rust-analyzer/crates/hir-def/src/body/lower.rs

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//! Transforms `ast::Expr` into an equivalent `hir_def::expr::Expr`
//! representation.
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use std::{mem, sync::Arc};
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use either::Either;
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use hir_expand::{
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ast_id_map::{AstIdMap, FileAstId},
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hygiene::Hygiene,
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name::{name, AsName, Name},
ExpandError, HirFileId, InFile,
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};
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use la_arena::Arena;
use once_cell::unsync::OnceCell;
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use profile::Count;
use rustc_hash::FxHashMap;
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use syntax::{
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ast::{
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self, ArrayExprKind, AstChildren, HasArgList, HasLoopBody, HasName, LiteralKind,
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SlicePatComponents,
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},
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AstNode, AstPtr, SyntaxNodePtr,
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};
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use crate::{
adt::StructKind,
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body::{Body, BodySourceMap, Expander, LabelSource, PatPtr, SyntheticSyntax},
body::{BodyDiagnostic, ExprSource, PatSource},
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builtin_type::{BuiltinFloat, BuiltinInt, BuiltinUint},
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db::DefDatabase,
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expr::{
dummy_expr_id, Array, BindingAnnotation, Expr, ExprId, FloatTypeWrapper, Label, LabelId,
Literal, MatchArm, Pat, PatId, RecordFieldPat, RecordLitField, Statement,
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},
intern::Interned,
item_scope::BuiltinShadowMode,
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path::{GenericArgs, Path},
type_ref::{Mutability, Rawness, TypeRef},
AdtId, BlockLoc, ModuleDefId, UnresolvedMacro,
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};
pub struct LowerCtx<'a> {
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pub db: &'a dyn DefDatabase,
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hygiene: Hygiene,
ast_id_map: Option<(HirFileId, OnceCell<Arc<AstIdMap>>)>,
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}
impl<'a> LowerCtx<'a> {
pub fn new(db: &'a dyn DefDatabase, file_id: HirFileId) -> Self {
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LowerCtx {
db,
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hygiene: Hygiene::new(db.upcast(), file_id),
ast_id_map: Some((file_id, OnceCell::new())),
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}
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}
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pub fn with_hygiene(db: &'a dyn DefDatabase, hygiene: &Hygiene) -> Self {
LowerCtx { db, hygiene: hygiene.clone(), ast_id_map: None }
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}
pub(crate) fn hygiene(&self) -> &Hygiene {
&self.hygiene
}
pub(crate) fn file_id(&self) -> HirFileId {
self.ast_id_map.as_ref().unwrap().0
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}
pub(crate) fn lower_path(&self, ast: ast::Path) -> Option<Path> {
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Path::from_src(ast, self)
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}
pub(crate) fn ast_id<N: AstNode>(
&self,
db: &dyn DefDatabase,
item: &N,
) -> Option<FileAstId<N>> {
let (file_id, ast_id_map) = self.ast_id_map.as_ref()?;
let ast_id_map = ast_id_map.get_or_init(|| db.ast_id_map(*file_id));
Some(ast_id_map.ast_id(item))
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}
}
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pub(super) fn lower(
db: &dyn DefDatabase,
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expander: Expander,
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params: Option<ast::ParamList>,
body: Option<ast::Expr>,
) -> (Body, BodySourceMap) {
ExprCollector {
db,
source_map: BodySourceMap::default(),
body: Body {
exprs: Arena::default(),
pats: Arena::default(),
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labels: Arena::default(),
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params: Vec::new(),
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body_expr: dummy_expr_id(),
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block_scopes: Vec::new(),
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_c: Count::new(),
or_pats: Default::default(),
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},
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expander,
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name_to_pat_grouping: Default::default(),
is_lowering_inside_or_pat: false,
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}
.collect(params, body)
}
struct ExprCollector<'a> {
db: &'a dyn DefDatabase,
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expander: Expander,
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body: Body,
source_map: BodySourceMap,
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// a poor-mans union-find?
name_to_pat_grouping: FxHashMap<Name, Vec<PatId>>,
is_lowering_inside_or_pat: bool,
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}
impl ExprCollector<'_> {
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fn collect(
mut self,
param_list: Option<ast::ParamList>,
body: Option<ast::Expr>,
) -> (Body, BodySourceMap) {
if let Some(param_list) = param_list {
if let Some(self_param) = param_list.self_param() {
let ptr = AstPtr::new(&self_param);
let param_pat = self.alloc_pat(
Pat::Bind {
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name: name![self],
mode: BindingAnnotation::new(
self_param.mut_token().is_some() && self_param.amp_token().is_none(),
false,
),
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subpat: None,
},
Either::Right(ptr),
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);
self.body.params.push(param_pat);
}
for pat in param_list.params().filter_map(|param| param.pat()) {
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let param_pat = self.collect_pat(pat);
self.body.params.push(param_pat);
}
};
self.body.body_expr = self.collect_expr_opt(body);
(self.body, self.source_map)
}
fn ctx(&self) -> LowerCtx<'_> {
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LowerCtx::new(self.db, self.expander.current_file_id)
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}
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fn alloc_expr(&mut self, expr: Expr, ptr: AstPtr<ast::Expr>) -> ExprId {
let src = self.expander.to_source(ptr);
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let id = self.make_expr(expr, Ok(src.clone()));
self.source_map.expr_map.insert(src, id);
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id
}
// desugared exprs don't have ptr, that's wrong and should be fixed
// somehow.
fn alloc_expr_desugared(&mut self, expr: Expr) -> ExprId {
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self.make_expr(expr, Err(SyntheticSyntax))
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}
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fn missing_expr(&mut self) -> ExprId {
self.alloc_expr_desugared(Expr::Missing)
}
fn make_expr(&mut self, expr: Expr, src: Result<ExprSource, SyntheticSyntax>) -> ExprId {
let id = self.body.exprs.alloc(expr);
self.source_map.expr_map_back.insert(id, src);
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id
}
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fn alloc_pat(&mut self, pat: Pat, ptr: PatPtr) -> PatId {
let src = self.expander.to_source(ptr);
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let id = self.make_pat(pat, Ok(src.clone()));
self.source_map.pat_map.insert(src, id);
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id
}
fn missing_pat(&mut self) -> PatId {
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self.make_pat(Pat::Missing, Err(SyntheticSyntax))
}
fn make_pat(&mut self, pat: Pat, src: Result<PatSource, SyntheticSyntax>) -> PatId {
let id = self.body.pats.alloc(pat);
self.source_map.pat_map_back.insert(id, src);
id
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}
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fn alloc_label(&mut self, label: Label, ptr: AstPtr<ast::Label>) -> LabelId {
let src = self.expander.to_source(ptr);
let id = self.make_label(label, src.clone());
self.source_map.label_map.insert(src, id);
id
}
fn make_label(&mut self, label: Label, src: LabelSource) -> LabelId {
let id = self.body.labels.alloc(label);
self.source_map.label_map_back.insert(id, src);
id
}
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fn collect_expr(&mut self, expr: ast::Expr) -> ExprId {
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self.maybe_collect_expr(expr).unwrap_or_else(|| self.missing_expr())
}
/// Returns `None` if and only if the expression is `#[cfg]`d out.
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fn maybe_collect_expr(&mut self, expr: ast::Expr) -> Option<ExprId> {
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let syntax_ptr = AstPtr::new(&expr);
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self.check_cfg(&expr)?;
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Some(match expr {
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ast::Expr::IfExpr(e) => {
let then_branch = self.collect_block_opt(e.then_branch());
let else_branch = e.else_branch().map(|b| match b {
ast::ElseBranch::Block(it) => self.collect_block(it),
ast::ElseBranch::IfExpr(elif) => {
let expr: ast::Expr = ast::Expr::cast(elif.syntax().clone()).unwrap();
self.collect_expr(expr)
}
});
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let condition = self.collect_expr_opt(e.condition());
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self.alloc_expr(Expr::If { condition, then_branch, else_branch }, syntax_ptr)
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}
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ast::Expr::LetExpr(e) => {
let pat = self.collect_pat_opt(e.pat());
let expr = self.collect_expr_opt(e.expr());
self.alloc_expr(Expr::Let { pat, expr }, syntax_ptr)
}
ast::Expr::BlockExpr(e) => match e.modifier() {
Some(ast::BlockModifier::Try(_)) => {
let body = self.collect_block(e);
self.alloc_expr(Expr::TryBlock { body }, syntax_ptr)
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}
Some(ast::BlockModifier::Unsafe(_)) => {
let body = self.collect_block(e);
self.alloc_expr(Expr::Unsafe { body }, syntax_ptr)
}
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// FIXME: we need to record these effects somewhere...
Some(ast::BlockModifier::Label(label)) => {
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let label = self.collect_label(label);
let res = self.collect_block(e);
match &mut self.body.exprs[res] {
Expr::Block { label: block_label, .. } => {
*block_label = Some(label);
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}
_ => unreachable!(),
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}
res
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}
Some(ast::BlockModifier::Async(_)) => {
let body = self.collect_block(e);
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self.alloc_expr(Expr::Async { body }, syntax_ptr)
}
Some(ast::BlockModifier::Const(_)) => {
let body = self.collect_block(e);
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self.alloc_expr(Expr::Const { body }, syntax_ptr)
}
None => self.collect_block(e),
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},
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ast::Expr::LoopExpr(e) => {
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let label = e.label().map(|label| self.collect_label(label));
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let body = self.collect_block_opt(e.loop_body());
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self.alloc_expr(Expr::Loop { body, label }, syntax_ptr)
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}
ast::Expr::WhileExpr(e) => {
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let label = e.label().map(|label| self.collect_label(label));
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let body = self.collect_block_opt(e.loop_body());
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let condition = self.collect_expr_opt(e.condition());
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self.alloc_expr(Expr::While { condition, body, label }, syntax_ptr)
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}
ast::Expr::ForExpr(e) => {
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let label = e.label().map(|label| self.collect_label(label));
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let iterable = self.collect_expr_opt(e.iterable());
let pat = self.collect_pat_opt(e.pat());
let body = self.collect_block_opt(e.loop_body());
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self.alloc_expr(Expr::For { iterable, pat, body, label }, syntax_ptr)
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}
ast::Expr::CallExpr(e) => {
let callee = self.collect_expr_opt(e.expr());
let args = if let Some(arg_list) = e.arg_list() {
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arg_list.args().filter_map(|e| self.maybe_collect_expr(e)).collect()
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} else {
Box::default()
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};
self.alloc_expr(Expr::Call { callee, args }, syntax_ptr)
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}
ast::Expr::MethodCallExpr(e) => {
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let receiver = self.collect_expr_opt(e.receiver());
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let args = if let Some(arg_list) = e.arg_list() {
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arg_list.args().filter_map(|e| self.maybe_collect_expr(e)).collect()
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} else {
Box::default()
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};
let method_name = e.name_ref().map(|nr| nr.as_name()).unwrap_or_else(Name::missing);
let generic_args = e
.generic_arg_list()
.and_then(|it| GenericArgs::from_ast(&self.ctx(), it))
.map(Box::new);
self.alloc_expr(
Expr::MethodCall { receiver, method_name, args, generic_args },
syntax_ptr,
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)
}
ast::Expr::MatchExpr(e) => {
let expr = self.collect_expr_opt(e.expr());
let arms = if let Some(match_arm_list) = e.match_arm_list() {
match_arm_list
.arms()
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.filter_map(|arm| {
self.check_cfg(&arm).map(|()| MatchArm {
pat: self.collect_pat_opt(arm.pat()),
expr: self.collect_expr_opt(arm.expr()),
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guard: arm
.guard()
.map(|guard| self.collect_expr_opt(guard.condition())),
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})
})
.collect()
} else {
Box::default()
};
self.alloc_expr(Expr::Match { expr, arms }, syntax_ptr)
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}
ast::Expr::PathExpr(e) => {
let path = e
.path()
.and_then(|path| self.expander.parse_path(self.db, path))
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.map(Expr::Path)
.unwrap_or(Expr::Missing);
self.alloc_expr(path, syntax_ptr)
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}
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ast::Expr::ContinueExpr(e) => self.alloc_expr(
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Expr::Continue { label: e.lifetime().map(|l| Name::new_lifetime(&l)) },
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syntax_ptr,
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),
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ast::Expr::BreakExpr(e) => {
let expr = e.expr().map(|e| self.collect_expr(e));
self.alloc_expr(
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Expr::Break { expr, label: e.lifetime().map(|l| Name::new_lifetime(&l)) },
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syntax_ptr,
)
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}
ast::Expr::ParenExpr(e) => {
let inner = self.collect_expr_opt(e.expr());
// make the paren expr point to the inner expression as well
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let src = self.expander.to_source(syntax_ptr);
self.source_map.expr_map.insert(src, inner);
inner
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}
ast::Expr::ReturnExpr(e) => {
let expr = e.expr().map(|e| self.collect_expr(e));
self.alloc_expr(Expr::Return { expr }, syntax_ptr)
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}
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ast::Expr::YieldExpr(e) => {
let expr = e.expr().map(|e| self.collect_expr(e));
self.alloc_expr(Expr::Yield { expr }, syntax_ptr)
}
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ast::Expr::RecordExpr(e) => {
let path =
e.path().and_then(|path| self.expander.parse_path(self.db, path)).map(Box::new);
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let record_lit = if let Some(nfl) = e.record_expr_field_list() {
let fields = nfl
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.fields()
.filter_map(|field| {
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self.check_cfg(&field)?;
let name = field.field_name()?.as_name();
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let expr = match field.expr() {
Some(e) => self.collect_expr(e),
None => self.missing_expr(),
};
let src = self.expander.to_source(AstPtr::new(&field));
self.source_map.field_map.insert(src.clone(), expr);
self.source_map.field_map_back.insert(expr, src);
Some(RecordLitField { name, expr })
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})
.collect();
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let spread = nfl.spread().map(|s| self.collect_expr(s));
Expr::RecordLit { path, fields, spread }
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} else {
Expr::RecordLit { path, fields: Box::default(), spread: None }
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};
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self.alloc_expr(record_lit, syntax_ptr)
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}
ast::Expr::FieldExpr(e) => {
let expr = self.collect_expr_opt(e.expr());
let name = match e.field_access() {
Some(kind) => kind.as_name(),
_ => Name::missing(),
};
self.alloc_expr(Expr::Field { expr, name }, syntax_ptr)
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}
ast::Expr::AwaitExpr(e) => {
let expr = self.collect_expr_opt(e.expr());
self.alloc_expr(Expr::Await { expr }, syntax_ptr)
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}
ast::Expr::TryExpr(e) => {
let expr = self.collect_expr_opt(e.expr());
self.alloc_expr(Expr::Try { expr }, syntax_ptr)
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}
ast::Expr::CastExpr(e) => {
let expr = self.collect_expr_opt(e.expr());
let type_ref = Interned::new(TypeRef::from_ast_opt(&self.ctx(), e.ty()));
self.alloc_expr(Expr::Cast { expr, type_ref }, syntax_ptr)
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}
ast::Expr::RefExpr(e) => {
let expr = self.collect_expr_opt(e.expr());
let raw_tok = e.raw_token().is_some();
let mutability = if raw_tok {
if e.mut_token().is_some() {
Mutability::Mut
} else if e.const_token().is_some() {
Mutability::Shared
} else {
unreachable!("parser only remaps to raw_token() if matching mutability token follows")
}
} else {
Mutability::from_mutable(e.mut_token().is_some())
};
let rawness = Rawness::from_raw(raw_tok);
self.alloc_expr(Expr::Ref { expr, rawness, mutability }, syntax_ptr)
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}
ast::Expr::PrefixExpr(e) => {
let expr = self.collect_expr_opt(e.expr());
match e.op_kind() {
Some(op) => self.alloc_expr(Expr::UnaryOp { expr, op }, syntax_ptr),
None => self.alloc_expr(Expr::Missing, syntax_ptr),
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}
}
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ast::Expr::ClosureExpr(e) => {
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let mut args = Vec::new();
let mut arg_types = Vec::new();
if let Some(pl) = e.param_list() {
for param in pl.params() {
let pat = self.collect_pat_opt(param.pat());
let type_ref =
param.ty().map(|it| Interned::new(TypeRef::from_ast(&self.ctx(), it)));
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args.push(pat);
arg_types.push(type_ref);
}
}
let ret_type = e
.ret_type()
.and_then(|r| r.ty())
.map(|it| Interned::new(TypeRef::from_ast(&self.ctx(), it)));
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let body = self.collect_expr_opt(e.body());
self.alloc_expr(
Expr::Closure {
args: args.into(),
arg_types: arg_types.into(),
ret_type,
body,
},
syntax_ptr,
)
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}
ast::Expr::BinExpr(e) => {
let lhs = self.collect_expr_opt(e.lhs());
let rhs = self.collect_expr_opt(e.rhs());
let op = e.op_kind();
self.alloc_expr(Expr::BinaryOp { lhs, rhs, op }, syntax_ptr)
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}
ast::Expr::TupleExpr(e) => {
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let exprs = e.fields().map(|expr| self.collect_expr(expr)).collect();
self.alloc_expr(Expr::Tuple { exprs }, syntax_ptr)
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}
ast::Expr::BoxExpr(e) => {
let expr = self.collect_expr_opt(e.expr());
self.alloc_expr(Expr::Box { expr }, syntax_ptr)
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}
ast::Expr::ArrayExpr(e) => {
let kind = e.kind();
match kind {
ArrayExprKind::ElementList(e) => {
let exprs = e.map(|expr| self.collect_expr(expr)).collect();
self.alloc_expr(Expr::Array(Array::ElementList(exprs)), syntax_ptr)
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}
ArrayExprKind::Repeat { initializer, repeat } => {
let initializer = self.collect_expr_opt(initializer);
let repeat = self.collect_expr_opt(repeat);
self.alloc_expr(
Expr::Array(Array::Repeat { initializer, repeat }),
syntax_ptr,
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)
}
}
}
ast::Expr::Literal(e) => self.alloc_expr(Expr::Literal(e.kind().into()), syntax_ptr),
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ast::Expr::IndexExpr(e) => {
let base = self.collect_expr_opt(e.base());
let index = self.collect_expr_opt(e.index());
self.alloc_expr(Expr::Index { base, index }, syntax_ptr)
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}
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ast::Expr::RangeExpr(e) => {
let lhs = e.start().map(|lhs| self.collect_expr(lhs));
let rhs = e.end().map(|rhs| self.collect_expr(rhs));
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match e.op_kind() {
Some(range_type) => {
self.alloc_expr(Expr::Range { lhs, rhs, range_type }, syntax_ptr)
}
None => self.alloc_expr(Expr::Missing, syntax_ptr),
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}
}
ast::Expr::MacroExpr(e) => {
let e = e.macro_call()?;
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let macro_ptr = AstPtr::new(&e);
let id = self.collect_macro_call(e, macro_ptr, true, |this, expansion| {
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expansion.map(|it| this.collect_expr(it))
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});
match id {
Some(id) => {
// Make the macro-call point to its expanded expression so we can query
// semantics on syntax pointers to the macro
let src = self.expander.to_source(syntax_ptr);
self.source_map.expr_map.insert(src, id);
id
}
None => self.alloc_expr(Expr::Missing, syntax_ptr),
}
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}
ast::Expr::MacroStmts(e) => {
let statements = e.statements().filter_map(|s| self.collect_stmt(s)).collect();
let tail = e.expr().map(|e| self.collect_expr(e));
self.alloc_expr(Expr::MacroStmts { tail, statements }, syntax_ptr)
}
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ast::Expr::UnderscoreExpr(_) => self.alloc_expr(Expr::Underscore, syntax_ptr),
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})
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}
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fn collect_macro_call<F, T, U>(
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&mut self,
mcall: ast::MacroCall,
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syntax_ptr: AstPtr<ast::MacroCall>,
record_diagnostics: bool,
collector: F,
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) -> U
where
F: FnOnce(&mut Self, Option<T>) -> U,
T: ast::AstNode,
{
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// File containing the macro call. Expansion errors will be attached here.
let outer_file = self.expander.current_file_id;
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let macro_call_ptr = self.expander.to_source(AstPtr::new(&mcall));
let res = self.expander.enter_expand(self.db, mcall);
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let res = match res {
Ok(res) => res,
Err(UnresolvedMacro { path }) => {
if record_diagnostics {
self.source_map.diagnostics.push(BodyDiagnostic::UnresolvedMacroCall {
node: InFile::new(outer_file, syntax_ptr),
path,
});
}
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return collector(self, None);
}
};
if record_diagnostics {
match &res.err {
Some(ExpandError::UnresolvedProcMacro(krate)) => {
self.source_map.diagnostics.push(BodyDiagnostic::UnresolvedProcMacro {
node: InFile::new(outer_file, syntax_ptr),
krate: *krate,
});
}
Some(err) => {
self.source_map.diagnostics.push(BodyDiagnostic::MacroError {
node: InFile::new(outer_file, syntax_ptr),
message: err.to_string(),
});
}
None => {}
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}
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}
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match res.value {
Some((mark, expansion)) => {
self.source_map.expansions.insert(macro_call_ptr, self.expander.current_file_id);
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let id = collector(self, Some(expansion));
self.expander.exit(self.db, mark);
id
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}
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None => collector(self, None),
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}
}
fn collect_expr_opt(&mut self, expr: Option<ast::Expr>) -> ExprId {
match expr {
Some(expr) => self.collect_expr(expr),
None => self.missing_expr(),
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}
}
fn collect_stmt(&mut self, s: ast::Stmt) -> Option<Statement> {
match s {
ast::Stmt::LetStmt(stmt) => {
if self.check_cfg(&stmt).is_none() {
return None;
}
let pat = self.collect_pat_opt(stmt.pat());
let type_ref =
stmt.ty().map(|it| Interned::new(TypeRef::from_ast(&self.ctx(), it)));
let initializer = stmt.initializer().map(|e| self.collect_expr(e));
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let else_branch = stmt
.let_else()
.and_then(|let_else| let_else.block_expr())
.map(|block| self.collect_block(block));
Some(Statement::Let { pat, type_ref, initializer, else_branch })
}
ast::Stmt::ExprStmt(stmt) => {
let expr = stmt.expr();
if let Some(expr) = &expr {
if self.check_cfg(expr).is_none() {
return None;
}
}
let has_semi = stmt.semicolon_token().is_some();
// Note that macro could be expanded to multiple statements
if let Some(expr @ ast::Expr::MacroExpr(mac)) = &expr {
let mac_call = mac.macro_call()?;
let syntax_ptr = AstPtr::new(expr);
let macro_ptr = AstPtr::new(&mac_call);
let stmt = self.collect_macro_call(
mac_call,
macro_ptr,
false,
|this, expansion: Option<ast::MacroStmts>| match expansion {
Some(expansion) => {
let statements = expansion
.statements()
.filter_map(|stmt| this.collect_stmt(stmt))
.collect();
let tail = expansion.expr().map(|expr| this.collect_expr(expr));
let mac_stmts = this.alloc_expr(
Expr::MacroStmts { tail, statements },
AstPtr::new(&ast::Expr::MacroStmts(expansion)),
);
Some(mac_stmts)
}
None => None,
},
);
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let expr = match stmt {
Some(expr) => {
// Make the macro-call point to its expanded expression so we can query
// semantics on syntax pointers to the macro
let src = self.expander.to_source(syntax_ptr);
self.source_map.expr_map.insert(src, expr);
expr
}
None => self.alloc_expr(Expr::Missing, syntax_ptr),
};
Some(Statement::Expr { expr, has_semi })
} else {
let expr = self.collect_expr_opt(expr);
Some(Statement::Expr { expr, has_semi })
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}
}
ast::Stmt::Item(_item) => None,
}
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}
fn collect_block(&mut self, block: ast::BlockExpr) -> ExprId {
let ast_id = self.expander.ast_id(self.db, &block);
let block_loc =
BlockLoc { ast_id, module: self.expander.def_map.module_id(self.expander.module) };
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let block_id = self.db.intern_block(block_loc);
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let (module, def_map) = match self.db.block_def_map(block_id) {
Some(def_map) => {
self.body.block_scopes.push(block_id);
(def_map.root(), def_map)
}
None => (self.expander.module, self.expander.def_map.clone()),
};
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let prev_def_map = mem::replace(&mut self.expander.def_map, def_map);
let prev_local_module = mem::replace(&mut self.expander.module, module);
let mut statements: Vec<_> =
block.statements().filter_map(|s| self.collect_stmt(s)).collect();
let tail = block.tail_expr().and_then(|e| self.maybe_collect_expr(e));
let tail = tail.or_else(|| {
let stmt = statements.pop()?;
if let Statement::Expr { expr, has_semi: false } = stmt {
return Some(expr);
}
statements.push(stmt);
None
});
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let syntax_node_ptr = AstPtr::new(&block.into());
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let expr_id = self.alloc_expr(
Expr::Block {
id: block_id,
statements: statements.into_boxed_slice(),
tail,
label: None,
},
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syntax_node_ptr,
);
self.expander.def_map = prev_def_map;
self.expander.module = prev_local_module;
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expr_id
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}
fn collect_block_opt(&mut self, expr: Option<ast::BlockExpr>) -> ExprId {
match expr {
Some(block) => self.collect_block(block),
None => self.missing_expr(),
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}
}
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fn collect_label(&mut self, ast_label: ast::Label) -> LabelId {
let label = Label {
name: ast_label.lifetime().as_ref().map_or_else(Name::missing, Name::new_lifetime),
};
self.alloc_label(label, AstPtr::new(&ast_label))
}
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fn collect_pat(&mut self, pat: ast::Pat) -> PatId {
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let pat_id = self.collect_pat_(pat);
for (_, pats) in self.name_to_pat_grouping.drain() {
let pats = Arc::<[_]>::from(pats);
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self.body.or_pats.extend(pats.iter().map(|&pat| (pat, pats.clone())));
}
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self.is_lowering_inside_or_pat = false;
pat_id
}
fn collect_pat_opt(&mut self, pat: Option<ast::Pat>) -> PatId {
match pat {
Some(pat) => self.collect_pat(pat),
None => self.missing_pat(),
}
}
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fn collect_pat_(&mut self, pat: ast::Pat) -> PatId {
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let pattern = match &pat {
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ast::Pat::IdentPat(bp) => {
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let name = bp.name().map(|nr| nr.as_name()).unwrap_or_else(Name::missing);
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let key = self.is_lowering_inside_or_pat.then(|| name.clone());
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let annotation =
BindingAnnotation::new(bp.mut_token().is_some(), bp.ref_token().is_some());
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let subpat = bp.pat().map(|subpat| self.collect_pat_(subpat));
let pattern = if annotation == BindingAnnotation::Unannotated && subpat.is_none() {
// This could also be a single-segment path pattern. To
// decide that, we need to try resolving the name.
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let (resolved, _) = self.expander.def_map.resolve_path(
self.db,
self.expander.module,
&name.clone().into(),
BuiltinShadowMode::Other,
);
match resolved.take_values() {
Some(ModuleDefId::ConstId(_)) => Pat::Path(name.into()),
Some(ModuleDefId::EnumVariantId(_)) => {
// this is only really valid for unit variants, but
// shadowing other enum variants with a pattern is
// an error anyway
Pat::Path(name.into())
}
Some(ModuleDefId::AdtId(AdtId::StructId(s)))
if self.db.struct_data(s).variant_data.kind() != StructKind::Record =>
{
// Funnily enough, record structs *can* be shadowed
// by pattern bindings (but unit or tuple structs
// can't).
Pat::Path(name.into())
}
// shadowing statics is an error as well, so we just ignore that case here
_ => Pat::Bind { name, mode: annotation, subpat },
}
} else {
Pat::Bind { name, mode: annotation, subpat }
};
let ptr = AstPtr::new(&pat);
let pat = self.alloc_pat(pattern, Either::Left(ptr));
if let Some(key) = key {
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self.name_to_pat_grouping.entry(key).or_default().push(pat);
}
return pat;
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}
ast::Pat::TupleStructPat(p) => {
let path =
p.path().and_then(|path| self.expander.parse_path(self.db, path)).map(Box::new);
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let (args, ellipsis) = self.collect_tuple_pat(p.fields());
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Pat::TupleStruct { path, args, ellipsis }
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}
ast::Pat::RefPat(p) => {
let pat = self.collect_pat_opt(p.pat());
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let mutability = Mutability::from_mutable(p.mut_token().is_some());
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Pat::Ref { pat, mutability }
}
ast::Pat::PathPat(p) => {
let path =
p.path().and_then(|path| self.expander.parse_path(self.db, path)).map(Box::new);
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path.map(Pat::Path).unwrap_or(Pat::Missing)
}
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ast::Pat::OrPat(p) => {
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self.is_lowering_inside_or_pat = true;
let pats = p.pats().map(|p| self.collect_pat_(p)).collect();
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Pat::Or(pats)
}
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ast::Pat::ParenPat(p) => return self.collect_pat_opt_(p.pat()),
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ast::Pat::TuplePat(p) => {
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let (args, ellipsis) = self.collect_tuple_pat(p.fields());
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Pat::Tuple { args, ellipsis }
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}
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ast::Pat::WildcardPat(_) => Pat::Wild,
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ast::Pat::RecordPat(p) => {
let path =
p.path().and_then(|path| self.expander.parse_path(self.db, path)).map(Box::new);
let args = p
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.record_pat_field_list()
.expect("every struct should have a field list")
.fields()
.filter_map(|f| {
let ast_pat = f.pat()?;
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let pat = self.collect_pat_(ast_pat);
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let name = f.field_name()?.as_name();
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Some(RecordFieldPat { name, pat })
})
.collect();
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let ellipsis = p
.record_pat_field_list()
.expect("every struct should have a field list")
.rest_pat()
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.is_some();
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Pat::Record { path, args, ellipsis }
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}
ast::Pat::SlicePat(p) => {
let SlicePatComponents { prefix, slice, suffix } = p.components();
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// FIXME properly handle `RestPat`
Pat::Slice {
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prefix: prefix.into_iter().map(|p| self.collect_pat_(p)).collect(),
slice: slice.map(|p| self.collect_pat_(p)),
suffix: suffix.into_iter().map(|p| self.collect_pat_(p)).collect(),
}
}
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ast::Pat::LiteralPat(lit) => {
if let Some(ast_lit) = lit.literal() {
let expr = Expr::Literal(ast_lit.kind().into());
let expr_ptr = AstPtr::new(&ast::Expr::Literal(ast_lit));
let expr_id = self.alloc_expr(expr, expr_ptr);
Pat::Lit(expr_id)
} else {
Pat::Missing
}
}
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ast::Pat::RestPat(_) => {
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// `RestPat` requires special handling and should not be mapped
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// to a Pat. Here we are using `Pat::Missing` as a fallback for
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// when `RestPat` is mapped to `Pat`, which can easily happen
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// when the source code being analyzed has a malformed pattern
// which includes `..` in a place where it isn't valid.
Pat::Missing
}
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ast::Pat::BoxPat(boxpat) => {
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let inner = self.collect_pat_opt_(boxpat.pat());
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Pat::Box { inner }
}
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ast::Pat::ConstBlockPat(const_block_pat) => {
if let Some(expr) = const_block_pat.block_expr() {
let expr_id = self.collect_block(expr);
Pat::ConstBlock(expr_id)
} else {
Pat::Missing
}
}
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ast::Pat::MacroPat(mac) => match mac.macro_call() {
Some(call) => {
let macro_ptr = AstPtr::new(&call);
let src = self.expander.to_source(Either::Left(AstPtr::new(&pat)));
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let pat =
self.collect_macro_call(call, macro_ptr, true, |this, expanded_pat| {
this.collect_pat_opt_(expanded_pat)
});
self.source_map.pat_map.insert(src, pat);
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return pat;
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}
None => Pat::Missing,
},
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// FIXME: implement
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ast::Pat::RangePat(_) => Pat::Missing,
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};
let ptr = AstPtr::new(&pat);
self.alloc_pat(pattern, Either::Left(ptr))
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}
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fn collect_pat_opt_(&mut self, pat: Option<ast::Pat>) -> PatId {
match pat {
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Some(pat) => self.collect_pat_(pat),
None => self.missing_pat(),
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}
}
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fn collect_tuple_pat(&mut self, args: AstChildren<ast::Pat>) -> (Box<[PatId]>, Option<usize>) {
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// Find the location of the `..`, if there is one. Note that we do not
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// consider the possibility of there being multiple `..` here.
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let ellipsis = args.clone().position(|p| matches!(p, ast::Pat::RestPat(_)));
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// We want to skip the `..` pattern here, since we account for it above.
let args = args
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.filter(|p| !matches!(p, ast::Pat::RestPat(_)))
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.map(|p| self.collect_pat_(p))
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.collect();
(args, ellipsis)
}
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/// Returns `None` (and emits diagnostics) when `owner` if `#[cfg]`d out, and `Some(())` when
/// not.
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fn check_cfg(&mut self, owner: &dyn ast::HasAttrs) -> Option<()> {
match self.expander.parse_attrs(self.db, owner).cfg() {
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Some(cfg) => {
if self.expander.cfg_options().check(&cfg) != Some(false) {
return Some(());
}
self.source_map.diagnostics.push(BodyDiagnostic::InactiveCode {
node: InFile::new(
self.expander.current_file_id,
SyntaxNodePtr::new(owner.syntax()),
),
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cfg,
opts: self.expander.cfg_options().clone(),
});
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None
}
None => Some(()),
}
}
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}
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impl From<ast::LiteralKind> for Literal {
fn from(ast_lit_kind: ast::LiteralKind) -> Self {
match ast_lit_kind {
// FIXME: these should have actual values filled in, but unsure on perf impact
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LiteralKind::IntNumber(lit) => {
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if let builtin @ Some(_) = lit.suffix().and_then(BuiltinFloat::from_suffix) {
Literal::Float(
FloatTypeWrapper::new(lit.float_value().unwrap_or(Default::default())),
builtin,
)
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} else if let builtin @ Some(_) = lit.suffix().and_then(BuiltinInt::from_suffix) {
Literal::Int(lit.value().unwrap_or(0) as i128, builtin)
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} else {
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let builtin = lit.suffix().and_then(BuiltinUint::from_suffix);
Literal::Uint(lit.value().unwrap_or(0), builtin)
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}
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}
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LiteralKind::FloatNumber(lit) => {
let ty = lit.suffix().and_then(BuiltinFloat::from_suffix);
Literal::Float(FloatTypeWrapper::new(lit.value().unwrap_or(Default::default())), ty)
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}
LiteralKind::ByteString(bs) => {
let text = bs.value().map(Box::from).unwrap_or_else(Default::default);
Literal::ByteString(text)
}
LiteralKind::String(s) => {
let text = s.value().map(Box::from).unwrap_or_else(Default::default);
Literal::String(text)
}
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LiteralKind::Byte(b) => {
Literal::Uint(b.value().unwrap_or_default() as u128, Some(BuiltinUint::U8))
}
LiteralKind::Char(c) => Literal::Char(c.value().unwrap_or_default()),
LiteralKind::Bool(val) => Literal::Bool(val),
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}
}
}