1pub mod infer;
2mod symbol;
3use dynamic::{Dynamic, Type};
4use indexmap::IndexMap;
5use parser::{BinaryOp, Expr, ExprKind, Parser, Pattern, PatternKind, Span, Stmt, StmtKind};
6use smol_str::SmolStr;
7use std::{
8 collections::{BTreeMap, BTreeSet},
9 path::{Path, PathBuf},
10 sync::Arc,
11};
12pub use symbol::{Symbol, SymbolTable, eval_const_int_type, substitute_type};
13
14#[derive(Clone)]
15enum FnInferRet {
16 Pending(Option<Type>),
17 Done(Type),
18}
19
20#[derive(Clone)]
21pub enum ListElemState {
22 Unknown,
23 Known(Type),
24 Mixed,
25}
26
27#[derive(Clone)]
28pub struct Compiler {
29 pub symbols: SymbolTable,
30 pub frames: Vec<usize>,
31 pub tys: Vec<Type>,
32 pub consts: IndexMap<SmolStr, Dynamic>,
36 names: Vec<SmolStr>,
37 list_elem_states: Vec<Option<ListElemState>>,
38 arg_counts: Vec<usize>,
39 fns: BTreeMap<u32, Vec<(Vec<Type>, Vec<Type>, FnInferRet)>>,
40 local_type_hints: BTreeMap<u32, Vec<(Vec<Type>, Vec<Type>, Vec<Option<Type>>)>>,
41 infer_stack: Vec<(u32, Vec<Type>, Vec<Type>)>,
42 importing_paths: BTreeSet<PathBuf>,
43 source_files: BTreeMap<SmolStr, SourceFile>,
44}
45
46#[derive(Clone)]
47pub struct SourceFile {
48 pub path: Option<PathBuf>,
49 pub code: Arc<Vec<u8>>,
50}
51
52fn impl_target_name(target: &Type) -> anyhow::Result<SmolStr> {
53 match target {
54 Type::Ident { name, .. } => Ok(name.clone()),
55 _ => anyhow::bail!("impl 目标类型暂不支持: {:?}", target),
56 }
57}
58
59#[cfg(test)]
60mod tests {
61 use super::{Compiler, Symbol};
62 use dynamic::{Dynamic, Type};
63 use parser::{Pattern, PatternKind, Span};
64 use std::rc::Rc;
65
66 #[test]
67 fn inferred_function_return_type_is_written_back_to_symbol() -> anyhow::Result<()> {
68 let mut compiler = Compiler::new();
69 compiler.import_code(
70 "compiler_infer_return",
71 br#"
72 pub fn is_alive() {
73 true
74 }
75
76 pub fn can_act() {
77 is_alive() && true && is_alive()
78 }
79 "#
80 .to_vec(),
81 )?;
82
83 let is_alive = compiler.symbols.get_id("compiler_infer_return::is_alive")?;
84 assert_eq!(compiler.infer_fn(is_alive, &[])?, Type::Bool);
85
86 let (_, symbol) = compiler.symbols.get_symbol(is_alive)?;
87 let Symbol::Fn { ty: Type::Fn { ret, .. }, .. } = symbol else {
88 panic!("is_alive should be a function symbol");
89 };
90 assert_eq!(ret.as_ref(), &Type::Bool);
91
92 let can_act = compiler.symbols.get_id("compiler_infer_return::can_act")?;
93 assert_eq!(compiler.infer_fn(can_act, &[])?, Type::Bool);
94 Ok(())
95 }
96
97 #[test]
98 fn top_level_const_composite_resolves_const_idents() -> anyhow::Result<()> {
99 let mut compiler = Compiler::new();
100 compiler.import_code(
101 "compiler_const_table",
102 br#"
103 pub const GEM_ATK = "atk";
104 pub const GEM_DEF = "def";
105 pub const GEM_TABLE = [
106 { key: GEM_ATK, score: 3i32 },
107 { key: GEM_DEF, score: 1i32 },
108 ];
109 "#
110 .to_vec(),
111 )?;
112
113 let table = compiler.symbols.get_id("compiler_const_table::GEM_TABLE")?;
114 let (_, symbol) = compiler.symbols.get_symbol(table)?;
115 let Symbol::Const { value, .. } = symbol else {
116 panic!("GEM_TABLE should be a const symbol");
117 };
118
119 let first = value.get_idx(0).expect("first table row");
120 assert_eq!(first.get_dynamic("key").expect("key").as_str(), "atk");
121 assert_eq!(first.get_dynamic("score").expect("score").as_int(), Some(3));
122 Ok(())
123 }
124
125 #[test]
126 fn const_unary_neg_handles_min_integer_literal() -> anyhow::Result<()> {
127 let mut compiler = Compiler::new();
128 compiler.import_code(
129 "compiler_const_min_int",
130 br#"
131 pub const MIN_I32: i32 = -2147483648i32;
132 "#
133 .to_vec(),
134 )?;
135
136 let id = compiler.symbols.get_id("compiler_const_min_int::MIN_I32")?;
137 let (_, symbol) = compiler.symbols.get_symbol(id)?;
138 let Symbol::Const { value, .. } = symbol else {
139 panic!("MIN_I32 should be a const symbol");
140 };
141 assert_eq!(value.as_int(), Some(i32::MIN as i64));
142 Ok(())
143 }
144
145 #[test]
146 fn return_check_resolves_function_args_before_body_compile() -> anyhow::Result<()> {
147 let mut compiler = Compiler::new();
148 compiler.import_code(
149 "compiler_return_check_args",
150 br#"
151 pub fn no_value_return(flag: bool) {
152 if flag {
153 return;
154 }
155 }
156
157 pub fn tail_if(flag: bool) {
158 if flag {
159 1
160 } else {
161 2
162 }
163 }
164
165 pub fn loop_index(low: i64, high: i64) {
166 let total = 0i64;
167 for i in low..high {
168 total += i;
169 }
170 total
171 }
172
173 pub fn closure_capture() {
174 let base = 10i32;
175 let add_base = |value: i32| {
176 value + base
177 };
178 add_base(1i32)
179 }
180
181 pub fn destructured_names() {
182 let (left, right) = (3i32, 4i32);
183 let [first, second] = [5i32, 6i32];
184 let _ = first;
185 left + right + second
186 }
187 "#
188 .to_vec(),
189 )?;
190
191 let no_value_return = compiler.symbols.get_id("compiler_return_check_args::no_value_return")?;
192 assert_eq!(compiler.infer_fn(no_value_return, &[Type::Bool])?, Type::Void);
193
194 let tail_if = compiler.symbols.get_id("compiler_return_check_args::tail_if")?;
195 assert_eq!(compiler.infer_fn(tail_if, &[Type::Bool])?, Type::I64);
197
198 let loop_index = compiler.symbols.get_id("compiler_return_check_args::loop_index")?;
199 assert_eq!(compiler.infer_fn(loop_index, &[Type::I64, Type::I64])?, Type::I64);
200
201 Ok(())
202 }
203
204 #[test]
205 fn return_check_infers_raw_assoc_calls_before_body_compile() -> anyhow::Result<()> {
206 let mut compiler = Compiler::new();
207 compiler.import_code(
208 "compiler_return_check_assoc",
209 br#"
210 pub struct Box<N> {
211 data: [u32; N],
212 }
213
214 impl Box<N> {
215 pub fn make() {
216 Box<N>{ data: [0u32; N] }
217 }
218
219 pub fn ok(self: Box<N>) {
220 true
221 }
222 }
223
224 pub fn main() {
225 let item = Box<2>::make();
226 if item.ok() {
227 1i32
228 } else {
229 0i32
230 }
231 }
232 "#
233 .to_vec(),
234 )?;
235
236 let main_id = compiler.symbols.get_id("compiler_return_check_assoc::main")?;
237 assert_eq!(compiler.infer_fn(main_id, &[])?, Type::I32);
238 Ok(())
239 }
240
241 #[test]
242 fn top_level_unknown_statement_is_error() {
243 let mut compiler = Compiler::new();
244 let err = compiler
245 .import_code(
246 "compiler_top_level_unknown",
247 br#"
248 let value = 1i32;
249 "#
250 .to_vec(),
251 )
252 .expect_err("top-level let should be rejected");
253 assert!(format!("{err:#}").contains("不支持的顶层语句"));
254 }
255
256 #[test]
257 fn static_initializer_errors_instead_of_disappearing() {
258 let mut compiler = Compiler::new();
259 let err = compiler
260 .import_code(
261 "compiler_static_initializer",
262 br#"
263 pub fn make() {
264 1i32
265 }
266 pub static VALUE: i32 = make();
267 "#
268 .to_vec(),
269 )
270 .expect_err("static initializer should be compile-time constant");
271 assert!(format!("{err:#}").contains("const 只能使用字面量"));
272 }
273
274 #[test]
275 fn return_expression_compile_error_is_preserved() {
276 let mut compiler = Compiler::new();
277 let err = compiler
278 .import_code(
279 "compiler_return_error",
280 br#"
281 pub fn bad() {
282 return missing_call();
283 }
284 "#
285 .to_vec(),
286 )
287 .expect_err("return expression error should be reported");
288 assert!(format!("{err:#}").contains("未注册函数"));
289 }
290
291 #[test]
292 fn nested_pattern_errors_are_preserved() {
293 let mut compiler = Compiler::new();
294 let pat = Pattern { kind: PatternKind::List { elems: vec![Pattern { kind: PatternKind::Literal(Dynamic::I32(1)), span: Span::default() }], has_rest: false }, span: Span::default() };
295 let err = compiler.pat_to_var(pat, Type::List(Rc::new(Type::I32))).expect_err("invalid nested pattern should be reported");
296 assert!(format!("{err:#}").contains("未知的模式"));
297 }
298
299 #[test]
300 fn tuple_pattern_length_mismatch_is_error() {
301 let mut compiler = Compiler::new();
302 let pat = Pattern {
303 kind: PatternKind::Tuple(vec![
304 Pattern { kind: PatternKind::Ident { name: "a".into(), ty: Type::Any }, span: Span::default() },
305 Pattern { kind: PatternKind::Ident { name: "b".into(), ty: Type::Any }, span: Span::default() },
306 Pattern { kind: PatternKind::Ident { name: "c".into(), ty: Type::Any }, span: Span::default() },
307 ]),
308 span: Span::default(),
309 };
310 let err = compiler.pat_to_var(pat, Type::Tuple(vec![Type::I32, Type::I32])).expect_err("tuple pattern length mismatch should be rejected");
311 assert!(format!("{err:#}").contains("模式与元组类型不匹配"));
312 }
313
314 #[test]
315 fn forward_function_call_in_bool_condition_infers_callee_first() -> anyhow::Result<()> {
316 let mut compiler = Compiler::new();
317 compiler.import_code(
318 "compiler_forward_bool",
319 br#"
320 pub fn can_start() {
321 if is_ready() {
322 return true;
323 }
324 false
325 }
326
327 pub fn is_ready() {
328 true
329 }
330 "#
331 .to_vec(),
332 )?;
333
334 let can_start = compiler.symbols.get_id("compiler_forward_bool::can_start")?;
335 assert_eq!(compiler.infer_fn(can_start, &[])?, Type::Bool);
336
337 let is_ready = compiler.symbols.get_id("compiler_forward_bool::is_ready")?;
338 assert_eq!(compiler.infer_fn(is_ready, &[])?, Type::Bool);
339 Ok(())
340 }
341
342 #[test]
343 fn inferred_return_cache_keeps_pending_separate_from_any() -> anyhow::Result<()> {
344 let mut compiler = Compiler::new();
345 compiler.import_code(
346 "compiler_pending_any",
347 br#"
348 pub fn dynamic_value(value) {
349 value
350 }
351
352 pub fn bool_value() {
353 true
354 }
355 "#
356 .to_vec(),
357 )?;
358
359 let dynamic_value = compiler.symbols.get_id("compiler_pending_any::dynamic_value")?;
360 assert_eq!(compiler.infer_fn(dynamic_value, &[Type::Any])?, Type::Any);
361
362 let bool_value = compiler.symbols.get_id("compiler_pending_any::bool_value")?;
363 assert_eq!(compiler.infer_fn(bool_value, &[])?, Type::Bool);
364 Ok(())
365 }
366
367 #[test]
368 fn recursive_function_uses_inferred_return_seed() -> anyhow::Result<()> {
369 let mut compiler = Compiler::new();
370 compiler.import_code(
371 "compiler_recursive_return",
372 br#"
373 pub fn factorial(n: i64) {
374 if n <= 1 {
375 return 1;
376 }
377 n * factorial(n - 1)
378 }
379
380 pub fn factorial_reversed(n: i64) {
381 if n > 1 {
382 return n * factorial_reversed(n - 1);
383 }
384 1
385 }
386 "#
387 .to_vec(),
388 )?;
389
390 let factorial = compiler.symbols.get_id("compiler_recursive_return::factorial")?;
391 assert_eq!(compiler.infer_fn(factorial, &[Type::I64])?, Type::I64);
392
393 let factorial_reversed = compiler.symbols.get_id("compiler_recursive_return::factorial_reversed")?;
394 assert_eq!(compiler.infer_fn(factorial_reversed, &[Type::I64])?, Type::I64);
395 Ok(())
396 }
397
398 #[test]
399 fn generic_function_infers_type_param_from_arg() -> anyhow::Result<()> {
400 let mut compiler = Compiler::new();
401 compiler.import_code(
402 "compiler_generic_identity",
403 br#"
404 pub fn identity<T>(value: T) {
405 value
406 }
407 "#
408 .to_vec(),
409 )?;
410
411 let identity = compiler.symbols.get_id("compiler_generic_identity::identity")?;
412 assert_eq!(compiler.infer_fn(identity, &[Type::I64])?, Type::I64);
413 assert_eq!(compiler.infer_fn(identity, &[Type::Bool])?, Type::Bool);
414 Ok(())
415 }
416
417 #[test]
418 fn generic_function_uses_explicit_const_param() -> anyhow::Result<()> {
419 let mut compiler = Compiler::new();
420 compiler.import_code(
421 "compiler_generic_const",
422 br#"
423 pub fn value<N>() {
424 N
425 }
426 "#
427 .to_vec(),
428 )?;
429
430 let value = compiler.symbols.get_id("compiler_generic_const::value")?;
431 assert_eq!(compiler.infer_fn_with_params(value, &[], &[Type::ConstInt(7)])?, Type::I32);
432 Ok(())
433 }
434
435 #[test]
436 fn generic_function_infers_const_param_from_array_len() -> anyhow::Result<()> {
437 let mut compiler = Compiler::new();
438 compiler.import_code(
439 "compiler_generic_array_len",
440 br#"
441 pub fn len<N>(items: [i32; N]) {
442 N
443 }
444 "#
445 .to_vec(),
446 )?;
447
448 let len = compiler.symbols.get_id("compiler_generic_array_len::len")?;
449 assert_eq!(compiler.infer_fn(len, &[Type::Array(std::rc::Rc::new(Type::I32), 3)])?, Type::I32);
450 Ok(())
451 }
452
453 #[test]
454 fn generic_function_reports_uninferred_param() -> anyhow::Result<()> {
455 let mut compiler = Compiler::new();
456 compiler.import_code(
457 "compiler_generic_uninferred",
458 br#"
459 pub fn value<T>() {
460 1i32
461 }
462 "#
463 .to_vec(),
464 )?;
465
466 let value = compiler.symbols.get_id("compiler_generic_uninferred::value")?;
467 let err = compiler.infer_fn(value, &[]).expect_err("generic parameter should not be inferred");
468 assert!(format!("{err:#}").contains("无法从实参类型推断函数范型参数"));
469 Ok(())
470 }
471
472 #[test]
473 fn assignment_target_type_keeps_dynamic_index_sum_static() -> anyhow::Result<()> {
474 let mut compiler = Compiler::new();
475 compiler.import_code(
476 "compiler_dynamic_index_sum",
477 br#"
478 pub fn sum_list(n: i64) {
479 let l = [];
480 for i in 0..n {
481 l.push(i);
482 }
483 let sum = 0i64;
484 for i in 0..n {
485 sum = sum + l[i];
486 }
487 sum
488 }
489 "#
490 .to_vec(),
491 )?;
492
493 let sum_list = compiler.symbols.get_id("compiler_dynamic_index_sum::sum_list")?;
494 assert_eq!(compiler.infer_fn(sum_list, &[Type::I64])?, Type::I64);
495 Ok(())
496 }
497
498 #[test]
499 fn list_literal_infers_element_type() -> anyhow::Result<()> {
500 let mut compiler = Compiler::new();
501 compiler.import_code(
502 "compiler_list_elem_type",
503 br#"
504 pub fn pushed_empty() {
505 let items = [];
506 items.push(1i64);
507 items[0]
508 }
509
510 pub fn ints() {
511 [1i64, 2i64]
512 }
513
514 pub fn mixed_then_int() {
515 let items = [];
516 items.push(1i64);
517 items.push("aaa");
518 items.push(2i64);
519 items[0]
520 }
521
522 "#
523 .to_vec(),
524 )?;
525
526 let pushed_empty = compiler.symbols.get_id("compiler_list_elem_type::pushed_empty")?;
527 assert_eq!(compiler.infer_fn(pushed_empty, &[])?, Type::I64);
528 let hints = compiler.inferred_local_type_hints(pushed_empty, &[], &[]);
529 assert_eq!(hints.first().cloned().flatten(), Some(Type::List(std::rc::Rc::new(Type::I64))));
530
531 let ints = compiler.symbols.get_id("compiler_list_elem_type::ints")?;
532 assert_eq!(compiler.infer_fn(ints, &[])?, Type::Any);
533
534 let mixed_then_int = compiler.symbols.get_id("compiler_list_elem_type::mixed_then_int")?;
535 assert_eq!(compiler.infer_fn(mixed_then_int, &[])?, Type::Any);
536 let hints = compiler.inferred_local_type_hints(mixed_then_int, &[], &[]);
537 assert_eq!(hints.first().cloned().flatten(), None);
538 Ok(())
539 }
540
541 #[test]
542 fn return_map_and_struct_is_type_error() -> anyhow::Result<()> {
543 let mut compiler = Compiler::new();
544 let err = match compiler.import_code(
545 "compiler_return_map_struct",
546 br#"
547 struct S {
548 hp: i32,
549 }
550
551 pub fn make_s_or_error(flag: i32) {
552 if flag == 0 {
553 return { error: "bad" };
554 }
555 S{hp: 123}
556 }
557 "#
558 .to_vec(),
559 ) {
560 Ok(_) => panic!("expected mismatched return types to fail"),
561 Err(err) => err,
562 };
563
564 assert!(format!("{err:#}").contains("返回类型不一致"));
565 Ok(())
566 }
567
568 #[test]
569 fn unknown_function_call_strict_reports_error() -> anyhow::Result<()> {
570 let mut compiler = Compiler::new();
571 let err = match compiler.import_code(
572 "compiler_unknown_fn",
573 br#"
574 pub fn call_typo() {
575 prnt("hi")
576 }
577 "#
578 .to_vec(),
579 ) {
580 Ok(_) => panic!("expected unknown function to fail"),
581 Err(err) => err,
582 };
583
584 let msg = format!("{err:#}");
585 assert!(msg.contains("未注册函数"), "got: {msg}");
586 Ok(())
587 }
588}
589
590fn has_unresolved_generic_param(ty: &Type) -> bool {
591 match ty {
592 Type::Ident { name, params } => {
593 if params.is_empty() {
594 name.chars().next().map(|ch| ch.is_ascii_uppercase()).unwrap_or(false)
595 } else {
596 params.iter().any(has_unresolved_generic_param)
597 }
598 }
599 Type::Struct { params, fields } => params.iter().any(has_unresolved_generic_param) || fields.iter().any(|(_, ty)| has_unresolved_generic_param(ty)),
600 Type::Tuple(items) => items.iter().any(has_unresolved_generic_param),
601 Type::List(elem) | Type::Vec(elem, _) | Type::Array(elem, _) => has_unresolved_generic_param(elem),
602 Type::ArrayParam(elem, len) => has_unresolved_generic_param(elem) || has_unresolved_generic_param(len),
603 Type::Fn { tys, ret } => tys.iter().any(has_unresolved_generic_param) || has_unresolved_generic_param(ret),
604 Type::Symbol { params, .. } => params.iter().any(has_unresolved_generic_param),
605 Type::ConstBinary { left, right, .. } => has_unresolved_generic_param(left) || has_unresolved_generic_param(right),
606 _ => false,
607 }
608}
609
610fn is_top_level_import_expr(expr: &Expr) -> bool {
611 matches!(
612 &expr.kind,
613 ExprKind::Call { obj, .. } if matches!(&obj.kind, ExprKind::Ident(name) if name.as_str() == "import")
614 )
615}
616
617fn string_value(expr: &Expr) -> Option<&str> {
618 if let ExprKind::Value(Dynamic::String(value)) = &expr.kind { Some(value.as_str()) } else { None }
619}
620
621fn import_decl(stmt: &Stmt) -> Option<(SmolStr, SmolStr)> {
622 let StmtKind::Expr(expr, _) = &stmt.kind else {
623 return None;
624 };
625 let ExprKind::Call { obj, params } = &expr.kind else {
626 return None;
627 };
628 let ExprKind::Ident(name) = &obj.kind else {
629 return None;
630 };
631 if name.as_str() != "import" {
632 return None;
633 }
634
635 match params.as_slice() {
636 [module, path] => Some((string_value(module)?.into(), string_value(path)?.into())),
637 [module] => match &module.kind {
638 ExprKind::Value(Dynamic::String(value)) => Some((value.clone(), format!("{value}.zs").into())),
639 ExprKind::Ident(value) => Some((value.clone(), format!("{value}.zs").into())),
640 _ => None,
641 },
642 _ => None,
643 }
644}
645
646fn generic_arg_for_name<'a>(name: &str, params: &'a [Type], args: &'a [Type]) -> Option<&'a Type> {
647 params.iter().position(|param| matches!(param, Type::Ident { name: param_name, params } if params.is_empty() && param_name == name)).and_then(|idx| args.get(idx))
648}
649
650pub fn infer_generic_args_from_types(generic_params: &[Type], decl_tys: &[Type], arg_tys: &[Type]) -> Vec<Type> {
651 if generic_params.is_empty() {
652 return Vec::new();
653 }
654 let mut inferred = vec![None; generic_params.len()];
655 for (decl, actual) in decl_tys.iter().zip(arg_tys.iter()) {
656 infer_generic_arg_from_type(generic_params, decl, actual, &mut inferred);
657 }
658 if inferred.iter().all(|item| item.is_some()) {
659 return inferred.into_iter().map(Option::unwrap).collect();
660 }
661 if let Some(Type::Struct { params, .. }) = arg_tys.iter().find(|ty| matches!(ty, Type::Struct { params, .. } if params.len() == generic_params.len())) {
662 return params.clone();
663 }
664 for (decl, actual) in decl_tys.iter().zip(arg_tys.iter()) {
665 if let (Type::Ident { params: decl_params, .. }, Type::Ident { params: actual_params, .. }) = (decl, actual)
666 && decl_params.len() == actual_params.len()
667 && decl_params.iter().any(|param| generic_params.contains(param))
668 {
669 return actual_params.clone();
670 }
671 }
672 Vec::new()
673}
674
675pub fn resolve_generic_args_from_types(generic_params: &[Type], decl_tys: &[Type], arg_tys: &[Type], explicit_args: &[Type]) -> Result<Vec<Type>> {
676 if generic_params.is_empty() {
677 if explicit_args.is_empty() {
678 return Ok(Vec::new());
679 }
680 return Err(anyhow!("函数不接受范型参数,但传入了 {}", explicit_args.len()));
681 }
682 if !explicit_args.is_empty() {
683 if explicit_args.len() == generic_params.len() {
684 return Ok(explicit_args.to_vec());
685 }
686 return Err(anyhow!("函数范型参数数量不匹配,期望 {} 个,实际 {} 个", generic_params.len(), explicit_args.len()));
687 }
688
689 let inferred = infer_generic_args_from_types(generic_params, decl_tys, arg_tys);
690 if inferred.len() == generic_params.len() {
691 Ok(inferred)
692 } else if generic_params.len() == 1
693 && let Some(Type::List(elem) | Type::Vec(elem, _) | Type::Array(elem, _)) = arg_tys.first()
694 {
695 Ok(vec![elem.as_ref().clone()])
696 } else {
697 Err(anyhow!("无法从实参类型推断函数范型参数 {:?}", generic_params))
698 }
699}
700
701fn infer_generic_arg_from_type(generic_params: &[Type], decl: &Type, actual: &Type, inferred: &mut [Option<Type>]) {
702 if let Some(idx) = generic_params.iter().position(|param| param == decl) {
703 inferred[idx] = Some(actual.clone());
704 return;
705 }
706
707 match (decl, actual) {
708 (Type::List(decl_elem), Type::List(actual_elem)) => {
709 infer_generic_arg_from_type(generic_params, decl_elem, actual_elem, inferred);
710 }
711 (Type::Vec(decl_elem, decl_len), Type::Vec(actual_elem, actual_len)) | (Type::Array(decl_elem, decl_len), Type::Array(actual_elem, actual_len)) => {
712 infer_generic_arg_from_type(generic_params, decl_elem, actual_elem, inferred);
713 infer_generic_arg_from_type(generic_params, &Type::ConstInt(*decl_len as i64), &Type::ConstInt(*actual_len as i64), inferred);
714 }
715 (Type::ArrayParam(decl_elem, decl_len), Type::Array(actual_elem, actual_len)) => {
716 infer_generic_arg_from_type(generic_params, decl_elem, actual_elem, inferred);
717 infer_generic_arg_from_type(generic_params, decl_len, &Type::ConstInt(*actual_len as i64), inferred);
718 }
719 (Type::Ident { params: decl_params, .. }, Type::Ident { params: actual_params, .. })
720 | (Type::Ident { params: decl_params, .. }, Type::Symbol { params: actual_params, .. })
721 | (Type::Symbol { params: decl_params, .. }, Type::Symbol { params: actual_params, .. })
722 | (Type::Symbol { params: decl_params, .. }, Type::Ident { params: actual_params, .. })
723 | (Type::Struct { params: decl_params, .. }, Type::Struct { params: actual_params, .. }) => {
724 for (decl, actual) in decl_params.iter().zip(actual_params.iter()) {
725 infer_generic_arg_from_type(generic_params, decl, actual, inferred);
726 }
727 }
728 _ => {}
729 }
730}
731
732fn substitute_pattern(pattern: &Pattern, params: &[Type], args: &[Type]) -> Pattern {
733 let kind = match &pattern.kind {
734 PatternKind::Ident { name, ty } => PatternKind::Ident { name: name.clone(), ty: substitute_type(ty, params, args) },
735 PatternKind::Var { idx, ty } => PatternKind::Var { idx: *idx, ty: substitute_type(ty, params, args) },
736 PatternKind::Tuple(items) => PatternKind::Tuple(items.iter().map(|item| substitute_pattern(item, params, args)).collect()),
737 PatternKind::List { elems, has_rest } => PatternKind::List { elems: elems.iter().map(|item| substitute_pattern(item, params, args)).collect(), has_rest: *has_rest },
738 other => other.clone(),
739 };
740 Pattern { kind, span: pattern.span }
741}
742
743fn substitute_expr(expr: &Expr, params: &[Type], args: &[Type]) -> Expr {
744 let kind = match &expr.kind {
745 ExprKind::Ident(name) => match generic_arg_for_name(name, params, args) {
746 Some(Type::ConstInt(value)) => ExprKind::Value(Dynamic::I32(*value as i32)),
747 Some(ty) => eval_const_int_type(ty).map(|value| ExprKind::Value(Dynamic::I32(value as i32))).unwrap_or_else(|| expr.kind.clone()),
748 _ => expr.kind.clone(),
749 },
750 ExprKind::Typed { value, ty } => ExprKind::Typed { value: Box::new(substitute_expr(value, params, args)), ty: substitute_type(ty, params, args) },
751 ExprKind::Unary { op, value } => ExprKind::Unary { op: op.clone(), value: Box::new(substitute_expr(value, params, args)) },
752 ExprKind::Binary { left, op, right } => ExprKind::Binary { left: Box::new(substitute_expr(left, params, args)), op: op.clone(), right: Box::new(substitute_expr(right, params, args)) },
753 ExprKind::Generic { obj, params: nested } => ExprKind::Generic { obj: Box::new(substitute_expr(obj, params, args)), params: nested.iter().map(|param| substitute_type(param, params, args)).collect() },
754 ExprKind::Assoc { ty, name } => ExprKind::Assoc { ty: substitute_type(ty, params, args), name: name.clone() },
755 ExprKind::TypedMethod { obj, ty, name } => ExprKind::TypedMethod { obj: Box::new(substitute_expr(obj, params, args)), ty: substitute_type(ty, params, args), name: name.clone() },
756 ExprKind::AssocId { id, params: nested } => ExprKind::AssocId { id: *id, params: nested.iter().map(|param| substitute_type(param, params, args)).collect() },
757 ExprKind::Tuple(items) => ExprKind::Tuple(items.iter().map(|item| substitute_expr(item, params, args)).collect()),
758 ExprKind::List(items) => ExprKind::List(items.iter().map(|item| substitute_expr(item, params, args)).collect()),
759 ExprKind::Repeat { value, len } => ExprKind::Repeat { value: Box::new(substitute_expr(value, params, args)), len: substitute_type(len, params, args) },
760 ExprKind::Dict(items) => ExprKind::Dict(items.iter().map(|(name, value)| (name.clone(), substitute_expr(value, params, args))).collect()),
761 ExprKind::Range { start, stop, inclusive } => ExprKind::Range { start: Box::new(substitute_expr(start, params, args)), stop: Box::new(substitute_expr(stop, params, args)), inclusive: *inclusive },
762 ExprKind::Call { obj, params: call_params } => ExprKind::Call { obj: Box::new(substitute_expr(obj, params, args)), params: call_params.iter().map(|param| substitute_expr(param, params, args)).collect() },
763 ExprKind::Stmt(stmt) => ExprKind::Stmt(Box::new(substitute_stmt(stmt, params, args))),
764 ExprKind::Closure { args: closure_args, body } => {
765 ExprKind::Closure { args: closure_args.iter().map(|(name, ty)| (name.clone(), substitute_type(ty, params, args))).collect(), body: Box::new(substitute_stmt(body, params, args)) }
766 }
767 _ => expr.kind.clone(),
768 };
769 Expr::new(kind, expr.span)
770}
771
772pub fn substitute_stmt(stmt: &Stmt, params: &[Type], args: &[Type]) -> Stmt {
773 let kind = match &stmt.kind {
774 StmtKind::Let { pat, value } => StmtKind::Let { pat: substitute_pattern(pat, params, args), value: Box::new(substitute_stmt(value, params, args)) },
775 StmtKind::Expr(expr, close) => StmtKind::Expr(substitute_expr(expr, params, args), *close),
776 StmtKind::Block(stmts) => StmtKind::Block(stmts.iter().map(|stmt| substitute_stmt(stmt, params, args)).collect()),
777 StmtKind::Return(expr) => StmtKind::Return(expr.as_ref().map(|expr| substitute_expr(expr, params, args))),
778 StmtKind::While { cond, body } => StmtKind::While { cond: substitute_expr(cond, params, args), body: Box::new(substitute_stmt(body, params, args)) },
779 StmtKind::Loop(body) => StmtKind::Loop(Box::new(substitute_stmt(body, params, args))),
780 StmtKind::For { pat, range, body } => StmtKind::For { pat: substitute_pattern(pat, params, args), range: substitute_expr(range, params, args), body: Box::new(substitute_stmt(body, params, args)) },
781 StmtKind::Fn { name, generic_params, args: fn_args, body, is_pub } => StmtKind::Fn {
782 name: name.clone(),
783 generic_params: generic_params.iter().map(|param| substitute_type(param, params, args)).collect(),
784 args: fn_args.iter().map(|(name, ty)| (name.clone(), substitute_type(ty, params, args))).collect(),
785 body: Box::new(substitute_stmt(body, params, args)),
786 is_pub: *is_pub,
787 },
788 StmtKind::Struct { name, def, is_pub } => StmtKind::Struct { name: name.clone(), def: substitute_type(def, params, args), is_pub: *is_pub },
789 StmtKind::Impl { target, body } => StmtKind::Impl { target: substitute_type(target, params, args), body: Box::new(substitute_stmt(body, params, args)) },
790 StmtKind::If { cond, then_body, else_body } => StmtKind::If {
791 cond: substitute_expr(cond, params, args),
792 then_body: Box::new(substitute_stmt(then_body, params, args)),
793 else_body: else_body.as_ref().map(|body| Box::new(substitute_stmt(body, params, args))),
794 },
795 StmtKind::Static { name, ty, value, is_pub } => {
796 StmtKind::Static { name: name.clone(), ty: substitute_type(ty, params, args), value: value.as_ref().map(|value| substitute_expr(value, params, args)), is_pub: *is_pub }
797 }
798 StmtKind::Const { name, ty, value, is_pub } => StmtKind::Const { name: name.clone(), ty: substitute_type(ty, params, args), value: substitute_expr(value, params, args), is_pub: *is_pub },
799 other => other.clone(),
800 };
801 Stmt::new(kind, stmt.span)
802}
803
804#[derive(Debug, Clone, Default)]
805pub struct Capture {
806 pub names: Vec<(SmolStr, Type)>,
807 pub vars: Vec<usize>,
808}
809
810impl Capture {
811 pub fn new(names: Vec<(SmolStr, Type)>) -> Self {
812 Self { names, vars: Vec::new() }
813 }
814
815 pub fn get(&mut self, name: &str) -> Option<usize> {
816 if let Some(idx) = self.names.iter().position(|n| n.0 == name) {
817 if let Some(pos) = self.vars.iter().position(|v| *v == idx) {
818 Some(pos)
819 } else {
820 self.vars.push(idx);
821 Some(self.vars.len() - 1)
822 }
823 } else {
824 None
825 }
826 }
827
828 pub fn get_type(&self, idx: u32) -> Option<Type> {
829 self.names.get(idx as usize).map(|(_, ty)| ty.clone())
830 }
831}
832
833use anyhow::{Context, Result, anyhow};
834use thiserror::Error;
835
836#[derive(Debug, Error)]
837#[error("{message}")]
838pub struct SpannedCompilerError {
839 pub message: String,
840 pub span: Span,
841}
842
843#[derive(Debug, Clone)]
844pub struct CompilerDiagnostic {
845 pub message: String,
846 pub span: Span,
847}
848
849impl Compiler {
850 pub fn clear(&mut self) {
851 self.frames.clear();
852 self.names.clear();
853 self.tys.clear();
854 self.list_elem_states.clear();
855 self.arg_counts.clear();
856 }
857
858 pub fn take_local_state(&mut self) -> (Vec<usize>, Vec<SmolStr>, Vec<Type>, Vec<Option<ListElemState>>, Vec<usize>) {
859 (std::mem::take(&mut self.frames), std::mem::take(&mut self.names), std::mem::take(&mut self.tys), std::mem::take(&mut self.list_elem_states), std::mem::take(&mut self.arg_counts))
860 }
861
862 pub fn restore_local_state(&mut self, state: (Vec<usize>, Vec<SmolStr>, Vec<Type>, Vec<Option<ListElemState>>, Vec<usize>)) {
863 self.frames = state.0;
864 self.names = state.1;
865 self.tys = state.2;
866 self.list_elem_states = state.3;
867 self.arg_counts = state.4;
868 }
869
870 pub fn get_value(&self, expr: &Expr) -> Option<Dynamic> {
871 match &expr.kind {
872 ExprKind::Value(v) => Some(v.clone()),
873 ExprKind::Const(idx) => self.consts.get_index(*idx).map(|(_, v)| v.clone()),
874 _ => None,
875 }
876 }
877
878 pub fn get_const(&mut self, value: Dynamic) -> usize {
879 let key: SmolStr = if value.is_str() {
880 format!("str:{}", value.as_str()).into()
881 } else if value.is_null() {
882 "null".into()
883 } else {
884 format!("{value:?}").into()
885 };
886 if let Some((idx, _, _)) = self.consts.get_full(&key) {
887 return idx;
888 }
889 self.consts.insert_full(key, value).0
890 }
891
892 fn normalize_self_assign(left: Expr, op: BinaryOp, right: Expr, span: Span, arg_count: usize) -> Expr {
893 if let Some(idx) = left.var()
894 && (idx as usize) < arg_count
895 {
896 let base_op = match op {
897 BinaryOp::AddAssign => Some(BinaryOp::Add),
898 BinaryOp::SubAssign => Some(BinaryOp::Sub),
899 BinaryOp::MulAssign => Some(BinaryOp::Mul),
900 BinaryOp::DivAssign => Some(BinaryOp::Div),
901 BinaryOp::ModAssign => Some(BinaryOp::Mod),
902 BinaryOp::ShlAssign => Some(BinaryOp::Shl),
903 BinaryOp::ShrAssign => Some(BinaryOp::Shr),
904 BinaryOp::BitAndAssign => Some(BinaryOp::BitAnd),
905 BinaryOp::BitOrAssign => Some(BinaryOp::BitOr),
906 BinaryOp::BitXorAssign => Some(BinaryOp::BitXor),
907 _ => None,
908 };
909 if let Some(op) = base_op {
910 let right = Expr::new(ExprKind::Binary { left: Box::new(left.clone()), op, right: Box::new(right) }, span);
911 return Expr::new(ExprKind::Binary { left: Box::new(left), op: BinaryOp::Assign, right: Box::new(right) }, span);
912 }
913 }
914 if op == BinaryOp::Assign
915 && let Some(idx) = left.var()
916 && idx as usize >= arg_count
917 && let ExprKind::Binary { left: rhs_left, op: rhs_op, right: rhs_right } = &right.kind
918 && rhs_left.var() == Some(idx)
919 {
920 let compound_op = match rhs_op {
921 BinaryOp::Add => Some(BinaryOp::AddAssign),
922 BinaryOp::Sub => Some(BinaryOp::SubAssign),
923 BinaryOp::Mul => Some(BinaryOp::MulAssign),
924 BinaryOp::Div => Some(BinaryOp::DivAssign),
925 BinaryOp::Mod => Some(BinaryOp::ModAssign),
926 BinaryOp::Shl => Some(BinaryOp::ShlAssign),
927 BinaryOp::Shr => Some(BinaryOp::ShrAssign),
928 BinaryOp::BitAnd => Some(BinaryOp::BitAndAssign),
929 BinaryOp::BitOr => Some(BinaryOp::BitOrAssign),
930 BinaryOp::BitXor => Some(BinaryOp::BitXorAssign),
931 _ => None,
932 };
933 if let Some(op) = compound_op {
934 return Expr::new(ExprKind::Binary { left: Box::new(left), op, right: Box::new((**rhs_right).clone()) }, span);
935 }
936 }
937 Expr::new(ExprKind::Binary { left: Box::new(left), op, right: Box::new(right) }, span)
938 }
939
940 pub fn top(&self) -> usize {
941 self.frames.last().copied().unwrap_or(0)
942 }
943
944 fn add_name(&mut self, name: SmolStr) -> u32 {
945 self.names.push(name);
946 (self.names.len() - self.top() - 1) as u32
947 }
948
949 fn list_elem_state_for_ty(ty: &Type) -> Option<ListElemState> {
950 match ty {
951 Type::List(elem) if elem.is_any() => Some(ListElemState::Unknown),
952 Type::List(elem) => Some(ListElemState::Known(elem.as_ref().clone())),
953 _ => None,
954 }
955 }
956
957 pub(crate) fn list_elem_state(&self, idx: u32) -> Option<ListElemState> {
958 self.list_elem_states.get(self.top() + idx as usize).cloned().flatten()
959 }
960
961 pub(crate) fn set_list_elem_state(&mut self, idx: u32, state: Option<ListElemState>) {
962 let pos = idx as usize + self.top();
963 if self.list_elem_states.len() <= pos {
964 self.list_elem_states.resize(pos + 1, None);
965 }
966 self.list_elem_states[pos] = state;
967 }
968
969 fn add_ty(&mut self, ty: Type) -> u32 {
970 self.list_elem_states.push(Self::list_elem_state_for_ty(&ty));
971 self.tys.push(ty);
972 (self.tys.len() - self.top() - 1) as u32
973 }
974
975 fn set_ty(&mut self, idx: u32, ty: Type) {
976 let pos = idx as usize + self.top();
977 if self.list_elem_states.len() <= pos {
978 self.list_elem_states.resize(pos + 1, None);
979 }
980 self.list_elem_states[pos] = Self::list_elem_state_for_ty(&ty);
981 if pos < self.tys.len() {
982 self.tys[pos] = ty;
983 } else if pos == self.tys.len() {
984 self.tys.push(ty);
985 } else {
986 self.tys.resize(pos + 1, Type::Any);
987 self.tys[pos] = ty;
988 }
989 }
990
991 pub fn add_symbol(&mut self, name: &str, s: Symbol) -> u32 {
992 self.symbols.add(name.into(), s)
993 }
994
995 pub fn new() -> Self {
996 let symbols = SymbolTable::default();
997 Self {
998 symbols,
999 tys: Vec::new(),
1000 names: Vec::new(),
1001 consts: IndexMap::with_capacity(10240),
1002 frames: Vec::new(),
1003 list_elem_states: Vec::new(),
1004 arg_counts: Vec::new(),
1005 fns: BTreeMap::new(),
1006 local_type_hints: BTreeMap::new(),
1007 infer_stack: Vec::new(),
1008 importing_paths: BTreeSet::new(),
1009 source_files: BTreeMap::new(),
1010 }
1011 }
1012
1013 fn byte_to_line_col(src: &[u8], pos: usize) -> (usize, usize) {
1014 let mut line = 1;
1015 let mut col = 1;
1016 for &b in src.iter().take(pos.min(src.len())) {
1017 if b == b'\n' {
1018 line += 1;
1019 col = 1;
1020 } else {
1021 col += 1;
1022 }
1023 }
1024 (line, col)
1025 }
1026
1027 fn line_snippet(code: &[u8], span: Span) -> String {
1028 let pos = span.start.min(code.len());
1029 let line_start = code[..pos].iter().rposition(|&b| b == b'\n').map(|idx| idx + 1).unwrap_or(0);
1030 let line_end = code[pos..].iter().position(|&b| b == b'\n').map(|idx| pos + idx).unwrap_or(code.len());
1031 String::from_utf8_lossy(&code[line_start..line_end]).into_owned()
1032 }
1033
1034 fn semantic_error(span: Span, message: impl Into<String>) -> anyhow::Error {
1035 SpannedCompilerError { message: message.into(), span }.into()
1036 }
1037
1038 fn format_compile_error(code: &[u8], err: anyhow::Error) -> anyhow::Error {
1039 if let Some(err) = err.downcast_ref::<SpannedCompilerError>() {
1040 return Self::format_span_error(code, err.span, &err.message);
1041 }
1042 if let Some(err) = err.downcast_ref::<parser::ParserErr>() {
1043 return Self::format_span_error(code, err.span(), err.message());
1044 }
1045 if let Some(err) = err.downcast_ref::<parser::SpannedParseError>() {
1046 let pos = err.pos.min(code.len());
1047 let (line, col) = Self::byte_to_line_col(code, pos);
1048 let snippet = Self::line_snippet(code, Span::new(pos, pos));
1049 return anyhow!("解析错误:第 {line} 行,第 {col} 列(字节偏移 {pos}):{}\n{}", err.err, snippet);
1050 }
1051 err
1052 }
1053
1054 fn format_span_error(code: &[u8], span: Span, message: &str) -> anyhow::Error {
1055 let pos = span.start.min(code.len());
1056 let (line, col) = Self::byte_to_line_col(code, pos);
1057 let snippet = Self::line_snippet(code, span);
1058 anyhow!("语义错误:第 {line} 行,第 {col} 列(字节偏移 {pos}):{}\n{}", message, snippet)
1059 }
1060
1061 pub fn format_source_span(&self, fn_name: &str, span: Span, message: &str) -> String {
1062 let module = fn_name.split_once("::").map(|(module, _)| module).unwrap_or(fn_name);
1063 let Some(source) = self.source_files.get(module) else {
1064 return format!("{fn_name}: 字节偏移 {}:{message}", span.start);
1065 };
1066 let code = source.code.as_ref();
1067 let pos = span.start.min(code.len());
1068 let (line, col) = Self::byte_to_line_col(code, pos);
1069 let snippet = Self::line_snippet(code, span);
1070 let location = source.path.as_ref().map(|path| path.display().to_string()).unwrap_or_else(|| module.to_string());
1071 format!("{location}:{line}:{col}: {message}\n{snippet}")
1072 }
1073
1074 pub fn parse_code(code: Vec<u8>) -> Result<Vec<Stmt>> {
1075 let mut p = Parser::new(code.clone());
1076 let mut stmts = Vec::new();
1077 loop {
1078 match p.stmt(false) {
1079 Ok(stmt) => stmts.push(stmt),
1080 Err(e) => {
1081 if p.is_eof() {
1082 return Ok(stmts);
1083 }
1084 let pos = e.downcast_ref::<parser::SpannedParseError>().map(|s| s.pos).or_else(|| e.downcast_ref::<parser::ParserErr>().map(|s| s.span().start)).unwrap_or_else(|| p.current_pos());
1087 let (line, col) = Self::byte_to_line_col(&code, pos);
1088 return Err(anyhow!("解析错误:第 {line} 行,第 {col} 列(字节偏移 {pos}):{e:#}\n{}", p.error_stmt()));
1089 }
1090 }
1091 }
1092 }
1093
1094 pub fn import_code(&mut self, name: &str, code: Vec<u8>) -> Result<Vec<u32>> {
1095 self.import_code_with_source(name, code, None, None)
1096 }
1097
1098 pub fn import_code_from_path(&mut self, name: &str, code: Vec<u8>, path: impl AsRef<Path>) -> Result<Vec<u32>> {
1099 let path = path.as_ref();
1100 self.import_code_with_source(name, code, path.parent(), Some(path))
1101 }
1102
1103 pub fn import_file(&mut self, name: &str, path: impl AsRef<Path>) -> Result<Vec<u32>> {
1104 let path = path.as_ref();
1105 let canonical = std::fs::canonicalize(path).with_context(|| format!("failed to resolve import path {}", path.display()))?;
1106 if !self.importing_paths.insert(canonical.clone()) {
1107 return Ok(Vec::new());
1108 }
1109 let code = std::fs::read(&canonical).with_context(|| format!("failed to read import path {}", canonical.display()))?;
1110 let result = self.import_code_from_path(name, code, &canonical);
1111 self.importing_paths.remove(&canonical);
1112 result
1113 }
1114
1115 fn import_code_with_source(&mut self, name: &str, code: Vec<u8>, base_dir: Option<&Path>, source_path: Option<&Path>) -> Result<Vec<u32>> {
1116 self.source_files.insert(name.into(), SourceFile { path: source_path.map(Path::to_path_buf), code: Arc::new(code.clone()) });
1117 let stmts = Self::parse_code(code.clone())?;
1118 log::debug!("func->{}", name);
1119 for s in stmts.iter() {
1120 log::debug!("{}", s);
1121 }
1122 self.resolve_imports(&stmts, base_dir).map_err(|err| Self::format_compile_error(&code, err))?;
1123 self.clear();
1124 self.compile(name.into(), stmts).map_err(|err| Self::format_compile_error(&code, err))
1125 }
1126
1127 pub fn resolve_imports(&mut self, stmts: &[Stmt], base_dir: Option<&Path>) -> Result<()> {
1128 for stmt in stmts {
1129 let Some((module, path)) = import_decl(stmt) else {
1130 continue;
1131 };
1132 if !self.symbols.symbol(module.as_str()).is_empty() {
1133 continue;
1134 }
1135 let path = Path::new(path.as_str());
1136 let resolved = if path.is_absolute() {
1137 path.to_path_buf()
1138 } else if let Some(base_dir) = base_dir {
1139 base_dir.join(path)
1140 } else {
1141 std::env::current_dir()?.join(path)
1142 };
1143 self.import_file(module.as_str(), &resolved).with_context(|| format!("failed to import {module} from {}", resolved.display()))?;
1144 }
1145 Ok(())
1146 }
1147
1148 pub fn check_code(name: &str, code: Vec<u8>) -> Vec<CompilerDiagnostic> {
1149 let mut parser = Parser::new(code.clone());
1150 let mut stmts = Vec::new();
1151 loop {
1152 match parser.stmt(false) {
1153 Ok(stmt) => stmts.push(stmt),
1154 Err(err) => {
1155 if parser.is_eof() {
1156 break;
1157 }
1158 return vec![CompilerDiagnostic { message: format!("解析错误:{err:#}"), span: Span::empty(parser.current_pos()) }];
1159 }
1160 }
1161 }
1162
1163 let mut compiler = Self::new();
1164 compiler.clear();
1165 match compiler.compile(name.into(), stmts) {
1166 Ok(_) => Vec::new(),
1167 Err(err) => {
1168 if let Some(err) = err.downcast_ref::<SpannedCompilerError>() {
1169 vec![CompilerDiagnostic { message: err.message.clone(), span: err.span }]
1170 } else {
1171 vec![CompilerDiagnostic { message: format!("{err:#}"), span: Span::default() }]
1172 }
1173 }
1174 }
1175 }
1176
1177 pub fn get_field(&self, ty: &Type, name: &str) -> Result<(usize, Type)> {
1178 self.symbols.get_field(ty, name)
1179 }
1180
1181 pub fn get_ident(&mut self, ident: &str, span: Span) -> Result<Expr> {
1182 for idx in (self.top()..self.names.len()).rev() {
1183 if self.names[idx].eq(ident) {
1184 return Ok(Expr::new(ExprKind::Var((idx - self.top()) as u32), span));
1185 }
1186 }
1187 let id = self.symbols.get_id(ident).map_err(|_| Self::semantic_error(span, format!("未找到标识符 {}", ident)))?;
1188 let s = self.symbols.get_symbol(id).map(|(_, v)| v.clone()).unwrap();
1189 if let Symbol::Const { value, ty, .. } = s {
1190 let c = self.get_const(value);
1191 return Ok(Expr::new(ExprKind::Typed { value: Box::new(Expr::new(ExprKind::Const(c), span)), ty }, span));
1192 } else if let Symbol::Static { value, ty, .. } = s
1193 && let Some(v) = value
1194 {
1195 let c = self.get_const(v);
1196 return Ok(Expr::new(ExprKind::Typed { value: Box::new(Expr::new(ExprKind::Const(c), span)), ty }, span));
1197 }
1198 Ok(Expr::new(ExprKind::Id(id, None), span))
1199 }
1200
1201 fn field_access_expr(&mut self, left: Expr, idx: usize, ty: Type, key: &str, span: Span) -> Expr {
1202 if let Type::Symbol { id, .. } = ty {
1203 Expr::new(ExprKind::Id(id, Some(Box::new(left))), span)
1204 } else if ty.is_bool() && idx == usize::MAX {
1205 Expr::new(ExprKind::Value(Dynamic::Bool(false)), span)
1206 } else if ty.is_any() && idx == usize::MAX {
1207 let right = Expr::new(ExprKind::Const(self.get_const(Dynamic::String(key.into()))), span);
1208 Expr::new(ExprKind::Binary { left: Box::new(left), op: BinaryOp::Idx, right: Box::new(right) }, span)
1209 } else {
1210 Expr::new(ExprKind::Binary { left: Box::new(left), op: BinaryOp::Idx, right: Box::new(Expr::new(ExprKind::Value(Dynamic::U32(idx as u32)), span)) }, span)
1211 }
1212 }
1213
1214 fn literal_field_access_expr(&mut self, left: Expr, key: &str, span: Span) -> Expr {
1215 let right = Expr::new(ExprKind::Const(self.get_const(Dynamic::String(key.into()))), span);
1216 Expr::new(ExprKind::Binary { left: Box::new(left), op: BinaryOp::Idx, right: Box::new(right) }, span)
1217 }
1218
1219 fn type_field_access_expr(&mut self, left: Expr, key: &str, span: Span, prefer_dynamic_field: bool) -> Option<Expr> {
1220 let ty = self.infer_expr(&left).ok()?;
1221 if prefer_dynamic_field && ty.is_any() {
1222 return Some(self.literal_field_access_expr(left, key, span));
1223 }
1224 let (idx, field_ty) = self.get_field(&ty, key).ok()?;
1225 Some(self.field_access_expr(left, idx, field_ty, key, span))
1226 }
1227
1228 fn global_method_access_expr(&self, left: Expr, method: &str, span: Span) -> Result<Option<Expr>> {
1229 let Ok(id) = self.symbols.get_id(method) else {
1230 return Ok(None);
1231 };
1232 if self.symbols.get_symbol(id)?.1.is_fn() { Ok(Some(Expr::new(ExprKind::Id(id, Some(Box::new(left))), span))) } else { Ok(None) }
1233 }
1234
1235 fn method_call_obj_expr(&mut self, obj: &Expr, stmts: &mut Vec<Stmt>, cap: &mut Capture) -> Result<Option<Expr>> {
1236 if let ExprKind::TypedMethod { obj: left, ty, name } = &obj.kind {
1237 let left = self.eval(left, stmts, cap)?;
1238 let base_name = match ty {
1239 Type::Ident { name, .. } => name.clone(),
1240 Type::Symbol { id, .. } => self.symbols.get_symbol(*id)?.0.clone(),
1241 _ => return Err(Self::semantic_error(obj.span, format!("方法调用类型提示必须是类型: {:?}", ty))),
1242 };
1243 let method = format!("{}::{}", base_name, name);
1244 let id = self.symbols.get_id(&method).map_err(|_| Self::semantic_error(obj.span, format!("未找到类型方法 {}", method)))?;
1245 return Ok(Some(Expr::new(ExprKind::Id(id, Some(Box::new(left))), obj.span)));
1246 }
1247
1248 let ExprKind::Binary { left, op: BinaryOp::Idx, right } = &obj.kind else {
1249 return Ok(None);
1250 };
1251 let Some(method) = self.get_value(right).and_then(|v| if v.is_str() { Some(v.as_str().to_string()) } else { None }) else {
1252 return Ok(None);
1253 };
1254 let left = self.eval(left, stmts, cap)?;
1255 if let Some(field) = self.type_field_access_expr(left.clone(), &method, obj.span, false) {
1256 return Ok(Some(field));
1257 }
1258 if let Some(method_fn) = self.global_method_access_expr(left.clone(), &method, obj.span)? {
1259 return Ok(Some(method_fn));
1260 }
1261 Ok(Some(self.literal_field_access_expr(left, &method, obj.span)))
1262 }
1263
1264 pub fn compile_fn(&mut self, args: &[SmolStr], tys: &mut Vec<Type>, body: Stmt, cap: &mut Capture) -> Result<Vec<Stmt>> {
1265 let top = self.tys.len();
1266 self.frames.push(top);
1267 self.arg_counts.push(args.len());
1268 let result = (|| -> Result<Vec<Stmt>> {
1269 for (arg, ty) in args.iter().zip(tys.iter_mut()) {
1270 *ty = self.symbols.get_type(ty)?;
1271 self.add_name(arg.clone());
1272 self.add_ty(ty.clone());
1273 }
1274 if cap.names.is_empty() && tys.iter().all(|ty| !ty.is_any()) {
1275 let saved_state = (self.frames.clone(), self.names.clone(), self.tys.clone(), self.list_elem_states.clone(), self.arg_counts.clone());
1276 let result = self.check_return_type(&body);
1277 self.restore_local_state(saved_state);
1278 result?;
1279 }
1280 let mut compiled = Vec::new();
1281 self.compile_stmt(body, &mut compiled, cap)?;
1282 if !compiled.last_mut().map(|stmt| stmt.last_return()).unwrap_or(false) {
1283 compiled.push(Stmt::new(StmtKind::Return(None), Span::default()));
1284 }
1285 Ok(compiled)
1286 })();
1287 if let Some(top) = self.frames.pop() {
1288 self.tys.truncate(top);
1289 self.names.truncate(top);
1290 self.list_elem_states.truncate(top);
1291 }
1292 self.arg_counts.pop();
1293 result
1294 }
1295
1296 pub fn compile(&mut self, mod_name: SmolStr, stmts: Vec<Stmt>) -> Result<Vec<u32>> {
1297 self.symbols.add_module(mod_name.clone());
1298 for stmt in stmts {
1299 match stmt.kind {
1300 StmtKind::Struct { name, def, is_pub } => {
1301 self.symbols.add(name, Symbol::Struct(def, is_pub));
1302 }
1303 StmtKind::Static { name, ty, value, is_pub } => {
1304 let value = value.map(|value| self.const_expr_value(&value)).transpose()?;
1305 self.symbols.add(name, Symbol::Static { value, ty, is_pub });
1306 }
1307 StmtKind::Const { name, ty, value, is_pub } => {
1308 let value = self.const_expr_value(&value)?;
1309 let ty = if ty.is_any() { value.get_type() } else { ty };
1310 self.symbols.add(name, Symbol::Const { value, ty, is_pub });
1311 }
1312 StmtKind::Fn { name, generic_params, args, body, is_pub } => {
1313 let (ty, args) = Type::from_args(args);
1314 self.symbols.add(name, Symbol::Fn { ty, args, generic_params, cap: Capture::default(), body: Arc::new(*body), is_pub });
1315 }
1316 StmtKind::Impl { target, body } => {
1317 let name = impl_target_name(&target)?;
1318 let def_id = match self.symbols.get_id(&name) {
1319 Ok(id) => id,
1320 Err(_) if name.as_str() == "Vec" => self.symbols.add(name.clone(), Symbol::Struct(Type::Struct { params: Vec::new(), fields: Vec::new() }, true)),
1321 Err(err) => return Err(err),
1322 };
1323 if let StmtKind::Block(fns) = body.kind {
1324 for f in fns {
1325 if let StmtKind::Fn { name: fn_name, generic_params: fn_generic_params, args, body, is_pub } = f.kind {
1326 let (ty, args) = Type::from_args(args);
1327 let mut generic_params = if has_unresolved_generic_param(&target) {
1328 match &target {
1329 Type::Ident { params, .. } => params.clone(),
1330 _ => Vec::new(),
1331 }
1332 } else {
1333 Vec::new()
1334 };
1335 for param in fn_generic_params {
1336 if !generic_params.contains(¶m) {
1337 generic_params.push(param);
1338 }
1339 }
1340 let fn_id = self.symbols.add(SmolStr::from(format!("{}::{}", name, fn_name)), Symbol::Fn { ty, args, generic_params, cap: Capture::default(), body: Arc::new(*body), is_pub });
1341 if let Symbol::Struct(ty, _) = &mut self.symbols.symbols[def_id as usize] {
1342 ty.add_field(fn_name.into(), Type::Symbol { id: fn_id, params: Vec::new() })?;
1343 }
1344 } else {
1345 log::debug!("impl 包含非函数语句 {:?}", f);
1346 }
1347 }
1348 }
1349 }
1350 StmtKind::Expr(expr, _) if is_top_level_import_expr(&expr) => {}
1351 _ => return Err(Self::semantic_error(stmt.span, format!("不支持的顶层语句: {:?}", stmt.kind))),
1352 }
1353 }
1354 let mut fn_ids = Vec::new();
1355 for (name, id) in self.symbols.symbol(&mod_name) {
1356 log::debug!("compile symbol {:?}[{}]", name, id);
1357 if let Some((_, Symbol::Fn { ty, generic_params, .. })) = self.symbols.get_symbol(id).ok() {
1358 let resolved_ty = self.symbols.get_type(ty).unwrap_or_else(|_| ty.clone());
1359 if has_unresolved_generic_param(&resolved_ty) || !generic_params.is_empty() {
1360 continue;
1361 }
1362 }
1363 if let Some(s) = self.symbols.get_symbol(id).ok().map(|(_, symbol)| symbol.clone()) {
1364 if let Symbol::Fn { ty, args, generic_params, mut cap, body, is_pub } = s {
1365 if let Type::Fn { mut tys, ret } = ty {
1366 let compiled = self.compile_fn(&args, &mut tys, body.as_ref().clone(), &mut cap)?;
1367 for s in compiled.iter() {
1368 log::debug!("{}", s);
1369 }
1370 self.symbols.symbols[id as usize] = Symbol::Fn { ty: Type::Fn { tys, ret }, args, generic_params, cap, body: Arc::new(Stmt::new(StmtKind::Block(compiled), Span::default())), is_pub };
1371 fn_ids.push(id);
1372 }
1373 }
1374 }
1375 }
1376 self.symbols.pop_module();
1377 Ok(fn_ids)
1378 }
1379
1380 fn pat_to_var(&mut self, pat: Pattern, expr_ty: Type) -> Result<Pattern> {
1381 match pat.kind {
1382 PatternKind::Var { idx, ty } => Ok(Pattern { kind: PatternKind::Var { idx, ty }, span: pat.span }),
1383 PatternKind::Ident { name, ty } => {
1384 let ty = self.symbols.get_type(&ty)?;
1385 let ty = if ty.is_any() { expr_ty } else { ty };
1386 self.add_ty(ty.clone());
1387 Ok(Pattern { kind: PatternKind::Var { idx: self.add_name(name), ty }, span: pat.span })
1388 }
1389 PatternKind::Tuple(pats) => {
1390 if let Type::Tuple(tys) = &expr_ty {
1391 if pats.len() != tys.len() {
1392 return Err(Self::semantic_error(pat.span, format!("模式与元组类型不匹配: {:?}", expr_ty)));
1393 }
1394 let pats: Vec<Pattern> = pats.into_iter().zip(tys).map(|p| self.pat_to_var(p.0, p.1.clone())).collect::<Result<_>>()?;
1395 Ok(Pattern { kind: PatternKind::Tuple(pats), span: pat.span })
1396 } else {
1397 let pats = pats.into_iter().map(|p| self.pat_to_var(p, Type::Any)).collect::<Result<_>>()?;
1398 Ok(Pattern { kind: PatternKind::Tuple(pats), span: pat.span })
1399 }
1400 }
1401 PatternKind::List { elems, has_rest } => {
1402 if expr_ty.is_any() {
1403 let elems: Vec<Pattern> = elems.into_iter().map(|p| self.pat_to_var(p, Type::Any)).collect::<Result<_>>()?;
1404 Ok(Pattern { kind: PatternKind::List { elems, has_rest }, span: pat.span })
1405 } else if let Type::List(elem_ty) | Type::Array(elem_ty, _) | Type::Vec(elem_ty, _) = &expr_ty {
1406 let elems: Vec<Pattern> = elems.into_iter().map(|p| self.pat_to_var(p, elem_ty.as_ref().clone())).collect::<Result<_>>()?;
1407 Ok(Pattern { kind: PatternKind::List { elems, has_rest }, span: pat.span })
1408 } else {
1409 Err(Self::semantic_error(pat.span, format!("列表模式 {:?} 与类型 {:?} 不匹配", elems, expr_ty)))
1410 }
1411 }
1412 PatternKind::Wildcard => {
1413 self.add_ty(expr_ty.clone());
1414 Ok(Pattern { kind: PatternKind::Var { idx: self.add_name(SmolStr::new_static("")), ty: expr_ty }, span: pat.span })
1415 }
1416 _ => Err(Self::semantic_error(pat.span, format!("未知的模式 {:?}", pat))),
1417 }
1418 }
1419
1420 fn infer_range_type(&self, range: &Expr) -> Type {
1421 if let ExprKind::Range { start, stop, .. } = &range.kind {
1422 let start_ty = start.get_type();
1423 let stop_ty = stop.get_type();
1424 if start_ty.is_any() {
1425 stop_ty
1426 } else if stop_ty.is_any() {
1427 start_ty
1428 } else if start_ty == Type::I32 && stop_ty.is_uint() {
1429 stop_ty
1430 } else if stop_ty == Type::I32 && start_ty.is_uint() {
1431 start_ty
1432 } else {
1433 start_ty + stop_ty
1434 }
1435 } else {
1436 range.get_type()
1437 }
1438 }
1439
1440 fn dyn_init(&mut self, expr: Expr, stmts: &mut Vec<Stmt>, items: Vec<(Expr, Expr)>, ty: Type) -> Expr {
1441 self.add_name("".into());
1442 let temp = self.add_ty(ty);
1443 let span = expr.span;
1444 stmts.push(Stmt::new(StmtKind::Expr(Expr::new(ExprKind::Binary { left: Box::new(Expr::new(ExprKind::Var(temp), span)), op: BinaryOp::Assign, right: Box::new(expr) }, span), true), span));
1445 for (idx, item) in items {
1446 let item_span = idx.span.merge(item.span);
1447 let left = Expr::new(ExprKind::Binary { left: Box::new(Expr::new(ExprKind::Var(temp), item_span)), op: BinaryOp::Idx, right: Box::new(idx) }, item_span);
1448 stmts.push(Stmt::new(StmtKind::Expr(Expr::new(ExprKind::Binary { left: Box::new(left), op: BinaryOp::Assign, right: Box::new(item) }, item_span), false), item_span));
1449 }
1450 Expr::new(ExprKind::Var(temp), span)
1451 }
1452
1453 fn is_spawn_closure_call(obj: &Expr, params: &[Expr]) -> bool {
1454 params.len() == 2 && matches!(&obj.kind, ExprKind::Ident(name) if name.as_str() == "spawn") && matches!(¶ms[0].kind, ExprKind::Closure { .. })
1455 }
1456
1457 fn eval_spawn_arg_pack(&mut self, expr: &Expr, stmts: &mut Vec<Stmt>, cap: &mut Capture) -> Result<Expr> {
1458 match &expr.kind {
1459 ExprKind::Tuple(items) | ExprKind::List(items) => Ok(Expr::new(ExprKind::Tuple(items.iter().map(|item| self.eval(item, stmts, cap)).collect::<Result<Vec<_>>>()?), expr.span)),
1460 _ => Err(Self::semantic_error(expr.span, "spawn closure args must be tuple")),
1461 }
1462 }
1463
1464 fn is_multi_assign_target(expr: &Expr) -> bool {
1465 matches!(expr.kind, ExprKind::Tuple(_) | ExprKind::List(_))
1466 }
1467
1468 fn push_assign(stmts: &mut Vec<Stmt>, left: Expr, right: Expr, span: Span) {
1469 stmts.push(Stmt::new(StmtKind::Expr(Expr::new(ExprKind::Binary { left: Box::new(left), op: BinaryOp::Assign, right: Box::new(right) }, span), true), span));
1470 }
1471
1472 fn temp_var(&mut self, ty: Type, span: Span) -> Expr {
1473 self.add_name("".into());
1474 let idx = self.add_ty(ty);
1475 Expr::new(ExprKind::Var(idx), span)
1476 }
1477
1478 fn typed_expr(value: Expr, ty: &Type) -> Expr {
1479 if ty.is_any() {
1480 value
1481 } else {
1482 let span = value.span;
1483 Expr::new(ExprKind::Typed { value: Box::new(value), ty: ty.clone() }, span)
1484 }
1485 }
1486
1487 fn lower_multi_assign(&mut self, left: &Expr, right: &Expr, stmts: &mut Vec<Stmt>, cap: &mut Capture, span: Span) -> Result<Expr> {
1488 let left_items = match &left.kind {
1489 ExprKind::Tuple(items) | ExprKind::List(items) => items,
1490 _ => return Err(Self::semantic_error(left.span, "多重赋值左侧必须是 tuple 或 list")),
1491 };
1492 if left_items.is_empty() {
1493 return Err(Self::semantic_error(left.span, "多重赋值左侧不能为空"));
1494 }
1495
1496 let mut temps = Vec::with_capacity(left_items.len());
1497 if let ExprKind::Tuple(right_items) | ExprKind::List(right_items) = &right.kind {
1498 if left_items.len() != right_items.len() {
1499 return Err(Self::semantic_error(span, format!("多重赋值数量不匹配: 左侧 {} 个,右侧 {} 个", left_items.len(), right_items.len())));
1500 }
1501 for item in right_items {
1502 let value = self.eval(item, stmts, cap)?;
1503 let ty = self.infer_expr(&value)?;
1504 let temp = self.temp_var(ty.clone(), item.span);
1505 Self::push_assign(stmts, temp.clone(), Self::typed_expr(value, &ty), item.span);
1506 temps.push((temp, ty));
1507 }
1508 } else {
1509 let value = self.eval(right, stmts, cap)?;
1510 let ty = self.infer_expr(&value)?;
1511 let source = self.temp_var(ty.clone(), right.span);
1512 Self::push_assign(stmts, source.clone(), Self::typed_expr(value, &ty), right.span);
1513 for idx in 0..left_items.len() {
1514 let item_span = left_items[idx].span;
1515 let item = Expr::new(ExprKind::Binary { left: Box::new(source.clone()), op: BinaryOp::Idx, right: Box::new(Expr::new(ExprKind::Value((idx as u32).into()), item_span)) }, item_span);
1516 let value = self.eval(&item, stmts, cap)?;
1517 let ty = self.infer_expr(&value)?;
1518 let temp = self.temp_var(ty.clone(), item_span);
1519 Self::push_assign(stmts, temp.clone(), Self::typed_expr(value, &ty), item_span);
1520 temps.push((temp, ty));
1521 }
1522 }
1523
1524 for (target, (temp, ty)) in left_items.iter().zip(temps.iter()) {
1525 let target = self.eval(target, stmts, cap)?;
1526 let assign_span = target.span.merge(temp.span);
1527 Self::push_assign(stmts, target, Self::typed_expr(temp.clone(), ty), assign_span);
1528 }
1529
1530 Ok(temps.last().map(|(temp, ty)| Self::typed_expr(temp.clone(), ty)).unwrap_or_else(|| Expr::new(ExprKind::Value(Dynamic::Null), span)))
1531 }
1532
1533 fn static_composite_literal(&self, expr: &Expr) -> Result<Option<Dynamic>> {
1534 match &expr.kind {
1535 ExprKind::List(items) | ExprKind::Tuple(items) => {
1536 let mut values = Vec::with_capacity(items.len());
1537 for item in items {
1538 let Some(value) = self.static_literal_value(item)? else {
1539 return Ok(None);
1540 };
1541 values.push(value);
1542 }
1543 Ok(Some(Dynamic::list(values)))
1544 }
1545 ExprKind::Dict(items) => {
1546 let mut values = BTreeMap::new();
1547 for (key, item) in items {
1548 let Some(value) = self.static_literal_value(item)? else {
1549 return Ok(None);
1550 };
1551 values.insert(key.clone(), value);
1552 }
1553 Ok(Some(Dynamic::map(values)))
1554 }
1555 _ => Ok(None),
1556 }
1557 }
1558
1559 fn static_literal_value(&self, expr: &Expr) -> Result<Option<Dynamic>> {
1560 match &expr.kind {
1561 ExprKind::Value(value) => Ok(Some(value.clone())),
1562 ExprKind::Const(idx) => Ok(self.consts.get_index(*idx).map(|(_, v)| v.clone())),
1563 ExprKind::Typed { value, ty } if ty.is_native() => Ok(self.static_literal_value(value)?.map(|value| ty.force(value)).transpose()?),
1564 _ => self.static_composite_literal(expr),
1565 }
1566 }
1567
1568 fn const_expr_value(&self, expr: &Expr) -> Result<Dynamic> {
1569 match &expr.kind {
1570 ExprKind::Value(value) => Ok(value.clone()),
1571 ExprKind::Const(idx) => self.consts.get_index(*idx).map(|(_, v)| v.clone()).ok_or_else(|| Self::semantic_error(expr.span, format!("常量索引 {} 不存在", idx))),
1572 ExprKind::Ident(ident) => {
1573 let id = self.symbols.get_id(ident).map_err(|_| Self::semantic_error(expr.span, format!("未找到常量 {}", ident)))?;
1574 match self.symbols.get_symbol(id).map(|(_, symbol)| symbol) {
1575 Ok(Symbol::Const { value, .. }) => Ok(value.clone()),
1576 Ok(Symbol::Static { value: Some(value), .. }) => Ok(value.clone()),
1577 _ => Err(Self::semantic_error(expr.span, format!("{} 不是可用于 const 的静态值", ident))),
1578 }
1579 }
1580 ExprKind::Typed { value, ty } if ty.is_native() => Ok(ty.force(self.const_expr_value(value)?)?),
1581 ExprKind::Typed { value, .. } => self.const_expr_value(value),
1582 ExprKind::List(items) | ExprKind::Tuple(items) => {
1583 let values = items.iter().map(|item| self.const_expr_value(item)).collect::<Result<Vec<_>>>()?;
1584 Ok(Dynamic::list(values))
1585 }
1586 ExprKind::Dict(items) => {
1587 let mut values = BTreeMap::new();
1588 for (key, item) in items {
1589 values.insert(key.clone(), self.const_expr_value(item)?);
1590 }
1591 Ok(Dynamic::map(values))
1592 }
1593 ExprKind::Unary { op, value } => {
1594 let value = self.const_expr_value(value)?;
1595 match op {
1596 parser::UnaryOp::Neg => Ok(-value),
1597 parser::UnaryOp::Not => Ok(!value),
1598 parser::UnaryOp::Unknow => Err(Self::semantic_error(expr.span, "const 一元表达式无法在编译期求值")),
1599 }
1600 }
1601 ExprKind::Binary { left, op, right } => {
1602 let left = Expr::new(ExprKind::Value(self.const_expr_value(left)?), left.span);
1603 let right = Expr::new(ExprKind::Value(self.const_expr_value(right)?), right.span);
1604 Expr::new(ExprKind::Binary { left: Box::new(left), op: op.clone(), right: Box::new(right) }, expr.span).compact().ok_or_else(|| Self::semantic_error(expr.span, "const 二元表达式无法在编译期求值"))
1605 }
1606 _ => Err(Self::semantic_error(expr.span, "const 只能使用字面量、已声明常量和静态 composite literal")),
1607 }
1608 }
1609
1610 fn eval_stmt_expr(&mut self, stmt: &Stmt, stmts: &mut Vec<Stmt>, cap: &mut Capture, span: Span) -> Result<Expr> {
1611 self.compile_stmt(stmt.clone(), stmts, cap)?;
1612 let expr_ty = if let Some(stmt) = stmts.last() { if let StmtKind::Expr(expr, _) = &stmt.kind { self.infer_expr(expr)? } else { self.infer_stmt(stmt)? } } else { Type::Any };
1613 self.add_name("".into());
1614 let temp = self.add_ty(expr_ty.clone());
1615 let pat = Pattern { kind: PatternKind::Var { idx: temp, ty: expr_ty }, span };
1616 stmts.last_mut().ok_or_else(|| Self::semantic_error(span, "没有生成可求值语句表达式")).and_then(|stmt| stmt.bind_pattern(pat))?;
1617 Ok(Expr::new(ExprKind::Var(temp), span))
1618 }
1619
1620 fn eval(&mut self, expr: &Expr, stmts: &mut Vec<Stmt>, cap: &mut Capture) -> Result<Expr> {
1621 match &expr.kind {
1622 ExprKind::Stmt(stmt) => self.eval_stmt_expr(stmt, stmts, cap, expr.span),
1623 ExprKind::Closure { args, body } => {
1624 let (mut names, mut tys): (Vec<SmolStr>, Vec<Type>) = args.clone().into_iter().unzip();
1625 let top = self.top();
1626 let mut cap_vars: Vec<(SmolStr, Type)> = self.names[top..].iter().zip(self.tys[top..].iter()).map(|(n, ty)| (n.clone(), ty.clone())).collect();
1627 let parent_cap_start = cap_vars.len();
1628 cap_vars.extend(cap.names.iter().cloned());
1629 let mut local_cap = Capture::new(cap_vars);
1630 let _ = self.compile_fn(names.as_slice(), &mut tys.clone(), *body.clone(), &mut local_cap)?;
1631 for cap_idx in local_cap.vars.iter() {
1632 if *cap_idx >= parent_cap_start {
1633 let _ = cap.get(&local_cap.names[*cap_idx].0);
1634 }
1635 names.push(local_cap.names[*cap_idx].0.clone());
1636 tys.push(local_cap.names[*cap_idx].1.clone());
1637 }
1638 let mut compiled = self.compile_fn(names.as_slice(), &mut tys.clone(), *body.clone(), &mut Capture::default())?;
1639 let (ty, args) = Type::from_args(args.clone());
1640 let body_stmt = if compiled.len() == 1 { compiled.pop().unwrap() } else { Stmt::new(StmtKind::Block(compiled), expr.span) };
1641 let name = SmolStr::from(format!("__closure_{}_{}", expr.span.start, expr.span.end));
1642 let fn_id = self.symbols.add(name, Symbol::Fn { ty, args, generic_params: Vec::new(), cap: local_cap, body: Arc::new(body_stmt), is_pub: false });
1643 Ok(Expr::new(ExprKind::Id(fn_id, None), expr.span))
1644 }
1645 ExprKind::Value(v) => {
1646 if v.is_native() {
1647 Ok(Expr::new(ExprKind::Value(v.clone()), expr.span))
1648 } else {
1649 Ok(Expr::new(ExprKind::Const(self.get_const(v.clone())), expr.span))
1650 }
1651 }
1652 ExprKind::Typed { value, ty } => {
1653 let ty = self.symbols.get_type(ty)?;
1654 if let Type::Struct { fields, .. } = &ty
1655 && let ExprKind::Dict(dict) = &value.kind
1656 {
1657 let mut items = Vec::new();
1658 for field in fields {
1659 if let Some((_, v)) = dict.iter().find(|(name, _)| name == &field.0) {
1660 items.push(self.eval(v, stmts, cap)?);
1661 }
1662 }
1663 Ok(Expr::new(ExprKind::Typed { value: Box::new(Expr::new(ExprKind::List(items), expr.span)), ty }, expr.span))
1664 } else if let Type::Struct { .. } = &ty
1665 && let ExprKind::List(list) = &value.kind
1666 {
1667 let items = list.iter().map(|item| self.eval(item, stmts, cap)).collect::<Result<Vec<_>>>()?;
1668 Ok(Expr::new(ExprKind::Typed { value: Box::new(Expr::new(ExprKind::List(items), expr.span)), ty }, expr.span))
1669 } else if let Type::Array(_, _) = &ty
1670 && let ExprKind::List(list) = &value.kind
1671 {
1672 let items = list.iter().map(|item| self.eval(item, stmts, cap)).collect::<Result<Vec<_>>>()?;
1673 Ok(Expr::new(ExprKind::Typed { value: Box::new(Expr::new(ExprKind::List(items), expr.span)), ty }, expr.span))
1674 } else if value.is_value() {
1675 let value = value.clone().value()?;
1676 if ty.is_str() && value.is_str() { Ok(Expr::new(ExprKind::Const(self.get_const(value)), expr.span)) } else { Ok(Expr::new(ExprKind::Value(ty.force(value)?), expr.span)) }
1680 } else {
1681 Ok(Expr::new(ExprKind::Typed { value: Box::new(self.eval(value, stmts, cap)?), ty }, expr.span))
1682 }
1683 }
1684 ExprKind::Ident(ident) => {
1685 for idx in (self.top()..self.names.len()).rev() {
1687 if self.names[idx].eq(ident) {
1688 return Ok(Expr::new(ExprKind::Var((idx - self.top()) as u32), expr.span));
1689 }
1690 }
1691 if let Some(idx) = cap.get(ident) {
1692 return Ok(Expr::new(ExprKind::Capture(idx as u32), expr.span));
1693 }
1694 self.get_ident(ident, expr.span)
1695 }
1696 ExprKind::Generic { obj, params } => {
1697 let obj = self.eval(obj, stmts, cap)?;
1698 let params = params.iter().map(|param| self.symbols.get_type(param).unwrap_or_else(|_| param.clone())).collect();
1699 match obj.kind {
1700 ExprKind::Id(id, None) | ExprKind::AssocId { id, .. } => Ok(Expr::new(ExprKind::AssocId { id, params }, expr.span)),
1701 _ => Err(Self::semantic_error(expr.span, format!("范型参数只能用于函数或关联函数调用: {:?}", obj))),
1702 }
1703 }
1704 ExprKind::Assoc { ty, name } => {
1705 let base_name = match ty {
1706 Type::Ident { name, .. } => name.clone(),
1707 Type::Symbol { id, .. } => self.symbols.get_symbol(*id)?.0.clone(),
1708 _ => return Err(Self::semantic_error(expr.span, format!("关联函数目标必须是类型: {:?}", ty))),
1709 };
1710 let id = self.symbols.get_id(&format!("{}::{}", base_name, name)).map_err(|_| Self::semantic_error(expr.span, format!("未找到关联函数 {}::{}", base_name, name)))?;
1711 let params = match ty {
1712 Type::Ident { params, .. } | Type::Symbol { params, .. } => params.iter().map(|param| self.symbols.get_type(param).unwrap_or_else(|_| param.clone())).collect(),
1713 _ => Vec::new(),
1714 };
1715 Ok(Expr::new(ExprKind::AssocId { id, params }, expr.span))
1716 }
1717 ExprKind::Unary { op, value } => {
1718 let value = Expr::new(ExprKind::Unary { op: op.clone(), value: Box::new(self.eval(value, stmts, cap)?) }, expr.span);
1719 if let Some(v) = value.compact() { Ok(Expr::new(ExprKind::Value(v), expr.span)) } else { Ok(value) }
1720 }
1721 ExprKind::Binary { left, op, right } => {
1722 if *op == BinaryOp::Assign && Self::is_multi_assign_target(left) {
1723 return self.lower_multi_assign(left, right, stmts, cap, expr.span);
1724 }
1725 let left = self.eval(left, stmts, cap)?;
1726 if *op == BinaryOp::Idx {
1727 if let Some(key) = self.get_value(right).and_then(|v| if v.is_str() { Some(v.as_str().to_string()) } else { None }) {
1728 if let Some(field) = self.type_field_access_expr(left.clone(), &key, expr.span, true) {
1729 return Ok(field);
1730 }
1731 return Ok(self.literal_field_access_expr(left, &key, expr.span));
1732 } else if let Ok(ident) = right.ident() {
1733 if let Ok(found) = self.get_ident(ident, right.span) {
1734 return Ok(if let Some(id) = found.id() {
1735 Expr::new(ExprKind::Id(id, Some(Box::new(left))), expr.span)
1736 } else {
1737 Expr::new(ExprKind::Binary { left: Box::new(left), op: BinaryOp::Idx, right: Box::new(found) }, expr.span)
1738 });
1739 }
1740 if let Ok(ty) = self.infer_expr(&left)
1741 && let Ok((idx, ty)) = self.get_field(&ty, ident)
1742 {
1743 return Ok(if let Type::Symbol { id, .. } = ty {
1744 Expr::new(ExprKind::Id(id, Some(Box::new(left))), expr.span)
1745 } else if ty.is_bool() && idx == usize::MAX {
1746 Expr::new(ExprKind::Value(Dynamic::Bool(false)), expr.span)
1747 } else if ty.is_any() && idx == usize::MAX {
1748 let right = Expr::new(ExprKind::Const(self.get_const(Dynamic::String(ident.into()))), expr.span);
1749 Expr::new(ExprKind::Binary { left: Box::new(left), op: BinaryOp::Idx, right: Box::new(right) }, expr.span)
1750 } else {
1751 Expr::new(ExprKind::Binary { left: Box::new(left), op: BinaryOp::Idx, right: Box::new(Expr::new(ExprKind::Value(Dynamic::U32(idx as u32)), expr.span)) }, expr.span)
1752 });
1753 } else {
1754 let right = Expr::new(ExprKind::Const(self.get_const(Dynamic::String(ident.into()))), expr.span);
1755 return Ok(Expr::new(ExprKind::Binary { left: Box::new(left), op: BinaryOp::Idx, right: Box::new(right) }, expr.span));
1756 }
1757 }
1758 }
1759 let right = self.eval(right, stmts, cap)?;
1760 let value = Self::normalize_self_assign(left, op.clone(), right, expr.span, self.arg_counts.last().copied().unwrap_or(0));
1761 if let Some(v) = value.compact() { Ok(Expr::new(ExprKind::Value(v), expr.span)) } else { Ok(value) }
1762 }
1763 ExprKind::Call { obj, params } => {
1764 let params: Vec<Expr> = if Self::is_spawn_closure_call(obj, params) {
1765 vec![self.eval(¶ms[0], stmts, cap)?, self.eval_spawn_arg_pack(¶ms[1], stmts, cap)?]
1766 } else {
1767 params.iter().map(|p| self.eval(p, stmts, cap)).collect::<Result<Vec<_>>>()?
1768 };
1769 let obj_result = if let Some(method_obj) = self.method_call_obj_expr(obj, stmts, cap)? { Ok(method_obj) } else { self.eval(obj, stmts, cap) };
1770 match obj_result {
1771 Ok(obj) if obj.is_value() && params.is_empty() => Ok(obj),
1772 Ok(obj) => Ok(Expr::new(ExprKind::Call { obj: Box::new(obj), params }, expr.span)),
1773 Err(e) => {
1774 Err(Self::semantic_error(obj.span, format!("未注册函数 {:?}: {}", obj.kind, e)))
1777 }
1778 }
1779 }
1780 ExprKind::Range { start, stop, inclusive } => {
1781 let start = Box::new(self.eval(start, stmts, cap)?);
1782 let stop = Box::new(self.eval(stop, stmts, cap)?);
1783 Ok(Expr::new(ExprKind::Range { start, stop, inclusive: *inclusive }, expr.span))
1784 }
1785 ExprKind::List(list) | ExprKind::Tuple(list) => {
1786 if let Some(value) = self.static_composite_literal(expr)? {
1787 let idx = self.get_const(value);
1788 return Ok(Expr::new(ExprKind::Const(idx), expr.span));
1789 }
1790 let mut v = Vec::new();
1791 let mut items = Vec::new();
1792 for (idx, item) in list.iter().enumerate() {
1793 if item.is_value() {
1794 v.push(item.clone().value().unwrap());
1795 } else {
1796 items.push((Expr::new(ExprKind::Value((idx as u32).into()), item.span), self.eval(item, stmts, cap)?));
1797 v.push(Dynamic::Null);
1798 }
1799 }
1800 let list = Expr::new(ExprKind::Const(self.get_const(Dynamic::list(v))), expr.span);
1801 Ok(self.dyn_init(list, stmts, items, Type::Any))
1802 }
1803 ExprKind::Repeat { value, len } => {
1804 let len = self.symbols.get_type(len)?;
1805 let Type::ConstInt(len) = len else {
1806 return Err(Self::semantic_error(expr.span, format!("重复数组长度必须是编译期整数: {:?}", len)));
1807 };
1808 if len < 0 {
1809 return Err(Self::semantic_error(expr.span, "重复数组长度不能为负数"));
1810 }
1811 Ok(Expr::new(ExprKind::Repeat { value: Box::new(self.eval(value, stmts, cap)?), len: Type::ConstInt(len) }, expr.span))
1812 }
1813 ExprKind::Dict(dict) => {
1814 if let Some(value) = self.static_composite_literal(expr)? {
1815 let idx = self.get_const(value);
1816 return Ok(Expr::new(ExprKind::Const(idx), expr.span));
1817 }
1818 let mut dyn_kv = Vec::new();
1819 let mut m = BTreeMap::new();
1820 for (k, v) in dict {
1821 if v.is_value() {
1822 m.insert(k.clone(), v.clone().value()?);
1823 } else {
1824 let key = Expr::new(ExprKind::Const(self.get_const(Dynamic::String(k.clone()))), v.span);
1825 dyn_kv.push((key, self.eval(v, stmts, cap)?));
1826 m.insert(k.clone(), Dynamic::Null);
1827 }
1828 }
1829 let dict = Expr::new(ExprKind::Const(self.get_const(Dynamic::map(m))), expr.span);
1830 Ok(self.dyn_init(dict, stmts, dyn_kv, Type::Any))
1831 }
1832 ExprKind::Id(_, _) | ExprKind::AssocId { .. } => Ok(expr.clone()),
1833 _ => Ok(expr.clone()),
1834 }
1835 }
1836
1837 fn get_stmt(&mut self, stmt: Stmt, cap: &mut Capture) -> Result<Stmt> {
1838 let span = stmt.span;
1839 let mut stmts = Vec::new();
1840 self.compile_stmt(stmt, &mut stmts, cap)?;
1841 Ok(Stmt::new(StmtKind::Block(stmts), span))
1842 }
1843
1844 fn compile_stmt(&mut self, stmt: Stmt, compiled: &mut Vec<Stmt>, cap: &mut Capture) -> Result<()> {
1845 let stmt_span = stmt.span;
1846 match stmt.kind {
1847 StmtKind::Let { pat, value } => {
1848 let value = *value;
1849 let annotated_ty = if let PatternKind::Ident { ty, .. } = &pat.kind {
1850 let ty = self.symbols.get_type(ty)?;
1851 if ty.is_any() { None } else { Some(ty) }
1852 } else {
1853 None
1854 };
1855 let pattern_expr_ty = if matches!(pat.kind, PatternKind::List { .. } | PatternKind::Tuple(_)) { if let StmtKind::Expr(expr, _) = &value.kind { Some(self.infer_expr(expr)?) } else { None } } else { None };
1856 if let Some(ty) = annotated_ty {
1857 if let StmtKind::Expr(expr, close) = value.kind {
1858 let span = expr.span;
1859 let typed = Expr::new(ExprKind::Typed { value: Box::new(expr), ty }, span);
1860 self.compile_stmt(Stmt::new(StmtKind::Expr(typed, close), value.span), compiled, cap)?;
1861 } else {
1862 self.compile_stmt(value, compiled, cap)?;
1863 }
1864 } else {
1865 self.compile_stmt(value, compiled, cap)?;
1866 }
1867 let expr_ty = if let Some(ty) = pattern_expr_ty {
1868 ty
1869 } else if let Some(stmt) = compiled.last() {
1870 if let StmtKind::Expr(expr, _) = &stmt.kind { self.infer_expr(expr)? } else { self.infer_stmt(stmt)? }
1871 } else {
1872 Type::Any
1873 };
1874 let pat = self.pat_to_var(pat, expr_ty.clone())?;
1875 compiled.last_mut().ok_or_else(|| Self::semantic_error(stmt_span, "没有生成可绑定模式的编译语句")).and_then(|stmt| stmt.bind_pattern(pat))?;
1876 }
1877 StmtKind::Expr(expr, close) => {
1878 if let ExprKind::Binary { left, op: BinaryOp::Assign, right } = &expr.kind
1879 && Self::is_multi_assign_target(left)
1880 {
1881 self.lower_multi_assign(left, right, compiled, cap, stmt_span)?;
1882 return Ok(());
1883 }
1884 let e = self.eval(&expr, compiled, cap)?;
1885 compiled.push(Stmt::new(StmtKind::Expr(e, close), stmt_span));
1886 }
1887 StmtKind::Block(stmts) => {
1888 let mut block = Vec::new();
1889 for stmt in stmts {
1890 self.compile_stmt(stmt, &mut block, cap)?;
1891 }
1892 compiled.push(Stmt::new(StmtKind::Block(block), stmt_span));
1893 }
1894 StmtKind::Fn { name, generic_params, args, body, is_pub } => {
1895 let (ty, args) = Type::from_args(args);
1896 if let Type::Fn { mut tys, ret } = ty {
1897 let mut fn_cap = Capture::default();
1898 let compiled_body = self.compile_fn(&args, &mut tys, *body, &mut fn_cap)?;
1899 self.symbols.add(name, Symbol::Fn { ty: Type::Fn { tys, ret }, args, generic_params, cap: fn_cap, body: Arc::new(Stmt::new(StmtKind::Block(compiled_body), stmt_span)), is_pub });
1900 } else {
1901 panic!("nested functions are not supported here")
1902 }
1903 }
1904 StmtKind::Return(expr) => {
1905 let expr = expr.map(|e| self.eval(&e, compiled, cap)).transpose()?;
1906 compiled.push(Stmt::new(StmtKind::Return(expr), stmt_span));
1907 }
1908 StmtKind::If { cond, then_body, else_body } => {
1909 let cond = self.eval(&cond, compiled, cap)?;
1910 if let Some(cond_value) = cond.compact()
1911 && let Some(cond_bool) = cond_value.as_bool()
1912 {
1913 if cond_bool {
1914 self.compile_stmt(*then_body, compiled, cap)?;
1915 } else if let Some(body) = else_body {
1916 self.compile_stmt(*body, compiled, cap)?;
1917 }
1918 } else {
1919 let then_body = Box::new(self.get_stmt(*then_body, cap)?);
1920 let else_body = if let Some(body) = else_body { Some(Box::new(self.get_stmt(*body, cap)?)) } else { None };
1921 compiled.push(Stmt::new(StmtKind::If { cond, then_body, else_body }, stmt_span));
1922 }
1923 }
1924 StmtKind::Loop(body) => {
1925 compiled.push(Stmt::new(StmtKind::Loop(Box::new(self.get_stmt(*body, cap)?)), stmt_span));
1926 }
1927 StmtKind::While { cond, body } => {
1928 let cond = self.eval(&cond, compiled, cap)?;
1929 compiled.push(Stmt::new(StmtKind::While { cond, body: Box::new(self.get_stmt(*body, cap)?) }, stmt_span));
1930 }
1931 StmtKind::For { pat, range, body } => {
1932 let range = self.eval(&range, compiled, cap)?;
1933 let range_ty = self.infer_range_type(&range);
1934 let pat = self.pat_to_var(pat, range_ty)?;
1935 compiled.push(Stmt::new(StmtKind::For { pat, range, body: Box::new(self.get_stmt(*body, cap)?) }, stmt_span));
1936 }
1937 stmt_kind => {
1938 compiled.push(Stmt::new(stmt_kind, stmt_span));
1939 }
1940 }
1941 Ok(())
1942 }
1943}