forked from KPGPMC/furlang
b68a559980
Change p_name to be of type std::string instead of furc::token.
162 lines
6.2 KiB
C++
162 lines
6.2 KiB
C++
#include "furc/front/ir_generator.hpp"
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#include "furc/ast/declaration.hpp" // IWYU pragma: keep
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#include "furc/ast/expression.hpp" // IWYU pragma: keep
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#include "furc/ast/literal.hpp" // IWYU pragma: keep
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#include "furc/ast/statement.hpp" // IWYU pragma: keep
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#include <cassert>
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#include <iostream>
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namespace furc::front {
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namespace {
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namespace ir = furlang::ir;
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}
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void ir_generator::visit(const ast::function_definition_node& funcDef) {
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m_currentFunction = std::make_unique<furlang::ir::function>(std::string(funcDef.name()));
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push_block();
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if (funcDef.body().has_error()) {
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std::cerr << funcDef.body().error() << '\n';
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return;
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}
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for (const auto& stmt : funcDef.body()->statements) {
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stmt.value()->accept(*this);
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}
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m_currentBlock->emplace<ir::return_instruction>();
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m_module.push(std::move(m_currentFunction));
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}
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void ir_generator::visit(const ast::return_statement_node& returnStmt) {
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if (!returnStmt.value().has_value()) return;
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auto value = returnStmt.value().value();
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if (value.has_error()) {
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std::cerr << value.error() << '\n';
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return;
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}
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if (value.has_value()) {
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value.value()->accept(*this);
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push<ir::return_instruction>(ir::operand::new_reg(m_registerCounter - 1));
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} else {
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push<ir::return_instruction>();
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}
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}
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void ir_generator::visit(const ast::if_statement_node& node) {
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node.cond().value()->accept(*this);
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ir_register cond = m_registerCounter - 1;
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push<ir::branch_cond_instruction>(ir::operand::new_reg(cond),
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m_currentFunction->blocks().size(),
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m_currentFunction->blocks().size() + 1);
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push_block(); // then block
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node.then().value()->accept(*this);
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if (node.elze().has_value()) {
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m_currentBlock->emplace<ir::branch_instruction>(m_currentFunction->blocks().size() + 1);
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push_block(); // else block
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node.elze().value().value()->accept(*this);
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}
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m_currentBlock->emplace<ir::branch_instruction>(m_currentFunction->blocks().size());
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push_block(); // merge block
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}
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void ir_generator::visit(const ast::compound_statement_node& node) {
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for (const auto& stmt : node.body()->statements) {
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stmt.value()->accept(*this);
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}
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}
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void ir_generator::visit(const ast::string_literal_node& node) {
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push<furlang::ir::assign_instruction>(ir::operand::new_string(node.value()),
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ir::operand::new_reg(m_registerCounter++));
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}
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void ir_generator::visit(const ast::integer_literal_node& node) {
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push<furlang::ir::assign_instruction>(ir::operand::new_integer(node.value()),
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ir::operand::new_reg(m_registerCounter++));
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}
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void ir_generator::visit(const ast::var_read_expression_node& node) {
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if (auto it = m_variables.find(*node.get_name()); it != m_variables.end()) {
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push<furlang::ir::assign_instruction>(ir::operand::new_reg(it->second),
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ir::operand::new_reg(m_registerCounter++));
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} else {
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throw std::runtime_error("unknown variable");
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}
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}
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void ir_generator::visit(const ast::unaryop_expression_node& node) {
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throw std::runtime_error("unimplemented");
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}
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static inline furlang::ir::binary_op_instruction_t binary_op_instruction_t(ast::binop_expression_node_t type) {
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switch (type) {
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case ast::binop_expression_node_t::Add: return furlang::ir::binary_op_instruction_t::Add;
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case ast::binop_expression_node_t::Sub: return furlang::ir::binary_op_instruction_t::Sub;
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case ast::binop_expression_node_t::Mul: return furlang::ir::binary_op_instruction_t::Mul;
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case ast::binop_expression_node_t::Div: return furlang::ir::binary_op_instruction_t::Div;
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case ast::binop_expression_node_t::Mod: return furlang::ir::binary_op_instruction_t::Mod;
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case ast::binop_expression_node_t::Equal: return furlang::ir::binary_op_instruction_t::Eq;
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case ast::binop_expression_node_t::NotEqual: return furlang::ir::binary_op_instruction_t::NotEq;
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case ast::binop_expression_node_t::LessThan: return furlang::ir::binary_op_instruction_t::LessThan;
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case ast::binop_expression_node_t::GreaterThan: return furlang::ir::binary_op_instruction_t::GreaterThan;
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case ast::binop_expression_node_t::LessEqual: return furlang::ir::binary_op_instruction_t::LessEq;
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case ast::binop_expression_node_t::GreaterEqual: return furlang::ir::binary_op_instruction_t::GreaterEq;
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case ast::binop_expression_node_t::None:
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default: throw std::runtime_error("unreachable");
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}
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}
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void ir_generator::visit(const ast::binop_expression_node& node) {
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node.lhs().value()->accept(*this);
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ir_register lhs = m_registerCounter - 1;
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node.rhs().value()->accept(*this);
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ir_register rhs = m_registerCounter - 1;
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ir_register dst = m_registerCounter++;
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push<furlang::ir::binary_op_instruction>(binary_op_instruction_t(node.type()),
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ir::operand::new_reg(lhs),
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ir::operand::new_reg(rhs),
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ir::operand::new_reg(dst));
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}
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void ir_generator::visit(const ast::var_assign_expression_node& node) {
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node.rhs().value()->accept(*this);
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ir_register rhs = m_registerCounter - 1;
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assert(node.lhs().value()->expression_type() == ast::expression_node_t::VarRead);
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auto lhs = std::dynamic_pointer_cast<ast::var_read_expression_node>(node.lhs().value());
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ir_register reg = 0;
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if (auto it = m_variables.find(*lhs->get_name()); it != m_variables.end()) {
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reg = it->second;
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} else {
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m_variables[*lhs->get_name()] = reg = m_registerCounter++;
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}
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auto compound = node.compound();
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if (compound != ast::binop_expression_node_t::None) {
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push<ir::binary_op_instruction>(binary_op_instruction_t(compound),
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ir::operand::new_reg(reg),
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ir::operand::new_reg(rhs),
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ir::operand::new_reg(reg));
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} else {
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push<ir::assign_instruction>(ir::operand::new_reg(rhs), ir::operand::new_reg(reg));
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}
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}
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furlang::ir::block_index ir_generator::push_block() {
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if (!m_currentFunction->blocks().empty() && !m_currentFunction->blocks().back()->has_exit()) {
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throw std::runtime_error(
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"block " + std::to_string(m_currentFunction->blocks().size() - 1) + " is lacking an exit");
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}
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ir::block_index index = m_currentFunction->blocks().size();
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m_currentBlock = m_currentFunction->push();
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return index;
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}
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} // namespace furc::front
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