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mod.rs
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//! Code related to match expressions. These are sufficiently complex to
//! warrant their own module and submodules. :) This main module includes the
//! high-level algorithm, the submodules contain the details.
//!
//! This also includes code for pattern bindings in `let` statements and
//! function parameters.
use crate::build::expr::as_place::PlaceBuilder;
use crate::build::scope::DropKind;
use crate::build::ForGuard::{self, OutsideGuard, RefWithinGuard};
use crate::build::{BlockAnd, BlockAndExtension, Builder};
use crate::build::{GuardFrame, GuardFrameLocal, LocalsForNode};
use rustc_data_structures::{
fx::{FxHashSet, FxIndexMap, FxIndexSet},
stack::ensure_sufficient_stack,
};
use rustc_index::bit_set::BitSet;
use rustc_middle::middle::region;
use rustc_middle::mir::*;
use rustc_middle::thir::{self, *};
use rustc_middle::ty::{self, CanonicalUserTypeAnnotation, Ty};
use rustc_span::symbol::Symbol;
use rustc_span::{BytePos, Pos, Span};
use rustc_target::abi::VariantIdx;
use smallvec::{smallvec, SmallVec};
// helper functions, broken out by category:
mod simplify;
mod test;
mod util;
use std::borrow::Borrow;
use std::mem;
impl<'a, 'tcx> Builder<'a, 'tcx> {
pub(crate) fn then_else_break(
&mut self,
mut block: BasicBlock,
expr: &Expr<'tcx>,
temp_scope_override: Option<region::Scope>,
break_scope: region::Scope,
variable_source_info: SourceInfo,
) -> BlockAnd<()> {
let this = self;
let expr_span = expr.span;
match expr.kind {
ExprKind::LogicalOp { op: LogicalOp::And, lhs, rhs } => {
let lhs_then_block = unpack!(this.then_else_break(
block,
&this.thir[lhs],
temp_scope_override,
break_scope,
variable_source_info,
));
let rhs_then_block = unpack!(this.then_else_break(
lhs_then_block,
&this.thir[rhs],
temp_scope_override,
break_scope,
variable_source_info,
));
rhs_then_block.unit()
}
ExprKind::LogicalOp { op: LogicalOp::Or, lhs, rhs } => {
let local_scope = this.local_scope();
let (lhs_success_block, failure_block) =
this.in_if_then_scope(local_scope, expr_span, |this| {
this.then_else_break(
block,
&this.thir[lhs],
temp_scope_override,
local_scope,
variable_source_info,
)
});
let rhs_success_block = unpack!(this.then_else_break(
failure_block,
&this.thir[rhs],
temp_scope_override,
break_scope,
variable_source_info,
));
this.cfg.goto(lhs_success_block, variable_source_info, rhs_success_block);
rhs_success_block.unit()
}
ExprKind::Unary { op: UnOp::Not, arg } => {
let local_scope = this.local_scope();
let (success_block, failure_block) =
this.in_if_then_scope(local_scope, expr_span, |this| {
this.then_else_break(
block,
&this.thir[arg],
temp_scope_override,
local_scope,
variable_source_info,
)
});
this.break_for_else(success_block, break_scope, variable_source_info);
failure_block.unit()
}
ExprKind::Scope { region_scope, lint_level, value } => {
let region_scope = (region_scope, this.source_info(expr_span));
this.in_scope(region_scope, lint_level, |this| {
this.then_else_break(
block,
&this.thir[value],
temp_scope_override,
break_scope,
variable_source_info,
)
})
}
ExprKind::Use { source } => this.then_else_break(
block,
&this.thir[source],
temp_scope_override,
break_scope,
variable_source_info,
),
ExprKind::Let { expr, ref pat } => this.lower_let_expr(
block,
&this.thir[expr],
pat,
break_scope,
Some(variable_source_info.scope),
variable_source_info.span,
true,
),
_ => {
let temp_scope = temp_scope_override.unwrap_or_else(|| this.local_scope());
let mutability = Mutability::Mut;
let place =
unpack!(block = this.as_temp(block, Some(temp_scope), expr, mutability));
let operand = Operand::Move(Place::from(place));
let then_block = this.cfg.start_new_block();
let else_block = this.cfg.start_new_block();
let term = TerminatorKind::if_(operand, then_block, else_block);
let source_info = this.source_info(expr_span);
this.cfg.terminate(block, source_info, term);
this.break_for_else(else_block, break_scope, source_info);
then_block.unit()
}
}
}
/// Generates MIR for a `match` expression.
///
/// The MIR that we generate for a match looks like this.
///
/// ```text
/// [ 0. Pre-match ]
/// |
/// [ 1. Evaluate Scrutinee (expression being matched on) ]
/// [ (PlaceMention of scrutinee) ]
/// |
/// [ 2. Decision tree -- check discriminants ] <--------+
/// | |
/// | (once a specific arm is chosen) |
/// | |
/// [pre_binding_block] [otherwise_block]
/// | |
/// [ 3. Create "guard bindings" for arm ] |
/// [ (create fake borrows) ] |
/// | |
/// [ 4. Execute guard code ] |
/// [ (read fake borrows) ] --(guard is false)-----------+
/// |
/// | (guard results in true)
/// |
/// [ 5. Create real bindings and execute arm ]
/// |
/// [ Exit match ]
/// ```
///
/// All of the different arms have been stacked on top of each other to
/// simplify the diagram. For an arm with no guard the blocks marked 3 and
/// 4 and the fake borrows are omitted.
///
/// We generate MIR in the following steps:
///
/// 1. Evaluate the scrutinee and add the PlaceMention of it ([Builder::lower_scrutinee]).
/// 2. Create the decision tree ([Builder::lower_match_tree]).
/// 3. Determine the fake borrows that are needed from the places that were
/// matched against and create the required temporaries for them
/// ([Builder::calculate_fake_borrows]).
/// 4. Create everything else: the guards and the arms ([Builder::lower_match_arms]).
///
/// ## False edges
///
/// We don't want to have the exact structure of the decision tree be
/// visible through borrow checking. False edges ensure that the CFG as
/// seen by borrow checking doesn't encode this. False edges are added:
///
/// * From each pre-binding block to the next pre-binding block.
/// * From each otherwise block to the next pre-binding block.
#[instrument(level = "debug", skip(self, arms))]
pub(crate) fn match_expr(
&mut self,
destination: Place<'tcx>,
span: Span,
mut block: BasicBlock,
scrutinee: &Expr<'tcx>,
arms: &[ArmId],
) -> BlockAnd<()> {
let scrutinee_span = scrutinee.span;
let scrutinee_place =
unpack!(block = self.lower_scrutinee(block, scrutinee, scrutinee_span,));
let mut arm_candidates = self.create_match_candidates(&scrutinee_place, &arms);
let match_has_guard = arm_candidates.iter().any(|(_, candidate)| candidate.has_guard);
let mut candidates =
arm_candidates.iter_mut().map(|(_, candidate)| candidate).collect::<Vec<_>>();
let match_start_span = span.shrink_to_lo().to(scrutinee.span);
let fake_borrow_temps = self.lower_match_tree(
block,
scrutinee_span,
&scrutinee_place,
match_start_span,
match_has_guard,
&mut candidates,
);
self.lower_match_arms(
destination,
scrutinee_place,
scrutinee_span,
arm_candidates,
self.source_info(span),
fake_borrow_temps,
)
}
/// Evaluate the scrutinee and add the PlaceMention for it.
fn lower_scrutinee(
&mut self,
mut block: BasicBlock,
scrutinee: &Expr<'tcx>,
scrutinee_span: Span,
) -> BlockAnd<PlaceBuilder<'tcx>> {
let scrutinee_place_builder = unpack!(block = self.as_place_builder(block, scrutinee));
if let Some(scrutinee_place) = scrutinee_place_builder.try_to_place(self) {
let source_info = self.source_info(scrutinee_span);
self.cfg.push_place_mention(block, source_info, scrutinee_place);
}
block.and(scrutinee_place_builder)
}
/// Create the initial `Candidate`s for a `match` expression.
fn create_match_candidates<'pat>(
&mut self,
scrutinee: &PlaceBuilder<'tcx>,
arms: &'pat [ArmId],
) -> Vec<(&'pat Arm<'tcx>, Candidate<'pat, 'tcx>)>
where
'a: 'pat,
{
// Assemble a list of candidates: there is one candidate per pattern,
// which means there may be more than one candidate *per arm*.
arms.iter()
.copied()
.map(|arm| {
let arm = &self.thir[arm];
let arm_has_guard = arm.guard.is_some();
let arm_candidate =
Candidate::new(scrutinee.clone(), &arm.pattern, arm_has_guard, self);
(arm, arm_candidate)
})
.collect()
}
/// Create the decision tree for the match expression, starting from `block`.
///
/// Modifies `candidates` to store the bindings and type ascriptions for
/// that candidate.
///
/// Returns the places that need fake borrows because we bind or test them.
fn lower_match_tree<'pat>(
&mut self,
block: BasicBlock,
scrutinee_span: Span,
scrutinee_place_builder: &PlaceBuilder<'tcx>,
match_start_span: Span,
match_has_guard: bool,
candidates: &mut [&mut Candidate<'pat, 'tcx>],
) -> Vec<(Place<'tcx>, Local)> {
// The set of places that we are creating fake borrows of. If there are
// no match guards then we don't need any fake borrows, so don't track
// them.
let mut fake_borrows = match_has_guard.then(FxIndexSet::default);
let mut otherwise = None;
// This will generate code to test scrutinee_place and
// branch to the appropriate arm block
self.match_candidates(
match_start_span,
scrutinee_span,
block,
&mut otherwise,
candidates,
&mut fake_borrows,
);
if let Some(otherwise_block) = otherwise {
// See the doc comment on `match_candidates` for why we may have an
// otherwise block. Match checking will ensure this is actually
// unreachable.
let source_info = self.source_info(scrutinee_span);
// Matching on a `scrutinee_place` with an uninhabited type doesn't
// generate any memory reads by itself, and so if the place "expression"
// contains unsafe operations like raw pointer dereferences or union
// field projections, we wouldn't know to require an `unsafe` block
// around a `match` equivalent to `std::intrinsics::unreachable()`.
// See issue #47412 for this hole being discovered in the wild.
//
// HACK(eddyb) Work around the above issue by adding a dummy inspection
// of `scrutinee_place`, specifically by applying `ReadForMatch`.
//
// NOTE: ReadForMatch also checks that the scrutinee is initialized.
// This is currently needed to not allow matching on an uninitialized,
// uninhabited value. If we get never patterns, those will check that
// the place is initialized, and so this read would only be used to
// check safety.
let cause_matched_place = FakeReadCause::ForMatchedPlace(None);
if let Some(scrutinee_place) = scrutinee_place_builder.try_to_place(self) {
self.cfg.push_fake_read(
otherwise_block,
source_info,
cause_matched_place,
scrutinee_place,
);
}
self.cfg.terminate(otherwise_block, source_info, TerminatorKind::Unreachable);
}
// Link each leaf candidate to the `pre_binding_block` of the next one.
let mut previous_candidate: Option<&mut Candidate<'_, '_>> = None;
for candidate in candidates {
candidate.visit_leaves(|leaf_candidate| {
if let Some(ref mut prev) = previous_candidate {
prev.next_candidate_pre_binding_block = leaf_candidate.pre_binding_block;
}
previous_candidate = Some(leaf_candidate);
});
}
if let Some(ref borrows) = fake_borrows {
self.calculate_fake_borrows(borrows, scrutinee_span)
} else {
Vec::new()
}
}
/// Lower the bindings, guards and arm bodies of a `match` expression.
///
/// The decision tree should have already been created
/// (by [Builder::lower_match_tree]).
///
/// `outer_source_info` is the SourceInfo for the whole match.
fn lower_match_arms(
&mut self,
destination: Place<'tcx>,
scrutinee_place_builder: PlaceBuilder<'tcx>,
scrutinee_span: Span,
arm_candidates: Vec<(&'_ Arm<'tcx>, Candidate<'_, 'tcx>)>,
outer_source_info: SourceInfo,
fake_borrow_temps: Vec<(Place<'tcx>, Local)>,
) -> BlockAnd<()> {
let arm_end_blocks: Vec<_> = arm_candidates
.into_iter()
.map(|(arm, candidate)| {
debug!("lowering arm {:?}\ncandidate = {:?}", arm, candidate);
let arm_source_info = self.source_info(arm.span);
let arm_scope = (arm.scope, arm_source_info);
let match_scope = self.local_scope();
self.in_scope(arm_scope, arm.lint_level, |this| {
// `try_to_place` may fail if it is unable to resolve the given
// `PlaceBuilder` inside a closure. In this case, we don't want to include
// a scrutinee place. `scrutinee_place_builder` will fail to be resolved
// if the only match arm is a wildcard (`_`).
// Example:
// ```
// let foo = (0, 1);
// let c = || {
// match foo { _ => () };
// };
// ```
let scrutinee_place = scrutinee_place_builder.try_to_place(this);
let opt_scrutinee_place =
scrutinee_place.as_ref().map(|place| (Some(place), scrutinee_span));
let scope = this.declare_bindings(
None,
arm.span,
&arm.pattern,
arm.guard.as_ref(),
opt_scrutinee_place,
);
let arm_block = this.bind_pattern(
outer_source_info,
candidate,
&fake_borrow_temps,
scrutinee_span,
Some((arm, match_scope)),
false,
);
if let Some(source_scope) = scope {
this.source_scope = source_scope;
}
this.expr_into_dest(destination, arm_block, &&this.thir[arm.body])
})
})
.collect();
// all the arm blocks will rejoin here
let end_block = self.cfg.start_new_block();
let end_brace = self.source_info(
outer_source_info.span.with_lo(outer_source_info.span.hi() - BytePos::from_usize(1)),
);
for arm_block in arm_end_blocks {
let block = &self.cfg.basic_blocks[arm_block.0];
let last_location = block.statements.last().map(|s| s.source_info);
self.cfg.goto(unpack!(arm_block), last_location.unwrap_or(end_brace), end_block);
}
self.source_scope = outer_source_info.scope;
end_block.unit()
}
/// Binds the variables and ascribes types for a given `match` arm or
/// `let` binding.
///
/// Also check if the guard matches, if it's provided.
/// `arm_scope` should be `Some` if and only if this is called for a
/// `match` arm.
fn bind_pattern(
&mut self,
outer_source_info: SourceInfo,
candidate: Candidate<'_, 'tcx>,
fake_borrow_temps: &[(Place<'tcx>, Local)],
scrutinee_span: Span,
arm_match_scope: Option<(&Arm<'tcx>, region::Scope)>,
storages_alive: bool,
) -> BasicBlock {
if candidate.subcandidates.is_empty() {
// Avoid generating another `BasicBlock` when we only have one
// candidate.
self.bind_and_guard_matched_candidate(
candidate,
&[],
fake_borrow_temps,
scrutinee_span,
arm_match_scope,
true,
storages_alive,
)
} else {
// It's helpful to avoid scheduling drops multiple times to save
// drop elaboration from having to clean up the extra drops.
//
// If we are in a `let` then we only schedule drops for the first
// candidate.
//
// If we're in a `match` arm then we could have a case like so:
//
// Ok(x) | Err(x) if return => { /* ... */ }
//
// In this case we don't want a drop of `x` scheduled when we
// return: it isn't bound by move until right before enter the arm.
// To handle this we instead unschedule it's drop after each time
// we lower the guard.
let target_block = self.cfg.start_new_block();
let mut schedule_drops = true;
let arm = arm_match_scope.unzip().0;
// We keep a stack of all of the bindings and type ascriptions
// from the parent candidates that we visit, that also need to
// be bound for each candidate.
traverse_candidate(
candidate,
&mut Vec::new(),
&mut |leaf_candidate, parent_bindings| {
if let Some(arm) = arm {
self.clear_top_scope(arm.scope);
}
let binding_end = self.bind_and_guard_matched_candidate(
leaf_candidate,
parent_bindings,
&fake_borrow_temps,
scrutinee_span,
arm_match_scope,
schedule_drops,
storages_alive,
);
if arm.is_none() {
schedule_drops = false;
}
self.cfg.goto(binding_end, outer_source_info, target_block);
},
|inner_candidate, parent_bindings| {
parent_bindings.push((inner_candidate.bindings, inner_candidate.ascriptions));
inner_candidate.subcandidates.into_iter()
},
|parent_bindings| {
parent_bindings.pop();
},
);
target_block
}
}
pub(super) fn expr_into_pattern(
&mut self,
mut block: BasicBlock,
irrefutable_pat: &Pat<'tcx>,
initializer: &Expr<'tcx>,
) -> BlockAnd<()> {
match irrefutable_pat.kind {
// Optimize the case of `let x = ...` to write directly into `x`
PatKind::Binding { mode: BindingMode::ByValue, var, subpattern: None, .. } => {
let place =
self.storage_live_binding(block, var, irrefutable_pat.span, OutsideGuard, true);
unpack!(block = self.expr_into_dest(place, block, initializer));
// Inject a fake read, see comments on `FakeReadCause::ForLet`.
let source_info = self.source_info(irrefutable_pat.span);
self.cfg.push_fake_read(block, source_info, FakeReadCause::ForLet(None), place);
self.schedule_drop_for_binding(var, irrefutable_pat.span, OutsideGuard);
block.unit()
}
// Optimize the case of `let x: T = ...` to write directly
// into `x` and then require that `T == typeof(x)`.
//
// Weirdly, this is needed to prevent the
// `intrinsic-move-val.rs` test case from crashing. That
// test works with uninitialized values in a rather
// dubious way, so it may be that the test is kind of
// broken.
PatKind::AscribeUserType {
subpattern:
box Pat {
kind:
PatKind::Binding {
mode: BindingMode::ByValue, var, subpattern: None, ..
},
..
},
ascription: thir::Ascription { ref annotation, variance: _ },
} => {
let place =
self.storage_live_binding(block, var, irrefutable_pat.span, OutsideGuard, true);
unpack!(block = self.expr_into_dest(place, block, initializer));
// Inject a fake read, see comments on `FakeReadCause::ForLet`.
let pattern_source_info = self.source_info(irrefutable_pat.span);
let cause_let = FakeReadCause::ForLet(None);
self.cfg.push_fake_read(block, pattern_source_info, cause_let, place);
let ty_source_info = self.source_info(annotation.span);
let base = self.canonical_user_type_annotations.push(annotation.clone());
self.cfg.push(
block,
Statement {
source_info: ty_source_info,
kind: StatementKind::AscribeUserType(
Box::new((place, UserTypeProjection { base, projs: Vec::new() })),
// We always use invariant as the variance here. This is because the
// variance field from the ascription refers to the variance to use
// when applying the type to the value being matched, but this
// ascription applies rather to the type of the binding. e.g., in this
// example:
//
// ```
// let x: T = <expr>
// ```
//
// We are creating an ascription that defines the type of `x` to be
// exactly `T` (i.e., with invariance). The variance field, in
// contrast, is intended to be used to relate `T` to the type of
// `<expr>`.
ty::Variance::Invariant,
),
},
);
self.schedule_drop_for_binding(var, irrefutable_pat.span, OutsideGuard);
block.unit()
}
_ => {
let place_builder =
unpack!(block = self.lower_scrutinee(block, initializer, initializer.span));
self.place_into_pattern(block, &irrefutable_pat, place_builder, true)
}
}
}
pub(crate) fn place_into_pattern(
&mut self,
block: BasicBlock,
irrefutable_pat: &Pat<'tcx>,
initializer: PlaceBuilder<'tcx>,
set_match_place: bool,
) -> BlockAnd<()> {
let mut candidate = Candidate::new(initializer.clone(), &irrefutable_pat, false, self);
let fake_borrow_temps = self.lower_match_tree(
block,
irrefutable_pat.span,
&initializer,
irrefutable_pat.span,
false,
&mut [&mut candidate],
);
// For matches and function arguments, the place that is being matched
// can be set when creating the variables. But the place for
// let PATTERN = ... might not even exist until we do the assignment.
// so we set it here instead.
if set_match_place {
let mut next = Some(&candidate);
while let Some(candidate_ref) = next.take() {
for binding in &candidate_ref.bindings {
let local = self.var_local_id(binding.var_id, OutsideGuard);
// `try_to_place` may fail if it is unable to resolve the given
// `PlaceBuilder` inside a closure. In this case, we don't want to include
// a scrutinee place. `scrutinee_place_builder` will fail for destructured
// assignments. This is because a closure only captures the precise places
// that it will read and as a result a closure may not capture the entire
// tuple/struct and rather have individual places that will be read in the
// final MIR.
// Example:
// ```
// let foo = (0, 1);
// let c = || {
// let (v1, v2) = foo;
// };
// ```
if let Some(place) = initializer.try_to_place(self) {
let LocalInfo::User(BindingForm::Var(VarBindingForm {
opt_match_place: Some((ref mut match_place, _)),
..
})) = **self.local_decls[local].local_info.as_mut().assert_crate_local()
else {
bug!("Let binding to non-user variable.")
};
*match_place = Some(place);
}
}
// All of the subcandidates should bind the same locals, so we
// only visit the first one.
next = candidate_ref.subcandidates.get(0)
}
}
self.bind_pattern(
self.source_info(irrefutable_pat.span),
candidate,
&fake_borrow_temps,
irrefutable_pat.span,
None,
false,
)
.unit()
}
/// Declares the bindings of the given patterns and returns the visibility
/// scope for the bindings in these patterns, if such a scope had to be
/// created. NOTE: Declaring the bindings should always be done in their
/// drop scope.
#[instrument(skip(self), level = "debug")]
pub(crate) fn declare_bindings(
&mut self,
mut visibility_scope: Option<SourceScope>,
scope_span: Span,
pattern: &Pat<'tcx>,
guard: Option<&Guard<'tcx>>,
opt_match_place: Option<(Option<&Place<'tcx>>, Span)>,
) -> Option<SourceScope> {
self.visit_primary_bindings(
&pattern,
UserTypeProjections::none(),
&mut |this, mutability, name, mode, var, span, ty, user_ty| {
if visibility_scope.is_none() {
visibility_scope =
Some(this.new_source_scope(scope_span, LintLevel::Inherited, None));
}
let source_info = SourceInfo { span, scope: this.source_scope };
let visibility_scope = visibility_scope.unwrap();
this.declare_binding(
source_info,
visibility_scope,
mutability,
name,
mode,
var,
ty,
user_ty,
ArmHasGuard(guard.is_some()),
opt_match_place.map(|(x, y)| (x.cloned(), y)),
pattern.span,
);
},
);
if let Some(Guard::IfLet(guard_pat, _)) = guard {
// FIXME: pass a proper `opt_match_place`
self.declare_bindings(visibility_scope, scope_span, guard_pat, None, None);
}
visibility_scope
}
pub(crate) fn storage_live_binding(
&mut self,
block: BasicBlock,
var: LocalVarId,
span: Span,
for_guard: ForGuard,
schedule_drop: bool,
) -> Place<'tcx> {
let local_id = self.var_local_id(var, for_guard);
let source_info = self.source_info(span);
self.cfg.push(block, Statement { source_info, kind: StatementKind::StorageLive(local_id) });
// Although there is almost always scope for given variable in corner cases
// like #92893 we might get variable with no scope.
if let Some(region_scope) = self.region_scope_tree.var_scope(var.0.local_id)
&& schedule_drop
{
self.schedule_drop(span, region_scope, local_id, DropKind::Storage);
}
Place::from(local_id)
}
pub(crate) fn schedule_drop_for_binding(
&mut self,
var: LocalVarId,
span: Span,
for_guard: ForGuard,
) {
let local_id = self.var_local_id(var, for_guard);
if let Some(region_scope) = self.region_scope_tree.var_scope(var.0.local_id) {
self.schedule_drop(span, region_scope, local_id, DropKind::Value);
}
}
/// Visit all of the primary bindings in a patterns, that is, visit the
/// leftmost occurrence of each variable bound in a pattern. A variable
/// will occur more than once in an or-pattern.
pub(super) fn visit_primary_bindings(
&mut self,
pattern: &Pat<'tcx>,
pattern_user_ty: UserTypeProjections,
f: &mut impl FnMut(
&mut Self,
Mutability,
Symbol,
BindingMode,
LocalVarId,
Span,
Ty<'tcx>,
UserTypeProjections,
),
) {
debug!(
"visit_primary_bindings: pattern={:?} pattern_user_ty={:?}",
pattern, pattern_user_ty
);
match pattern.kind {
PatKind::Binding {
mutability,
name,
mode,
var,
ty,
ref subpattern,
is_primary,
..
} => {
if is_primary {
f(self, mutability, name, mode, var, pattern.span, ty, pattern_user_ty.clone());
}
if let Some(subpattern) = subpattern.as_ref() {
self.visit_primary_bindings(subpattern, pattern_user_ty, f);
}
}
PatKind::Array { ref prefix, ref slice, ref suffix }
| PatKind::Slice { ref prefix, ref slice, ref suffix } => {
let from = u64::try_from(prefix.len()).unwrap();
let to = u64::try_from(suffix.len()).unwrap();
for subpattern in prefix.iter() {
self.visit_primary_bindings(subpattern, pattern_user_ty.clone().index(), f);
}
for subpattern in slice {
self.visit_primary_bindings(
subpattern,
pattern_user_ty.clone().subslice(from, to),
f,
);
}
for subpattern in suffix.iter() {
self.visit_primary_bindings(subpattern, pattern_user_ty.clone().index(), f);
}
}
PatKind::Constant { .. }
| PatKind::Range { .. }
| PatKind::Wild
| PatKind::Error(_) => {}
PatKind::Deref { ref subpattern } => {
self.visit_primary_bindings(subpattern, pattern_user_ty.deref(), f);
}
PatKind::AscribeUserType {
ref subpattern,
ascription: thir::Ascription { ref annotation, variance: _ },
} => {
// This corresponds to something like
//
// ```
// let A::<'a>(_): A<'static> = ...;
// ```
//
// Note that the variance doesn't apply here, as we are tracking the effect
// of `user_ty` on any bindings contained with subpattern.
let projection = UserTypeProjection {
base: self.canonical_user_type_annotations.push(annotation.clone()),
projs: Vec::new(),
};
let subpattern_user_ty =
pattern_user_ty.push_projection(&projection, annotation.span);
self.visit_primary_bindings(subpattern, subpattern_user_ty, f)
}
PatKind::InlineConstant { ref subpattern, .. } => {
self.visit_primary_bindings(subpattern, pattern_user_ty, f)
}
PatKind::Leaf { ref subpatterns } => {
for subpattern in subpatterns {
let subpattern_user_ty = pattern_user_ty.clone().leaf(subpattern.field);
debug!("visit_primary_bindings: subpattern_user_ty={:?}", subpattern_user_ty);
self.visit_primary_bindings(&subpattern.pattern, subpattern_user_ty, f);
}
}
PatKind::Variant { adt_def, args: _, variant_index, ref subpatterns } => {
for subpattern in subpatterns {
let subpattern_user_ty =
pattern_user_ty.clone().variant(adt_def, variant_index, subpattern.field);
self.visit_primary_bindings(&subpattern.pattern, subpattern_user_ty, f);
}
}
PatKind::Or { ref pats } => {
// In cases where we recover from errors the primary bindings
// may not all be in the leftmost subpattern. For example in
// `let (x | y) = ...`, the primary binding of `y` occurs in
// the right subpattern
for subpattern in pats.iter() {
self.visit_primary_bindings(subpattern, pattern_user_ty.clone(), f);
}
}
}
}
}
#[derive(Debug)]
struct Candidate<'pat, 'tcx> {
/// [`Span`] of the original pattern that gave rise to this candidate.
span: Span,
/// Whether this `Candidate` has a guard.
has_guard: bool,
/// All of these must be satisfied...
match_pairs: SmallVec<[MatchPair<'pat, 'tcx>; 1]>,
/// ...these bindings established...
bindings: Vec<Binding<'tcx>>,
/// ...and these types asserted...
ascriptions: Vec<Ascription<'tcx>>,
/// ...and if this is non-empty, one of these subcandidates also has to match...
subcandidates: Vec<Candidate<'pat, 'tcx>>,
/// ...and the guard must be evaluated; if it's `false` then branch to `otherwise_block`.
otherwise_block: Option<BasicBlock>,
/// The block before the `bindings` have been established.
pre_binding_block: Option<BasicBlock>,
/// The pre-binding block of the next candidate.
next_candidate_pre_binding_block: Option<BasicBlock>,
}
impl<'tcx, 'pat> Candidate<'pat, 'tcx> {
fn new(
place: PlaceBuilder<'tcx>,
pattern: &'pat Pat<'tcx>,
has_guard: bool,
cx: &Builder<'_, 'tcx>,
) -> Self {
Candidate {
span: pattern.span,
has_guard,
match_pairs: smallvec![MatchPair::new(place, pattern, cx)],
bindings: Vec::new(),
ascriptions: Vec::new(),
subcandidates: Vec::new(),
otherwise_block: None,
pre_binding_block: None,
next_candidate_pre_binding_block: None,
}
}
/// Visit the leaf candidates (those with no subcandidates) contained in
/// this candidate.
fn visit_leaves<'a>(&'a mut self, mut visit_leaf: impl FnMut(&'a mut Self)) {
traverse_candidate(
self,
&mut (),
&mut move |c, _| visit_leaf(c),
move |c, _| c.subcandidates.iter_mut(),
|_| {},
);
}
}
/// A depth-first traversal of the `Candidate` and all of its recursive
/// subcandidates.
fn traverse_candidate<'pat, 'tcx: 'pat, C, T, I>(
candidate: C,
context: &mut T,
visit_leaf: &mut impl FnMut(C, &mut T),
get_children: impl Copy + Fn(C, &mut T) -> I,
complete_children: impl Copy + Fn(&mut T),
) where
C: Borrow<Candidate<'pat, 'tcx>>,
I: Iterator<Item = C>,
{
if candidate.borrow().subcandidates.is_empty() {
visit_leaf(candidate, context)
} else {
for child in get_children(candidate, context) {
traverse_candidate(child, context, visit_leaf, get_children, complete_children);
}
complete_children(context)
}
}
#[derive(Clone, Debug)]
struct Binding<'tcx> {
span: Span,
source: Place<'tcx>,
var_id: LocalVarId,
binding_mode: BindingMode,
}
/// Indicates that the type of `source` must be a subtype of the
/// user-given type `user_ty`; this is basically a no-op but can
/// influence region inference.
#[derive(Clone, Debug)]
struct Ascription<'tcx> {
source: Place<'tcx>,
annotation: CanonicalUserTypeAnnotation<'tcx>,
variance: ty::Variance,
}
#[derive(Clone, Debug)]
pub(crate) struct MatchPair<'pat, 'tcx> {
// this place...
place: PlaceBuilder<'tcx>,
// ... must match this pattern.
pattern: &'pat Pat<'tcx>,
}