1use core::mem;
4use core::ops::{Bound, ControlFlow};
5
6use ast::mut_visit::{self, MutVisitor};
7use ast::token::IdentIsRaw;
8use ast::{CoroutineKind, ForLoopKind, GenBlockKind, MatchKind, Pat, Path, PathSegment, Recovered};
9use rustc_ast::ptr::P;
10use rustc_ast::token::{self, Delimiter, InvisibleOrigin, MetaVarKind, Token, TokenKind};
11use rustc_ast::tokenstream::TokenTree;
12use rustc_ast::util::case::Case;
13use rustc_ast::util::classify;
14use rustc_ast::util::parser::{AssocOp, ExprPrecedence, Fixity, prec_let_scrutinee_needs_par};
15use rustc_ast::visit::{Visitor, walk_expr};
16use rustc_ast::{
17 self as ast, AnonConst, Arm, AssignOp, AssignOpKind, AttrStyle, AttrVec, BinOp, BinOpKind,
18 BlockCheckMode, CaptureBy, ClosureBinder, DUMMY_NODE_ID, Expr, ExprField, ExprKind, FnDecl,
19 FnRetTy, Label, MacCall, MetaItemLit, Movability, Param, RangeLimits, StmtKind, Ty, TyKind,
20 UnOp, UnsafeBinderCastKind, YieldKind,
21};
22use rustc_data_structures::stack::ensure_sufficient_stack;
23use rustc_errors::{Applicability, Diag, PResult, StashKey, Subdiagnostic};
24use rustc_literal_escaper::unescape_char;
25use rustc_macros::Subdiagnostic;
26use rustc_session::errors::{ExprParenthesesNeeded, report_lit_error};
27use rustc_session::lint::BuiltinLintDiag;
28use rustc_session::lint::builtin::BREAK_WITH_LABEL_AND_LOOP;
29use rustc_span::edition::Edition;
30use rustc_span::source_map::{self, Spanned};
31use rustc_span::{BytePos, ErrorGuaranteed, Ident, Pos, Span, Symbol, kw, sym};
32use thin_vec::{ThinVec, thin_vec};
33use tracing::instrument;
34
35use super::diagnostics::SnapshotParser;
36use super::pat::{CommaRecoveryMode, Expected, RecoverColon, RecoverComma};
37use super::ty::{AllowPlus, RecoverQPath, RecoverReturnSign};
38use super::{
39 AttrWrapper, BlockMode, ClosureSpans, ExpTokenPair, ForceCollect, Parser, PathStyle,
40 Restrictions, SemiColonMode, SeqSep, TokenType, Trailing, UsePreAttrPos,
41};
42use crate::{errors, exp, maybe_recover_from_interpolated_ty_qpath};
43
44#[derive(Debug)]
45pub(super) enum DestructuredFloat {
46 Single(Symbol, Span),
48 TrailingDot(Symbol, Span, Span),
50 MiddleDot(Symbol, Span, Span, Symbol, Span),
52 Error,
54}
55
56impl<'a> Parser<'a> {
57 #[inline]
59 pub fn parse_expr(&mut self) -> PResult<'a, P<Expr>> {
60 self.current_closure.take();
61
62 let attrs = self.parse_outer_attributes()?;
63 self.parse_expr_res(Restrictions::empty(), attrs).map(|res| res.0)
64 }
65
66 pub fn parse_expr_force_collect(&mut self) -> PResult<'a, P<Expr>> {
68 self.current_closure.take();
69
70 let pre_attr_pos = self.collect_pos();
75 let attrs = self.parse_outer_attributes()?;
76 self.collect_tokens(
77 Some(pre_attr_pos),
78 AttrWrapper::empty(),
79 ForceCollect::Yes,
80 |this, _empty_attrs| {
81 let (expr, is_assoc) = this.parse_expr_res(Restrictions::empty(), attrs)?;
82 let use_pre_attr_pos =
83 if is_assoc { UsePreAttrPos::Yes } else { UsePreAttrPos::No };
84 Ok((expr, Trailing::No, use_pre_attr_pos))
85 },
86 )
87 }
88
89 pub fn parse_expr_anon_const(&mut self) -> PResult<'a, AnonConst> {
90 self.parse_expr().map(|value| AnonConst { id: DUMMY_NODE_ID, value })
91 }
92
93 fn parse_expr_catch_underscore(&mut self, restrictions: Restrictions) -> PResult<'a, P<Expr>> {
94 let attrs = self.parse_outer_attributes()?;
95 match self.parse_expr_res(restrictions, attrs) {
96 Ok((expr, _)) => Ok(expr),
97 Err(err) => match self.token.ident() {
98 Some((Ident { name: kw::Underscore, .. }, IdentIsRaw::No))
99 if self.may_recover() && self.look_ahead(1, |t| t == &token::Comma) =>
100 {
101 let guar = err.emit();
103 self.bump();
104 Ok(self.mk_expr(self.prev_token.span, ExprKind::Err(guar)))
105 }
106 _ => Err(err),
107 },
108 }
109 }
110
111 fn parse_expr_paren_seq(&mut self) -> PResult<'a, ThinVec<P<Expr>>> {
113 self.parse_paren_comma_seq(|p| p.parse_expr_catch_underscore(Restrictions::empty()))
114 .map(|(r, _)| r)
115 }
116
117 #[inline]
119 pub(super) fn parse_expr_res(
120 &mut self,
121 r: Restrictions,
122 attrs: AttrWrapper,
123 ) -> PResult<'a, (P<Expr>, bool)> {
124 self.with_res(r, |this| this.parse_expr_assoc_with(Bound::Unbounded, attrs))
125 }
126
127 pub(super) fn parse_expr_assoc_with(
131 &mut self,
132 min_prec: Bound<ExprPrecedence>,
133 attrs: AttrWrapper,
134 ) -> PResult<'a, (P<Expr>, bool)> {
135 let lhs = if self.token.is_range_separator() {
136 return self.parse_expr_prefix_range(attrs).map(|res| (res, false));
137 } else {
138 self.parse_expr_prefix(attrs)?
139 };
140 self.parse_expr_assoc_rest_with(min_prec, false, lhs)
141 }
142
143 pub(super) fn parse_expr_assoc_rest_with(
147 &mut self,
148 min_prec: Bound<ExprPrecedence>,
149 starts_stmt: bool,
150 mut lhs: P<Expr>,
151 ) -> PResult<'a, (P<Expr>, bool)> {
152 let mut parsed_something = false;
153 if !self.should_continue_as_assoc_expr(&lhs) {
154 return Ok((lhs, parsed_something));
155 }
156
157 self.expected_token_types.insert(TokenType::Operator);
158 while let Some(op) = self.check_assoc_op() {
159 let lhs_span = self.interpolated_or_expr_span(&lhs);
160 let cur_op_span = self.token.span;
161 let restrictions = if op.node.is_assign_like() {
162 self.restrictions & Restrictions::NO_STRUCT_LITERAL
163 } else {
164 self.restrictions
165 };
166 let prec = op.node.precedence();
167 if match min_prec {
168 Bound::Included(min_prec) => prec < min_prec,
169 Bound::Excluded(min_prec) => prec <= min_prec,
170 Bound::Unbounded => false,
171 } {
172 break;
173 }
174 if self.token == token::DotDotDot && op.node == AssocOp::Range(RangeLimits::Closed) {
176 self.err_dotdotdot_syntax(self.token.span);
177 }
178
179 if self.token == token::LArrow {
180 self.err_larrow_operator(self.token.span);
181 }
182
183 parsed_something = true;
184 self.bump();
185 if op.node.is_comparison() {
186 if let Some(expr) = self.check_no_chained_comparison(&lhs, &op)? {
187 return Ok((expr, parsed_something));
188 }
189 }
190
191 if let AssocOp::Binary(bop @ BinOpKind::Eq | bop @ BinOpKind::Ne) = op.node
193 && self.token == token::Eq
194 && self.prev_token.span.hi() == self.token.span.lo()
195 {
196 let sp = op.span.to(self.token.span);
197 let sugg = bop.as_str().into();
198 let invalid = format!("{sugg}=");
199 self.dcx().emit_err(errors::InvalidComparisonOperator {
200 span: sp,
201 invalid: invalid.clone(),
202 sub: errors::InvalidComparisonOperatorSub::Correctable {
203 span: sp,
204 invalid,
205 correct: sugg,
206 },
207 });
208 self.bump();
209 }
210
211 if op.node == AssocOp::Binary(BinOpKind::Lt)
213 && self.token == token::Gt
214 && self.prev_token.span.hi() == self.token.span.lo()
215 {
216 let sp = op.span.to(self.token.span);
217 self.dcx().emit_err(errors::InvalidComparisonOperator {
218 span: sp,
219 invalid: "<>".into(),
220 sub: errors::InvalidComparisonOperatorSub::Correctable {
221 span: sp,
222 invalid: "<>".into(),
223 correct: "!=".into(),
224 },
225 });
226 self.bump();
227 }
228
229 if op.node == AssocOp::Binary(BinOpKind::Le)
231 && self.token == token::Gt
232 && self.prev_token.span.hi() == self.token.span.lo()
233 {
234 let sp = op.span.to(self.token.span);
235 self.dcx().emit_err(errors::InvalidComparisonOperator {
236 span: sp,
237 invalid: "<=>".into(),
238 sub: errors::InvalidComparisonOperatorSub::Spaceship(sp),
239 });
240 self.bump();
241 }
242
243 if self.prev_token == token::Plus
244 && self.token == token::Plus
245 && self.prev_token.span.between(self.token.span).is_empty()
246 {
247 let op_span = self.prev_token.span.to(self.token.span);
248 self.bump();
250 lhs = self.recover_from_postfix_increment(lhs, op_span, starts_stmt)?;
251 continue;
252 }
253
254 if self.prev_token == token::Minus
255 && self.token == token::Minus
256 && self.prev_token.span.between(self.token.span).is_empty()
257 && !self.look_ahead(1, |tok| tok.can_begin_expr())
258 {
259 let op_span = self.prev_token.span.to(self.token.span);
260 self.bump();
262 lhs = self.recover_from_postfix_decrement(lhs, op_span, starts_stmt)?;
263 continue;
264 }
265
266 let op = op.node;
267 if op == AssocOp::Cast {
269 lhs = self.parse_assoc_op_cast(lhs, lhs_span, ExprKind::Cast)?;
270 continue;
271 } else if let AssocOp::Range(limits) = op {
272 lhs = self.parse_expr_range(prec, lhs, limits, cur_op_span)?;
275 break;
276 }
277
278 let min_prec = match op.fixity() {
279 Fixity::Right => Bound::Included(prec),
280 Fixity::Left | Fixity::None => Bound::Excluded(prec),
281 };
282 let (rhs, _) = self.with_res(restrictions - Restrictions::STMT_EXPR, |this| {
283 let attrs = this.parse_outer_attributes()?;
284 this.parse_expr_assoc_with(min_prec, attrs)
285 })?;
286
287 let span = self.mk_expr_sp(&lhs, lhs_span, rhs.span);
288 lhs = match op {
289 AssocOp::Binary(ast_op) => {
290 let binary = self.mk_binary(source_map::respan(cur_op_span, ast_op), lhs, rhs);
291 self.mk_expr(span, binary)
292 }
293 AssocOp::Assign => self.mk_expr(span, ExprKind::Assign(lhs, rhs, cur_op_span)),
294 AssocOp::AssignOp(aop) => {
295 let aopexpr = self.mk_assign_op(source_map::respan(cur_op_span, aop), lhs, rhs);
296 self.mk_expr(span, aopexpr)
297 }
298 AssocOp::Cast | AssocOp::Range(_) => {
299 self.dcx().span_bug(span, "AssocOp should have been handled by special case")
300 }
301 };
302 }
303
304 Ok((lhs, parsed_something))
305 }
306
307 fn should_continue_as_assoc_expr(&mut self, lhs: &Expr) -> bool {
308 match (self.expr_is_complete(lhs), AssocOp::from_token(&self.token)) {
309 (true, None) => false,
312 (false, _) => true, (true, Some(AssocOp::Binary(
317 BinOpKind::Mul | BinOpKind::Sub | BinOpKind::Add | BinOpKind::And | BinOpKind::Or | BinOpKind::BitOr ))) => {
324 let sp = self.psess.source_map().start_point(self.token.span);
331 self.psess.ambiguous_block_expr_parse.borrow_mut().insert(sp, lhs.span);
332 false
333 }
334 (true, Some(op)) if !op.can_continue_expr_unambiguously() => false,
335 (true, Some(_)) => {
336 self.error_found_expr_would_be_stmt(lhs);
337 true
338 }
339 }
340 }
341
342 fn error_found_expr_would_be_stmt(&self, lhs: &Expr) {
346 self.dcx().emit_err(errors::FoundExprWouldBeStmt {
347 span: self.token.span,
348 token: self.token,
349 suggestion: ExprParenthesesNeeded::surrounding(lhs.span),
350 });
351 }
352
353 pub(super) fn check_assoc_op(&self) -> Option<Spanned<AssocOp>> {
358 let (op, span) = match (AssocOp::from_token(&self.token), self.token.ident()) {
359 (
361 Some(
362 AssocOp::Binary(BinOpKind::Shr | BinOpKind::Gt | BinOpKind::Ge)
363 | AssocOp::AssignOp(AssignOpKind::ShrAssign),
364 ),
365 _,
366 ) if self.restrictions.contains(Restrictions::CONST_EXPR) => {
367 return None;
368 }
369 (
372 Some(
373 AssocOp::Assign
374 | AssocOp::AssignOp(_)
375 | AssocOp::Binary(BinOpKind::BitOr)
376 | AssocOp::Range(_),
377 ),
378 _,
379 ) if self.restrictions.contains(Restrictions::IS_PAT) => {
380 return None;
381 }
382 (Some(op), _) => (op, self.token.span),
383 (None, Some((Ident { name: sym::and, span }, IdentIsRaw::No)))
384 if self.may_recover() =>
385 {
386 self.dcx().emit_err(errors::InvalidLogicalOperator {
387 span: self.token.span,
388 incorrect: "and".into(),
389 sub: errors::InvalidLogicalOperatorSub::Conjunction(self.token.span),
390 });
391 (AssocOp::Binary(BinOpKind::And), span)
392 }
393 (None, Some((Ident { name: sym::or, span }, IdentIsRaw::No))) if self.may_recover() => {
394 self.dcx().emit_err(errors::InvalidLogicalOperator {
395 span: self.token.span,
396 incorrect: "or".into(),
397 sub: errors::InvalidLogicalOperatorSub::Disjunction(self.token.span),
398 });
399 (AssocOp::Binary(BinOpKind::Or), span)
400 }
401 _ => return None,
402 };
403 Some(source_map::respan(span, op))
404 }
405
406 fn expr_is_complete(&self, e: &Expr) -> bool {
408 self.restrictions.contains(Restrictions::STMT_EXPR) && classify::expr_is_complete(e)
409 }
410
411 fn parse_expr_range(
414 &mut self,
415 prec: ExprPrecedence,
416 lhs: P<Expr>,
417 limits: RangeLimits,
418 cur_op_span: Span,
419 ) -> PResult<'a, P<Expr>> {
420 let rhs = if self.is_at_start_of_range_notation_rhs() {
421 let maybe_lt = self.token;
422 let attrs = self.parse_outer_attributes()?;
423 Some(
424 self.parse_expr_assoc_with(Bound::Excluded(prec), attrs)
425 .map_err(|err| self.maybe_err_dotdotlt_syntax(maybe_lt, err))?
426 .0,
427 )
428 } else {
429 None
430 };
431 let rhs_span = rhs.as_ref().map_or(cur_op_span, |x| x.span);
432 let span = self.mk_expr_sp(&lhs, lhs.span, rhs_span);
433 let range = self.mk_range(Some(lhs), rhs, limits);
434 Ok(self.mk_expr(span, range))
435 }
436
437 fn is_at_start_of_range_notation_rhs(&self) -> bool {
438 if self.token.can_begin_expr() {
439 if self.token == token::OpenBrace {
441 return !self.restrictions.contains(Restrictions::NO_STRUCT_LITERAL);
442 }
443 true
444 } else {
445 false
446 }
447 }
448
449 fn parse_expr_prefix_range(&mut self, attrs: AttrWrapper) -> PResult<'a, P<Expr>> {
451 if !attrs.is_empty() {
452 let err = errors::DotDotRangeAttribute { span: self.token.span };
453 self.dcx().emit_err(err);
454 }
455
456 if self.token == token::DotDotDot {
458 self.err_dotdotdot_syntax(self.token.span);
459 }
460
461 debug_assert!(
462 self.token.is_range_separator(),
463 "parse_prefix_range_expr: token {:?} is not DotDot/DotDotEq",
464 self.token
465 );
466
467 let limits = match self.token.kind {
468 token::DotDot => RangeLimits::HalfOpen,
469 _ => RangeLimits::Closed,
470 };
471 let op = AssocOp::from_token(&self.token);
472 let attrs = self.parse_outer_attributes()?;
473 self.collect_tokens_for_expr(attrs, |this, attrs| {
474 let lo = this.token.span;
475 let maybe_lt = this.look_ahead(1, |t| t.clone());
476 this.bump();
477 let (span, opt_end) = if this.is_at_start_of_range_notation_rhs() {
478 let attrs = this.parse_outer_attributes()?;
480 this.parse_expr_assoc_with(Bound::Excluded(op.unwrap().precedence()), attrs)
481 .map(|(x, _)| (lo.to(x.span), Some(x)))
482 .map_err(|err| this.maybe_err_dotdotlt_syntax(maybe_lt, err))?
483 } else {
484 (lo, None)
485 };
486 let range = this.mk_range(None, opt_end, limits);
487 Ok(this.mk_expr_with_attrs(span, range, attrs))
488 })
489 }
490
491 fn parse_expr_prefix(&mut self, attrs: AttrWrapper) -> PResult<'a, P<Expr>> {
493 let lo = self.token.span;
494
495 macro_rules! make_it {
496 ($this:ident, $attrs:expr, |this, _| $body:expr) => {
497 $this.collect_tokens_for_expr($attrs, |$this, attrs| {
498 let (hi, ex) = $body?;
499 Ok($this.mk_expr_with_attrs(lo.to(hi), ex, attrs))
500 })
501 };
502 }
503
504 let this = self;
505
506 match this.token.uninterpolate().kind {
508 token::Bang => make_it!(this, attrs, |this, _| this.parse_expr_unary(lo, UnOp::Not)),
510 token::Tilde => make_it!(this, attrs, |this, _| this.recover_tilde_expr(lo)),
512 token::Minus => {
514 make_it!(this, attrs, |this, _| this.parse_expr_unary(lo, UnOp::Neg))
515 }
516 token::Star => {
518 make_it!(this, attrs, |this, _| this.parse_expr_unary(lo, UnOp::Deref))
519 }
520 token::And | token::AndAnd => {
522 make_it!(this, attrs, |this, _| this.parse_expr_borrow(lo))
523 }
524 token::Plus if this.look_ahead(1, |tok| tok.is_numeric_lit()) => {
526 let mut err = errors::LeadingPlusNotSupported {
527 span: lo,
528 remove_plus: None,
529 add_parentheses: None,
530 };
531
532 if let Some(sp) = this.psess.ambiguous_block_expr_parse.borrow().get(&lo) {
534 err.add_parentheses = Some(ExprParenthesesNeeded::surrounding(*sp));
535 } else {
536 err.remove_plus = Some(lo);
537 }
538 this.dcx().emit_err(err);
539
540 this.bump();
541 let attrs = this.parse_outer_attributes()?;
542 this.parse_expr_prefix(attrs)
543 }
544 token::Plus if this.look_ahead(1, |t| *t == token::Plus) => {
546 let starts_stmt =
547 this.prev_token == token::Semi || this.prev_token == token::CloseBrace;
548 let pre_span = this.token.span.to(this.look_ahead(1, |t| t.span));
549 this.bump();
551 this.bump();
552
553 let operand_expr = this.parse_expr_dot_or_call(attrs)?;
554 this.recover_from_prefix_increment(operand_expr, pre_span, starts_stmt)
555 }
556 token::Ident(..) if this.token.is_keyword(kw::Box) => {
557 make_it!(this, attrs, |this, _| this.parse_expr_box(lo))
558 }
559 token::Ident(..) if this.may_recover() && this.is_mistaken_not_ident_negation() => {
560 make_it!(this, attrs, |this, _| this.recover_not_expr(lo))
561 }
562 _ => return this.parse_expr_dot_or_call(attrs),
563 }
564 }
565
566 fn parse_expr_prefix_common(&mut self, lo: Span) -> PResult<'a, (Span, P<Expr>)> {
567 self.bump();
568 let attrs = self.parse_outer_attributes()?;
569 let expr = if self.token.is_range_separator() {
570 self.parse_expr_prefix_range(attrs)
571 } else {
572 self.parse_expr_prefix(attrs)
573 }?;
574 let span = self.interpolated_or_expr_span(&expr);
575 Ok((lo.to(span), expr))
576 }
577
578 fn parse_expr_unary(&mut self, lo: Span, op: UnOp) -> PResult<'a, (Span, ExprKind)> {
579 let (span, expr) = self.parse_expr_prefix_common(lo)?;
580 Ok((span, self.mk_unary(op, expr)))
581 }
582
583 fn recover_tilde_expr(&mut self, lo: Span) -> PResult<'a, (Span, ExprKind)> {
585 self.dcx().emit_err(errors::TildeAsUnaryOperator(lo));
586
587 self.parse_expr_unary(lo, UnOp::Not)
588 }
589
590 fn parse_expr_box(&mut self, box_kw: Span) -> PResult<'a, (Span, ExprKind)> {
593 let (span, expr) = self.parse_expr_prefix_common(box_kw)?;
594 let box_kw_and_lo = box_kw.until(self.interpolated_or_expr_span(&expr));
596 let hi = span.shrink_to_hi();
597 let sugg = errors::AddBoxNew { box_kw_and_lo, hi };
598 let guar = self.dcx().emit_err(errors::BoxSyntaxRemoved { span, sugg });
599 Ok((span, ExprKind::Err(guar)))
600 }
601
602 fn is_mistaken_not_ident_negation(&self) -> bool {
603 let token_cannot_continue_expr = |t: &Token| match t.uninterpolate().kind {
604 token::Ident(name, is_raw) => token::ident_can_begin_expr(name, t.span, is_raw),
607 token::Literal(..) | token::Pound => true,
608 _ => t.is_metavar_expr(),
609 };
610 self.token.is_ident_named(sym::not) && self.look_ahead(1, token_cannot_continue_expr)
611 }
612
613 fn recover_not_expr(&mut self, lo: Span) -> PResult<'a, (Span, ExprKind)> {
615 let negated_token = self.look_ahead(1, |t| *t);
616
617 let sub_diag = if negated_token.is_numeric_lit() {
618 errors::NotAsNegationOperatorSub::SuggestNotBitwise
619 } else if negated_token.is_bool_lit() {
620 errors::NotAsNegationOperatorSub::SuggestNotLogical
621 } else {
622 errors::NotAsNegationOperatorSub::SuggestNotDefault
623 };
624
625 self.dcx().emit_err(errors::NotAsNegationOperator {
626 negated: negated_token.span,
627 negated_desc: super::token_descr(&negated_token),
628 sub: sub_diag(
631 self.psess.source_map().span_until_non_whitespace(lo.to(negated_token.span)),
632 ),
633 });
634
635 self.parse_expr_unary(lo, UnOp::Not)
636 }
637
638 fn interpolated_or_expr_span(&self, expr: &Expr) -> Span {
640 match self.prev_token.kind {
641 token::NtIdent(..) | token::NtLifetime(..) => self.prev_token.span,
642 token::CloseInvisible(InvisibleOrigin::MetaVar(_)) => {
643 self.prev_token.span
648 }
649 _ => expr.span,
650 }
651 }
652
653 fn parse_assoc_op_cast(
654 &mut self,
655 lhs: P<Expr>,
656 lhs_span: Span,
657 expr_kind: fn(P<Expr>, P<Ty>) -> ExprKind,
658 ) -> PResult<'a, P<Expr>> {
659 let mk_expr = |this: &mut Self, lhs: P<Expr>, rhs: P<Ty>| {
660 this.mk_expr(this.mk_expr_sp(&lhs, lhs_span, rhs.span), expr_kind(lhs, rhs))
661 };
662
663 let parser_snapshot_before_type = self.clone();
666 let cast_expr = match self.parse_as_cast_ty() {
667 Ok(rhs) => mk_expr(self, lhs, rhs),
668 Err(type_err) => {
669 if !self.may_recover() {
670 return Err(type_err);
671 }
672
673 let parser_snapshot_after_type = mem::replace(self, parser_snapshot_before_type);
677
678 match (&lhs.kind, &self.token.kind) {
680 (
681 ExprKind::Path(None, ast::Path { segments, .. }),
683 token::Ident(kw::For | kw::Loop | kw::While, IdentIsRaw::No),
684 ) if let [segment] = segments.as_slice() => {
685 let snapshot = self.create_snapshot_for_diagnostic();
686 let label = Label {
687 ident: Ident::from_str_and_span(
688 &format!("'{}", segment.ident),
689 segment.ident.span,
690 ),
691 };
692 match self.parse_expr_labeled(label, false) {
693 Ok(expr) => {
694 type_err.cancel();
695 self.dcx().emit_err(errors::MalformedLoopLabel {
696 span: label.ident.span,
697 suggestion: label.ident.span.shrink_to_lo(),
698 });
699 return Ok(expr);
700 }
701 Err(err) => {
702 err.cancel();
703 self.restore_snapshot(snapshot);
704 }
705 }
706 }
707 _ => {}
708 }
709
710 match self.parse_path(PathStyle::Expr) {
711 Ok(path) => {
712 let span_after_type = parser_snapshot_after_type.token.span;
713 let expr = mk_expr(
714 self,
715 lhs,
716 self.mk_ty(path.span, TyKind::Path(None, path.clone())),
717 );
718
719 let args_span = self.look_ahead(1, |t| t.span).to(span_after_type);
720 let suggestion = errors::ComparisonOrShiftInterpretedAsGenericSugg {
721 left: expr.span.shrink_to_lo(),
722 right: expr.span.shrink_to_hi(),
723 };
724
725 match self.token.kind {
726 token::Lt => {
727 self.dcx().emit_err(errors::ComparisonInterpretedAsGeneric {
728 comparison: self.token.span,
729 r#type: path,
730 args: args_span,
731 suggestion,
732 })
733 }
734 token::Shl => self.dcx().emit_err(errors::ShiftInterpretedAsGeneric {
735 shift: self.token.span,
736 r#type: path,
737 args: args_span,
738 suggestion,
739 }),
740 _ => {
741 *self = parser_snapshot_after_type;
746 return Err(type_err);
747 }
748 };
749
750 type_err.cancel();
752
753 expr
755 }
756 Err(path_err) => {
757 path_err.cancel();
759 *self = parser_snapshot_after_type;
760 return Err(type_err);
761 }
762 }
763 }
764 };
765
766 let span = cast_expr.span;
772
773 let with_postfix = self.parse_expr_dot_or_call_with(AttrVec::new(), cast_expr, span)?;
774
775 if !matches!(with_postfix.kind, ExprKind::Cast(_, _)) {
778 let msg = format!(
779 "cast cannot be followed by {}",
780 match with_postfix.kind {
781 ExprKind::Index(..) => "indexing",
782 ExprKind::Try(_) => "`?`",
783 ExprKind::Field(_, _) => "a field access",
784 ExprKind::MethodCall(_) => "a method call",
785 ExprKind::Call(_, _) => "a function call",
786 ExprKind::Await(_, _) => "`.await`",
787 ExprKind::Use(_, _) => "`.use`",
788 ExprKind::Yield(YieldKind::Postfix(_)) => "`.yield`",
789 ExprKind::Match(_, _, MatchKind::Postfix) => "a postfix match",
790 ExprKind::Err(_) => return Ok(with_postfix),
791 _ => unreachable!(
792 "did not expect {:?} as an illegal postfix operator following cast",
793 with_postfix.kind
794 ),
795 }
796 );
797 let mut err = self.dcx().struct_span_err(span, msg);
798
799 let suggest_parens = |err: &mut Diag<'_>| {
800 let suggestions = vec![
801 (span.shrink_to_lo(), "(".to_string()),
802 (span.shrink_to_hi(), ")".to_string()),
803 ];
804 err.multipart_suggestion(
805 "try surrounding the expression in parentheses",
806 suggestions,
807 Applicability::MachineApplicable,
808 );
809 };
810
811 suggest_parens(&mut err);
812
813 err.emit();
814 };
815 Ok(with_postfix)
816 }
817
818 fn parse_expr_borrow(&mut self, lo: Span) -> PResult<'a, (Span, ExprKind)> {
820 self.expect_and()?;
821 let has_lifetime = self.token.is_lifetime() && self.look_ahead(1, |t| t != &token::Colon);
822 let lifetime = has_lifetime.then(|| self.expect_lifetime()); let (borrow_kind, mutbl) = self.parse_borrow_modifiers();
824 let attrs = self.parse_outer_attributes()?;
825 let expr = if self.token.is_range_separator() {
826 self.parse_expr_prefix_range(attrs)
827 } else {
828 self.parse_expr_prefix(attrs)
829 }?;
830 let hi = self.interpolated_or_expr_span(&expr);
831 let span = lo.to(hi);
832 if let Some(lt) = lifetime {
833 self.error_remove_borrow_lifetime(span, lt.ident.span.until(expr.span));
834 }
835
836 if borrow_kind == ast::BorrowKind::Ref
840 && mutbl == ast::Mutability::Not
841 && matches!(&expr.kind, ExprKind::Path(None, p) if *p == kw::Raw)
842 {
843 self.expected_token_types.insert(TokenType::KwMut);
844 self.expected_token_types.insert(TokenType::KwConst);
845 }
846
847 Ok((span, ExprKind::AddrOf(borrow_kind, mutbl, expr)))
848 }
849
850 fn error_remove_borrow_lifetime(&self, span: Span, lt_span: Span) {
851 self.dcx().emit_err(errors::LifetimeInBorrowExpression { span, lifetime_span: lt_span });
852 }
853
854 fn parse_borrow_modifiers(&mut self) -> (ast::BorrowKind, ast::Mutability) {
856 if self.check_keyword(exp!(Raw)) && self.look_ahead(1, Token::is_mutability) {
857 let found_raw = self.eat_keyword(exp!(Raw));
859 assert!(found_raw);
860 let mutability = self.parse_const_or_mut().unwrap();
861 (ast::BorrowKind::Raw, mutability)
862 } else if let Some((ast::Pinnedness::Pinned, mutbl)) = self.parse_pin_and_mut() {
863 (ast::BorrowKind::Pin, mutbl)
867 } else {
868 (ast::BorrowKind::Ref, self.parse_mutability())
870 }
871 }
872
873 fn parse_expr_dot_or_call(&mut self, attrs: AttrWrapper) -> PResult<'a, P<Expr>> {
875 self.collect_tokens_for_expr(attrs, |this, attrs| {
876 let base = this.parse_expr_bottom()?;
877 let span = this.interpolated_or_expr_span(&base);
878 this.parse_expr_dot_or_call_with(attrs, base, span)
879 })
880 }
881
882 pub(super) fn parse_expr_dot_or_call_with(
883 &mut self,
884 mut attrs: ast::AttrVec,
885 mut e: P<Expr>,
886 lo: Span,
887 ) -> PResult<'a, P<Expr>> {
888 let mut res = ensure_sufficient_stack(|| {
889 loop {
890 let has_question =
891 if self.prev_token == TokenKind::Ident(kw::Return, IdentIsRaw::No) {
892 self.eat_noexpect(&token::Question)
895 } else {
896 self.eat(exp!(Question))
897 };
898 if has_question {
899 e = self.mk_expr(lo.to(self.prev_token.span), ExprKind::Try(e));
901 continue;
902 }
903 let has_dot = if self.prev_token == TokenKind::Ident(kw::Return, IdentIsRaw::No) {
904 self.eat_noexpect(&token::Dot)
907 } else if self.token == TokenKind::RArrow && self.may_recover() {
908 self.bump();
910 let span = self.prev_token.span;
911 self.dcx().emit_err(errors::ExprRArrowCall { span });
912 true
913 } else {
914 self.eat(exp!(Dot))
915 };
916 if has_dot {
917 e = self.parse_dot_suffix_expr(lo, e)?;
919 continue;
920 }
921 if self.expr_is_complete(&e) {
922 return Ok(e);
923 }
924 e = match self.token.kind {
925 token::OpenParen => self.parse_expr_fn_call(lo, e),
926 token::OpenBracket => self.parse_expr_index(lo, e)?,
927 _ => return Ok(e),
928 }
929 }
930 });
931
932 if !attrs.is_empty()
935 && let Ok(expr) = &mut res
936 {
937 mem::swap(&mut expr.attrs, &mut attrs);
938 expr.attrs.extend(attrs)
939 }
940 res
941 }
942
943 pub(super) fn parse_dot_suffix_expr(
944 &mut self,
945 lo: Span,
946 base: P<Expr>,
947 ) -> PResult<'a, P<Expr>> {
948 match self.token.uninterpolate().kind {
951 token::Ident(..) => self.parse_dot_suffix(base, lo),
952 token::Literal(token::Lit { kind: token::Integer, symbol, suffix }) => {
953 let ident_span = self.token.span;
954 self.bump();
955 Ok(self.mk_expr_tuple_field_access(lo, ident_span, base, symbol, suffix))
956 }
957 token::Literal(token::Lit { kind: token::Float, symbol, suffix }) => {
958 Ok(match self.break_up_float(symbol, self.token.span) {
959 DestructuredFloat::Single(sym, _sp) => {
961 let ident_span = self.token.span;
965 self.bump();
966 self.mk_expr_tuple_field_access(lo, ident_span, base, sym, suffix)
967 }
968 DestructuredFloat::TrailingDot(sym, ident_span, dot_span) => {
970 assert!(suffix.is_none());
974 self.token = Token::new(token::Ident(sym, IdentIsRaw::No), ident_span);
975 self.bump_with((Token::new(token::Dot, dot_span), self.token_spacing));
976 self.mk_expr_tuple_field_access(lo, ident_span, base, sym, None)
977 }
978 DestructuredFloat::MiddleDot(
980 sym1,
981 ident1_span,
982 _dot_span,
983 sym2,
984 ident2_span,
985 ) => {
986 let next_token2 =
990 Token::new(token::Ident(sym2, IdentIsRaw::No), ident2_span);
991 self.bump_with((next_token2, self.token_spacing));
992 self.bump();
993 let base1 =
994 self.mk_expr_tuple_field_access(lo, ident1_span, base, sym1, None);
995 self.mk_expr_tuple_field_access(lo, ident2_span, base1, sym2, suffix)
996 }
997 DestructuredFloat::Error => base,
998 })
999 }
1000 _ => {
1001 self.error_unexpected_after_dot();
1002 Ok(base)
1003 }
1004 }
1005 }
1006
1007 fn error_unexpected_after_dot(&self) {
1008 let actual = super::token_descr(&self.token);
1009 let span = self.token.span;
1010 let sm = self.psess.source_map();
1011 let (span, actual) = match (&self.token.kind, self.subparser_name) {
1012 (token::Eof, Some(_)) if let Ok(snippet) = sm.span_to_snippet(sm.next_point(span)) => {
1013 (span.shrink_to_hi(), format!("`{}`", snippet))
1014 }
1015 (token::CloseInvisible(InvisibleOrigin::MetaVar(_)), _) => {
1016 self.dcx().span_delayed_bug(span, "bad dot expr in metavariable");
1031 return;
1032 }
1033 _ => (span, actual),
1034 };
1035 self.dcx().emit_err(errors::UnexpectedTokenAfterDot { span, actual });
1036 }
1037
1038 pub(super) fn break_up_float(&self, float: Symbol, span: Span) -> DestructuredFloat {
1049 #[derive(Debug)]
1050 enum FloatComponent {
1051 IdentLike(String),
1052 Punct(char),
1053 }
1054 use FloatComponent::*;
1055
1056 let float_str = float.as_str();
1057 let mut components = Vec::new();
1058 let mut ident_like = String::new();
1059 for c in float_str.chars() {
1060 if c == '_' || c.is_ascii_alphanumeric() {
1061 ident_like.push(c);
1062 } else if matches!(c, '.' | '+' | '-') {
1063 if !ident_like.is_empty() {
1064 components.push(IdentLike(mem::take(&mut ident_like)));
1065 }
1066 components.push(Punct(c));
1067 } else {
1068 panic!("unexpected character in a float token: {c:?}")
1069 }
1070 }
1071 if !ident_like.is_empty() {
1072 components.push(IdentLike(ident_like));
1073 }
1074
1075 let can_take_span_apart =
1079 || self.span_to_snippet(span).as_deref() == Ok(float_str).as_deref();
1080
1081 match &*components {
1082 [IdentLike(i)] => {
1084 DestructuredFloat::Single(Symbol::intern(i), span)
1085 }
1086 [IdentLike(left), Punct('.')] => {
1088 let (left_span, dot_span) = if can_take_span_apart() {
1089 let left_span = span.with_hi(span.lo() + BytePos::from_usize(left.len()));
1090 let dot_span = span.with_lo(left_span.hi());
1091 (left_span, dot_span)
1092 } else {
1093 (span, span)
1094 };
1095 let left = Symbol::intern(left);
1096 DestructuredFloat::TrailingDot(left, left_span, dot_span)
1097 }
1098 [IdentLike(left), Punct('.'), IdentLike(right)] => {
1100 let (left_span, dot_span, right_span) = if can_take_span_apart() {
1101 let left_span = span.with_hi(span.lo() + BytePos::from_usize(left.len()));
1102 let dot_span = span.with_lo(left_span.hi()).with_hi(left_span.hi() + BytePos(1));
1103 let right_span = span.with_lo(dot_span.hi());
1104 (left_span, dot_span, right_span)
1105 } else {
1106 (span, span, span)
1107 };
1108 let left = Symbol::intern(left);
1109 let right = Symbol::intern(right);
1110 DestructuredFloat::MiddleDot(left, left_span, dot_span, right, right_span)
1111 }
1112 [IdentLike(_), Punct('+' | '-')] |
1114 [IdentLike(_), Punct('+' | '-'), IdentLike(_)] |
1116 [IdentLike(_), Punct('.'), IdentLike(_), Punct('+' | '-')] |
1118 [IdentLike(_), Punct('.'), IdentLike(_), Punct('+' | '-'), IdentLike(_)] => {
1120 self.error_unexpected_after_dot();
1122 DestructuredFloat::Error
1123 }
1124 _ => panic!("unexpected components in a float token: {components:?}"),
1125 }
1126 }
1127
1128 fn parse_floating_field_access(&mut self) -> PResult<'a, Vec<Ident>> {
1132 let mut fields = Vec::new();
1133 let mut trailing_dot = None;
1134
1135 loop {
1136 let expr = self.parse_expr()?;
1140 let mut current = &expr;
1141 let start_idx = fields.len();
1142 loop {
1143 match current.kind {
1144 ExprKind::Field(ref left, right) => {
1145 fields.insert(start_idx, right);
1147 trailing_dot = None;
1148 current = left;
1149 }
1150 ExprKind::Index(ref left, ref _right, span) => {
1153 self.dcx().emit_err(errors::ArrayIndexInOffsetOf(span));
1154 current = left;
1155 }
1156 ExprKind::Lit(token::Lit {
1157 kind: token::Float | token::Integer,
1158 symbol,
1159 suffix,
1160 }) => {
1161 if let Some(suffix) = suffix {
1162 self.expect_no_tuple_index_suffix(current.span, suffix);
1163 }
1164 match self.break_up_float(symbol, current.span) {
1165 DestructuredFloat::Single(sym, sp) => {
1167 trailing_dot = None;
1168 fields.insert(start_idx, Ident::new(sym, sp));
1169 }
1170 DestructuredFloat::TrailingDot(sym, sym_span, dot_span) => {
1172 assert!(suffix.is_none());
1173 trailing_dot = Some(dot_span);
1174 fields.insert(start_idx, Ident::new(sym, sym_span));
1175 }
1176 DestructuredFloat::MiddleDot(
1178 symbol1,
1179 span1,
1180 _dot_span,
1181 symbol2,
1182 span2,
1183 ) => {
1184 trailing_dot = None;
1185 fields.insert(start_idx, Ident::new(symbol2, span2));
1186 fields.insert(start_idx, Ident::new(symbol1, span1));
1187 }
1188 DestructuredFloat::Error => {
1189 trailing_dot = None;
1190 fields.insert(start_idx, Ident::new(symbol, self.prev_token.span));
1191 }
1192 }
1193 break;
1194 }
1195 ExprKind::Path(None, Path { ref segments, .. }) => {
1196 match &segments[..] {
1197 [PathSegment { ident, args: None, .. }] => {
1198 trailing_dot = None;
1199 fields.insert(start_idx, *ident)
1200 }
1201 _ => {
1202 self.dcx().emit_err(errors::InvalidOffsetOf(current.span));
1203 break;
1204 }
1205 }
1206 break;
1207 }
1208 _ => {
1209 self.dcx().emit_err(errors::InvalidOffsetOf(current.span));
1210 break;
1211 }
1212 }
1213 }
1214
1215 if self.token.kind.close_delim().is_some() || self.token.kind == token::Comma {
1216 break;
1217 } else if trailing_dot.is_none() {
1218 self.dcx().emit_err(errors::InvalidOffsetOf(self.token.span));
1220 break;
1221 }
1222 }
1223 if let Some(dot) = trailing_dot {
1224 self.dcx().emit_err(errors::InvalidOffsetOf(dot));
1225 }
1226 Ok(fields.into_iter().collect())
1227 }
1228
1229 fn mk_expr_tuple_field_access(
1230 &self,
1231 lo: Span,
1232 ident_span: Span,
1233 base: P<Expr>,
1234 field: Symbol,
1235 suffix: Option<Symbol>,
1236 ) -> P<Expr> {
1237 if let Some(suffix) = suffix {
1238 self.expect_no_tuple_index_suffix(ident_span, suffix);
1239 }
1240 self.mk_expr(lo.to(ident_span), ExprKind::Field(base, Ident::new(field, ident_span)))
1241 }
1242
1243 fn parse_expr_fn_call(&mut self, lo: Span, fun: P<Expr>) -> P<Expr> {
1245 let snapshot = if self.token == token::OpenParen {
1246 Some((self.create_snapshot_for_diagnostic(), fun.kind.clone()))
1247 } else {
1248 None
1249 };
1250 let open_paren = self.token.span;
1251
1252 let seq = self
1253 .parse_expr_paren_seq()
1254 .map(|args| self.mk_expr(lo.to(self.prev_token.span), self.mk_call(fun, args)));
1255 match self.maybe_recover_struct_lit_bad_delims(lo, open_paren, seq, snapshot) {
1256 Ok(expr) => expr,
1257 Err(err) => self.recover_seq_parse_error(exp!(OpenParen), exp!(CloseParen), lo, err),
1258 }
1259 }
1260
1261 #[instrument(skip(self, seq, snapshot), level = "trace")]
1264 fn maybe_recover_struct_lit_bad_delims(
1265 &mut self,
1266 lo: Span,
1267 open_paren: Span,
1268 seq: PResult<'a, P<Expr>>,
1269 snapshot: Option<(SnapshotParser<'a>, ExprKind)>,
1270 ) -> PResult<'a, P<Expr>> {
1271 match (self.may_recover(), seq, snapshot) {
1272 (true, Err(err), Some((mut snapshot, ExprKind::Path(None, path)))) => {
1273 snapshot.bump(); match snapshot.parse_struct_fields(path.clone(), false, exp!(CloseParen)) {
1275 Ok((fields, ..)) if snapshot.eat(exp!(CloseParen)) => {
1276 self.restore_snapshot(snapshot);
1279 let close_paren = self.prev_token.span;
1280 let span = lo.to(close_paren);
1281 let fields: Vec<_> =
1283 fields.into_iter().filter(|field| !field.is_shorthand).collect();
1284
1285 let guar = if !fields.is_empty() &&
1286 self.span_to_snippet(close_paren).is_ok_and(|snippet| snippet == ")")
1291 {
1292 err.cancel();
1293 self.dcx()
1294 .create_err(errors::ParenthesesWithStructFields {
1295 span,
1296 r#type: path,
1297 braces_for_struct: errors::BracesForStructLiteral {
1298 first: open_paren,
1299 second: close_paren,
1300 },
1301 no_fields_for_fn: errors::NoFieldsForFnCall {
1302 fields: fields
1303 .into_iter()
1304 .map(|field| field.span.until(field.expr.span))
1305 .collect(),
1306 },
1307 })
1308 .emit()
1309 } else {
1310 err.emit()
1311 };
1312 Ok(self.mk_expr_err(span, guar))
1313 }
1314 Ok(_) => Err(err),
1315 Err(err2) => {
1316 err2.cancel();
1317 Err(err)
1318 }
1319 }
1320 }
1321 (_, seq, _) => seq,
1322 }
1323 }
1324
1325 fn parse_expr_index(&mut self, lo: Span, base: P<Expr>) -> PResult<'a, P<Expr>> {
1327 let prev_span = self.prev_token.span;
1328 let open_delim_span = self.token.span;
1329 self.bump(); let index = self.parse_expr()?;
1331 self.suggest_missing_semicolon_before_array(prev_span, open_delim_span)?;
1332 self.expect(exp!(CloseBracket))?;
1333 Ok(self.mk_expr(
1334 lo.to(self.prev_token.span),
1335 self.mk_index(base, index, open_delim_span.to(self.prev_token.span)),
1336 ))
1337 }
1338
1339 fn parse_dot_suffix(&mut self, self_arg: P<Expr>, lo: Span) -> PResult<'a, P<Expr>> {
1341 if self.token_uninterpolated_span().at_least_rust_2018() && self.eat_keyword(exp!(Await)) {
1342 return Ok(self.mk_await_expr(self_arg, lo));
1343 }
1344
1345 if self.eat_keyword(exp!(Use)) {
1346 let use_span = self.prev_token.span;
1347 self.psess.gated_spans.gate(sym::ergonomic_clones, use_span);
1348 return Ok(self.mk_use_expr(self_arg, lo));
1349 }
1350
1351 if self.eat_keyword(exp!(Match)) {
1353 let match_span = self.prev_token.span;
1354 self.psess.gated_spans.gate(sym::postfix_match, match_span);
1355 return self.parse_match_block(lo, match_span, self_arg, MatchKind::Postfix);
1356 }
1357
1358 if self.eat_keyword(exp!(Yield)) {
1360 let yield_span = self.prev_token.span;
1361 self.psess.gated_spans.gate(sym::yield_expr, yield_span);
1362 return Ok(
1363 self.mk_expr(lo.to(yield_span), ExprKind::Yield(YieldKind::Postfix(self_arg)))
1364 );
1365 }
1366
1367 let fn_span_lo = self.token.span;
1368 let mut seg = self.parse_path_segment(PathStyle::Expr, None)?;
1369 self.check_trailing_angle_brackets(&seg, &[exp!(OpenParen)]);
1370 self.check_turbofish_missing_angle_brackets(&mut seg);
1371
1372 if self.check(exp!(OpenParen)) {
1373 let args = self.parse_expr_paren_seq()?;
1375 let fn_span = fn_span_lo.to(self.prev_token.span);
1376 let span = lo.to(self.prev_token.span);
1377 Ok(self.mk_expr(
1378 span,
1379 ExprKind::MethodCall(Box::new(ast::MethodCall {
1380 seg,
1381 receiver: self_arg,
1382 args,
1383 span: fn_span,
1384 })),
1385 ))
1386 } else {
1387 let span = lo.to(self.prev_token.span);
1389 if let Some(args) = seg.args {
1390 self.dcx()
1392 .create_err(errors::FieldExpressionWithGeneric(args.span()))
1393 .stash(seg.ident.span, StashKey::GenericInFieldExpr);
1394 }
1395
1396 Ok(self.mk_expr(span, ExprKind::Field(self_arg, seg.ident)))
1397 }
1398 }
1399
1400 fn parse_expr_bottom(&mut self) -> PResult<'a, P<Expr>> {
1406 maybe_recover_from_interpolated_ty_qpath!(self, true);
1407
1408 let span = self.token.span;
1409 if let Some(expr) = self.eat_metavar_seq_with_matcher(
1410 |mv_kind| matches!(mv_kind, MetaVarKind::Expr { .. }),
1411 |this| {
1412 let expr = this.parse_expr_force_collect();
1415 if this.token.kind == token::Comma {
1420 this.bump();
1421 }
1422 expr
1423 },
1424 ) {
1425 return Ok(expr);
1426 } else if let Some(lit) =
1427 self.eat_metavar_seq(MetaVarKind::Literal, |this| this.parse_literal_maybe_minus())
1428 {
1429 return Ok(lit);
1430 } else if let Some(block) =
1431 self.eat_metavar_seq(MetaVarKind::Block, |this| this.parse_block())
1432 {
1433 return Ok(self.mk_expr(span, ExprKind::Block(block, None)));
1434 } else if let Some(path) =
1435 self.eat_metavar_seq(MetaVarKind::Path, |this| this.parse_path(PathStyle::Type))
1436 {
1437 return Ok(self.mk_expr(span, ExprKind::Path(None, path)));
1438 }
1439
1440 let restrictions = self.restrictions;
1444 self.with_res(restrictions - Restrictions::ALLOW_LET, |this| {
1445 let lo = this.token.span;
1447 if let token::Literal(_) = this.token.kind {
1448 this.parse_expr_lit()
1452 } else if this.check(exp!(OpenParen)) {
1453 this.parse_expr_tuple_parens(restrictions)
1454 } else if this.check(exp!(OpenBrace)) {
1455 this.parse_expr_block(None, lo, BlockCheckMode::Default)
1456 } else if this.check(exp!(Or)) || this.check(exp!(OrOr)) {
1457 this.parse_expr_closure().map_err(|mut err| {
1458 if let Some(sp) = this.psess.ambiguous_block_expr_parse.borrow().get(&lo) {
1461 err.subdiagnostic(ExprParenthesesNeeded::surrounding(*sp));
1462 }
1463 err
1464 })
1465 } else if this.check(exp!(OpenBracket)) {
1466 this.parse_expr_array_or_repeat(exp!(CloseBracket))
1467 } else if this.is_builtin() {
1468 this.parse_expr_builtin()
1469 } else if this.check_path() {
1470 this.parse_expr_path_start()
1471 } else if this.check_keyword(exp!(Move))
1472 || this.check_keyword(exp!(Use))
1473 || this.check_keyword(exp!(Static))
1474 || this.check_const_closure()
1475 {
1476 this.parse_expr_closure()
1477 } else if this.eat_keyword(exp!(If)) {
1478 this.parse_expr_if()
1479 } else if this.check_keyword(exp!(For)) {
1480 if this.choose_generics_over_qpath(1) {
1481 this.parse_expr_closure()
1482 } else {
1483 assert!(this.eat_keyword(exp!(For)));
1484 this.parse_expr_for(None, lo)
1485 }
1486 } else if this.eat_keyword(exp!(While)) {
1487 this.parse_expr_while(None, lo)
1488 } else if let Some(label) = this.eat_label() {
1489 this.parse_expr_labeled(label, true)
1490 } else if this.eat_keyword(exp!(Loop)) {
1491 this.parse_expr_loop(None, lo).map_err(|mut err| {
1492 err.span_label(lo, "while parsing this `loop` expression");
1493 err
1494 })
1495 } else if this.eat_keyword(exp!(Match)) {
1496 this.parse_expr_match().map_err(|mut err| {
1497 err.span_label(lo, "while parsing this `match` expression");
1498 err
1499 })
1500 } else if this.eat_keyword(exp!(Unsafe)) {
1501 this.parse_expr_block(None, lo, BlockCheckMode::Unsafe(ast::UserProvided)).map_err(
1502 |mut err| {
1503 err.span_label(lo, "while parsing this `unsafe` expression");
1504 err
1505 },
1506 )
1507 } else if this.check_inline_const(0) {
1508 this.parse_const_block(lo, false)
1509 } else if this.may_recover() && this.is_do_catch_block() {
1510 this.recover_do_catch()
1511 } else if this.is_try_block() {
1512 this.expect_keyword(exp!(Try))?;
1513 this.parse_try_block(lo)
1514 } else if this.eat_keyword(exp!(Return)) {
1515 this.parse_expr_return()
1516 } else if this.eat_keyword(exp!(Continue)) {
1517 this.parse_expr_continue(lo)
1518 } else if this.eat_keyword(exp!(Break)) {
1519 this.parse_expr_break()
1520 } else if this.eat_keyword(exp!(Yield)) {
1521 this.parse_expr_yield()
1522 } else if this.is_do_yeet() {
1523 this.parse_expr_yeet()
1524 } else if this.eat_keyword(exp!(Become)) {
1525 this.parse_expr_become()
1526 } else if this.check_keyword(exp!(Let)) {
1527 this.parse_expr_let(restrictions)
1528 } else if this.eat_keyword(exp!(Underscore)) {
1529 Ok(this.mk_expr(this.prev_token.span, ExprKind::Underscore))
1530 } else if this.token_uninterpolated_span().at_least_rust_2018() {
1531 let at_async = this.check_keyword(exp!(Async));
1533 if this.token_uninterpolated_span().at_least_rust_2024()
1538 && this.is_gen_block(kw::Gen, at_async as usize)
1539 {
1540 this.parse_gen_block()
1541 } else if this.is_gen_block(kw::Async, 0) {
1543 this.parse_gen_block()
1544 } else if at_async {
1545 this.parse_expr_closure()
1546 } else if this.eat_keyword_noexpect(kw::Await) {
1547 this.recover_incorrect_await_syntax(lo)
1548 } else {
1549 this.parse_expr_lit()
1550 }
1551 } else {
1552 this.parse_expr_lit()
1553 }
1554 })
1555 }
1556
1557 fn parse_expr_lit(&mut self) -> PResult<'a, P<Expr>> {
1558 let lo = self.token.span;
1559 match self.parse_opt_token_lit() {
1560 Some((token_lit, _)) => {
1561 let expr = self.mk_expr(lo.to(self.prev_token.span), ExprKind::Lit(token_lit));
1562 self.maybe_recover_from_bad_qpath(expr)
1563 }
1564 None => self.try_macro_suggestion(),
1565 }
1566 }
1567
1568 fn parse_expr_tuple_parens(&mut self, restrictions: Restrictions) -> PResult<'a, P<Expr>> {
1569 let lo = self.token.span;
1570 self.expect(exp!(OpenParen))?;
1571 let (es, trailing_comma) = match self.parse_seq_to_end(
1572 exp!(CloseParen),
1573 SeqSep::trailing_allowed(exp!(Comma)),
1574 |p| p.parse_expr_catch_underscore(restrictions.intersection(Restrictions::ALLOW_LET)),
1575 ) {
1576 Ok(x) => x,
1577 Err(err) => {
1578 return Ok(self.recover_seq_parse_error(
1579 exp!(OpenParen),
1580 exp!(CloseParen),
1581 lo,
1582 err,
1583 ));
1584 }
1585 };
1586 let kind = if es.len() == 1 && matches!(trailing_comma, Trailing::No) {
1587 ExprKind::Paren(es.into_iter().next().unwrap())
1589 } else {
1590 ExprKind::Tup(es)
1592 };
1593 let expr = self.mk_expr(lo.to(self.prev_token.span), kind);
1594 self.maybe_recover_from_bad_qpath(expr)
1595 }
1596
1597 fn parse_expr_array_or_repeat(&mut self, close: ExpTokenPair<'_>) -> PResult<'a, P<Expr>> {
1598 let lo = self.token.span;
1599 self.bump(); let kind = if self.eat(close) {
1602 ExprKind::Array(ThinVec::new())
1604 } else {
1605 let first_expr = self.parse_expr()?;
1607 if self.eat(exp!(Semi)) {
1608 let count = self.parse_expr_anon_const()?;
1610 self.expect(close)?;
1611 ExprKind::Repeat(first_expr, count)
1612 } else if self.eat(exp!(Comma)) {
1613 let sep = SeqSep::trailing_allowed(exp!(Comma));
1615 let (mut exprs, _) = self.parse_seq_to_end(close, sep, |p| p.parse_expr())?;
1616 exprs.insert(0, first_expr);
1617 ExprKind::Array(exprs)
1618 } else {
1619 self.expect(close)?;
1621 ExprKind::Array(thin_vec![first_expr])
1622 }
1623 };
1624 let expr = self.mk_expr(lo.to(self.prev_token.span), kind);
1625 self.maybe_recover_from_bad_qpath(expr)
1626 }
1627
1628 fn parse_expr_path_start(&mut self) -> PResult<'a, P<Expr>> {
1629 let maybe_eq_tok = self.prev_token;
1630 let (qself, path) = if self.eat_lt() {
1631 let lt_span = self.prev_token.span;
1632 let (qself, path) = self.parse_qpath(PathStyle::Expr).map_err(|mut err| {
1633 if maybe_eq_tok == TokenKind::Eq && maybe_eq_tok.span.hi() == lt_span.lo() {
1637 let eq_lt = maybe_eq_tok.span.to(lt_span);
1638 err.span_suggestion(eq_lt, "did you mean", "<=", Applicability::Unspecified);
1639 }
1640 err
1641 })?;
1642 (Some(qself), path)
1643 } else {
1644 (None, self.parse_path(PathStyle::Expr)?)
1645 };
1646
1647 let (span, kind) = if self.eat(exp!(Bang)) {
1649 if qself.is_some() {
1651 self.dcx().emit_err(errors::MacroInvocationWithQualifiedPath(path.span));
1652 }
1653 let lo = path.span;
1654 let mac = P(MacCall { path, args: self.parse_delim_args()? });
1655 (lo.to(self.prev_token.span), ExprKind::MacCall(mac))
1656 } else if self.check(exp!(OpenBrace))
1657 && let Some(expr) = self.maybe_parse_struct_expr(&qself, &path)
1658 {
1659 if qself.is_some() {
1660 self.psess.gated_spans.gate(sym::more_qualified_paths, path.span);
1661 }
1662 return expr;
1663 } else {
1664 (path.span, ExprKind::Path(qself, path))
1665 };
1666
1667 let expr = self.mk_expr(span, kind);
1668 self.maybe_recover_from_bad_qpath(expr)
1669 }
1670
1671 pub(super) fn parse_expr_labeled(
1673 &mut self,
1674 label_: Label,
1675 mut consume_colon: bool,
1676 ) -> PResult<'a, P<Expr>> {
1677 let lo = label_.ident.span;
1678 let label = Some(label_);
1679 let ate_colon = self.eat(exp!(Colon));
1680 let tok_sp = self.token.span;
1681 let expr = if self.eat_keyword(exp!(While)) {
1682 self.parse_expr_while(label, lo)
1683 } else if self.eat_keyword(exp!(For)) {
1684 self.parse_expr_for(label, lo)
1685 } else if self.eat_keyword(exp!(Loop)) {
1686 self.parse_expr_loop(label, lo)
1687 } else if self.check_noexpect(&token::OpenBrace) || self.token.is_metavar_block() {
1688 self.parse_expr_block(label, lo, BlockCheckMode::Default)
1689 } else if !ate_colon
1690 && self.may_recover()
1691 && (self.token.kind.close_delim().is_some() || self.token.is_punct())
1692 && could_be_unclosed_char_literal(label_.ident)
1693 {
1694 let (lit, _) =
1695 self.recover_unclosed_char(label_.ident, Parser::mk_token_lit_char, |self_| {
1696 self_.dcx().create_err(errors::UnexpectedTokenAfterLabel {
1697 span: self_.token.span,
1698 remove_label: None,
1699 enclose_in_block: None,
1700 })
1701 });
1702 consume_colon = false;
1703 Ok(self.mk_expr(lo, ExprKind::Lit(lit)))
1704 } else if !ate_colon
1705 && (self.check_noexpect(&TokenKind::Comma) || self.check_noexpect(&TokenKind::Gt))
1706 {
1707 let guar = self.dcx().emit_err(errors::UnexpectedTokenAfterLabel {
1709 span: self.token.span,
1710 remove_label: None,
1711 enclose_in_block: None,
1712 });
1713 consume_colon = false;
1714 Ok(self.mk_expr_err(lo, guar))
1715 } else {
1716 let mut err = errors::UnexpectedTokenAfterLabel {
1717 span: self.token.span,
1718 remove_label: None,
1719 enclose_in_block: None,
1720 };
1721
1722 let expr = self.parse_expr().map(|expr| {
1724 let span = expr.span;
1725
1726 let found_labeled_breaks = {
1727 struct FindLabeledBreaksVisitor;
1728
1729 impl<'ast> Visitor<'ast> for FindLabeledBreaksVisitor {
1730 type Result = ControlFlow<()>;
1731 fn visit_expr(&mut self, ex: &'ast Expr) -> ControlFlow<()> {
1732 if let ExprKind::Break(Some(_label), _) = ex.kind {
1733 ControlFlow::Break(())
1734 } else {
1735 walk_expr(self, ex)
1736 }
1737 }
1738 }
1739
1740 FindLabeledBreaksVisitor.visit_expr(&expr).is_break()
1741 };
1742
1743 if !found_labeled_breaks {
1748 err.remove_label = Some(lo.until(span));
1749
1750 return expr;
1751 }
1752
1753 err.enclose_in_block = Some(errors::UnexpectedTokenAfterLabelSugg {
1754 left: span.shrink_to_lo(),
1755 right: span.shrink_to_hi(),
1756 });
1757
1758 let stmt = self.mk_stmt(span, StmtKind::Expr(expr));
1760 let blk = self.mk_block(thin_vec![stmt], BlockCheckMode::Default, span);
1761 self.mk_expr(span, ExprKind::Block(blk, label))
1762 });
1763
1764 self.dcx().emit_err(err);
1765 expr
1766 }?;
1767
1768 if !ate_colon && consume_colon {
1769 self.dcx().emit_err(errors::RequireColonAfterLabeledExpression {
1770 span: expr.span,
1771 label: lo,
1772 label_end: lo.between(tok_sp),
1773 });
1774 }
1775
1776 Ok(expr)
1777 }
1778
1779 pub(super) fn recover_unclosed_char<L>(
1781 &self,
1782 ident: Ident,
1783 mk_lit_char: impl FnOnce(Symbol, Span) -> L,
1784 err: impl FnOnce(&Self) -> Diag<'a>,
1785 ) -> L {
1786 assert!(could_be_unclosed_char_literal(ident));
1787 self.dcx()
1788 .try_steal_modify_and_emit_err(ident.span, StashKey::LifetimeIsChar, |err| {
1789 err.span_suggestion_verbose(
1790 ident.span.shrink_to_hi(),
1791 "add `'` to close the char literal",
1792 "'",
1793 Applicability::MaybeIncorrect,
1794 );
1795 })
1796 .unwrap_or_else(|| {
1797 err(self)
1798 .with_span_suggestion_verbose(
1799 ident.span.shrink_to_hi(),
1800 "add `'` to close the char literal",
1801 "'",
1802 Applicability::MaybeIncorrect,
1803 )
1804 .emit()
1805 });
1806 let name = ident.without_first_quote().name;
1807 mk_lit_char(name, ident.span)
1808 }
1809
1810 fn recover_do_catch(&mut self) -> PResult<'a, P<Expr>> {
1812 let lo = self.token.span;
1813
1814 self.bump(); self.bump(); let span = lo.to(self.prev_token.span);
1818 self.dcx().emit_err(errors::DoCatchSyntaxRemoved { span });
1819
1820 self.parse_try_block(lo)
1821 }
1822
1823 fn parse_expr_opt(&mut self) -> PResult<'a, Option<P<Expr>>> {
1825 Ok(if self.token.can_begin_expr() { Some(self.parse_expr()?) } else { None })
1826 }
1827
1828 fn parse_expr_return(&mut self) -> PResult<'a, P<Expr>> {
1830 let lo = self.prev_token.span;
1831 let kind = ExprKind::Ret(self.parse_expr_opt()?);
1832 let expr = self.mk_expr(lo.to(self.prev_token.span), kind);
1833 self.maybe_recover_from_bad_qpath(expr)
1834 }
1835
1836 fn parse_expr_yeet(&mut self) -> PResult<'a, P<Expr>> {
1838 let lo = self.token.span;
1839
1840 self.bump(); self.bump(); let kind = ExprKind::Yeet(self.parse_expr_opt()?);
1844
1845 let span = lo.to(self.prev_token.span);
1846 self.psess.gated_spans.gate(sym::yeet_expr, span);
1847 let expr = self.mk_expr(span, kind);
1848 self.maybe_recover_from_bad_qpath(expr)
1849 }
1850
1851 fn parse_expr_become(&mut self) -> PResult<'a, P<Expr>> {
1853 let lo = self.prev_token.span;
1854 let kind = ExprKind::Become(self.parse_expr()?);
1855 let span = lo.to(self.prev_token.span);
1856 self.psess.gated_spans.gate(sym::explicit_tail_calls, span);
1857 let expr = self.mk_expr(span, kind);
1858 self.maybe_recover_from_bad_qpath(expr)
1859 }
1860
1861 fn parse_expr_break(&mut self) -> PResult<'a, P<Expr>> {
1870 let lo = self.prev_token.span;
1871 let mut label = self.eat_label();
1872 let kind = if self.token == token::Colon
1873 && let Some(label) = label.take()
1874 {
1875 let lexpr = self.parse_expr_labeled(label, true)?;
1878 self.dcx().emit_err(errors::LabeledLoopInBreak {
1879 span: lexpr.span,
1880 sub: errors::WrapInParentheses::Expression {
1881 left: lexpr.span.shrink_to_lo(),
1882 right: lexpr.span.shrink_to_hi(),
1883 },
1884 });
1885 Some(lexpr)
1886 } else if self.token != token::OpenBrace
1887 || !self.restrictions.contains(Restrictions::NO_STRUCT_LITERAL)
1888 {
1889 let mut expr = self.parse_expr_opt()?;
1890 if let Some(expr) = &mut expr {
1891 if label.is_some()
1892 && match &expr.kind {
1893 ExprKind::While(_, _, None)
1894 | ExprKind::ForLoop { label: None, .. }
1895 | ExprKind::Loop(_, None, _) => true,
1896 ExprKind::Block(block, None) => {
1897 matches!(block.rules, BlockCheckMode::Default)
1898 }
1899 _ => false,
1900 }
1901 {
1902 self.psess.buffer_lint(
1903 BREAK_WITH_LABEL_AND_LOOP,
1904 lo.to(expr.span),
1905 ast::CRATE_NODE_ID,
1906 BuiltinLintDiag::BreakWithLabelAndLoop(expr.span),
1907 );
1908 }
1909
1910 if self.may_recover()
1912 && let ExprKind::Path(None, p) = &expr.kind
1913 && let [segment] = &*p.segments
1914 && let &ast::PathSegment { ident, args: None, .. } = segment
1915 && let Some(next) = self.parse_expr_opt()?
1916 {
1917 label = Some(self.recover_ident_into_label(ident));
1918 *expr = next;
1919 }
1920 }
1921
1922 expr
1923 } else {
1924 None
1925 };
1926 let expr = self.mk_expr(lo.to(self.prev_token.span), ExprKind::Break(label, kind));
1927 self.maybe_recover_from_bad_qpath(expr)
1928 }
1929
1930 fn parse_expr_continue(&mut self, lo: Span) -> PResult<'a, P<Expr>> {
1932 let mut label = self.eat_label();
1933
1934 if self.may_recover()
1936 && label.is_none()
1937 && let Some((ident, _)) = self.token.ident()
1938 {
1939 self.bump();
1940 label = Some(self.recover_ident_into_label(ident));
1941 }
1942
1943 let kind = ExprKind::Continue(label);
1944 Ok(self.mk_expr(lo.to(self.prev_token.span), kind))
1945 }
1946
1947 fn parse_expr_yield(&mut self) -> PResult<'a, P<Expr>> {
1949 let lo = self.prev_token.span;
1950 let kind = ExprKind::Yield(YieldKind::Prefix(self.parse_expr_opt()?));
1951 let span = lo.to(self.prev_token.span);
1952 self.psess.gated_spans.gate(sym::yield_expr, span);
1953 let expr = self.mk_expr(span, kind);
1954 self.maybe_recover_from_bad_qpath(expr)
1955 }
1956
1957 fn parse_expr_builtin(&mut self) -> PResult<'a, P<Expr>> {
1959 self.parse_builtin(|this, lo, ident| {
1960 Ok(match ident.name {
1961 sym::offset_of => Some(this.parse_expr_offset_of(lo)?),
1962 sym::type_ascribe => Some(this.parse_expr_type_ascribe(lo)?),
1963 sym::wrap_binder => {
1964 Some(this.parse_expr_unsafe_binder_cast(lo, UnsafeBinderCastKind::Wrap)?)
1965 }
1966 sym::unwrap_binder => {
1967 Some(this.parse_expr_unsafe_binder_cast(lo, UnsafeBinderCastKind::Unwrap)?)
1968 }
1969 _ => None,
1970 })
1971 })
1972 }
1973
1974 pub(crate) fn parse_builtin<T>(
1975 &mut self,
1976 parse: impl FnOnce(&mut Parser<'a>, Span, Ident) -> PResult<'a, Option<T>>,
1977 ) -> PResult<'a, T> {
1978 let lo = self.token.span;
1979
1980 self.bump(); self.bump(); let Some((ident, IdentIsRaw::No)) = self.token.ident() else {
1984 let err = self.dcx().create_err(errors::ExpectedBuiltinIdent { span: self.token.span });
1985 return Err(err);
1986 };
1987 self.psess.gated_spans.gate(sym::builtin_syntax, ident.span);
1988 self.bump();
1989
1990 self.expect(exp!(OpenParen))?;
1991 let ret = if let Some(res) = parse(self, lo, ident)? {
1992 Ok(res)
1993 } else {
1994 let err = self.dcx().create_err(errors::UnknownBuiltinConstruct {
1995 span: lo.to(ident.span),
1996 name: ident,
1997 });
1998 return Err(err);
1999 };
2000 self.expect(exp!(CloseParen))?;
2001
2002 ret
2003 }
2004
2005 pub(crate) fn parse_expr_offset_of(&mut self, lo: Span) -> PResult<'a, P<Expr>> {
2007 let container = self.parse_ty()?;
2008 self.expect(exp!(Comma))?;
2009
2010 let fields = self.parse_floating_field_access()?;
2011 let trailing_comma = self.eat_noexpect(&TokenKind::Comma);
2012
2013 if let Err(mut e) = self.expect_one_of(&[], &[exp!(CloseParen)]) {
2014 if trailing_comma {
2015 e.note("unexpected third argument to offset_of");
2016 } else {
2017 e.note("offset_of expects dot-separated field and variant names");
2018 }
2019 e.emit();
2020 }
2021
2022 if self.may_recover() {
2024 while !self.token.kind.is_close_delim_or_eof() {
2025 self.bump();
2026 }
2027 }
2028
2029 let span = lo.to(self.token.span);
2030 Ok(self.mk_expr(span, ExprKind::OffsetOf(container, fields)))
2031 }
2032
2033 pub(crate) fn parse_expr_type_ascribe(&mut self, lo: Span) -> PResult<'a, P<Expr>> {
2035 let expr = self.parse_expr()?;
2036 self.expect(exp!(Comma))?;
2037 let ty = self.parse_ty()?;
2038 let span = lo.to(self.token.span);
2039 Ok(self.mk_expr(span, ExprKind::Type(expr, ty)))
2040 }
2041
2042 pub(crate) fn parse_expr_unsafe_binder_cast(
2043 &mut self,
2044 lo: Span,
2045 kind: UnsafeBinderCastKind,
2046 ) -> PResult<'a, P<Expr>> {
2047 let expr = self.parse_expr()?;
2048 let ty = if self.eat(exp!(Comma)) { Some(self.parse_ty()?) } else { None };
2049 let span = lo.to(self.token.span);
2050 Ok(self.mk_expr(span, ExprKind::UnsafeBinderCast(kind, expr, ty)))
2051 }
2052
2053 pub fn parse_str_lit(&mut self) -> Result<ast::StrLit, Option<MetaItemLit>> {
2057 match self.parse_opt_meta_item_lit() {
2058 Some(lit) => match lit.kind {
2059 ast::LitKind::Str(symbol_unescaped, style) => Ok(ast::StrLit {
2060 style,
2061 symbol: lit.symbol,
2062 suffix: lit.suffix,
2063 span: lit.span,
2064 symbol_unescaped,
2065 }),
2066 _ => Err(Some(lit)),
2067 },
2068 None => Err(None),
2069 }
2070 }
2071
2072 pub(crate) fn mk_token_lit_char(name: Symbol, span: Span) -> (token::Lit, Span) {
2073 (token::Lit { symbol: name, suffix: None, kind: token::Char }, span)
2074 }
2075
2076 fn mk_meta_item_lit_char(name: Symbol, span: Span) -> MetaItemLit {
2077 ast::MetaItemLit {
2078 symbol: name,
2079 suffix: None,
2080 kind: ast::LitKind::Char(name.as_str().chars().next().unwrap_or('_')),
2081 span,
2082 }
2083 }
2084
2085 fn handle_missing_lit<L>(
2086 &mut self,
2087 mk_lit_char: impl FnOnce(Symbol, Span) -> L,
2088 ) -> PResult<'a, L> {
2089 let token = self.token;
2090 let err = |self_: &Self| {
2091 let msg = format!("unexpected token: {}", super::token_descr(&token));
2092 self_.dcx().struct_span_err(token.span, msg)
2093 };
2094 if let Some((ident, IdentIsRaw::No)) = self.token.lifetime()
2097 && could_be_unclosed_char_literal(ident)
2098 {
2099 let lt = self.expect_lifetime();
2100 Ok(self.recover_unclosed_char(lt.ident, mk_lit_char, err))
2101 } else {
2102 Err(err(self))
2103 }
2104 }
2105
2106 pub(super) fn parse_token_lit(&mut self) -> PResult<'a, (token::Lit, Span)> {
2107 self.parse_opt_token_lit()
2108 .ok_or(())
2109 .or_else(|()| self.handle_missing_lit(Parser::mk_token_lit_char))
2110 }
2111
2112 pub(super) fn parse_meta_item_lit(&mut self) -> PResult<'a, MetaItemLit> {
2113 self.parse_opt_meta_item_lit()
2114 .ok_or(())
2115 .or_else(|()| self.handle_missing_lit(Parser::mk_meta_item_lit_char))
2116 }
2117
2118 fn recover_after_dot(&mut self) {
2119 if self.token == token::Dot {
2120 let recovered = self.look_ahead(1, |next_token| {
2123 if let token::Literal(token::Lit { kind: token::Integer, symbol, suffix }) =
2130 next_token.kind
2131 && suffix.is_none_or(|s| s == sym::f32 || s == sym::f64)
2132 && symbol.as_str().chars().all(|c| c.is_numeric() || c == '_')
2133 && self.token.span.hi() == next_token.span.lo()
2134 {
2135 let s = String::from("0.") + symbol.as_str();
2136 let kind = TokenKind::lit(token::Float, Symbol::intern(&s), suffix);
2137 Some(Token::new(kind, self.token.span.to(next_token.span)))
2138 } else {
2139 None
2140 }
2141 });
2142 if let Some(recovered) = recovered {
2143 self.dcx().emit_err(errors::FloatLiteralRequiresIntegerPart {
2144 span: recovered.span,
2145 suggestion: recovered.span.shrink_to_lo(),
2146 });
2147 self.bump();
2148 self.token = recovered;
2149 }
2150 }
2151 }
2152
2153 fn eat_token_lit(&mut self) -> Option<token::Lit> {
2156 let check_expr = |expr: P<Expr>| {
2157 if let ast::ExprKind::Lit(token_lit) = expr.kind {
2158 Some(token_lit)
2159 } else if let ast::ExprKind::Unary(UnOp::Neg, inner) = &expr.kind
2160 && let ast::Expr { kind: ast::ExprKind::Lit(_), .. } = **inner
2161 {
2162 None
2163 } else {
2164 panic!("unexpected reparsed expr/literal: {:?}", expr.kind);
2165 }
2166 };
2167 match self.token.uninterpolate().kind {
2168 token::Ident(name, IdentIsRaw::No) if name.is_bool_lit() => {
2169 self.bump();
2170 Some(token::Lit::new(token::Bool, name, None))
2171 }
2172 token::Literal(token_lit) => {
2173 self.bump();
2174 Some(token_lit)
2175 }
2176 token::OpenInvisible(InvisibleOrigin::MetaVar(MetaVarKind::Literal)) => {
2177 let lit = self
2178 .eat_metavar_seq(MetaVarKind::Literal, |this| this.parse_literal_maybe_minus())
2179 .expect("metavar seq literal");
2180 check_expr(lit)
2181 }
2182 token::OpenInvisible(InvisibleOrigin::MetaVar(
2183 mv_kind @ MetaVarKind::Expr { can_begin_literal_maybe_minus: true, .. },
2184 )) => {
2185 let expr = self
2186 .eat_metavar_seq(mv_kind, |this| this.parse_expr())
2187 .expect("metavar seq expr");
2188 check_expr(expr)
2189 }
2190 _ => None,
2191 }
2192 }
2193
2194 fn parse_opt_token_lit(&mut self) -> Option<(token::Lit, Span)> {
2197 self.recover_after_dot();
2198 let span = self.token.span;
2199 self.eat_token_lit().map(|token_lit| (token_lit, span))
2200 }
2201
2202 fn parse_opt_meta_item_lit(&mut self) -> Option<MetaItemLit> {
2205 self.recover_after_dot();
2206 let span = self.token.span;
2207 let uninterpolated_span = self.token_uninterpolated_span();
2208 self.eat_token_lit().map(|token_lit| {
2209 match MetaItemLit::from_token_lit(token_lit, span) {
2210 Ok(lit) => lit,
2211 Err(err) => {
2212 let guar = report_lit_error(&self.psess, err, token_lit, uninterpolated_span);
2213 let suffixless_lit = token::Lit::new(token_lit.kind, token_lit.symbol, None);
2216 let symbol = Symbol::intern(&suffixless_lit.to_string());
2217 let token_lit = token::Lit::new(token::Err(guar), symbol, token_lit.suffix);
2218 MetaItemLit::from_token_lit(token_lit, uninterpolated_span).unwrap()
2219 }
2220 }
2221 })
2222 }
2223
2224 pub(super) fn expect_no_tuple_index_suffix(&self, span: Span, suffix: Symbol) {
2225 if [sym::i32, sym::u32, sym::isize, sym::usize].contains(&suffix) {
2226 self.dcx().emit_warn(errors::InvalidLiteralSuffixOnTupleIndex {
2229 span,
2230 suffix,
2231 exception: true,
2232 });
2233 } else {
2234 self.dcx().emit_err(errors::InvalidLiteralSuffixOnTupleIndex {
2235 span,
2236 suffix,
2237 exception: false,
2238 });
2239 }
2240 }
2241
2242 pub fn parse_literal_maybe_minus(&mut self) -> PResult<'a, P<Expr>> {
2245 if let Some(expr) = self.eat_metavar_seq_with_matcher(
2246 |mv_kind| matches!(mv_kind, MetaVarKind::Expr { .. }),
2247 |this| {
2248 this.parse_expr()
2259 },
2260 ) {
2261 return Ok(expr);
2262 } else if let Some(lit) =
2263 self.eat_metavar_seq(MetaVarKind::Literal, |this| this.parse_literal_maybe_minus())
2264 {
2265 return Ok(lit);
2266 }
2267
2268 let lo = self.token.span;
2269 let minus_present = self.eat(exp!(Minus));
2270 let (token_lit, span) = self.parse_token_lit()?;
2271 let expr = self.mk_expr(span, ExprKind::Lit(token_lit));
2272
2273 if minus_present {
2274 Ok(self.mk_expr(lo.to(self.prev_token.span), self.mk_unary(UnOp::Neg, expr)))
2275 } else {
2276 Ok(expr)
2277 }
2278 }
2279
2280 fn is_array_like_block(&mut self) -> bool {
2281 self.token.kind == TokenKind::OpenBrace
2282 && self
2283 .look_ahead(1, |t| matches!(t.kind, TokenKind::Ident(..) | TokenKind::Literal(_)))
2284 && self.look_ahead(2, |t| t == &token::Comma)
2285 && self.look_ahead(3, |t| t.can_begin_expr())
2286 }
2287
2288 fn maybe_suggest_brackets_instead_of_braces(&mut self, lo: Span) -> Option<P<Expr>> {
2292 let mut snapshot = self.create_snapshot_for_diagnostic();
2293 match snapshot.parse_expr_array_or_repeat(exp!(CloseBrace)) {
2294 Ok(arr) => {
2295 let guar = self.dcx().emit_err(errors::ArrayBracketsInsteadOfBraces {
2296 span: arr.span,
2297 sub: errors::ArrayBracketsInsteadOfBracesSugg {
2298 left: lo,
2299 right: snapshot.prev_token.span,
2300 },
2301 });
2302
2303 self.restore_snapshot(snapshot);
2304 Some(self.mk_expr_err(arr.span, guar))
2305 }
2306 Err(e) => {
2307 e.cancel();
2308 None
2309 }
2310 }
2311 }
2312
2313 fn suggest_missing_semicolon_before_array(
2314 &self,
2315 prev_span: Span,
2316 open_delim_span: Span,
2317 ) -> PResult<'a, ()> {
2318 if !self.may_recover() {
2319 return Ok(());
2320 }
2321
2322 if self.token == token::Comma {
2323 if !self.psess.source_map().is_multiline(prev_span.until(self.token.span)) {
2324 return Ok(());
2325 }
2326 let mut snapshot = self.create_snapshot_for_diagnostic();
2327 snapshot.bump();
2328 match snapshot.parse_seq_to_before_end(
2329 exp!(CloseBracket),
2330 SeqSep::trailing_allowed(exp!(Comma)),
2331 |p| p.parse_expr(),
2332 ) {
2333 Ok(_)
2334 if snapshot
2340 .span_to_snippet(snapshot.token.span)
2341 .is_ok_and(|snippet| snippet == "]") =>
2342 {
2343 return Err(self.dcx().create_err(errors::MissingSemicolonBeforeArray {
2344 open_delim: open_delim_span,
2345 semicolon: prev_span.shrink_to_hi(),
2346 }));
2347 }
2348 Ok(_) => (),
2349 Err(err) => err.cancel(),
2350 }
2351 }
2352 Ok(())
2353 }
2354
2355 pub(super) fn parse_expr_block(
2357 &mut self,
2358 opt_label: Option<Label>,
2359 lo: Span,
2360 blk_mode: BlockCheckMode,
2361 ) -> PResult<'a, P<Expr>> {
2362 if self.may_recover() && self.is_array_like_block() {
2363 if let Some(arr) = self.maybe_suggest_brackets_instead_of_braces(lo) {
2364 return Ok(arr);
2365 }
2366 }
2367
2368 if self.token.is_metavar_block() {
2369 self.dcx().emit_err(errors::InvalidBlockMacroSegment {
2370 span: self.token.span,
2371 context: lo.to(self.token.span),
2372 wrap: errors::WrapInExplicitBlock {
2373 lo: self.token.span.shrink_to_lo(),
2374 hi: self.token.span.shrink_to_hi(),
2375 },
2376 });
2377 }
2378
2379 let (attrs, blk) = self.parse_block_common(lo, blk_mode, None)?;
2380 Ok(self.mk_expr_with_attrs(blk.span, ExprKind::Block(blk, opt_label), attrs))
2381 }
2382
2383 fn parse_simple_block(&mut self) -> PResult<'a, P<Expr>> {
2385 let blk = self.parse_block()?;
2386 Ok(self.mk_expr(blk.span, ExprKind::Block(blk, None)))
2387 }
2388
2389 fn parse_expr_closure(&mut self) -> PResult<'a, P<Expr>> {
2391 let lo = self.token.span;
2392
2393 let before = self.prev_token;
2394 let binder = if self.check_keyword(exp!(For)) {
2395 let lo = self.token.span;
2396 let (lifetime_defs, _) = self.parse_late_bound_lifetime_defs()?;
2397 let span = lo.to(self.prev_token.span);
2398
2399 self.psess.gated_spans.gate(sym::closure_lifetime_binder, span);
2400
2401 ClosureBinder::For { span, generic_params: lifetime_defs }
2402 } else {
2403 ClosureBinder::NotPresent
2404 };
2405
2406 let constness = self.parse_closure_constness();
2407
2408 let movability =
2409 if self.eat_keyword(exp!(Static)) { Movability::Static } else { Movability::Movable };
2410
2411 let coroutine_kind = if self.token_uninterpolated_span().at_least_rust_2018() {
2412 self.parse_coroutine_kind(Case::Sensitive)
2413 } else {
2414 None
2415 };
2416
2417 if let ClosureBinder::NotPresent = binder
2418 && coroutine_kind.is_some()
2419 {
2420 self.expected_token_types.insert(TokenType::OpenBrace);
2423 }
2424
2425 let capture_clause = self.parse_capture_clause()?;
2426 let (fn_decl, fn_arg_span) = self.parse_fn_block_decl()?;
2427 let decl_hi = self.prev_token.span;
2428 let mut body = match &fn_decl.output {
2429 FnRetTy::Default(_) => {
2431 let restrictions =
2432 self.restrictions - Restrictions::STMT_EXPR - Restrictions::ALLOW_LET;
2433 let prev = self.prev_token;
2434 let token = self.token;
2435 let attrs = self.parse_outer_attributes()?;
2436 match self.parse_expr_res(restrictions, attrs) {
2437 Ok((expr, _)) => expr,
2438 Err(err) => self.recover_closure_body(err, before, prev, token, lo, decl_hi)?,
2439 }
2440 }
2441 FnRetTy::Ty(ty) => self.parse_closure_block_body(ty.span)?,
2443 };
2444
2445 match coroutine_kind {
2446 Some(CoroutineKind::Async { .. }) => {}
2447 Some(CoroutineKind::Gen { span, .. }) | Some(CoroutineKind::AsyncGen { span, .. }) => {
2448 self.psess.gated_spans.gate(sym::gen_blocks, span);
2451 }
2452 None => {}
2453 }
2454
2455 if self.token == TokenKind::Semi
2456 && let Some(last) = self.token_cursor.stack.last()
2457 && let Some(TokenTree::Delimited(_, _, Delimiter::Parenthesis, _)) = last.curr()
2458 && self.may_recover()
2459 {
2460 body = self.mk_expr_err(
2464 body.span,
2465 self.dcx().span_delayed_bug(body.span, "recovered a closure body as a block"),
2466 );
2467 }
2468
2469 let body_span = body.span;
2470
2471 let closure = self.mk_expr(
2472 lo.to(body.span),
2473 ExprKind::Closure(Box::new(ast::Closure {
2474 binder,
2475 capture_clause,
2476 constness,
2477 coroutine_kind,
2478 movability,
2479 fn_decl,
2480 body,
2481 fn_decl_span: lo.to(decl_hi),
2482 fn_arg_span,
2483 })),
2484 );
2485
2486 let spans =
2488 ClosureSpans { whole_closure: closure.span, closing_pipe: decl_hi, body: body_span };
2489 self.current_closure = Some(spans);
2490
2491 Ok(closure)
2492 }
2493
2494 fn parse_closure_block_body(&mut self, ret_span: Span) -> PResult<'a, P<Expr>> {
2496 if self.may_recover()
2497 && self.token.can_begin_expr()
2498 && self.token.kind != TokenKind::OpenBrace
2499 && !self.token.is_metavar_block()
2500 {
2501 let snapshot = self.create_snapshot_for_diagnostic();
2502 let restrictions =
2503 self.restrictions - Restrictions::STMT_EXPR - Restrictions::ALLOW_LET;
2504 let tok = self.token.clone();
2505 match self.parse_expr_res(restrictions, AttrWrapper::empty()) {
2506 Ok((expr, _)) => {
2507 let descr = super::token_descr(&tok);
2508 let mut diag = self
2509 .dcx()
2510 .struct_span_err(tok.span, format!("expected `{{`, found {descr}"));
2511 diag.span_label(
2512 ret_span,
2513 "explicit return type requires closure body to be enclosed in braces",
2514 );
2515 diag.multipart_suggestion_verbose(
2516 "wrap the expression in curly braces",
2517 vec![
2518 (expr.span.shrink_to_lo(), "{ ".to_string()),
2519 (expr.span.shrink_to_hi(), " }".to_string()),
2520 ],
2521 Applicability::MachineApplicable,
2522 );
2523 diag.emit();
2524 return Ok(expr);
2525 }
2526 Err(diag) => {
2527 diag.cancel();
2528 self.restore_snapshot(snapshot);
2529 }
2530 }
2531 }
2532
2533 let body_lo = self.token.span;
2534 self.parse_expr_block(None, body_lo, BlockCheckMode::Default)
2535 }
2536
2537 fn parse_capture_clause(&mut self) -> PResult<'a, CaptureBy> {
2539 if self.eat_keyword(exp!(Move)) {
2540 let move_kw_span = self.prev_token.span;
2541 if self.check_keyword(exp!(Async)) {
2543 let move_async_span = self.token.span.with_lo(self.prev_token.span.data().lo);
2544 Err(self
2545 .dcx()
2546 .create_err(errors::AsyncMoveOrderIncorrect { span: move_async_span }))
2547 } else {
2548 Ok(CaptureBy::Value { move_kw: move_kw_span })
2549 }
2550 } else if self.eat_keyword(exp!(Use)) {
2551 let use_kw_span = self.prev_token.span;
2552 self.psess.gated_spans.gate(sym::ergonomic_clones, use_kw_span);
2553 if self.check_keyword(exp!(Async)) {
2555 let use_async_span = self.token.span.with_lo(self.prev_token.span.data().lo);
2556 Err(self.dcx().create_err(errors::AsyncUseOrderIncorrect { span: use_async_span }))
2557 } else {
2558 Ok(CaptureBy::Use { use_kw: use_kw_span })
2559 }
2560 } else {
2561 Ok(CaptureBy::Ref)
2562 }
2563 }
2564
2565 fn parse_fn_block_decl(&mut self) -> PResult<'a, (P<FnDecl>, Span)> {
2567 let arg_start = self.token.span.lo();
2568
2569 let inputs = if self.eat(exp!(OrOr)) {
2570 ThinVec::new()
2571 } else {
2572 self.expect(exp!(Or))?;
2573 let args = self
2574 .parse_seq_to_before_tokens(
2575 &[exp!(Or)],
2576 &[&token::OrOr],
2577 SeqSep::trailing_allowed(exp!(Comma)),
2578 |p| p.parse_fn_block_param(),
2579 )?
2580 .0;
2581 self.expect_or()?;
2582 args
2583 };
2584 let arg_span = self.prev_token.span.with_lo(arg_start);
2585 let output =
2586 self.parse_ret_ty(AllowPlus::Yes, RecoverQPath::Yes, RecoverReturnSign::Yes)?;
2587
2588 Ok((P(FnDecl { inputs, output }), arg_span))
2589 }
2590
2591 fn parse_fn_block_param(&mut self) -> PResult<'a, Param> {
2593 let lo = self.token.span;
2594 let attrs = self.parse_outer_attributes()?;
2595 self.collect_tokens(None, attrs, ForceCollect::No, |this, attrs| {
2596 let pat = this.parse_pat_no_top_alt(Some(Expected::ParameterName), None)?;
2597 let ty = if this.eat(exp!(Colon)) {
2598 this.parse_ty()?
2599 } else {
2600 this.mk_ty(pat.span, TyKind::Infer)
2601 };
2602
2603 Ok((
2604 Param {
2605 attrs,
2606 ty,
2607 pat,
2608 span: lo.to(this.prev_token.span),
2609 id: DUMMY_NODE_ID,
2610 is_placeholder: false,
2611 },
2612 Trailing::from(this.token == token::Comma),
2613 UsePreAttrPos::No,
2614 ))
2615 })
2616 }
2617
2618 fn parse_expr_if(&mut self) -> PResult<'a, P<Expr>> {
2620 let lo = self.prev_token.span;
2621 let let_chains_policy = LetChainsPolicy::EditionDependent { current_edition: lo.edition() };
2624 let cond = self.parse_expr_cond(let_chains_policy)?;
2625 self.parse_if_after_cond(lo, cond)
2626 }
2627
2628 fn parse_if_after_cond(&mut self, lo: Span, mut cond: P<Expr>) -> PResult<'a, P<Expr>> {
2629 let cond_span = cond.span;
2630 let mut recover_block_from_condition = |this: &mut Self| {
2634 let block = match &mut cond.kind {
2635 ExprKind::Binary(Spanned { span: binop_span, .. }, _, right)
2636 if let ExprKind::Block(_, None) = right.kind =>
2637 {
2638 let guar = this.dcx().emit_err(errors::IfExpressionMissingThenBlock {
2639 if_span: lo,
2640 missing_then_block_sub:
2641 errors::IfExpressionMissingThenBlockSub::UnfinishedCondition(
2642 cond_span.shrink_to_lo().to(*binop_span),
2643 ),
2644 let_else_sub: None,
2645 });
2646 std::mem::replace(right, this.mk_expr_err(binop_span.shrink_to_hi(), guar))
2647 }
2648 ExprKind::Block(_, None) => {
2649 let guar = this.dcx().emit_err(errors::IfExpressionMissingCondition {
2650 if_span: lo.with_neighbor(cond.span).shrink_to_hi(),
2651 block_span: self.psess.source_map().start_point(cond_span),
2652 });
2653 std::mem::replace(&mut cond, this.mk_expr_err(cond_span.shrink_to_hi(), guar))
2654 }
2655 _ => {
2656 return None;
2657 }
2658 };
2659 if let ExprKind::Block(block, _) = &block.kind {
2660 Some(block.clone())
2661 } else {
2662 unreachable!()
2663 }
2664 };
2665 let thn = if self.token.is_keyword(kw::Else) {
2667 if let Some(block) = recover_block_from_condition(self) {
2668 block
2669 } else {
2670 let let_else_sub = matches!(cond.kind, ExprKind::Let(..))
2671 .then(|| errors::IfExpressionLetSomeSub { if_span: lo.until(cond_span) });
2672
2673 let guar = self.dcx().emit_err(errors::IfExpressionMissingThenBlock {
2674 if_span: lo,
2675 missing_then_block_sub: errors::IfExpressionMissingThenBlockSub::AddThenBlock(
2676 cond_span.shrink_to_hi(),
2677 ),
2678 let_else_sub,
2679 });
2680 self.mk_block_err(cond_span.shrink_to_hi(), guar)
2681 }
2682 } else {
2683 let attrs = self.parse_outer_attributes()?; let maybe_fatarrow = self.token;
2685 let block = if self.check(exp!(OpenBrace)) {
2686 self.parse_block()?
2687 } else if let Some(block) = recover_block_from_condition(self) {
2688 block
2689 } else {
2690 self.error_on_extra_if(&cond)?;
2691 self.parse_block().map_err(|mut err| {
2693 if self.prev_token == token::Semi
2694 && self.token == token::AndAnd
2695 && let maybe_let = self.look_ahead(1, |t| t.clone())
2696 && maybe_let.is_keyword(kw::Let)
2697 {
2698 err.span_suggestion(
2699 self.prev_token.span,
2700 "consider removing this semicolon to parse the `let` as part of the same chain",
2701 "",
2702 Applicability::MachineApplicable,
2703 ).span_note(
2704 self.token.span.to(maybe_let.span),
2705 "you likely meant to continue parsing the let-chain starting here",
2706 );
2707 } else {
2708 if maybe_fatarrow == token::FatArrow {
2710 err.span_suggestion(
2711 maybe_fatarrow.span,
2712 "you might have meant to write a \"greater than or equal to\" comparison",
2713 ">=",
2714 Applicability::MaybeIncorrect,
2715 );
2716 }
2717 err.span_note(
2718 cond_span,
2719 "the `if` expression is missing a block after this condition",
2720 );
2721 }
2722 err
2723 })?
2724 };
2725 self.error_on_if_block_attrs(lo, false, block.span, attrs);
2726 block
2727 };
2728 let els = if self.eat_keyword(exp!(Else)) { Some(self.parse_expr_else()?) } else { None };
2729 Ok(self.mk_expr(lo.to(self.prev_token.span), ExprKind::If(cond, thn, els)))
2730 }
2731
2732 pub fn parse_expr_cond(&mut self, let_chains_policy: LetChainsPolicy) -> PResult<'a, P<Expr>> {
2739 let attrs = self.parse_outer_attributes()?;
2740 let (mut cond, _) =
2741 self.parse_expr_res(Restrictions::NO_STRUCT_LITERAL | Restrictions::ALLOW_LET, attrs)?;
2742
2743 CondChecker::new(self, let_chains_policy).visit_expr(&mut cond);
2744
2745 Ok(cond)
2746 }
2747
2748 fn parse_expr_let(&mut self, restrictions: Restrictions) -> PResult<'a, P<Expr>> {
2750 let recovered = if !restrictions.contains(Restrictions::ALLOW_LET) {
2751 let err = errors::ExpectedExpressionFoundLet {
2752 span: self.token.span,
2753 reason: ForbiddenLetReason::OtherForbidden,
2754 missing_let: None,
2755 comparison: None,
2756 };
2757 if self.prev_token == token::Or {
2758 return Err(self.dcx().create_err(err));
2760 } else {
2761 Recovered::Yes(self.dcx().emit_err(err))
2762 }
2763 } else {
2764 Recovered::No
2765 };
2766 self.bump(); let lo = self.prev_token.span;
2768 let pat = self.parse_pat_no_top_guard(
2769 None,
2770 RecoverComma::Yes,
2771 RecoverColon::Yes,
2772 CommaRecoveryMode::LikelyTuple,
2773 )?;
2774 if self.token == token::EqEq {
2775 self.dcx().emit_err(errors::ExpectedEqForLetExpr {
2776 span: self.token.span,
2777 sugg_span: self.token.span,
2778 });
2779 self.bump();
2780 } else {
2781 self.expect(exp!(Eq))?;
2782 }
2783 let attrs = self.parse_outer_attributes()?;
2784 let (expr, _) =
2785 self.parse_expr_assoc_with(Bound::Excluded(prec_let_scrutinee_needs_par()), attrs)?;
2786 let span = lo.to(expr.span);
2787 Ok(self.mk_expr(span, ExprKind::Let(pat, expr, span, recovered)))
2788 }
2789
2790 fn parse_expr_else(&mut self) -> PResult<'a, P<Expr>> {
2792 let else_span = self.prev_token.span; let attrs = self.parse_outer_attributes()?; let expr = if self.eat_keyword(exp!(If)) {
2795 ensure_sufficient_stack(|| self.parse_expr_if())?
2796 } else if self.check(exp!(OpenBrace)) {
2797 self.parse_simple_block()?
2798 } else {
2799 let snapshot = self.create_snapshot_for_diagnostic();
2800 let first_tok = super::token_descr(&self.token);
2801 let first_tok_span = self.token.span;
2802 match self.parse_expr() {
2803 Ok(cond)
2804 if self.check(exp!(OpenBrace))
2839 && (classify::expr_requires_semi_to_be_stmt(&cond)
2840 || matches!(cond.kind, ExprKind::MacCall(..)))
2841 =>
2842 {
2843 self.dcx().emit_err(errors::ExpectedElseBlock {
2844 first_tok_span,
2845 first_tok,
2846 else_span,
2847 condition_start: cond.span.shrink_to_lo(),
2848 });
2849 self.parse_if_after_cond(cond.span.shrink_to_lo(), cond)?
2850 }
2851 Err(e) => {
2852 e.cancel();
2853 self.restore_snapshot(snapshot);
2854 self.parse_simple_block()?
2855 },
2856 Ok(_) => {
2857 self.restore_snapshot(snapshot);
2858 self.parse_simple_block()?
2859 },
2860 }
2861 };
2862 self.error_on_if_block_attrs(else_span, true, expr.span, attrs);
2863 Ok(expr)
2864 }
2865
2866 fn error_on_if_block_attrs(
2867 &self,
2868 ctx_span: Span,
2869 is_ctx_else: bool,
2870 branch_span: Span,
2871 attrs: AttrWrapper,
2872 ) {
2873 if !attrs.is_empty()
2874 && let [x0 @ xn] | [x0, .., xn] = &*attrs.take_for_recovery(self.psess)
2875 {
2876 let attributes = x0.span.until(branch_span);
2877 let last = xn.span;
2878 let ctx = if is_ctx_else { "else" } else { "if" };
2879 self.dcx().emit_err(errors::OuterAttributeNotAllowedOnIfElse {
2880 last,
2881 branch_span,
2882 ctx_span,
2883 ctx: ctx.to_string(),
2884 attributes,
2885 });
2886 }
2887 }
2888
2889 fn error_on_extra_if(&mut self, cond: &P<Expr>) -> PResult<'a, ()> {
2890 if let ExprKind::Binary(Spanned { span: binop_span, node: binop }, _, right) = &cond.kind
2891 && let BinOpKind::And = binop
2892 && let ExprKind::If(cond, ..) = &right.kind
2893 {
2894 Err(self.dcx().create_err(errors::UnexpectedIfWithIf(
2895 binop_span.shrink_to_hi().to(cond.span.shrink_to_lo()),
2896 )))
2897 } else {
2898 Ok(())
2899 }
2900 }
2901
2902 fn parse_for_head(&mut self) -> PResult<'a, (P<Pat>, P<Expr>)> {
2903 let begin_paren = if self.token == token::OpenParen {
2904 let start_span = self.token.span;
2908 let left = self.prev_token.span.between(self.look_ahead(1, |t| t.span));
2909 Some((start_span, left))
2910 } else {
2911 None
2912 };
2913 let pat = match (
2915 self.parse_pat_allow_top_guard(
2916 None,
2917 RecoverComma::Yes,
2918 RecoverColon::Yes,
2919 CommaRecoveryMode::LikelyTuple,
2920 ),
2921 begin_paren,
2922 ) {
2923 (Ok(pat), _) => pat, (Err(err), Some((start_span, left))) if self.eat_keyword(exp!(In)) => {
2925 let attrs = self.parse_outer_attributes()?;
2928 let (expr, _) = match self.parse_expr_res(Restrictions::NO_STRUCT_LITERAL, attrs) {
2929 Ok(expr) => expr,
2930 Err(expr_err) => {
2931 expr_err.cancel();
2934 return Err(err);
2935 }
2936 };
2937 return if self.token == token::CloseParen {
2938 let span = vec![start_span, self.token.span];
2941 let right = self.prev_token.span.between(self.look_ahead(1, |t| t.span));
2942 self.bump(); err.cancel();
2944 self.dcx().emit_err(errors::ParenthesesInForHead {
2945 span,
2946 sugg: errors::ParenthesesInForHeadSugg { left, right },
2950 });
2951 Ok((self.mk_pat(start_span.to(right), ast::PatKind::Wild), expr))
2952 } else {
2953 Err(err) };
2955 }
2956 (Err(err), _) => return Err(err), };
2958 if !self.eat_keyword(exp!(In)) {
2959 self.error_missing_in_for_loop();
2960 }
2961 self.check_for_for_in_in_typo(self.prev_token.span);
2962 let attrs = self.parse_outer_attributes()?;
2963 let (expr, _) = self.parse_expr_res(Restrictions::NO_STRUCT_LITERAL, attrs)?;
2964 Ok((pat, expr))
2965 }
2966
2967 fn parse_expr_for(&mut self, opt_label: Option<Label>, lo: Span) -> PResult<'a, P<Expr>> {
2969 let is_await =
2970 self.token_uninterpolated_span().at_least_rust_2018() && self.eat_keyword(exp!(Await));
2971
2972 if is_await {
2973 self.psess.gated_spans.gate(sym::async_for_loop, self.prev_token.span);
2974 }
2975
2976 let kind = if is_await { ForLoopKind::ForAwait } else { ForLoopKind::For };
2977
2978 let (pat, expr) = self.parse_for_head()?;
2979 if matches!(expr.kind, ExprKind::Block(..))
2981 && self.token.kind != token::OpenBrace
2982 && self.may_recover()
2983 {
2984 let guar = self
2985 .dcx()
2986 .emit_err(errors::MissingExpressionInForLoop { span: expr.span.shrink_to_lo() });
2987 let err_expr = self.mk_expr(expr.span, ExprKind::Err(guar));
2988 let block = self.mk_block(thin_vec![], BlockCheckMode::Default, self.prev_token.span);
2989 return Ok(self.mk_expr(
2990 lo.to(self.prev_token.span),
2991 ExprKind::ForLoop { pat, iter: err_expr, body: block, label: opt_label, kind },
2992 ));
2993 }
2994
2995 let (attrs, loop_block) = self.parse_inner_attrs_and_block(
2996 opt_label.is_none().then_some(lo),
2999 )?;
3000
3001 let kind = ExprKind::ForLoop { pat, iter: expr, body: loop_block, label: opt_label, kind };
3002
3003 self.recover_loop_else("for", lo)?;
3004
3005 Ok(self.mk_expr_with_attrs(lo.to(self.prev_token.span), kind, attrs))
3006 }
3007
3008 fn recover_loop_else(&mut self, loop_kind: &'static str, loop_kw: Span) -> PResult<'a, ()> {
3010 if self.token.is_keyword(kw::Else) && self.may_recover() {
3011 let else_span = self.token.span;
3012 self.bump();
3013 let else_clause = self.parse_expr_else()?;
3014 self.dcx().emit_err(errors::LoopElseNotSupported {
3015 span: else_span.to(else_clause.span),
3016 loop_kind,
3017 loop_kw,
3018 });
3019 }
3020 Ok(())
3021 }
3022
3023 fn error_missing_in_for_loop(&mut self) {
3024 let (span, sub): (_, fn(_) -> _) = if self.token.is_ident_named(sym::of) {
3025 let span = self.token.span;
3027 self.bump();
3028 (span, errors::MissingInInForLoopSub::InNotOf)
3029 } else {
3030 (self.prev_token.span.between(self.token.span), errors::MissingInInForLoopSub::AddIn)
3031 };
3032
3033 self.dcx().emit_err(errors::MissingInInForLoop { span, sub: sub(span) });
3034 }
3035
3036 fn parse_expr_while(&mut self, opt_label: Option<Label>, lo: Span) -> PResult<'a, P<Expr>> {
3038 let policy = LetChainsPolicy::EditionDependent { current_edition: lo.edition() };
3039 let cond = self.parse_expr_cond(policy).map_err(|mut err| {
3040 err.span_label(lo, "while parsing the condition of this `while` expression");
3041 err
3042 })?;
3043 let (attrs, body) = self
3044 .parse_inner_attrs_and_block(
3045 opt_label.is_none().then_some(lo),
3048 )
3049 .map_err(|mut err| {
3050 err.span_label(lo, "while parsing the body of this `while` expression");
3051 err.span_label(cond.span, "this `while` condition successfully parsed");
3052 err
3053 })?;
3054
3055 self.recover_loop_else("while", lo)?;
3056
3057 Ok(self.mk_expr_with_attrs(
3058 lo.to(self.prev_token.span),
3059 ExprKind::While(cond, body, opt_label),
3060 attrs,
3061 ))
3062 }
3063
3064 fn parse_expr_loop(&mut self, opt_label: Option<Label>, lo: Span) -> PResult<'a, P<Expr>> {
3066 let loop_span = self.prev_token.span;
3067 let (attrs, body) = self.parse_inner_attrs_and_block(
3068 opt_label.is_none().then_some(lo),
3071 )?;
3072 self.recover_loop_else("loop", lo)?;
3073 Ok(self.mk_expr_with_attrs(
3074 lo.to(self.prev_token.span),
3075 ExprKind::Loop(body, opt_label, loop_span),
3076 attrs,
3077 ))
3078 }
3079
3080 pub(crate) fn eat_label(&mut self) -> Option<Label> {
3081 if let Some((ident, is_raw)) = self.token.lifetime() {
3082 if matches!(is_raw, IdentIsRaw::No) && ident.without_first_quote().is_reserved() {
3084 self.dcx().emit_err(errors::InvalidLabel { span: ident.span, name: ident.name });
3085 }
3086
3087 self.bump();
3088 Some(Label { ident })
3089 } else {
3090 None
3091 }
3092 }
3093
3094 fn parse_expr_match(&mut self) -> PResult<'a, P<Expr>> {
3096 let match_span = self.prev_token.span;
3097 let attrs = self.parse_outer_attributes()?;
3098 let (scrutinee, _) = self.parse_expr_res(Restrictions::NO_STRUCT_LITERAL, attrs)?;
3099
3100 self.parse_match_block(match_span, match_span, scrutinee, MatchKind::Prefix)
3101 }
3102
3103 fn parse_match_block(
3106 &mut self,
3107 lo: Span,
3108 match_span: Span,
3109 scrutinee: P<Expr>,
3110 match_kind: MatchKind,
3111 ) -> PResult<'a, P<Expr>> {
3112 if let Err(mut e) = self.expect(exp!(OpenBrace)) {
3113 if self.token == token::Semi {
3114 e.span_suggestion_short(
3115 match_span,
3116 "try removing this `match`",
3117 "",
3118 Applicability::MaybeIncorrect, );
3120 }
3121 if self.maybe_recover_unexpected_block_label(None) {
3122 e.cancel();
3123 self.bump();
3124 } else {
3125 return Err(e);
3126 }
3127 }
3128 let attrs = self.parse_inner_attributes()?;
3129
3130 let mut arms = ThinVec::new();
3131 while self.token != token::CloseBrace {
3132 match self.parse_arm() {
3133 Ok(arm) => arms.push(arm),
3134 Err(e) => {
3135 let guar = e.emit();
3137 self.recover_stmt();
3138 let span = lo.to(self.token.span);
3139 if self.token == token::CloseBrace {
3140 self.bump();
3141 }
3142 arms.push(Arm {
3144 attrs: Default::default(),
3145 pat: self.mk_pat(span, ast::PatKind::Err(guar)),
3146 guard: None,
3147 body: Some(self.mk_expr_err(span, guar)),
3148 span,
3149 id: DUMMY_NODE_ID,
3150 is_placeholder: false,
3151 });
3152 return Ok(self.mk_expr_with_attrs(
3153 span,
3154 ExprKind::Match(scrutinee, arms, match_kind),
3155 attrs,
3156 ));
3157 }
3158 }
3159 }
3160 let hi = self.token.span;
3161 self.bump();
3162 Ok(self.mk_expr_with_attrs(lo.to(hi), ExprKind::Match(scrutinee, arms, match_kind), attrs))
3163 }
3164
3165 fn parse_arm_body_missing_braces(
3167 &mut self,
3168 first_expr: &P<Expr>,
3169 arrow_span: Span,
3170 ) -> Option<(Span, ErrorGuaranteed)> {
3171 if self.token != token::Semi {
3172 return None;
3173 }
3174 let start_snapshot = self.create_snapshot_for_diagnostic();
3175 let semi_sp = self.token.span;
3176 self.bump(); let mut stmts =
3178 vec![self.mk_stmt(first_expr.span, ast::StmtKind::Expr(first_expr.clone()))];
3179 let err = |this: &Parser<'_>, stmts: Vec<ast::Stmt>| {
3180 let span = stmts[0].span.to(stmts[stmts.len() - 1].span);
3181
3182 let guar = this.dcx().emit_err(errors::MatchArmBodyWithoutBraces {
3183 statements: span,
3184 arrow: arrow_span,
3185 num_statements: stmts.len(),
3186 sub: if stmts.len() > 1 {
3187 errors::MatchArmBodyWithoutBracesSugg::AddBraces {
3188 left: span.shrink_to_lo(),
3189 right: span.shrink_to_hi(),
3190 }
3191 } else {
3192 errors::MatchArmBodyWithoutBracesSugg::UseComma { semicolon: semi_sp }
3193 },
3194 });
3195 (span, guar)
3196 };
3197 loop {
3200 if self.token == token::CloseBrace {
3201 return Some(err(self, stmts));
3203 }
3204 if self.token == token::Comma {
3205 self.restore_snapshot(start_snapshot);
3206 return None;
3207 }
3208 let pre_pat_snapshot = self.create_snapshot_for_diagnostic();
3209 match self.parse_pat_no_top_alt(None, None) {
3210 Ok(_pat) => {
3211 if self.token == token::FatArrow {
3212 self.restore_snapshot(pre_pat_snapshot);
3214 return Some(err(self, stmts));
3215 }
3216 }
3217 Err(err) => {
3218 err.cancel();
3219 }
3220 }
3221
3222 self.restore_snapshot(pre_pat_snapshot);
3223 match self.parse_stmt_without_recovery(true, ForceCollect::No, false) {
3224 Ok(Some(stmt)) => {
3226 stmts.push(stmt);
3227 }
3228 Ok(None) => {
3229 self.restore_snapshot(start_snapshot);
3230 break;
3231 }
3232 Err(stmt_err) => {
3235 stmt_err.cancel();
3236 self.restore_snapshot(start_snapshot);
3237 break;
3238 }
3239 }
3240 }
3241 None
3242 }
3243
3244 pub(super) fn parse_arm(&mut self) -> PResult<'a, Arm> {
3245 let attrs = self.parse_outer_attributes()?;
3246 self.collect_tokens(None, attrs, ForceCollect::No, |this, attrs| {
3247 let lo = this.token.span;
3248 let (pat, guard) = this.parse_match_arm_pat_and_guard()?;
3249
3250 let span_before_body = this.prev_token.span;
3251 let arm_body;
3252 let is_fat_arrow = this.check(exp!(FatArrow));
3253 let is_almost_fat_arrow =
3254 TokenKind::FatArrow.similar_tokens().contains(&this.token.kind);
3255
3256 let armless = (!is_fat_arrow && !is_almost_fat_arrow && pat.could_be_never_pattern())
3259 || matches!(this.token.kind, token::Comma | token::CloseBrace);
3260
3261 let mut result = if armless {
3262 arm_body = None;
3264 let span = lo.to(this.prev_token.span);
3265 this.expect_one_of(&[exp!(Comma)], &[exp!(CloseBrace)]).map(|x| {
3266 if !pat.contains_never_pattern() {
3268 this.psess.gated_spans.gate(sym::never_patterns, span);
3269 }
3270 x
3271 })
3272 } else {
3273 if let Err(mut err) = this.expect(exp!(FatArrow)) {
3274 if is_almost_fat_arrow {
3276 err.span_suggestion(
3277 this.token.span,
3278 "use a fat arrow to start a match arm",
3279 "=>",
3280 Applicability::MachineApplicable,
3281 );
3282 if matches!(
3283 (&this.prev_token.kind, &this.token.kind),
3284 (token::DotDotEq, token::Gt)
3285 ) {
3286 err.delay_as_bug();
3289 } else {
3290 err.emit();
3291 }
3292 this.bump();
3293 } else {
3294 return Err(err);
3295 }
3296 }
3297 let arrow_span = this.prev_token.span;
3298 let arm_start_span = this.token.span;
3299
3300 let attrs = this.parse_outer_attributes()?;
3301 let (expr, _) =
3302 this.parse_expr_res(Restrictions::STMT_EXPR, attrs).map_err(|mut err| {
3303 err.span_label(arrow_span, "while parsing the `match` arm starting here");
3304 err
3305 })?;
3306
3307 let require_comma =
3308 !classify::expr_is_complete(&expr) && this.token != token::CloseBrace;
3309
3310 if !require_comma {
3311 arm_body = Some(expr);
3312 let _ = this.eat(exp!(Comma));
3314 Ok(Recovered::No)
3315 } else if let Some((span, guar)) =
3316 this.parse_arm_body_missing_braces(&expr, arrow_span)
3317 {
3318 let body = this.mk_expr_err(span, guar);
3319 arm_body = Some(body);
3320 Ok(Recovered::Yes(guar))
3321 } else {
3322 let expr_span = expr.span;
3323 arm_body = Some(expr);
3324 this.expect_one_of(&[exp!(Comma)], &[exp!(CloseBrace)]).map_err(|mut err| {
3325 if this.token == token::FatArrow {
3326 let sm = this.psess.source_map();
3327 if let Ok(expr_lines) = sm.span_to_lines(expr_span)
3328 && let Ok(arm_start_lines) = sm.span_to_lines(arm_start_span)
3329 && expr_lines.lines.len() == 2
3330 {
3331 if arm_start_lines.lines[0].end_col == expr_lines.lines[0].end_col {
3332 err.span_suggestion_short(
3344 arm_start_span.shrink_to_hi(),
3345 "missing a comma here to end this `match` arm",
3346 ",",
3347 Applicability::MachineApplicable,
3348 );
3349 } else if arm_start_lines.lines[0].end_col + rustc_span::CharPos(1)
3350 == expr_lines.lines[0].end_col
3351 {
3352 let comma_span = arm_start_span
3354 .shrink_to_hi()
3355 .with_hi(arm_start_span.hi() + rustc_span::BytePos(1));
3356 if let Ok(res) = sm.span_to_snippet(comma_span)
3357 && (res == "." || res == "/")
3358 {
3359 err.span_suggestion_short(
3360 comma_span,
3361 "you might have meant to write a `,` to end this `match` arm",
3362 ",",
3363 Applicability::MachineApplicable,
3364 );
3365 }
3366 }
3367 }
3368 } else {
3369 err.span_label(
3370 arrow_span,
3371 "while parsing the `match` arm starting here",
3372 );
3373 }
3374 err
3375 })
3376 }
3377 };
3378
3379 let hi_span = arm_body.as_ref().map_or(span_before_body, |body| body.span);
3380 let arm_span = lo.to(hi_span);
3381
3382 let recover_missing_comma = arm_body.is_some() || pat.could_be_never_pattern();
3396 if recover_missing_comma {
3397 result = result.or_else(|err| {
3398 let mut snapshot = this.create_snapshot_for_diagnostic();
3403 let pattern_follows = snapshot
3404 .parse_pat_no_top_guard(
3405 None,
3406 RecoverComma::Yes,
3407 RecoverColon::Yes,
3408 CommaRecoveryMode::EitherTupleOrPipe,
3409 )
3410 .map_err(|err| err.cancel())
3411 .is_ok();
3412 if pattern_follows && snapshot.check(exp!(FatArrow)) {
3413 err.cancel();
3414 let guar = this.dcx().emit_err(errors::MissingCommaAfterMatchArm {
3415 span: arm_span.shrink_to_hi(),
3416 });
3417 return Ok(Recovered::Yes(guar));
3418 }
3419 Err(err)
3420 });
3421 }
3422 result?;
3423
3424 Ok((
3425 ast::Arm {
3426 attrs,
3427 pat,
3428 guard,
3429 body: arm_body,
3430 span: arm_span,
3431 id: DUMMY_NODE_ID,
3432 is_placeholder: false,
3433 },
3434 Trailing::No,
3435 UsePreAttrPos::No,
3436 ))
3437 })
3438 }
3439
3440 fn parse_match_arm_guard(&mut self) -> PResult<'a, Option<P<Expr>>> {
3441 fn has_let_expr(expr: &Expr) -> bool {
3444 match &expr.kind {
3445 ExprKind::Binary(BinOp { node: BinOpKind::And, .. }, lhs, rhs) => {
3446 let lhs_rslt = has_let_expr(lhs);
3447 let rhs_rslt = has_let_expr(rhs);
3448 lhs_rslt || rhs_rslt
3449 }
3450 ExprKind::Let(..) => true,
3451 _ => false,
3452 }
3453 }
3454 if !self.eat_keyword(exp!(If)) {
3455 return Ok(None);
3457 }
3458
3459 let if_span = self.prev_token.span;
3460 let mut cond = self.parse_match_guard_condition()?;
3461
3462 CondChecker::new(self, LetChainsPolicy::AlwaysAllowed).visit_expr(&mut cond);
3463
3464 if has_let_expr(&cond) {
3465 let span = if_span.to(cond.span);
3466 self.psess.gated_spans.gate(sym::if_let_guard, span);
3467 }
3468 Ok(Some(cond))
3469 }
3470
3471 fn parse_match_arm_pat_and_guard(&mut self) -> PResult<'a, (P<Pat>, Option<P<Expr>>)> {
3472 if self.token == token::OpenParen {
3473 let left = self.token.span;
3474 let pat = self.parse_pat_no_top_guard(
3475 None,
3476 RecoverComma::Yes,
3477 RecoverColon::Yes,
3478 CommaRecoveryMode::EitherTupleOrPipe,
3479 )?;
3480 if let ast::PatKind::Paren(subpat) = &pat.kind
3481 && let ast::PatKind::Guard(..) = &subpat.kind
3482 {
3483 let span = pat.span;
3486 let ast::PatKind::Paren(subpat) = pat.kind else { unreachable!() };
3487 let ast::PatKind::Guard(_, mut cond) = subpat.kind else { unreachable!() };
3488 self.psess.gated_spans.ungate_last(sym::guard_patterns, cond.span);
3489 CondChecker::new(self, LetChainsPolicy::AlwaysAllowed).visit_expr(&mut cond);
3490 let right = self.prev_token.span;
3491 self.dcx().emit_err(errors::ParenthesesInMatchPat {
3492 span: vec![left, right],
3493 sugg: errors::ParenthesesInMatchPatSugg { left, right },
3494 });
3495 Ok((self.mk_pat(span, ast::PatKind::Wild), Some(cond)))
3496 } else {
3497 Ok((pat, self.parse_match_arm_guard()?))
3498 }
3499 } else {
3500 let pat = self.parse_pat_no_top_guard(
3502 None,
3503 RecoverComma::Yes,
3504 RecoverColon::Yes,
3505 CommaRecoveryMode::EitherTupleOrPipe,
3506 )?;
3507 Ok((pat, self.parse_match_arm_guard()?))
3508 }
3509 }
3510
3511 fn parse_match_guard_condition(&mut self) -> PResult<'a, P<Expr>> {
3512 let attrs = self.parse_outer_attributes()?;
3513 match self.parse_expr_res(Restrictions::ALLOW_LET | Restrictions::IN_IF_GUARD, attrs) {
3514 Ok((expr, _)) => Ok(expr),
3515 Err(mut err) => {
3516 if self.prev_token == token::OpenBrace {
3517 let sugg_sp = self.prev_token.span.shrink_to_lo();
3518 self.recover_stmt_(SemiColonMode::Ignore, BlockMode::Ignore);
3521 let msg = "you might have meant to start a match arm after the match guard";
3522 if self.eat(exp!(CloseBrace)) {
3523 let applicability = if self.token != token::FatArrow {
3524 Applicability::MachineApplicable
3529 } else {
3530 Applicability::MaybeIncorrect
3531 };
3532 err.span_suggestion_verbose(sugg_sp, msg, "=> ", applicability);
3533 }
3534 }
3535 Err(err)
3536 }
3537 }
3538 }
3539
3540 pub(crate) fn is_builtin(&self) -> bool {
3541 self.token.is_keyword(kw::Builtin) && self.look_ahead(1, |t| *t == token::Pound)
3542 }
3543
3544 fn parse_try_block(&mut self, span_lo: Span) -> PResult<'a, P<Expr>> {
3546 let (attrs, body) = self.parse_inner_attrs_and_block(None)?;
3547 if self.eat_keyword(exp!(Catch)) {
3548 Err(self.dcx().create_err(errors::CatchAfterTry { span: self.prev_token.span }))
3549 } else {
3550 let span = span_lo.to(body.span);
3551 self.psess.gated_spans.gate(sym::try_blocks, span);
3552 Ok(self.mk_expr_with_attrs(span, ExprKind::TryBlock(body), attrs))
3553 }
3554 }
3555
3556 fn is_do_catch_block(&self) -> bool {
3557 self.token.is_keyword(kw::Do)
3558 && self.is_keyword_ahead(1, &[kw::Catch])
3559 && self.look_ahead(2, |t| *t == token::OpenBrace || t.is_metavar_block())
3560 && !self.restrictions.contains(Restrictions::NO_STRUCT_LITERAL)
3561 }
3562
3563 fn is_do_yeet(&self) -> bool {
3564 self.token.is_keyword(kw::Do) && self.is_keyword_ahead(1, &[kw::Yeet])
3565 }
3566
3567 fn is_try_block(&self) -> bool {
3568 self.token.is_keyword(kw::Try)
3569 && self.look_ahead(1, |t| *t == token::OpenBrace || t.is_metavar_block())
3570 && self.token_uninterpolated_span().at_least_rust_2018()
3571 }
3572
3573 fn parse_gen_block(&mut self) -> PResult<'a, P<Expr>> {
3575 let lo = self.token.span;
3576 let kind = if self.eat_keyword(exp!(Async)) {
3577 if self.eat_keyword(exp!(Gen)) { GenBlockKind::AsyncGen } else { GenBlockKind::Async }
3578 } else {
3579 assert!(self.eat_keyword(exp!(Gen)));
3580 GenBlockKind::Gen
3581 };
3582 match kind {
3583 GenBlockKind::Async => {
3584 }
3586 GenBlockKind::Gen | GenBlockKind::AsyncGen => {
3587 self.psess.gated_spans.gate(sym::gen_blocks, lo.to(self.prev_token.span));
3588 }
3589 }
3590 let capture_clause = self.parse_capture_clause()?;
3591 let decl_span = lo.to(self.prev_token.span);
3592 let (attrs, body) = self.parse_inner_attrs_and_block(None)?;
3593 let kind = ExprKind::Gen(capture_clause, body, kind, decl_span);
3594 Ok(self.mk_expr_with_attrs(lo.to(self.prev_token.span), kind, attrs))
3595 }
3596
3597 fn is_gen_block(&self, kw: Symbol, lookahead: usize) -> bool {
3598 self.is_keyword_ahead(lookahead, &[kw])
3599 && ((
3600 self.is_keyword_ahead(lookahead + 1, &[kw::Move, kw::Use])
3602 && self.look_ahead(lookahead + 2, |t| {
3603 *t == token::OpenBrace || t.is_metavar_block()
3604 })
3605 ) || (
3606 self.look_ahead(lookahead + 1, |t| *t == token::OpenBrace || t.is_metavar_block())
3608 ))
3609 }
3610
3611 pub(super) fn is_async_gen_block(&self) -> bool {
3612 self.token.is_keyword(kw::Async) && self.is_gen_block(kw::Gen, 1)
3613 }
3614
3615 fn is_certainly_not_a_block(&self) -> bool {
3616 self.look_ahead(1, |t| t.is_ident())
3618 && self.look_ahead(2, |t| t == &token::Comma || t == &token::Colon)
3619 }
3620
3621 fn maybe_parse_struct_expr(
3622 &mut self,
3623 qself: &Option<P<ast::QSelf>>,
3624 path: &ast::Path,
3625 ) -> Option<PResult<'a, P<Expr>>> {
3626 let struct_allowed = !self.restrictions.contains(Restrictions::NO_STRUCT_LITERAL);
3627 if struct_allowed || self.is_certainly_not_a_block() {
3628 if let Err(err) = self.expect(exp!(OpenBrace)) {
3629 return Some(Err(err));
3630 }
3631 let expr = self.parse_expr_struct(qself.clone(), path.clone(), true);
3632 if let (Ok(expr), false) = (&expr, struct_allowed) {
3633 self.dcx().emit_err(errors::StructLiteralNotAllowedHere {
3635 span: expr.span,
3636 sub: errors::StructLiteralNotAllowedHereSugg {
3637 left: path.span.shrink_to_lo(),
3638 right: expr.span.shrink_to_hi(),
3639 },
3640 });
3641 }
3642 return Some(expr);
3643 }
3644 None
3645 }
3646
3647 pub(super) fn parse_struct_fields(
3648 &mut self,
3649 pth: ast::Path,
3650 recover: bool,
3651 close: ExpTokenPair<'_>,
3652 ) -> PResult<
3653 'a,
3654 (
3655 ThinVec<ExprField>,
3656 ast::StructRest,
3657 Option<ErrorGuaranteed>, ),
3659 > {
3660 let mut fields = ThinVec::new();
3661 let mut base = ast::StructRest::None;
3662 let mut recovered_async = None;
3663 let in_if_guard = self.restrictions.contains(Restrictions::IN_IF_GUARD);
3664
3665 let async_block_err = |e: &mut Diag<'_>, span: Span| {
3666 errors::AsyncBlockIn2015 { span }.add_to_diag(e);
3667 errors::HelpUseLatestEdition::new().add_to_diag(e);
3668 };
3669
3670 while self.token != *close.tok {
3671 if self.eat(exp!(DotDot)) || self.recover_struct_field_dots(close.tok) {
3672 let exp_span = self.prev_token.span;
3673 if self.check(close) {
3675 base = ast::StructRest::Rest(self.prev_token.span);
3676 break;
3677 }
3678 match self.parse_expr() {
3679 Ok(e) => base = ast::StructRest::Base(e),
3680 Err(e) if recover => {
3681 e.emit();
3682 self.recover_stmt();
3683 }
3684 Err(e) => return Err(e),
3685 }
3686 self.recover_struct_comma_after_dotdot(exp_span);
3687 break;
3688 }
3689
3690 let peek = self
3692 .token
3693 .ident()
3694 .filter(|(ident, is_raw)| {
3695 (!ident.is_reserved() || matches!(is_raw, IdentIsRaw::Yes))
3696 && self.look_ahead(1, |tok| *tok == token::Colon)
3697 })
3698 .map(|(ident, _)| ident);
3699
3700 let field_ident = |this: &Self, guar: ErrorGuaranteed| {
3702 peek.map(|ident| {
3703 let span = ident.span;
3704 ExprField {
3705 ident,
3706 span,
3707 expr: this.mk_expr_err(span, guar),
3708 is_shorthand: false,
3709 attrs: AttrVec::new(),
3710 id: DUMMY_NODE_ID,
3711 is_placeholder: false,
3712 }
3713 })
3714 };
3715
3716 let parsed_field = match self.parse_expr_field() {
3717 Ok(f) => Ok(f),
3718 Err(mut e) => {
3719 if pth == kw::Async {
3720 async_block_err(&mut e, pth.span);
3721 } else {
3722 e.span_label(pth.span, "while parsing this struct");
3723 }
3724
3725 if let Some((ident, _)) = self.token.ident()
3726 && !self.token.is_reserved_ident()
3727 && self.look_ahead(1, |t| {
3728 AssocOp::from_token(t).is_some()
3729 || matches!(
3730 t.kind,
3731 token::OpenParen | token::OpenBracket | token::OpenBrace
3732 )
3733 || *t == token::Dot
3734 })
3735 {
3736 e.span_suggestion_verbose(
3739 self.token.span.shrink_to_lo(),
3740 "try naming a field",
3741 &format!("{ident}: ",),
3742 Applicability::MaybeIncorrect,
3743 );
3744 }
3745 if in_if_guard && close.token_type == TokenType::CloseBrace {
3746 return Err(e);
3747 }
3748
3749 if !recover {
3750 return Err(e);
3751 }
3752
3753 let guar = e.emit();
3754 if pth == kw::Async {
3755 recovered_async = Some(guar);
3756 }
3757
3758 if self.token != token::Comma {
3762 self.recover_stmt_(SemiColonMode::Comma, BlockMode::Ignore);
3763 if self.token != token::Comma {
3764 break;
3765 }
3766 }
3767
3768 Err(guar)
3769 }
3770 };
3771
3772 let is_shorthand = parsed_field.as_ref().is_ok_and(|f| f.is_shorthand);
3773 self.check_or_expected(!is_shorthand, TokenType::Colon);
3776
3777 match self.expect_one_of(&[exp!(Comma)], &[close]) {
3778 Ok(_) => {
3779 if let Ok(f) = parsed_field.or_else(|guar| field_ident(self, guar).ok_or(guar))
3780 {
3781 fields.push(f);
3783 }
3784 }
3785 Err(mut e) => {
3786 if pth == kw::Async {
3787 async_block_err(&mut e, pth.span);
3788 } else {
3789 e.span_label(pth.span, "while parsing this struct");
3790 if peek.is_some() {
3791 e.span_suggestion(
3792 self.prev_token.span.shrink_to_hi(),
3793 "try adding a comma",
3794 ",",
3795 Applicability::MachineApplicable,
3796 );
3797 }
3798 }
3799 if !recover {
3800 return Err(e);
3801 }
3802 let guar = e.emit();
3803 if pth == kw::Async {
3804 recovered_async = Some(guar);
3805 } else if let Some(f) = field_ident(self, guar) {
3806 fields.push(f);
3807 }
3808 self.recover_stmt_(SemiColonMode::Comma, BlockMode::Ignore);
3809 let _ = self.eat(exp!(Comma));
3810 }
3811 }
3812 }
3813 Ok((fields, base, recovered_async))
3814 }
3815
3816 pub(super) fn parse_expr_struct(
3818 &mut self,
3819 qself: Option<P<ast::QSelf>>,
3820 pth: ast::Path,
3821 recover: bool,
3822 ) -> PResult<'a, P<Expr>> {
3823 let lo = pth.span;
3824 let (fields, base, recovered_async) =
3825 self.parse_struct_fields(pth.clone(), recover, exp!(CloseBrace))?;
3826 let span = lo.to(self.token.span);
3827 self.expect(exp!(CloseBrace))?;
3828 let expr = if let Some(guar) = recovered_async {
3829 ExprKind::Err(guar)
3830 } else {
3831 ExprKind::Struct(P(ast::StructExpr { qself, path: pth, fields, rest: base }))
3832 };
3833 Ok(self.mk_expr(span, expr))
3834 }
3835
3836 fn recover_struct_comma_after_dotdot(&mut self, span: Span) {
3837 if self.token != token::Comma {
3838 return;
3839 }
3840 self.dcx().emit_err(errors::CommaAfterBaseStruct {
3841 span: span.to(self.prev_token.span),
3842 comma: self.token.span,
3843 });
3844 self.recover_stmt();
3845 }
3846
3847 fn recover_struct_field_dots(&mut self, close: &TokenKind) -> bool {
3848 if !self.look_ahead(1, |t| t == close) && self.eat(exp!(DotDotDot)) {
3849 let span = self.prev_token.span;
3851 self.dcx().emit_err(errors::MissingDotDot { token_span: span, sugg_span: span });
3852 return true;
3853 }
3854 false
3855 }
3856
3857 fn recover_ident_into_label(&mut self, ident: Ident) -> Label {
3859 let label = format!("'{}", ident.name);
3862 let ident = Ident::new(Symbol::intern(&label), ident.span);
3863
3864 self.dcx().emit_err(errors::ExpectedLabelFoundIdent {
3865 span: ident.span,
3866 start: ident.span.shrink_to_lo(),
3867 });
3868
3869 Label { ident }
3870 }
3871
3872 fn parse_expr_field(&mut self) -> PResult<'a, ExprField> {
3874 let attrs = self.parse_outer_attributes()?;
3875 self.recover_vcs_conflict_marker();
3876 self.collect_tokens(None, attrs, ForceCollect::No, |this, attrs| {
3877 let lo = this.token.span;
3878
3879 let is_shorthand = !this.look_ahead(1, |t| t == &token::Colon || t == &token::Eq);
3881 let is_wrong = this.token.is_non_reserved_ident()
3883 && !this.look_ahead(1, |t| {
3884 t == &token::Colon
3885 || t == &token::Eq
3886 || t == &token::Comma
3887 || t == &token::CloseBrace
3888 || t == &token::CloseParen
3889 });
3890 if is_wrong {
3891 return Err(this.dcx().create_err(errors::ExpectedStructField {
3892 span: this.look_ahead(1, |t| t.span),
3893 ident_span: this.token.span,
3894 token: this.look_ahead(1, |t| *t),
3895 }));
3896 }
3897 let (ident, expr) = if is_shorthand {
3898 let ident = this.parse_ident_common(false)?;
3900 let path = ast::Path::from_ident(ident);
3901 (ident, this.mk_expr(ident.span, ExprKind::Path(None, path)))
3902 } else {
3903 let ident = this.parse_field_name()?;
3904 this.error_on_eq_field_init(ident);
3905 this.bump(); (ident, this.parse_expr()?)
3907 };
3908
3909 Ok((
3910 ast::ExprField {
3911 ident,
3912 span: lo.to(expr.span),
3913 expr,
3914 is_shorthand,
3915 attrs,
3916 id: DUMMY_NODE_ID,
3917 is_placeholder: false,
3918 },
3919 Trailing::from(this.token == token::Comma),
3920 UsePreAttrPos::No,
3921 ))
3922 })
3923 }
3924
3925 fn error_on_eq_field_init(&self, field_name: Ident) {
3928 if self.token != token::Eq {
3929 return;
3930 }
3931
3932 self.dcx().emit_err(errors::EqFieldInit {
3933 span: self.token.span,
3934 eq: field_name.span.shrink_to_hi().to(self.token.span),
3935 });
3936 }
3937
3938 fn err_dotdotdot_syntax(&self, span: Span) {
3939 self.dcx().emit_err(errors::DotDotDot { span });
3940 }
3941
3942 fn err_larrow_operator(&self, span: Span) {
3943 self.dcx().emit_err(errors::LeftArrowOperator { span });
3944 }
3945
3946 fn mk_assign_op(&self, assign_op: AssignOp, lhs: P<Expr>, rhs: P<Expr>) -> ExprKind {
3947 ExprKind::AssignOp(assign_op, lhs, rhs)
3948 }
3949
3950 fn mk_range(
3951 &mut self,
3952 start: Option<P<Expr>>,
3953 end: Option<P<Expr>>,
3954 limits: RangeLimits,
3955 ) -> ExprKind {
3956 if end.is_none() && limits == RangeLimits::Closed {
3957 let guar = self.inclusive_range_with_incorrect_end();
3958 ExprKind::Err(guar)
3959 } else {
3960 ExprKind::Range(start, end, limits)
3961 }
3962 }
3963
3964 fn mk_unary(&self, unop: UnOp, expr: P<Expr>) -> ExprKind {
3965 ExprKind::Unary(unop, expr)
3966 }
3967
3968 fn mk_binary(&self, binop: BinOp, lhs: P<Expr>, rhs: P<Expr>) -> ExprKind {
3969 ExprKind::Binary(binop, lhs, rhs)
3970 }
3971
3972 fn mk_index(&self, expr: P<Expr>, idx: P<Expr>, brackets_span: Span) -> ExprKind {
3973 ExprKind::Index(expr, idx, brackets_span)
3974 }
3975
3976 fn mk_call(&self, f: P<Expr>, args: ThinVec<P<Expr>>) -> ExprKind {
3977 ExprKind::Call(f, args)
3978 }
3979
3980 fn mk_await_expr(&mut self, self_arg: P<Expr>, lo: Span) -> P<Expr> {
3981 let span = lo.to(self.prev_token.span);
3982 let await_expr = self.mk_expr(span, ExprKind::Await(self_arg, self.prev_token.span));
3983 self.recover_from_await_method_call();
3984 await_expr
3985 }
3986
3987 fn mk_use_expr(&mut self, self_arg: P<Expr>, lo: Span) -> P<Expr> {
3988 let span = lo.to(self.prev_token.span);
3989 let use_expr = self.mk_expr(span, ExprKind::Use(self_arg, self.prev_token.span));
3990 self.recover_from_use();
3991 use_expr
3992 }
3993
3994 pub(crate) fn mk_expr_with_attrs(&self, span: Span, kind: ExprKind, attrs: AttrVec) -> P<Expr> {
3995 P(Expr { kind, span, attrs, id: DUMMY_NODE_ID, tokens: None })
3996 }
3997
3998 pub(crate) fn mk_expr(&self, span: Span, kind: ExprKind) -> P<Expr> {
3999 self.mk_expr_with_attrs(span, kind, AttrVec::new())
4000 }
4001
4002 pub(super) fn mk_expr_err(&self, span: Span, guar: ErrorGuaranteed) -> P<Expr> {
4003 self.mk_expr(span, ExprKind::Err(guar))
4004 }
4005
4006 fn mk_expr_sp(&self, lhs: &P<Expr>, lhs_span: Span, rhs_span: Span) -> Span {
4009 lhs.attrs
4010 .iter()
4011 .find(|a| a.style == AttrStyle::Outer)
4012 .map_or(lhs_span, |a| a.span)
4013 .to(rhs_span)
4014 }
4015
4016 fn collect_tokens_for_expr(
4017 &mut self,
4018 attrs: AttrWrapper,
4019 f: impl FnOnce(&mut Self, ast::AttrVec) -> PResult<'a, P<Expr>>,
4020 ) -> PResult<'a, P<Expr>> {
4021 self.collect_tokens(None, attrs, ForceCollect::No, |this, attrs| {
4022 let res = f(this, attrs)?;
4023 let trailing = Trailing::from(
4024 this.restrictions.contains(Restrictions::STMT_EXPR)
4025 && this.token == token::Semi
4026 || this.token == token::Comma,
4030 );
4031 Ok((res, trailing, UsePreAttrPos::No))
4032 })
4033 }
4034}
4035
4036pub(crate) fn could_be_unclosed_char_literal(ident: Ident) -> bool {
4039 ident.name.as_str().starts_with('\'')
4040 && unescape_char(ident.without_first_quote().name.as_str()).is_ok()
4041}
4042
4043#[derive(Clone, Copy, Subdiagnostic)]
4045pub(crate) enum ForbiddenLetReason {
4046 OtherForbidden,
4048 #[note(parse_not_supported_or)]
4050 NotSupportedOr(#[primary_span] Span),
4051 #[note(parse_not_supported_parentheses)]
4056 NotSupportedParentheses(#[primary_span] Span),
4057}
4058
4059pub enum LetChainsPolicy {
4062 AlwaysAllowed,
4063 EditionDependent { current_edition: Edition },
4064}
4065
4066struct CondChecker<'a> {
4076 parser: &'a Parser<'a>,
4077 let_chains_policy: LetChainsPolicy,
4078 depth: u32,
4079 forbid_let_reason: Option<ForbiddenLetReason>,
4080 missing_let: Option<errors::MaybeMissingLet>,
4081 comparison: Option<errors::MaybeComparison>,
4082}
4083
4084impl<'a> CondChecker<'a> {
4085 fn new(parser: &'a Parser<'a>, let_chains_policy: LetChainsPolicy) -> Self {
4086 CondChecker {
4087 parser,
4088 forbid_let_reason: None,
4089 missing_let: None,
4090 comparison: None,
4091 let_chains_policy,
4092 depth: 0,
4093 }
4094 }
4095}
4096
4097impl MutVisitor for CondChecker<'_> {
4098 fn visit_expr(&mut self, e: &mut Expr) {
4099 self.depth += 1;
4100 use ForbiddenLetReason::*;
4101
4102 let span = e.span;
4103 match e.kind {
4104 ExprKind::Let(_, _, _, ref mut recovered @ Recovered::No) => {
4105 if let Some(reason) = self.forbid_let_reason {
4106 let error = match reason {
4107 NotSupportedOr(or_span) => {
4108 self.parser.dcx().emit_err(errors::OrInLetChain { span: or_span })
4109 }
4110 _ => self.parser.dcx().emit_err(errors::ExpectedExpressionFoundLet {
4111 span,
4112 reason,
4113 missing_let: self.missing_let,
4114 comparison: self.comparison,
4115 }),
4116 };
4117 *recovered = Recovered::Yes(error);
4118 } else if self.depth > 1 {
4119 match self.let_chains_policy {
4121 LetChainsPolicy::AlwaysAllowed => (),
4122 LetChainsPolicy::EditionDependent { current_edition } => {
4123 if !current_edition.at_least_rust_2024() || !span.at_least_rust_2024() {
4124 self.parser.dcx().emit_err(errors::LetChainPre2024 { span });
4125 }
4126 }
4127 }
4128 }
4129 }
4130 ExprKind::Binary(Spanned { node: BinOpKind::And, .. }, _, _) => {
4131 mut_visit::walk_expr(self, e);
4132 }
4133 ExprKind::Binary(Spanned { node: BinOpKind::Or, span: or_span }, _, _)
4134 if let None | Some(NotSupportedOr(_)) = self.forbid_let_reason =>
4135 {
4136 let forbid_let_reason = self.forbid_let_reason;
4137 self.forbid_let_reason = Some(NotSupportedOr(or_span));
4138 mut_visit::walk_expr(self, e);
4139 self.forbid_let_reason = forbid_let_reason;
4140 }
4141 ExprKind::Paren(ref inner)
4142 if let None | Some(NotSupportedParentheses(_)) = self.forbid_let_reason =>
4143 {
4144 let forbid_let_reason = self.forbid_let_reason;
4145 self.forbid_let_reason = Some(NotSupportedParentheses(inner.span));
4146 mut_visit::walk_expr(self, e);
4147 self.forbid_let_reason = forbid_let_reason;
4148 }
4149 ExprKind::Assign(ref lhs, _, span) => {
4150 let forbid_let_reason = self.forbid_let_reason;
4151 self.forbid_let_reason = Some(OtherForbidden);
4152 let missing_let = self.missing_let;
4153 if let ExprKind::Binary(_, _, rhs) = &lhs.kind
4154 && let ExprKind::Path(_, _)
4155 | ExprKind::Struct(_)
4156 | ExprKind::Call(_, _)
4157 | ExprKind::Array(_) = rhs.kind
4158 {
4159 self.missing_let =
4160 Some(errors::MaybeMissingLet { span: rhs.span.shrink_to_lo() });
4161 }
4162 let comparison = self.comparison;
4163 self.comparison = Some(errors::MaybeComparison { span: span.shrink_to_hi() });
4164 mut_visit::walk_expr(self, e);
4165 self.forbid_let_reason = forbid_let_reason;
4166 self.missing_let = missing_let;
4167 self.comparison = comparison;
4168 }
4169 ExprKind::Unary(_, _)
4170 | ExprKind::Await(_, _)
4171 | ExprKind::Use(_, _)
4172 | ExprKind::AssignOp(_, _, _)
4173 | ExprKind::Range(_, _, _)
4174 | ExprKind::Try(_)
4175 | ExprKind::AddrOf(_, _, _)
4176 | ExprKind::Binary(_, _, _)
4177 | ExprKind::Field(_, _)
4178 | ExprKind::Index(_, _, _)
4179 | ExprKind::Call(_, _)
4180 | ExprKind::MethodCall(_)
4181 | ExprKind::Tup(_)
4182 | ExprKind::Paren(_) => {
4183 let forbid_let_reason = self.forbid_let_reason;
4184 self.forbid_let_reason = Some(OtherForbidden);
4185 mut_visit::walk_expr(self, e);
4186 self.forbid_let_reason = forbid_let_reason;
4187 }
4188 ExprKind::Cast(ref mut op, _)
4189 | ExprKind::Type(ref mut op, _)
4190 | ExprKind::UnsafeBinderCast(_, ref mut op, _) => {
4191 let forbid_let_reason = self.forbid_let_reason;
4192 self.forbid_let_reason = Some(OtherForbidden);
4193 self.visit_expr(op);
4194 self.forbid_let_reason = forbid_let_reason;
4195 }
4196 ExprKind::Let(_, _, _, Recovered::Yes(_))
4197 | ExprKind::Array(_)
4198 | ExprKind::ConstBlock(_)
4199 | ExprKind::Lit(_)
4200 | ExprKind::If(_, _, _)
4201 | ExprKind::While(_, _, _)
4202 | ExprKind::ForLoop { .. }
4203 | ExprKind::Loop(_, _, _)
4204 | ExprKind::Match(_, _, _)
4205 | ExprKind::Closure(_)
4206 | ExprKind::Block(_, _)
4207 | ExprKind::Gen(_, _, _, _)
4208 | ExprKind::TryBlock(_)
4209 | ExprKind::Underscore
4210 | ExprKind::Path(_, _)
4211 | ExprKind::Break(_, _)
4212 | ExprKind::Continue(_)
4213 | ExprKind::Ret(_)
4214 | ExprKind::InlineAsm(_)
4215 | ExprKind::OffsetOf(_, _)
4216 | ExprKind::MacCall(_)
4217 | ExprKind::Struct(_)
4218 | ExprKind::Repeat(_, _)
4219 | ExprKind::Yield(_)
4220 | ExprKind::Yeet(_)
4221 | ExprKind::Become(_)
4222 | ExprKind::IncludedBytes(_)
4223 | ExprKind::FormatArgs(_)
4224 | ExprKind::Err(_)
4225 | ExprKind::Dummy => {
4226 }
4228 }
4229 self.depth -= 1;
4230 }
4231}