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paddlepaddle--paddle/paddle/phi/kernels/impl/fake_dequantize_kernel_impl.h
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2026-07-13 12:40:42 +08:00

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// Copyright (c) 2024 PaddlePaddle Authors. All Rights Reserved.
//
// Licensed under the Apache License, Version 2.0 (the "License");
// you may not use this file except in compliance with the License.
// You may obtain a copy of the License at
//
// http://www.apache.org/licenses/LICENSE-2.0
//
// Unless required by applicable law or agreed to in writing, software
// distributed under the License is distributed on an "AS IS" BASIS,
// WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
// See the License for the specific language governing permissions and
// limitations under the License.
#pragma once
#include "paddle/phi/kernels/fake_dequantize_kernel.h"
#include "paddle/phi/kernels/funcs/fake_dequantize_functor.h"
namespace phi {
template <typename T, typename Context>
void FakeDequantizeMaxAbsKernel(const Context& dev_ctx,
const DenseTensor& x,
const DenseTensor& scale,
float max_range,
DenseTensor* out) {
dev_ctx.template Alloc<T>(out);
funcs::DequantizeFunctor<Context, T>()(
dev_ctx, &x, &scale, static_cast<T>(max_range), out);
}
template <typename T, typename Context>
void FakeChannelWiseDequantizeMaxAbsKernel(
const Context& dev_ctx,
const DenseTensor& x,
const std::vector<const DenseTensor*>& scales,
const std::vector<int>& quant_bits,
int quant_axis,
int x_num_col_dims,
DenseTensor* out) {
int max_range = 1;
dev_ctx.template Alloc<T>(out);
int scale_num = scales.size();
if (scale_num == 1) {
PADDLE_ENFORCE_EQ(
scales[0]->numel(),
x.dims()[quant_axis],
common::errors::PreconditionNotMet(
"The number of first scale values must be the same with "
"quant_axis dimension value of Input(X) when the `Scales` has "
"only one element, but %ld != %ld here.",
scales[0]->numel(),
x.dims()[quant_axis]));
max_range *= (std::pow(2, quant_bits[0] - 1) - 1);
} else if (scale_num == 2) {
PADDLE_ENFORCE_EQ(
scales[0]->numel(),
x.dims()[x_num_col_dims],
common::errors::PreconditionNotMet(
"The number of first scale values must be the same with "
"corresponding dimension value of Input(X) when the `Scales` "
"has two elements, but %ld != %ld here.",
scales[0]->numel(),
x.dims()[1]));
PADDLE_ENFORCE_EQ(scales[1]->numel(),
1,
common::errors::PreconditionNotMet(
"The second scale tensor should only have one "
"value at now, but it has %ld values here.",
scales[1]->numel()));
max_range *= (std::pow(2, quant_bits[0] - 1) - 1) *
(std::pow(2, quant_bits[1] - 1) - 1);
}
funcs::ChannelDequantizeFunctor<Context, T>()(
dev_ctx,
&x,
(const_cast<std::vector<const DenseTensor*>*>(&scales))->data(),
scale_num,
static_cast<T>(max_range),
quant_axis,
x_num_col_dims,
out);
}
} // namespace phi