1 /*
2 * Copyright (C) 2012 The Android Open Source Project
3 *
4 * Licensed under the Apache License, Version 2.0 (the "License");
5 * you may not use this file except in compliance with the License.
6 * You may obtain a copy of the License at
7 *
8 * http://www.apache.org/licenses/LICENSE-2.0
9 *
10 * Unless required by applicable law or agreed to in writing, software
11 * distributed under the License is distributed on an "AS IS" BASIS,
12 * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
13 * See the License for the specific language governing permissions and
14 * limitations under the License.
15 */
16
17 #include "elf_writer_quick.h"
18
19 #include <unordered_map>
20 #include <unordered_set>
21
22 #include "base/casts.h"
23 #include "base/logging.h"
24 #include "base/unix_file/fd_file.h"
25 #include "compiled_method.h"
26 #include "dex_file-inl.h"
27 #include "driver/compiler_driver.h"
28 #include "driver/compiler_options.h"
29 #include "elf_builder.h"
30 #include "elf_file.h"
31 #include "elf_utils.h"
32 #include "elf_writer_debug.h"
33 #include "globals.h"
34 #include "leb128.h"
35 #include "oat.h"
36 #include "oat_writer.h"
37 #include "utils.h"
38
39 namespace art {
40
41 // .eh_frame and .debug_frame are almost identical.
42 // Except for some minor formatting differences, the main difference
43 // is that .eh_frame is allocated within the running program because
44 // it is used by C++ exception handling (which we do not use so we
45 // can choose either). C++ compilers generally tend to use .eh_frame
46 // because if they need it sometimes, they might as well always use it.
47 constexpr dwarf::CFIFormat kCFIFormat = dwarf::DW_EH_FRAME_FORMAT;
48
49 // The ARM specification defines three special mapping symbols
50 // $a, $t and $d which mark ARM, Thumb and data ranges respectively.
51 // These symbols can be used by tools, for example, to pretty
52 // print instructions correctly. Objdump will use them if they
53 // exist, but it will still work well without them.
54 // However, these extra symbols take space, so let's just generate
55 // one symbol which marks the whole .text section as code.
56 constexpr bool kGenerateSingleArmMappingSymbol = true;
57
58 template <typename ElfTypes>
Create(File * elf_file,OatWriter * oat_writer,const std::vector<const DexFile * > & dex_files,const std::string & android_root,bool is_host,const CompilerDriver & driver)59 bool ElfWriterQuick<ElfTypes>::Create(File* elf_file,
60 OatWriter* oat_writer,
61 const std::vector<const DexFile*>& dex_files,
62 const std::string& android_root,
63 bool is_host,
64 const CompilerDriver& driver) {
65 ElfWriterQuick elf_writer(driver, elf_file);
66 return elf_writer.Write(oat_writer, dex_files, android_root, is_host);
67 }
68
69 template <typename ElfTypes>
70 static void WriteDebugSymbols(ElfBuilder<ElfTypes>* builder, OatWriter* oat_writer);
71
72 // Encode patch locations as LEB128 list of deltas between consecutive addresses.
73 template <typename ElfTypes>
EncodeOatPatches(const std::vector<uintptr_t> & locations,std::vector<uint8_t> * buffer)74 void ElfWriterQuick<ElfTypes>::EncodeOatPatches(const std::vector<uintptr_t>& locations,
75 std::vector<uint8_t>* buffer) {
76 buffer->reserve(buffer->size() + locations.size() * 2); // guess 2 bytes per ULEB128.
77 uintptr_t address = 0; // relative to start of section.
78 for (uintptr_t location : locations) {
79 DCHECK_GE(location, address) << "Patch locations are not in sorted order";
80 EncodeUnsignedLeb128(buffer, dchecked_integral_cast<uint32_t>(location - address));
81 address = location;
82 }
83 }
84
85 class RodataWriter FINAL : public CodeOutput {
86 public:
RodataWriter(OatWriter * oat_writer)87 explicit RodataWriter(OatWriter* oat_writer) : oat_writer_(oat_writer) {}
88
Write(OutputStream * out)89 bool Write(OutputStream* out) OVERRIDE {
90 return oat_writer_->WriteRodata(out);
91 }
92
93 private:
94 OatWriter* oat_writer_;
95 };
96
97 class TextWriter FINAL : public CodeOutput {
98 public:
TextWriter(OatWriter * oat_writer)99 explicit TextWriter(OatWriter* oat_writer) : oat_writer_(oat_writer) {}
100
Write(OutputStream * out)101 bool Write(OutputStream* out) OVERRIDE {
102 return oat_writer_->WriteCode(out);
103 }
104
105 private:
106 OatWriter* oat_writer_;
107 };
108
109 enum PatchResult {
110 kAbsoluteAddress, // Absolute memory location.
111 kPointerRelativeAddress, // Offset relative to the location of the pointer.
112 kSectionRelativeAddress, // Offset relative to start of containing section.
113 };
114
115 // Patch memory addresses within a buffer.
116 // It assumes that the unpatched addresses are offsets relative to base_address.
117 // (which generally means method's low_pc relative to the start of .text)
118 template <typename Elf_Addr, typename Address, PatchResult kPatchResult>
Patch(const std::vector<uintptr_t> & patch_locations,Elf_Addr buffer_address,Elf_Addr base_address,std::vector<uint8_t> * buffer)119 static void Patch(const std::vector<uintptr_t>& patch_locations,
120 Elf_Addr buffer_address, Elf_Addr base_address,
121 std::vector<uint8_t>* buffer) {
122 for (uintptr_t location : patch_locations) {
123 typedef __attribute__((__aligned__(1))) Address UnalignedAddress;
124 auto* to_patch = reinterpret_cast<UnalignedAddress*>(buffer->data() + location);
125 switch (kPatchResult) {
126 case kAbsoluteAddress:
127 *to_patch = (base_address + *to_patch);
128 break;
129 case kPointerRelativeAddress:
130 *to_patch = (base_address + *to_patch) - (buffer_address + location);
131 break;
132 case kSectionRelativeAddress:
133 *to_patch = (base_address + *to_patch) - buffer_address;
134 break;
135 }
136 }
137 }
138
139 template <typename ElfTypes>
Write(OatWriter * oat_writer,const std::vector<const DexFile * > & dex_files_unused ATTRIBUTE_UNUSED,const std::string & android_root_unused ATTRIBUTE_UNUSED,bool is_host_unused ATTRIBUTE_UNUSED)140 bool ElfWriterQuick<ElfTypes>::Write(
141 OatWriter* oat_writer,
142 const std::vector<const DexFile*>& dex_files_unused ATTRIBUTE_UNUSED,
143 const std::string& android_root_unused ATTRIBUTE_UNUSED,
144 bool is_host_unused ATTRIBUTE_UNUSED) {
145 using Elf_Addr = typename ElfTypes::Addr;
146 const InstructionSet isa = compiler_driver_->GetInstructionSet();
147
148 // Setup the builder with the main OAT sections (.rodata .text .bss).
149 const size_t rodata_size = oat_writer->GetOatHeader().GetExecutableOffset();
150 const size_t text_size = oat_writer->GetSize() - rodata_size;
151 const size_t bss_size = oat_writer->GetBssSize();
152 RodataWriter rodata_writer(oat_writer);
153 TextWriter text_writer(oat_writer);
154 std::unique_ptr<ElfBuilder<ElfTypes>> builder(new ElfBuilder<ElfTypes>(
155 isa, rodata_size, &rodata_writer, text_size, &text_writer, bss_size));
156
157 // Add debug sections.
158 // They are allocated here (in the same scope as the builder),
159 // but they are registered with the builder only if they are used.
160 using RawSection = typename ElfBuilder<ElfTypes>::RawSection;
161 const auto* text = builder->GetText();
162 const bool is64bit = Is64BitInstructionSet(isa);
163 const int pointer_size = GetInstructionSetPointerSize(isa);
164 std::unique_ptr<RawSection> eh_frame(new RawSection(
165 ".eh_frame", SHT_PROGBITS, SHF_ALLOC, nullptr, 0, kPageSize, 0,
166 is64bit ? Patch<Elf_Addr, uint64_t, kPointerRelativeAddress> :
167 Patch<Elf_Addr, uint32_t, kPointerRelativeAddress>,
168 text));
169 std::unique_ptr<RawSection> eh_frame_hdr(new RawSection(
170 ".eh_frame_hdr", SHT_PROGBITS, SHF_ALLOC, nullptr, 0, 4, 0,
171 Patch<Elf_Addr, uint32_t, kSectionRelativeAddress>, text));
172 std::unique_ptr<RawSection> debug_frame(new RawSection(
173 ".debug_frame", SHT_PROGBITS, 0, nullptr, 0, pointer_size, 0,
174 is64bit ? Patch<Elf_Addr, uint64_t, kAbsoluteAddress> :
175 Patch<Elf_Addr, uint32_t, kAbsoluteAddress>,
176 text));
177 std::unique_ptr<RawSection> debug_frame_oat_patches(new RawSection(
178 ".debug_frame.oat_patches", SHT_OAT_PATCH));
179 std::unique_ptr<RawSection> debug_info(new RawSection(
180 ".debug_info", SHT_PROGBITS, 0, nullptr, 0, 1, 0,
181 Patch<Elf_Addr, uint32_t, kAbsoluteAddress>, text));
182 std::unique_ptr<RawSection> debug_info_oat_patches(new RawSection(
183 ".debug_info.oat_patches", SHT_OAT_PATCH));
184 std::unique_ptr<RawSection> debug_abbrev(new RawSection(
185 ".debug_abbrev", SHT_PROGBITS));
186 std::unique_ptr<RawSection> debug_str(new RawSection(
187 ".debug_str", SHT_PROGBITS));
188 std::unique_ptr<RawSection> debug_line(new RawSection(
189 ".debug_line", SHT_PROGBITS, 0, nullptr, 0, 1, 0,
190 Patch<Elf_Addr, uint32_t, kAbsoluteAddress>, text));
191 std::unique_ptr<RawSection> debug_line_oat_patches(new RawSection(
192 ".debug_line.oat_patches", SHT_OAT_PATCH));
193 if (!oat_writer->GetMethodDebugInfo().empty()) {
194 if (compiler_driver_->GetCompilerOptions().GetGenerateDebugInfo()) {
195 // Generate CFI (stack unwinding information).
196 if (kCFIFormat == dwarf::DW_EH_FRAME_FORMAT) {
197 dwarf::WriteCFISection(
198 compiler_driver_, oat_writer,
199 dwarf::DW_EH_PE_pcrel, kCFIFormat,
200 eh_frame->GetBuffer(), eh_frame->GetPatchLocations(),
201 eh_frame_hdr->GetBuffer(), eh_frame_hdr->GetPatchLocations());
202 builder->RegisterSection(eh_frame.get());
203 builder->RegisterSection(eh_frame_hdr.get());
204 } else {
205 DCHECK(kCFIFormat == dwarf::DW_DEBUG_FRAME_FORMAT);
206 dwarf::WriteCFISection(
207 compiler_driver_, oat_writer,
208 dwarf::DW_EH_PE_absptr, kCFIFormat,
209 debug_frame->GetBuffer(), debug_frame->GetPatchLocations(),
210 nullptr, nullptr);
211 builder->RegisterSection(debug_frame.get());
212 EncodeOatPatches(*debug_frame->GetPatchLocations(),
213 debug_frame_oat_patches->GetBuffer());
214 builder->RegisterSection(debug_frame_oat_patches.get());
215 }
216 // Add methods to .symtab.
217 WriteDebugSymbols(builder.get(), oat_writer);
218 // Generate DWARF .debug_* sections.
219 dwarf::WriteDebugSections(
220 compiler_driver_, oat_writer,
221 debug_info->GetBuffer(), debug_info->GetPatchLocations(),
222 debug_abbrev->GetBuffer(),
223 debug_str->GetBuffer(),
224 debug_line->GetBuffer(), debug_line->GetPatchLocations());
225 builder->RegisterSection(debug_info.get());
226 EncodeOatPatches(*debug_info->GetPatchLocations(),
227 debug_info_oat_patches->GetBuffer());
228 builder->RegisterSection(debug_info_oat_patches.get());
229 builder->RegisterSection(debug_abbrev.get());
230 builder->RegisterSection(debug_str.get());
231 builder->RegisterSection(debug_line.get());
232 EncodeOatPatches(*debug_line->GetPatchLocations(),
233 debug_line_oat_patches->GetBuffer());
234 builder->RegisterSection(debug_line_oat_patches.get());
235 }
236 }
237
238 // Add relocation section for .text.
239 std::unique_ptr<RawSection> text_oat_patches(new RawSection(
240 ".text.oat_patches", SHT_OAT_PATCH));
241 if (compiler_driver_->GetCompilerOptions().GetIncludePatchInformation()) {
242 // Note that ElfWriter::Fixup will be called regardless and therefore
243 // we need to include oat_patches for debug sections unconditionally.
244 EncodeOatPatches(oat_writer->GetAbsolutePatchLocations(),
245 text_oat_patches->GetBuffer());
246 builder->RegisterSection(text_oat_patches.get());
247 }
248
249 return builder->Write(elf_file_);
250 }
251
252 template <typename ElfTypes>
WriteDebugSymbols(ElfBuilder<ElfTypes> * builder,OatWriter * oat_writer)253 static void WriteDebugSymbols(ElfBuilder<ElfTypes>* builder, OatWriter* oat_writer) {
254 const std::vector<OatWriter::DebugInfo>& method_info = oat_writer->GetMethodDebugInfo();
255 bool generated_mapping_symbol = false;
256
257 // Find all addresses (low_pc) which contain deduped methods.
258 // The first instance of method is not marked deduped_, but the rest is.
259 std::unordered_set<uint32_t> deduped_addresses;
260 for (auto it = method_info.begin(); it != method_info.end(); ++it) {
261 if (it->deduped_) {
262 deduped_addresses.insert(it->low_pc_);
263 }
264 }
265
266 auto* symtab = builder->GetSymtab();
267 for (auto it = method_info.begin(); it != method_info.end(); ++it) {
268 if (it->deduped_) {
269 continue; // Add symbol only for the first instance.
270 }
271 std::string name = PrettyMethod(it->dex_method_index_, *it->dex_file_, true);
272 if (deduped_addresses.find(it->low_pc_) != deduped_addresses.end()) {
273 name += " [DEDUPED]";
274 }
275
276 uint32_t low_pc = it->low_pc_;
277 // Add in code delta, e.g., thumb bit 0 for Thumb2 code.
278 low_pc += it->compiled_method_->CodeDelta();
279 symtab->AddSymbol(name, builder->GetText(), low_pc,
280 true, it->high_pc_ - it->low_pc_, STB_GLOBAL, STT_FUNC);
281
282 // Conforming to aaelf, add $t mapping symbol to indicate start of a sequence of thumb2
283 // instructions, so that disassembler tools can correctly disassemble.
284 // Note that even if we generate just a single mapping symbol, ARM's Streamline
285 // requires it to match function symbol. Just address 0 does not work.
286 if (it->compiled_method_->GetInstructionSet() == kThumb2) {
287 if (!generated_mapping_symbol || !kGenerateSingleArmMappingSymbol) {
288 symtab->AddSymbol("$t", builder->GetText(), it->low_pc_ & ~1, true,
289 0, STB_LOCAL, STT_NOTYPE);
290 generated_mapping_symbol = true;
291 }
292 }
293 }
294 }
295
296 // Explicit instantiations
297 template class ElfWriterQuick<ElfTypes32>;
298 template class ElfWriterQuick<ElfTypes64>;
299
300 } // namespace art
301