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onnx--onnx/onnx/reference/ops/op_batch_normalization.py
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chore: import upstream snapshot with attribution
2026-07-13 12:41:19 +08:00

102 lines
2.9 KiB
Python

# Copyright (c) ONNX Project Contributors
# SPDX-License-Identifier: Apache-2.0
from __future__ import annotations
import numpy as np
from onnx.reference.op_run import OpRun
def _batchnorm_test_mode(
x: np.ndarray,
s: np.ndarray,
bias: np.ndarray,
mean: np.ndarray,
var: np.ndarray,
epsilon: float = 1e-5,
) -> np.ndarray:
dims_x = len(x.shape)
dim_ones = (1,) * (dims_x - 2)
s = s.reshape(-1, *dim_ones)
bias = bias.reshape(-1, *dim_ones)
mean = mean.reshape(-1, *dim_ones)
var = var.reshape(-1, *dim_ones)
y = s * (x - mean) / np.sqrt(var + epsilon) + bias
return y.astype(x.dtype)
def _batchnorm_training_mode(
x: np.ndarray,
s: np.ndarray,
bias: np.ndarray,
mean: np.ndarray,
var: np.ndarray,
momentum: float = 0.9,
epsilon: float = 1e-5,
) -> np.ndarray:
axis = tuple(np.delete(np.arange(len(x.shape)), 1))
saved_mean = x.mean(axis=axis)
saved_var = x.var(axis=axis)
output_mean = mean * momentum + saved_mean * (1 - momentum)
output_var = var * momentum + saved_var * (1 - momentum)
y = _batchnorm_test_mode(x, s, bias, saved_mean, saved_var, epsilon=epsilon)
return (
y.astype(x.dtype),
saved_mean.astype(x.dtype),
saved_var.astype(x.dtype),
output_mean.astype(x.dtype),
output_var.astype(x.dtype),
)
class BatchNormalization_6(OpRun):
def _run(
self,
x,
scale,
bias,
mean,
var,
epsilon=None,
is_test=None,
momentum=None,
spatial=None, # noqa: ARG002
):
if is_test:
res = _batchnorm_test_mode(x, scale, bias, mean, var, epsilon=epsilon)
else:
res = _batchnorm_training_mode(
x, scale, bias, mean, var, epsilon=epsilon, momentum=momentum
)
return (res,)
class BatchNormalization_9(OpRun):
def _run(self, x, scale, bias, mean, var, epsilon=None, momentum=None):
if momentum is None:
res = _batchnorm_test_mode(x, scale, bias, mean, var, epsilon=epsilon)
return (res,)
axis = tuple(np.delete(np.arange(len(x.shape)), 1))
saved_mean = x.mean(axis=axis)
saved_var = x.var(axis=axis)
output_mean = mean * momentum + saved_mean * (1 - momentum)
output_var = var * momentum + saved_var * (1 - momentum)
res = _batchnorm_test_mode(
x, scale, bias, output_mean, output_var, epsilon=epsilon
)
return (res,)
class BatchNormalization_14(OpRun):
def _run(
self, x, scale, bias, mean, var, epsilon=None, momentum=None, training_mode=None
):
if training_mode == 0:
res = _batchnorm_test_mode(x, scale, bias, mean, var, epsilon=epsilon)
return (res,)
res, __, _, output_mean, output_var = _batchnorm_training_mode(
x, scale, bias, mean, var, momentum, epsilon
)
return res, output_mean, output_var