lust/typechecker/expr_checker/
collections.rs1use super::*;
2use alloc::{
3 boxed::Box,
4 format,
5 string::{String, ToString},
6 vec::Vec,
7};
8impl TypeChecker {
9 pub fn check_array_literal(
10 &mut self,
11 elements: &[Expr],
12 expected_type: Option<&Type>,
13 ) -> Result<Type> {
14 if elements.is_empty() {
15 if let Some(expected) = expected_type {
16 return Ok(expected.clone());
17 }
18
19 let span = Self::dummy_span();
20 return Ok(Type::new(
21 TypeKind::Array(Box::new(Type::new(TypeKind::Unknown, span))),
22 span,
23 ));
24 }
25
26 let expected_elem_type = expected_type.and_then(|t| {
27 if let TypeKind::Array(elem_type) = &t.kind {
28 Some(elem_type.as_ref())
29 } else {
30 None
31 }
32 });
33 if let Some(expected_elem) = expected_elem_type {
34 if let TypeKind::Union(union_types) = &expected_elem.kind {
35 for elem in elements {
36 let elem_type = self.check_expr(elem)?;
37 let mut matches = false;
38 for union_variant in union_types {
39 if self.types_equal(&elem_type, union_variant) {
40 matches = true;
41 break;
42 }
43 }
44
45 if !matches {
46 let union_desc = union_types
47 .iter()
48 .map(|t| t.to_string())
49 .collect::<Vec<_>>()
50 .join(" | ");
51 return Err(self.type_error(format!(
52 "Array element type '{}' does not match any type in union [{}]",
53 elem_type, union_desc
54 )));
55 }
56 }
57
58 return Ok(expected_type.unwrap().clone());
59 }
60 }
61
62 if let Some(expected_elem) = expected_elem_type {
63 if matches!(expected_elem.kind, TypeKind::Unknown) {
64 for elem in elements {
65 self.check_expr(elem)?;
66 }
67
68 return Ok(expected_type.unwrap().clone());
69 }
70
71 if let TypeKind::Option(inner) = &expected_elem.kind {
72 if matches!(inner.kind, TypeKind::Unknown) {
73 for elem in elements {
74 let elem_type = self.check_expr(elem)?;
75 let is_option = matches!(&elem_type.kind, TypeKind::Option(_))
76 || matches!(&elem_type.kind, TypeKind::Named(name) if name == "Option");
77 if !is_option {
78 return Err(self.type_error(format!(
79 "Expected Option type for Array<Option<unknown>>, got '{}'",
80 elem_type
81 )));
82 }
83 }
84
85 return Ok(expected_type.unwrap().clone());
86 }
87 }
88
89 if let TypeKind::Result(ok_inner, err_inner) = &expected_elem.kind {
90 if matches!(ok_inner.kind, TypeKind::Unknown)
91 || matches!(err_inner.kind, TypeKind::Unknown)
92 {
93 for elem in elements {
94 let elem_type = self.check_expr(elem)?;
95 let is_result = matches!(&elem_type.kind, TypeKind::Result(_, _))
96 || matches!(&elem_type.kind, TypeKind::Named(name) if name == "Result");
97 if !is_result {
98 return Err(self.type_error(format!(
99 "Expected Result type for Array<Result<unknown, ...>>, got '{}'",
100 elem_type
101 )));
102 }
103 }
104
105 return Ok(expected_type.unwrap().clone());
106 }
107 }
108 }
109
110 let first_type = self.check_expr(&elements[0])?;
111 for elem in &elements[1..] {
112 let elem_type = self.check_expr(elem)?;
113 self.unify(&first_type, &elem_type)?;
114 }
115
116 Ok(Type::new(
117 TypeKind::Array(Box::new(first_type)),
118 Self::dummy_span(),
119 ))
120 }
121
122 pub fn check_map_literal(
123 &mut self,
124 entries: &[(Expr, Expr)],
125 expected_type: Option<&Type>,
126 ) -> Result<Type> {
127 let mut expected_key_ty: Option<&Type> = None;
128 let mut expected_value_ty: Option<&Type> = None;
129 let mut allow_mixed_keys = false;
130 let mut allow_mixed_values = false;
131 if let Some(expected) = expected_type {
132 if let TypeKind::Map(key, value) = &expected.kind {
133 expected_key_ty = Some(key.as_ref());
134 expected_value_ty = Some(value.as_ref());
135 allow_mixed_keys = matches!(key.kind, TypeKind::Unknown | TypeKind::Infer);
136 allow_mixed_values = matches!(value.kind, TypeKind::Unknown | TypeKind::Infer);
137 }
138 }
139
140 if entries.is_empty() {
141 if let Some(expected) = expected_type {
142 if let TypeKind::Map(_, _) = &expected.kind {
143 return Ok(self.canonicalize_type(expected));
144 }
145 }
146
147 let span = Self::dummy_span();
148 return Ok(Type::new(
149 TypeKind::Map(
150 Box::new(Type::new(TypeKind::Unknown, span)),
151 Box::new(Type::new(TypeKind::Unknown, span)),
152 ),
153 span,
154 ));
155 }
156
157 let key_hint = expected_key_ty.and_then(|ty| {
158 if matches!(ty.kind, TypeKind::Unknown | TypeKind::Infer) {
159 None
160 } else {
161 Some(ty)
162 }
163 });
164 let value_hint = expected_value_ty.and_then(|ty| {
165 if matches!(ty.kind, TypeKind::Unknown | TypeKind::Infer) {
166 None
167 } else {
168 Some(ty)
169 }
170 });
171
172 let mut inferred_key_type: Option<Type> = None;
173 let mut inferred_value_type: Option<Type> = None;
174 for (key_expr, value_expr) in entries {
175 let raw_key_type = if let Some(hint) = key_hint {
176 self.check_expr_with_hint(key_expr, Some(hint))?
177 } else {
178 self.check_expr(key_expr)?
179 };
180 let canonical_key = self.canonicalize_type(&raw_key_type);
181
182 let raw_value_type = if let Some(hint) = value_hint {
183 self.check_expr_with_hint(value_expr, Some(hint))?
184 } else {
185 self.check_expr(value_expr)?
186 };
187 let canonical_value = self.canonicalize_type(&raw_value_type);
188
189 if let Some(existing_key) = &mut inferred_key_type {
190 if !allow_mixed_keys && self.unify(existing_key, &canonical_key).is_err() {
191 *existing_key = Type::new(TypeKind::Unknown, Self::dummy_span());
192 }
193 } else {
194 inferred_key_type = Some(canonical_key.clone());
195 }
196
197 if let Some(existing_value) = &mut inferred_value_type {
198 if !allow_mixed_values && self.unify(existing_value, &canonical_value).is_err() {
199 *existing_value = Type::new(TypeKind::Unknown, Self::dummy_span());
200 }
201 } else {
202 inferred_value_type = Some(canonical_value.clone());
203 }
204 }
205
206 let span = Self::dummy_span();
207 let key_type = if allow_mixed_keys {
208 expected_key_ty
209 .and_then(|ty| Some(self.canonicalize_type(ty)))
210 .unwrap_or_else(|| Type::new(TypeKind::Unknown, span))
211 } else {
212 inferred_key_type.unwrap_or_else(|| Type::new(TypeKind::Unknown, span))
213 };
214 let value_type = if allow_mixed_values {
215 expected_value_ty
216 .and_then(|ty| Some(self.canonicalize_type(ty)))
217 .unwrap_or_else(|| Type::new(TypeKind::Unknown, span))
218 } else {
219 inferred_value_type.unwrap_or_else(|| Type::new(TypeKind::Unknown, span))
220 };
221
222 Ok(Type::new(
223 TypeKind::Map(Box::new(key_type), Box::new(value_type)),
224 Self::dummy_span(),
225 ))
226 }
227
228 pub fn check_struct_literal(
229 &mut self,
230 span: Span,
231 name: &str,
232 fields: &[StructLiteralField],
233 ) -> Result<Type> {
234 let key = self.resolve_type_key(name);
235 let struct_def = self
236 .env
237 .lookup_struct(&key)
238 .or_else(|| self.env.lookup_struct(name))
239 .ok_or_else(|| self.type_error_at(format!("Undefined struct '{}'", name), span))?
240 .clone();
241 if fields.len() != struct_def.fields.len() {
242 return Err(self.type_error_at(
243 format!(
244 "Struct '{}' has {} fields, but {} were provided",
245 name,
246 struct_def.fields.len(),
247 fields.len()
248 ),
249 span,
250 ));
251 }
252
253 for field in fields {
254 let expected_type = struct_def
255 .fields
256 .iter()
257 .find(|f| f.name == field.name)
258 .map(|f| &f.ty)
259 .ok_or_else(|| {
260 self.type_error_at(
261 format!("Struct '{}' has no field '{}'", name, field.name),
262 field.span,
263 )
264 })?;
265 let actual_type = self.check_expr(&field.value)?;
266 match &expected_type.kind {
267 TypeKind::Option(inner_expected) => {
268 if self.unify(inner_expected, &actual_type).is_err() {
269 self.unify(expected_type, &actual_type)?;
270 }
271 }
272
273 _ => {
274 self.unify(expected_type, &actual_type)?;
275 }
276 }
277 }
278
279 let ty_name = if self.env.lookup_struct(&key).is_some() {
280 key
281 } else {
282 name.to_string()
283 };
284 Ok(Type::new(TypeKind::Named(ty_name), Self::dummy_span()))
285 }
286
287 pub fn check_lambda(
288 &mut self,
289 params: &[(String, Option<Type>)],
290 return_type: Option<&Type>,
291 body: &Expr,
292 ) -> Result<Type> {
293 self.env.push_scope();
294 let expected_signature = self.expected_lambda_signature.take();
295 let mut param_types = Vec::new();
296 for (i, (param_name, param_type)) in params.iter().enumerate() {
297 let ty = if let Some(explicit_type) = param_type {
298 explicit_type.clone()
299 } else if let Some((ref expected_params, _)) = expected_signature {
300 if i < expected_params.len() {
301 expected_params[i].clone()
302 } else {
303 Type::new(TypeKind::Infer, Self::dummy_span())
304 }
305 } else {
306 Type::new(TypeKind::Infer, Self::dummy_span())
307 };
308 self.env.declare_variable(param_name.clone(), ty.clone())?;
309 param_types.push(ty);
310 }
311
312 let saved_return_type = self.current_function_return_type.clone();
313 let inferred_return_type = if let Some(explicit) = return_type {
314 Some(explicit.clone())
315 } else if let Some((_, expected_ret)) = expected_signature {
316 expected_ret.or_else(|| Some(Type::new(TypeKind::Infer, Self::dummy_span())))
317 } else {
318 Some(Type::new(TypeKind::Infer, Self::dummy_span()))
319 };
320 self.current_function_return_type = inferred_return_type.clone();
321 let body_type = self.check_expr(body)?;
322 self.current_function_return_type = saved_return_type;
323 let actual_return_type = if let Some(expected) = return_type {
324 expected.clone()
325 } else if let Some(inferred) = &inferred_return_type {
326 if !matches!(inferred.kind, TypeKind::Infer) {
327 inferred.clone()
328 } else {
329 body_type
330 }
331 } else {
332 body_type
333 };
334 self.env.pop_scope();
335 Ok(Type::new(
336 TypeKind::Function {
337 params: param_types,
338 return_type: Box::new(actual_return_type),
339 },
340 Self::dummy_span(),
341 ))
342 }
343
344 pub fn check_if_expr(
345 &mut self,
346 condition: &Expr,
347 then_branch: &Expr,
348 else_branch: &Option<Box<Expr>>,
349 ) -> Result<Type> {
350 let cond_type = self.check_expr(condition)?;
351 self.unify(&Type::new(TypeKind::Bool, Self::dummy_span()), &cond_type)?;
352 let then_type = self.check_expr(then_branch)?;
353 if let Some(else_expr) = else_branch {
354 let else_type = self.check_expr(else_expr)?;
355 self.unify(&then_type, &else_type)?;
356 Ok(then_type)
357 } else {
358 Ok(Type::new(TypeKind::Unit, Self::dummy_span()))
359 }
360 }
361}