Support printing lifetime generics on an impl-Trait block
[ldk-c-bindings] / c-bindings-gen / src / main.rs
index 8e3962d5da2f133fcb4068721e88d3f29fff27b1..d490a8901d363b53b7f83481de7c9844aeb6e20a 100644 (file)
@@ -559,7 +559,9 @@ fn writeln_trait<'a, 'b, W: std::io::Write>(w: &mut W, t: &'a syn::ItemTrait, ty
        // Finally, implement the original Rust trait for the newly created mapped trait.
        writeln!(w, "\nuse {}::{} as rust{};", types.module_path, t.ident, trait_name).unwrap();
        if implementable {
-               write!(w, "impl rust{}", t.ident).unwrap();
+               write!(w, "impl").unwrap();
+               maybe_write_lifetime_generics(w, &t.generics, types);
+               write!(w, " rust{}", t.ident).unwrap();
                maybe_write_generics(w, &t.generics, types, false);
                writeln!(w, " for {} {{", trait_name).unwrap();
                impl_trait_for_c!(t, "", types);
@@ -646,7 +648,7 @@ fn writeln_struct<'a, 'b, W: std::io::Write>(w: &mut W, s: &'a syn::ItemStruct,
                let mut self_path_segs = syn::punctuated::Punctuated::new();
                self_path_segs.push(s.ident.clone().into());
                let self_path = syn::Path { leading_colon: None, segments: self_path_segs};
-               let mut gen_types = GenericTypes::new(Some((types.resolve_path(&self_path, None), &self_path)));
+               let mut gen_types = GenericTypes::new(Some(types.resolve_path(&self_path, None)));
                assert!(gen_types.learn_generics(&s.generics, types));
 
                let mut all_fields_settable = true;
@@ -769,7 +771,7 @@ fn writeln_impl<W: std::io::Write>(w: &mut W, i: &syn::ItemImpl, types: &mut Typ
                if p.qself.is_some() { unimplemented!(); }
                if let Some(ident) = single_ident_generic_path_to_ident(&p.path) {
                        if let Some(resolved_path) = types.maybe_resolve_non_ignored_ident(&ident) {
-                               let mut gen_types = GenericTypes::new(Some((resolved_path.clone(), &p.path)));
+                               let mut gen_types = GenericTypes::new(Some(resolved_path.clone()));
                                if !gen_types.learn_generics(&i.generics, types) {
                                        eprintln!("Not implementing anything for impl {} due to not understood generics", ident);
                                        return;
@@ -1853,7 +1855,8 @@ fn walk_ast<'a>(ast_storage: &'a FullLibraryAST, crate_types: &mut CrateTypes<'a
                                syn::Item::Impl(i) => {
                                        if let &syn::Type::Path(ref p) = &*i.self_ty {
                                                if let Some(trait_path) = i.trait_.as_ref() {
-                                                       if path_matches_nongeneric(&trait_path.1, &["core", "clone", "Clone"]) {
+                                                       if path_matches_nongeneric(&trait_path.1, &["core", "clone", "Clone"]) ||
+                                                          path_matches_nongeneric(&trait_path.1, &["Clone"]) {
                                                                if let Some(full_path) = import_resolver.maybe_resolve_path(&p.path, None) {
                                                                        crate_types.set_clonable("crate::".to_owned() + &full_path);
                                                                }
@@ -1904,6 +1907,9 @@ fn main() {
        writeln!(header_file, "#endif").unwrap();
        writeln!(cpp_header_file, "#include <string.h>\nnamespace LDK {{").unwrap();
 
+       // Write a few manually-defined types into the C++ header file
+       write_cpp_wrapper(&mut cpp_header_file, "Str", true, None);
+
        // First parse the full crate's ASTs, caching them so that we can hold references to the AST
        // objects in other datastructures:
        let mut lib_src = String::new();