2019-06-06 14:21:15 +02:00
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/*******************************************************************************
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* Copyright (c) 2015-2018 Skymind, Inc.
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*
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* This program and the accompanying materials are made available under the
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* terms of the Apache License, Version 2.0 which is available at
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* https://www.apache.org/licenses/LICENSE-2.0.
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*
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* Unless required by applicable law or agreed to in writing, software
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* distributed under the License is distributed on an "AS IS" BASIS, WITHOUT
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* WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied. See the
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* License for the specific language governing permissions and limitations
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* under the License.
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*
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* SPDX-License-Identifier: Apache-2.0
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******************************************************************************/
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//
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// Created by raver119 on 29/10/17.
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//
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#include <op_boilerplate.h>
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#if NOT_EXCLUDED(OP_transpose)
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#include <ops/declarable/CustomOperations.h>
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#include <helpers/ShapeUtils.h>
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namespace nd4j {
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namespace ops {
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//////////////////////////////////////////////////////////////////////////
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2020-02-13 18:59:35 +01:00
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CUSTOM_OP_IMPL(transpose, 1, 1, false, 0, 0) {
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2019-06-06 14:21:15 +02:00
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auto x = INPUT_VARIABLE(0);
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if (block.width() == 1) {
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if (block.isInplace()) {
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x->transposei();
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STORE_RESULT(*x);
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} else {
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auto output = OUTPUT_VARIABLE(0);
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auto t = x->transpose();
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output->assign(t);
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STORE_RESULT(*output);
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}
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} else {
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// this is tf-mode transpose, that's nd4j permute
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bool replace = false;
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std::vector<int> arguments(*block.getIArguments());
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auto w = block.width();
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auto a = arguments.size();
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if (w == 2 && a == 0) {
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auto axis = INPUT_VARIABLE(1);
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for (int e = 0; e < axis->lengthOf(); e++) {
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auto ax = axis->e<int>(e);
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if (ax < 0)
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ax += x->rankOf();
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arguments.emplace_back(ax);
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}
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replace = true;
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} else if (a == 0) {
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for (int e = x->rankOf() - 1; e >= 0; e--)
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arguments.emplace_back(e);
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}
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// 0D edge case
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if (x->rankOf() == 0) {
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REQUIRE_TRUE(arguments.size() == 1, 0, "Permute: only one axis is allowed for scalar");
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auto output = OUTPUT_VARIABLE(0);
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if (!block.isInplace())
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output->assign(x);
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return Status::OK();
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}
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if(block.isInplace()) { // in-place
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x->permutei(arguments);
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STORE_RESULT(x);
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} else {
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auto input = x->permute(arguments);
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auto output = OUTPUT_VARIABLE(0);
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output->assign(input);
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}
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}
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return Status::OK();
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}
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DECLARE_TYPES(transpose) {
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getOpDescriptor()
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->setAllowedInputTypes(nd4j::DataType::ANY)
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->setSameMode(true);
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}
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DECLARE_SHAPE_FN(transpose) {
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if (block.width() == 1) {
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auto outputShapeInfo = ShapeUtils::evalTranspShapeInfo(*INPUT_VARIABLE(0), block.workspace());
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return SHAPELIST(outputShapeInfo);
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} else {
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// this is basically permute mode
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auto shapeList = SHAPELIST();
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auto arguments = block.getIArguments();
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if (shape::rank(inputShape->at(0)) == 0) {
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Nd4jLong *newshape;
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ALLOCATE(newshape, block.getWorkspace(), shape::shapeInfoLength(inputShape->at(0)), Nd4jLong);
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newshape[0] = 0;
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newshape[1] = 0;
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newshape[2] = 1;
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newshape[3] = 99;
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ArrayOptions::copyDataType(newshape, inputShape->at(0));
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shapeList->push_back(newshape);
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} else if (arguments->size() > 0 || inputShape->size() > 1) {
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auto axis = arguments->size() > 0 ? *arguments : (INPUT_VARIABLE(1))->template asVectorT<int>();
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auto outputShapeInfo = ShapeUtils::evalPermShapeInfo(axis.data(), axis.size(), *INPUT_VARIABLE(0), block.workspace());
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shapeList->push_back(outputShapeInfo);
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} else if (inputShape->size() == 2) {
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// dead end
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auto axis = INPUT_VARIABLE(1);
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auto axisV = axis->template asVectorT<Nd4jLong>();
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auto newshape = ShapeUtils::evalPermShapeInfo(axisV.data(), axisV.size(), *INPUT_VARIABLE(0), block.workspace());
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shapeList->push_back(newshape);
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} else {
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int rank = shape::rank(inputShape->at(0));
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for (int e = rank - 1; e >= 0; e--)
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arguments->emplace_back(e);
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auto outputShapeInfo = ShapeUtils::evalPermShapeInfo(arguments->data(), arguments->size(), *INPUT_VARIABLE(0), block.workspace());
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shapeList->push_back(outputShapeInfo);
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}
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return shapeList;
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}
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}
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}
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}
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#endif
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