359 lines
13 KiB
Rust
359 lines
13 KiB
Rust
// Copyright 2012-2014 The Rust Project Developers. See the COPYRIGHT
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// file at the top-level directory of this distribution and at
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// http://rust-lang.org/COPYRIGHT.
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//
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// Licensed under the Apache License, Version 2.0 <LICENSE-APACHE or
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// http://www.apache.org/licenses/LICENSE-2.0> or the MIT license
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// <LICENSE-MIT or http://opensource.org/licenses/MIT>, at your
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// option. This file may not be copied, modified, or distributed
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// except according to those terms.
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use attr::HasAttrs;
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use feature_gate::{feature_err, EXPLAIN_STMT_ATTR_SYNTAX, Features, get_features, GateIssue};
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use {fold, attr};
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use ast;
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use codemap::Spanned;
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use edition::Edition;
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use parse::{token, ParseSess};
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use ptr::P;
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use util::small_vector::SmallVector;
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/// A folder that strips out items that do not belong in the current configuration.
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pub struct StripUnconfigured<'a> {
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pub should_test: bool,
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pub sess: &'a ParseSess,
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pub features: Option<&'a Features>,
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}
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// `cfg_attr`-process the crate's attributes and compute the crate's features.
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pub fn features(mut krate: ast::Crate, sess: &ParseSess, should_test: bool, edition: Edition)
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-> (ast::Crate, Features) {
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let features;
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{
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let mut strip_unconfigured = StripUnconfigured {
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should_test,
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sess,
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features: None,
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};
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let unconfigured_attrs = krate.attrs.clone();
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let err_count = sess.span_diagnostic.err_count();
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if let Some(attrs) = strip_unconfigured.configure(krate.attrs) {
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krate.attrs = attrs;
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} else { // the entire crate is unconfigured
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krate.attrs = Vec::new();
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krate.module.items = Vec::new();
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return (krate, Features::new());
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}
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features = get_features(&sess.span_diagnostic, &krate.attrs, edition);
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// Avoid reconfiguring malformed `cfg_attr`s
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if err_count == sess.span_diagnostic.err_count() {
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strip_unconfigured.features = Some(&features);
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strip_unconfigured.configure(unconfigured_attrs);
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}
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}
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(krate, features)
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}
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macro_rules! configure {
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($this:ident, $node:ident) => {
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match $this.configure($node) {
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Some(node) => node,
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None => return Default::default(),
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}
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}
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}
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impl<'a> StripUnconfigured<'a> {
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pub fn configure<T: HasAttrs>(&mut self, node: T) -> Option<T> {
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let node = self.process_cfg_attrs(node);
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if self.in_cfg(node.attrs()) { Some(node) } else { None }
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}
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pub fn process_cfg_attrs<T: HasAttrs>(&mut self, node: T) -> T {
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node.map_attrs(|attrs| {
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attrs.into_iter().filter_map(|attr| self.process_cfg_attr(attr)).collect()
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})
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}
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fn process_cfg_attr(&mut self, attr: ast::Attribute) -> Option<ast::Attribute> {
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if !attr.check_name("cfg_attr") {
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return Some(attr);
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}
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let (cfg, path, tokens, span) = match attr.parse(self.sess, |parser| {
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parser.expect(&token::OpenDelim(token::Paren))?;
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let cfg = parser.parse_meta_item()?;
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parser.expect(&token::Comma)?;
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let lo = parser.span.lo();
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let (path, tokens) = parser.parse_path_and_tokens()?;
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parser.expect(&token::CloseDelim(token::Paren))?;
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Ok((cfg, path, tokens, parser.prev_span.with_lo(lo)))
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}) {
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Ok(result) => result,
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Err(mut e) => {
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e.emit();
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return None;
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}
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};
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if attr::cfg_matches(&cfg, self.sess, self.features) {
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self.process_cfg_attr(ast::Attribute {
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id: attr::mk_attr_id(),
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style: attr.style,
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path,
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tokens,
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is_sugared_doc: false,
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span,
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})
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} else {
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None
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}
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}
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// Determine if a node with the given attributes should be included in this configuration.
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pub fn in_cfg(&mut self, attrs: &[ast::Attribute]) -> bool {
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attrs.iter().all(|attr| {
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// When not compiling with --test we should not compile the #[test] functions
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if !self.should_test && is_test_or_bench(attr) {
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return false;
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}
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let mis = if !is_cfg(attr) {
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return true;
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} else if let Some(mis) = attr.meta_item_list() {
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mis
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} else {
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return true;
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};
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if mis.len() != 1 {
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self.sess.span_diagnostic.span_err(attr.span, "expected 1 cfg-pattern");
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return true;
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}
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if !mis[0].is_meta_item() {
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self.sess.span_diagnostic.span_err(mis[0].span, "unexpected literal");
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return true;
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}
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attr::cfg_matches(mis[0].meta_item().unwrap(), self.sess, self.features)
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})
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}
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// Visit attributes on expression and statements (but not attributes on items in blocks).
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fn visit_expr_attrs(&mut self, attrs: &[ast::Attribute]) {
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// flag the offending attributes
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for attr in attrs.iter() {
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self.maybe_emit_expr_attr_err(attr);
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}
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}
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/// If attributes are not allowed on expressions, emit an error for `attr`
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pub fn maybe_emit_expr_attr_err(&self, attr: &ast::Attribute) {
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if !self.features.map(|features| features.stmt_expr_attributes).unwrap_or(true) {
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let mut err = feature_err(self.sess,
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"stmt_expr_attributes",
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attr.span,
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GateIssue::Language,
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EXPLAIN_STMT_ATTR_SYNTAX);
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if attr.is_sugared_doc {
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err.help("`///` is for documentation comments. For a plain comment, use `//`.");
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}
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err.emit();
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}
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}
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pub fn configure_foreign_mod(&mut self, foreign_mod: ast::ForeignMod) -> ast::ForeignMod {
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ast::ForeignMod {
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abi: foreign_mod.abi,
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items: foreign_mod.items.into_iter().filter_map(|item| self.configure(item)).collect(),
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}
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}
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fn configure_variant_data(&mut self, vdata: ast::VariantData) -> ast::VariantData {
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match vdata {
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ast::VariantData::Struct(fields, id) => {
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let fields = fields.into_iter().filter_map(|field| self.configure(field));
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ast::VariantData::Struct(fields.collect(), id)
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}
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ast::VariantData::Tuple(fields, id) => {
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let fields = fields.into_iter().filter_map(|field| self.configure(field));
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ast::VariantData::Tuple(fields.collect(), id)
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}
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ast::VariantData::Unit(id) => ast::VariantData::Unit(id)
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}
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}
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pub fn configure_item_kind(&mut self, item: ast::ItemKind) -> ast::ItemKind {
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match item {
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ast::ItemKind::Struct(def, generics) => {
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ast::ItemKind::Struct(self.configure_variant_data(def), generics)
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}
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ast::ItemKind::Union(def, generics) => {
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ast::ItemKind::Union(self.configure_variant_data(def), generics)
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}
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ast::ItemKind::Enum(def, generics) => {
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let variants = def.variants.into_iter().filter_map(|v| {
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self.configure(v).map(|v| {
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Spanned {
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node: ast::Variant_ {
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ident: v.node.ident,
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attrs: v.node.attrs,
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data: self.configure_variant_data(v.node.data),
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disr_expr: v.node.disr_expr,
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},
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span: v.span
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}
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})
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});
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ast::ItemKind::Enum(ast::EnumDef {
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variants: variants.collect(),
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}, generics)
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}
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item => item,
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}
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}
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pub fn configure_expr_kind(&mut self, expr_kind: ast::ExprKind) -> ast::ExprKind {
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match expr_kind {
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ast::ExprKind::Match(m, arms) => {
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let arms = arms.into_iter().filter_map(|a| self.configure(a)).collect();
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ast::ExprKind::Match(m, arms)
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}
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ast::ExprKind::Struct(path, fields, base) => {
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let fields = fields.into_iter()
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.filter_map(|field| {
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self.configure(field)
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})
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.collect();
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ast::ExprKind::Struct(path, fields, base)
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}
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_ => expr_kind,
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}
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}
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pub fn configure_expr(&mut self, expr: P<ast::Expr>) -> P<ast::Expr> {
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self.visit_expr_attrs(expr.attrs());
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// If an expr is valid to cfg away it will have been removed by the
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// outer stmt or expression folder before descending in here.
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// Anything else is always required, and thus has to error out
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// in case of a cfg attr.
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//
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// NB: This is intentionally not part of the fold_expr() function
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// in order for fold_opt_expr() to be able to avoid this check
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if let Some(attr) = expr.attrs().iter().find(|a| is_cfg(a) || is_test_or_bench(a)) {
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let msg = "removing an expression is not supported in this position";
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self.sess.span_diagnostic.span_err(attr.span, msg);
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}
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self.process_cfg_attrs(expr)
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}
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pub fn configure_stmt(&mut self, stmt: ast::Stmt) -> Option<ast::Stmt> {
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self.configure(stmt)
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}
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pub fn configure_struct_expr_field(&mut self, field: ast::Field) -> Option<ast::Field> {
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self.configure(field)
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}
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pub fn configure_pat(&mut self, pattern: P<ast::Pat>) -> P<ast::Pat> {
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pattern.map(|mut pattern| {
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if let ast::PatKind::Struct(path, fields, etc) = pattern.node {
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let fields = fields.into_iter()
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.filter_map(|field| {
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self.configure(field)
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})
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.collect();
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pattern.node = ast::PatKind::Struct(path, fields, etc);
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}
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pattern
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})
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}
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// deny #[cfg] on generic parameters until we decide what to do with it.
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// see issue #51279.
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pub fn disallow_cfg_on_generic_param(&mut self, param: &ast::GenericParam) {
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for attr in param.attrs() {
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let offending_attr = if attr.check_name("cfg") {
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"cfg"
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} else if attr.check_name("cfg_attr") {
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"cfg_attr"
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} else {
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continue;
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};
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let msg = format!("#[{}] cannot be applied on a generic parameter", offending_attr);
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self.sess.span_diagnostic.span_err(attr.span, &msg);
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}
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}
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}
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impl<'a> fold::Folder for StripUnconfigured<'a> {
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fn fold_foreign_mod(&mut self, foreign_mod: ast::ForeignMod) -> ast::ForeignMod {
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let foreign_mod = self.configure_foreign_mod(foreign_mod);
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fold::noop_fold_foreign_mod(foreign_mod, self)
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}
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fn fold_item_kind(&mut self, item: ast::ItemKind) -> ast::ItemKind {
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let item = self.configure_item_kind(item);
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fold::noop_fold_item_kind(item, self)
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}
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fn fold_expr(&mut self, expr: P<ast::Expr>) -> P<ast::Expr> {
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let mut expr = self.configure_expr(expr).into_inner();
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expr.node = self.configure_expr_kind(expr.node);
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P(fold::noop_fold_expr(expr, self))
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}
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fn fold_opt_expr(&mut self, expr: P<ast::Expr>) -> Option<P<ast::Expr>> {
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let mut expr = configure!(self, expr).into_inner();
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expr.node = self.configure_expr_kind(expr.node);
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Some(P(fold::noop_fold_expr(expr, self)))
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}
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fn fold_stmt(&mut self, stmt: ast::Stmt) -> SmallVector<ast::Stmt> {
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match self.configure_stmt(stmt) {
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Some(stmt) => fold::noop_fold_stmt(stmt, self),
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None => return SmallVector::new(),
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}
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}
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fn fold_item(&mut self, item: P<ast::Item>) -> SmallVector<P<ast::Item>> {
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fold::noop_fold_item(configure!(self, item), self)
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}
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fn fold_impl_item(&mut self, item: ast::ImplItem) -> SmallVector<ast::ImplItem> {
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fold::noop_fold_impl_item(configure!(self, item), self)
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}
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fn fold_trait_item(&mut self, item: ast::TraitItem) -> SmallVector<ast::TraitItem> {
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fold::noop_fold_trait_item(configure!(self, item), self)
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}
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fn fold_mac(&mut self, mac: ast::Mac) -> ast::Mac {
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// Don't configure interpolated AST (c.f. #34171).
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// Interpolated AST will get configured once the surrounding tokens are parsed.
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mac
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}
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fn fold_pat(&mut self, pattern: P<ast::Pat>) -> P<ast::Pat> {
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fold::noop_fold_pat(self.configure_pat(pattern), self)
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}
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}
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fn is_cfg(attr: &ast::Attribute) -> bool {
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attr.check_name("cfg")
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}
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pub fn is_test_or_bench(attr: &ast::Attribute) -> bool {
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attr.check_name("test") || attr.check_name("bench")
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}
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