Rollup merge of #67015 - osa1:issue66971, r=wesleywiser
Fix constant propagation for scalar pairs We now only propagate a scalar pair if the Rvalue is a tuple with two scalars. This for example avoids propagating a (u8, u8) value when Rvalue has type `((), u8, u8)` (see the regression test). While this is a correct thing to do, implementation is tricky and will be done later. Fixes #66971 Fixes #66339 Fixes #67019
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04e0512c7a
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@ -636,19 +636,45 @@ impl<'mir, 'tcx> ConstPropagator<'mir, 'tcx> {
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ScalarMaybeUndef::Scalar(one),
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ScalarMaybeUndef::Scalar(two)
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) => {
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// Found a value represented as a pair. For now only do cont-prop if type of
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// Rvalue is also a pair with two scalars. The more general case is more
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// complicated to implement so we'll do it later.
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let ty = &value.layout.ty.kind;
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// Only do it for tuples
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if let ty::Tuple(substs) = ty {
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*rval = Rvalue::Aggregate(
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Box::new(AggregateKind::Tuple),
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vec![
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self.operand_from_scalar(
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one, substs[0].expect_ty(), source_info.span
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),
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self.operand_from_scalar(
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two, substs[1].expect_ty(), source_info.span
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),
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],
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);
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// Only do it if tuple is also a pair with two scalars
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if substs.len() == 2 {
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let opt_ty1_ty2 = self.use_ecx(source_info, |this| {
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let ty1 = substs[0].expect_ty();
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let ty2 = substs[1].expect_ty();
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let ty_is_scalar = |ty| {
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this.ecx
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.layout_of(ty)
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.ok()
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.map(|ty| ty.details.abi.is_scalar())
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== Some(true)
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};
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if ty_is_scalar(ty1) && ty_is_scalar(ty2) {
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Ok(Some((ty1, ty2)))
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} else {
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Ok(None)
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}
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});
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if let Some(Some((ty1, ty2))) = opt_ty1_ty2 {
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*rval = Rvalue::Aggregate(
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Box::new(AggregateKind::Tuple),
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vec![
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self.operand_from_scalar(
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one, ty1, source_info.span
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),
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self.operand_from_scalar(
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two, ty2, source_info.span
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),
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],
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);
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}
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}
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}
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},
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_ => { }
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@ -802,6 +802,14 @@ impl Abi {
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_ => false,
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}
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}
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/// Returns `true` is this is a scalar type
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pub fn is_scalar(&self) -> bool {
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match *self {
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Abi::Scalar(_) => true,
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_ => false,
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}
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}
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}
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rustc_index::newtype_index! {
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@ -0,0 +1,38 @@
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// compile-flags: -Z mir-opt-level=2
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// Due to a bug in propagating scalar pairs the assertion below used to fail. In the expected
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// outputs below, after ConstProp this is how _2 would look like with the bug:
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//
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// _2 = (const Scalar(0x00) : (), const 0u8);
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//
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// Which has the wrong type.
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fn encode(this: ((), u8, u8)) {
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assert!(this.2 == 0);
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}
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fn main() {
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encode(((), 0, 0));
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}
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// END RUST SOURCE
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// START rustc.main.ConstProp.before.mir
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// bb0: {
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// ...
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// _3 = ();
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// _2 = (move _3, const 0u8, const 0u8);
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// ...
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// _1 = const encode(move _2) -> bb1;
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// ...
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// }
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// END rustc.main.ConstProp.before.mir
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// START rustc.main.ConstProp.after.mir
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// bb0: {
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// ...
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// _3 = const Scalar(<ZST>) : ();
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// _2 = (move _3, const 0u8, const 0u8);
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// ...
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// _1 = const encode(move _2) -> bb1;
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// ...
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// }
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// END rustc.main.ConstProp.after.mir
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@ -0,0 +1,34 @@
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// compile-flags: -Z mir-opt-level=2
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// This used to ICE in const-prop
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fn test(this: ((u8, u8),)) {
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assert!((this.0).0 == 1);
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}
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fn main() {
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test(((1, 2),));
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}
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// Important bit is parameter passing so we only check that below
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// END RUST SOURCE
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// START rustc.main.ConstProp.before.mir
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// bb0: {
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// ...
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// _3 = (const 1u8, const 2u8);
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// _2 = (move _3,);
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// ...
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// _1 = const test(move _2) -> bb1;
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// ...
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// }
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// END rustc.main.ConstProp.before.mir
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// START rustc.main.ConstProp.after.mir
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// bb0: {
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// ...
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// _3 = (const 1u8, const 2u8);
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// _2 = (move _3,);
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// ...
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// _1 = const test(move _2) -> bb1;
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// ...
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// }
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// END rustc.main.ConstProp.after.mir
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@ -0,0 +1,13 @@
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// compile-flags: -Z mir-opt-level=2
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// build-pass
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// This used to ICE in const-prop
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fn foo() {
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let bar = |_| { };
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let _ = bar("a");
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}
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fn main() {
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foo();
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}
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