1 //===- ICF.cpp ------------------------------------------------------------===//
2 //
3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
4 // See https://llvm.org/LICENSE.txt for license information.
5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
6 //
7 //===----------------------------------------------------------------------===//
8
9 #include "ICF.h"
10 #include "ConcatOutputSection.h"
11 #include "InputSection.h"
12 #include "Symbols.h"
13 #include "UnwindInfoSection.h"
14
15 #include "llvm/Support/Parallel.h"
16 #include "llvm/Support/TimeProfiler.h"
17
18 #include <atomic>
19
20 using namespace llvm;
21 using namespace lld;
22 using namespace lld::macho;
23
24 class ICF {
25 public:
26 ICF(std::vector<ConcatInputSection *> &inputs);
27
28 void run();
29 void segregate(size_t begin, size_t end,
30 std::function<bool(const ConcatInputSection *,
31 const ConcatInputSection *)>
32 equals);
33 size_t findBoundary(size_t begin, size_t end);
34 void forEachClassRange(size_t begin, size_t end,
35 std::function<void(size_t, size_t)> func);
36 void forEachClass(std::function<void(size_t, size_t)> func);
37
38 // ICF needs a copy of the inputs vector because its equivalence-class
39 // segregation algorithm destroys the proper sequence.
40 std::vector<ConcatInputSection *> icfInputs;
41 };
42
ICF(std::vector<ConcatInputSection * > & inputs)43 ICF::ICF(std::vector<ConcatInputSection *> &inputs) {
44 icfInputs.assign(inputs.begin(), inputs.end());
45 }
46
47 // ICF = Identical Code Folding
48 //
49 // We only fold __TEXT,__text, so this is really "code" folding, and not
50 // "COMDAT" folding. String and scalar constant literals are deduplicated
51 // elsewhere.
52 //
53 // Summary of segments & sections:
54 //
55 // The __TEXT segment is readonly at the MMU. Some sections are already
56 // deduplicated elsewhere (__TEXT,__cstring & __TEXT,__literal*) and some are
57 // synthetic and inherently free of duplicates (__TEXT,__stubs &
58 // __TEXT,__unwind_info). Note that we don't yet run ICF on __TEXT,__const,
59 // because doing so induces many test failures.
60 //
61 // The __LINKEDIT segment is readonly at the MMU, yet entirely synthetic, and
62 // thus ineligible for ICF.
63 //
64 // The __DATA_CONST segment is read/write at the MMU, but is logically const to
65 // the application after dyld applies fixups to pointer data. We currently
66 // fold only the __DATA_CONST,__cfstring section.
67 //
68 // The __DATA segment is read/write at the MMU, and as application-writeable
69 // data, none of its sections are eligible for ICF.
70 //
71 // Please see the large block comment in lld/ELF/ICF.cpp for an explanation
72 // of the segregation algorithm.
73 //
74 // FIXME(gkm): implement keep-unique attributes
75 // FIXME(gkm): implement address-significance tables for MachO object files
76
77 static unsigned icfPass = 0;
78 static std::atomic<bool> icfRepeat{false};
79
80 // Compare "non-moving" parts of two ConcatInputSections, namely everything
81 // except references to other ConcatInputSections.
equalsConstant(const ConcatInputSection * ia,const ConcatInputSection * ib)82 static bool equalsConstant(const ConcatInputSection *ia,
83 const ConcatInputSection *ib) {
84 // We can only fold within the same OutputSection.
85 if (ia->parent != ib->parent)
86 return false;
87 if (ia->data.size() != ib->data.size())
88 return false;
89 if (ia->data != ib->data)
90 return false;
91 if (ia->relocs.size() != ib->relocs.size())
92 return false;
93 auto f = [](const Reloc &ra, const Reloc &rb) {
94 if (ra.type != rb.type)
95 return false;
96 if (ra.pcrel != rb.pcrel)
97 return false;
98 if (ra.length != rb.length)
99 return false;
100 if (ra.offset != rb.offset)
101 return false;
102 if (ra.addend != rb.addend)
103 return false;
104 if (ra.referent.is<Symbol *>() != rb.referent.is<Symbol *>())
105 return false;
106
107 InputSection *isecA, *isecB;
108 if (ra.referent.is<Symbol *>()) {
109 const auto *sa = ra.referent.get<Symbol *>();
110 const auto *sb = rb.referent.get<Symbol *>();
111 if (sa->kind() != sb->kind())
112 return false;
113 if (isa<Defined>(sa)) {
114 const auto *da = cast<Defined>(sa);
115 const auto *db = cast<Defined>(sb);
116 if (da->isec && db->isec) {
117 isecA = da->isec;
118 isecB = db->isec;
119 } else {
120 assert(da->isAbsolute() && db->isAbsolute());
121 return da->value == db->value;
122 }
123 } else {
124 assert(isa<DylibSymbol>(sa));
125 return sa == sb;
126 }
127 } else {
128 isecA = ra.referent.get<InputSection *>();
129 isecB = rb.referent.get<InputSection *>();
130 }
131
132 if (isecA->parent != isecB->parent)
133 return false;
134 // Sections with identical parents should be of the same kind.
135 assert(isecA->kind() == isecB->kind());
136 // We will compare ConcatInputSection contents in equalsVariable.
137 if (isa<ConcatInputSection>(isecA))
138 return true;
139 // Else we have two literal sections. References to them are equal iff their
140 // offsets in the output section are equal.
141 return isecA->getOffset(ra.addend) == isecB->getOffset(rb.addend);
142 };
143 return std::equal(ia->relocs.begin(), ia->relocs.end(), ib->relocs.begin(),
144 f);
145 }
146
147 // Compare the "moving" parts of two ConcatInputSections -- i.e. everything not
148 // handled by equalsConstant().
equalsVariable(const ConcatInputSection * ia,const ConcatInputSection * ib)149 static bool equalsVariable(const ConcatInputSection *ia,
150 const ConcatInputSection *ib) {
151 assert(ia->relocs.size() == ib->relocs.size());
152 auto f = [](const Reloc &ra, const Reloc &rb) {
153 // We already filtered out mismatching values/addends in equalsConstant.
154 if (ra.referent == rb.referent)
155 return true;
156 const ConcatInputSection *isecA, *isecB;
157 if (ra.referent.is<Symbol *>()) {
158 // Matching DylibSymbols are already filtered out by the
159 // identical-referent check above. Non-matching DylibSymbols were filtered
160 // out in equalsConstant(). So we can safely cast to Defined here.
161 const auto *da = cast<Defined>(ra.referent.get<Symbol *>());
162 const auto *db = cast<Defined>(rb.referent.get<Symbol *>());
163 if (da->isAbsolute())
164 return true;
165 isecA = dyn_cast<ConcatInputSection>(da->isec);
166 if (!isecA)
167 return true; // literal sections were checked in equalsConstant.
168 isecB = cast<ConcatInputSection>(db->isec);
169 } else {
170 const auto *sa = ra.referent.get<InputSection *>();
171 const auto *sb = rb.referent.get<InputSection *>();
172 isecA = dyn_cast<ConcatInputSection>(sa);
173 if (!isecA)
174 return true;
175 isecB = cast<ConcatInputSection>(sb);
176 }
177 return isecA->icfEqClass[icfPass % 2] == isecB->icfEqClass[icfPass % 2];
178 };
179 return std::equal(ia->relocs.begin(), ia->relocs.end(), ib->relocs.begin(),
180 f);
181 }
182
183 // Find the first InputSection after BEGIN whose equivalence class differs
findBoundary(size_t begin,size_t end)184 size_t ICF::findBoundary(size_t begin, size_t end) {
185 uint64_t beginHash = icfInputs[begin]->icfEqClass[icfPass % 2];
186 for (size_t i = begin + 1; i < end; ++i)
187 if (beginHash != icfInputs[i]->icfEqClass[icfPass % 2])
188 return i;
189 return end;
190 }
191
192 // Invoke FUNC on subranges with matching equivalence class
forEachClassRange(size_t begin,size_t end,std::function<void (size_t,size_t)> func)193 void ICF::forEachClassRange(size_t begin, size_t end,
194 std::function<void(size_t, size_t)> func) {
195 while (begin < end) {
196 size_t mid = findBoundary(begin, end);
197 func(begin, mid);
198 begin = mid;
199 }
200 }
201
202 // Split icfInputs into shards, then parallelize invocation of FUNC on subranges
203 // with matching equivalence class
forEachClass(std::function<void (size_t,size_t)> func)204 void ICF::forEachClass(std::function<void(size_t, size_t)> func) {
205 // Only use threads when the benefits outweigh the overhead.
206 const size_t threadingThreshold = 1024;
207 if (icfInputs.size() < threadingThreshold) {
208 forEachClassRange(0, icfInputs.size(), func);
209 ++icfPass;
210 return;
211 }
212
213 // Shard into non-overlapping intervals, and call FUNC in parallel. The
214 // sharding must be completed before any calls to FUNC are made so that FUNC
215 // can modify the InputSection in its shard without causing data races.
216 const size_t shards = 256;
217 size_t step = icfInputs.size() / shards;
218 size_t boundaries[shards + 1];
219 boundaries[0] = 0;
220 boundaries[shards] = icfInputs.size();
221 parallelForEachN(1, shards, [&](size_t i) {
222 boundaries[i] = findBoundary((i - 1) * step, icfInputs.size());
223 });
224 parallelForEachN(1, shards + 1, [&](size_t i) {
225 if (boundaries[i - 1] < boundaries[i]) {
226 forEachClassRange(boundaries[i - 1], boundaries[i], func);
227 }
228 });
229 ++icfPass;
230 }
231
run()232 void ICF::run() {
233 // Into each origin-section hash, combine all reloc referent section hashes.
234 for (icfPass = 0; icfPass < 2; ++icfPass) {
235 parallelForEach(icfInputs, [&](ConcatInputSection *isec) {
236 uint64_t hash = isec->icfEqClass[icfPass % 2];
237 for (const Reloc &r : isec->relocs) {
238 if (auto *sym = r.referent.dyn_cast<Symbol *>()) {
239 if (auto *dylibSym = dyn_cast<DylibSymbol>(sym))
240 hash += dylibSym->stubsHelperIndex;
241 else if (auto *defined = dyn_cast<Defined>(sym)) {
242 if (defined->isec) {
243 if (auto isec = dyn_cast<ConcatInputSection>(defined->isec))
244 hash += defined->value + isec->icfEqClass[icfPass % 2];
245 else
246 hash += defined->isec->kind() +
247 defined->isec->getOffset(defined->value);
248 } else {
249 hash += defined->value;
250 }
251 } else
252 llvm_unreachable("foldIdenticalSections symbol kind");
253 }
254 }
255 // Set MSB to 1 to avoid collisions with non-hashed classes.
256 isec->icfEqClass[(icfPass + 1) % 2] = hash | (1ull << 63);
257 });
258 }
259
260 llvm::stable_sort(
261 icfInputs, [](const ConcatInputSection *a, const ConcatInputSection *b) {
262 return a->icfEqClass[0] < b->icfEqClass[0];
263 });
264 forEachClass(
265 [&](size_t begin, size_t end) { segregate(begin, end, equalsConstant); });
266
267 // Split equivalence groups by comparing relocations until convergence
268 do {
269 icfRepeat = false;
270 forEachClass([&](size_t begin, size_t end) {
271 segregate(begin, end, equalsVariable);
272 });
273 } while (icfRepeat);
274 log("ICF needed " + Twine(icfPass) + " iterations");
275
276 // Fold sections within equivalence classes
277 forEachClass([&](size_t begin, size_t end) {
278 if (end - begin < 2)
279 return;
280 ConcatInputSection *beginIsec = icfInputs[begin];
281 for (size_t i = begin + 1; i < end; ++i)
282 beginIsec->foldIdentical(icfInputs[i]);
283 });
284 }
285
286 // Split an equivalence class into smaller classes.
segregate(size_t begin,size_t end,std::function<bool (const ConcatInputSection *,const ConcatInputSection *)> equals)287 void ICF::segregate(
288 size_t begin, size_t end,
289 std::function<bool(const ConcatInputSection *, const ConcatInputSection *)>
290 equals) {
291 while (begin < end) {
292 // Divide [begin, end) into two. Let mid be the start index of the
293 // second group.
294 auto bound = std::stable_partition(icfInputs.begin() + begin + 1,
295 icfInputs.begin() + end,
296 [&](ConcatInputSection *isec) {
297 return equals(icfInputs[begin], isec);
298 });
299 size_t mid = bound - icfInputs.begin();
300
301 // Split [begin, end) into [begin, mid) and [mid, end). We use mid as an
302 // equivalence class ID because every group ends with a unique index.
303 for (size_t i = begin; i < mid; ++i)
304 icfInputs[i]->icfEqClass[(icfPass + 1) % 2] = mid;
305
306 // If we created a group, we need to iterate the main loop again.
307 if (mid != end)
308 icfRepeat = true;
309
310 begin = mid;
311 }
312 }
313
314 template <class Ptr>
findFunctionsWithUnwindInfo()315 DenseSet<const InputSection *> findFunctionsWithUnwindInfo() {
316 DenseSet<const InputSection *> result;
317 for (ConcatInputSection *isec : in.unwindInfo->getInputs()) {
318 for (size_t i = 0; i < isec->relocs.size(); ++i) {
319 Reloc &r = isec->relocs[i];
320 assert(target->hasAttr(r.type, RelocAttrBits::UNSIGNED));
321 if (r.offset % sizeof(CompactUnwindEntry<Ptr>) !=
322 offsetof(CompactUnwindEntry<Ptr>, functionAddress))
323 continue;
324 result.insert(r.referent.get<InputSection *>());
325 }
326 }
327 return result;
328 }
329
foldIdenticalSections()330 void macho::foldIdenticalSections() {
331 TimeTraceScope timeScope("Fold Identical Code Sections");
332 // The ICF equivalence-class segregation algorithm relies on pre-computed
333 // hashes of InputSection::data for the ConcatOutputSection::inputs and all
334 // sections referenced by their relocs. We could recursively traverse the
335 // relocs to find every referenced InputSection, but that precludes easy
336 // parallelization. Therefore, we hash every InputSection here where we have
337 // them all accessible as simple vectors.
338
339 // ICF can't fold functions with unwind info
340 DenseSet<const InputSection *> functionsWithUnwindInfo =
341 target->wordSize == 8 ? findFunctionsWithUnwindInfo<uint64_t>()
342 : findFunctionsWithUnwindInfo<uint32_t>();
343
344 // If an InputSection is ineligible for ICF, we give it a unique ID to force
345 // it into an unfoldable singleton equivalence class. Begin the unique-ID
346 // space at inputSections.size(), so that it will never intersect with
347 // equivalence-class IDs which begin at 0. Since hashes & unique IDs never
348 // coexist with equivalence-class IDs, this is not necessary, but might help
349 // someone keep the numbers straight in case we ever need to debug the
350 // ICF::segregate()
351 std::vector<ConcatInputSection *> hashable;
352 uint64_t icfUniqueID = inputSections.size();
353 for (ConcatInputSection *isec : inputSections) {
354 // FIXME: consider non-code __text sections as hashable?
355 bool isHashable = (isCodeSection(isec) || isCfStringSection(isec)) &&
356 !isec->shouldOmitFromOutput() &&
357 !functionsWithUnwindInfo.contains(isec) &&
358 isec->isHashableForICF();
359 if (isHashable)
360 hashable.push_back(isec);
361 else
362 isec->icfEqClass[0] = ++icfUniqueID;
363 }
364 parallelForEach(hashable,
365 [](ConcatInputSection *isec) { isec->hashForICF(); });
366 // Now that every input section is either hashed or marked as unique, run the
367 // segregation algorithm to detect foldable subsections.
368 ICF(hashable).run();
369 }
370