Rollup merge of #115240 - RalfJung:llvm-no-type, r=bjorn3
codegen_llvm/llvm_type: avoid matching on the Rust type This `match` is highly suspicious. Looking at `scalar_llvm_type_at` I think it makes no difference. But if it were to make a difference that would be a huge problem, since it doesn't look through `repr(transparent)`! Cc `@eddyb` `@bjorn3`
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cdb012e0ba
@ -125,8 +125,8 @@ fn gcc_type(&self, cx: &CodegenCx<'gcc, 'tcx>) -> (Type<'gcc>, Vec<Type<'gcc>>,
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PassMode::Ignore => continue,
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PassMode::Direct(_) => arg.layout.immediate_gcc_type(cx),
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PassMode::Pair(..) => {
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argument_tys.push(arg.layout.scalar_pair_element_gcc_type(cx, 0, true));
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argument_tys.push(arg.layout.scalar_pair_element_gcc_type(cx, 1, true));
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argument_tys.push(arg.layout.scalar_pair_element_gcc_type(cx, 0));
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argument_tys.push(arg.layout.scalar_pair_element_gcc_type(cx, 1));
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continue;
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}
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PassMode::Indirect { extra_attrs: Some(_), .. } => {
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@ -821,7 +821,7 @@ fn scalar_load_metadata<'a, 'gcc, 'tcx>(bx: &mut Builder<'a, 'gcc, 'tcx>, load:
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let mut load = |i, scalar: &abi::Scalar, align| {
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let llptr = self.struct_gep(pair_type, place.llval, i as u64);
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let llty = place.layout.scalar_pair_element_gcc_type(self, i, false);
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let llty = place.layout.scalar_pair_element_gcc_type(self, i);
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let load = self.load(llty, llptr, align);
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scalar_load_metadata(self, load, scalar);
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if scalar.is_bool() { self.trunc(load, self.type_i1()) } else { load }
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@ -4,7 +4,7 @@
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use crate::rustc_codegen_ssa::traits::{BaseTypeMethods, DerivedTypeMethods, LayoutTypeMethods};
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use rustc_middle::bug;
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use rustc_middle::ty::{self, Ty, TypeVisitableExt};
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use rustc_middle::ty::layout::{FnAbiOf, LayoutOf, TyAndLayout};
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use rustc_middle::ty::layout::{LayoutOf, TyAndLayout};
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use rustc_middle::ty::print::with_no_trimmed_paths;
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use rustc_target::abi::{self, Abi, Align, F32, F64, FieldsShape, Int, Integer, Pointer, PointeeInfo, Size, TyAbiInterface, Variants};
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use rustc_target::abi::call::{CastTarget, FnAbi, Reg};
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@ -74,8 +74,8 @@ fn uncached_gcc_type<'gcc, 'tcx>(cx: &CodegenCx<'gcc, 'tcx>, layout: TyAndLayout
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Abi::ScalarPair(..) => {
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return cx.type_struct(
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&[
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layout.scalar_pair_element_gcc_type(cx, 0, false),
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layout.scalar_pair_element_gcc_type(cx, 1, false),
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layout.scalar_pair_element_gcc_type(cx, 0),
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layout.scalar_pair_element_gcc_type(cx, 1),
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],
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false,
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);
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@ -150,7 +150,7 @@ pub trait LayoutGccExt<'tcx> {
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fn gcc_type<'gcc>(&self, cx: &CodegenCx<'gcc, 'tcx>) -> Type<'gcc>;
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fn immediate_gcc_type<'gcc>(&self, cx: &CodegenCx<'gcc, 'tcx>) -> Type<'gcc>;
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fn scalar_gcc_type_at<'gcc>(&self, cx: &CodegenCx<'gcc, 'tcx>, scalar: &abi::Scalar, offset: Size) -> Type<'gcc>;
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fn scalar_pair_element_gcc_type<'gcc>(&self, cx: &CodegenCx<'gcc, 'tcx>, index: usize, immediate: bool) -> Type<'gcc>;
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fn scalar_pair_element_gcc_type<'gcc>(&self, cx: &CodegenCx<'gcc, 'tcx>, index: usize) -> Type<'gcc>;
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fn gcc_field_index(&self, index: usize) -> u64;
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fn pointee_info_at<'gcc>(&self, cx: &CodegenCx<'gcc, 'tcx>, offset: Size) -> Option<PointeeInfo>;
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}
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@ -182,23 +182,16 @@ fn is_gcc_scalar_pair(&self) -> bool {
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/// of that field's type - this is useful for taking the address of
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/// that field and ensuring the struct has the right alignment.
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fn gcc_type<'gcc>(&self, cx: &CodegenCx<'gcc, 'tcx>) -> Type<'gcc> {
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// This must produce the same result for `repr(transparent)` wrappers as for the inner type!
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// In other words, this should generally not look at the type at all, but only at the
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// layout.
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if let Abi::Scalar(ref scalar) = self.abi {
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// Use a different cache for scalars because pointers to DSTs
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// can be either fat or thin (data pointers of fat pointers).
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if let Some(&ty) = cx.scalar_types.borrow().get(&self.ty) {
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return ty;
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}
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let ty =
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match *self.ty.kind() {
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ty::Ref(_, ty, _) | ty::RawPtr(ty::TypeAndMut { ty, .. }) => {
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cx.type_ptr_to(cx.layout_of(ty).gcc_type(cx))
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}
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ty::Adt(def, _) if def.is_box() => {
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cx.type_ptr_to(cx.layout_of(self.ty.boxed_ty()).gcc_type(cx))
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}
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ty::FnPtr(sig) => cx.fn_ptr_backend_type(&cx.fn_abi_of_fn_ptr(sig, ty::List::empty())),
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_ => self.scalar_gcc_type_at(cx, scalar, Size::ZERO),
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};
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let ty = self.scalar_gcc_type_at(cx, scalar, Size::ZERO);
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cx.scalar_types.borrow_mut().insert(self.ty, ty);
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return ty;
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}
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@ -272,23 +265,10 @@ fn scalar_gcc_type_at<'gcc>(&self, cx: &CodegenCx<'gcc, 'tcx>, scalar: &abi::Sca
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}
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}
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fn scalar_pair_element_gcc_type<'gcc>(&self, cx: &CodegenCx<'gcc, 'tcx>, index: usize, immediate: bool) -> Type<'gcc> {
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// TODO(antoyo): remove llvm hack:
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// HACK(eddyb) special-case fat pointers until LLVM removes
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// pointee types, to avoid bitcasting every `OperandRef::deref`.
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match self.ty.kind() {
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ty::Ref(..) | ty::RawPtr(_) => {
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return self.field(cx, index).gcc_type(cx);
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}
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// only wide pointer boxes are handled as pointers
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// thin pointer boxes with scalar allocators are handled by the general logic below
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ty::Adt(def, args) if def.is_box() && cx.layout_of(args.type_at(1)).is_zst() => {
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let ptr_ty = Ty::new_mut_ptr(cx.tcx,self.ty.boxed_ty());
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return cx.layout_of(ptr_ty).scalar_pair_element_gcc_type(cx, index, immediate);
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}
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_ => {}
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}
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fn scalar_pair_element_gcc_type<'gcc>(&self, cx: &CodegenCx<'gcc, 'tcx>, index: usize) -> Type<'gcc> {
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// This must produce the same result for `repr(transparent)` wrappers as for the inner type!
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// In other words, this should generally not look at the type at all, but only at the
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// layout.
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let (a, b) = match self.abi {
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Abi::ScalarPair(ref a, ref b) => (a, b),
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_ => bug!("TyAndLayout::scalar_pair_element_llty({:?}): not applicable", self),
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@ -367,8 +347,8 @@ fn backend_field_index(&self, layout: TyAndLayout<'tcx>, index: usize) -> u64 {
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layout.gcc_field_index(index)
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}
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fn scalar_pair_element_backend_type(&self, layout: TyAndLayout<'tcx>, index: usize, immediate: bool) -> Type<'gcc> {
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layout.scalar_pair_element_gcc_type(self, index, immediate)
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fn scalar_pair_element_backend_type(&self, layout: TyAndLayout<'tcx>, index: usize, _immediate: bool) -> Type<'gcc> {
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layout.scalar_pair_element_gcc_type(self, index)
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}
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fn cast_backend_type(&self, ty: &CastTarget) -> Type<'gcc> {
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