#![allow(non_snake_case)]
use teeny_core::dtype::Float;
use teeny_macros::kernel;
use teeny_triton::triton::{
types::{AddOffsets, Comparison, Tensor},
*,
};
#[kernel]
pub fn lppool3d_forward<
T: Triton,
D: Float,
const KD: i32,
const KH: i32,
const KW: i32,
const STRIDE_D: i32,
const STRIDE_H: i32,
const STRIDE_W: i32,
const BLOCK_OW: i32,
>(
input_ptr: T::Pointer<D>,
output_ptr: T::Pointer<D>,
_B: i32,
C: i32,
Dv: i32,
H: i32,
W: i32,
OD: i32,
OH: i32,
OW: i32,
p: f32,
) where
T::I32Tensor: Tensor<i32, 1>,
T::I32Tensor: Comparison<i32, BoolTensor = T::BoolTensor>,
T::Pointer<D>: AddOffsets<i32, 1, T::I32Tensor, Output = T::Tensor<T::Pointer<D>>>,
{
let pid = T::program_id(Axis::X);
let num_ow_tiles = T::cdiv(OW, BLOCK_OW);
let ow_tile = pid % num_ow_tiles;
let rest = pid / num_ow_tiles;
let oh = rest % OH;
let rest2 = rest / OH;
let od = rest2 % OD;
let bco = rest2 / OD;
let c = bco % C;
let b = bco / C;
let ow_start = ow_tile * BLOCK_OW;
let ow_range = T::arange(0, BLOCK_OW) + ow_start;
let ow_mask = ow_range.lt(OW);
let in_bc_base = (b * C + c) * Dv * H * W;
let out_base = ((b * C + c) * OD * OH * OW) + od * OH * OW + oh * OW;
let p_vec = T::full::<f32>(&[BLOCK_OW], p);
let inv_p_vec = T::full::<f32>(&[BLOCK_OW], 1.0_f32 / p);
let eps_vec = T::full::<f32>(&[BLOCK_OW], 1e-12_f32);
let mut acc = T::zeros::<f32>(&[BLOCK_OW]);
let loop_bound = KD * KH * KW;
for idx in 0..loop_bound {
let kw = idx % KW;
let tmp = idx / KW;
let kh = tmp % KH;
let kd = tmp / KH;
let id = od * STRIDE_D + kd;
let ih = oh * STRIDE_H + kh;
let iw_range = ow_range * STRIDE_W + kw;
let in_offsets = iw_range + (in_bc_base + id * H * W + ih * W);
let tile = T::load(
input_ptr.add_offsets(in_offsets),
Some(ow_mask),
Some(T::zeros::<D>(&[BLOCK_OW])),
&[],
None,
None,
None,
false,
);
let tile_f32 = T::cast::<D, f32>(tile, None, false);
let abs_tile = T::abs(tile_f32);
let safe_abs = T::maximum(abs_tile, eps_vec);
let pow_tile = T::exp(p_vec * T::log(safe_abs));
acc = acc + pow_tile;
}
let safe_acc = T::maximum(acc, eps_vec);
let result_f32 = T::exp(T::log(safe_acc) * inv_p_vec);
let result = T::cast::<f32, D>(result_f32, None, false);
let out_offsets = ow_range + out_base;
T::store(
output_ptr.add_offsets(out_offsets),
result,
Some(ow_mask),
&[],
None,
None,
);
}
#[kernel]
pub fn lppool3d_backward<
T: Triton,
D: Float,
const KD: i32,
const KH: i32,
const KW: i32,
const STRIDE_D: i32,
const STRIDE_H: i32,
const STRIDE_W: i32,
const BLOCK_OW: i32,
>(
dy_ptr: T::Pointer<D>,
x_ptr: T::Pointer<D>,
y_ptr: T::Pointer<D>,
dx_ptr: T::Pointer<D>,
_B: i32,
C: i32,
Dv: i32,
H: i32,
W: i32,
OD: i32,
OH: i32,
OW: i32,
p: f32,
) where
T::I32Tensor: Tensor<i32, 1>,
T::I32Tensor: Comparison<i32, BoolTensor = T::BoolTensor>,
T::Pointer<D>: AddOffsets<i32, 1, T::I32Tensor, Output = T::Tensor<T::Pointer<D>>>,
{
let pid = T::program_id(Axis::X);
let num_ow_tiles = T::cdiv(OW, BLOCK_OW);
let ow_tile = pid % num_ow_tiles;
let rest = pid / num_ow_tiles;
let oh = rest % OH;
let rest2 = rest / OH;
let od = rest2 % OD;
let bco = rest2 / OD;
let c = bco % C;
let b = bco / C;
let ow_start = ow_tile * BLOCK_OW;
let ow_range = T::arange(0, BLOCK_OW) + ow_start;
let ow_mask = ow_range.lt(OW);
let in_bc_base = (b * C + c) * Dv * H * W;
let out_base = ((b * C + c) * OD * OH * OW) + od * OH * OW + oh * OW;
let pm1_vec = T::full::<f32>(&[BLOCK_OW], p - 1.0_f32);
let eps_vec = T::full::<f32>(&[BLOCK_OW], 1e-12_f32);
let zeros_f32 = T::zeros::<f32>(&[BLOCK_OW]);
let out_offsets = ow_range + out_base;
let dy_tile = T::load(
dy_ptr.add_offsets(out_offsets),
Some(ow_mask),
Some(T::zeros::<D>(&[BLOCK_OW])),
&[],
None,
None,
None,
false,
);
let dy_f32 = T::cast::<D, f32>(dy_tile, None, false);
let y_tile = T::load(
y_ptr.add_offsets(out_offsets),
Some(ow_mask),
Some(T::zeros::<D>(&[BLOCK_OW])),
&[],
None,
None,
None,
false,
);
let y_f32 = T::cast::<D, f32>(y_tile, None, false);
let safe_y = T::maximum(y_f32, eps_vec);
let loop_bound = KD * KH * KW;
for idx in 0..loop_bound {
let kw = idx % KW;
let tmp = idx / KW;
let kh = tmp % KH;
let kd = tmp / KH;
let id = od * STRIDE_D + kd;
let ih = oh * STRIDE_H + kh;
let iw_range = ow_range * STRIDE_W + kw;
let in_offsets = iw_range + (in_bc_base + id * H * W + ih * W);
let x_tile = T::load(
x_ptr.add_offsets(in_offsets),
Some(ow_mask),
Some(T::zeros::<D>(&[BLOCK_OW])),
&[],
None,
None,
None,
false,
);
let x_f32 = T::cast::<D, f32>(x_tile, None, false);
let abs_x = T::abs(x_f32);
let safe_abs = T::maximum(abs_x, eps_vec);
let pos = T::where_(
T::gt(x_f32, zeros_f32),
T::full(&[BLOCK_OW], 1.0_f32),
zeros_f32,
);
let neg = T::where_(
T::gt(zeros_f32, x_f32),
T::full(&[BLOCK_OW], 1.0_f32),
zeros_f32,
);
let sign_x = pos - neg;
let ratio = safe_abs / safe_y;
let safe_ratio = T::maximum(ratio, eps_vec);
let pow_ratio = T::exp(pm1_vec * T::log(safe_ratio));
let dx_f32 = dy_f32 * sign_x * pow_ratio;
let dx_tile = T::cast::<f32, D>(dx_f32, None, false);
T::atomic_add(
dx_ptr.add_offsets(in_offsets),
dx_tile,
Some(ow_mask),
None,
None,
);
}
}
pub struct Lppool3dOp<'a, T: Float> {
pub forward: Lppool3dForward<T>,
pub backward: Lppool3dBackward<T>,
_marker: core::marker::PhantomData<&'a ()>,
}