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- `check-pass` test for a MRE of #135020 - fail test for #135138 - switch to `TooGeneric` for checking CMSE fn signatures - switch to `TooGeneric` for compute `SizeSkeleton` (for transmute) - fix broken tests
535 lines
20 KiB
Rust
535 lines
20 KiB
Rust
use std::ops::ControlFlow;
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use super::{Byte, Def, Ref};
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#[cfg(test)]
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mod tests;
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/// A tree-based representation of a type layout.
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///
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/// Invariants:
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/// 1. All paths through the layout have the same length (in bytes).
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///
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/// Nice-to-haves:
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/// 1. An `Alt` is never directly nested beneath another `Alt`.
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/// 2. A `Seq` is never directly nested beneath another `Seq`.
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/// 3. `Seq`s and `Alt`s with a single member do not exist.
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#[derive(Clone, Debug, Hash, PartialEq, Eq)]
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pub(crate) enum Tree<D, R>
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where
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D: Def,
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R: Ref,
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{
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/// A sequence of successive layouts.
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Seq(Vec<Self>),
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/// A choice between alternative layouts.
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Alt(Vec<Self>),
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/// A definition node.
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Def(D),
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/// A reference node.
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Ref(R),
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/// A byte node.
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Byte(Byte),
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}
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impl<D, R> Tree<D, R>
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where
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D: Def,
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R: Ref,
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{
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/// A `Tree` consisting only of a definition node.
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pub(crate) fn def(def: D) -> Self {
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Self::Def(def)
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}
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/// A `Tree` representing an uninhabited type.
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pub(crate) fn uninhabited() -> Self {
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Self::Alt(vec![])
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}
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/// A `Tree` representing a zero-sized type.
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pub(crate) fn unit() -> Self {
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Self::Seq(Vec::new())
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}
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/// A `Tree` containing a single, uninitialized byte.
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pub(crate) fn uninit() -> Self {
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Self::Byte(Byte::Uninit)
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}
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/// A `Tree` representing the layout of `bool`.
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pub(crate) fn bool() -> Self {
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Self::from_bits(0x00).or(Self::from_bits(0x01))
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}
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/// A `Tree` whose layout matches that of a `u8`.
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pub(crate) fn u8() -> Self {
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Self::Alt((0u8..=255).map(Self::from_bits).collect())
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}
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/// A `Tree` whose layout accepts exactly the given bit pattern.
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pub(crate) fn from_bits(bits: u8) -> Self {
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Self::Byte(Byte::Init(bits))
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}
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/// A `Tree` whose layout is a number of the given width.
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pub(crate) fn number(width_in_bytes: usize) -> Self {
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Self::Seq(vec![Self::u8(); width_in_bytes])
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}
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/// A `Tree` whose layout is entirely padding of the given width.
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pub(crate) fn padding(width_in_bytes: usize) -> Self {
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Self::Seq(vec![Self::uninit(); width_in_bytes])
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}
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/// Remove all `Def` nodes, and all branches of the layout for which `f`
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/// produces `true`.
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pub(crate) fn prune<F>(self, f: &F) -> Tree<!, R>
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where
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F: Fn(D) -> bool,
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{
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match self {
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Self::Seq(elts) => match elts.into_iter().map(|elt| elt.prune(f)).try_fold(
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Tree::unit(),
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|elts, elt| {
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if elt == Tree::uninhabited() {
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ControlFlow::Break(Tree::uninhabited())
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} else {
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ControlFlow::Continue(elts.then(elt))
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}
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},
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) {
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ControlFlow::Break(node) | ControlFlow::Continue(node) => node,
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},
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Self::Alt(alts) => alts
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.into_iter()
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.map(|alt| alt.prune(f))
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.fold(Tree::uninhabited(), |alts, alt| alts.or(alt)),
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Self::Byte(b) => Tree::Byte(b),
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Self::Ref(r) => Tree::Ref(r),
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Self::Def(d) => {
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if f(d) {
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Tree::uninhabited()
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} else {
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Tree::unit()
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}
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}
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}
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}
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/// Produces `true` if `Tree` is an inhabited type; otherwise false.
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pub(crate) fn is_inhabited(&self) -> bool {
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match self {
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Self::Seq(elts) => elts.into_iter().all(|elt| elt.is_inhabited()),
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Self::Alt(alts) => alts.into_iter().any(|alt| alt.is_inhabited()),
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Self::Byte(..) | Self::Ref(..) | Self::Def(..) => true,
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}
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}
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}
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impl<D, R> Tree<D, R>
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where
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D: Def,
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R: Ref,
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{
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/// Produces a new `Tree` where `other` is sequenced after `self`.
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pub(crate) fn then(self, other: Self) -> Self {
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match (self, other) {
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(Self::Seq(elts), other) | (other, Self::Seq(elts)) if elts.len() == 0 => other,
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(Self::Seq(mut lhs), Self::Seq(mut rhs)) => {
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lhs.append(&mut rhs);
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Self::Seq(lhs)
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}
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(Self::Seq(mut lhs), rhs) => {
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lhs.push(rhs);
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Self::Seq(lhs)
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}
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(lhs, Self::Seq(mut rhs)) => {
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rhs.insert(0, lhs);
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Self::Seq(rhs)
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}
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(lhs, rhs) => Self::Seq(vec![lhs, rhs]),
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}
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}
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/// Produces a new `Tree` accepting either `self` or `other` as alternative layouts.
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pub(crate) fn or(self, other: Self) -> Self {
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match (self, other) {
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(Self::Alt(alts), other) | (other, Self::Alt(alts)) if alts.len() == 0 => other,
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(Self::Alt(mut lhs), Self::Alt(rhs)) => {
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lhs.extend(rhs);
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Self::Alt(lhs)
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}
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(Self::Alt(mut alts), alt) | (alt, Self::Alt(mut alts)) => {
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alts.push(alt);
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Self::Alt(alts)
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}
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(lhs, rhs) => Self::Alt(vec![lhs, rhs]),
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}
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}
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}
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#[cfg(feature = "rustc")]
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pub(crate) mod rustc {
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use rustc_abi::{
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FieldIdx, FieldsShape, Layout, Size, TagEncoding, TyAndLayout, VariantIdx, Variants,
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};
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use rustc_middle::ty::layout::{HasTyCtxt, LayoutCx, LayoutError};
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use rustc_middle::ty::{self, AdtDef, AdtKind, List, ScalarInt, Ty, TyCtxt, TypeVisitableExt};
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use rustc_span::ErrorGuaranteed;
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use super::Tree;
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use crate::layout::rustc::{Def, Ref, layout_of};
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#[derive(Debug, Copy, Clone)]
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pub(crate) enum Err {
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/// The layout of the type is not yet supported.
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NotYetSupported,
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/// This error will be surfaced elsewhere by rustc, so don't surface it.
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UnknownLayout,
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/// Overflow size
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SizeOverflow,
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TypeError(ErrorGuaranteed),
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}
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impl<'tcx> From<&LayoutError<'tcx>> for Err {
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fn from(err: &LayoutError<'tcx>) -> Self {
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match err {
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LayoutError::Unknown(..)
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| LayoutError::ReferencesError(..)
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| LayoutError::TooGeneric(..)
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| LayoutError::NormalizationFailure(..) => Self::UnknownLayout,
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LayoutError::SizeOverflow(..) => Self::SizeOverflow,
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LayoutError::Cycle(err) => Self::TypeError(*err),
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}
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}
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}
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impl<'tcx> Tree<Def<'tcx>, Ref<'tcx>> {
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pub(crate) fn from_ty(ty: Ty<'tcx>, cx: LayoutCx<'tcx>) -> Result<Self, Err> {
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use rustc_abi::HasDataLayout;
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let layout = layout_of(cx, ty)?;
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if let Err(e) = ty.error_reported() {
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return Err(Err::TypeError(e));
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}
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let target = cx.data_layout();
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let pointer_size = target.pointer_size;
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match ty.kind() {
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ty::Bool => Ok(Self::bool()),
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ty::Float(nty) => {
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let width = nty.bit_width() / 8;
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Ok(Self::number(width as _))
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}
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ty::Int(nty) => {
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let width = nty.normalize(pointer_size.bits() as _).bit_width().unwrap() / 8;
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Ok(Self::number(width as _))
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}
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ty::Uint(nty) => {
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let width = nty.normalize(pointer_size.bits() as _).bit_width().unwrap() / 8;
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Ok(Self::number(width as _))
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}
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ty::Tuple(members) => Self::from_tuple((ty, layout), members, cx),
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ty::Array(inner_ty, len) => {
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let FieldsShape::Array { stride, count } = &layout.fields else {
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return Err(Err::NotYetSupported);
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};
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let inner_layout = layout_of(cx, *inner_ty)?;
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assert_eq!(*stride, inner_layout.size);
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let elt = Tree::from_ty(*inner_ty, cx)?;
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Ok(std::iter::repeat(elt)
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.take(*count as usize)
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.fold(Tree::unit(), |tree, elt| tree.then(elt)))
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}
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ty::Adt(adt_def, _args_ref) if !ty.is_box() => match adt_def.adt_kind() {
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AdtKind::Struct => Self::from_struct((ty, layout), *adt_def, cx),
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AdtKind::Enum => Self::from_enum((ty, layout), *adt_def, cx),
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AdtKind::Union => Self::from_union((ty, layout), *adt_def, cx),
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},
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ty::Ref(lifetime, ty, mutability) => {
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let layout = layout_of(cx, *ty)?;
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let align = layout.align.abi.bytes_usize();
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let size = layout.size.bytes_usize();
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Ok(Tree::Ref(Ref {
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lifetime: *lifetime,
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ty: *ty,
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mutability: *mutability,
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align,
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size,
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}))
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}
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_ => Err(Err::NotYetSupported),
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}
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}
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/// Constructs a `Tree` from a tuple.
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fn from_tuple(
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(ty, layout): (Ty<'tcx>, Layout<'tcx>),
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members: &'tcx List<Ty<'tcx>>,
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cx: LayoutCx<'tcx>,
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) -> Result<Self, Err> {
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match &layout.fields {
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FieldsShape::Primitive => {
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assert_eq!(members.len(), 1);
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let inner_ty = members[0];
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let inner_layout = layout_of(cx, inner_ty)?;
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Self::from_ty(inner_ty, cx)
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}
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FieldsShape::Arbitrary { offsets, .. } => {
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assert_eq!(offsets.len(), members.len());
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Self::from_variant(Def::Primitive, None, (ty, layout), layout.size, cx)
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}
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FieldsShape::Array { .. } | FieldsShape::Union(_) => Err(Err::NotYetSupported),
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}
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}
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/// Constructs a `Tree` from a struct.
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///
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/// # Panics
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///
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/// Panics if `def` is not a struct definition.
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fn from_struct(
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(ty, layout): (Ty<'tcx>, Layout<'tcx>),
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def: AdtDef<'tcx>,
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cx: LayoutCx<'tcx>,
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) -> Result<Self, Err> {
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assert!(def.is_struct());
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let def = Def::Adt(def);
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Self::from_variant(def, None, (ty, layout), layout.size, cx)
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}
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/// Constructs a `Tree` from an enum.
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///
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/// # Panics
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///
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/// Panics if `def` is not an enum definition.
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fn from_enum(
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(ty, layout): (Ty<'tcx>, Layout<'tcx>),
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def: AdtDef<'tcx>,
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cx: LayoutCx<'tcx>,
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) -> Result<Self, Err> {
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assert!(def.is_enum());
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// Computes the layout of a variant.
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let layout_of_variant =
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|index, encoding: Option<TagEncoding<VariantIdx>>| -> Result<Self, Err> {
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let variant_layout = ty_variant(cx, (ty, layout), index);
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if variant_layout.is_uninhabited() {
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return Ok(Self::uninhabited());
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}
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let tag = cx.tcx().tag_for_variant((cx.tcx().erase_regions(ty), index));
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let variant_def = Def::Variant(def.variant(index));
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Self::from_variant(
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variant_def,
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tag.map(|tag| (tag, index, encoding.unwrap())),
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(ty, variant_layout),
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layout.size,
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cx,
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)
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};
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match layout.variants() {
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Variants::Empty => Ok(Self::uninhabited()),
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Variants::Single { index } => {
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// `Variants::Single` on enums with variants denotes that
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// the enum delegates its layout to the variant at `index`.
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layout_of_variant(*index, None)
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}
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Variants::Multiple { tag, tag_encoding, tag_field, .. } => {
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// `Variants::Multiple` denotes an enum with multiple
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// variants. The layout of such an enum is the disjunction
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// of the layouts of its tagged variants.
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// For enums (but not coroutines), the tag field is
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// currently always the first field of the layout.
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assert_eq!(*tag_field, 0);
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let variants = def.discriminants(cx.tcx()).try_fold(
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Self::uninhabited(),
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|variants, (idx, ref discriminant)| {
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let variant = layout_of_variant(idx, Some(tag_encoding.clone()))?;
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Result::<Self, Err>::Ok(variants.or(variant))
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},
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)?;
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Ok(Self::def(Def::Adt(def)).then(variants))
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}
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}
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}
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/// Constructs a `Tree` from a 'variant-like' layout.
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///
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/// A 'variant-like' layout includes those of structs and, of course,
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/// enum variants. Pragmatically speaking, this method supports anything
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/// with `FieldsShape::Arbitrary`.
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///
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/// Note: This routine assumes that the optional `tag` is the first
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/// field, and enum callers should check that `tag_field` is, in fact,
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/// `0`.
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fn from_variant(
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def: Def<'tcx>,
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tag: Option<(ScalarInt, VariantIdx, TagEncoding<VariantIdx>)>,
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(ty, layout): (Ty<'tcx>, Layout<'tcx>),
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total_size: Size,
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cx: LayoutCx<'tcx>,
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) -> Result<Self, Err> {
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// This constructor does not support non-`FieldsShape::Arbitrary`
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// layouts.
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let FieldsShape::Arbitrary { offsets, memory_index } = layout.fields() else {
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return Err(Err::NotYetSupported);
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};
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// When this function is invoked with enum variants,
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// `ty_and_layout.size` does not encompass the entire size of the
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// enum. We rely on `total_size` for this.
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assert!(layout.size <= total_size);
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let mut size = Size::ZERO;
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let mut struct_tree = Self::def(def);
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// If a `tag` is provided, place it at the start of the layout.
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if let Some((tag, index, encoding)) = &tag {
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match encoding {
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TagEncoding::Direct => {
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size += tag.size();
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}
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TagEncoding::Niche { niche_variants, .. } => {
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if !niche_variants.contains(index) {
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size += tag.size();
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}
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}
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}
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struct_tree = struct_tree.then(Self::from_tag(*tag, cx.tcx()));
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}
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// Append the fields, in memory order, to the layout.
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let inverse_memory_index = memory_index.invert_bijective_mapping();
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for (memory_idx, &field_idx) in inverse_memory_index.iter_enumerated() {
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// Add interfield padding.
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let padding_needed = offsets[field_idx] - size;
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let padding = Self::padding(padding_needed.bytes_usize());
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let field_ty = ty_field(cx, (ty, layout), field_idx);
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let field_layout = layout_of(cx, field_ty)?;
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let field_tree = Self::from_ty(field_ty, cx)?;
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struct_tree = struct_tree.then(padding).then(field_tree);
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size += padding_needed + field_layout.size;
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}
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// Add trailing padding.
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let padding_needed = total_size - size;
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let trailing_padding = Self::padding(padding_needed.bytes_usize());
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Ok(struct_tree.then(trailing_padding))
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}
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/// Constructs a `Tree` representing the value of a enum tag.
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fn from_tag(tag: ScalarInt, tcx: TyCtxt<'tcx>) -> Self {
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use rustc_abi::Endian;
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let size = tag.size();
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let bits = tag.to_bits(size);
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let bytes: [u8; 16];
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let bytes = match tcx.data_layout.endian {
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Endian::Little => {
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bytes = bits.to_le_bytes();
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&bytes[..size.bytes_usize()]
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}
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Endian::Big => {
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bytes = bits.to_be_bytes();
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&bytes[bytes.len() - size.bytes_usize()..]
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}
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};
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Self::Seq(bytes.iter().map(|&b| Self::from_bits(b)).collect())
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}
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/// Constructs a `Tree` from a union.
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///
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/// # Panics
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///
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/// Panics if `def` is not a union definition.
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fn from_union(
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(ty, layout): (Ty<'tcx>, Layout<'tcx>),
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def: AdtDef<'tcx>,
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cx: LayoutCx<'tcx>,
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) -> Result<Self, Err> {
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assert!(def.is_union());
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// This constructor does not support non-`FieldsShape::Union`
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// layouts. Fields of this shape are all placed at offset 0.
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let FieldsShape::Union(fields) = layout.fields() else {
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return Err(Err::NotYetSupported);
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};
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let fields = &def.non_enum_variant().fields;
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let fields = fields.iter_enumerated().try_fold(
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Self::uninhabited(),
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|fields, (idx, field_def)| {
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let field_def = Def::Field(field_def);
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let field_ty = ty_field(cx, (ty, layout), idx);
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let field_layout = layout_of(cx, field_ty)?;
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let field = Self::from_ty(field_ty, cx)?;
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let trailing_padding_needed = layout.size - field_layout.size;
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let trailing_padding = Self::padding(trailing_padding_needed.bytes_usize());
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|
let field_and_padding = field.then(trailing_padding);
|
|
Result::<Self, Err>::Ok(fields.or(field_and_padding))
|
|
},
|
|
)?;
|
|
|
|
Ok(Self::def(Def::Adt(def)).then(fields))
|
|
}
|
|
}
|
|
|
|
fn ty_field<'tcx>(
|
|
cx: LayoutCx<'tcx>,
|
|
(ty, layout): (Ty<'tcx>, Layout<'tcx>),
|
|
i: FieldIdx,
|
|
) -> Ty<'tcx> {
|
|
// We cannot use `ty_and_layout_field` to retrieve the field type, since
|
|
// `ty_and_layout_field` erases regions in the returned type. We must
|
|
// not erase regions here, since we may need to ultimately emit outlives
|
|
// obligations as a consequence of the transmutability analysis.
|
|
match ty.kind() {
|
|
ty::Adt(def, args) => {
|
|
match layout.variants {
|
|
Variants::Single { index } => {
|
|
let field = &def.variant(index).fields[i];
|
|
field.ty(cx.tcx(), args)
|
|
}
|
|
Variants::Empty => panic!("there is no field in Variants::Empty types"),
|
|
// Discriminant field for enums (where applicable).
|
|
Variants::Multiple { tag, .. } => {
|
|
assert_eq!(i.as_usize(), 0);
|
|
ty::layout::PrimitiveExt::to_ty(&tag.primitive(), cx.tcx())
|
|
}
|
|
}
|
|
}
|
|
ty::Tuple(fields) => fields[i.as_usize()],
|
|
kind @ _ => unimplemented!(
|
|
"only a subset of `Ty::ty_and_layout_field`'s functionality is implemented. implementation needed for {:?}",
|
|
kind
|
|
),
|
|
}
|
|
}
|
|
|
|
fn ty_variant<'tcx>(
|
|
cx: LayoutCx<'tcx>,
|
|
(ty, layout): (Ty<'tcx>, Layout<'tcx>),
|
|
i: VariantIdx,
|
|
) -> Layout<'tcx> {
|
|
let ty = cx.tcx().erase_regions(ty);
|
|
TyAndLayout { ty, layout }.for_variant(&cx, i).layout
|
|
}
|
|
}
|