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Translation of the lint message happens when the actual diagnostic is created, not when the lint is buffered. Generating the message from BuiltinLintDiag ensures that all required data to construct the message is preserved in the LintBuffer, eventually allowing the messages to be moved to fluent. Remove the `msg` field from BufferedEarlyLint, it is either generated from the data in the BuiltinLintDiag or stored inside BuiltinLintDiag::Normal.
977 lines
40 KiB
Rust
977 lines
40 KiB
Rust
//! A bunch of methods and structures more or less related to resolving macros and
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//! interface provided by `Resolver` to macro expander.
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use crate::errors::CannotDetermineMacroResolution;
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use crate::errors::{self, AddAsNonDerive, CannotFindIdentInThisScope};
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use crate::errors::{MacroExpectedFound, RemoveSurroundingDerive};
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use crate::Namespace::*;
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use crate::{BuiltinMacroState, Determinacy, MacroData, Used};
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use crate::{DeriveData, Finalize, ParentScope, ResolutionError, Resolver, ScopeSet};
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use crate::{ModuleKind, ModuleOrUniformRoot, NameBinding, PathResult, Segment, ToNameBinding};
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use rustc_ast::expand::StrippedCfgItem;
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use rustc_ast::{self as ast, attr, Crate, Inline, ItemKind, ModKind, NodeId};
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use rustc_ast_pretty::pprust;
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use rustc_attr::StabilityLevel;
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use rustc_data_structures::intern::Interned;
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use rustc_data_structures::sync::Lrc;
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use rustc_errors::{Applicability, StashKey};
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use rustc_expand::base::{Annotatable, DeriveResolution, Indeterminate, ResolverExpand};
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use rustc_expand::base::{SyntaxExtension, SyntaxExtensionKind};
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use rustc_expand::compile_declarative_macro;
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use rustc_expand::expand::{AstFragment, Invocation, InvocationKind, SupportsMacroExpansion};
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use rustc_hir::def::{self, DefKind, Namespace, NonMacroAttrKind};
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use rustc_hir::def_id::{CrateNum, DefId, LocalDefId};
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use rustc_middle::middle::stability;
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use rustc_middle::ty::RegisteredTools;
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use rustc_middle::ty::{TyCtxt, Visibility};
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use rustc_session::lint::builtin::UNKNOWN_OR_MALFORMED_DIAGNOSTIC_ATTRIBUTES;
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use rustc_session::lint::builtin::{LEGACY_DERIVE_HELPERS, SOFT_UNSTABLE};
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use rustc_session::lint::builtin::{UNUSED_MACROS, UNUSED_MACRO_RULES};
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use rustc_session::lint::BuiltinLintDiag;
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use rustc_session::parse::feature_err;
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use rustc_span::edit_distance::edit_distance;
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use rustc_span::edition::Edition;
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use rustc_span::hygiene::{self, ExpnData, ExpnKind, LocalExpnId};
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use rustc_span::hygiene::{AstPass, MacroKind};
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use rustc_span::symbol::{kw, sym, Ident, Symbol};
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use rustc_span::{Span, DUMMY_SP};
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use std::cell::Cell;
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use std::mem;
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type Res = def::Res<NodeId>;
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/// Binding produced by a `macro_rules` item.
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/// Not modularized, can shadow previous `macro_rules` bindings, etc.
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#[derive(Debug)]
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pub(crate) struct MacroRulesBinding<'a> {
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pub(crate) binding: NameBinding<'a>,
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/// `macro_rules` scope into which the `macro_rules` item was planted.
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pub(crate) parent_macro_rules_scope: MacroRulesScopeRef<'a>,
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pub(crate) ident: Ident,
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}
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/// The scope introduced by a `macro_rules!` macro.
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/// This starts at the macro's definition and ends at the end of the macro's parent
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/// module (named or unnamed), or even further if it escapes with `#[macro_use]`.
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/// Some macro invocations need to introduce `macro_rules` scopes too because they
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/// can potentially expand into macro definitions.
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#[derive(Copy, Clone, Debug)]
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pub(crate) enum MacroRulesScope<'a> {
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/// Empty "root" scope at the crate start containing no names.
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Empty,
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/// The scope introduced by a `macro_rules!` macro definition.
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Binding(&'a MacroRulesBinding<'a>),
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/// The scope introduced by a macro invocation that can potentially
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/// create a `macro_rules!` macro definition.
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Invocation(LocalExpnId),
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}
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/// `macro_rules!` scopes are always kept by reference and inside a cell.
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/// The reason is that we update scopes with value `MacroRulesScope::Invocation(invoc_id)`
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/// in-place after `invoc_id` gets expanded.
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/// This helps to avoid uncontrollable growth of `macro_rules!` scope chains,
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/// which usually grow linearly with the number of macro invocations
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/// in a module (including derives) and hurt performance.
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pub(crate) type MacroRulesScopeRef<'a> = Interned<'a, Cell<MacroRulesScope<'a>>>;
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/// Macro namespace is separated into two sub-namespaces, one for bang macros and
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/// one for attribute-like macros (attributes, derives).
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/// We ignore resolutions from one sub-namespace when searching names in scope for another.
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pub(crate) fn sub_namespace_match(
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candidate: Option<MacroKind>,
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requirement: Option<MacroKind>,
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) -> bool {
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#[derive(PartialEq)]
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enum SubNS {
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Bang,
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AttrLike,
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}
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let sub_ns = |kind| match kind {
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MacroKind::Bang => SubNS::Bang,
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MacroKind::Attr | MacroKind::Derive => SubNS::AttrLike,
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};
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let candidate = candidate.map(sub_ns);
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let requirement = requirement.map(sub_ns);
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// "No specific sub-namespace" means "matches anything" for both requirements and candidates.
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candidate.is_none() || requirement.is_none() || candidate == requirement
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}
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// We don't want to format a path using pretty-printing,
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// `format!("{}", path)`, because that tries to insert
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// line-breaks and is slow.
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fn fast_print_path(path: &ast::Path) -> Symbol {
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if path.segments.len() == 1 {
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path.segments[0].ident.name
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} else {
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let mut path_str = String::with_capacity(64);
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for (i, segment) in path.segments.iter().enumerate() {
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if i != 0 {
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path_str.push_str("::");
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}
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if segment.ident.name != kw::PathRoot {
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path_str.push_str(segment.ident.as_str())
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}
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}
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Symbol::intern(&path_str)
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}
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}
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pub(crate) fn registered_tools(tcx: TyCtxt<'_>, (): ()) -> RegisteredTools {
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let mut registered_tools = RegisteredTools::default();
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let (_, pre_configured_attrs) = &*tcx.crate_for_resolver(()).borrow();
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for attr in attr::filter_by_name(pre_configured_attrs, sym::register_tool) {
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for nested_meta in attr.meta_item_list().unwrap_or_default() {
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match nested_meta.ident() {
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Some(ident) => {
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if let Some(old_ident) = registered_tools.replace(ident) {
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tcx.dcx().emit_err(errors::ToolWasAlreadyRegistered {
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span: ident.span,
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tool: ident,
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old_ident_span: old_ident.span,
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});
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}
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}
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None => {
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tcx.dcx().emit_err(errors::ToolOnlyAcceptsIdentifiers {
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span: nested_meta.span(),
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tool: sym::register_tool,
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});
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}
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}
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}
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}
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// We implicitly add `rustfmt`, `clippy`, `diagnostic` to known tools,
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// but it's not an error to register them explicitly.
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let predefined_tools = [sym::clippy, sym::rustfmt, sym::diagnostic, sym::miri];
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registered_tools.extend(predefined_tools.iter().cloned().map(Ident::with_dummy_span));
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registered_tools
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}
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// Some feature gates for inner attributes are reported as lints for backward compatibility.
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fn soft_custom_inner_attributes_gate(path: &ast::Path, invoc: &Invocation) -> bool {
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match &path.segments[..] {
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// `#![test]`
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[seg] if seg.ident.name == sym::test => return true,
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// `#![rustfmt::skip]` on out-of-line modules
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[seg1, seg2] if seg1.ident.name == sym::rustfmt && seg2.ident.name == sym::skip => {
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if let InvocationKind::Attr { item, .. } = &invoc.kind {
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if let Annotatable::Item(item) = item {
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if let ItemKind::Mod(_, ModKind::Loaded(_, Inline::No, _)) = item.kind {
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return true;
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}
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}
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}
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}
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_ => {}
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}
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false
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}
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impl<'a, 'tcx> ResolverExpand for Resolver<'a, 'tcx> {
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fn next_node_id(&mut self) -> NodeId {
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self.next_node_id()
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}
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fn invocation_parent(&self, id: LocalExpnId) -> LocalDefId {
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self.invocation_parents[&id].0
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}
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fn resolve_dollar_crates(&mut self) {
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hygiene::update_dollar_crate_names(|ctxt| {
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let ident = Ident::new(kw::DollarCrate, DUMMY_SP.with_ctxt(ctxt));
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match self.resolve_crate_root(ident).kind {
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ModuleKind::Def(.., name) if name != kw::Empty => name,
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_ => kw::Crate,
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}
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});
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}
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fn visit_ast_fragment_with_placeholders(
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&mut self,
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expansion: LocalExpnId,
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fragment: &AstFragment,
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) {
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// Integrate the new AST fragment into all the definition and module structures.
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// We are inside the `expansion` now, but other parent scope components are still the same.
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let parent_scope = ParentScope { expansion, ..self.invocation_parent_scopes[&expansion] };
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let output_macro_rules_scope = self.build_reduced_graph(fragment, parent_scope);
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self.output_macro_rules_scopes.insert(expansion, output_macro_rules_scope);
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parent_scope.module.unexpanded_invocations.borrow_mut().remove(&expansion);
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}
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fn register_builtin_macro(&mut self, name: Symbol, ext: SyntaxExtensionKind) {
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if self.builtin_macros.insert(name, BuiltinMacroState::NotYetSeen(ext)).is_some() {
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self.dcx().bug(format!("built-in macro `{name}` was already registered"));
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}
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}
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// Create a new Expansion with a definition site of the provided module, or
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// a fake empty `#[no_implicit_prelude]` module if no module is provided.
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fn expansion_for_ast_pass(
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&mut self,
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call_site: Span,
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pass: AstPass,
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features: &[Symbol],
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parent_module_id: Option<NodeId>,
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) -> LocalExpnId {
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let parent_module =
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parent_module_id.map(|module_id| self.local_def_id(module_id).to_def_id());
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let expn_id = LocalExpnId::fresh(
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ExpnData::allow_unstable(
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ExpnKind::AstPass(pass),
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call_site,
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self.tcx.sess.edition(),
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features.into(),
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None,
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parent_module,
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),
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self.create_stable_hashing_context(),
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);
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let parent_scope =
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parent_module.map_or(self.empty_module, |def_id| self.expect_module(def_id));
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self.ast_transform_scopes.insert(expn_id, parent_scope);
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expn_id
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}
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fn resolve_imports(&mut self) {
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self.resolve_imports()
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}
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fn resolve_macro_invocation(
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&mut self,
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invoc: &Invocation,
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eager_expansion_root: LocalExpnId,
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force: bool,
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) -> Result<Lrc<SyntaxExtension>, Indeterminate> {
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let invoc_id = invoc.expansion_data.id;
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let parent_scope = match self.invocation_parent_scopes.get(&invoc_id) {
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Some(parent_scope) => *parent_scope,
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None => {
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// If there's no entry in the table, then we are resolving an eagerly expanded
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// macro, which should inherit its parent scope from its eager expansion root -
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// the macro that requested this eager expansion.
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let parent_scope = *self
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.invocation_parent_scopes
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.get(&eager_expansion_root)
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.expect("non-eager expansion without a parent scope");
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self.invocation_parent_scopes.insert(invoc_id, parent_scope);
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parent_scope
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}
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};
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let (path, kind, inner_attr, derives) = match invoc.kind {
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InvocationKind::Attr { ref attr, ref derives, .. } => (
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&attr.get_normal_item().path,
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MacroKind::Attr,
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attr.style == ast::AttrStyle::Inner,
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self.arenas.alloc_ast_paths(derives),
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),
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InvocationKind::Bang { ref mac, .. } => (&mac.path, MacroKind::Bang, false, &[][..]),
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InvocationKind::Derive { ref path, .. } => (path, MacroKind::Derive, false, &[][..]),
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};
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// Derives are not included when `invocations` are collected, so we have to add them here.
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let parent_scope = &ParentScope { derives, ..parent_scope };
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let supports_macro_expansion = invoc.fragment_kind.supports_macro_expansion();
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let node_id = invoc.expansion_data.lint_node_id;
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let (ext, res) = self.smart_resolve_macro_path(
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path,
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kind,
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supports_macro_expansion,
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inner_attr,
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parent_scope,
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node_id,
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force,
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soft_custom_inner_attributes_gate(path, invoc),
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)?;
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let span = invoc.span();
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let def_id = res.opt_def_id();
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invoc_id.set_expn_data(
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ext.expn_data(
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parent_scope.expansion,
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span,
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fast_print_path(path),
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def_id,
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def_id.map(|def_id| self.macro_def_scope(def_id).nearest_parent_mod()),
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),
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self.create_stable_hashing_context(),
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);
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Ok(ext)
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}
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fn record_macro_rule_usage(&mut self, id: NodeId, rule_i: usize) {
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let did = self.local_def_id(id);
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self.unused_macro_rules.remove(&(did, rule_i));
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}
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fn check_unused_macros(&mut self) {
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for (_, &(node_id, ident)) in self.unused_macros.iter() {
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self.lint_buffer.buffer_lint(
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UNUSED_MACROS,
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node_id,
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ident.span,
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format!("unused macro definition: `{}`", ident.name),
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);
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}
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for (&(def_id, arm_i), &(ident, rule_span)) in self.unused_macro_rules.iter() {
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if self.unused_macros.contains_key(&def_id) {
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// We already lint the entire macro as unused
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continue;
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}
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let node_id = self.def_id_to_node_id[def_id];
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self.lint_buffer.buffer_lint(
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UNUSED_MACRO_RULES,
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node_id,
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rule_span,
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format!("rule #{} of macro `{}` is never used", arm_i + 1, ident.name),
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);
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}
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}
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fn has_derive_copy(&self, expn_id: LocalExpnId) -> bool {
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self.containers_deriving_copy.contains(&expn_id)
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}
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fn resolve_derives(
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&mut self,
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expn_id: LocalExpnId,
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force: bool,
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derive_paths: &dyn Fn() -> Vec<DeriveResolution>,
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) -> Result<(), Indeterminate> {
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// Block expansion of the container until we resolve all derives in it.
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// This is required for two reasons:
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// - Derive helper attributes are in scope for the item to which the `#[derive]`
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// is applied, so they have to be produced by the container's expansion rather
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// than by individual derives.
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// - Derives in the container need to know whether one of them is a built-in `Copy`.
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// Temporarily take the data to avoid borrow checker conflicts.
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let mut derive_data = mem::take(&mut self.derive_data);
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let entry = derive_data.entry(expn_id).or_insert_with(|| DeriveData {
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resolutions: derive_paths(),
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helper_attrs: Vec::new(),
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has_derive_copy: false,
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});
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let parent_scope = self.invocation_parent_scopes[&expn_id];
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for (i, resolution) in entry.resolutions.iter_mut().enumerate() {
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if resolution.exts.is_none() {
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resolution.exts = Some(
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match self.resolve_macro_path(
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&resolution.path,
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Some(MacroKind::Derive),
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&parent_scope,
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true,
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force,
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) {
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Ok((Some(ext), _)) => {
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if !ext.helper_attrs.is_empty() {
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let last_seg = resolution.path.segments.last().unwrap();
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let span = last_seg.ident.span.normalize_to_macros_2_0();
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entry.helper_attrs.extend(
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ext.helper_attrs
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.iter()
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.map(|name| (i, Ident::new(*name, span))),
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);
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}
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entry.has_derive_copy |= ext.builtin_name == Some(sym::Copy);
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ext
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}
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Ok(_) | Err(Determinacy::Determined) => self.dummy_ext(MacroKind::Derive),
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Err(Determinacy::Undetermined) => {
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assert!(self.derive_data.is_empty());
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self.derive_data = derive_data;
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return Err(Indeterminate);
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}
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},
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);
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}
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}
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// Sort helpers in a stable way independent from the derive resolution order.
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entry.helper_attrs.sort_by_key(|(i, _)| *i);
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let helper_attrs = entry
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.helper_attrs
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.iter()
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.map(|(_, ident)| {
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let res = Res::NonMacroAttr(NonMacroAttrKind::DeriveHelper);
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let binding = (res, Visibility::<DefId>::Public, ident.span, expn_id)
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.to_name_binding(self.arenas);
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(*ident, binding)
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})
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.collect();
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self.helper_attrs.insert(expn_id, helper_attrs);
|
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// Mark this derive as having `Copy` either if it has `Copy` itself or if its parent derive
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|
// has `Copy`, to support cases like `#[derive(Clone, Copy)] #[derive(Debug)]`.
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|
if entry.has_derive_copy || self.has_derive_copy(parent_scope.expansion) {
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self.containers_deriving_copy.insert(expn_id);
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}
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assert!(self.derive_data.is_empty());
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self.derive_data = derive_data;
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Ok(())
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}
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|
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fn take_derive_resolutions(&mut self, expn_id: LocalExpnId) -> Option<Vec<DeriveResolution>> {
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self.derive_data.remove(&expn_id).map(|data| data.resolutions)
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}
|
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|
|
// The function that implements the resolution logic of `#[cfg_accessible(path)]`.
|
|
// Returns true if the path can certainly be resolved in one of three namespaces,
|
|
// returns false if the path certainly cannot be resolved in any of the three namespaces.
|
|
// Returns `Indeterminate` if we cannot give a certain answer yet.
|
|
fn cfg_accessible(
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&mut self,
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expn_id: LocalExpnId,
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path: &ast::Path,
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) -> Result<bool, Indeterminate> {
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self.path_accessible(expn_id, path, &[TypeNS, ValueNS, MacroNS])
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|
}
|
|
|
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fn macro_accessible(
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&mut self,
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expn_id: LocalExpnId,
|
|
path: &ast::Path,
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) -> Result<bool, Indeterminate> {
|
|
self.path_accessible(expn_id, path, &[MacroNS])
|
|
}
|
|
|
|
fn get_proc_macro_quoted_span(&self, krate: CrateNum, id: usize) -> Span {
|
|
self.cstore().get_proc_macro_quoted_span_untracked(krate, id, self.tcx.sess)
|
|
}
|
|
|
|
fn declare_proc_macro(&mut self, id: NodeId) {
|
|
self.proc_macros.push(id)
|
|
}
|
|
|
|
fn append_stripped_cfg_item(&mut self, parent_node: NodeId, name: Ident, cfg: ast::MetaItem) {
|
|
self.stripped_cfg_items.push(StrippedCfgItem { parent_module: parent_node, name, cfg });
|
|
}
|
|
|
|
fn registered_tools(&self) -> &RegisteredTools {
|
|
self.registered_tools
|
|
}
|
|
}
|
|
|
|
impl<'a, 'tcx> Resolver<'a, 'tcx> {
|
|
/// Resolve macro path with error reporting and recovery.
|
|
/// Uses dummy syntax extensions for unresolved macros or macros with unexpected resolutions
|
|
/// for better error recovery.
|
|
fn smart_resolve_macro_path(
|
|
&mut self,
|
|
path: &ast::Path,
|
|
kind: MacroKind,
|
|
supports_macro_expansion: SupportsMacroExpansion,
|
|
inner_attr: bool,
|
|
parent_scope: &ParentScope<'a>,
|
|
node_id: NodeId,
|
|
force: bool,
|
|
soft_custom_inner_attributes_gate: bool,
|
|
) -> Result<(Lrc<SyntaxExtension>, Res), Indeterminate> {
|
|
let (ext, res) = match self.resolve_macro_path(path, Some(kind), parent_scope, true, force)
|
|
{
|
|
Ok((Some(ext), res)) => (ext, res),
|
|
Ok((None, res)) => (self.dummy_ext(kind), res),
|
|
Err(Determinacy::Determined) => (self.dummy_ext(kind), Res::Err),
|
|
Err(Determinacy::Undetermined) => return Err(Indeterminate),
|
|
};
|
|
|
|
// Report errors for the resolved macro.
|
|
for segment in &path.segments {
|
|
if let Some(args) = &segment.args {
|
|
self.dcx().emit_err(errors::GenericArgumentsInMacroPath { span: args.span() });
|
|
}
|
|
if kind == MacroKind::Attr && segment.ident.as_str().starts_with("rustc") {
|
|
self.dcx().emit_err(errors::AttributesStartingWithRustcAreReserved {
|
|
span: segment.ident.span,
|
|
});
|
|
}
|
|
}
|
|
|
|
match res {
|
|
Res::Def(DefKind::Macro(_), def_id) => {
|
|
if let Some(def_id) = def_id.as_local() {
|
|
self.unused_macros.remove(&def_id);
|
|
if self.proc_macro_stubs.contains(&def_id) {
|
|
self.dcx().emit_err(errors::ProcMacroSameCrate {
|
|
span: path.span,
|
|
is_test: self.tcx.sess.is_test_crate(),
|
|
});
|
|
}
|
|
}
|
|
}
|
|
Res::NonMacroAttr(..) | Res::Err => {}
|
|
_ => panic!("expected `DefKind::Macro` or `Res::NonMacroAttr`"),
|
|
};
|
|
|
|
self.check_stability_and_deprecation(&ext, path, node_id);
|
|
|
|
let unexpected_res = if ext.macro_kind() != kind {
|
|
Some((kind.article(), kind.descr_expected()))
|
|
} else if matches!(res, Res::Def(..)) {
|
|
match supports_macro_expansion {
|
|
SupportsMacroExpansion::No => Some(("a", "non-macro attribute")),
|
|
SupportsMacroExpansion::Yes { supports_inner_attrs } => {
|
|
if inner_attr && !supports_inner_attrs {
|
|
Some(("a", "non-macro inner attribute"))
|
|
} else {
|
|
None
|
|
}
|
|
}
|
|
}
|
|
} else {
|
|
None
|
|
};
|
|
if let Some((article, expected)) = unexpected_res {
|
|
let path_str = pprust::path_to_string(path);
|
|
|
|
let mut err = MacroExpectedFound {
|
|
span: path.span,
|
|
expected,
|
|
article,
|
|
found: res.descr(),
|
|
macro_path: &path_str,
|
|
remove_surrounding_derive: None,
|
|
add_as_non_derive: None,
|
|
};
|
|
|
|
// Suggest moving the macro out of the derive() if the macro isn't Derive
|
|
if !path.span.from_expansion()
|
|
&& kind == MacroKind::Derive
|
|
&& ext.macro_kind() != MacroKind::Derive
|
|
{
|
|
err.remove_surrounding_derive = Some(RemoveSurroundingDerive { span: path.span });
|
|
err.add_as_non_derive = Some(AddAsNonDerive { macro_path: &path_str });
|
|
}
|
|
|
|
self.dcx().emit_err(err);
|
|
|
|
return Ok((self.dummy_ext(kind), Res::Err));
|
|
}
|
|
|
|
// We are trying to avoid reporting this error if other related errors were reported.
|
|
if res != Res::Err && inner_attr && !self.tcx.features().custom_inner_attributes {
|
|
let msg = match res {
|
|
Res::Def(..) => "inner macro attributes are unstable",
|
|
Res::NonMacroAttr(..) => "custom inner attributes are unstable",
|
|
_ => unreachable!(),
|
|
};
|
|
if soft_custom_inner_attributes_gate {
|
|
self.tcx.sess.psess.buffer_lint(SOFT_UNSTABLE, path.span, node_id, msg);
|
|
} else {
|
|
feature_err(&self.tcx.sess, sym::custom_inner_attributes, path.span, msg).emit();
|
|
}
|
|
}
|
|
|
|
if res == Res::NonMacroAttr(NonMacroAttrKind::Tool)
|
|
&& let [namespace, attribute, ..] = &*path.segments
|
|
&& namespace.ident.name == sym::diagnostic
|
|
&& attribute.ident.name != sym::on_unimplemented
|
|
{
|
|
let distance =
|
|
edit_distance(attribute.ident.name.as_str(), sym::on_unimplemented.as_str(), 5);
|
|
|
|
let help = if distance.is_some() {
|
|
BuiltinLintDiag::MaybeTypo { span: attribute.span(), name: sym::on_unimplemented }
|
|
} else {
|
|
BuiltinLintDiag::Normal
|
|
};
|
|
self.tcx.sess.psess.buffer_lint_with_diagnostic(
|
|
UNKNOWN_OR_MALFORMED_DIAGNOSTIC_ATTRIBUTES,
|
|
attribute.span(),
|
|
node_id,
|
|
"unknown diagnostic attribute",
|
|
help,
|
|
);
|
|
}
|
|
|
|
Ok((ext, res))
|
|
}
|
|
|
|
pub(crate) fn resolve_macro_path(
|
|
&mut self,
|
|
path: &ast::Path,
|
|
kind: Option<MacroKind>,
|
|
parent_scope: &ParentScope<'a>,
|
|
trace: bool,
|
|
force: bool,
|
|
) -> Result<(Option<Lrc<SyntaxExtension>>, Res), Determinacy> {
|
|
let path_span = path.span;
|
|
let mut path = Segment::from_path(path);
|
|
|
|
// Possibly apply the macro helper hack
|
|
if kind == Some(MacroKind::Bang)
|
|
&& path.len() == 1
|
|
&& path[0].ident.span.ctxt().outer_expn_data().local_inner_macros
|
|
{
|
|
let root = Ident::new(kw::DollarCrate, path[0].ident.span);
|
|
path.insert(0, Segment::from_ident(root));
|
|
}
|
|
|
|
let res = if path.len() > 1 {
|
|
let res = match self.maybe_resolve_path(&path, Some(MacroNS), parent_scope) {
|
|
PathResult::NonModule(path_res) if let Some(res) = path_res.full_res() => Ok(res),
|
|
PathResult::Indeterminate if !force => return Err(Determinacy::Undetermined),
|
|
PathResult::NonModule(..)
|
|
| PathResult::Indeterminate
|
|
| PathResult::Failed { .. } => Err(Determinacy::Determined),
|
|
PathResult::Module(..) => unreachable!(),
|
|
};
|
|
|
|
if trace {
|
|
let kind = kind.expect("macro kind must be specified if tracing is enabled");
|
|
self.multi_segment_macro_resolutions.push((
|
|
path,
|
|
path_span,
|
|
kind,
|
|
*parent_scope,
|
|
res.ok(),
|
|
));
|
|
}
|
|
|
|
self.prohibit_imported_non_macro_attrs(None, res.ok(), path_span);
|
|
res
|
|
} else {
|
|
let scope_set = kind.map_or(ScopeSet::All(MacroNS), ScopeSet::Macro);
|
|
let binding = self.early_resolve_ident_in_lexical_scope(
|
|
path[0].ident,
|
|
scope_set,
|
|
parent_scope,
|
|
None,
|
|
force,
|
|
None,
|
|
);
|
|
if let Err(Determinacy::Undetermined) = binding {
|
|
return Err(Determinacy::Undetermined);
|
|
}
|
|
|
|
if trace {
|
|
let kind = kind.expect("macro kind must be specified if tracing is enabled");
|
|
self.single_segment_macro_resolutions.push((
|
|
path[0].ident,
|
|
kind,
|
|
*parent_scope,
|
|
binding.ok(),
|
|
));
|
|
}
|
|
|
|
let res = binding.map(|binding| binding.res());
|
|
self.prohibit_imported_non_macro_attrs(binding.ok(), res.ok(), path_span);
|
|
res
|
|
};
|
|
|
|
res.map(|res| (self.get_macro(res).map(|macro_data| macro_data.ext.clone()), res))
|
|
}
|
|
|
|
pub(crate) fn finalize_macro_resolutions(&mut self, krate: &Crate) {
|
|
let check_consistency = |this: &mut Self,
|
|
path: &[Segment],
|
|
span,
|
|
kind: MacroKind,
|
|
initial_res: Option<Res>,
|
|
res: Res| {
|
|
if let Some(initial_res) = initial_res {
|
|
if res != initial_res {
|
|
// Make sure compilation does not succeed if preferred macro resolution
|
|
// has changed after the macro had been expanded. In theory all such
|
|
// situations should be reported as errors, so this is a bug.
|
|
this.dcx().span_delayed_bug(span, "inconsistent resolution for a macro");
|
|
}
|
|
} else if this.tcx.dcx().has_errors().is_none() && this.privacy_errors.is_empty() {
|
|
// It's possible that the macro was unresolved (indeterminate) and silently
|
|
// expanded into a dummy fragment for recovery during expansion.
|
|
// Now, post-expansion, the resolution may succeed, but we can't change the
|
|
// past and need to report an error.
|
|
// However, non-speculative `resolve_path` can successfully return private items
|
|
// even if speculative `resolve_path` returned nothing previously, so we skip this
|
|
// less informative error if no other error is reported elsewhere.
|
|
|
|
let err = this.dcx().create_err(CannotDetermineMacroResolution {
|
|
span,
|
|
kind: kind.descr(),
|
|
path: Segment::names_to_string(path),
|
|
});
|
|
err.stash(span, StashKey::UndeterminedMacroResolution);
|
|
}
|
|
};
|
|
|
|
let macro_resolutions = mem::take(&mut self.multi_segment_macro_resolutions);
|
|
for (mut path, path_span, kind, parent_scope, initial_res) in macro_resolutions {
|
|
// FIXME: Path resolution will ICE if segment IDs present.
|
|
for seg in &mut path {
|
|
seg.id = None;
|
|
}
|
|
match self.resolve_path(
|
|
&path,
|
|
Some(MacroNS),
|
|
&parent_scope,
|
|
Some(Finalize::new(ast::CRATE_NODE_ID, path_span)),
|
|
None,
|
|
) {
|
|
PathResult::NonModule(path_res) if let Some(res) = path_res.full_res() => {
|
|
check_consistency(self, &path, path_span, kind, initial_res, res)
|
|
}
|
|
path_res @ (PathResult::NonModule(..) | PathResult::Failed { .. }) => {
|
|
let mut suggestion = None;
|
|
let (span, label, module) =
|
|
if let PathResult::Failed { span, label, module, .. } = path_res {
|
|
// try to suggest if it's not a macro, maybe a function
|
|
if let PathResult::NonModule(partial_res) =
|
|
self.maybe_resolve_path(&path, Some(ValueNS), &parent_scope)
|
|
&& partial_res.unresolved_segments() == 0
|
|
{
|
|
let sm = self.tcx.sess.source_map();
|
|
let exclamation_span = sm.next_point(span);
|
|
suggestion = Some((
|
|
vec![(exclamation_span, "".to_string())],
|
|
format!(
|
|
"{} is not a macro, but a {}, try to remove `!`",
|
|
Segment::names_to_string(&path),
|
|
partial_res.base_res().descr()
|
|
),
|
|
Applicability::MaybeIncorrect,
|
|
));
|
|
}
|
|
(span, label, module)
|
|
} else {
|
|
(
|
|
path_span,
|
|
format!(
|
|
"partially resolved path in {} {}",
|
|
kind.article(),
|
|
kind.descr()
|
|
),
|
|
None,
|
|
)
|
|
};
|
|
self.report_error(
|
|
span,
|
|
ResolutionError::FailedToResolve {
|
|
segment: path.last().map(|segment| segment.ident.name),
|
|
label,
|
|
suggestion,
|
|
module,
|
|
},
|
|
);
|
|
}
|
|
PathResult::Module(..) | PathResult::Indeterminate => unreachable!(),
|
|
}
|
|
}
|
|
|
|
let macro_resolutions = mem::take(&mut self.single_segment_macro_resolutions);
|
|
for (ident, kind, parent_scope, initial_binding) in macro_resolutions {
|
|
match self.early_resolve_ident_in_lexical_scope(
|
|
ident,
|
|
ScopeSet::Macro(kind),
|
|
&parent_scope,
|
|
Some(Finalize::new(ast::CRATE_NODE_ID, ident.span)),
|
|
true,
|
|
None,
|
|
) {
|
|
Ok(binding) => {
|
|
let initial_res = initial_binding.map(|initial_binding| {
|
|
self.record_use(ident, initial_binding, Used::Other);
|
|
initial_binding.res()
|
|
});
|
|
let res = binding.res();
|
|
let seg = Segment::from_ident(ident);
|
|
check_consistency(self, &[seg], ident.span, kind, initial_res, res);
|
|
if res == Res::NonMacroAttr(NonMacroAttrKind::DeriveHelperCompat) {
|
|
let node_id = self
|
|
.invocation_parents
|
|
.get(&parent_scope.expansion)
|
|
.map_or(ast::CRATE_NODE_ID, |id| self.def_id_to_node_id[id.0]);
|
|
self.lint_buffer.buffer_lint_with_diagnostic(
|
|
LEGACY_DERIVE_HELPERS,
|
|
node_id,
|
|
ident.span,
|
|
BuiltinLintDiag::LegacyDeriveHelpers(binding.span),
|
|
);
|
|
}
|
|
}
|
|
Err(..) => {
|
|
let expected = kind.descr_expected();
|
|
|
|
let mut err = self.dcx().create_err(CannotFindIdentInThisScope {
|
|
span: ident.span,
|
|
expected,
|
|
ident,
|
|
});
|
|
self.unresolved_macro_suggestions(&mut err, kind, &parent_scope, ident, krate);
|
|
err.emit();
|
|
}
|
|
}
|
|
}
|
|
|
|
let builtin_attrs = mem::take(&mut self.builtin_attrs);
|
|
for (ident, parent_scope) in builtin_attrs {
|
|
let _ = self.early_resolve_ident_in_lexical_scope(
|
|
ident,
|
|
ScopeSet::Macro(MacroKind::Attr),
|
|
&parent_scope,
|
|
Some(Finalize::new(ast::CRATE_NODE_ID, ident.span)),
|
|
true,
|
|
None,
|
|
);
|
|
}
|
|
}
|
|
|
|
fn check_stability_and_deprecation(
|
|
&mut self,
|
|
ext: &SyntaxExtension,
|
|
path: &ast::Path,
|
|
node_id: NodeId,
|
|
) {
|
|
let span = path.span;
|
|
if let Some(stability) = &ext.stability {
|
|
if let StabilityLevel::Unstable { reason, issue, is_soft, implied_by } = stability.level
|
|
{
|
|
let feature = stability.feature;
|
|
|
|
let is_allowed = |feature| {
|
|
self.declared_features.contains(&feature) || span.allows_unstable(feature)
|
|
};
|
|
let allowed_by_implication = implied_by.is_some_and(|feature| is_allowed(feature));
|
|
if !is_allowed(feature) && !allowed_by_implication {
|
|
let lint_buffer = &mut self.lint_buffer;
|
|
let soft_handler =
|
|
|lint, span, msg: String| lint_buffer.buffer_lint(lint, node_id, span, msg);
|
|
stability::report_unstable(
|
|
self.tcx.sess,
|
|
feature,
|
|
reason.to_opt_reason(),
|
|
issue,
|
|
None,
|
|
is_soft,
|
|
span,
|
|
soft_handler,
|
|
);
|
|
}
|
|
}
|
|
}
|
|
if let Some(depr) = &ext.deprecation {
|
|
let path = pprust::path_to_string(path);
|
|
let (message, lint) = stability::deprecation_message_and_lint(depr, "macro", &path);
|
|
stability::early_report_deprecation(
|
|
&mut self.lint_buffer,
|
|
message,
|
|
depr.suggestion,
|
|
lint,
|
|
span,
|
|
node_id,
|
|
);
|
|
}
|
|
}
|
|
|
|
fn prohibit_imported_non_macro_attrs(
|
|
&self,
|
|
binding: Option<NameBinding<'a>>,
|
|
res: Option<Res>,
|
|
span: Span,
|
|
) {
|
|
if let Some(Res::NonMacroAttr(kind)) = res {
|
|
if kind != NonMacroAttrKind::Tool && binding.map_or(true, |b| b.is_import()) {
|
|
let binding_span = binding.map(|binding| binding.span);
|
|
self.dcx().emit_err(errors::CannotUseThroughAnImport {
|
|
span,
|
|
article: kind.article(),
|
|
descr: kind.descr(),
|
|
binding_span,
|
|
});
|
|
}
|
|
}
|
|
}
|
|
|
|
pub(crate) fn check_reserved_macro_name(&mut self, ident: Ident, res: Res) {
|
|
// Reserve some names that are not quite covered by the general check
|
|
// performed on `Resolver::builtin_attrs`.
|
|
if ident.name == sym::cfg || ident.name == sym::cfg_attr {
|
|
let macro_kind = self.get_macro(res).map(|macro_data| macro_data.ext.macro_kind());
|
|
if macro_kind.is_some() && sub_namespace_match(macro_kind, Some(MacroKind::Attr)) {
|
|
self.dcx()
|
|
.emit_err(errors::NameReservedInAttributeNamespace { span: ident.span, ident });
|
|
}
|
|
}
|
|
}
|
|
|
|
/// Compile the macro into a `SyntaxExtension` and its rule spans.
|
|
///
|
|
/// Possibly replace its expander to a pre-defined one for built-in macros.
|
|
pub(crate) fn compile_macro(&mut self, item: &ast::Item, edition: Edition) -> MacroData {
|
|
let (mut ext, mut rule_spans) =
|
|
compile_declarative_macro(self.tcx.sess, self.tcx.features(), item, edition);
|
|
|
|
if let Some(builtin_name) = ext.builtin_name {
|
|
// The macro was marked with `#[rustc_builtin_macro]`.
|
|
if let Some(builtin_macro) = self.builtin_macros.get_mut(&builtin_name) {
|
|
// The macro is a built-in, replace its expander function
|
|
// while still taking everything else from the source code.
|
|
// If we already loaded this builtin macro, give a better error message than 'no such builtin macro'.
|
|
match mem::replace(builtin_macro, BuiltinMacroState::AlreadySeen(item.span)) {
|
|
BuiltinMacroState::NotYetSeen(builtin_ext) => {
|
|
ext.kind = builtin_ext;
|
|
rule_spans = Vec::new();
|
|
}
|
|
BuiltinMacroState::AlreadySeen(span) => {
|
|
self.dcx().emit_err(errors::AttemptToDefineBuiltinMacroTwice {
|
|
span: item.span,
|
|
note_span: span,
|
|
});
|
|
}
|
|
}
|
|
} else {
|
|
self.dcx().emit_err(errors::CannotFindBuiltinMacroWithName {
|
|
span: item.span,
|
|
ident: item.ident,
|
|
});
|
|
}
|
|
}
|
|
|
|
let ItemKind::MacroDef(def) = &item.kind else { unreachable!() };
|
|
MacroData { ext: Lrc::new(ext), rule_spans, macro_rules: def.macro_rules }
|
|
}
|
|
|
|
fn path_accessible(
|
|
&mut self,
|
|
expn_id: LocalExpnId,
|
|
path: &ast::Path,
|
|
namespaces: &[Namespace],
|
|
) -> Result<bool, Indeterminate> {
|
|
let span = path.span;
|
|
let path = &Segment::from_path(path);
|
|
let parent_scope = self.invocation_parent_scopes[&expn_id];
|
|
|
|
let mut indeterminate = false;
|
|
for ns in namespaces {
|
|
match self.maybe_resolve_path(path, Some(*ns), &parent_scope) {
|
|
PathResult::Module(ModuleOrUniformRoot::Module(_)) => return Ok(true),
|
|
PathResult::NonModule(partial_res) if partial_res.unresolved_segments() == 0 => {
|
|
return Ok(true);
|
|
}
|
|
PathResult::NonModule(..) |
|
|
// HACK(Urgau): This shouldn't be necessary
|
|
PathResult::Failed { is_error_from_last_segment: false, .. } => {
|
|
self.dcx()
|
|
.emit_err(errors::CfgAccessibleUnsure { span });
|
|
|
|
// If we get a partially resolved NonModule in one namespace, we should get the
|
|
// same result in any other namespaces, so we can return early.
|
|
return Ok(false);
|
|
}
|
|
PathResult::Indeterminate => indeterminate = true,
|
|
// We can only be sure that a path doesn't exist after having tested all the
|
|
// possibilities, only at that time we can return false.
|
|
PathResult::Failed { .. } => {}
|
|
PathResult::Module(_) => panic!("unexpected path resolution"),
|
|
}
|
|
}
|
|
|
|
if indeterminate {
|
|
return Err(Indeterminate);
|
|
}
|
|
|
|
Ok(false)
|
|
}
|
|
}
|