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1 use crate::syntax::atom::Atom::{self, *};
2 use crate::syntax::report::Errors;
3 use crate::syntax::visit::{self, Visit};
4 use crate::syntax::{
5     error, ident, trivial, Api, Array, Enum, ExternFn, ExternType, Impl, Lang, NamedType, Ptr,
6     Receiver, Ref, Signature, SliceRef, Struct, Trait, Ty1, Type, TypeAlias, Types,
7 };
8 use proc_macro2::{Delimiter, Group, Ident, TokenStream};
9 use quote::{quote, ToTokens};
10 use std::fmt::Display;
11 
12 pub(crate) struct Check<'a> {
13     apis: &'a [Api],
14     types: &'a Types<'a>,
15     errors: &'a mut Errors,
16 }
17 
typecheck(cx: &mut Errors, apis: &[Api], types: &Types)18 pub(crate) fn typecheck(cx: &mut Errors, apis: &[Api], types: &Types) {
19     do_typecheck(&mut Check {
20         apis,
21         types,
22         errors: cx,
23     });
24 }
25 
do_typecheck(cx: &mut Check)26 fn do_typecheck(cx: &mut Check) {
27     ident::check_all(cx, cx.apis);
28 
29     for ty in cx.types {
30         match ty {
31             Type::Ident(ident) => check_type_ident(cx, ident),
32             Type::RustBox(ptr) => check_type_box(cx, ptr),
33             Type::RustVec(ty) => check_type_rust_vec(cx, ty),
34             Type::UniquePtr(ptr) => check_type_unique_ptr(cx, ptr),
35             Type::SharedPtr(ptr) => check_type_shared_ptr(cx, ptr),
36             Type::WeakPtr(ptr) => check_type_weak_ptr(cx, ptr),
37             Type::CxxVector(ptr) => check_type_cxx_vector(cx, ptr),
38             Type::Ref(ty) => check_type_ref(cx, ty),
39             Type::Ptr(ty) => check_type_ptr(cx, ty),
40             Type::Array(array) => check_type_array(cx, array),
41             Type::Fn(ty) => check_type_fn(cx, ty),
42             Type::SliceRef(ty) => check_type_slice_ref(cx, ty),
43             Type::Str(_) | Type::Void(_) => {}
44         }
45     }
46 
47     for api in cx.apis {
48         match api {
49             Api::Include(_) => {}
50             Api::Struct(strct) => check_api_struct(cx, strct),
51             Api::Enum(enm) => check_api_enum(cx, enm),
52             Api::CxxType(ety) | Api::RustType(ety) => check_api_type(cx, ety),
53             Api::CxxFunction(efn) | Api::RustFunction(efn) => check_api_fn(cx, efn),
54             Api::TypeAlias(alias) => check_api_type_alias(cx, alias),
55             Api::Impl(imp) => check_api_impl(cx, imp),
56         }
57     }
58 }
59 
60 impl Check<'_> {
error(&mut self, sp: impl ToTokens, msg: impl Display)61     pub(crate) fn error(&mut self, sp: impl ToTokens, msg: impl Display) {
62         self.errors.error(sp, msg);
63     }
64 }
65 
check_type_ident(cx: &mut Check, name: &NamedType)66 fn check_type_ident(cx: &mut Check, name: &NamedType) {
67     let ident = &name.rust;
68     if Atom::from(ident).is_none()
69         && !cx.types.structs.contains_key(ident)
70         && !cx.types.enums.contains_key(ident)
71         && !cx.types.cxx.contains(ident)
72         && !cx.types.rust.contains(ident)
73     {
74         let msg = format!("unsupported type: {}", ident);
75         cx.error(ident, &msg);
76     }
77 }
78 
check_type_box(cx: &mut Check, ptr: &Ty1)79 fn check_type_box(cx: &mut Check, ptr: &Ty1) {
80     if let Type::Ident(ident) = &ptr.inner {
81         if cx.types.cxx.contains(&ident.rust)
82             && !cx.types.aliases.contains_key(&ident.rust)
83             && !cx.types.structs.contains_key(&ident.rust)
84             && !cx.types.enums.contains_key(&ident.rust)
85         {
86             cx.error(ptr, error::BOX_CXX_TYPE.msg);
87         }
88 
89         if Atom::from(&ident.rust).is_none() {
90             return;
91         }
92     }
93 
94     cx.error(ptr, "unsupported target type of Box");
95 }
96 
check_type_rust_vec(cx: &mut Check, ty: &Ty1)97 fn check_type_rust_vec(cx: &mut Check, ty: &Ty1) {
98     match &ty.inner {
99         Type::Ident(ident) => {
100             if cx.types.cxx.contains(&ident.rust)
101                 && !cx.types.aliases.contains_key(&ident.rust)
102                 && !cx.types.structs.contains_key(&ident.rust)
103                 && !cx.types.enums.contains_key(&ident.rust)
104             {
105                 cx.error(ty, "Rust Vec containing C++ type is not supported yet");
106                 return;
107             }
108 
109             match Atom::from(&ident.rust) {
110                 None | Some(Char) | Some(U8) | Some(U16) | Some(U32) | Some(U64) | Some(Usize)
111                 | Some(I8) | Some(I16) | Some(I32) | Some(I64) | Some(Isize) | Some(F32)
112                 | Some(F64) | Some(RustString) => return,
113                 Some(Bool) => { /* todo */ }
114                 Some(CxxString) => {}
115             }
116         }
117         Type::Str(_) => return,
118         _ => {}
119     }
120 
121     cx.error(ty, "unsupported element type of Vec");
122 }
123 
check_type_unique_ptr(cx: &mut Check, ptr: &Ty1)124 fn check_type_unique_ptr(cx: &mut Check, ptr: &Ty1) {
125     if let Type::Ident(ident) = &ptr.inner {
126         if cx.types.rust.contains(&ident.rust) {
127             cx.error(ptr, "unique_ptr of a Rust type is not supported yet");
128             return;
129         }
130 
131         match Atom::from(&ident.rust) {
132             None | Some(CxxString) => return,
133             _ => {}
134         }
135     } else if let Type::CxxVector(_) = &ptr.inner {
136         return;
137     }
138 
139     cx.error(ptr, "unsupported unique_ptr target type");
140 }
141 
check_type_shared_ptr(cx: &mut Check, ptr: &Ty1)142 fn check_type_shared_ptr(cx: &mut Check, ptr: &Ty1) {
143     if let Type::Ident(ident) = &ptr.inner {
144         if cx.types.rust.contains(&ident.rust) {
145             cx.error(ptr, "shared_ptr of a Rust type is not supported yet");
146             return;
147         }
148 
149         match Atom::from(&ident.rust) {
150             None | Some(Bool) | Some(U8) | Some(U16) | Some(U32) | Some(U64) | Some(Usize)
151             | Some(I8) | Some(I16) | Some(I32) | Some(I64) | Some(Isize) | Some(F32)
152             | Some(F64) | Some(CxxString) => return,
153             Some(Char) | Some(RustString) => {}
154         }
155     } else if let Type::CxxVector(_) = &ptr.inner {
156         cx.error(ptr, "std::shared_ptr<std::vector> is not supported yet");
157         return;
158     }
159 
160     cx.error(ptr, "unsupported shared_ptr target type");
161 }
162 
check_type_weak_ptr(cx: &mut Check, ptr: &Ty1)163 fn check_type_weak_ptr(cx: &mut Check, ptr: &Ty1) {
164     if let Type::Ident(ident) = &ptr.inner {
165         if cx.types.rust.contains(&ident.rust) {
166             cx.error(ptr, "weak_ptr of a Rust type is not supported yet");
167             return;
168         }
169 
170         match Atom::from(&ident.rust) {
171             None | Some(Bool) | Some(U8) | Some(U16) | Some(U32) | Some(U64) | Some(Usize)
172             | Some(I8) | Some(I16) | Some(I32) | Some(I64) | Some(Isize) | Some(F32)
173             | Some(F64) | Some(CxxString) => return,
174             Some(Char) | Some(RustString) => {}
175         }
176     } else if let Type::CxxVector(_) = &ptr.inner {
177         cx.error(ptr, "std::weak_ptr<std::vector> is not supported yet");
178         return;
179     }
180 
181     cx.error(ptr, "unsupported weak_ptr target type");
182 }
183 
check_type_cxx_vector(cx: &mut Check, ptr: &Ty1)184 fn check_type_cxx_vector(cx: &mut Check, ptr: &Ty1) {
185     if let Type::Ident(ident) = &ptr.inner {
186         if cx.types.rust.contains(&ident.rust) {
187             cx.error(
188                 ptr,
189                 "C++ vector containing a Rust type is not supported yet",
190             );
191             return;
192         }
193 
194         match Atom::from(&ident.rust) {
195             None | Some(U8) | Some(U16) | Some(U32) | Some(U64) | Some(Usize) | Some(I8)
196             | Some(I16) | Some(I32) | Some(I64) | Some(Isize) | Some(F32) | Some(F64)
197             | Some(CxxString) => return,
198             Some(Char) => { /* todo */ }
199             Some(Bool) | Some(RustString) => {}
200         }
201     }
202 
203     cx.error(ptr, "unsupported vector element type");
204 }
205 
check_type_ref(cx: &mut Check, ty: &Ref)206 fn check_type_ref(cx: &mut Check, ty: &Ref) {
207     if ty.mutable && !ty.pinned {
208         if let Some(requires_pin) = match &ty.inner {
209             Type::Ident(ident) if ident.rust == CxxString || is_opaque_cxx(cx, &ident.rust) => {
210                 Some(ident.rust.to_string())
211             }
212             Type::CxxVector(_) => Some("CxxVector<...>".to_owned()),
213             _ => None,
214         } {
215             cx.error(
216                 ty,
217                 format!(
218                     "mutable reference to C++ type requires a pin -- use Pin<&mut {}>",
219                     requires_pin,
220                 ),
221             );
222         }
223     }
224 
225     match ty.inner {
226         Type::Fn(_) | Type::Void(_) => {}
227         Type::Ref(_) => {
228             cx.error(ty, "C++ does not allow references to references");
229             return;
230         }
231         _ => return,
232     }
233 
234     cx.error(ty, "unsupported reference type");
235 }
236 
check_type_ptr(cx: &mut Check, ty: &Ptr)237 fn check_type_ptr(cx: &mut Check, ty: &Ptr) {
238     match ty.inner {
239         Type::Fn(_) | Type::Void(_) => {}
240         Type::Ref(_) => {
241             cx.error(ty, "C++ does not allow pointer to reference as a type");
242             return;
243         }
244         _ => return,
245     }
246 
247     cx.error(ty, "unsupported pointer type");
248 }
249 
check_type_slice_ref(cx: &mut Check, ty: &SliceRef)250 fn check_type_slice_ref(cx: &mut Check, ty: &SliceRef) {
251     let supported = !is_unsized(cx, &ty.inner)
252         || match &ty.inner {
253             Type::Ident(ident) => cx.types.rust.contains(&ident.rust),
254             _ => false,
255         };
256 
257     if !supported {
258         let mutable = if ty.mutable { "mut " } else { "" };
259         let mut msg = format!("unsupported &{}[T] element type", mutable);
260         if let Type::Ident(ident) = &ty.inner {
261             if is_opaque_cxx(cx, &ident.rust) {
262                 msg += ": opaque C++ type is not supported yet";
263             }
264         }
265         cx.error(ty, msg);
266     }
267 }
268 
check_type_array(cx: &mut Check, ty: &Array)269 fn check_type_array(cx: &mut Check, ty: &Array) {
270     let supported = !is_unsized(cx, &ty.inner);
271 
272     if !supported {
273         cx.error(ty, "unsupported array element type");
274     }
275 }
276 
check_type_fn(cx: &mut Check, ty: &Signature)277 fn check_type_fn(cx: &mut Check, ty: &Signature) {
278     if ty.throws {
279         cx.error(ty, "function pointer returning Result is not supported yet");
280     }
281 
282     for arg in &ty.args {
283         if let Type::Ptr(_) = arg.ty {
284             if ty.unsafety.is_none() {
285                 cx.error(
286                     arg,
287                     "pointer argument requires that the function pointer be marked unsafe",
288                 );
289             }
290         }
291     }
292 }
293 
check_api_struct(cx: &mut Check, strct: &Struct)294 fn check_api_struct(cx: &mut Check, strct: &Struct) {
295     let name = &strct.name;
296     check_reserved_name(cx, &name.rust);
297 
298     if strct.fields.is_empty() {
299         let span = span_for_struct_error(strct);
300         cx.error(span, "structs without any fields are not supported");
301     }
302 
303     if cx.types.cxx.contains(&name.rust) {
304         if let Some(ety) = cx.types.untrusted.get(&name.rust) {
305             let msg = "extern shared struct must be declared in an `unsafe extern` block";
306             cx.error(ety, msg);
307         }
308     }
309 
310     for derive in &strct.derives {
311         if derive.what == Trait::ExternType {
312             let msg = format!("derive({}) on shared struct is not supported", derive);
313             cx.error(derive, msg);
314         }
315     }
316 
317     for field in &strct.fields {
318         if let Type::Fn(_) = field.ty {
319             cx.error(
320                 field,
321                 "function pointers in a struct field are not implemented yet",
322             );
323         } else if is_unsized(cx, &field.ty) {
324             let desc = describe(cx, &field.ty);
325             let msg = format!("using {} by value is not supported", desc);
326             cx.error(field, msg);
327         }
328     }
329 }
330 
check_api_enum(cx: &mut Check, enm: &Enum)331 fn check_api_enum(cx: &mut Check, enm: &Enum) {
332     check_reserved_name(cx, &enm.name.rust);
333 
334     if enm.variants.is_empty() && !enm.explicit_repr {
335         let span = span_for_enum_error(enm);
336         cx.error(
337             span,
338             "explicit #[repr(...)] is required for enum without any variants",
339         );
340     }
341 
342     for derive in &enm.derives {
343         if derive.what == Trait::Default || derive.what == Trait::ExternType {
344             let msg = format!("derive({}) on shared enum is not supported", derive);
345             cx.error(derive, msg);
346         }
347     }
348 }
349 
check_api_type(cx: &mut Check, ety: &ExternType)350 fn check_api_type(cx: &mut Check, ety: &ExternType) {
351     check_reserved_name(cx, &ety.name.rust);
352 
353     for derive in &ety.derives {
354         if derive.what == Trait::ExternType && ety.lang == Lang::Rust {
355             continue;
356         }
357         let lang = match ety.lang {
358             Lang::Rust => "Rust",
359             Lang::Cxx => "C++",
360         };
361         let msg = format!(
362             "derive({}) on opaque {} type is not supported yet",
363             derive, lang,
364         );
365         cx.error(derive, msg);
366     }
367 
368     if !ety.bounds.is_empty() {
369         let bounds = &ety.bounds;
370         let span = quote!(#(#bounds)*);
371         cx.error(span, "extern type bounds are not implemented yet");
372     }
373 
374     if let Some(reasons) = cx.types.required_trivial.get(&ety.name.rust) {
375         let msg = format!(
376             "needs a cxx::ExternType impl in order to be used as {}",
377             trivial::as_what(&ety.name, reasons),
378         );
379         cx.error(ety, msg);
380     }
381 }
382 
check_api_fn(cx: &mut Check, efn: &ExternFn)383 fn check_api_fn(cx: &mut Check, efn: &ExternFn) {
384     match efn.lang {
385         Lang::Cxx => {
386             if !efn.generics.params.is_empty() && !efn.trusted {
387                 let ref span = span_for_generics_error(efn);
388                 cx.error(span, "extern C++ function with lifetimes must be declared in `unsafe extern \"C++\"` block");
389             }
390         }
391         Lang::Rust => {
392             if !efn.generics.params.is_empty() && efn.unsafety.is_none() {
393                 let ref span = span_for_generics_error(efn);
394                 let message = format!(
395                     "must be `unsafe fn {}` in order to expose explicit lifetimes to C++",
396                     efn.name.rust,
397                 );
398                 cx.error(span, message);
399             }
400         }
401     }
402 
403     if let Some(receiver) = &efn.receiver {
404         let ref span = span_for_receiver_error(receiver);
405 
406         if receiver.ty.rust == "Self" {
407             let mutability = match receiver.mutable {
408                 true => "mut ",
409                 false => "",
410             };
411             let msg = format!(
412                 "unnamed receiver type is only allowed if the surrounding extern block contains exactly one extern type; use `self: &{mutability}TheType`",
413                 mutability = mutability,
414             );
415             cx.error(span, msg);
416         } else if cx.types.enums.contains_key(&receiver.ty.rust) {
417             cx.error(
418                 span,
419                 "unsupported receiver type; C++ does not allow member functions on enums",
420             );
421         } else if !cx.types.structs.contains_key(&receiver.ty.rust)
422             && !cx.types.cxx.contains(&receiver.ty.rust)
423             && !cx.types.rust.contains(&receiver.ty.rust)
424         {
425             cx.error(span, "unrecognized receiver type");
426         } else if receiver.mutable && !receiver.pinned && is_opaque_cxx(cx, &receiver.ty.rust) {
427             cx.error(
428                 span,
429                 format!(
430                     "mutable reference to opaque C++ type requires a pin -- use `self: Pin<&mut {}>`",
431                     receiver.ty.rust,
432                 ),
433             );
434         }
435     }
436 
437     for arg in &efn.args {
438         if let Type::Fn(_) = arg.ty {
439             if efn.lang == Lang::Rust {
440                 cx.error(
441                     arg,
442                     "passing a function pointer from C++ to Rust is not implemented yet",
443                 );
444             }
445         } else if let Type::Ptr(_) = arg.ty {
446             if efn.sig.unsafety.is_none() {
447                 cx.error(
448                     arg,
449                     "pointer argument requires that the function be marked unsafe",
450                 );
451             }
452         } else if is_unsized(cx, &arg.ty) {
453             let desc = describe(cx, &arg.ty);
454             let msg = format!("passing {} by value is not supported", desc);
455             cx.error(arg, msg);
456         }
457     }
458 
459     if let Some(ty) = &efn.ret {
460         if let Type::Fn(_) = ty {
461             cx.error(ty, "returning a function pointer is not implemented yet");
462         } else if is_unsized(cx, ty) {
463             let desc = describe(cx, ty);
464             let msg = format!("returning {} by value is not supported", desc);
465             cx.error(ty, msg);
466         }
467     }
468 
469     if efn.lang == Lang::Cxx {
470         check_mut_return_restriction(cx, efn);
471     }
472 }
473 
check_api_type_alias(cx: &mut Check, alias: &TypeAlias)474 fn check_api_type_alias(cx: &mut Check, alias: &TypeAlias) {
475     for derive in &alias.derives {
476         let msg = format!("derive({}) on extern type alias is not supported", derive);
477         cx.error(derive, msg);
478     }
479 }
480 
check_api_impl(cx: &mut Check, imp: &Impl)481 fn check_api_impl(cx: &mut Check, imp: &Impl) {
482     let ty = &imp.ty;
483 
484     if let Some(negative) = imp.negative_token {
485         let span = quote!(#negative #ty);
486         cx.error(span, "negative impl is not supported yet");
487         return;
488     }
489 
490     match ty {
491         Type::RustBox(ty)
492         | Type::RustVec(ty)
493         | Type::UniquePtr(ty)
494         | Type::SharedPtr(ty)
495         | Type::WeakPtr(ty)
496         | Type::CxxVector(ty) => {
497             if let Type::Ident(inner) = &ty.inner {
498                 if Atom::from(&inner.rust).is_none() {
499                     return;
500                 }
501             }
502         }
503         _ => {}
504     }
505 
506     cx.error(imp, "unsupported Self type of explicit impl");
507 }
508 
check_mut_return_restriction(cx: &mut Check, efn: &ExternFn)509 fn check_mut_return_restriction(cx: &mut Check, efn: &ExternFn) {
510     if efn.sig.unsafety.is_some() {
511         // Unrestricted as long as the function is made unsafe-to-call.
512         return;
513     }
514 
515     match &efn.ret {
516         Some(Type::Ref(ty)) if ty.mutable => {}
517         Some(Type::SliceRef(slice)) if slice.mutable => {}
518         _ => return,
519     }
520 
521     if let Some(receiver) = &efn.receiver {
522         if receiver.mutable {
523             return;
524         }
525         let resolve = match cx.types.try_resolve(&receiver.ty) {
526             Some(resolve) => resolve,
527             None => return,
528         };
529         if !resolve.generics.lifetimes.is_empty() {
530             return;
531         }
532     }
533 
534     struct FindLifetimeMut<'a> {
535         cx: &'a Check<'a>,
536         found: bool,
537     }
538 
539     impl<'t, 'a> Visit<'t> for FindLifetimeMut<'a> {
540         fn visit_type(&mut self, ty: &'t Type) {
541             self.found |= match ty {
542                 Type::Ref(ty) => ty.mutable,
543                 Type::SliceRef(slice) => slice.mutable,
544                 Type::Ident(ident) if Atom::from(&ident.rust).is_none() => {
545                     match self.cx.types.try_resolve(ident) {
546                         Some(resolve) => !resolve.generics.lifetimes.is_empty(),
547                         None => true,
548                     }
549                 }
550                 _ => false,
551             };
552             visit::visit_type(self, ty);
553         }
554     }
555 
556     let mut visitor = FindLifetimeMut { cx, found: false };
557 
558     for arg in &efn.args {
559         visitor.visit_type(&arg.ty);
560     }
561 
562     if visitor.found {
563         return;
564     }
565 
566     cx.error(
567         efn,
568         "&mut return type is not allowed unless there is a &mut argument",
569     );
570 }
571 
check_reserved_name(cx: &mut Check, ident: &Ident)572 fn check_reserved_name(cx: &mut Check, ident: &Ident) {
573     if ident == "Box"
574         || ident == "UniquePtr"
575         || ident == "SharedPtr"
576         || ident == "WeakPtr"
577         || ident == "Vec"
578         || ident == "CxxVector"
579         || ident == "str"
580         || Atom::from(ident).is_some()
581     {
582         cx.error(ident, "reserved name");
583     }
584 }
585 
is_unsized(cx: &mut Check, ty: &Type) -> bool586 fn is_unsized(cx: &mut Check, ty: &Type) -> bool {
587     match ty {
588         Type::Ident(ident) => {
589             let ident = &ident.rust;
590             ident == CxxString || is_opaque_cxx(cx, ident) || cx.types.rust.contains(ident)
591         }
592         Type::Array(array) => is_unsized(cx, &array.inner),
593         Type::CxxVector(_) | Type::Fn(_) | Type::Void(_) => true,
594         Type::RustBox(_)
595         | Type::RustVec(_)
596         | Type::UniquePtr(_)
597         | Type::SharedPtr(_)
598         | Type::WeakPtr(_)
599         | Type::Ref(_)
600         | Type::Ptr(_)
601         | Type::Str(_)
602         | Type::SliceRef(_) => false,
603     }
604 }
605 
is_opaque_cxx(cx: &mut Check, ty: &Ident) -> bool606 fn is_opaque_cxx(cx: &mut Check, ty: &Ident) -> bool {
607     cx.types.cxx.contains(ty)
608         && !cx.types.structs.contains_key(ty)
609         && !cx.types.enums.contains_key(ty)
610         && !(cx.types.aliases.contains_key(ty) && cx.types.required_trivial.contains_key(ty))
611 }
612 
span_for_struct_error(strct: &Struct) -> TokenStream613 fn span_for_struct_error(strct: &Struct) -> TokenStream {
614     let struct_token = strct.struct_token;
615     let mut brace_token = Group::new(Delimiter::Brace, TokenStream::new());
616     brace_token.set_span(strct.brace_token.span);
617     quote!(#struct_token #brace_token)
618 }
619 
span_for_enum_error(enm: &Enum) -> TokenStream620 fn span_for_enum_error(enm: &Enum) -> TokenStream {
621     let enum_token = enm.enum_token;
622     let mut brace_token = Group::new(Delimiter::Brace, TokenStream::new());
623     brace_token.set_span(enm.brace_token.span);
624     quote!(#enum_token #brace_token)
625 }
626 
span_for_receiver_error(receiver: &Receiver) -> TokenStream627 fn span_for_receiver_error(receiver: &Receiver) -> TokenStream {
628     let ampersand = receiver.ampersand;
629     let lifetime = &receiver.lifetime;
630     let mutability = receiver.mutability;
631     if receiver.shorthand {
632         let var = receiver.var;
633         quote!(#ampersand #lifetime #mutability #var)
634     } else {
635         let ty = &receiver.ty;
636         quote!(#ampersand #lifetime #mutability #ty)
637     }
638 }
639 
span_for_generics_error(efn: &ExternFn) -> TokenStream640 fn span_for_generics_error(efn: &ExternFn) -> TokenStream {
641     let unsafety = efn.unsafety;
642     let fn_token = efn.fn_token;
643     let generics = &efn.generics;
644     quote!(#unsafety #fn_token #generics)
645 }
646 
describe(cx: &mut Check, ty: &Type) -> String647 fn describe(cx: &mut Check, ty: &Type) -> String {
648     match ty {
649         Type::Ident(ident) => {
650             if cx.types.structs.contains_key(&ident.rust) {
651                 "struct".to_owned()
652             } else if cx.types.enums.contains_key(&ident.rust) {
653                 "enum".to_owned()
654             } else if cx.types.aliases.contains_key(&ident.rust) {
655                 "C++ type".to_owned()
656             } else if cx.types.cxx.contains(&ident.rust) {
657                 "opaque C++ type".to_owned()
658             } else if cx.types.rust.contains(&ident.rust) {
659                 "opaque Rust type".to_owned()
660             } else if Atom::from(&ident.rust) == Some(CxxString) {
661                 "C++ string".to_owned()
662             } else if Atom::from(&ident.rust) == Some(Char) {
663                 "C char".to_owned()
664             } else {
665                 ident.rust.to_string()
666             }
667         }
668         Type::RustBox(_) => "Box".to_owned(),
669         Type::RustVec(_) => "Vec".to_owned(),
670         Type::UniquePtr(_) => "unique_ptr".to_owned(),
671         Type::SharedPtr(_) => "shared_ptr".to_owned(),
672         Type::WeakPtr(_) => "weak_ptr".to_owned(),
673         Type::Ref(_) => "reference".to_owned(),
674         Type::Ptr(_) => "raw pointer".to_owned(),
675         Type::Str(_) => "&str".to_owned(),
676         Type::CxxVector(_) => "C++ vector".to_owned(),
677         Type::SliceRef(_) => "slice".to_owned(),
678         Type::Fn(_) => "function pointer".to_owned(),
679         Type::Void(_) => "()".to_owned(),
680         Type::Array(_) => "array".to_owned(),
681     }
682 }
683