1use compiler::{Capture, Compiler, Symbol};
2use dynamic::{Dynamic, Type};
3use parser::{BinaryOp, Expr, ExprKind, PatternKind, Span, Stmt, StmtKind, UnaryOp};
4use std::collections::{BTreeMap, HashMap, VecDeque};
5
6use crate::context::LocalVar;
7
8use super::{FnInfo, FnVariant, PTR_TYPE, context::BuildContext, get_type, ptr_type};
9use cranelift::prelude::*;
10use cranelift_jit::{JITBuilder, JITModule};
11use cranelift_module::{DataDescription, DataId, FuncId, Module};
12
13use anyhow::{Result, anyhow};
14use smol_str::SmolStr;
15use std::sync::{Arc, Mutex, RwLock, Weak};
16
17pub struct JITRunTime {
18 pub compiler: Compiler,
19 pub fns: BTreeMap<u32, FnVariant>,
20 pub sigs: Vec<(Vec<Type>, Signature, Type)>,
21 pub native_symbols: Arc<RwLock<HashMap<String, usize>>>,
22 pub(crate) owner: Weak<Mutex<JITRunTime>>,
23 pub(crate) pending_fns: VecDeque<PendingFn>,
24 pub(crate) compile_depth: usize,
25 #[cfg(feature = "ir-disassembly")]
26 pub ir_disassembly: BTreeMap<SmolStr, String>,
27 pub module: JITModule,
28 pub consts: Vec<Option<DataId>>,
29 pub(crate) scope_enter_fn: Option<FuncId>,
30 pub(crate) scope_exit_void_fn: Option<FuncId>,
31 pub(crate) scope_exit_dynamic_fn: Option<FuncId>,
32 pub(crate) scope_exit_bytes_fn: Option<FuncId>,
33 pub(crate) struct_alloc_fn: Option<FuncId>,
34 pub(crate) struct_from_ptr_fn: Option<FuncId>,
35}
36
37pub(crate) struct PendingFn {
41 pub name: SmolStr,
42 pub symbol_id: u32,
43 pub fn_id: FuncId,
44 pub arg_tys: Vec<Type>,
45 pub ret_ty: Type,
46 pub body: Stmt,
47}
48
49impl JITRunTime {
50 fn expr(kind: ExprKind) -> Expr {
51 Expr::new(kind, Span::default())
52 }
53
54 fn stmt(kind: StmtKind) -> Stmt {
55 Stmt::new(kind, Span::default())
56 }
57
58 pub fn load(&mut self, code: Vec<u8>, arg_name: SmolStr) -> Result<(i64, Type)> {
59 let stmts = Compiler::parse_code(code)?;
60 self.compiler.clear();
61 self.compiler.symbols.add_module("__console".into());
62 let mut cap = Capture::default();
63 let body = Self::stmt(StmtKind::Block(self.compiler.compile_fn(&[arg_name], &mut vec![Type::Any], Self::stmt(StmtKind::Block(stmts)), &mut cap)?));
64 self.compiler.tys.push(Type::Any);
65 let ret_ty = self.compiler.infer_stmt(&body)?;
66 self.compiler.clear();
67 let fn_id = self.compile_fn(None, &[Type::Any], ret_ty.clone(), &body)?;
68 self.compiler.clear();
69 self.compiler.symbols.pop_module();
70 self.module.finalize_definitions()?;
71 Ok((self.module.get_finalized_function(fn_id) as i64, ret_ty))
72 }
73
74 pub fn import_code(&mut self, name: &str, code: Vec<u8>) -> Result<()> {
75 log::info!("import {}", name);
76 let _ = self.compiler.import_code(name, code)?;
77 Ok(())
78 }
79
80 #[cfg(feature = "ir-disassembly")]
81 pub fn disassemble_ir(&mut self, name: &str) -> Result<String> {
82 if let Some(ir) = self.ir_disassembly.get(name) {
83 return Ok(ir.clone());
84 }
85 let id = self.get_id(name)?;
86 let (_, symbol) = self.compiler.symbols.get_symbol(id)?;
87 if let Symbol::Fn { ty, .. } = symbol
88 && let Type::Fn { tys, .. } = ty
89 && tys.is_empty()
90 {
91 let _ = self.gen_fn(None, id, &[])?;
92 }
93 self.ir_disassembly.get(name).cloned().ok_or_else(|| anyhow!("未找到函数 {} 的 Cranelift IR;如果它需要参数,请先触发对应实例化", name))
94 }
95
96 pub fn get_fn_ptr(&mut self, name: &str, arg_tys: &[Type]) -> Result<(*const u8, Type)> {
97 let main_id = self.get_id(name)?;
98 let fn_info = self.gen_fn(None, main_id, arg_tys)?;
99 Ok((self.module.get_finalized_function(fn_info.get_id()?), fn_info.get_type()?))
100 }
101
102 pub fn get_const_value(&mut self, ctx: &mut BuildContext, idx: usize) -> Result<(Value, Type)> {
103 if self.consts.len() < idx + 1 {
104 self.consts.resize(idx + 1, None);
105 }
106 let id = if let Some(id) = self.consts.get(idx).cloned().unwrap_or(None) {
107 id
108 } else {
109 let id = self.module.declare_anonymous_data(true, false)?;
110 let mut desc = DataDescription::new();
111 let c = Box::new(self.compiler.consts[idx].deep_clone()); let ptr = Box::into_raw(c);
113 desc.define((ptr as i64).to_le_bytes().into());
114 self.module.define_data(id, &desc)?;
115 self.consts[idx] = Some(id);
116 id
117 };
118 let c = self.module.declare_data_in_func(id, &mut ctx.builder.func);
119 let addr = ctx.builder.ins().global_value(ptr_type(), c);
120 let value = ctx.builder.ins().load(ptr_type(), MemFlags::new(), addr, 0); Ok((self.call(ctx, self.get_method(&Type::Any, "clone")?, vec![value])?.0, Type::Any))
122 }
123
124 fn get_null_value(&mut self, ctx: &mut BuildContext) -> Result<(Value, Type)> {
125 let const_idx = self.compiler.get_const(Dynamic::Null);
126 self.get_const_value(ctx, const_idx)
127 }
128
129 pub fn get_dynamic(&self, expr: &Expr) -> Option<Dynamic> {
130 if let ExprKind::Const(idx) = &expr.kind { self.compiler.consts.get(*idx).cloned() } else { None }
131 }
132
133 pub fn get_method(&self, ty: &Type, name: &str) -> Result<FnInfo> {
134 self.compiler.get_field(ty, name).and_then(|(_, ty)| if let Type::Symbol { id, params: _ } = ty { self.get_fn(id, &[]) } else { Err(anyhow!("不是成员函数")) })
135 }
136
137 fn is_fn_field_type(&self, ty: &Type) -> bool {
138 match ty {
139 Type::Symbol { id, .. } => self.compiler.symbols.get_symbol(*id).map(|(_, symbol)| symbol.is_fn()).unwrap_or(false),
140 Type::Fn { .. } => true,
141 _ => false,
142 }
143 }
144
145 pub(crate) fn is_opaque_custom_ty(&self, ty: &Type) -> bool {
146 let ty = self.compiler.symbols.get_type(ty).unwrap_or_else(|_| ty.clone());
147 matches!(ty, Type::Struct { fields, .. } if !fields.is_empty() && fields.iter().all(|(_, field_ty)| self.is_fn_field_type(field_ty)))
148 }
149
150 pub(crate) fn is_aggregate_ty(&self, ty: &Type) -> bool {
151 (ty.is_struct() && !self.is_opaque_custom_ty(ty)) || ty.is_array()
152 }
153
154 pub fn get_id(&self, name: &str) -> Result<u32> {
155 self.compiler.symbols.get_id(name)
156 }
157
158 pub fn get_type(&mut self, name: &str, arg_tys: &[Type]) -> Result<Type> {
159 let id = self.get_id(name)?;
160 if self.compiler.symbols.symbols.get(name).map(|s| s.is_fn()).unwrap_or(false) {
161 return self.compiler.infer_fn(id, arg_tys);
162 }
163 self.compiler.symbols.get_type(&Type::Symbol { id, params: Vec::new() })
164 }
165
166 pub fn new<F: FnMut(&mut JITBuilder)>(mut f: F) -> Self {
167 let native_symbols = Arc::new(RwLock::new(HashMap::<String, usize>::new()));
168 let lookup_symbols = native_symbols.clone();
169 let mut builder = JITBuilder::new(cranelift_module::default_libcall_names()).unwrap();
170 builder.symbol_lookup_fn(Box::new(move |name| lookup_symbols.read().unwrap().get(name).copied().map(|ptr| ptr as *const u8)));
171 f(&mut builder);
172 let module = JITModule::new(builder);
173 PTR_TYPE.get_or_init(|| module.isa().pointer_type());
174 let fns = BTreeMap::<u32, FnVariant>::new();
175 Self {
176 compiler: Compiler::new(),
177 fns,
178 sigs: Vec::new(),
179 native_symbols,
180 owner: Weak::new(),
181 pending_fns: VecDeque::new(),
182 compile_depth: 0,
183 #[cfg(feature = "ir-disassembly")]
184 ir_disassembly: BTreeMap::new(),
185 module,
186 consts: Vec::new(),
187 scope_enter_fn: None,
188 scope_exit_void_fn: None,
189 scope_exit_dynamic_fn: None,
190 scope_exit_bytes_fn: None,
191 struct_alloc_fn: None,
192 struct_from_ptr_fn: None,
193 }
194 }
195
196 pub(crate) fn set_owner(&mut self, owner: Weak<Mutex<JITRunTime>>) {
197 self.owner = owner;
198 }
199
200 pub(crate) fn owner_context_ptr(&self) -> usize {
201 &self.owner as *const Weak<Mutex<JITRunTime>> as usize
202 }
203
204 fn unary(ctx: &mut BuildContext, left: (Value, Type), op: UnaryOp) -> Result<(Value, Type)> {
205 match op {
206 UnaryOp::Neg => {
207 if left.1.is_int() || left.1.is_uint() {
208 if left.1.width() == 8 {
209 let zero = ctx.builder.ins().iconst(types::I64, 0);
210 return Ok((ctx.builder.ins().isub(zero, left.0), Type::I64));
211 } else if left.1.width() == 4 {
212 let zero = ctx.builder.ins().iconst(types::I32, 0);
213 return Ok((ctx.builder.ins().isub(zero, left.0), Type::I32));
214 }
215 } else if left.1.is_float() {
216 return Ok((ctx.builder.ins().fneg(left.0), left.1));
217 }
218 }
219 UnaryOp::Not => {
220 if left.1.is_int() || left.1.is_uint() {
221 let all_ones = ctx.builder.ins().iconst(get_type(&left.1)?, -1);
222 return Ok((ctx.builder.ins().bxor(left.0, all_ones), left.1));
223 }
224 let zero = ctx.builder.ins().iconst(types::I8, 0);
225 let one = ctx.builder.ins().iconst(types::I8, 1);
226 let cond = if left.1.is_bool() {
227 left.0
228 } else if left.1.is_f32() {
229 let zero = ctx.builder.ins().f32const(0.0);
230 ctx.builder.ins().fcmp(FloatCC::NotEqual, left.0, zero)
231 } else if left.1.is_f64() {
232 let zero = ctx.builder.ins().f64const(0.0);
233 ctx.builder.ins().fcmp(FloatCC::NotEqual, left.0, zero)
234 } else {
235 return Err(anyhow!("未实现 {:?} {:?}", left, op));
236 };
237 let is_zero = ctx.builder.ins().icmp_imm(IntCC::Equal, cond, 0);
238 return Ok((ctx.builder.ins().select(is_zero, one, zero), Type::Bool));
239 }
240 _ => {}
241 }
242 Err(anyhow!("未实现 {:?} {:?}", left, op))
243 }
244
245 pub(crate) fn call(&mut self, ctx: &mut BuildContext, fn_info: FnInfo, args: Vec<Value>) -> Result<(Value, Type)> {
246 match fn_info {
247 FnInfo::Call { fn_id, arg_tys: _, caps: _, ret, context } => {
248 let fn_ref = self.get_fn_ref(ctx, fn_id);
249 let args = self.add_context_arg(ctx, context, args);
250 let call_inst = ctx.builder.ins().call(fn_ref, &args);
251 if !ret.is_void() { Ok((ctx.builder.inst_results(call_inst)[0], ret)) } else { Err(anyhow!("没有返回值")) }
252 }
253 FnInfo::Inline { fn_ptr, arg_tys: _ } => fn_ptr(Some(ctx), args).map(|(v, t)| (v.unwrap(), t)),
254 }
255 }
256
257 pub(crate) fn scope_enter(&mut self, ctx: &mut BuildContext) -> Result<()> {
258 let fn_id = self.scope_enter_fn.ok_or_else(|| anyhow!("VM scope enter runtime is not registered"))?;
259 let fn_ref = self.get_fn_ref(ctx, fn_id);
260 ctx.builder.ins().call(fn_ref, &[]);
261 Ok(())
262 }
263
264 fn scope_exit_void(&mut self, ctx: &mut BuildContext) -> Result<()> {
265 let fn_id = self.scope_exit_void_fn.ok_or_else(|| anyhow!("VM scope exit runtime is not registered"))?;
266 let fn_ref = self.get_fn_ref(ctx, fn_id);
267 ctx.builder.ins().call(fn_ref, &[]);
268 Ok(())
269 }
270
271 fn return_value(&mut self, ctx: &mut BuildContext, value: Option<(Value, Type)>) -> Result<()> {
272 let ret_ty = ctx.ret_ty.clone();
273 if ret_ty.is_void() {
274 self.scope_exit_void(ctx)?;
275 ctx.builder.ins().return_(&[]);
276 return Ok(());
277 }
278
279 let Some((value, value_ty)) = value else {
280 self.scope_exit_void(ctx)?;
281 ctx.builder.ins().return_(&[]);
282 return Ok(());
283 };
284
285 if ret_ty.is_any() || ret_ty.is_str() || matches!(ret_ty, Type::Map | Type::List | Type::Iter) {
286 let value = self.convert(ctx, (value, value_ty), Type::Any)?;
287 let fn_id = self.scope_exit_dynamic_fn.ok_or_else(|| anyhow!("VM dynamic return runtime is not registered"))?;
288 let fn_ref = self.get_fn_ref(ctx, fn_id);
289 let call_inst = ctx.builder.ins().call(fn_ref, &[value]);
290 let promoted = ctx.builder.inst_results(call_inst)[0];
291 ctx.builder.ins().return_(&[promoted]);
292 } else if self.is_aggregate_ty(&ret_ty) {
293 let value = self.convert(ctx, (value, value_ty), ret_ty.clone())?;
294 let size = ctx.builder.ins().iconst(types::I64, ret_ty.width() as i64);
295 let fn_id = self.scope_exit_bytes_fn.ok_or_else(|| anyhow!("VM aggregate return runtime is not registered"))?;
296 let fn_ref = self.get_fn_ref(ctx, fn_id);
297 let call_inst = ctx.builder.ins().call(fn_ref, &[value, size]);
298 let promoted = ctx.builder.inst_results(call_inst)[0];
299 ctx.builder.ins().return_(&[promoted]);
300 } else {
301 let value = self.convert(ctx, (value, value_ty), ret_ty)?;
302 self.scope_exit_void(ctx)?;
303 ctx.builder.ins().return_(&[value]);
304 }
305 Ok(())
306 }
307
308 fn call_for_side_effect(&mut self, ctx: &mut BuildContext, fn_info: FnInfo, args: Vec<Value>) -> Result<()> {
309 match fn_info {
310 FnInfo::Call { fn_id, arg_tys: _, caps: _, ret: _, context } => {
311 let fn_ref = self.get_fn_ref(ctx, fn_id);
312 let args = self.add_context_arg(ctx, context, args);
313 ctx.builder.ins().call(fn_ref, &args);
314 Ok(())
315 }
316 FnInfo::Inline { fn_ptr, arg_tys: _ } => fn_ptr(Some(ctx), args).map(|_| ()),
317 }
318 }
319
320 fn add_context_arg(&mut self, ctx: &mut BuildContext, context: Option<usize>, mut args: Vec<Value>) -> Vec<Value> {
321 if let Some(context) = context {
322 let context = ctx.builder.ins().iconst(ptr_type(), context as i64);
323 args.insert(0, context);
324 }
325 args
326 }
327
328 pub(crate) fn short_circuit_logic(&mut self, ctx: &mut BuildContext, left: (Value, Type), op: BinaryOp, right: &Expr) -> Result<(Value, Type)> {
329 let left = self.bool_value(ctx, left)?;
330 let rhs_block = ctx.builder.create_block();
331 let short_block = ctx.builder.create_block();
332 let end_block = ctx.builder.create_block();
333 ctx.builder.append_block_param(end_block, types::I8);
334
335 match op {
336 BinaryOp::And => {
337 ctx.builder.ins().brif(left, rhs_block, &[], short_block, &[]);
338 }
339 BinaryOp::Or => {
340 ctx.builder.ins().brif(left, short_block, &[], rhs_block, &[]);
341 }
342 _ => unreachable!(),
343 }
344
345 ctx.builder.switch_to_block(rhs_block);
346 let right = self.eval(ctx, right)?.get(ctx).unwrap();
347 let right = self.bool_value(ctx, right)?;
348 ctx.builder.ins().jump(end_block, &[cranelift::codegen::ir::BlockArg::Value(right)]);
349 ctx.builder.seal_block(rhs_block);
350
351 ctx.builder.switch_to_block(short_block);
352 let short_value = match op {
353 BinaryOp::And => ctx.builder.ins().iconst(types::I8, 0),
354 BinaryOp::Or => ctx.builder.ins().iconst(types::I8, 1),
355 _ => unreachable!(),
356 };
357 ctx.builder.ins().jump(end_block, &[cranelift::codegen::ir::BlockArg::Value(short_value)]);
358 ctx.builder.seal_block(short_block);
359
360 ctx.builder.switch_to_block(end_block);
361 let result = ctx.builder.block_params(end_block)[0];
362 Ok((result, Type::Bool))
363 }
364
365 fn struct_alloc(&mut self, ctx: &mut BuildContext, ty: &Type) -> Result<Value> {
366 let size = ctx.builder.ins().iconst(types::I64, ty.width() as i64);
367 let fn_id = self.struct_alloc_fn.ok_or_else(|| anyhow!("VM struct allocator runtime is not registered"))?;
368 let fn_ref = self.get_fn_ref(ctx, fn_id);
369 let call_inst = ctx.builder.ins().call(fn_ref, &[size]);
370 Ok(ctx.builder.inst_results(call_inst)[0])
371 }
372
373 fn store_struct_field(&mut self, ctx: &mut BuildContext, base: Value, idx: usize, field_ty: &Type, value: (Value, Type), struct_ty: &Type) -> Result<()> {
374 let offset = struct_ty.field_offset(idx).ok_or_else(|| anyhow!("结构字段索引越界 {}", idx))?;
375 let value = self.convert(ctx, value, field_ty.clone())?;
376 if field_ty.is_struct() || field_ty.is_array() {
377 let field_addr = ctx.builder.ins().iadd_imm(base, offset as i64);
378 self.copy_vec_element(ctx, field_addr, value, field_ty);
379 } else {
380 ctx.builder.ins().store(MemFlags::trusted(), value, base, offset as i32);
381 }
382 Ok(())
383 }
384
385 fn load_struct_field(&mut self, ctx: &mut BuildContext, base: Value, idx: usize, struct_ty: &Type) -> Result<(Value, Type)> {
386 if let Type::Struct { params: _, fields } = struct_ty {
387 let field_ty = fields.get(idx).map(|(_, ty)| ty).ok_or_else(|| anyhow!("结构字段索引越界 {}", idx))?;
388 let offset = struct_ty.field_offset(idx).ok_or_else(|| anyhow!("结构字段索引越界 {}", idx))?;
389 if field_ty.is_struct() || field_ty.is_array() {
390 return Ok((ctx.builder.ins().iadd_imm(base, offset as i64), field_ty.clone()));
391 }
392 let val = ctx.builder.ins().load(crate::get_type(field_ty)?, MemFlags::trusted(), base, offset as i32);
393 Ok((val, field_ty.clone()))
394 } else {
395 Err(anyhow!("不是结构体 {:?}", struct_ty))
396 }
397 }
398
399 fn struct_field_index(&self, struct_ty: &Type, right: &Expr) -> Result<usize> {
400 let value = if let ExprKind::Const(idx) = right.kind { self.compiler.consts.get(idx).cloned().ok_or_else(|| anyhow!("missing const {}", idx))? } else { right.clone().value()? };
401 if let Some(idx) = value.as_int() {
402 return usize::try_from(idx).map_err(|_| anyhow!("结构字段索引越界 {}", idx));
403 }
404 if value.is_str() {
405 return self.compiler.get_field(struct_ty, value.as_str()).map(|(idx, _)| idx);
406 }
407 Err(anyhow!("非立即数结构字段索引 {:?}", right))
408 }
409
410 fn vec_elem_ty(ty: &Type) -> Option<Type> {
411 if let Type::Vec(elem, 0) = ty { Some((**elem).clone()) } else { None }
412 }
413
414 fn array_elem_ty(ty: &Type) -> Option<Type> {
415 if let Type::Array(elem, _) = ty { Some((**elem).clone()) } else { None }
416 }
417
418 fn vec_index_addr(&mut self, ctx: &mut BuildContext, base: Value, idx: (Value, Type), elem_ty: &Type) -> Result<Value> {
419 let idx = self.convert(ctx, idx, Type::I64)?;
420 let width = ctx.builder.ins().iconst(types::I64, elem_ty.storage_width() as i64);
421 let offset = ctx.builder.ins().imul(idx, width);
422 Ok(ctx.builder.ins().iadd(base, offset))
423 }
424
425 fn array_index_addr(&mut self, ctx: &mut BuildContext, base: Value, idx: (Value, Type), elem_ty: &Type) -> Result<Value> {
426 self.vec_index_addr(ctx, base, idx, elem_ty)
427 }
428
429 fn load_array_index(&mut self, ctx: &mut BuildContext, base: Value, idx: (Value, Type), elem_ty: &Type) -> Result<(Value, Type)> {
430 let addr = self.array_index_addr(ctx, base, idx, elem_ty)?;
431 if elem_ty.is_struct() || elem_ty.is_array() {
432 Ok((addr, elem_ty.clone()))
433 } else {
434 let val = ctx.builder.ins().load(crate::get_type(elem_ty)?, MemFlags::trusted(), addr, 0);
435 Ok((val, elem_ty.clone()))
436 }
437 }
438
439 fn store_array_index(&mut self, ctx: &mut BuildContext, base: Value, idx: (Value, Type), elem_ty: &Type, value: (Value, Type)) -> Result<()> {
440 let addr = self.array_index_addr(ctx, base, idx, elem_ty)?;
441 let value = self.convert(ctx, value, elem_ty.clone())?;
442 if elem_ty.is_struct() || elem_ty.is_array() {
443 self.copy_vec_element(ctx, addr, value, elem_ty);
444 } else {
445 ctx.builder.ins().store(MemFlags::trusted(), value, addr, 0);
446 }
447 Ok(())
448 }
449
450 fn init_repeat_array(&mut self, ctx: &mut BuildContext, value: (Value, Type), len: u32) -> Result<(Value, Type)> {
451 let elem_ty = value.1.clone();
452 let array_ty = Type::Array(std::rc::Rc::new(elem_ty.clone()), len);
453 let base = self.struct_alloc(ctx, &array_ty)?;
454 for idx in 0..len {
455 let idx = (ctx.builder.ins().iconst(types::I64, idx as i64), Type::I64);
456 self.store_array_index(ctx, base, idx, &elem_ty, value.clone())?;
457 }
458 Ok((base, array_ty))
459 }
460
461 fn init_array_from_items(&mut self, ctx: &mut BuildContext, items: &[Expr], ty: &Type) -> Result<Value> {
462 let Type::Array(elem_ty, len) = ty else {
463 return Err(anyhow!("not an array type: {:?}", ty));
464 };
465 if items.len() != *len as usize {
466 return Err(anyhow!("array literal length {} does not match {}", items.len(), len));
467 }
468 let base = self.struct_alloc(ctx, ty)?;
469 for (idx, item) in items.iter().enumerate() {
470 let value = self.eval(ctx, item)?.get(ctx).ok_or(anyhow!("array item has no value"))?;
471 let idx = (ctx.builder.ins().iconst(types::I64, idx as i64), Type::I64);
472 self.store_array_index(ctx, base, idx, elem_ty, value)?;
473 }
474 Ok(base)
475 }
476
477 fn load_vec_index(&mut self, ctx: &mut BuildContext, base: Value, idx: (Value, Type), elem_ty: &Type) -> Result<(Value, Type)> {
478 let addr = self.vec_index_addr(ctx, base, idx, elem_ty)?;
479 if elem_ty.is_struct() {
480 Ok((addr, elem_ty.clone()))
481 } else {
482 let val = ctx.builder.ins().load(crate::get_type(elem_ty)?, MemFlags::trusted(), addr, 0);
483 Ok((val, elem_ty.clone()))
484 }
485 }
486
487 fn copy_vec_element(&mut self, ctx: &mut BuildContext, dst: Value, src: Value, elem_ty: &Type) {
488 let mut offset = 0u32;
489 let width = elem_ty.storage_width();
490 while offset < width {
491 let remaining = width - offset;
492 let (ty, size) = if remaining >= 8 {
493 (types::I64, 8)
494 } else if remaining >= 4 {
495 (types::I32, 4)
496 } else if remaining >= 2 {
497 (types::I16, 2)
498 } else {
499 (types::I8, 1)
500 };
501 let value = ctx.builder.ins().load(ty, MemFlags::trusted(), src, offset as i32);
502 ctx.builder.ins().store(MemFlags::trusted(), value, dst, offset as i32);
503 offset += size;
504 }
505 }
506
507 fn store_vec_index(&mut self, ctx: &mut BuildContext, base: Value, idx: (Value, Type), elem_ty: &Type, value: (Value, Type)) -> Result<()> {
508 let addr = self.vec_index_addr(ctx, base, idx, elem_ty)?;
509 let value = self.convert(ctx, value, elem_ty.clone())?;
510 if elem_ty.is_struct() {
511 self.copy_vec_element(ctx, addr, value, elem_ty);
512 } else {
513 ctx.builder.ins().store(MemFlags::trusted(), value, addr, 0);
514 }
515 Ok(())
516 }
517
518 fn swap_vec_index(&mut self, ctx: &mut BuildContext, base: Value, left: (Value, Type), right: (Value, Type), elem_ty: &Type) -> Result<()> {
519 let left_addr = self.vec_index_addr(ctx, base, left, elem_ty)?;
520 let right_addr = self.vec_index_addr(ctx, base, right, elem_ty)?;
521 let mut offset = 0u32;
522 let width = elem_ty.storage_width();
523 while offset < width {
524 let remaining = width - offset;
525 let (ty, size) = if remaining >= 8 {
526 (types::I64, 8)
527 } else if remaining >= 4 {
528 (types::I32, 4)
529 } else if remaining >= 2 {
530 (types::I16, 2)
531 } else {
532 (types::I8, 1)
533 };
534 let left_value = ctx.builder.ins().load(ty, MemFlags::trusted(), left_addr, offset as i32);
535 let right_value = ctx.builder.ins().load(ty, MemFlags::trusted(), right_addr, offset as i32);
536 ctx.builder.ins().store(MemFlags::trusted(), left_value, right_addr, offset as i32);
537 ctx.builder.ins().store(MemFlags::trusted(), right_value, left_addr, offset as i32);
538 offset += size;
539 }
540 Ok(())
541 }
542
543 fn init_struct_from_dynamic(&mut self, ctx: &mut BuildContext, value: (Value, Type), ty: &Type) -> Result<Value> {
544 let Type::Struct { params: _, fields } = ty else {
545 return Err(anyhow!("不是结构体 {:?}", ty));
546 };
547 let base = self.struct_alloc(ctx, ty)?;
548 for (idx, (_, field_ty)) in fields.iter().enumerate() {
549 let idx_val = ctx.builder.ins().iconst(types::I64, idx as i64);
550 let item = self.call(ctx, self.get_method(&Type::Any, "get_idx")?, vec![value.0, idx_val])?;
551 self.store_struct_field(ctx, base, idx, field_ty, item, ty)?;
552 }
553 Ok(base)
554 }
555
556 fn init_struct_from_items(&mut self, ctx: &mut BuildContext, items: &[Expr], ty: &Type) -> Result<Value> {
557 let Type::Struct { params: _, fields } = ty else {
558 return Err(anyhow!("not a struct type: {:?}", ty));
559 };
560 let base = self.struct_alloc(ctx, ty)?;
561 for (idx, item) in items.iter().enumerate() {
562 let Some((_, field_ty)) = fields.get(idx) else {
563 break;
564 };
565 let value = self.eval(ctx, item)?.get(ctx).ok_or(anyhow!("struct field has no value"))?;
566 self.store_struct_field(ctx, base, idx, field_ty, value, ty)?;
567 }
568 Ok(base)
569 }
570
571 fn expr_assigned_var(expr: &Expr) -> Option<(u32, Type)> {
572 if let ExprKind::Binary { left, op, right } = &expr.kind
573 && op.is_assign()
574 && let ExprKind::Var(idx) = left.kind
575 {
576 return Some((idx, right.get_type()));
577 }
578 None
579 }
580
581 fn declare_assigned_vars(&mut self, ctx: &mut BuildContext, stmt: &Stmt) -> Result<()> {
582 match &stmt.kind {
583 StmtKind::Expr(expr, _) => {
584 if let Some((idx, ty)) = Self::expr_assigned_var(expr) {
585 match ctx.get_var(idx).ok() {
586 Some(LocalVar::Variable { .. }) | Some(LocalVar::Closure { .. }) => {}
587 Some(LocalVar::Value { val, ty }) => {
588 ctx.set_var(idx, LocalVar::Value { val, ty })?;
589 }
590 Some(LocalVar::None) | None => {
591 let init = self.zero_value(ctx, &ty)?;
592 ctx.set_var(idx, init.into())?;
593 }
594 }
595 }
596 }
597 StmtKind::Block(stmts) => {
598 for stmt in stmts {
599 self.declare_assigned_vars(ctx, stmt)?;
600 }
601 }
602 StmtKind::If { then_body, else_body, .. } => {
603 self.declare_assigned_vars(ctx, then_body)?;
604 if let Some(else_body) = else_body {
605 self.declare_assigned_vars(ctx, else_body)?;
606 }
607 }
608 StmtKind::While { body, .. } | StmtKind::Loop(body) => {
609 self.declare_assigned_vars(ctx, body)?;
610 }
611 StmtKind::For { body, .. } => {
612 self.declare_assigned_vars(ctx, body)?;
613 }
614 _ => {}
615 }
616 Ok(())
617 }
618
619 fn zero_value(&mut self, ctx: &mut BuildContext, ty: &Type) -> Result<(Value, Type)> {
620 if self.is_aggregate_ty(ty) {
621 Ok((self.struct_alloc(ctx, ty)?, ty.clone()))
622 } else if ty.is_f32() {
623 Ok((ctx.builder.ins().f32const(0.0), ty.clone()))
624 } else if ty.is_f64() {
625 Ok((ctx.builder.ins().f64const(0.0), ty.clone()))
626 } else {
627 Ok((ctx.builder.ins().iconst(crate::get_type(ty)?, 0), ty.clone()))
628 }
629 }
630
631 fn assign(&mut self, ctx: &mut BuildContext, left: &Expr, value: LocalVar) -> Result<(Value, Type)> {
632 if let ExprKind::Var(idx) = &left.kind {
633 if value.is_closure() {
634 ctx.set_var(*idx, value)?;
635 return self.get_null_value(ctx);
636 }
637 let value_ty = value.get_ty();
638 if let Some(ty) = ctx.get_var_ty(*idx) {
639 if self.is_aggregate_ty(&ty) {
640 let dst = ctx.get_var(*idx)?.get(ctx).ok_or(anyhow!("aggregate variable has no value"))?.0;
641 let src = value.get(ctx).ok_or(anyhow!("aggregate assignment has no value"))?;
642 let src = self.convert(ctx, src, ty.clone())?;
643 self.copy_vec_element(ctx, dst, src, &ty);
644 } else if value_ty != ty {
645 if let Some(vt) = value.get(ctx) {
646 let val = self.convert(ctx, vt, ty.clone())?;
647 ctx.set_var(*idx, LocalVar::Value { val, ty })?;
648 } else if ty.is_any() {
649 let const_idx = self.compiler.get_const(Dynamic::Null);
650 let (val, ty) = self.get_const_value(ctx, const_idx)?;
651 ctx.set_var(*idx, LocalVar::Value { val, ty })?;
652 } else {
653 ctx.set_var(*idx, LocalVar::None)?;
654 }
655 } else {
656 ctx.set_var(*idx, value)?;
657 }
658 } else if self.is_aggregate_ty(&value_ty) {
659 let src = value.get(ctx).ok_or(anyhow!("aggregate initializer has no value"))?;
660 let dst = self.struct_alloc(ctx, &value_ty)?;
661 let src = self.convert(ctx, src, value_ty.clone())?;
662 self.copy_vec_element(ctx, dst, src, &value_ty);
663 ctx.set_var(*idx, LocalVar::Value { val: dst, ty: value_ty })?;
664 } else {
665 ctx.set_var(*idx, value)?;
666 }
667 let assigned = ctx.get_var(*idx)?;
668 if assigned.is_closure() {
669 return self.get_null_value(ctx);
670 }
671 let val = assigned.get(ctx).ok_or(anyhow!("assigned variable has no value"))?;
672 return Ok(val);
673 } else if left.is_idx() {
674 let value = value.get(ctx).unwrap();
675 let (left, _, right) = left.clone().binary().unwrap();
676 let left = self.eval(ctx, &left)?.get(ctx).ok_or(anyhow!("未知局部变量 {:?}", left))?;
677 if let Type::Struct { params: _, fields } = &left.1 {
678 let idx = self.struct_field_index(&left.1, &right)?;
679 let field_ty = fields.get(idx).map(|(_, ty)| ty.clone()).ok_or_else(|| anyhow!("结构字段索引越界 {}", idx))?;
680 self.store_struct_field(ctx, left.0, idx, &field_ty, value.clone(), &left.1)?;
681 return Ok(value);
682 }
683 if let Some(elem_ty) = Self::vec_elem_ty(&left.1) {
684 let idx = if right.is_value() {
685 let idx = right.clone().value()?.as_int().ok_or(anyhow!("Vec 索引必须是整数"))?;
686 (ctx.builder.ins().iconst(types::I64, idx), Type::I64)
687 } else {
688 self.eval(ctx, &right)?.get(ctx).ok_or(anyhow!("Vec 索引没有值"))?
689 };
690 self.store_vec_index(ctx, left.0, idx, &elem_ty, value.clone())?;
691 return Ok(value);
692 }
693 if let Some(elem_ty) = Self::array_elem_ty(&left.1) {
694 let idx = if right.is_value() {
695 let idx = right.clone().value()?.as_int().ok_or(anyhow!("array index must be integer"))?;
696 (ctx.builder.ins().iconst(types::I64, idx), Type::I64)
697 } else {
698 self.eval(ctx, &right)?.get(ctx).ok_or(anyhow!("array index has no value"))?
699 };
700 self.store_array_index(ctx, left.0, idx, &elem_ty, value.clone())?;
701 return Ok(value);
702 }
703 if right.is_value() {
704 let right_value = right.clone().value()?;
705 if let Some(idx) = right_value.as_int() {
706 let idx = ctx.builder.ins().iconst(types::I64, idx);
707 let f = self.get_method(&left.1, "set_idx")?;
708 let args = self.adjust_args(ctx, vec![left, (idx, Type::I64), value.clone()], f.arg_tys()?)?;
709 self.call_for_side_effect(ctx, f, args)?;
710 } else {
711 let key = ctx.get_const(&right_value)?;
712 let f = self.get_method(&left.1, "set_key")?;
713 let args = self.adjust_args(ctx, vec![left, key, value.clone()], f.arg_tys()?)?;
714 self.call_for_side_effect(ctx, f, args)?;
715 }
716 } else {
717 let right = self.eval(ctx, &right)?.get(ctx).unwrap();
718 if right.1.is_any() || right.1.is_str() {
719 let f = self.get_method(&left.1, "set_key")?;
720 let args = self.adjust_args(ctx, vec![left, right, value.clone()], f.arg_tys()?)?;
721 self.call_for_side_effect(ctx, f, args)?;
722 } else {
723 let f = self.get_method(&left.1, "set_idx")?;
724 let args = self.adjust_args(ctx, vec![left, right, value.clone()], f.arg_tys()?)?;
725 self.call_for_side_effect(ctx, f, args)?;
726 }
727 }
728 return Ok(value);
729 } else {
730 panic!("赋值给 {:?} {:?}", left, value)
731 }
732 }
733
734 fn closure_value(&self, ctx: &mut BuildContext, id: u32) -> Result<LocalVar> {
735 let captures = match self.compiler.symbols.get_symbol(id)?.1 {
736 Symbol::Fn { cap, .. } => cap.vars.iter().map(|idx| ctx.get_var(*idx as u32)?.get(ctx).ok_or_else(|| anyhow!("捕获变量 {} 没有值", idx))).collect::<Result<Vec<_>>>()?,
737 _ => Vec::new(),
738 };
739 Ok(LocalVar::Closure { id, captures })
740 }
741
742 pub(crate) fn call_fn(&mut self, ctx: &mut BuildContext, id: u32, obj: Option<Expr>, params: &Vec<Expr>) -> Result<LocalVar> {
743 self.call_fn_with_params(ctx, id, &[], obj, params)
744 }
745
746 pub(crate) fn call_fn_with_params(&mut self, ctx: &mut BuildContext, id: u32, generic_args: &[Type], obj: Option<Expr>, params: &Vec<Expr>) -> Result<LocalVar> {
747 self.call_fn_with_capture_values(ctx, id, generic_args, obj, params, None)
748 }
749
750 pub(crate) fn call_fn_with_capture_values(&mut self, ctx: &mut BuildContext, id: u32, generic_args: &[Type], obj: Option<Expr>, params: &Vec<Expr>, capture_values: Option<Vec<(Value, Type)>>) -> Result<LocalVar> {
751 let fn_name = self.compiler.symbols.get_symbol(id).map(|(name, _)| name.clone())?;
752 let mut args: Vec<(Value, Type)> = if let Some(obj) = obj { vec![self.eval(ctx, &obj)?.get(ctx).ok_or_else(|| anyhow!("函数 {} 的接收者表达式没有值: {:?}", fn_name, obj))?] } else { Vec::new() };
753 for p in params {
754 args.push(self.eval(ctx, p)?.get(ctx).ok_or_else(|| anyhow!("函数 {} 的参数表达式没有值: {:?}", fn_name, p))?);
755 }
756 if let Some(captures) = &capture_values {
757 args.extend(captures.iter().cloned());
758 }
759 if fn_name.as_str().ends_with("Vec::swap")
760 && let Some((base, vec_ty)) = args.first().cloned()
761 && let Some(elem_ty) = Self::vec_elem_ty(&vec_ty)
762 {
763 let [_, left_idx, right_idx]: [(Value, Type); 3] = args.try_into().map_err(|_| anyhow!("Vec::swap 需要 self 和两个索引参数"))?;
764 self.swap_vec_index(ctx, base, left_idx, right_idx, &elem_ty)?;
765 return Ok(LocalVar::None);
766 }
767 let visible_arg_len = args.len() - capture_values.as_ref().map(|captures| captures.len()).unwrap_or(0);
768 let arg_tys: Vec<Type> = args.iter().take(visible_arg_len).map(|(_, ty)| ty.clone()).collect();
769 let fn_info = match if generic_args.is_empty() { self.get_fn(id, &arg_tys) } else { Err(anyhow!("generic function needs specialization")) } {
770 Ok(info) => info,
771 Err(_) => self.gen_fn_with_params(Some(ctx), id, &arg_tys, generic_args).map_err(|e| {
772 log::error!("{:?}", self.compiler.symbols.get_symbol(id));
773 e
774 })?,
775 };
776 match &fn_info {
777 FnInfo::Call { fn_id: _, arg_tys: want_tys, caps, ret, context: _ } => {
778 let mut args = self.adjust_args(ctx, args, want_tys)?;
779 if capture_values.is_none() {
780 for c in caps {
781 args.push(ctx.get_var(*c as u32)?.get(ctx).unwrap().0);
782 }
783 }
784 if ret.is_void() {
785 self.call_for_side_effect(ctx, fn_info, args)?;
786 Ok(LocalVar::None)
787 } else {
788 self.call(ctx, fn_info, args).map(|r| r.into())
789 }
790 }
791 _ => panic!("不可能编译出 inline 函数"),
792 }
793 }
794
795 pub(crate) fn eval(&mut self, ctx: &mut BuildContext, expr: &Expr) -> Result<LocalVar> {
796 match &expr.kind {
797 ExprKind::Value(v) => Ok(ctx.get_const(v)?.into()),
798 ExprKind::Var(idx) => {
799 let v = ctx.get_var(*idx)?;
800 Ok(v)
801 }
802 ExprKind::Unary { op, value } => {
803 let v = self.eval(ctx, value)?.get(ctx).unwrap();
804 if op == &UnaryOp::Not && v.1.is_any() {
805 let cond = self.bool_value(ctx, v)?;
806 let zero = ctx.builder.ins().iconst(types::I8, 0);
807 let one = ctx.builder.ins().iconst(types::I8, 1);
808 let is_zero = ctx.builder.ins().icmp_imm(IntCC::Equal, cond, 0);
809 Ok((ctx.builder.ins().select(is_zero, one, zero), Type::Bool).into())
810 } else {
811 Ok(Self::unary(ctx, v, op.clone())?.into())
812 }
813 }
814 ExprKind::Binary { left, op, right } => {
815 if op == &BinaryOp::Assign {
816 match self.eval(ctx, right) {
817 Ok(value) => self.assign(ctx, left, value).map(|v| v.into()),
818 Err(e) => {
819 log::error!("assign error {:?}", e);
820 Err(e)
821 }
822 }
823 } else {
824 let assign_expr = if op.is_assign() { Some(left.clone()) } else { None };
825 let left = match self.eval(ctx, left)?.get(ctx) {
826 Some(left) => left,
827 None => return Err(anyhow!("binary left has no value: {:?}", left)),
828 };
829 if op == &BinaryOp::Idx {
830 let left_ty = self.compiler.symbols.get_type(&left.1).unwrap_or_else(|_| left.1.clone());
831 let left = (left.0, left_ty);
832 if let Type::Struct { params: _, fields: _ } = &left.1 {
833 let idx = self.struct_field_index(&left.1, right)?;
834 return self.load_struct_field(ctx, left.0, idx, &left.1).map(|r| r.into());
835 }
836 if let Some(elem_ty) = Self::vec_elem_ty(&left.1) {
837 let idx = if right.is_value() {
838 let idx = right.clone().value()?.as_int().ok_or(anyhow!("Vec 索引必须是整数"))?;
839 (ctx.builder.ins().iconst(types::I64, idx), Type::I64)
840 } else {
841 self.eval(ctx, right)?.get(ctx).ok_or(anyhow!("Vec 索引没有值"))?
842 };
843 return self.load_vec_index(ctx, left.0, idx, &elem_ty).map(|r| r.into());
844 }
845 if let Some(elem_ty) = Self::array_elem_ty(&left.1) {
846 let idx = if right.is_value() {
847 let idx = right.clone().value()?.as_int().ok_or(anyhow!("array index must be integer"))?;
848 (ctx.builder.ins().iconst(types::I64, idx), Type::I64)
849 } else {
850 self.eval(ctx, right)?.get(ctx).ok_or(anyhow!("array index has no value"))?
851 };
852 return self.load_array_index(ctx, left.0, idx, &elem_ty).map(|r| r.into());
853 }
854 if right.is_value() {
855 let right_value = right.clone().value()?;
856 if let Some(idx) = right_value.as_int() {
857 let idx = ctx.builder.ins().iconst(types::I64, idx);
858 self.call(ctx, self.get_method(&left.1, "get_idx")?, vec![left.0, idx]).map(|r| r.into())
859 } else {
860 let key = ctx.get_const(&right_value)?;
861 self.call(ctx, self.get_method(&left.1, "get_key")?, vec![left.0, key.0]).map(|r| r.into())
862 }
863 } else if let ExprKind::Range { start, stop, inclusive } = &right.kind {
864 let start = self.eval(ctx, start)?.get(ctx).ok_or(anyhow!("range start has no value"))?;
865 let start = self.convert(ctx, start, Type::I64)?;
866 let stop = self.eval(ctx, stop)?.get(ctx).ok_or(anyhow!("range stop has no value"))?;
867 let stop = self.convert(ctx, stop, Type::Any)?;
868 let inclusive = ctx.builder.ins().iconst(types::I8, i64::from(*inclusive));
869 self.call(ctx, self.get_method(&left.1, "slice")?, vec![left.0, start, stop, inclusive]).map(|r| r.into())
870 } else {
871 let right = self.eval(ctx, right)?.get(ctx).ok_or(anyhow!("非Value {:?}", right))?;
872 if right.1.is_any() || right.1.is_str() {
873 let right = self.convert(ctx, right, Type::Any)?;
874 self.call(ctx, self.get_method(&left.1, "get_key")?, vec![left.0, right]).map(|r| r.into())
875 } else {
876 let right = self.convert(ctx, right, Type::I64)?;
877 self.call(ctx, self.get_method(&left.1, "get_idx")?, vec![left.0, right]).map(|r| r.into())
878 }
879 }
880 } else {
881 let result = self.binary(ctx, left, op.clone(), right)?.into();
882 if let Some(expr) = assign_expr { self.assign(ctx, &expr, result).map(|r| r.into()) } else { Ok(result.into()) }
883 }
884 }
885 }
886 ExprKind::Call { obj, params } => {
887 if let ExprKind::AssocId { id, params: generic_args } = &obj.kind {
888 self.call_fn_with_params(ctx, *id, generic_args, None, params)
889 } else if let ExprKind::Id(id, obj) = &obj.kind {
890 self.call_fn(ctx, *id, obj.as_ref().map(|o| *o.clone()), params)
891 } else if obj.is_value() {
892 return Ok(LocalVar::None);
894 } else {
895 if obj.is_idx() {
896 let (left, _, right) = obj.clone().binary().unwrap();
897 let left = self.eval(ctx, &left)?.get(ctx).ok_or(anyhow!("obj {:?}", obj))?;
898 let ty = self.compiler.symbols.get_type(&left.1)?;
899 if let Some(name) = self.get_dynamic(&right) {
900 if name.as_str() == "swap"
901 && let Some(elem_ty) = Self::vec_elem_ty(&ty)
902 {
903 let [left_idx, right_idx]: [(Value, Type); 2] =
904 params.iter().map(|p| self.eval(ctx, p)?.get(ctx).ok_or(anyhow!("Vec::swap 参数没有值"))).collect::<Result<Vec<_>>>()?.try_into().map_err(|_| anyhow!("Vec::swap 需要两个索引参数"))?;
905 self.swap_vec_index(ctx, left.0, left_idx, right_idx, &elem_ty)?;
906 return Ok(LocalVar::None);
907 }
908 let mut args = vec![left];
909 for p in params {
910 args.push(self.eval(ctx, p)?.get(ctx).ok_or_else(|| anyhow!("动态方法 {:?} 的参数表达式没有值: {:?}", name, p))?);
911 }
912 let (_, method_ty) = self.compiler.get_field(&ty, name.as_str())?;
913 let Type::Symbol { id, .. } = method_ty else {
914 return Err(anyhow!("不是成员函数"));
915 };
916 let arg_tys: Vec<Type> = args.iter().map(|(_, ty)| ty.clone()).collect();
917 let method = self.get_fn(id, &arg_tys).or_else(|_| self.gen_fn_with_params(Some(ctx), id, &arg_tys, &[]))?;
918 let args = self.adjust_args(ctx, args, method.arg_tys()?)?;
919 self.call(ctx, method, args).map(|r| r.into())
920 } else {
921 self.eval(ctx, obj)
922 }
923 } else {
924 let val = self.eval(ctx, obj)?;
925 if let LocalVar::Closure { id, captures } = val {
926 return self.call_fn_with_capture_values(ctx, id, &[], None, params, Some(captures));
927 }
928 panic!("暂未实现 {:?}", val)
929 }
930 }
931 }
932 ExprKind::Typed { value, ty } => {
933 if let Type::Struct { params: _, fields: _ } = ty
934 && let ExprKind::List(items) = &value.kind
935 {
936 return Ok((self.init_struct_from_items(ctx, items, ty)?, ty.clone()).into());
937 }
938 if let Type::Array(_, _) = ty
939 && let ExprKind::List(items) = &value.kind
940 {
941 return Ok((self.init_array_from_items(ctx, items, ty)?, ty.clone()).into());
942 }
943 let evaluated = self.eval(ctx, value)?;
944 if evaluated.is_closure() {
945 return Ok(evaluated);
946 }
947 let vt = if let Some(vt) = evaluated.get(ctx) {
948 vt
949 } else if ty.is_any() {
950 let idx = self.compiler.get_const(Dynamic::Null);
951 self.get_const_value(ctx, idx)?
952 } else {
953 return Ok(LocalVar::None);
954 };
955 if let Type::Struct { params: _, fields: _ } = ty
956 && !self.is_opaque_custom_ty(ty)
957 {
958 if &vt.1 == ty {
959 Ok(vt.into())
960 } else if vt.1.is_any() {
961 Ok((self.init_struct_from_dynamic(ctx, vt, ty)?, ty.clone()).into())
962 } else {
963 Err(anyhow!("cannot convert {:?} to {:?}", vt.1, ty))
964 }
965 } else if &vt.1 != ty {
966 Ok((self.convert(ctx, vt, ty.clone())?, ty.clone()).into())
967 } else {
968 Ok(vt.into())
969 }
970 }
971 ExprKind::List(_) => Err(anyhow!("未实现 {:?}", expr)),
972 ExprKind::Repeat { value, len } => {
973 let value = self.eval(ctx, value)?.get(ctx).ok_or(anyhow!("repeat value has no value"))?;
974 let Type::ConstInt(len) = len else {
975 return Err(anyhow!("repeat length must be a compile-time integer"));
976 };
977 let len = u32::try_from(*len).map_err(|_| anyhow!("repeat length out of range"))?;
978 self.init_repeat_array(ctx, value, len).map(|r| r.into())
979 }
980 ExprKind::Const(idx) => self.get_const_value(ctx, *idx).map(|v| v.into()),
981 ExprKind::Id(id, _) => self.closure_value(ctx, *id),
982 ExprKind::AssocId { id, .. } => self.closure_value(ctx, *id),
983 expr => {
984 panic!("未实现 {:?}", expr)
986 }
987 }
988 }
989
990 fn gen_loop(&mut self, ctx: &mut BuildContext, cond: Option<&Expr>, body: &Stmt, f: Option<impl FnMut(&mut BuildContext)>) -> Result<()> {
991 let loop_block = ctx.builder.create_block();
992 let end_block = ctx.builder.create_block();
993 if let Some(cond) = cond {
994 let start_block = ctx.builder.create_block();
995 ctx.builder.ins().jump(start_block, &[]);
996 ctx.builder.switch_to_block(start_block);
997 let cond = self.eval(ctx, cond)?.get(ctx).unwrap();
998 let cond = self.bool_value(ctx, cond)?;
999 let continue_block = if f.is_some() { ctx.builder.create_block() } else { start_block };
1000 ctx.builder.ins().brif(cond, loop_block, &[], end_block, &[]);
1001 ctx.builder.switch_to_block(loop_block);
1002 let body_terminated = self.gen_stmt(ctx, body, Some(end_block), Some(continue_block))?;
1003 if !body_terminated {
1004 ctx.builder.ins().jump(continue_block, &[]);
1005 }
1006 ctx.builder.seal_block(loop_block);
1007 f.map(|mut f| {
1008 ctx.builder.switch_to_block(continue_block);
1009 f(ctx);
1010 ctx.builder.ins().jump(start_block, &[]);
1011 ctx.builder.seal_block(continue_block);
1012 });
1013 } else {
1014 ctx.builder.ins().jump(loop_block, &[]);
1015 ctx.builder.switch_to_block(loop_block);
1016 let body_terminated = self.gen_stmt(ctx, body, Some(end_block), Some(loop_block))?;
1017 if !body_terminated {
1018 ctx.builder.ins().jump(loop_block, &[]);
1019 }
1020 ctx.builder.seal_block(loop_block);
1021 }
1022 ctx.builder.switch_to_block(end_block);
1023 Ok(())
1024 }
1025
1026 pub(crate) fn gen_stmt(&mut self, ctx: &mut BuildContext, stmt: &Stmt, break_block: Option<Block>, continue_block: Option<Block>) -> Result<bool> {
1027 match &stmt.kind {
1028 StmtKind::Expr(expr, _) => {
1029 let _ = self.eval(ctx, expr)?;
1030 }
1031 StmtKind::Break => {
1032 ctx.builder.ins().jump(break_block.unwrap(), &[]);
1033 return Ok(true);
1034 }
1035 StmtKind::Continue => {
1036 ctx.builder.ins().jump(continue_block.unwrap(), &[]);
1037 return Ok(true);
1038 }
1039 StmtKind::Return(expr) => {
1040 if let Some(expr) = expr {
1041 let value = self.eval(ctx, expr)?;
1042 let value = value.get(ctx);
1043 self.return_value(ctx, value)?;
1044 } else {
1045 self.return_value(ctx, None)?;
1046 }
1047 return Ok(true);
1048 }
1049 StmtKind::If { cond, then_body, else_body } => {
1050 self.declare_assigned_vars(ctx, then_body)?;
1051 if let Some(else_body) = else_body {
1052 self.declare_assigned_vars(ctx, else_body)?;
1053 }
1054 let then_block = ctx.builder.create_block();
1055 let cond = self.eval(ctx, cond)?.get(ctx).ok_or(anyhow!("未知的条件 {:?}", cond))?;
1056 let cond = self.bool_value(ctx, cond)?;
1057 let mut end_block = None;
1058 if let Some(else_body) = else_body {
1059 let else_block = ctx.builder.create_block();
1060 ctx.builder.ins().brif(cond, then_block, &[], else_block, &[]);
1061 ctx.builder.switch_to_block(then_block);
1062 if !self.gen_stmt(ctx, then_body, break_block, continue_block)? {
1063 let block = ctx.builder.create_block();
1064 ctx.builder.ins().jump(block, &[]);
1065 end_block = Some(block);
1066 }
1067 ctx.builder.switch_to_block(else_block);
1068 if !self.gen_stmt(ctx, else_body, break_block, continue_block)? {
1069 if end_block.is_none() {
1070 end_block = Some(ctx.builder.create_block());
1071 }
1072 ctx.builder.ins().jump(end_block.unwrap(), &[]);
1073 }
1074 ctx.builder.seal_block(else_block);
1075 } else {
1076 let block = ctx.builder.create_block();
1077 ctx.builder.ins().brif(cond, then_block, &[], block, &[]);
1078 end_block = Some(block);
1079 ctx.builder.switch_to_block(then_block);
1080 if !self.gen_stmt(ctx, then_body, break_block, continue_block)? {
1081 ctx.builder.ins().jump(end_block.unwrap(), &[]); }
1083 }
1084 if let Some(block) = end_block {
1085 ctx.builder.switch_to_block(block);
1086 }
1087 ctx.builder.seal_block(then_block);
1088 return Ok(end_block.is_none());
1089 }
1090 StmtKind::Block(stmts) => {
1091 for (idx, stmt) in stmts.iter().enumerate() {
1092 let r = self.gen_stmt(ctx, stmt, break_block, continue_block)?;
1093 if idx == stmts.len() - 1 {
1094 return Ok(r);
1095 }
1096 }
1097 }
1098 StmtKind::While { cond, body } => {
1099 self.declare_assigned_vars(ctx, body)?;
1100 let no_loop: Option<fn(&mut BuildContext)> = None;
1101 self.gen_loop(ctx, Some(cond), body, no_loop)?;
1102 }
1103 StmtKind::Loop(body) => {
1104 self.declare_assigned_vars(ctx, body)?;
1105 let no_loop: Option<fn(&mut BuildContext)> = None;
1106 self.gen_loop(ctx, None, body, no_loop)?;
1107 }
1108 StmtKind::For { pat, range, body } => {
1109 if let ExprKind::Range { start, stop, inclusive } = &range.kind {
1110 if let PatternKind::Var { idx, .. } = &pat.kind {
1111 let start = self.eval(ctx, start)?;
1112 ctx.set_var(*idx, start)?;
1113 self.declare_assigned_vars(ctx, body)?;
1114 let op = if *inclusive { BinaryOp::Le } else { BinaryOp::Lt };
1115 let cond = Self::expr(ExprKind::Binary { left: Box::new(Self::expr(ExprKind::Var(*idx))), op, right: Box::new(stop.as_ref().clone()) });
1116 self.gen_loop(
1117 ctx,
1118 Some(&cond),
1119 body,
1120 Some(|ctx: &mut BuildContext| {
1121 let v = ctx.get_var(*idx).unwrap().get(ctx).unwrap();
1122 let step = if v.1 == Type::I64 {
1123 ctx.builder.ins().iconst(types::I64, 1)
1124 } else if v.1 == Type::I32 {
1125 ctx.builder.ins().iconst(types::I32, 1)
1126 } else {
1127 panic!("{:?} 不能作为增量", v.1)
1128 };
1129 let vt = (ctx.builder.ins().iadd(v.0, step), v.1).into();
1130 let _ = ctx.set_var(*idx, vt);
1131 }),
1132 )?;
1133 }
1134 } else if let PatternKind::Var { idx, .. } = &pat.kind {
1135 let vt = self.eval(ctx, range)?.get(ctx).unwrap();
1136 if vt.1.is_any() {
1137 let iter = self.call(ctx, self.get_method(&vt.1, "iter")?, vec![vt.0])?;
1138 let next = self.get_method(&vt.1, "next")?;
1139 let next_id = next.get_id()?;
1140 let start = self.call(ctx, next, vec![iter.0])?;
1141 ctx.set_var(*idx, start.into())?;
1142 let cond = Self::expr(ExprKind::Binary { left: Box::new(Self::expr(ExprKind::Var(*idx))), op: BinaryOp::Ne, right: Box::new(Self::expr(ExprKind::Value(Dynamic::Null))) });
1143 self.gen_loop(
1144 ctx,
1145 Some(&cond),
1146 body,
1147 Some(|ctx: &mut BuildContext| {
1148 let fn_ref = ctx.get_fn_ref(next_id).unwrap();
1149 let call_inst = ctx.builder.ins().call(fn_ref, &[iter.0]);
1150 let ret = ctx.builder.inst_results(call_inst)[0];
1151 let _ = ctx.set_var(*idx, (ret, Type::Any).into());
1152 }),
1153 )?;
1154 }
1155 } else if let PatternKind::Tuple(pats) = &pat.kind {
1156 let vt = self.eval(ctx, range)?.get(ctx).unwrap();
1157 if vt.1.is_any() && pats.len() == 2 {
1158 let iter = self.call(ctx, self.get_method(&vt.1, "iter")?, vec![vt.0])?;
1160 let next = self.get_method(&vt.1, "next")?;
1161 let next_id = next.get_id()?;
1162 let get_idx = self.get_method(&vt.1, "get_idx")?.get_id()?;
1163
1164 let start = self.call(ctx, next, vec![iter.0])?;
1165 let key_idx = ctx.builder.ins().iconst(types::I64, 0);
1166 let key = self.call(ctx, self.get_method(&start.1, "get_idx")?, vec![start.0, key_idx])?;
1167 let value_idx = ctx.builder.ins().iconst(types::I64, 1);
1168 let value = self.call(ctx, self.get_method(&start.1, "get_idx")?, vec![start.0, value_idx])?;
1169 ctx.set_var(pats[0].var().unwrap(), key.into())?;
1170 ctx.set_var(pats[1].var().unwrap(), value.into())?;
1171 let cond = Self::expr(ExprKind::Binary { left: Box::new(Self::expr(ExprKind::Var(pats[0].var().unwrap()))), op: BinaryOp::Ne, right: Box::new(Self::expr(ExprKind::Value(Dynamic::Null))) });
1172 self.gen_loop(
1173 ctx,
1174 Some(&cond),
1175 body,
1176 Some(|ctx: &mut BuildContext| {
1177 let fn_ref = ctx.get_fn_ref(next_id).unwrap();
1178 let call_inst = ctx.builder.ins().call(fn_ref, &[iter.0]);
1179 let ret = ctx.builder.inst_results(call_inst)[0];
1180
1181 let fn_ref = ctx.get_fn_ref(get_idx).unwrap();
1182 let call_inst = ctx.builder.ins().call(fn_ref, &[ret, key_idx]);
1183 let key_ret = ctx.builder.inst_results(call_inst)[0];
1184 let call_inst = ctx.builder.ins().call(fn_ref, &[ret, value_idx]);
1185 let value_ret = ctx.builder.inst_results(call_inst)[0];
1186
1187 let _ = ctx.set_var(pats[0].var().unwrap(), (key_ret, Type::Any).into());
1188 let _ = ctx.set_var(pats[1].var().unwrap(), (value_ret, Type::Any).into());
1189 }),
1190 )?;
1191 }
1192 }
1193 }
1194 _ => {
1195 panic!("未实现 {:?}", stmt)
1196 }
1197 }
1198 Ok(false)
1199 }
1200}