Files
clox/parser.c
T

253 lines
5.9 KiB
C

#include "parser.h"
#include "expr.h"
#include "token.h"
#include <stdio.h>
Expr* Expression(void);
Expr* Equality(void);
Expr* Comparison(void);
Expr* Term(void);
Expr* Factor(void);
Expr* Unary(void);
Expr* Primary(void);
int Match(int, ...);
int Check(TokenType);
int ParserAtEnd(void);
Token* ParserPeek(void);
Token* Previous(void);
Token* AdvanceParser(void);
void SynchronizeParser(void);
const TokenList* ListOfTokens;
int Current = 0;
Expr* GenerateExpressionTree(const TokenList* list) {
ListOfTokens = list;
return Expression();
}
//Simply expands the equality rule
Expr* Expression() {
return Equality();
}
Expr* Equality() {
Expr* expr = Comparison();
while(Match(2, Bang_Equal, Equal_Equal)) {
Token* operator = Previous();
Expr* right = Comparison();
Expr* temp = calloc(1, sizeof(Expr));
temp->type = BINARY;
temp->expression.Binary.left = expr;
temp->expression.Binary.op = operator;
temp->expression.Binary.right = right;
expr = temp;
}
return expr;
}
Expr* Comparison() {
Expr* expr = Term();
while(Match(4, Greater, Greater_Equal, Less, Less_Equal)) {
Token* operator = Previous();
Expr* right = Term();
Expr* temp = calloc(1, sizeof(Expr));
temp->type = BINARY;
temp->expression.Binary.left = expr;
temp->expression.Binary.op = operator;
temp->expression.Binary.right = right;
expr = temp;
}
return expr;
}
Expr* Term() {
Expr* expr = Factor();
while(Match(2, Minus, Plus)) {
Token* operator = Previous();
Expr* right = Factor();
Expr* temp = calloc(1, sizeof(Expr));
temp->type = BINARY;
temp->expression.Binary.left = expr;
temp->expression.Binary.op = operator;
temp->expression.Binary.right = right;
expr = temp;
}
return expr;
}
Expr* Factor() {
Expr* expr = Unary();
while(Match(2, Slash, Star)) {
Token* operator = Previous();
Expr* right = Unary();
Expr* temp = calloc(1, sizeof(Expr));
temp->type = BINARY;
temp->expression.Binary.left = expr;
temp->expression.Binary.op = operator;
temp->expression.Binary.right = right;
expr = temp;
}
return expr;
}
Expr* Unary() {
if (Match(2, Bang, Minus)) {
Token* operator = Previous();
Expr* right = Unary();
Expr* expr = calloc(1, sizeof(Expr));
expr->type = UNARY;
expr->expression.Unary.op = operator;
expr->expression.Unary.right = right;
return expr;
}
return Primary();
}
Expr* Primary() {
Expr* expr = calloc(1, sizeof(Expr));
expr->type = LITERAL;
if (Match(3, FALSE, TRUE, NIL)) {
expr->expression.Literal = ParserPeek();
return expr;
}
if (Match(2, Number, String)) {
expr->expression.Literal = Previous();
return expr;
}
free(expr);
if (Match(1, LParen)) {
expr = Expression();
if (!Check(RParen)) {
free(expr);
printf("Unbalanced\n"); //Todo: something or another...
return NULL;
}
//Consume(RParen, "Expect ')' after expression.");
Expr* temp = calloc(1, sizeof(Expr));
temp->type = GROUPING;
temp->expression.Grouping.expression = expr;
return temp;
}
printf("Bad expression\n");
return NULL;
}
int Match(int count, ...) {
va_list list;
va_start(list, count);
for(int i = 0; i < count; i++) {
if(Check(va_arg(list, TokenType))) {
AdvanceParser();
return 1;
}
}
return 0;
}
int Check(TokenType type) {
if (ParserAtEnd()) return 0;
return ParserPeek()->type == type;
}
int ParserAtEnd() {
return ParserPeek()->type == EndOF;
}
Token* ParserPeek() {
return ListOfTokens->tokens[Current];
}
Token* Previous() {
return ListOfTokens->tokens[Current - 1];
}
Token* AdvanceParser() {
if (!ParserAtEnd()) Current++;
return Previous();
}
//In the Java implementation this get's called in catch blocks.
//Obviously that's not going to fly in C, so I need some way to
//"unwind" the stack. Maybe synchronizing (setting the Current variable)
//will be enough, and simply return NULLs up the call stack.
//Naive but might work in the future for this.
void SynchronizeParser(void) {
AdvanceParser();
//Discard tokens until we find a statement boundary, or at least something that looks like one.
while(!ParserAtEnd()) {
if (Previous()->type == Semicolon) return;
switch(ParserPeek()->type) {
case CLASS:
case FOR:
case FUN:
case IF:
case PRINT:
case RETURN:
case VAR:
case WHILE:
return;
default:
break;
}
AdvanceParser();
}
}
void PrintExpressionTree(const Expr* tree) {
if (!tree) return;
if (tree->type == BINARY) {
printf("(");
PrintExpressionTree(tree->expression.Binary.left);
PrintExpressionTree(tree->expression.Binary.right);
printf("%s", tree->expression.Binary.op->lexeme);
printf(")");
}
else if (tree->type == UNARY) {
printf("(");
printf("%s", tree->expression.Unary.op->lexeme);
PrintExpressionTree(tree->expression.Unary.right);
printf(")");
}
else if (tree->type == GROUPING) {
PrintExpressionTree(tree->expression.Grouping.expression);
}
else if (tree->type == LITERAL) printf("%s", tree->expression.Literal->lexeme);
}
void FreeExpressionTree(Expr* tree) {
if (!tree) return;
if (tree->type == BINARY) {
FreeExpressionTree(tree->expression.Binary.left);
FreeExpressionTree(tree->expression.Binary.right);
}
else if (tree->type == UNARY) {
FreeExpressionTree(tree->expression.Unary.right);
}
free(tree);
}