Files
furlang/furc/src/ast.cpp
T
CHatingPython b2e33e1bdd Add AST visitor
Signed-off-by: CHatingPython <chatingpython@gmail.com>
2026-05-31 19:16:52 +02:00

213 lines
7.5 KiB
C++

#include "furc/ast/declaration.hpp"
#include "furc/ast/literal.hpp"
#include "furc/ast/node.hpp"
#include "furc/ast/program.hpp"
#include "furc/ast/statement.hpp"
#include <ostream>
namespace furc::ast {
bool literal_node::equal(const node& rhs) const {
return literal_type() == reinterpret_cast<const literal_node&>(rhs).literal_type();
}
void string_literal_node::accept(visitor& visitor) const {
visitor.visit_string_literal_node(*this);
}
std::ostream& string_literal_node::print(std::ostream& os) const {
if (m_value.has_error()) return os << m_value.error();
return os << '"' << *m_value << '"';
}
bool string_literal_node::equal(const node& rhs) const {
return literal_node::equal(rhs) && m_value == reinterpret_cast<const string_literal_node&>(rhs).m_value;
}
void integer_literal_node::accept(visitor& visitor) const {
visitor.visit_integer_literal_node(*this);
}
std::ostream& integer_literal_node::print(std::ostream& os) const {
if (m_value.has_error()) return os << m_value.error();
return os << *m_value;
}
bool integer_literal_node::equal(const node& rhs) const {
return literal_node::equal(rhs) && m_value == reinterpret_cast<const integer_literal_node&>(rhs).m_value;
}
bool expression_node::equal(const node& rhs) const {
return expression_type() == reinterpret_cast<const expression_node&>(rhs).expression_type();
}
void var_read_expression_node::accept(visitor& visitor) const {
visitor.visit_var_read_expression_node(*this);
}
std::ostream& var_read_expression_node::print(std::ostream& os) const {
if (m_name.present()) return os << *m_name;
return os << m_name.error();
}
bool var_read_expression_node::equal(const node& rhsNode) const {
const auto& rhs = reinterpret_cast<const var_read_expression_node&>(rhsNode);
return expression_node::equal(rhsNode) && m_name == rhs.m_name;
}
std::ostream& operator<<(std::ostream& os, unaryop_expression_node_t type) {
switch (type) {
case unaryop_expression_node_t::Positive: return os << "+";
case unaryop_expression_node_t::Negative: return os << "-";
case unaryop_expression_node_t::PrefixIncrement:
case unaryop_expression_node_t::PostfixIncrement: return os << "++";
case unaryop_expression_node_t::PrefixDecrement:
case unaryop_expression_node_t::PostfixDecrement: return os << "--";
}
return os;
}
void unaryop_expression_node::accept(visitor& visitor) const {
visitor.visit_unaryop_expression_node(*this);
}
std::ostream& unaryop_expression_node::print(std::ostream& os) const {
switch (m_type) {
case unaryop_expression_node_t::Positive:
case unaryop_expression_node_t::Negative:
case unaryop_expression_node_t::PrefixIncrement:
case unaryop_expression_node_t::PrefixDecrement: return os << '(' << m_type << *m_node << ')';
case unaryop_expression_node_t::PostfixIncrement:
case unaryop_expression_node_t::PostfixDecrement: return os << '(' << *m_node << m_type << ')';
}
return os;
}
bool unaryop_expression_node::equal(const node& rhsNode) const {
const auto& rhs = reinterpret_cast<const unaryop_expression_node&>(rhsNode);
return expression_node::equal(rhsNode) && m_type == rhs.m_type && m_node == rhs.m_node;
}
std::ostream& operator<<(std::ostream& os, binop_expression_node_t type) {
switch (type) {
default:
case binop_expression_node_t::None: return os;
case binop_expression_node_t::Add: return os << '+';
case binop_expression_node_t::Sub: return os << '-';
case binop_expression_node_t::Mul: return os << '*';
case binop_expression_node_t::Div: return os << '/';
case binop_expression_node_t::Mod: return os << '%';
case binop_expression_node_t::Equal: return os << "==";
case binop_expression_node_t::NotEqual: return os << "!=";
case binop_expression_node_t::LessThan: return os << '<';
case binop_expression_node_t::GreaterThan: return os << '>';
case binop_expression_node_t::LessEqual: return os << "<=";
case binop_expression_node_t::GreaterEqual: return os << ">=";
}
}
void binop_expression_node::accept(visitor& visitor) const {
visitor.visit_binop_expression_node(*this);
}
std::ostream& binop_expression_node::print(std::ostream& os) const {
if (m_type == binop_expression_node_t::None) return os;
return os << '(' << *m_lhs << ' ' << m_type << ' ' << *m_rhs << ')';
}
bool binop_expression_node::equal(const node& rhsNode) const {
const auto& rhs = reinterpret_cast<const binop_expression_node&>(rhsNode);
return expression_node::equal(rhsNode) && m_type == rhs.m_type && m_lhs == rhs.m_lhs && m_rhs == rhs.m_rhs;
}
void var_assign_expression_node::accept(visitor& visitor) const {
visitor.visit_var_assign_expression_node(*this);
}
std::ostream& var_assign_expression_node::print(std::ostream& os) const {
return os << '(' << *m_lhs << ' ' << m_compound << "= " << *m_rhs << ')';
}
bool var_assign_expression_node::equal(const node& rhsNode) const {
const auto& rhs = reinterpret_cast<const var_assign_expression_node&>(rhsNode);
return expression_node::equal(rhsNode) && m_compound == rhs.m_compound && m_lhs == rhs.m_lhs && m_rhs == rhs.m_rhs;
}
bool declaration_node::equal(const node& rhs) const {
return declaration_type() == reinterpret_cast<const declaration_node&>(rhs).declaration_type();
}
void function_declaration_node::accept(visitor& visitor) const {
visitor.visit_function_declaration_node(*this);
}
std::ostream& function_declaration_node::print(std::ostream& os) const {
return os << "function " << m_name->string << " declaration";
}
bool function_declaration_node::equal(const node& rhs) const {
return declaration_node::equal(rhs) && m_name == reinterpret_cast<const function_declaration_node&>(rhs).m_name;
}
void function_definition_node::accept(visitor& visitor) const {
visitor.visit_function_definition_node(*this);
}
std::ostream& function_definition_node::print(std::ostream& os) const {
function_declaration_node::print(os);
os << ':';
if (m_body.present()) {
for (const auto& entry : m_body->statements)
os << '\n' << entry;
return os << '\n' << m_body->end << ": " << m_name->string << " end";
}
return os << m_body.error(); // error
}
bool function_definition_node::equal(const node& rhs) const {
return function_declaration_node::equal(rhs) &&
m_body == reinterpret_cast<const function_definition_node&>(rhs).m_body;
}
bool statement_node::equal(const node& rhs) const {
return statement_type() == reinterpret_cast<const statement_node&>(rhs).statement_type();
}
void return_statement_node::accept(visitor& visitor) const {
visitor.visit_return_statement_node(*this);
}
std::ostream& return_statement_node::print(std::ostream& os) const {
os << "return statement";
if (m_value.present()) return os << ' ' << *m_value;
return os;
}
bool return_statement_node::equal(const node& rhs) const {
return statement_node::equal(rhs) && m_value == reinterpret_cast<const return_statement_node&>(rhs).m_value;
}
void program_node::accept(visitor& visitor) const {
for (const auto& decl : m_declarations) {
if (decl.has_error()) {
visitor.visit_error(decl);
} else {
decl->accept(visitor);
}
}
}
std::ostream& program_node::print(std::ostream& os) const {
os << "program:";
for (const auto& handle : m_declarations) {
os << '\n' << handle;
}
return os;
}
bool program_node::equal(const node& rhs) const {
return m_declarations == reinterpret_cast<const program_node&>(rhs).m_declarations;
}
} // namespace furc::ast