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, Lifetimes,
6 NamedType, Ptr, 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 use syn::{GenericParam, Generics, Lifetime};
12
13 pub(crate) struct Check<'a> {
14 apis: &'a [Api],
15 types: &'a Types<'a>,
16 errors: &'a mut Errors,
17 generator: Generator,
18 }
19
20 pub(crate) enum Generator {
21 // cxx-build crate, cxxbridge cli, cxx-gen.
22 #[allow(dead_code)]
23 Build,
24 // cxxbridge-macro. This is relevant in that the macro output is going to
25 // get fed straight to rustc, so for errors that rustc already contains
26 // logic to catch (probably with a better diagnostic than what the proc
27 // macro API is able to produce), we avoid duplicating them in our own
28 // diagnostics.
29 #[allow(dead_code)]
30 Macro,
31 }
32
typecheck(cx: &mut Errors, apis: &[Api], types: &Types, generator: Generator)33 pub(crate) fn typecheck(cx: &mut Errors, apis: &[Api], types: &Types, generator: Generator) {
34 do_typecheck(&mut Check {
35 apis,
36 types,
37 errors: cx,
38 generator,
39 });
40 }
41
do_typecheck(cx: &mut Check)42 fn do_typecheck(cx: &mut Check) {
43 ident::check_all(cx, cx.apis);
44
45 for ty in cx.types {
46 match ty {
47 Type::Ident(ident) => check_type_ident(cx, ident),
48 Type::RustBox(ptr) => check_type_box(cx, ptr),
49 Type::RustVec(ty) => check_type_rust_vec(cx, ty),
50 Type::UniquePtr(ptr) => check_type_unique_ptr(cx, ptr),
51 Type::SharedPtr(ptr) => check_type_shared_ptr(cx, ptr),
52 Type::WeakPtr(ptr) => check_type_weak_ptr(cx, ptr),
53 Type::CxxVector(ptr) => check_type_cxx_vector(cx, ptr),
54 Type::Ref(ty) => check_type_ref(cx, ty),
55 Type::Ptr(ty) => check_type_ptr(cx, ty),
56 Type::Array(array) => check_type_array(cx, array),
57 Type::Fn(ty) => check_type_fn(cx, ty),
58 Type::SliceRef(ty) => check_type_slice_ref(cx, ty),
59 Type::Str(_) | Type::Void(_) => {}
60 }
61 }
62
63 for api in cx.apis {
64 match api {
65 Api::Include(_) => {}
66 Api::Struct(strct) => check_api_struct(cx, strct),
67 Api::Enum(enm) => check_api_enum(cx, enm),
68 Api::CxxType(ety) | Api::RustType(ety) => check_api_type(cx, ety),
69 Api::CxxFunction(efn) | Api::RustFunction(efn) => check_api_fn(cx, efn),
70 Api::TypeAlias(alias) => check_api_type_alias(cx, alias),
71 Api::Impl(imp) => check_api_impl(cx, imp),
72 }
73 }
74 }
75
76 impl Check<'_> {
error(&mut self, sp: impl ToTokens, msg: impl Display)77 pub(crate) fn error(&mut self, sp: impl ToTokens, msg: impl Display) {
78 self.errors.error(sp, msg);
79 }
80 }
81
check_type_ident(cx: &mut Check, name: &NamedType)82 fn check_type_ident(cx: &mut Check, name: &NamedType) {
83 let ident = &name.rust;
84 if Atom::from(ident).is_none()
85 && !cx.types.structs.contains_key(ident)
86 && !cx.types.enums.contains_key(ident)
87 && !cx.types.cxx.contains(ident)
88 && !cx.types.rust.contains(ident)
89 {
90 let msg = format!("unsupported type: {}", ident);
91 cx.error(ident, msg);
92 }
93 }
94
check_type_box(cx: &mut Check, ptr: &Ty1)95 fn check_type_box(cx: &mut Check, ptr: &Ty1) {
96 if let Type::Ident(ident) = &ptr.inner {
97 if cx.types.cxx.contains(&ident.rust)
98 && !cx.types.aliases.contains_key(&ident.rust)
99 && !cx.types.structs.contains_key(&ident.rust)
100 && !cx.types.enums.contains_key(&ident.rust)
101 {
102 cx.error(ptr, error::BOX_CXX_TYPE.msg);
103 }
104
105 if Atom::from(&ident.rust).is_none() {
106 return;
107 }
108 }
109
110 cx.error(ptr, "unsupported target type of Box");
111 }
112
check_type_rust_vec(cx: &mut Check, ty: &Ty1)113 fn check_type_rust_vec(cx: &mut Check, ty: &Ty1) {
114 match &ty.inner {
115 Type::Ident(ident) => {
116 if cx.types.cxx.contains(&ident.rust)
117 && !cx.types.aliases.contains_key(&ident.rust)
118 && !cx.types.structs.contains_key(&ident.rust)
119 && !cx.types.enums.contains_key(&ident.rust)
120 {
121 cx.error(ty, "Rust Vec containing C++ type is not supported yet");
122 return;
123 }
124
125 match Atom::from(&ident.rust) {
126 None | Some(Bool) | Some(Char) | Some(U8) | Some(U16) | Some(U32) | Some(U64)
127 | Some(Usize) | Some(I8) | Some(I16) | Some(I32) | Some(I64) | Some(Isize)
128 | Some(F32) | Some(F64) | Some(RustString) => return,
129 Some(CxxString) => {}
130 }
131 }
132 Type::Str(_) => return,
133 _ => {}
134 }
135
136 cx.error(ty, "unsupported element type of Vec");
137 }
138
check_type_unique_ptr(cx: &mut Check, ptr: &Ty1)139 fn check_type_unique_ptr(cx: &mut Check, ptr: &Ty1) {
140 if let Type::Ident(ident) = &ptr.inner {
141 if cx.types.rust.contains(&ident.rust) {
142 cx.error(ptr, "unique_ptr of a Rust type is not supported yet");
143 return;
144 }
145
146 match Atom::from(&ident.rust) {
147 None | Some(CxxString) => return,
148 _ => {}
149 }
150 } else if let Type::CxxVector(_) = &ptr.inner {
151 return;
152 }
153
154 cx.error(ptr, "unsupported unique_ptr target type");
155 }
156
check_type_shared_ptr(cx: &mut Check, ptr: &Ty1)157 fn check_type_shared_ptr(cx: &mut Check, ptr: &Ty1) {
158 if let Type::Ident(ident) = &ptr.inner {
159 if cx.types.rust.contains(&ident.rust) {
160 cx.error(ptr, "shared_ptr of a Rust type is not supported yet");
161 return;
162 }
163
164 match Atom::from(&ident.rust) {
165 None | Some(Bool) | Some(U8) | Some(U16) | Some(U32) | Some(U64) | Some(Usize)
166 | Some(I8) | Some(I16) | Some(I32) | Some(I64) | Some(Isize) | Some(F32)
167 | Some(F64) | Some(CxxString) => return,
168 Some(Char) | Some(RustString) => {}
169 }
170 } else if let Type::CxxVector(_) = &ptr.inner {
171 cx.error(ptr, "std::shared_ptr<std::vector> is not supported yet");
172 return;
173 }
174
175 cx.error(ptr, "unsupported shared_ptr target type");
176 }
177
check_type_weak_ptr(cx: &mut Check, ptr: &Ty1)178 fn check_type_weak_ptr(cx: &mut Check, ptr: &Ty1) {
179 if let Type::Ident(ident) = &ptr.inner {
180 if cx.types.rust.contains(&ident.rust) {
181 cx.error(ptr, "weak_ptr of a Rust type is not supported yet");
182 return;
183 }
184
185 match Atom::from(&ident.rust) {
186 None | Some(Bool) | Some(U8) | Some(U16) | Some(U32) | Some(U64) | Some(Usize)
187 | Some(I8) | Some(I16) | Some(I32) | Some(I64) | Some(Isize) | Some(F32)
188 | Some(F64) | Some(CxxString) => return,
189 Some(Char) | Some(RustString) => {}
190 }
191 } else if let Type::CxxVector(_) = &ptr.inner {
192 cx.error(ptr, "std::weak_ptr<std::vector> is not supported yet");
193 return;
194 }
195
196 cx.error(ptr, "unsupported weak_ptr target type");
197 }
198
check_type_cxx_vector(cx: &mut Check, ptr: &Ty1)199 fn check_type_cxx_vector(cx: &mut Check, ptr: &Ty1) {
200 if let Type::Ident(ident) = &ptr.inner {
201 if cx.types.rust.contains(&ident.rust) {
202 cx.error(
203 ptr,
204 "C++ vector containing a Rust type is not supported yet",
205 );
206 return;
207 }
208
209 match Atom::from(&ident.rust) {
210 None | Some(U8) | Some(U16) | Some(U32) | Some(U64) | Some(Usize) | Some(I8)
211 | Some(I16) | Some(I32) | Some(I64) | Some(Isize) | Some(F32) | Some(F64)
212 | Some(CxxString) => return,
213 Some(Char) => { /* todo */ }
214 Some(Bool) | Some(RustString) => {}
215 }
216 }
217
218 cx.error(ptr, "unsupported vector element type");
219 }
220
check_type_ref(cx: &mut Check, ty: &Ref)221 fn check_type_ref(cx: &mut Check, ty: &Ref) {
222 if ty.mutable && !ty.pinned {
223 if let Some(requires_pin) = match &ty.inner {
224 Type::Ident(ident) if ident.rust == CxxString || is_opaque_cxx(cx, &ident.rust) => {
225 Some(ident.rust.to_string())
226 }
227 Type::CxxVector(_) => Some("CxxVector<...>".to_owned()),
228 _ => None,
229 } {
230 cx.error(
231 ty,
232 format!(
233 "mutable reference to C++ type requires a pin -- use Pin<&mut {}>",
234 requires_pin,
235 ),
236 );
237 }
238 }
239
240 match ty.inner {
241 Type::Fn(_) | Type::Void(_) => {}
242 Type::Ref(_) => {
243 cx.error(ty, "C++ does not allow references to references");
244 return;
245 }
246 _ => return,
247 }
248
249 cx.error(ty, "unsupported reference type");
250 }
251
check_type_ptr(cx: &mut Check, ty: &Ptr)252 fn check_type_ptr(cx: &mut Check, ty: &Ptr) {
253 match ty.inner {
254 Type::Fn(_) | Type::Void(_) => {}
255 Type::Ref(_) => {
256 cx.error(ty, "C++ does not allow pointer to reference as a type");
257 return;
258 }
259 _ => return,
260 }
261
262 cx.error(ty, "unsupported pointer type");
263 }
264
check_type_slice_ref(cx: &mut Check, ty: &SliceRef)265 fn check_type_slice_ref(cx: &mut Check, ty: &SliceRef) {
266 let supported = !is_unsized(cx, &ty.inner)
267 || match &ty.inner {
268 Type::Ident(ident) => {
269 cx.types.rust.contains(&ident.rust) || cx.types.aliases.contains_key(&ident.rust)
270 }
271 _ => false,
272 };
273
274 if !supported {
275 let mutable = if ty.mutable { "mut " } else { "" };
276 let mut msg = format!("unsupported &{}[T] element type", mutable);
277 if let Type::Ident(ident) = &ty.inner {
278 if is_opaque_cxx(cx, &ident.rust) {
279 msg += ": opaque C++ type is not supported yet";
280 }
281 }
282 cx.error(ty, msg);
283 }
284 }
285
check_type_array(cx: &mut Check, ty: &Array)286 fn check_type_array(cx: &mut Check, ty: &Array) {
287 let supported = !is_unsized(cx, &ty.inner);
288
289 if !supported {
290 cx.error(ty, "unsupported array element type");
291 }
292 }
293
check_type_fn(cx: &mut Check, ty: &Signature)294 fn check_type_fn(cx: &mut Check, ty: &Signature) {
295 if ty.throws {
296 cx.error(ty, "function pointer returning Result is not supported yet");
297 }
298
299 for arg in &ty.args {
300 if let Type::Ptr(_) = arg.ty {
301 if ty.unsafety.is_none() {
302 cx.error(
303 arg,
304 "pointer argument requires that the function pointer be marked unsafe",
305 );
306 }
307 }
308 }
309 }
310
check_api_struct(cx: &mut Check, strct: &Struct)311 fn check_api_struct(cx: &mut Check, strct: &Struct) {
312 let name = &strct.name;
313 check_reserved_name(cx, &name.rust);
314 check_lifetimes(cx, &strct.generics);
315
316 if strct.fields.is_empty() {
317 let span = span_for_struct_error(strct);
318 cx.error(span, "structs without any fields are not supported");
319 }
320
321 if cx.types.cxx.contains(&name.rust) {
322 if let Some(ety) = cx.types.untrusted.get(&name.rust) {
323 let msg = "extern shared struct must be declared in an `unsafe extern` block";
324 cx.error(ety, msg);
325 }
326 }
327
328 for derive in &strct.derives {
329 if derive.what == Trait::ExternType {
330 let msg = format!("derive({}) on shared struct is not supported", derive);
331 cx.error(derive, msg);
332 }
333 }
334
335 for field in &strct.fields {
336 if let Type::Fn(_) = field.ty {
337 cx.error(
338 field,
339 "function pointers in a struct field are not implemented yet",
340 );
341 } else if is_unsized(cx, &field.ty) {
342 let desc = describe(cx, &field.ty);
343 let msg = format!("using {} by value is not supported", desc);
344 cx.error(field, msg);
345 }
346 }
347 }
348
check_api_enum(cx: &mut Check, enm: &Enum)349 fn check_api_enum(cx: &mut Check, enm: &Enum) {
350 check_reserved_name(cx, &enm.name.rust);
351 check_lifetimes(cx, &enm.generics);
352
353 if enm.variants.is_empty() && !enm.explicit_repr && !enm.variants_from_header {
354 let span = span_for_enum_error(enm);
355 cx.error(
356 span,
357 "explicit #[repr(...)] is required for enum without any variants",
358 );
359 }
360
361 for derive in &enm.derives {
362 if derive.what == Trait::Default || derive.what == Trait::ExternType {
363 let msg = format!("derive({}) on shared enum is not supported", derive);
364 cx.error(derive, msg);
365 }
366 }
367 }
368
check_api_type(cx: &mut Check, ety: &ExternType)369 fn check_api_type(cx: &mut Check, ety: &ExternType) {
370 check_reserved_name(cx, &ety.name.rust);
371 check_lifetimes(cx, &ety.generics);
372
373 for derive in &ety.derives {
374 if derive.what == Trait::ExternType && ety.lang == Lang::Rust {
375 continue;
376 }
377 let lang = match ety.lang {
378 Lang::Rust => "Rust",
379 Lang::Cxx => "C++",
380 };
381 let msg = format!(
382 "derive({}) on opaque {} type is not supported yet",
383 derive, lang,
384 );
385 cx.error(derive, msg);
386 }
387
388 if !ety.bounds.is_empty() {
389 let bounds = &ety.bounds;
390 let span = quote!(#(#bounds)*);
391 cx.error(span, "extern type bounds are not implemented yet");
392 }
393
394 if let Some(reasons) = cx.types.required_trivial.get(&ety.name.rust) {
395 let msg = format!(
396 "needs a cxx::ExternType impl in order to be used as {}",
397 trivial::as_what(&ety.name, reasons),
398 );
399 cx.error(ety, msg);
400 }
401 }
402
check_api_fn(cx: &mut Check, efn: &ExternFn)403 fn check_api_fn(cx: &mut Check, efn: &ExternFn) {
404 match efn.lang {
405 Lang::Cxx => {
406 if !efn.generics.params.is_empty() && !efn.trusted {
407 let ref span = span_for_generics_error(efn);
408 cx.error(span, "extern C++ function with lifetimes must be declared in `unsafe extern \"C++\"` block");
409 }
410 }
411 Lang::Rust => {
412 if !efn.generics.params.is_empty() && efn.unsafety.is_none() {
413 let ref span = span_for_generics_error(efn);
414 let message = format!(
415 "must be `unsafe fn {}` in order to expose explicit lifetimes to C++",
416 efn.name.rust,
417 );
418 cx.error(span, message);
419 }
420 }
421 }
422
423 check_generics(cx, &efn.sig.generics);
424
425 if let Some(receiver) = &efn.receiver {
426 let ref span = span_for_receiver_error(receiver);
427
428 if receiver.ty.rust == "Self" {
429 let mutability = match receiver.mutable {
430 true => "mut ",
431 false => "",
432 };
433 let msg = format!(
434 "unnamed receiver type is only allowed if the surrounding extern block contains exactly one extern type; use `self: &{mutability}TheType`",
435 mutability = mutability,
436 );
437 cx.error(span, msg);
438 } else if cx.types.enums.contains_key(&receiver.ty.rust) {
439 cx.error(
440 span,
441 "unsupported receiver type; C++ does not allow member functions on enums",
442 );
443 } else if !cx.types.structs.contains_key(&receiver.ty.rust)
444 && !cx.types.cxx.contains(&receiver.ty.rust)
445 && !cx.types.rust.contains(&receiver.ty.rust)
446 {
447 cx.error(span, "unrecognized receiver type");
448 } else if receiver.mutable && !receiver.pinned && is_opaque_cxx(cx, &receiver.ty.rust) {
449 cx.error(
450 span,
451 format!(
452 "mutable reference to opaque C++ type requires a pin -- use `self: Pin<&mut {}>`",
453 receiver.ty.rust,
454 ),
455 );
456 }
457 }
458
459 for arg in &efn.args {
460 if let Type::Fn(_) = arg.ty {
461 if efn.lang == Lang::Rust {
462 cx.error(
463 arg,
464 "passing a function pointer from C++ to Rust is not implemented yet",
465 );
466 }
467 } else if let Type::Ptr(_) = arg.ty {
468 if efn.sig.unsafety.is_none() {
469 cx.error(
470 arg,
471 "pointer argument requires that the function be marked unsafe",
472 );
473 }
474 } else if is_unsized(cx, &arg.ty) {
475 let desc = describe(cx, &arg.ty);
476 let msg = format!("passing {} by value is not supported", desc);
477 cx.error(arg, msg);
478 }
479 }
480
481 if let Some(ty) = &efn.ret {
482 if let Type::Fn(_) = ty {
483 cx.error(ty, "returning a function pointer is not implemented yet");
484 } else if is_unsized(cx, ty) {
485 let desc = describe(cx, ty);
486 let msg = format!("returning {} by value is not supported", desc);
487 cx.error(ty, msg);
488 }
489 }
490
491 if efn.lang == Lang::Cxx {
492 check_mut_return_restriction(cx, efn);
493 }
494 }
495
check_api_type_alias(cx: &mut Check, alias: &TypeAlias)496 fn check_api_type_alias(cx: &mut Check, alias: &TypeAlias) {
497 check_lifetimes(cx, &alias.generics);
498
499 for derive in &alias.derives {
500 let msg = format!("derive({}) on extern type alias is not supported", derive);
501 cx.error(derive, msg);
502 }
503 }
504
check_api_impl(cx: &mut Check, imp: &Impl)505 fn check_api_impl(cx: &mut Check, imp: &Impl) {
506 let ty = &imp.ty;
507
508 check_lifetimes(cx, &imp.impl_generics);
509
510 if let Some(negative) = imp.negative_token {
511 let span = quote!(#negative #ty);
512 cx.error(span, "negative impl is not supported yet");
513 return;
514 }
515
516 match ty {
517 Type::RustBox(ty)
518 | Type::RustVec(ty)
519 | Type::UniquePtr(ty)
520 | Type::SharedPtr(ty)
521 | Type::WeakPtr(ty)
522 | Type::CxxVector(ty) => {
523 if let Type::Ident(inner) = &ty.inner {
524 if Atom::from(&inner.rust).is_none() {
525 return;
526 }
527 }
528 }
529 _ => {}
530 }
531
532 cx.error(imp, "unsupported Self type of explicit impl");
533 }
534
check_mut_return_restriction(cx: &mut Check, efn: &ExternFn)535 fn check_mut_return_restriction(cx: &mut Check, efn: &ExternFn) {
536 if efn.sig.unsafety.is_some() {
537 // Unrestricted as long as the function is made unsafe-to-call.
538 return;
539 }
540
541 match &efn.ret {
542 Some(Type::Ref(ty)) if ty.mutable => {}
543 Some(Type::SliceRef(slice)) if slice.mutable => {}
544 _ => return,
545 }
546
547 if let Some(receiver) = &efn.receiver {
548 if receiver.mutable {
549 return;
550 }
551 let resolve = match cx.types.try_resolve(&receiver.ty) {
552 Some(resolve) => resolve,
553 None => return,
554 };
555 if !resolve.generics.lifetimes.is_empty() {
556 return;
557 }
558 }
559
560 struct FindLifetimeMut<'a> {
561 cx: &'a Check<'a>,
562 found: bool,
563 }
564
565 impl<'t, 'a> Visit<'t> for FindLifetimeMut<'a> {
566 fn visit_type(&mut self, ty: &'t Type) {
567 self.found |= match ty {
568 Type::Ref(ty) => ty.mutable,
569 Type::SliceRef(slice) => slice.mutable,
570 Type::Ident(ident) if Atom::from(&ident.rust).is_none() => {
571 match self.cx.types.try_resolve(ident) {
572 Some(resolve) => !resolve.generics.lifetimes.is_empty(),
573 None => true,
574 }
575 }
576 _ => false,
577 };
578 visit::visit_type(self, ty);
579 }
580 }
581
582 let mut visitor = FindLifetimeMut { cx, found: false };
583
584 for arg in &efn.args {
585 visitor.visit_type(&arg.ty);
586 }
587
588 if visitor.found {
589 return;
590 }
591
592 cx.error(
593 efn,
594 "&mut return type is not allowed unless there is a &mut argument",
595 );
596 }
597
check_reserved_name(cx: &mut Check, ident: &Ident)598 fn check_reserved_name(cx: &mut Check, ident: &Ident) {
599 if ident == "Box"
600 || ident == "UniquePtr"
601 || ident == "SharedPtr"
602 || ident == "WeakPtr"
603 || ident == "Vec"
604 || ident == "CxxVector"
605 || ident == "str"
606 || Atom::from(ident).is_some()
607 {
608 cx.error(ident, "reserved name");
609 }
610 }
611
check_reserved_lifetime(cx: &mut Check, lifetime: &Lifetime)612 fn check_reserved_lifetime(cx: &mut Check, lifetime: &Lifetime) {
613 if lifetime.ident == "static" {
614 match cx.generator {
615 Generator::Macro => { /* rustc already reports this */ }
616 Generator::Build => {
617 cx.error(lifetime, error::RESERVED_LIFETIME);
618 }
619 }
620 }
621 }
622
check_lifetimes(cx: &mut Check, generics: &Lifetimes)623 fn check_lifetimes(cx: &mut Check, generics: &Lifetimes) {
624 for lifetime in &generics.lifetimes {
625 check_reserved_lifetime(cx, lifetime);
626 }
627 }
628
check_generics(cx: &mut Check, generics: &Generics)629 fn check_generics(cx: &mut Check, generics: &Generics) {
630 for generic_param in &generics.params {
631 if let GenericParam::Lifetime(def) = generic_param {
632 check_reserved_lifetime(cx, &def.lifetime);
633 }
634 }
635 }
636
is_unsized(cx: &mut Check, ty: &Type) -> bool637 fn is_unsized(cx: &mut Check, ty: &Type) -> bool {
638 match ty {
639 Type::Ident(ident) => {
640 let ident = &ident.rust;
641 ident == CxxString || is_opaque_cxx(cx, ident) || cx.types.rust.contains(ident)
642 }
643 Type::Array(array) => is_unsized(cx, &array.inner),
644 Type::CxxVector(_) | Type::Fn(_) | Type::Void(_) => true,
645 Type::RustBox(_)
646 | Type::RustVec(_)
647 | Type::UniquePtr(_)
648 | Type::SharedPtr(_)
649 | Type::WeakPtr(_)
650 | Type::Ref(_)
651 | Type::Ptr(_)
652 | Type::Str(_)
653 | Type::SliceRef(_) => false,
654 }
655 }
656
is_opaque_cxx(cx: &mut Check, ty: &Ident) -> bool657 fn is_opaque_cxx(cx: &mut Check, ty: &Ident) -> bool {
658 cx.types.cxx.contains(ty)
659 && !cx.types.structs.contains_key(ty)
660 && !cx.types.enums.contains_key(ty)
661 && !(cx.types.aliases.contains_key(ty) && cx.types.required_trivial.contains_key(ty))
662 }
663
span_for_struct_error(strct: &Struct) -> TokenStream664 fn span_for_struct_error(strct: &Struct) -> TokenStream {
665 let struct_token = strct.struct_token;
666 let mut brace_token = Group::new(Delimiter::Brace, TokenStream::new());
667 brace_token.set_span(strct.brace_token.span.join());
668 quote!(#struct_token #brace_token)
669 }
670
span_for_enum_error(enm: &Enum) -> TokenStream671 fn span_for_enum_error(enm: &Enum) -> TokenStream {
672 let enum_token = enm.enum_token;
673 let mut brace_token = Group::new(Delimiter::Brace, TokenStream::new());
674 brace_token.set_span(enm.brace_token.span.join());
675 quote!(#enum_token #brace_token)
676 }
677
span_for_receiver_error(receiver: &Receiver) -> TokenStream678 fn span_for_receiver_error(receiver: &Receiver) -> TokenStream {
679 let ampersand = receiver.ampersand;
680 let lifetime = &receiver.lifetime;
681 let mutability = receiver.mutability;
682 if receiver.shorthand {
683 let var = receiver.var;
684 quote!(#ampersand #lifetime #mutability #var)
685 } else {
686 let ty = &receiver.ty;
687 quote!(#ampersand #lifetime #mutability #ty)
688 }
689 }
690
span_for_generics_error(efn: &ExternFn) -> TokenStream691 fn span_for_generics_error(efn: &ExternFn) -> TokenStream {
692 let unsafety = efn.unsafety;
693 let fn_token = efn.fn_token;
694 let generics = &efn.generics;
695 quote!(#unsafety #fn_token #generics)
696 }
697
describe(cx: &mut Check, ty: &Type) -> String698 fn describe(cx: &mut Check, ty: &Type) -> String {
699 match ty {
700 Type::Ident(ident) => {
701 if cx.types.structs.contains_key(&ident.rust) {
702 "struct".to_owned()
703 } else if cx.types.enums.contains_key(&ident.rust) {
704 "enum".to_owned()
705 } else if cx.types.aliases.contains_key(&ident.rust) {
706 "C++ type".to_owned()
707 } else if cx.types.cxx.contains(&ident.rust) {
708 "opaque C++ type".to_owned()
709 } else if cx.types.rust.contains(&ident.rust) {
710 "opaque Rust type".to_owned()
711 } else if Atom::from(&ident.rust) == Some(CxxString) {
712 "C++ string".to_owned()
713 } else if Atom::from(&ident.rust) == Some(Char) {
714 "C char".to_owned()
715 } else {
716 ident.rust.to_string()
717 }
718 }
719 Type::RustBox(_) => "Box".to_owned(),
720 Type::RustVec(_) => "Vec".to_owned(),
721 Type::UniquePtr(_) => "unique_ptr".to_owned(),
722 Type::SharedPtr(_) => "shared_ptr".to_owned(),
723 Type::WeakPtr(_) => "weak_ptr".to_owned(),
724 Type::Ref(_) => "reference".to_owned(),
725 Type::Ptr(_) => "raw pointer".to_owned(),
726 Type::Str(_) => "&str".to_owned(),
727 Type::CxxVector(_) => "C++ vector".to_owned(),
728 Type::SliceRef(_) => "slice".to_owned(),
729 Type::Fn(_) => "function pointer".to_owned(),
730 Type::Void(_) => "()".to_owned(),
731 Type::Array(_) => "array".to_owned(),
732 }
733 }
734