xref: /llvm-project-15.0.7/llvm/lib/MC/MCExpr.cpp (revision ff9e596b)
1 //===- MCExpr.cpp - Assembly Level Expression Implementation --------------===//
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 "llvm/MC/MCExpr.h"
10 #include "llvm/ADT/Statistic.h"
11 #include "llvm/ADT/StringSwitch.h"
12 #include "llvm/Config/llvm-config.h"
13 #include "llvm/MC/MCAsmBackend.h"
14 #include "llvm/MC/MCAsmInfo.h"
15 #include "llvm/MC/MCAsmLayout.h"
16 #include "llvm/MC/MCAssembler.h"
17 #include "llvm/MC/MCContext.h"
18 #include "llvm/MC/MCObjectWriter.h"
19 #include "llvm/MC/MCSymbol.h"
20 #include "llvm/MC/MCValue.h"
21 #include "llvm/Support/Casting.h"
22 #include "llvm/Support/Compiler.h"
23 #include "llvm/Support/Debug.h"
24 #include "llvm/Support/ErrorHandling.h"
25 #include "llvm/Support/raw_ostream.h"
26 #include <cassert>
27 #include <cstdint>
28 
29 using namespace llvm;
30 
31 #define DEBUG_TYPE "mcexpr"
32 
33 namespace {
34 namespace stats {
35 
36 STATISTIC(MCExprEvaluate, "Number of MCExpr evaluations");
37 
38 } // end namespace stats
39 } // end anonymous namespace
40 
41 void MCExpr::print(raw_ostream &OS, const MCAsmInfo *MAI, bool InParens) const {
42   switch (getKind()) {
43   case MCExpr::Target:
44     return cast<MCTargetExpr>(this)->printImpl(OS, MAI);
45   case MCExpr::Constant: {
46     auto Value = cast<MCConstantExpr>(*this).getValue();
47     auto PrintInHex = cast<MCConstantExpr>(*this).useHexFormat();
48     auto SizeInBytes = cast<MCConstantExpr>(*this).getSizeInBytes();
49     if (Value < 0 && MAI && !MAI->supportsSignedData())
50       PrintInHex = true;
51     if (PrintInHex)
52       switch (SizeInBytes) {
53       default:
54         OS << "0x" << Twine::utohexstr(Value);
55         break;
56       case 1:
57         OS << format("0x%02" PRIx64, Value);
58         break;
59       case 2:
60         OS << format("0x%04" PRIx64, Value);
61         break;
62       case 4:
63         OS << format("0x%08" PRIx64, Value);
64         break;
65       case 8:
66         OS << format("0x%016" PRIx64, Value);
67         break;
68       }
69     else
70       OS << Value;
71     return;
72   }
73   case MCExpr::SymbolRef: {
74     const MCSymbolRefExpr &SRE = cast<MCSymbolRefExpr>(*this);
75     const MCSymbol &Sym = SRE.getSymbol();
76     // Parenthesize names that start with $ so that they don't look like
77     // absolute names.
78     bool UseParens =
79         !InParens && !Sym.getName().empty() && Sym.getName()[0] == '$';
80     if (UseParens) {
81       OS << '(';
82       Sym.print(OS, MAI);
83       OS << ')';
84     } else
85       Sym.print(OS, MAI);
86 
87     const MCSymbolRefExpr::VariantKind Kind = SRE.getKind();
88     if (Kind != MCSymbolRefExpr::VK_None) {
89       if (MAI && MAI->useParensForSymbolVariant()) // ARM
90         OS << '(' << MCSymbolRefExpr::getVariantKindName(Kind) << ')';
91       else
92         OS << '@' << MCSymbolRefExpr::getVariantKindName(Kind);
93     }
94 
95     return;
96   }
97 
98   case MCExpr::Unary: {
99     const MCUnaryExpr &UE = cast<MCUnaryExpr>(*this);
100     switch (UE.getOpcode()) {
101     case MCUnaryExpr::LNot:  OS << '!'; break;
102     case MCUnaryExpr::Minus: OS << '-'; break;
103     case MCUnaryExpr::Not:   OS << '~'; break;
104     case MCUnaryExpr::Plus:  OS << '+'; break;
105     }
106     bool Binary = UE.getSubExpr()->getKind() == MCExpr::Binary;
107     if (Binary) OS << "(";
108     UE.getSubExpr()->print(OS, MAI);
109     if (Binary) OS << ")";
110     return;
111   }
112 
113   case MCExpr::Binary: {
114     const MCBinaryExpr &BE = cast<MCBinaryExpr>(*this);
115 
116     // Only print parens around the LHS if it is non-trivial.
117     if (isa<MCConstantExpr>(BE.getLHS()) || isa<MCSymbolRefExpr>(BE.getLHS())) {
118       BE.getLHS()->print(OS, MAI);
119     } else {
120       OS << '(';
121       BE.getLHS()->print(OS, MAI);
122       OS << ')';
123     }
124 
125     switch (BE.getOpcode()) {
126     case MCBinaryExpr::Add:
127       // Print "X-42" instead of "X+-42".
128       if (const MCConstantExpr *RHSC = dyn_cast<MCConstantExpr>(BE.getRHS())) {
129         if (RHSC->getValue() < 0) {
130           OS << RHSC->getValue();
131           return;
132         }
133       }
134 
135       OS <<  '+';
136       break;
137     case MCBinaryExpr::AShr: OS << ">>"; break;
138     case MCBinaryExpr::And:  OS <<  '&'; break;
139     case MCBinaryExpr::Div:  OS <<  '/'; break;
140     case MCBinaryExpr::EQ:   OS << "=="; break;
141     case MCBinaryExpr::GT:   OS <<  '>'; break;
142     case MCBinaryExpr::GTE:  OS << ">="; break;
143     case MCBinaryExpr::LAnd: OS << "&&"; break;
144     case MCBinaryExpr::LOr:  OS << "||"; break;
145     case MCBinaryExpr::LShr: OS << ">>"; break;
146     case MCBinaryExpr::LT:   OS <<  '<'; break;
147     case MCBinaryExpr::LTE:  OS << "<="; break;
148     case MCBinaryExpr::Mod:  OS <<  '%'; break;
149     case MCBinaryExpr::Mul:  OS <<  '*'; break;
150     case MCBinaryExpr::NE:   OS << "!="; break;
151     case MCBinaryExpr::Or:   OS <<  '|'; break;
152     case MCBinaryExpr::OrNot: OS << '!'; break;
153     case MCBinaryExpr::Shl:  OS << "<<"; break;
154     case MCBinaryExpr::Sub:  OS <<  '-'; break;
155     case MCBinaryExpr::Xor:  OS <<  '^'; break;
156     }
157 
158     // Only print parens around the LHS if it is non-trivial.
159     if (isa<MCConstantExpr>(BE.getRHS()) || isa<MCSymbolRefExpr>(BE.getRHS())) {
160       BE.getRHS()->print(OS, MAI);
161     } else {
162       OS << '(';
163       BE.getRHS()->print(OS, MAI);
164       OS << ')';
165     }
166     return;
167   }
168   }
169 
170   llvm_unreachable("Invalid expression kind!");
171 }
172 
173 #if !defined(NDEBUG) || defined(LLVM_ENABLE_DUMP)
174 LLVM_DUMP_METHOD void MCExpr::dump() const {
175   dbgs() << *this;
176   dbgs() << '\n';
177 }
178 #endif
179 
180 /* *** */
181 
182 const MCBinaryExpr *MCBinaryExpr::create(Opcode Opc, const MCExpr *LHS,
183                                          const MCExpr *RHS, MCContext &Ctx,
184                                          SMLoc Loc) {
185   return new (Ctx) MCBinaryExpr(Opc, LHS, RHS, Loc);
186 }
187 
188 const MCUnaryExpr *MCUnaryExpr::create(Opcode Opc, const MCExpr *Expr,
189                                        MCContext &Ctx, SMLoc Loc) {
190   return new (Ctx) MCUnaryExpr(Opc, Expr, Loc);
191 }
192 
193 const MCConstantExpr *MCConstantExpr::create(int64_t Value, MCContext &Ctx,
194                                              bool PrintInHex,
195                                              unsigned SizeInBytes) {
196   return new (Ctx) MCConstantExpr(Value, PrintInHex, SizeInBytes);
197 }
198 
199 /* *** */
200 
201 MCSymbolRefExpr::MCSymbolRefExpr(const MCSymbol *Symbol, VariantKind Kind,
202                                  const MCAsmInfo *MAI, SMLoc Loc)
203     : MCExpr(MCExpr::SymbolRef, Loc,
204              encodeSubclassData(Kind, MAI->hasSubsectionsViaSymbols())),
205       Symbol(Symbol) {
206   assert(Symbol);
207 }
208 
209 const MCSymbolRefExpr *MCSymbolRefExpr::create(const MCSymbol *Sym,
210                                                VariantKind Kind,
211                                                MCContext &Ctx, SMLoc Loc) {
212   return new (Ctx) MCSymbolRefExpr(Sym, Kind, Ctx.getAsmInfo(), Loc);
213 }
214 
215 const MCSymbolRefExpr *MCSymbolRefExpr::create(StringRef Name, VariantKind Kind,
216                                                MCContext &Ctx) {
217   return create(Ctx.getOrCreateSymbol(Name), Kind, Ctx);
218 }
219 
220 StringRef MCSymbolRefExpr::getVariantKindName(VariantKind Kind) {
221   switch (Kind) {
222   case VK_Invalid: return "<<invalid>>";
223   case VK_None: return "<<none>>";
224 
225   case VK_DTPOFF: return "DTPOFF";
226   case VK_DTPREL: return "DTPREL";
227   case VK_GOT: return "GOT";
228   case VK_GOTOFF: return "GOTOFF";
229   case VK_GOTREL: return "GOTREL";
230   case VK_PCREL: return "PCREL";
231   case VK_GOTPCREL: return "GOTPCREL";
232   case VK_GOTPCREL_NORELAX: return "GOTPCREL_NORELAX";
233   case VK_GOTTPOFF: return "GOTTPOFF";
234   case VK_INDNTPOFF: return "INDNTPOFF";
235   case VK_NTPOFF: return "NTPOFF";
236   case VK_GOTNTPOFF: return "GOTNTPOFF";
237   case VK_PLT: return "PLT";
238   case VK_TLSGD: return "TLSGD";
239   case VK_TLSLD: return "TLSLD";
240   case VK_TLSLDM: return "TLSLDM";
241   case VK_TPOFF: return "TPOFF";
242   case VK_TPREL: return "TPREL";
243   case VK_TLSCALL: return "tlscall";
244   case VK_TLSDESC: return "tlsdesc";
245   case VK_TLVP: return "TLVP";
246   case VK_TLVPPAGE: return "TLVPPAGE";
247   case VK_TLVPPAGEOFF: return "TLVPPAGEOFF";
248   case VK_PAGE: return "PAGE";
249   case VK_PAGEOFF: return "PAGEOFF";
250   case VK_GOTPAGE: return "GOTPAGE";
251   case VK_GOTPAGEOFF: return "GOTPAGEOFF";
252   case VK_SECREL: return "SECREL32";
253   case VK_SIZE: return "SIZE";
254   case VK_WEAKREF: return "WEAKREF";
255   case VK_X86_ABS8: return "ABS8";
256   case VK_X86_PLTOFF: return "PLTOFF";
257   case VK_ARM_NONE: return "none";
258   case VK_ARM_GOT_PREL: return "GOT_PREL";
259   case VK_ARM_TARGET1: return "target1";
260   case VK_ARM_TARGET2: return "target2";
261   case VK_ARM_PREL31: return "prel31";
262   case VK_ARM_SBREL: return "sbrel";
263   case VK_ARM_TLSLDO: return "tlsldo";
264   case VK_ARM_TLSDESCSEQ: return "tlsdescseq";
265   case VK_AVR_NONE: return "none";
266   case VK_AVR_LO8: return "lo8";
267   case VK_AVR_HI8: return "hi8";
268   case VK_AVR_HLO8: return "hlo8";
269   case VK_AVR_DIFF8: return "diff8";
270   case VK_AVR_DIFF16: return "diff16";
271   case VK_AVR_DIFF32: return "diff32";
272   case VK_AVR_PM: return "pm";
273   case VK_PPC_LO: return "l";
274   case VK_PPC_HI: return "h";
275   case VK_PPC_HA: return "ha";
276   case VK_PPC_HIGH: return "high";
277   case VK_PPC_HIGHA: return "higha";
278   case VK_PPC_HIGHER: return "higher";
279   case VK_PPC_HIGHERA: return "highera";
280   case VK_PPC_HIGHEST: return "highest";
281   case VK_PPC_HIGHESTA: return "highesta";
282   case VK_PPC_GOT_LO: return "got@l";
283   case VK_PPC_GOT_HI: return "got@h";
284   case VK_PPC_GOT_HA: return "got@ha";
285   case VK_PPC_TOCBASE: return "tocbase";
286   case VK_PPC_TOC: return "toc";
287   case VK_PPC_TOC_LO: return "toc@l";
288   case VK_PPC_TOC_HI: return "toc@h";
289   case VK_PPC_TOC_HA: return "toc@ha";
290   case VK_PPC_U: return "u";
291   case VK_PPC_L: return "l";
292   case VK_PPC_DTPMOD: return "dtpmod";
293   case VK_PPC_TPREL_LO: return "tprel@l";
294   case VK_PPC_TPREL_HI: return "tprel@h";
295   case VK_PPC_TPREL_HA: return "tprel@ha";
296   case VK_PPC_TPREL_HIGH: return "tprel@high";
297   case VK_PPC_TPREL_HIGHA: return "tprel@higha";
298   case VK_PPC_TPREL_HIGHER: return "tprel@higher";
299   case VK_PPC_TPREL_HIGHERA: return "tprel@highera";
300   case VK_PPC_TPREL_HIGHEST: return "tprel@highest";
301   case VK_PPC_TPREL_HIGHESTA: return "tprel@highesta";
302   case VK_PPC_DTPREL_LO: return "dtprel@l";
303   case VK_PPC_DTPREL_HI: return "dtprel@h";
304   case VK_PPC_DTPREL_HA: return "dtprel@ha";
305   case VK_PPC_DTPREL_HIGH: return "dtprel@high";
306   case VK_PPC_DTPREL_HIGHA: return "dtprel@higha";
307   case VK_PPC_DTPREL_HIGHER: return "dtprel@higher";
308   case VK_PPC_DTPREL_HIGHERA: return "dtprel@highera";
309   case VK_PPC_DTPREL_HIGHEST: return "dtprel@highest";
310   case VK_PPC_DTPREL_HIGHESTA: return "dtprel@highesta";
311   case VK_PPC_GOT_TPREL: return "got@tprel";
312   case VK_PPC_GOT_TPREL_LO: return "got@tprel@l";
313   case VK_PPC_GOT_TPREL_HI: return "got@tprel@h";
314   case VK_PPC_GOT_TPREL_HA: return "got@tprel@ha";
315   case VK_PPC_GOT_DTPREL: return "got@dtprel";
316   case VK_PPC_GOT_DTPREL_LO: return "got@dtprel@l";
317   case VK_PPC_GOT_DTPREL_HI: return "got@dtprel@h";
318   case VK_PPC_GOT_DTPREL_HA: return "got@dtprel@ha";
319   case VK_PPC_TLS: return "tls";
320   case VK_PPC_GOT_TLSGD: return "got@tlsgd";
321   case VK_PPC_GOT_TLSGD_LO: return "got@tlsgd@l";
322   case VK_PPC_GOT_TLSGD_HI: return "got@tlsgd@h";
323   case VK_PPC_GOT_TLSGD_HA: return "got@tlsgd@ha";
324   case VK_PPC_TLSGD: return "tlsgd";
325   case VK_PPC_AIX_TLSGD:
326     return "gd";
327   case VK_PPC_AIX_TLSGDM:
328     return "m";
329   case VK_PPC_GOT_TLSLD: return "got@tlsld";
330   case VK_PPC_GOT_TLSLD_LO: return "got@tlsld@l";
331   case VK_PPC_GOT_TLSLD_HI: return "got@tlsld@h";
332   case VK_PPC_GOT_TLSLD_HA: return "got@tlsld@ha";
333   case VK_PPC_GOT_PCREL:
334     return "got@pcrel";
335   case VK_PPC_GOT_TLSGD_PCREL:
336     return "got@tlsgd@pcrel";
337   case VK_PPC_GOT_TLSLD_PCREL:
338     return "got@tlsld@pcrel";
339   case VK_PPC_GOT_TPREL_PCREL:
340     return "got@tprel@pcrel";
341   case VK_PPC_TLS_PCREL:
342     return "tls@pcrel";
343   case VK_PPC_TLSLD: return "tlsld";
344   case VK_PPC_LOCAL: return "local";
345   case VK_PPC_NOTOC: return "notoc";
346   case VK_PPC_PCREL_OPT: return "<<invalid>>";
347   case VK_COFF_IMGREL32: return "IMGREL";
348   case VK_Hexagon_LO16: return "LO16";
349   case VK_Hexagon_HI16: return "HI16";
350   case VK_Hexagon_GPREL: return "GPREL";
351   case VK_Hexagon_GD_GOT: return "GDGOT";
352   case VK_Hexagon_LD_GOT: return "LDGOT";
353   case VK_Hexagon_GD_PLT: return "GDPLT";
354   case VK_Hexagon_LD_PLT: return "LDPLT";
355   case VK_Hexagon_IE: return "IE";
356   case VK_Hexagon_IE_GOT: return "IEGOT";
357   case VK_WASM_TYPEINDEX: return "TYPEINDEX";
358   case VK_WASM_MBREL: return "MBREL";
359   case VK_WASM_TLSREL: return "TLSREL";
360   case VK_WASM_TBREL: return "TBREL";
361   case VK_WASM_GOT_TLS: return "GOT@TLS";
362   case VK_AMDGPU_GOTPCREL32_LO: return "gotpcrel32@lo";
363   case VK_AMDGPU_GOTPCREL32_HI: return "gotpcrel32@hi";
364   case VK_AMDGPU_REL32_LO: return "rel32@lo";
365   case VK_AMDGPU_REL32_HI: return "rel32@hi";
366   case VK_AMDGPU_REL64: return "rel64";
367   case VK_AMDGPU_ABS32_LO: return "abs32@lo";
368   case VK_AMDGPU_ABS32_HI: return "abs32@hi";
369   case VK_VE_HI32: return "hi";
370   case VK_VE_LO32: return "lo";
371   case VK_VE_PC_HI32: return "pc_hi";
372   case VK_VE_PC_LO32: return "pc_lo";
373   case VK_VE_GOT_HI32: return "got_hi";
374   case VK_VE_GOT_LO32: return "got_lo";
375   case VK_VE_GOTOFF_HI32: return "gotoff_hi";
376   case VK_VE_GOTOFF_LO32: return "gotoff_lo";
377   case VK_VE_PLT_HI32: return "plt_hi";
378   case VK_VE_PLT_LO32: return "plt_lo";
379   case VK_VE_TLS_GD_HI32: return "tls_gd_hi";
380   case VK_VE_TLS_GD_LO32: return "tls_gd_lo";
381   case VK_VE_TPOFF_HI32: return "tpoff_hi";
382   case VK_VE_TPOFF_LO32: return "tpoff_lo";
383   }
384   llvm_unreachable("Invalid variant kind");
385 }
386 
387 MCSymbolRefExpr::VariantKind
388 MCSymbolRefExpr::getVariantKindForName(StringRef Name) {
389   return StringSwitch<VariantKind>(Name.lower())
390     .Case("dtprel", VK_DTPREL)
391     .Case("dtpoff", VK_DTPOFF)
392     .Case("got", VK_GOT)
393     .Case("gotoff", VK_GOTOFF)
394     .Case("gotrel", VK_GOTREL)
395     .Case("pcrel", VK_PCREL)
396     .Case("gotpcrel", VK_GOTPCREL)
397     .Case("gotpcrel_norelax", VK_GOTPCREL_NORELAX)
398     .Case("gottpoff", VK_GOTTPOFF)
399     .Case("indntpoff", VK_INDNTPOFF)
400     .Case("ntpoff", VK_NTPOFF)
401     .Case("gotntpoff", VK_GOTNTPOFF)
402     .Case("plt", VK_PLT)
403     .Case("tlscall", VK_TLSCALL)
404     .Case("tlsdesc", VK_TLSDESC)
405     .Case("tlsgd", VK_TLSGD)
406     .Case("tlsld", VK_TLSLD)
407     .Case("tlsldm", VK_TLSLDM)
408     .Case("tpoff", VK_TPOFF)
409     .Case("tprel", VK_TPREL)
410     .Case("tlvp", VK_TLVP)
411     .Case("tlvppage", VK_TLVPPAGE)
412     .Case("tlvppageoff", VK_TLVPPAGEOFF)
413     .Case("page", VK_PAGE)
414     .Case("pageoff", VK_PAGEOFF)
415     .Case("gotpage", VK_GOTPAGE)
416     .Case("gotpageoff", VK_GOTPAGEOFF)
417     .Case("imgrel", VK_COFF_IMGREL32)
418     .Case("secrel32", VK_SECREL)
419     .Case("size", VK_SIZE)
420     .Case("abs8", VK_X86_ABS8)
421     .Case("pltoff", VK_X86_PLTOFF)
422     .Case("l", VK_PPC_LO)
423     .Case("h", VK_PPC_HI)
424     .Case("ha", VK_PPC_HA)
425     .Case("high", VK_PPC_HIGH)
426     .Case("higha", VK_PPC_HIGHA)
427     .Case("higher", VK_PPC_HIGHER)
428     .Case("highera", VK_PPC_HIGHERA)
429     .Case("highest", VK_PPC_HIGHEST)
430     .Case("highesta", VK_PPC_HIGHESTA)
431     .Case("got@l", VK_PPC_GOT_LO)
432     .Case("got@h", VK_PPC_GOT_HI)
433     .Case("got@ha", VK_PPC_GOT_HA)
434     .Case("local", VK_PPC_LOCAL)
435     .Case("tocbase", VK_PPC_TOCBASE)
436     .Case("toc", VK_PPC_TOC)
437     .Case("toc@l", VK_PPC_TOC_LO)
438     .Case("toc@h", VK_PPC_TOC_HI)
439     .Case("toc@ha", VK_PPC_TOC_HA)
440     .Case("u", VK_PPC_U)
441     .Case("l", VK_PPC_L)
442     .Case("tls", VK_PPC_TLS)
443     .Case("dtpmod", VK_PPC_DTPMOD)
444     .Case("tprel@l", VK_PPC_TPREL_LO)
445     .Case("tprel@h", VK_PPC_TPREL_HI)
446     .Case("tprel@ha", VK_PPC_TPREL_HA)
447     .Case("tprel@high", VK_PPC_TPREL_HIGH)
448     .Case("tprel@higha", VK_PPC_TPREL_HIGHA)
449     .Case("tprel@higher", VK_PPC_TPREL_HIGHER)
450     .Case("tprel@highera", VK_PPC_TPREL_HIGHERA)
451     .Case("tprel@highest", VK_PPC_TPREL_HIGHEST)
452     .Case("tprel@highesta", VK_PPC_TPREL_HIGHESTA)
453     .Case("dtprel@l", VK_PPC_DTPREL_LO)
454     .Case("dtprel@h", VK_PPC_DTPREL_HI)
455     .Case("dtprel@ha", VK_PPC_DTPREL_HA)
456     .Case("dtprel@high", VK_PPC_DTPREL_HIGH)
457     .Case("dtprel@higha", VK_PPC_DTPREL_HIGHA)
458     .Case("dtprel@higher", VK_PPC_DTPREL_HIGHER)
459     .Case("dtprel@highera", VK_PPC_DTPREL_HIGHERA)
460     .Case("dtprel@highest", VK_PPC_DTPREL_HIGHEST)
461     .Case("dtprel@highesta", VK_PPC_DTPREL_HIGHESTA)
462     .Case("got@tprel", VK_PPC_GOT_TPREL)
463     .Case("got@tprel@l", VK_PPC_GOT_TPREL_LO)
464     .Case("got@tprel@h", VK_PPC_GOT_TPREL_HI)
465     .Case("got@tprel@ha", VK_PPC_GOT_TPREL_HA)
466     .Case("got@dtprel", VK_PPC_GOT_DTPREL)
467     .Case("got@dtprel@l", VK_PPC_GOT_DTPREL_LO)
468     .Case("got@dtprel@h", VK_PPC_GOT_DTPREL_HI)
469     .Case("got@dtprel@ha", VK_PPC_GOT_DTPREL_HA)
470     .Case("got@tlsgd", VK_PPC_GOT_TLSGD)
471     .Case("got@tlsgd@l", VK_PPC_GOT_TLSGD_LO)
472     .Case("got@tlsgd@h", VK_PPC_GOT_TLSGD_HI)
473     .Case("got@tlsgd@ha", VK_PPC_GOT_TLSGD_HA)
474     .Case("got@tlsld", VK_PPC_GOT_TLSLD)
475     .Case("got@tlsld@l", VK_PPC_GOT_TLSLD_LO)
476     .Case("got@tlsld@h", VK_PPC_GOT_TLSLD_HI)
477     .Case("got@tlsld@ha", VK_PPC_GOT_TLSLD_HA)
478     .Case("got@pcrel", VK_PPC_GOT_PCREL)
479     .Case("got@tlsgd@pcrel", VK_PPC_GOT_TLSGD_PCREL)
480     .Case("got@tlsld@pcrel", VK_PPC_GOT_TLSLD_PCREL)
481     .Case("got@tprel@pcrel", VK_PPC_GOT_TPREL_PCREL)
482     .Case("tls@pcrel", VK_PPC_TLS_PCREL)
483     .Case("notoc", VK_PPC_NOTOC)
484     .Case("gdgot", VK_Hexagon_GD_GOT)
485     .Case("gdplt", VK_Hexagon_GD_PLT)
486     .Case("iegot", VK_Hexagon_IE_GOT)
487     .Case("ie", VK_Hexagon_IE)
488     .Case("ldgot", VK_Hexagon_LD_GOT)
489     .Case("ldplt", VK_Hexagon_LD_PLT)
490     .Case("none", VK_ARM_NONE)
491     .Case("got_prel", VK_ARM_GOT_PREL)
492     .Case("target1", VK_ARM_TARGET1)
493     .Case("target2", VK_ARM_TARGET2)
494     .Case("prel31", VK_ARM_PREL31)
495     .Case("sbrel", VK_ARM_SBREL)
496     .Case("tlsldo", VK_ARM_TLSLDO)
497     .Case("lo8", VK_AVR_LO8)
498     .Case("hi8", VK_AVR_HI8)
499     .Case("hlo8", VK_AVR_HLO8)
500     .Case("typeindex", VK_WASM_TYPEINDEX)
501     .Case("tbrel", VK_WASM_TBREL)
502     .Case("mbrel", VK_WASM_MBREL)
503     .Case("tlsrel", VK_WASM_TLSREL)
504     .Case("got@tls", VK_WASM_GOT_TLS)
505     .Case("gotpcrel32@lo", VK_AMDGPU_GOTPCREL32_LO)
506     .Case("gotpcrel32@hi", VK_AMDGPU_GOTPCREL32_HI)
507     .Case("rel32@lo", VK_AMDGPU_REL32_LO)
508     .Case("rel32@hi", VK_AMDGPU_REL32_HI)
509     .Case("rel64", VK_AMDGPU_REL64)
510     .Case("abs32@lo", VK_AMDGPU_ABS32_LO)
511     .Case("abs32@hi", VK_AMDGPU_ABS32_HI)
512     .Case("hi", VK_VE_HI32)
513     .Case("lo", VK_VE_LO32)
514     .Case("pc_hi", VK_VE_PC_HI32)
515     .Case("pc_lo", VK_VE_PC_LO32)
516     .Case("got_hi", VK_VE_GOT_HI32)
517     .Case("got_lo", VK_VE_GOT_LO32)
518     .Case("gotoff_hi", VK_VE_GOTOFF_HI32)
519     .Case("gotoff_lo", VK_VE_GOTOFF_LO32)
520     .Case("plt_hi", VK_VE_PLT_HI32)
521     .Case("plt_lo", VK_VE_PLT_LO32)
522     .Case("tls_gd_hi", VK_VE_TLS_GD_HI32)
523     .Case("tls_gd_lo", VK_VE_TLS_GD_LO32)
524     .Case("tpoff_hi", VK_VE_TPOFF_HI32)
525     .Case("tpoff_lo", VK_VE_TPOFF_LO32)
526     .Default(VK_Invalid);
527 }
528 
529 /* *** */
530 
531 void MCTargetExpr::anchor() {}
532 
533 /* *** */
534 
535 bool MCExpr::evaluateAsAbsolute(int64_t &Res) const {
536   return evaluateAsAbsolute(Res, nullptr, nullptr, nullptr, false);
537 }
538 
539 bool MCExpr::evaluateAsAbsolute(int64_t &Res,
540                                 const MCAsmLayout &Layout) const {
541   return evaluateAsAbsolute(Res, &Layout.getAssembler(), &Layout, nullptr, false);
542 }
543 
544 bool MCExpr::evaluateAsAbsolute(int64_t &Res,
545                                 const MCAsmLayout &Layout,
546                                 const SectionAddrMap &Addrs) const {
547   // Setting InSet causes us to absolutize differences across sections and that
548   // is what the MachO writer uses Addrs for.
549   return evaluateAsAbsolute(Res, &Layout.getAssembler(), &Layout, &Addrs, true);
550 }
551 
552 bool MCExpr::evaluateAsAbsolute(int64_t &Res, const MCAssembler &Asm) const {
553   return evaluateAsAbsolute(Res, &Asm, nullptr, nullptr, false);
554 }
555 
556 bool MCExpr::evaluateAsAbsolute(int64_t &Res, const MCAssembler *Asm) const {
557   return evaluateAsAbsolute(Res, Asm, nullptr, nullptr, false);
558 }
559 
560 bool MCExpr::evaluateKnownAbsolute(int64_t &Res,
561                                    const MCAsmLayout &Layout) const {
562   return evaluateAsAbsolute(Res, &Layout.getAssembler(), &Layout, nullptr,
563                             true);
564 }
565 
566 bool MCExpr::evaluateAsAbsolute(int64_t &Res, const MCAssembler *Asm,
567                                 const MCAsmLayout *Layout,
568                                 const SectionAddrMap *Addrs, bool InSet) const {
569   MCValue Value;
570 
571   // Fast path constants.
572   if (const MCConstantExpr *CE = dyn_cast<MCConstantExpr>(this)) {
573     Res = CE->getValue();
574     return true;
575   }
576 
577   bool IsRelocatable =
578       evaluateAsRelocatableImpl(Value, Asm, Layout, nullptr, Addrs, InSet);
579 
580   // Record the current value.
581   Res = Value.getConstant();
582 
583   return IsRelocatable && Value.isAbsolute();
584 }
585 
586 /// Helper method for \see EvaluateSymbolAdd().
587 static void AttemptToFoldSymbolOffsetDifference(
588     const MCAssembler *Asm, const MCAsmLayout *Layout,
589     const SectionAddrMap *Addrs, bool InSet, const MCSymbolRefExpr *&A,
590     const MCSymbolRefExpr *&B, int64_t &Addend) {
591   if (!A || !B)
592     return;
593 
594   const MCSymbol &SA = A->getSymbol();
595   const MCSymbol &SB = B->getSymbol();
596 
597   if (SA.isUndefined() || SB.isUndefined())
598     return;
599 
600   if (!Asm->getWriter().isSymbolRefDifferenceFullyResolved(*Asm, A, B, InSet))
601     return;
602 
603   auto FinalizeFolding = [&]() {
604     // Pointers to Thumb symbols need to have their low-bit set to allow
605     // for interworking.
606     if (Asm->isThumbFunc(&SA))
607       Addend |= 1;
608 
609     // If symbol is labeled as micromips, we set low-bit to ensure
610     // correct offset in .gcc_except_table
611     if (Asm->getBackend().isMicroMips(&SA))
612       Addend |= 1;
613 
614     // Clear the symbol expr pointers to indicate we have folded these
615     // operands.
616     A = B = nullptr;
617   };
618 
619   const MCFragment *FA = SA.getFragment();
620   const MCFragment *FB = SB.getFragment();
621   // If both symbols are in the same fragment, return the difference of their
622   // offsets
623   if (FA == FB && !SA.isVariable() && !SA.isUnset() && !SB.isVariable() &&
624       !SB.isUnset()) {
625     Addend += SA.getOffset() - SB.getOffset();
626     return FinalizeFolding();
627   }
628 
629   const MCSection &SecA = *FA->getParent();
630   const MCSection &SecB = *FB->getParent();
631 
632   if ((&SecA != &SecB) && !Addrs)
633     return;
634 
635   if (Layout) {
636     // One of the symbol involved is part of a fragment being laid out. Quit now
637     // to avoid a self loop.
638     if (!Layout->canGetFragmentOffset(FA) || !Layout->canGetFragmentOffset(FB))
639       return;
640 
641     // Eagerly evaluate when layout is finalized.
642     Addend += Layout->getSymbolOffset(A->getSymbol()) -
643               Layout->getSymbolOffset(B->getSymbol());
644     if (Addrs && (&SecA != &SecB))
645       Addend += (Addrs->lookup(&SecA) - Addrs->lookup(&SecB));
646 
647     FinalizeFolding();
648   } else {
649     // When layout is not finalized, our ability to resolve differences between
650     // symbols is limited to specific cases where the fragments between two
651     // symbols (including the fragments the symbols are defined in) are
652     // fixed-size fragments so the difference can be calculated. For example,
653     // this is important when the Subtarget is changed and a new MCDataFragment
654     // is created in the case of foo: instr; .arch_extension ext; instr .if . -
655     // foo.
656     if (SA.isVariable() || SA.isUnset() || SB.isVariable() || SB.isUnset() ||
657         FA->getKind() != MCFragment::FT_Data ||
658         FB->getKind() != MCFragment::FT_Data ||
659         FA->getSubsectionNumber() != FB->getSubsectionNumber())
660       return;
661     // Try to find a constant displacement from FA to FB, add the displacement
662     // between the offset in FA of SA and the offset in FB of SB.
663     int64_t Displacement = SA.getOffset() - SB.getOffset();
664     for (auto FI = FB->getIterator(), FE = SecA.end(); FI != FE; ++FI) {
665       if (&*FI == FA) {
666         Addend += Displacement;
667         return FinalizeFolding();
668       }
669 
670       if (FI->getKind() != MCFragment::FT_Data)
671         return;
672       Displacement += cast<MCDataFragment>(FI)->getContents().size();
673     }
674   }
675 }
676 
677 /// Evaluate the result of an add between (conceptually) two MCValues.
678 ///
679 /// This routine conceptually attempts to construct an MCValue:
680 ///   Result = (Result_A - Result_B + Result_Cst)
681 /// from two MCValue's LHS and RHS where
682 ///   Result = LHS + RHS
683 /// and
684 ///   Result = (LHS_A - LHS_B + LHS_Cst) + (RHS_A - RHS_B + RHS_Cst).
685 ///
686 /// This routine attempts to aggressively fold the operands such that the result
687 /// is representable in an MCValue, but may not always succeed.
688 ///
689 /// \returns True on success, false if the result is not representable in an
690 /// MCValue.
691 
692 /// NOTE: It is really important to have both the Asm and Layout arguments.
693 /// They might look redundant, but this function can be used before layout
694 /// is done (see the object streamer for example) and having the Asm argument
695 /// lets us avoid relaxations early.
696 static bool
697 EvaluateSymbolicAdd(const MCAssembler *Asm, const MCAsmLayout *Layout,
698                     const SectionAddrMap *Addrs, bool InSet, const MCValue &LHS,
699                     const MCSymbolRefExpr *RHS_A, const MCSymbolRefExpr *RHS_B,
700                     int64_t RHS_Cst, MCValue &Res) {
701   // FIXME: This routine (and other evaluation parts) are *incredibly* sloppy
702   // about dealing with modifiers. This will ultimately bite us, one day.
703   const MCSymbolRefExpr *LHS_A = LHS.getSymA();
704   const MCSymbolRefExpr *LHS_B = LHS.getSymB();
705   int64_t LHS_Cst = LHS.getConstant();
706 
707   // Fold the result constant immediately.
708   int64_t Result_Cst = LHS_Cst + RHS_Cst;
709 
710   assert((!Layout || Asm) &&
711          "Must have an assembler object if layout is given!");
712 
713   // If we have a layout, we can fold resolved differences.
714   if (Asm) {
715     // First, fold out any differences which are fully resolved. By
716     // reassociating terms in
717     //   Result = (LHS_A - LHS_B + LHS_Cst) + (RHS_A - RHS_B + RHS_Cst).
718     // we have the four possible differences:
719     //   (LHS_A - LHS_B),
720     //   (LHS_A - RHS_B),
721     //   (RHS_A - LHS_B),
722     //   (RHS_A - RHS_B).
723     // Since we are attempting to be as aggressive as possible about folding, we
724     // attempt to evaluate each possible alternative.
725     AttemptToFoldSymbolOffsetDifference(Asm, Layout, Addrs, InSet, LHS_A, LHS_B,
726                                         Result_Cst);
727     AttemptToFoldSymbolOffsetDifference(Asm, Layout, Addrs, InSet, LHS_A, RHS_B,
728                                         Result_Cst);
729     AttemptToFoldSymbolOffsetDifference(Asm, Layout, Addrs, InSet, RHS_A, LHS_B,
730                                         Result_Cst);
731     AttemptToFoldSymbolOffsetDifference(Asm, Layout, Addrs, InSet, RHS_A, RHS_B,
732                                         Result_Cst);
733   }
734 
735   // We can't represent the addition or subtraction of two symbols.
736   if ((LHS_A && RHS_A) || (LHS_B && RHS_B))
737     return false;
738 
739   // At this point, we have at most one additive symbol and one subtractive
740   // symbol -- find them.
741   const MCSymbolRefExpr *A = LHS_A ? LHS_A : RHS_A;
742   const MCSymbolRefExpr *B = LHS_B ? LHS_B : RHS_B;
743 
744   Res = MCValue::get(A, B, Result_Cst);
745   return true;
746 }
747 
748 bool MCExpr::evaluateAsRelocatable(MCValue &Res,
749                                    const MCAsmLayout *Layout,
750                                    const MCFixup *Fixup) const {
751   MCAssembler *Assembler = Layout ? &Layout->getAssembler() : nullptr;
752   return evaluateAsRelocatableImpl(Res, Assembler, Layout, Fixup, nullptr,
753                                    false);
754 }
755 
756 bool MCExpr::evaluateAsValue(MCValue &Res, const MCAsmLayout &Layout) const {
757   MCAssembler *Assembler = &Layout.getAssembler();
758   return evaluateAsRelocatableImpl(Res, Assembler, &Layout, nullptr, nullptr,
759                                    true);
760 }
761 
762 static bool canExpand(const MCSymbol &Sym, bool InSet) {
763   const MCExpr *Expr = Sym.getVariableValue();
764   const auto *Inner = dyn_cast<MCSymbolRefExpr>(Expr);
765   if (Inner) {
766     if (Inner->getKind() == MCSymbolRefExpr::VK_WEAKREF)
767       return false;
768   }
769 
770   if (InSet)
771     return true;
772   return !Sym.isInSection();
773 }
774 
775 bool MCExpr::evaluateAsRelocatableImpl(MCValue &Res, const MCAssembler *Asm,
776                                        const MCAsmLayout *Layout,
777                                        const MCFixup *Fixup,
778                                        const SectionAddrMap *Addrs,
779                                        bool InSet) const {
780   ++stats::MCExprEvaluate;
781 
782   switch (getKind()) {
783   case Target:
784     return cast<MCTargetExpr>(this)->evaluateAsRelocatableImpl(Res, Layout,
785                                                                Fixup);
786 
787   case Constant:
788     Res = MCValue::get(cast<MCConstantExpr>(this)->getValue());
789     return true;
790 
791   case SymbolRef: {
792     const MCSymbolRefExpr *SRE = cast<MCSymbolRefExpr>(this);
793     const MCSymbol &Sym = SRE->getSymbol();
794     const auto Kind = SRE->getKind();
795 
796     // Evaluate recursively if this is a variable.
797     if (Sym.isVariable() && (Kind == MCSymbolRefExpr::VK_None || Layout) &&
798         canExpand(Sym, InSet)) {
799       bool IsMachO = SRE->hasSubsectionsViaSymbols();
800       if (Sym.getVariableValue()->evaluateAsRelocatableImpl(
801               Res, Asm, Layout, Fixup, Addrs, InSet || IsMachO)) {
802         if (Kind != MCSymbolRefExpr::VK_None) {
803           if (Res.isAbsolute()) {
804             Res = MCValue::get(SRE, nullptr, 0);
805             return true;
806           }
807           // If the reference has a variant kind, we can only handle expressions
808           // which evaluate exactly to a single unadorned symbol. Attach the
809           // original VariantKind to SymA of the result.
810           if (Res.getRefKind() != MCSymbolRefExpr::VK_None || !Res.getSymA() ||
811               Res.getSymB() || Res.getConstant())
812             return false;
813           Res =
814               MCValue::get(MCSymbolRefExpr::create(&Res.getSymA()->getSymbol(),
815                                                    Kind, Asm->getContext()),
816                            Res.getSymB(), Res.getConstant(), Res.getRefKind());
817         }
818         if (!IsMachO)
819           return true;
820 
821         const MCSymbolRefExpr *A = Res.getSymA();
822         const MCSymbolRefExpr *B = Res.getSymB();
823         // FIXME: This is small hack. Given
824         // a = b + 4
825         // .long a
826         // the OS X assembler will completely drop the 4. We should probably
827         // include it in the relocation or produce an error if that is not
828         // possible.
829         // Allow constant expressions.
830         if (!A && !B)
831           return true;
832         // Allows aliases with zero offset.
833         if (Res.getConstant() == 0 && (!A || !B))
834           return true;
835       }
836     }
837 
838     Res = MCValue::get(SRE, nullptr, 0);
839     return true;
840   }
841 
842   case Unary: {
843     const MCUnaryExpr *AUE = cast<MCUnaryExpr>(this);
844     MCValue Value;
845 
846     if (!AUE->getSubExpr()->evaluateAsRelocatableImpl(Value, Asm, Layout, Fixup,
847                                                       Addrs, InSet))
848       return false;
849 
850     switch (AUE->getOpcode()) {
851     case MCUnaryExpr::LNot:
852       if (!Value.isAbsolute())
853         return false;
854       Res = MCValue::get(!Value.getConstant());
855       break;
856     case MCUnaryExpr::Minus:
857       /// -(a - b + const) ==> (b - a - const)
858       if (Value.getSymA() && !Value.getSymB())
859         return false;
860 
861       // The cast avoids undefined behavior if the constant is INT64_MIN.
862       Res = MCValue::get(Value.getSymB(), Value.getSymA(),
863                          -(uint64_t)Value.getConstant());
864       break;
865     case MCUnaryExpr::Not:
866       if (!Value.isAbsolute())
867         return false;
868       Res = MCValue::get(~Value.getConstant());
869       break;
870     case MCUnaryExpr::Plus:
871       Res = Value;
872       break;
873     }
874 
875     return true;
876   }
877 
878   case Binary: {
879     const MCBinaryExpr *ABE = cast<MCBinaryExpr>(this);
880     MCValue LHSValue, RHSValue;
881 
882     if (!ABE->getLHS()->evaluateAsRelocatableImpl(LHSValue, Asm, Layout, Fixup,
883                                                   Addrs, InSet) ||
884         !ABE->getRHS()->evaluateAsRelocatableImpl(RHSValue, Asm, Layout, Fixup,
885                                                   Addrs, InSet)) {
886       // Check if both are Target Expressions, see if we can compare them.
887       if (const MCTargetExpr *L = dyn_cast<MCTargetExpr>(ABE->getLHS()))
888         if (const MCTargetExpr *R = cast<MCTargetExpr>(ABE->getRHS())) {
889           switch (ABE->getOpcode()) {
890           case MCBinaryExpr::EQ:
891             Res = MCValue::get((L->isEqualTo(R)) ? -1 : 0);
892             return true;
893           case MCBinaryExpr::NE:
894             Res = MCValue::get((R->isEqualTo(R)) ? 0 : -1);
895             return true;
896           default: break;
897           }
898         }
899       return false;
900     }
901 
902     // We only support a few operations on non-constant expressions, handle
903     // those first.
904     if (!LHSValue.isAbsolute() || !RHSValue.isAbsolute()) {
905       switch (ABE->getOpcode()) {
906       default:
907         return false;
908       case MCBinaryExpr::Sub:
909         // Negate RHS and add.
910         // The cast avoids undefined behavior if the constant is INT64_MIN.
911         return EvaluateSymbolicAdd(Asm, Layout, Addrs, InSet, LHSValue,
912                                    RHSValue.getSymB(), RHSValue.getSymA(),
913                                    -(uint64_t)RHSValue.getConstant(), Res);
914 
915       case MCBinaryExpr::Add:
916         return EvaluateSymbolicAdd(Asm, Layout, Addrs, InSet, LHSValue,
917                                    RHSValue.getSymA(), RHSValue.getSymB(),
918                                    RHSValue.getConstant(), Res);
919       }
920     }
921 
922     // FIXME: We need target hooks for the evaluation. It may be limited in
923     // width, and gas defines the result of comparisons differently from
924     // Apple as.
925     int64_t LHS = LHSValue.getConstant(), RHS = RHSValue.getConstant();
926     int64_t Result = 0;
927     auto Op = ABE->getOpcode();
928     switch (Op) {
929     case MCBinaryExpr::AShr: Result = LHS >> RHS; break;
930     case MCBinaryExpr::Add:  Result = LHS + RHS; break;
931     case MCBinaryExpr::And:  Result = LHS & RHS; break;
932     case MCBinaryExpr::Div:
933     case MCBinaryExpr::Mod:
934       // Handle division by zero. gas just emits a warning and keeps going,
935       // we try to be stricter.
936       // FIXME: Currently the caller of this function has no way to understand
937       // we're bailing out because of 'division by zero'. Therefore, it will
938       // emit a 'expected relocatable expression' error. It would be nice to
939       // change this code to emit a better diagnostic.
940       if (RHS == 0)
941         return false;
942       if (ABE->getOpcode() == MCBinaryExpr::Div)
943         Result = LHS / RHS;
944       else
945         Result = LHS % RHS;
946       break;
947     case MCBinaryExpr::EQ:   Result = LHS == RHS; break;
948     case MCBinaryExpr::GT:   Result = LHS > RHS; break;
949     case MCBinaryExpr::GTE:  Result = LHS >= RHS; break;
950     case MCBinaryExpr::LAnd: Result = LHS && RHS; break;
951     case MCBinaryExpr::LOr:  Result = LHS || RHS; break;
952     case MCBinaryExpr::LShr: Result = uint64_t(LHS) >> uint64_t(RHS); break;
953     case MCBinaryExpr::LT:   Result = LHS < RHS; break;
954     case MCBinaryExpr::LTE:  Result = LHS <= RHS; break;
955     case MCBinaryExpr::Mul:  Result = LHS * RHS; break;
956     case MCBinaryExpr::NE:   Result = LHS != RHS; break;
957     case MCBinaryExpr::Or:   Result = LHS | RHS; break;
958     case MCBinaryExpr::OrNot: Result = LHS | ~RHS; break;
959     case MCBinaryExpr::Shl:  Result = uint64_t(LHS) << uint64_t(RHS); break;
960     case MCBinaryExpr::Sub:  Result = LHS - RHS; break;
961     case MCBinaryExpr::Xor:  Result = LHS ^ RHS; break;
962     }
963 
964     switch (Op) {
965     default:
966       Res = MCValue::get(Result);
967       break;
968     case MCBinaryExpr::EQ:
969     case MCBinaryExpr::GT:
970     case MCBinaryExpr::GTE:
971     case MCBinaryExpr::LT:
972     case MCBinaryExpr::LTE:
973     case MCBinaryExpr::NE:
974       // A comparison operator returns a -1 if true and 0 if false.
975       Res = MCValue::get(Result ? -1 : 0);
976       break;
977     }
978 
979     return true;
980   }
981   }
982 
983   llvm_unreachable("Invalid assembly expression kind!");
984 }
985 
986 MCFragment *MCExpr::findAssociatedFragment() const {
987   switch (getKind()) {
988   case Target:
989     // We never look through target specific expressions.
990     return cast<MCTargetExpr>(this)->findAssociatedFragment();
991 
992   case Constant:
993     return MCSymbol::AbsolutePseudoFragment;
994 
995   case SymbolRef: {
996     const MCSymbolRefExpr *SRE = cast<MCSymbolRefExpr>(this);
997     const MCSymbol &Sym = SRE->getSymbol();
998     return Sym.getFragment();
999   }
1000 
1001   case Unary:
1002     return cast<MCUnaryExpr>(this)->getSubExpr()->findAssociatedFragment();
1003 
1004   case Binary: {
1005     const MCBinaryExpr *BE = cast<MCBinaryExpr>(this);
1006     MCFragment *LHS_F = BE->getLHS()->findAssociatedFragment();
1007     MCFragment *RHS_F = BE->getRHS()->findAssociatedFragment();
1008 
1009     // If either is absolute, return the other.
1010     if (LHS_F == MCSymbol::AbsolutePseudoFragment)
1011       return RHS_F;
1012     if (RHS_F == MCSymbol::AbsolutePseudoFragment)
1013       return LHS_F;
1014 
1015     // Not always correct, but probably the best we can do without more context.
1016     if (BE->getOpcode() == MCBinaryExpr::Sub)
1017       return MCSymbol::AbsolutePseudoFragment;
1018 
1019     // Otherwise, return the first non-null fragment.
1020     return LHS_F ? LHS_F : RHS_F;
1021   }
1022   }
1023 
1024   llvm_unreachable("Invalid assembly expression kind!");
1025 }
1026