10a7fcb576
The `Object` trait is too generic and has been causing confusion. This commit introduces `StreamStorage` as a dedicated trait for reactive stream types. This change involves: - Renaming `Object` to `StreamStorage` in relevant places. - Updating the `Value::Object` enum variant to `Value::Stream`. - Modifying how streams are handled in the compiler, VM, and tests to use the new `StreamStorage` trait. - Adjusting example scripts and tests to reflect the change in type representation. - The `StreamNode` struct now explicitly holds its `element_type`.
288 lines
9.9 KiB
Rust
288 lines
9.9 KiB
Rust
use crate::ast::nodes::{
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Address, AnalyzedNode, AnalyzedPhase, IdentifierBinding, Node, NodeKind, NodeMetrics, VirtualId,
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};
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use crate::ast::types::{Purity, Signature, StaticType, Value};
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use std::cell::RefCell;
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use std::collections::HashMap;
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use std::rc::Rc;
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#[derive(Debug, Clone, PartialEq, Eq, Hash)]
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pub struct MonoCacheKey {
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pub address: Address<VirtualId>,
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pub arg_types: Vec<StaticType>,
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}
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pub type CompileFunc = Rc<dyn Fn(Rc<Node<AnalyzedPhase>>, &[StaticType]) -> Result<(Value, StaticType), String>>;
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pub type RtlLookupFunc = Rc<dyn Fn(&str, &[StaticType]) -> Option<(Value, StaticType)>>;
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pub trait FunctionRegistry {
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fn resolve(&self, addr: Address<VirtualId>) -> Option<Rc<Node<AnalyzedPhase>>>;
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fn resolve_analyzed(&self, _addr: Address<VirtualId>) -> Option<Rc<AnalyzedNode>> {
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None
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}
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}
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pub type MonoCache = HashMap<MonoCacheKey, (Value, StaticType)>;
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pub struct Specializer {
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pub cache: Rc<RefCell<MonoCache>>,
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registry: Option<Rc<dyn FunctionRegistry>>,
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compiler: Option<CompileFunc>,
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rtl_lookup: Option<RtlLookupFunc>,
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}
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impl Specializer {
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pub fn new(
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registry: Option<Rc<dyn FunctionRegistry>>,
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compiler: Option<CompileFunc>,
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rtl_lookup: Option<RtlLookupFunc>,
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cache: Option<Rc<RefCell<MonoCache>>>,
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) -> Self {
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Self {
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cache: cache.unwrap_or_else(|| Rc::new(RefCell::new(HashMap::new()))),
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registry,
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compiler,
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rtl_lookup,
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}
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}
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pub fn specialize(&self, node: AnalyzedNode) -> AnalyzedNode {
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self.visit_node(node)
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}
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fn visit_node(&self, node: AnalyzedNode) -> AnalyzedNode {
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let (new_kind, metrics) = match node.kind {
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NodeKind::Call { callee, args } => {
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let (new_callee, new_args, _ret_ty) =
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self.specialize_call_logic(callee, args, node.ty.original.ty.clone());
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let new_metrics = node.ty.clone();
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(
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NodeKind::Call {
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callee: Rc::new(new_callee),
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args: Rc::new(new_args),
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},
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new_metrics,
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)
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}
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NodeKind::If {
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cond,
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then_br,
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else_br,
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} => {
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let cond = Rc::new(self.visit_node(cond.as_ref().clone()));
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let then_br = Rc::new(self.visit_node(then_br.as_ref().clone()));
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let else_br = else_br.map(|e| Rc::new(self.visit_node(e.as_ref().clone())));
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(
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NodeKind::If {
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cond,
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then_br,
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else_br,
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},
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node.ty.clone(),
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)
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}
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NodeKind::Block { exprs } => {
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let exprs = exprs.into_iter().map(|e| Rc::new(self.visit_node(e.as_ref().clone()))).collect();
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(NodeKind::Block { exprs }, node.ty.clone())
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}
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NodeKind::Lambda {
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params,
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body,
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info,
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} => {
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let params = Rc::new(self.visit_node(params.as_ref().clone()));
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let body = Rc::new(self.visit_node(body.as_ref().clone()));
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(
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NodeKind::Lambda {
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params,
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body,
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info,
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},
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node.ty.clone(),
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)
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}
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NodeKind::Def {
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pattern,
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value,
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info,
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} => {
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let value = Rc::new(self.visit_node(value.as_ref().clone()));
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(
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NodeKind::Def {
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pattern,
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value,
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info,
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},
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node.ty.clone(),
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)
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}
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NodeKind::Assign { target, value, info } => {
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let value = Rc::new(self.visit_node(value.as_ref().clone()));
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(NodeKind::Assign { target, value, info }, node.ty.clone())
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}
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NodeKind::Tuple { elements } => {
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let elements = elements.into_iter().map(|e| Rc::new(self.visit_node(e.as_ref().clone()))).collect();
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(NodeKind::Tuple { elements }, node.ty.clone())
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}
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NodeKind::Record { fields, layout } => {
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let fields = fields.into_iter().map(|(k, v)| (k, Rc::new(self.visit_node(v.as_ref().clone())))).collect();
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(NodeKind::Record { fields, layout }, node.ty.clone())
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}
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NodeKind::Expansion {
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original_call,
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expanded,
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} => {
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let expanded = Rc::new(self.visit_node(expanded.as_ref().clone()));
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(
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NodeKind::Expansion {
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original_call,
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expanded,
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},
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node.ty.clone(),
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)
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}
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NodeKind::Again { args } => {
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let args = Rc::new(self.visit_node(args.as_ref().clone()));
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(NodeKind::Again { args }, node.ty.clone())
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}
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NodeKind::GetField { rec, field } => {
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let rec = Rc::new(self.visit_node(rec.as_ref().clone()));
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(NodeKind::GetField { rec, field }, node.ty.clone())
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}
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k => (k, node.ty.clone()),
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};
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Node {
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identity: node.identity,
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kind: new_kind,
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ty: metrics,
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comments: node.comments.clone(),
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}
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}
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fn specialize_call_logic(
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&self,
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callee: Rc<AnalyzedNode>,
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args: Rc<AnalyzedNode>,
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original_ty: StaticType,
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) -> (AnalyzedNode, AnalyzedNode, StaticType) {
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let new_callee = self.visit_node(callee.as_ref().clone());
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let new_args = self.visit_node(args.as_ref().clone());
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let address = if let NodeKind::Identifier {
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binding: IdentifierBinding::Reference(addr),
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..
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} = &new_callee.kind
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{
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*addr
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} else {
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return (new_callee, new_args, original_ty);
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};
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let arg_types: Vec<StaticType> =
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if let StaticType::Tuple(elements) = &new_args.ty.original.ty {
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elements.clone()
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} else {
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vec![new_args.ty.original.ty.clone()]
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};
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if arg_types.iter().any(|t| matches!(t, StaticType::Any)) {
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return (new_callee, new_args, original_ty);
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}
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let key = MonoCacheKey {
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address,
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arg_types: arg_types.clone(),
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};
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if let Some((val, ret_ty)) = self.cache.borrow().get(&key) {
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let specialized_callee = self.make_constant_node(
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val.clone(),
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StaticType::Function(Box::new(Signature {
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params: StaticType::Tuple(arg_types),
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ret: ret_ty.clone(),
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})),
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&new_callee,
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);
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return (specialized_callee, new_args, ret_ty.clone());
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}
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if let Some(rtl_lookup) = &self.rtl_lookup
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&& let NodeKind::Identifier { symbol, .. } = &new_callee.kind
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&& let Some((val, ret_ty)) = rtl_lookup(&symbol.name, &arg_types)
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{
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self.cache
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.borrow_mut()
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.insert(key.clone(), (val.clone(), ret_ty.clone()));
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let specialized_callee = self.make_constant_node(
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val.clone(),
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StaticType::Function(Box::new(Signature {
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params: StaticType::Tuple(arg_types),
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ret: ret_ty.clone(),
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})),
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&new_callee,
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);
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return (specialized_callee, new_args, ret_ty);
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}
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if let Some(registry) = &self.registry
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&& let Some(func_node) = registry.resolve_analyzed(address)
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&& func_node.ty.is_recursive
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{
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return (new_callee, new_args, original_ty);
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}
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if let Some(compiler) = &self.compiler
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&& let Some(func_node) = self.registry.as_ref().and_then(|r| r.resolve(address))
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&& let Ok((compiled_val, ret_ty)) = compiler(func_node, &arg_types)
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{
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self.cache
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.borrow_mut()
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.insert(key, (compiled_val.clone(), ret_ty.clone()));
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// Only replace the callee if the compiled value is actually a function/object.
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// If it's a scalar (like 30 from folding), we DON'T fold here.
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// We keep the Call but update the callee to the specialized version if it's an object.
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if let Value::Stream(_) | Value::Function(_) = &compiled_val {
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let specialized_callee = self.make_constant_node(
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compiled_val,
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StaticType::Function(Box::new(Signature {
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params: StaticType::Tuple(arg_types),
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ret: ret_ty.clone(),
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})),
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&new_callee,
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);
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return (specialized_callee, new_args, ret_ty);
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}
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}
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(new_callee, new_args, original_ty)
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}
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fn make_constant_node(
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&self,
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val: Value,
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ty: StaticType,
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template: &AnalyzedNode,
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) -> AnalyzedNode {
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let typed_original = Rc::new(Node {
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identity: template.identity.clone(),
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kind: NodeKind::Constant(val.clone()),
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ty: ty.clone(),
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comments: template.comments.clone(),
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});
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Node {
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identity: template.identity.clone(),
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kind: NodeKind::Constant(val),
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ty: NodeMetrics {
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original: typed_original,
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purity: Purity::Pure,
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is_recursive: false,
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},
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comments: template.comments.clone(),
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}
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}
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}
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