enable and extend float-classify test
This commit is contained in:
parent
c40ee79b84
commit
3daa9518d5
3 changed files with 130 additions and 128 deletions
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@ -1,40 +1,46 @@
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//@ compile-flags: -Zmir-opt-level=0 -Znext-solver
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//@ known-bug: #110395
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// FIXME(effects) run-pass
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//@ run-pass
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// ignore-tidy-linelength
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// This tests the float classification functions, for regular runtime code and for const evaluation.
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#![feature(f16_const)]
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#![feature(f128_const)]
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#![feature(const_float_classify)]
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#![feature(const_trait_impl, effects)]
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#![allow(incomplete_features)]
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// Don't promote
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const fn nop<T>(x: T) -> T { x }
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use std::hint::black_box;
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use std::num::FpCategory::*;
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impl const PartialEq<NonDet> for bool {
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fn eq(&self, _: &NonDet) -> bool {
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true
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}
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}
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macro_rules! const_assert {
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($a:expr, $b:expr) => {
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macro_rules! both_assert {
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($a:expr, NonDet) => {
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{
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const _: () = assert!($a == $b);
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assert!(nop($a) == nop($b));
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// Compute `a`, but do not compare with anything as the result is non-deterministic.
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const _: () = { let _val = $a; };
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// `black_box` prevents promotion, and MIR opts are disabled above, so this is truly
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// going through LLVM.
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let _val = black_box($a);
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}
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};
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($a:expr, $b:ident) => {
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{
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const _: () = assert!(matches!($a, $b));
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assert!(black_box($a) == black_box($b));
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}
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};
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}
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macro_rules! suite {
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( $( $tt:tt )* ) => {
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( $tyname:ident: $( $tt:tt )* ) => {
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fn f32() {
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type $tyname = f32;
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suite_inner!(f32 $($tt)*);
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}
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fn f64() {
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type $tyname = f64;
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suite_inner!(f64 $($tt)*);
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}
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}
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}
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macro_rules! suite_inner {
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@ -44,33 +50,33 @@ macro_rules! suite_inner {
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$( $tail:tt )*
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) => {
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$( const_assert!($ty::$fn($val), $out); )*
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$( both_assert!($ty::$fn($val), $out); )*
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suite_inner!($ty [$($fn),*] $($tail)*)
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};
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( $ty:ident [$( $fn:ident ),*]) => {};
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}
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#[derive(Debug)]
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struct NonDet;
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// The result of the `is_sign` methods are not checked for correctness, since LLVM does not
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// The result of the `is_sign` methods are not checked for correctness, since we do not
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// guarantee anything about the signedness of NaNs. See
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// https://github.com/rust-lang/rust/issues/55131.
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// https://rust-lang.github.io/rfcs/3514-float-semantics.html.
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suite! {
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[is_nan, is_infinite, is_finite, is_normal, is_sign_positive, is_sign_negative]
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-0.0 / 0.0 => [ true, false, false, false, NonDet, NonDet]
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0.0 / 0.0 => [ true, false, false, false, NonDet, NonDet]
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1.0 => [ false, false, true, true, true, false]
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-1.0 => [ false, false, true, true, false, true]
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0.0 => [ false, false, true, false, true, false]
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-0.0 => [ false, false, true, false, false, true]
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1.0 / 0.0 => [ false, true, false, false, true, false]
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-1.0 / 0.0 => [ false, true, false, false, false, true]
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suite! { T: // type alias for the type we are testing
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[ classify, is_nan, is_infinite, is_finite, is_normal, is_sign_positive, is_sign_negative]
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-0.0 / 0.0 => [ Nan, true, false, false, false, NonDet, NonDet]
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0.0 / 0.0 => [ Nan, true, false, false, false, NonDet, NonDet]
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1.0 => [ Normal, false, false, true, true, true, false]
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-1.0 => [ Normal, false, false, true, true, false, true]
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0.0 => [ Zero, false, false, true, false, true, false]
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-0.0 => [ Zero, false, false, true, false, false, true]
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1.0 / 0.0 => [ Infinite, false, true, false, false, true, false]
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-1.0 / 0.0 => [ Infinite, false, true, false, false, false, true]
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1.0 / T::MAX => [Subnormal, false, false, true, false, true, false]
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-1.0 / T::MAX => [Subnormal, false, false, true, false, false, true]
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}
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fn main() {
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f32();
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f64();
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// FIXME(f16_f128): also test f16 and f128
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}
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@ -1,11 +0,0 @@
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error: const `impl` for trait `PartialEq` which is not marked with `#[const_trait]`
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--> $DIR/const-float-classify.rs:12:12
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LL | impl const PartialEq<NonDet> for bool {
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| ^^^^^^^^^^^^^^^^^
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= note: marking a trait with `#[const_trait]` ensures all default method bodies are `const`
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= note: adding a non-const method body in the future would be a breaking change
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error: aborting due to 1 previous error
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@ -1,49 +1,55 @@
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//@ compile-flags: -Zmir-opt-level=0
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//@ run-pass
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#![feature(const_float_classify)]
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#![feature(f16, f16_const)]
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#![feature(f128, f128_const)]
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#![allow(unused_macro_rules)]
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// Don't promote
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const fn nop<T>(x: T) -> T { x }
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// This tests the float classification functions, for regular runtime code and for const evaluation.
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macro_rules! const_assert {
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#![feature(const_float_classify)]
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#![feature(f16)]
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#![feature(f128)]
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#![feature(f16_const)]
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#![feature(f128_const)]
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#![allow(unused_macro_rules)]
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use std::hint::black_box;
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macro_rules! both_assert {
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($a:expr) => {
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{
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const _: () = assert!($a);
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assert!(nop($a));
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// `black_box` prevents promotion, and MIR opts are disabled above, so this is truly
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// going through LLVM.
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assert!(black_box($a));
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}
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};
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($a:expr, $b:expr) => {
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{
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const _: () = assert!($a == $b);
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assert_eq!(nop($a), nop($b));
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assert_eq!(black_box($a), black_box($b));
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}
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};
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}
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fn has_broken_floats() -> bool {
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// i586 targets are broken due to <https://github.com/rust-lang/rust/issues/114479>.
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std::env::var("TARGET").is_ok_and(|v| v.contains("i586"))
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cfg!(all(target_arch = "x86", not(target_feature = "sse2")))
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}
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#[cfg(target_arch = "x86_64")]
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fn f16(){
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const_assert!((1f16).to_bits(), 0x3c00);
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const_assert!(u16::from_be_bytes(1f16.to_be_bytes()), 0x3c00);
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const_assert!((12.5f16).to_bits(), 0x4a40);
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const_assert!(u16::from_le_bytes(12.5f16.to_le_bytes()), 0x4a40);
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const_assert!((1337f16).to_bits(), 0x6539);
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const_assert!(u16::from_ne_bytes(1337f16.to_ne_bytes()), 0x6539);
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const_assert!((-14.25f16).to_bits(), 0xcb20);
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const_assert!(f16::from_bits(0x3c00), 1.0);
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const_assert!(f16::from_be_bytes(0x3c00u16.to_be_bytes()), 1.0);
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const_assert!(f16::from_bits(0x4a40), 12.5);
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const_assert!(f16::from_le_bytes(0x4a40u16.to_le_bytes()), 12.5);
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const_assert!(f16::from_bits(0x5be0), 252.0);
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const_assert!(f16::from_ne_bytes(0x5be0u16.to_ne_bytes()), 252.0);
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const_assert!(f16::from_bits(0xcb20), -14.25);
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both_assert!((1f16).to_bits(), 0x3c00);
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both_assert!(u16::from_be_bytes(1f16.to_be_bytes()), 0x3c00);
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both_assert!((12.5f16).to_bits(), 0x4a40);
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both_assert!(u16::from_le_bytes(12.5f16.to_le_bytes()), 0x4a40);
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both_assert!((1337f16).to_bits(), 0x6539);
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both_assert!(u16::from_ne_bytes(1337f16.to_ne_bytes()), 0x6539);
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both_assert!((-14.25f16).to_bits(), 0xcb20);
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both_assert!(f16::from_bits(0x3c00), 1.0);
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both_assert!(f16::from_be_bytes(0x3c00u16.to_be_bytes()), 1.0);
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both_assert!(f16::from_bits(0x4a40), 12.5);
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both_assert!(f16::from_le_bytes(0x4a40u16.to_le_bytes()), 12.5);
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both_assert!(f16::from_bits(0x5be0), 252.0);
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both_assert!(f16::from_ne_bytes(0x5be0u16.to_ne_bytes()), 252.0);
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both_assert!(f16::from_bits(0xcb20), -14.25);
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// Check that NaNs roundtrip their bits regardless of signalingness
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// 0xA is 0b1010; 0x5 is 0b0101 -- so these two together clobbers all the mantissa bits
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const QUIET_NAN: u16 = f16::NAN.to_bits() ^ 0x0155;
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const SIGNALING_NAN: u16 = f16::NAN.to_bits() ^ 0x02AA;
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const_assert!(f16::from_bits(QUIET_NAN).is_nan());
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const_assert!(f16::from_bits(SIGNALING_NAN).is_nan());
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const_assert!(f16::from_bits(QUIET_NAN).to_bits(), QUIET_NAN);
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both_assert!(f16::from_bits(QUIET_NAN).is_nan());
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both_assert!(f16::from_bits(SIGNALING_NAN).is_nan());
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both_assert!(f16::from_bits(QUIET_NAN).to_bits(), QUIET_NAN);
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if !has_broken_floats() {
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const_assert!(f16::from_bits(SIGNALING_NAN).to_bits(), SIGNALING_NAN);
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both_assert!(f16::from_bits(SIGNALING_NAN).to_bits(), SIGNALING_NAN);
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}
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}
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fn f32() {
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const_assert!((1f32).to_bits(), 0x3f800000);
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const_assert!(u32::from_be_bytes(1f32.to_be_bytes()), 0x3f800000);
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const_assert!((12.5f32).to_bits(), 0x41480000);
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const_assert!(u32::from_le_bytes(12.5f32.to_le_bytes()), 0x41480000);
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const_assert!((1337f32).to_bits(), 0x44a72000);
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const_assert!(u32::from_ne_bytes(1337f32.to_ne_bytes()), 0x44a72000);
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const_assert!((-14.25f32).to_bits(), 0xc1640000);
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const_assert!(f32::from_bits(0x3f800000), 1.0);
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const_assert!(f32::from_be_bytes(0x3f800000u32.to_be_bytes()), 1.0);
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const_assert!(f32::from_bits(0x41480000), 12.5);
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const_assert!(f32::from_le_bytes(0x41480000u32.to_le_bytes()), 12.5);
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const_assert!(f32::from_bits(0x44a72000), 1337.0);
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const_assert!(f32::from_ne_bytes(0x44a72000u32.to_ne_bytes()), 1337.0);
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const_assert!(f32::from_bits(0xc1640000), -14.25);
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both_assert!((1f32).to_bits(), 0x3f800000);
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both_assert!(u32::from_be_bytes(1f32.to_be_bytes()), 0x3f800000);
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both_assert!((12.5f32).to_bits(), 0x41480000);
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both_assert!(u32::from_le_bytes(12.5f32.to_le_bytes()), 0x41480000);
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both_assert!((1337f32).to_bits(), 0x44a72000);
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both_assert!(u32::from_ne_bytes(1337f32.to_ne_bytes()), 0x44a72000);
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both_assert!((-14.25f32).to_bits(), 0xc1640000);
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both_assert!(f32::from_bits(0x3f800000), 1.0);
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both_assert!(f32::from_be_bytes(0x3f800000u32.to_be_bytes()), 1.0);
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both_assert!(f32::from_bits(0x41480000), 12.5);
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both_assert!(f32::from_le_bytes(0x41480000u32.to_le_bytes()), 12.5);
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both_assert!(f32::from_bits(0x44a72000), 1337.0);
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both_assert!(f32::from_ne_bytes(0x44a72000u32.to_ne_bytes()), 1337.0);
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both_assert!(f32::from_bits(0xc1640000), -14.25);
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// Check that NaNs roundtrip their bits regardless of signalingness
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// 0xA is 0b1010; 0x5 is 0b0101 -- so these two together clobbers all the mantissa bits
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const QUIET_NAN: u32 = f32::NAN.to_bits() ^ 0x002A_AAAA;
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const SIGNALING_NAN: u32 = f32::NAN.to_bits() ^ 0x0055_5555;
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const_assert!(f32::from_bits(QUIET_NAN).is_nan());
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const_assert!(f32::from_bits(SIGNALING_NAN).is_nan());
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const_assert!(f32::from_bits(QUIET_NAN).to_bits(), QUIET_NAN);
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both_assert!(f32::from_bits(QUIET_NAN).is_nan());
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both_assert!(f32::from_bits(SIGNALING_NAN).is_nan());
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both_assert!(f32::from_bits(QUIET_NAN).to_bits(), QUIET_NAN);
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if !has_broken_floats() {
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const_assert!(f32::from_bits(SIGNALING_NAN).to_bits(), SIGNALING_NAN);
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both_assert!(f32::from_bits(SIGNALING_NAN).to_bits(), SIGNALING_NAN);
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}
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}
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fn f64() {
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const_assert!((1f64).to_bits(), 0x3ff0000000000000);
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const_assert!(u64::from_be_bytes(1f64.to_be_bytes()), 0x3ff0000000000000);
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const_assert!((12.5f64).to_bits(), 0x4029000000000000);
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const_assert!(u64::from_le_bytes(12.5f64.to_le_bytes()), 0x4029000000000000);
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const_assert!((1337f64).to_bits(), 0x4094e40000000000);
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const_assert!(u64::from_ne_bytes(1337f64.to_ne_bytes()), 0x4094e40000000000);
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const_assert!((-14.25f64).to_bits(), 0xc02c800000000000);
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const_assert!(f64::from_bits(0x3ff0000000000000), 1.0);
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const_assert!(f64::from_be_bytes(0x3ff0000000000000u64.to_be_bytes()), 1.0);
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const_assert!(f64::from_bits(0x4029000000000000), 12.5);
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const_assert!(f64::from_le_bytes(0x4029000000000000u64.to_le_bytes()), 12.5);
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const_assert!(f64::from_bits(0x4094e40000000000), 1337.0);
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const_assert!(f64::from_ne_bytes(0x4094e40000000000u64.to_ne_bytes()), 1337.0);
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const_assert!(f64::from_bits(0xc02c800000000000), -14.25);
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both_assert!((1f64).to_bits(), 0x3ff0000000000000);
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both_assert!(u64::from_be_bytes(1f64.to_be_bytes()), 0x3ff0000000000000);
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both_assert!((12.5f64).to_bits(), 0x4029000000000000);
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both_assert!(u64::from_le_bytes(12.5f64.to_le_bytes()), 0x4029000000000000);
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both_assert!((1337f64).to_bits(), 0x4094e40000000000);
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both_assert!(u64::from_ne_bytes(1337f64.to_ne_bytes()), 0x4094e40000000000);
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both_assert!((-14.25f64).to_bits(), 0xc02c800000000000);
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both_assert!(f64::from_bits(0x3ff0000000000000), 1.0);
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both_assert!(f64::from_be_bytes(0x3ff0000000000000u64.to_be_bytes()), 1.0);
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both_assert!(f64::from_bits(0x4029000000000000), 12.5);
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both_assert!(f64::from_le_bytes(0x4029000000000000u64.to_le_bytes()), 12.5);
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both_assert!(f64::from_bits(0x4094e40000000000), 1337.0);
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both_assert!(f64::from_ne_bytes(0x4094e40000000000u64.to_ne_bytes()), 1337.0);
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both_assert!(f64::from_bits(0xc02c800000000000), -14.25);
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// Check that NaNs roundtrip their bits regardless of signalingness
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// 0xA is 0b1010; 0x5 is 0b0101 -- so these two together clobbers all the mantissa bits
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@ -111,30 +117,30 @@ fn f64() {
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const QUIET_NAN: u64 = f64::NAN.to_bits() ^ 0x0005_5555_5555_5555;
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const SIGNALING_NAN: u64 = f64::NAN.to_bits() ^ 0x000A_AAAA_AAAA_AAAA;
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const_assert!(f64::from_bits(QUIET_NAN).is_nan());
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const_assert!(f64::from_bits(SIGNALING_NAN).is_nan());
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const_assert!(f64::from_bits(QUIET_NAN).to_bits(), QUIET_NAN);
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both_assert!(f64::from_bits(QUIET_NAN).is_nan());
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both_assert!(f64::from_bits(SIGNALING_NAN).is_nan());
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both_assert!(f64::from_bits(QUIET_NAN).to_bits(), QUIET_NAN);
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if !has_broken_floats() {
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const_assert!(f64::from_bits(SIGNALING_NAN).to_bits(), SIGNALING_NAN);
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both_assert!(f64::from_bits(SIGNALING_NAN).to_bits(), SIGNALING_NAN);
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}
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}
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#[cfg(target_arch = "x86_64")]
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fn f128() {
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const_assert!((1f128).to_bits(), 0x3fff0000000000000000000000000000);
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const_assert!(u128::from_be_bytes(1f128.to_be_bytes()), 0x3fff0000000000000000000000000000);
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const_assert!((12.5f128).to_bits(), 0x40029000000000000000000000000000);
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const_assert!(u128::from_le_bytes(12.5f128.to_le_bytes()), 0x40029000000000000000000000000000);
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const_assert!((1337f128).to_bits(), 0x40094e40000000000000000000000000);
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const_assert!(u128::from_ne_bytes(1337f128.to_ne_bytes()), 0x40094e40000000000000000000000000);
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const_assert!((-14.25f128).to_bits(), 0xc002c800000000000000000000000000);
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const_assert!(f128::from_bits(0x3fff0000000000000000000000000000), 1.0);
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const_assert!(f128::from_be_bytes(0x3fff0000000000000000000000000000u128.to_be_bytes()), 1.0);
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const_assert!(f128::from_bits(0x40029000000000000000000000000000), 12.5);
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const_assert!(f128::from_le_bytes(0x40029000000000000000000000000000u128.to_le_bytes()), 12.5);
|
||||
const_assert!(f128::from_bits(0x40094e40000000000000000000000000), 1337.0);
|
||||
both_assert!((1f128).to_bits(), 0x3fff0000000000000000000000000000);
|
||||
both_assert!(u128::from_be_bytes(1f128.to_be_bytes()), 0x3fff0000000000000000000000000000);
|
||||
both_assert!((12.5f128).to_bits(), 0x40029000000000000000000000000000);
|
||||
both_assert!(u128::from_le_bytes(12.5f128.to_le_bytes()), 0x40029000000000000000000000000000);
|
||||
both_assert!((1337f128).to_bits(), 0x40094e40000000000000000000000000);
|
||||
both_assert!(u128::from_ne_bytes(1337f128.to_ne_bytes()), 0x40094e40000000000000000000000000);
|
||||
both_assert!((-14.25f128).to_bits(), 0xc002c800000000000000000000000000);
|
||||
both_assert!(f128::from_bits(0x3fff0000000000000000000000000000), 1.0);
|
||||
both_assert!(f128::from_be_bytes(0x3fff0000000000000000000000000000u128.to_be_bytes()), 1.0);
|
||||
both_assert!(f128::from_bits(0x40029000000000000000000000000000), 12.5);
|
||||
both_assert!(f128::from_le_bytes(0x40029000000000000000000000000000u128.to_le_bytes()), 12.5);
|
||||
both_assert!(f128::from_bits(0x40094e40000000000000000000000000), 1337.0);
|
||||
assert_eq!(f128::from_ne_bytes(0x40094e40000000000000000000000000u128.to_ne_bytes()), 1337.0);
|
||||
const_assert!(f128::from_bits(0xc002c800000000000000000000000000), -14.25);
|
||||
both_assert!(f128::from_bits(0xc002c800000000000000000000000000), -14.25);
|
||||
|
||||
// Check that NaNs roundtrip their bits regardless of signalingness
|
||||
// 0xA is 0b1010; 0x5 is 0b0101 -- so these two together clobbers all the mantissa bits
|
||||
|
@ -142,20 +148,21 @@ fn f128() {
|
|||
const QUIET_NAN: u128 = f128::NAN.to_bits() | 0x0000_AAAA_AAAA_AAAA_AAAA_AAAA_AAAA_AAAA;
|
||||
const SIGNALING_NAN: u128 = f128::NAN.to_bits() ^ 0x0000_5555_5555_5555_5555_5555_5555_5555;
|
||||
|
||||
const_assert!(f128::from_bits(QUIET_NAN).is_nan());
|
||||
const_assert!(f128::from_bits(SIGNALING_NAN).is_nan());
|
||||
const_assert!(f128::from_bits(QUIET_NAN).to_bits(), QUIET_NAN);
|
||||
both_assert!(f128::from_bits(QUIET_NAN).is_nan());
|
||||
both_assert!(f128::from_bits(SIGNALING_NAN).is_nan());
|
||||
both_assert!(f128::from_bits(QUIET_NAN).to_bits(), QUIET_NAN);
|
||||
if !has_broken_floats() {
|
||||
const_assert!(f128::from_bits(SIGNALING_NAN).to_bits(), SIGNALING_NAN);
|
||||
both_assert!(f128::from_bits(SIGNALING_NAN).to_bits(), SIGNALING_NAN);
|
||||
}
|
||||
}
|
||||
|
||||
fn main() {
|
||||
f32();
|
||||
f64();
|
||||
|
||||
#[cfg(target_arch = "x86_64")]
|
||||
{
|
||||
f16();
|
||||
f128();
|
||||
}
|
||||
f32();
|
||||
f64();
|
||||
}
|
||||
|
|
Loading…
Add table
Reference in a new issue