/**
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* @license
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* Copyright 2018 Google LLC. All Rights Reserved.
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* Licensed under the Apache License, Version 2.0 (the "License");
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* you may not use this file except in compliance with the License.
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* You may obtain a copy of the License at
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*
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* http://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,
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* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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* See the License for the specific language governing permissions and
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* limitations under the License.
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* =============================================================================
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*/
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import {ENGINE} from '../engine';
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import {NumericTensor, Tensor} from '../tensor';
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import {convertToTensor} from '../tensor_util_env';
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import {TensorLike} from '../types';
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import {op} from './operation';
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/**
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* Finds the values and indices of the `k` largest entries along the last
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* dimension.
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*
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* If the input is a vector (rank=1), finds the k largest entries in the vector
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* and outputs their values and indices as vectors. Thus values[j] is the j-th
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* largest entry in input, and its index is indices[j].
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* For higher rank inputs, computes the top k entries along the last dimension.
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*
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* If two elements are equal, the lower-index element appears first.
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*
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* ```js
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* const a = tf.tensor2d([[1, 5], [4, 3]]);
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* const {values, indices} = tf.topk(a);
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* values.print();
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* indices.print();
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* ```
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* @param x 1-D or higher `tf.Tensor` with last dimension being at least `k`.
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* @param k Number of top elements to look for along the last dimension.
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* @param sorted If true, the resulting `k` elements will be sorted by the
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* values in descending order.
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*/
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/** @doc {heading: 'Operations', subheading: 'Evaluation'} */
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function topk_<T extends Tensor>(
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x: T|TensorLike, k = 1, sorted = true): {values: T, indices: T} {
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const $x = convertToTensor(x, 'x', 'topk');
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if ($x.rank === 0) {
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throw new Error('topk() expects the input to be of rank 1 or higher');
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}
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const lastDim = $x.shape[$x.shape.length - 1];
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if (k > lastDim) {
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throw new Error(
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`'k' passed to topk() must be <= the last dimension (${lastDim}) ` +
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`but got ${k}`);
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}
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const [values, indices] =
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ENGINE.runKernelFunc(b => b.topk($x as NumericTensor, k, sorted), {$x});
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return {values, indices} as {values: T, indices: T};
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}
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export const topk = op({topk_});
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