ruda_kernel/dsl/post_processing/
predicate.rs1use alloc::vec::Vec;
2use core::{f32, f64};
3
4use ruda_core::ir::{
5 Allocator, Comparison, ElemType, FloatKind, Instruction, ManagedVariable, Operation, Processor,
6 Scope, ScopeProcessing, UIntKind, Variable,
7};
8use half::{bf16, f16};
9
10use crate::dsl::prelude::*;
11
12define_scalar!(ElemA);
13define_scalar!(IntB);
14define_size!(SizeA);
15
16#[derive(Debug, Default)]
17pub struct PredicateProcessor;
18
19impl Processor for PredicateProcessor {
20 fn transform(
21 &self,
22 mut processing: ruda_core::ir::ScopeProcessing,
23 allocator: Allocator,
24 ) -> ruda_core::ir::ScopeProcessing {
25 let mut instructions = Vec::new();
26 core::mem::swap(&mut processing.instructions, &mut instructions);
27
28 for instruction in instructions {
29 if let Operation::Comparison(comparison) = &instruction.operation {
30 match comparison {
31 Comparison::IsNan(op) => {
32 run_polyfill(
33 &mut processing,
34 op.input,
35 instruction.out(),
36 &allocator,
37 is_nan::expand::<ElemA, IntB, SizeA>,
38 );
39 continue;
40 }
41 Comparison::IsInf(op) => {
42 run_polyfill(
43 &mut processing,
44 op.input,
45 instruction.out(),
46 &allocator,
47 is_inf::expand::<ElemA, IntB, SizeA>,
48 );
49 continue;
50 }
51 _ => {}
52 }
53 }
54 processing.instructions.push(instruction);
55 }
56 processing
57 }
58}
59
60fn run_polyfill<T: RudaPrimitive, O: RudaPrimitive>(
61 processing: &mut ScopeProcessing,
62 input: Variable,
63 out: Variable,
64 allocator: &Allocator,
65 mut polyfill: impl FnMut(&mut Scope, NativeExpand<T>, u32, u32) -> NativeExpand<O>,
66) {
67 let input = ManagedVariable::Plain(input);
68 let mut scope = Scope::root(false)
69 .with_allocator(allocator.clone())
70 .with_types(processing.typemap.clone());
71 scope.register_type::<ElemA>(input.storage_type());
72 scope.register_size::<SizeA>(input.vector_size());
73
74 let out_poly = if let ElemType::Float(kind) = input.elem_type() {
75 let (unsigned_ty, bit_width, mantissa_bits) = match kind {
76 FloatKind::F64 => (
77 UIntKind::U64,
78 f64::size_bits().unwrap(),
79 f64::MANTISSA_DIGITS - 1,
80 ),
81 FloatKind::F32 => (
82 UIntKind::U32,
83 f32::size_bits().unwrap(),
84 f32::MANTISSA_DIGITS - 1,
85 ),
86 FloatKind::F16 => (
87 UIntKind::U16,
88 f16::size_bits().unwrap(),
89 f16::MANTISSA_DIGITS - 1,
90 ),
91 FloatKind::BF16 => (
92 UIntKind::U16,
93 bf16::size_bits().unwrap(),
94 bf16::MANTISSA_DIGITS - 1,
95 ),
96 _ => unreachable!(),
97 };
98 scope.register_type::<IntB>(ElemType::UInt(unsigned_ty).into());
99
100 let exp_bits = bit_width as u32 - mantissa_bits - 1;
101
102 polyfill(&mut scope, input.into(), mantissa_bits, exp_bits).expand
103 } else {
104 panic!("Should be float")
105 };
106
107 let tmp_processing = scope.process([]);
108
109 processing.instructions.extend(tmp_processing.instructions);
110 processing.variables.extend(tmp_processing.variables);
111
112 processing
113 .instructions
114 .push(Instruction::new(Operation::Copy(*out_poly), out));
115}
116
117#[ruda]
118fn is_nan<F: Float, U: Int, N: Size>(
119 x: Vector<F, N>,
120 #[comptime] mantissa_bits: u32,
121 #[comptime] exp_bits: u32,
122) -> Vector<bool, N> {
123 let inf_bits = comptime![((1u64 << exp_bits as u64) - 1u64) << mantissa_bits as u64];
125 let abs_mask = comptime![(1u64 << (exp_bits as u64 + mantissa_bits as u64)) - 1u64];
126
127 let bits: Vector<U, N> = Vector::<U, N>::reinterpret(x);
128
129 let abs_bits = bits & Vector::new(U::cast_from(abs_mask));
130
131 abs_bits.greater_than(Vector::new(U::cast_from(inf_bits)))
132}
133
134#[ruda]
136fn is_inf<F: Float, U: Int, N: Size>(
137 x: Vector<F, N>,
138 #[comptime] mantissa_bits: u32,
139 #[comptime] exp_bits: u32,
140) -> Vector<bool, N> {
141 let inf_bits = comptime![((1u64 << exp_bits as u64) - 1u64) << mantissa_bits as u64];
143 let abs_mask = comptime![(1u64 << (exp_bits as u64 + mantissa_bits as u64)) - 1u64];
144
145 let bits: Vector<U, N> = Vector::<U, N>::reinterpret(x);
146
147 let abs_bits = bits & Vector::new(U::cast_from(abs_mask));
148
149 abs_bits.equal(Vector::new(U::cast_from(inf_bits)))
150}