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wit_bindgen_c/
lib.rs

1pub mod component_type_object;
2
3use anyhow::Result;
4use heck::*;
5use indexmap::IndexSet;
6use std::collections::{HashMap, HashSet};
7use std::fmt::Write;
8use std::mem;
9use wit_bindgen_core::abi::{
10    self, AbiVariant, Bindgen, Bitcast, Instruction, LiftLower, WasmSignature, WasmType,
11};
12use wit_bindgen_core::{
13    AnonymousTypeGenerator, AsyncFilterSet, Direction, Files, InterfaceGenerator as _, Ns,
14    WorldGenerator, dealias, uwrite, uwriteln, wit_parser::*,
15};
16use wit_component::StringEncoding;
17
18#[derive(Default)]
19struct C {
20    src: Source,
21    opts: Opts,
22    h_includes: Vec<String>,
23    c_includes: Vec<String>,
24    return_pointer_area_size: ArchitectureSize,
25    return_pointer_area_align: Alignment,
26    names: Ns,
27    needs_string: bool,
28    needs_union_int32_float: bool,
29    needs_union_float_int32: bool,
30    needs_union_int64_double: bool,
31    needs_union_double_int64: bool,
32    needs_async: bool,
33    prim_names: HashSet<String>,
34    world: String,
35    sizes: SizeAlign,
36    renamed_interfaces: HashMap<WorldKey, String>,
37
38    world_id: Option<WorldId>,
39    dtor_funcs: HashMap<TypeId, String>,
40    type_names: HashMap<TypeId, String>,
41    resources: HashMap<TypeId, ResourceInfo>,
42    futures: IndexSet<TypeId>,
43}
44
45#[derive(Default)]
46pub struct ResourceInfo {
47    pub direction: Direction,
48    own: String,
49    borrow: String,
50    drop_fn: String,
51}
52
53#[derive(Default, Debug, Eq, PartialEq, Clone, Copy)]
54#[cfg_attr(feature = "clap", derive(clap::ValueEnum))]
55pub enum Enabled {
56    #[default]
57    No,
58    Yes,
59}
60
61impl std::fmt::Display for Enabled {
62    fn fmt(&self, f: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
63        match self {
64            Self::Yes => write!(f, "yes"),
65            Self::No => write!(f, "no"),
66        }
67    }
68}
69
70#[derive(Default, Debug, Clone)]
71#[cfg_attr(feature = "clap", derive(clap::Parser))]
72pub struct Opts {
73    /// Skip emitting component allocation helper functions
74    #[cfg_attr(feature = "clap", arg(long))]
75    pub no_helpers: bool,
76
77    /// Set component string encoding
78    #[cfg_attr(
79        feature = "clap",
80        arg(
81            long,
82            default_value_t = StringEncoding::default(),
83            value_name = "ENCODING",
84        ),
85    )]
86    pub string_encoding: StringEncoding,
87
88    /// Skip optional null pointer and boolean result argument signature
89    /// flattening
90    #[cfg_attr(feature = "clap", arg(long, default_value_t = false))]
91    pub no_sig_flattening: bool,
92
93    /// Skip generating an object file which contains type information for the
94    /// world that is being generated.
95    #[cfg_attr(feature = "clap", arg(long, default_value_t = false))]
96    pub no_object_file: bool,
97
98    /// Rename the interface `K` to `V` in the generated source code.
99    #[cfg_attr(feature = "clap", arg(long, name = "K=V", value_parser = parse_rename))]
100    pub rename: Vec<(String, String)>,
101
102    /// Rename the world in the generated source code and file names.
103    #[cfg_attr(feature = "clap", arg(long, value_name = "NAME"))]
104    pub rename_world: Option<String>,
105
106    /// Add the specified suffix to the name of the custom section containing
107    /// the component type.
108    #[cfg_attr(feature = "clap", arg(long, value_name = "STRING"))]
109    pub type_section_suffix: Option<String>,
110
111    /// Configure the autodropping of borrows in exported functions.
112    #[cfg_attr(
113        feature = "clap",
114        arg(
115            long,
116            default_value_t = Enabled::default(),
117            value_name = "ENABLED",
118        ),
119    )]
120    pub autodrop_borrows: Enabled,
121
122    #[cfg_attr(feature = "clap", clap(flatten))]
123    pub async_: AsyncFilterSet,
124
125    /// Force generation of async helpers even if no async functions/futures are present.
126    #[cfg_attr(feature = "clap", arg(long, default_value_t = false))]
127    pub generate_async_helpers: bool,
128
129    /// Generate helpers for threading builtins. Implies `--generate-async-helpers`.
130    #[cfg_attr(feature = "clap", arg(long, default_value_t = false))]
131    pub generate_threading_helpers: bool,
132}
133
134#[cfg(feature = "clap")]
135fn parse_rename(name: &str) -> Result<(String, String)> {
136    let mut parts = name.splitn(2, '=');
137    let to_rename = parts.next().unwrap();
138    match parts.next() {
139        Some(part) => Ok((to_rename.to_string(), part.to_string())),
140        None => anyhow::bail!("`--rename` option must have an `=` in it (e.g. `--rename a=b`)"),
141    }
142}
143
144impl Opts {
145    pub fn build(&self) -> Box<dyn WorldGenerator> {
146        let mut r = C::default();
147        r.opts = self.clone();
148        Box::new(r)
149    }
150}
151
152#[derive(Clone, Debug, Default)]
153struct Return {
154    scalar: Option<Scalar>,
155    retptrs: Vec<Type>,
156}
157
158#[derive(Clone)]
159struct CSig {
160    name: String,
161    sig: String,
162    params: Vec<(bool, String)>,
163    ret: Return,
164    retptrs: Vec<String>,
165}
166
167#[derive(Clone, Debug)]
168enum Scalar {
169    Void,
170    OptionBool(Type),
171    ResultBool(Option<Type>, Option<Type>),
172    Type(Type),
173}
174
175impl WorldGenerator for C {
176    fn preprocess(&mut self, resolve: &Resolve, world: WorldId) {
177        self.world = self
178            .opts
179            .rename_world
180            .clone()
181            .unwrap_or_else(|| resolve.worlds[world].name.clone());
182        self.sizes.fill(resolve);
183        self.world_id = Some(world);
184
185        let mut interfaces = HashMap::new();
186        let world = &resolve.worlds[world];
187        for (key, _item) in world.imports.iter().chain(world.exports.iter()) {
188            let name = resolve.name_world_key(key);
189            interfaces
190                .entry(name)
191                .or_insert(Vec::new())
192                .push(key.clone());
193        }
194
195        for (from, to) in self.opts.rename.iter() {
196            match interfaces.get(from) {
197                Some(keys) => {
198                    for key in keys {
199                        self.renamed_interfaces.insert(key.clone(), to.clone());
200                    }
201                }
202                None => {
203                    eprintln!("warning: rename of `{from}` did not match any interfaces");
204                }
205            }
206        }
207    }
208
209    fn import_interface(
210        &mut self,
211        resolve: &Resolve,
212        name: &WorldKey,
213        id: InterfaceId,
214        _files: &mut Files,
215    ) -> Result<()> {
216        let wasm_import_module = resolve.name_world_key(name);
217        let mut r#gen = self.interface(resolve, true, Some(&wasm_import_module));
218        r#gen.interface = Some((id, name));
219        r#gen.define_interface_types(id);
220
221        for (i, (_name, func)) in resolve.interfaces[id].functions.iter().enumerate() {
222            if i == 0 {
223                let name = resolve.name_world_key(name);
224                uwriteln!(r#gen.src.h_fns, "\n// Imported Functions from `{name}`");
225                uwriteln!(r#gen.src.c_fns, "\n// Imported Functions from `{name}`");
226            }
227            r#gen.import(Some(name), func);
228        }
229
230        r#gen.r#gen.src.append(&r#gen.src);
231
232        Ok(())
233    }
234
235    fn import_funcs(
236        &mut self,
237        resolve: &Resolve,
238        world: WorldId,
239        funcs: &[(&str, &Function)],
240        _files: &mut Files,
241    ) {
242        let name = &resolve.worlds[world].name;
243        let mut r#gen = self.interface(resolve, true, Some("$root"));
244        r#gen.define_function_types(funcs);
245
246        for (i, (_name, func)) in funcs.iter().enumerate() {
247            if i == 0 {
248                uwriteln!(r#gen.src.h_fns, "\n// Imported Functions from `{name}`");
249                uwriteln!(r#gen.src.c_fns, "\n// Imported Functions from `{name}`");
250            }
251            r#gen.import(None, func);
252        }
253
254        r#gen.r#gen.src.append(&r#gen.src);
255    }
256
257    fn export_interface(
258        &mut self,
259        resolve: &Resolve,
260        name: &WorldKey,
261        id: InterfaceId,
262        _files: &mut Files,
263    ) -> Result<()> {
264        let mut r#gen = self.interface(resolve, false, None);
265        r#gen.interface = Some((id, name));
266        r#gen.define_interface_types(id);
267
268        for (i, (_name, func)) in resolve.interfaces[id].functions.iter().enumerate() {
269            if i == 0 {
270                let name = resolve.name_world_key(name);
271                uwriteln!(r#gen.src.h_fns, "\n// Exported Functions from `{name}`");
272                uwriteln!(r#gen.src.c_fns, "\n// Exported Functions from `{name}`");
273            }
274            r#gen.export(func, Some(name));
275        }
276
277        r#gen.r#gen.src.append(&r#gen.src);
278        Ok(())
279    }
280
281    fn export_funcs(
282        &mut self,
283        resolve: &Resolve,
284        world: WorldId,
285        funcs: &[(&str, &Function)],
286        _files: &mut Files,
287    ) -> Result<()> {
288        let name = &resolve.worlds[world].name;
289        let mut r#gen = self.interface(resolve, false, None);
290        r#gen.define_function_types(funcs);
291
292        for (i, (_name, func)) in funcs.iter().enumerate() {
293            if i == 0 {
294                uwriteln!(r#gen.src.h_fns, "\n// Exported Functions from `{name}`");
295                uwriteln!(r#gen.src.c_fns, "\n// Exported Functions from `{name}`");
296            }
297            r#gen.export(func, None);
298        }
299
300        r#gen.r#gen.src.append(&r#gen.src);
301        Ok(())
302    }
303
304    fn import_types(
305        &mut self,
306        resolve: &Resolve,
307        _world: WorldId,
308        types: &[(&str, TypeId)],
309        _files: &mut Files,
310    ) {
311        let mut r#gen = self.interface(resolve, true, Some("$root"));
312        let mut live = LiveTypes::default();
313        for (_, id) in types {
314            live.add_type_id(resolve, *id);
315        }
316        r#gen.define_live_types(live);
317        r#gen.r#gen.src.append(&r#gen.src);
318    }
319
320    fn finish(&mut self, resolve: &Resolve, id: WorldId, files: &mut Files) -> Result<()> {
321        let linking_symbol = component_type_object::linking_symbol(&self.world);
322        self.c_include("<stdlib.h>");
323        let snake = self.world.to_snake_case();
324        uwriteln!(
325            self.src.c_adapters,
326            "\n// Ensure that the *_component_type.o object is linked in"
327        );
328        uwrite!(
329            self.src.c_adapters,
330            "
331               extern void {linking_symbol}(void);
332               __attribute__((used))
333               void {linking_symbol}_public_use_in_this_compilation_unit(void) {{
334                   {linking_symbol}();
335               }}
336           ",
337        );
338
339        self.print_intrinsics();
340
341        if self.needs_string {
342            self.c_include("<string.h>");
343            let (strlen, size) = match self.opts.string_encoding {
344                StringEncoding::UTF8 => (format!("strlen(s)"), 1),
345                StringEncoding::UTF16 => {
346                    self.h_include("<uchar.h>");
347                    uwrite!(
348                        self.src.h_helpers,
349                        "
350                            // Returns the length of the UTF-16 string `s` in code units
351                            size_t {snake}_string_len(const char16_t* s);
352                        ",
353                    );
354                    uwrite!(
355                        self.src.c_helpers,
356                        "
357                            size_t {snake}_string_len(const char16_t* s) {{
358                                char16_t* c = (char16_t*)s;
359                                for (; *c; ++c);
360                                return c-s;
361                            }}
362                        ",
363                    );
364                    (format!("{snake}_string_len(s)"), 2)
365                }
366                StringEncoding::CompactUTF16 => unimplemented!(),
367            };
368            let ty = self.char_type();
369            let c_string_ty = match self.opts.string_encoding {
370                StringEncoding::UTF8 => "char",
371                StringEncoding::UTF16 => "char16_t",
372                StringEncoding::CompactUTF16 => panic!("Compact UTF16 unsupported"),
373            };
374            uwrite!(
375                self.src.h_helpers,
376                "
377                   // Sets the string `ret` to reference the input string `s` without copying it
378                   void {snake}_string_set({snake}_string_t *ret, const {c_string_ty} *s);
379
380                   // Creates a copy of the input nul-terminated string `s` and
381                   // stores it into the component model string `ret`.
382                   void {snake}_string_dup({snake}_string_t *ret, const {c_string_ty} *s);
383
384                   // Creates a copy of the input string `s` with length `len` and
385                   // stores it into the component model string `ret`.
386                   // The length is specified in code units (bytes for UTF-8, 16-bit values for UTF-16).
387                   void {snake}_string_dup_n({snake}_string_t *ret, const {c_string_ty} *s, size_t len);
388
389                   // Deallocates the string pointed to by `ret`, deallocating
390                   // the memory behind the string.
391                   void {snake}_string_free({snake}_string_t *ret);\
392               ",
393            );
394            uwrite!(
395                self.src.c_helpers,
396                "
397                   void {snake}_string_set({snake}_string_t *ret, const {c_string_ty} *s) {{
398                       ret->ptr = ({ty}*) s;
399                       ret->len = {strlen};
400                   }}
401
402                   void {snake}_string_dup({snake}_string_t *ret, const {c_string_ty} *s) {{
403                       ret->len = {strlen};
404                       ret->ptr = ({ty}*) cabi_realloc(NULL, 0, {size}, ret->len * {size});
405                       memcpy(ret->ptr, s, ret->len * {size});
406                   }}
407
408                   void {snake}_string_dup_n({snake}_string_t *ret, const {c_string_ty} *s, size_t len) {{
409                       ret->len = len;
410                       ret->ptr = ({ty}*) cabi_realloc(NULL, 0, {size}, ret->len * {size});
411                       memcpy(ret->ptr, s, ret->len * {size});
412                   }}
413
414                   void {snake}_string_free({snake}_string_t *ret) {{
415                       if (ret->len > 0) {{
416                           free(ret->ptr);
417                       }}
418                       ret->ptr = NULL;
419                       ret->len = 0;
420                   }}
421               ",
422            );
423        }
424        if self.needs_union_int32_float {
425            uwriteln!(
426                self.src.c_defs,
427                "\nunion int32_float {{ int32_t a; float b; }};"
428            );
429        }
430        if self.needs_union_float_int32 {
431            uwriteln!(
432                self.src.c_defs,
433                "\nunion float_int32 {{ float a; int32_t b; }};"
434            );
435        }
436        if self.needs_union_int64_double {
437            uwriteln!(
438                self.src.c_defs,
439                "\nunion int64_double {{ int64_t a; double b; }};"
440            );
441        }
442        if self.needs_union_double_int64 {
443            uwriteln!(
444                self.src.c_defs,
445                "\nunion double_int64 {{ double a; int64_t b; }};"
446            );
447        }
448        if self.needs_async
449            || self.futures.len() > 0
450            || self.opts.generate_async_helpers
451            || self.opts.generate_threading_helpers
452        {
453            self.generate_async_helpers();
454        }
455        if self.opts.generate_threading_helpers {
456            self.generate_threading_helpers();
457        }
458        let version = env!("CARGO_PKG_VERSION");
459        let mut h_str = wit_bindgen_core::Source::default();
460
461        wit_bindgen_core::generated_preamble(&mut h_str, version);
462
463        uwrite!(
464            h_str,
465            "#ifndef __BINDINGS_{0}_H
466            #define __BINDINGS_{0}_H
467            #ifdef __cplusplus
468            extern \"C\" {{",
469            self.world.to_shouty_snake_case(),
470        );
471
472        // Deindent the extern C { declaration
473        h_str.deindent(1);
474        uwriteln!(h_str, "\n#endif\n");
475
476        uwriteln!(h_str, "#include <stdint.h>");
477        uwriteln!(h_str, "#include <stdbool.h>");
478        uwriteln!(h_str, "#include <stddef.h>");
479        for include in self.h_includes.iter() {
480            uwriteln!(h_str, "#include {include}");
481        }
482
483        let mut c_str = wit_bindgen_core::Source::default();
484        wit_bindgen_core::generated_preamble(&mut c_str, version);
485        uwriteln!(c_str, "#include \"{snake}.h\"");
486        for include in self.c_includes.iter() {
487            uwriteln!(c_str, "#include {include}");
488        }
489        c_str.push_str(&self.src.c_defs);
490        c_str.push_str(&self.src.c_fns);
491
492        // Declare a statically-allocated return area, if needed. We only do
493        // this for export bindings, because import bindings allocate their
494        // return-area on the stack.
495        if !self.return_pointer_area_size.is_empty() {
496            // Automatic indentation avoided due to `extern "C" {` declaration
497            uwrite!(
498                c_str,
499                "
500                __attribute__((__aligned__({})))
501                static uint8_t RET_AREA[{}];
502                ",
503                self.return_pointer_area_align
504                    .format(POINTER_SIZE_EXPRESSION),
505                self.return_pointer_area_size
506                    .format(POINTER_SIZE_EXPRESSION),
507            );
508        }
509
510        if self.needs_string {
511            uwriteln!(
512                h_str,
513                "
514                typedef struct {snake}_string_t {{\n\
515                  {ty} *ptr;\n\
516                  size_t len;\n\
517                }} {snake}_string_t;",
518                ty = self.char_type(),
519            );
520        }
521
522        if self.src.h_async.len() > 0 {
523            uwriteln!(h_str, "\n// Async Helper Functions");
524            h_str.push_str(&self.src.h_async);
525            h_str.push_str("\n");
526        }
527
528        if self.src.h_defs.len() > 0 {
529            h_str.push_str(&self.src.h_defs);
530        }
531
532        h_str.push_str(&self.src.h_fns);
533
534        if !self.opts.no_helpers && self.src.h_helpers.len() > 0 {
535            uwriteln!(h_str, "\n// Helper Functions");
536            h_str.push_str(&self.src.h_helpers);
537            h_str.push_str("\n");
538        }
539
540        if !self.opts.no_helpers && self.src.c_helpers.len() > 0 {
541            uwriteln!(c_str, "\n// Helper Functions");
542            c_str.push_str(self.src.c_helpers.as_mut_string());
543        }
544
545        if self.src.c_async.len() > 0 {
546            uwriteln!(c_str, "\n// Async Helper Functions");
547            c_str.push_str(&self.src.c_async);
548            c_str.push_str("\n");
549        }
550
551        uwriteln!(c_str, "\n// Component Adapters");
552
553        c_str.push_str(&self.src.c_adapters);
554
555        uwriteln!(
556            h_str,
557            "
558            #ifdef __cplusplus
559            }}
560            #endif
561            #endif"
562        );
563
564        files.push(&format!("{snake}.h"), h_str.as_bytes());
565        files.push(&format!("{snake}.c"), c_str.as_bytes());
566        if !self.opts.no_object_file {
567            files.push(
568                &format!("{snake}_component_type.o",),
569                component_type_object::object(
570                    resolve,
571                    id,
572                    &self.world,
573                    self.opts.string_encoding,
574                    self.opts.type_section_suffix.as_deref(),
575                )
576                .unwrap()
577                .as_slice(),
578            );
579        }
580
581        Ok(())
582    }
583
584    fn pre_export_interface(&mut self, resolve: &Resolve, _files: &mut Files) -> Result<()> {
585        self.remove_types_redefined_by_exports(resolve, self.world_id.unwrap());
586        Ok(())
587    }
588}
589
590impl C {
591    fn interface<'a>(
592        &'a mut self,
593        resolve: &'a Resolve,
594        in_import: bool,
595        wasm_import_module: Option<&'a str>,
596    ) -> InterfaceGenerator<'a> {
597        InterfaceGenerator {
598            src: Source::default(),
599            r#gen: self,
600            resolve,
601            interface: None,
602            in_import,
603            wasm_import_module,
604        }
605    }
606
607    fn h_include(&mut self, s: &str) {
608        self.h_includes.push(s.to_string());
609    }
610
611    fn c_include(&mut self, s: &str) {
612        self.c_includes.push(s.to_string());
613    }
614
615    fn char_type(&self) -> &'static str {
616        match self.opts.string_encoding {
617            StringEncoding::UTF8 => "uint8_t",
618            StringEncoding::UTF16 => "uint16_t",
619            StringEncoding::CompactUTF16 => panic!("Compact UTF16 unsupported"),
620        }
621    }
622
623    fn type_name(&mut self, ty: &Type) -> String {
624        let mut name = String::new();
625        self.push_type_name(ty, &mut name);
626        name
627    }
628
629    fn push_type_name(&mut self, ty: &Type, dst: &mut String) {
630        match ty {
631            Type::Bool => dst.push_str("bool"),
632            Type::Char => dst.push_str("uint32_t"), // TODO: better type?
633            Type::U8 => dst.push_str("uint8_t"),
634            Type::S8 => dst.push_str("int8_t"),
635            Type::U16 => dst.push_str("uint16_t"),
636            Type::S16 => dst.push_str("int16_t"),
637            Type::U32 => dst.push_str("uint32_t"),
638            Type::S32 => dst.push_str("int32_t"),
639            Type::U64 => dst.push_str("uint64_t"),
640            Type::S64 => dst.push_str("int64_t"),
641            Type::F32 => dst.push_str("float"),
642            Type::F64 => dst.push_str("double"),
643            Type::String => {
644                dst.push_str(&self.world.to_snake_case());
645                dst.push_str("_");
646                dst.push_str("string_t");
647                self.needs_string = true;
648            }
649            Type::ErrorContext => dst.push_str("error_context"),
650            Type::Id(id) => {
651                if let Some(name) = self.type_names.get(id) {
652                    dst.push_str(name);
653                    return;
654                }
655
656                panic!("failed to find type name for {id:?}");
657            }
658        }
659    }
660
661    /// Removes all types from `self.{dtor_funcs,type_names,resources}` which
662    /// are redefined in exports.
663    ///
664    /// WIT interfaces can be both imported and exported but they're represented
665    /// with the same `TypeId` internally within the `wit-parser`
666    /// representation. This means that duplicate types need to be generated for
667    /// exports, even if the same interface was already imported. If nothing
668    /// were done here though then the same type imported and exported wouldn't
669    /// generate anything new since preexisting types are skipped in
670    /// `define_live_types`.
671    ///
672    /// This function will trim the sets on `self` to only retain those types
673    /// which exports refer to that come from imports.
674    fn remove_types_redefined_by_exports(&mut self, resolve: &Resolve, world: WorldId) {
675        let live_import_types = imported_types_used_by_exported_interfaces(resolve, world);
676        self.dtor_funcs.retain(|k, _| live_import_types.contains(k));
677        self.type_names.retain(|k, _| live_import_types.contains(k));
678        self.resources.retain(|k, _| live_import_types.contains(k));
679    }
680
681    fn perform_cast(&mut self, op: &str, cast: &Bitcast) -> String {
682        match cast {
683            Bitcast::I32ToF32 | Bitcast::I64ToF32 => {
684                self.needs_union_int32_float = true;
685                format!("((union int32_float){{ (int32_t) {op} }}).b")
686            }
687            Bitcast::F32ToI32 | Bitcast::F32ToI64 => {
688                self.needs_union_float_int32 = true;
689                format!("((union float_int32){{ {op} }}).b")
690            }
691            Bitcast::I64ToF64 => {
692                self.needs_union_int64_double = true;
693                format!("((union int64_double){{ (int64_t) {op} }}).b")
694            }
695            Bitcast::F64ToI64 => {
696                self.needs_union_double_int64 = true;
697                format!("((union double_int64){{ {op} }}).b")
698            }
699            Bitcast::I32ToI64 | Bitcast::LToI64 | Bitcast::PToP64 => {
700                format!("(int64_t) {op}")
701            }
702            Bitcast::I64ToI32 | Bitcast::I64ToL => {
703                format!("(int32_t) {op}")
704            }
705            // P64 is currently represented as int64_t, so no conversion is needed.
706            Bitcast::I64ToP64 | Bitcast::P64ToI64 => {
707                format!("{op}")
708            }
709            Bitcast::P64ToP | Bitcast::I32ToP | Bitcast::LToP => {
710                format!("(uint8_t *) {op}")
711            }
712
713            // Cast to uintptr_t to avoid implicit pointer-to-int conversions.
714            Bitcast::PToI32 | Bitcast::PToL => format!("(uintptr_t) {op}"),
715
716            Bitcast::I32ToL | Bitcast::LToI32 | Bitcast::None => op.to_string(),
717
718            Bitcast::Sequence(sequence) => {
719                let [first, second] = &**sequence;
720                let inner = self.perform_cast(op, first);
721                self.perform_cast(&inner, second)
722            }
723        }
724    }
725
726    fn generate_threading_helpers(&mut self) {
727        let snake = self.world.to_snake_case();
728        uwriteln!(
729            self.src.h_async,
730            "
731void* {snake}_context_get_1(void);
732void {snake}_context_set_1(void* value);
733uint32_t {snake}_thread_yield_cancellable(void);
734uint32_t {snake}_thread_index(void);
735uint32_t {snake}_thread_new_indirect(void (*start_function)(void*), void* arg);
736void {snake}_thread_suspend_to(uint32_t thread);
737uint32_t {snake}_thread_suspend_to_cancellable(uint32_t thread);
738void {snake}_thread_suspend_to_suspended(uint32_t thread);
739uint32_t {snake}_thread_suspend_to_suspended_cancellable(uint32_t thread);
740void {snake}_thread_unsuspend(uint32_t thread);
741void {snake}_thread_yield_to_suspended(uint32_t thread);
742uint32_t {snake}_thread_yield_to_suspended_cancellable(uint32_t thread);
743void {snake}_thread_suspend(void);
744uint32_t {snake}_thread_suspend_cancellable(void);
745            "
746        );
747        uwriteln!(
748            self.src.c_async,
749            r#"
750__attribute__((__import_module__("$root"), __import_name__("[context-get-1]")))
751extern void* __context_get_1(void);
752
753void* {snake}_context_get_1(void) {{
754    return __context_get_1();
755}}
756
757__attribute__((__import_module__("$root"), __import_name__("[context-set-1]")))
758extern void __context_set_1(void*);
759
760void {snake}_context_set_1(void* value) {{
761    __context_set_1(value);
762}}
763
764__attribute__((__import_module__("$root"), __import_name__("[cancellable][thread-yield]")))
765extern uint32_t __thread_yield_cancellable(void);
766
767uint32_t {snake}_thread_yield_cancellable(void) {{
768    return __thread_yield_cancellable();
769}}
770
771__attribute__((__import_module__("$root"), __import_name__("[thread-index]")))
772extern uint32_t __thread_index(void);
773
774uint32_t {snake}_thread_index(void) {{
775    return __thread_index();
776}}
777
778__attribute__((__import_module__("$root"), __import_name__("[thread-new-indirect-v0]")))
779extern uint32_t __thread_new_indirect(uint32_t, void*);
780
781uint32_t {snake}_thread_new_indirect(void (*start_function)(void*), void* arg) {{
782    return __thread_new_indirect((uint32_t)(uintptr_t)start_function, arg
783);
784}}
785
786__attribute__((__import_module__("$root"), __import_name__("[thread-suspend-to-suspended]")))
787extern uint32_t __thread_suspend_to_suspended(uint32_t);
788
789void {snake}_thread_suspend_to_suspended(uint32_t thread) {{
790    __thread_suspend_to_suspended(thread);
791}}
792
793__attribute__((__import_module__("$root"), __import_name__("[cancellable][thread-suspend-to-suspended]")))
794extern uint32_t __thread_suspend_to_suspended_cancellable(uint32_t);
795
796uint32_t {snake}_thread_suspend_to_suspended_cancellable(uint32_t thread) {{
797    return __thread_suspend_to_suspended_cancellable(thread);
798}}
799
800__attribute__((__import_module__("$root"), __import_name__("[thread-suspend-to]")))
801extern uint32_t __thread_suspend_to(uint32_t);
802
803void {snake}_thread_suspend_to(uint32_t thread) {{
804    __thread_suspend_to(thread);
805}}
806
807__attribute__((__import_module__("$root"), __import_name__("[cancellable][thread-suspend-to]")))
808extern uint32_t __thread_suspend_to_cancellable(uint32_t);
809
810uint32_t {snake}_thread_suspend_to_cancellable(uint32_t thread) {{
811    return __thread_suspend_to_cancellable(thread);
812}}
813
814__attribute__((__import_module__("$root"), __import_name__("[thread-unsuspend]")))
815extern void __thread_unsuspend(uint32_t);
816
817void {snake}_thread_unsuspend(uint32_t thread) {{
818    __thread_unsuspend(thread);
819}}
820
821__attribute__((__import_module__("$root"), __import_name__("[thread-yield-to-suspended]")))
822extern uint32_t __thread_yield_to_suspended(uint32_t);
823
824void {snake}_thread_yield_to_suspended(uint32_t thread) {{
825    __thread_yield_to_suspended(thread);
826}}
827
828__attribute__((__import_module__("$root"), __import_name__("[cancellable][thread-yield-to-suspended]")))
829extern uint32_t __thread_yield_to_suspended_cancellable(uint32_t);
830
831uint32_t {snake}_thread_yield_to_suspended_cancellable(uint32_t thread) {{
832    return __thread_yield_to_suspended_cancellable(thread);
833}}
834
835__attribute__((__import_module__("$root"), __import_name__("[thread-suspend]")))
836extern uint32_t __thread_suspend(void);
837
838void {snake}_thread_suspend(void) {{
839    __thread_suspend();
840}}
841
842__attribute__((__import_module__("$root"), __import_name__("[cancellable][thread-suspend]")))
843extern uint32_t __thread_suspend_cancellable(void);
844uint32_t {snake}_thread_suspend_cancellable(void) {{
845    return __thread_suspend_cancellable();
846}}
847            "#
848        );
849    }
850
851    fn generate_async_helpers(&mut self) {
852        let snake = self.world.to_snake_case();
853        let shouty = self.world.to_shouty_snake_case();
854        uwriteln!(
855            self.src.h_async,
856            "
857typedef uint32_t {snake}_subtask_status_t;
858typedef uint32_t {snake}_subtask_t;
859#define {shouty}_SUBTASK_STATE(status) (({snake}_subtask_state_t) ((status) & 0xf))
860#define {shouty}_SUBTASK_HANDLE(status) (({snake}_subtask_t) ((status) >> 4))
861
862typedef enum {snake}_subtask_state {{
863    {shouty}_SUBTASK_STARTING,
864    {shouty}_SUBTASK_STARTED,
865    {shouty}_SUBTASK_RETURNED,
866    {shouty}_SUBTASK_STARTED_CANCELLED,
867    {shouty}_SUBTASK_RETURNED_CANCELLED,
868}} {snake}_subtask_state_t;
869
870{snake}_subtask_status_t {snake}_subtask_cancel({snake}_subtask_t subtask);
871void {snake}_subtask_drop({snake}_subtask_t subtask);
872
873typedef uint32_t {snake}_callback_code_t;
874#define {shouty}_CALLBACK_CODE_EXIT 0
875#define {shouty}_CALLBACK_CODE_YIELD 1
876#define {shouty}_CALLBACK_CODE_WAIT(set) (2 | (set << 4))
877
878typedef enum {snake}_event_code {{
879    {shouty}_EVENT_NONE,
880    {shouty}_EVENT_SUBTASK,
881    {shouty}_EVENT_STREAM_READ,
882    {shouty}_EVENT_STREAM_WRITE,
883    {shouty}_EVENT_FUTURE_READ,
884    {shouty}_EVENT_FUTURE_WRITE,
885    {shouty}_EVENT_CANCEL,
886}} {snake}_event_code_t;
887
888typedef struct {snake}_event {{
889    {snake}_event_code_t event;
890    uint32_t waitable;
891    uint32_t code;
892}} {snake}_event_t;
893
894typedef uint32_t {snake}_waitable_set_t;
895{snake}_waitable_set_t {snake}_waitable_set_new(void);
896void {snake}_waitable_join(uint32_t waitable, {snake}_waitable_set_t set);
897void {snake}_waitable_set_drop({snake}_waitable_set_t set);
898void {snake}_waitable_set_wait({snake}_waitable_set_t set, {snake}_event_t *event);
899void {snake}_waitable_set_poll({snake}_waitable_set_t set, {snake}_event_t *event);
900
901void {snake}_task_cancel(void);
902
903typedef uint32_t {snake}_waitable_status_t;
904#define {shouty}_WAITABLE_STATE(status) (({snake}_waitable_state_t) ((status) & 0xf))
905#define {shouty}_WAITABLE_COUNT(status) ((uint32_t) ((status) >> 4))
906#define {shouty}_WAITABLE_STATUS_BLOCKED (({snake}_waitable_status_t) -1)
907
908typedef enum {snake}_waitable_state {{
909    {shouty}_WAITABLE_COMPLETED,
910    {shouty}_WAITABLE_DROPPED,
911    {shouty}_WAITABLE_CANCELLED,
912}} {snake}_waitable_state_t;
913
914void {snake}_backpressure_inc(void);
915void {snake}_backpressure_dec(void);
916void* {snake}_context_get_0(void);
917void {snake}_context_set_0(void* value);
918void {snake}_thread_yield(void);
919            "
920        );
921        uwriteln!(
922            self.src.c_async,
923            r#"
924__attribute__((__import_module__("$root"), __import_name__("[subtask-cancel]")))
925extern uint32_t __subtask_cancel(uint32_t handle);
926
927{snake}_subtask_status_t {snake}_subtask_cancel({snake}_subtask_t subtask) {{
928    return __subtask_cancel(subtask);
929}}
930
931__attribute__((__import_module__("$root"), __import_name__("[subtask-drop]")))
932extern void __subtask_drop(uint32_t handle);
933
934void {snake}_subtask_drop({snake}_subtask_t subtask) {{
935    __subtask_drop(subtask);
936}}
937
938__attribute__((__import_module__("$root"), __import_name__("[waitable-set-new]")))
939extern uint32_t __waitable_set_new(void);
940
941{snake}_waitable_set_t {snake}_waitable_set_new(void) {{
942    return __waitable_set_new();
943}}
944
945__attribute__((__import_module__("$root"), __import_name__("[waitable-join]")))
946extern void __waitable_join(uint32_t, uint32_t);
947
948void {snake}_waitable_join(uint32_t waitable, {snake}_waitable_set_t set) {{
949    __waitable_join(waitable, set);
950}}
951
952__attribute__((__import_module__("$root"), __import_name__("[waitable-set-drop]")))
953extern void __waitable_set_drop(uint32_t);
954
955void {snake}_waitable_set_drop({snake}_waitable_set_t set) {{
956    __waitable_set_drop(set);
957}}
958
959__attribute__((__import_module__("$root"), __import_name__("[waitable-set-wait]")))
960extern uint32_t __waitable_set_wait(uint32_t, uint32_t*);
961__attribute__((__import_module__("$root"), __import_name__("[waitable-set-poll]")))
962extern uint32_t __waitable_set_poll(uint32_t, uint32_t*);
963
964void {snake}_waitable_set_wait({snake}_waitable_set_t set, {snake}_event_t *event) {{
965    event->event = ({snake}_event_code_t) __waitable_set_wait(set, &event->waitable);
966}}
967
968void {snake}_waitable_set_poll({snake}_waitable_set_t set, {snake}_event_t *event) {{
969    event->event = ({snake}_event_code_t) __waitable_set_poll(set, &event->waitable);
970}}
971
972__attribute__((__import_module__("[export]$root"), __import_name__("[task-cancel]")))
973extern void __task_cancel(void);
974
975void {snake}_task_cancel() {{
976    __task_cancel();
977}}
978
979__attribute__((__import_module__("$root"), __import_name__("[backpressure-inc]")))
980extern void __backpressure_inc(void);
981
982void {snake}_backpressure_inc(void) {{
983    __backpressure_inc();
984}}
985
986__attribute__((__import_module__("$root"), __import_name__("[backpressure-dec]")))
987extern void __backpressure_dec(void);
988
989void {snake}_backpressure_dec(void) {{
990    __backpressure_dec();
991}}
992
993__attribute__((__import_module__("$root"), __import_name__("[context-get-0]")))
994extern void* __context_get_0(void);
995
996void* {snake}_context_get_0(void) {{
997    return __context_get_0();
998}}
999
1000__attribute__((__import_module__("$root"), __import_name__("[context-set-0]")))
1001extern void __context_set_0(void*);
1002
1003
1004void {snake}_context_set_0(void *value) {{
1005    __context_set_0(value);
1006}}
1007
1008__attribute__((__import_module__("$root"), __import_name__("[thread-yield]")))
1009extern uint32_t __thread_yield(void);
1010
1011void {snake}_thread_yield(void) {{
1012    __thread_yield();
1013}}
1014            "#
1015        );
1016    }
1017}
1018
1019pub fn imported_types_used_by_exported_interfaces(
1020    resolve: &Resolve,
1021    world: WorldId,
1022) -> HashSet<TypeId> {
1023    // First build up a set of all types used by exports and all the
1024    // exported interfaces.
1025    let mut live_export_types = LiveTypes::default();
1026    let mut exported_interfaces = HashSet::new();
1027    for (_, export) in resolve.worlds[world].exports.iter() {
1028        match export {
1029            WorldItem::Function(_) => {}
1030            WorldItem::Interface { id, .. } => {
1031                exported_interfaces.insert(*id);
1032                live_export_types.add_interface(resolve, *id)
1033            }
1034            WorldItem::Type { .. } => unreachable!(),
1035        }
1036    }
1037
1038    // Using the above sets a set of required import interfaces can be
1039    // calculated. This is all referred-to-types that are owned by an
1040    // interface that aren't present in an export. Note that the topological
1041    // sorting and WIT requirements are what makes this check possible.
1042    let mut imports_used = HashSet::new();
1043    for ty in live_export_types.iter() {
1044        if let TypeOwner::Interface(id) = resolve.types[ty].owner {
1045            if !exported_interfaces.contains(&id) {
1046                imports_used.insert(id);
1047            }
1048        }
1049    }
1050
1051    // With the set of imports used that aren't shadowed by exports the set
1052    // of types on `self` can now be trimmed. All live types in all the
1053    // imports are calculated and then everything except these are removed.
1054    let mut live_import_types = LiveTypes::default();
1055    for import in imports_used {
1056        live_import_types.add_interface(resolve, import);
1057    }
1058    let live_import_types = live_import_types.iter().collect::<HashSet<_>>();
1059    live_import_types
1060}
1061
1062fn is_prim_type(resolve: &Resolve, ty: &Type) -> bool {
1063    if let Type::Id(id) = ty {
1064        is_prim_type_id(resolve, *id)
1065    } else {
1066        true
1067    }
1068}
1069
1070fn is_prim_type_id(resolve: &Resolve, id: TypeId) -> bool {
1071    match &resolve.types[id].kind {
1072        TypeDefKind::List(elem) => is_prim_type(resolve, elem),
1073
1074        TypeDefKind::Option(ty) => is_prim_type(resolve, ty),
1075
1076        TypeDefKind::Tuple(tuple) => tuple.types.iter().all(|ty| is_prim_type(resolve, ty)),
1077
1078        TypeDefKind::Type(ty) => is_prim_type(resolve, ty),
1079
1080        TypeDefKind::Record(_)
1081        | TypeDefKind::Resource
1082        | TypeDefKind::Handle(_)
1083        | TypeDefKind::Flags(_)
1084        | TypeDefKind::Variant(_)
1085        | TypeDefKind::Enum(_)
1086        | TypeDefKind::Result(_)
1087        | TypeDefKind::Future(_)
1088        | TypeDefKind::Stream(_)
1089        | TypeDefKind::Unknown => false,
1090        TypeDefKind::FixedLengthList(..) => todo!(),
1091        TypeDefKind::Map(..) => todo!(),
1092    }
1093}
1094
1095pub fn push_ty_name(resolve: &Resolve, ty: &Type, src: &mut String) {
1096    match ty {
1097        Type::Bool => src.push_str("bool"),
1098        Type::Char => src.push_str("char32"),
1099        Type::U8 => src.push_str("u8"),
1100        Type::S8 => src.push_str("s8"),
1101        Type::U16 => src.push_str("u16"),
1102        Type::S16 => src.push_str("s16"),
1103        Type::U32 => src.push_str("u32"),
1104        Type::S32 => src.push_str("s32"),
1105        Type::U64 => src.push_str("u64"),
1106        Type::S64 => src.push_str("s64"),
1107        Type::F32 => src.push_str("f32"),
1108        Type::F64 => src.push_str("f64"),
1109        Type::String => src.push_str("string"),
1110        Type::ErrorContext => todo!(),
1111        Type::Id(id) => {
1112            let ty = &resolve.types[*id];
1113            if let Some(name) = &ty.name {
1114                return src.push_str(&name.to_snake_case());
1115            }
1116            match &ty.kind {
1117                TypeDefKind::Type(t) => push_ty_name(resolve, t, src),
1118                TypeDefKind::Record(_)
1119                | TypeDefKind::Resource
1120                | TypeDefKind::Flags(_)
1121                | TypeDefKind::Enum(_)
1122                | TypeDefKind::Variant(_) => {
1123                    unimplemented!()
1124                }
1125                TypeDefKind::Tuple(t) => {
1126                    src.push_str("tuple");
1127                    src.push_str(&t.types.len().to_string());
1128                    for ty in t.types.iter() {
1129                        src.push_str("_");
1130                        push_ty_name(resolve, ty, src);
1131                    }
1132                }
1133                TypeDefKind::Option(ty) => {
1134                    src.push_str("option_");
1135                    push_ty_name(resolve, ty, src);
1136                }
1137                TypeDefKind::Result(r) => {
1138                    src.push_str("result_");
1139                    match &r.ok {
1140                        Some(ty) => push_ty_name(resolve, ty, src),
1141                        None => src.push_str("void"),
1142                    }
1143                    src.push_str("_");
1144                    match &r.err {
1145                        Some(ty) => push_ty_name(resolve, ty, src),
1146                        None => src.push_str("void"),
1147                    }
1148                }
1149                TypeDefKind::List(ty) => {
1150                    src.push_str("list_");
1151                    push_ty_name(resolve, ty, src);
1152                }
1153                TypeDefKind::Future(ty) => {
1154                    src.push_str("future_");
1155                    match ty {
1156                        Some(ty) => push_ty_name(resolve, ty, src),
1157                        None => src.push_str("void"),
1158                    }
1159                }
1160                TypeDefKind::Stream(ty) => {
1161                    src.push_str("stream_");
1162                    match ty {
1163                        Some(ty) => push_ty_name(resolve, ty, src),
1164                        None => src.push_str("void"),
1165                    }
1166                }
1167                TypeDefKind::Handle(Handle::Own(resource)) => {
1168                    src.push_str("own_");
1169                    push_ty_name(resolve, &Type::Id(*resource), src);
1170                }
1171                TypeDefKind::Handle(Handle::Borrow(resource)) => {
1172                    src.push_str("borrow_");
1173                    push_ty_name(resolve, &Type::Id(*resource), src);
1174                }
1175                TypeDefKind::Unknown => unreachable!(),
1176                TypeDefKind::FixedLengthList(..) => todo!(),
1177                TypeDefKind::Map(..) => todo!(),
1178            }
1179        }
1180    }
1181}
1182
1183pub fn owner_namespace<'a>(
1184    interface: Option<(InterfaceId, &'a WorldKey)>,
1185    in_import: bool,
1186    world: String,
1187    resolve: &Resolve,
1188    id: TypeId,
1189    renamed_interfaces: &HashMap<WorldKey, String>,
1190) -> String {
1191    let ty = &resolve.types[id];
1192    match (ty.owner, interface) {
1193        // If this type is owned by an interface, then we must be generating
1194        // bindings for that interface to proceed.
1195        (TypeOwner::Interface(a), Some((b, key))) if a == b => {
1196            interface_identifier(key, resolve, !in_import, renamed_interfaces)
1197        }
1198        (TypeOwner::Interface(_), None) => unreachable!(),
1199        (TypeOwner::Interface(_), Some(_)) => unreachable!(),
1200
1201        // If this type is owned by a world then we must not be generating
1202        // bindings for an interface.
1203        (TypeOwner::World(_), None) => world.to_snake_case(),
1204        (TypeOwner::World(_), Some(_)) => unreachable!(),
1205
1206        // If this type has no owner then it's an anonymous type. Here it's
1207        // assigned to whatever we happen to be generating bindings for.
1208        (TypeOwner::None, Some((_, key))) => {
1209            interface_identifier(key, resolve, !in_import, renamed_interfaces)
1210        }
1211        (TypeOwner::None, None) => world.to_snake_case(),
1212    }
1213}
1214
1215fn interface_identifier(
1216    interface_id: &WorldKey,
1217    resolve: &Resolve,
1218    in_export: bool,
1219    renamed_interfaces: &HashMap<WorldKey, String>,
1220) -> String {
1221    if let Some(rename) = renamed_interfaces.get(interface_id) {
1222        let mut ns = String::new();
1223        if in_export && matches!(interface_id, WorldKey::Interface(_)) {
1224            ns.push_str("exports_");
1225        }
1226        ns.push_str(rename);
1227        return ns;
1228    }
1229
1230    match interface_id {
1231        WorldKey::Name(name) => name.to_snake_case(),
1232        WorldKey::Interface(id) => {
1233            let mut ns = String::new();
1234            if in_export {
1235                ns.push_str("exports_");
1236            }
1237            let iface = &resolve.interfaces[*id];
1238            let pkg = &resolve.packages[iface.package.unwrap()];
1239            ns.push_str(&pkg.name.namespace.to_snake_case());
1240            ns.push_str("_");
1241            ns.push_str(&pkg.name.name.to_snake_case());
1242            ns.push_str("_");
1243            let pkg_has_multiple_versions = resolve.packages.iter().any(|(_, p)| {
1244                p.name.namespace == pkg.name.namespace
1245                    && p.name.name == pkg.name.name
1246                    && p.name.version != pkg.name.version
1247            });
1248            if pkg_has_multiple_versions {
1249                if let Some(version) = &pkg.name.version {
1250                    let version = version
1251                        .to_string()
1252                        .replace('.', "_")
1253                        .replace('-', "_")
1254                        .replace('+', "_");
1255                    ns.push_str(&version);
1256                    ns.push_str("_");
1257                }
1258            }
1259            ns.push_str(&iface.name.as_ref().unwrap().to_snake_case());
1260            ns
1261        }
1262    }
1263}
1264
1265pub fn c_func_name(
1266    in_import: bool,
1267    resolve: &Resolve,
1268    world: &str,
1269    interface_id: Option<&WorldKey>,
1270    func: &Function,
1271    renamed_interfaces: &HashMap<WorldKey, String>,
1272) -> String {
1273    let mut name = String::new();
1274    match interface_id {
1275        Some(id) => name.push_str(&interface_identifier(
1276            id,
1277            resolve,
1278            !in_import,
1279            renamed_interfaces,
1280        )),
1281        None => {
1282            if !in_import {
1283                name.push_str("exports_");
1284            }
1285            name.push_str(&world.to_snake_case());
1286        }
1287    }
1288    name.push_str("_");
1289    name.push_str(&func.name.to_snake_case().replace('.', "_"));
1290    name
1291}
1292
1293struct InterfaceGenerator<'a> {
1294    src: Source,
1295    in_import: bool,
1296    r#gen: &'a mut C,
1297    resolve: &'a Resolve,
1298    interface: Option<(InterfaceId, &'a WorldKey)>,
1299    wasm_import_module: Option<&'a str>,
1300}
1301
1302impl C {
1303    fn print_intrinsics(&mut self) {
1304        // Note that these intrinsics are declared as `weak` so they can be
1305        // overridden from some other symbol.
1306        self.src.c_fns("\n// Canonical ABI intrinsics");
1307        self.src.c_fns("\n");
1308        self.src.c_fns(
1309            r#"
1310                __attribute__((__weak__, __export_name__("cabi_realloc")))
1311                void *cabi_realloc(void *ptr, size_t old_size, size_t align, size_t new_size) {
1312                    (void) old_size;
1313                    if (new_size == 0) return (void*) align;
1314                    void *ret = realloc(ptr, new_size);
1315                    if (!ret) abort();
1316                    return ret;
1317                }
1318            "#,
1319        );
1320    }
1321}
1322
1323impl Return {
1324    fn return_single(
1325        &mut self,
1326        resolve: &Resolve,
1327        ty: &Type,
1328        orig_ty: &Type,
1329        sig_flattening: bool,
1330    ) {
1331        let id = match ty {
1332            Type::Id(id) => *id,
1333            Type::String => {
1334                self.retptrs.push(*orig_ty);
1335                return;
1336            }
1337            Type::ErrorContext => todo!("return_single for error-context"),
1338            _ => {
1339                self.scalar = Some(Scalar::Type(*orig_ty));
1340                return;
1341            }
1342        };
1343        match &resolve.types[id].kind {
1344            TypeDefKind::Type(t) => return self.return_single(resolve, t, orig_ty, sig_flattening),
1345
1346            // Flags are returned as their bare values, and enums and handles are scalars
1347            TypeDefKind::Flags(_)
1348            | TypeDefKind::Enum(_)
1349            | TypeDefKind::Handle(_)
1350            | TypeDefKind::Future(_)
1351            | TypeDefKind::Stream(_) => {
1352                self.scalar = Some(Scalar::Type(*orig_ty));
1353                return;
1354            }
1355
1356            // Unpack optional returns where a boolean discriminant is
1357            // returned and then the actual type returned is returned
1358            // through a return pointer.
1359            TypeDefKind::Option(ty) => {
1360                if sig_flattening {
1361                    self.scalar = Some(Scalar::OptionBool(*ty));
1362                    self.retptrs.push(*ty);
1363                    return;
1364                }
1365            }
1366
1367            // Unpack a result as a boolean return type, with two
1368            // return pointers for ok and err values
1369            TypeDefKind::Result(r) => {
1370                if sig_flattening {
1371                    if let Some(ok) = r.ok {
1372                        self.retptrs.push(ok);
1373                    }
1374                    if let Some(err) = r.err {
1375                        self.retptrs.push(err);
1376                    }
1377                    self.scalar = Some(Scalar::ResultBool(r.ok, r.err));
1378                    return;
1379                }
1380            }
1381
1382            // These types are always returned indirectly.
1383            TypeDefKind::Tuple(_)
1384            | TypeDefKind::Record(_)
1385            | TypeDefKind::List(_)
1386            | TypeDefKind::Variant(_) => {}
1387
1388            TypeDefKind::Resource => todo!("return_single for resource"),
1389            TypeDefKind::Unknown => unreachable!(),
1390            TypeDefKind::FixedLengthList(..) => todo!(),
1391            TypeDefKind::Map(..) => todo!(),
1392        }
1393
1394        self.retptrs.push(*orig_ty);
1395    }
1396}
1397
1398impl<'a> wit_bindgen_core::InterfaceGenerator<'a> for InterfaceGenerator<'a> {
1399    fn resolve(&self) -> &'a Resolve {
1400        self.resolve
1401    }
1402
1403    fn type_record(&mut self, id: TypeId, _name: &str, record: &Record, docs: &Docs) {
1404        self.src.h_defs("\n");
1405        self.docs(docs, SourceType::HDefs);
1406        self.start_typedef_struct(id);
1407        for field in record.fields.iter() {
1408            self.docs(&field.docs, SourceType::HDefs);
1409            self.print_ty(SourceType::HDefs, &field.ty);
1410            self.src.h_defs(" ");
1411            self.src.h_defs(&to_c_ident(&field.name));
1412            self.src.h_defs(";\n");
1413        }
1414        self.finish_typedef_struct(id);
1415    }
1416
1417    fn type_resource(&mut self, id: TypeId, name: &str, _docs: &Docs) {
1418        let ns = self.owner_namespace(id);
1419        let snake = name.to_snake_case();
1420        let mut own = ns.clone();
1421        let mut borrow = own.clone();
1422        own.push_str("_own");
1423        borrow.push_str("_borrow");
1424        own.push_str("_");
1425        borrow.push_str("_");
1426        own.push_str(&snake);
1427        borrow.push_str(&snake);
1428        own.push_str("_t");
1429        borrow.push_str("_t");
1430
1431        // All resources, whether or not they're imported or exported, get the
1432        // ability to drop handles.
1433        self.src.h_helpers(&format!(
1434            "
1435extern void {ns}_{snake}_drop_own({own} handle);
1436            "
1437        ));
1438        let import_module = if self.in_import {
1439            self.wasm_import_module.unwrap().to_string()
1440        } else {
1441            let module = match self.interface {
1442                Some((_, key)) => self.resolve.name_world_key(key),
1443                None => unimplemented!("resource exports from worlds"),
1444            };
1445            format!("[export]{module}")
1446        };
1447
1448        let drop_fn = format!("__wasm_import_{ns}_{snake}_drop");
1449
1450        self.src.c_helpers(&format!(
1451            r#"
1452__attribute__((__import_module__("{import_module}"), __import_name__("[resource-drop]{name}")))
1453extern void {drop_fn}(int32_t handle);
1454
1455void {ns}_{snake}_drop_own({own} handle) {{
1456    {drop_fn}(handle.__handle);
1457}}
1458            "#
1459        ));
1460
1461        // All resources, whether or not they're imported or exported, have an
1462        // handle-index-based representation for "own" handles.
1463        self.src.h_defs(&format!(
1464            "\ntypedef struct {own} {{\nint32_t __handle;\n}} {own};\n"
1465        ));
1466
1467        if self.in_import {
1468            // For imported resources borrowed handles are represented the same
1469            // way as owned handles. They're given a unique type, however, to
1470            // prevent type confusion at runtime in theory.
1471            self.src.h_defs(&format!(
1472                "\ntypedef struct {borrow} {{\nint32_t __handle;\n}} {borrow};\n"
1473            ));
1474
1475            // Explicit borrow dropping is not required if autodrop is enabled.
1476            if !self.autodrop_enabled() {
1477                // As we have two different types for owned vs borrowed resources,
1478                // but owns and borrows are dropped using the same intrinsic we
1479                // also generate a version of the drop function for borrows that we
1480                // possibly acquire through our exports.
1481                self.src.h_helpers(&format!(
1482                    "\nextern void {ns}_{snake}_drop_borrow({borrow} handle);\n"
1483                ));
1484
1485                self.src.c_helpers(&format!(
1486                    "
1487void {ns}_{snake}_drop_borrow({borrow} handle) {{
1488    __wasm_import_{ns}_{snake}_drop(handle.__handle);
1489}}
1490                "
1491                ));
1492            }
1493
1494            // To handle the two types generated for borrow/own this helper
1495            // function enables converting an own handle to a borrow handle
1496            // which will have the same index internally.
1497            self.src.h_helpers(&format!(
1498                "
1499extern {borrow} {ns}_borrow_{snake}({own} handle);
1500                "
1501            ));
1502
1503            self.src.c_helpers(&format!(
1504                r#"
1505{borrow} {ns}_borrow_{snake}({own} arg) {{
1506    return ({borrow}) {{ arg.__handle }};
1507}}
1508                "#
1509            ));
1510        } else {
1511            // For exported resources first generate a typedef that the user
1512            // will be required to fill in. This is an empty struct.
1513            self.src.h_defs("\n");
1514            self.src.h_defs("typedef struct ");
1515            let ty_name = self.r#gen.type_names[&id].clone();
1516            self.src.h_defs(&ty_name);
1517            self.src.h_defs(" ");
1518            self.print_typedef_target(id);
1519            let (_, key) = self.interface.unwrap();
1520            let module = self.resolve.name_world_key(key);
1521
1522            // Exported resources use a different representation than imports
1523            // for borrows which is a raw pointer to the struct declared just
1524            // above.
1525            self.src
1526                .h_defs(&format!("\ntypedef {ty_name}* {borrow};\n"));
1527
1528            // Exported resources are defined by this module which means they
1529            // get access to more intrinsics:
1530            //
1531            // * construction of a resource (rep to handle)
1532            // * extraction of the representation of a resource (handle to rep)
1533            //
1534            // Additionally users must define a destructor for this resource, so
1535            // declare its prototype here.
1536            self.src.h_helpers(&format!(
1537                "
1538extern {own} {ns}_{snake}_new({ty_name} *rep);
1539extern {ty_name}* {ns}_{snake}_rep({own} handle);
1540void {ns}_{snake}_destructor({ty_name} *rep);
1541                "
1542            ));
1543
1544            self.src.c_helpers(&format!(
1545                r#"
1546__attribute__(( __import_module__("[export]{module}"), __import_name__("[resource-new]{name}")))
1547extern int32_t __wasm_import_{ns}_{snake}_new(int32_t);
1548
1549__attribute__((__import_module__("[export]{module}"), __import_name__("[resource-rep]{name}")))
1550extern int32_t __wasm_import_{ns}_{snake}_rep(int32_t);
1551
1552{own} {ns}_{snake}_new({ty_name} *rep) {{
1553    return ({own}) {{ __wasm_import_{ns}_{snake}_new((int32_t) rep) }};
1554}}
1555
1556{ty_name}* {ns}_{snake}_rep({own} handle) {{
1557    return ({ns}_{snake}_t*) __wasm_import_{ns}_{snake}_rep(handle.__handle);
1558}}
1559
1560__attribute__((__export_name__("{module}#[dtor]{snake}")))
1561void __wasm_export_{ns}_{snake}_dtor({ns}_{snake}_t* arg) {{
1562    {ns}_{snake}_destructor(arg);
1563}}
1564                "#
1565            ));
1566        }
1567
1568        self.r#gen.resources.insert(
1569            id,
1570            ResourceInfo {
1571                own,
1572                borrow,
1573                direction: if self.in_import {
1574                    Direction::Import
1575                } else {
1576                    Direction::Export
1577                },
1578                drop_fn,
1579            },
1580        );
1581    }
1582
1583    fn type_tuple(&mut self, id: TypeId, _name: &str, tuple: &Tuple, docs: &Docs) {
1584        self.src.h_defs("\n");
1585        self.docs(docs, SourceType::HDefs);
1586        self.start_typedef_struct(id);
1587        for (i, ty) in tuple.types.iter().enumerate() {
1588            self.print_ty(SourceType::HDefs, ty);
1589            uwriteln!(self.src.h_defs, " f{i};");
1590        }
1591        self.finish_typedef_struct(id);
1592    }
1593
1594    fn type_flags(&mut self, id: TypeId, name: &str, flags: &Flags, docs: &Docs) {
1595        self.src.h_defs("\n");
1596        self.docs(docs, SourceType::HDefs);
1597        self.src.h_defs("typedef ");
1598        let repr = flags_repr(flags);
1599        self.src.h_defs(int_repr(repr));
1600        self.src.h_defs(" ");
1601        self.print_typedef_target(id);
1602
1603        if flags.flags.len() > 0 {
1604            self.src.h_defs("\n");
1605        }
1606        let ns = self.owner_namespace(id).to_shouty_snake_case();
1607        for (i, flag) in flags.flags.iter().enumerate() {
1608            self.docs(&flag.docs, SourceType::HDefs);
1609            uwriteln!(
1610                self.src.h_defs,
1611                "#define {ns}_{}_{} (1 << {i})",
1612                name.to_shouty_snake_case(),
1613                flag.name.to_shouty_snake_case(),
1614            );
1615        }
1616    }
1617
1618    fn type_variant(&mut self, id: TypeId, name: &str, variant: &Variant, docs: &Docs) {
1619        self.src.h_defs("\n");
1620        self.docs(docs, SourceType::HDefs);
1621        self.start_typedef_struct(id);
1622        self.src.h_defs(int_repr(variant.tag()));
1623        self.src.h_defs(" tag;\n");
1624
1625        let cases_with_data = Vec::from_iter(
1626            variant
1627                .cases
1628                .iter()
1629                .filter_map(|case| case.ty.as_ref().map(|ty| (&case.name, ty))),
1630        );
1631
1632        if !cases_with_data.is_empty() {
1633            self.src.h_defs("union {\n");
1634            for (name, ty) in cases_with_data {
1635                self.print_ty(SourceType::HDefs, ty);
1636                self.src.h_defs(" ");
1637                self.src.h_defs(&to_c_ident(name));
1638                self.src.h_defs(";\n");
1639            }
1640            self.src.h_defs("} val;\n");
1641        }
1642        self.finish_typedef_struct(id);
1643
1644        if variant.cases.len() > 0 {
1645            self.src.h_defs("\n");
1646        }
1647        let ns = self.owner_namespace(id).to_shouty_snake_case();
1648        for (i, case) in variant.cases.iter().enumerate() {
1649            self.docs(&case.docs, SourceType::HDefs);
1650            uwriteln!(
1651                self.src.h_defs,
1652                "#define {ns}_{}_{} {i}",
1653                name.to_shouty_snake_case(),
1654                case.name.to_shouty_snake_case(),
1655            );
1656        }
1657    }
1658
1659    fn type_option(&mut self, id: TypeId, _name: &str, payload: &Type, docs: &Docs) {
1660        self.src.h_defs("\n");
1661        self.docs(docs, SourceType::HDefs);
1662        self.start_typedef_struct(id);
1663        self.src.h_defs("bool is_some;\n");
1664        self.print_ty(SourceType::HDefs, payload);
1665        self.src.h_defs(" val;\n");
1666        self.finish_typedef_struct(id);
1667    }
1668
1669    fn type_result(&mut self, id: TypeId, _name: &str, result: &Result_, docs: &Docs) {
1670        self.src.h_defs("\n");
1671        self.docs(docs, SourceType::HDefs);
1672        self.start_typedef_struct(id);
1673        self.src.h_defs("bool is_err;\n");
1674        if result.ok.is_some() || result.err.is_some() {
1675            self.src.h_defs("union {\n");
1676            if let Some(ok) = result.ok.as_ref() {
1677                self.print_ty(SourceType::HDefs, ok);
1678                self.src.h_defs(" ok;\n");
1679            }
1680            if let Some(err) = result.err.as_ref() {
1681                self.print_ty(SourceType::HDefs, err);
1682                self.src.h_defs(" err;\n");
1683            }
1684            self.src.h_defs("} val;\n");
1685        }
1686        self.finish_typedef_struct(id);
1687    }
1688
1689    fn type_enum(&mut self, id: TypeId, name: &str, enum_: &Enum, docs: &Docs) {
1690        uwrite!(self.src.h_defs, "\n");
1691        self.docs(docs, SourceType::HDefs);
1692        let int_t = int_repr(enum_.tag());
1693        uwrite!(self.src.h_defs, "typedef {int_t} ");
1694        self.print_typedef_target(id);
1695
1696        if enum_.cases.len() > 0 {
1697            self.src.h_defs("\n");
1698        }
1699        let ns = self.owner_namespace(id).to_shouty_snake_case();
1700        for (i, case) in enum_.cases.iter().enumerate() {
1701            self.docs(&case.docs, SourceType::HDefs);
1702            uwriteln!(
1703                self.src.h_defs,
1704                "#define {ns}_{}_{} {i}",
1705                name.to_shouty_snake_case(),
1706                case.name.to_shouty_snake_case(),
1707            );
1708        }
1709    }
1710
1711    fn type_alias(&mut self, id: TypeId, _name: &str, ty: &Type, docs: &Docs) {
1712        // we should skip generating `typedef` for `Resource` types because they aren't even
1713        // defined anywhere, not even in `type_resource`. Only its `Handle` types are defined.
1714        // The aliasing handle types are defined in `define_anonymous_type`.
1715        let target = dealias(self.resolve, id);
1716        if matches!(&self.resolve.types[target].kind, TypeDefKind::Resource) {
1717            return;
1718        }
1719
1720        self.src.h_defs("\n");
1721        self.docs(docs, SourceType::HDefs);
1722        self.src.h_defs("typedef ");
1723        self.print_ty(SourceType::HDefs, ty);
1724        self.src.h_defs(" ");
1725        self.print_typedef_target(id);
1726    }
1727
1728    fn type_list(&mut self, id: TypeId, _name: &str, ty: &Type, docs: &Docs) {
1729        self.src.h_defs("\n");
1730        self.docs(docs, SourceType::HDefs);
1731        self.start_typedef_struct(id);
1732        self.print_ty(SourceType::HDefs, ty);
1733        self.src.h_defs(" *ptr;\n");
1734        self.src.h_defs("size_t len;\n");
1735        self.finish_typedef_struct(id);
1736    }
1737
1738    fn type_future(&mut self, id: TypeId, _name: &str, _ty: &Option<Type>, docs: &Docs) {
1739        self.src.h_defs("\n");
1740        self.docs(docs, SourceType::HDefs);
1741        self.src.h_defs("\ntypedef uint32_t ");
1742        self.print_typedef_target(id);
1743    }
1744
1745    fn type_stream(&mut self, id: TypeId, _name: &str, _ty: &Option<Type>, docs: &Docs) {
1746        self.src.h_defs("\n");
1747        self.docs(docs, SourceType::HDefs);
1748        self.src.h_defs("\ntypedef uint32_t ");
1749        self.print_typedef_target(id);
1750    }
1751
1752    fn type_builtin(&mut self, id: TypeId, name: &str, ty: &Type, docs: &Docs) {
1753        let _ = (id, name, ty, docs);
1754    }
1755}
1756
1757impl<'a> wit_bindgen_core::AnonymousTypeGenerator<'a> for InterfaceGenerator<'a> {
1758    fn resolve(&self) -> &'a Resolve {
1759        self.resolve
1760    }
1761
1762    fn anonymous_type_handle(&mut self, id: TypeId, handle: &Handle, _docs: &Docs) {
1763        self.src.h_defs("\ntypedef ");
1764        let resource = match handle {
1765            Handle::Borrow(id) | Handle::Own(id) => id,
1766        };
1767        let info = &self.r#gen.resources[&dealias(self.resolve, *resource)];
1768        match handle {
1769            Handle::Borrow(_) => self.src.h_defs(&info.borrow),
1770            Handle::Own(_) => self.src.h_defs(&info.own),
1771        }
1772        self.src.h_defs(" ");
1773        self.print_typedef_target(id);
1774    }
1775
1776    fn anonymous_type_tuple(&mut self, id: TypeId, ty: &Tuple, _docs: &Docs) {
1777        self.src.h_defs("\ntypedef ");
1778        self.src.h_defs("struct {\n");
1779        for (i, t) in ty.types.iter().enumerate() {
1780            let ty = self.r#gen.type_name(t);
1781            uwriteln!(self.src.h_defs, "{ty} f{i};");
1782        }
1783        self.src.h_defs("}");
1784        self.src.h_defs(" ");
1785        self.print_typedef_target(id);
1786    }
1787
1788    fn anonymous_type_option(&mut self, id: TypeId, ty: &Type, _docs: &Docs) {
1789        self.src.h_defs("\ntypedef ");
1790        self.src.h_defs("struct {\n");
1791        self.src.h_defs("bool is_some;\n");
1792        let ty = self.r#gen.type_name(ty);
1793        uwriteln!(self.src.h_defs, "{ty} val;");
1794        self.src.h_defs("}");
1795        self.src.h_defs(" ");
1796        self.print_typedef_target(id);
1797    }
1798
1799    fn anonymous_type_result(&mut self, id: TypeId, ty: &Result_, _docs: &Docs) {
1800        self.src.h_defs("\ntypedef ");
1801        self.src.h_defs(
1802            "struct {
1803                bool is_err;
1804            ",
1805        );
1806        let ok_ty = ty.ok.as_ref();
1807        let err_ty = ty.err.as_ref();
1808        if ok_ty.is_some() || err_ty.is_some() {
1809            self.src.h_defs("union {\n");
1810            if let Some(ok) = ok_ty {
1811                let ty = self.r#gen.type_name(ok);
1812                uwriteln!(self.src.h_defs, "{ty} ok;");
1813            }
1814            if let Some(err) = err_ty {
1815                let ty = self.r#gen.type_name(err);
1816                uwriteln!(self.src.h_defs, "{ty} err;");
1817            }
1818            self.src.h_defs("} val;\n");
1819        }
1820        self.src.h_defs("}");
1821        self.src.h_defs(" ");
1822        self.print_typedef_target(id);
1823    }
1824
1825    fn anonymous_type_list(&mut self, id: TypeId, ty: &Type, _docs: &Docs) {
1826        self.src.h_defs("\ntypedef ");
1827        self.src.h_defs("struct {\n");
1828        let ty = self.r#gen.type_name(ty);
1829        uwriteln!(self.src.h_defs, "{ty} *ptr;");
1830        self.src.h_defs("size_t len;\n");
1831        self.src.h_defs("}");
1832        self.src.h_defs(" ");
1833        self.print_typedef_target(id);
1834    }
1835
1836    fn anonymous_type_future(&mut self, id: TypeId, _ty: &Option<Type>, _docs: &Docs) {
1837        self.src.h_defs("\ntypedef uint32_t ");
1838        self.print_typedef_target(id);
1839    }
1840
1841    fn anonymous_type_stream(&mut self, id: TypeId, _ty: &Option<Type>, _docs: &Docs) {
1842        self.src.h_defs("\ntypedef uint32_t ");
1843        self.print_typedef_target(id);
1844    }
1845
1846    fn anonymous_type_type(&mut self, _id: TypeId, _ty: &Type, _docs: &Docs) {
1847        todo!("print_anonymous_type for type");
1848    }
1849
1850    fn anonymous_type_fixed_length_list(
1851        &mut self,
1852        _id: TypeId,
1853        _ty: &Type,
1854        _size: u32,
1855        _docs: &Docs,
1856    ) {
1857        todo!("print_anonymous_type for fixed length list");
1858    }
1859}
1860
1861pub enum CTypeNameInfo<'a> {
1862    Named { name: &'a str },
1863    Anonymous { is_prim: bool },
1864}
1865
1866/// Generate the type part of a c identifier, missing the namespace and the `_t` suffix.
1867/// Additionally return a `CTypeNameInfo` that describes what sort of name has been produced.
1868pub fn gen_type_name(resolve: &Resolve, ty: TypeId) -> (CTypeNameInfo<'_>, String) {
1869    let mut encoded = String::new();
1870    push_ty_name(resolve, &Type::Id(ty), &mut encoded);
1871    let info = if let Some(name) = &resolve.types[ty].name {
1872        CTypeNameInfo::Named {
1873            name: name.as_ref(),
1874        }
1875    } else {
1876        CTypeNameInfo::Anonymous {
1877            is_prim: is_prim_type_id(resolve, ty),
1878        }
1879    };
1880
1881    (info, encoded)
1882}
1883
1884impl InterfaceGenerator<'_> {
1885    fn define_interface_types(&mut self, id: InterfaceId) {
1886        let mut live = LiveTypes::default();
1887        live.add_interface(self.resolve, id);
1888        self.define_live_types(live);
1889    }
1890
1891    fn define_function_types(&mut self, funcs: &[(&str, &Function)]) {
1892        let mut live = LiveTypes::default();
1893        for (_, func) in funcs {
1894            live.add_func(self.resolve, func);
1895        }
1896        self.define_live_types(live);
1897    }
1898
1899    fn define_live_types(&mut self, live: LiveTypes) {
1900        for ty in live.iter() {
1901            if self.r#gen.type_names.contains_key(&ty) {
1902                continue;
1903            }
1904
1905            let (info, encoded) = gen_type_name(&self.resolve, ty);
1906            match info {
1907                CTypeNameInfo::Named { name } => {
1908                    let typedef_name = format!("{}_{encoded}_t", self.owner_namespace(ty));
1909                    let prev = self.r#gen.type_names.insert(ty, typedef_name.clone());
1910                    assert!(prev.is_none());
1911
1912                    self.define_type(name, ty)
1913                }
1914
1915                CTypeNameInfo::Anonymous { is_prim } => {
1916                    let (defined, name) = if is_prim {
1917                        let namespace = self.r#gen.world.to_snake_case();
1918                        let name = format!("{namespace}_{encoded}_t");
1919                        let new_prim = self.r#gen.prim_names.insert(name.clone());
1920                        (!new_prim, name)
1921                    } else {
1922                        let namespace = self.owner_namespace(ty);
1923                        (false, format!("{namespace}_{encoded}_t"))
1924                    };
1925
1926                    let prev = self.r#gen.type_names.insert(ty, name);
1927                    assert!(prev.is_none());
1928
1929                    if defined {
1930                        continue;
1931                    }
1932
1933                    let kind = &self.resolve.types[ty].kind;
1934                    if let TypeDefKind::Handle(handle) = kind {
1935                        let resource = match handle {
1936                            Handle::Borrow(id) | Handle::Own(id) => id,
1937                        };
1938                        let origin = dealias(self.resolve, *resource);
1939                        if origin == *resource {
1940                            continue;
1941                        }
1942                    }
1943
1944                    self.define_anonymous_type(ty)
1945                }
1946            }
1947
1948            self.define_dtor(ty);
1949        }
1950    }
1951
1952    fn define_dtor(&mut self, id: TypeId) {
1953        let h_helpers_start = self.src.h_helpers.len();
1954        let c_helpers_start = self.src.c_helpers.len();
1955
1956        let name = self.r#gen.type_names[&id].clone();
1957        let prefix = name.strip_suffix("_t").unwrap();
1958
1959        self.src
1960            .h_helpers(&format!("\nvoid {prefix}_free({name} *ptr);\n"));
1961        self.src
1962            .c_helpers(&format!("\nvoid {prefix}_free({name} *ptr) {{\n"));
1963        let c_helpers_body_start = self.src.c_helpers.len();
1964        match &self.resolve.types[id].kind {
1965            TypeDefKind::Type(t) => self.free(t, "ptr"),
1966
1967            TypeDefKind::Flags(_) => {}
1968            TypeDefKind::Enum(_) => {}
1969
1970            TypeDefKind::Record(r) => {
1971                for field in r.fields.iter() {
1972                    self.free(&field.ty, &format!("&ptr->{}", to_c_ident(&field.name)));
1973                }
1974            }
1975
1976            TypeDefKind::Tuple(t) => {
1977                for (i, ty) in t.types.iter().enumerate() {
1978                    self.free(ty, &format!("&ptr->f{i}"));
1979                }
1980            }
1981
1982            TypeDefKind::List(t) => {
1983                self.src.c_helpers("size_t list_len = ptr->len;\n");
1984                uwriteln!(self.src.c_helpers, "if (list_len > 0) {{");
1985                let mut t_name = String::new();
1986                self.r#gen.push_type_name(t, &mut t_name);
1987                self.src
1988                    .c_helpers(&format!("{t_name} *list_ptr = ptr->ptr;\n"));
1989                self.src
1990                    .c_helpers("for (size_t i = 0; i < list_len; i++) {\n");
1991                self.free(t, "&list_ptr[i]");
1992                self.src.c_helpers("}\n");
1993                uwriteln!(self.src.c_helpers, "free(list_ptr);");
1994                uwriteln!(self.src.c_helpers, "}}");
1995            }
1996
1997            TypeDefKind::Variant(v) => {
1998                self.src.c_helpers("switch ((int32_t) ptr->tag) {\n");
1999                for (i, case) in v.cases.iter().enumerate() {
2000                    if let Some(ty) = &case.ty {
2001                        uwriteln!(self.src.c_helpers, "case {}: {{", i);
2002                        let expr = format!("&ptr->val.{}", to_c_ident(&case.name));
2003                        self.free(ty, &expr);
2004                        self.src.c_helpers("break;\n");
2005                        self.src.c_helpers("}\n");
2006                    }
2007                }
2008                self.src.c_helpers("}\n");
2009            }
2010
2011            TypeDefKind::Option(t) => {
2012                self.src.c_helpers("if (ptr->is_some) {\n");
2013                self.free(t, "&ptr->val");
2014                self.src.c_helpers("}\n");
2015            }
2016
2017            TypeDefKind::Result(r) => {
2018                self.src.c_helpers("if (!ptr->is_err) {\n");
2019                if let Some(ok) = &r.ok {
2020                    self.free(ok, "&ptr->val.ok");
2021                }
2022                if let Some(err) = &r.err {
2023                    self.src.c_helpers("} else {\n");
2024                    self.free(err, "&ptr->val.err");
2025                }
2026                self.src.c_helpers("}\n");
2027            }
2028            TypeDefKind::Future(_) | TypeDefKind::Stream(_) => {
2029                self.free(&Type::Id(id), "*ptr");
2030            }
2031            TypeDefKind::Resource => {}
2032            TypeDefKind::Handle(Handle::Borrow(id) | Handle::Own(id)) => {
2033                self.free(&Type::Id(*id), "*ptr");
2034            }
2035            TypeDefKind::Unknown => unreachable!(),
2036            TypeDefKind::FixedLengthList(..) => todo!(),
2037            TypeDefKind::Map(..) => todo!(),
2038        }
2039        if c_helpers_body_start == self.src.c_helpers.len() {
2040            self.src.c_helpers.as_mut_string().truncate(c_helpers_start);
2041            self.src.h_helpers.as_mut_string().truncate(h_helpers_start);
2042            return;
2043        }
2044        self.src.c_helpers("}\n");
2045        self.r#gen.dtor_funcs.insert(id, format!("{prefix}_free"));
2046    }
2047
2048    fn free(&mut self, ty: &Type, expr: &str) {
2049        match ty {
2050            Type::Id(id) => {
2051                if let Some(dtor) = self.r#gen.dtor_funcs.get(&id) {
2052                    self.src.c_helpers(&format!("{dtor}({expr});\n"));
2053                }
2054            }
2055            Type::String => {
2056                let snake = self.r#gen.world.to_snake_case();
2057                self.src
2058                    .c_helpers(&format!("{snake}_string_free({expr});\n"));
2059            }
2060            Type::Bool
2061            | Type::U8
2062            | Type::S8
2063            | Type::U16
2064            | Type::S16
2065            | Type::U32
2066            | Type::S32
2067            | Type::U64
2068            | Type::S64
2069            | Type::F32
2070            | Type::F64
2071            | Type::Char => {}
2072            Type::ErrorContext => todo!("error context free"),
2073        }
2074    }
2075
2076    fn c_func_name(&self, interface_id: Option<&WorldKey>, func: &Function) -> String {
2077        c_func_name(
2078            self.in_import,
2079            self.resolve,
2080            &self.r#gen.world,
2081            interface_id,
2082            func,
2083            &self.r#gen.renamed_interfaces,
2084        )
2085    }
2086
2087    fn import(&mut self, interface_name: Option<&WorldKey>, func: &Function) {
2088        let async_ = self
2089            .r#gen
2090            .opts
2091            .async_
2092            .is_async(self.resolve, interface_name, func, true);
2093        if async_ {
2094            self.r#gen.needs_async = true;
2095        }
2096
2097        self.docs(&func.docs, SourceType::HFns);
2098        let (variant, import_prefix) = if async_ {
2099            (AbiVariant::GuestImportAsync, "[async-lower]")
2100        } else {
2101            (AbiVariant::GuestImport, "")
2102        };
2103        let sig = self.resolve.wasm_signature(variant, func);
2104
2105        self.src.c_fns("\n");
2106
2107        // In the private C file, print a function declaration which is the
2108        // actual wasm import that we'll be calling, and this has the raw wasm
2109        // signature.
2110        uwriteln!(
2111            self.src.c_fns,
2112            "__attribute__((__import_module__(\"{}\"), __import_name__(\"{import_prefix}{}\")))",
2113            match interface_name {
2114                Some(name) => self.resolve.name_world_key(name),
2115                None => "$root".to_string(),
2116            },
2117            func.name
2118        );
2119        let name = self.c_func_name(interface_name, func);
2120        let import_name = self.r#gen.names.tmp(&format!("__wasm_import_{name}",));
2121        self.src.c_fns("extern ");
2122        match sig.results.len() {
2123            0 => self.src.c_fns("void"),
2124            1 => self.src.c_fns(wasm_type(sig.results[0])),
2125            _ => unimplemented!("multi-value return not supported"),
2126        }
2127        self.src.c_fns(" ");
2128        self.src.c_fns(&import_name);
2129        self.src.c_fns("(");
2130        for (i, param) in sig.params.iter().enumerate() {
2131            if i > 0 {
2132                self.src.c_fns(", ");
2133            }
2134            self.src.c_fns(wasm_type(*param));
2135        }
2136        if sig.params.len() == 0 {
2137            self.src.c_fns("void");
2138        }
2139        self.src.c_fns(");\n");
2140
2141        // Print the public facing signature into the header, and since that's
2142        // what we are defining also print it into the C file.
2143        self.src.h_fns("extern ");
2144        let c_sig = self.print_sig(interface_name, func, &sig, async_);
2145        self.src.c_adapters("\n");
2146        self.src.c_adapters(&c_sig.sig);
2147        self.src.c_adapters(" {\n");
2148
2149        if async_ {
2150            self.import_body_async(func, c_sig, &sig, &import_name);
2151        } else {
2152            self.import_body_sync(func, c_sig, &import_name);
2153        }
2154
2155        self.src.c_adapters("}\n");
2156
2157        self.generate_async_futures_and_streams("", func, interface_name);
2158    }
2159
2160    fn import_body_sync(&mut self, func: &Function, c_sig: CSig, import_name: &str) {
2161        // construct optional adapters from maybe pointers to real optional
2162        // structs internally
2163        let mut optional_adapters = String::from("");
2164        if !self.r#gen.opts.no_sig_flattening {
2165            for (i, (_, param)) in c_sig.params.iter().enumerate() {
2166                let ty = &func.params[i].ty;
2167                if let Type::Id(id) = ty {
2168                    if let TypeDefKind::Option(_) = &self.resolve.types[*id].kind {
2169                        let ty = self.r#gen.type_name(ty);
2170                        uwrite!(
2171                            optional_adapters,
2172                            "{ty} {param};
2173                            {param}.is_some = maybe_{param} != NULL;"
2174                        );
2175                        uwriteln!(
2176                            optional_adapters,
2177                            "if (maybe_{param}) {{
2178                                {param}.val = *maybe_{param};
2179                            }}",
2180                        );
2181                    }
2182                }
2183            }
2184        }
2185
2186        let mut f = FunctionBindgen::new(self, c_sig, &import_name);
2187        for (pointer, param) in f.sig.params.iter() {
2188            if *pointer {
2189                f.params.push(format!("*{param}"));
2190            } else {
2191                f.params.push(param.clone());
2192            }
2193        }
2194        for ptr in f.sig.retptrs.iter() {
2195            f.locals.insert(ptr).unwrap();
2196        }
2197        f.src.push_str(&optional_adapters);
2198        abi::call(
2199            f.r#gen.resolve,
2200            AbiVariant::GuestImport,
2201            LiftLower::LowerArgsLiftResults,
2202            func,
2203            &mut f,
2204            false,
2205        );
2206
2207        let FunctionBindgen {
2208            src,
2209            import_return_pointer_area_size,
2210            import_return_pointer_area_align,
2211            ..
2212        } = f;
2213
2214        if !import_return_pointer_area_size.is_empty() {
2215            self.src.c_adapters(&format!(
2216                "\
2217                    __attribute__((__aligned__({})))
2218                    uint8_t ret_area[{}];
2219                ",
2220                import_return_pointer_area_align.format(POINTER_SIZE_EXPRESSION),
2221                import_return_pointer_area_size.format(POINTER_SIZE_EXPRESSION),
2222            ));
2223        }
2224
2225        self.src.c_adapters(&String::from(src));
2226    }
2227
2228    fn import_body_async(
2229        &mut self,
2230        func: &Function,
2231        c_sig: CSig,
2232        wasm_sig: &WasmSignature,
2233        import_name: &str,
2234    ) {
2235        let mut params = Vec::new();
2236        if wasm_sig.indirect_params {
2237            params.push(format!("(uint8_t*) {}", c_sig.params[0].1));
2238        } else {
2239            let mut f = FunctionBindgen::new(self, c_sig.clone(), "INVALID");
2240            for (i, Param { ty, .. }) in func.params.iter().enumerate() {
2241                let param = &c_sig.params[i].1;
2242                params.extend(abi::lower_flat(f.r#gen.resolve, &mut f, param.clone(), ty));
2243            }
2244            f.r#gen.src.c_adapters.push_str(&f.src);
2245        }
2246        if func.result.is_some() {
2247            params.push(format!("(uint8_t*) {}", c_sig.params.last().unwrap().1));
2248        }
2249        uwriteln!(
2250            self.src.c_adapters,
2251            "return {import_name}({});",
2252            params.join(", "),
2253        );
2254    }
2255
2256    fn export(&mut self, func: &Function, interface_name: Option<&WorldKey>) {
2257        let async_ = self
2258            .r#gen
2259            .opts
2260            .async_
2261            .is_async(self.resolve, interface_name, func, false);
2262
2263        let (variant, prefix) = if async_ {
2264            self.r#gen.needs_async = true;
2265            (AbiVariant::GuestExportAsync, "[async-lift]")
2266        } else {
2267            (AbiVariant::GuestExport, "")
2268        };
2269
2270        let sig = self.resolve.wasm_signature(variant, func);
2271
2272        self.src.c_fns("\n");
2273
2274        let core_module_name = interface_name.map(|s| self.resolve.name_world_key(s));
2275        let export_name = func.legacy_core_export_name(core_module_name.as_deref());
2276
2277        // Print the actual header for this function into the header file, and
2278        // it's what we'll be calling.
2279        let h_sig = self.print_sig(interface_name, func, &sig, async_);
2280
2281        // Generate, in the C source file, the raw wasm signature that has the
2282        // canonical ABI.
2283        uwriteln!(
2284            self.src.c_adapters,
2285            "\n__attribute__((__export_name__(\"{prefix}{export_name}\")))"
2286        );
2287        let name = self.c_func_name(interface_name, func);
2288        let import_name = self.r#gen.names.tmp(&format!("__wasm_export_{name}"));
2289
2290        let mut f = FunctionBindgen::new(self, h_sig, &import_name);
2291        match sig.results.len() {
2292            0 => f.r#gen.src.c_adapters("void"),
2293            1 => f.r#gen.src.c_adapters(wasm_type(sig.results[0])),
2294            _ => unimplemented!("multi-value return not supported"),
2295        }
2296        f.r#gen.src.c_adapters(" ");
2297        f.r#gen.src.c_adapters(&import_name);
2298        f.r#gen.src.c_adapters("(");
2299        for (i, param) in sig.params.iter().enumerate() {
2300            if i > 0 {
2301                f.r#gen.src.c_adapters(", ");
2302            }
2303            let name = f.locals.tmp("arg");
2304            uwrite!(f.r#gen.src.c_adapters, "{} {}", wasm_type(*param), name);
2305            f.params.push(name);
2306        }
2307        if sig.params.len() == 0 {
2308            f.r#gen.src.c_adapters("void");
2309        }
2310        f.r#gen.src.c_adapters(") {\n");
2311
2312        // Perform all lifting/lowering and append it to our src.
2313        abi::call(
2314            f.r#gen.resolve,
2315            variant,
2316            LiftLower::LiftArgsLowerResults,
2317            func,
2318            &mut f,
2319            async_,
2320        );
2321        let FunctionBindgen {
2322            src,
2323            deferred_task_return,
2324            ..
2325        } = f;
2326        self.src.c_adapters(&src);
2327        self.src.c_adapters("}\n");
2328
2329        if async_ {
2330            let snake = self.r#gen.world.to_snake_case();
2331            let return_ty = match &func.result {
2332                Some(ty) => format!("{} ret", self.r#gen.type_name(ty)),
2333                None => "void".to_string(),
2334            };
2335            let DeferredTaskReturn::Emitted {
2336                body: mut task_return_body,
2337                name: task_return_name,
2338                params: task_return_params,
2339            } = deferred_task_return
2340            else {
2341                unreachable!()
2342            };
2343            let task_return_param_tys = task_return_params
2344                .iter()
2345                .map(|(ty, _expr)| wasm_type(*ty))
2346                .collect::<Vec<_>>()
2347                .join(", ");
2348            let task_return_param_exprs = task_return_params
2349                .iter()
2350                .map(|(_ty, expr)| expr.as_str())
2351                .collect::<Vec<_>>()
2352                .join(", ");
2353            let task_return_body = task_return_body.as_mut_string();
2354            uwriteln!(
2355                self.src.h_fns,
2356                "{snake}_callback_code_t {name}_callback({snake}_event_t *event);",
2357            );
2358            uwriteln!(self.src.h_helpers, "void {name}_return({return_ty});");
2359            let import_module = match interface_name {
2360                Some(name) => self.resolve.name_world_key(name),
2361                None => "$root".to_string(),
2362            };
2363            uwriteln!(
2364                self.src.c_helpers,
2365                r#"
2366__attribute__((__export_name__("[callback]{prefix}{export_name}")))
2367uint32_t {import_name}_callback(uint32_t event_raw, uint32_t waitable, uint32_t code) {{
2368    {snake}_event_t event;
2369    event.event = ({snake}_event_code_t) event_raw;
2370    event.waitable = waitable;
2371    event.code = code;
2372    return {name}_callback(&event);
2373}}
2374
2375__attribute__((__import_module__("[export]{import_module}"), __import_name__("{task_return_name}")))
2376void {import_name}__task_return({task_return_param_tys});
2377
2378void {name}_return({return_ty}) {{
2379    {task_return_body}
2380    {import_name}__task_return({task_return_param_exprs});
2381}}
2382                "#
2383            );
2384        } else if abi::guest_export_needs_post_return(self.resolve, func) {
2385            uwriteln!(
2386                self.src.c_fns,
2387                "__attribute__((__weak__, __export_name__(\"cabi_post_{export_name}\")))"
2388            );
2389            uwrite!(self.src.c_fns, "void {import_name}_post_return(");
2390
2391            let mut params = Vec::new();
2392            let mut c_sig = CSig {
2393                name: String::from("INVALID"),
2394                sig: String::from("INVALID"),
2395                params: Vec::new(),
2396                ret: Return::default(),
2397                retptrs: Vec::new(),
2398            };
2399            for (i, result) in sig.results.iter().enumerate() {
2400                let name = format!("arg{i}");
2401                uwrite!(self.src.c_fns, "{} {name}", wasm_type(*result));
2402                c_sig.params.push((false, name.clone()));
2403                params.push(name);
2404            }
2405            self.src.c_fns.push_str(") {\n");
2406
2407            let mut f = FunctionBindgen::new(self, c_sig, &import_name);
2408            f.params = params;
2409            abi::post_return(f.r#gen.resolve, func, &mut f);
2410            let FunctionBindgen { src, .. } = f;
2411            self.src.c_fns(&src);
2412            self.src.c_fns("}\n");
2413        }
2414
2415        self.generate_async_futures_and_streams("[export]", func, interface_name);
2416    }
2417
2418    fn print_sig(
2419        &mut self,
2420        interface_name: Option<&WorldKey>,
2421        func: &Function,
2422        sig: &WasmSignature,
2423        async_: bool,
2424    ) -> CSig {
2425        let name = self.c_func_name(interface_name, func);
2426        self.r#gen.names.insert(&name).expect("duplicate symbols");
2427
2428        let start = self.src.h_fns.len();
2429        let mut result_rets = false;
2430        let mut result_rets_has_ok_type = false;
2431
2432        let ret = if async_ && !self.in_import {
2433            Return {
2434                scalar: func.result.map(Scalar::Type),
2435                retptrs: Vec::new(),
2436            }
2437        } else {
2438            self.classify_ret(func)
2439        };
2440        if async_ {
2441            let snake = self.r#gen.world.to_snake_case();
2442            if self.in_import {
2443                uwrite!(self.src.h_fns, "{snake}_subtask_status_t");
2444            } else {
2445                uwrite!(self.src.h_fns, "{snake}_callback_code_t");
2446            }
2447        } else {
2448            match &ret.scalar {
2449                None | Some(Scalar::Void) => self.src.h_fns("void"),
2450                Some(Scalar::OptionBool(_id)) => self.src.h_fns("bool"),
2451                Some(Scalar::ResultBool(ok, _err)) => {
2452                    result_rets = true;
2453                    result_rets_has_ok_type = ok.is_some();
2454                    self.src.h_fns("bool");
2455                }
2456                Some(Scalar::Type(ty)) => self.print_ty(SourceType::HFns, ty),
2457            }
2458        }
2459        self.src.h_fns(" ");
2460        self.src.h_fns(&name);
2461        self.src.h_fns("(");
2462        let params;
2463        let mut retptrs = Vec::new();
2464        if async_ && self.in_import {
2465            params = self.print_sig_async_import_params(&name, func, sig);
2466        } else if async_ && !self.in_import {
2467            params = self.print_sig_params(func);
2468        } else {
2469            params = self.print_sig_params(func);
2470            let single_ret = ret.retptrs.len() == 1;
2471            for (i, ty) in ret.retptrs.iter().enumerate() {
2472                if i > 0 || func.params.len() > 0 {
2473                    self.src.h_fns(", ");
2474                }
2475                self.print_ty(SourceType::HFns, ty);
2476                self.src.h_fns(" *");
2477                let name: String = if result_rets {
2478                    assert!(i <= 1);
2479                    if i == 0 && result_rets_has_ok_type {
2480                        "ret".into()
2481                    } else {
2482                        "err".into()
2483                    }
2484                } else if single_ret {
2485                    "ret".into()
2486                } else {
2487                    format!("ret{i}")
2488                };
2489                self.src.h_fns(&name);
2490                retptrs.push(name);
2491            }
2492            if func.params.len() == 0 && ret.retptrs.len() == 0 {
2493                self.src.h_fns("void");
2494            }
2495        }
2496        self.src.h_fns(")");
2497
2498        let sig = self.src.h_fns[start..].to_string();
2499        self.src.h_fns(";\n");
2500
2501        CSig {
2502            sig,
2503            name,
2504            params,
2505            ret,
2506            retptrs,
2507        }
2508    }
2509
2510    fn print_sig_params(&mut self, func: &Function) -> Vec<(bool, String)> {
2511        let mut params = Vec::new();
2512        for (i, Param { name, ty, .. }) in func.params.iter().enumerate() {
2513            if i > 0 {
2514                self.src.h_fns(", ");
2515            }
2516            let pointer = is_arg_by_pointer(self.resolve, ty);
2517            // optional param pointer sig_flattening
2518            let optional_type = if let Type::Id(id) = ty {
2519                if let TypeDefKind::Option(option_ty) = &self.resolve.types[*id].kind {
2520                    if !self.r#gen.opts.no_sig_flattening {
2521                        Some(option_ty)
2522                    } else {
2523                        None
2524                    }
2525                } else {
2526                    None
2527                }
2528            } else {
2529                None
2530            };
2531            let (print_ty, print_name) = if !self.r#gen.opts.no_sig_flattening {
2532                if let Some(option_ty) = optional_type {
2533                    (option_ty, format!("maybe_{}", to_c_ident(name)))
2534                } else {
2535                    (ty, to_c_ident(name))
2536                }
2537            } else {
2538                (ty, to_c_ident(name))
2539            };
2540            self.print_ty(SourceType::HFns, print_ty);
2541            self.src.h_fns(" ");
2542            if pointer {
2543                self.src.h_fns("*");
2544            }
2545            self.src.h_fns(&print_name);
2546            params.push((optional_type.is_none() && pointer, to_c_ident(name)));
2547        }
2548        params
2549    }
2550
2551    fn print_sig_async_import_params(
2552        &mut self,
2553        c_func_name: &str,
2554        func: &Function,
2555        sig: &WasmSignature,
2556    ) -> Vec<(bool, String)> {
2557        let mut params = Vec::new();
2558        let mut printed = false;
2559        if sig.indirect_params {
2560            match &func.params[..] {
2561                [] => {}
2562                [Param { name: _, ty, .. }] => {
2563                    printed = true;
2564                    let name = "arg".to_string();
2565                    self.print_ty(SourceType::HFns, ty);
2566                    self.src.h_fns(" *");
2567                    self.src.h_fns(&name);
2568                    params.push((true, name));
2569                }
2570                multiple => {
2571                    printed = true;
2572                    let names = multiple
2573                        .iter()
2574                        .map(|Param { name, ty, .. }| (to_c_ident(name), self.r#gen.type_name(ty)))
2575                        .collect::<Vec<_>>();
2576                    uwriteln!(self.src.h_defs, "typedef struct {c_func_name}_args {{");
2577                    for (name, ty) in names {
2578                        uwriteln!(self.src.h_defs, "{ty} {name};");
2579                    }
2580                    uwriteln!(self.src.h_defs, "}} {c_func_name}_args_t;");
2581                    uwrite!(self.src.h_fns, "{c_func_name}_args_t *args");
2582                    params.push((true, "args".to_string()));
2583                }
2584            }
2585        } else {
2586            for Param { name, ty, .. } in func.params.iter() {
2587                let name = to_c_ident(name);
2588                if printed {
2589                    self.src.h_fns(", ");
2590                } else {
2591                    printed = true;
2592                }
2593                self.print_ty(SourceType::HFns, ty);
2594                self.src.h_fns(" ");
2595                self.src.h_fns(&name);
2596                params.push((false, name));
2597            }
2598        }
2599        if let Some(ty) = &func.result {
2600            if printed {
2601                self.src.h_fns(", ");
2602            } else {
2603                printed = true;
2604            }
2605            let name = "result".to_string();
2606            self.print_ty(SourceType::HFns, ty);
2607            self.src.h_fns(" *");
2608            self.src.h_fns(&name);
2609            params.push((true, name));
2610        }
2611        if !printed {
2612            self.src.h_fns("void");
2613        }
2614        params
2615    }
2616
2617    fn classify_ret(&mut self, func: &Function) -> Return {
2618        let mut ret = Return::default();
2619        match &func.result {
2620            None => ret.scalar = Some(Scalar::Void),
2621            Some(ty) => {
2622                ret.return_single(self.resolve, ty, ty, !self.r#gen.opts.no_sig_flattening);
2623            }
2624        }
2625        return ret;
2626    }
2627
2628    fn print_typedef_target(&mut self, id: TypeId) {
2629        let name = &self.r#gen.type_names[&id];
2630        self.src.h_defs(&name);
2631        self.src.h_defs(";\n");
2632    }
2633
2634    fn start_typedef_struct(&mut self, id: TypeId) {
2635        let name = &self.r#gen.type_names[&id];
2636        self.src.h_defs("typedef struct ");
2637        self.src.h_defs(&name);
2638        self.src.h_defs(" {\n");
2639    }
2640
2641    fn finish_typedef_struct(&mut self, id: TypeId) {
2642        self.src.h_defs("} ");
2643        self.print_typedef_target(id);
2644    }
2645
2646    fn owner_namespace(&self, id: TypeId) -> String {
2647        owner_namespace(
2648            self.interface,
2649            self.in_import,
2650            self.r#gen.world.clone(),
2651            self.resolve,
2652            id,
2653            &self.r#gen.renamed_interfaces,
2654        )
2655    }
2656
2657    fn print_ty(&mut self, stype: SourceType, ty: &Type) {
2658        self.r#gen
2659            .push_type_name(ty, self.src.src(stype).as_mut_string());
2660    }
2661
2662    fn docs(&mut self, docs: &Docs, stype: SourceType) {
2663        let docs = match &docs.contents {
2664            Some(docs) => docs,
2665            None => return,
2666        };
2667        let src = self.src.src(stype);
2668        for line in docs.trim().lines() {
2669            src.push_str("// ");
2670            src.push_str(line);
2671            src.push_str("\n");
2672        }
2673    }
2674
2675    fn autodrop_enabled(&self) -> bool {
2676        self.r#gen.opts.autodrop_borrows == Enabled::Yes
2677    }
2678
2679    fn contains_droppable_borrow(&self, ty: &Type) -> bool {
2680        if let Type::Id(id) = ty {
2681            match &self.resolve.types[*id].kind {
2682                TypeDefKind::Handle(h) => match h {
2683                    // Handles to imported resources will need to be dropped, if the context
2684                    // they're used in is an export.
2685                    Handle::Borrow(id) => {
2686                        !self.in_import
2687                            && matches!(
2688                                self.r#gen.resources[&dealias(self.resolve, *id)].direction,
2689                                Direction::Import
2690                            )
2691                    }
2692
2693                    Handle::Own(_) => false,
2694                },
2695
2696                TypeDefKind::Resource | TypeDefKind::Flags(_) | TypeDefKind::Enum(_) => false,
2697
2698                TypeDefKind::Record(r) => r
2699                    .fields
2700                    .iter()
2701                    .any(|f| self.contains_droppable_borrow(&f.ty)),
2702
2703                TypeDefKind::Tuple(t) => {
2704                    t.types.iter().any(|ty| self.contains_droppable_borrow(ty))
2705                }
2706
2707                TypeDefKind::Variant(v) => v.cases.iter().any(|case| {
2708                    case.ty
2709                        .as_ref()
2710                        .map_or(false, |ty| self.contains_droppable_borrow(ty))
2711                }),
2712
2713                TypeDefKind::Option(ty) => self.contains_droppable_borrow(ty),
2714
2715                TypeDefKind::Result(r) => {
2716                    r.ok.as_ref()
2717                        .map_or(false, |ty| self.contains_droppable_borrow(ty))
2718                        || r.err
2719                            .as_ref()
2720                            .map_or(false, |ty| self.contains_droppable_borrow(ty))
2721                }
2722
2723                TypeDefKind::List(ty) => self.contains_droppable_borrow(ty),
2724
2725                TypeDefKind::Future(_) | TypeDefKind::Stream(_) => false,
2726
2727                TypeDefKind::Type(ty) => self.contains_droppable_borrow(ty),
2728
2729                TypeDefKind::Unknown => false,
2730                TypeDefKind::FixedLengthList(..) => todo!(),
2731                TypeDefKind::Map(..) => todo!(),
2732            }
2733        } else {
2734            false
2735        }
2736    }
2737
2738    fn generate_async_futures_and_streams(
2739        &mut self,
2740        prefix: &str,
2741        func: &Function,
2742        interface: Option<&WorldKey>,
2743    ) {
2744        let module = format!(
2745            "{prefix}{}",
2746            interface
2747                .map(|name| self.resolve.name_world_key(name))
2748                .unwrap_or_else(|| "$root".into())
2749        );
2750        for (index, ty) in func
2751            .find_futures_and_streams(self.resolve)
2752            .into_iter()
2753            .enumerate()
2754        {
2755            let func_name = &func.name;
2756
2757            match &self.resolve.types[ty].kind {
2758                TypeDefKind::Future(payload_type) => {
2759                    self.generate_async_future_or_stream(
2760                        PayloadFor::Future,
2761                        &module,
2762                        index,
2763                        func_name,
2764                        ty,
2765                        payload_type.as_ref(),
2766                    );
2767                }
2768                TypeDefKind::Stream(payload_type) => {
2769                    self.generate_async_future_or_stream(
2770                        PayloadFor::Stream,
2771                        &module,
2772                        index,
2773                        func_name,
2774                        ty,
2775                        payload_type.as_ref(),
2776                    );
2777                }
2778                _ => unreachable!(),
2779            }
2780        }
2781    }
2782
2783    fn generate_async_future_or_stream(
2784        &mut self,
2785        payload_for: PayloadFor,
2786        module: &str,
2787        index: usize,
2788        func_name: &str,
2789        ty: TypeId,
2790        payload_type: Option<&Type>,
2791    ) {
2792        if !self.r#gen.futures.insert(ty) {
2793            return;
2794        }
2795        let ty = self.r#gen.type_name(&Type::Id(ty));
2796        let name = ty.strip_suffix("_t").unwrap();
2797        let snake = self.r#gen.world.to_snake_case();
2798        let kind = match payload_for {
2799            PayloadFor::Future => "future",
2800            PayloadFor::Stream => "stream",
2801        };
2802        let payload_len_arg = match payload_for {
2803            PayloadFor::Future => "",
2804            PayloadFor::Stream => ", size_t",
2805        };
2806        let (read_arg_ty, read_arg_expr, write_arg_ty, write_arg_expr) =
2807            match (payload_for, payload_type) {
2808                (PayloadFor::Future, None) => ("".to_string(), "NULL", "".to_string(), "NULL"),
2809                (PayloadFor::Future, Some(ty)) => {
2810                    let ty = self.r#gen.type_name(ty);
2811                    (
2812                        format!(", {ty} *buf"),
2813                        "(uint8_t*) buf",
2814                        format!(", const {ty} *buf"),
2815                        "(const uint8_t*) buf",
2816                    )
2817                }
2818                (PayloadFor::Stream, None) => (
2819                    ", size_t amt".to_string(),
2820                    "NULL, amt",
2821                    ", size_t amt".to_string(),
2822                    "NULL, amt",
2823                ),
2824                (PayloadFor::Stream, Some(ty)) => {
2825                    let ty = self.r#gen.type_name(ty);
2826                    (
2827                        format!(", {ty} *buf, size_t amt"),
2828                        "(uint8_t*) buf, amt",
2829                        format!(", const {ty} *buf, size_t amt"),
2830                        "(const uint8_t*) buf, amt",
2831                    )
2832                }
2833            };
2834
2835        // TODO: this is a hack around space-stripping in `source.rs`, ideally
2836        // wouldn't be necessary.
2837        let empty = "";
2838        uwriteln!(
2839            self.src.h_helpers,
2840            r#"
2841typedef uint32_t {name}_writer_t;
2842
2843{ty} {name}_new({name}_writer_t *writer);
2844{snake}_waitable_status_t {name}_read({ty} reader{read_arg_ty});
2845{snake}_waitable_status_t {name}_write({name}_writer_t writer{write_arg_ty});
2846{snake}_waitable_status_t {name}_cancel_read({ty} reader);
2847{snake}_waitable_status_t {name}_cancel_write({name}_writer_t writer);
2848void {name}_drop_readable({ty} reader);{empty}
2849void {name}_drop_writable({name}_writer_t writer);
2850            "#,
2851        );
2852        uwriteln!(
2853            self.src.c_helpers,
2854            r#"
2855__attribute__((__import_module__("{module}"), __import_name__("[{kind}-new-{index}]{func_name}")))
2856extern uint64_t {name}__new(void);
2857__attribute__((__import_module__("{module}"), __import_name__("[async-lower][{kind}-read-{index}]{func_name}")))
2858extern uint32_t {name}__read(uint32_t, uint8_t*{payload_len_arg});
2859__attribute__((__import_module__("{module}"), __import_name__("[async-lower][{kind}-write-{index}]{func_name}")))
2860extern uint32_t {name}__write(uint32_t, const uint8_t*{payload_len_arg});
2861__attribute__((__import_module__("{module}"), __import_name__("[{kind}-cancel-read-{index}]{func_name}")))
2862extern uint32_t {name}__cancel_read(uint32_t);
2863__attribute__((__import_module__("{module}"), __import_name__("[{kind}-cancel-write-{index}]{func_name}")))
2864extern uint32_t {name}__cancel_write(uint32_t);
2865__attribute__((__import_module__("{module}"), __import_name__("[{kind}-drop-readable-{index}]{func_name}")))
2866extern void {name}__drop_readable(uint32_t);
2867__attribute__((__import_module__("{module}"), __import_name__("[{kind}-drop-writable-{index}]{func_name}")))
2868extern void {name}__drop_writable(uint32_t);
2869
2870{ty} {name}_new({name}_writer_t *writer) {{
2871    uint64_t packed = {name}__new();
2872    *writer = (uint32_t) (packed >> 32);
2873    return (uint32_t) packed;
2874}}
2875
2876{snake}_waitable_status_t {name}_read({ty} reader{read_arg_ty}) {{
2877    return {name}__read(reader, {read_arg_expr});
2878}}
2879
2880{snake}_waitable_status_t {name}_write({name}_writer_t writer{write_arg_ty}) {{
2881    return {name}__write(writer, {write_arg_expr});
2882}}
2883
2884{snake}_waitable_status_t {name}_cancel_read({ty} reader){empty} {{
2885    return {name}__cancel_read(reader);
2886}}
2887
2888{snake}_waitable_status_t {name}_cancel_write({name}_writer_t writer) {{
2889    return {name}__cancel_write(writer);
2890}}
2891
2892void {name}_drop_readable({ty} reader){empty} {{
2893    {name}__drop_readable(reader);
2894}}
2895
2896void {name}_drop_writable({name}_writer_t writer) {{
2897    {name}__drop_writable(writer);
2898}}
2899            "#,
2900        );
2901    }
2902}
2903
2904enum PayloadFor {
2905    Future,
2906    Stream,
2907}
2908
2909struct DroppableBorrow {
2910    name: String,
2911    ty: TypeId,
2912}
2913
2914struct FunctionBindgen<'a, 'b> {
2915    r#gen: &'a mut InterfaceGenerator<'b>,
2916    locals: Ns,
2917    src: wit_bindgen_core::Source,
2918    sig: CSig,
2919    func_to_call: &'a str,
2920    block_storage: Vec<wit_bindgen_core::Source>,
2921    blocks: Vec<(String, Vec<String>)>,
2922    payloads: Vec<String>,
2923    params: Vec<String>,
2924    wasm_return: Option<String>,
2925    ret_store_cnt: usize,
2926    import_return_pointer_area_size: ArchitectureSize,
2927    import_return_pointer_area_align: Alignment,
2928
2929    /// State of what to generate for the `task.return` intrinsic in the case
2930    /// that this bindings generator is being used for an async export.
2931    ///
2932    /// This typically stays at `DeferredTaskReturn::None` except for the case
2933    /// of async exports where they'll fill this in after the `CallInterface`
2934    /// instruction. For some more information see the documentation on
2935    /// `DeferredTaskReturn`.
2936    deferred_task_return: DeferredTaskReturn,
2937
2938    /// Borrows observed during lifting an export, that will need to be dropped when the guest
2939    /// function exits.
2940    borrows: Vec<DroppableBorrow>,
2941
2942    /// Forward declarations for temporary storage of borrow copies.
2943    borrow_decls: wit_bindgen_core::Source,
2944}
2945
2946/// State associated with the generation of the `task.return` intrinsic function
2947/// with async exports.
2948enum DeferredTaskReturn {
2949    /// Default state, meaning that either bindings generation isn't happening
2950    /// for an async export or the async export is in the bindings generation
2951    /// mode before `CallInterface`.
2952    None,
2953
2954    /// An async export is having bindings generated and `CallInterface` has
2955    /// been seen. After that instruction the `deferred_task_return` field
2956    /// transitions to this state.
2957    ///
2958    /// This state is then present until the `AsyncTaskReturn` instruction is
2959    /// met at which point this changes to `Emitted` below.
2960    Generating {
2961        /// The previous contents of `self.src` just after the `CallInterface`
2962        /// had its code generator. This is effectively the bindings-generated
2963        /// contents of the export and this will get replaced back into
2964        /// `self.src` once the `AsyncTaskReturn` is generated.
2965        prev_src: wit_bindgen_core::Source,
2966    },
2967
2968    /// An `AsyncTaskReturn` has been seen and all state is now located here to
2969    /// be used for generating the `task.return` intrinsic.
2970    ///
2971    /// This state is only generated during `AsyncTaskReturn` and is used to
2972    /// record everything necessary to generate `task.return` meaning that the
2973    /// in-`FunctionBindgen` state is now "back to normal" where it's intended
2974    /// for the main function having bindings generated.
2975    Emitted {
2976        /// The name of the `task.return` intrinsic that should be imported.
2977        /// Note that this does not include the module.
2978        name: String,
2979        /// The wasm type of each parameter provided to the `task.return`
2980        /// intrinsic as well as the C expression necessary to produce this
2981        /// parameter. The type is used to declare the intrinsic and the C
2982        /// expression is used to call the intrinsic from the generated
2983        /// function.
2984        params: Vec<(WasmType, String)>,
2985        /// The body of the `task.return` intrinsic. This contains the bulk of
2986        /// the lowering code from a function's return value to the canonical
2987        /// ABI.
2988        body: wit_bindgen_core::Source,
2989    },
2990}
2991
2992impl<'a, 'b> FunctionBindgen<'a, 'b> {
2993    fn new(
2994        r#gen: &'a mut InterfaceGenerator<'b>,
2995        sig: CSig,
2996        func_to_call: &'a str,
2997    ) -> FunctionBindgen<'a, 'b> {
2998        let mut locals = Ns::default();
2999        for (_, name) in sig.params.iter() {
3000            locals.insert(name).unwrap();
3001        }
3002        FunctionBindgen {
3003            r#gen,
3004            sig,
3005            locals,
3006            src: Default::default(),
3007            func_to_call,
3008            block_storage: Vec::new(),
3009            blocks: Vec::new(),
3010            payloads: Vec::new(),
3011            params: Vec::new(),
3012            wasm_return: None,
3013            ret_store_cnt: 0,
3014            import_return_pointer_area_size: Default::default(),
3015            import_return_pointer_area_align: Default::default(),
3016            borrow_decls: Default::default(),
3017            borrows: Vec::new(),
3018            deferred_task_return: DeferredTaskReturn::None,
3019        }
3020    }
3021
3022    fn store_op(&mut self, op: &str, loc: &str) {
3023        self.src.push_str(loc);
3024        self.src.push_str(" = ");
3025        self.src.push_str(op);
3026        self.src.push_str(";\n");
3027    }
3028
3029    fn load(
3030        &mut self,
3031        ty: &str,
3032        offset: ArchitectureSize,
3033        operands: &[String],
3034        results: &mut Vec<String>,
3035    ) {
3036        results.push(format!(
3037            "*(({}*) ({} + {}))",
3038            ty,
3039            operands[0],
3040            offset.format(POINTER_SIZE_EXPRESSION)
3041        ));
3042    }
3043
3044    fn load_ext(
3045        &mut self,
3046        ty: &str,
3047        offset: ArchitectureSize,
3048        operands: &[String],
3049        results: &mut Vec<String>,
3050    ) {
3051        self.load(ty, offset, operands, results);
3052        let result = results.pop().unwrap();
3053        results.push(format!("(int32_t) {result}"));
3054    }
3055
3056    fn store(&mut self, ty: &str, offset: ArchitectureSize, operands: &[String]) {
3057        uwriteln!(
3058            self.src,
3059            "*(({}*)({} + {})) = {};",
3060            ty,
3061            operands[1],
3062            offset.format(POINTER_SIZE_EXPRESSION),
3063            operands[0]
3064        );
3065    }
3066
3067    fn store_in_retptr(&mut self, operand: &String) {
3068        self.store_op(
3069            operand,
3070            &format!("*{}", self.sig.retptrs[self.ret_store_cnt]),
3071        );
3072        self.ret_store_cnt = self.ret_store_cnt + 1;
3073    }
3074
3075    fn empty_return_value(&mut self) {
3076        // Empty types have no state, so we don't emit stores for them. But we
3077        // do need to keep track of which return variable we're looking at.
3078        self.ret_store_cnt = self.ret_store_cnt + 1;
3079    }
3080
3081    fn assert_no_droppable_borrows(&self, context: &str, ty: &Type) {
3082        if !self.r#gen.in_import
3083            && self.r#gen.autodrop_enabled()
3084            && self.r#gen.contains_droppable_borrow(ty)
3085        {
3086            panic!("Unable to autodrop borrows in `{context}` values, please disable autodrop")
3087        }
3088    }
3089}
3090
3091impl Bindgen for FunctionBindgen<'_, '_> {
3092    type Operand = String;
3093
3094    fn sizes(&self) -> &SizeAlign {
3095        &self.r#gen.r#gen.sizes
3096    }
3097
3098    fn push_block(&mut self) {
3099        let prev = mem::take(&mut self.src);
3100        self.block_storage.push(prev);
3101    }
3102
3103    fn finish_block(&mut self, operands: &mut Vec<String>) {
3104        let to_restore = self.block_storage.pop().unwrap();
3105        let src = mem::replace(&mut self.src, to_restore);
3106        self.blocks.push((src.into(), mem::take(operands)));
3107    }
3108
3109    fn return_pointer(&mut self, size: ArchitectureSize, align: Alignment) -> String {
3110        let ptr = self.locals.tmp("ptr");
3111
3112        // Use a stack-based return area for imports, because exports need
3113        // their return area to be live until the post-return call.
3114        if self.r#gen.in_import {
3115            self.import_return_pointer_area_size = self.import_return_pointer_area_size.max(size);
3116            self.import_return_pointer_area_align =
3117                self.import_return_pointer_area_align.max(align);
3118            uwriteln!(self.src, "uint8_t *{} = (uint8_t *) &ret_area;", ptr);
3119        } else {
3120            self.r#gen.r#gen.return_pointer_area_size =
3121                self.r#gen.r#gen.return_pointer_area_size.max(size);
3122            self.r#gen.r#gen.return_pointer_area_align =
3123                self.r#gen.r#gen.return_pointer_area_align.max(align);
3124            // Declare a statically-allocated return area.
3125            uwriteln!(self.src, "uint8_t *{} = (uint8_t *) &RET_AREA;", ptr);
3126        }
3127
3128        ptr
3129    }
3130
3131    fn is_list_canonical(&self, resolve: &Resolve, ty: &Type) -> bool {
3132        resolve.all_bits_valid(ty)
3133    }
3134
3135    fn emit(
3136        &mut self,
3137        resolve: &Resolve,
3138        inst: &Instruction<'_>,
3139        operands: &mut Vec<String>,
3140        results: &mut Vec<String>,
3141    ) {
3142        match inst {
3143            Instruction::GetArg { nth } => results.push(self.params[*nth].clone()),
3144            Instruction::I32Const { val } => results.push(val.to_string()),
3145            Instruction::ConstZero { tys } => {
3146                for _ in tys.iter() {
3147                    results.push("0".to_string());
3148                }
3149            }
3150
3151            // TODO: checked?
3152            Instruction::U8FromI32 => results.push(format!("(uint8_t) ({})", operands[0])),
3153            Instruction::S8FromI32 => results.push(format!("(int8_t) ({})", operands[0])),
3154            Instruction::U16FromI32 => results.push(format!("(uint16_t) ({})", operands[0])),
3155            Instruction::S16FromI32 => results.push(format!("(int16_t) ({})", operands[0])),
3156            Instruction::U32FromI32 => results.push(format!("(uint32_t) ({})", operands[0])),
3157            Instruction::S32FromI32 | Instruction::S64FromI64 => results.push(operands[0].clone()),
3158            Instruction::U64FromI64 => results.push(format!("(uint64_t) ({})", operands[0])),
3159
3160            Instruction::I32FromU8
3161            | Instruction::I32FromS8
3162            | Instruction::I32FromU16
3163            | Instruction::I32FromS16
3164            | Instruction::I32FromU32 => {
3165                results.push(format!("(int32_t) ({})", operands[0]));
3166            }
3167            Instruction::I32FromS32 | Instruction::I64FromS64 => results.push(operands[0].clone()),
3168            Instruction::I64FromU64 => {
3169                results.push(format!("(int64_t) ({})", operands[0]));
3170            }
3171
3172            // f32/f64 have the same representation in the import type and in C,
3173            // so no conversions necessary.
3174            Instruction::CoreF32FromF32
3175            | Instruction::CoreF64FromF64
3176            | Instruction::F32FromCoreF32
3177            | Instruction::F64FromCoreF64 => {
3178                results.push(operands[0].clone());
3179            }
3180
3181            // TODO: checked
3182            Instruction::CharFromI32 => {
3183                results.push(format!("(uint32_t) ({})", operands[0]));
3184            }
3185            Instruction::I32FromChar => {
3186                results.push(format!("(int32_t) ({})", operands[0]));
3187            }
3188
3189            Instruction::Bitcasts { casts } => {
3190                for (cast, op) in casts.iter().zip(operands) {
3191                    let op = self.r#gen.r#gen.perform_cast(op, cast);
3192                    results.push(op);
3193                }
3194            }
3195
3196            Instruction::BoolFromI32 | Instruction::I32FromBool => {
3197                results.push(operands[0].clone());
3198            }
3199
3200            Instruction::RecordLower { record, .. } => {
3201                let op = &operands[0];
3202                for f in record.fields.iter() {
3203                    results.push(format!("({}).{}", op, to_c_ident(&f.name)));
3204                }
3205            }
3206            Instruction::RecordLift { ty, record, .. } => {
3207                let name = self.r#gen.r#gen.type_name(&Type::Id(*ty));
3208                let mut result = format!("({name}) {{\n");
3209                for (field, op) in record.fields.iter().zip(operands.iter()) {
3210                    let field_ty = self.r#gen.r#gen.type_name(&field.ty);
3211                    uwriteln!(result, "({}) {},", field_ty, op);
3212                }
3213                result.push_str("}");
3214                results.push(result);
3215            }
3216
3217            Instruction::TupleLower { tuple, .. } => {
3218                let op = &operands[0];
3219                for i in 0..tuple.types.len() {
3220                    results.push(format!("({op}).f{i}"));
3221                }
3222            }
3223            Instruction::TupleLift { ty, tuple, .. } => {
3224                let name = self.r#gen.r#gen.type_name(&Type::Id(*ty));
3225                let mut result = format!("({name}) {{\n");
3226                for (ty, op) in tuple.types.iter().zip(operands.iter()) {
3227                    let ty = self.r#gen.r#gen.type_name(&ty);
3228                    uwriteln!(result, "({}) {},", ty, op);
3229                }
3230                result.push_str("}");
3231                results.push(result);
3232            }
3233
3234            Instruction::HandleLower { .. } => {
3235                let op = &operands[0];
3236                results.push(format!("({op}).__handle"))
3237            }
3238
3239            Instruction::HandleLift { handle, ty, .. } => match handle {
3240                Handle::Borrow(resource)
3241                    if matches!(
3242                        self.r#gen.r#gen.resources[&dealias(resolve, *resource)].direction,
3243                        Direction::Export
3244                    ) =>
3245                {
3246                    // Here we've received a borrow of a resource which we've exported ourselves, so we can treat
3247                    // it as a raw pointer rather than an opaque handle.
3248                    let op = &operands[0];
3249                    let name = self
3250                        .r#gen
3251                        .r#gen
3252                        .type_name(&Type::Id(dealias(resolve, *resource)));
3253                    results.push(format!("(({name}*) {op})"))
3254                }
3255                _ => {
3256                    let op = &operands[0];
3257                    let name = self.r#gen.r#gen.type_name(&Type::Id(*ty));
3258                    results.push(format!("({name}) {{ {op} }}"));
3259
3260                    if let Handle::Borrow(id) = handle {
3261                        if !self.r#gen.in_import && self.r#gen.autodrop_enabled() {
3262                            // Here we've received a borrow of an imported resource, which is the
3263                            // kind we'll need to drop when the exported function is returning.
3264                            let ty = dealias(self.r#gen.resolve, *id);
3265
3266                            let name = self.locals.tmp("borrow");
3267                            uwriteln!(self.borrow_decls, "int32_t {name} = 0;");
3268                            uwriteln!(self.src, "{name} = {op};");
3269
3270                            self.borrows.push(DroppableBorrow { name, ty });
3271                        }
3272                    }
3273                }
3274            },
3275
3276            // TODO: checked
3277            Instruction::FlagsLower { flags, ty, .. } => match flags_repr(flags) {
3278                Int::U8 | Int::U16 | Int::U32 => {
3279                    results.push(operands.pop().unwrap());
3280                }
3281                Int::U64 => {
3282                    let name = self.r#gen.r#gen.type_name(&Type::Id(*ty));
3283                    let tmp = self.locals.tmp("flags");
3284                    uwriteln!(self.src, "{name} {tmp} = {};", operands[0]);
3285                    results.push(format!("{tmp} & 0xffffffff"));
3286                    results.push(format!("({tmp} >> 32) & 0xffffffff"));
3287                }
3288            },
3289
3290            Instruction::FlagsLift { flags, ty, .. } => match flags_repr(flags) {
3291                Int::U8 | Int::U16 | Int::U32 => {
3292                    results.push(operands.pop().unwrap());
3293                }
3294                Int::U64 => {
3295                    let name = self.r#gen.r#gen.type_name(&Type::Id(*ty));
3296                    let op0 = &operands[0];
3297                    let op1 = &operands[1];
3298                    results.push(format!("(({name}) ({op0})) | ((({name}) ({op1})) << 32)"));
3299                }
3300            },
3301
3302            Instruction::VariantPayloadName => {
3303                let name = self.locals.tmp("payload");
3304                results.push(format!("*{name}"));
3305                self.payloads.push(name);
3306            }
3307
3308            Instruction::VariantLower {
3309                variant,
3310                results: result_types,
3311                ..
3312            } => {
3313                let blocks = self
3314                    .blocks
3315                    .drain(self.blocks.len() - variant.cases.len()..)
3316                    .collect::<Vec<_>>();
3317                let payloads = self
3318                    .payloads
3319                    .drain(self.payloads.len() - variant.cases.len()..)
3320                    .collect::<Vec<_>>();
3321
3322                let mut variant_results = Vec::with_capacity(result_types.len());
3323                for ty in result_types.iter() {
3324                    let name = self.locals.tmp("variant");
3325                    results.push(name.clone());
3326                    self.src.push_str(wasm_type(*ty));
3327                    self.src.push_str(" ");
3328                    self.src.push_str(&name);
3329                    self.src.push_str(";\n");
3330                    variant_results.push(name);
3331                }
3332
3333                let expr_to_match = format!("({}).tag", operands[0]);
3334
3335                uwriteln!(self.src, "switch ((int32_t) {}) {{", expr_to_match);
3336                for (i, ((case, (block, block_results)), payload)) in
3337                    variant.cases.iter().zip(blocks).zip(payloads).enumerate()
3338                {
3339                    uwriteln!(self.src, "case {}: {{", i);
3340                    if let Some(ty) = case.ty.as_ref() {
3341                        let ty = self.r#gen.r#gen.type_name(ty);
3342                        uwrite!(
3343                            self.src,
3344                            "const {} *{} = &({}).val",
3345                            ty,
3346                            payload,
3347                            operands[0],
3348                        );
3349                        self.src.push_str(".");
3350                        self.src.push_str(&to_c_ident(&case.name));
3351                        self.src.push_str(";\n");
3352                    }
3353                    self.src.push_str(&block);
3354
3355                    for (name, result) in variant_results.iter().zip(&block_results) {
3356                        uwriteln!(self.src, "{} = {};", name, result);
3357                    }
3358                    self.src.push_str("break;\n}\n");
3359                }
3360                self.src.push_str("}\n");
3361            }
3362
3363            Instruction::VariantLift { variant, ty, .. } => {
3364                let blocks = self
3365                    .blocks
3366                    .drain(self.blocks.len() - variant.cases.len()..)
3367                    .collect::<Vec<_>>();
3368
3369                let ty = self.r#gen.r#gen.type_name(&Type::Id(*ty));
3370                let result = self.locals.tmp("variant");
3371                uwriteln!(self.src, "{} {};", ty, result);
3372                uwriteln!(self.src, "{}.tag = {};", result, operands[0]);
3373                uwriteln!(self.src, "switch ((int32_t) {}.tag) {{", result);
3374                for (i, (case, (block, block_results))) in
3375                    variant.cases.iter().zip(blocks).enumerate()
3376                {
3377                    uwriteln!(self.src, "case {}: {{", i);
3378                    self.src.push_str(&block);
3379                    assert!(block_results.len() == (case.ty.is_some() as usize));
3380
3381                    if let Some(_) = case.ty.as_ref() {
3382                        let mut dst = format!("{result}.val");
3383                        dst.push_str(".");
3384                        dst.push_str(&to_c_ident(&case.name));
3385                        self.store_op(&block_results[0], &dst);
3386                    }
3387                    self.src.push_str("break;\n}\n");
3388                }
3389                self.src.push_str("}\n");
3390                results.push(result);
3391            }
3392
3393            Instruction::OptionLower {
3394                results: result_types,
3395                payload,
3396                ..
3397            } => {
3398                let (mut some, some_results) = self.blocks.pop().unwrap();
3399                let (mut none, none_results) = self.blocks.pop().unwrap();
3400                let some_payload = self.payloads.pop().unwrap();
3401                let _none_payload = self.payloads.pop().unwrap();
3402
3403                for (i, ty) in result_types.iter().enumerate() {
3404                    let name = self.locals.tmp("option");
3405                    results.push(name.clone());
3406                    self.src.push_str(wasm_type(*ty));
3407                    self.src.push_str(" ");
3408                    self.src.push_str(&name);
3409                    self.src.push_str(";\n");
3410                    let some_result = &some_results[i];
3411                    uwriteln!(some, "{name} = {some_result};");
3412                    let none_result = &none_results[i];
3413                    uwriteln!(none, "{name} = {none_result};");
3414                }
3415
3416                let op0 = &operands[0];
3417                let ty = self.r#gen.r#gen.type_name(payload);
3418                let bind_some = format!("const {ty} *{some_payload} = &({op0}).val;");
3419
3420                uwrite!(
3421                    self.src,
3422                    "\
3423                    if (({op0}).is_some) {{
3424                        {bind_some}
3425                        {some}}} else {{
3426                        {none}}}
3427                    "
3428                );
3429            }
3430
3431            Instruction::OptionLift { ty, .. } => {
3432                let (mut some, some_results) = self.blocks.pop().unwrap();
3433                let (mut none, none_results) = self.blocks.pop().unwrap();
3434                assert!(none_results.len() == 0);
3435                assert!(some_results.len() == 1);
3436                let some_result = &some_results[0];
3437
3438                let ty = self.r#gen.r#gen.type_name(&Type::Id(*ty));
3439                let result = self.locals.tmp("option");
3440                uwriteln!(self.src, "{ty} {result};");
3441                let op0 = &operands[0];
3442                let set_some = format!("{result}.val = {some_result};\n");
3443                if none.len() > 0 {
3444                    none.push('\n');
3445                }
3446                if some.len() > 0 {
3447                    some.push('\n');
3448                }
3449                uwrite!(
3450                    self.src,
3451                    "switch ({op0}) {{
3452                        case 0: {{
3453                            {result}.is_some = false;
3454                            {none}\
3455                            break;
3456                        }}
3457                        case 1: {{
3458                            {result}.is_some = true;
3459                            {some}\
3460                            {set_some}\
3461                            break;
3462                        }}
3463                    }}\n"
3464                );
3465                results.push(result);
3466            }
3467
3468            Instruction::ResultLower {
3469                results: result_types,
3470                result,
3471                ..
3472            } => {
3473                let (mut err, err_results) = self.blocks.pop().unwrap();
3474                let (mut ok, ok_results) = self.blocks.pop().unwrap();
3475                let err_payload = self.payloads.pop().unwrap();
3476                let ok_payload = self.payloads.pop().unwrap();
3477
3478                for (i, ty) in result_types.iter().enumerate() {
3479                    let name = self.locals.tmp("result");
3480                    results.push(name.clone());
3481                    self.src.push_str(wasm_type(*ty));
3482                    self.src.push_str(" ");
3483                    self.src.push_str(&name);
3484                    self.src.push_str(";\n");
3485                    let ok_result = &ok_results[i];
3486                    uwriteln!(ok, "{name} = {ok_result};");
3487                    let err_result = &err_results[i];
3488                    uwriteln!(err, "{name} = {err_result};");
3489                }
3490
3491                let op0 = &operands[0];
3492                let bind_ok = if let Some(ok) = result.ok.as_ref() {
3493                    let ok_ty = self.r#gen.r#gen.type_name(ok);
3494                    format!("const {ok_ty} *{ok_payload} = &({op0}).val.ok;")
3495                } else {
3496                    String::new()
3497                };
3498                let bind_err = if let Some(err) = result.err.as_ref() {
3499                    let err_ty = self.r#gen.r#gen.type_name(err);
3500                    format!("const {err_ty} *{err_payload} = &({op0}).val.err;")
3501                } else {
3502                    String::new()
3503                };
3504                uwrite!(
3505                    self.src,
3506                    "\
3507                    if (({op0}).is_err) {{
3508                        {bind_err}\
3509                        {err}\
3510                    }} else {{
3511                        {bind_ok}\
3512                        {ok}\
3513                    }}
3514                    "
3515                );
3516            }
3517
3518            Instruction::ResultLift { result, ty, .. } => {
3519                let (mut err, err_results) = self.blocks.pop().unwrap();
3520                assert!(err_results.len() == (result.err.is_some() as usize));
3521                let (mut ok, ok_results) = self.blocks.pop().unwrap();
3522                assert!(ok_results.len() == (result.ok.is_some() as usize));
3523
3524                if err.len() > 0 {
3525                    err.push_str("\n");
3526                }
3527                if ok.len() > 0 {
3528                    ok.push_str("\n");
3529                }
3530
3531                let result_tmp = self.locals.tmp("result");
3532                let set_ok = if let Some(_) = result.ok.as_ref() {
3533                    let ok_result = &ok_results[0];
3534                    format!("{result_tmp}.val.ok = {ok_result};\n")
3535                } else {
3536                    String::new()
3537                };
3538                let set_err = if let Some(_) = result.err.as_ref() {
3539                    let err_result = &err_results[0];
3540                    format!("{result_tmp}.val.err = {err_result};\n")
3541                } else {
3542                    String::new()
3543                };
3544
3545                let ty = self.r#gen.r#gen.type_name(&Type::Id(*ty));
3546                uwriteln!(self.src, "{ty} {result_tmp};");
3547                let op0 = &operands[0];
3548                uwriteln!(
3549                    self.src,
3550                    "switch ({op0}) {{
3551                        case 0: {{
3552                            {result_tmp}.is_err = false;
3553                            {ok}\
3554                            {set_ok}\
3555                            break;
3556                        }}
3557                        case 1: {{
3558                            {result_tmp}.is_err = true;
3559                            {err}\
3560                            {set_err}\
3561                            break;
3562                        }}
3563                    }}"
3564                );
3565                results.push(result_tmp);
3566            }
3567
3568            Instruction::EnumLower { .. } => results.push(format!("(int32_t) {}", operands[0])),
3569            Instruction::EnumLift { .. } => results.push(operands.pop().unwrap()),
3570
3571            Instruction::ListCanonLower { .. } | Instruction::StringLower { .. } => {
3572                results.push(format!("(uint8_t *) ({}).ptr", operands[0]));
3573                results.push(format!("({}).len", operands[0]));
3574            }
3575            Instruction::ListCanonLift { element, ty, .. } => {
3576                self.assert_no_droppable_borrows("list", &Type::Id(*ty));
3577
3578                let list_name = self.r#gen.r#gen.type_name(&Type::Id(*ty));
3579                let elem_name = self.r#gen.r#gen.type_name(element);
3580                results.push(format!(
3581                    "({}) {{ ({}*)({}), ({}) }}",
3582                    list_name, elem_name, operands[0], operands[1]
3583                ));
3584            }
3585            Instruction::StringLift { .. } => {
3586                let list_name = self.r#gen.r#gen.type_name(&Type::String);
3587                results.push(format!(
3588                    "({}) {{ ({}*)({}), ({}) }}",
3589                    list_name,
3590                    self.r#gen.r#gen.char_type(),
3591                    operands[0],
3592                    operands[1]
3593                ));
3594            }
3595
3596            Instruction::ListLower { .. } => {
3597                let _body = self.blocks.pop().unwrap();
3598                results.push(format!("(uint8_t *) ({}).ptr", operands[0]));
3599                results.push(format!("({}).len", operands[0]));
3600            }
3601
3602            Instruction::ListLift { element, ty, .. } => {
3603                self.assert_no_droppable_borrows("list", &Type::Id(*ty));
3604
3605                let _body = self.blocks.pop().unwrap();
3606                let list_name = self.r#gen.r#gen.type_name(&Type::Id(*ty));
3607                let elem_name = self.r#gen.r#gen.type_name(element);
3608                results.push(format!(
3609                    "({}) {{ ({}*)({}), ({}) }}",
3610                    list_name, elem_name, operands[0], operands[1]
3611                ));
3612            }
3613            Instruction::IterElem { .. } => results.push("e".to_string()),
3614            Instruction::IterBasePointer => results.push("base".to_string()),
3615
3616            Instruction::CallWasm { sig, .. } => {
3617                match sig.results.len() {
3618                    0 => {}
3619                    1 => {
3620                        self.src.push_str(wasm_type(sig.results[0]));
3621                        let ret = self.locals.tmp("ret");
3622                        self.wasm_return = Some(ret.clone());
3623                        uwrite!(self.src, " {} = ", ret);
3624                        results.push(ret);
3625                    }
3626                    _ => unimplemented!(),
3627                }
3628                self.src.push_str(self.func_to_call);
3629                self.src.push_str("(");
3630                for (i, op) in operands.iter().enumerate() {
3631                    if i > 0 {
3632                        self.src.push_str(", ");
3633                    }
3634                    self.src.push_str(op);
3635                }
3636                self.src.push_str(");\n");
3637            }
3638
3639            Instruction::CallInterface { func, async_ } => {
3640                let mut args = String::new();
3641                for (i, (op, (byref, _))) in operands.iter().zip(&self.sig.params).enumerate() {
3642                    if i > 0 {
3643                        args.push_str(", ");
3644                    }
3645                    let ty = &func.params[i].ty;
3646                    if *byref {
3647                        let name = self.locals.tmp("arg");
3648                        let ty = self.r#gen.r#gen.type_name(ty);
3649                        uwriteln!(self.src, "{} {} = {};", ty, name, op);
3650                        args.push_str("&");
3651                        args.push_str(&name);
3652                    } else {
3653                        if !self.r#gen.in_import {
3654                            if let Type::Id(id) = ty {
3655                                if let TypeDefKind::Option(_) = &self.r#gen.resolve.types[*id].kind
3656                                {
3657                                    uwrite!(args, "{op}.is_some ? &({op}.val) : NULL");
3658                                    continue;
3659                                }
3660                            }
3661                        }
3662                        args.push_str(op);
3663                    }
3664                }
3665                if *async_ {
3666                    let ret = self.locals.tmp("ret");
3667                    let snake = self.r#gen.r#gen.world.to_snake_case();
3668                    uwriteln!(
3669                        self.src,
3670                        "{snake}_callback_code_t {ret} = {}({args});",
3671                        self.sig.name,
3672                    );
3673                    uwriteln!(self.src, "return {ret};");
3674                    if func.result.is_some() {
3675                        results.push("ret".to_string());
3676                    }
3677                    assert!(matches!(
3678                        self.deferred_task_return,
3679                        DeferredTaskReturn::None
3680                    ));
3681                    self.deferred_task_return = DeferredTaskReturn::Generating {
3682                        prev_src: mem::take(&mut self.src),
3683                    };
3684                    return;
3685                }
3686                match &self.sig.ret.scalar {
3687                    None => {
3688                        let mut retptrs = Vec::new();
3689                        for ty in self.sig.ret.retptrs.iter() {
3690                            let name = self.locals.tmp("ret");
3691                            let ty = self.r#gen.r#gen.type_name(ty);
3692                            uwriteln!(self.src, "{} {};", ty, name);
3693                            if args.len() > 0 {
3694                                args.push_str(", ");
3695                            }
3696                            args.push_str("&");
3697                            args.push_str(&name);
3698                            retptrs.push(name);
3699                        }
3700                        uwriteln!(self.src, "{}({});", self.sig.name, args);
3701                        results.extend(retptrs);
3702                    }
3703                    Some(Scalar::Void) => {
3704                        uwriteln!(self.src, "{}({});", self.sig.name, args);
3705                    }
3706                    Some(Scalar::Type(_)) => {
3707                        let ret = self.locals.tmp("ret");
3708                        let ty = func.result.unwrap();
3709                        let ty = self.r#gen.r#gen.type_name(&ty);
3710                        uwriteln!(self.src, "{} {} = {}({});", ty, ret, self.sig.name, args);
3711                        results.push(ret);
3712                    }
3713                    Some(Scalar::OptionBool(ty)) => {
3714                        let ret = self.locals.tmp("ret");
3715                        let val = self.locals.tmp("val");
3716                        if args.len() > 0 {
3717                            args.push_str(", ");
3718                        }
3719                        args.push_str("&");
3720                        args.push_str(&val);
3721                        let payload_ty = self.r#gen.r#gen.type_name(ty);
3722                        uwriteln!(self.src, "{} {};", payload_ty, val);
3723                        uwriteln!(self.src, "bool {} = {}({});", ret, self.sig.name, args);
3724                        let ty = func.result.unwrap();
3725                        let option_ty = self.r#gen.r#gen.type_name(&ty);
3726                        let option_ret = self.locals.tmp("ret");
3727                        uwrite!(
3728                            self.src,
3729                            "
3730                                {option_ty} {option_ret};
3731                                {option_ret}.is_some = {ret};
3732                                {option_ret}.val = {val};
3733                            ",
3734                        );
3735                        results.push(option_ret);
3736                    }
3737                    Some(Scalar::ResultBool(ok, err)) => {
3738                        let ty = &func.result.unwrap();
3739                        let result_ty = self.r#gen.r#gen.type_name(ty);
3740                        let ret = self.locals.tmp("ret");
3741                        let mut ret_iter = self.sig.ret.retptrs.iter();
3742                        uwriteln!(self.src, "{result_ty} {ret};");
3743                        let ok_name = if ok.is_some() {
3744                            if let Some(ty) = ret_iter.next() {
3745                                let val = self.locals.tmp("ok");
3746                                if args.len() > 0 {
3747                                    uwrite!(args, ", ");
3748                                }
3749                                uwrite!(args, "&{val}");
3750                                let ty = self.r#gen.r#gen.type_name(ty);
3751                                uwriteln!(self.src, "{} {};", ty, val);
3752                                Some(val)
3753                            } else {
3754                                None
3755                            }
3756                        } else {
3757                            None
3758                        };
3759                        let err_name = if let Some(ty) = ret_iter.next() {
3760                            let val = self.locals.tmp("err");
3761                            if args.len() > 0 {
3762                                uwrite!(args, ", ")
3763                            }
3764                            uwrite!(args, "&{val}");
3765                            let ty = self.r#gen.r#gen.type_name(ty);
3766                            uwriteln!(self.src, "{} {};", ty, val);
3767                            Some(val)
3768                        } else {
3769                            None
3770                        };
3771                        assert!(ret_iter.next().is_none());
3772                        uwrite!(self.src, "");
3773                        uwriteln!(self.src, "{ret}.is_err = !{}({args});", self.sig.name);
3774                        if err.is_some() {
3775                            if let Some(err_name) = err_name {
3776                                uwriteln!(
3777                                    self.src,
3778                                    "if ({ret}.is_err) {{
3779                                        {ret}.val.err = {err_name};
3780                                    }}",
3781                                );
3782                            }
3783                        }
3784                        if ok.is_some() {
3785                            if let Some(ok_name) = ok_name {
3786                                uwriteln!(
3787                                    self.src,
3788                                    "if (!{ret}.is_err) {{
3789                                        {ret}.val.ok = {ok_name};
3790                                    }}"
3791                                );
3792                            } else {
3793                                uwrite!(self.src, "\n");
3794                            }
3795                        }
3796                        results.push(ret);
3797                    }
3798                }
3799            }
3800            Instruction::Return { .. } if self.r#gen.in_import => match self.sig.ret.scalar {
3801                None => {
3802                    for op in operands.iter() {
3803                        self.store_in_retptr(op);
3804                    }
3805                }
3806                Some(Scalar::Void) => {
3807                    assert!(operands.is_empty());
3808                }
3809                Some(Scalar::Type(_)) => {
3810                    assert_eq!(operands.len(), 1);
3811                    self.src.push_str("return ");
3812                    self.src.push_str(&operands[0]);
3813                    self.src.push_str(";\n");
3814                }
3815                Some(Scalar::OptionBool(_)) => {
3816                    assert_eq!(operands.len(), 1);
3817                    let variant = &operands[0];
3818                    self.store_in_retptr(&format!("{variant}.val"));
3819                    self.src.push_str("return ");
3820                    self.src.push_str(&variant);
3821                    self.src.push_str(".is_some;\n");
3822                }
3823                Some(Scalar::ResultBool(ok, err)) => {
3824                    assert_eq!(operands.len(), 1);
3825                    let variant = &operands[0];
3826                    assert!(self.sig.retptrs.len() <= 2);
3827                    uwriteln!(self.src, "if (!{}.is_err) {{", variant);
3828                    if ok.is_some() {
3829                        if ok.is_some() {
3830                            self.store_in_retptr(&format!("{variant}.val.ok"));
3831                        } else {
3832                            self.empty_return_value();
3833                        }
3834                    }
3835                    uwriteln!(
3836                        self.src,
3837                        "   return 1;
3838                            }} else {{"
3839                    );
3840                    if err.is_some() {
3841                        if err.is_some() {
3842                            self.store_in_retptr(&format!("{variant}.val.err"));
3843                        } else {
3844                            self.empty_return_value();
3845                        }
3846                    }
3847                    uwriteln!(
3848                        self.src,
3849                        "   return 0;
3850                            }}"
3851                    );
3852                    assert_eq!(self.ret_store_cnt, self.sig.retptrs.len());
3853                }
3854            },
3855            Instruction::Return { amt, .. } => {
3856                // Emit all temporary borrow decls
3857                let src = std::mem::replace(&mut self.src, std::mem::take(&mut self.borrow_decls));
3858                self.src.append_src(&src);
3859
3860                for DroppableBorrow { name, ty } in self.borrows.iter() {
3861                    let drop_fn = self.r#gen.r#gen.resources[ty].drop_fn.as_str();
3862                    uwriteln!(self.src, "if ({name} != 0) {{");
3863                    uwriteln!(self.src, "  {drop_fn}({name});");
3864                    uwriteln!(self.src, "}}");
3865                }
3866
3867                assert!(*amt <= 1);
3868                if *amt == 1 {
3869                    uwriteln!(self.src, "return {};", operands[0]);
3870                }
3871            }
3872
3873            Instruction::I32Load { offset } => self.load("int32_t", *offset, operands, results),
3874            Instruction::I64Load { offset } => self.load("int64_t", *offset, operands, results),
3875            Instruction::F32Load { offset } => self.load("float", *offset, operands, results),
3876            Instruction::F64Load { offset } => self.load("double", *offset, operands, results),
3877            Instruction::PointerLoad { offset } => {
3878                self.load("uint8_t *", *offset, operands, results)
3879            }
3880            Instruction::LengthLoad { offset } => self.load("size_t", *offset, operands, results),
3881            Instruction::I32Store { offset } => self.store("int32_t", *offset, operands),
3882            Instruction::I64Store { offset } => self.store("int64_t", *offset, operands),
3883            Instruction::F32Store { offset } => self.store("float", *offset, operands),
3884            Instruction::F64Store { offset } => self.store("double", *offset, operands),
3885            Instruction::I32Store8 { offset } => self.store("int8_t", *offset, operands),
3886            Instruction::I32Store16 { offset } => self.store("int16_t", *offset, operands),
3887            Instruction::PointerStore { offset } => self.store("uint8_t *", *offset, operands),
3888            Instruction::LengthStore { offset } => self.store("size_t", *offset, operands),
3889
3890            Instruction::I32Load8U { offset } => {
3891                self.load_ext("uint8_t", *offset, operands, results)
3892            }
3893            Instruction::I32Load8S { offset } => {
3894                self.load_ext("int8_t", *offset, operands, results)
3895            }
3896            Instruction::I32Load16U { offset } => {
3897                self.load_ext("uint16_t", *offset, operands, results)
3898            }
3899            Instruction::I32Load16S { offset } => {
3900                self.load_ext("int16_t", *offset, operands, results)
3901            }
3902
3903            Instruction::GuestDeallocate { .. } => {
3904                uwriteln!(self.src, "free({});", operands[0]);
3905            }
3906            Instruction::GuestDeallocateString => {
3907                uwriteln!(self.src, "if (({}) > 0) {{", operands[1]);
3908                uwriteln!(self.src, "free({});", operands[0]);
3909                uwriteln!(self.src, "}}");
3910            }
3911            Instruction::GuestDeallocateVariant { blocks } => {
3912                let blocks = self
3913                    .blocks
3914                    .drain(self.blocks.len() - blocks..)
3915                    .collect::<Vec<_>>();
3916
3917                uwriteln!(self.src, "switch ((int32_t) {}) {{", operands[0]);
3918                for (i, (block, results)) in blocks.into_iter().enumerate() {
3919                    assert!(results.is_empty());
3920                    uwriteln!(self.src, "case {}: {{", i);
3921                    self.src.push_str(&block);
3922                    self.src.push_str("break;\n}\n");
3923                }
3924                self.src.push_str("}\n");
3925            }
3926            Instruction::GuestDeallocateList { element } => {
3927                let (body, results) = self.blocks.pop().unwrap();
3928                assert!(results.is_empty());
3929                let len = self.locals.tmp("len");
3930                uwriteln!(self.src, "size_t {len} = {};", operands[1]);
3931                uwriteln!(self.src, "if ({len} > 0) {{");
3932                let ptr = self.locals.tmp("ptr");
3933                uwriteln!(self.src, "uint8_t *{ptr} = {};", operands[0]);
3934                let i = self.locals.tmp("i");
3935                uwriteln!(self.src, "for (size_t {i} = 0; {i} < {len}; {i}++) {{");
3936                let size = self.r#gen.r#gen.sizes.size(element);
3937                uwriteln!(
3938                    self.src,
3939                    "uint8_t *base = {ptr} + {i} * {};",
3940                    size.format(POINTER_SIZE_EXPRESSION)
3941                );
3942                uwriteln!(self.src, "(void) base;");
3943                uwrite!(self.src, "{body}");
3944                uwriteln!(self.src, "}}");
3945                uwriteln!(self.src, "free({ptr});");
3946                uwriteln!(self.src, "}}");
3947            }
3948
3949            Instruction::Flush { amt } => {
3950                results.extend(operands.iter().take(*amt).cloned());
3951            }
3952
3953            Instruction::AsyncTaskReturn { name, params } => {
3954                let body = match &mut self.deferred_task_return {
3955                    DeferredTaskReturn::Generating { prev_src } => {
3956                        mem::swap(&mut self.src, prev_src);
3957                        mem::take(prev_src)
3958                    }
3959                    _ => unreachable!(),
3960                };
3961                assert_eq!(params.len(), operands.len());
3962                self.deferred_task_return = DeferredTaskReturn::Emitted {
3963                    name: name.to_string(),
3964                    body,
3965                    params: params
3966                        .iter()
3967                        .zip(operands)
3968                        .map(|(a, b)| (*a, b.clone()))
3969                        .collect(),
3970                };
3971            }
3972
3973            Instruction::FutureLift { .. } => {
3974                results.push(format!("((uint32_t) {})", operands[0]));
3975            }
3976            Instruction::FutureLower { .. } => {
3977                results.push(format!("((int32_t) {})", operands[0]));
3978            }
3979            Instruction::StreamLift { .. } => {
3980                results.push(format!("((uint32_t) {})", operands[0]));
3981            }
3982            Instruction::StreamLower { .. } => {
3983                results.push(format!("((int32_t) {})", operands[0]));
3984            }
3985
3986            i => unimplemented!("{:?}", i),
3987        }
3988    }
3989}
3990
3991#[derive(Default, Clone, Copy)]
3992enum SourceType {
3993    #[default]
3994    HDefs,
3995    HFns,
3996    // HHelpers,
3997    // CDefs,
3998    // CFns,
3999    // CHelpers,
4000    // CAdapters,
4001}
4002
4003#[derive(Default)]
4004struct Source {
4005    h_defs: wit_bindgen_core::Source,
4006    h_fns: wit_bindgen_core::Source,
4007    h_helpers: wit_bindgen_core::Source,
4008    h_async: wit_bindgen_core::Source,
4009    c_defs: wit_bindgen_core::Source,
4010    c_fns: wit_bindgen_core::Source,
4011    c_helpers: wit_bindgen_core::Source,
4012    c_adapters: wit_bindgen_core::Source,
4013    c_async: wit_bindgen_core::Source,
4014}
4015
4016impl Source {
4017    fn src(&mut self, stype: SourceType) -> &mut wit_bindgen_core::Source {
4018        match stype {
4019            SourceType::HDefs => &mut self.h_defs,
4020            SourceType::HFns => &mut self.h_fns,
4021        }
4022    }
4023    fn append(&mut self, append_src: &Source) {
4024        self.h_defs.push_str(&append_src.h_defs);
4025        self.h_fns.push_str(&append_src.h_fns);
4026        self.h_helpers.push_str(&append_src.h_helpers);
4027        self.h_async.push_str(&append_src.h_async);
4028        self.c_defs.push_str(&append_src.c_defs);
4029        self.c_fns.push_str(&append_src.c_fns);
4030        self.c_helpers.push_str(&append_src.c_helpers);
4031        self.c_adapters.push_str(&append_src.c_adapters);
4032        self.c_async.push_str(&append_src.c_async);
4033    }
4034    fn h_defs(&mut self, s: &str) {
4035        self.h_defs.push_str(s);
4036    }
4037    fn h_fns(&mut self, s: &str) {
4038        self.h_fns.push_str(s);
4039    }
4040    fn h_helpers(&mut self, s: &str) {
4041        self.h_helpers.push_str(s);
4042    }
4043    fn c_fns(&mut self, s: &str) {
4044        self.c_fns.push_str(s);
4045    }
4046    fn c_helpers(&mut self, s: &str) {
4047        self.c_helpers.push_str(s);
4048    }
4049    fn c_adapters(&mut self, s: &str) {
4050        self.c_adapters.push_str(s);
4051    }
4052}
4053
4054pub fn wasm_type(ty: WasmType) -> &'static str {
4055    match ty {
4056        WasmType::I32 => "int32_t",
4057        WasmType::I64 => "int64_t",
4058        WasmType::F32 => "float",
4059        WasmType::F64 => "double",
4060        WasmType::Pointer => "uint8_t *",
4061        WasmType::PointerOrI64 => "int64_t",
4062        WasmType::Length => "size_t",
4063    }
4064}
4065
4066pub fn int_repr(ty: Int) -> &'static str {
4067    match ty {
4068        Int::U8 => "uint8_t",
4069        Int::U16 => "uint16_t",
4070        Int::U32 => "uint32_t",
4071        Int::U64 => "uint64_t",
4072    }
4073}
4074
4075pub fn flags_repr(f: &Flags) -> Int {
4076    match f.repr() {
4077        FlagsRepr::U8 => Int::U8,
4078        FlagsRepr::U16 => Int::U16,
4079        FlagsRepr::U32(1) => Int::U32,
4080        FlagsRepr::U32(2) => Int::U64,
4081        repr => panic!("unimplemented flags {repr:?}"),
4082    }
4083}
4084
4085pub fn is_arg_by_pointer(resolve: &Resolve, ty: &Type) -> bool {
4086    match ty {
4087        Type::Id(id) => match resolve.types[*id].kind {
4088            TypeDefKind::Type(t) => is_arg_by_pointer(resolve, &t),
4089            TypeDefKind::Variant(_) => true,
4090            TypeDefKind::Option(_) => true,
4091            TypeDefKind::Result(_) => true,
4092            TypeDefKind::Enum(_) => false,
4093            TypeDefKind::Flags(_) => false,
4094            TypeDefKind::Handle(_) => false,
4095            TypeDefKind::Tuple(_) | TypeDefKind::Record(_) | TypeDefKind::List(_) => true,
4096            TypeDefKind::Future(_) => false,
4097            TypeDefKind::Stream(_) => false,
4098            TypeDefKind::Resource => todo!("is_arg_by_pointer for resource"),
4099            TypeDefKind::Unknown => unreachable!(),
4100            TypeDefKind::FixedLengthList(..) => todo!(),
4101            TypeDefKind::Map(..) => todo!(),
4102        },
4103        Type::String => true,
4104        _ => false,
4105    }
4106}
4107
4108pub fn to_c_ident(name: &str) -> String {
4109    match name {
4110        // Escape C and C++ keywords.
4111        // Source: https://en.cppreference.com/w/cpp/keyword
4112        "alignas" => "alignas_".into(),
4113        "alignof" => "alignof_".into(),
4114        "and" => "and_".into(),
4115        "and_eq" => "and_eq_".into(),
4116        "asm" => "asm_".into(),
4117        "atomic_cancel" => "atomic_cancel_".into(),
4118        "atomic_commit" => "atomic_commit_".into(),
4119        "atomic_noexcept" => "atomic_noexcept_".into(),
4120        "auto" => "auto_".into(),
4121        "bitand" => "bitand_".into(),
4122        "bitor" => "bitor_".into(),
4123        "bool" => "bool_".into(),
4124        "break" => "break_".into(),
4125        "case" => "case_".into(),
4126        "catch" => "catch_".into(),
4127        "char" => "char_".into(),
4128        "char8_t" => "char8_t_".into(),
4129        "char16_t" => "char16_t_".into(),
4130        "char32_t" => "char32_t_".into(),
4131        "class" => "class_".into(),
4132        "compl" => "compl_".into(),
4133        "concept" => "concept_".into(),
4134        "const" => "const_".into(),
4135        "consteval" => "consteval_".into(),
4136        "constexpr" => "constexpr_".into(),
4137        "constinit" => "constinit_".into(),
4138        "const_cast" => "const_cast_".into(),
4139        "continue" => "continue_".into(),
4140        "co_await" => "co_await_".into(),
4141        "co_return" => "co_return_".into(),
4142        "co_yield" => "co_yield_".into(),
4143        "decltype" => "decltype_".into(),
4144        "default" => "default_".into(),
4145        "delete" => "delete_".into(),
4146        "do" => "do_".into(),
4147        "double" => "double_".into(),
4148        "dynamic_cast" => "dynamic_cast_".into(),
4149        "else" => "else_".into(),
4150        "enum" => "enum_".into(),
4151        "explicit" => "explicit_".into(),
4152        "export" => "export_".into(),
4153        "extern" => "extern_".into(),
4154        "false" => "false_".into(),
4155        "float" => "float_".into(),
4156        "for" => "for_".into(),
4157        "friend" => "friend_".into(),
4158        "goto" => "goto_".into(),
4159        "if" => "if_".into(),
4160        "inline" => "inline_".into(),
4161        "int" => "int_".into(),
4162        "long" => "long_".into(),
4163        "mutable" => "mutable_".into(),
4164        "namespace" => "namespace_".into(),
4165        "new" => "new_".into(),
4166        "noexcept" => "noexcept_".into(),
4167        "not" => "not_".into(),
4168        "not_eq" => "not_eq_".into(),
4169        "nullptr" => "nullptr_".into(),
4170        "operator" => "operator_".into(),
4171        "or" => "or_".into(),
4172        "or_eq" => "or_eq_".into(),
4173        "private" => "private_".into(),
4174        "protected" => "protected_".into(),
4175        "public" => "public_".into(),
4176        "reflexpr" => "reflexpr_".into(),
4177        "register" => "register_".into(),
4178        "reinterpret_cast" => "reinterpret_cast_".into(),
4179        "requires" => "requires_".into(),
4180        "return" => "return_".into(),
4181        "short" => "short_".into(),
4182        "signed" => "signed_".into(),
4183        "sizeof" => "sizeof_".into(),
4184        "static" => "static_".into(),
4185        "static_assert" => "static_assert_".into(),
4186        "static_cast" => "static_cast_".into(),
4187        "struct" => "struct_".into(),
4188        "switch" => "switch_".into(),
4189        "synchronized" => "synchronized_".into(),
4190        "template" => "template_".into(),
4191        "this" => "this_".into(),
4192        "thread_local" => "thread_local_".into(),
4193        "throw" => "throw_".into(),
4194        "true" => "true_".into(),
4195        "try" => "try_".into(),
4196        "typedef" => "typedef_".into(),
4197        "typeid" => "typeid_".into(),
4198        "typename" => "typename_".into(),
4199        "union" => "union_".into(),
4200        "unsigned" => "unsigned_".into(),
4201        "using" => "using_".into(),
4202        "virtual" => "virtual_".into(),
4203        "void" => "void_".into(),
4204        "volatile" => "volatile_".into(),
4205        "wchar_t" => "wchar_t_".into(),
4206        "while" => "while_".into(),
4207        "xor" => "xor_".into(),
4208        "xor_eq" => "xor_eq_".into(),
4209        "_Packed" => "_Packed_".into(),
4210        // ret and err needs to be escaped because they are used as
4211        //  variable names for option and result flattening.
4212        "ret" => "ret_".into(),
4213        "err" => "err_".into(),
4214        // C standard library macros that conflict when used as identifiers
4215        "stdin" => "stdin_".into(),
4216        "stdout" => "stdout_".into(),
4217        "stderr" => "stderr_".into(),
4218        s => s.to_snake_case(),
4219    }
4220}
4221
4222const POINTER_SIZE_EXPRESSION: &str = "sizeof(void*)";