << ": " << rule_prefix_ << tool_name;
287 path_output_.WriteFiles(out_, sources);
288
289 if (!extra_deps.empty()) {
290 out_ << " |";
291 path_output_.WriteFiles(out_, extra_deps);
292 }
293
294 if (!order_only_deps.empty()) {
295 out_ << " ||";
296 path_output_.WriteFiles(out_, order_only_deps);
297 }
298 out_ << std::endl;
299
300 if (!sources.empty() && can_write_source_info) {
301 out_ << " "
302 << "source_file_part = " << sources[0].GetName();
303 out_ << std::endl;
304 out_ << " "
305 << "source_name_part = "
306 << FindFilenameNoExtension(&sources[0].value());
307 out_ << std::endl;
308 }
309 }
310
WriteCustomLinkerFlags(std::ostream & out,const Tool * tool)311 void NinjaBinaryTargetWriter::WriteCustomLinkerFlags(
312 std::ostream& out,
313 const Tool* tool) {
314
315 if (tool->AsC() || (tool->AsRust() && tool->AsRust()->MayLink())) {
316 // First the ldflags from the target and its config.
317 RecursiveTargetConfigStringsToStream(kRecursiveWriterKeepDuplicates,
318 target_, &ConfigValues::ldflags,
319 GetFlagOptions(), out);
320 }
321 }
322
WriteLibrarySearchPath(std::ostream & out,const Tool * tool)323 void NinjaBinaryTargetWriter::WriteLibrarySearchPath(
324 std::ostream& out,
325 const Tool* tool) {
326 // Write library search paths that have been recursively pushed
327 // through the dependency tree.
328 const UniqueVector<SourceDir>& all_lib_dirs = target_->all_lib_dirs();
329 if (!all_lib_dirs.empty()) {
330 // Since we're passing these on the command line to the linker and not
331 // to Ninja, we need to do shell escaping.
332 PathOutput lib_path_output(path_output_.current_dir(),
333 settings_->build_settings()->root_path_utf8(),
334 ESCAPE_NINJA_COMMAND);
335 for (size_t i = 0; i < all_lib_dirs.size(); i++) {
336 out << " " << tool->lib_dir_switch();
337 lib_path_output.WriteDir(out, all_lib_dirs[i],
338 PathOutput::DIR_NO_LAST_SLASH);
339 }
340 }
341
342 const auto& all_framework_dirs = target_->all_framework_dirs();
343 if (!all_framework_dirs.empty()) {
344 // Since we're passing these on the command line to the linker and not
345 // to Ninja, we need to do shell escaping.
346 PathOutput framework_path_output(
347 path_output_.current_dir(),
348 settings_->build_settings()->root_path_utf8(), ESCAPE_NINJA_COMMAND);
349 for (size_t i = 0; i < all_framework_dirs.size(); i++) {
350 out << " " << tool->framework_dir_switch();
351 framework_path_output.WriteDir(out, all_framework_dirs[i],
352 PathOutput::DIR_NO_LAST_SLASH);
353 }
354 }
355 }
356
WriteLinkerFlags(std::ostream & out,const Tool * tool,const SourceFile * optional_def_file)357 void NinjaBinaryTargetWriter::WriteLinkerFlags(
358 std::ostream& out,
359 const Tool* tool,
360 const SourceFile* optional_def_file) {
361 // First any ldflags
362 WriteCustomLinkerFlags(out, tool);
363 // Then the library search path
364 WriteLibrarySearchPath(out, tool);
365
366 if (optional_def_file) {
367 out_ << " /DEF:";
368 path_output_.WriteFile(out, *optional_def_file);
369 }
370 }
371
WriteLibs(std::ostream & out,const Tool * tool)372 void NinjaBinaryTargetWriter::WriteLibs(std::ostream& out, const Tool* tool) {
373 // Libraries that have been recursively pushed through the dependency tree.
374 // Since we're passing these on the command line to the linker and not
375 // to Ninja, we need to do shell escaping.
376 PathOutput lib_path_output(
377 path_output_.current_dir(), settings_->build_settings()->root_path_utf8(),
378 ESCAPE_NINJA_COMMAND);
379 EscapeOptions lib_escape_opts;
380 lib_escape_opts.mode = ESCAPE_NINJA_COMMAND;
381 const UniqueVector<LibFile>& all_libs = target_->all_libs();
382 for (size_t i = 0; i < all_libs.size(); i++) {
383 const LibFile& lib_file = all_libs[i];
384 const std::string& lib_value = lib_file.value();
385 if (lib_file.is_source_file()) {
386 out << " " << tool->linker_arg();
387 lib_path_output.WriteFile(out, lib_file.source_file());
388 } else {
389 out << " " << tool->lib_switch();
390 EscapeStringToStream(out, lib_value, lib_escape_opts);
391 }
392 }
393 }
394
WriteFrameworks(std::ostream & out,const Tool * tool)395 void NinjaBinaryTargetWriter::WriteFrameworks(std::ostream& out,
396 const Tool* tool) {
397 // Frameworks that have been recursively pushed through the dependency tree.
398 FrameworksWriter writer(tool->framework_switch());
399 const auto& all_frameworks = target_->all_frameworks();
400 for (size_t i = 0; i < all_frameworks.size(); i++) {
401 writer(all_frameworks[i], out);
402 }
403
404 FrameworksWriter weak_writer(tool->weak_framework_switch());
405 const auto& all_weak_frameworks = target_->all_weak_frameworks();
406 for (size_t i = 0; i < all_weak_frameworks.size(); i++) {
407 weak_writer(all_weak_frameworks[i], out);
408 }
409 }
410
WriteSwiftModules(std::ostream & out,const Tool * tool,const std::vector<OutputFile> & swiftmodules)411 void NinjaBinaryTargetWriter::WriteSwiftModules(
412 std::ostream& out,
413 const Tool* tool,
414 const std::vector<OutputFile>& swiftmodules) {
415 // Since we're passing these on the command line to the linker and not
416 // to Ninja, we need to do shell escaping.
417 PathOutput swiftmodule_path_output(
418 path_output_.current_dir(), settings_->build_settings()->root_path_utf8(),
419 ESCAPE_NINJA_COMMAND);
420
421 for (const OutputFile& swiftmodule : swiftmodules) {
422 out << " " << tool->swiftmodule_switch();
423 swiftmodule_path_output.WriteFile(out, swiftmodule);
424 }
425 }
426