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Legacy API changes (#441)
* initial commit

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* another initial commit

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* another initial commit

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* one more initial commit

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* next step

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* next step

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* Refactored buffer() and shapeInfo() methods usage with NDArray class.

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* Adopt Graph class methods to use const shapes.

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* Adopt choose op to use constant shapes.

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* Adopt where op shape method to use constant shapes.

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* Adopt lstsq op to use constant empty shapes.

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* Adopt matrix_diag_part op shape routine to use constant shapes.

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* Adopt determinant ops to use constant shapes.

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* Adopt mean_pairwssqerr_loss ops to use constant shapes.

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* Adopt ops shape methods.

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* Adopt shape methods for loss ops.

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* Adopt log_loss op shape method.

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* Adopt shape methods for ops.

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* Adopt dilation2d ops shape methods.

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* Adopted deconv2d ops shape methods.

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* Adopted dynamicRNN op shape method.

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* Adopted shape methods for ops.

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* Adopted shape methods for lstm layer ops.

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* few updates

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* first cuda tweak

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* Adopt constant shapes for sconv2d ops.

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* Adopt constant shapes for gru ops.

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* Adopt constant shapes with shape methods for segment ops and so on.

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* Adopted constant shapes with unsorted_segment_* ops.

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* Adopted constant shapes with gamma op shape method.

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* Adopted shape methods of reduce_stddev ops.

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* Adopted shape methods for reduce_* ops.

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* Adopt shape method for squeeze op.

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* Adopt strided_slice shape method.

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* Refactored concat op shape method to adopt constant shapes.

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* Adopted shape method for mirror_pad op.

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* Adopted split op shape method.

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* Adopted tile ops shape methods.

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* Added const cast for mkldnn routines handles.

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* Refactored logSoftMaxForVector_ routine to conform with proper data and shape pointer casts.

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* Cosmetic changes to proper usage of constant pointers.

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* Refactored a couple shape comparators for strides and addBias helpers to proper use data pointers with inplace option.

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* Refactored depthToSpace helpers.

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* Refactored histogram helpers.

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* Refactored im2col helpers.

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* Refactored gather and gatherND helpers.

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* Fixed buffer usage on percentile helper.

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* Fixed gather shape with helpers and range buffer usage.

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* Fixed buffer usage with space to depth helpers.

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* Fixed buffer usage and constant shapes.

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* Fixed buffer usage with LUP decomposition>

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* Refactored onehot_ helper.

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* Refactored pad and prefix to use constant shapes.

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* Refactoed softmax helpers.

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* Fixed space to batch helpers to use buffers properly.

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* Fixed stack and split helpers.

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* Fixed buffer usage with sparse to dense helpers.

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* Fixed buffer usage with mindistance_ helpers.

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* Fixed buffer usage with tile helper.

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* Fixed constant shape usage.

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* Fixed constant shape usage with legacy pairwise bool ops.

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* Refactored a couple of methods to adopt constant shape usage.

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* Fixed broadcasting with constant shape."

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* Fixed const usage with inplace reverse and constant shapes with legacy reduction.

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* Refactored legacy ops with const shapes.

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* Refactored sort to adopt constant shapes.

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* Corrected sort for constant shape usage.

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* Fixed constant shape usage with special methods.

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* Refactored Context to conform with constant shape usage.

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* CUDA broadcasting headers

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* pairwise/indexreduce/random headers

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* Refactored native ops to adopt constant shapes.

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* legacy reduce3/scalar headers

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* Corrected pullRow signature and tests.

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* Corrected routines to proper use of constant shapes.

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* Refactored tests to use constant shapes properly.

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* Refactored legacy ops tests to use constant shapes properly.

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* Refactored buffer usage with NDArray tests.

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* Fixed native ops tests.

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* Fixed special concat routine.

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* Fixed buffer usage with test.

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* Fixed buffer usage with a test.

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* Refactored TAD.h and tests.

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* Refactored calcStrides* routines to use constant shapes.

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* Fixed miscelaneous errors with constant shapes.

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* NativeOps const changes

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* Corrected definitions for declared functions.

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* NativeOps const changes

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* few more const changes

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* Fixed const shapes with shape routines.

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* few more const changes

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* Fixed shape method for broadcastable case.

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* few more const changes

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* xw_plus_b BP shape fn restored

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* Fixed signatures with broadcasting.

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* Repaired backprops shape methods for a set of operations.

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* Refactored broadcast bool for cuda.

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* Refactored methods for 3 args with const qualifier.

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* Fixed a couple of kernel signatures for broadcasting.

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* Fixed kernels signatures for const buffers and shapes.

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* Refactored pairwise methods to persistent buffers and shapes usage.

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* Adopt const to buffers and shapes with kernels.

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* Adopt const to buffers and shapes with scalar kernels.

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* Refactored indexreduce kernels signatures to use const buffers and shapes.

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* Refactored pairwise kernels to adopt cons shapes and buffers.

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* Refactored pairwise bool kernels to adopt cons shapes and buffers.

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* Refactored random special ops to conform with const shapes and buffers.

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* Refactored native ops to conform with const shapes and buffers under cuda platform.

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* Cosmetical changes only.

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* Fixed const shapes and buffers error.

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* Corrected start pos routine.

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* Refactored methods to conform with const shapes and buffers.

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* Refactored helpers to use proper methods instead.

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* bunch of changes

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* next bunch of changes

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* next bunch of changes

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* Fixed execScalar declaration.

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* Fixed execScalar declaration.

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* Corrected const shape cases with sort and so on.

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* Fixed const shapes for sort.

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* Refactored kernel declarations to adopt const shapes.

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* Fixed kernels declarations to adopt const shapes.

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* Corrected kernel declarations to adopt const shapes and buffers.

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* Fixed kernels declarations to adopt const shapes.

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* Fixed segment helpers kernels declarations and so on to adopt const shapes.

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* Fixed const shape usage with segment and solve helpers.

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* Fixed kernel declaration with adjustWeight helper.

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* Fixed cuda implementations for constant shape helpers.

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* Adopted const shape usage with kernels.

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* Adopted top_k kernels to use const shapes and buffers.

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* Corrected kernels declarations to adopt const shapes with helpers.

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* Refactored NDArray definitions to adopt const shapes and buffers.

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* Fixed const shapes with image suppression helpers.

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* Slight improvement with buffers.

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* Refactored buffer usage.

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* Refactored buffer usage with tests.

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* Fixed const shape usage with definitions.

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* minor updates on cpu side

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* Refactored const shape usage with ConstantDescritor and native ops with cuda platform.

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* Refactored tear and tile kernels to adopt with const shapes.

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* softmax_loop fix

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* update missing signature

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* softmax again

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* few more missing consts

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* new methods updated

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Co-authored-by: shugeo <sgazeos@gmail.com>
2020-05-09 08:06:14 +03:00

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/*******************************************************************************
* Copyright (c) 2015-2018 Skymind, Inc.
*
* This program and the accompanying materials are made available under the
* terms of the Apache License, Version 2.0 which is available at
* https://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.
*
* SPDX-License-Identifier: Apache-2.0
******************************************************************************/
//
// @author raver119@gmail.com
//
#include <ops/declarable/helpers/lrn.h>
#include <graph/Status.h>
#include <helpers/ConstantTadHelper.h>
namespace sd {
namespace ops {
namespace helpers {
template <typename T>
static _CUDA_G void lrnKernel(void *vx, Nd4jLong const*xTadShapeInfo, Nd4jLong const*xTadOffsets, void *vz, Nd4jLong const*zTadShapeInfo, Nd4jLong const*zTadOffsets, Nd4jLong numTads, Nd4jLong tadLength, int depth, double bias, double alpha, double beta) {
extern __shared__ char sharedChar[];
T* shared = reinterpret_cast<T*>(sharedChar);
auto xEws = shape::elementWiseStride(xTadShapeInfo);
auto zEws = shape::elementWiseStride(zTadShapeInfo);
auto xOrder = shape::order(xTadShapeInfo);
auto zOrder = shape::order(zTadShapeInfo);
const T tbias = static_cast<T>(bias);
const T tbeta = static_cast<T>(beta);
const T talpha = static_cast<T>(alpha);
// one block of threads processes 1 example within batch
for (uint i = blockIdx.x; i < numTads; i += gridDim.x) {
auto x = reinterpret_cast<T*>(vx) + xTadOffsets[i];
auto z = reinterpret_cast<T*>(vz) + zTadOffsets[i];
// load everything into shared memory, so we'll operate on shared memory from now on
shared[threadIdx.x] = x[threadIdx.x * xEws];
__syncthreads();
const uint begin = sd::math::nd4j_max<int>(0, threadIdx.x - depth);
const uint last = depth + threadIdx.x + 1;
const uint end = sd::math::nd4j_min<int>(last, tadLength);
T prev = 0.;
for (int s = begin; s < end; s++)
prev = prev + shared[s] * shared[s];
z[threadIdx.x * zEws] = shared[threadIdx.x] / sd::math::nd4j_pow<T, T, T>(tbias + alpha * prev, tbeta);
}
}
template <typename X, typename Z>
static _CUDA_G void lrnBPKernel(void const* vx, Nd4jLong const* xTadShapeInfo, Nd4jLong const* xTadOffsets, void *vz, Nd4jLong const* zTadShapeInfo, Nd4jLong const* zTadOffsets, Nd4jLong numTads, Nd4jLong tadLength, int depth, double bias, double alpha, double beta) {
extern __shared__ char sharedChar[];
X* sharedX = reinterpret_cast<X*>(sharedChar);
Z* sharedY = reinterpret_cast<Z*>(sharedX + blockDim.x);
auto xEws = shape::elementWiseStride(xTadShapeInfo);
auto zEws = shape::elementWiseStride(zTadShapeInfo);
auto xOrder = shape::order(xTadShapeInfo);
auto zOrder = shape::order(zTadShapeInfo);
const Z tbias = static_cast<Z>(bias);
const Z tbeta = static_cast<Z>(beta);
const Z talpha = static_cast<Z>(alpha);
const Z coeff = talpha * tbeta;
for (uint i = blockIdx.x; i < numTads; i += gridDim.x) {
auto x = reinterpret_cast<X const*>(vx) + xTadOffsets[i];
auto z = reinterpret_cast<Z*>(vz) + zTadOffsets[i];
const uint begin = sd::math::nd4j_max<int>(0, threadIdx.x - depth);
const uint last = depth + threadIdx.x + 1;
const uint end = sd::math::nd4j_min<int>(last, tadLength);
// load everything into shared memory
sharedX[threadIdx.x] = x[threadIdx.x * xEws];
sharedY[threadIdx.x] = 0.f;
__syncthreads();
// we're operating in shared memory
for (int s = begin; s < end; s++)
sharedY[threadIdx.x] = sharedY[threadIdx.x] + sharedX[s] * sharedX[s];
__syncthreads();
Z factor[1024];
Z init = tbias + talpha * sharedY[threadIdx.x];
Z prev = 0.f;
for (uint s = begin; s < end; ++s) {
factor[s] = sd::math::nd4j_pow<Z, Z, Z>(tbias + talpha * sharedY[s], -tbeta - 1);
prev = prev + sharedX[s] * factor[s];
}
z[threadIdx.x * zEws] = factor[threadIdx.x] * init - 2 * sharedX[threadIdx.x] * coeff * prev;
}
}
template <typename X, typename Z>
static void lrnBP_(sd::graph::Context& block, const NDArray& input, const NDArray& gradO, NDArray& gradI, const int depth, const float bias, const float alpha, const float beta) {
auto rank = input.rankOf();
auto packX = ConstantTadHelper::getInstance()->tadForDimensions(input.shapeInfo(), {rank - 1});
auto packZ = ConstantTadHelper::getInstance()->tadForDimensions(gradI.shapeInfo(), {rank - 1});
const auto tadLength = shape::length(packX.primaryShapeInfo());
const int numBlocks = sd::math::nd4j_min<Nd4jLong>(1024, packX.numberOfTads());
const int numThreads = tadLength;
if (tadLength > 1024 || tadLength < 1)
throw std::runtime_error("LRN: tadLength > 1024 isn't implemented yet");
lrnBPKernel<X, Z><<<numBlocks, numThreads, numThreads * sizeof(X) + numThreads * sizeof(Z) + 1024, *block.launchContext()->getCudaStream()>>>(input.specialBuffer(), packX.platformShapeInfo(), packX.platformOffsets(), gradI.specialBuffer(), packZ.platformShapeInfo(), packZ.platformOffsets(), packX.numberOfTads(), tadLength, depth, bias, alpha, beta);
gradI.tickWriteDevice();
gradI *= gradO;
}
void lrnBP(sd::graph::Context& block, const NDArray& input, const NDArray& gradO, NDArray& gradI, const int depth, const float bias, const float alpha, const float beta) {
input.syncToDevice();
gradO.syncToDevice();
BUILD_DOUBLE_SELECTOR(input.dataType(), gradO.dataType(), lrnBP_, (block, input, gradO, gradI, depth, bias, alpha, beta), FLOAT_TYPES, FLOAT_TYPES);
gradI.tickWriteDevice();
}
template <typename T>
static void lrnFunctor_(sd::graph::Context& block, NDArray* input, NDArray* output, int depth, double bias, double alpha, double beta) {
auto rank = input->rankOf();
auto packX = ConstantTadHelper::getInstance()->tadForDimensions(input->shapeInfo(), {rank - 1});
auto packZ = ConstantTadHelper::getInstance()->tadForDimensions(output->shapeInfo(), {rank - 1});
const auto tadLength = shape::length(packX.primaryShapeInfo());
const int numBlocks = sd::math::nd4j_min<Nd4jLong>(1024, packX.numberOfTads());
const int numThreads = tadLength;
if (tadLength > 1024 || tadLength < 1)
throw std::runtime_error("LRN: tadLength > 1024 isn't implemented yet");
lrnKernel<T><<<numBlocks, numThreads, numThreads * sizeof(T), *block.launchContext()->getCudaStream()>>>(input->specialBuffer(), packX.platformShapeInfo(), packX.platformOffsets(), output->specialBuffer(), packZ.platformShapeInfo(), packZ.platformOffsets(), packX.numberOfTads(), tadLength, depth, bias, alpha, beta);
}
int lrnFunctor(sd::graph::Context& block, NDArray* input, NDArray* output, int depth, double bias, double alpha, double beta) {
input->syncToDevice();
BUILD_SINGLE_SELECTOR(input->dataType(), lrnFunctor_, (block, input, output, depth, bias, alpha, beta), FLOAT_TYPES);
output->tickWriteDevice();
return Status::OK();
}
}
}
}