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Lang Hames11c8dfa52019-04-20 17:10:34 +00001//===--------- JITLinkGeneric.cpp - Generic JIT linker utilities ----------===//
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// Generic JITLinker utility class.
10//
11//===----------------------------------------------------------------------===//
12
13#include "JITLinkGeneric.h"
Lang Hames1233c152019-04-22 03:03:09 +000014#include "EHFrameSupportImpl.h"
Lang Hames11c8dfa52019-04-20 17:10:34 +000015
16#include "llvm/Support/BinaryStreamReader.h"
17#include "llvm/Support/MemoryBuffer.h"
18
19#define DEBUG_TYPE "jitlink"
20
21namespace llvm {
22namespace jitlink {
23
24JITLinkerBase::~JITLinkerBase() {}
25
26void JITLinkerBase::linkPhase1(std::unique_ptr<JITLinkerBase> Self) {
27
28 // Build the atom graph.
29 if (auto GraphOrErr = buildGraph(Ctx->getObjectBuffer()))
30 G = std::move(*GraphOrErr);
31 else
32 return Ctx->notifyFailed(GraphOrErr.takeError());
33 assert(G && "Graph should have been created by buildGraph above");
34
35 // Prune and optimize the graph.
36 if (auto Err = runPasses(Passes.PrePrunePasses, *G))
37 return Ctx->notifyFailed(std::move(Err));
38
39 LLVM_DEBUG({
40 dbgs() << "Atom graph \"" << G->getName() << "\" pre-pruning:\n";
41 dumpGraph(dbgs());
42 });
43
44 prune(*G);
45
46 LLVM_DEBUG({
47 dbgs() << "Atom graph \"" << G->getName() << "\" post-pruning:\n";
48 dumpGraph(dbgs());
49 });
50
51 // Run post-pruning passes.
52 if (auto Err = runPasses(Passes.PostPrunePasses, *G))
53 return Ctx->notifyFailed(std::move(Err));
54
55 // Sort atoms into segments.
56 layOutAtoms();
57
58 // Allocate memory for segments.
59 if (auto Err = allocateSegments(Layout))
60 return Ctx->notifyFailed(std::move(Err));
61
62 // Notify client that the defined atoms have been assigned addresses.
63 Ctx->notifyResolved(*G);
64
65 auto ExternalSymbols = getExternalSymbolNames();
66
67 // We're about to hand off ownership of ourself to the continuation. Grab a
68 // pointer to the context so that we can call it to initiate the lookup.
69 //
70 // FIXME: Once callee expressions are defined to be sequenced before argument
71 // expressions (c++17) we can simplify all this to:
72 //
73 // Ctx->lookup(std::move(UnresolvedExternals),
74 // [Self=std::move(Self)](Expected<AsyncLookupResult> Result) {
75 // Self->linkPhase2(std::move(Self), std::move(Result));
76 // });
77 //
78 // FIXME: Use move capture once we have c++14.
79 auto *TmpCtx = Ctx.get();
80 auto *UnownedSelf = Self.release();
81 auto Phase2Continuation =
82 [UnownedSelf](Expected<AsyncLookupResult> LookupResult) {
83 std::unique_ptr<JITLinkerBase> Self(UnownedSelf);
84 UnownedSelf->linkPhase2(std::move(Self), std::move(LookupResult));
85 };
86 TmpCtx->lookup(std::move(ExternalSymbols), std::move(Phase2Continuation));
87}
88
89void JITLinkerBase::linkPhase2(std::unique_ptr<JITLinkerBase> Self,
90 Expected<AsyncLookupResult> LR) {
91 // If the lookup failed, bail out.
92 if (!LR)
93 return Ctx->notifyFailed(LR.takeError());
94
95 // Assign addresses to external atoms.
96 applyLookupResult(*LR);
97
98 LLVM_DEBUG({
99 dbgs() << "Atom graph \"" << G->getName() << "\" before copy-and-fixup:\n";
100 dumpGraph(dbgs());
101 });
102
103 // Copy atom content to working memory and fix up.
104 if (auto Err = copyAndFixUpAllAtoms(Layout, *Alloc))
105 return Ctx->notifyFailed(std::move(Err));
106
107 LLVM_DEBUG({
108 dbgs() << "Atom graph \"" << G->getName() << "\" after copy-and-fixup:\n";
109 dumpGraph(dbgs());
110 });
111
112 if (auto Err = runPasses(Passes.PostFixupPasses, *G))
113 return Ctx->notifyFailed(std::move(Err));
114
115 // FIXME: Use move capture once we have c++14.
116 auto *UnownedSelf = Self.release();
117 auto Phase3Continuation = [UnownedSelf](Error Err) {
118 std::unique_ptr<JITLinkerBase> Self(UnownedSelf);
119 UnownedSelf->linkPhase3(std::move(Self), std::move(Err));
120 };
121
122 Alloc->finalizeAsync(std::move(Phase3Continuation));
123}
124
125void JITLinkerBase::linkPhase3(std::unique_ptr<JITLinkerBase> Self, Error Err) {
126 if (Err)
127 return Ctx->notifyFailed(std::move(Err));
128 Ctx->notifyFinalized(std::move(Alloc));
129}
130
131Error JITLinkerBase::runPasses(AtomGraphPassList &Passes, AtomGraph &G) {
132 for (auto &P : Passes)
133 if (auto Err = P(G))
134 return Err;
135 return Error::success();
136}
137
138void JITLinkerBase::layOutAtoms() {
139 // Group sections by protections, and whether or not they're zero-fill.
140 for (auto &S : G->sections()) {
141
142 // Skip empty sections.
143 if (S.atoms_empty())
144 continue;
145
146 auto &SL = Layout[S.getProtectionFlags()];
147 if (S.isZeroFill())
148 SL.ZeroFillSections.push_back(SegmentLayout::SectionLayout(S));
149 else
150 SL.ContentSections.push_back(SegmentLayout::SectionLayout(S));
151 }
152
153 // Sort sections within the layout by ordinal.
154 {
155 auto CompareByOrdinal = [](const SegmentLayout::SectionLayout &LHS,
156 const SegmentLayout::SectionLayout &RHS) {
157 return LHS.S->getSectionOrdinal() < RHS.S->getSectionOrdinal();
158 };
159 for (auto &KV : Layout) {
160 auto &SL = KV.second;
161 std::sort(SL.ContentSections.begin(), SL.ContentSections.end(),
162 CompareByOrdinal);
163 std::sort(SL.ZeroFillSections.begin(), SL.ZeroFillSections.end(),
164 CompareByOrdinal);
165 }
166 }
167
168 // Add atoms to the sections.
169 for (auto &KV : Layout) {
170 auto &SL = KV.second;
171 for (auto *SIList : {&SL.ContentSections, &SL.ZeroFillSections}) {
172 for (auto &SI : *SIList) {
173 std::vector<DefinedAtom *> LayoutHeads;
174 LayoutHeads.reserve(SI.S->atoms_size());
175
176 // First build the list of layout-heads (i.e. "heads" of layout-next
177 // chains).
178 DenseSet<DefinedAtom *> AlreadyLayedOut;
179 for (auto *DA : SI.S->atoms()) {
180 if (AlreadyLayedOut.count(DA))
181 continue;
182 LayoutHeads.push_back(DA);
183 while (DA->hasLayoutNext()) {
184 auto &Next = DA->getLayoutNext();
185 AlreadyLayedOut.insert(&Next);
186 DA = &Next;
187 }
188 }
189
190 // Now sort the list of layout heads by address.
191 std::sort(LayoutHeads.begin(), LayoutHeads.end(),
192 [](const DefinedAtom *LHS, const DefinedAtom *RHS) {
193 return LHS->getAddress() < RHS->getAddress();
194 });
195
196 // Now populate the SI.Atoms field by appending each of the chains.
197 for (auto *DA : LayoutHeads) {
198 SI.Atoms.push_back(DA);
199 while (DA->hasLayoutNext()) {
200 auto &Next = DA->getLayoutNext();
201 SI.Atoms.push_back(&Next);
202 DA = &Next;
203 }
204 }
205 }
206 }
207 }
208
209 LLVM_DEBUG({
210 dbgs() << "Segment ordering:\n";
211 for (auto &KV : Layout) {
212 dbgs() << " Segment "
213 << static_cast<sys::Memory::ProtectionFlags>(KV.first) << ":\n";
214 auto &SL = KV.second;
215 for (auto &SIEntry :
216 {std::make_pair(&SL.ContentSections, "content sections"),
217 std::make_pair(&SL.ZeroFillSections, "zero-fill sections")}) {
218 auto &SIList = *SIEntry.first;
219 dbgs() << " " << SIEntry.second << ":\n";
220 for (auto &SI : SIList) {
221 dbgs() << " " << SI.S->getName() << ":\n";
222 for (auto *DA : SI.Atoms)
223 dbgs() << " " << *DA << "\n";
224 }
225 }
226 }
227 });
228}
229
230Error JITLinkerBase::allocateSegments(const SegmentLayoutMap &Layout) {
231
232 // Compute segment sizes and allocate memory.
233 LLVM_DEBUG(dbgs() << "JIT linker requesting: { ");
234 JITLinkMemoryManager::SegmentsRequestMap Segments;
235 for (auto &KV : Layout) {
236 auto &Prot = KV.first;
237 auto &SegLayout = KV.second;
238
239 // Calculate segment content size.
240 size_t SegContentSize = 0;
241 for (auto &SI : SegLayout.ContentSections) {
242 assert(!SI.S->atoms_empty() && "Sections in layout must not be empty");
243 assert(!SI.Atoms.empty() && "Section layouts must not be empty");
244 for (auto *DA : SI.Atoms) {
245 SegContentSize = alignTo(SegContentSize, DA->getAlignment());
246 SegContentSize += DA->getSize();
247 }
248 }
249
250 // Get segment content alignment.
251 unsigned SegContentAlign = 1;
252 if (!SegLayout.ContentSections.empty())
253 SegContentAlign =
254 SegLayout.ContentSections.front().Atoms.front()->getAlignment();
255
256 // Calculate segment zero-fill size.
257 uint64_t SegZeroFillSize = 0;
258 for (auto &SI : SegLayout.ZeroFillSections) {
259 assert(!SI.S->atoms_empty() && "Sections in layout must not be empty");
260 assert(!SI.Atoms.empty() && "Section layouts must not be empty");
261 for (auto *DA : SI.Atoms) {
262 SegZeroFillSize = alignTo(SegZeroFillSize, DA->getAlignment());
263 SegZeroFillSize += DA->getSize();
264 }
265 }
266
267 // Calculate segment zero-fill alignment.
268 uint32_t SegZeroFillAlign = 1;
269 if (!SegLayout.ZeroFillSections.empty())
270 SegZeroFillAlign =
271 SegLayout.ZeroFillSections.front().Atoms.front()->getAlignment();
272
273 if (SegContentSize == 0)
274 SegContentAlign = SegZeroFillAlign;
275
276 if (SegContentAlign % SegZeroFillAlign != 0)
277 return make_error<JITLinkError>("First content atom alignment does not "
278 "accommodate first zero-fill atom "
279 "alignment");
280
281 Segments[Prot] = {SegContentSize, SegContentAlign, SegZeroFillSize,
282 SegZeroFillAlign};
283
284 LLVM_DEBUG({
285 dbgs() << (&KV == &*Layout.begin() ? "" : "; ")
286 << static_cast<sys::Memory::ProtectionFlags>(Prot) << ": "
287 << SegContentSize << " content bytes (alignment "
288 << SegContentAlign << ") + " << SegZeroFillSize
289 << " zero-fill bytes (alignment " << SegZeroFillAlign << ")";
290 });
291 }
292 LLVM_DEBUG(dbgs() << " }\n");
293
294 if (auto AllocOrErr = Ctx->getMemoryManager().allocate(Segments))
295 Alloc = std::move(*AllocOrErr);
296 else
297 return AllocOrErr.takeError();
298
299 LLVM_DEBUG({
300 dbgs() << "JIT linker got working memory:\n";
301 for (auto &KV : Layout) {
302 auto Prot = static_cast<sys::Memory::ProtectionFlags>(KV.first);
303 dbgs() << " " << Prot << ": "
304 << (const void *)Alloc->getWorkingMemory(Prot).data() << "\n";
305 }
306 });
307
308 // Update atom target addresses.
309 for (auto &KV : Layout) {
310 auto &Prot = KV.first;
311 auto &SL = KV.second;
312
313 JITTargetAddress AtomTargetAddr =
314 Alloc->getTargetMemory(static_cast<sys::Memory::ProtectionFlags>(Prot));
315
316 for (auto *SIList : {&SL.ContentSections, &SL.ZeroFillSections})
317 for (auto &SI : *SIList)
318 for (auto *DA : SI.Atoms) {
319 AtomTargetAddr = alignTo(AtomTargetAddr, DA->getAlignment());
320 DA->setAddress(AtomTargetAddr);
321 AtomTargetAddr += DA->getSize();
322 }
323 }
324
325 return Error::success();
326}
327
328DenseSet<StringRef> JITLinkerBase::getExternalSymbolNames() const {
329 // Identify unresolved external atoms.
330 DenseSet<StringRef> UnresolvedExternals;
331 for (auto *DA : G->external_atoms()) {
332 assert(DA->getAddress() == 0 &&
333 "External has already been assigned an address");
334 assert(DA->getName() != StringRef() && DA->getName() != "" &&
335 "Externals must be named");
336 UnresolvedExternals.insert(DA->getName());
337 }
338 return UnresolvedExternals;
339}
340
341void JITLinkerBase::applyLookupResult(AsyncLookupResult Result) {
342 for (auto &KV : Result) {
343 Atom &A = G->getAtomByName(KV.first);
344 assert(A.getAddress() == 0 && "Atom already resolved");
345 A.setAddress(KV.second.getAddress());
346 }
347
Lang Hamesd407b4b2019-04-30 21:28:07 +0000348 LLVM_DEBUG({
349 dbgs() << "Externals after applying lookup result:\n";
350 for (auto *A : G->external_atoms())
351 dbgs() << " " << A->getName() << ": "
352 << formatv("{0:x16}", A->getAddress()) << "\n";
353 });
Lang Hames11c8dfa52019-04-20 17:10:34 +0000354 assert(llvm::all_of(G->external_atoms(),
355 [](Atom *A) { return A->getAddress() != 0; }) &&
356 "All atoms should have been resolved by this point");
357}
358
359void JITLinkerBase::dumpGraph(raw_ostream &OS) {
360 assert(G && "Graph is not set yet");
361 G->dump(dbgs(), [this](Edge::Kind K) { return getEdgeKindName(K); });
362}
363
364void prune(AtomGraph &G) {
365 std::vector<DefinedAtom *> Worklist;
366 DenseMap<DefinedAtom *, std::vector<Edge *>> EdgesToUpdate;
367
368 // Build the initial worklist from all atoms initially live.
369 for (auto *DA : G.defined_atoms()) {
370 if (!DA->isLive() || DA->shouldDiscard())
371 continue;
372
373 for (auto &E : DA->edges()) {
374 if (!E.getTarget().isDefined())
375 continue;
376
377 auto &EDT = static_cast<DefinedAtom &>(E.getTarget());
378
379 if (EDT.shouldDiscard())
380 EdgesToUpdate[&EDT].push_back(&E);
381 else if (E.isKeepAlive() && !EDT.isLive())
382 Worklist.push_back(&EDT);
383 }
384 }
385
386 // Propagate live flags to all atoms reachable from the initial live set.
387 while (!Worklist.empty()) {
388 DefinedAtom &NextLive = *Worklist.back();
389 Worklist.pop_back();
390
391 assert(!NextLive.shouldDiscard() &&
392 "should-discard nodes should never make it into the worklist");
393
394 // If this atom has already been marked as live, or is marked to be
395 // discarded, then skip it.
396 if (NextLive.isLive())
397 continue;
398
399 // Otherwise set it as live and add any non-live atoms that it points to
400 // to the worklist.
401 NextLive.setLive(true);
402
403 for (auto &E : NextLive.edges()) {
404 if (!E.getTarget().isDefined())
405 continue;
406
407 auto &EDT = static_cast<DefinedAtom &>(E.getTarget());
408
409 if (EDT.shouldDiscard())
410 EdgesToUpdate[&EDT].push_back(&E);
411 else if (E.isKeepAlive() && !EDT.isLive())
412 Worklist.push_back(&EDT);
413 }
414 }
415
416 // Collect atoms to remove, then remove them from the graph.
417 std::vector<DefinedAtom *> AtomsToRemove;
418 for (auto *DA : G.defined_atoms())
419 if (DA->shouldDiscard() || !DA->isLive())
420 AtomsToRemove.push_back(DA);
421
422 LLVM_DEBUG(dbgs() << "Pruning atoms:\n");
423 for (auto *DA : AtomsToRemove) {
424 LLVM_DEBUG(dbgs() << " " << *DA << "... ");
425
426 // Check whether we need to replace this atom with an external atom.
427 //
428 // We replace if all of the following hold:
429 // (1) The atom is marked should-discard,
430 // (2) it is live, and
431 // (3) it has edges pointing to it.
432 //
433 // Otherwise we simply delete the atom.
434 bool ReplaceWithExternal = DA->isLive() && DA->shouldDiscard();
435 std::vector<Edge *> *EdgesToUpdateForDA = nullptr;
436 if (ReplaceWithExternal) {
437 auto ETUItr = EdgesToUpdate.find(DA);
438 if (ETUItr == EdgesToUpdate.end())
439 ReplaceWithExternal = false;
440 else
441 EdgesToUpdateForDA = &ETUItr->second;
442 }
443
444 G.removeDefinedAtom(*DA);
445
446 if (ReplaceWithExternal) {
447 assert(EdgesToUpdateForDA &&
448 "Replacing atom: There should be edges to update");
449
450 auto &ExternalReplacement = G.addExternalAtom(DA->getName());
451 for (auto *EdgeToUpdate : *EdgesToUpdateForDA)
452 EdgeToUpdate->setTarget(ExternalReplacement);
453 LLVM_DEBUG(dbgs() << "replaced with " << ExternalReplacement << "\n");
454 } else
455 LLVM_DEBUG(dbgs() << "deleted\n");
456 }
457
458 // Finally, discard any absolute symbols that were marked should-discard.
459 {
460 std::vector<Atom *> AbsoluteAtomsToRemove;
461 for (auto *A : G.absolute_atoms())
462 if (A->shouldDiscard() || A->isLive())
463 AbsoluteAtomsToRemove.push_back(A);
464 for (auto *A : AbsoluteAtomsToRemove)
465 G.removeAbsoluteAtom(*A);
466 }
467}
468
469} // end namespace jitlink
470} // end namespace llvm