1 #include "../include/KaleidoscopeJIT.h" 2 #include "llvm/ADT/APFloat.h" 3 #include "llvm/ADT/STLExtras.h" 4 #include "llvm/IR/BasicBlock.h" 5 #include "llvm/IR/Constants.h" 6 #include "llvm/IR/DerivedTypes.h" 7 #include "llvm/IR/Function.h" 8 #include "llvm/IR/IRBuilder.h" 9 #include "llvm/IR/Instructions.h" 10 #include "llvm/IR/LLVMContext.h" 11 #include "llvm/IR/LegacyPassManager.h" 12 #include "llvm/IR/Module.h" 13 #include "llvm/IR/Type.h" 14 #include "llvm/IR/Verifier.h" 15 #include "llvm/Support/TargetSelect.h" 16 #include "llvm/Target/TargetMachine.h" 17 #include "llvm/Transforms/InstCombine/InstCombine.h" 18 #include "llvm/Transforms/Scalar.h" 19 #include "llvm/Transforms/Scalar/GVN.h" 20 #include <algorithm> 21 #include <cassert> 22 #include <cctype> 23 #include <cstdint> 24 #include <cstdio> 25 #include <cstdlib> 26 #include <map> 27 #include <memory> 28 #include <string> 29 #include <vector> 30 31 using namespace llvm; 32 using namespace llvm::orc; 33 34 //===----------------------------------------------------------------------===// 35 // Lexer 36 //===----------------------------------------------------------------------===// 37 38 // The lexer returns tokens [0-255] if it is an unknown character, otherwise one 39 // of these for known things. 40 enum Token { 41 tok_eof = -1, 42 43 // commands 44 tok_def = -2, 45 tok_extern = -3, 46 47 // primary 48 tok_identifier = -4, 49 tok_number = -5, 50 51 // control 52 tok_if = -6, 53 tok_then = -7, 54 tok_else = -8, 55 tok_for = -9, 56 tok_in = -10, 57 58 // operators 59 tok_binary = -11, 60 tok_unary = -12 61 }; 62 63 static std::string IdentifierStr; // Filled in if tok_identifier 64 static double NumVal; // Filled in if tok_number 65 66 /// gettok - Return the next token from standard input. 67 static int gettok() { 68 static int LastChar = ' '; 69 70 // Skip any whitespace. 71 while (isspace(LastChar)) 72 LastChar = getchar(); 73 74 if (isalpha(LastChar)) { // identifier: [a-zA-Z][a-zA-Z0-9]* 75 IdentifierStr = LastChar; 76 while (isalnum((LastChar = getchar()))) 77 IdentifierStr += LastChar; 78 79 if (IdentifierStr == "def") 80 return tok_def; 81 if (IdentifierStr == "extern") 82 return tok_extern; 83 if (IdentifierStr == "if") 84 return tok_if; 85 if (IdentifierStr == "then") 86 return tok_then; 87 if (IdentifierStr == "else") 88 return tok_else; 89 if (IdentifierStr == "for") 90 return tok_for; 91 if (IdentifierStr == "in") 92 return tok_in; 93 if (IdentifierStr == "binary") 94 return tok_binary; 95 if (IdentifierStr == "unary") 96 return tok_unary; 97 return tok_identifier; 98 } 99 100 if (isdigit(LastChar) || LastChar == '.') { // Number: [0-9.]+ 101 std::string NumStr; 102 do { 103 NumStr += LastChar; 104 LastChar = getchar(); 105 } while (isdigit(LastChar) || LastChar == '.'); 106 107 NumVal = strtod(NumStr.c_str(), nullptr); 108 return tok_number; 109 } 110 111 if (LastChar == '#') { 112 // Comment until end of line. 113 do 114 LastChar = getchar(); 115 while (LastChar != EOF && LastChar != '\n' && LastChar != '\r'); 116 117 if (LastChar != EOF) 118 return gettok(); 119 } 120 121 // Check for end of file. Don't eat the EOF. 122 if (LastChar == EOF) 123 return tok_eof; 124 125 // Otherwise, just return the character as its ascii value. 126 int ThisChar = LastChar; 127 LastChar = getchar(); 128 return ThisChar; 129 } 130 131 //===----------------------------------------------------------------------===// 132 // Abstract Syntax Tree (aka Parse Tree) 133 //===----------------------------------------------------------------------===// 134 135 namespace { 136 137 /// ExprAST - Base class for all expression nodes. 138 class ExprAST { 139 public: 140 virtual ~ExprAST() = default; 141 142 virtual Value *codegen() = 0; 143 }; 144 145 /// NumberExprAST - Expression class for numeric literals like "1.0". 146 class NumberExprAST : public ExprAST { 147 double Val; 148 149 public: 150 NumberExprAST(double Val) : Val(Val) {} 151 152 Value *codegen() override; 153 }; 154 155 /// VariableExprAST - Expression class for referencing a variable, like "a". 156 class VariableExprAST : public ExprAST { 157 std::string Name; 158 159 public: 160 VariableExprAST(const std::string &Name) : Name(Name) {} 161 162 Value *codegen() override; 163 }; 164 165 /// UnaryExprAST - Expression class for a unary operator. 166 class UnaryExprAST : public ExprAST { 167 char Opcode; 168 std::unique_ptr<ExprAST> Operand; 169 170 public: 171 UnaryExprAST(char Opcode, std::unique_ptr<ExprAST> Operand) 172 : Opcode(Opcode), Operand(std::move(Operand)) {} 173 174 Value *codegen() override; 175 }; 176 177 /// BinaryExprAST - Expression class for a binary operator. 178 class BinaryExprAST : public ExprAST { 179 char Op; 180 std::unique_ptr<ExprAST> LHS, RHS; 181 182 public: 183 BinaryExprAST(char Op, std::unique_ptr<ExprAST> LHS, 184 std::unique_ptr<ExprAST> RHS) 185 : Op(Op), LHS(std::move(LHS)), RHS(std::move(RHS)) {} 186 187 Value *codegen() override; 188 }; 189 190 /// CallExprAST - Expression class for function calls. 191 class CallExprAST : public ExprAST { 192 std::string Callee; 193 std::vector<std::unique_ptr<ExprAST>> Args; 194 195 public: 196 CallExprAST(const std::string &Callee, 197 std::vector<std::unique_ptr<ExprAST>> Args) 198 : Callee(Callee), Args(std::move(Args)) {} 199 200 Value *codegen() override; 201 }; 202 203 /// IfExprAST - Expression class for if/then/else. 204 class IfExprAST : public ExprAST { 205 std::unique_ptr<ExprAST> Cond, Then, Else; 206 207 public: 208 IfExprAST(std::unique_ptr<ExprAST> Cond, std::unique_ptr<ExprAST> Then, 209 std::unique_ptr<ExprAST> Else) 210 : Cond(std::move(Cond)), Then(std::move(Then)), Else(std::move(Else)) {} 211 212 Value *codegen() override; 213 }; 214 215 /// ForExprAST - Expression class for for/in. 216 class ForExprAST : public ExprAST { 217 std::string VarName; 218 std::unique_ptr<ExprAST> Start, End, Step, Body; 219 220 public: 221 ForExprAST(const std::string &VarName, std::unique_ptr<ExprAST> Start, 222 std::unique_ptr<ExprAST> End, std::unique_ptr<ExprAST> Step, 223 std::unique_ptr<ExprAST> Body) 224 : VarName(VarName), Start(std::move(Start)), End(std::move(End)), 225 Step(std::move(Step)), Body(std::move(Body)) {} 226 227 Value *codegen() override; 228 }; 229 230 /// PrototypeAST - This class represents the "prototype" for a function, 231 /// which captures its name, and its argument names (thus implicitly the number 232 /// of arguments the function takes), as well as if it is an operator. 233 class PrototypeAST { 234 std::string Name; 235 std::vector<std::string> Args; 236 bool IsOperator; 237 unsigned Precedence; // Precedence if a binary op. 238 239 public: 240 PrototypeAST(const std::string &Name, std::vector<std::string> Args, 241 bool IsOperator = false, unsigned Prec = 0) 242 : Name(Name), Args(std::move(Args)), IsOperator(IsOperator), 243 Precedence(Prec) {} 244 245 Function *codegen(); 246 const std::string &getName() const { return Name; } 247 248 bool isUnaryOp() const { return IsOperator && Args.size() == 1; } 249 bool isBinaryOp() const { return IsOperator && Args.size() == 2; } 250 251 char getOperatorName() const { 252 assert(isUnaryOp() || isBinaryOp()); 253 return Name[Name.size() - 1]; 254 } 255 256 unsigned getBinaryPrecedence() const { return Precedence; } 257 }; 258 259 /// FunctionAST - This class represents a function definition itself. 260 class FunctionAST { 261 std::unique_ptr<PrototypeAST> Proto; 262 std::unique_ptr<ExprAST> Body; 263 264 public: 265 FunctionAST(std::unique_ptr<PrototypeAST> Proto, 266 std::unique_ptr<ExprAST> Body) 267 : Proto(std::move(Proto)), Body(std::move(Body)) {} 268 269 Function *codegen(); 270 }; 271 272 } // end anonymous namespace 273 274 //===----------------------------------------------------------------------===// 275 // Parser 276 //===----------------------------------------------------------------------===// 277 278 /// CurTok/getNextToken - Provide a simple token buffer. CurTok is the current 279 /// token the parser is looking at. getNextToken reads another token from the 280 /// lexer and updates CurTok with its results. 281 static int CurTok; 282 static int getNextToken() { return CurTok = gettok(); } 283 284 /// BinopPrecedence - This holds the precedence for each binary operator that is 285 /// defined. 286 static std::map<char, int> BinopPrecedence; 287 288 /// GetTokPrecedence - Get the precedence of the pending binary operator token. 289 static int GetTokPrecedence() { 290 if (!isascii(CurTok)) 291 return -1; 292 293 // Make sure it's a declared binop. 294 int TokPrec = BinopPrecedence[CurTok]; 295 if (TokPrec <= 0) 296 return -1; 297 return TokPrec; 298 } 299 300 /// Error* - These are little helper functions for error handling. 301 std::unique_ptr<ExprAST> LogError(const char *Str) { 302 fprintf(stderr, "Error: %s\n", Str); 303 return nullptr; 304 } 305 306 std::unique_ptr<PrototypeAST> LogErrorP(const char *Str) { 307 LogError(Str); 308 return nullptr; 309 } 310 311 static std::unique_ptr<ExprAST> ParseExpression(); 312 313 /// numberexpr ::= number 314 static std::unique_ptr<ExprAST> ParseNumberExpr() { 315 auto Result = std::make_unique<NumberExprAST>(NumVal); 316 getNextToken(); // consume the number 317 return std::move(Result); 318 } 319 320 /// parenexpr ::= '(' expression ')' 321 static std::unique_ptr<ExprAST> ParseParenExpr() { 322 getNextToken(); // eat (. 323 auto V = ParseExpression(); 324 if (!V) 325 return nullptr; 326 327 if (CurTok != ')') 328 return LogError("expected ')'"); 329 getNextToken(); // eat ). 330 return V; 331 } 332 333 /// identifierexpr 334 /// ::= identifier 335 /// ::= identifier '(' expression* ')' 336 static std::unique_ptr<ExprAST> ParseIdentifierExpr() { 337 std::string IdName = IdentifierStr; 338 339 getNextToken(); // eat identifier. 340 341 if (CurTok != '(') // Simple variable ref. 342 return std::make_unique<VariableExprAST>(IdName); 343 344 // Call. 345 getNextToken(); // eat ( 346 std::vector<std::unique_ptr<ExprAST>> Args; 347 if (CurTok != ')') { 348 while (true) { 349 if (auto Arg = ParseExpression()) 350 Args.push_back(std::move(Arg)); 351 else 352 return nullptr; 353 354 if (CurTok == ')') 355 break; 356 357 if (CurTok != ',') 358 return LogError("Expected ')' or ',' in argument list"); 359 getNextToken(); 360 } 361 } 362 363 // Eat the ')'. 364 getNextToken(); 365 366 return std::make_unique<CallExprAST>(IdName, std::move(Args)); 367 } 368 369 /// ifexpr ::= 'if' expression 'then' expression 'else' expression 370 static std::unique_ptr<ExprAST> ParseIfExpr() { 371 getNextToken(); // eat the if. 372 373 // condition. 374 auto Cond = ParseExpression(); 375 if (!Cond) 376 return nullptr; 377 378 if (CurTok != tok_then) 379 return LogError("expected then"); 380 getNextToken(); // eat the then 381 382 auto Then = ParseExpression(); 383 if (!Then) 384 return nullptr; 385 386 if (CurTok != tok_else) 387 return LogError("expected else"); 388 389 getNextToken(); 390 391 auto Else = ParseExpression(); 392 if (!Else) 393 return nullptr; 394 395 return std::make_unique<IfExprAST>(std::move(Cond), std::move(Then), 396 std::move(Else)); 397 } 398 399 /// forexpr ::= 'for' identifier '=' expr ',' expr (',' expr)? 'in' expression 400 static std::unique_ptr<ExprAST> ParseForExpr() { 401 getNextToken(); // eat the for. 402 403 if (CurTok != tok_identifier) 404 return LogError("expected identifier after for"); 405 406 std::string IdName = IdentifierStr; 407 getNextToken(); // eat identifier. 408 409 if (CurTok != '=') 410 return LogError("expected '=' after for"); 411 getNextToken(); // eat '='. 412 413 auto Start = ParseExpression(); 414 if (!Start) 415 return nullptr; 416 if (CurTok != ',') 417 return LogError("expected ',' after for start value"); 418 getNextToken(); 419 420 auto End = ParseExpression(); 421 if (!End) 422 return nullptr; 423 424 // The step value is optional. 425 std::unique_ptr<ExprAST> Step; 426 if (CurTok == ',') { 427 getNextToken(); 428 Step = ParseExpression(); 429 if (!Step) 430 return nullptr; 431 } 432 433 if (CurTok != tok_in) 434 return LogError("expected 'in' after for"); 435 getNextToken(); // eat 'in'. 436 437 auto Body = ParseExpression(); 438 if (!Body) 439 return nullptr; 440 441 return std::make_unique<ForExprAST>(IdName, std::move(Start), std::move(End), 442 std::move(Step), std::move(Body)); 443 } 444 445 /// primary 446 /// ::= identifierexpr 447 /// ::= numberexpr 448 /// ::= parenexpr 449 /// ::= ifexpr 450 /// ::= forexpr 451 static std::unique_ptr<ExprAST> ParsePrimary() { 452 switch (CurTok) { 453 default: 454 return LogError("unknown token when expecting an expression"); 455 case tok_identifier: 456 return ParseIdentifierExpr(); 457 case tok_number: 458 return ParseNumberExpr(); 459 case '(': 460 return ParseParenExpr(); 461 case tok_if: 462 return ParseIfExpr(); 463 case tok_for: 464 return ParseForExpr(); 465 } 466 } 467 468 /// unary 469 /// ::= primary 470 /// ::= '!' unary 471 static std::unique_ptr<ExprAST> ParseUnary() { 472 // If the current token is not an operator, it must be a primary expr. 473 if (!isascii(CurTok) || CurTok == '(' || CurTok == ',') 474 return ParsePrimary(); 475 476 // If this is a unary operator, read it. 477 int Opc = CurTok; 478 getNextToken(); 479 if (auto Operand = ParseUnary()) 480 return std::make_unique<UnaryExprAST>(Opc, std::move(Operand)); 481 return nullptr; 482 } 483 484 /// binoprhs 485 /// ::= ('+' unary)* 486 static std::unique_ptr<ExprAST> ParseBinOpRHS(int ExprPrec, 487 std::unique_ptr<ExprAST> LHS) { 488 // If this is a binop, find its precedence. 489 while (true) { 490 int TokPrec = GetTokPrecedence(); 491 492 // If this is a binop that binds at least as tightly as the current binop, 493 // consume it, otherwise we are done. 494 if (TokPrec < ExprPrec) 495 return LHS; 496 497 // Okay, we know this is a binop. 498 int BinOp = CurTok; 499 getNextToken(); // eat binop 500 501 // Parse the unary expression after the binary operator. 502 auto RHS = ParseUnary(); 503 if (!RHS) 504 return nullptr; 505 506 // If BinOp binds less tightly with RHS than the operator after RHS, let 507 // the pending operator take RHS as its LHS. 508 int NextPrec = GetTokPrecedence(); 509 if (TokPrec < NextPrec) { 510 RHS = ParseBinOpRHS(TokPrec + 1, std::move(RHS)); 511 if (!RHS) 512 return nullptr; 513 } 514 515 // Merge LHS/RHS. 516 LHS = 517 std::make_unique<BinaryExprAST>(BinOp, std::move(LHS), std::move(RHS)); 518 } 519 } 520 521 /// expression 522 /// ::= unary binoprhs 523 /// 524 static std::unique_ptr<ExprAST> ParseExpression() { 525 auto LHS = ParseUnary(); 526 if (!LHS) 527 return nullptr; 528 529 return ParseBinOpRHS(0, std::move(LHS)); 530 } 531 532 /// prototype 533 /// ::= id '(' id* ')' 534 /// ::= binary LETTER number? (id, id) 535 /// ::= unary LETTER (id) 536 static std::unique_ptr<PrototypeAST> ParsePrototype() { 537 std::string FnName; 538 539 unsigned Kind = 0; // 0 = identifier, 1 = unary, 2 = binary. 540 unsigned BinaryPrecedence = 30; 541 542 switch (CurTok) { 543 default: 544 return LogErrorP("Expected function name in prototype"); 545 case tok_identifier: 546 FnName = IdentifierStr; 547 Kind = 0; 548 getNextToken(); 549 break; 550 case tok_unary: 551 getNextToken(); 552 if (!isascii(CurTok)) 553 return LogErrorP("Expected unary operator"); 554 FnName = "unary"; 555 FnName += (char)CurTok; 556 Kind = 1; 557 getNextToken(); 558 break; 559 case tok_binary: 560 getNextToken(); 561 if (!isascii(CurTok)) 562 return LogErrorP("Expected binary operator"); 563 FnName = "binary"; 564 FnName += (char)CurTok; 565 Kind = 2; 566 getNextToken(); 567 568 // Read the precedence if present. 569 if (CurTok == tok_number) { 570 if (NumVal < 1 || NumVal > 100) 571 return LogErrorP("Invalid precedence: must be 1..100"); 572 BinaryPrecedence = (unsigned)NumVal; 573 getNextToken(); 574 } 575 break; 576 } 577 578 if (CurTok != '(') 579 return LogErrorP("Expected '(' in prototype"); 580 581 std::vector<std::string> ArgNames; 582 while (getNextToken() == tok_identifier) 583 ArgNames.push_back(IdentifierStr); 584 if (CurTok != ')') 585 return LogErrorP("Expected ')' in prototype"); 586 587 // success. 588 getNextToken(); // eat ')'. 589 590 // Verify right number of names for operator. 591 if (Kind && ArgNames.size() != Kind) 592 return LogErrorP("Invalid number of operands for operator"); 593 594 return std::make_unique<PrototypeAST>(FnName, ArgNames, Kind != 0, 595 BinaryPrecedence); 596 } 597 598 /// definition ::= 'def' prototype expression 599 static std::unique_ptr<FunctionAST> ParseDefinition() { 600 getNextToken(); // eat def. 601 auto Proto = ParsePrototype(); 602 if (!Proto) 603 return nullptr; 604 605 if (auto E = ParseExpression()) 606 return std::make_unique<FunctionAST>(std::move(Proto), std::move(E)); 607 return nullptr; 608 } 609 610 /// toplevelexpr ::= expression 611 static std::unique_ptr<FunctionAST> ParseTopLevelExpr() { 612 if (auto E = ParseExpression()) { 613 // Make an anonymous proto. 614 auto Proto = std::make_unique<PrototypeAST>("__anon_expr", 615 std::vector<std::string>()); 616 return std::make_unique<FunctionAST>(std::move(Proto), std::move(E)); 617 } 618 return nullptr; 619 } 620 621 /// external ::= 'extern' prototype 622 static std::unique_ptr<PrototypeAST> ParseExtern() { 623 getNextToken(); // eat extern. 624 return ParsePrototype(); 625 } 626 627 //===----------------------------------------------------------------------===// 628 // Code Generation 629 //===----------------------------------------------------------------------===// 630 631 static std::unique_ptr<LLVMContext> TheContext; 632 static std::unique_ptr<Module> TheModule; 633 static std::unique_ptr<IRBuilder<>> Builder; 634 static std::map<std::string, Value *> NamedValues; 635 static std::unique_ptr<legacy::FunctionPassManager> TheFPM; 636 static std::unique_ptr<KaleidoscopeJIT> TheJIT; 637 static std::map<std::string, std::unique_ptr<PrototypeAST>> FunctionProtos; 638 static ExitOnError ExitOnErr; 639 640 Value *LogErrorV(const char *Str) { 641 LogError(Str); 642 return nullptr; 643 } 644 645 Function *getFunction(std::string Name) { 646 // First, see if the function has already been added to the current module. 647 if (auto *F = TheModule->getFunction(Name)) 648 return F; 649 650 // If not, check whether we can codegen the declaration from some existing 651 // prototype. 652 auto FI = FunctionProtos.find(Name); 653 if (FI != FunctionProtos.end()) 654 return FI->second->codegen(); 655 656 // If no existing prototype exists, return null. 657 return nullptr; 658 } 659 660 Value *NumberExprAST::codegen() { 661 return ConstantFP::get(*TheContext, APFloat(Val)); 662 } 663 664 Value *VariableExprAST::codegen() { 665 // Look this variable up in the function. 666 Value *V = NamedValues[Name]; 667 if (!V) 668 return LogErrorV("Unknown variable name"); 669 return V; 670 } 671 672 Value *UnaryExprAST::codegen() { 673 Value *OperandV = Operand->codegen(); 674 if (!OperandV) 675 return nullptr; 676 677 Function *F = getFunction(std::string("unary") + Opcode); 678 if (!F) 679 return LogErrorV("Unknown unary operator"); 680 681 return Builder->CreateCall(F, OperandV, "unop"); 682 } 683 684 Value *BinaryExprAST::codegen() { 685 Value *L = LHS->codegen(); 686 Value *R = RHS->codegen(); 687 if (!L || !R) 688 return nullptr; 689 690 switch (Op) { 691 case '+': 692 return Builder->CreateFAdd(L, R, "addtmp"); 693 case '-': 694 return Builder->CreateFSub(L, R, "subtmp"); 695 case '*': 696 return Builder->CreateFMul(L, R, "multmp"); 697 case '<': 698 L = Builder->CreateFCmpULT(L, R, "cmptmp"); 699 // Convert bool 0/1 to double 0.0 or 1.0 700 return Builder->CreateUIToFP(L, Type::getDoubleTy(*TheContext), "booltmp"); 701 default: 702 break; 703 } 704 705 // If it wasn't a builtin binary operator, it must be a user defined one. Emit 706 // a call to it. 707 Function *F = getFunction(std::string("binary") + Op); 708 assert(F && "binary operator not found!"); 709 710 Value *Ops[] = {L, R}; 711 return Builder->CreateCall(F, Ops, "binop"); 712 } 713 714 Value *CallExprAST::codegen() { 715 // Look up the name in the global module table. 716 Function *CalleeF = getFunction(Callee); 717 if (!CalleeF) 718 return LogErrorV("Unknown function referenced"); 719 720 // If argument mismatch error. 721 if (CalleeF->arg_size() != Args.size()) 722 return LogErrorV("Incorrect # arguments passed"); 723 724 std::vector<Value *> ArgsV; 725 for (unsigned i = 0, e = Args.size(); i != e; ++i) { 726 ArgsV.push_back(Args[i]->codegen()); 727 if (!ArgsV.back()) 728 return nullptr; 729 } 730 731 return Builder->CreateCall(CalleeF, ArgsV, "calltmp"); 732 } 733 734 Value *IfExprAST::codegen() { 735 Value *CondV = Cond->codegen(); 736 if (!CondV) 737 return nullptr; 738 739 // Convert condition to a bool by comparing non-equal to 0.0. 740 CondV = Builder->CreateFCmpONE( 741 CondV, ConstantFP::get(*TheContext, APFloat(0.0)), "ifcond"); 742 743 Function *TheFunction = Builder->GetInsertBlock()->getParent(); 744 745 // Create blocks for the then and else cases. Insert the 'then' block at the 746 // end of the function. 747 BasicBlock *ThenBB = BasicBlock::Create(*TheContext, "then", TheFunction); 748 BasicBlock *ElseBB = BasicBlock::Create(*TheContext, "else"); 749 BasicBlock *MergeBB = BasicBlock::Create(*TheContext, "ifcont"); 750 751 Builder->CreateCondBr(CondV, ThenBB, ElseBB); 752 753 // Emit then value. 754 Builder->SetInsertPoint(ThenBB); 755 756 Value *ThenV = Then->codegen(); 757 if (!ThenV) 758 return nullptr; 759 760 Builder->CreateBr(MergeBB); 761 // Codegen of 'Then' can change the current block, update ThenBB for the PHI. 762 ThenBB = Builder->GetInsertBlock(); 763 764 // Emit else block. 765 TheFunction->getBasicBlockList().push_back(ElseBB); 766 Builder->SetInsertPoint(ElseBB); 767 768 Value *ElseV = Else->codegen(); 769 if (!ElseV) 770 return nullptr; 771 772 Builder->CreateBr(MergeBB); 773 // Codegen of 'Else' can change the current block, update ElseBB for the PHI. 774 ElseBB = Builder->GetInsertBlock(); 775 776 // Emit merge block. 777 TheFunction->getBasicBlockList().push_back(MergeBB); 778 Builder->SetInsertPoint(MergeBB); 779 PHINode *PN = Builder->CreatePHI(Type::getDoubleTy(*TheContext), 2, "iftmp"); 780 781 PN->addIncoming(ThenV, ThenBB); 782 PN->addIncoming(ElseV, ElseBB); 783 return PN; 784 } 785 786 // Output for-loop as: 787 // ... 788 // start = startexpr 789 // goto loop 790 // loop: 791 // variable = phi [start, loopheader], [nextvariable, loopend] 792 // ... 793 // bodyexpr 794 // ... 795 // loopend: 796 // step = stepexpr 797 // nextvariable = variable + step 798 // endcond = endexpr 799 // br endcond, loop, endloop 800 // outloop: 801 Value *ForExprAST::codegen() { 802 // Emit the start code first, without 'variable' in scope. 803 Value *StartVal = Start->codegen(); 804 if (!StartVal) 805 return nullptr; 806 807 // Make the new basic block for the loop header, inserting after current 808 // block. 809 Function *TheFunction = Builder->GetInsertBlock()->getParent(); 810 BasicBlock *PreheaderBB = Builder->GetInsertBlock(); 811 BasicBlock *LoopBB = BasicBlock::Create(*TheContext, "loop", TheFunction); 812 813 // Insert an explicit fall through from the current block to the LoopBB. 814 Builder->CreateBr(LoopBB); 815 816 // Start insertion in LoopBB. 817 Builder->SetInsertPoint(LoopBB); 818 819 // Start the PHI node with an entry for Start. 820 PHINode *Variable = 821 Builder->CreatePHI(Type::getDoubleTy(*TheContext), 2, VarName); 822 Variable->addIncoming(StartVal, PreheaderBB); 823 824 // Within the loop, the variable is defined equal to the PHI node. If it 825 // shadows an existing variable, we have to restore it, so save it now. 826 Value *OldVal = NamedValues[VarName]; 827 NamedValues[VarName] = Variable; 828 829 // Emit the body of the loop. This, like any other expr, can change the 830 // current BB. Note that we ignore the value computed by the body, but don't 831 // allow an error. 832 if (!Body->codegen()) 833 return nullptr; 834 835 // Emit the step value. 836 Value *StepVal = nullptr; 837 if (Step) { 838 StepVal = Step->codegen(); 839 if (!StepVal) 840 return nullptr; 841 } else { 842 // If not specified, use 1.0. 843 StepVal = ConstantFP::get(*TheContext, APFloat(1.0)); 844 } 845 846 Value *NextVar = Builder->CreateFAdd(Variable, StepVal, "nextvar"); 847 848 // Compute the end condition. 849 Value *EndCond = End->codegen(); 850 if (!EndCond) 851 return nullptr; 852 853 // Convert condition to a bool by comparing non-equal to 0.0. 854 EndCond = Builder->CreateFCmpONE( 855 EndCond, ConstantFP::get(*TheContext, APFloat(0.0)), "loopcond"); 856 857 // Create the "after loop" block and insert it. 858 BasicBlock *LoopEndBB = Builder->GetInsertBlock(); 859 BasicBlock *AfterBB = 860 BasicBlock::Create(*TheContext, "afterloop", TheFunction); 861 862 // Insert the conditional branch into the end of LoopEndBB. 863 Builder->CreateCondBr(EndCond, LoopBB, AfterBB); 864 865 // Any new code will be inserted in AfterBB. 866 Builder->SetInsertPoint(AfterBB); 867 868 // Add a new entry to the PHI node for the backedge. 869 Variable->addIncoming(NextVar, LoopEndBB); 870 871 // Restore the unshadowed variable. 872 if (OldVal) 873 NamedValues[VarName] = OldVal; 874 else 875 NamedValues.erase(VarName); 876 877 // for expr always returns 0.0. 878 return Constant::getNullValue(Type::getDoubleTy(*TheContext)); 879 } 880 881 Function *PrototypeAST::codegen() { 882 // Make the function type: double(double,double) etc. 883 std::vector<Type *> Doubles(Args.size(), Type::getDoubleTy(*TheContext)); 884 FunctionType *FT = 885 FunctionType::get(Type::getDoubleTy(*TheContext), Doubles, false); 886 887 Function *F = 888 Function::Create(FT, Function::ExternalLinkage, Name, TheModule.get()); 889 890 // Set names for all arguments. 891 unsigned Idx = 0; 892 for (auto &Arg : F->args()) 893 Arg.setName(Args[Idx++]); 894 895 return F; 896 } 897 898 Function *FunctionAST::codegen() { 899 // Transfer ownership of the prototype to the FunctionProtos map, but keep a 900 // reference to it for use below. 901 auto &P = *Proto; 902 FunctionProtos[Proto->getName()] = std::move(Proto); 903 Function *TheFunction = getFunction(P.getName()); 904 if (!TheFunction) 905 return nullptr; 906 907 // If this is an operator, install it. 908 if (P.isBinaryOp()) 909 BinopPrecedence[P.getOperatorName()] = P.getBinaryPrecedence(); 910 911 // Create a new basic block to start insertion into. 912 BasicBlock *BB = BasicBlock::Create(*TheContext, "entry", TheFunction); 913 Builder->SetInsertPoint(BB); 914 915 // Record the function arguments in the NamedValues map. 916 NamedValues.clear(); 917 for (auto &Arg : TheFunction->args()) 918 NamedValues[std::string(Arg.getName())] = &Arg; 919 920 if (Value *RetVal = Body->codegen()) { 921 // Finish off the function. 922 Builder->CreateRet(RetVal); 923 924 // Validate the generated code, checking for consistency. 925 verifyFunction(*TheFunction); 926 927 // Run the optimizer on the function. 928 TheFPM->run(*TheFunction); 929 930 return TheFunction; 931 } 932 933 // Error reading body, remove function. 934 TheFunction->eraseFromParent(); 935 936 if (P.isBinaryOp()) 937 BinopPrecedence.erase(P.getOperatorName()); 938 return nullptr; 939 } 940 941 //===----------------------------------------------------------------------===// 942 // Top-Level parsing and JIT Driver 943 //===----------------------------------------------------------------------===// 944 945 static void InitializeModuleAndPassManager() { 946 // Open a new module. 947 TheContext = std::make_unique<LLVMContext>(); 948 TheModule = std::make_unique<Module>("my cool jit", *TheContext); 949 TheModule->setDataLayout(TheJIT->getDataLayout()); 950 951 // Create a new builder for the module. 952 Builder = std::make_unique<IRBuilder<>>(*TheContext); 953 954 // Create a new pass manager attached to it. 955 TheFPM = std::make_unique<legacy::FunctionPassManager>(TheModule.get()); 956 957 // Do simple "peephole" optimizations and bit-twiddling optzns. 958 TheFPM->add(createInstructionCombiningPass()); 959 // Reassociate expressions. 960 TheFPM->add(createReassociatePass()); 961 // Eliminate Common SubExpressions. 962 TheFPM->add(createGVNPass()); 963 // Simplify the control flow graph (deleting unreachable blocks, etc). 964 TheFPM->add(createCFGSimplificationPass()); 965 966 TheFPM->doInitialization(); 967 } 968 969 static void HandleDefinition() { 970 if (auto FnAST = ParseDefinition()) { 971 if (auto *FnIR = FnAST->codegen()) { 972 fprintf(stderr, "Read function definition:"); 973 FnIR->print(errs()); 974 fprintf(stderr, "\n"); 975 ExitOnErr(TheJIT->addModule( 976 ThreadSafeModule(std::move(TheModule), std::move(TheContext)))); 977 InitializeModuleAndPassManager(); 978 } 979 } else { 980 // Skip token for error recovery. 981 getNextToken(); 982 } 983 } 984 985 static void HandleExtern() { 986 if (auto ProtoAST = ParseExtern()) { 987 if (auto *FnIR = ProtoAST->codegen()) { 988 fprintf(stderr, "Read extern: "); 989 FnIR->print(errs()); 990 fprintf(stderr, "\n"); 991 FunctionProtos[ProtoAST->getName()] = std::move(ProtoAST); 992 } 993 } else { 994 // Skip token for error recovery. 995 getNextToken(); 996 } 997 } 998 999 static void HandleTopLevelExpression() { 1000 // Evaluate a top-level expression into an anonymous function. 1001 if (auto FnAST = ParseTopLevelExpr()) { 1002 if (FnAST->codegen()) { 1003 // Create a ResourceTracker to track JIT'd memory allocated to our 1004 // anonymous expression -- that way we can free it after executing. 1005 auto RT = TheJIT->getMainJITDylib().createResourceTracker(); 1006 1007 auto TSM = ThreadSafeModule(std::move(TheModule), std::move(TheContext)); 1008 ExitOnErr(TheJIT->addModule(std::move(TSM), RT)); 1009 InitializeModuleAndPassManager(); 1010 1011 // Search the JIT for the __anon_expr symbol. 1012 auto ExprSymbol = ExitOnErr(TheJIT->lookup("__anon_expr")); 1013 1014 // Get the symbol's address and cast it to the right type (takes no 1015 // arguments, returns a double) so we can call it as a native function. 1016 double (*FP)() = (double (*)())(intptr_t)ExprSymbol.getAddress(); 1017 fprintf(stderr, "Evaluated to %f\n", FP()); 1018 1019 // Delete the anonymous expression module from the JIT. 1020 ExitOnErr(RT->remove()); 1021 } 1022 } else { 1023 // Skip token for error recovery. 1024 getNextToken(); 1025 } 1026 } 1027 1028 /// top ::= definition | external | expression | ';' 1029 static void MainLoop() { 1030 while (true) { 1031 fprintf(stderr, "ready> "); 1032 switch (CurTok) { 1033 case tok_eof: 1034 return; 1035 case ';': // ignore top-level semicolons. 1036 getNextToken(); 1037 break; 1038 case tok_def: 1039 HandleDefinition(); 1040 break; 1041 case tok_extern: 1042 HandleExtern(); 1043 break; 1044 default: 1045 HandleTopLevelExpression(); 1046 break; 1047 } 1048 } 1049 } 1050 1051 //===----------------------------------------------------------------------===// 1052 // "Library" functions that can be "extern'd" from user code. 1053 //===----------------------------------------------------------------------===// 1054 1055 #ifdef _WIN32 1056 #define DLLEXPORT __declspec(dllexport) 1057 #else 1058 #define DLLEXPORT 1059 #endif 1060 1061 /// putchard - putchar that takes a double and returns 0. 1062 extern "C" DLLEXPORT double putchard(double X) { 1063 fputc((char)X, stderr); 1064 return 0; 1065 } 1066 1067 /// printd - printf that takes a double prints it as "%f\n", returning 0. 1068 extern "C" DLLEXPORT double printd(double X) { 1069 fprintf(stderr, "%f\n", X); 1070 return 0; 1071 } 1072 1073 //===----------------------------------------------------------------------===// 1074 // Main driver code. 1075 //===----------------------------------------------------------------------===// 1076 1077 int main() { 1078 InitializeNativeTarget(); 1079 InitializeNativeTargetAsmPrinter(); 1080 InitializeNativeTargetAsmParser(); 1081 1082 // Install standard binary operators. 1083 // 1 is lowest precedence. 1084 BinopPrecedence['<'] = 10; 1085 BinopPrecedence['+'] = 20; 1086 BinopPrecedence['-'] = 20; 1087 BinopPrecedence['*'] = 40; // highest. 1088 1089 // Prime the first token. 1090 fprintf(stderr, "ready> "); 1091 getNextToken(); 1092 1093 TheJIT = ExitOnErr(KaleidoscopeJIT::Create()); 1094 1095 InitializeModuleAndPassManager(); 1096 1097 // Run the main "interpreter loop" now. 1098 MainLoop(); 1099 1100 return 0; 1101 } 1102