[fine] Fully untested compiler
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f2b9eae339
commit
d14c9a72df
3 changed files with 286 additions and 31 deletions
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@ -1,6 +1,6 @@
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use crate::{
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parser::{Tree, TreeKind, TreeRef},
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semantics::{Semantics, Type},
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semantics::{Location, Semantics, Type},
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tokens::TokenKind,
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};
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@ -8,10 +8,25 @@ use crate::{
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// But I'm not cool.
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pub enum Instruction {
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Panic,
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BoolNot,
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Discard,
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FloatAdd,
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FloatDivide,
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FloatMultiply,
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FloatSubtract,
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Jump(usize),
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JumpFalse(usize),
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JumpTrue(usize),
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LoadArgument(usize),
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LoadLocal(usize),
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LoadModule(usize),
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PushFalse,
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PushFloat(f64),
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PushNothing,
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PushString(usize),
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PushTrue,
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PushFalse,
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StoreLocal(usize),
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}
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pub struct Function {
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@ -19,29 +34,32 @@ pub struct Function {
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strings: Vec<String>,
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}
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type CR = Option<()>;
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const OK: CR = CR::Some(());
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pub fn compile_expression(code: &mut Function, semantics: &Semantics, t: TreeRef) {
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let tree = &semantics.tree()[t];
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match tree.kind {
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TreeKind::Error => code.instructions.push(Instruction::Panic),
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let cr = match tree.kind {
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TreeKind::Error => None,
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TreeKind::LiteralExpression => compile_literal(code, semantics, t, tree),
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TreeKind::GroupingExpression => compile_grouping(code, semantics, tree),
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TreeKind::UnaryExpression => todo!(),
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TreeKind::ConditionalExpression => todo!(),
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TreeKind::BinaryExpression => todo!(),
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TreeKind::Identifier => todo!(),
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TreeKind::UnaryExpression => compile_unary_operator(code, semantics, tree),
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TreeKind::ConditionalExpression => compile_condition_expression(code, semantics, tree),
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TreeKind::BinaryExpression => compile_binary_expression(code, semantics, tree),
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TreeKind::Identifier => compile_identifier_expression(code, semantics, t, tree),
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TreeKind::CallExpression => todo!(),
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TreeKind::Block => todo!(),
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TreeKind::Block => compile_block_expression(code, semantics, tree),
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_ => {
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semantics.internal_compiler_error(Some(t), "tree is not an expression, cannot compile")
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}
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};
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if matches!(cr, None) {
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code.instructions.push(Instruction::Panic);
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}
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}
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fn compile_literal(code: &mut Function, semantics: &Semantics, t: TreeRef, tr: &Tree) {
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let Some(tok) = tr.nth_token(0) else {
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code.instructions.push(Instruction::Panic);
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return;
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};
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fn compile_literal(code: &mut Function, semantics: &Semantics, t: TreeRef, tr: &Tree) -> CR {
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let tok = tr.nth_token(0)?;
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match semantics.type_of(t) {
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Type::F64 => code
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.instructions
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@ -79,15 +97,226 @@ fn compile_literal(code: &mut Function, semantics: &Semantics, t: TreeRef, tr: &
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}
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Type::Error => code.instructions.push(Instruction::Panic),
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_ => panic!("unsupported literal type: {t:?}"),
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}
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};
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OK
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}
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fn compile_grouping(code: &mut Function, semantics: &Semantics, t: &Tree) {
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if let Some(t) = t.nth_tree(1) {
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compile_expression(code, semantics, t)
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fn compile_grouping(code: &mut Function, semantics: &Semantics, t: &Tree) -> CR {
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compile_expression(code, semantics, t.nth_tree(1)?);
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OK
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}
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fn compile_unary_operator(code: &mut Function, semantics: &Semantics, t: &Tree) -> CR {
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compile_expression(code, semantics, t.nth_tree(1)?);
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let tok = t.nth_token(0)?;
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match tok.kind {
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TokenKind::Minus => {
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code.instructions.push(Instruction::PushFloat(-1.0));
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code.instructions.push(Instruction::FloatMultiply);
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}
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TokenKind::Bang => {
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code.instructions.push(Instruction::BoolNot);
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}
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_ => panic!("unsupported unary operator"),
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}
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OK
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}
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fn compile_condition_expression(code: &mut Function, semantics: &Semantics, t: &Tree) -> CR {
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let condition = t.nth_tree(1)?;
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compile_expression(code, semantics, condition);
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let jump_else_index = code.instructions.len();
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code.instructions.push(Instruction::JumpFalse(0));
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let then_branch = t.nth_tree(2)?;
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compile_expression(code, semantics, then_branch);
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if let Some(else_branch) = t.nth_tree(4) {
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let jump_end_index = code.instructions.len();
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code.instructions.push(Instruction::Jump(0));
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let else_index = code.instructions.len();
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code.instructions[jump_else_index] = Instruction::JumpFalse(else_index);
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compile_expression(code, semantics, else_branch);
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let end_index = code.instructions.len();
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code.instructions[jump_end_index] = Instruction::Jump(end_index);
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} else {
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let else_index = code.instructions.len();
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code.instructions[jump_else_index] = Instruction::JumpFalse(else_index);
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}
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OK
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}
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fn compile_binary_expression(code: &mut Function, semantics: &Semantics, t: &Tree) -> CR {
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compile_expression(code, semantics, t.nth_tree(0)?);
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match t.nth_token(1)?.kind {
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TokenKind::Plus => {
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compile_expression(code, semantics, t.nth_tree(2)?);
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code.instructions.push(Instruction::FloatAdd);
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}
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TokenKind::Minus => {
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compile_expression(code, semantics, t.nth_tree(2)?);
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code.instructions.push(Instruction::FloatSubtract);
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}
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TokenKind::Star => {
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compile_expression(code, semantics, t.nth_tree(2)?);
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code.instructions.push(Instruction::FloatMultiply);
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}
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TokenKind::Slash => {
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compile_expression(code, semantics, t.nth_tree(2)?);
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code.instructions.push(Instruction::FloatDivide);
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}
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TokenKind::And => {
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let jump_false_index = code.instructions.len();
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code.instructions.push(Instruction::JumpFalse(0));
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code.instructions.push(Instruction::PushTrue);
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let jump_end_index = code.instructions.len();
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code.instructions.push(Instruction::Jump(0));
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let false_index = code.instructions.len();
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code.instructions[jump_false_index] = Instruction::JumpFalse(false_index);
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compile_expression(code, semantics, t.nth_tree(2)?);
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let end_index = code.instructions.len();
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code.instructions[jump_end_index] = Instruction::Jump(end_index);
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}
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TokenKind::Or => {
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let jump_true_index = code.instructions.len();
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code.instructions.push(Instruction::JumpTrue(0));
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code.instructions.push(Instruction::PushTrue);
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let jump_end_index = code.instructions.len();
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code.instructions.push(Instruction::Jump(0));
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let true_index = code.instructions.len();
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code.instructions[jump_true_index] = Instruction::JumpTrue(true_index);
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compile_expression(code, semantics, t.nth_tree(2)?);
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let end_index = code.instructions.len();
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code.instructions[jump_end_index] = Instruction::Jump(end_index);
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}
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_ => panic!("Unsupported binary expression"),
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}
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OK
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}
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fn compile_identifier_expression(
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code: &mut Function,
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semantics: &Semantics,
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t: TreeRef,
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tree: &Tree,
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) -> Option<()> {
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let ident = tree.nth_token(0)?;
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let environment = semantics.environment_of(t);
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let declaration = environment.bind(ident)?;
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let instruction = match declaration.location {
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Location::Local => Instruction::LoadLocal(declaration.index),
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Location::Argument => Instruction::LoadArgument(declaration.index),
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Location::Module => Instruction::LoadModule(declaration.index),
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};
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code.instructions.push(instruction);
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OK
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}
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fn compile_block_expression(code: &mut Function, semantics: &Semantics, tree: &Tree) -> Option<()> {
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let last_is_brace = tree.nth_token(tree.children.len() - 1).is_some();
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let last_index = tree.children.len() - if last_is_brace { 2 } else { 1 };
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for i in 1..last_index {
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compile_statement(code, semantics, tree.nth_tree(i)?, false);
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}
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compile_statement(code, semantics, tree.nth_tree(last_index)?, true);
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OK
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}
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pub fn compile_statement(code: &mut Function, semantics: &Semantics, t: TreeRef, gen_value: bool) {
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let tree = &semantics.tree()[t];
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let cr = match tree.kind {
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TreeKind::FunctionDecl => compile_function_declaration(code, semantics, tree, gen_value),
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TreeKind::LetStatement => compile_let_statement(code, semantics, t, tree, gen_value),
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TreeKind::ExpressionStatement => {
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compile_expression_statement(code, semantics, tree, gen_value)
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}
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TreeKind::IfStatement => compile_if_statement(code, semantics, tree, gen_value),
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_ => panic!("unsupported tree kind {:?}", tree.kind),
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};
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if matches!(cr, None) {
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code.instructions.push(Instruction::Panic);
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}
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}
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pub fn compile_statement(code: &mut Function, semantics: &Semantics, t: TreeRef) {}
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fn compile_if_statement(
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code: &mut Function,
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semantics: &Semantics,
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tree: &Tree,
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gen_value: bool,
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) -> CR {
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compile_expression(code, semantics, tree.nth_tree(0)?);
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if !gen_value {
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code.instructions.push(Instruction::Discard);
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}
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OK
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}
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fn compile_expression_statement(
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code: &mut Function,
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semantics: &Semantics,
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tree: &Tree,
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gen_value: bool,
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) -> CR {
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compile_expression(code, semantics, tree.nth_tree(0)?);
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if tree
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.nth_token(1)
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.is_some_and(|t| t.kind == TokenKind::Semicolon)
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{
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code.instructions.push(Instruction::Discard);
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if gen_value {
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code.instructions.push(Instruction::PushNothing);
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}
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} else if !gen_value {
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code.instructions.push(Instruction::Discard);
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}
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OK
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}
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fn compile_let_statement(
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code: &mut Function,
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semantics: &Semantics,
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t: TreeRef,
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tree: &Tree,
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gen_value: bool,
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) -> CR {
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compile_expression(code, semantics, tree.nth_tree(3)?);
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let environment = semantics.environment_of(t);
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let declaration = environment.bind(tree.nth_token(1)?)?;
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// NOTE: Because this is a let statement I assume it's local!
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assert!(matches!(declaration.location, Location::Local));
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code.instructions
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.push(Instruction::StoreLocal(declaration.index));
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if gen_value {
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code.instructions.push(Instruction::PushNothing);
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}
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OK
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}
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fn compile_function_declaration(
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_code: &mut Function,
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_semantics: &Semantics,
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_tree: &Tree,
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_gen_value: bool,
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) -> CR {
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todo!()
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}
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@ -121,23 +121,48 @@ impl fmt::Display for Type {
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}
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}
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#[derive(Clone, Copy)]
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pub enum Location {
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Argument,
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Local,
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Module,
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}
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pub struct Declaration {
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pub declaration_type: Type,
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pub location: Location,
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pub index: usize,
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}
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pub struct Environment {
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pub parent: Option<EnvironmentRef>,
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pub location: Location,
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pub base_index: usize,
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pub declarations: HashMap<Box<str>, Declaration>,
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}
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impl Environment {
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pub fn new(parent: Option<EnvironmentRef>) -> Self {
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pub fn new(parent: Option<EnvironmentRef>, location: Location, base_index: usize) -> Self {
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Environment {
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parent,
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location,
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base_index,
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declarations: HashMap::new(),
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}
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}
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pub fn insert(&mut self, token: &Token, t: Type) {
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let index = self.base_index + self.declarations.len();
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self.declarations.insert(
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token.as_str().into(),
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Declaration {
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declaration_type: t,
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location: self.location,
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index,
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},
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);
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}
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pub fn bind(&self, token: &Token) -> Option<&Declaration> {
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if let Some(decl) = self.declarations.get(token.as_str()) {
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return Some(decl);
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@ -260,7 +285,7 @@ impl<'a> Semantics<'a> {
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errors: RefCell::new(vec![]),
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types: RefCell::new(vec![Incremental::None; tree.len()]),
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environments: RefCell::new(vec![Incremental::None; tree.len()]),
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empty_environment: EnvironmentRef::new(Environment::new(None)),
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empty_environment: EnvironmentRef::new(Environment::new(None, Location::Module, 0)),
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};
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// NOTE: We ensure all the known errors are reported before we move
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@ -397,10 +422,13 @@ impl<'a> Semantics<'a> {
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None => Type::Error,
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};
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let mut environment = Environment::new(Some(parent));
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environment
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.declarations
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.insert(name.as_str().into(), Declaration { declaration_type });
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let base_index = match parent.location {
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Location::Local => parent.base_index + parent.declarations.len(),
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_ => 0,
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};
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let mut environment = Environment::new(Some(parent), Location::Local, base_index);
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environment.insert(name, declaration_type);
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EnvironmentRef::new(environment)
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}
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@ -414,7 +442,7 @@ impl<'a> Semantics<'a> {
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return parent; // SE
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}
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let mut environment = Environment::new(Some(parent));
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let mut environment = Environment::new(Some(parent), Location::Argument, 0);
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for child in param_list.children.iter() {
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let Child::Tree(ct) = child else {
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continue;
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@ -434,9 +462,7 @@ impl<'a> Semantics<'a> {
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Type::Error
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};
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environment
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.declarations
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.insert(param_name.as_str().into(), Declaration { declaration_type });
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environment.insert(param_name, declaration_type);
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}
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EnvironmentRef::new(environment)
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@ -136,7 +136,7 @@ fn assert_type_at(
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};
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let tree_type = semantics.type_of(tree_ref);
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let actual = format!("{}", tree_type.unwrap_or(Type::Error));
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let actual = format!("{}", tree_type);
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semantic_assert_eq!(
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&semantics,
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Some(tree_ref),
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@ -167,7 +167,7 @@ fn assert_type_error_at(
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semantic_assert!(
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&semantics,
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Some(tree_ref),
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matches!(tree_type, Some(Type::Error)),
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matches!(tree_type, Type::Error),
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"The type of the {:?} tree at position {pos} was '{tree_type:?}', not an error",
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tree[tree_ref].kind
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);
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