}
pub fn assert_simple_bound(bound: &syn::TraitBound) {
- if bound.paren_token.is_some() || bound.lifetimes.is_some() { unimplemented!(); }
+ if bound.paren_token.is_some() { unimplemented!(); }
if let syn::TraitBoundModifier::Maybe(_) = bound.modifier { unimplemented!(); }
}
}
/// Learn the generics in generics in the current context, given a TypeResolver.
- pub fn learn_generics<'b, 'c>(&mut self, generics: &'a syn::Generics, types: &'b TypeResolver<'a, 'c>) -> bool {
+ pub fn learn_generics_with_impls<'b, 'c>(&mut self, generics: &'a syn::Generics, impld_generics: &'a syn::PathArguments, types: &'b TypeResolver<'a, 'c>) -> bool {
let mut new_typed_generics = HashMap::new();
// First learn simple generics...
- for generic in generics.params.iter() {
+ for (idx, generic) in generics.params.iter().enumerate() {
match generic {
syn::GenericParam::Type(type_param) => {
let mut non_lifetimes_processed = false;
if let Some(default) = type_param.default.as_ref() {
assert!(type_param.bounds.is_empty());
self.default_generics.insert(&type_param.ident, (default.clone(), parse_quote!(&#default), parse_quote!(&mut #default)));
+ } else if type_param.bounds.is_empty() {
+ if let syn::PathArguments::AngleBracketed(args) = impld_generics {
+ match &args.args[idx] {
+ syn::GenericArgument::Type(ty) => {
+ self.default_generics.insert(&type_param.ident, (ty.clone(), parse_quote!(&#ty), parse_quote!(&mut #ty)));
+ }
+ _ => unimplemented!(),
+ }
+ }
}
},
_ => {},
for pred in wh.predicates.iter() {
if let syn::WherePredicate::Type(t) = pred {
if let syn::Type::Path(p) = &t.bounded_ty {
+ if first_seg_self(&t.bounded_ty).is_some() && p.path.segments.len() == 1 { continue; }
if p.qself.is_some() { return false; }
if p.path.leading_colon.is_some() { return false; }
let mut p_iter = p.path.segments.iter();
true
}
+ /// Learn the generics in generics in the current context, given a TypeResolver.
+ pub fn learn_generics<'b, 'c>(&mut self, generics: &'a syn::Generics, types: &'b TypeResolver<'a, 'c>) -> bool {
+ self.learn_generics_with_impls(generics, &syn::PathArguments::None, types)
+ }
+
/// Learn the associated types from the trait in the current context.
pub fn learn_associated_types<'b, 'c>(&mut self, t: &'a syn::ItemTrait, types: &'b TypeResolver<'a, 'c>) {
for item in t.items.iter() {
pub struct ImportResolver<'mod_lifetime, 'crate_lft: 'mod_lifetime> {
pub crate_name: &'mod_lifetime str,
- dependencies: &'mod_lifetime HashSet<syn::Ident>,
+ library: &'crate_lft FullLibraryAST,
module_path: &'mod_lifetime str,
imports: HashMap<syn::Ident, (String, syn::Path)>,
declared: HashMap<syn::Ident, DeclType<'crate_lft>>,
priv_modules: HashSet<syn::Ident>,
}
impl<'mod_lifetime, 'crate_lft: 'mod_lifetime> ImportResolver<'mod_lifetime, 'crate_lft> {
- fn process_use_intern(crate_name: &str, module_path: &str, dependencies: &HashSet<syn::Ident>, imports: &mut HashMap<syn::Ident, (String, syn::Path)>,
- u: &syn::UseTree, partial_path: &str, mut path: syn::punctuated::Punctuated<syn::PathSegment, syn::token::Colon2>) {
-
+ fn walk_use_intern<F: FnMut(syn::Ident, (String, syn::Path))>(
+ crate_name: &str, module_path: &str, dependencies: &HashSet<syn::Ident>, u: &syn::UseTree,
+ partial_path: &str,
+ mut path: syn::punctuated::Punctuated<syn::PathSegment, syn::token::Colon2>, handle_use: &mut F
+ ) {
let new_path;
macro_rules! push_path {
($ident: expr, $path_suffix: expr) => {
match u {
syn::UseTree::Path(p) => {
push_path!(p.ident, "::");
- Self::process_use_intern(crate_name, module_path, dependencies, imports, &p.tree, &new_path, path);
+ Self::walk_use_intern(crate_name, module_path, dependencies, &p.tree, &new_path, path, handle_use);
},
syn::UseTree::Name(n) => {
push_path!(n.ident, "");
let imported_ident = syn::Ident::new(new_path.rsplitn(2, "::").next().unwrap(), Span::call_site());
- imports.insert(imported_ident, (new_path, syn::Path { leading_colon: Some(syn::Token![::](Span::call_site())), segments: path }));
+ handle_use(imported_ident, (new_path, syn::Path { leading_colon: Some(syn::Token![::](Span::call_site())), segments: path }));
},
syn::UseTree::Group(g) => {
for i in g.items.iter() {
- Self::process_use_intern(crate_name, module_path, dependencies, imports, i, partial_path, path.clone());
+ Self::walk_use_intern(crate_name, module_path, dependencies, i, partial_path, path.clone(), handle_use);
}
},
syn::UseTree::Rename(r) => {
push_path!(r.ident, "");
- imports.insert(r.rename.clone(), (new_path, syn::Path { leading_colon: Some(syn::Token![::](Span::call_site())), segments: path }));
+ handle_use(r.rename.clone(), (new_path, syn::Path { leading_colon: Some(syn::Token![::](Span::call_site())), segments: path }));
},
syn::UseTree::Glob(_) => {
eprintln!("Ignoring * use for {} - this may result in resolution failures", partial_path);
}
}
+ fn process_use_intern(crate_name: &str, module_path: &str, dependencies: &HashSet<syn::Ident>,
+ imports: &mut HashMap<syn::Ident, (String, syn::Path)>, u: &syn::UseTree, partial_path: &str,
+ path: syn::punctuated::Punctuated<syn::PathSegment, syn::token::Colon2>
+ ) {
+ Self::walk_use_intern(crate_name, module_path, dependencies, u, partial_path, path,
+ &mut |k, v| { imports.insert(k, v); });
+ }
+
fn process_use(crate_name: &str, module_path: &str, dependencies: &HashSet<syn::Ident>, imports: &mut HashMap<syn::Ident, (String, syn::Path)>, u: &syn::ItemUse) {
- if let syn::Visibility::Public(_) = u.vis {
- // We actually only use these for #[cfg(fuzztarget)]
- eprintln!("Ignoring pub(use) tree!");
- return;
- }
if u.leading_colon.is_some() { eprintln!("Ignoring leading-colon use!"); return; }
Self::process_use_intern(crate_name, module_path, dependencies, imports, &u.tree, "", syn::punctuated::Punctuated::new());
}
imports.insert(ident, (id.to_owned(), path));
}
- pub fn new(crate_name: &'mod_lifetime str, dependencies: &'mod_lifetime HashSet<syn::Ident>, module_path: &'mod_lifetime str, contents: &'crate_lft [syn::Item]) -> Self {
- Self::from_borrowed_items(crate_name, dependencies, module_path, &contents.iter().map(|a| a).collect::<Vec<_>>())
+ pub fn new(crate_name: &'mod_lifetime str, library: &'crate_lft FullLibraryAST, module_path: &'mod_lifetime str, contents: &'crate_lft [syn::Item]) -> Self {
+ Self::from_borrowed_items(crate_name, library, module_path, &contents.iter().map(|a| a).collect::<Vec<_>>())
}
- pub fn from_borrowed_items(crate_name: &'mod_lifetime str, dependencies: &'mod_lifetime HashSet<syn::Ident>, module_path: &'mod_lifetime str, contents: &[&'crate_lft syn::Item]) -> Self {
+ pub fn from_borrowed_items(crate_name: &'mod_lifetime str, library: &'crate_lft FullLibraryAST, module_path: &'mod_lifetime str, contents: &[&'crate_lft syn::Item]) -> Self {
let mut imports = HashMap::new();
// Add primitives to the "imports" list:
Self::insert_primitive(&mut imports, "bool");
+ Self::insert_primitive(&mut imports, "u128");
Self::insert_primitive(&mut imports, "u64");
Self::insert_primitive(&mut imports, "u32");
Self::insert_primitive(&mut imports, "u16");
for item in contents.iter() {
match item {
- syn::Item::Use(u) => Self::process_use(crate_name, module_path, dependencies, &mut imports, &u),
+ syn::Item::Use(u) => Self::process_use(crate_name, module_path, &library.dependencies, &mut imports, &u),
syn::Item::Struct(s) => {
if let syn::Visibility::Public(_) = s.vis {
match export_status(&s.attrs) {
}
}
- Self { crate_name, dependencies, module_path, imports, declared, priv_modules }
+ Self { crate_name, library, module_path, imports, declared, priv_modules }
}
pub fn maybe_resolve_declared(&self, id: &syn::Ident) -> Option<&DeclType<'crate_lft>> {
} else { None }
}
- pub fn maybe_resolve_path(&self, p: &syn::Path, generics: Option<&GenericTypes>) -> Option<String> {
+ fn maybe_resolve_imported_path(&self, p: &syn::Path, generics: Option<&GenericTypes>) -> Option<String> {
if let Some(gen_types) = generics {
if let Some(resp) = gen_types.maybe_resolve_path(p) {
return Some(resp.clone());
format!("{}{}", if idx == 0 { "" } else { "::" }, seg.ident)
}).collect();
let firstseg = p.segments.iter().next().unwrap();
- if !self.dependencies.contains(&firstseg.ident) {
+ if !self.library.dependencies.contains(&firstseg.ident) {
res = self.crate_name.to_owned() + "::" + &res;
}
Some(res)
}
} else if let Some(_) = self.priv_modules.get(&first_seg.ident) {
Some(format!("{}::{}{}", self.module_path, first_seg.ident, remaining))
- } else if first_seg_is_stdlib(&first_seg_str) || self.dependencies.contains(&first_seg.ident) {
+ } else if first_seg_is_stdlib(&first_seg_str) || self.library.dependencies.contains(&first_seg.ident) {
Some(first_seg_str + &remaining)
+ } else if first_seg_str == "crate" {
+ Some(self.crate_name.to_owned() + &remaining)
} else { None }
}
}
+ pub fn maybe_resolve_path(&self, p: &syn::Path, generics: Option<&GenericTypes>) -> Option<String> {
+ self.maybe_resolve_imported_path(p, generics).map(|mut path| {
+ loop {
+ // Now that we've resolved the path to the path as-imported, check whether the path
+ // is actually a pub(.*) use statement and map it to the real path.
+ let path_tmp = path.clone();
+ let crate_name = path_tmp.splitn(2, "::").next().unwrap();
+ let mut module_riter = path_tmp.rsplitn(2, "::");
+ let obj = module_riter.next().unwrap();
+ if let Some(module_path) = module_riter.next() {
+ if let Some(m) = self.library.modules.get(module_path) {
+ for item in m.items.iter() {
+ if let syn::Item::Use(syn::ItemUse { vis, tree, .. }) = item {
+ match vis {
+ syn::Visibility::Public(_)|
+ syn::Visibility::Crate(_)|
+ syn::Visibility::Restricted(_) => {
+ Self::walk_use_intern(crate_name, module_path,
+ &self.library.dependencies, tree, "",
+ syn::punctuated::Punctuated::new(), &mut |ident, (use_path, _)| {
+ if format!("{}", ident) == obj {
+ path = use_path;
+ }
+ });
+ },
+ syn::Visibility::Inherited => {},
+ }
+ }
+ }
+ }
+ }
+ break;
+ }
+ path
+ })
+ }
+
/// Map all the Paths in a Type into absolute paths given a set of imports (generated via process_use_intern)
pub fn resolve_imported_refs(&self, mut ty: syn::Type) -> syn::Type {
match &mut ty {
let modname = if module != "" {
module.clone() + "::" + &modident
} else {
+ self.dependencies.insert(m.ident);
modident.clone()
};
self.load_module(modname, m.attrs, m.content.unwrap().1);
/// List of manually-generated types which are clonable
fn initial_clonable_types() -> HashSet<String> {
let mut res = HashSet::new();
- res.insert("crate::c_types::u5".to_owned());
+ res.insert("crate::c_types::U5".to_owned());
+ res.insert("crate::c_types::U128".to_owned());
res.insert("crate::c_types::FourBytes".to_owned());
res.insert("crate::c_types::TwelveBytes".to_owned());
res.insert("crate::c_types::SixteenBytes".to_owned());
res.insert("crate::c_types::TwentyBytes".to_owned());
res.insert("crate::c_types::ThirtyTwoBytes".to_owned());
+ res.insert("crate::c_types::EightU16s".to_owned());
res.insert("crate::c_types::SecretKey".to_owned());
res.insert("crate::c_types::PublicKey".to_owned());
res.insert("crate::c_types::Transaction".to_owned());
+ res.insert("crate::c_types::Witness".to_owned());
res.insert("crate::c_types::TxOut".to_owned());
res.insert("crate::c_types::Signature".to_owned());
res.insert("crate::c_types::RecoverableSignature".to_owned());
"[u8; 12]" if !is_ref => Some("crate::c_types::TwelveBytes"),
"[u8; 4]" if !is_ref => Some("crate::c_types::FourBytes"),
"[u8; 3]" if !is_ref => Some("crate::c_types::ThreeBytes"), // Used for RGB values
+ "[u16; 8]" if !is_ref => Some("crate::c_types::EightU16s"),
"str" if is_ref => Some("crate::c_types::Str"),
"alloc::string::String"|"String" => Some("crate::c_types::Str"),
"std::time::Duration"|"core::time::Duration" => Some("u64"),
"std::time::SystemTime" => Some("u64"),
- "std::io::Error"|"lightning::io::Error" => Some("crate::c_types::IOError"),
+ "std::io::Error"|"lightning::io::Error"|"lightning::io::ErrorKind" => Some("crate::c_types::IOError"),
"core::fmt::Arguments" if is_ref => Some("crate::c_types::Str"),
"core::convert::Infallible" => Some("crate::c_types::NotConstructable"),
"core::num::ParseIntError" => Some("crate::c_types::Error"),
"core::str::Utf8Error" => Some("crate::c_types::Error"),
- "bitcoin::bech32::u5"|"bech32::u5" => Some("crate::c_types::u5"),
+ "bitcoin::bech32::u5"|"bech32::u5" => Some("crate::c_types::U5"),
+ "u128" => Some("crate::c_types::U128"),
"core::num::NonZeroU8" => Some("u8"),
"secp256k1::PublicKey"|"bitcoin::secp256k1::PublicKey" => Some("crate::c_types::PublicKey"),
"bitcoin::secp256k1::ecdsa::RecoverableSignature" => Some("crate::c_types::RecoverableSignature"),
"bitcoin::secp256k1::SecretKey" if is_ref => Some("*const [u8; 32]"),
"bitcoin::secp256k1::SecretKey" if !is_ref => Some("crate::c_types::SecretKey"),
+ "bitcoin::secp256k1::Scalar" if is_ref => Some("*const crate::c_types::BigEndianScalar"),
+ "bitcoin::secp256k1::Scalar" if !is_ref => Some("crate::c_types::BigEndianScalar"),
+ "bitcoin::secp256k1::ecdh::SharedSecret" if !is_ref => Some("crate::c_types::ThirtyTwoBytes"),
+
"bitcoin::blockdata::script::Script" if is_ref => Some("crate::c_types::u8slice"),
"bitcoin::blockdata::script::Script" if !is_ref => Some("crate::c_types::derived::CVec_u8Z"),
"bitcoin::blockdata::transaction::OutPoint" => Some("crate::lightning::chain::transaction::OutPoint"),
"bitcoin::blockdata::transaction::Transaction"|"bitcoin::Transaction" => Some("crate::c_types::Transaction"),
+ "bitcoin::Witness" => Some("crate::c_types::Witness"),
"bitcoin::blockdata::transaction::TxOut" if !is_ref => Some("crate::c_types::TxOut"),
"bitcoin::network::constants::Network" => Some("crate::bitcoin::network::Network"),
"bitcoin::util::address::WitnessVersion" => Some("crate::c_types::WitnessVersion"),
if !is_ref => Some("crate::c_types::ThirtyTwoBytes"),
"bitcoin::secp256k1::Message" if !is_ref => Some("crate::c_types::ThirtyTwoBytes"),
"lightning::ln::PaymentHash"|"lightning::ln::PaymentPreimage"|"lightning::ln::PaymentSecret"
- |"lightning::ln::channelmanager::PaymentId"|"lightning::chain::keysinterface::KeyMaterial"
+ |"lightning::ln::channelmanager::PaymentId"|"lightning::ln::channelmanager::InterceptId"
+ |"lightning::chain::keysinterface::KeyMaterial"
if is_ref => Some("*const [u8; 32]"),
"lightning::ln::PaymentHash"|"lightning::ln::PaymentPreimage"|"lightning::ln::PaymentSecret"
- |"lightning::ln::channelmanager::PaymentId"|"lightning::chain::keysinterface::KeyMaterial"
+ |"lightning::ln::channelmanager::PaymentId"|"lightning::ln::channelmanager::InterceptId"
+ |"lightning::chain::keysinterface::KeyMaterial"
if !is_ref => Some("crate::c_types::ThirtyTwoBytes"),
"lightning::io::Read" => Some("crate::c_types::u8slice"),
"[u8; 12]" if !is_ref => Some(""),
"[u8; 4]" if !is_ref => Some(""),
"[u8; 3]" if !is_ref => Some(""),
+ "[u16; 8]" if !is_ref => Some(""),
"[u8]" if is_ref => Some(""),
"[usize]" if is_ref => Some(""),
"str" if is_ref => Some(""),
"alloc::string::String"|"String" => Some(""),
- "std::io::Error"|"lightning::io::Error" => Some(""),
+ "std::io::Error"|"lightning::io::Error"|"lightning::io::ErrorKind" => Some(""),
// Note that we'll panic for String if is_ref, as we only have non-owned memory, we
// cannot create a &String.
"std::time::SystemTime" => Some("(::std::time::SystemTime::UNIX_EPOCH + std::time::Duration::from_secs("),
"bitcoin::bech32::u5"|"bech32::u5" => Some(""),
+ "u128" => Some(""),
"core::num::NonZeroU8" => Some("core::num::NonZeroU8::new("),
"bitcoin::secp256k1::PublicKey"|"secp256k1::PublicKey" if is_ref => Some("&"),
"bitcoin::secp256k1::ecdsa::RecoverableSignature" => Some(""),
"bitcoin::secp256k1::SecretKey" if is_ref => Some("&::bitcoin::secp256k1::SecretKey::from_slice(&unsafe { *"),
"bitcoin::secp256k1::SecretKey" if !is_ref => Some(""),
+ "bitcoin::secp256k1::Scalar" if !is_ref => Some(""),
+ "bitcoin::secp256k1::ecdh::SharedSecret" if !is_ref => Some("::bitcoin::secp256k1::ecdh::SharedSecret::from_bytes("),
+
"bitcoin::blockdata::script::Script" if is_ref => Some("&::bitcoin::blockdata::script::Script::from(Vec::from("),
"bitcoin::blockdata::script::Script" if !is_ref => Some("::bitcoin::blockdata::script::Script::from("),
"bitcoin::blockdata::transaction::Transaction"|"bitcoin::Transaction" if is_ref => Some("&"),
"bitcoin::blockdata::transaction::Transaction"|"bitcoin::Transaction" => Some(""),
+ "bitcoin::Witness" if is_ref => Some("&"),
+ "bitcoin::Witness" => Some(""),
"bitcoin::blockdata::transaction::OutPoint" => Some("crate::c_types::C_to_bitcoin_outpoint("),
"bitcoin::blockdata::transaction::TxOut" if !is_ref => Some(""),
"bitcoin::network::constants::Network" => Some(""),
"lightning::ln::PaymentSecret" if !is_ref => Some("::lightning::ln::PaymentSecret("),
"lightning::ln::channelmanager::PaymentId" if !is_ref => Some("::lightning::ln::channelmanager::PaymentId("),
"lightning::ln::channelmanager::PaymentId" if is_ref=> Some("&::lightning::ln::channelmanager::PaymentId( unsafe { *"),
+ "lightning::ln::channelmanager::InterceptId" if !is_ref => Some("::lightning::ln::channelmanager::InterceptId("),
+ "lightning::ln::channelmanager::InterceptId" if is_ref=> Some("&::lightning::ln::channelmanager::InterceptId( unsafe { *"),
"lightning::chain::keysinterface::KeyMaterial" if !is_ref => Some("::lightning::chain::keysinterface::KeyMaterial("),
"lightning::chain::keysinterface::KeyMaterial" if is_ref=> Some("&::lightning::chain::keysinterface::KeyMaterial( unsafe { *"),
"[u8; 12]" if !is_ref => Some(".data"),
"[u8; 4]" if !is_ref => Some(".data"),
"[u8; 3]" if !is_ref => Some(".data"),
+ "[u16; 8]" if !is_ref => Some(".data"),
"[u8]" if is_ref => Some(".to_slice()"),
"[usize]" if is_ref => Some(".to_slice()"),
"str" if is_ref => Some(".into_str()"),
"alloc::string::String"|"String" => Some(".into_string()"),
"std::io::Error"|"lightning::io::Error" => Some(".to_rust()"),
+ "lightning::io::ErrorKind" => Some(".to_rust_kind()"),
"core::convert::Infallible" => Some("\")"),
"std::time::SystemTime" => Some("))"),
"bitcoin::bech32::u5"|"bech32::u5" => Some(".into()"),
+ "u128" => Some(".into()"),
"core::num::NonZeroU8" => Some(").expect(\"Value must be non-zero\")"),
"bitcoin::secp256k1::PublicKey"|"secp256k1::PublicKey" => Some(".into_rust()"),
"bitcoin::secp256k1::ecdsa::RecoverableSignature" => Some(".into_rust()"),
"bitcoin::secp256k1::SecretKey" if !is_ref => Some(".into_rust()"),
"bitcoin::secp256k1::SecretKey" if is_ref => Some("}[..]).unwrap()"),
+ "bitcoin::secp256k1::Scalar" if !is_ref => Some(".into_rust()"),
+ "bitcoin::secp256k1::ecdh::SharedSecret" if !is_ref => Some(".data)"),
+
"bitcoin::blockdata::script::Script" if is_ref => Some(".to_slice()))"),
"bitcoin::blockdata::script::Script" if !is_ref => Some(".into_rust())"),
"bitcoin::blockdata::transaction::Transaction"|"bitcoin::Transaction" => Some(".into_bitcoin()"),
+ "bitcoin::Witness" => Some(".into_bitcoin()"),
"bitcoin::blockdata::transaction::OutPoint" => Some(")"),
"bitcoin::blockdata::transaction::TxOut" if !is_ref => Some(".into_rust()"),
"bitcoin::network::constants::Network" => Some(".into_bitcoin()"),
"bitcoin::hash_types::Txid" => Some(".data[..]).unwrap()"),
"bitcoin::hash_types::BlockHash" if !is_ref => Some(".data[..]).unwrap()"),
"lightning::ln::PaymentHash"|"lightning::ln::PaymentPreimage"|"lightning::ln::PaymentSecret"
- |"lightning::ln::channelmanager::PaymentId"|"lightning::chain::keysinterface::KeyMaterial"
+ |"lightning::ln::channelmanager::PaymentId"|"lightning::ln::channelmanager::InterceptId"
+ |"lightning::chain::keysinterface::KeyMaterial"
if !is_ref => Some(".data)"),
"lightning::ln::PaymentHash"|"lightning::ln::PaymentPreimage"|"lightning::ln::PaymentSecret"
- |"lightning::ln::channelmanager::PaymentId"|"lightning::chain::keysinterface::KeyMaterial"
+ |"lightning::ln::channelmanager::PaymentId"|"lightning::ln::channelmanager::InterceptId"
+ |"lightning::chain::keysinterface::KeyMaterial"
if is_ref => Some(" })"),
// List of traits we map (possibly during processing of other files):
"[u8; 12]" if !is_ref => Some("crate::c_types::TwelveBytes { data: "),
"[u8; 4]" if !is_ref => Some("crate::c_types::FourBytes { data: "),
"[u8; 3]" if is_ref => Some(""),
+ "[u16; 8]" if !is_ref => Some("crate::c_types::EightU16s { data: "),
"[u8]" if is_ref => Some("local_"),
"[usize]" if is_ref => Some("local_"),
"std::time::Duration"|"core::time::Duration" => Some(""),
"std::time::SystemTime" => Some(""),
"std::io::Error"|"lightning::io::Error" => Some("crate::c_types::IOError::from_rust("),
+ "lightning::io::ErrorKind" => Some("crate::c_types::IOError::from_rust_kind("),
"core::fmt::Arguments" => Some("alloc::format!(\"{}\", "),
"core::convert::Infallible" => Some("panic!(\"Cannot construct an Infallible: "),
"core::str::Utf8Error" => Some("crate::c_types::Error { _dummy: 0 } /*"),
"bitcoin::bech32::u5"|"bech32::u5" => Some(""),
+ "u128" => Some(""),
"bitcoin::secp256k1::PublicKey"|"secp256k1::PublicKey" => Some("crate::c_types::PublicKey::from_rust(&"),
"bitcoin::secp256k1::ecdsa::Signature" => Some("crate::c_types::Signature::from_rust(&"),
"bitcoin::secp256k1::ecdsa::RecoverableSignature" => Some("crate::c_types::RecoverableSignature::from_rust(&"),
"bitcoin::secp256k1::SecretKey" if is_ref => Some(""),
"bitcoin::secp256k1::SecretKey" if !is_ref => Some("crate::c_types::SecretKey::from_rust("),
+ "bitcoin::secp256k1::Scalar" if !is_ref => Some("crate::c_types::BigEndianScalar::from_rust("),
+ "bitcoin::secp256k1::ecdh::SharedSecret" if !is_ref => Some("crate::c_types::ThirtyTwoBytes { data: "),
+
"bitcoin::blockdata::script::Script" if is_ref => Some("crate::c_types::u8slice::from_slice(&"),
"bitcoin::blockdata::script::Script" if !is_ref => Some(""),
"bitcoin::blockdata::transaction::Transaction"|"bitcoin::Transaction" if is_ref => Some("crate::c_types::Transaction::from_bitcoin("),
"bitcoin::blockdata::transaction::Transaction"|"bitcoin::Transaction" => Some("crate::c_types::Transaction::from_bitcoin(&"),
+ "bitcoin::Witness" if is_ref => Some("crate::c_types::Witness::from_bitcoin("),
+ "bitcoin::Witness" if !is_ref => Some("crate::c_types::Witness::from_bitcoin(&"),
"bitcoin::blockdata::transaction::OutPoint" => Some("crate::c_types::bitcoin_to_C_outpoint("),
"bitcoin::blockdata::transaction::TxOut" if !is_ref => Some("crate::c_types::TxOut::from_rust("),
"bitcoin::network::constants::Network" => Some("crate::bitcoin::network::Network::from_bitcoin("),
if !is_ref => Some("crate::c_types::ThirtyTwoBytes { data: "),
"bitcoin::secp256k1::Message" if !is_ref => Some("crate::c_types::ThirtyTwoBytes { data: "),
"lightning::ln::PaymentHash"|"lightning::ln::PaymentPreimage"|"lightning::ln::PaymentSecret"
- |"lightning::ln::channelmanager::PaymentId"|"lightning::chain::keysinterface::KeyMaterial"
+ |"lightning::ln::channelmanager::PaymentId"|"lightning::ln::channelmanager::InterceptId"
+ |"lightning::chain::keysinterface::KeyMaterial"
if is_ref => Some("&"),
"lightning::ln::PaymentHash"|"lightning::ln::PaymentPreimage"|"lightning::ln::PaymentSecret"
- |"lightning::ln::channelmanager::PaymentId"|"lightning::chain::keysinterface::KeyMaterial"
+ |"lightning::ln::channelmanager::PaymentId"|"lightning::ln::channelmanager::InterceptId"
+ |"lightning::chain::keysinterface::KeyMaterial"
if !is_ref => Some("crate::c_types::ThirtyTwoBytes { data: "),
"lightning::io::Read" => Some("crate::c_types::u8slice::from_vec(&crate::c_types::reader_to_vec("),
"[u8; 12]" if !is_ref => Some(" }"),
"[u8; 4]" if !is_ref => Some(" }"),
"[u8; 3]" if is_ref => Some(""),
+ "[u16; 8]" if !is_ref => Some(" }"),
"[u8]" if is_ref => Some(""),
"[usize]" if is_ref => Some(""),
"std::time::Duration"|"core::time::Duration" => Some(".as_secs()"),
"std::time::SystemTime" => Some(".duration_since(::std::time::SystemTime::UNIX_EPOCH).expect(\"Times must be post-1970\").as_secs()"),
- "std::io::Error"|"lightning::io::Error" => Some(")"),
+ "std::io::Error"|"lightning::io::Error"|"lightning::io::ErrorKind" => Some(")"),
"core::fmt::Arguments" => Some(").into()"),
"core::convert::Infallible" => Some("\")"),
"core::str::Utf8Error" => Some("*/"),
"bitcoin::bech32::u5"|"bech32::u5" => Some(".into()"),
+ "u128" => Some(".into()"),
"bitcoin::secp256k1::PublicKey"|"secp256k1::PublicKey" => Some(")"),
"bitcoin::secp256k1::ecdsa::Signature" => Some(")"),
"bitcoin::secp256k1::ecdsa::RecoverableSignature" => Some(")"),
"bitcoin::secp256k1::SecretKey" if !is_ref => Some(")"),
"bitcoin::secp256k1::SecretKey" if is_ref => Some(".as_ref()"),
+ "bitcoin::secp256k1::Scalar" if !is_ref => Some(")"),
+ "bitcoin::secp256k1::ecdh::SharedSecret" if !is_ref => Some(".secret_bytes() }"),
+
"bitcoin::blockdata::script::Script" if is_ref => Some("[..])"),
"bitcoin::blockdata::script::Script" if !is_ref => Some(".into_bytes().into()"),
"bitcoin::blockdata::transaction::Transaction"|"bitcoin::Transaction" => Some(")"),
+ "bitcoin::Witness" => Some(")"),
"bitcoin::blockdata::transaction::OutPoint" => Some(")"),
"bitcoin::blockdata::transaction::TxOut" if !is_ref => Some(")"),
"bitcoin::network::constants::Network" => Some(")"),
if !is_ref => Some(".into_inner() }"),
"bitcoin::secp256k1::Message" if !is_ref => Some(".as_ref().clone() }"),
"lightning::ln::PaymentHash"|"lightning::ln::PaymentPreimage"|"lightning::ln::PaymentSecret"
- |"lightning::ln::channelmanager::PaymentId"|"lightning::chain::keysinterface::KeyMaterial"
+ |"lightning::ln::channelmanager::PaymentId"|"lightning::ln::channelmanager::InterceptId"
+ |"lightning::chain::keysinterface::KeyMaterial"
if is_ref => Some(".0"),
"lightning::ln::PaymentHash"|"lightning::ln::PaymentPreimage"|"lightning::ln::PaymentSecret"
- |"lightning::ln::channelmanager::PaymentId"|"lightning::chain::keysinterface::KeyMaterial"
+ |"lightning::ln::channelmanager::PaymentId"|"lightning::ln::channelmanager::InterceptId"
+ |"lightning::chain::keysinterface::KeyMaterial"
if !is_ref => Some(".0 }"),
"lightning::io::Read" => Some("))"),
"crate::c_types"
}
+ /// This should just be a closure, but doing so gets an error like
+ /// error: reached the recursion limit while instantiating `types::TypeResolver::is_transpar...c/types.rs:1358:104: 1358:110]>>`
+ /// which implies the concrete function instantiation of `is_transparent_container` ends up
+ /// being recursive.
+ fn deref_type<'one, 'b: 'one> (obj: &'one &'b syn::Type) -> &'b syn::Type { *obj }
+
/// Returns true if the path containing the given args is a "transparent" container, ie an
/// Option or a container which does not require a generated continer class.
fn is_transparent_container<'i, I: Iterator<Item=&'i syn::Type>>(&self, full_path: &str, _is_ref: bool, mut args: I, generics: Option<&GenericTypes>) -> bool {
if full_path == "Option" {
let inner = args.next().unwrap();
assert!(args.next().is_none());
- match inner {
- syn::Type::Reference(_) => true,
+ match generics.resolve_type(inner) {
+ syn::Type::Reference(r) => {
+ let elem = &*r.elem;
+ match elem {
+ syn::Type::Path(_) =>
+ self.is_transparent_container(full_path, true, [elem].iter().map(Self::deref_type), generics),
+ _ => true,
+ }
+ },
syn::Type::Array(a) => {
if let syn::Expr::Lit(l) = &a.len {
if let syn::Lit::Int(i) = &l.lit {
if let Some(resolved) = self.maybe_resolve_path(&p.path, generics) {
if self.c_type_has_inner_from_path(&resolved) { return true; }
if self.is_primitive(&resolved) { return false; }
- if self.c_type_from_path(&resolved, false, false).is_some() { true } else { false }
- } else { true }
+ // We want to move to using `Option_` mappings where possible rather than
+ // manual mappings, as it makes downstream bindings simpler and is more
+ // clear for users. Thus, we default to false but override for a few
+ // types which had mappings defined when we were avoiding the `Option_`s.
+ match &resolved as &str {
+ "lightning::ln::PaymentSecret" => true,
+ "lightning::ln::PaymentHash" => true,
+ "lightning::ln::PaymentPreimage" => true,
+ "lightning::ln::channelmanager::PaymentId" => true,
+ "bitcoin::hash_types::BlockHash" => true,
+ "secp256k1::PublicKey"|"bitcoin::secp256k1::PublicKey" => true,
+ _ => false,
+ }
+ } else { unimplemented!(); }
},
syn::Type::Tuple(_) => false,
_ => unimplemented!(),
(".is_none() { core::ptr::null_mut() } else { ".to_owned(), format!("({}.unwrap())", var_access))
], " }", ContainerPrefixLocation::OutsideConv));
}
- } else if self.is_primitive(&inner_path) || self.c_type_from_path(&inner_path, false, false).is_none() {
+ } else if !self.is_transparent_container("Option", is_ref, [single_contained.unwrap()].iter().map(|a| *a), generics) {
if self.is_primitive(&inner_path) || (!is_contained_ref && !is_ref) || only_contained_has_inner {
let inner_name = self.get_c_mangled_container_type(vec![single_contained.unwrap()], generics, "Option").unwrap();
return Some(("if ", vec![
}
if let Some(t) = single_contained {
if let syn::Type::Tuple(syn::TypeTuple { elems, .. }) = t {
- assert!(elems.is_empty());
let inner_name = self.get_c_mangled_container_type(vec![single_contained.unwrap()], generics, "Option").unwrap();
- return Some(("if ", vec![
- (format!(".is_none() {{ {}::None }} else {{ {}::Some /*",
- inner_name, inner_name), format!(""))
- ], " */}", ContainerPrefixLocation::PerConv));
+ if elems.is_empty() {
+ return Some(("if ", vec![
+ (format!(".is_none() {{ {}::None }} else {{ {}::Some /* ",
+ inner_name, inner_name), format!(""))
+ ], " */ }", ContainerPrefixLocation::PerConv));
+ } else {
+ return Some(("if ", vec![
+ (format!(".is_none() {{ {}::None }} else {{ {}::Some(",
+ inner_name, inner_name), format!("({}.unwrap())", var_access))
+ ], ") }", ContainerPrefixLocation::PerConv));
+ }
}
if let syn::Type::Reference(syn::TypeReference { elem, .. }) = t {
if let syn::Type::Slice(_) = &**elem {
} else { unimplemented!(); }
},
syn::Type::Array(a) => {
- // We assume all arrays contain only [int_literal; X]s.
- // This may result in some outputs not compiling.
- if let syn::Expr::Lit(l) = &a.len {
- if let syn::Lit::Int(i) = &l.lit {
- write!(w, "{}", path_lookup(&format!("[u8; {}]", i.base10_digits()), is_ref, ptr_for_ref).unwrap()).unwrap();
+ if let syn::Type::Path(p) = &*a.elem {
+ let inner_ty = self.resolve_path(&p.path, generics);
+ if let syn::Expr::Lit(l) = &a.len {
+ if let syn::Lit::Int(i) = &l.lit {
+ write!(w, "{}", path_lookup(&format!("[{}; {}]", inner_ty, i.base10_digits()), is_ref, ptr_for_ref).unwrap()).unwrap();
+ } else { unimplemented!(); }
} else { unimplemented!(); }
} else { unimplemented!(); }
},
write!(w, "{}", sliceconv(false, None)).unwrap();
}
}
+ } else if let syn::Type::Array(_) = &*s.elem {
+ write!(w, "{}", sliceconv(false, Some(".map(|a| *a)"))).unwrap();
} else { unimplemented!(); }
},
syn::Type::Tuple(t) => {
// For slices (and Options), we refuse to directly map them as is_ref when they
// aren't opaque types containing an inner pointer. This is due to the fact that,
// in both cases, the actual higher-level type is non-is_ref.
- let ty_has_inner = if $args_len == 1 {
+ let (ty_has_inner, ty_is_trait) = if $args_len == 1 {
let ty = $args_iter().next().unwrap();
if $container_type == "Slice" && to_c {
// "To C ptr_for_ref" means "return the regular object with is_owned
}
if let syn::Type::Reference(t) = ty {
if let syn::Type::Path(p) = &*t.elem {
- self.c_type_has_inner_from_path(&self.resolve_path(&p.path, generics))
- } else { false }
+ let resolved = self.resolve_path(&p.path, generics);
+ (self.c_type_has_inner_from_path(&resolved), self.crate_types.traits.get(&resolved).is_some())
+ } else { (false, false) }
} else if let syn::Type::Path(p) = ty {
- self.c_type_has_inner_from_path(&self.resolve_path(&p.path, generics))
- } else { false }
- } else { true };
+ let resolved = self.resolve_path(&p.path, generics);
+ (self.c_type_has_inner_from_path(&resolved), self.crate_types.traits.get(&resolved).is_some())
+ } else { (false, false) }
+ } else { (true, false) };
// Options get a bunch of special handling, since in general we map Option<>al
// types into the same C type as non-Option-wrapped types. This ends up being
// If the inner element contains an inner pointer, we will just use that,
// avoiding the need to map elements to references. Otherwise we'll need to
// do an extra mapping step.
- needs_ref_map = !only_contained_has_inner && $container_type == "Option";
+ needs_ref_map = !only_contained_has_inner && !ty_is_trait && $container_type == "Option";
} else {
only_contained_type = Some(arg);
only_contained_type_nonref = Some(arg);
write!(w, "let mut local_{}{} = ", ident,
if (!to_c && needs_ref_map) || (to_c && $container_type == "Option" && contains_slice) {"_base"} else { "" }).unwrap();
if prefix_location == ContainerPrefixLocation::OutsideConv {
- var_prefix(w, $args_iter().next().unwrap(), generics, is_ref, ptr_for_ref, true);
+ var_prefix(w, $args_iter().next().unwrap(), generics, is_ref, true, true);
}
write!(w, "{}{}", prefix, var).unwrap();
ptr_for_ref = true;
convert_container!("Slice", 1, || ty.iter());
unimplemented!("convert_container should return true as container_lookup should succeed for slices");
+ } else if let syn::Type::Array(_) = &*s.elem {
+ is_ref = false;
+ ptr_for_ref = true;
+ let arr_elem = [(*s.elem).clone()];
+ convert_container!("Slice", 1, || arr_elem.iter());
+ unimplemented!("convert_container should return true as container_lookup should succeed for slices");
} else { unimplemented!() }
},
syn::Type::Tuple(t) => {
// ******************************************************
fn write_template_generics<'b, W: std::io::Write>(&self, w: &mut W, args: &mut dyn Iterator<Item=&'b syn::Type>, generics: Option<&GenericTypes>, is_ref: bool) -> bool {
- for (idx, t) in args.enumerate() {
+ for (idx, orig_t) in args.enumerate() {
if idx != 0 {
write!(w, ", ").unwrap();
}
+ let t = generics.resolve_type(orig_t);
if let syn::Type::Reference(r_arg) = t {
assert!(!is_ref); // We don't currently support outer reference types for non-primitive inners
if let syn::Type::Path(p_arg) = &*r_arg.elem {
let resolved = self.resolve_path(&p_arg.path, generics);
assert!(self.crate_types.opaques.get(&resolved).is_some() ||
+ self.crate_types.traits.get(&resolved).is_some() ||
self.c_type_from_path(&resolved, true, true).is_some(), "Template generics should be opaque or have a predefined mapping");
} else { unimplemented!(); }
} else if let syn::Type::Path(p_arg) = t {
} else if is_ref {
write!(w, "*const [").unwrap();
if !self.write_c_type_intern(w, &a.elem, generics, false, false, ptr_for_ref, with_ref_lifetime, c_ty) { return false; }
- } else {
- let mut typecheck = Vec::new();
- if !self.write_c_type_intern(&mut typecheck, &a.elem, generics, false, false, ptr_for_ref, with_ref_lifetime, c_ty) { return false; }
- if typecheck[..] != ['u' as u8, '8' as u8] { return false; }
}
if let syn::Expr::Lit(l) = &a.len {
if let syn::Lit::Int(i) = &l.lit {
+ let mut inner_ty = Vec::new();
+ if !self.write_c_type_intern(&mut inner_ty, &*a.elem, generics, false, false, ptr_for_ref, false, c_ty) { return false; }
+ let inner_ty_str = String::from_utf8(inner_ty).unwrap();
if !is_ref {
- if let Some(ty) = self.c_type_from_path(&format!("[u8; {}]", i.base10_digits()), false, ptr_for_ref) {
+ if let Some(ty) = self.c_type_from_path(&format!("[{}; {}]", inner_ty_str, i.base10_digits()), false, ptr_for_ref) {
write!(w, "{}", ty).unwrap();
true
} else { false }
} else {
let mut inner_c_ty = Vec::new();
assert!(self.write_c_path_intern(&mut inner_c_ty, &p.path, generics, true, false, ptr_for_ref, with_ref_lifetime, c_ty));
- if self.is_clonable(&String::from_utf8(inner_c_ty).unwrap()) {
- if let Some(id) = p.path.get_ident() {
- let mangled_container = format!("CVec_{}Z", id);
- write!(w, "{}::{}", Self::generated_container_path(), mangled_container).unwrap();
- self.check_create_container(mangled_container, "Vec", vec![&*s.elem], generics, false)
- } else { false }
+ let inner_ty_str = String::from_utf8(inner_c_ty).unwrap();
+ if self.is_clonable(&inner_ty_str) {
+ let inner_ty_ident = inner_ty_str.rsplitn(2, "::").next().unwrap();
+ let mangled_container = format!("CVec_{}Z", inner_ty_ident);
+ write!(w, "{}::{}", Self::generated_container_path(), mangled_container).unwrap();
+ self.check_create_container(mangled_container, "Vec", vec![&*s.elem], generics, false)
} else { false }
}
} else if let syn::Type::Reference(r) = &*s.elem {
let mut segments = syn::punctuated::Punctuated::new();
segments.push(parse_quote!(Vec<#args>));
self.write_c_type_intern(w, &syn::Type::Path(syn::TypePath { qself: None, path: syn::Path { leading_colon: None, segments } }), generics, false, is_mut, ptr_for_ref, with_ref_lifetime, c_ty)
+ } else if let syn::Type::Array(a) = &*s.elem {
+ if let syn::Expr::Lit(l) = &a.len {
+ if let syn::Lit::Int(i) = &l.lit {
+ let mut buf = Vec::new();
+ self.write_rust_type(&mut buf, generics, &*a.elem, false);
+ let arr_ty = String::from_utf8(buf).unwrap();
+
+ let arr_str = format!("[{}; {}]", arr_ty, i.base10_digits());
+ let ty = self.c_type_from_path(&arr_str, false, ptr_for_ref).unwrap()
+ .rsplitn(2, "::").next().unwrap();
+
+ let mangled_container = format!("CVec_{}Z", ty);
+ write!(w, "{}::{}", Self::generated_container_path(), mangled_container).unwrap();
+ self.check_create_container(mangled_container, "Vec", vec![&*s.elem], generics, false)
+ } else { false }
+ } else { false }
} else { false }
},
syn::Type::Tuple(t) => {