248 lines
9.1 KiB
Rust
248 lines
9.1 KiB
Rust
use std::collections::BTreeMap;
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use serde::{Deserialize, Serialize};
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use tree_sitter::Node;
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use crate::{
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AbstractTree, Block, Error, Expression, Function, Identifier, List, Map, Result, Statement,
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Type, TypeDefinition, Value,
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};
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#[derive(Debug, Clone, Serialize, Deserialize, Eq, PartialEq, PartialOrd, Ord)]
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pub enum ValueNode {
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Boolean(String),
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Float(String),
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Function(Function),
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Integer(String),
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String(String),
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List(Vec<Expression>),
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Option(Option<Box<Expression>>),
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Map(BTreeMap<String, (Statement, Option<Type>)>),
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}
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impl AbstractTree for ValueNode {
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fn from_syntax_node(source: &str, node: Node, context: &Map) -> Result<Self> {
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Error::expect_syntax_node(source, "value", node)?;
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let child = node.child(0).unwrap();
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let value_node = match child.kind() {
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"boolean" => ValueNode::Boolean(source[child.byte_range()].to_string()),
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"float" => ValueNode::Float(source[child.byte_range()].to_string()),
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"function" => {
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let child_count = child.child_count();
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let mut parameters = Vec::new();
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let mut parameter_types = Vec::new();
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for index in 1..child_count - 3 {
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let child = child.child(index).unwrap();
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if child.kind() == "identifier" {
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let identifier = Identifier::from_syntax_node(source, child, context)?;
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parameters.push(identifier);
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}
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if child.kind() == "type_definition" {
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let type_definition =
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TypeDefinition::from_syntax_node(source, child, context)?;
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parameter_types.push(type_definition.take_inner());
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}
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}
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let function_context = Map::clone_from(context)?;
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for (parameter_name, parameter_type) in
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parameters.iter().zip(parameter_types.iter())
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{
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function_context.set(
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parameter_name.inner().clone(),
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Value::none(),
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Some(parameter_type.clone()),
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)?;
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}
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let return_type_node = child.child(child_count - 2).unwrap();
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let return_type =
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TypeDefinition::from_syntax_node(source, return_type_node, context)?;
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let body_node = child.child(child_count - 1).unwrap();
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let body = Block::from_syntax_node(source, body_node, &function_context)?;
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let r#type = Type::Function {
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parameter_types,
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return_type: Box::new(return_type.take_inner()),
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};
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ValueNode::Function(Function::new(parameters, body, Some(r#type)))
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}
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"integer" => ValueNode::Integer(source[child.byte_range()].to_string()),
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"string" => {
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let without_quotes = child.start_byte() + 1..child.end_byte() - 1;
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ValueNode::String(source[without_quotes].to_string())
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}
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"list" => {
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let mut expressions = Vec::new();
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for index in 1..child.child_count() - 1 {
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let current_node = child.child(index).unwrap();
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if current_node.is_named() {
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let expression =
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Expression::from_syntax_node(source, current_node, context)?;
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expressions.push(expression);
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}
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}
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ValueNode::List(expressions)
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}
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"map" => {
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let mut child_nodes = BTreeMap::new();
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let mut current_key = "".to_string();
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let mut current_type = None;
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for index in 0..child.child_count() - 1 {
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let child_syntax_node = child.child(index).unwrap();
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if child_syntax_node.kind() == "identifier" {
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current_key =
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Identifier::from_syntax_node(source, child_syntax_node, context)?
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.take_inner();
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current_type = None;
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}
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if child_syntax_node.kind() == "type_definition" {
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current_type = Some(
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TypeDefinition::from_syntax_node(source, child_syntax_node, context)?
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.take_inner(),
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);
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}
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if child_syntax_node.kind() == "statement" {
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let statement =
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Statement::from_syntax_node(source, child_syntax_node, context)?;
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if let Some(type_definition) = ¤t_type {
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type_definition.check(&statement.expected_type(context)?)?;
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}
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child_nodes.insert(current_key.clone(), (statement, current_type.clone()));
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}
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}
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ValueNode::Map(child_nodes)
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}
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"option" => {
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let first_grandchild = child.child(0).unwrap();
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if first_grandchild.kind() == "none" {
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ValueNode::Option(None)
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} else {
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let expression_node = child.child(2).unwrap();
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let expression =
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Expression::from_syntax_node(source, expression_node, context)?;
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ValueNode::Option(Some(Box::new(expression)))
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}
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}
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_ => {
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return Err(Error::UnexpectedSyntaxNode {
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expected: "string, integer, float, boolean, list, map, or option".to_string(),
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actual: child.kind().to_string(),
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location: child.start_position(),
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relevant_source: source[child.byte_range()].to_string(),
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})
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}
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};
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Ok(value_node)
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}
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fn run(&self, source: &str, context: &Map) -> Result<Value> {
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let value = match self {
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ValueNode::Boolean(value_source) => Value::Boolean(value_source.parse().unwrap()),
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ValueNode::Float(value_source) => Value::Float(value_source.parse().unwrap()),
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ValueNode::Function(function) => Value::Function(function.clone()),
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ValueNode::Integer(value_source) => Value::Integer(value_source.parse().unwrap()),
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ValueNode::String(value_source) => Value::String(value_source.parse().unwrap()),
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ValueNode::List(expressions) => {
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let mut values = Vec::with_capacity(expressions.len());
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for node in expressions {
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let value = node.run(source, context)?;
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values.push(value);
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}
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Value::List(List::with_items(values))
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}
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ValueNode::Option(option) => {
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let option_value = if let Some(expression) = option {
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Some(Box::new(expression.run(source, context)?))
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} else {
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None
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};
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Value::Option(option_value)
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}
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ValueNode::Map(key_statement_pairs) => {
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let map = Map::new();
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{
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for (key, (statement, r#type)) in key_statement_pairs {
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let value = statement.run(source, context)?;
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map.set(key.clone(), value, r#type.clone())?;
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}
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}
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Value::Map(map)
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}
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};
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Ok(value)
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}
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fn expected_type(&self, context: &Map) -> Result<Type> {
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let type_definition = match self {
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ValueNode::Boolean(_) => Type::Boolean,
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ValueNode::Float(_) => Type::Float,
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ValueNode::Function(function) => function.r#type().clone(),
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ValueNode::Integer(_) => Type::Integer,
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ValueNode::String(_) => Type::String,
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ValueNode::List(expressions) => {
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let mut previous_type = None;
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for expression in expressions {
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let expression_type = expression.expected_type(context)?;
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if let Some(previous) = previous_type {
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if expression_type != previous {
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return Ok(Type::List(Box::new(Type::Any)));
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}
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}
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previous_type = Some(expression_type);
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}
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if let Some(previous) = previous_type {
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Type::List(Box::new(previous))
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} else {
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Type::List(Box::new(Type::Any))
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}
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}
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ValueNode::Option(option) => {
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if let Some(expression) = option {
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Type::Option(Box::new(expression.expected_type(context)?))
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} else {
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Type::None
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}
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}
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ValueNode::Map(_) => Type::Map,
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};
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Ok(type_definition)
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}
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}
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